xref: /petsc/src/mat/interface/matrix.c (revision a3b2e22bc9e962507181f2aa20d4b05f54cea8af)
1 
2 /*
3    This is where the abstract matrix operations are defined
4 */
5 
6 #include <petsc/private/matimpl.h>        /*I "petscmat.h" I*/
7 #include <petsc/private/isimpl.h>
8 #include <petsc/private/vecimpl.h>
9 
10 /* Logging support */
11 PetscClassId MAT_CLASSID;
12 PetscClassId MAT_COLORING_CLASSID;
13 PetscClassId MAT_FDCOLORING_CLASSID;
14 PetscClassId MAT_TRANSPOSECOLORING_CLASSID;
15 
16 PetscLogEvent MAT_Mult, MAT_Mults, MAT_MultConstrained, MAT_MultAdd, MAT_MultTranspose;
17 PetscLogEvent MAT_MultTransposeConstrained, MAT_MultTransposeAdd, MAT_Solve, MAT_Solves, MAT_SolveAdd, MAT_SolveTranspose, MAT_MatSolve;
18 PetscLogEvent MAT_SolveTransposeAdd, MAT_SOR, MAT_ForwardSolve, MAT_BackwardSolve, MAT_LUFactor, MAT_LUFactorSymbolic;
19 PetscLogEvent MAT_LUFactorNumeric, MAT_CholeskyFactor, MAT_CholeskyFactorSymbolic, MAT_CholeskyFactorNumeric, MAT_ILUFactor;
20 PetscLogEvent MAT_ILUFactorSymbolic, MAT_ICCFactorSymbolic, MAT_Copy, MAT_Convert, MAT_Scale, MAT_AssemblyBegin;
21 PetscLogEvent MAT_AssemblyEnd, MAT_SetValues, MAT_GetValues, MAT_GetRow, MAT_GetRowIJ, MAT_GetSubMatrices, MAT_GetOrdering, MAT_RedundantMat, MAT_GetSeqNonzeroStructure;
22 PetscLogEvent MAT_IncreaseOverlap, MAT_Partitioning, MAT_Coarsen, MAT_ZeroEntries, MAT_Load, MAT_View, MAT_AXPY, MAT_FDColoringCreate;
23 PetscLogEvent MAT_FDColoringSetUp, MAT_FDColoringApply,MAT_Transpose,MAT_FDColoringFunction, MAT_GetSubMatrix;
24 PetscLogEvent MAT_TransposeColoringCreate;
25 PetscLogEvent MAT_MatMult, MAT_MatMultSymbolic, MAT_MatMultNumeric;
26 PetscLogEvent MAT_PtAP, MAT_PtAPSymbolic, MAT_PtAPNumeric,MAT_RARt, MAT_RARtSymbolic, MAT_RARtNumeric;
27 PetscLogEvent MAT_MatTransposeMult, MAT_MatTransposeMultSymbolic, MAT_MatTransposeMultNumeric;
28 PetscLogEvent MAT_TransposeMatMult, MAT_TransposeMatMultSymbolic, MAT_TransposeMatMultNumeric;
29 PetscLogEvent MAT_MatMatMult, MAT_MatMatMultSymbolic, MAT_MatMatMultNumeric;
30 PetscLogEvent MAT_MultHermitianTranspose,MAT_MultHermitianTransposeAdd;
31 PetscLogEvent MAT_Getsymtranspose, MAT_Getsymtransreduced, MAT_Transpose_SeqAIJ, MAT_GetBrowsOfAcols;
32 PetscLogEvent MAT_GetBrowsOfAocols, MAT_Getlocalmat, MAT_Getlocalmatcondensed, MAT_Seqstompi, MAT_Seqstompinum, MAT_Seqstompisym;
33 PetscLogEvent MAT_Applypapt, MAT_Applypapt_numeric, MAT_Applypapt_symbolic, MAT_GetSequentialNonzeroStructure;
34 PetscLogEvent MAT_GetMultiProcBlock;
35 PetscLogEvent MAT_CUSPCopyToGPU, MAT_CUSPARSECopyToGPU, MAT_SetValuesBatch, MAT_SetValuesBatchI, MAT_SetValuesBatchII, MAT_SetValuesBatchIII, MAT_SetValuesBatchIV;
36 PetscLogEvent MAT_ViennaCLCopyToGPU;
37 PetscLogEvent MAT_Merge,MAT_Residual,MAT_SetRandom;
38 PetscLogEvent MATCOLORING_Apply,MATCOLORING_Comm,MATCOLORING_Local,MATCOLORING_ISCreate,MATCOLORING_SetUp,MATCOLORING_Weights;
39 
40 const char *const MatFactorTypes[] = {"NONE","LU","CHOLESKY","ILU","ICC","ILUDT","MatFactorType","MAT_FACTOR_",0};
41 
42 /*@
43    MatSetRandom - Sets all components of a matrix to random numbers. For sparse matrices that have been preallocated it randomly selects appropriate locations
44 
45    Logically Collective on Vec
46 
47    Input Parameters:
48 +  x  - the vector
49 -  rctx - the random number context, formed by PetscRandomCreate(), or NULL and
50           it will create one internally.
51 
52    Output Parameter:
53 .  x  - the vector
54 
55    Example of Usage:
56 .vb
57      PetscRandomCreate(PETSC_COMM_WORLD,&rctx);
58      MatSetRandom(x,rctx);
59      PetscRandomDestroy(rctx);
60 .ve
61 
62    Level: intermediate
63 
64    Concepts: matrix^setting to random
65    Concepts: random^matrix
66 
67 .seealso: MatZeroEntries(), MatSetValues(), PetscRandomCreate(), PetscRandomDestroy()
68 @*/
69 PetscErrorCode MatSetRandom(Mat x,PetscRandom rctx)
70 {
71   PetscErrorCode ierr;
72   PetscRandom    randObj = NULL;
73 
74   PetscFunctionBegin;
75   PetscValidHeaderSpecific(x,MAT_CLASSID,1);
76   if (rctx) PetscValidHeaderSpecific(rctx,PETSC_RANDOM_CLASSID,2);
77   PetscValidType(x,1);
78 
79   if (!rctx) {
80     MPI_Comm comm;
81     ierr = PetscObjectGetComm((PetscObject)x,&comm);CHKERRQ(ierr);
82     ierr = PetscRandomCreate(comm,&randObj);CHKERRQ(ierr);
83     ierr = PetscRandomSetFromOptions(randObj);CHKERRQ(ierr);
84     rctx = randObj;
85   }
86 
87   ierr = PetscLogEventBegin(MAT_SetRandom,x,rctx,0,0);CHKERRQ(ierr);
88   ierr = (*x->ops->setrandom)(x,rctx);CHKERRQ(ierr);
89   ierr = PetscLogEventEnd(MAT_SetRandom,x,rctx,0,0);CHKERRQ(ierr);
90 
91   x->assembled = PETSC_TRUE;
92   ierr         = PetscRandomDestroy(&randObj);CHKERRQ(ierr);
93   PetscFunctionReturn(0);
94 }
95 
96 /*@
97    MatFactorGetErrorZeroPivot - returns the pivot value that was determined to be zero and the row it occurred in
98 
99    Logically Collective on Mat
100 
101    Input Parameters:
102 .  mat - the factored matrix
103 
104    Output Parameter:
105 +  pivot - the pivot value computed
106 -  row - the row that the zero pivot occurred. Note that this row must be interpreted carefully due to row reorderings and which processes
107          the share the matrix
108 
109    Level: advanced
110 
111    Notes: This routine does not work for factorizations done with external packages.
112    This routine should only be called if MatGetFactorError() returns a value of MAT_FACTOR_NUMERIC_ZEROPIVOT
113 
114    This can be called on non-factored matrices that come from, for example, matrices used in SOR.
115 
116 .seealso: MatZeroEntries(), MatFactor(), MatGetFactor(), MatFactorSymbolic(), MatFactorClearError(), MatFactorGetErrorZeroPivot()
117 @*/
118 PetscErrorCode MatFactorGetErrorZeroPivot(Mat mat,PetscReal *pivot,PetscInt *row)
119 {
120   PetscFunctionBegin;
121   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
122   *pivot = mat->factorerror_zeropivot_value;
123   *row   = mat->factorerror_zeropivot_row;
124   PetscFunctionReturn(0);
125 }
126 
127 /*@
128    MatFactorGetError - gets the error code from a factorization
129 
130    Logically Collective on Mat
131 
132    Input Parameters:
133 .  mat - the factored matrix
134 
135    Output Parameter:
136 .  err  - the error code
137 
138    Level: advanced
139 
140    Notes:    This can be called on non-factored matrices that come from, for example, matrices used in SOR.
141 
142 .seealso: MatZeroEntries(), MatFactor(), MatGetFactor(), MatFactorSymbolic(), MatFactorClearError(), MatFactorGetErrorZeroPivot()
143 @*/
144 PetscErrorCode MatFactorGetError(Mat mat,MatFactorError *err)
145 {
146   PetscFunctionBegin;
147   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
148   *err = mat->factorerrortype;
149   PetscFunctionReturn(0);
150 }
151 
152 /*@
153    MatFactorClearError - clears the error code in a factorization
154 
155    Logically Collective on Mat
156 
157    Input Parameter:
158 .  mat - the factored matrix
159 
160    Level: developer
161 
162    Notes: This can be called on non-factored matrices that come from, for example, matrices used in SOR.
163 
164 .seealso: MatZeroEntries(), MatFactor(), MatGetFactor(), MatFactorSymbolic(), MatFactorGetError(), MatFactorGetErrorZeroPivot()
165 @*/
166 PetscErrorCode MatFactorClearError(Mat mat)
167 {
168   PetscFunctionBegin;
169   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
170   mat->factorerrortype             = MAT_FACTOR_NOERROR;
171   mat->factorerror_zeropivot_value = 0.0;
172   mat->factorerror_zeropivot_row   = 0;
173   PetscFunctionReturn(0);
174 }
175 
176 
177 /*@
178       MatFindNonzeroRows - Locate all rows that are not completely zero in the matrix
179 
180   Input Parameter:
181 .    A  - the matrix
182 
183   Output Parameter:
184 .    keptrows - the rows that are not completely zero
185 
186   Notes: keptrows is set to NULL if all rows are nonzero.
187 
188   Level: intermediate
189 
190  @*/
191 PetscErrorCode MatFindNonzeroRows(Mat mat,IS *keptrows)
192 {
193   PetscErrorCode ierr;
194 
195   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
196   PetscValidType(mat,1);
197   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
198   if (mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
199   if (!mat->ops->findnonzerorows) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_SUP,"Not coded for this matrix type");
200   ierr = (*mat->ops->findnonzerorows)(mat,keptrows);CHKERRQ(ierr);
201   PetscFunctionReturn(0);
202 }
203 
204 /*@
205       MatFindZeroRows - Locate all rows that are completely zero in the matrix
206 
207   Input Parameter:
208 .    A  - the matrix
209 
210   Output Parameter:
211 .    zerorows - the rows that are completely zero
212 
213   Notes: zerorows is set to NULL if no rows are zero.
214 
215   Level: intermediate
216 
217  @*/
218 PetscErrorCode MatFindZeroRows(Mat mat,IS *zerorows)
219 {
220   PetscErrorCode ierr;
221   IS keptrows;
222   PetscInt m, n;
223 
224   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
225   PetscValidType(mat,1);
226 
227   ierr = MatFindNonzeroRows(mat, &keptrows);CHKERRQ(ierr);
228   /* MatFindNonzeroRows sets keptrows to NULL if there are no zero rows.
229      In keeping with this convention, we set zerorows to NULL if there are no zero
230      rows. */
231   if (keptrows == NULL) {
232     *zerorows = NULL;
233   } else {
234     ierr = MatGetOwnershipRange(mat,&m,&n);CHKERRQ(ierr);
235     ierr = ISComplement(keptrows,m,n,zerorows);CHKERRQ(ierr);
236     ierr = ISDestroy(&keptrows);CHKERRQ(ierr);
237   }
238   PetscFunctionReturn(0);
239 }
240 
241 /*@
242    MatGetDiagonalBlock - Returns the part of the matrix associated with the on-process coupling
243 
244    Not Collective
245 
246    Input Parameters:
247 .   A - the matrix
248 
249    Output Parameters:
250 .   a - the diagonal part (which is a SEQUENTIAL matrix)
251 
252    Notes: see the manual page for MatCreateAIJ() for more information on the "diagonal part" of the matrix.
253           Use caution, as the reference count on the returned matrix is not incremented and it is used as
254 	  part of the containing MPI Mat's normal operation.
255 
256    Level: advanced
257 
258 @*/
259 PetscErrorCode MatGetDiagonalBlock(Mat A,Mat *a)
260 {
261   PetscErrorCode ierr;
262 
263   PetscFunctionBegin;
264   PetscValidHeaderSpecific(A,MAT_CLASSID,1);
265   PetscValidType(A,1);
266   PetscValidPointer(a,3);
267   if (A->factortype) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
268   if (!A->ops->getdiagonalblock) {
269     PetscMPIInt size;
270     ierr = MPI_Comm_size(PetscObjectComm((PetscObject)A),&size);CHKERRQ(ierr);
271     if (size == 1) {
272       *a = A;
273       PetscFunctionReturn(0);
274     } else SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_SUP,"Not coded for this matrix type");
275   }
276   ierr = (*A->ops->getdiagonalblock)(A,a);CHKERRQ(ierr);
277   PetscFunctionReturn(0);
278 }
279 
280 /*@
281    MatGetTrace - Gets the trace of a matrix. The sum of the diagonal entries.
282 
283    Collective on Mat
284 
285    Input Parameters:
286 .  mat - the matrix
287 
288    Output Parameter:
289 .   trace - the sum of the diagonal entries
290 
291    Level: advanced
292 
293 @*/
294 PetscErrorCode MatGetTrace(Mat mat,PetscScalar *trace)
295 {
296   PetscErrorCode ierr;
297   Vec            diag;
298 
299   PetscFunctionBegin;
300   ierr = MatCreateVecs(mat,&diag,NULL);CHKERRQ(ierr);
301   ierr = MatGetDiagonal(mat,diag);CHKERRQ(ierr);
302   ierr = VecSum(diag,trace);CHKERRQ(ierr);
303   ierr = VecDestroy(&diag);CHKERRQ(ierr);
304   PetscFunctionReturn(0);
305 }
306 
307 /*@
308    MatRealPart - Zeros out the imaginary part of the matrix
309 
310    Logically Collective on Mat
311 
312    Input Parameters:
313 .  mat - the matrix
314 
315    Level: advanced
316 
317 
318 .seealso: MatImaginaryPart()
319 @*/
320 PetscErrorCode MatRealPart(Mat mat)
321 {
322   PetscErrorCode ierr;
323 
324   PetscFunctionBegin;
325   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
326   PetscValidType(mat,1);
327   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
328   if (mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
329   if (!mat->ops->realpart) SETERRQ1(PetscObjectComm((PetscObject)mat),PETSC_ERR_SUP,"Mat type %s",((PetscObject)mat)->type_name);
330   MatCheckPreallocated(mat,1);
331   ierr = (*mat->ops->realpart)(mat);CHKERRQ(ierr);
332 #if defined(PETSC_HAVE_CUSP)
333   if (mat->valid_GPU_matrix != PETSC_CUSP_UNALLOCATED) {
334     mat->valid_GPU_matrix = PETSC_CUSP_CPU;
335   }
336 #elif defined(PETSC_HAVE_VIENNACL)
337   if (mat->valid_GPU_matrix != PETSC_VIENNACL_UNALLOCATED) {
338     mat->valid_GPU_matrix = PETSC_VIENNACL_CPU;
339   }
340 #elif defined(PETSC_HAVE_VECCUDA)
341   if (mat->valid_GPU_matrix != PETSC_CUDA_UNALLOCATED) {
342     mat->valid_GPU_matrix = PETSC_CUDA_CPU;
343   }
344 #endif
345   PetscFunctionReturn(0);
346 }
347 
348 /*@C
349    MatGetGhosts - Get the global index of all ghost nodes defined by the sparse matrix
350 
351    Collective on Mat
352 
353    Input Parameter:
354 .  mat - the matrix
355 
356    Output Parameters:
357 +   nghosts - number of ghosts (note for BAIJ matrices there is one ghost for each block)
358 -   ghosts - the global indices of the ghost points
359 
360    Notes: the nghosts and ghosts are suitable to pass into VecCreateGhost()
361 
362    Level: advanced
363 
364 @*/
365 PetscErrorCode MatGetGhosts(Mat mat,PetscInt *nghosts,const PetscInt *ghosts[])
366 {
367   PetscErrorCode ierr;
368 
369   PetscFunctionBegin;
370   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
371   PetscValidType(mat,1);
372   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
373   if (mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
374   if (!mat->ops->getghosts) {
375     if (nghosts) *nghosts = 0;
376     if (ghosts) *ghosts = 0;
377   } else {
378     ierr = (*mat->ops->getghosts)(mat,nghosts,ghosts);CHKERRQ(ierr);
379   }
380   PetscFunctionReturn(0);
381 }
382 
383 
384 /*@
385    MatImaginaryPart - Moves the imaginary part of the matrix to the real part and zeros the imaginary part
386 
387    Logically Collective on Mat
388 
389    Input Parameters:
390 .  mat - the matrix
391 
392    Level: advanced
393 
394 
395 .seealso: MatRealPart()
396 @*/
397 PetscErrorCode MatImaginaryPart(Mat mat)
398 {
399   PetscErrorCode ierr;
400 
401   PetscFunctionBegin;
402   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
403   PetscValidType(mat,1);
404   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
405   if (mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
406   if (!mat->ops->imaginarypart) SETERRQ1(PetscObjectComm((PetscObject)mat),PETSC_ERR_SUP,"Mat type %s",((PetscObject)mat)->type_name);
407   MatCheckPreallocated(mat,1);
408   ierr = (*mat->ops->imaginarypart)(mat);CHKERRQ(ierr);
409 #if defined(PETSC_HAVE_CUSP)
410   if (mat->valid_GPU_matrix != PETSC_CUSP_UNALLOCATED) {
411     mat->valid_GPU_matrix = PETSC_CUSP_CPU;
412   }
413 #elif defined(PETSC_HAVE_VIENNACL)
414   if (mat->valid_GPU_matrix != PETSC_VIENNACL_UNALLOCATED) {
415     mat->valid_GPU_matrix = PETSC_VIENNACL_CPU;
416   }
417 #elif defined(PETSC_HAVE_VECCUDA)
418   if (mat->valid_GPU_matrix != PETSC_CUDA_UNALLOCATED) {
419     mat->valid_GPU_matrix = PETSC_CUDA_CPU;
420   }
421 #endif
422   PetscFunctionReturn(0);
423 }
424 
425 /*@
426    MatMissingDiagonal - Determine if sparse matrix is missing a diagonal entry (or block entry for BAIJ matrices)
427 
428    Not Collective
429 
430    Input Parameter:
431 .  mat - the matrix
432 
433    Output Parameters:
434 +  missing - is any diagonal missing
435 -  dd - first diagonal entry that is missing (optional) on this process
436 
437    Level: advanced
438 
439 
440 .seealso: MatRealPart()
441 @*/
442 PetscErrorCode MatMissingDiagonal(Mat mat,PetscBool *missing,PetscInt *dd)
443 {
444   PetscErrorCode ierr;
445 
446   PetscFunctionBegin;
447   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
448   PetscValidType(mat,1);
449   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
450   if (mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
451   if (!mat->ops->missingdiagonal) SETERRQ1(PetscObjectComm((PetscObject)mat),PETSC_ERR_SUP,"Mat type %s",((PetscObject)mat)->type_name);
452   ierr = (*mat->ops->missingdiagonal)(mat,missing,dd);CHKERRQ(ierr);
453   PetscFunctionReturn(0);
454 }
455 
456 /*@C
457    MatGetRow - Gets a row of a matrix.  You MUST call MatRestoreRow()
458    for each row that you get to ensure that your application does
459    not bleed memory.
460 
461    Not Collective
462 
463    Input Parameters:
464 +  mat - the matrix
465 -  row - the row to get
466 
467    Output Parameters:
468 +  ncols -  if not NULL, the number of nonzeros in the row
469 .  cols - if not NULL, the column numbers
470 -  vals - if not NULL, the values
471 
472    Notes:
473    This routine is provided for people who need to have direct access
474    to the structure of a matrix.  We hope that we provide enough
475    high-level matrix routines that few users will need it.
476 
477    MatGetRow() always returns 0-based column indices, regardless of
478    whether the internal representation is 0-based (default) or 1-based.
479 
480    For better efficiency, set cols and/or vals to NULL if you do
481    not wish to extract these quantities.
482 
483    The user can only examine the values extracted with MatGetRow();
484    the values cannot be altered.  To change the matrix entries, one
485    must use MatSetValues().
486 
487    You can only have one call to MatGetRow() outstanding for a particular
488    matrix at a time, per processor. MatGetRow() can only obtain rows
489    associated with the given processor, it cannot get rows from the
490    other processors; for that we suggest using MatGetSubMatrices(), then
491    MatGetRow() on the submatrix. The row index passed to MatGetRows()
492    is in the global number of rows.
493 
494    Fortran Notes:
495    The calling sequence from Fortran is
496 .vb
497    MatGetRow(matrix,row,ncols,cols,values,ierr)
498          Mat     matrix (input)
499          integer row    (input)
500          integer ncols  (output)
501          integer cols(maxcols) (output)
502          double precision (or double complex) values(maxcols) output
503 .ve
504    where maxcols >= maximum nonzeros in any row of the matrix.
505 
506 
507    Caution:
508    Do not try to change the contents of the output arrays (cols and vals).
509    In some cases, this may corrupt the matrix.
510 
511    Level: advanced
512 
513    Concepts: matrices^row access
514 
515 .seealso: MatRestoreRow(), MatSetValues(), MatGetValues(), MatGetSubMatrices(), MatGetDiagonal()
516 @*/
517 PetscErrorCode MatGetRow(Mat mat,PetscInt row,PetscInt *ncols,const PetscInt *cols[],const PetscScalar *vals[])
518 {
519   PetscErrorCode ierr;
520   PetscInt       incols;
521 
522   PetscFunctionBegin;
523   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
524   PetscValidType(mat,1);
525   if (!mat->assembled) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
526   if (mat->factortype) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
527   if (!mat->ops->getrow) SETERRQ1(PETSC_COMM_SELF,PETSC_ERR_SUP,"Mat type %s",((PetscObject)mat)->type_name);
528   MatCheckPreallocated(mat,1);
529   ierr = PetscLogEventBegin(MAT_GetRow,mat,0,0,0);CHKERRQ(ierr);
530   ierr = (*mat->ops->getrow)(mat,row,&incols,(PetscInt**)cols,(PetscScalar**)vals);CHKERRQ(ierr);
531   if (ncols) *ncols = incols;
532   ierr = PetscLogEventEnd(MAT_GetRow,mat,0,0,0);CHKERRQ(ierr);
533   PetscFunctionReturn(0);
534 }
535 
536 /*@
537    MatConjugate - replaces the matrix values with their complex conjugates
538 
539    Logically Collective on Mat
540 
541    Input Parameters:
542 .  mat - the matrix
543 
544    Level: advanced
545 
546 .seealso:  VecConjugate()
547 @*/
548 PetscErrorCode MatConjugate(Mat mat)
549 {
550 #if defined(PETSC_USE_COMPLEX)
551   PetscErrorCode ierr;
552 
553   PetscFunctionBegin;
554   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
555   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
556   if (!mat->ops->conjugate) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_SUP,"Not provided for this matrix format, send email to petsc-maint@mcs.anl.gov");
557   ierr = (*mat->ops->conjugate)(mat);CHKERRQ(ierr);
558 #if defined(PETSC_HAVE_CUSP)
559   if (mat->valid_GPU_matrix != PETSC_CUSP_UNALLOCATED) {
560     mat->valid_GPU_matrix = PETSC_CUSP_CPU;
561   }
562 #elif defined(PETSC_HAVE_VIENNACL)
563   if (mat->valid_GPU_matrix != PETSC_VIENNACL_UNALLOCATED) {
564     mat->valid_GPU_matrix = PETSC_VIENNACL_CPU;
565   }
566 #elif defined(PETSC_HAVE_VECCUDA)
567   if (mat->valid_GPU_matrix != PETSC_CUDA_UNALLOCATED) {
568     mat->valid_GPU_matrix = PETSC_CUDA_CPU;
569   }
570 #endif
571   PetscFunctionReturn(0);
572 #else
573   return 0;
574 #endif
575 }
576 
577 /*@C
578    MatRestoreRow - Frees any temporary space allocated by MatGetRow().
579 
580    Not Collective
581 
582    Input Parameters:
583 +  mat - the matrix
584 .  row - the row to get
585 .  ncols, cols - the number of nonzeros and their columns
586 -  vals - if nonzero the column values
587 
588    Notes:
589    This routine should be called after you have finished examining the entries.
590 
591    This routine zeros out ncols, cols, and vals. This is to prevent accidental
592    us of the array after it has been restored. If you pass NULL, it will
593    not zero the pointers.  Use of cols or vals after MatRestoreRow is invalid.
594 
595    Fortran Notes:
596    The calling sequence from Fortran is
597 .vb
598    MatRestoreRow(matrix,row,ncols,cols,values,ierr)
599       Mat     matrix (input)
600       integer row    (input)
601       integer ncols  (output)
602       integer cols(maxcols) (output)
603       double precision (or double complex) values(maxcols) output
604 .ve
605    Where maxcols >= maximum nonzeros in any row of the matrix.
606 
607    In Fortran MatRestoreRow() MUST be called after MatGetRow()
608    before another call to MatGetRow() can be made.
609 
610    Level: advanced
611 
612 .seealso:  MatGetRow()
613 @*/
614 PetscErrorCode MatRestoreRow(Mat mat,PetscInt row,PetscInt *ncols,const PetscInt *cols[],const PetscScalar *vals[])
615 {
616   PetscErrorCode ierr;
617 
618   PetscFunctionBegin;
619   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
620   if (ncols) PetscValidIntPointer(ncols,3);
621   if (!mat->assembled) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
622   if (!mat->ops->restorerow) PetscFunctionReturn(0);
623   ierr = (*mat->ops->restorerow)(mat,row,ncols,(PetscInt **)cols,(PetscScalar **)vals);CHKERRQ(ierr);
624   if (ncols) *ncols = 0;
625   if (cols)  *cols = NULL;
626   if (vals)  *vals = NULL;
627   PetscFunctionReturn(0);
628 }
629 
630 /*@
631    MatGetRowUpperTriangular - Sets a flag to enable calls to MatGetRow() for matrix in MATSBAIJ format.
632    You should call MatRestoreRowUpperTriangular() after calling MatGetRow/MatRestoreRow() to disable the flag.
633 
634    Not Collective
635 
636    Input Parameters:
637 +  mat - the matrix
638 
639    Notes:
640    The flag is to ensure that users are aware of MatGetRow() only provides the upper trianglular part of the row for the matrices in MATSBAIJ format.
641 
642    Level: advanced
643 
644    Concepts: matrices^row access
645 
646 .seealso: MatRestoreRowRowUpperTriangular()
647 @*/
648 PetscErrorCode MatGetRowUpperTriangular(Mat mat)
649 {
650   PetscErrorCode ierr;
651 
652   PetscFunctionBegin;
653   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
654   PetscValidType(mat,1);
655   if (!mat->assembled) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
656   if (mat->factortype) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
657   if (!mat->ops->getrowuppertriangular) SETERRQ1(PETSC_COMM_SELF,PETSC_ERR_SUP,"Mat type %s",((PetscObject)mat)->type_name);
658   MatCheckPreallocated(mat,1);
659   ierr = (*mat->ops->getrowuppertriangular)(mat);CHKERRQ(ierr);
660   PetscFunctionReturn(0);
661 }
662 
663 /*@
664    MatRestoreRowUpperTriangular - Disable calls to MatGetRow() for matrix in MATSBAIJ format.
665 
666    Not Collective
667 
668    Input Parameters:
669 +  mat - the matrix
670 
671    Notes:
672    This routine should be called after you have finished MatGetRow/MatRestoreRow().
673 
674 
675    Level: advanced
676 
677 .seealso:  MatGetRowUpperTriangular()
678 @*/
679 PetscErrorCode MatRestoreRowUpperTriangular(Mat mat)
680 {
681   PetscErrorCode ierr;
682 
683   PetscFunctionBegin;
684   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
685   if (!mat->assembled) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
686   if (!mat->ops->restorerowuppertriangular) PetscFunctionReturn(0);
687   ierr = (*mat->ops->restorerowuppertriangular)(mat);CHKERRQ(ierr);
688   PetscFunctionReturn(0);
689 }
690 
691 /*@C
692    MatSetOptionsPrefix - Sets the prefix used for searching for all
693    Mat options in the database.
694 
695    Logically Collective on Mat
696 
697    Input Parameter:
698 +  A - the Mat context
699 -  prefix - the prefix to prepend to all option names
700 
701    Notes:
702    A hyphen (-) must NOT be given at the beginning of the prefix name.
703    The first character of all runtime options is AUTOMATICALLY the hyphen.
704 
705    Level: advanced
706 
707 .keywords: Mat, set, options, prefix, database
708 
709 .seealso: MatSetFromOptions()
710 @*/
711 PetscErrorCode MatSetOptionsPrefix(Mat A,const char prefix[])
712 {
713   PetscErrorCode ierr;
714 
715   PetscFunctionBegin;
716   PetscValidHeaderSpecific(A,MAT_CLASSID,1);
717   ierr = PetscObjectSetOptionsPrefix((PetscObject)A,prefix);CHKERRQ(ierr);
718   PetscFunctionReturn(0);
719 }
720 
721 /*@C
722    MatAppendOptionsPrefix - Appends to the prefix used for searching for all
723    Mat options in the database.
724 
725    Logically Collective on Mat
726 
727    Input Parameters:
728 +  A - the Mat context
729 -  prefix - the prefix to prepend to all option names
730 
731    Notes:
732    A hyphen (-) must NOT be given at the beginning of the prefix name.
733    The first character of all runtime options is AUTOMATICALLY the hyphen.
734 
735    Level: advanced
736 
737 .keywords: Mat, append, options, prefix, database
738 
739 .seealso: MatGetOptionsPrefix()
740 @*/
741 PetscErrorCode MatAppendOptionsPrefix(Mat A,const char prefix[])
742 {
743   PetscErrorCode ierr;
744 
745   PetscFunctionBegin;
746   PetscValidHeaderSpecific(A,MAT_CLASSID,1);
747   ierr = PetscObjectAppendOptionsPrefix((PetscObject)A,prefix);CHKERRQ(ierr);
748   PetscFunctionReturn(0);
749 }
750 
751 /*@C
752    MatGetOptionsPrefix - Sets the prefix used for searching for all
753    Mat options in the database.
754 
755    Not Collective
756 
757    Input Parameter:
758 .  A - the Mat context
759 
760    Output Parameter:
761 .  prefix - pointer to the prefix string used
762 
763    Notes: On the fortran side, the user should pass in a string 'prefix' of
764    sufficient length to hold the prefix.
765 
766    Level: advanced
767 
768 .keywords: Mat, get, options, prefix, database
769 
770 .seealso: MatAppendOptionsPrefix()
771 @*/
772 PetscErrorCode MatGetOptionsPrefix(Mat A,const char *prefix[])
773 {
774   PetscErrorCode ierr;
775 
776   PetscFunctionBegin;
777   PetscValidHeaderSpecific(A,MAT_CLASSID,1);
778   ierr = PetscObjectGetOptionsPrefix((PetscObject)A,prefix);CHKERRQ(ierr);
779   PetscFunctionReturn(0);
780 }
781 
782 /*@
783    MatSetUp - Sets up the internal matrix data structures for the later use.
784 
785    Collective on Mat
786 
787    Input Parameters:
788 .  A - the Mat context
789 
790    Notes:
791    If the user has not set preallocation for this matrix then a default preallocation that is likely to be inefficient is used.
792 
793    If a suitable preallocation routine is used, this function does not need to be called.
794 
795    See the Performance chapter of the PETSc users manual for how to preallocate matrices
796 
797    Level: beginner
798 
799 .keywords: Mat, setup
800 
801 .seealso: MatCreate(), MatDestroy()
802 @*/
803 PetscErrorCode MatSetUp(Mat A)
804 {
805   PetscMPIInt    size;
806   PetscErrorCode ierr;
807 
808   PetscFunctionBegin;
809   PetscValidHeaderSpecific(A,MAT_CLASSID,1);
810   if (!((PetscObject)A)->type_name) {
811     ierr = MPI_Comm_size(PetscObjectComm((PetscObject)A), &size);CHKERRQ(ierr);
812     if (size == 1) {
813       ierr = MatSetType(A, MATSEQAIJ);CHKERRQ(ierr);
814     } else {
815       ierr = MatSetType(A, MATMPIAIJ);CHKERRQ(ierr);
816     }
817   }
818   if (!A->preallocated && A->ops->setup) {
819     ierr = PetscInfo(A,"Warning not preallocating matrix storage\n");CHKERRQ(ierr);
820     ierr = (*A->ops->setup)(A);CHKERRQ(ierr);
821   }
822   if (A->rmap->n < 0 || A->rmap->N < 0) {
823     ierr = PetscLayoutSetUp(A->rmap);CHKERRQ(ierr);
824   }
825   if (A->cmap->n < 0 || A->cmap->N < 0) {
826     ierr = PetscLayoutSetUp(A->cmap);CHKERRQ(ierr);
827   }
828   A->preallocated = PETSC_TRUE;
829   PetscFunctionReturn(0);
830 }
831 
832 #if defined(PETSC_HAVE_SAWS)
833 #include <petscviewersaws.h>
834 #endif
835 /*@C
836    MatView - Visualizes a matrix object.
837 
838    Collective on Mat
839 
840    Input Parameters:
841 +  mat - the matrix
842 -  viewer - visualization context
843 
844   Notes:
845   The available visualization contexts include
846 +    PETSC_VIEWER_STDOUT_SELF - for sequential matrices
847 .    PETSC_VIEWER_STDOUT_WORLD - for parallel matrices created on PETSC_COMM_WORLD
848 .    PETSC_VIEWER_STDOUT_(comm) - for matrices created on MPI communicator comm
849 -     PETSC_VIEWER_DRAW_WORLD - graphical display of nonzero structure
850 
851    The user can open alternative visualization contexts with
852 +    PetscViewerASCIIOpen() - Outputs matrix to a specified file
853 .    PetscViewerBinaryOpen() - Outputs matrix in binary to a
854          specified file; corresponding input uses MatLoad()
855 .    PetscViewerDrawOpen() - Outputs nonzero matrix structure to
856          an X window display
857 -    PetscViewerSocketOpen() - Outputs matrix to Socket viewer.
858          Currently only the sequential dense and AIJ
859          matrix types support the Socket viewer.
860 
861    The user can call PetscViewerPushFormat() to specify the output
862    format of ASCII printed objects (when using PETSC_VIEWER_STDOUT_SELF,
863    PETSC_VIEWER_STDOUT_WORLD and PetscViewerASCIIOpen).  Available formats include
864 +    PETSC_VIEWER_DEFAULT - default, prints matrix contents
865 .    PETSC_VIEWER_ASCII_MATLAB - prints matrix contents in Matlab format
866 .    PETSC_VIEWER_ASCII_DENSE - prints entire matrix including zeros
867 .    PETSC_VIEWER_ASCII_COMMON - prints matrix contents, using a sparse
868          format common among all matrix types
869 .    PETSC_VIEWER_ASCII_IMPL - prints matrix contents, using an implementation-specific
870          format (which is in many cases the same as the default)
871 .    PETSC_VIEWER_ASCII_INFO - prints basic information about the matrix
872          size and structure (not the matrix entries)
873 .    PETSC_VIEWER_ASCII_INFO_DETAIL - prints more detailed information about
874          the matrix structure
875 
876    Options Database Keys:
877 +  -mat_view ::ascii_info - Prints info on matrix at conclusion of MatAssemblyEnd()
878 .  -mat_view ::ascii_info_detail - Prints more detailed info
879 .  -mat_view - Prints matrix in ASCII format
880 .  -mat_view ::ascii_matlab - Prints matrix in Matlab format
881 .  -mat_view draw - PetscDraws nonzero structure of matrix, using MatView() and PetscDrawOpenX().
882 .  -display <name> - Sets display name (default is host)
883 .  -draw_pause <sec> - Sets number of seconds to pause after display
884 .  -mat_view socket - Sends matrix to socket, can be accessed from Matlab (see Users-Manual: ch_matlab for details)
885 .  -viewer_socket_machine <machine> -
886 .  -viewer_socket_port <port> -
887 .  -mat_view binary - save matrix to file in binary format
888 -  -viewer_binary_filename <name> -
889    Level: beginner
890 
891    Notes: see the manual page for MatLoad() for the exact format of the binary file when the binary
892       viewer is used.
893 
894       See share/petsc/matlab/PetscBinaryRead.m for a Matlab code that can read in the binary file when the binary
895       viewer is used.
896 
897       One can use '-mat_view draw -draw_pause -1' to pause the graphical display of matrix nonzero structure.
898       And then use the following mouse functions:
899           left mouse: zoom in
900           middle mouse: zoom out
901           right mouse: continue with the simulation
902 
903    Concepts: matrices^viewing
904    Concepts: matrices^plotting
905    Concepts: matrices^printing
906 
907 .seealso: PetscViewerPushFormat(), PetscViewerASCIIOpen(), PetscViewerDrawOpen(),
908           PetscViewerSocketOpen(), PetscViewerBinaryOpen(), MatLoad()
909 @*/
910 PetscErrorCode MatView(Mat mat,PetscViewer viewer)
911 {
912   PetscErrorCode    ierr;
913   PetscInt          rows,cols,rbs,cbs;
914   PetscBool         iascii,ibinary;
915   PetscViewerFormat format;
916 #if defined(PETSC_HAVE_SAWS)
917   PetscBool         issaws;
918 #endif
919 
920   PetscFunctionBegin;
921   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
922   PetscValidType(mat,1);
923   if (!viewer) {
924     ierr = PetscViewerASCIIGetStdout(PetscObjectComm((PetscObject)mat),&viewer);CHKERRQ(ierr);
925   }
926   PetscValidHeaderSpecific(viewer,PETSC_VIEWER_CLASSID,2);
927   PetscCheckSameComm(mat,1,viewer,2);
928   MatCheckPreallocated(mat,1);
929   ierr = PetscObjectTypeCompare((PetscObject)viewer,PETSCVIEWERBINARY,&ibinary);CHKERRQ(ierr);
930   if (ibinary) {
931     PetscBool mpiio;
932     ierr = PetscViewerBinaryGetUseMPIIO(viewer,&mpiio);CHKERRQ(ierr);
933     if (mpiio) SETERRQ(PetscObjectComm((PetscObject)viewer),PETSC_ERR_SUP,"PETSc matrix viewers do not support using MPI-IO, turn off that flag");
934   }
935 
936   ierr = PetscLogEventBegin(MAT_View,mat,viewer,0,0);CHKERRQ(ierr);
937   ierr = PetscObjectTypeCompare((PetscObject)viewer,PETSCVIEWERASCII,&iascii);CHKERRQ(ierr);
938   ierr = PetscViewerGetFormat(viewer,&format);CHKERRQ(ierr);
939   if ((!iascii || (format != PETSC_VIEWER_ASCII_INFO || format == PETSC_VIEWER_ASCII_INFO_DETAIL)) && mat->factortype) {
940     SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"No viewers for factored matrix except ASCII info or info_detailed");
941   }
942 
943 #if defined(PETSC_HAVE_SAWS)
944   ierr = PetscObjectTypeCompare((PetscObject)viewer,PETSCVIEWERSAWS,&issaws);CHKERRQ(ierr);
945 #endif
946   if (iascii) {
947     if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ORDER,"Must call MatAssemblyBegin/End() before viewing matrix");
948     ierr = PetscObjectPrintClassNamePrefixType((PetscObject)mat,viewer);CHKERRQ(ierr);
949     if (format == PETSC_VIEWER_ASCII_INFO || format == PETSC_VIEWER_ASCII_INFO_DETAIL) {
950       ierr = PetscViewerASCIIPushTab(viewer);CHKERRQ(ierr);
951       ierr = MatGetSize(mat,&rows,&cols);CHKERRQ(ierr);
952       ierr = MatGetBlockSizes(mat,&rbs,&cbs);CHKERRQ(ierr);
953       if (rbs != 1 || cbs != 1) {
954         if (rbs != cbs) {ierr = PetscViewerASCIIPrintf(viewer,"rows=%D, cols=%D, rbs=%D, cbs = %D\n",rows,cols,rbs,cbs);CHKERRQ(ierr);}
955         else            {ierr = PetscViewerASCIIPrintf(viewer,"rows=%D, cols=%D, bs=%D\n",rows,cols,rbs);CHKERRQ(ierr);}
956       } else {
957         ierr = PetscViewerASCIIPrintf(viewer,"rows=%D, cols=%D\n",rows,cols);CHKERRQ(ierr);
958       }
959       if (mat->factortype) {
960         const MatSolverPackage solver;
961         ierr = MatFactorGetSolverPackage(mat,&solver);CHKERRQ(ierr);
962         ierr = PetscViewerASCIIPrintf(viewer,"package used to perform factorization: %s\n",solver);CHKERRQ(ierr);
963       }
964       if (mat->ops->getinfo) {
965         MatInfo info;
966         ierr = MatGetInfo(mat,MAT_GLOBAL_SUM,&info);CHKERRQ(ierr);
967         ierr = PetscViewerASCIIPrintf(viewer,"total: nonzeros=%.f, allocated nonzeros=%.f\n",info.nz_used,info.nz_allocated);CHKERRQ(ierr);
968         ierr = PetscViewerASCIIPrintf(viewer,"total number of mallocs used during MatSetValues calls =%D\n",(PetscInt)info.mallocs);CHKERRQ(ierr);
969       }
970       if (mat->nullsp) {ierr = PetscViewerASCIIPrintf(viewer,"  has attached null space\n");CHKERRQ(ierr);}
971       if (mat->nearnullsp) {ierr = PetscViewerASCIIPrintf(viewer,"  has attached near null space\n");CHKERRQ(ierr);}
972     }
973 #if defined(PETSC_HAVE_SAWS)
974   } else if (issaws) {
975     PetscMPIInt rank;
976 
977     ierr = PetscObjectName((PetscObject)mat);CHKERRQ(ierr);
978     ierr = MPI_Comm_rank(PETSC_COMM_WORLD,&rank);CHKERRQ(ierr);
979     if (!((PetscObject)mat)->amsmem && !rank) {
980       ierr = PetscObjectViewSAWs((PetscObject)mat,viewer);CHKERRQ(ierr);
981     }
982 #endif
983   }
984   if (mat->ops->view) {
985     ierr = PetscViewerASCIIPushTab(viewer);CHKERRQ(ierr);
986     ierr = (*mat->ops->view)(mat,viewer);CHKERRQ(ierr);
987     ierr = PetscViewerASCIIPopTab(viewer);CHKERRQ(ierr);
988   }
989   if (iascii) {
990     if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ORDER,"Must call MatAssemblyBegin/End() before viewing matrix");
991     ierr = PetscViewerGetFormat(viewer,&format);CHKERRQ(ierr);
992     if (format == PETSC_VIEWER_ASCII_INFO || format == PETSC_VIEWER_ASCII_INFO_DETAIL) {
993       ierr = PetscViewerASCIIPopTab(viewer);CHKERRQ(ierr);
994     }
995   }
996   ierr = PetscLogEventEnd(MAT_View,mat,viewer,0,0);CHKERRQ(ierr);
997   PetscFunctionReturn(0);
998 }
999 
1000 #if defined(PETSC_USE_DEBUG)
1001 #include <../src/sys/totalview/tv_data_display.h>
1002 PETSC_UNUSED static int TV_display_type(const struct _p_Mat *mat)
1003 {
1004   TV_add_row("Local rows", "int", &mat->rmap->n);
1005   TV_add_row("Local columns", "int", &mat->cmap->n);
1006   TV_add_row("Global rows", "int", &mat->rmap->N);
1007   TV_add_row("Global columns", "int", &mat->cmap->N);
1008   TV_add_row("Typename", TV_ascii_string_type, ((PetscObject)mat)->type_name);
1009   return TV_format_OK;
1010 }
1011 #endif
1012 
1013 /*@C
1014    MatLoad - Loads a matrix that has been stored in binary format
1015    with MatView().  The matrix format is determined from the options database.
1016    Generates a parallel MPI matrix if the communicator has more than one
1017    processor.  The default matrix type is AIJ.
1018 
1019    Collective on PetscViewer
1020 
1021    Input Parameters:
1022 +  newmat - the newly loaded matrix, this needs to have been created with MatCreate()
1023             or some related function before a call to MatLoad()
1024 -  viewer - binary file viewer, created with PetscViewerBinaryOpen()
1025 
1026    Options Database Keys:
1027    Used with block matrix formats (MATSEQBAIJ,  ...) to specify
1028    block size
1029 .    -matload_block_size <bs>
1030 
1031    Level: beginner
1032 
1033    Notes:
1034    If the Mat type has not yet been given then MATAIJ is used, call MatSetFromOptions() on the
1035    Mat before calling this routine if you wish to set it from the options database.
1036 
1037    MatLoad() automatically loads into the options database any options
1038    given in the file filename.info where filename is the name of the file
1039    that was passed to the PetscViewerBinaryOpen(). The options in the info
1040    file will be ignored if you use the -viewer_binary_skip_info option.
1041 
1042    If the type or size of newmat is not set before a call to MatLoad, PETSc
1043    sets the default matrix type AIJ and sets the local and global sizes.
1044    If type and/or size is already set, then the same are used.
1045 
1046    In parallel, each processor can load a subset of rows (or the
1047    entire matrix).  This routine is especially useful when a large
1048    matrix is stored on disk and only part of it is desired on each
1049    processor.  For example, a parallel solver may access only some of
1050    the rows from each processor.  The algorithm used here reads
1051    relatively small blocks of data rather than reading the entire
1052    matrix and then subsetting it.
1053 
1054    Notes for advanced users:
1055    Most users should not need to know the details of the binary storage
1056    format, since MatLoad() and MatView() completely hide these details.
1057    But for anyone who's interested, the standard binary matrix storage
1058    format is
1059 
1060 $    int    MAT_FILE_CLASSID
1061 $    int    number of rows
1062 $    int    number of columns
1063 $    int    total number of nonzeros
1064 $    int    *number nonzeros in each row
1065 $    int    *column indices of all nonzeros (starting index is zero)
1066 $    PetscScalar *values of all nonzeros
1067 
1068    PETSc automatically does the byte swapping for
1069 machines that store the bytes reversed, e.g.  DEC alpha, freebsd,
1070 linux, Windows and the paragon; thus if you write your own binary
1071 read/write routines you have to swap the bytes; see PetscBinaryRead()
1072 and PetscBinaryWrite() to see how this may be done.
1073 
1074 .keywords: matrix, load, binary, input
1075 
1076 .seealso: PetscViewerBinaryOpen(), MatView(), VecLoad()
1077 
1078  @*/
1079 PetscErrorCode MatLoad(Mat newmat,PetscViewer viewer)
1080 {
1081   PetscErrorCode ierr;
1082   PetscBool      isbinary,flg;
1083 
1084   PetscFunctionBegin;
1085   PetscValidHeaderSpecific(newmat,MAT_CLASSID,1);
1086   PetscValidHeaderSpecific(viewer,PETSC_VIEWER_CLASSID,2);
1087   ierr = PetscObjectTypeCompare((PetscObject)viewer,PETSCVIEWERBINARY,&isbinary);CHKERRQ(ierr);
1088   if (!isbinary) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_WRONG,"Invalid viewer; open viewer with PetscViewerBinaryOpen()");
1089 
1090   if (!((PetscObject)newmat)->type_name) {
1091     ierr = MatSetType(newmat,MATAIJ);CHKERRQ(ierr);
1092   }
1093 
1094   if (!newmat->ops->load) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_SUP,"MatLoad is not supported for type");
1095   ierr = PetscLogEventBegin(MAT_Load,viewer,0,0,0);CHKERRQ(ierr);
1096   ierr = (*newmat->ops->load)(newmat,viewer);CHKERRQ(ierr);
1097   ierr = PetscLogEventEnd(MAT_Load,viewer,0,0,0);CHKERRQ(ierr);
1098 
1099   flg  = PETSC_FALSE;
1100   ierr = PetscOptionsGetBool(((PetscObject)newmat)->options,((PetscObject)newmat)->prefix,"-matload_symmetric",&flg,NULL);CHKERRQ(ierr);
1101   if (flg) {
1102     ierr = MatSetOption(newmat,MAT_SYMMETRIC,PETSC_TRUE);CHKERRQ(ierr);
1103     ierr = MatSetOption(newmat,MAT_SYMMETRY_ETERNAL,PETSC_TRUE);CHKERRQ(ierr);
1104   }
1105   flg  = PETSC_FALSE;
1106   ierr = PetscOptionsGetBool(((PetscObject)newmat)->options,((PetscObject)newmat)->prefix,"-matload_spd",&flg,NULL);CHKERRQ(ierr);
1107   if (flg) {
1108     ierr = MatSetOption(newmat,MAT_SPD,PETSC_TRUE);CHKERRQ(ierr);
1109   }
1110   PetscFunctionReturn(0);
1111 }
1112 
1113 PetscErrorCode MatDestroy_Redundant(Mat_Redundant **redundant)
1114 {
1115   PetscErrorCode ierr;
1116   Mat_Redundant  *redund = *redundant;
1117   PetscInt       i;
1118 
1119   PetscFunctionBegin;
1120   if (redund){
1121     if (redund->matseq) { /* via MatGetSubMatrices()  */
1122       ierr = ISDestroy(&redund->isrow);CHKERRQ(ierr);
1123       ierr = ISDestroy(&redund->iscol);CHKERRQ(ierr);
1124       ierr = MatDestroy(&redund->matseq[0]);CHKERRQ(ierr);
1125       ierr = PetscFree(redund->matseq);CHKERRQ(ierr);
1126     } else {
1127       ierr = PetscFree2(redund->send_rank,redund->recv_rank);CHKERRQ(ierr);
1128       ierr = PetscFree(redund->sbuf_j);CHKERRQ(ierr);
1129       ierr = PetscFree(redund->sbuf_a);CHKERRQ(ierr);
1130       for (i=0; i<redund->nrecvs; i++) {
1131         ierr = PetscFree(redund->rbuf_j[i]);CHKERRQ(ierr);
1132         ierr = PetscFree(redund->rbuf_a[i]);CHKERRQ(ierr);
1133       }
1134       ierr = PetscFree4(redund->sbuf_nz,redund->rbuf_nz,redund->rbuf_j,redund->rbuf_a);CHKERRQ(ierr);
1135     }
1136 
1137     if (redund->subcomm) {
1138       ierr = PetscCommDestroy(&redund->subcomm);CHKERRQ(ierr);
1139     }
1140     ierr = PetscFree(redund);CHKERRQ(ierr);
1141   }
1142   PetscFunctionReturn(0);
1143 }
1144 
1145 /*@
1146    MatDestroy - Frees space taken by a matrix.
1147 
1148    Collective on Mat
1149 
1150    Input Parameter:
1151 .  A - the matrix
1152 
1153    Level: beginner
1154 
1155 @*/
1156 PetscErrorCode MatDestroy(Mat *A)
1157 {
1158   PetscErrorCode ierr;
1159 
1160   PetscFunctionBegin;
1161   if (!*A) PetscFunctionReturn(0);
1162   PetscValidHeaderSpecific(*A,MAT_CLASSID,1);
1163   if (--((PetscObject)(*A))->refct > 0) {*A = NULL; PetscFunctionReturn(0);}
1164 
1165   /* if memory was published with SAWs then destroy it */
1166   ierr = PetscObjectSAWsViewOff((PetscObject)*A);CHKERRQ(ierr);
1167   if ((*A)->ops->destroy) {
1168     ierr = (*(*A)->ops->destroy)(*A);CHKERRQ(ierr);
1169   }
1170 
1171   ierr = PetscFree((*A)->solvertype);CHKERRQ(ierr);
1172   ierr = MatDestroy_Redundant(&(*A)->redundant);CHKERRQ(ierr);
1173   ierr = MatNullSpaceDestroy(&(*A)->nullsp);CHKERRQ(ierr);
1174   ierr = MatNullSpaceDestroy(&(*A)->transnullsp);CHKERRQ(ierr);
1175   ierr = MatNullSpaceDestroy(&(*A)->nearnullsp);CHKERRQ(ierr);
1176   ierr = PetscLayoutDestroy(&(*A)->rmap);CHKERRQ(ierr);
1177   ierr = PetscLayoutDestroy(&(*A)->cmap);CHKERRQ(ierr);
1178   ierr = PetscHeaderDestroy(A);CHKERRQ(ierr);
1179   PetscFunctionReturn(0);
1180 }
1181 
1182 /*@C
1183    MatSetValues - Inserts or adds a block of values into a matrix.
1184    These values may be cached, so MatAssemblyBegin() and MatAssemblyEnd()
1185    MUST be called after all calls to MatSetValues() have been completed.
1186 
1187    Not Collective
1188 
1189    Input Parameters:
1190 +  mat - the matrix
1191 .  v - a logically two-dimensional array of values
1192 .  m, idxm - the number of rows and their global indices
1193 .  n, idxn - the number of columns and their global indices
1194 -  addv - either ADD_VALUES or INSERT_VALUES, where
1195    ADD_VALUES adds values to any existing entries, and
1196    INSERT_VALUES replaces existing entries with new values
1197 
1198    Notes:
1199    If you create the matrix yourself (that is not with a call to DMCreateMatrix()) then you MUST call MatXXXXSetPreallocation() or
1200       MatSetUp() before using this routine
1201 
1202    By default the values, v, are row-oriented. See MatSetOption() for other options.
1203 
1204    Calls to MatSetValues() with the INSERT_VALUES and ADD_VALUES
1205    options cannot be mixed without intervening calls to the assembly
1206    routines.
1207 
1208    MatSetValues() uses 0-based row and column numbers in Fortran
1209    as well as in C.
1210 
1211    Negative indices may be passed in idxm and idxn, these rows and columns are
1212    simply ignored. This allows easily inserting element stiffness matrices
1213    with homogeneous Dirchlet boundary conditions that you don't want represented
1214    in the matrix.
1215 
1216    Efficiency Alert:
1217    The routine MatSetValuesBlocked() may offer much better efficiency
1218    for users of block sparse formats (MATSEQBAIJ and MATMPIBAIJ).
1219 
1220    Level: beginner
1221 
1222    Developer Notes: This is labeled with C so does not automatically generate Fortran stubs and interfaces
1223                     because it requires multiple Fortran interfaces depending on which arguments are scalar or arrays.
1224 
1225    Concepts: matrices^putting entries in
1226 
1227 .seealso: MatSetOption(), MatAssemblyBegin(), MatAssemblyEnd(), MatSetValuesBlocked(), MatSetValuesLocal(),
1228           InsertMode, INSERT_VALUES, ADD_VALUES
1229 @*/
1230 PetscErrorCode MatSetValues(Mat mat,PetscInt m,const PetscInt idxm[],PetscInt n,const PetscInt idxn[],const PetscScalar v[],InsertMode addv)
1231 {
1232   PetscErrorCode ierr;
1233 #if defined(PETSC_USE_DEBUG)
1234   PetscInt       i,j;
1235 #endif
1236 
1237   PetscFunctionBeginHot;
1238   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
1239   PetscValidType(mat,1);
1240   if (!m || !n) PetscFunctionReturn(0); /* no values to insert */
1241   PetscValidIntPointer(idxm,3);
1242   PetscValidIntPointer(idxn,5);
1243   PetscValidScalarPointer(v,6);
1244   MatCheckPreallocated(mat,1);
1245   if (mat->insertmode == NOT_SET_VALUES) {
1246     mat->insertmode = addv;
1247   }
1248 #if defined(PETSC_USE_DEBUG)
1249   else if (mat->insertmode != addv) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_WRONGSTATE,"Cannot mix add values and insert values");
1250   if (mat->factortype) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
1251   if (!mat->ops->setvalues) SETERRQ1(PETSC_COMM_SELF,PETSC_ERR_SUP,"Mat type %s",((PetscObject)mat)->type_name);
1252 
1253   for (i=0; i<m; i++) {
1254     for (j=0; j<n; j++) {
1255       if (mat->erroriffailure && PetscIsInfOrNanScalar(v[i*n+j]))
1256 #if defined(PETSC_USE_COMPLEX)
1257         SETERRQ4(PETSC_COMM_SELF,PETSC_ERR_FP,"Inserting %g+ig at matrix entry (%D,%D)",(double)PetscRealPart(v[i*n+j]),(double)PetscImaginaryPart(v[i*n+j]),idxm[i],idxn[j]);
1258 #else
1259         SETERRQ3(PETSC_COMM_SELF,PETSC_ERR_FP,"Inserting %g at matrix entry (%D,%D)",(double)v[i*n+j],idxm[i],idxn[j]);
1260 #endif
1261     }
1262   }
1263 #endif
1264 
1265   if (mat->assembled) {
1266     mat->was_assembled = PETSC_TRUE;
1267     mat->assembled     = PETSC_FALSE;
1268   }
1269   ierr = PetscLogEventBegin(MAT_SetValues,mat,0,0,0);CHKERRQ(ierr);
1270   ierr = (*mat->ops->setvalues)(mat,m,idxm,n,idxn,v,addv);CHKERRQ(ierr);
1271   ierr = PetscLogEventEnd(MAT_SetValues,mat,0,0,0);CHKERRQ(ierr);
1272 #if defined(PETSC_HAVE_CUSP)
1273   if (mat->valid_GPU_matrix != PETSC_CUSP_UNALLOCATED) {
1274     mat->valid_GPU_matrix = PETSC_CUSP_CPU;
1275   }
1276 #elif defined(PETSC_HAVE_VIENNACL)
1277   if (mat->valid_GPU_matrix != PETSC_VIENNACL_UNALLOCATED) {
1278     mat->valid_GPU_matrix = PETSC_VIENNACL_CPU;
1279   }
1280 #elif defined(PETSC_HAVE_VECCUDA)
1281   if (mat->valid_GPU_matrix != PETSC_CUDA_UNALLOCATED) {
1282     mat->valid_GPU_matrix = PETSC_CUDA_CPU;
1283   }
1284 #endif
1285   PetscFunctionReturn(0);
1286 }
1287 
1288 
1289 /*@
1290    MatSetValuesRowLocal - Inserts a row (block row for BAIJ matrices) of nonzero
1291         values into a matrix
1292 
1293    Not Collective
1294 
1295    Input Parameters:
1296 +  mat - the matrix
1297 .  row - the (block) row to set
1298 -  v - a logically two-dimensional array of values
1299 
1300    Notes:
1301    By the values, v, are column-oriented (for the block version) and sorted
1302 
1303    All the nonzeros in the row must be provided
1304 
1305    The matrix must have previously had its column indices set
1306 
1307    The row must belong to this process
1308 
1309    Level: intermediate
1310 
1311    Concepts: matrices^putting entries in
1312 
1313 .seealso: MatSetOption(), MatAssemblyBegin(), MatAssemblyEnd(), MatSetValuesBlocked(), MatSetValuesLocal(),
1314           InsertMode, INSERT_VALUES, ADD_VALUES, MatSetValues(), MatSetValuesRow(), MatSetLocalToGlobalMapping()
1315 @*/
1316 PetscErrorCode MatSetValuesRowLocal(Mat mat,PetscInt row,const PetscScalar v[])
1317 {
1318   PetscErrorCode ierr;
1319   PetscInt       globalrow;
1320 
1321   PetscFunctionBegin;
1322   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
1323   PetscValidType(mat,1);
1324   PetscValidScalarPointer(v,2);
1325   ierr = ISLocalToGlobalMappingApply(mat->rmap->mapping,1,&row,&globalrow);CHKERRQ(ierr);
1326   ierr = MatSetValuesRow(mat,globalrow,v);CHKERRQ(ierr);
1327 #if defined(PETSC_HAVE_CUSP)
1328   if (mat->valid_GPU_matrix != PETSC_CUSP_UNALLOCATED) {
1329     mat->valid_GPU_matrix = PETSC_CUSP_CPU;
1330   }
1331 #elif defined(PETSC_HAVE_VIENNACL)
1332   if (mat->valid_GPU_matrix != PETSC_VIENNACL_UNALLOCATED) {
1333     mat->valid_GPU_matrix = PETSC_VIENNACL_CPU;
1334   }
1335 #elif defined(PETSC_HAVE_VECCUDA)
1336   if (mat->valid_GPU_matrix != PETSC_CUDA_UNALLOCATED) {
1337     mat->valid_GPU_matrix = PETSC_CUDA_CPU;
1338   }
1339 #endif
1340   PetscFunctionReturn(0);
1341 }
1342 
1343 /*@
1344    MatSetValuesRow - Inserts a row (block row for BAIJ matrices) of nonzero
1345         values into a matrix
1346 
1347    Not Collective
1348 
1349    Input Parameters:
1350 +  mat - the matrix
1351 .  row - the (block) row to set
1352 -  v - a logically two-dimensional (column major) array of values for  block matrices with blocksize larger than one, otherwise a one dimensional array of values
1353 
1354    Notes:
1355    The values, v, are column-oriented for the block version.
1356 
1357    All the nonzeros in the row must be provided
1358 
1359    THE MATRIX MUST HAVE PREVIOUSLY HAD ITS COLUMN INDICES SET. IT IS RARE THAT THIS ROUTINE IS USED, usually MatSetValues() is used.
1360 
1361    The row must belong to this process
1362 
1363    Level: advanced
1364 
1365    Concepts: matrices^putting entries in
1366 
1367 .seealso: MatSetOption(), MatAssemblyBegin(), MatAssemblyEnd(), MatSetValuesBlocked(), MatSetValuesLocal(),
1368           InsertMode, INSERT_VALUES, ADD_VALUES, MatSetValues()
1369 @*/
1370 PetscErrorCode MatSetValuesRow(Mat mat,PetscInt row,const PetscScalar v[])
1371 {
1372   PetscErrorCode ierr;
1373 
1374   PetscFunctionBeginHot;
1375   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
1376   PetscValidType(mat,1);
1377   MatCheckPreallocated(mat,1);
1378   PetscValidScalarPointer(v,2);
1379 #if defined(PETSC_USE_DEBUG)
1380   if (mat->insertmode == ADD_VALUES) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_WRONGSTATE,"Cannot mix add and insert values");
1381   if (mat->factortype) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
1382 #endif
1383   mat->insertmode = INSERT_VALUES;
1384 
1385   if (mat->assembled) {
1386     mat->was_assembled = PETSC_TRUE;
1387     mat->assembled     = PETSC_FALSE;
1388   }
1389   ierr = PetscLogEventBegin(MAT_SetValues,mat,0,0,0);CHKERRQ(ierr);
1390   if (!mat->ops->setvaluesrow) SETERRQ1(PETSC_COMM_SELF,PETSC_ERR_SUP,"Mat type %s",((PetscObject)mat)->type_name);
1391   ierr = (*mat->ops->setvaluesrow)(mat,row,v);CHKERRQ(ierr);
1392   ierr = PetscLogEventEnd(MAT_SetValues,mat,0,0,0);CHKERRQ(ierr);
1393 #if defined(PETSC_HAVE_CUSP)
1394   if (mat->valid_GPU_matrix != PETSC_CUSP_UNALLOCATED) {
1395     mat->valid_GPU_matrix = PETSC_CUSP_CPU;
1396   }
1397 #elif defined(PETSC_HAVE_VIENNACL)
1398   if (mat->valid_GPU_matrix != PETSC_VIENNACL_UNALLOCATED) {
1399     mat->valid_GPU_matrix = PETSC_VIENNACL_CPU;
1400   }
1401 #elif defined(PETSC_HAVE_VECCUDA)
1402   if (mat->valid_GPU_matrix != PETSC_CUDA_UNALLOCATED) {
1403     mat->valid_GPU_matrix = PETSC_CUDA_CPU;
1404   }
1405 #endif
1406   PetscFunctionReturn(0);
1407 }
1408 
1409 /*@
1410    MatSetValuesStencil - Inserts or adds a block of values into a matrix.
1411      Using structured grid indexing
1412 
1413    Not Collective
1414 
1415    Input Parameters:
1416 +  mat - the matrix
1417 .  m - number of rows being entered
1418 .  idxm - grid coordinates (and component number when dof > 1) for matrix rows being entered
1419 .  n - number of columns being entered
1420 .  idxn - grid coordinates (and component number when dof > 1) for matrix columns being entered
1421 .  v - a logically two-dimensional array of values
1422 -  addv - either ADD_VALUES or INSERT_VALUES, where
1423    ADD_VALUES adds values to any existing entries, and
1424    INSERT_VALUES replaces existing entries with new values
1425 
1426    Notes:
1427    By default the values, v, are row-oriented.  See MatSetOption() for other options.
1428 
1429    Calls to MatSetValuesStencil() with the INSERT_VALUES and ADD_VALUES
1430    options cannot be mixed without intervening calls to the assembly
1431    routines.
1432 
1433    The grid coordinates are across the entire grid, not just the local portion
1434 
1435    MatSetValuesStencil() uses 0-based row and column numbers in Fortran
1436    as well as in C.
1437 
1438    For setting/accessing vector values via array coordinates you can use the DMDAVecGetArray() routine
1439 
1440    In order to use this routine you must either obtain the matrix with DMCreateMatrix()
1441    or call MatSetLocalToGlobalMapping() and MatSetStencil() first.
1442 
1443    The columns and rows in the stencil passed in MUST be contained within the
1444    ghost region of the given process as set with DMDACreateXXX() or MatSetStencil(). For example,
1445    if you create a DMDA with an overlap of one grid level and on a particular process its first
1446    local nonghost x logical coordinate is 6 (so its first ghost x logical coordinate is 5) the
1447    first i index you can use in your column and row indices in MatSetStencil() is 5.
1448 
1449    In Fortran idxm and idxn should be declared as
1450 $     MatStencil idxm(4,m),idxn(4,n)
1451    and the values inserted using
1452 $    idxm(MatStencil_i,1) = i
1453 $    idxm(MatStencil_j,1) = j
1454 $    idxm(MatStencil_k,1) = k
1455 $    idxm(MatStencil_c,1) = c
1456    etc
1457 
1458    For periodic boundary conditions use negative indices for values to the left (below 0; that are to be
1459    obtained by wrapping values from right edge). For values to the right of the last entry using that index plus one
1460    etc to obtain values that obtained by wrapping the values from the left edge. This does not work for anything but the
1461    DM_BOUNDARY_PERIODIC boundary type.
1462 
1463    For indices that don't mean anything for your case (like the k index when working in 2d) or the c index when you have
1464    a single value per point) you can skip filling those indices.
1465 
1466    Inspired by the structured grid interface to the HYPRE package
1467    (http://www.llnl.gov/CASC/hypre)
1468 
1469    Efficiency Alert:
1470    The routine MatSetValuesBlockedStencil() may offer much better efficiency
1471    for users of block sparse formats (MATSEQBAIJ and MATMPIBAIJ).
1472 
1473    Level: beginner
1474 
1475    Concepts: matrices^putting entries in
1476 
1477 .seealso: MatSetOption(), MatAssemblyBegin(), MatAssemblyEnd(), MatSetValuesBlocked(), MatSetValuesLocal()
1478           MatSetValues(), MatSetValuesBlockedStencil(), MatSetStencil(), DMCreateMatrix(), DMDAVecGetArray(), MatStencil
1479 @*/
1480 PetscErrorCode MatSetValuesStencil(Mat mat,PetscInt m,const MatStencil idxm[],PetscInt n,const MatStencil idxn[],const PetscScalar v[],InsertMode addv)
1481 {
1482   PetscErrorCode ierr;
1483   PetscInt       buf[8192],*bufm=0,*bufn=0,*jdxm,*jdxn;
1484   PetscInt       j,i,dim = mat->stencil.dim,*dims = mat->stencil.dims+1,tmp;
1485   PetscInt       *starts = mat->stencil.starts,*dxm = (PetscInt*)idxm,*dxn = (PetscInt*)idxn,sdim = dim - (1 - (PetscInt)mat->stencil.noc);
1486 
1487   PetscFunctionBegin;
1488   if (!m || !n) PetscFunctionReturn(0); /* no values to insert */
1489   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
1490   PetscValidType(mat,1);
1491   PetscValidIntPointer(idxm,3);
1492   PetscValidIntPointer(idxn,5);
1493   PetscValidScalarPointer(v,6);
1494 
1495   if ((m+n) <= (PetscInt)(sizeof(buf)/sizeof(PetscInt))) {
1496     jdxm = buf; jdxn = buf+m;
1497   } else {
1498     ierr = PetscMalloc2(m,&bufm,n,&bufn);CHKERRQ(ierr);
1499     jdxm = bufm; jdxn = bufn;
1500   }
1501   for (i=0; i<m; i++) {
1502     for (j=0; j<3-sdim; j++) dxm++;
1503     tmp = *dxm++ - starts[0];
1504     for (j=0; j<dim-1; j++) {
1505       if ((*dxm++ - starts[j+1]) < 0 || tmp < 0) tmp = -1;
1506       else                                       tmp = tmp*dims[j] + *(dxm-1) - starts[j+1];
1507     }
1508     if (mat->stencil.noc) dxm++;
1509     jdxm[i] = tmp;
1510   }
1511   for (i=0; i<n; i++) {
1512     for (j=0; j<3-sdim; j++) dxn++;
1513     tmp = *dxn++ - starts[0];
1514     for (j=0; j<dim-1; j++) {
1515       if ((*dxn++ - starts[j+1]) < 0 || tmp < 0) tmp = -1;
1516       else                                       tmp = tmp*dims[j] + *(dxn-1) - starts[j+1];
1517     }
1518     if (mat->stencil.noc) dxn++;
1519     jdxn[i] = tmp;
1520   }
1521   ierr = MatSetValuesLocal(mat,m,jdxm,n,jdxn,v,addv);CHKERRQ(ierr);
1522   ierr = PetscFree2(bufm,bufn);CHKERRQ(ierr);
1523   PetscFunctionReturn(0);
1524 }
1525 
1526 /*@
1527    MatSetValuesBlockedStencil - Inserts or adds a block of values into a matrix.
1528      Using structured grid indexing
1529 
1530    Not Collective
1531 
1532    Input Parameters:
1533 +  mat - the matrix
1534 .  m - number of rows being entered
1535 .  idxm - grid coordinates for matrix rows being entered
1536 .  n - number of columns being entered
1537 .  idxn - grid coordinates for matrix columns being entered
1538 .  v - a logically two-dimensional array of values
1539 -  addv - either ADD_VALUES or INSERT_VALUES, where
1540    ADD_VALUES adds values to any existing entries, and
1541    INSERT_VALUES replaces existing entries with new values
1542 
1543    Notes:
1544    By default the values, v, are row-oriented and unsorted.
1545    See MatSetOption() for other options.
1546 
1547    Calls to MatSetValuesBlockedStencil() with the INSERT_VALUES and ADD_VALUES
1548    options cannot be mixed without intervening calls to the assembly
1549    routines.
1550 
1551    The grid coordinates are across the entire grid, not just the local portion
1552 
1553    MatSetValuesBlockedStencil() uses 0-based row and column numbers in Fortran
1554    as well as in C.
1555 
1556    For setting/accessing vector values via array coordinates you can use the DMDAVecGetArray() routine
1557 
1558    In order to use this routine you must either obtain the matrix with DMCreateMatrix()
1559    or call MatSetBlockSize(), MatSetLocalToGlobalMapping() and MatSetStencil() first.
1560 
1561    The columns and rows in the stencil passed in MUST be contained within the
1562    ghost region of the given process as set with DMDACreateXXX() or MatSetStencil(). For example,
1563    if you create a DMDA with an overlap of one grid level and on a particular process its first
1564    local nonghost x logical coordinate is 6 (so its first ghost x logical coordinate is 5) the
1565    first i index you can use in your column and row indices in MatSetStencil() is 5.
1566 
1567    In Fortran idxm and idxn should be declared as
1568 $     MatStencil idxm(4,m),idxn(4,n)
1569    and the values inserted using
1570 $    idxm(MatStencil_i,1) = i
1571 $    idxm(MatStencil_j,1) = j
1572 $    idxm(MatStencil_k,1) = k
1573    etc
1574 
1575    Negative indices may be passed in idxm and idxn, these rows and columns are
1576    simply ignored. This allows easily inserting element stiffness matrices
1577    with homogeneous Dirchlet boundary conditions that you don't want represented
1578    in the matrix.
1579 
1580    Inspired by the structured grid interface to the HYPRE package
1581    (http://www.llnl.gov/CASC/hypre)
1582 
1583    Level: beginner
1584 
1585    Concepts: matrices^putting entries in
1586 
1587 .seealso: MatSetOption(), MatAssemblyBegin(), MatAssemblyEnd(), MatSetValuesBlocked(), MatSetValuesLocal()
1588           MatSetValues(), MatSetValuesStencil(), MatSetStencil(), DMCreateMatrix(), DMDAVecGetArray(), MatStencil,
1589           MatSetBlockSize(), MatSetLocalToGlobalMapping()
1590 @*/
1591 PetscErrorCode MatSetValuesBlockedStencil(Mat mat,PetscInt m,const MatStencil idxm[],PetscInt n,const MatStencil idxn[],const PetscScalar v[],InsertMode addv)
1592 {
1593   PetscErrorCode ierr;
1594   PetscInt       buf[8192],*bufm=0,*bufn=0,*jdxm,*jdxn;
1595   PetscInt       j,i,dim = mat->stencil.dim,*dims = mat->stencil.dims+1,tmp;
1596   PetscInt       *starts = mat->stencil.starts,*dxm = (PetscInt*)idxm,*dxn = (PetscInt*)idxn,sdim = dim - (1 - (PetscInt)mat->stencil.noc);
1597 
1598   PetscFunctionBegin;
1599   if (!m || !n) PetscFunctionReturn(0); /* no values to insert */
1600   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
1601   PetscValidType(mat,1);
1602   PetscValidIntPointer(idxm,3);
1603   PetscValidIntPointer(idxn,5);
1604   PetscValidScalarPointer(v,6);
1605 
1606   if ((m+n) <= (PetscInt)(sizeof(buf)/sizeof(PetscInt))) {
1607     jdxm = buf; jdxn = buf+m;
1608   } else {
1609     ierr = PetscMalloc2(m,&bufm,n,&bufn);CHKERRQ(ierr);
1610     jdxm = bufm; jdxn = bufn;
1611   }
1612   for (i=0; i<m; i++) {
1613     for (j=0; j<3-sdim; j++) dxm++;
1614     tmp = *dxm++ - starts[0];
1615     for (j=0; j<sdim-1; j++) {
1616       if ((*dxm++ - starts[j+1]) < 0 || tmp < 0) tmp = -1;
1617       else                                       tmp = tmp*dims[j] + *(dxm-1) - starts[j+1];
1618     }
1619     dxm++;
1620     jdxm[i] = tmp;
1621   }
1622   for (i=0; i<n; i++) {
1623     for (j=0; j<3-sdim; j++) dxn++;
1624     tmp = *dxn++ - starts[0];
1625     for (j=0; j<sdim-1; j++) {
1626       if ((*dxn++ - starts[j+1]) < 0 || tmp < 0) tmp = -1;
1627       else                                       tmp = tmp*dims[j] + *(dxn-1) - starts[j+1];
1628     }
1629     dxn++;
1630     jdxn[i] = tmp;
1631   }
1632   ierr = MatSetValuesBlockedLocal(mat,m,jdxm,n,jdxn,v,addv);CHKERRQ(ierr);
1633   ierr = PetscFree2(bufm,bufn);CHKERRQ(ierr);
1634 #if defined(PETSC_HAVE_CUSP)
1635   if (mat->valid_GPU_matrix != PETSC_CUSP_UNALLOCATED) {
1636     mat->valid_GPU_matrix = PETSC_CUSP_CPU;
1637   }
1638 #elif defined(PETSC_HAVE_VIENNACL)
1639   if (mat->valid_GPU_matrix != PETSC_VIENNACL_UNALLOCATED) {
1640     mat->valid_GPU_matrix = PETSC_VIENNACL_CPU;
1641   }
1642 #elif defined(PETSC_HAVE_VECCUDA)
1643   if (mat->valid_GPU_matrix != PETSC_CUDA_UNALLOCATED) {
1644     mat->valid_GPU_matrix = PETSC_CUDA_CPU;
1645   }
1646 #endif
1647   PetscFunctionReturn(0);
1648 }
1649 
1650 /*@
1651    MatSetStencil - Sets the grid information for setting values into a matrix via
1652         MatSetValuesStencil()
1653 
1654    Not Collective
1655 
1656    Input Parameters:
1657 +  mat - the matrix
1658 .  dim - dimension of the grid 1, 2, or 3
1659 .  dims - number of grid points in x, y, and z direction, including ghost points on your processor
1660 .  starts - starting point of ghost nodes on your processor in x, y, and z direction
1661 -  dof - number of degrees of freedom per node
1662 
1663 
1664    Inspired by the structured grid interface to the HYPRE package
1665    (www.llnl.gov/CASC/hyper)
1666 
1667    For matrices generated with DMCreateMatrix() this routine is automatically called and so not needed by the
1668    user.
1669 
1670    Level: beginner
1671 
1672    Concepts: matrices^putting entries in
1673 
1674 .seealso: MatSetOption(), MatAssemblyBegin(), MatAssemblyEnd(), MatSetValuesBlocked(), MatSetValuesLocal()
1675           MatSetValues(), MatSetValuesBlockedStencil(), MatSetValuesStencil()
1676 @*/
1677 PetscErrorCode MatSetStencil(Mat mat,PetscInt dim,const PetscInt dims[],const PetscInt starts[],PetscInt dof)
1678 {
1679   PetscInt i;
1680 
1681   PetscFunctionBegin;
1682   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
1683   PetscValidIntPointer(dims,3);
1684   PetscValidIntPointer(starts,4);
1685 
1686   mat->stencil.dim = dim + (dof > 1);
1687   for (i=0; i<dim; i++) {
1688     mat->stencil.dims[i]   = dims[dim-i-1];      /* copy the values in backwards */
1689     mat->stencil.starts[i] = starts[dim-i-1];
1690   }
1691   mat->stencil.dims[dim]   = dof;
1692   mat->stencil.starts[dim] = 0;
1693   mat->stencil.noc         = (PetscBool)(dof == 1);
1694   PetscFunctionReturn(0);
1695 }
1696 
1697 /*@C
1698    MatSetValuesBlocked - Inserts or adds a block of values into a matrix.
1699 
1700    Not Collective
1701 
1702    Input Parameters:
1703 +  mat - the matrix
1704 .  v - a logically two-dimensional array of values
1705 .  m, idxm - the number of block rows and their global block indices
1706 .  n, idxn - the number of block columns and their global block indices
1707 -  addv - either ADD_VALUES or INSERT_VALUES, where
1708    ADD_VALUES adds values to any existing entries, and
1709    INSERT_VALUES replaces existing entries with new values
1710 
1711    Notes:
1712    If you create the matrix yourself (that is not with a call to DMCreateMatrix()) then you MUST call
1713    MatXXXXSetPreallocation() or MatSetUp() before using this routine.
1714 
1715    The m and n count the NUMBER of blocks in the row direction and column direction,
1716    NOT the total number of rows/columns; for example, if the block size is 2 and
1717    you are passing in values for rows 2,3,4,5  then m would be 2 (not 4).
1718    The values in idxm would be 1 2; that is the first index for each block divided by
1719    the block size.
1720 
1721    Note that you must call MatSetBlockSize() when constructing this matrix (before
1722    preallocating it).
1723 
1724    By default the values, v, are row-oriented, so the layout of
1725    v is the same as for MatSetValues(). See MatSetOption() for other options.
1726 
1727    Calls to MatSetValuesBlocked() with the INSERT_VALUES and ADD_VALUES
1728    options cannot be mixed without intervening calls to the assembly
1729    routines.
1730 
1731    MatSetValuesBlocked() uses 0-based row and column numbers in Fortran
1732    as well as in C.
1733 
1734    Negative indices may be passed in idxm and idxn, these rows and columns are
1735    simply ignored. This allows easily inserting element stiffness matrices
1736    with homogeneous Dirchlet boundary conditions that you don't want represented
1737    in the matrix.
1738 
1739    Each time an entry is set within a sparse matrix via MatSetValues(),
1740    internal searching must be done to determine where to place the
1741    data in the matrix storage space.  By instead inserting blocks of
1742    entries via MatSetValuesBlocked(), the overhead of matrix assembly is
1743    reduced.
1744 
1745    Example:
1746 $   Suppose m=n=2 and block size(bs) = 2 The array is
1747 $
1748 $   1  2  | 3  4
1749 $   5  6  | 7  8
1750 $   - - - | - - -
1751 $   9  10 | 11 12
1752 $   13 14 | 15 16
1753 $
1754 $   v[] should be passed in like
1755 $   v[] = [1,2,3,4,5,6,7,8,9,10,11,12,13,14,15,16]
1756 $
1757 $  If you are not using row oriented storage of v (that is you called MatSetOption(mat,MAT_ROW_ORIENTED,PETSC_FALSE)) then
1758 $   v[] = [1,5,9,13,2,6,10,14,3,7,11,15,4,8,12,16]
1759 
1760    Level: intermediate
1761 
1762    Concepts: matrices^putting entries in blocked
1763 
1764 .seealso: MatSetBlockSize(), MatSetOption(), MatAssemblyBegin(), MatAssemblyEnd(), MatSetValues(), MatSetValuesBlockedLocal()
1765 @*/
1766 PetscErrorCode MatSetValuesBlocked(Mat mat,PetscInt m,const PetscInt idxm[],PetscInt n,const PetscInt idxn[],const PetscScalar v[],InsertMode addv)
1767 {
1768   PetscErrorCode ierr;
1769 
1770   PetscFunctionBeginHot;
1771   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
1772   PetscValidType(mat,1);
1773   if (!m || !n) PetscFunctionReturn(0); /* no values to insert */
1774   PetscValidIntPointer(idxm,3);
1775   PetscValidIntPointer(idxn,5);
1776   PetscValidScalarPointer(v,6);
1777   MatCheckPreallocated(mat,1);
1778   if (mat->insertmode == NOT_SET_VALUES) {
1779     mat->insertmode = addv;
1780   }
1781 #if defined(PETSC_USE_DEBUG)
1782   else if (mat->insertmode != addv) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_WRONGSTATE,"Cannot mix add values and insert values");
1783   if (mat->factortype) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
1784   if (!mat->ops->setvaluesblocked && !mat->ops->setvalues) SETERRQ1(PETSC_COMM_SELF,PETSC_ERR_SUP,"Mat type %s",((PetscObject)mat)->type_name);
1785 #endif
1786 
1787   if (mat->assembled) {
1788     mat->was_assembled = PETSC_TRUE;
1789     mat->assembled     = PETSC_FALSE;
1790   }
1791   ierr = PetscLogEventBegin(MAT_SetValues,mat,0,0,0);CHKERRQ(ierr);
1792   if (mat->ops->setvaluesblocked) {
1793     ierr = (*mat->ops->setvaluesblocked)(mat,m,idxm,n,idxn,v,addv);CHKERRQ(ierr);
1794   } else {
1795     PetscInt buf[8192],*bufr=0,*bufc=0,*iidxm,*iidxn;
1796     PetscInt i,j,bs,cbs;
1797     ierr = MatGetBlockSizes(mat,&bs,&cbs);CHKERRQ(ierr);
1798     if (m*bs+n*cbs <= (PetscInt)(sizeof(buf)/sizeof(PetscInt))) {
1799       iidxm = buf; iidxn = buf + m*bs;
1800     } else {
1801       ierr  = PetscMalloc2(m*bs,&bufr,n*cbs,&bufc);CHKERRQ(ierr);
1802       iidxm = bufr; iidxn = bufc;
1803     }
1804     for (i=0; i<m; i++) {
1805       for (j=0; j<bs; j++) {
1806         iidxm[i*bs+j] = bs*idxm[i] + j;
1807       }
1808     }
1809     for (i=0; i<n; i++) {
1810       for (j=0; j<cbs; j++) {
1811         iidxn[i*cbs+j] = cbs*idxn[i] + j;
1812       }
1813     }
1814     ierr = MatSetValues(mat,m*bs,iidxm,n*cbs,iidxn,v,addv);CHKERRQ(ierr);
1815     ierr = PetscFree2(bufr,bufc);CHKERRQ(ierr);
1816   }
1817   ierr = PetscLogEventEnd(MAT_SetValues,mat,0,0,0);CHKERRQ(ierr);
1818 #if defined(PETSC_HAVE_CUSP)
1819   if (mat->valid_GPU_matrix != PETSC_CUSP_UNALLOCATED) {
1820     mat->valid_GPU_matrix = PETSC_CUSP_CPU;
1821   }
1822 #elif defined(PETSC_HAVE_VIENNACL)
1823   if (mat->valid_GPU_matrix != PETSC_VIENNACL_UNALLOCATED) {
1824     mat->valid_GPU_matrix = PETSC_VIENNACL_CPU;
1825   }
1826 #elif defined(PETSC_HAVE_VECCUDA)
1827   if (mat->valid_GPU_matrix != PETSC_CUDA_UNALLOCATED) {
1828     mat->valid_GPU_matrix = PETSC_CUDA_CPU;
1829   }
1830 #endif
1831   PetscFunctionReturn(0);
1832 }
1833 
1834 /*@
1835    MatGetValues - Gets a block of values from a matrix.
1836 
1837    Not Collective; currently only returns a local block
1838 
1839    Input Parameters:
1840 +  mat - the matrix
1841 .  v - a logically two-dimensional array for storing the values
1842 .  m, idxm - the number of rows and their global indices
1843 -  n, idxn - the number of columns and their global indices
1844 
1845    Notes:
1846    The user must allocate space (m*n PetscScalars) for the values, v.
1847    The values, v, are then returned in a row-oriented format,
1848    analogous to that used by default in MatSetValues().
1849 
1850    MatGetValues() uses 0-based row and column numbers in
1851    Fortran as well as in C.
1852 
1853    MatGetValues() requires that the matrix has been assembled
1854    with MatAssemblyBegin()/MatAssemblyEnd().  Thus, calls to
1855    MatSetValues() and MatGetValues() CANNOT be made in succession
1856    without intermediate matrix assembly.
1857 
1858    Negative row or column indices will be ignored and those locations in v[] will be
1859    left unchanged.
1860 
1861    Level: advanced
1862 
1863    Concepts: matrices^accessing values
1864 
1865 .seealso: MatGetRow(), MatGetSubMatrices(), MatSetValues()
1866 @*/
1867 PetscErrorCode MatGetValues(Mat mat,PetscInt m,const PetscInt idxm[],PetscInt n,const PetscInt idxn[],PetscScalar v[])
1868 {
1869   PetscErrorCode ierr;
1870 
1871   PetscFunctionBegin;
1872   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
1873   PetscValidType(mat,1);
1874   if (!m || !n) PetscFunctionReturn(0);
1875   PetscValidIntPointer(idxm,3);
1876   PetscValidIntPointer(idxn,5);
1877   PetscValidScalarPointer(v,6);
1878   if (!mat->assembled) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
1879   if (mat->factortype) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
1880   if (!mat->ops->getvalues) SETERRQ1(PETSC_COMM_SELF,PETSC_ERR_SUP,"Mat type %s",((PetscObject)mat)->type_name);
1881   MatCheckPreallocated(mat,1);
1882 
1883   ierr = PetscLogEventBegin(MAT_GetValues,mat,0,0,0);CHKERRQ(ierr);
1884   ierr = (*mat->ops->getvalues)(mat,m,idxm,n,idxn,v);CHKERRQ(ierr);
1885   ierr = PetscLogEventEnd(MAT_GetValues,mat,0,0,0);CHKERRQ(ierr);
1886   PetscFunctionReturn(0);
1887 }
1888 
1889 /*@
1890   MatSetValuesBatch - Adds (ADD_VALUES) many blocks of values into a matrix at once. The blocks must all be square and
1891   the same size. Currently, this can only be called once and creates the given matrix.
1892 
1893   Not Collective
1894 
1895   Input Parameters:
1896 + mat - the matrix
1897 . nb - the number of blocks
1898 . bs - the number of rows (and columns) in each block
1899 . rows - a concatenation of the rows for each block
1900 - v - a concatenation of logically two-dimensional arrays of values
1901 
1902   Notes:
1903   In the future, we will extend this routine to handle rectangular blocks, and to allow multiple calls for a given matrix.
1904 
1905   Level: advanced
1906 
1907   Concepts: matrices^putting entries in
1908 
1909 .seealso: MatSetOption(), MatAssemblyBegin(), MatAssemblyEnd(), MatSetValuesBlocked(), MatSetValuesLocal(),
1910           InsertMode, INSERT_VALUES, ADD_VALUES, MatSetValues()
1911 @*/
1912 PetscErrorCode MatSetValuesBatch(Mat mat, PetscInt nb, PetscInt bs, PetscInt rows[], const PetscScalar v[])
1913 {
1914   PetscErrorCode ierr;
1915 
1916   PetscFunctionBegin;
1917   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
1918   PetscValidType(mat,1);
1919   PetscValidScalarPointer(rows,4);
1920   PetscValidScalarPointer(v,5);
1921 #if defined(PETSC_USE_DEBUG)
1922   if (mat->factortype) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
1923 #endif
1924 
1925   ierr = PetscLogEventBegin(MAT_SetValuesBatch,mat,0,0,0);CHKERRQ(ierr);
1926   if (mat->ops->setvaluesbatch) {
1927     ierr = (*mat->ops->setvaluesbatch)(mat,nb,bs,rows,v);CHKERRQ(ierr);
1928   } else {
1929     PetscInt b;
1930     for (b = 0; b < nb; ++b) {
1931       ierr = MatSetValues(mat, bs, &rows[b*bs], bs, &rows[b*bs], &v[b*bs*bs], ADD_VALUES);CHKERRQ(ierr);
1932     }
1933   }
1934   ierr = PetscLogEventEnd(MAT_SetValuesBatch,mat,0,0,0);CHKERRQ(ierr);
1935   PetscFunctionReturn(0);
1936 }
1937 
1938 /*@
1939    MatSetLocalToGlobalMapping - Sets a local-to-global numbering for use by
1940    the routine MatSetValuesLocal() to allow users to insert matrix entries
1941    using a local (per-processor) numbering.
1942 
1943    Not Collective
1944 
1945    Input Parameters:
1946 +  x - the matrix
1947 .  rmapping - row mapping created with ISLocalToGlobalMappingCreate()   or ISLocalToGlobalMappingCreateIS()
1948 - cmapping - column mapping
1949 
1950    Level: intermediate
1951 
1952    Concepts: matrices^local to global mapping
1953    Concepts: local to global mapping^for matrices
1954 
1955 .seealso:  MatAssemblyBegin(), MatAssemblyEnd(), MatSetValues(), MatSetValuesLocal()
1956 @*/
1957 PetscErrorCode MatSetLocalToGlobalMapping(Mat x,ISLocalToGlobalMapping rmapping,ISLocalToGlobalMapping cmapping)
1958 {
1959   PetscErrorCode ierr;
1960 
1961   PetscFunctionBegin;
1962   PetscValidHeaderSpecific(x,MAT_CLASSID,1);
1963   PetscValidType(x,1);
1964   PetscValidHeaderSpecific(rmapping,IS_LTOGM_CLASSID,2);
1965   PetscValidHeaderSpecific(cmapping,IS_LTOGM_CLASSID,3);
1966 
1967   if (x->ops->setlocaltoglobalmapping) {
1968     ierr = (*x->ops->setlocaltoglobalmapping)(x,rmapping,cmapping);CHKERRQ(ierr);
1969   } else {
1970     ierr = PetscLayoutSetISLocalToGlobalMapping(x->rmap,rmapping);CHKERRQ(ierr);
1971     ierr = PetscLayoutSetISLocalToGlobalMapping(x->cmap,cmapping);CHKERRQ(ierr);
1972   }
1973   PetscFunctionReturn(0);
1974 }
1975 
1976 
1977 /*@
1978    MatGetLocalToGlobalMapping - Gets the local-to-global numbering set by MatSetLocalToGlobalMapping()
1979 
1980    Not Collective
1981 
1982    Input Parameters:
1983 .  A - the matrix
1984 
1985    Output Parameters:
1986 + rmapping - row mapping
1987 - cmapping - column mapping
1988 
1989    Level: advanced
1990 
1991    Concepts: matrices^local to global mapping
1992    Concepts: local to global mapping^for matrices
1993 
1994 .seealso:  MatSetValuesLocal()
1995 @*/
1996 PetscErrorCode MatGetLocalToGlobalMapping(Mat A,ISLocalToGlobalMapping *rmapping,ISLocalToGlobalMapping *cmapping)
1997 {
1998   PetscFunctionBegin;
1999   PetscValidHeaderSpecific(A,MAT_CLASSID,1);
2000   PetscValidType(A,1);
2001   if (rmapping) PetscValidPointer(rmapping,2);
2002   if (cmapping) PetscValidPointer(cmapping,3);
2003   if (rmapping) *rmapping = A->rmap->mapping;
2004   if (cmapping) *cmapping = A->cmap->mapping;
2005   PetscFunctionReturn(0);
2006 }
2007 
2008 /*@
2009    MatGetLayouts - Gets the PetscLayout objects for rows and columns
2010 
2011    Not Collective
2012 
2013    Input Parameters:
2014 .  A - the matrix
2015 
2016    Output Parameters:
2017 + rmap - row layout
2018 - cmap - column layout
2019 
2020    Level: advanced
2021 
2022 .seealso:  MatCreateVecs(), MatGetLocalToGlobalMapping()
2023 @*/
2024 PetscErrorCode MatGetLayouts(Mat A,PetscLayout *rmap,PetscLayout *cmap)
2025 {
2026   PetscFunctionBegin;
2027   PetscValidHeaderSpecific(A,MAT_CLASSID,1);
2028   PetscValidType(A,1);
2029   if (rmap) PetscValidPointer(rmap,2);
2030   if (cmap) PetscValidPointer(cmap,3);
2031   if (rmap) *rmap = A->rmap;
2032   if (cmap) *cmap = A->cmap;
2033   PetscFunctionReturn(0);
2034 }
2035 
2036 /*@C
2037    MatSetValuesLocal - Inserts or adds values into certain locations of a matrix,
2038    using a local ordering of the nodes.
2039 
2040    Not Collective
2041 
2042    Input Parameters:
2043 +  mat - the matrix
2044 .  nrow, irow - number of rows and their local indices
2045 .  ncol, icol - number of columns and their local indices
2046 .  y -  a logically two-dimensional array of values
2047 -  addv - either INSERT_VALUES or ADD_VALUES, where
2048    ADD_VALUES adds values to any existing entries, and
2049    INSERT_VALUES replaces existing entries with new values
2050 
2051    Notes:
2052    If you create the matrix yourself (that is not with a call to DMCreateMatrix()) then you MUST call MatXXXXSetPreallocation() or
2053       MatSetUp() before using this routine
2054 
2055    If you create the matrix yourself (that is not with a call to DMCreateMatrix()) then you MUST call MatSetLocalToGlobalMapping() before using this routine
2056 
2057    Calls to MatSetValuesLocal() with the INSERT_VALUES and ADD_VALUES
2058    options cannot be mixed without intervening calls to the assembly
2059    routines.
2060 
2061    These values may be cached, so MatAssemblyBegin() and MatAssemblyEnd()
2062    MUST be called after all calls to MatSetValuesLocal() have been completed.
2063 
2064    Level: intermediate
2065 
2066    Concepts: matrices^putting entries in with local numbering
2067 
2068    Developer Notes: This is labeled with C so does not automatically generate Fortran stubs and interfaces
2069                     because it requires multiple Fortran interfaces depending on which arguments are scalar or arrays.
2070 
2071 .seealso:  MatAssemblyBegin(), MatAssemblyEnd(), MatSetValues(), MatSetLocalToGlobalMapping(),
2072            MatSetValueLocal()
2073 @*/
2074 PetscErrorCode MatSetValuesLocal(Mat mat,PetscInt nrow,const PetscInt irow[],PetscInt ncol,const PetscInt icol[],const PetscScalar y[],InsertMode addv)
2075 {
2076   PetscErrorCode ierr;
2077 
2078   PetscFunctionBeginHot;
2079   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
2080   PetscValidType(mat,1);
2081   MatCheckPreallocated(mat,1);
2082   if (!nrow || !ncol) PetscFunctionReturn(0); /* no values to insert */
2083   PetscValidIntPointer(irow,3);
2084   PetscValidIntPointer(icol,5);
2085   PetscValidScalarPointer(y,6);
2086   if (mat->insertmode == NOT_SET_VALUES) {
2087     mat->insertmode = addv;
2088   }
2089 #if defined(PETSC_USE_DEBUG)
2090   else if (mat->insertmode != addv) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_WRONGSTATE,"Cannot mix add values and insert values");
2091   if (mat->factortype) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
2092   if (!mat->ops->setvalueslocal && !mat->ops->setvalues) SETERRQ1(PETSC_COMM_SELF,PETSC_ERR_SUP,"Mat type %s",((PetscObject)mat)->type_name);
2093 #endif
2094 
2095   if (mat->assembled) {
2096     mat->was_assembled = PETSC_TRUE;
2097     mat->assembled     = PETSC_FALSE;
2098   }
2099   ierr = PetscLogEventBegin(MAT_SetValues,mat,0,0,0);CHKERRQ(ierr);
2100   if (mat->ops->setvalueslocal) {
2101     ierr = (*mat->ops->setvalueslocal)(mat,nrow,irow,ncol,icol,y,addv);CHKERRQ(ierr);
2102   } else {
2103     PetscInt buf[8192],*bufr=0,*bufc=0,*irowm,*icolm;
2104     if ((nrow+ncol) <= (PetscInt)(sizeof(buf)/sizeof(PetscInt))) {
2105       irowm = buf; icolm = buf+nrow;
2106     } else {
2107       ierr  = PetscMalloc2(nrow,&bufr,ncol,&bufc);CHKERRQ(ierr);
2108       irowm = bufr; icolm = bufc;
2109     }
2110     ierr = ISLocalToGlobalMappingApply(mat->rmap->mapping,nrow,irow,irowm);CHKERRQ(ierr);
2111     ierr = ISLocalToGlobalMappingApply(mat->cmap->mapping,ncol,icol,icolm);CHKERRQ(ierr);
2112     ierr = MatSetValues(mat,nrow,irowm,ncol,icolm,y,addv);CHKERRQ(ierr);
2113     ierr = PetscFree2(bufr,bufc);CHKERRQ(ierr);
2114   }
2115   ierr = PetscLogEventEnd(MAT_SetValues,mat,0,0,0);CHKERRQ(ierr);
2116 #if defined(PETSC_HAVE_CUSP)
2117   if (mat->valid_GPU_matrix != PETSC_CUSP_UNALLOCATED) {
2118     mat->valid_GPU_matrix = PETSC_CUSP_CPU;
2119   }
2120 #elif defined(PETSC_HAVE_VIENNACL)
2121   if (mat->valid_GPU_matrix != PETSC_VIENNACL_UNALLOCATED) {
2122     mat->valid_GPU_matrix = PETSC_VIENNACL_CPU;
2123   }
2124 #elif defined(PETSC_HAVE_VECCUDA)
2125   if (mat->valid_GPU_matrix != PETSC_CUDA_UNALLOCATED) {
2126     mat->valid_GPU_matrix = PETSC_CUDA_CPU;
2127   }
2128 #endif
2129   PetscFunctionReturn(0);
2130 }
2131 
2132 /*@C
2133    MatSetValuesBlockedLocal - Inserts or adds values into certain locations of a matrix,
2134    using a local ordering of the nodes a block at a time.
2135 
2136    Not Collective
2137 
2138    Input Parameters:
2139 +  x - the matrix
2140 .  nrow, irow - number of rows and their local indices
2141 .  ncol, icol - number of columns and their local indices
2142 .  y -  a logically two-dimensional array of values
2143 -  addv - either INSERT_VALUES or ADD_VALUES, where
2144    ADD_VALUES adds values to any existing entries, and
2145    INSERT_VALUES replaces existing entries with new values
2146 
2147    Notes:
2148    If you create the matrix yourself (that is not with a call to DMCreateMatrix()) then you MUST call MatXXXXSetPreallocation() or
2149       MatSetUp() before using this routine
2150 
2151    If you create the matrix yourself (that is not with a call to DMCreateMatrix()) then you MUST call MatSetBlockSize() and MatSetLocalToGlobalMapping()
2152       before using this routineBefore calling MatSetValuesLocal(), the user must first set the
2153 
2154    Calls to MatSetValuesBlockedLocal() with the INSERT_VALUES and ADD_VALUES
2155    options cannot be mixed without intervening calls to the assembly
2156    routines.
2157 
2158    These values may be cached, so MatAssemblyBegin() and MatAssemblyEnd()
2159    MUST be called after all calls to MatSetValuesBlockedLocal() have been completed.
2160 
2161    Level: intermediate
2162 
2163    Developer Notes: This is labeled with C so does not automatically generate Fortran stubs and interfaces
2164                     because it requires multiple Fortran interfaces depending on which arguments are scalar or arrays.
2165 
2166    Concepts: matrices^putting blocked values in with local numbering
2167 
2168 .seealso:  MatSetBlockSize(), MatSetLocalToGlobalMapping(), MatAssemblyBegin(), MatAssemblyEnd(),
2169            MatSetValuesLocal(),  MatSetValuesBlocked()
2170 @*/
2171 PetscErrorCode MatSetValuesBlockedLocal(Mat mat,PetscInt nrow,const PetscInt irow[],PetscInt ncol,const PetscInt icol[],const PetscScalar y[],InsertMode addv)
2172 {
2173   PetscErrorCode ierr;
2174 
2175   PetscFunctionBeginHot;
2176   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
2177   PetscValidType(mat,1);
2178   MatCheckPreallocated(mat,1);
2179   if (!nrow || !ncol) PetscFunctionReturn(0); /* no values to insert */
2180   PetscValidIntPointer(irow,3);
2181   PetscValidIntPointer(icol,5);
2182   PetscValidScalarPointer(y,6);
2183   if (mat->insertmode == NOT_SET_VALUES) {
2184     mat->insertmode = addv;
2185   }
2186 #if defined(PETSC_USE_DEBUG)
2187   else if (mat->insertmode != addv) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_WRONGSTATE,"Cannot mix add values and insert values");
2188   if (mat->factortype) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
2189   if (!mat->ops->setvaluesblockedlocal && !mat->ops->setvaluesblocked && !mat->ops->setvalueslocal && !mat->ops->setvalues) SETERRQ1(PETSC_COMM_SELF,PETSC_ERR_SUP,"Mat type %s",((PetscObject)mat)->type_name);
2190 #endif
2191 
2192   if (mat->assembled) {
2193     mat->was_assembled = PETSC_TRUE;
2194     mat->assembled     = PETSC_FALSE;
2195   }
2196   ierr = PetscLogEventBegin(MAT_SetValues,mat,0,0,0);CHKERRQ(ierr);
2197   if (mat->ops->setvaluesblockedlocal) {
2198     ierr = (*mat->ops->setvaluesblockedlocal)(mat,nrow,irow,ncol,icol,y,addv);CHKERRQ(ierr);
2199   } else {
2200     PetscInt buf[8192],*bufr=0,*bufc=0,*irowm,*icolm;
2201     if ((nrow+ncol) <= (PetscInt)(sizeof(buf)/sizeof(PetscInt))) {
2202       irowm = buf; icolm = buf + nrow;
2203     } else {
2204       ierr  = PetscMalloc2(nrow,&bufr,ncol,&bufc);CHKERRQ(ierr);
2205       irowm = bufr; icolm = bufc;
2206     }
2207     ierr = ISLocalToGlobalMappingApplyBlock(mat->rmap->mapping,nrow,irow,irowm);CHKERRQ(ierr);
2208     ierr = ISLocalToGlobalMappingApplyBlock(mat->cmap->mapping,ncol,icol,icolm);CHKERRQ(ierr);
2209     ierr = MatSetValuesBlocked(mat,nrow,irowm,ncol,icolm,y,addv);CHKERRQ(ierr);
2210     ierr = PetscFree2(bufr,bufc);CHKERRQ(ierr);
2211   }
2212   ierr = PetscLogEventEnd(MAT_SetValues,mat,0,0,0);CHKERRQ(ierr);
2213 #if defined(PETSC_HAVE_CUSP)
2214   if (mat->valid_GPU_matrix != PETSC_CUSP_UNALLOCATED) {
2215     mat->valid_GPU_matrix = PETSC_CUSP_CPU;
2216   }
2217 #elif defined(PETSC_HAVE_VIENNACL)
2218   if (mat->valid_GPU_matrix != PETSC_VIENNACL_UNALLOCATED) {
2219     mat->valid_GPU_matrix = PETSC_VIENNACL_CPU;
2220   }
2221 #elif defined(PETSC_HAVE_VECCUDA)
2222   if (mat->valid_GPU_matrix != PETSC_CUDA_UNALLOCATED) {
2223     mat->valid_GPU_matrix = PETSC_CUDA_CPU;
2224   }
2225 #endif
2226   PetscFunctionReturn(0);
2227 }
2228 
2229 /*@
2230    MatMultDiagonalBlock - Computes the matrix-vector product, y = Dx. Where D is defined by the inode or block structure of the diagonal
2231 
2232    Collective on Mat and Vec
2233 
2234    Input Parameters:
2235 +  mat - the matrix
2236 -  x   - the vector to be multiplied
2237 
2238    Output Parameters:
2239 .  y - the result
2240 
2241    Notes:
2242    The vectors x and y cannot be the same.  I.e., one cannot
2243    call MatMult(A,y,y).
2244 
2245    Level: developer
2246 
2247    Concepts: matrix-vector product
2248 
2249 .seealso: MatMultTranspose(), MatMultAdd(), MatMultTransposeAdd()
2250 @*/
2251 PetscErrorCode MatMultDiagonalBlock(Mat mat,Vec x,Vec y)
2252 {
2253   PetscErrorCode ierr;
2254 
2255   PetscFunctionBegin;
2256   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
2257   PetscValidType(mat,1);
2258   PetscValidHeaderSpecific(x,VEC_CLASSID,2);
2259   PetscValidHeaderSpecific(y,VEC_CLASSID,3);
2260 
2261   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
2262   if (mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
2263   if (x == y) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"x and y must be different vectors");
2264   MatCheckPreallocated(mat,1);
2265 
2266   if (!mat->ops->multdiagonalblock) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_SUP,"This matrix type does not have a multiply defined");
2267   ierr = (*mat->ops->multdiagonalblock)(mat,x,y);CHKERRQ(ierr);
2268   ierr = PetscObjectStateIncrease((PetscObject)y);CHKERRQ(ierr);
2269   PetscFunctionReturn(0);
2270 }
2271 
2272 /* --------------------------------------------------------*/
2273 /*@
2274    MatMult - Computes the matrix-vector product, y = Ax.
2275 
2276    Neighbor-wise Collective on Mat and Vec
2277 
2278    Input Parameters:
2279 +  mat - the matrix
2280 -  x   - the vector to be multiplied
2281 
2282    Output Parameters:
2283 .  y - the result
2284 
2285    Notes:
2286    The vectors x and y cannot be the same.  I.e., one cannot
2287    call MatMult(A,y,y).
2288 
2289    Level: beginner
2290 
2291    Concepts: matrix-vector product
2292 
2293 .seealso: MatMultTranspose(), MatMultAdd(), MatMultTransposeAdd()
2294 @*/
2295 PetscErrorCode MatMult(Mat mat,Vec x,Vec y)
2296 {
2297   PetscErrorCode ierr;
2298 
2299   PetscFunctionBegin;
2300   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
2301   PetscValidType(mat,1);
2302   PetscValidHeaderSpecific(x,VEC_CLASSID,2);
2303   PetscValidHeaderSpecific(y,VEC_CLASSID,3);
2304   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
2305   if (mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
2306   if (x == y) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"x and y must be different vectors");
2307 #if !defined(PETSC_HAVE_CONSTRAINTS)
2308   if (mat->cmap->N != x->map->N) SETERRQ2(PETSC_COMM_SELF,PETSC_ERR_ARG_SIZ,"Mat mat,Vec x: global dim %D %D",mat->cmap->N,x->map->N);
2309   if (mat->rmap->N != y->map->N) SETERRQ2(PETSC_COMM_SELF,PETSC_ERR_ARG_SIZ,"Mat mat,Vec y: global dim %D %D",mat->rmap->N,y->map->N);
2310   if (mat->rmap->n != y->map->n) SETERRQ2(PETSC_COMM_SELF,PETSC_ERR_ARG_SIZ,"Mat mat,Vec y: local dim %D %D",mat->rmap->n,y->map->n);
2311 #endif
2312   VecLocked(y,3);
2313   if (mat->erroriffailure) {ierr = VecValidValues(x,2,PETSC_TRUE);CHKERRQ(ierr);}
2314   MatCheckPreallocated(mat,1);
2315 
2316   ierr = VecLockPush(x);CHKERRQ(ierr);
2317   if (!mat->ops->mult) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_SUP,"This matrix type does not have a multiply defined");
2318   ierr = PetscLogEventBegin(MAT_Mult,mat,x,y,0);CHKERRQ(ierr);
2319   ierr = (*mat->ops->mult)(mat,x,y);CHKERRQ(ierr);
2320   ierr = PetscLogEventEnd(MAT_Mult,mat,x,y,0);CHKERRQ(ierr);
2321   if (mat->erroriffailure) {ierr = VecValidValues(y,3,PETSC_FALSE);CHKERRQ(ierr);}
2322   ierr = VecLockPop(x);CHKERRQ(ierr);
2323   PetscFunctionReturn(0);
2324 }
2325 
2326 /*@
2327    MatMultTranspose - Computes matrix transpose times a vector.
2328 
2329    Neighbor-wise Collective on Mat and Vec
2330 
2331    Input Parameters:
2332 +  mat - the matrix
2333 -  x   - the vector to be multilplied
2334 
2335    Output Parameters:
2336 .  y - the result
2337 
2338    Notes:
2339    The vectors x and y cannot be the same.  I.e., one cannot
2340    call MatMultTranspose(A,y,y).
2341 
2342    For complex numbers this does NOT compute the Hermitian (complex conjugate) transpose multiple,
2343    use MatMultHermitianTranspose()
2344 
2345    Level: beginner
2346 
2347    Concepts: matrix vector product^transpose
2348 
2349 .seealso: MatMult(), MatMultAdd(), MatMultTransposeAdd(), MatMultHermitianTranspose(), MatTranspose()
2350 @*/
2351 PetscErrorCode MatMultTranspose(Mat mat,Vec x,Vec y)
2352 {
2353   PetscErrorCode ierr;
2354 
2355   PetscFunctionBegin;
2356   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
2357   PetscValidType(mat,1);
2358   PetscValidHeaderSpecific(x,VEC_CLASSID,2);
2359   PetscValidHeaderSpecific(y,VEC_CLASSID,3);
2360 
2361   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
2362   if (mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
2363   if (x == y) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"x and y must be different vectors");
2364 #if !defined(PETSC_HAVE_CONSTRAINTS)
2365   if (mat->rmap->N != x->map->N) SETERRQ2(PETSC_COMM_SELF,PETSC_ERR_ARG_SIZ,"Mat mat,Vec x: global dim %D %D",mat->rmap->N,x->map->N);
2366   if (mat->cmap->N != y->map->N) SETERRQ2(PETSC_COMM_SELF,PETSC_ERR_ARG_SIZ,"Mat mat,Vec y: global dim %D %D",mat->cmap->N,y->map->N);
2367 #endif
2368   if (mat->erroriffailure) {ierr = VecValidValues(x,2,PETSC_TRUE);CHKERRQ(ierr);}
2369   MatCheckPreallocated(mat,1);
2370 
2371   if (!mat->ops->multtranspose) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_SUP,"This matrix type does not have a multiply tranpose defined");
2372   ierr = PetscLogEventBegin(MAT_MultTranspose,mat,x,y,0);CHKERRQ(ierr);
2373   ierr = VecLockPush(x);CHKERRQ(ierr);
2374   ierr = (*mat->ops->multtranspose)(mat,x,y);CHKERRQ(ierr);
2375   ierr = VecLockPop(x);CHKERRQ(ierr);
2376   ierr = PetscLogEventEnd(MAT_MultTranspose,mat,x,y,0);CHKERRQ(ierr);
2377   ierr = PetscObjectStateIncrease((PetscObject)y);CHKERRQ(ierr);
2378   if (mat->erroriffailure) {ierr = VecValidValues(y,3,PETSC_FALSE);CHKERRQ(ierr);}
2379   PetscFunctionReturn(0);
2380 }
2381 
2382 /*@
2383    MatMultHermitianTranspose - Computes matrix Hermitian transpose times a vector.
2384 
2385    Neighbor-wise Collective on Mat and Vec
2386 
2387    Input Parameters:
2388 +  mat - the matrix
2389 -  x   - the vector to be multilplied
2390 
2391    Output Parameters:
2392 .  y - the result
2393 
2394    Notes:
2395    The vectors x and y cannot be the same.  I.e., one cannot
2396    call MatMultHermitianTranspose(A,y,y).
2397 
2398    Also called the conjugate transpose, complex conjugate transpose, or adjoint.
2399 
2400    For real numbers MatMultTranspose() and MatMultHermitianTranspose() are identical.
2401 
2402    Level: beginner
2403 
2404    Concepts: matrix vector product^transpose
2405 
2406 .seealso: MatMult(), MatMultAdd(), MatMultHermitianTransposeAdd(), MatMultTranspose()
2407 @*/
2408 PetscErrorCode MatMultHermitianTranspose(Mat mat,Vec x,Vec y)
2409 {
2410   PetscErrorCode ierr;
2411   Vec            w;
2412 
2413   PetscFunctionBegin;
2414   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
2415   PetscValidType(mat,1);
2416   PetscValidHeaderSpecific(x,VEC_CLASSID,2);
2417   PetscValidHeaderSpecific(y,VEC_CLASSID,3);
2418 
2419   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
2420   if (mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
2421   if (x == y) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"x and y must be different vectors");
2422 #if !defined(PETSC_HAVE_CONSTRAINTS)
2423   if (mat->rmap->N != x->map->N) SETERRQ2(PETSC_COMM_SELF,PETSC_ERR_ARG_SIZ,"Mat mat,Vec x: global dim %D %D",mat->rmap->N,x->map->N);
2424   if (mat->cmap->N != y->map->N) SETERRQ2(PETSC_COMM_SELF,PETSC_ERR_ARG_SIZ,"Mat mat,Vec y: global dim %D %D",mat->cmap->N,y->map->N);
2425 #endif
2426   MatCheckPreallocated(mat,1);
2427 
2428   ierr = PetscLogEventBegin(MAT_MultHermitianTranspose,mat,x,y,0);CHKERRQ(ierr);
2429   if (mat->ops->multhermitiantranspose) {
2430     ierr = VecLockPush(x);CHKERRQ(ierr);
2431     ierr = (*mat->ops->multhermitiantranspose)(mat,x,y);CHKERRQ(ierr);
2432     ierr = VecLockPop(x);CHKERRQ(ierr);
2433   } else {
2434     ierr = VecDuplicate(x,&w);CHKERRQ(ierr);
2435     ierr = VecCopy(x,w);CHKERRQ(ierr);
2436     ierr = VecConjugate(w);CHKERRQ(ierr);
2437     ierr = MatMultTranspose(mat,w,y);CHKERRQ(ierr);
2438     ierr = VecDestroy(&w);CHKERRQ(ierr);
2439     ierr = VecConjugate(y);CHKERRQ(ierr);
2440   }
2441   ierr = PetscLogEventEnd(MAT_MultHermitianTranspose,mat,x,y,0);CHKERRQ(ierr);
2442   ierr = PetscObjectStateIncrease((PetscObject)y);CHKERRQ(ierr);
2443   PetscFunctionReturn(0);
2444 }
2445 
2446 /*@
2447     MatMultAdd -  Computes v3 = v2 + A * v1.
2448 
2449     Neighbor-wise Collective on Mat and Vec
2450 
2451     Input Parameters:
2452 +   mat - the matrix
2453 -   v1, v2 - the vectors
2454 
2455     Output Parameters:
2456 .   v3 - the result
2457 
2458     Notes:
2459     The vectors v1 and v3 cannot be the same.  I.e., one cannot
2460     call MatMultAdd(A,v1,v2,v1).
2461 
2462     Level: beginner
2463 
2464     Concepts: matrix vector product^addition
2465 
2466 .seealso: MatMultTranspose(), MatMult(), MatMultTransposeAdd()
2467 @*/
2468 PetscErrorCode MatMultAdd(Mat mat,Vec v1,Vec v2,Vec v3)
2469 {
2470   PetscErrorCode ierr;
2471 
2472   PetscFunctionBegin;
2473   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
2474   PetscValidType(mat,1);
2475   PetscValidHeaderSpecific(v1,VEC_CLASSID,2);
2476   PetscValidHeaderSpecific(v2,VEC_CLASSID,3);
2477   PetscValidHeaderSpecific(v3,VEC_CLASSID,4);
2478 
2479   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
2480   if (mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
2481   if (mat->cmap->N != v1->map->N) SETERRQ2(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_SIZ,"Mat mat,Vec v1: global dim %D %D",mat->cmap->N,v1->map->N);
2482   /* if (mat->rmap->N != v2->map->N) SETERRQ2(PETSC_COMM_SELF,PETSC_ERR_ARG_SIZ,"Mat mat,Vec v2: global dim %D %D",mat->rmap->N,v2->map->N);
2483      if (mat->rmap->N != v3->map->N) SETERRQ2(PETSC_COMM_SELF,PETSC_ERR_ARG_SIZ,"Mat mat,Vec v3: global dim %D %D",mat->rmap->N,v3->map->N); */
2484   if (mat->rmap->n != v3->map->n) SETERRQ2(PETSC_COMM_SELF,PETSC_ERR_ARG_SIZ,"Mat mat,Vec v3: local dim %D %D",mat->rmap->n,v3->map->n);
2485   if (mat->rmap->n != v2->map->n) SETERRQ2(PETSC_COMM_SELF,PETSC_ERR_ARG_SIZ,"Mat mat,Vec v2: local dim %D %D",mat->rmap->n,v2->map->n);
2486   if (v1 == v3) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_IDN,"v1 and v3 must be different vectors");
2487   MatCheckPreallocated(mat,1);
2488 
2489   if (!mat->ops->multadd) SETERRQ1(PetscObjectComm((PetscObject)mat),PETSC_ERR_SUP,"No MatMultAdd() for matrix type '%s'",((PetscObject)mat)->type_name);
2490   ierr = PetscLogEventBegin(MAT_MultAdd,mat,v1,v2,v3);CHKERRQ(ierr);
2491   ierr = VecLockPush(v1);CHKERRQ(ierr);
2492   ierr = (*mat->ops->multadd)(mat,v1,v2,v3);CHKERRQ(ierr);
2493   ierr = VecLockPop(v1);CHKERRQ(ierr);
2494   ierr = PetscLogEventEnd(MAT_MultAdd,mat,v1,v2,v3);CHKERRQ(ierr);
2495   ierr = PetscObjectStateIncrease((PetscObject)v3);CHKERRQ(ierr);
2496   PetscFunctionReturn(0);
2497 }
2498 
2499 /*@
2500    MatMultTransposeAdd - Computes v3 = v2 + A' * v1.
2501 
2502    Neighbor-wise Collective on Mat and Vec
2503 
2504    Input Parameters:
2505 +  mat - the matrix
2506 -  v1, v2 - the vectors
2507 
2508    Output Parameters:
2509 .  v3 - the result
2510 
2511    Notes:
2512    The vectors v1 and v3 cannot be the same.  I.e., one cannot
2513    call MatMultTransposeAdd(A,v1,v2,v1).
2514 
2515    Level: beginner
2516 
2517    Concepts: matrix vector product^transpose and addition
2518 
2519 .seealso: MatMultTranspose(), MatMultAdd(), MatMult()
2520 @*/
2521 PetscErrorCode MatMultTransposeAdd(Mat mat,Vec v1,Vec v2,Vec v3)
2522 {
2523   PetscErrorCode ierr;
2524 
2525   PetscFunctionBegin;
2526   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
2527   PetscValidType(mat,1);
2528   PetscValidHeaderSpecific(v1,VEC_CLASSID,2);
2529   PetscValidHeaderSpecific(v2,VEC_CLASSID,3);
2530   PetscValidHeaderSpecific(v3,VEC_CLASSID,4);
2531 
2532   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
2533   if (mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
2534   if (!mat->ops->multtransposeadd) SETERRQ1(PetscObjectComm((PetscObject)mat),PETSC_ERR_SUP,"Mat type %s",((PetscObject)mat)->type_name);
2535   if (v1 == v3) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_IDN,"v1 and v3 must be different vectors");
2536   if (mat->rmap->N != v1->map->N) SETERRQ2(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_SIZ,"Mat mat,Vec v1: global dim %D %D",mat->rmap->N,v1->map->N);
2537   if (mat->cmap->N != v2->map->N) SETERRQ2(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_SIZ,"Mat mat,Vec v2: global dim %D %D",mat->cmap->N,v2->map->N);
2538   if (mat->cmap->N != v3->map->N) SETERRQ2(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_SIZ,"Mat mat,Vec v3: global dim %D %D",mat->cmap->N,v3->map->N);
2539   MatCheckPreallocated(mat,1);
2540 
2541   ierr = PetscLogEventBegin(MAT_MultTransposeAdd,mat,v1,v2,v3);CHKERRQ(ierr);
2542   ierr = VecLockPush(v1);CHKERRQ(ierr);
2543   ierr = (*mat->ops->multtransposeadd)(mat,v1,v2,v3);CHKERRQ(ierr);
2544   ierr = VecLockPop(v1);CHKERRQ(ierr);
2545   ierr = PetscLogEventEnd(MAT_MultTransposeAdd,mat,v1,v2,v3);CHKERRQ(ierr);
2546   ierr = PetscObjectStateIncrease((PetscObject)v3);CHKERRQ(ierr);
2547   PetscFunctionReturn(0);
2548 }
2549 
2550 /*@
2551    MatMultHermitianTransposeAdd - Computes v3 = v2 + A^H * v1.
2552 
2553    Neighbor-wise Collective on Mat and Vec
2554 
2555    Input Parameters:
2556 +  mat - the matrix
2557 -  v1, v2 - the vectors
2558 
2559    Output Parameters:
2560 .  v3 - the result
2561 
2562    Notes:
2563    The vectors v1 and v3 cannot be the same.  I.e., one cannot
2564    call MatMultHermitianTransposeAdd(A,v1,v2,v1).
2565 
2566    Level: beginner
2567 
2568    Concepts: matrix vector product^transpose and addition
2569 
2570 .seealso: MatMultHermitianTranspose(), MatMultTranspose(), MatMultAdd(), MatMult()
2571 @*/
2572 PetscErrorCode MatMultHermitianTransposeAdd(Mat mat,Vec v1,Vec v2,Vec v3)
2573 {
2574   PetscErrorCode ierr;
2575 
2576   PetscFunctionBegin;
2577   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
2578   PetscValidType(mat,1);
2579   PetscValidHeaderSpecific(v1,VEC_CLASSID,2);
2580   PetscValidHeaderSpecific(v2,VEC_CLASSID,3);
2581   PetscValidHeaderSpecific(v3,VEC_CLASSID,4);
2582 
2583   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
2584   if (mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
2585   if (v1 == v3) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_IDN,"v1 and v3 must be different vectors");
2586   if (mat->rmap->N != v1->map->N) SETERRQ2(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_SIZ,"Mat mat,Vec v1: global dim %D %D",mat->rmap->N,v1->map->N);
2587   if (mat->cmap->N != v2->map->N) SETERRQ2(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_SIZ,"Mat mat,Vec v2: global dim %D %D",mat->cmap->N,v2->map->N);
2588   if (mat->cmap->N != v3->map->N) SETERRQ2(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_SIZ,"Mat mat,Vec v3: global dim %D %D",mat->cmap->N,v3->map->N);
2589   MatCheckPreallocated(mat,1);
2590 
2591   ierr = PetscLogEventBegin(MAT_MultHermitianTransposeAdd,mat,v1,v2,v3);CHKERRQ(ierr);
2592   ierr = VecLockPush(v1);CHKERRQ(ierr);
2593   if (mat->ops->multhermitiantransposeadd) {
2594     ierr = (*mat->ops->multhermitiantransposeadd)(mat,v1,v2,v3);CHKERRQ(ierr);
2595    } else {
2596     Vec w,z;
2597     ierr = VecDuplicate(v1,&w);CHKERRQ(ierr);
2598     ierr = VecCopy(v1,w);CHKERRQ(ierr);
2599     ierr = VecConjugate(w);CHKERRQ(ierr);
2600     ierr = VecDuplicate(v3,&z);CHKERRQ(ierr);
2601     ierr = MatMultTranspose(mat,w,z);CHKERRQ(ierr);
2602     ierr = VecDestroy(&w);CHKERRQ(ierr);
2603     ierr = VecConjugate(z);CHKERRQ(ierr);
2604     ierr = VecWAXPY(v3,1.0,v2,z);CHKERRQ(ierr);
2605     ierr = VecDestroy(&z);CHKERRQ(ierr);
2606   }
2607   ierr = VecLockPop(v1);CHKERRQ(ierr);
2608   ierr = PetscLogEventEnd(MAT_MultHermitianTransposeAdd,mat,v1,v2,v3);CHKERRQ(ierr);
2609   ierr = PetscObjectStateIncrease((PetscObject)v3);CHKERRQ(ierr);
2610   PetscFunctionReturn(0);
2611 }
2612 
2613 /*@
2614    MatMultConstrained - The inner multiplication routine for a
2615    constrained matrix P^T A P.
2616 
2617    Neighbor-wise Collective on Mat and Vec
2618 
2619    Input Parameters:
2620 +  mat - the matrix
2621 -  x   - the vector to be multilplied
2622 
2623    Output Parameters:
2624 .  y - the result
2625 
2626    Notes:
2627    The vectors x and y cannot be the same.  I.e., one cannot
2628    call MatMult(A,y,y).
2629 
2630    Level: beginner
2631 
2632 .keywords: matrix, multiply, matrix-vector product, constraint
2633 .seealso: MatMult(), MatMultTranspose(), MatMultAdd(), MatMultTransposeAdd()
2634 @*/
2635 PetscErrorCode MatMultConstrained(Mat mat,Vec x,Vec y)
2636 {
2637   PetscErrorCode ierr;
2638 
2639   PetscFunctionBegin;
2640   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
2641   PetscValidHeaderSpecific(x,VEC_CLASSID,2);
2642   PetscValidHeaderSpecific(y,VEC_CLASSID,3);
2643   if (!mat->assembled) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
2644   if (mat->factortype) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
2645   if (x == y) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_WRONGSTATE,"x and y must be different vectors");
2646   if (mat->cmap->N != x->map->N) SETERRQ2(PETSC_COMM_SELF,PETSC_ERR_ARG_SIZ,"Mat mat,Vec x: global dim %D %D",mat->cmap->N,x->map->N);
2647   if (mat->rmap->N != y->map->N) SETERRQ2(PETSC_COMM_SELF,PETSC_ERR_ARG_SIZ,"Mat mat,Vec y: global dim %D %D",mat->rmap->N,y->map->N);
2648   if (mat->rmap->n != y->map->n) SETERRQ2(PETSC_COMM_SELF,PETSC_ERR_ARG_SIZ,"Mat mat,Vec y: local dim %D %D",mat->rmap->n,y->map->n);
2649 
2650   ierr = PetscLogEventBegin(MAT_MultConstrained,mat,x,y,0);CHKERRQ(ierr);
2651   ierr = VecLockPush(x);CHKERRQ(ierr);
2652   ierr = (*mat->ops->multconstrained)(mat,x,y);CHKERRQ(ierr);
2653   ierr = VecLockPop(x);CHKERRQ(ierr);
2654   ierr = PetscLogEventEnd(MAT_MultConstrained,mat,x,y,0);CHKERRQ(ierr);
2655   ierr = PetscObjectStateIncrease((PetscObject)y);CHKERRQ(ierr);
2656   PetscFunctionReturn(0);
2657 }
2658 
2659 /*@
2660    MatMultTransposeConstrained - The inner multiplication routine for a
2661    constrained matrix P^T A^T P.
2662 
2663    Neighbor-wise Collective on Mat and Vec
2664 
2665    Input Parameters:
2666 +  mat - the matrix
2667 -  x   - the vector to be multilplied
2668 
2669    Output Parameters:
2670 .  y - the result
2671 
2672    Notes:
2673    The vectors x and y cannot be the same.  I.e., one cannot
2674    call MatMult(A,y,y).
2675 
2676    Level: beginner
2677 
2678 .keywords: matrix, multiply, matrix-vector product, constraint
2679 .seealso: MatMult(), MatMultTranspose(), MatMultAdd(), MatMultTransposeAdd()
2680 @*/
2681 PetscErrorCode MatMultTransposeConstrained(Mat mat,Vec x,Vec y)
2682 {
2683   PetscErrorCode ierr;
2684 
2685   PetscFunctionBegin;
2686   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
2687   PetscValidHeaderSpecific(x,VEC_CLASSID,2);
2688   PetscValidHeaderSpecific(y,VEC_CLASSID,3);
2689   if (!mat->assembled) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
2690   if (mat->factortype) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
2691   if (x == y) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_WRONGSTATE,"x and y must be different vectors");
2692   if (mat->rmap->N != x->map->N) SETERRQ2(PETSC_COMM_SELF,PETSC_ERR_ARG_SIZ,"Mat mat,Vec x: global dim %D %D",mat->cmap->N,x->map->N);
2693   if (mat->cmap->N != y->map->N) SETERRQ2(PETSC_COMM_SELF,PETSC_ERR_ARG_SIZ,"Mat mat,Vec y: global dim %D %D",mat->rmap->N,y->map->N);
2694 
2695   ierr = PetscLogEventBegin(MAT_MultConstrained,mat,x,y,0);CHKERRQ(ierr);
2696   ierr = (*mat->ops->multtransposeconstrained)(mat,x,y);CHKERRQ(ierr);
2697   ierr = PetscLogEventEnd(MAT_MultConstrained,mat,x,y,0);CHKERRQ(ierr);
2698   ierr = PetscObjectStateIncrease((PetscObject)y);CHKERRQ(ierr);
2699   PetscFunctionReturn(0);
2700 }
2701 
2702 /*@C
2703    MatGetFactorType - gets the type of factorization it is
2704 
2705    Note Collective
2706    as the flag
2707 
2708    Input Parameters:
2709 .  mat - the matrix
2710 
2711    Output Parameters:
2712 .  t - the type, one of MAT_FACTOR_NONE, MAT_FACTOR_LU, MAT_FACTOR_CHOLESKY, MAT_FACTOR_ILU, MAT_FACTOR_ICC,MAT_FACTOR_ILUDT
2713 
2714     Level: intermediate
2715 
2716 .seealso:    MatFactorType, MatGetFactor()
2717 @*/
2718 PetscErrorCode MatGetFactorType(Mat mat,MatFactorType *t)
2719 {
2720   PetscFunctionBegin;
2721   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
2722   PetscValidType(mat,1);
2723   *t = mat->factortype;
2724   PetscFunctionReturn(0);
2725 }
2726 
2727 /* ------------------------------------------------------------*/
2728 /*@C
2729    MatGetInfo - Returns information about matrix storage (number of
2730    nonzeros, memory, etc.).
2731 
2732    Collective on Mat if MAT_GLOBAL_MAX or MAT_GLOBAL_SUM is used as the flag
2733 
2734    Input Parameters:
2735 .  mat - the matrix
2736 
2737    Output Parameters:
2738 +  flag - flag indicating the type of parameters to be returned
2739    (MAT_LOCAL - local matrix, MAT_GLOBAL_MAX - maximum over all processors,
2740    MAT_GLOBAL_SUM - sum over all processors)
2741 -  info - matrix information context
2742 
2743    Notes:
2744    The MatInfo context contains a variety of matrix data, including
2745    number of nonzeros allocated and used, number of mallocs during
2746    matrix assembly, etc.  Additional information for factored matrices
2747    is provided (such as the fill ratio, number of mallocs during
2748    factorization, etc.).  Much of this info is printed to PETSC_STDOUT
2749    when using the runtime options
2750 $       -info -mat_view ::ascii_info
2751 
2752    Example for C/C++ Users:
2753    See the file ${PETSC_DIR}/include/petscmat.h for a complete list of
2754    data within the MatInfo context.  For example,
2755 .vb
2756       MatInfo info;
2757       Mat     A;
2758       double  mal, nz_a, nz_u;
2759 
2760       MatGetInfo(A,MAT_LOCAL,&info);
2761       mal  = info.mallocs;
2762       nz_a = info.nz_allocated;
2763 .ve
2764 
2765    Example for Fortran Users:
2766    Fortran users should declare info as a double precision
2767    array of dimension MAT_INFO_SIZE, and then extract the parameters
2768    of interest.  See the file ${PETSC_DIR}/include/petsc/finclude/petscmat.h
2769    a complete list of parameter names.
2770 .vb
2771       double  precision info(MAT_INFO_SIZE)
2772       double  precision mal, nz_a
2773       Mat     A
2774       integer ierr
2775 
2776       call MatGetInfo(A,MAT_LOCAL,info,ierr)
2777       mal = info(MAT_INFO_MALLOCS)
2778       nz_a = info(MAT_INFO_NZ_ALLOCATED)
2779 .ve
2780 
2781     Level: intermediate
2782 
2783     Concepts: matrices^getting information on
2784 
2785     Developer Note: fortran interface is not autogenerated as the f90
2786     interface defintion cannot be generated correctly [due to MatInfo]
2787 
2788 .seealso: MatStashGetInfo()
2789 
2790 @*/
2791 PetscErrorCode MatGetInfo(Mat mat,MatInfoType flag,MatInfo *info)
2792 {
2793   PetscErrorCode ierr;
2794 
2795   PetscFunctionBegin;
2796   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
2797   PetscValidType(mat,1);
2798   PetscValidPointer(info,3);
2799   if (!mat->ops->getinfo) SETERRQ1(PETSC_COMM_SELF,PETSC_ERR_SUP,"Mat type %s",((PetscObject)mat)->type_name);
2800   MatCheckPreallocated(mat,1);
2801   ierr = (*mat->ops->getinfo)(mat,flag,info);CHKERRQ(ierr);
2802   PetscFunctionReturn(0);
2803 }
2804 
2805 /*
2806    This is used by external packages where it is not easy to get the info from the actual
2807    matrix factorization.
2808 */
2809 PetscErrorCode MatGetInfo_External(Mat A,MatInfoType flag,MatInfo *info)
2810 {
2811   PetscErrorCode ierr;
2812 
2813   PetscFunctionBegin;
2814   ierr = PetscMemzero(info,sizeof(MatInfo));CHKERRQ(ierr);
2815   PetscFunctionReturn(0);
2816 }
2817 
2818 /* ----------------------------------------------------------*/
2819 
2820 /*@C
2821    MatLUFactor - Performs in-place LU factorization of matrix.
2822 
2823    Collective on Mat
2824 
2825    Input Parameters:
2826 +  mat - the matrix
2827 .  row - row permutation
2828 .  col - column permutation
2829 -  info - options for factorization, includes
2830 $          fill - expected fill as ratio of original fill.
2831 $          dtcol - pivot tolerance (0 no pivot, 1 full column pivoting)
2832 $                   Run with the option -info to determine an optimal value to use
2833 
2834    Notes:
2835    Most users should employ the simplified KSP interface for linear solvers
2836    instead of working directly with matrix algebra routines such as this.
2837    See, e.g., KSPCreate().
2838 
2839    This changes the state of the matrix to a factored matrix; it cannot be used
2840    for example with MatSetValues() unless one first calls MatSetUnfactored().
2841 
2842    Level: developer
2843 
2844    Concepts: matrices^LU factorization
2845 
2846 .seealso: MatLUFactorSymbolic(), MatLUFactorNumeric(), MatCholeskyFactor(),
2847           MatGetOrdering(), MatSetUnfactored(), MatFactorInfo, MatGetFactor()
2848 
2849     Developer Note: fortran interface is not autogenerated as the f90
2850     interface defintion cannot be generated correctly [due to MatFactorInfo]
2851 
2852 @*/
2853 PetscErrorCode MatLUFactor(Mat mat,IS row,IS col,const MatFactorInfo *info)
2854 {
2855   PetscErrorCode ierr;
2856   MatFactorInfo  tinfo;
2857 
2858   PetscFunctionBegin;
2859   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
2860   if (row) PetscValidHeaderSpecific(row,IS_CLASSID,2);
2861   if (col) PetscValidHeaderSpecific(col,IS_CLASSID,3);
2862   if (info) PetscValidPointer(info,4);
2863   PetscValidType(mat,1);
2864   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
2865   if (mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
2866   if (!mat->ops->lufactor) SETERRQ1(PetscObjectComm((PetscObject)mat),PETSC_ERR_SUP,"Mat type %s",((PetscObject)mat)->type_name);
2867   MatCheckPreallocated(mat,1);
2868   if (!info) {
2869     ierr = MatFactorInfoInitialize(&tinfo);CHKERRQ(ierr);
2870     info = &tinfo;
2871   }
2872 
2873   ierr = PetscLogEventBegin(MAT_LUFactor,mat,row,col,0);CHKERRQ(ierr);
2874   ierr = (*mat->ops->lufactor)(mat,row,col,info);CHKERRQ(ierr);
2875   ierr = PetscLogEventEnd(MAT_LUFactor,mat,row,col,0);CHKERRQ(ierr);
2876   ierr = PetscObjectStateIncrease((PetscObject)mat);CHKERRQ(ierr);
2877   PetscFunctionReturn(0);
2878 }
2879 
2880 /*@C
2881    MatILUFactor - Performs in-place ILU factorization of matrix.
2882 
2883    Collective on Mat
2884 
2885    Input Parameters:
2886 +  mat - the matrix
2887 .  row - row permutation
2888 .  col - column permutation
2889 -  info - structure containing
2890 $      levels - number of levels of fill.
2891 $      expected fill - as ratio of original fill.
2892 $      1 or 0 - indicating force fill on diagonal (improves robustness for matrices
2893                 missing diagonal entries)
2894 
2895    Notes:
2896    Probably really in-place only when level of fill is zero, otherwise allocates
2897    new space to store factored matrix and deletes previous memory.
2898 
2899    Most users should employ the simplified KSP interface for linear solvers
2900    instead of working directly with matrix algebra routines such as this.
2901    See, e.g., KSPCreate().
2902 
2903    Level: developer
2904 
2905    Concepts: matrices^ILU factorization
2906 
2907 .seealso: MatILUFactorSymbolic(), MatLUFactorNumeric(), MatCholeskyFactor(), MatFactorInfo
2908 
2909     Developer Note: fortran interface is not autogenerated as the f90
2910     interface defintion cannot be generated correctly [due to MatFactorInfo]
2911 
2912 @*/
2913 PetscErrorCode MatILUFactor(Mat mat,IS row,IS col,const MatFactorInfo *info)
2914 {
2915   PetscErrorCode ierr;
2916 
2917   PetscFunctionBegin;
2918   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
2919   if (row) PetscValidHeaderSpecific(row,IS_CLASSID,2);
2920   if (col) PetscValidHeaderSpecific(col,IS_CLASSID,3);
2921   PetscValidPointer(info,4);
2922   PetscValidType(mat,1);
2923   if (mat->rmap->N != mat->cmap->N) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONG,"matrix must be square");
2924   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
2925   if (mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
2926   if (!mat->ops->ilufactor) SETERRQ1(PetscObjectComm((PetscObject)mat),PETSC_ERR_SUP,"Mat type %s",((PetscObject)mat)->type_name);
2927   MatCheckPreallocated(mat,1);
2928 
2929   ierr = PetscLogEventBegin(MAT_ILUFactor,mat,row,col,0);CHKERRQ(ierr);
2930   ierr = (*mat->ops->ilufactor)(mat,row,col,info);CHKERRQ(ierr);
2931   ierr = PetscLogEventEnd(MAT_ILUFactor,mat,row,col,0);CHKERRQ(ierr);
2932   ierr = PetscObjectStateIncrease((PetscObject)mat);CHKERRQ(ierr);
2933   PetscFunctionReturn(0);
2934 }
2935 
2936 /*@C
2937    MatLUFactorSymbolic - Performs symbolic LU factorization of matrix.
2938    Call this routine before calling MatLUFactorNumeric().
2939 
2940    Collective on Mat
2941 
2942    Input Parameters:
2943 +  fact - the factor matrix obtained with MatGetFactor()
2944 .  mat - the matrix
2945 .  row, col - row and column permutations
2946 -  info - options for factorization, includes
2947 $          fill - expected fill as ratio of original fill.
2948 $          dtcol - pivot tolerance (0 no pivot, 1 full column pivoting)
2949 $                   Run with the option -info to determine an optimal value to use
2950 
2951 
2952    Notes: See Users-Manual: ch_mat for additional information about choosing the fill factor for better efficiency.
2953 
2954    Most users should employ the simplified KSP interface for linear solvers
2955    instead of working directly with matrix algebra routines such as this.
2956    See, e.g., KSPCreate().
2957 
2958    Level: developer
2959 
2960    Concepts: matrices^LU symbolic factorization
2961 
2962 .seealso: MatLUFactor(), MatLUFactorNumeric(), MatCholeskyFactor(), MatFactorInfo, MatFactorInfoInitialize()
2963 
2964     Developer Note: fortran interface is not autogenerated as the f90
2965     interface defintion cannot be generated correctly [due to MatFactorInfo]
2966 
2967 @*/
2968 PetscErrorCode MatLUFactorSymbolic(Mat fact,Mat mat,IS row,IS col,const MatFactorInfo *info)
2969 {
2970   PetscErrorCode ierr;
2971 
2972   PetscFunctionBegin;
2973   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
2974   if (row) PetscValidHeaderSpecific(row,IS_CLASSID,2);
2975   if (col) PetscValidHeaderSpecific(col,IS_CLASSID,3);
2976   if (info) PetscValidPointer(info,4);
2977   PetscValidType(mat,1);
2978   PetscValidPointer(fact,5);
2979   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
2980   if (mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
2981   if (!(fact)->ops->lufactorsymbolic) {
2982     const MatSolverPackage spackage;
2983     ierr = MatFactorGetSolverPackage(fact,&spackage);CHKERRQ(ierr);
2984     SETERRQ2(PetscObjectComm((PetscObject)mat),PETSC_ERR_SUP,"Matrix type %s symbolic LU using solver package %s",((PetscObject)mat)->type_name,spackage);
2985   }
2986   MatCheckPreallocated(mat,2);
2987 
2988   ierr = PetscLogEventBegin(MAT_LUFactorSymbolic,mat,row,col,0);CHKERRQ(ierr);
2989   ierr = (fact->ops->lufactorsymbolic)(fact,mat,row,col,info);CHKERRQ(ierr);
2990   ierr = PetscLogEventEnd(MAT_LUFactorSymbolic,mat,row,col,0);CHKERRQ(ierr);
2991   ierr = PetscObjectStateIncrease((PetscObject)fact);CHKERRQ(ierr);
2992   PetscFunctionReturn(0);
2993 }
2994 
2995 /*@C
2996    MatLUFactorNumeric - Performs numeric LU factorization of a matrix.
2997    Call this routine after first calling MatLUFactorSymbolic().
2998 
2999    Collective on Mat
3000 
3001    Input Parameters:
3002 +  fact - the factor matrix obtained with MatGetFactor()
3003 .  mat - the matrix
3004 -  info - options for factorization
3005 
3006    Notes:
3007    See MatLUFactor() for in-place factorization.  See
3008    MatCholeskyFactorNumeric() for the symmetric, positive definite case.
3009 
3010    Most users should employ the simplified KSP interface for linear solvers
3011    instead of working directly with matrix algebra routines such as this.
3012    See, e.g., KSPCreate().
3013 
3014    Level: developer
3015 
3016    Concepts: matrices^LU numeric factorization
3017 
3018 .seealso: MatLUFactorSymbolic(), MatLUFactor(), MatCholeskyFactor()
3019 
3020     Developer Note: fortran interface is not autogenerated as the f90
3021     interface defintion cannot be generated correctly [due to MatFactorInfo]
3022 
3023 @*/
3024 PetscErrorCode MatLUFactorNumeric(Mat fact,Mat mat,const MatFactorInfo *info)
3025 {
3026   PetscErrorCode ierr;
3027 
3028   PetscFunctionBegin;
3029   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
3030   PetscValidType(mat,1);
3031   PetscValidPointer(fact,2);
3032   PetscValidHeaderSpecific(fact,MAT_CLASSID,2);
3033   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
3034   if (mat->rmap->N != (fact)->rmap->N || mat->cmap->N != (fact)->cmap->N) SETERRQ4(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_SIZ,"Mat mat,Mat fact: global dimensions are different %D should = %D %D should = %D",mat->rmap->N,(fact)->rmap->N,mat->cmap->N,(fact)->cmap->N);
3035 
3036   if (!(fact)->ops->lufactornumeric) SETERRQ1(PetscObjectComm((PetscObject)mat),PETSC_ERR_SUP,"Mat type %s numeric LU",((PetscObject)mat)->type_name);
3037   MatCheckPreallocated(mat,2);
3038   ierr = PetscLogEventBegin(MAT_LUFactorNumeric,mat,fact,0,0);CHKERRQ(ierr);
3039   ierr = (fact->ops->lufactornumeric)(fact,mat,info);CHKERRQ(ierr);
3040   ierr = PetscLogEventEnd(MAT_LUFactorNumeric,mat,fact,0,0);CHKERRQ(ierr);
3041   ierr = MatViewFromOptions(fact,NULL,"-mat_factor_view");CHKERRQ(ierr);
3042   ierr = PetscObjectStateIncrease((PetscObject)fact);CHKERRQ(ierr);
3043   PetscFunctionReturn(0);
3044 }
3045 
3046 /*@C
3047    MatCholeskyFactor - Performs in-place Cholesky factorization of a
3048    symmetric matrix.
3049 
3050    Collective on Mat
3051 
3052    Input Parameters:
3053 +  mat - the matrix
3054 .  perm - row and column permutations
3055 -  f - expected fill as ratio of original fill
3056 
3057    Notes:
3058    See MatLUFactor() for the nonsymmetric case.  See also
3059    MatCholeskyFactorSymbolic(), and MatCholeskyFactorNumeric().
3060 
3061    Most users should employ the simplified KSP interface for linear solvers
3062    instead of working directly with matrix algebra routines such as this.
3063    See, e.g., KSPCreate().
3064 
3065    Level: developer
3066 
3067    Concepts: matrices^Cholesky factorization
3068 
3069 .seealso: MatLUFactor(), MatCholeskyFactorSymbolic(), MatCholeskyFactorNumeric()
3070           MatGetOrdering()
3071 
3072     Developer Note: fortran interface is not autogenerated as the f90
3073     interface defintion cannot be generated correctly [due to MatFactorInfo]
3074 
3075 @*/
3076 PetscErrorCode MatCholeskyFactor(Mat mat,IS perm,const MatFactorInfo *info)
3077 {
3078   PetscErrorCode ierr;
3079 
3080   PetscFunctionBegin;
3081   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
3082   PetscValidType(mat,1);
3083   if (perm) PetscValidHeaderSpecific(perm,IS_CLASSID,2);
3084   if (info) PetscValidPointer(info,3);
3085   if (mat->rmap->N != mat->cmap->N) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONG,"Matrix must be square");
3086   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
3087   if (mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
3088   if (!mat->ops->choleskyfactor) SETERRQ1(PetscObjectComm((PetscObject)mat),PETSC_ERR_SUP,"Mat type %s",((PetscObject)mat)->type_name);
3089   MatCheckPreallocated(mat,1);
3090 
3091   ierr = PetscLogEventBegin(MAT_CholeskyFactor,mat,perm,0,0);CHKERRQ(ierr);
3092   ierr = (*mat->ops->choleskyfactor)(mat,perm,info);CHKERRQ(ierr);
3093   ierr = PetscLogEventEnd(MAT_CholeskyFactor,mat,perm,0,0);CHKERRQ(ierr);
3094   ierr = PetscObjectStateIncrease((PetscObject)mat);CHKERRQ(ierr);
3095   PetscFunctionReturn(0);
3096 }
3097 
3098 /*@C
3099    MatCholeskyFactorSymbolic - Performs symbolic Cholesky factorization
3100    of a symmetric matrix.
3101 
3102    Collective on Mat
3103 
3104    Input Parameters:
3105 +  fact - the factor matrix obtained with MatGetFactor()
3106 .  mat - the matrix
3107 .  perm - row and column permutations
3108 -  info - options for factorization, includes
3109 $          fill - expected fill as ratio of original fill.
3110 $          dtcol - pivot tolerance (0 no pivot, 1 full column pivoting)
3111 $                   Run with the option -info to determine an optimal value to use
3112 
3113    Notes:
3114    See MatLUFactorSymbolic() for the nonsymmetric case.  See also
3115    MatCholeskyFactor() and MatCholeskyFactorNumeric().
3116 
3117    Most users should employ the simplified KSP interface for linear solvers
3118    instead of working directly with matrix algebra routines such as this.
3119    See, e.g., KSPCreate().
3120 
3121    Level: developer
3122 
3123    Concepts: matrices^Cholesky symbolic factorization
3124 
3125 .seealso: MatLUFactorSymbolic(), MatCholeskyFactor(), MatCholeskyFactorNumeric()
3126           MatGetOrdering()
3127 
3128     Developer Note: fortran interface is not autogenerated as the f90
3129     interface defintion cannot be generated correctly [due to MatFactorInfo]
3130 
3131 @*/
3132 PetscErrorCode MatCholeskyFactorSymbolic(Mat fact,Mat mat,IS perm,const MatFactorInfo *info)
3133 {
3134   PetscErrorCode ierr;
3135 
3136   PetscFunctionBegin;
3137   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
3138   PetscValidType(mat,1);
3139   if (perm) PetscValidHeaderSpecific(perm,IS_CLASSID,2);
3140   if (info) PetscValidPointer(info,3);
3141   PetscValidPointer(fact,4);
3142   if (mat->rmap->N != mat->cmap->N) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONG,"Matrix must be square");
3143   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
3144   if (mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
3145   if (!(fact)->ops->choleskyfactorsymbolic) {
3146     const MatSolverPackage spackage;
3147     ierr = MatFactorGetSolverPackage(fact,&spackage);CHKERRQ(ierr);
3148     SETERRQ2(PetscObjectComm((PetscObject)mat),PETSC_ERR_SUP,"Mat type %s symbolic factor Cholesky using solver package %s",((PetscObject)mat)->type_name,spackage);
3149   }
3150   MatCheckPreallocated(mat,2);
3151 
3152   ierr = PetscLogEventBegin(MAT_CholeskyFactorSymbolic,mat,perm,0,0);CHKERRQ(ierr);
3153   ierr = (fact->ops->choleskyfactorsymbolic)(fact,mat,perm,info);CHKERRQ(ierr);
3154   ierr = PetscLogEventEnd(MAT_CholeskyFactorSymbolic,mat,perm,0,0);CHKERRQ(ierr);
3155   ierr = PetscObjectStateIncrease((PetscObject)fact);CHKERRQ(ierr);
3156   PetscFunctionReturn(0);
3157 }
3158 
3159 /*@C
3160    MatCholeskyFactorNumeric - Performs numeric Cholesky factorization
3161    of a symmetric matrix. Call this routine after first calling
3162    MatCholeskyFactorSymbolic().
3163 
3164    Collective on Mat
3165 
3166    Input Parameters:
3167 +  fact - the factor matrix obtained with MatGetFactor()
3168 .  mat - the initial matrix
3169 .  info - options for factorization
3170 -  fact - the symbolic factor of mat
3171 
3172 
3173    Notes:
3174    Most users should employ the simplified KSP interface for linear solvers
3175    instead of working directly with matrix algebra routines such as this.
3176    See, e.g., KSPCreate().
3177 
3178    Level: developer
3179 
3180    Concepts: matrices^Cholesky numeric factorization
3181 
3182 .seealso: MatCholeskyFactorSymbolic(), MatCholeskyFactor(), MatLUFactorNumeric()
3183 
3184     Developer Note: fortran interface is not autogenerated as the f90
3185     interface defintion cannot be generated correctly [due to MatFactorInfo]
3186 
3187 @*/
3188 PetscErrorCode MatCholeskyFactorNumeric(Mat fact,Mat mat,const MatFactorInfo *info)
3189 {
3190   PetscErrorCode ierr;
3191 
3192   PetscFunctionBegin;
3193   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
3194   PetscValidType(mat,1);
3195   PetscValidPointer(fact,2);
3196   PetscValidHeaderSpecific(fact,MAT_CLASSID,2);
3197   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
3198   if (!(fact)->ops->choleskyfactornumeric) SETERRQ1(PetscObjectComm((PetscObject)mat),PETSC_ERR_SUP,"Mat type %s numeric factor Cholesky",((PetscObject)mat)->type_name);
3199   if (mat->rmap->N != (fact)->rmap->N || mat->cmap->N != (fact)->cmap->N) SETERRQ4(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_SIZ,"Mat mat,Mat fact: global dim %D should = %D %D should = %D",mat->rmap->N,(fact)->rmap->N,mat->cmap->N,(fact)->cmap->N);
3200   MatCheckPreallocated(mat,2);
3201 
3202   ierr = PetscLogEventBegin(MAT_CholeskyFactorNumeric,mat,fact,0,0);CHKERRQ(ierr);
3203   ierr = (fact->ops->choleskyfactornumeric)(fact,mat,info);CHKERRQ(ierr);
3204   ierr = PetscLogEventEnd(MAT_CholeskyFactorNumeric,mat,fact,0,0);CHKERRQ(ierr);
3205   ierr = MatViewFromOptions(fact,NULL,"-mat_factor_view");CHKERRQ(ierr);
3206   ierr = PetscObjectStateIncrease((PetscObject)fact);CHKERRQ(ierr);
3207   PetscFunctionReturn(0);
3208 }
3209 
3210 /* ----------------------------------------------------------------*/
3211 /*@
3212    MatSolve - Solves A x = b, given a factored matrix.
3213 
3214    Neighbor-wise Collective on Mat and Vec
3215 
3216    Input Parameters:
3217 +  mat - the factored matrix
3218 -  b - the right-hand-side vector
3219 
3220    Output Parameter:
3221 .  x - the result vector
3222 
3223    Notes:
3224    The vectors b and x cannot be the same.  I.e., one cannot
3225    call MatSolve(A,x,x).
3226 
3227    Notes:
3228    Most users should employ the simplified KSP interface for linear solvers
3229    instead of working directly with matrix algebra routines such as this.
3230    See, e.g., KSPCreate().
3231 
3232    Level: developer
3233 
3234    Concepts: matrices^triangular solves
3235 
3236 .seealso: MatSolveAdd(), MatSolveTranspose(), MatSolveTransposeAdd()
3237 @*/
3238 PetscErrorCode MatSolve(Mat mat,Vec b,Vec x)
3239 {
3240   PetscErrorCode ierr;
3241 
3242   PetscFunctionBegin;
3243   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
3244   PetscValidType(mat,1);
3245   PetscValidHeaderSpecific(b,VEC_CLASSID,2);
3246   PetscValidHeaderSpecific(x,VEC_CLASSID,3);
3247   PetscCheckSameComm(mat,1,b,2);
3248   PetscCheckSameComm(mat,1,x,3);
3249   if (x == b) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_IDN,"x and b must be different vectors");
3250   if (!mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Unfactored matrix");
3251   if (mat->cmap->N != x->map->N) SETERRQ2(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_SIZ,"Mat mat,Vec x: global dim %D %D",mat->cmap->N,x->map->N);
3252   if (mat->rmap->N != b->map->N) SETERRQ2(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_SIZ,"Mat mat,Vec b: global dim %D %D",mat->rmap->N,b->map->N);
3253   if (mat->rmap->n != b->map->n) SETERRQ2(PETSC_COMM_SELF,PETSC_ERR_ARG_SIZ,"Mat mat,Vec b: local dim %D %D",mat->rmap->n,b->map->n);
3254   if (!mat->rmap->N && !mat->cmap->N) PetscFunctionReturn(0);
3255   if (!mat->ops->solve) SETERRQ1(PetscObjectComm((PetscObject)mat),PETSC_ERR_SUP,"Mat type %s",((PetscObject)mat)->type_name);
3256   MatCheckPreallocated(mat,1);
3257 
3258   ierr = PetscLogEventBegin(MAT_Solve,mat,b,x,0);CHKERRQ(ierr);
3259   if (mat->factorerrortype) {
3260     ierr = PetscInfo1(mat,"MatFactorError %D\n",mat->factorerrortype);CHKERRQ(ierr);
3261     ierr = VecSetInf(x);CHKERRQ(ierr);
3262   } else {
3263     ierr = (*mat->ops->solve)(mat,b,x);CHKERRQ(ierr);
3264   }
3265   ierr = PetscLogEventEnd(MAT_Solve,mat,b,x,0);CHKERRQ(ierr);
3266   ierr = PetscObjectStateIncrease((PetscObject)x);CHKERRQ(ierr);
3267   PetscFunctionReturn(0);
3268 }
3269 
3270 PetscErrorCode MatMatSolve_Basic(Mat A,Mat B,Mat X)
3271 {
3272   PetscErrorCode ierr;
3273   Vec            b,x;
3274   PetscInt       m,N,i;
3275   PetscScalar    *bb,*xx;
3276   PetscBool      flg;
3277 
3278   PetscFunctionBegin;
3279   ierr = PetscObjectTypeCompareAny((PetscObject)B,&flg,MATSEQDENSE,MATMPIDENSE,NULL);CHKERRQ(ierr);
3280   if (!flg) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONG,"Matrix B must be MATDENSE matrix");
3281   ierr = PetscObjectTypeCompareAny((PetscObject)X,&flg,MATSEQDENSE,MATMPIDENSE,NULL);CHKERRQ(ierr);
3282   if (!flg) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONG,"Matrix X must be MATDENSE matrix");
3283 
3284   ierr = MatDenseGetArray(B,&bb);CHKERRQ(ierr);
3285   ierr = MatDenseGetArray(X,&xx);CHKERRQ(ierr);
3286   ierr = MatGetLocalSize(B,&m,NULL);CHKERRQ(ierr);  /* number local rows */
3287   ierr = MatGetSize(B,NULL,&N);CHKERRQ(ierr);       /* total columns in dense matrix */
3288   ierr = MatCreateVecs(A,&x,&b);CHKERRQ(ierr);
3289   for (i=0; i<N; i++) {
3290     ierr = VecPlaceArray(b,bb + i*m);CHKERRQ(ierr);
3291     ierr = VecPlaceArray(x,xx + i*m);CHKERRQ(ierr);
3292     ierr = MatSolve(A,b,x);CHKERRQ(ierr);
3293     ierr = VecResetArray(x);CHKERRQ(ierr);
3294     ierr = VecResetArray(b);CHKERRQ(ierr);
3295   }
3296   ierr = VecDestroy(&b);CHKERRQ(ierr);
3297   ierr = VecDestroy(&x);CHKERRQ(ierr);
3298   ierr = MatDenseRestoreArray(B,&bb);CHKERRQ(ierr);
3299   ierr = MatDenseRestoreArray(X,&xx);CHKERRQ(ierr);
3300   PetscFunctionReturn(0);
3301 }
3302 
3303 /*@
3304    MatMatSolve - Solves A X = B, given a factored matrix.
3305 
3306    Neighbor-wise Collective on Mat
3307 
3308    Input Parameters:
3309 +  A - the factored matrix
3310 -  B - the right-hand-side matrix  (dense matrix)
3311 
3312    Output Parameter:
3313 .  X - the result matrix (dense matrix)
3314 
3315    Notes:
3316    The matrices b and x cannot be the same.  I.e., one cannot
3317    call MatMatSolve(A,x,x).
3318 
3319    Notes:
3320    Most users should usually employ the simplified KSP interface for linear solvers
3321    instead of working directly with matrix algebra routines such as this.
3322    See, e.g., KSPCreate(). However KSP can only solve for one vector (column of X)
3323    at a time.
3324 
3325    When using SuperLU_Dist as a parallel solver PETSc will use the SuperLU_Dist functionality to solve multiple right hand sides simultaneously. For MUMPS
3326    it calls a separate solve for each right hand side since MUMPS does not yet support distributed right hand sides.
3327 
3328    Since the resulting matrix X must always be dense we do not support sparse representation of the matrix B.
3329 
3330    Level: developer
3331 
3332    Concepts: matrices^triangular solves
3333 
3334 .seealso: MatMatSolveAdd(), MatMatSolveTranspose(), MatMatSolveTransposeAdd(), MatLUFactor(), MatCholeskyFactor()
3335 @*/
3336 PetscErrorCode MatMatSolve(Mat A,Mat B,Mat X)
3337 {
3338   PetscErrorCode ierr;
3339 
3340   PetscFunctionBegin;
3341   PetscValidHeaderSpecific(A,MAT_CLASSID,1);
3342   PetscValidType(A,1);
3343   PetscValidHeaderSpecific(B,MAT_CLASSID,2);
3344   PetscValidHeaderSpecific(X,MAT_CLASSID,3);
3345   PetscCheckSameComm(A,1,B,2);
3346   PetscCheckSameComm(A,1,X,3);
3347   if (X == B) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_IDN,"X and B must be different matrices");
3348   if (!A->factortype) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Unfactored matrix");
3349   if (A->cmap->N != X->rmap->N) SETERRQ2(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_SIZ,"Mat A,Mat X: global dim %D %D",A->cmap->N,X->rmap->N);
3350   if (A->rmap->N != B->rmap->N) SETERRQ2(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_SIZ,"Mat A,Mat B: global dim %D %D",A->rmap->N,B->rmap->N);
3351   if (A->rmap->n != B->rmap->n) SETERRQ2(PETSC_COMM_SELF,PETSC_ERR_ARG_SIZ,"Mat A,Mat B: local dim %D %D",A->rmap->n,B->rmap->n);
3352   if (X->cmap->N < B->cmap->N) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_SIZ,"Solution matrix must have same number of columns as rhs matrix");
3353   if (!A->rmap->N && !A->cmap->N) PetscFunctionReturn(0);
3354   MatCheckPreallocated(A,1);
3355 
3356   ierr = PetscLogEventBegin(MAT_MatSolve,A,B,X,0);CHKERRQ(ierr);
3357   if (!A->ops->matsolve) {
3358     ierr = PetscInfo1(A,"Mat type %s using basic MatMatSolve\n",((PetscObject)A)->type_name);CHKERRQ(ierr);
3359     ierr = MatMatSolve_Basic(A,B,X);CHKERRQ(ierr);
3360   } else {
3361     ierr = (*A->ops->matsolve)(A,B,X);CHKERRQ(ierr);
3362   }
3363   ierr = PetscLogEventEnd(MAT_MatSolve,A,B,X,0);CHKERRQ(ierr);
3364   ierr = PetscObjectStateIncrease((PetscObject)X);CHKERRQ(ierr);
3365   PetscFunctionReturn(0);
3366 }
3367 
3368 
3369 /*@
3370    MatForwardSolve - Solves L x = b, given a factored matrix, A = LU, or
3371                             U^T*D^(1/2) x = b, given a factored symmetric matrix, A = U^T*D*U,
3372 
3373    Neighbor-wise Collective on Mat and Vec
3374 
3375    Input Parameters:
3376 +  mat - the factored matrix
3377 -  b - the right-hand-side vector
3378 
3379    Output Parameter:
3380 .  x - the result vector
3381 
3382    Notes:
3383    MatSolve() should be used for most applications, as it performs
3384    a forward solve followed by a backward solve.
3385 
3386    The vectors b and x cannot be the same,  i.e., one cannot
3387    call MatForwardSolve(A,x,x).
3388 
3389    For matrix in seqsbaij format with block size larger than 1,
3390    the diagonal blocks are not implemented as D = D^(1/2) * D^(1/2) yet.
3391    MatForwardSolve() solves U^T*D y = b, and
3392    MatBackwardSolve() solves U x = y.
3393    Thus they do not provide a symmetric preconditioner.
3394 
3395    Most users should employ the simplified KSP interface for linear solvers
3396    instead of working directly with matrix algebra routines such as this.
3397    See, e.g., KSPCreate().
3398 
3399    Level: developer
3400 
3401    Concepts: matrices^forward solves
3402 
3403 .seealso: MatSolve(), MatBackwardSolve()
3404 @*/
3405 PetscErrorCode MatForwardSolve(Mat mat,Vec b,Vec x)
3406 {
3407   PetscErrorCode ierr;
3408 
3409   PetscFunctionBegin;
3410   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
3411   PetscValidType(mat,1);
3412   PetscValidHeaderSpecific(b,VEC_CLASSID,2);
3413   PetscValidHeaderSpecific(x,VEC_CLASSID,3);
3414   PetscCheckSameComm(mat,1,b,2);
3415   PetscCheckSameComm(mat,1,x,3);
3416   if (x == b) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_IDN,"x and b must be different vectors");
3417   if (!mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Unfactored matrix");
3418   if (!mat->ops->forwardsolve) SETERRQ1(PetscObjectComm((PetscObject)mat),PETSC_ERR_SUP,"Mat type %s",((PetscObject)mat)->type_name);
3419   if (mat->cmap->N != x->map->N) SETERRQ2(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_SIZ,"Mat mat,Vec x: global dim %D %D",mat->cmap->N,x->map->N);
3420   if (mat->rmap->N != b->map->N) SETERRQ2(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_SIZ,"Mat mat,Vec b: global dim %D %D",mat->rmap->N,b->map->N);
3421   if (mat->rmap->n != b->map->n) SETERRQ2(PETSC_COMM_SELF,PETSC_ERR_ARG_SIZ,"Mat mat,Vec b: local dim %D %D",mat->rmap->n,b->map->n);
3422   MatCheckPreallocated(mat,1);
3423   ierr = PetscLogEventBegin(MAT_ForwardSolve,mat,b,x,0);CHKERRQ(ierr);
3424   ierr = (*mat->ops->forwardsolve)(mat,b,x);CHKERRQ(ierr);
3425   ierr = PetscLogEventEnd(MAT_ForwardSolve,mat,b,x,0);CHKERRQ(ierr);
3426   ierr = PetscObjectStateIncrease((PetscObject)x);CHKERRQ(ierr);
3427   PetscFunctionReturn(0);
3428 }
3429 
3430 /*@
3431    MatBackwardSolve - Solves U x = b, given a factored matrix, A = LU.
3432                              D^(1/2) U x = b, given a factored symmetric matrix, A = U^T*D*U,
3433 
3434    Neighbor-wise Collective on Mat and Vec
3435 
3436    Input Parameters:
3437 +  mat - the factored matrix
3438 -  b - the right-hand-side vector
3439 
3440    Output Parameter:
3441 .  x - the result vector
3442 
3443    Notes:
3444    MatSolve() should be used for most applications, as it performs
3445    a forward solve followed by a backward solve.
3446 
3447    The vectors b and x cannot be the same.  I.e., one cannot
3448    call MatBackwardSolve(A,x,x).
3449 
3450    For matrix in seqsbaij format with block size larger than 1,
3451    the diagonal blocks are not implemented as D = D^(1/2) * D^(1/2) yet.
3452    MatForwardSolve() solves U^T*D y = b, and
3453    MatBackwardSolve() solves U x = y.
3454    Thus they do not provide a symmetric preconditioner.
3455 
3456    Most users should employ the simplified KSP interface for linear solvers
3457    instead of working directly with matrix algebra routines such as this.
3458    See, e.g., KSPCreate().
3459 
3460    Level: developer
3461 
3462    Concepts: matrices^backward solves
3463 
3464 .seealso: MatSolve(), MatForwardSolve()
3465 @*/
3466 PetscErrorCode MatBackwardSolve(Mat mat,Vec b,Vec x)
3467 {
3468   PetscErrorCode ierr;
3469 
3470   PetscFunctionBegin;
3471   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
3472   PetscValidType(mat,1);
3473   PetscValidHeaderSpecific(b,VEC_CLASSID,2);
3474   PetscValidHeaderSpecific(x,VEC_CLASSID,3);
3475   PetscCheckSameComm(mat,1,b,2);
3476   PetscCheckSameComm(mat,1,x,3);
3477   if (x == b) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_IDN,"x and b must be different vectors");
3478   if (!mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Unfactored matrix");
3479   if (!mat->ops->backwardsolve) SETERRQ1(PetscObjectComm((PetscObject)mat),PETSC_ERR_SUP,"Mat type %s",((PetscObject)mat)->type_name);
3480   if (mat->cmap->N != x->map->N) SETERRQ2(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_SIZ,"Mat mat,Vec x: global dim %D %D",mat->cmap->N,x->map->N);
3481   if (mat->rmap->N != b->map->N) SETERRQ2(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_SIZ,"Mat mat,Vec b: global dim %D %D",mat->rmap->N,b->map->N);
3482   if (mat->rmap->n != b->map->n) SETERRQ2(PETSC_COMM_SELF,PETSC_ERR_ARG_SIZ,"Mat mat,Vec b: local dim %D %D",mat->rmap->n,b->map->n);
3483   MatCheckPreallocated(mat,1);
3484 
3485   ierr = PetscLogEventBegin(MAT_BackwardSolve,mat,b,x,0);CHKERRQ(ierr);
3486   ierr = (*mat->ops->backwardsolve)(mat,b,x);CHKERRQ(ierr);
3487   ierr = PetscLogEventEnd(MAT_BackwardSolve,mat,b,x,0);CHKERRQ(ierr);
3488   ierr = PetscObjectStateIncrease((PetscObject)x);CHKERRQ(ierr);
3489   PetscFunctionReturn(0);
3490 }
3491 
3492 /*@
3493    MatSolveAdd - Computes x = y + inv(A)*b, given a factored matrix.
3494 
3495    Neighbor-wise Collective on Mat and Vec
3496 
3497    Input Parameters:
3498 +  mat - the factored matrix
3499 .  b - the right-hand-side vector
3500 -  y - the vector to be added to
3501 
3502    Output Parameter:
3503 .  x - the result vector
3504 
3505    Notes:
3506    The vectors b and x cannot be the same.  I.e., one cannot
3507    call MatSolveAdd(A,x,y,x).
3508 
3509    Most users should employ the simplified KSP interface for linear solvers
3510    instead of working directly with matrix algebra routines such as this.
3511    See, e.g., KSPCreate().
3512 
3513    Level: developer
3514 
3515    Concepts: matrices^triangular solves
3516 
3517 .seealso: MatSolve(), MatSolveTranspose(), MatSolveTransposeAdd()
3518 @*/
3519 PetscErrorCode MatSolveAdd(Mat mat,Vec b,Vec y,Vec x)
3520 {
3521   PetscScalar    one = 1.0;
3522   Vec            tmp;
3523   PetscErrorCode ierr;
3524 
3525   PetscFunctionBegin;
3526   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
3527   PetscValidType(mat,1);
3528   PetscValidHeaderSpecific(y,VEC_CLASSID,2);
3529   PetscValidHeaderSpecific(b,VEC_CLASSID,3);
3530   PetscValidHeaderSpecific(x,VEC_CLASSID,4);
3531   PetscCheckSameComm(mat,1,b,2);
3532   PetscCheckSameComm(mat,1,y,2);
3533   PetscCheckSameComm(mat,1,x,3);
3534   if (x == b) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_IDN,"x and b must be different vectors");
3535   if (!mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Unfactored matrix");
3536   if (mat->cmap->N != x->map->N) SETERRQ2(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_SIZ,"Mat mat,Vec x: global dim %D %D",mat->cmap->N,x->map->N);
3537   if (mat->rmap->N != b->map->N) SETERRQ2(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_SIZ,"Mat mat,Vec b: global dim %D %D",mat->rmap->N,b->map->N);
3538   if (mat->rmap->N != y->map->N) SETERRQ2(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_SIZ,"Mat mat,Vec y: global dim %D %D",mat->rmap->N,y->map->N);
3539   if (mat->rmap->n != b->map->n) SETERRQ2(PETSC_COMM_SELF,PETSC_ERR_ARG_SIZ,"Mat mat,Vec b: local dim %D %D",mat->rmap->n,b->map->n);
3540   if (x->map->n != y->map->n) SETERRQ2(PETSC_COMM_SELF,PETSC_ERR_ARG_SIZ,"Vec x,Vec y: local dim %D %D",x->map->n,y->map->n);
3541   MatCheckPreallocated(mat,1);
3542 
3543   ierr = PetscLogEventBegin(MAT_SolveAdd,mat,b,x,y);CHKERRQ(ierr);
3544   if (mat->ops->solveadd) {
3545     ierr = (*mat->ops->solveadd)(mat,b,y,x);CHKERRQ(ierr);
3546   } else {
3547     /* do the solve then the add manually */
3548     if (x != y) {
3549       ierr = MatSolve(mat,b,x);CHKERRQ(ierr);
3550       ierr = VecAXPY(x,one,y);CHKERRQ(ierr);
3551     } else {
3552       ierr = VecDuplicate(x,&tmp);CHKERRQ(ierr);
3553       ierr = PetscLogObjectParent((PetscObject)mat,(PetscObject)tmp);CHKERRQ(ierr);
3554       ierr = VecCopy(x,tmp);CHKERRQ(ierr);
3555       ierr = MatSolve(mat,b,x);CHKERRQ(ierr);
3556       ierr = VecAXPY(x,one,tmp);CHKERRQ(ierr);
3557       ierr = VecDestroy(&tmp);CHKERRQ(ierr);
3558     }
3559   }
3560   ierr = PetscLogEventEnd(MAT_SolveAdd,mat,b,x,y);CHKERRQ(ierr);
3561   ierr = PetscObjectStateIncrease((PetscObject)x);CHKERRQ(ierr);
3562   PetscFunctionReturn(0);
3563 }
3564 
3565 /*@
3566    MatSolveTranspose - Solves A' x = b, given a factored matrix.
3567 
3568    Neighbor-wise Collective on Mat and Vec
3569 
3570    Input Parameters:
3571 +  mat - the factored matrix
3572 -  b - the right-hand-side vector
3573 
3574    Output Parameter:
3575 .  x - the result vector
3576 
3577    Notes:
3578    The vectors b and x cannot be the same.  I.e., one cannot
3579    call MatSolveTranspose(A,x,x).
3580 
3581    Most users should employ the simplified KSP interface for linear solvers
3582    instead of working directly with matrix algebra routines such as this.
3583    See, e.g., KSPCreate().
3584 
3585    Level: developer
3586 
3587    Concepts: matrices^triangular solves
3588 
3589 .seealso: MatSolve(), MatSolveAdd(), MatSolveTransposeAdd()
3590 @*/
3591 PetscErrorCode MatSolveTranspose(Mat mat,Vec b,Vec x)
3592 {
3593   PetscErrorCode ierr;
3594 
3595   PetscFunctionBegin;
3596   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
3597   PetscValidType(mat,1);
3598   PetscValidHeaderSpecific(b,VEC_CLASSID,2);
3599   PetscValidHeaderSpecific(x,VEC_CLASSID,3);
3600   PetscCheckSameComm(mat,1,b,2);
3601   PetscCheckSameComm(mat,1,x,3);
3602   if (!mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Unfactored matrix");
3603   if (x == b) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_IDN,"x and b must be different vectors");
3604   if (!mat->ops->solvetranspose) SETERRQ1(PetscObjectComm((PetscObject)mat),PETSC_ERR_SUP,"Matrix type %s",((PetscObject)mat)->type_name);
3605   if (mat->rmap->N != x->map->N) SETERRQ2(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_SIZ,"Mat mat,Vec x: global dim %D %D",mat->rmap->N,x->map->N);
3606   if (mat->cmap->N != b->map->N) SETERRQ2(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_SIZ,"Mat mat,Vec b: global dim %D %D",mat->cmap->N,b->map->N);
3607   MatCheckPreallocated(mat,1);
3608   ierr = PetscLogEventBegin(MAT_SolveTranspose,mat,b,x,0);CHKERRQ(ierr);
3609   if (mat->factorerrortype) {
3610     ierr = PetscInfo1(mat,"MatFactorError %D\n",mat->factorerrortype);CHKERRQ(ierr);
3611     ierr = VecSetInf(x);CHKERRQ(ierr);
3612   } else {
3613     ierr = (*mat->ops->solvetranspose)(mat,b,x);CHKERRQ(ierr);
3614   }
3615   ierr = PetscLogEventEnd(MAT_SolveTranspose,mat,b,x,0);CHKERRQ(ierr);
3616   ierr = PetscObjectStateIncrease((PetscObject)x);CHKERRQ(ierr);
3617   PetscFunctionReturn(0);
3618 }
3619 
3620 /*@
3621    MatSolveTransposeAdd - Computes x = y + inv(Transpose(A)) b, given a
3622                       factored matrix.
3623 
3624    Neighbor-wise Collective on Mat and Vec
3625 
3626    Input Parameters:
3627 +  mat - the factored matrix
3628 .  b - the right-hand-side vector
3629 -  y - the vector to be added to
3630 
3631    Output Parameter:
3632 .  x - the result vector
3633 
3634    Notes:
3635    The vectors b and x cannot be the same.  I.e., one cannot
3636    call MatSolveTransposeAdd(A,x,y,x).
3637 
3638    Most users should employ the simplified KSP interface for linear solvers
3639    instead of working directly with matrix algebra routines such as this.
3640    See, e.g., KSPCreate().
3641 
3642    Level: developer
3643 
3644    Concepts: matrices^triangular solves
3645 
3646 .seealso: MatSolve(), MatSolveAdd(), MatSolveTranspose()
3647 @*/
3648 PetscErrorCode MatSolveTransposeAdd(Mat mat,Vec b,Vec y,Vec x)
3649 {
3650   PetscScalar    one = 1.0;
3651   PetscErrorCode ierr;
3652   Vec            tmp;
3653 
3654   PetscFunctionBegin;
3655   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
3656   PetscValidType(mat,1);
3657   PetscValidHeaderSpecific(y,VEC_CLASSID,2);
3658   PetscValidHeaderSpecific(b,VEC_CLASSID,3);
3659   PetscValidHeaderSpecific(x,VEC_CLASSID,4);
3660   PetscCheckSameComm(mat,1,b,2);
3661   PetscCheckSameComm(mat,1,y,3);
3662   PetscCheckSameComm(mat,1,x,4);
3663   if (x == b) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_IDN,"x and b must be different vectors");
3664   if (!mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Unfactored matrix");
3665   if (mat->rmap->N != x->map->N) SETERRQ2(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_SIZ,"Mat mat,Vec x: global dim %D %D",mat->rmap->N,x->map->N);
3666   if (mat->cmap->N != b->map->N) SETERRQ2(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_SIZ,"Mat mat,Vec b: global dim %D %D",mat->cmap->N,b->map->N);
3667   if (mat->cmap->N != y->map->N) SETERRQ2(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_SIZ,"Mat mat,Vec y: global dim %D %D",mat->cmap->N,y->map->N);
3668   if (x->map->n != y->map->n) SETERRQ2(PETSC_COMM_SELF,PETSC_ERR_ARG_SIZ,"Vec x,Vec y: local dim %D %D",x->map->n,y->map->n);
3669   MatCheckPreallocated(mat,1);
3670 
3671   ierr = PetscLogEventBegin(MAT_SolveTransposeAdd,mat,b,x,y);CHKERRQ(ierr);
3672   if (mat->ops->solvetransposeadd) {
3673     if (mat->factorerrortype) {
3674       ierr = PetscInfo1(mat,"MatFactorError %D\n",mat->factorerrortype);CHKERRQ(ierr);
3675       ierr = VecSetInf(x);CHKERRQ(ierr);
3676     } else {
3677       ierr = (*mat->ops->solvetransposeadd)(mat,b,y,x);CHKERRQ(ierr);
3678     }
3679   } else {
3680     /* do the solve then the add manually */
3681     if (x != y) {
3682       ierr = MatSolveTranspose(mat,b,x);CHKERRQ(ierr);
3683       ierr = VecAXPY(x,one,y);CHKERRQ(ierr);
3684     } else {
3685       ierr = VecDuplicate(x,&tmp);CHKERRQ(ierr);
3686       ierr = PetscLogObjectParent((PetscObject)mat,(PetscObject)tmp);CHKERRQ(ierr);
3687       ierr = VecCopy(x,tmp);CHKERRQ(ierr);
3688       ierr = MatSolveTranspose(mat,b,x);CHKERRQ(ierr);
3689       ierr = VecAXPY(x,one,tmp);CHKERRQ(ierr);
3690       ierr = VecDestroy(&tmp);CHKERRQ(ierr);
3691     }
3692   }
3693   ierr = PetscLogEventEnd(MAT_SolveTransposeAdd,mat,b,x,y);CHKERRQ(ierr);
3694   ierr = PetscObjectStateIncrease((PetscObject)x);CHKERRQ(ierr);
3695   PetscFunctionReturn(0);
3696 }
3697 /* ----------------------------------------------------------------*/
3698 
3699 /*@
3700    MatSOR - Computes relaxation (SOR, Gauss-Seidel) sweeps.
3701 
3702    Neighbor-wise Collective on Mat and Vec
3703 
3704    Input Parameters:
3705 +  mat - the matrix
3706 .  b - the right hand side
3707 .  omega - the relaxation factor
3708 .  flag - flag indicating the type of SOR (see below)
3709 .  shift -  diagonal shift
3710 .  its - the number of iterations
3711 -  lits - the number of local iterations
3712 
3713    Output Parameters:
3714 .  x - the solution (can contain an initial guess, use option SOR_ZERO_INITIAL_GUESS to indicate no guess)
3715 
3716    SOR Flags:
3717 .     SOR_FORWARD_SWEEP - forward SOR
3718 .     SOR_BACKWARD_SWEEP - backward SOR
3719 .     SOR_SYMMETRIC_SWEEP - SSOR (symmetric SOR)
3720 .     SOR_LOCAL_FORWARD_SWEEP - local forward SOR
3721 .     SOR_LOCAL_BACKWARD_SWEEP - local forward SOR
3722 .     SOR_LOCAL_SYMMETRIC_SWEEP - local SSOR
3723 .     SOR_APPLY_UPPER, SOR_APPLY_LOWER - applies
3724          upper/lower triangular part of matrix to
3725          vector (with omega)
3726 .     SOR_ZERO_INITIAL_GUESS - zero initial guess
3727 
3728    Notes:
3729    SOR_LOCAL_FORWARD_SWEEP, SOR_LOCAL_BACKWARD_SWEEP, and
3730    SOR_LOCAL_SYMMETRIC_SWEEP perform separate independent smoothings
3731    on each processor.
3732 
3733    Application programmers will not generally use MatSOR() directly,
3734    but instead will employ the KSP/PC interface.
3735 
3736    Notes: for BAIJ, SBAIJ, and AIJ matrices with Inodes this does a block SOR smoothing, otherwise it does a pointwise smoothing
3737 
3738    Notes for Advanced Users:
3739    The flags are implemented as bitwise inclusive or operations.
3740    For example, use (SOR_ZERO_INITIAL_GUESS | SOR_SYMMETRIC_SWEEP)
3741    to specify a zero initial guess for SSOR.
3742 
3743    Most users should employ the simplified KSP interface for linear solvers
3744    instead of working directly with matrix algebra routines such as this.
3745    See, e.g., KSPCreate().
3746 
3747    Vectors x and b CANNOT be the same
3748 
3749    Developer Note: We should add block SOR support for AIJ matrices with block size set to great than one and no inodes
3750 
3751    Level: developer
3752 
3753    Concepts: matrices^relaxation
3754    Concepts: matrices^SOR
3755    Concepts: matrices^Gauss-Seidel
3756 
3757 @*/
3758 PetscErrorCode MatSOR(Mat mat,Vec b,PetscReal omega,MatSORType flag,PetscReal shift,PetscInt its,PetscInt lits,Vec x)
3759 {
3760   PetscErrorCode ierr;
3761 
3762   PetscFunctionBegin;
3763   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
3764   PetscValidType(mat,1);
3765   PetscValidHeaderSpecific(b,VEC_CLASSID,2);
3766   PetscValidHeaderSpecific(x,VEC_CLASSID,8);
3767   PetscCheckSameComm(mat,1,b,2);
3768   PetscCheckSameComm(mat,1,x,8);
3769   if (!mat->ops->sor) SETERRQ1(PetscObjectComm((PetscObject)mat),PETSC_ERR_SUP,"Mat type %s",((PetscObject)mat)->type_name);
3770   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
3771   if (mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
3772   if (mat->cmap->N != x->map->N) SETERRQ2(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_SIZ,"Mat mat,Vec x: global dim %D %D",mat->cmap->N,x->map->N);
3773   if (mat->rmap->N != b->map->N) SETERRQ2(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_SIZ,"Mat mat,Vec b: global dim %D %D",mat->rmap->N,b->map->N);
3774   if (mat->rmap->n != b->map->n) SETERRQ2(PETSC_COMM_SELF,PETSC_ERR_ARG_SIZ,"Mat mat,Vec b: local dim %D %D",mat->rmap->n,b->map->n);
3775   if (its <= 0) SETERRQ1(PETSC_COMM_SELF,PETSC_ERR_ARG_WRONG,"Relaxation requires global its %D positive",its);
3776   if (lits <= 0) SETERRQ1(PETSC_COMM_SELF,PETSC_ERR_ARG_WRONG,"Relaxation requires local its %D positive",lits);
3777   if (b == x) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_IDN,"b and x vector cannot be the same");
3778 
3779   MatCheckPreallocated(mat,1);
3780   ierr = PetscLogEventBegin(MAT_SOR,mat,b,x,0);CHKERRQ(ierr);
3781   ierr =(*mat->ops->sor)(mat,b,omega,flag,shift,its,lits,x);CHKERRQ(ierr);
3782   ierr = PetscLogEventEnd(MAT_SOR,mat,b,x,0);CHKERRQ(ierr);
3783   ierr = PetscObjectStateIncrease((PetscObject)x);CHKERRQ(ierr);
3784   PetscFunctionReturn(0);
3785 }
3786 
3787 /*
3788       Default matrix copy routine.
3789 */
3790 PetscErrorCode MatCopy_Basic(Mat A,Mat B,MatStructure str)
3791 {
3792   PetscErrorCode    ierr;
3793   PetscInt          i,rstart = 0,rend = 0,nz;
3794   const PetscInt    *cwork;
3795   const PetscScalar *vwork;
3796 
3797   PetscFunctionBegin;
3798   if (B->assembled) {
3799     ierr = MatZeroEntries(B);CHKERRQ(ierr);
3800   }
3801   ierr = MatGetOwnershipRange(A,&rstart,&rend);CHKERRQ(ierr);
3802   for (i=rstart; i<rend; i++) {
3803     ierr = MatGetRow(A,i,&nz,&cwork,&vwork);CHKERRQ(ierr);
3804     ierr = MatSetValues(B,1,&i,nz,cwork,vwork,INSERT_VALUES);CHKERRQ(ierr);
3805     ierr = MatRestoreRow(A,i,&nz,&cwork,&vwork);CHKERRQ(ierr);
3806   }
3807   ierr = MatAssemblyBegin(B,MAT_FINAL_ASSEMBLY);CHKERRQ(ierr);
3808   ierr = MatAssemblyEnd(B,MAT_FINAL_ASSEMBLY);CHKERRQ(ierr);
3809   ierr = PetscObjectStateIncrease((PetscObject)B);CHKERRQ(ierr);
3810   PetscFunctionReturn(0);
3811 }
3812 
3813 /*@
3814    MatCopy - Copys a matrix to another matrix.
3815 
3816    Collective on Mat
3817 
3818    Input Parameters:
3819 +  A - the matrix
3820 -  str - SAME_NONZERO_PATTERN or DIFFERENT_NONZERO_PATTERN
3821 
3822    Output Parameter:
3823 .  B - where the copy is put
3824 
3825    Notes:
3826    If you use SAME_NONZERO_PATTERN then the two matrices had better have the
3827    same nonzero pattern or the routine will crash.
3828 
3829    MatCopy() copies the matrix entries of a matrix to another existing
3830    matrix (after first zeroing the second matrix).  A related routine is
3831    MatConvert(), which first creates a new matrix and then copies the data.
3832 
3833    Level: intermediate
3834 
3835    Concepts: matrices^copying
3836 
3837 .seealso: MatConvert(), MatDuplicate()
3838 
3839 @*/
3840 PetscErrorCode MatCopy(Mat A,Mat B,MatStructure str)
3841 {
3842   PetscErrorCode ierr;
3843   PetscInt       i;
3844 
3845   PetscFunctionBegin;
3846   PetscValidHeaderSpecific(A,MAT_CLASSID,1);
3847   PetscValidHeaderSpecific(B,MAT_CLASSID,2);
3848   PetscValidType(A,1);
3849   PetscValidType(B,2);
3850   PetscCheckSameComm(A,1,B,2);
3851   MatCheckPreallocated(B,2);
3852   if (!A->assembled) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
3853   if (A->factortype) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
3854   if (A->rmap->N != B->rmap->N || A->cmap->N != B->cmap->N) SETERRQ4(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_SIZ,"Mat A,Mat B: global dim (%D,%D) (%D,%D)",A->rmap->N,B->rmap->N,A->cmap->N,B->cmap->N);
3855   MatCheckPreallocated(A,1);
3856 
3857   ierr = PetscLogEventBegin(MAT_Copy,A,B,0,0);CHKERRQ(ierr);
3858   if (A->ops->copy) {
3859     ierr = (*A->ops->copy)(A,B,str);CHKERRQ(ierr);
3860   } else { /* generic conversion */
3861     ierr = MatCopy_Basic(A,B,str);CHKERRQ(ierr);
3862   }
3863 
3864   B->stencil.dim = A->stencil.dim;
3865   B->stencil.noc = A->stencil.noc;
3866   for (i=0; i<=A->stencil.dim; i++) {
3867     B->stencil.dims[i]   = A->stencil.dims[i];
3868     B->stencil.starts[i] = A->stencil.starts[i];
3869   }
3870 
3871   ierr = PetscLogEventEnd(MAT_Copy,A,B,0,0);CHKERRQ(ierr);
3872   ierr = PetscObjectStateIncrease((PetscObject)B);CHKERRQ(ierr);
3873   PetscFunctionReturn(0);
3874 }
3875 
3876 /*@C
3877    MatConvert - Converts a matrix to another matrix, either of the same
3878    or different type.
3879 
3880    Collective on Mat
3881 
3882    Input Parameters:
3883 +  mat - the matrix
3884 .  newtype - new matrix type.  Use MATSAME to create a new matrix of the
3885    same type as the original matrix.
3886 -  reuse - denotes if the destination matrix is to be created or reused.
3887    Use MAT_INPLACE_MATRIX for inplace conversion (that is when you want the input mat to be changed to contain the matrix in the new format), otherwise use
3888    MAT_INITIAL_MATRIX or MAT_REUSE_MATRIX (can only be used after the first call was made with MAT_INITIAL_MATRIX, causes the matrix space in M to be reused).
3889 
3890    Output Parameter:
3891 .  M - pointer to place new matrix
3892 
3893    Notes:
3894    MatConvert() first creates a new matrix and then copies the data from
3895    the first matrix.  A related routine is MatCopy(), which copies the matrix
3896    entries of one matrix to another already existing matrix context.
3897 
3898    Cannot be used to convert a sequential matrix to parallel or parallel to sequential,
3899    the MPI communicator of the generated matrix is always the same as the communicator
3900    of the input matrix.
3901 
3902    Level: intermediate
3903 
3904    Concepts: matrices^converting between storage formats
3905 
3906 .seealso: MatCopy(), MatDuplicate()
3907 @*/
3908 PetscErrorCode MatConvert(Mat mat, MatType newtype,MatReuse reuse,Mat *M)
3909 {
3910   PetscErrorCode ierr;
3911   PetscBool      sametype,issame,flg;
3912   char           convname[256],mtype[256];
3913   Mat            B;
3914 
3915   PetscFunctionBegin;
3916   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
3917   PetscValidType(mat,1);
3918   PetscValidPointer(M,3);
3919   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
3920   if (mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
3921   MatCheckPreallocated(mat,1);
3922   ierr = MatSetOption(mat,MAT_NEW_NONZERO_LOCATION_ERR,PETSC_FALSE);CHKERRQ(ierr);
3923 
3924   ierr = PetscOptionsGetString(((PetscObject)mat)->options,((PetscObject)mat)->prefix,"-matconvert_type",mtype,256,&flg);CHKERRQ(ierr);
3925   if (flg) {
3926     newtype = mtype;
3927   }
3928   ierr = PetscObjectTypeCompare((PetscObject)mat,newtype,&sametype);CHKERRQ(ierr);
3929   ierr = PetscStrcmp(newtype,"same",&issame);CHKERRQ(ierr);
3930   if ((reuse == MAT_INPLACE_MATRIX) && (mat != *M)) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_SUP,"MAT_INPLACE_MATRIX requires same input and output matrix");
3931   if ((reuse == MAT_REUSE_MATRIX) && (mat == *M)) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_SUP,"MAT_REUSE_MATRIX means reuse matrix in final argument, perhaps you mean MAT_INPLACE_MATRIX");
3932 
3933   if ((reuse == MAT_INPLACE_MATRIX) && (issame || sametype)) PetscFunctionReturn(0);
3934 
3935   if ((sametype || issame) && (reuse==MAT_INITIAL_MATRIX) && mat->ops->duplicate) {
3936     ierr = (*mat->ops->duplicate)(mat,MAT_COPY_VALUES,M);CHKERRQ(ierr);
3937   } else {
3938     PetscErrorCode (*conv)(Mat, MatType,MatReuse,Mat*)=NULL;
3939     const char     *prefix[3] = {"seq","mpi",""};
3940     PetscInt       i;
3941     /*
3942        Order of precedence:
3943        1) See if a specialized converter is known to the current matrix.
3944        2) See if a specialized converter is known to the desired matrix class.
3945        3) See if a good general converter is registered for the desired class
3946           (as of 6/27/03 only MATMPIADJ falls into this category).
3947        4) See if a good general converter is known for the current matrix.
3948        5) Use a really basic converter.
3949     */
3950 
3951     /* 1) See if a specialized converter is known to the current matrix and the desired class */
3952     for (i=0; i<3; i++) {
3953       ierr = PetscStrcpy(convname,"MatConvert_");CHKERRQ(ierr);
3954       ierr = PetscStrcat(convname,((PetscObject)mat)->type_name);CHKERRQ(ierr);
3955       ierr = PetscStrcat(convname,"_");CHKERRQ(ierr);
3956       ierr = PetscStrcat(convname,prefix[i]);CHKERRQ(ierr);
3957       ierr = PetscStrcat(convname,issame ? ((PetscObject)mat)->type_name : newtype);CHKERRQ(ierr);
3958       ierr = PetscStrcat(convname,"_C");CHKERRQ(ierr);
3959       ierr = PetscObjectQueryFunction((PetscObject)mat,convname,&conv);CHKERRQ(ierr);
3960       if (conv) goto foundconv;
3961     }
3962 
3963     /* 2)  See if a specialized converter is known to the desired matrix class. */
3964     ierr = MatCreate(PetscObjectComm((PetscObject)mat),&B);CHKERRQ(ierr);
3965     ierr = MatSetSizes(B,mat->rmap->n,mat->cmap->n,mat->rmap->N,mat->cmap->N);CHKERRQ(ierr);
3966     ierr = MatSetType(B,newtype);CHKERRQ(ierr);
3967     for (i=0; i<3; i++) {
3968       ierr = PetscStrcpy(convname,"MatConvert_");CHKERRQ(ierr);
3969       ierr = PetscStrcat(convname,((PetscObject)mat)->type_name);CHKERRQ(ierr);
3970       ierr = PetscStrcat(convname,"_");CHKERRQ(ierr);
3971       ierr = PetscStrcat(convname,prefix[i]);CHKERRQ(ierr);
3972       ierr = PetscStrcat(convname,newtype);CHKERRQ(ierr);
3973       ierr = PetscStrcat(convname,"_C");CHKERRQ(ierr);
3974       ierr = PetscObjectQueryFunction((PetscObject)B,convname,&conv);CHKERRQ(ierr);
3975       if (conv) {
3976         ierr = MatDestroy(&B);CHKERRQ(ierr);
3977         goto foundconv;
3978       }
3979     }
3980 
3981     /* 3) See if a good general converter is registered for the desired class */
3982     conv = B->ops->convertfrom;
3983     ierr = MatDestroy(&B);CHKERRQ(ierr);
3984     if (conv) goto foundconv;
3985 
3986     /* 4) See if a good general converter is known for the current matrix */
3987     if (mat->ops->convert) {
3988       conv = mat->ops->convert;
3989     }
3990     if (conv) goto foundconv;
3991 
3992     /* 5) Use a really basic converter. */
3993     conv = MatConvert_Basic;
3994 
3995 foundconv:
3996     ierr = PetscLogEventBegin(MAT_Convert,mat,0,0,0);CHKERRQ(ierr);
3997     ierr = (*conv)(mat,newtype,reuse,M);CHKERRQ(ierr);
3998     ierr = PetscLogEventEnd(MAT_Convert,mat,0,0,0);CHKERRQ(ierr);
3999   }
4000   ierr = PetscObjectStateIncrease((PetscObject)*M);CHKERRQ(ierr);
4001 
4002   /* Copy Mat options */
4003   if (mat->symmetric) {ierr = MatSetOption(*M,MAT_SYMMETRIC,PETSC_TRUE);CHKERRQ(ierr);}
4004   if (mat->hermitian) {ierr = MatSetOption(*M,MAT_HERMITIAN,PETSC_TRUE);CHKERRQ(ierr);}
4005   PetscFunctionReturn(0);
4006 }
4007 
4008 /*@C
4009    MatFactorGetSolverPackage - Returns name of the package providing the factorization routines
4010 
4011    Not Collective
4012 
4013    Input Parameter:
4014 .  mat - the matrix, must be a factored matrix
4015 
4016    Output Parameter:
4017 .   type - the string name of the package (do not free this string)
4018 
4019    Notes:
4020       In Fortran you pass in a empty string and the package name will be copied into it.
4021     (Make sure the string is long enough)
4022 
4023    Level: intermediate
4024 
4025 .seealso: MatCopy(), MatDuplicate(), MatGetFactorAvailable(), MatGetFactor()
4026 @*/
4027 PetscErrorCode MatFactorGetSolverPackage(Mat mat, const MatSolverPackage *type)
4028 {
4029   PetscErrorCode ierr, (*conv)(Mat,const MatSolverPackage*);
4030 
4031   PetscFunctionBegin;
4032   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
4033   PetscValidType(mat,1);
4034   if (!mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Only for factored matrix");
4035   ierr = PetscObjectQueryFunction((PetscObject)mat,"MatFactorGetSolverPackage_C",&conv);CHKERRQ(ierr);
4036   if (!conv) {
4037     *type = MATSOLVERPETSC;
4038   } else {
4039     ierr = (*conv)(mat,type);CHKERRQ(ierr);
4040   }
4041   PetscFunctionReturn(0);
4042 }
4043 
4044 typedef struct _MatSolverPackageForSpecifcType* MatSolverPackageForSpecifcType;
4045 struct _MatSolverPackageForSpecifcType {
4046   MatType                        mtype;
4047   PetscErrorCode                 (*getfactor[4])(Mat,MatFactorType,Mat*);
4048   MatSolverPackageForSpecifcType next;
4049 };
4050 
4051 typedef struct _MatSolverPackageHolder* MatSolverPackageHolder;
4052 struct _MatSolverPackageHolder {
4053   char                           *name;
4054   MatSolverPackageForSpecifcType handlers;
4055   MatSolverPackageHolder         next;
4056 };
4057 
4058 static MatSolverPackageHolder MatSolverPackageHolders = NULL;
4059 
4060 /*@C
4061    MatSolvePackageRegister - Registers a MatSolverPackage that works for a particular matrix type
4062 
4063    Input Parameters:
4064 +    package - name of the package, for example petsc or superlu
4065 .    mtype - the matrix type that works with this package
4066 .    ftype - the type of factorization supported by the package
4067 -    getfactor - routine that will create the factored matrix ready to be used
4068 
4069     Level: intermediate
4070 
4071 .seealso: MatCopy(), MatDuplicate(), MatGetFactorAvailable()
4072 @*/
4073 PetscErrorCode MatSolverPackageRegister(const MatSolverPackage package,const MatType mtype,MatFactorType ftype,PetscErrorCode (*getfactor)(Mat,MatFactorType,Mat*))
4074 {
4075   PetscErrorCode                 ierr;
4076   MatSolverPackageHolder         next = MatSolverPackageHolders,prev;
4077   PetscBool                      flg;
4078   MatSolverPackageForSpecifcType inext,iprev = NULL;
4079 
4080   PetscFunctionBegin;
4081   if (!next) {
4082     ierr = PetscNew(&MatSolverPackageHolders);CHKERRQ(ierr);
4083     ierr = PetscStrallocpy(package,&MatSolverPackageHolders->name);CHKERRQ(ierr);
4084     ierr = PetscNew(&MatSolverPackageHolders->handlers);CHKERRQ(ierr);
4085     ierr = PetscStrallocpy(mtype,(char **)&MatSolverPackageHolders->handlers->mtype);CHKERRQ(ierr);
4086     MatSolverPackageHolders->handlers->getfactor[(int)ftype-1] = getfactor;
4087     PetscFunctionReturn(0);
4088   }
4089   while (next) {
4090     ierr = PetscStrcasecmp(package,next->name,&flg);CHKERRQ(ierr);
4091     if (flg) {
4092       if (!next->handlers) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_PLIB,"MatSolverPackageHolder is missing handlers");
4093       inext = next->handlers;
4094       while (inext) {
4095         ierr = PetscStrcasecmp(mtype,inext->mtype,&flg);CHKERRQ(ierr);
4096         if (flg) {
4097           inext->getfactor[(int)ftype-1] = getfactor;
4098           PetscFunctionReturn(0);
4099         }
4100         iprev = inext;
4101         inext = inext->next;
4102       }
4103       ierr = PetscNew(&iprev->next);CHKERRQ(ierr);
4104       ierr = PetscStrallocpy(mtype,(char **)&iprev->next->mtype);CHKERRQ(ierr);
4105       iprev->next->getfactor[(int)ftype-1] = getfactor;
4106       PetscFunctionReturn(0);
4107     }
4108     prev = next;
4109     next = next->next;
4110   }
4111   ierr = PetscNew(&prev->next);CHKERRQ(ierr);
4112   ierr = PetscStrallocpy(package,&prev->next->name);CHKERRQ(ierr);
4113   ierr = PetscNew(&prev->next->handlers);CHKERRQ(ierr);
4114   ierr = PetscStrallocpy(mtype,(char **)&prev->next->handlers->mtype);CHKERRQ(ierr);
4115   prev->next->handlers->getfactor[(int)ftype-1] = getfactor;
4116   PetscFunctionReturn(0);
4117 }
4118 
4119 /*@C
4120    MatSolvePackageGet - Get's the function that creates the factor matrix if it exist
4121 
4122    Input Parameters:
4123 +    package - name of the package, for example petsc or superlu
4124 .    ftype - the type of factorization supported by the package
4125 -    mtype - the matrix type that works with this package
4126 
4127    Output Parameters:
4128 +   foundpackage - PETSC_TRUE if the package was registered
4129 .   foundmtype - PETSC_TRUE if the package supports the requested mtype
4130 -   getfactor - routine that will create the factored matrix ready to be used or NULL if not found
4131 
4132     Level: intermediate
4133 
4134 .seealso: MatCopy(), MatDuplicate(), MatGetFactorAvailable()
4135 @*/
4136 PetscErrorCode MatSolverPackageGet(const MatSolverPackage package,const MatType mtype,MatFactorType ftype,PetscBool *foundpackage,PetscBool *foundmtype,PetscErrorCode (**getfactor)(Mat,MatFactorType,Mat*))
4137 {
4138   PetscErrorCode                 ierr;
4139   MatSolverPackageHolder         next = MatSolverPackageHolders;
4140   PetscBool                      flg;
4141   MatSolverPackageForSpecifcType inext;
4142 
4143   PetscFunctionBegin;
4144   if (foundpackage) *foundpackage = PETSC_FALSE;
4145   if (foundmtype)   *foundmtype   = PETSC_FALSE;
4146   if (getfactor)    *getfactor    = NULL;
4147 
4148   if (package) {
4149     while (next) {
4150       ierr = PetscStrcasecmp(package,next->name,&flg);CHKERRQ(ierr);
4151       if (flg) {
4152         if (foundpackage) *foundpackage = PETSC_TRUE;
4153         inext = next->handlers;
4154         while (inext) {
4155           ierr = PetscStrcasecmp(mtype,inext->mtype,&flg);CHKERRQ(ierr);
4156           if (flg) {
4157             if (foundmtype) *foundmtype = PETSC_TRUE;
4158             if (getfactor)  *getfactor  = inext->getfactor[(int)ftype-1];
4159             PetscFunctionReturn(0);
4160           }
4161           inext = inext->next;
4162         }
4163       }
4164       next = next->next;
4165     }
4166   } else {
4167     while (next) {
4168       inext = next->handlers;
4169       while (inext) {
4170         ierr = PetscStrcasecmp(mtype,inext->mtype,&flg);CHKERRQ(ierr);
4171         if (flg && inext->getfactor[(int)ftype-1]) {
4172           if (foundpackage) *foundpackage = PETSC_TRUE;
4173           if (foundmtype)   *foundmtype   = PETSC_TRUE;
4174           if (getfactor)    *getfactor    = inext->getfactor[(int)ftype-1];
4175           PetscFunctionReturn(0);
4176         }
4177         inext = inext->next;
4178       }
4179       next = next->next;
4180     }
4181   }
4182   PetscFunctionReturn(0);
4183 }
4184 
4185 PetscErrorCode MatSolverPackageDestroy(void)
4186 {
4187   PetscErrorCode                 ierr;
4188   MatSolverPackageHolder         next = MatSolverPackageHolders,prev;
4189   MatSolverPackageForSpecifcType inext,iprev;
4190 
4191   PetscFunctionBegin;
4192   while (next) {
4193     ierr = PetscFree(next->name);CHKERRQ(ierr);
4194     inext = next->handlers;
4195     while (inext) {
4196       ierr = PetscFree(inext->mtype);CHKERRQ(ierr);
4197       iprev = inext;
4198       inext = inext->next;
4199       ierr = PetscFree(iprev);CHKERRQ(ierr);
4200     }
4201     prev = next;
4202     next = next->next;
4203     ierr = PetscFree(prev);CHKERRQ(ierr);
4204   }
4205   MatSolverPackageHolders = NULL;
4206   PetscFunctionReturn(0);
4207 }
4208 
4209 /*@C
4210    MatGetFactor - Returns a matrix suitable to calls to MatXXFactorSymbolic()
4211 
4212    Collective on Mat
4213 
4214    Input Parameters:
4215 +  mat - the matrix
4216 .  type - name of solver type, for example, superlu, petsc (to use PETSc's default)
4217 -  ftype - factor type, MAT_FACTOR_LU, MAT_FACTOR_CHOLESKY, MAT_FACTOR_ICC, MAT_FACTOR_ILU,
4218 
4219    Output Parameters:
4220 .  f - the factor matrix used with MatXXFactorSymbolic() calls
4221 
4222    Notes:
4223       Some PETSc matrix formats have alternative solvers available that are contained in alternative packages
4224      such as pastix, superlu, mumps etc.
4225 
4226       PETSc must have been ./configure to use the external solver, using the option --download-package
4227 
4228    Level: intermediate
4229 
4230 .seealso: MatCopy(), MatDuplicate(), MatGetFactorAvailable()
4231 @*/
4232 PetscErrorCode MatGetFactor(Mat mat, const MatSolverPackage type,MatFactorType ftype,Mat *f)
4233 {
4234   PetscErrorCode ierr,(*conv)(Mat,MatFactorType,Mat*);
4235   PetscBool      foundpackage,foundmtype;
4236 
4237   PetscFunctionBegin;
4238   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
4239   PetscValidType(mat,1);
4240 
4241   if (mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
4242   MatCheckPreallocated(mat,1);
4243 
4244   ierr = MatSolverPackageGet(type,((PetscObject)mat)->type_name,ftype,&foundpackage,&foundmtype,&conv);CHKERRQ(ierr);
4245   if (!foundpackage) {
4246     if (type) {
4247       SETERRQ2(PetscObjectComm((PetscObject)mat),PETSC_ERR_MISSING_FACTOR,"Could not locate solver package %s. Perhaps you must ./configure with --download-%s",type,type);
4248     } else {
4249       SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_MISSING_FACTOR,"Could not locate a solver package. Perhaps you must ./configure with --download-<package>");
4250     }
4251   }
4252 
4253   if (!foundmtype) SETERRQ2(PetscObjectComm((PetscObject)mat),PETSC_ERR_MISSING_FACTOR,"MatSolverPackage %s does not support matrix type %s",type,((PetscObject)mat)->type_name);
4254   if (!conv) SETERRQ3(PetscObjectComm((PetscObject)mat),PETSC_ERR_MISSING_FACTOR,"MatSolverPackage %s does not support factorization type %s for  matrix type %s",type,MatFactorTypes[ftype],((PetscObject)mat)->type_name);
4255 
4256   ierr = (*conv)(mat,ftype,f);CHKERRQ(ierr);
4257   PetscFunctionReturn(0);
4258 }
4259 
4260 /*@C
4261    MatGetFactorAvailable - Returns a a flag if matrix supports particular package and factor type
4262 
4263    Not Collective
4264 
4265    Input Parameters:
4266 +  mat - the matrix
4267 .  type - name of solver type, for example, superlu, petsc (to use PETSc's default)
4268 -  ftype - factor type, MAT_FACTOR_LU, MAT_FACTOR_CHOLESKY, MAT_FACTOR_ICC, MAT_FACTOR_ILU,
4269 
4270    Output Parameter:
4271 .    flg - PETSC_TRUE if the factorization is available
4272 
4273    Notes:
4274       Some PETSc matrix formats have alternative solvers available that are contained in alternative packages
4275      such as pastix, superlu, mumps etc.
4276 
4277       PETSc must have been ./configure to use the external solver, using the option --download-package
4278 
4279    Level: intermediate
4280 
4281 .seealso: MatCopy(), MatDuplicate(), MatGetFactor()
4282 @*/
4283 PetscErrorCode MatGetFactorAvailable(Mat mat, const MatSolverPackage type,MatFactorType ftype,PetscBool  *flg)
4284 {
4285   PetscErrorCode ierr, (*gconv)(Mat,MatFactorType,Mat*);
4286 
4287   PetscFunctionBegin;
4288   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
4289   PetscValidType(mat,1);
4290 
4291   if (mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
4292   MatCheckPreallocated(mat,1);
4293 
4294   *flg = PETSC_FALSE;
4295   ierr = MatSolverPackageGet(type,((PetscObject)mat)->type_name,ftype,NULL,NULL,&gconv);CHKERRQ(ierr);
4296   if (gconv) {
4297     *flg = PETSC_TRUE;
4298   }
4299   PetscFunctionReturn(0);
4300 }
4301 
4302 #include <petscdmtypes.h>
4303 
4304 /*@
4305    MatDuplicate - Duplicates a matrix including the non-zero structure.
4306 
4307    Collective on Mat
4308 
4309    Input Parameters:
4310 +  mat - the matrix
4311 -  op - either MAT_DO_NOT_COPY_VALUES or MAT_COPY_VALUES, cause it to copy the numerical values in the matrix
4312         MAT_SHARE_NONZERO_PATTERN to share the nonzero patterns with the previous matrix and not copy them.
4313 
4314    Output Parameter:
4315 .  M - pointer to place new matrix
4316 
4317    Level: intermediate
4318 
4319    Concepts: matrices^duplicating
4320 
4321     Notes: You cannot change the nonzero pattern for the parent or child matrix if you use MAT_SHARE_NONZERO_PATTERN.
4322 
4323 .seealso: MatCopy(), MatConvert()
4324 @*/
4325 PetscErrorCode MatDuplicate(Mat mat,MatDuplicateOption op,Mat *M)
4326 {
4327   PetscErrorCode ierr;
4328   Mat            B;
4329   PetscInt       i;
4330   DM             dm;
4331 
4332   PetscFunctionBegin;
4333   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
4334   PetscValidType(mat,1);
4335   PetscValidPointer(M,3);
4336   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
4337   if (mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
4338   MatCheckPreallocated(mat,1);
4339 
4340   *M = 0;
4341   if (!mat->ops->duplicate) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_SUP,"Not written for this matrix type");
4342   ierr = PetscLogEventBegin(MAT_Convert,mat,0,0,0);CHKERRQ(ierr);
4343   ierr = (*mat->ops->duplicate)(mat,op,M);CHKERRQ(ierr);
4344   B    = *M;
4345 
4346   B->stencil.dim = mat->stencil.dim;
4347   B->stencil.noc = mat->stencil.noc;
4348   for (i=0; i<=mat->stencil.dim; i++) {
4349     B->stencil.dims[i]   = mat->stencil.dims[i];
4350     B->stencil.starts[i] = mat->stencil.starts[i];
4351   }
4352 
4353   B->nooffproczerorows = mat->nooffproczerorows;
4354   B->nooffprocentries  = mat->nooffprocentries;
4355 
4356   ierr = PetscObjectQuery((PetscObject) mat, "__PETSc_dm", (PetscObject*) &dm);CHKERRQ(ierr);
4357   if (dm) {
4358     ierr = PetscObjectCompose((PetscObject) B, "__PETSc_dm", (PetscObject) dm);CHKERRQ(ierr);
4359   }
4360   ierr = PetscLogEventEnd(MAT_Convert,mat,0,0,0);CHKERRQ(ierr);
4361   ierr = PetscObjectStateIncrease((PetscObject)B);CHKERRQ(ierr);
4362   PetscFunctionReturn(0);
4363 }
4364 
4365 /*@
4366    MatGetDiagonal - Gets the diagonal of a matrix.
4367 
4368    Logically Collective on Mat and Vec
4369 
4370    Input Parameters:
4371 +  mat - the matrix
4372 -  v - the vector for storing the diagonal
4373 
4374    Output Parameter:
4375 .  v - the diagonal of the matrix
4376 
4377    Level: intermediate
4378 
4379    Note:
4380    Currently only correct in parallel for square matrices.
4381 
4382    Concepts: matrices^accessing diagonals
4383 
4384 .seealso: MatGetRow(), MatGetSubMatrices(), MatGetSubmatrix(), MatGetRowMaxAbs()
4385 @*/
4386 PetscErrorCode MatGetDiagonal(Mat mat,Vec v)
4387 {
4388   PetscErrorCode ierr;
4389 
4390   PetscFunctionBegin;
4391   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
4392   PetscValidType(mat,1);
4393   PetscValidHeaderSpecific(v,VEC_CLASSID,2);
4394   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
4395   if (!mat->ops->getdiagonal) SETERRQ1(PetscObjectComm((PetscObject)mat),PETSC_ERR_SUP,"Mat type %s",((PetscObject)mat)->type_name);
4396   MatCheckPreallocated(mat,1);
4397 
4398   ierr = (*mat->ops->getdiagonal)(mat,v);CHKERRQ(ierr);
4399   ierr = PetscObjectStateIncrease((PetscObject)v);CHKERRQ(ierr);
4400   PetscFunctionReturn(0);
4401 }
4402 
4403 /*@C
4404    MatGetRowMin - Gets the minimum value (of the real part) of each
4405         row of the matrix
4406 
4407    Logically Collective on Mat and Vec
4408 
4409    Input Parameters:
4410 .  mat - the matrix
4411 
4412    Output Parameter:
4413 +  v - the vector for storing the maximums
4414 -  idx - the indices of the column found for each row (optional)
4415 
4416    Level: intermediate
4417 
4418    Notes: The result of this call are the same as if one converted the matrix to dense format
4419       and found the minimum value in each row (i.e. the implicit zeros are counted as zeros).
4420 
4421     This code is only implemented for a couple of matrix formats.
4422 
4423    Concepts: matrices^getting row maximums
4424 
4425 .seealso: MatGetDiagonal(), MatGetSubMatrices(), MatGetSubmatrix(), MatGetRowMaxAbs(),
4426           MatGetRowMax()
4427 @*/
4428 PetscErrorCode MatGetRowMin(Mat mat,Vec v,PetscInt idx[])
4429 {
4430   PetscErrorCode ierr;
4431 
4432   PetscFunctionBegin;
4433   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
4434   PetscValidType(mat,1);
4435   PetscValidHeaderSpecific(v,VEC_CLASSID,2);
4436   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
4437   if (!mat->ops->getrowmax) SETERRQ1(PETSC_COMM_SELF,PETSC_ERR_SUP,"Mat type %s",((PetscObject)mat)->type_name);
4438   MatCheckPreallocated(mat,1);
4439 
4440   ierr = (*mat->ops->getrowmin)(mat,v,idx);CHKERRQ(ierr);
4441   ierr = PetscObjectStateIncrease((PetscObject)v);CHKERRQ(ierr);
4442   PetscFunctionReturn(0);
4443 }
4444 
4445 /*@C
4446    MatGetRowMinAbs - Gets the minimum value (in absolute value) of each
4447         row of the matrix
4448 
4449    Logically Collective on Mat and Vec
4450 
4451    Input Parameters:
4452 .  mat - the matrix
4453 
4454    Output Parameter:
4455 +  v - the vector for storing the minimums
4456 -  idx - the indices of the column found for each row (or NULL if not needed)
4457 
4458    Level: intermediate
4459 
4460    Notes: if a row is completely empty or has only 0.0 values then the idx[] value for that
4461     row is 0 (the first column).
4462 
4463     This code is only implemented for a couple of matrix formats.
4464 
4465    Concepts: matrices^getting row maximums
4466 
4467 .seealso: MatGetDiagonal(), MatGetSubMatrices(), MatGetSubmatrix(), MatGetRowMax(), MatGetRowMaxAbs(), MatGetRowMin()
4468 @*/
4469 PetscErrorCode MatGetRowMinAbs(Mat mat,Vec v,PetscInt idx[])
4470 {
4471   PetscErrorCode ierr;
4472 
4473   PetscFunctionBegin;
4474   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
4475   PetscValidType(mat,1);
4476   PetscValidHeaderSpecific(v,VEC_CLASSID,2);
4477   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
4478   if (!mat->ops->getrowminabs) SETERRQ1(PetscObjectComm((PetscObject)mat),PETSC_ERR_SUP,"Mat type %s",((PetscObject)mat)->type_name);
4479   MatCheckPreallocated(mat,1);
4480   if (idx) {ierr = PetscMemzero(idx,mat->rmap->n*sizeof(PetscInt));CHKERRQ(ierr);}
4481 
4482   ierr = (*mat->ops->getrowminabs)(mat,v,idx);CHKERRQ(ierr);
4483   ierr = PetscObjectStateIncrease((PetscObject)v);CHKERRQ(ierr);
4484   PetscFunctionReturn(0);
4485 }
4486 
4487 /*@C
4488    MatGetRowMax - Gets the maximum value (of the real part) of each
4489         row of the matrix
4490 
4491    Logically Collective on Mat and Vec
4492 
4493    Input Parameters:
4494 .  mat - the matrix
4495 
4496    Output Parameter:
4497 +  v - the vector for storing the maximums
4498 -  idx - the indices of the column found for each row (optional)
4499 
4500    Level: intermediate
4501 
4502    Notes: The result of this call are the same as if one converted the matrix to dense format
4503       and found the minimum value in each row (i.e. the implicit zeros are counted as zeros).
4504 
4505     This code is only implemented for a couple of matrix formats.
4506 
4507    Concepts: matrices^getting row maximums
4508 
4509 .seealso: MatGetDiagonal(), MatGetSubMatrices(), MatGetSubmatrix(), MatGetRowMaxAbs(), MatGetRowMin()
4510 @*/
4511 PetscErrorCode MatGetRowMax(Mat mat,Vec v,PetscInt idx[])
4512 {
4513   PetscErrorCode ierr;
4514 
4515   PetscFunctionBegin;
4516   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
4517   PetscValidType(mat,1);
4518   PetscValidHeaderSpecific(v,VEC_CLASSID,2);
4519   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
4520   if (!mat->ops->getrowmax) SETERRQ1(PetscObjectComm((PetscObject)mat),PETSC_ERR_SUP,"Mat type %s",((PetscObject)mat)->type_name);
4521   MatCheckPreallocated(mat,1);
4522 
4523   ierr = (*mat->ops->getrowmax)(mat,v,idx);CHKERRQ(ierr);
4524   ierr = PetscObjectStateIncrease((PetscObject)v);CHKERRQ(ierr);
4525   PetscFunctionReturn(0);
4526 }
4527 
4528 /*@C
4529    MatGetRowMaxAbs - Gets the maximum value (in absolute value) of each
4530         row of the matrix
4531 
4532    Logically Collective on Mat and Vec
4533 
4534    Input Parameters:
4535 .  mat - the matrix
4536 
4537    Output Parameter:
4538 +  v - the vector for storing the maximums
4539 -  idx - the indices of the column found for each row (or NULL if not needed)
4540 
4541    Level: intermediate
4542 
4543    Notes: if a row is completely empty or has only 0.0 values then the idx[] value for that
4544     row is 0 (the first column).
4545 
4546     This code is only implemented for a couple of matrix formats.
4547 
4548    Concepts: matrices^getting row maximums
4549 
4550 .seealso: MatGetDiagonal(), MatGetSubMatrices(), MatGetSubmatrix(), MatGetRowMax(), MatGetRowMin()
4551 @*/
4552 PetscErrorCode MatGetRowMaxAbs(Mat mat,Vec v,PetscInt idx[])
4553 {
4554   PetscErrorCode ierr;
4555 
4556   PetscFunctionBegin;
4557   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
4558   PetscValidType(mat,1);
4559   PetscValidHeaderSpecific(v,VEC_CLASSID,2);
4560   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
4561   if (!mat->ops->getrowmaxabs) SETERRQ1(PETSC_COMM_SELF,PETSC_ERR_SUP,"Mat type %s",((PetscObject)mat)->type_name);
4562   MatCheckPreallocated(mat,1);
4563   if (idx) {ierr = PetscMemzero(idx,mat->rmap->n*sizeof(PetscInt));CHKERRQ(ierr);}
4564 
4565   ierr = (*mat->ops->getrowmaxabs)(mat,v,idx);CHKERRQ(ierr);
4566   ierr = PetscObjectStateIncrease((PetscObject)v);CHKERRQ(ierr);
4567   PetscFunctionReturn(0);
4568 }
4569 
4570 /*@
4571    MatGetRowSum - Gets the sum of each row of the matrix
4572 
4573    Logically Collective on Mat and Vec
4574 
4575    Input Parameters:
4576 .  mat - the matrix
4577 
4578    Output Parameter:
4579 .  v - the vector for storing the sum of rows
4580 
4581    Level: intermediate
4582 
4583    Notes: This code is slow since it is not currently specialized for different formats
4584 
4585    Concepts: matrices^getting row sums
4586 
4587 .seealso: MatGetDiagonal(), MatGetSubMatrices(), MatGetSubmatrix(), MatGetRowMax(), MatGetRowMin()
4588 @*/
4589 PetscErrorCode MatGetRowSum(Mat mat, Vec v)
4590 {
4591   PetscInt       start = 0, end = 0, row;
4592   PetscScalar    *array;
4593   PetscErrorCode ierr;
4594 
4595   PetscFunctionBegin;
4596   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
4597   PetscValidType(mat,1);
4598   PetscValidHeaderSpecific(v,VEC_CLASSID,2);
4599   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
4600   MatCheckPreallocated(mat,1);
4601   ierr = MatGetOwnershipRange(mat, &start, &end);CHKERRQ(ierr);
4602   ierr = VecGetArray(v, &array);CHKERRQ(ierr);
4603   for (row = start; row < end; ++row) {
4604     PetscInt          ncols, col;
4605     const PetscInt    *cols;
4606     const PetscScalar *vals;
4607 
4608     array[row - start] = 0.0;
4609 
4610     ierr = MatGetRow(mat, row, &ncols, &cols, &vals);CHKERRQ(ierr);
4611     for (col = 0; col < ncols; col++) {
4612       array[row - start] += vals[col];
4613     }
4614     ierr = MatRestoreRow(mat, row, &ncols, &cols, &vals);CHKERRQ(ierr);
4615   }
4616   ierr = VecRestoreArray(v, &array);CHKERRQ(ierr);
4617   ierr = PetscObjectStateIncrease((PetscObject) v);CHKERRQ(ierr);
4618   PetscFunctionReturn(0);
4619 }
4620 
4621 /*@
4622    MatTranspose - Computes an in-place or out-of-place transpose of a matrix.
4623 
4624    Collective on Mat
4625 
4626    Input Parameter:
4627 +  mat - the matrix to transpose
4628 -  reuse - either MAT_INITIAL_MATRIX, MAT_REUSE_MATRIX, or MAT_INPLACE_MATRIX
4629 
4630    Output Parameters:
4631 .  B - the transpose
4632 
4633    Notes:
4634      If you use MAT_INPLACE_MATRIX then you must pass in &mat for B
4635 
4636      MAT_REUSE_MATRIX causes the B matrix from a previous call to this function with MAT_INITIAL_MATRIX to be used
4637 
4638      Consider using MatCreateTranspose() instead if you only need a matrix that behaves like the transpose, but don't need the storage to be changed.
4639 
4640    Level: intermediate
4641 
4642    Concepts: matrices^transposing
4643 
4644 .seealso: MatMultTranspose(), MatMultTransposeAdd(), MatIsTranspose(), MatReuse
4645 @*/
4646 PetscErrorCode MatTranspose(Mat mat,MatReuse reuse,Mat *B)
4647 {
4648   PetscErrorCode ierr;
4649 
4650   PetscFunctionBegin;
4651   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
4652   PetscValidType(mat,1);
4653   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
4654   if (mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
4655   if (!mat->ops->transpose) SETERRQ1(PetscObjectComm((PetscObject)mat),PETSC_ERR_SUP,"Mat type %s",((PetscObject)mat)->type_name);
4656   if (reuse == MAT_INPLACE_MATRIX && mat != *B) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_SUP,"MAT_INPLACE_MATRIX requires last matrix to match first");
4657   if (reuse == MAT_REUSE_MATRIX && mat == *B) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_SUP,"Perhaps you mean MAT_INPLACE_MATRIX");
4658   MatCheckPreallocated(mat,1);
4659 
4660   ierr = PetscLogEventBegin(MAT_Transpose,mat,0,0,0);CHKERRQ(ierr);
4661   ierr = (*mat->ops->transpose)(mat,reuse,B);CHKERRQ(ierr);
4662   ierr = PetscLogEventEnd(MAT_Transpose,mat,0,0,0);CHKERRQ(ierr);
4663   if (B) {ierr = PetscObjectStateIncrease((PetscObject)*B);CHKERRQ(ierr);}
4664   PetscFunctionReturn(0);
4665 }
4666 
4667 /*@
4668    MatIsTranspose - Test whether a matrix is another one's transpose,
4669         or its own, in which case it tests symmetry.
4670 
4671    Collective on Mat
4672 
4673    Input Parameter:
4674 +  A - the matrix to test
4675 -  B - the matrix to test against, this can equal the first parameter
4676 
4677    Output Parameters:
4678 .  flg - the result
4679 
4680    Notes:
4681    Only available for SeqAIJ/MPIAIJ matrices. The sequential algorithm
4682    has a running time of the order of the number of nonzeros; the parallel
4683    test involves parallel copies of the block-offdiagonal parts of the matrix.
4684 
4685    Level: intermediate
4686 
4687    Concepts: matrices^transposing, matrix^symmetry
4688 
4689 .seealso: MatTranspose(), MatIsSymmetric(), MatIsHermitian()
4690 @*/
4691 PetscErrorCode MatIsTranspose(Mat A,Mat B,PetscReal tol,PetscBool  *flg)
4692 {
4693   PetscErrorCode ierr,(*f)(Mat,Mat,PetscReal,PetscBool*),(*g)(Mat,Mat,PetscReal,PetscBool*);
4694 
4695   PetscFunctionBegin;
4696   PetscValidHeaderSpecific(A,MAT_CLASSID,1);
4697   PetscValidHeaderSpecific(B,MAT_CLASSID,2);
4698   PetscValidPointer(flg,3);
4699   ierr = PetscObjectQueryFunction((PetscObject)A,"MatIsTranspose_C",&f);CHKERRQ(ierr);
4700   ierr = PetscObjectQueryFunction((PetscObject)B,"MatIsTranspose_C",&g);CHKERRQ(ierr);
4701   *flg = PETSC_FALSE;
4702   if (f && g) {
4703     if (f == g) {
4704       ierr = (*f)(A,B,tol,flg);CHKERRQ(ierr);
4705     } else SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_NOTSAMETYPE,"Matrices do not have the same comparator for symmetry test");
4706   } else {
4707     MatType mattype;
4708     if (!f) {
4709       ierr = MatGetType(A,&mattype);CHKERRQ(ierr);
4710     } else {
4711       ierr = MatGetType(B,&mattype);CHKERRQ(ierr);
4712     }
4713     SETERRQ1(PETSC_COMM_SELF,PETSC_ERR_SUP,"Matrix of type <%s> does not support checking for transpose",mattype);
4714   }
4715   PetscFunctionReturn(0);
4716 }
4717 
4718 /*@
4719    MatHermitianTranspose - Computes an in-place or out-of-place transpose of a matrix in complex conjugate.
4720 
4721    Collective on Mat
4722 
4723    Input Parameter:
4724 +  mat - the matrix to transpose and complex conjugate
4725 -  reuse - MAT_INITIAL_MATRIX to create a new matrix, MAT_INPLACE_MATRIX to reuse the first argument to store the transpose
4726 
4727    Output Parameters:
4728 .  B - the Hermitian
4729 
4730    Level: intermediate
4731 
4732    Concepts: matrices^transposing, complex conjugatex
4733 
4734 .seealso: MatTranspose(), MatMultTranspose(), MatMultTransposeAdd(), MatIsTranspose(), MatReuse
4735 @*/
4736 PetscErrorCode MatHermitianTranspose(Mat mat,MatReuse reuse,Mat *B)
4737 {
4738   PetscErrorCode ierr;
4739 
4740   PetscFunctionBegin;
4741   ierr = MatTranspose(mat,reuse,B);CHKERRQ(ierr);
4742 #if defined(PETSC_USE_COMPLEX)
4743   ierr = MatConjugate(*B);CHKERRQ(ierr);
4744 #endif
4745   PetscFunctionReturn(0);
4746 }
4747 
4748 /*@
4749    MatIsHermitianTranspose - Test whether a matrix is another one's Hermitian transpose,
4750 
4751    Collective on Mat
4752 
4753    Input Parameter:
4754 +  A - the matrix to test
4755 -  B - the matrix to test against, this can equal the first parameter
4756 
4757    Output Parameters:
4758 .  flg - the result
4759 
4760    Notes:
4761    Only available for SeqAIJ/MPIAIJ matrices. The sequential algorithm
4762    has a running time of the order of the number of nonzeros; the parallel
4763    test involves parallel copies of the block-offdiagonal parts of the matrix.
4764 
4765    Level: intermediate
4766 
4767    Concepts: matrices^transposing, matrix^symmetry
4768 
4769 .seealso: MatTranspose(), MatIsSymmetric(), MatIsHermitian(), MatIsTranspose()
4770 @*/
4771 PetscErrorCode MatIsHermitianTranspose(Mat A,Mat B,PetscReal tol,PetscBool  *flg)
4772 {
4773   PetscErrorCode ierr,(*f)(Mat,Mat,PetscReal,PetscBool*),(*g)(Mat,Mat,PetscReal,PetscBool*);
4774 
4775   PetscFunctionBegin;
4776   PetscValidHeaderSpecific(A,MAT_CLASSID,1);
4777   PetscValidHeaderSpecific(B,MAT_CLASSID,2);
4778   PetscValidPointer(flg,3);
4779   ierr = PetscObjectQueryFunction((PetscObject)A,"MatIsHermitianTranspose_C",&f);CHKERRQ(ierr);
4780   ierr = PetscObjectQueryFunction((PetscObject)B,"MatIsHermitianTranspose_C",&g);CHKERRQ(ierr);
4781   if (f && g) {
4782     if (f==g) {
4783       ierr = (*f)(A,B,tol,flg);CHKERRQ(ierr);
4784     } else SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_NOTSAMETYPE,"Matrices do not have the same comparator for Hermitian test");
4785   }
4786   PetscFunctionReturn(0);
4787 }
4788 
4789 /*@
4790    MatPermute - Creates a new matrix with rows and columns permuted from the
4791    original.
4792 
4793    Collective on Mat
4794 
4795    Input Parameters:
4796 +  mat - the matrix to permute
4797 .  row - row permutation, each processor supplies only the permutation for its rows
4798 -  col - column permutation, each processor supplies only the permutation for its columns
4799 
4800    Output Parameters:
4801 .  B - the permuted matrix
4802 
4803    Level: advanced
4804 
4805    Note:
4806    The index sets map from row/col of permuted matrix to row/col of original matrix.
4807    The index sets should be on the same communicator as Mat and have the same local sizes.
4808 
4809    Concepts: matrices^permuting
4810 
4811 .seealso: MatGetOrdering(), ISAllGather()
4812 
4813 @*/
4814 PetscErrorCode MatPermute(Mat mat,IS row,IS col,Mat *B)
4815 {
4816   PetscErrorCode ierr;
4817 
4818   PetscFunctionBegin;
4819   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
4820   PetscValidType(mat,1);
4821   PetscValidHeaderSpecific(row,IS_CLASSID,2);
4822   PetscValidHeaderSpecific(col,IS_CLASSID,3);
4823   PetscValidPointer(B,4);
4824   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
4825   if (mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
4826   if (!mat->ops->permute) SETERRQ1(PETSC_COMM_SELF,PETSC_ERR_SUP,"MatPermute not available for Mat type %s",((PetscObject)mat)->type_name);
4827   MatCheckPreallocated(mat,1);
4828 
4829   ierr = (*mat->ops->permute)(mat,row,col,B);CHKERRQ(ierr);
4830   ierr = PetscObjectStateIncrease((PetscObject)*B);CHKERRQ(ierr);
4831   PetscFunctionReturn(0);
4832 }
4833 
4834 /*@
4835    MatEqual - Compares two matrices.
4836 
4837    Collective on Mat
4838 
4839    Input Parameters:
4840 +  A - the first matrix
4841 -  B - the second matrix
4842 
4843    Output Parameter:
4844 .  flg - PETSC_TRUE if the matrices are equal; PETSC_FALSE otherwise.
4845 
4846    Level: intermediate
4847 
4848    Concepts: matrices^equality between
4849 @*/
4850 PetscErrorCode MatEqual(Mat A,Mat B,PetscBool  *flg)
4851 {
4852   PetscErrorCode ierr;
4853 
4854   PetscFunctionBegin;
4855   PetscValidHeaderSpecific(A,MAT_CLASSID,1);
4856   PetscValidHeaderSpecific(B,MAT_CLASSID,2);
4857   PetscValidType(A,1);
4858   PetscValidType(B,2);
4859   PetscValidIntPointer(flg,3);
4860   PetscCheckSameComm(A,1,B,2);
4861   MatCheckPreallocated(B,2);
4862   if (!A->assembled) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
4863   if (!B->assembled) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
4864   if (A->rmap->N != B->rmap->N || A->cmap->N != B->cmap->N) SETERRQ4(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_SIZ,"Mat A,Mat B: global dim %D %D %D %D",A->rmap->N,B->rmap->N,A->cmap->N,B->cmap->N);
4865   if (!A->ops->equal) SETERRQ1(PetscObjectComm((PetscObject)A),PETSC_ERR_SUP,"Mat type %s",((PetscObject)A)->type_name);
4866   if (!B->ops->equal) SETERRQ1(PetscObjectComm((PetscObject)A),PETSC_ERR_SUP,"Mat type %s",((PetscObject)B)->type_name);
4867   if (A->ops->equal != B->ops->equal) SETERRQ2(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_INCOMP,"A is type: %s\nB is type: %s",((PetscObject)A)->type_name,((PetscObject)B)->type_name);
4868   MatCheckPreallocated(A,1);
4869 
4870   ierr = (*A->ops->equal)(A,B,flg);CHKERRQ(ierr);
4871   PetscFunctionReturn(0);
4872 }
4873 
4874 /*@
4875    MatDiagonalScale - Scales a matrix on the left and right by diagonal
4876    matrices that are stored as vectors.  Either of the two scaling
4877    matrices can be NULL.
4878 
4879    Collective on Mat
4880 
4881    Input Parameters:
4882 +  mat - the matrix to be scaled
4883 .  l - the left scaling vector (or NULL)
4884 -  r - the right scaling vector (or NULL)
4885 
4886    Notes:
4887    MatDiagonalScale() computes A = LAR, where
4888    L = a diagonal matrix (stored as a vector), R = a diagonal matrix (stored as a vector)
4889    The L scales the rows of the matrix, the R scales the columns of the matrix.
4890 
4891    Level: intermediate
4892 
4893    Concepts: matrices^diagonal scaling
4894    Concepts: diagonal scaling of matrices
4895 
4896 .seealso: MatScale()
4897 @*/
4898 PetscErrorCode MatDiagonalScale(Mat mat,Vec l,Vec r)
4899 {
4900   PetscErrorCode ierr;
4901 
4902   PetscFunctionBegin;
4903   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
4904   PetscValidType(mat,1);
4905   if (!mat->ops->diagonalscale) SETERRQ1(PetscObjectComm((PetscObject)mat),PETSC_ERR_SUP,"Mat type %s",((PetscObject)mat)->type_name);
4906   if (l) {PetscValidHeaderSpecific(l,VEC_CLASSID,2);PetscCheckSameComm(mat,1,l,2);}
4907   if (r) {PetscValidHeaderSpecific(r,VEC_CLASSID,3);PetscCheckSameComm(mat,1,r,3);}
4908   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
4909   if (mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
4910   MatCheckPreallocated(mat,1);
4911 
4912   ierr = PetscLogEventBegin(MAT_Scale,mat,0,0,0);CHKERRQ(ierr);
4913   ierr = (*mat->ops->diagonalscale)(mat,l,r);CHKERRQ(ierr);
4914   ierr = PetscLogEventEnd(MAT_Scale,mat,0,0,0);CHKERRQ(ierr);
4915   ierr = PetscObjectStateIncrease((PetscObject)mat);CHKERRQ(ierr);
4916 #if defined(PETSC_HAVE_CUSP)
4917   if (mat->valid_GPU_matrix != PETSC_CUSP_UNALLOCATED) {
4918     mat->valid_GPU_matrix = PETSC_CUSP_CPU;
4919   }
4920 #elif defined(PETSC_HAVE_VIENNACL)
4921   if (mat->valid_GPU_matrix != PETSC_VIENNACL_UNALLOCATED) {
4922     mat->valid_GPU_matrix = PETSC_VIENNACL_CPU;
4923   }
4924 #elif defined(PETSC_HAVE_VECCUDA)
4925   if (mat->valid_GPU_matrix != PETSC_CUDA_UNALLOCATED) {
4926     mat->valid_GPU_matrix = PETSC_CUDA_CPU;
4927   }
4928 #endif
4929   PetscFunctionReturn(0);
4930 }
4931 
4932 /*@
4933     MatScale - Scales all elements of a matrix by a given number.
4934 
4935     Logically Collective on Mat
4936 
4937     Input Parameters:
4938 +   mat - the matrix to be scaled
4939 -   a  - the scaling value
4940 
4941     Output Parameter:
4942 .   mat - the scaled matrix
4943 
4944     Level: intermediate
4945 
4946     Concepts: matrices^scaling all entries
4947 
4948 .seealso: MatDiagonalScale()
4949 @*/
4950 PetscErrorCode MatScale(Mat mat,PetscScalar a)
4951 {
4952   PetscErrorCode ierr;
4953 
4954   PetscFunctionBegin;
4955   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
4956   PetscValidType(mat,1);
4957   if (a != (PetscScalar)1.0 && !mat->ops->scale) SETERRQ1(PETSC_COMM_SELF,PETSC_ERR_SUP,"Mat type %s",((PetscObject)mat)->type_name);
4958   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
4959   if (mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
4960   PetscValidLogicalCollectiveScalar(mat,a,2);
4961   MatCheckPreallocated(mat,1);
4962 
4963   ierr = PetscLogEventBegin(MAT_Scale,mat,0,0,0);CHKERRQ(ierr);
4964   if (a != (PetscScalar)1.0) {
4965     ierr = (*mat->ops->scale)(mat,a);CHKERRQ(ierr);
4966     ierr = PetscObjectStateIncrease((PetscObject)mat);CHKERRQ(ierr);
4967 #if defined(PETSC_HAVE_CUSP)
4968     if (mat->valid_GPU_matrix != PETSC_CUSP_UNALLOCATED) {
4969       mat->valid_GPU_matrix = PETSC_CUSP_CPU;
4970     }
4971 #elif defined(PETSC_HAVE_VIENNACL)
4972     if (mat->valid_GPU_matrix != PETSC_VIENNACL_UNALLOCATED) {
4973       mat->valid_GPU_matrix = PETSC_VIENNACL_CPU;
4974     }
4975 #elif defined(PETSC_HAVE_VECCUDA)
4976     if (mat->valid_GPU_matrix != PETSC_CUDA_UNALLOCATED) {
4977       mat->valid_GPU_matrix = PETSC_CUDA_CPU;
4978     }
4979 #endif
4980   }
4981   ierr = PetscLogEventEnd(MAT_Scale,mat,0,0,0);CHKERRQ(ierr);
4982   PetscFunctionReturn(0);
4983 }
4984 
4985 /*@
4986    MatNorm - Calculates various norms of a matrix.
4987 
4988    Collective on Mat
4989 
4990    Input Parameters:
4991 +  mat - the matrix
4992 -  type - the type of norm, NORM_1, NORM_FROBENIUS, NORM_INFINITY
4993 
4994    Output Parameters:
4995 .  nrm - the resulting norm
4996 
4997    Level: intermediate
4998 
4999    Concepts: matrices^norm
5000    Concepts: norm^of matrix
5001 @*/
5002 PetscErrorCode MatNorm(Mat mat,NormType type,PetscReal *nrm)
5003 {
5004   PetscErrorCode ierr;
5005 
5006   PetscFunctionBegin;
5007   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
5008   PetscValidType(mat,1);
5009   PetscValidScalarPointer(nrm,3);
5010 
5011   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
5012   if (mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
5013   if (!mat->ops->norm) SETERRQ1(PetscObjectComm((PetscObject)mat),PETSC_ERR_SUP,"Mat type %s",((PetscObject)mat)->type_name);
5014   MatCheckPreallocated(mat,1);
5015 
5016   ierr = (*mat->ops->norm)(mat,type,nrm);CHKERRQ(ierr);
5017   PetscFunctionReturn(0);
5018 }
5019 
5020 /*
5021      This variable is used to prevent counting of MatAssemblyBegin() that
5022    are called from within a MatAssemblyEnd().
5023 */
5024 static PetscInt MatAssemblyEnd_InUse = 0;
5025 /*@
5026    MatAssemblyBegin - Begins assembling the matrix.  This routine should
5027    be called after completing all calls to MatSetValues().
5028 
5029    Collective on Mat
5030 
5031    Input Parameters:
5032 +  mat - the matrix
5033 -  type - type of assembly, either MAT_FLUSH_ASSEMBLY or MAT_FINAL_ASSEMBLY
5034 
5035    Notes:
5036    MatSetValues() generally caches the values.  The matrix is ready to
5037    use only after MatAssemblyBegin() and MatAssemblyEnd() have been called.
5038    Use MAT_FLUSH_ASSEMBLY when switching between ADD_VALUES and INSERT_VALUES
5039    in MatSetValues(); use MAT_FINAL_ASSEMBLY for the final assembly before
5040    using the matrix.
5041 
5042    ALL processes that share a matrix MUST call MatAssemblyBegin() and MatAssemblyEnd() the SAME NUMBER of times, and each time with the
5043    same flag of MAT_FLUSH_ASSEMBLY or MAT_FINAL_ASSEMBLY for all processes. Thus you CANNOT locally change from ADD_VALUES to INSERT_VALUES, that is
5044    a global collective operation requring all processes that share the matrix.
5045 
5046    Space for preallocated nonzeros that is not filled by a call to MatSetValues() or a related routine are compressed
5047    out by assembly. If you intend to use that extra space on a subsequent assembly, be sure to insert explicit zeros
5048    before MAT_FINAL_ASSEMBLY so the space is not compressed out.
5049 
5050    Level: beginner
5051 
5052    Concepts: matrices^assembling
5053 
5054 .seealso: MatAssemblyEnd(), MatSetValues(), MatAssembled()
5055 @*/
5056 PetscErrorCode MatAssemblyBegin(Mat mat,MatAssemblyType type)
5057 {
5058   PetscErrorCode ierr;
5059 
5060   PetscFunctionBegin;
5061   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
5062   PetscValidType(mat,1);
5063   MatCheckPreallocated(mat,1);
5064   if (mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix.\nDid you forget to call MatSetUnfactored()?");
5065   if (mat->assembled) {
5066     mat->was_assembled = PETSC_TRUE;
5067     mat->assembled     = PETSC_FALSE;
5068   }
5069   if (!MatAssemblyEnd_InUse) {
5070     ierr = PetscLogEventBegin(MAT_AssemblyBegin,mat,0,0,0);CHKERRQ(ierr);
5071     if (mat->ops->assemblybegin) {ierr = (*mat->ops->assemblybegin)(mat,type);CHKERRQ(ierr);}
5072     ierr = PetscLogEventEnd(MAT_AssemblyBegin,mat,0,0,0);CHKERRQ(ierr);
5073   } else if (mat->ops->assemblybegin) {
5074     ierr = (*mat->ops->assemblybegin)(mat,type);CHKERRQ(ierr);
5075   }
5076   PetscFunctionReturn(0);
5077 }
5078 
5079 /*@
5080    MatAssembled - Indicates if a matrix has been assembled and is ready for
5081      use; for example, in matrix-vector product.
5082 
5083    Not Collective
5084 
5085    Input Parameter:
5086 .  mat - the matrix
5087 
5088    Output Parameter:
5089 .  assembled - PETSC_TRUE or PETSC_FALSE
5090 
5091    Level: advanced
5092 
5093    Concepts: matrices^assembled?
5094 
5095 .seealso: MatAssemblyEnd(), MatSetValues(), MatAssemblyBegin()
5096 @*/
5097 PetscErrorCode MatAssembled(Mat mat,PetscBool  *assembled)
5098 {
5099   PetscFunctionBegin;
5100   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
5101   PetscValidType(mat,1);
5102   PetscValidPointer(assembled,2);
5103   *assembled = mat->assembled;
5104   PetscFunctionReturn(0);
5105 }
5106 
5107 /*@
5108    MatAssemblyEnd - Completes assembling the matrix.  This routine should
5109    be called after MatAssemblyBegin().
5110 
5111    Collective on Mat
5112 
5113    Input Parameters:
5114 +  mat - the matrix
5115 -  type - type of assembly, either MAT_FLUSH_ASSEMBLY or MAT_FINAL_ASSEMBLY
5116 
5117    Options Database Keys:
5118 +  -mat_view ::ascii_info - Prints info on matrix at conclusion of MatEndAssembly()
5119 .  -mat_view ::ascii_info_detail - Prints more detailed info
5120 .  -mat_view - Prints matrix in ASCII format
5121 .  -mat_view ::ascii_matlab - Prints matrix in Matlab format
5122 .  -mat_view draw - PetscDraws nonzero structure of matrix, using MatView() and PetscDrawOpenX().
5123 .  -display <name> - Sets display name (default is host)
5124 .  -draw_pause <sec> - Sets number of seconds to pause after display
5125 .  -mat_view socket - Sends matrix to socket, can be accessed from Matlab (See Users-Manual: ch_matlab )
5126 .  -viewer_socket_machine <machine> - Machine to use for socket
5127 .  -viewer_socket_port <port> - Port number to use for socket
5128 -  -mat_view binary:filename[:append] - Save matrix to file in binary format
5129 
5130    Notes:
5131    MatSetValues() generally caches the values.  The matrix is ready to
5132    use only after MatAssemblyBegin() and MatAssemblyEnd() have been called.
5133    Use MAT_FLUSH_ASSEMBLY when switching between ADD_VALUES and INSERT_VALUES
5134    in MatSetValues(); use MAT_FINAL_ASSEMBLY for the final assembly before
5135    using the matrix.
5136 
5137    Space for preallocated nonzeros that is not filled by a call to MatSetValues() or a related routine are compressed
5138    out by assembly. If you intend to use that extra space on a subsequent assembly, be sure to insert explicit zeros
5139    before MAT_FINAL_ASSEMBLY so the space is not compressed out.
5140 
5141    Level: beginner
5142 
5143 .seealso: MatAssemblyBegin(), MatSetValues(), PetscDrawOpenX(), PetscDrawCreate(), MatView(), MatAssembled(), PetscViewerSocketOpen()
5144 @*/
5145 PetscErrorCode MatAssemblyEnd(Mat mat,MatAssemblyType type)
5146 {
5147   PetscErrorCode  ierr;
5148   static PetscInt inassm = 0;
5149   PetscBool       flg    = PETSC_FALSE;
5150 
5151   PetscFunctionBegin;
5152   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
5153   PetscValidType(mat,1);
5154 
5155   inassm++;
5156   MatAssemblyEnd_InUse++;
5157   if (MatAssemblyEnd_InUse == 1) { /* Do the logging only the first time through */
5158     ierr = PetscLogEventBegin(MAT_AssemblyEnd,mat,0,0,0);CHKERRQ(ierr);
5159     if (mat->ops->assemblyend) {
5160       ierr = (*mat->ops->assemblyend)(mat,type);CHKERRQ(ierr);
5161     }
5162     ierr = PetscLogEventEnd(MAT_AssemblyEnd,mat,0,0,0);CHKERRQ(ierr);
5163   } else if (mat->ops->assemblyend) {
5164     ierr = (*mat->ops->assemblyend)(mat,type);CHKERRQ(ierr);
5165   }
5166 
5167   /* Flush assembly is not a true assembly */
5168   if (type != MAT_FLUSH_ASSEMBLY) {
5169     mat->assembled = PETSC_TRUE; mat->num_ass++;
5170   }
5171   mat->insertmode = NOT_SET_VALUES;
5172   MatAssemblyEnd_InUse--;
5173   ierr = PetscObjectStateIncrease((PetscObject)mat);CHKERRQ(ierr);
5174   if (!mat->symmetric_eternal) {
5175     mat->symmetric_set              = PETSC_FALSE;
5176     mat->hermitian_set              = PETSC_FALSE;
5177     mat->structurally_symmetric_set = PETSC_FALSE;
5178   }
5179 #if defined(PETSC_HAVE_CUSP)
5180   if (mat->valid_GPU_matrix != PETSC_CUSP_UNALLOCATED) {
5181     mat->valid_GPU_matrix = PETSC_CUSP_CPU;
5182   }
5183 #elif defined(PETSC_HAVE_VIENNACL)
5184   if (mat->valid_GPU_matrix != PETSC_VIENNACL_UNALLOCATED) {
5185     mat->valid_GPU_matrix = PETSC_VIENNACL_CPU;
5186   }
5187 #elif defined(PETSC_HAVE_VECCUDA)
5188   if (mat->valid_GPU_matrix != PETSC_CUDA_UNALLOCATED) {
5189     mat->valid_GPU_matrix = PETSC_CUDA_CPU;
5190   }
5191 #endif
5192   if (inassm == 1 && type != MAT_FLUSH_ASSEMBLY) {
5193     ierr = MatViewFromOptions(mat,NULL,"-mat_view");CHKERRQ(ierr);
5194 
5195     if (mat->checksymmetryonassembly) {
5196       ierr = MatIsSymmetric(mat,mat->checksymmetrytol,&flg);CHKERRQ(ierr);
5197       if (flg) {
5198         ierr = PetscPrintf(PetscObjectComm((PetscObject)mat),"Matrix is symmetric (tolerance %g)\n",(double)mat->checksymmetrytol);CHKERRQ(ierr);
5199       } else {
5200         ierr = PetscPrintf(PetscObjectComm((PetscObject)mat),"Matrix is not symmetric (tolerance %g)\n",(double)mat->checksymmetrytol);CHKERRQ(ierr);
5201       }
5202     }
5203     if (mat->nullsp && mat->checknullspaceonassembly) {
5204       ierr = MatNullSpaceTest(mat->nullsp,mat,NULL);CHKERRQ(ierr);
5205     }
5206   }
5207   inassm--;
5208   PetscFunctionReturn(0);
5209 }
5210 
5211 /*@
5212    MatSetOption - Sets a parameter option for a matrix. Some options
5213    may be specific to certain storage formats.  Some options
5214    determine how values will be inserted (or added). Sorted,
5215    row-oriented input will generally assemble the fastest. The default
5216    is row-oriented.
5217 
5218    Logically Collective on Mat for certain operations, such as MAT_SPD, not collective for MAT_ROW_ORIENTED, see MatOption
5219 
5220    Input Parameters:
5221 +  mat - the matrix
5222 .  option - the option, one of those listed below (and possibly others),
5223 -  flg - turn the option on (PETSC_TRUE) or off (PETSC_FALSE)
5224 
5225   Options Describing Matrix Structure:
5226 +    MAT_SPD - symmetric positive definite
5227 .    MAT_SYMMETRIC - symmetric in terms of both structure and value
5228 .    MAT_HERMITIAN - transpose is the complex conjugation
5229 .    MAT_STRUCTURALLY_SYMMETRIC - symmetric nonzero structure
5230 -    MAT_SYMMETRY_ETERNAL - if you would like the symmetry/Hermitian flag
5231                             you set to be kept with all future use of the matrix
5232                             including after MatAssemblyBegin/End() which could
5233                             potentially change the symmetry structure, i.e. you
5234                             KNOW the matrix will ALWAYS have the property you set.
5235 
5236 
5237    Options For Use with MatSetValues():
5238    Insert a logically dense subblock, which can be
5239 .    MAT_ROW_ORIENTED - row-oriented (default)
5240 
5241    Note these options reflect the data you pass in with MatSetValues(); it has
5242    nothing to do with how the data is stored internally in the matrix
5243    data structure.
5244 
5245    When (re)assembling a matrix, we can restrict the input for
5246    efficiency/debugging purposes.  These options include:
5247 +    MAT_NEW_NONZERO_LOCATIONS - additional insertions will be allowed if they generate a new nonzero (slow)
5248 .    MAT_NEW_DIAGONALS - new diagonals will be allowed (for block diagonal format only)
5249 .    MAT_IGNORE_OFF_PROC_ENTRIES - drops off-processor entries
5250 .    MAT_NEW_NONZERO_LOCATION_ERR - generates an error for new matrix entry
5251 .    MAT_USE_HASH_TABLE - uses a hash table to speed up matrix assembly
5252 .    MAT_NO_OFF_PROC_ENTRIES - you know each process will only set values for its own rows, will generate an error if
5253         any process sets values for another process. This avoids all reductions in the MatAssembly routines and thus improves
5254         performance for very large process counts.
5255 -    MAT_SUBSET_OFF_PROC_ENTRIES - you know that the first assembly after setting this flag will set a superset
5256         of the off-process entries required for all subsequent assemblies. This avoids a rendezvous step in the MatAssembly
5257         functions, instead sending only neighbor messages.
5258 
5259    Notes:
5260    Except for MAT_UNUSED_NONZERO_LOCATION_ERR and  MAT_ROW_ORIENTED all processes that share the matrix must pass the same value in flg!
5261 
5262    Some options are relevant only for particular matrix types and
5263    are thus ignored by others.  Other options are not supported by
5264    certain matrix types and will generate an error message if set.
5265 
5266    If using a Fortran 77 module to compute a matrix, one may need to
5267    use the column-oriented option (or convert to the row-oriented
5268    format).
5269 
5270    MAT_NEW_NONZERO_LOCATIONS set to PETSC_FALSE indicates that any add or insertion
5271    that would generate a new entry in the nonzero structure is instead
5272    ignored.  Thus, if memory has not alredy been allocated for this particular
5273    data, then the insertion is ignored. For dense matrices, in which
5274    the entire array is allocated, no entries are ever ignored.
5275    Set after the first MatAssemblyEnd(). If this option is set then the MatAssemblyBegin/End() processes has one less global reduction
5276 
5277    MAT_NEW_NONZERO_LOCATION_ERR set to PETSC_TRUE indicates that any add or insertion
5278    that would generate a new entry in the nonzero structure instead produces
5279    an error. (Currently supported for AIJ and BAIJ formats only.) If this option is set then the MatAssemblyBegin/End() processes has one less global reduction
5280 
5281    MAT_NEW_NONZERO_ALLOCATION_ERR set to PETSC_TRUE indicates that any add or insertion
5282    that would generate a new entry that has not been preallocated will
5283    instead produce an error. (Currently supported for AIJ and BAIJ formats
5284    only.) This is a useful flag when debugging matrix memory preallocation.
5285    If this option is set then the MatAssemblyBegin/End() processes has one less global reduction
5286 
5287    MAT_IGNORE_OFF_PROC_ENTRIES set to PETSC_TRUE indicates entries destined for
5288    other processors should be dropped, rather than stashed.
5289    This is useful if you know that the "owning" processor is also
5290    always generating the correct matrix entries, so that PETSc need
5291    not transfer duplicate entries generated on another processor.
5292 
5293    MAT_USE_HASH_TABLE indicates that a hash table be used to improve the
5294    searches during matrix assembly. When this flag is set, the hash table
5295    is created during the first Matrix Assembly. This hash table is
5296    used the next time through, during MatSetVaules()/MatSetVaulesBlocked()
5297    to improve the searching of indices. MAT_NEW_NONZERO_LOCATIONS flag
5298    should be used with MAT_USE_HASH_TABLE flag. This option is currently
5299    supported by MATMPIBAIJ format only.
5300 
5301    MAT_KEEP_NONZERO_PATTERN indicates when MatZeroRows() is called the zeroed entries
5302    are kept in the nonzero structure
5303 
5304    MAT_IGNORE_ZERO_ENTRIES - for AIJ/IS matrices this will stop zero values from creating
5305    a zero location in the matrix
5306 
5307    MAT_USE_INODES - indicates using inode version of the code - works with AIJ matrix types
5308 
5309    MAT_NO_OFF_PROC_ZERO_ROWS - you know each process will only zero its own rows. This avoids all reductions in the
5310         zero row routines and thus improves performance for very large process counts.
5311 
5312    MAT_IGNORE_LOWER_TRIANGULAR - For SBAIJ matrices will ignore any insertions you make in the lower triangular
5313         part of the matrix (since they should match the upper triangular part).
5314 
5315    Notes: Can only be called after MatSetSizes() and MatSetType() have been set.
5316 
5317    Level: intermediate
5318 
5319    Concepts: matrices^setting options
5320 
5321 .seealso:  MatOption, Mat
5322 
5323 @*/
5324 PetscErrorCode MatSetOption(Mat mat,MatOption op,PetscBool flg)
5325 {
5326   PetscErrorCode ierr;
5327 
5328   PetscFunctionBegin;
5329   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
5330   PetscValidType(mat,1);
5331   if (op > 0) {
5332     PetscValidLogicalCollectiveEnum(mat,op,2);
5333     PetscValidLogicalCollectiveBool(mat,flg,3);
5334   }
5335 
5336   if (((int) op) <= MAT_OPTION_MIN || ((int) op) >= MAT_OPTION_MAX) SETERRQ1(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_OUTOFRANGE,"Options %d is out of range",(int)op);
5337   if (!((PetscObject)mat)->type_name) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_TYPENOTSET,"Cannot set options until type and size have been set, see MatSetType() and MatSetSizes()");
5338 
5339   switch (op) {
5340   case MAT_NO_OFF_PROC_ENTRIES:
5341     mat->nooffprocentries = flg;
5342     PetscFunctionReturn(0);
5343     break;
5344   case MAT_SUBSET_OFF_PROC_ENTRIES:
5345     mat->subsetoffprocentries = flg;
5346     PetscFunctionReturn(0);
5347   case MAT_NO_OFF_PROC_ZERO_ROWS:
5348     mat->nooffproczerorows = flg;
5349     PetscFunctionReturn(0);
5350     break;
5351   case MAT_SPD:
5352     mat->spd_set = PETSC_TRUE;
5353     mat->spd     = flg;
5354     if (flg) {
5355       mat->symmetric                  = PETSC_TRUE;
5356       mat->structurally_symmetric     = PETSC_TRUE;
5357       mat->symmetric_set              = PETSC_TRUE;
5358       mat->structurally_symmetric_set = PETSC_TRUE;
5359     }
5360     break;
5361   case MAT_SYMMETRIC:
5362     mat->symmetric = flg;
5363     if (flg) mat->structurally_symmetric = PETSC_TRUE;
5364     mat->symmetric_set              = PETSC_TRUE;
5365     mat->structurally_symmetric_set = flg;
5366     break;
5367   case MAT_HERMITIAN:
5368     mat->hermitian = flg;
5369     if (flg) mat->structurally_symmetric = PETSC_TRUE;
5370     mat->hermitian_set              = PETSC_TRUE;
5371     mat->structurally_symmetric_set = flg;
5372     break;
5373   case MAT_STRUCTURALLY_SYMMETRIC:
5374     mat->structurally_symmetric     = flg;
5375     mat->structurally_symmetric_set = PETSC_TRUE;
5376     break;
5377   case MAT_SYMMETRY_ETERNAL:
5378     mat->symmetric_eternal = flg;
5379     break;
5380   default:
5381     break;
5382   }
5383   if (mat->ops->setoption) {
5384     ierr = (*mat->ops->setoption)(mat,op,flg);CHKERRQ(ierr);
5385   }
5386   PetscFunctionReturn(0);
5387 }
5388 
5389 /*@
5390    MatGetOption - Gets a parameter option that has been set for a matrix.
5391 
5392    Logically Collective on Mat for certain operations, such as MAT_SPD, not collective for MAT_ROW_ORIENTED, see MatOption
5393 
5394    Input Parameters:
5395 +  mat - the matrix
5396 -  option - the option, this only responds to certain options, check the code for which ones
5397 
5398    Output Parameter:
5399 .  flg - turn the option on (PETSC_TRUE) or off (PETSC_FALSE)
5400 
5401     Notes: Can only be called after MatSetSizes() and MatSetType() have been set.
5402 
5403    Level: intermediate
5404 
5405    Concepts: matrices^setting options
5406 
5407 .seealso:  MatOption, MatSetOption()
5408 
5409 @*/
5410 PetscErrorCode MatGetOption(Mat mat,MatOption op,PetscBool *flg)
5411 {
5412   PetscFunctionBegin;
5413   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
5414   PetscValidType(mat,1);
5415 
5416   if (((int) op) <= MAT_OPTION_MIN || ((int) op) >= MAT_OPTION_MAX) SETERRQ1(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_OUTOFRANGE,"Options %d is out of range",(int)op);
5417   if (!((PetscObject)mat)->type_name) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_TYPENOTSET,"Cannot get options until type and size have been set, see MatSetType() and MatSetSizes()");
5418 
5419   switch (op) {
5420   case MAT_NO_OFF_PROC_ENTRIES:
5421     *flg = mat->nooffprocentries;
5422     break;
5423   case MAT_NO_OFF_PROC_ZERO_ROWS:
5424     *flg = mat->nooffproczerorows;
5425     break;
5426   case MAT_SYMMETRIC:
5427     *flg = mat->symmetric;
5428     break;
5429   case MAT_HERMITIAN:
5430     *flg = mat->hermitian;
5431     break;
5432   case MAT_STRUCTURALLY_SYMMETRIC:
5433     *flg = mat->structurally_symmetric;
5434     break;
5435   case MAT_SYMMETRY_ETERNAL:
5436     *flg = mat->symmetric_eternal;
5437     break;
5438   default:
5439     break;
5440   }
5441   PetscFunctionReturn(0);
5442 }
5443 
5444 /*@
5445    MatZeroEntries - Zeros all entries of a matrix.  For sparse matrices
5446    this routine retains the old nonzero structure.
5447 
5448    Logically Collective on Mat
5449 
5450    Input Parameters:
5451 .  mat - the matrix
5452 
5453    Level: intermediate
5454 
5455    Notes: If the matrix was not preallocated then a default, likely poor preallocation will be set in the matrix, so this should be called after the preallocation phase.
5456    See the Performance chapter of the users manual for information on preallocating matrices.
5457 
5458    Concepts: matrices^zeroing
5459 
5460 .seealso: MatZeroRows()
5461 @*/
5462 PetscErrorCode MatZeroEntries(Mat mat)
5463 {
5464   PetscErrorCode ierr;
5465 
5466   PetscFunctionBegin;
5467   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
5468   PetscValidType(mat,1);
5469   if (mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
5470   if (mat->insertmode != NOT_SET_VALUES) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_WRONGSTATE,"Not for matrices where you have set values but not yet assembled");
5471   if (!mat->ops->zeroentries) SETERRQ1(PetscObjectComm((PetscObject)mat),PETSC_ERR_SUP,"Mat type %s",((PetscObject)mat)->type_name);
5472   MatCheckPreallocated(mat,1);
5473 
5474   ierr = PetscLogEventBegin(MAT_ZeroEntries,mat,0,0,0);CHKERRQ(ierr);
5475   ierr = (*mat->ops->zeroentries)(mat);CHKERRQ(ierr);
5476   ierr = PetscLogEventEnd(MAT_ZeroEntries,mat,0,0,0);CHKERRQ(ierr);
5477   ierr = PetscObjectStateIncrease((PetscObject)mat);CHKERRQ(ierr);
5478 #if defined(PETSC_HAVE_CUSP)
5479   if (mat->valid_GPU_matrix != PETSC_CUSP_UNALLOCATED) {
5480     mat->valid_GPU_matrix = PETSC_CUSP_CPU;
5481   }
5482 #elif defined(PETSC_HAVE_VIENNACL)
5483   if (mat->valid_GPU_matrix != PETSC_VIENNACL_UNALLOCATED) {
5484     mat->valid_GPU_matrix = PETSC_VIENNACL_CPU;
5485   }
5486 #elif defined(PETSC_HAVE_VECCUDA)
5487   if (mat->valid_GPU_matrix != PETSC_CUDA_UNALLOCATED) {
5488     mat->valid_GPU_matrix = PETSC_CUDA_CPU;
5489   }
5490 #endif
5491   PetscFunctionReturn(0);
5492 }
5493 
5494 /*@C
5495    MatZeroRowsColumns - Zeros all entries (except possibly the main diagonal)
5496    of a set of rows and columns of a matrix.
5497 
5498    Collective on Mat
5499 
5500    Input Parameters:
5501 +  mat - the matrix
5502 .  numRows - the number of rows to remove
5503 .  rows - the global row indices
5504 .  diag - value put in all diagonals of eliminated rows (0.0 will even eliminate diagonal entry)
5505 .  x - optional vector of solutions for zeroed rows (other entries in vector are not used)
5506 -  b - optional vector of right hand side, that will be adjusted by provided solution
5507 
5508    Notes:
5509    This does not change the nonzero structure of the matrix, it merely zeros those entries in the matrix.
5510 
5511    The user can set a value in the diagonal entry (or for the AIJ and
5512    row formats can optionally remove the main diagonal entry from the
5513    nonzero structure as well, by passing 0.0 as the final argument).
5514 
5515    For the parallel case, all processes that share the matrix (i.e.,
5516    those in the communicator used for matrix creation) MUST call this
5517    routine, regardless of whether any rows being zeroed are owned by
5518    them.
5519 
5520    Each processor can indicate any rows in the entire matrix to be zeroed (i.e. each process does NOT have to
5521    list only rows local to itself).
5522 
5523    The option MAT_NO_OFF_PROC_ZERO_ROWS does not apply to this routine.
5524 
5525    Level: intermediate
5526 
5527    Concepts: matrices^zeroing rows
5528 
5529 .seealso: MatZeroRowsIS(), MatZeroRowsStencil(), MatZeroEntries(), MatZeroRowsLocal(), MatSetOption(), MatZeroRowsColumnsIS()
5530 @*/
5531 PetscErrorCode MatZeroRowsColumns(Mat mat,PetscInt numRows,const PetscInt rows[],PetscScalar diag,Vec x,Vec b)
5532 {
5533   PetscErrorCode ierr;
5534 
5535   PetscFunctionBegin;
5536   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
5537   PetscValidType(mat,1);
5538   if (numRows) PetscValidIntPointer(rows,3);
5539   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
5540   if (mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
5541   if (!mat->ops->zerorowscolumns) SETERRQ1(PetscObjectComm((PetscObject)mat),PETSC_ERR_SUP,"Mat type %s",((PetscObject)mat)->type_name);
5542   MatCheckPreallocated(mat,1);
5543 
5544   ierr = (*mat->ops->zerorowscolumns)(mat,numRows,rows,diag,x,b);CHKERRQ(ierr);
5545   ierr = MatViewFromOptions(mat,NULL,"-mat_view");CHKERRQ(ierr);
5546   ierr = PetscObjectStateIncrease((PetscObject)mat);CHKERRQ(ierr);
5547 #if defined(PETSC_HAVE_CUSP)
5548   if (mat->valid_GPU_matrix != PETSC_CUSP_UNALLOCATED) {
5549     mat->valid_GPU_matrix = PETSC_CUSP_CPU;
5550   }
5551 #elif defined(PETSC_HAVE_VIENNACL)
5552   if (mat->valid_GPU_matrix != PETSC_VIENNACL_UNALLOCATED) {
5553     mat->valid_GPU_matrix = PETSC_VIENNACL_CPU;
5554   }
5555 #elif defined(PETSC_HAVE_VECCUDA)
5556   if (mat->valid_GPU_matrix != PETSC_CUDA_UNALLOCATED) {
5557     mat->valid_GPU_matrix = PETSC_CUDA_CPU;
5558   }
5559 #endif
5560   PetscFunctionReturn(0);
5561 }
5562 
5563 /*@C
5564    MatZeroRowsColumnsIS - Zeros all entries (except possibly the main diagonal)
5565    of a set of rows and columns of a matrix.
5566 
5567    Collective on Mat
5568 
5569    Input Parameters:
5570 +  mat - the matrix
5571 .  is - the rows to zero
5572 .  diag - value put in all diagonals of eliminated rows (0.0 will even eliminate diagonal entry)
5573 .  x - optional vector of solutions for zeroed rows (other entries in vector are not used)
5574 -  b - optional vector of right hand side, that will be adjusted by provided solution
5575 
5576    Notes:
5577    This does not change the nonzero structure of the matrix, it merely zeros those entries in the matrix.
5578 
5579    The user can set a value in the diagonal entry (or for the AIJ and
5580    row formats can optionally remove the main diagonal entry from the
5581    nonzero structure as well, by passing 0.0 as the final argument).
5582 
5583    For the parallel case, all processes that share the matrix (i.e.,
5584    those in the communicator used for matrix creation) MUST call this
5585    routine, regardless of whether any rows being zeroed are owned by
5586    them.
5587 
5588    Each processor can indicate any rows in the entire matrix to be zeroed (i.e. each process does NOT have to
5589    list only rows local to itself).
5590 
5591    The option MAT_NO_OFF_PROC_ZERO_ROWS does not apply to this routine.
5592 
5593    Level: intermediate
5594 
5595    Concepts: matrices^zeroing rows
5596 
5597 .seealso: MatZeroRowsIS(), MatZeroRowsStencil(), MatZeroEntries(), MatZeroRowsLocal(), MatSetOption(), MatZeroRowsColumns()
5598 @*/
5599 PetscErrorCode MatZeroRowsColumnsIS(Mat mat,IS is,PetscScalar diag,Vec x,Vec b)
5600 {
5601   PetscErrorCode ierr;
5602   PetscInt       numRows;
5603   const PetscInt *rows;
5604 
5605   PetscFunctionBegin;
5606   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
5607   PetscValidHeaderSpecific(is,IS_CLASSID,2);
5608   PetscValidType(mat,1);
5609   PetscValidType(is,2);
5610   ierr = ISGetLocalSize(is,&numRows);CHKERRQ(ierr);
5611   ierr = ISGetIndices(is,&rows);CHKERRQ(ierr);
5612   ierr = MatZeroRowsColumns(mat,numRows,rows,diag,x,b);CHKERRQ(ierr);
5613   ierr = ISRestoreIndices(is,&rows);CHKERRQ(ierr);
5614   PetscFunctionReturn(0);
5615 }
5616 
5617 /*@C
5618    MatZeroRows - Zeros all entries (except possibly the main diagonal)
5619    of a set of rows of a matrix.
5620 
5621    Collective on Mat
5622 
5623    Input Parameters:
5624 +  mat - the matrix
5625 .  numRows - the number of rows to remove
5626 .  rows - the global row indices
5627 .  diag - value put in all diagonals of eliminated rows (0.0 will even eliminate diagonal entry)
5628 .  x - optional vector of solutions for zeroed rows (other entries in vector are not used)
5629 -  b - optional vector of right hand side, that will be adjusted by provided solution
5630 
5631    Notes:
5632    For the AIJ and BAIJ matrix formats this removes the old nonzero structure,
5633    but does not release memory.  For the dense and block diagonal
5634    formats this does not alter the nonzero structure.
5635 
5636    If the option MatSetOption(mat,MAT_KEEP_NONZERO_PATTERN,PETSC_TRUE) the nonzero structure
5637    of the matrix is not changed (even for AIJ and BAIJ matrices) the values are
5638    merely zeroed.
5639 
5640    The user can set a value in the diagonal entry (or for the AIJ and
5641    row formats can optionally remove the main diagonal entry from the
5642    nonzero structure as well, by passing 0.0 as the final argument).
5643 
5644    For the parallel case, all processes that share the matrix (i.e.,
5645    those in the communicator used for matrix creation) MUST call this
5646    routine, regardless of whether any rows being zeroed are owned by
5647    them.
5648 
5649    Each processor can indicate any rows in the entire matrix to be zeroed (i.e. each process does NOT have to
5650    list only rows local to itself).
5651 
5652    You can call MatSetOption(mat,MAT_NO_OFF_PROC_ZERO_ROWS,PETSC_TRUE) if each process indicates only rows it
5653    owns that are to be zeroed. This saves a global synchronization in the implementation.
5654 
5655    Level: intermediate
5656 
5657    Concepts: matrices^zeroing rows
5658 
5659 .seealso: MatZeroRowsIS(), MatZeroRowsStencil(), MatZeroEntries(), MatZeroRowsLocal(), MatSetOption()
5660 @*/
5661 PetscErrorCode MatZeroRows(Mat mat,PetscInt numRows,const PetscInt rows[],PetscScalar diag,Vec x,Vec b)
5662 {
5663   PetscErrorCode ierr;
5664 
5665   PetscFunctionBegin;
5666   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
5667   PetscValidType(mat,1);
5668   if (numRows) PetscValidIntPointer(rows,3);
5669   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
5670   if (mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
5671   if (!mat->ops->zerorows) SETERRQ1(PetscObjectComm((PetscObject)mat),PETSC_ERR_SUP,"Mat type %s",((PetscObject)mat)->type_name);
5672   MatCheckPreallocated(mat,1);
5673 
5674   ierr = (*mat->ops->zerorows)(mat,numRows,rows,diag,x,b);CHKERRQ(ierr);
5675   ierr = MatViewFromOptions(mat,NULL,"-mat_view");CHKERRQ(ierr);
5676   ierr = PetscObjectStateIncrease((PetscObject)mat);CHKERRQ(ierr);
5677 #if defined(PETSC_HAVE_CUSP)
5678   if (mat->valid_GPU_matrix != PETSC_CUSP_UNALLOCATED) {
5679     mat->valid_GPU_matrix = PETSC_CUSP_CPU;
5680   }
5681 #elif defined(PETSC_HAVE_VIENNACL)
5682   if (mat->valid_GPU_matrix != PETSC_VIENNACL_UNALLOCATED) {
5683     mat->valid_GPU_matrix = PETSC_VIENNACL_CPU;
5684   }
5685 #elif defined(PETSC_HAVE_VECCUDA)
5686   if (mat->valid_GPU_matrix != PETSC_CUDA_UNALLOCATED) {
5687     mat->valid_GPU_matrix = PETSC_CUDA_CPU;
5688   }
5689 #endif
5690   PetscFunctionReturn(0);
5691 }
5692 
5693 /*@C
5694    MatZeroRowsIS - Zeros all entries (except possibly the main diagonal)
5695    of a set of rows of a matrix.
5696 
5697    Collective on Mat
5698 
5699    Input Parameters:
5700 +  mat - the matrix
5701 .  is - index set of rows to remove
5702 .  diag - value put in all diagonals of eliminated rows
5703 .  x - optional vector of solutions for zeroed rows (other entries in vector are not used)
5704 -  b - optional vector of right hand side, that will be adjusted by provided solution
5705 
5706    Notes:
5707    For the AIJ and BAIJ matrix formats this removes the old nonzero structure,
5708    but does not release memory.  For the dense and block diagonal
5709    formats this does not alter the nonzero structure.
5710 
5711    If the option MatSetOption(mat,MAT_KEEP_NONZERO_PATTERN,PETSC_TRUE) the nonzero structure
5712    of the matrix is not changed (even for AIJ and BAIJ matrices) the values are
5713    merely zeroed.
5714 
5715    The user can set a value in the diagonal entry (or for the AIJ and
5716    row formats can optionally remove the main diagonal entry from the
5717    nonzero structure as well, by passing 0.0 as the final argument).
5718 
5719    For the parallel case, all processes that share the matrix (i.e.,
5720    those in the communicator used for matrix creation) MUST call this
5721    routine, regardless of whether any rows being zeroed are owned by
5722    them.
5723 
5724    Each processor can indicate any rows in the entire matrix to be zeroed (i.e. each process does NOT have to
5725    list only rows local to itself).
5726 
5727    You can call MatSetOption(mat,MAT_NO_OFF_PROC_ZERO_ROWS,PETSC_TRUE) if each process indicates only rows it
5728    owns that are to be zeroed. This saves a global synchronization in the implementation.
5729 
5730    Level: intermediate
5731 
5732    Concepts: matrices^zeroing rows
5733 
5734 .seealso: MatZeroRows(), MatZeroRowsStencil(), MatZeroEntries(), MatZeroRowsLocal(), MatSetOption()
5735 @*/
5736 PetscErrorCode MatZeroRowsIS(Mat mat,IS is,PetscScalar diag,Vec x,Vec b)
5737 {
5738   PetscInt       numRows;
5739   const PetscInt *rows;
5740   PetscErrorCode ierr;
5741 
5742   PetscFunctionBegin;
5743   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
5744   PetscValidType(mat,1);
5745   PetscValidHeaderSpecific(is,IS_CLASSID,2);
5746   ierr = ISGetLocalSize(is,&numRows);CHKERRQ(ierr);
5747   ierr = ISGetIndices(is,&rows);CHKERRQ(ierr);
5748   ierr = MatZeroRows(mat,numRows,rows,diag,x,b);CHKERRQ(ierr);
5749   ierr = ISRestoreIndices(is,&rows);CHKERRQ(ierr);
5750   PetscFunctionReturn(0);
5751 }
5752 
5753 /*@C
5754    MatZeroRowsStencil - Zeros all entries (except possibly the main diagonal)
5755    of a set of rows of a matrix. These rows must be local to the process.
5756 
5757    Collective on Mat
5758 
5759    Input Parameters:
5760 +  mat - the matrix
5761 .  numRows - the number of rows to remove
5762 .  rows - the grid coordinates (and component number when dof > 1) for matrix rows
5763 .  diag - value put in all diagonals of eliminated rows (0.0 will even eliminate diagonal entry)
5764 .  x - optional vector of solutions for zeroed rows (other entries in vector are not used)
5765 -  b - optional vector of right hand side, that will be adjusted by provided solution
5766 
5767    Notes:
5768    For the AIJ and BAIJ matrix formats this removes the old nonzero structure,
5769    but does not release memory.  For the dense and block diagonal
5770    formats this does not alter the nonzero structure.
5771 
5772    If the option MatSetOption(mat,MAT_KEEP_NONZERO_PATTERN,PETSC_TRUE) the nonzero structure
5773    of the matrix is not changed (even for AIJ and BAIJ matrices) the values are
5774    merely zeroed.
5775 
5776    The user can set a value in the diagonal entry (or for the AIJ and
5777    row formats can optionally remove the main diagonal entry from the
5778    nonzero structure as well, by passing 0.0 as the final argument).
5779 
5780    For the parallel case, all processes that share the matrix (i.e.,
5781    those in the communicator used for matrix creation) MUST call this
5782    routine, regardless of whether any rows being zeroed are owned by
5783    them.
5784 
5785    Each processor can indicate any rows in the entire matrix to be zeroed (i.e. each process does NOT have to
5786    list only rows local to itself).
5787 
5788    The grid coordinates are across the entire grid, not just the local portion
5789 
5790    In Fortran idxm and idxn should be declared as
5791 $     MatStencil idxm(4,m)
5792    and the values inserted using
5793 $    idxm(MatStencil_i,1) = i
5794 $    idxm(MatStencil_j,1) = j
5795 $    idxm(MatStencil_k,1) = k
5796 $    idxm(MatStencil_c,1) = c
5797    etc
5798 
5799    For periodic boundary conditions use negative indices for values to the left (below 0; that are to be
5800    obtained by wrapping values from right edge). For values to the right of the last entry using that index plus one
5801    etc to obtain values that obtained by wrapping the values from the left edge. This does not work for anything but the
5802    DM_BOUNDARY_PERIODIC boundary type.
5803 
5804    For indices that don't mean anything for your case (like the k index when working in 2d) or the c index when you have
5805    a single value per point) you can skip filling those indices.
5806 
5807    Level: intermediate
5808 
5809    Concepts: matrices^zeroing rows
5810 
5811 .seealso: MatZeroRows(), MatZeroRowsIS(), MatZeroEntries(), MatZeroRowsLocal(), MatSetOption()
5812 @*/
5813 PetscErrorCode MatZeroRowsStencil(Mat mat,PetscInt numRows,const MatStencil rows[],PetscScalar diag,Vec x,Vec b)
5814 {
5815   PetscInt       dim     = mat->stencil.dim;
5816   PetscInt       sdim    = dim - (1 - (PetscInt) mat->stencil.noc);
5817   PetscInt       *dims   = mat->stencil.dims+1;
5818   PetscInt       *starts = mat->stencil.starts;
5819   PetscInt       *dxm    = (PetscInt*) rows;
5820   PetscInt       *jdxm, i, j, tmp, numNewRows = 0;
5821   PetscErrorCode ierr;
5822 
5823   PetscFunctionBegin;
5824   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
5825   PetscValidType(mat,1);
5826   if (numRows) PetscValidIntPointer(rows,3);
5827 
5828   ierr = PetscMalloc1(numRows, &jdxm);CHKERRQ(ierr);
5829   for (i = 0; i < numRows; ++i) {
5830     /* Skip unused dimensions (they are ordered k, j, i, c) */
5831     for (j = 0; j < 3-sdim; ++j) dxm++;
5832     /* Local index in X dir */
5833     tmp = *dxm++ - starts[0];
5834     /* Loop over remaining dimensions */
5835     for (j = 0; j < dim-1; ++j) {
5836       /* If nonlocal, set index to be negative */
5837       if ((*dxm++ - starts[j+1]) < 0 || tmp < 0) tmp = PETSC_MIN_INT;
5838       /* Update local index */
5839       else tmp = tmp*dims[j] + *(dxm-1) - starts[j+1];
5840     }
5841     /* Skip component slot if necessary */
5842     if (mat->stencil.noc) dxm++;
5843     /* Local row number */
5844     if (tmp >= 0) {
5845       jdxm[numNewRows++] = tmp;
5846     }
5847   }
5848   ierr = MatZeroRowsLocal(mat,numNewRows,jdxm,diag,x,b);CHKERRQ(ierr);
5849   ierr = PetscFree(jdxm);CHKERRQ(ierr);
5850   PetscFunctionReturn(0);
5851 }
5852 
5853 /*@C
5854    MatZeroRowsColumnsStencil - Zeros all row and column entries (except possibly the main diagonal)
5855    of a set of rows and columns of a matrix.
5856 
5857    Collective on Mat
5858 
5859    Input Parameters:
5860 +  mat - the matrix
5861 .  numRows - the number of rows/columns to remove
5862 .  rows - the grid coordinates (and component number when dof > 1) for matrix rows
5863 .  diag - value put in all diagonals of eliminated rows (0.0 will even eliminate diagonal entry)
5864 .  x - optional vector of solutions for zeroed rows (other entries in vector are not used)
5865 -  b - optional vector of right hand side, that will be adjusted by provided solution
5866 
5867    Notes:
5868    For the AIJ and BAIJ matrix formats this removes the old nonzero structure,
5869    but does not release memory.  For the dense and block diagonal
5870    formats this does not alter the nonzero structure.
5871 
5872    If the option MatSetOption(mat,MAT_KEEP_NONZERO_PATTERN,PETSC_TRUE) the nonzero structure
5873    of the matrix is not changed (even for AIJ and BAIJ matrices) the values are
5874    merely zeroed.
5875 
5876    The user can set a value in the diagonal entry (or for the AIJ and
5877    row formats can optionally remove the main diagonal entry from the
5878    nonzero structure as well, by passing 0.0 as the final argument).
5879 
5880    For the parallel case, all processes that share the matrix (i.e.,
5881    those in the communicator used for matrix creation) MUST call this
5882    routine, regardless of whether any rows being zeroed are owned by
5883    them.
5884 
5885    Each processor can indicate any rows in the entire matrix to be zeroed (i.e. each process does NOT have to
5886    list only rows local to itself, but the row/column numbers are given in local numbering).
5887 
5888    The grid coordinates are across the entire grid, not just the local portion
5889 
5890    In Fortran idxm and idxn should be declared as
5891 $     MatStencil idxm(4,m)
5892    and the values inserted using
5893 $    idxm(MatStencil_i,1) = i
5894 $    idxm(MatStencil_j,1) = j
5895 $    idxm(MatStencil_k,1) = k
5896 $    idxm(MatStencil_c,1) = c
5897    etc
5898 
5899    For periodic boundary conditions use negative indices for values to the left (below 0; that are to be
5900    obtained by wrapping values from right edge). For values to the right of the last entry using that index plus one
5901    etc to obtain values that obtained by wrapping the values from the left edge. This does not work for anything but the
5902    DM_BOUNDARY_PERIODIC boundary type.
5903 
5904    For indices that don't mean anything for your case (like the k index when working in 2d) or the c index when you have
5905    a single value per point) you can skip filling those indices.
5906 
5907    Level: intermediate
5908 
5909    Concepts: matrices^zeroing rows
5910 
5911 .seealso: MatZeroRows(), MatZeroRowsIS(), MatZeroEntries(), MatZeroRowsLocal(), MatSetOption()
5912 @*/
5913 PetscErrorCode MatZeroRowsColumnsStencil(Mat mat,PetscInt numRows,const MatStencil rows[],PetscScalar diag,Vec x,Vec b)
5914 {
5915   PetscInt       dim     = mat->stencil.dim;
5916   PetscInt       sdim    = dim - (1 - (PetscInt) mat->stencil.noc);
5917   PetscInt       *dims   = mat->stencil.dims+1;
5918   PetscInt       *starts = mat->stencil.starts;
5919   PetscInt       *dxm    = (PetscInt*) rows;
5920   PetscInt       *jdxm, i, j, tmp, numNewRows = 0;
5921   PetscErrorCode ierr;
5922 
5923   PetscFunctionBegin;
5924   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
5925   PetscValidType(mat,1);
5926   if (numRows) PetscValidIntPointer(rows,3);
5927 
5928   ierr = PetscMalloc1(numRows, &jdxm);CHKERRQ(ierr);
5929   for (i = 0; i < numRows; ++i) {
5930     /* Skip unused dimensions (they are ordered k, j, i, c) */
5931     for (j = 0; j < 3-sdim; ++j) dxm++;
5932     /* Local index in X dir */
5933     tmp = *dxm++ - starts[0];
5934     /* Loop over remaining dimensions */
5935     for (j = 0; j < dim-1; ++j) {
5936       /* If nonlocal, set index to be negative */
5937       if ((*dxm++ - starts[j+1]) < 0 || tmp < 0) tmp = PETSC_MIN_INT;
5938       /* Update local index */
5939       else tmp = tmp*dims[j] + *(dxm-1) - starts[j+1];
5940     }
5941     /* Skip component slot if necessary */
5942     if (mat->stencil.noc) dxm++;
5943     /* Local row number */
5944     if (tmp >= 0) {
5945       jdxm[numNewRows++] = tmp;
5946     }
5947   }
5948   ierr = MatZeroRowsColumnsLocal(mat,numNewRows,jdxm,diag,x,b);CHKERRQ(ierr);
5949   ierr = PetscFree(jdxm);CHKERRQ(ierr);
5950   PetscFunctionReturn(0);
5951 }
5952 
5953 /*@C
5954    MatZeroRowsLocal - Zeros all entries (except possibly the main diagonal)
5955    of a set of rows of a matrix; using local numbering of rows.
5956 
5957    Collective on Mat
5958 
5959    Input Parameters:
5960 +  mat - the matrix
5961 .  numRows - the number of rows to remove
5962 .  rows - the global row indices
5963 .  diag - value put in all diagonals of eliminated rows
5964 .  x - optional vector of solutions for zeroed rows (other entries in vector are not used)
5965 -  b - optional vector of right hand side, that will be adjusted by provided solution
5966 
5967    Notes:
5968    Before calling MatZeroRowsLocal(), the user must first set the
5969    local-to-global mapping by calling MatSetLocalToGlobalMapping().
5970 
5971    For the AIJ matrix formats this removes the old nonzero structure,
5972    but does not release memory.  For the dense and block diagonal
5973    formats this does not alter the nonzero structure.
5974 
5975    If the option MatSetOption(mat,MAT_KEEP_NONZERO_PATTERN,PETSC_TRUE) the nonzero structure
5976    of the matrix is not changed (even for AIJ and BAIJ matrices) the values are
5977    merely zeroed.
5978 
5979    The user can set a value in the diagonal entry (or for the AIJ and
5980    row formats can optionally remove the main diagonal entry from the
5981    nonzero structure as well, by passing 0.0 as the final argument).
5982 
5983    You can call MatSetOption(mat,MAT_NO_OFF_PROC_ZERO_ROWS,PETSC_TRUE) if each process indicates only rows it
5984    owns that are to be zeroed. This saves a global synchronization in the implementation.
5985 
5986    Level: intermediate
5987 
5988    Concepts: matrices^zeroing
5989 
5990 .seealso: MatZeroRows(), MatZeroRowsLocalIS(), MatZeroEntries(), MatZeroRows(), MatSetLocalToGlobalMapping
5991 @*/
5992 PetscErrorCode MatZeroRowsLocal(Mat mat,PetscInt numRows,const PetscInt rows[],PetscScalar diag,Vec x,Vec b)
5993 {
5994   PetscErrorCode ierr;
5995 
5996   PetscFunctionBegin;
5997   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
5998   PetscValidType(mat,1);
5999   if (numRows) PetscValidIntPointer(rows,3);
6000   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
6001   if (mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
6002   MatCheckPreallocated(mat,1);
6003 
6004   if (mat->ops->zerorowslocal) {
6005     ierr = (*mat->ops->zerorowslocal)(mat,numRows,rows,diag,x,b);CHKERRQ(ierr);
6006   } else {
6007     IS             is, newis;
6008     const PetscInt *newRows;
6009 
6010     if (!mat->rmap->mapping) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Need to provide local to global mapping to matrix first");
6011     ierr = ISCreateGeneral(PETSC_COMM_SELF,numRows,rows,PETSC_COPY_VALUES,&is);CHKERRQ(ierr);
6012     ierr = ISLocalToGlobalMappingApplyIS(mat->rmap->mapping,is,&newis);CHKERRQ(ierr);
6013     ierr = ISGetIndices(newis,&newRows);CHKERRQ(ierr);
6014     ierr = (*mat->ops->zerorows)(mat,numRows,newRows,diag,x,b);CHKERRQ(ierr);
6015     ierr = ISRestoreIndices(newis,&newRows);CHKERRQ(ierr);
6016     ierr = ISDestroy(&newis);CHKERRQ(ierr);
6017     ierr = ISDestroy(&is);CHKERRQ(ierr);
6018   }
6019   ierr = PetscObjectStateIncrease((PetscObject)mat);CHKERRQ(ierr);
6020 #if defined(PETSC_HAVE_CUSP)
6021   if (mat->valid_GPU_matrix != PETSC_CUSP_UNALLOCATED) {
6022     mat->valid_GPU_matrix = PETSC_CUSP_CPU;
6023   }
6024 #elif defined(PETSC_HAVE_VIENNACL)
6025   if (mat->valid_GPU_matrix != PETSC_VIENNACL_UNALLOCATED) {
6026     mat->valid_GPU_matrix = PETSC_VIENNACL_CPU;
6027   }
6028 #elif defined(PETSC_HAVE_VECCUDA)
6029   if (mat->valid_GPU_matrix != PETSC_CUDA_UNALLOCATED) {
6030     mat->valid_GPU_matrix = PETSC_CUDA_CPU;
6031   }
6032 #endif
6033   PetscFunctionReturn(0);
6034 }
6035 
6036 /*@C
6037    MatZeroRowsLocalIS - Zeros all entries (except possibly the main diagonal)
6038    of a set of rows of a matrix; using local numbering of rows.
6039 
6040    Collective on Mat
6041 
6042    Input Parameters:
6043 +  mat - the matrix
6044 .  is - index set of rows to remove
6045 .  diag - value put in all diagonals of eliminated rows
6046 .  x - optional vector of solutions for zeroed rows (other entries in vector are not used)
6047 -  b - optional vector of right hand side, that will be adjusted by provided solution
6048 
6049    Notes:
6050    Before calling MatZeroRowsLocalIS(), the user must first set the
6051    local-to-global mapping by calling MatSetLocalToGlobalMapping().
6052 
6053    For the AIJ matrix formats this removes the old nonzero structure,
6054    but does not release memory.  For the dense and block diagonal
6055    formats this does not alter the nonzero structure.
6056 
6057    If the option MatSetOption(mat,MAT_KEEP_NONZERO_PATTERN,PETSC_TRUE) the nonzero structure
6058    of the matrix is not changed (even for AIJ and BAIJ matrices) the values are
6059    merely zeroed.
6060 
6061    The user can set a value in the diagonal entry (or for the AIJ and
6062    row formats can optionally remove the main diagonal entry from the
6063    nonzero structure as well, by passing 0.0 as the final argument).
6064 
6065    You can call MatSetOption(mat,MAT_NO_OFF_PROC_ZERO_ROWS,PETSC_TRUE) if each process indicates only rows it
6066    owns that are to be zeroed. This saves a global synchronization in the implementation.
6067 
6068    Level: intermediate
6069 
6070    Concepts: matrices^zeroing
6071 
6072 .seealso: MatZeroRows(), MatZeroRowsLocal(), MatZeroEntries(), MatZeroRows(), MatSetLocalToGlobalMapping
6073 @*/
6074 PetscErrorCode MatZeroRowsLocalIS(Mat mat,IS is,PetscScalar diag,Vec x,Vec b)
6075 {
6076   PetscErrorCode ierr;
6077   PetscInt       numRows;
6078   const PetscInt *rows;
6079 
6080   PetscFunctionBegin;
6081   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
6082   PetscValidType(mat,1);
6083   PetscValidHeaderSpecific(is,IS_CLASSID,2);
6084   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
6085   if (mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
6086   MatCheckPreallocated(mat,1);
6087 
6088   ierr = ISGetLocalSize(is,&numRows);CHKERRQ(ierr);
6089   ierr = ISGetIndices(is,&rows);CHKERRQ(ierr);
6090   ierr = MatZeroRowsLocal(mat,numRows,rows,diag,x,b);CHKERRQ(ierr);
6091   ierr = ISRestoreIndices(is,&rows);CHKERRQ(ierr);
6092   PetscFunctionReturn(0);
6093 }
6094 
6095 /*@C
6096    MatZeroRowsColumnsLocal - Zeros all entries (except possibly the main diagonal)
6097    of a set of rows and columns of a matrix; using local numbering of rows.
6098 
6099    Collective on Mat
6100 
6101    Input Parameters:
6102 +  mat - the matrix
6103 .  numRows - the number of rows to remove
6104 .  rows - the global row indices
6105 .  diag - value put in all diagonals of eliminated rows
6106 .  x - optional vector of solutions for zeroed rows (other entries in vector are not used)
6107 -  b - optional vector of right hand side, that will be adjusted by provided solution
6108 
6109    Notes:
6110    Before calling MatZeroRowsColumnsLocal(), the user must first set the
6111    local-to-global mapping by calling MatSetLocalToGlobalMapping().
6112 
6113    The user can set a value in the diagonal entry (or for the AIJ and
6114    row formats can optionally remove the main diagonal entry from the
6115    nonzero structure as well, by passing 0.0 as the final argument).
6116 
6117    Level: intermediate
6118 
6119    Concepts: matrices^zeroing
6120 
6121 .seealso: MatZeroRows(), MatZeroRowsLocalIS(), MatZeroEntries(), MatZeroRows(), MatSetLocalToGlobalMapping
6122 @*/
6123 PetscErrorCode MatZeroRowsColumnsLocal(Mat mat,PetscInt numRows,const PetscInt rows[],PetscScalar diag,Vec x,Vec b)
6124 {
6125   PetscErrorCode ierr;
6126   IS             is, newis;
6127   const PetscInt *newRows;
6128 
6129   PetscFunctionBegin;
6130   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
6131   PetscValidType(mat,1);
6132   if (numRows) PetscValidIntPointer(rows,3);
6133   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
6134   if (mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
6135   MatCheckPreallocated(mat,1);
6136 
6137   if (!mat->cmap->mapping) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Need to provide local to global mapping to matrix first");
6138   ierr = ISCreateGeneral(PETSC_COMM_SELF,numRows,rows,PETSC_COPY_VALUES,&is);CHKERRQ(ierr);
6139   ierr = ISLocalToGlobalMappingApplyIS(mat->cmap->mapping,is,&newis);CHKERRQ(ierr);
6140   ierr = ISGetIndices(newis,&newRows);CHKERRQ(ierr);
6141   ierr = (*mat->ops->zerorowscolumns)(mat,numRows,newRows,diag,x,b);CHKERRQ(ierr);
6142   ierr = ISRestoreIndices(newis,&newRows);CHKERRQ(ierr);
6143   ierr = ISDestroy(&newis);CHKERRQ(ierr);
6144   ierr = ISDestroy(&is);CHKERRQ(ierr);
6145   ierr = PetscObjectStateIncrease((PetscObject)mat);CHKERRQ(ierr);
6146 #if defined(PETSC_HAVE_CUSP)
6147   if (mat->valid_GPU_matrix != PETSC_CUSP_UNALLOCATED) {
6148     mat->valid_GPU_matrix = PETSC_CUSP_CPU;
6149   }
6150 #elif defined(PETSC_HAVE_VIENNACL)
6151   if (mat->valid_GPU_matrix != PETSC_VIENNACL_UNALLOCATED) {
6152     mat->valid_GPU_matrix = PETSC_VIENNACL_CPU;
6153   }
6154 #elif defined(PETSC_HAVE_VECCUDA)
6155   if (mat->valid_GPU_matrix != PETSC_CUDA_UNALLOCATED) {
6156     mat->valid_GPU_matrix = PETSC_CUDA_CPU;
6157   }
6158 #endif
6159   PetscFunctionReturn(0);
6160 }
6161 
6162 /*@C
6163    MatZeroRowsColumnsLocalIS - Zeros all entries (except possibly the main diagonal)
6164    of a set of rows and columns of a matrix; using local numbering of rows.
6165 
6166    Collective on Mat
6167 
6168    Input Parameters:
6169 +  mat - the matrix
6170 .  is - index set of rows to remove
6171 .  diag - value put in all diagonals of eliminated rows
6172 .  x - optional vector of solutions for zeroed rows (other entries in vector are not used)
6173 -  b - optional vector of right hand side, that will be adjusted by provided solution
6174 
6175    Notes:
6176    Before calling MatZeroRowsColumnsLocalIS(), the user must first set the
6177    local-to-global mapping by calling MatSetLocalToGlobalMapping().
6178 
6179    The user can set a value in the diagonal entry (or for the AIJ and
6180    row formats can optionally remove the main diagonal entry from the
6181    nonzero structure as well, by passing 0.0 as the final argument).
6182 
6183    Level: intermediate
6184 
6185    Concepts: matrices^zeroing
6186 
6187 .seealso: MatZeroRows(), MatZeroRowsLocal(), MatZeroEntries(), MatZeroRows(), MatSetLocalToGlobalMapping
6188 @*/
6189 PetscErrorCode MatZeroRowsColumnsLocalIS(Mat mat,IS is,PetscScalar diag,Vec x,Vec b)
6190 {
6191   PetscErrorCode ierr;
6192   PetscInt       numRows;
6193   const PetscInt *rows;
6194 
6195   PetscFunctionBegin;
6196   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
6197   PetscValidType(mat,1);
6198   PetscValidHeaderSpecific(is,IS_CLASSID,2);
6199   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
6200   if (mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
6201   MatCheckPreallocated(mat,1);
6202 
6203   ierr = ISGetLocalSize(is,&numRows);CHKERRQ(ierr);
6204   ierr = ISGetIndices(is,&rows);CHKERRQ(ierr);
6205   ierr = MatZeroRowsColumnsLocal(mat,numRows,rows,diag,x,b);CHKERRQ(ierr);
6206   ierr = ISRestoreIndices(is,&rows);CHKERRQ(ierr);
6207   PetscFunctionReturn(0);
6208 }
6209 
6210 /*@C
6211    MatGetSize - Returns the numbers of rows and columns in a matrix.
6212 
6213    Not Collective
6214 
6215    Input Parameter:
6216 .  mat - the matrix
6217 
6218    Output Parameters:
6219 +  m - the number of global rows
6220 -  n - the number of global columns
6221 
6222    Note: both output parameters can be NULL on input.
6223 
6224    Level: beginner
6225 
6226    Concepts: matrices^size
6227 
6228 .seealso: MatGetLocalSize()
6229 @*/
6230 PetscErrorCode MatGetSize(Mat mat,PetscInt *m,PetscInt *n)
6231 {
6232   PetscFunctionBegin;
6233   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
6234   if (m) *m = mat->rmap->N;
6235   if (n) *n = mat->cmap->N;
6236   PetscFunctionReturn(0);
6237 }
6238 
6239 /*@C
6240    MatGetLocalSize - Returns the number of rows and columns in a matrix
6241    stored locally.  This information may be implementation dependent, so
6242    use with care.
6243 
6244    Not Collective
6245 
6246    Input Parameters:
6247 .  mat - the matrix
6248 
6249    Output Parameters:
6250 +  m - the number of local rows
6251 -  n - the number of local columns
6252 
6253    Note: both output parameters can be NULL on input.
6254 
6255    Level: beginner
6256 
6257    Concepts: matrices^local size
6258 
6259 .seealso: MatGetSize()
6260 @*/
6261 PetscErrorCode MatGetLocalSize(Mat mat,PetscInt *m,PetscInt *n)
6262 {
6263   PetscFunctionBegin;
6264   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
6265   if (m) PetscValidIntPointer(m,2);
6266   if (n) PetscValidIntPointer(n,3);
6267   if (m) *m = mat->rmap->n;
6268   if (n) *n = mat->cmap->n;
6269   PetscFunctionReturn(0);
6270 }
6271 
6272 /*@
6273    MatGetOwnershipRangeColumn - Returns the range of matrix columns associated with rows of a vector one multiplies by that owned by
6274    this processor. (The columns of the "diagonal block")
6275 
6276    Not Collective, unless matrix has not been allocated, then collective on Mat
6277 
6278    Input Parameters:
6279 .  mat - the matrix
6280 
6281    Output Parameters:
6282 +  m - the global index of the first local column
6283 -  n - one more than the global index of the last local column
6284 
6285    Notes: both output parameters can be NULL on input.
6286 
6287    Level: developer
6288 
6289    Concepts: matrices^column ownership
6290 
6291 .seealso:  MatGetOwnershipRange(), MatGetOwnershipRanges(), MatGetOwnershipRangesColumn()
6292 
6293 @*/
6294 PetscErrorCode MatGetOwnershipRangeColumn(Mat mat,PetscInt *m,PetscInt *n)
6295 {
6296   PetscFunctionBegin;
6297   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
6298   PetscValidType(mat,1);
6299   if (m) PetscValidIntPointer(m,2);
6300   if (n) PetscValidIntPointer(n,3);
6301   MatCheckPreallocated(mat,1);
6302   if (m) *m = mat->cmap->rstart;
6303   if (n) *n = mat->cmap->rend;
6304   PetscFunctionReturn(0);
6305 }
6306 
6307 /*@
6308    MatGetOwnershipRange - Returns the range of matrix rows owned by
6309    this processor, assuming that the matrix is laid out with the first
6310    n1 rows on the first processor, the next n2 rows on the second, etc.
6311    For certain parallel layouts this range may not be well defined.
6312 
6313    Not Collective
6314 
6315    Input Parameters:
6316 .  mat - the matrix
6317 
6318    Output Parameters:
6319 +  m - the global index of the first local row
6320 -  n - one more than the global index of the last local row
6321 
6322    Note: Both output parameters can be NULL on input.
6323 $  This function requires that the matrix be preallocated. If you have not preallocated, consider using
6324 $    PetscSplitOwnership(MPI_Comm comm, PetscInt *n, PetscInt *N)
6325 $  and then MPI_Scan() to calculate prefix sums of the local sizes.
6326 
6327    Level: beginner
6328 
6329    Concepts: matrices^row ownership
6330 
6331 .seealso:   MatGetOwnershipRanges(), MatGetOwnershipRangeColumn(), MatGetOwnershipRangesColumn(), PetscSplitOwnership(), PetscSplitOwnershipBlock()
6332 
6333 @*/
6334 PetscErrorCode MatGetOwnershipRange(Mat mat,PetscInt *m,PetscInt *n)
6335 {
6336   PetscFunctionBegin;
6337   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
6338   PetscValidType(mat,1);
6339   if (m) PetscValidIntPointer(m,2);
6340   if (n) PetscValidIntPointer(n,3);
6341   MatCheckPreallocated(mat,1);
6342   if (m) *m = mat->rmap->rstart;
6343   if (n) *n = mat->rmap->rend;
6344   PetscFunctionReturn(0);
6345 }
6346 
6347 /*@C
6348    MatGetOwnershipRanges - Returns the range of matrix rows owned by
6349    each process
6350 
6351    Not Collective, unless matrix has not been allocated, then collective on Mat
6352 
6353    Input Parameters:
6354 .  mat - the matrix
6355 
6356    Output Parameters:
6357 .  ranges - start of each processors portion plus one more than the total length at the end
6358 
6359    Level: beginner
6360 
6361    Concepts: matrices^row ownership
6362 
6363 .seealso:   MatGetOwnershipRange(), MatGetOwnershipRangeColumn(), MatGetOwnershipRangesColumn()
6364 
6365 @*/
6366 PetscErrorCode MatGetOwnershipRanges(Mat mat,const PetscInt **ranges)
6367 {
6368   PetscErrorCode ierr;
6369 
6370   PetscFunctionBegin;
6371   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
6372   PetscValidType(mat,1);
6373   MatCheckPreallocated(mat,1);
6374   ierr = PetscLayoutGetRanges(mat->rmap,ranges);CHKERRQ(ierr);
6375   PetscFunctionReturn(0);
6376 }
6377 
6378 /*@C
6379    MatGetOwnershipRangesColumn - Returns the range of matrix columns associated with rows of a vector one multiplies by that owned by
6380    this processor. (The columns of the "diagonal blocks" for each process)
6381 
6382    Not Collective, unless matrix has not been allocated, then collective on Mat
6383 
6384    Input Parameters:
6385 .  mat - the matrix
6386 
6387    Output Parameters:
6388 .  ranges - start of each processors portion plus one more then the total length at the end
6389 
6390    Level: beginner
6391 
6392    Concepts: matrices^column ownership
6393 
6394 .seealso:   MatGetOwnershipRange(), MatGetOwnershipRangeColumn(), MatGetOwnershipRanges()
6395 
6396 @*/
6397 PetscErrorCode MatGetOwnershipRangesColumn(Mat mat,const PetscInt **ranges)
6398 {
6399   PetscErrorCode ierr;
6400 
6401   PetscFunctionBegin;
6402   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
6403   PetscValidType(mat,1);
6404   MatCheckPreallocated(mat,1);
6405   ierr = PetscLayoutGetRanges(mat->cmap,ranges);CHKERRQ(ierr);
6406   PetscFunctionReturn(0);
6407 }
6408 
6409 /*@C
6410    MatGetOwnershipIS - Get row and column ownership as index sets
6411 
6412    Not Collective
6413 
6414    Input Arguments:
6415 .  A - matrix of type Elemental
6416 
6417    Output Arguments:
6418 +  rows - rows in which this process owns elements
6419 .  cols - columns in which this process owns elements
6420 
6421    Level: intermediate
6422 
6423 .seealso: MatGetOwnershipRange(), MatGetOwnershipRangeColumn(), MatSetValues(), MATELEMENTAL, MatSetValues()
6424 @*/
6425 PetscErrorCode MatGetOwnershipIS(Mat A,IS *rows,IS *cols)
6426 {
6427   PetscErrorCode ierr,(*f)(Mat,IS*,IS*);
6428 
6429   PetscFunctionBegin;
6430   MatCheckPreallocated(A,1);
6431   ierr = PetscObjectQueryFunction((PetscObject)A,"MatGetOwnershipIS_C",&f);CHKERRQ(ierr);
6432   if (f) {
6433     ierr = (*f)(A,rows,cols);CHKERRQ(ierr);
6434   } else {   /* Create a standard row-based partition, each process is responsible for ALL columns in their row block */
6435     if (rows) {ierr = ISCreateStride(PETSC_COMM_SELF,A->rmap->n,A->rmap->rstart,1,rows);CHKERRQ(ierr);}
6436     if (cols) {ierr = ISCreateStride(PETSC_COMM_SELF,A->cmap->N,0,1,cols);CHKERRQ(ierr);}
6437   }
6438   PetscFunctionReturn(0);
6439 }
6440 
6441 /*@C
6442    MatILUFactorSymbolic - Performs symbolic ILU factorization of a matrix.
6443    Uses levels of fill only, not drop tolerance. Use MatLUFactorNumeric()
6444    to complete the factorization.
6445 
6446    Collective on Mat
6447 
6448    Input Parameters:
6449 +  mat - the matrix
6450 .  row - row permutation
6451 .  column - column permutation
6452 -  info - structure containing
6453 $      levels - number of levels of fill.
6454 $      expected fill - as ratio of original fill.
6455 $      1 or 0 - indicating force fill on diagonal (improves robustness for matrices
6456                 missing diagonal entries)
6457 
6458    Output Parameters:
6459 .  fact - new matrix that has been symbolically factored
6460 
6461    Notes: See Users-Manual: ch_mat for additional information about choosing the fill factor for better efficiency.
6462 
6463    Most users should employ the simplified KSP interface for linear solvers
6464    instead of working directly with matrix algebra routines such as this.
6465    See, e.g., KSPCreate().
6466 
6467    Level: developer
6468 
6469   Concepts: matrices^symbolic LU factorization
6470   Concepts: matrices^factorization
6471   Concepts: LU^symbolic factorization
6472 
6473 .seealso: MatLUFactorSymbolic(), MatLUFactorNumeric(), MatCholeskyFactor()
6474           MatGetOrdering(), MatFactorInfo
6475 
6476     Developer Note: fortran interface is not autogenerated as the f90
6477     interface defintion cannot be generated correctly [due to MatFactorInfo]
6478 
6479 @*/
6480 PetscErrorCode MatILUFactorSymbolic(Mat fact,Mat mat,IS row,IS col,const MatFactorInfo *info)
6481 {
6482   PetscErrorCode ierr;
6483 
6484   PetscFunctionBegin;
6485   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
6486   PetscValidType(mat,1);
6487   PetscValidHeaderSpecific(row,IS_CLASSID,2);
6488   PetscValidHeaderSpecific(col,IS_CLASSID,3);
6489   PetscValidPointer(info,4);
6490   PetscValidPointer(fact,5);
6491   if (info->levels < 0) SETERRQ1(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_OUTOFRANGE,"Levels of fill negative %D",(PetscInt)info->levels);
6492   if (info->fill < 1.0) SETERRQ1(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_OUTOFRANGE,"Expected fill less than 1.0 %g",(double)info->fill);
6493   if (!(fact)->ops->ilufactorsymbolic) {
6494     const MatSolverPackage spackage;
6495     ierr = MatFactorGetSolverPackage(fact,&spackage);CHKERRQ(ierr);
6496     SETERRQ2(PetscObjectComm((PetscObject)mat),PETSC_ERR_SUP,"Matrix type %s symbolic ILU using solver package %s",((PetscObject)mat)->type_name,spackage);
6497   }
6498   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
6499   if (mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
6500   MatCheckPreallocated(mat,2);
6501 
6502   ierr = PetscLogEventBegin(MAT_ILUFactorSymbolic,mat,row,col,0);CHKERRQ(ierr);
6503   ierr = (fact->ops->ilufactorsymbolic)(fact,mat,row,col,info);CHKERRQ(ierr);
6504   ierr = PetscLogEventEnd(MAT_ILUFactorSymbolic,mat,row,col,0);CHKERRQ(ierr);
6505   PetscFunctionReturn(0);
6506 }
6507 
6508 /*@C
6509    MatICCFactorSymbolic - Performs symbolic incomplete
6510    Cholesky factorization for a symmetric matrix.  Use
6511    MatCholeskyFactorNumeric() to complete the factorization.
6512 
6513    Collective on Mat
6514 
6515    Input Parameters:
6516 +  mat - the matrix
6517 .  perm - row and column permutation
6518 -  info - structure containing
6519 $      levels - number of levels of fill.
6520 $      expected fill - as ratio of original fill.
6521 
6522    Output Parameter:
6523 .  fact - the factored matrix
6524 
6525    Notes:
6526    Most users should employ the KSP interface for linear solvers
6527    instead of working directly with matrix algebra routines such as this.
6528    See, e.g., KSPCreate().
6529 
6530    Level: developer
6531 
6532   Concepts: matrices^symbolic incomplete Cholesky factorization
6533   Concepts: matrices^factorization
6534   Concepts: Cholsky^symbolic factorization
6535 
6536 .seealso: MatCholeskyFactorNumeric(), MatCholeskyFactor(), MatFactorInfo
6537 
6538     Developer Note: fortran interface is not autogenerated as the f90
6539     interface defintion cannot be generated correctly [due to MatFactorInfo]
6540 
6541 @*/
6542 PetscErrorCode MatICCFactorSymbolic(Mat fact,Mat mat,IS perm,const MatFactorInfo *info)
6543 {
6544   PetscErrorCode ierr;
6545 
6546   PetscFunctionBegin;
6547   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
6548   PetscValidType(mat,1);
6549   PetscValidHeaderSpecific(perm,IS_CLASSID,2);
6550   PetscValidPointer(info,3);
6551   PetscValidPointer(fact,4);
6552   if (mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
6553   if (info->levels < 0) SETERRQ1(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_OUTOFRANGE,"Levels negative %D",(PetscInt) info->levels);
6554   if (info->fill < 1.0) SETERRQ1(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_OUTOFRANGE,"Expected fill less than 1.0 %g",(double)info->fill);
6555   if (!(fact)->ops->iccfactorsymbolic) {
6556     const MatSolverPackage spackage;
6557     ierr = MatFactorGetSolverPackage(fact,&spackage);CHKERRQ(ierr);
6558     SETERRQ2(PetscObjectComm((PetscObject)mat),PETSC_ERR_SUP,"Matrix type %s symbolic ICC using solver package %s",((PetscObject)mat)->type_name,spackage);
6559   }
6560   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
6561   MatCheckPreallocated(mat,2);
6562 
6563   ierr = PetscLogEventBegin(MAT_ICCFactorSymbolic,mat,perm,0,0);CHKERRQ(ierr);
6564   ierr = (fact->ops->iccfactorsymbolic)(fact,mat,perm,info);CHKERRQ(ierr);
6565   ierr = PetscLogEventEnd(MAT_ICCFactorSymbolic,mat,perm,0,0);CHKERRQ(ierr);
6566   PetscFunctionReturn(0);
6567 }
6568 
6569 /*@C
6570    MatGetSubMatrices - Extracts several submatrices from a matrix. If submat
6571    points to an array of valid matrices, they may be reused to store the new
6572    submatrices.
6573 
6574    Collective on Mat
6575 
6576    Input Parameters:
6577 +  mat - the matrix
6578 .  n   - the number of submatrixes to be extracted (on this processor, may be zero)
6579 .  irow, icol - index sets of rows and columns to extract
6580 -  scall - either MAT_INITIAL_MATRIX or MAT_REUSE_MATRIX
6581 
6582    Output Parameter:
6583 .  submat - the array of submatrices
6584 
6585    Notes:
6586    MatGetSubMatrices() can extract ONLY sequential submatrices
6587    (from both sequential and parallel matrices). Use MatGetSubMatrix()
6588    to extract a parallel submatrix.
6589 
6590    Some matrix types place restrictions on the row and column
6591    indices, such as that they be sorted or that they be equal to each other.
6592 
6593    The index sets may not have duplicate entries.
6594 
6595    When extracting submatrices from a parallel matrix, each processor can
6596    form a different submatrix by setting the rows and columns of its
6597    individual index sets according to the local submatrix desired.
6598 
6599    When finished using the submatrices, the user should destroy
6600    them with MatDestroyMatrices().
6601 
6602    MAT_REUSE_MATRIX can only be used when the nonzero structure of the
6603    original matrix has not changed from that last call to MatGetSubMatrices().
6604 
6605    This routine creates the matrices in submat; you should NOT create them before
6606    calling it. It also allocates the array of matrix pointers submat.
6607 
6608    For BAIJ matrices the index sets must respect the block structure, that is if they
6609    request one row/column in a block, they must request all rows/columns that are in
6610    that block. For example, if the block size is 2 you cannot request just row 0 and
6611    column 0.
6612 
6613    Fortran Note:
6614    The Fortran interface is slightly different from that given below; it
6615    requires one to pass in  as submat a Mat (integer) array of size at least m.
6616 
6617    Level: advanced
6618 
6619    Concepts: matrices^accessing submatrices
6620    Concepts: submatrices
6621 
6622 .seealso: MatDestroyMatrices(), MatGetSubMatrix(), MatGetRow(), MatGetDiagonal(), MatReuse
6623 @*/
6624 PetscErrorCode MatGetSubMatrices(Mat mat,PetscInt n,const IS irow[],const IS icol[],MatReuse scall,Mat *submat[])
6625 {
6626   PetscErrorCode ierr;
6627   PetscInt       i;
6628   PetscBool      eq;
6629 
6630   PetscFunctionBegin;
6631   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
6632   PetscValidType(mat,1);
6633   if (n) {
6634     PetscValidPointer(irow,3);
6635     PetscValidHeaderSpecific(*irow,IS_CLASSID,3);
6636     PetscValidPointer(icol,4);
6637     PetscValidHeaderSpecific(*icol,IS_CLASSID,4);
6638   }
6639   PetscValidPointer(submat,6);
6640   if (n && scall == MAT_REUSE_MATRIX) {
6641     PetscValidPointer(*submat,6);
6642     PetscValidHeaderSpecific(**submat,MAT_CLASSID,6);
6643   }
6644   if (!mat->ops->getsubmatrices) SETERRQ1(PETSC_COMM_SELF,PETSC_ERR_SUP,"Mat type %s",((PetscObject)mat)->type_name);
6645   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
6646   if (mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
6647   MatCheckPreallocated(mat,1);
6648 
6649   ierr = PetscLogEventBegin(MAT_GetSubMatrices,mat,0,0,0);CHKERRQ(ierr);
6650   ierr = (*mat->ops->getsubmatrices)(mat,n,irow,icol,scall,submat);CHKERRQ(ierr);
6651   ierr = PetscLogEventEnd(MAT_GetSubMatrices,mat,0,0,0);CHKERRQ(ierr);
6652   for (i=0; i<n; i++) {
6653     (*submat)[i]->factortype = MAT_FACTOR_NONE;  /* in case in place factorization was previously done on submatrix */
6654     if (mat->symmetric || mat->structurally_symmetric || mat->hermitian) {
6655       ierr = ISEqual(irow[i],icol[i],&eq);CHKERRQ(ierr);
6656       if (eq) {
6657         if (mat->symmetric) {
6658           ierr = MatSetOption((*submat)[i],MAT_SYMMETRIC,PETSC_TRUE);CHKERRQ(ierr);
6659         } else if (mat->hermitian) {
6660           ierr = MatSetOption((*submat)[i],MAT_HERMITIAN,PETSC_TRUE);CHKERRQ(ierr);
6661         } else if (mat->structurally_symmetric) {
6662           ierr = MatSetOption((*submat)[i],MAT_STRUCTURALLY_SYMMETRIC,PETSC_TRUE);CHKERRQ(ierr);
6663         }
6664       }
6665     }
6666   }
6667   PetscFunctionReturn(0);
6668 }
6669 
6670 PetscErrorCode MatGetSubMatricesMPI(Mat mat,PetscInt n,const IS irow[],const IS icol[],MatReuse scall,Mat *submat[])
6671 {
6672   PetscErrorCode ierr;
6673   PetscInt       i;
6674   PetscBool      eq;
6675 
6676   PetscFunctionBegin;
6677   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
6678   PetscValidType(mat,1);
6679   if (n) {
6680     PetscValidPointer(irow,3);
6681     PetscValidHeaderSpecific(*irow,IS_CLASSID,3);
6682     PetscValidPointer(icol,4);
6683     PetscValidHeaderSpecific(*icol,IS_CLASSID,4);
6684   }
6685   PetscValidPointer(submat,6);
6686   if (n && scall == MAT_REUSE_MATRIX) {
6687     PetscValidPointer(*submat,6);
6688     PetscValidHeaderSpecific(**submat,MAT_CLASSID,6);
6689   }
6690   if (!mat->ops->getsubmatricesmpi) SETERRQ1(PETSC_COMM_SELF,PETSC_ERR_SUP,"Mat type %s",((PetscObject)mat)->type_name);
6691   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
6692   if (mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
6693   MatCheckPreallocated(mat,1);
6694 
6695   ierr = PetscLogEventBegin(MAT_GetSubMatrices,mat,0,0,0);CHKERRQ(ierr);
6696   ierr = (*mat->ops->getsubmatricesmpi)(mat,n,irow,icol,scall,submat);CHKERRQ(ierr);
6697   ierr = PetscLogEventEnd(MAT_GetSubMatrices,mat,0,0,0);CHKERRQ(ierr);
6698   for (i=0; i<n; i++) {
6699     if (mat->symmetric || mat->structurally_symmetric || mat->hermitian) {
6700       ierr = ISEqual(irow[i],icol[i],&eq);CHKERRQ(ierr);
6701       if (eq) {
6702         if (mat->symmetric) {
6703           ierr = MatSetOption((*submat)[i],MAT_SYMMETRIC,PETSC_TRUE);CHKERRQ(ierr);
6704         } else if (mat->hermitian) {
6705           ierr = MatSetOption((*submat)[i],MAT_HERMITIAN,PETSC_TRUE);CHKERRQ(ierr);
6706         } else if (mat->structurally_symmetric) {
6707           ierr = MatSetOption((*submat)[i],MAT_STRUCTURALLY_SYMMETRIC,PETSC_TRUE);CHKERRQ(ierr);
6708         }
6709       }
6710     }
6711   }
6712   PetscFunctionReturn(0);
6713 }
6714 
6715 #include <../src/mat/impls/aij/seq/aij.h>
6716 /*@C
6717    MatDestroyMatrices - Destroys a set of matrices obtained with MatGetSubMatrices().
6718 
6719    Collective on Mat
6720 
6721    Input Parameters:
6722 +  n - the number of local matrices
6723 -  mat - the matrices (note that this is a pointer to the array of matrices, just to match the calling
6724                        sequence of MatGetSubMatrices())
6725 
6726    Level: advanced
6727 
6728     Notes: Frees not only the matrices, but also the array that contains the matrices
6729            In Fortran will not free the array.
6730 
6731 .seealso: MatGetSubMatrices()
6732 @*/
6733 PetscErrorCode MatDestroyMatrices(PetscInt n,Mat *mat[])
6734 {
6735   PetscErrorCode ierr;
6736   PetscInt       i;
6737   Mat_SubMat     *smat;
6738 
6739   PetscFunctionBegin;
6740   if (!*mat) PetscFunctionReturn(0);
6741   if (n < 0) SETERRQ1(PETSC_COMM_SELF,PETSC_ERR_ARG_OUTOFRANGE,"Trying to destroy negative number of matrices %D",n);
6742   PetscValidPointer(mat,2);
6743 
6744   /* Destroy dummy submatrices used for reuse struct Mat_SubMat */
6745   PetscBool isdummy;
6746   ierr = PetscObjectTypeCompare((PetscObject)(*mat)[0],MATDUMMY,&isdummy);
6747   if (isdummy) {
6748     smat = (Mat_SubMat*)((*mat)[0]->spptr);
6749 
6750     if (smat && !smat->singleis && (smat->nstages > 1 || !n)) {
6751       for (i=0; i<smat->nstages; i++) {
6752         if ((*mat)[n+i]) {
6753           printf("MatDestroyMatrices() has dummy submat %d\n",i);
6754           ierr = MatDestroy(&(*mat)[n+i]);CHKERRQ(ierr);
6755         }
6756       }
6757     }
6758   }
6759 
6760   for (i=0; i<n; i++) {
6761     ierr = MatDestroy(&(*mat)[i]);CHKERRQ(ierr);
6762   }
6763 
6764   /* memory is allocated even if n = 0 */
6765   ierr = PetscFree(*mat);CHKERRQ(ierr);
6766   PetscFunctionReturn(0);
6767 }
6768 
6769 /*@C
6770    MatGetSeqNonzeroStructure - Extracts the sequential nonzero structure from a matrix.
6771 
6772    Collective on Mat
6773 
6774    Input Parameters:
6775 .  mat - the matrix
6776 
6777    Output Parameter:
6778 .  matstruct - the sequential matrix with the nonzero structure of mat
6779 
6780   Level: intermediate
6781 
6782 .seealso: MatDestroySeqNonzeroStructure(), MatGetSubMatrices(), MatDestroyMatrices()
6783 @*/
6784 PetscErrorCode MatGetSeqNonzeroStructure(Mat mat,Mat *matstruct)
6785 {
6786   PetscErrorCode ierr;
6787 
6788   PetscFunctionBegin;
6789   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
6790   PetscValidPointer(matstruct,2);
6791 
6792   PetscValidType(mat,1);
6793   if (mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
6794   MatCheckPreallocated(mat,1);
6795 
6796   if (!mat->ops->getseqnonzerostructure) SETERRQ1(PetscObjectComm((PetscObject)mat),PETSC_ERR_SUP,"Not for matrix type %s\n",((PetscObject)mat)->type_name);
6797   ierr = PetscLogEventBegin(MAT_GetSeqNonzeroStructure,mat,0,0,0);CHKERRQ(ierr);
6798   ierr = (*mat->ops->getseqnonzerostructure)(mat,matstruct);CHKERRQ(ierr);
6799   ierr = PetscLogEventEnd(MAT_GetSeqNonzeroStructure,mat,0,0,0);CHKERRQ(ierr);
6800   PetscFunctionReturn(0);
6801 }
6802 
6803 /*@C
6804    MatDestroySeqNonzeroStructure - Destroys matrix obtained with MatGetSeqNonzeroStructure().
6805 
6806    Collective on Mat
6807 
6808    Input Parameters:
6809 .  mat - the matrix (note that this is a pointer to the array of matrices, just to match the calling
6810                        sequence of MatGetSequentialNonzeroStructure())
6811 
6812    Level: advanced
6813 
6814     Notes: Frees not only the matrices, but also the array that contains the matrices
6815 
6816 .seealso: MatGetSeqNonzeroStructure()
6817 @*/
6818 PetscErrorCode MatDestroySeqNonzeroStructure(Mat *mat)
6819 {
6820   PetscErrorCode ierr;
6821 
6822   PetscFunctionBegin;
6823   PetscValidPointer(mat,1);
6824   ierr = MatDestroy(mat);CHKERRQ(ierr);
6825   PetscFunctionReturn(0);
6826 }
6827 
6828 /*@
6829    MatIncreaseOverlap - Given a set of submatrices indicated by index sets,
6830    replaces the index sets by larger ones that represent submatrices with
6831    additional overlap.
6832 
6833    Collective on Mat
6834 
6835    Input Parameters:
6836 +  mat - the matrix
6837 .  n   - the number of index sets
6838 .  is  - the array of index sets (these index sets will changed during the call)
6839 -  ov  - the additional overlap requested
6840 
6841    Options Database:
6842 .  -mat_increase_overlap_scalable - use a scalable algorithm to compute the overlap (supported by MPIAIJ matrix)
6843 
6844    Level: developer
6845 
6846    Concepts: overlap
6847    Concepts: ASM^computing overlap
6848 
6849 .seealso: MatGetSubMatrices()
6850 @*/
6851 PetscErrorCode MatIncreaseOverlap(Mat mat,PetscInt n,IS is[],PetscInt ov)
6852 {
6853   PetscErrorCode ierr;
6854 
6855   PetscFunctionBegin;
6856   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
6857   PetscValidType(mat,1);
6858   if (n < 0) SETERRQ1(PETSC_COMM_SELF,PETSC_ERR_ARG_OUTOFRANGE,"Must have one or more domains, you have %D",n);
6859   if (n) {
6860     PetscValidPointer(is,3);
6861     PetscValidHeaderSpecific(*is,IS_CLASSID,3);
6862   }
6863   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
6864   if (mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
6865   MatCheckPreallocated(mat,1);
6866 
6867   if (!ov) PetscFunctionReturn(0);
6868   if (!mat->ops->increaseoverlap) SETERRQ1(PetscObjectComm((PetscObject)mat),PETSC_ERR_SUP,"Mat type %s",((PetscObject)mat)->type_name);
6869   ierr = PetscLogEventBegin(MAT_IncreaseOverlap,mat,0,0,0);CHKERRQ(ierr);
6870   ierr = (*mat->ops->increaseoverlap)(mat,n,is,ov);CHKERRQ(ierr);
6871   ierr = PetscLogEventEnd(MAT_IncreaseOverlap,mat,0,0,0);CHKERRQ(ierr);
6872   PetscFunctionReturn(0);
6873 }
6874 
6875 
6876 PetscErrorCode MatIncreaseOverlapSplit_Single(Mat,IS*,PetscInt);
6877 
6878 /*@
6879    MatIncreaseOverlapSplit - Given a set of submatrices indicated by index sets across
6880    a sub communicator, replaces the index sets by larger ones that represent submatrices with
6881    additional overlap.
6882 
6883    Collective on Mat
6884 
6885    Input Parameters:
6886 +  mat - the matrix
6887 .  n   - the number of index sets
6888 .  is  - the array of index sets (these index sets will changed during the call)
6889 -  ov  - the additional overlap requested
6890 
6891    Options Database:
6892 .  -mat_increase_overlap_scalable - use a scalable algorithm to compute the overlap (supported by MPIAIJ matrix)
6893 
6894    Level: developer
6895 
6896    Concepts: overlap
6897    Concepts: ASM^computing overlap
6898 
6899 .seealso: MatGetSubMatrices()
6900 @*/
6901 PetscErrorCode MatIncreaseOverlapSplit(Mat mat,PetscInt n,IS is[],PetscInt ov)
6902 {
6903   PetscInt       i;
6904   PetscErrorCode ierr;
6905 
6906   PetscFunctionBegin;
6907   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
6908   PetscValidType(mat,1);
6909   if (n < 0) SETERRQ1(PETSC_COMM_SELF,PETSC_ERR_ARG_OUTOFRANGE,"Must have one or more domains, you have %D",n);
6910   if (n) {
6911     PetscValidPointer(is,3);
6912     PetscValidHeaderSpecific(*is,IS_CLASSID,3);
6913   }
6914   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
6915   if (mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
6916   MatCheckPreallocated(mat,1);
6917   if (!ov) PetscFunctionReturn(0);
6918   ierr = PetscLogEventBegin(MAT_IncreaseOverlap,mat,0,0,0);CHKERRQ(ierr);
6919   for(i=0; i<n; i++){
6920 	ierr =  MatIncreaseOverlapSplit_Single(mat,&is[i],ov);CHKERRQ(ierr);
6921   }
6922   ierr = PetscLogEventEnd(MAT_IncreaseOverlap,mat,0,0,0);CHKERRQ(ierr);
6923   PetscFunctionReturn(0);
6924 }
6925 
6926 
6927 
6928 
6929 /*@
6930    MatGetBlockSize - Returns the matrix block size.
6931 
6932    Not Collective
6933 
6934    Input Parameter:
6935 .  mat - the matrix
6936 
6937    Output Parameter:
6938 .  bs - block size
6939 
6940    Notes:
6941     Block row formats are MATSEQBAIJ, MATMPIBAIJ, MATSEQSBAIJ, MATMPISBAIJ. These formats ALWAYS have square block storage in the matrix.
6942 
6943    If the block size has not been set yet this routine returns 1.
6944 
6945    Level: intermediate
6946 
6947    Concepts: matrices^block size
6948 
6949 .seealso: MatCreateSeqBAIJ(), MatCreateBAIJ(), MatGetBlockSizes()
6950 @*/
6951 PetscErrorCode MatGetBlockSize(Mat mat,PetscInt *bs)
6952 {
6953   PetscFunctionBegin;
6954   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
6955   PetscValidIntPointer(bs,2);
6956   *bs = PetscAbs(mat->rmap->bs);
6957   PetscFunctionReturn(0);
6958 }
6959 
6960 /*@
6961    MatGetBlockSizes - Returns the matrix block row and column sizes.
6962 
6963    Not Collective
6964 
6965    Input Parameter:
6966 .  mat - the matrix
6967 
6968    Output Parameter:
6969 .  rbs - row block size
6970 .  cbs - coumn block size
6971 
6972    Notes:
6973     Block row formats are MATSEQBAIJ, MATMPIBAIJ, MATSEQSBAIJ, MATMPISBAIJ. These formats ALWAYS have square block storage in the matrix.
6974     If you pass a different block size for the columns than the rows, the row block size determines the square block storage.
6975 
6976    If a block size has not been set yet this routine returns 1.
6977 
6978    Level: intermediate
6979 
6980    Concepts: matrices^block size
6981 
6982 .seealso: MatCreateSeqBAIJ(), MatCreateBAIJ(), MatGetBlockSize(), MatSetBlockSize(), MatSetBlockSizes()
6983 @*/
6984 PetscErrorCode MatGetBlockSizes(Mat mat,PetscInt *rbs, PetscInt *cbs)
6985 {
6986   PetscFunctionBegin;
6987   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
6988   if (rbs) PetscValidIntPointer(rbs,2);
6989   if (cbs) PetscValidIntPointer(cbs,3);
6990   if (rbs) *rbs = PetscAbs(mat->rmap->bs);
6991   if (cbs) *cbs = PetscAbs(mat->cmap->bs);
6992   PetscFunctionReturn(0);
6993 }
6994 
6995 /*@
6996    MatSetBlockSize - Sets the matrix block size.
6997 
6998    Logically Collective on Mat
6999 
7000    Input Parameters:
7001 +  mat - the matrix
7002 -  bs - block size
7003 
7004    Notes:
7005     Block row formats are MATSEQBAIJ, MATMPIBAIJ, MATSEQSBAIJ, MATMPISBAIJ. These formats ALWAYS have square block storage in the matrix.
7006     This must be called before MatSetUp() or MatXXXSetPreallocation() (or will default to 1) and the block size cannot be changed later.
7007 
7008     For MATMPIAIJ and MATSEQAIJ matrix formats, this function can be called at a later stage, provided that the specified block size
7009     is compatible with the matrix local sizes.
7010 
7011    Level: intermediate
7012 
7013    Concepts: matrices^block size
7014 
7015 .seealso: MatCreateSeqBAIJ(), MatCreateBAIJ(), MatGetBlockSize(), MatSetBlockSizes(), MatGetBlockSizes()
7016 @*/
7017 PetscErrorCode MatSetBlockSize(Mat mat,PetscInt bs)
7018 {
7019   PetscErrorCode ierr;
7020 
7021   PetscFunctionBegin;
7022   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
7023   PetscValidLogicalCollectiveInt(mat,bs,2);
7024   ierr = MatSetBlockSizes(mat,bs,bs);CHKERRQ(ierr);
7025   PetscFunctionReturn(0);
7026 }
7027 
7028 /*@
7029    MatSetBlockSizes - Sets the matrix block row and column sizes.
7030 
7031    Logically Collective on Mat
7032 
7033    Input Parameters:
7034 +  mat - the matrix
7035 -  rbs - row block size
7036 -  cbs - column block size
7037 
7038    Notes:
7039     Block row formats are MATSEQBAIJ, MATMPIBAIJ, MATSEQSBAIJ, MATMPISBAIJ. These formats ALWAYS have square block storage in the matrix.
7040     If you pass a different block size for the columns than the rows, the row block size determines the square block storage.
7041     This must be called before MatSetUp() or MatXXXSetPreallocation() (or will default to 1) and the block size cannot be changed later
7042 
7043     For MATMPIAIJ and MATSEQAIJ matrix formats, this function can be called at a later stage, provided that the specified block sizes
7044     are compatible with the matrix local sizes.
7045 
7046     The row and column block size determine the blocksize of the "row" and "column" vectors returned by MatCreateVecs().
7047 
7048    Level: intermediate
7049 
7050    Concepts: matrices^block size
7051 
7052 .seealso: MatCreateSeqBAIJ(), MatCreateBAIJ(), MatGetBlockSize(), MatSetBlockSize(), MatGetBlockSizes()
7053 @*/
7054 PetscErrorCode MatSetBlockSizes(Mat mat,PetscInt rbs,PetscInt cbs)
7055 {
7056   PetscErrorCode ierr;
7057 
7058   PetscFunctionBegin;
7059   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
7060   PetscValidLogicalCollectiveInt(mat,rbs,2);
7061   PetscValidLogicalCollectiveInt(mat,cbs,3);
7062   if (mat->ops->setblocksizes) {
7063     ierr = (*mat->ops->setblocksizes)(mat,rbs,cbs);CHKERRQ(ierr);
7064   }
7065   if (mat->rmap->refcnt) {
7066     ISLocalToGlobalMapping l2g = NULL;
7067     PetscLayout            nmap = NULL;
7068 
7069     ierr = PetscLayoutDuplicate(mat->rmap,&nmap);CHKERRQ(ierr);
7070     if (mat->rmap->mapping) {
7071       ierr = ISLocalToGlobalMappingDuplicate(mat->rmap->mapping,&l2g);CHKERRQ(ierr);
7072     }
7073     ierr = PetscLayoutDestroy(&mat->rmap);CHKERRQ(ierr);
7074     mat->rmap = nmap;
7075     mat->rmap->mapping = l2g;
7076   }
7077   if (mat->cmap->refcnt) {
7078     ISLocalToGlobalMapping l2g = NULL;
7079     PetscLayout            nmap = NULL;
7080 
7081     ierr = PetscLayoutDuplicate(mat->cmap,&nmap);CHKERRQ(ierr);
7082     if (mat->cmap->mapping) {
7083       ierr = ISLocalToGlobalMappingDuplicate(mat->cmap->mapping,&l2g);CHKERRQ(ierr);
7084     }
7085     ierr = PetscLayoutDestroy(&mat->cmap);CHKERRQ(ierr);
7086     mat->cmap = nmap;
7087     mat->cmap->mapping = l2g;
7088   }
7089   ierr = PetscLayoutSetBlockSize(mat->rmap,rbs);CHKERRQ(ierr);
7090   ierr = PetscLayoutSetBlockSize(mat->cmap,cbs);CHKERRQ(ierr);
7091   PetscFunctionReturn(0);
7092 }
7093 
7094 /*@
7095    MatSetBlockSizesFromMats - Sets the matrix block row and column sizes to match a pair of matrices
7096 
7097    Logically Collective on Mat
7098 
7099    Input Parameters:
7100 +  mat - the matrix
7101 .  fromRow - matrix from which to copy row block size
7102 -  fromCol - matrix from which to copy column block size (can be same as fromRow)
7103 
7104    Level: developer
7105 
7106    Concepts: matrices^block size
7107 
7108 .seealso: MatCreateSeqBAIJ(), MatCreateBAIJ(), MatGetBlockSize(), MatSetBlockSizes()
7109 @*/
7110 PetscErrorCode MatSetBlockSizesFromMats(Mat mat,Mat fromRow,Mat fromCol)
7111 {
7112   PetscErrorCode ierr;
7113 
7114   PetscFunctionBegin;
7115   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
7116   PetscValidHeaderSpecific(fromRow,MAT_CLASSID,2);
7117   PetscValidHeaderSpecific(fromCol,MAT_CLASSID,3);
7118   if (fromRow->rmap->bs > 0) {ierr = PetscLayoutSetBlockSize(mat->rmap,fromRow->rmap->bs);CHKERRQ(ierr);}
7119   if (fromCol->cmap->bs > 0) {ierr = PetscLayoutSetBlockSize(mat->cmap,fromCol->cmap->bs);CHKERRQ(ierr);}
7120   PetscFunctionReturn(0);
7121 }
7122 
7123 /*@
7124    MatResidual - Default routine to calculate the residual.
7125 
7126    Collective on Mat and Vec
7127 
7128    Input Parameters:
7129 +  mat - the matrix
7130 .  b   - the right-hand-side
7131 -  x   - the approximate solution
7132 
7133    Output Parameter:
7134 .  r - location to store the residual
7135 
7136    Level: developer
7137 
7138 .keywords: MG, default, multigrid, residual
7139 
7140 .seealso: PCMGSetResidual()
7141 @*/
7142 PetscErrorCode MatResidual(Mat mat,Vec b,Vec x,Vec r)
7143 {
7144   PetscErrorCode ierr;
7145 
7146   PetscFunctionBegin;
7147   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
7148   PetscValidHeaderSpecific(b,VEC_CLASSID,2);
7149   PetscValidHeaderSpecific(x,VEC_CLASSID,3);
7150   PetscValidHeaderSpecific(r,VEC_CLASSID,4);
7151   PetscValidType(mat,1);
7152   MatCheckPreallocated(mat,1);
7153   ierr  = PetscLogEventBegin(MAT_Residual,mat,0,0,0);CHKERRQ(ierr);
7154   if (!mat->ops->residual) {
7155     ierr = MatMult(mat,x,r);CHKERRQ(ierr);
7156     ierr = VecAYPX(r,-1.0,b);CHKERRQ(ierr);
7157   } else {
7158     ierr  = (*mat->ops->residual)(mat,b,x,r);CHKERRQ(ierr);
7159   }
7160   ierr  = PetscLogEventEnd(MAT_Residual,mat,0,0,0);CHKERRQ(ierr);
7161   PetscFunctionReturn(0);
7162 }
7163 
7164 /*@C
7165     MatGetRowIJ - Returns the compressed row storage i and j indices for sequential matrices.
7166 
7167    Collective on Mat
7168 
7169     Input Parameters:
7170 +   mat - the matrix
7171 .   shift -  0 or 1 indicating we want the indices starting at 0 or 1
7172 .   symmetric - PETSC_TRUE or PETSC_FALSE indicating the matrix data structure should be   symmetrized
7173 -   inodecompressed - PETSC_TRUE or PETSC_FALSE  indicating if the nonzero structure of the
7174                  inodes or the nonzero elements is wanted. For BAIJ matrices the compressed version is
7175                  always used.
7176 
7177     Output Parameters:
7178 +   n - number of rows in the (possibly compressed) matrix
7179 .   ia - the row pointers [of length n+1]
7180 .   ja - the column indices
7181 -   done - indicates if the routine actually worked and returned appropriate ia[] and ja[] arrays; callers
7182            are responsible for handling the case when done == PETSC_FALSE and ia and ja are not set
7183 
7184     Level: developer
7185 
7186     Notes: You CANNOT change any of the ia[] or ja[] values.
7187 
7188            Use MatRestoreRowIJ() when you are finished accessing the ia[] and ja[] values
7189 
7190     Fortran Node
7191 
7192            In Fortran use
7193 $           PetscInt ia(1), ja(1)
7194 $           PetscOffset iia, jja
7195 $      call MatGetRowIJ(mat,shift,symmetric,inodecompressed,n,ia,iia,ja,jja,done,ierr)
7196 $      Acess the ith and jth entries via ia(iia + i) and ja(jja + j)
7197 $
7198 $          or
7199 $
7200 $           PetscInt, pointer :: ia(:),ja(:)
7201 $    call  MatGetRowIJF90(mat,shift,symmetric,inodecompressed,n,ia,ja,done,ierr)
7202 $      Acess the ith and jth entries via ia(i) and ja(j)
7203 
7204 
7205 
7206 .seealso: MatGetColumnIJ(), MatRestoreRowIJ(), MatSeqAIJGetArray()
7207 @*/
7208 PetscErrorCode MatGetRowIJ(Mat mat,PetscInt shift,PetscBool symmetric,PetscBool inodecompressed,PetscInt *n,const PetscInt *ia[],const PetscInt *ja[],PetscBool  *done)
7209 {
7210   PetscErrorCode ierr;
7211 
7212   PetscFunctionBegin;
7213   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
7214   PetscValidType(mat,1);
7215   PetscValidIntPointer(n,5);
7216   if (ia) PetscValidIntPointer(ia,6);
7217   if (ja) PetscValidIntPointer(ja,7);
7218   PetscValidIntPointer(done,8);
7219   MatCheckPreallocated(mat,1);
7220   if (!mat->ops->getrowij) *done = PETSC_FALSE;
7221   else {
7222     *done = PETSC_TRUE;
7223     ierr  = PetscLogEventBegin(MAT_GetRowIJ,mat,0,0,0);CHKERRQ(ierr);
7224     ierr  = (*mat->ops->getrowij)(mat,shift,symmetric,inodecompressed,n,ia,ja,done);CHKERRQ(ierr);
7225     ierr  = PetscLogEventEnd(MAT_GetRowIJ,mat,0,0,0);CHKERRQ(ierr);
7226   }
7227   PetscFunctionReturn(0);
7228 }
7229 
7230 /*@C
7231     MatGetColumnIJ - Returns the compressed column storage i and j indices for sequential matrices.
7232 
7233     Collective on Mat
7234 
7235     Input Parameters:
7236 +   mat - the matrix
7237 .   shift - 1 or zero indicating we want the indices starting at 0 or 1
7238 .   symmetric - PETSC_TRUE or PETSC_FALSE indicating the matrix data structure should be
7239                 symmetrized
7240 .   inodecompressed - PETSC_TRUE or PETSC_FALSE indicating if the nonzero structure of the
7241                  inodes or the nonzero elements is wanted. For BAIJ matrices the compressed version is
7242                  always used.
7243 .   n - number of columns in the (possibly compressed) matrix
7244 .   ia - the column pointers
7245 -   ja - the row indices
7246 
7247     Output Parameters:
7248 .   done - PETSC_TRUE or PETSC_FALSE, indicating whether the values have been returned
7249 
7250     Note:
7251     This routine zeros out n, ia, and ja. This is to prevent accidental
7252     us of the array after it has been restored. If you pass NULL, it will
7253     not zero the pointers.  Use of ia or ja after MatRestoreColumnIJ() is invalid.
7254 
7255     Level: developer
7256 
7257 .seealso: MatGetRowIJ(), MatRestoreColumnIJ()
7258 @*/
7259 PetscErrorCode MatGetColumnIJ(Mat mat,PetscInt shift,PetscBool symmetric,PetscBool inodecompressed,PetscInt *n,const PetscInt *ia[],const PetscInt *ja[],PetscBool  *done)
7260 {
7261   PetscErrorCode ierr;
7262 
7263   PetscFunctionBegin;
7264   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
7265   PetscValidType(mat,1);
7266   PetscValidIntPointer(n,4);
7267   if (ia) PetscValidIntPointer(ia,5);
7268   if (ja) PetscValidIntPointer(ja,6);
7269   PetscValidIntPointer(done,7);
7270   MatCheckPreallocated(mat,1);
7271   if (!mat->ops->getcolumnij) *done = PETSC_FALSE;
7272   else {
7273     *done = PETSC_TRUE;
7274     ierr  = (*mat->ops->getcolumnij)(mat,shift,symmetric,inodecompressed,n,ia,ja,done);CHKERRQ(ierr);
7275   }
7276   PetscFunctionReturn(0);
7277 }
7278 
7279 /*@C
7280     MatRestoreRowIJ - Call after you are completed with the ia,ja indices obtained with
7281     MatGetRowIJ().
7282 
7283     Collective on Mat
7284 
7285     Input Parameters:
7286 +   mat - the matrix
7287 .   shift - 1 or zero indicating we want the indices starting at 0 or 1
7288 .   symmetric - PETSC_TRUE or PETSC_FALSE indicating the matrix data structure should be
7289                 symmetrized
7290 .   inodecompressed -  PETSC_TRUE or PETSC_FALSE indicating if the nonzero structure of the
7291                  inodes or the nonzero elements is wanted. For BAIJ matrices the compressed version is
7292                  always used.
7293 .   n - size of (possibly compressed) matrix
7294 .   ia - the row pointers
7295 -   ja - the column indices
7296 
7297     Output Parameters:
7298 .   done - PETSC_TRUE or PETSC_FALSE indicated that the values have been returned
7299 
7300     Note:
7301     This routine zeros out n, ia, and ja. This is to prevent accidental
7302     us of the array after it has been restored. If you pass NULL, it will
7303     not zero the pointers.  Use of ia or ja after MatRestoreRowIJ() is invalid.
7304 
7305     Level: developer
7306 
7307 .seealso: MatGetRowIJ(), MatRestoreColumnIJ()
7308 @*/
7309 PetscErrorCode MatRestoreRowIJ(Mat mat,PetscInt shift,PetscBool symmetric,PetscBool inodecompressed,PetscInt *n,const PetscInt *ia[],const PetscInt *ja[],PetscBool  *done)
7310 {
7311   PetscErrorCode ierr;
7312 
7313   PetscFunctionBegin;
7314   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
7315   PetscValidType(mat,1);
7316   if (ia) PetscValidIntPointer(ia,6);
7317   if (ja) PetscValidIntPointer(ja,7);
7318   PetscValidIntPointer(done,8);
7319   MatCheckPreallocated(mat,1);
7320 
7321   if (!mat->ops->restorerowij) *done = PETSC_FALSE;
7322   else {
7323     *done = PETSC_TRUE;
7324     ierr  = (*mat->ops->restorerowij)(mat,shift,symmetric,inodecompressed,n,ia,ja,done);CHKERRQ(ierr);
7325     if (n)  *n = 0;
7326     if (ia) *ia = NULL;
7327     if (ja) *ja = NULL;
7328   }
7329   PetscFunctionReturn(0);
7330 }
7331 
7332 /*@C
7333     MatRestoreColumnIJ - Call after you are completed with the ia,ja indices obtained with
7334     MatGetColumnIJ().
7335 
7336     Collective on Mat
7337 
7338     Input Parameters:
7339 +   mat - the matrix
7340 .   shift - 1 or zero indicating we want the indices starting at 0 or 1
7341 -   symmetric - PETSC_TRUE or PETSC_FALSE indicating the matrix data structure should be
7342                 symmetrized
7343 -   inodecompressed - PETSC_TRUE or PETSC_FALSE indicating if the nonzero structure of the
7344                  inodes or the nonzero elements is wanted. For BAIJ matrices the compressed version is
7345                  always used.
7346 
7347     Output Parameters:
7348 +   n - size of (possibly compressed) matrix
7349 .   ia - the column pointers
7350 .   ja - the row indices
7351 -   done - PETSC_TRUE or PETSC_FALSE indicated that the values have been returned
7352 
7353     Level: developer
7354 
7355 .seealso: MatGetColumnIJ(), MatRestoreRowIJ()
7356 @*/
7357 PetscErrorCode MatRestoreColumnIJ(Mat mat,PetscInt shift,PetscBool symmetric,PetscBool inodecompressed,PetscInt *n,const PetscInt *ia[],const PetscInt *ja[],PetscBool  *done)
7358 {
7359   PetscErrorCode ierr;
7360 
7361   PetscFunctionBegin;
7362   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
7363   PetscValidType(mat,1);
7364   if (ia) PetscValidIntPointer(ia,5);
7365   if (ja) PetscValidIntPointer(ja,6);
7366   PetscValidIntPointer(done,7);
7367   MatCheckPreallocated(mat,1);
7368 
7369   if (!mat->ops->restorecolumnij) *done = PETSC_FALSE;
7370   else {
7371     *done = PETSC_TRUE;
7372     ierr  = (*mat->ops->restorecolumnij)(mat,shift,symmetric,inodecompressed,n,ia,ja,done);CHKERRQ(ierr);
7373     if (n)  *n = 0;
7374     if (ia) *ia = NULL;
7375     if (ja) *ja = NULL;
7376   }
7377   PetscFunctionReturn(0);
7378 }
7379 
7380 /*@C
7381     MatColoringPatch -Used inside matrix coloring routines that
7382     use MatGetRowIJ() and/or MatGetColumnIJ().
7383 
7384     Collective on Mat
7385 
7386     Input Parameters:
7387 +   mat - the matrix
7388 .   ncolors - max color value
7389 .   n   - number of entries in colorarray
7390 -   colorarray - array indicating color for each column
7391 
7392     Output Parameters:
7393 .   iscoloring - coloring generated using colorarray information
7394 
7395     Level: developer
7396 
7397 .seealso: MatGetRowIJ(), MatGetColumnIJ()
7398 
7399 @*/
7400 PetscErrorCode MatColoringPatch(Mat mat,PetscInt ncolors,PetscInt n,ISColoringValue colorarray[],ISColoring *iscoloring)
7401 {
7402   PetscErrorCode ierr;
7403 
7404   PetscFunctionBegin;
7405   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
7406   PetscValidType(mat,1);
7407   PetscValidIntPointer(colorarray,4);
7408   PetscValidPointer(iscoloring,5);
7409   MatCheckPreallocated(mat,1);
7410 
7411   if (!mat->ops->coloringpatch) {
7412     ierr = ISColoringCreate(PetscObjectComm((PetscObject)mat),ncolors,n,colorarray,PETSC_OWN_POINTER,iscoloring);CHKERRQ(ierr);
7413   } else {
7414     ierr = (*mat->ops->coloringpatch)(mat,ncolors,n,colorarray,iscoloring);CHKERRQ(ierr);
7415   }
7416   PetscFunctionReturn(0);
7417 }
7418 
7419 
7420 /*@
7421    MatSetUnfactored - Resets a factored matrix to be treated as unfactored.
7422 
7423    Logically Collective on Mat
7424 
7425    Input Parameter:
7426 .  mat - the factored matrix to be reset
7427 
7428    Notes:
7429    This routine should be used only with factored matrices formed by in-place
7430    factorization via ILU(0) (or by in-place LU factorization for the MATSEQDENSE
7431    format).  This option can save memory, for example, when solving nonlinear
7432    systems with a matrix-free Newton-Krylov method and a matrix-based, in-place
7433    ILU(0) preconditioner.
7434 
7435    Note that one can specify in-place ILU(0) factorization by calling
7436 .vb
7437      PCType(pc,PCILU);
7438      PCFactorSeUseInPlace(pc);
7439 .ve
7440    or by using the options -pc_type ilu -pc_factor_in_place
7441 
7442    In-place factorization ILU(0) can also be used as a local
7443    solver for the blocks within the block Jacobi or additive Schwarz
7444    methods (runtime option: -sub_pc_factor_in_place).  See Users-Manual: ch_pc
7445    for details on setting local solver options.
7446 
7447    Most users should employ the simplified KSP interface for linear solvers
7448    instead of working directly with matrix algebra routines such as this.
7449    See, e.g., KSPCreate().
7450 
7451    Level: developer
7452 
7453 .seealso: PCFactorSetUseInPlace(), PCFactorGetUseInPlace()
7454 
7455    Concepts: matrices^unfactored
7456 
7457 @*/
7458 PetscErrorCode MatSetUnfactored(Mat mat)
7459 {
7460   PetscErrorCode ierr;
7461 
7462   PetscFunctionBegin;
7463   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
7464   PetscValidType(mat,1);
7465   MatCheckPreallocated(mat,1);
7466   mat->factortype = MAT_FACTOR_NONE;
7467   if (!mat->ops->setunfactored) PetscFunctionReturn(0);
7468   ierr = (*mat->ops->setunfactored)(mat);CHKERRQ(ierr);
7469   PetscFunctionReturn(0);
7470 }
7471 
7472 /*MC
7473     MatDenseGetArrayF90 - Accesses a matrix array from Fortran90.
7474 
7475     Synopsis:
7476     MatDenseGetArrayF90(Mat x,{Scalar, pointer :: xx_v(:,:)},integer ierr)
7477 
7478     Not collective
7479 
7480     Input Parameter:
7481 .   x - matrix
7482 
7483     Output Parameters:
7484 +   xx_v - the Fortran90 pointer to the array
7485 -   ierr - error code
7486 
7487     Example of Usage:
7488 .vb
7489       PetscScalar, pointer xx_v(:,:)
7490       ....
7491       call MatDenseGetArrayF90(x,xx_v,ierr)
7492       a = xx_v(3)
7493       call MatDenseRestoreArrayF90(x,xx_v,ierr)
7494 .ve
7495 
7496     Level: advanced
7497 
7498 .seealso:  MatDenseRestoreArrayF90(), MatDenseGetArray(), MatDenseRestoreArray(), MatSeqAIJGetArrayF90()
7499 
7500     Concepts: matrices^accessing array
7501 
7502 M*/
7503 
7504 /*MC
7505     MatDenseRestoreArrayF90 - Restores a matrix array that has been
7506     accessed with MatDenseGetArrayF90().
7507 
7508     Synopsis:
7509     MatDenseRestoreArrayF90(Mat x,{Scalar, pointer :: xx_v(:,:)},integer ierr)
7510 
7511     Not collective
7512 
7513     Input Parameters:
7514 +   x - matrix
7515 -   xx_v - the Fortran90 pointer to the array
7516 
7517     Output Parameter:
7518 .   ierr - error code
7519 
7520     Example of Usage:
7521 .vb
7522        PetscScalar, pointer xx_v(:,:)
7523        ....
7524        call MatDenseGetArrayF90(x,xx_v,ierr)
7525        a = xx_v(3)
7526        call MatDenseRestoreArrayF90(x,xx_v,ierr)
7527 .ve
7528 
7529     Level: advanced
7530 
7531 .seealso:  MatDenseGetArrayF90(), MatDenseGetArray(), MatDenseRestoreArray(), MatSeqAIJRestoreArrayF90()
7532 
7533 M*/
7534 
7535 
7536 /*MC
7537     MatSeqAIJGetArrayF90 - Accesses a matrix array from Fortran90.
7538 
7539     Synopsis:
7540     MatSeqAIJGetArrayF90(Mat x,{Scalar, pointer :: xx_v(:)},integer ierr)
7541 
7542     Not collective
7543 
7544     Input Parameter:
7545 .   x - matrix
7546 
7547     Output Parameters:
7548 +   xx_v - the Fortran90 pointer to the array
7549 -   ierr - error code
7550 
7551     Example of Usage:
7552 .vb
7553       PetscScalar, pointer xx_v(:)
7554       ....
7555       call MatSeqAIJGetArrayF90(x,xx_v,ierr)
7556       a = xx_v(3)
7557       call MatSeqAIJRestoreArrayF90(x,xx_v,ierr)
7558 .ve
7559 
7560     Level: advanced
7561 
7562 .seealso:  MatSeqAIJRestoreArrayF90(), MatSeqAIJGetArray(), MatSeqAIJRestoreArray(), MatDenseGetArrayF90()
7563 
7564     Concepts: matrices^accessing array
7565 
7566 M*/
7567 
7568 /*MC
7569     MatSeqAIJRestoreArrayF90 - Restores a matrix array that has been
7570     accessed with MatSeqAIJGetArrayF90().
7571 
7572     Synopsis:
7573     MatSeqAIJRestoreArrayF90(Mat x,{Scalar, pointer :: xx_v(:)},integer ierr)
7574 
7575     Not collective
7576 
7577     Input Parameters:
7578 +   x - matrix
7579 -   xx_v - the Fortran90 pointer to the array
7580 
7581     Output Parameter:
7582 .   ierr - error code
7583 
7584     Example of Usage:
7585 .vb
7586        PetscScalar, pointer xx_v(:)
7587        ....
7588        call MatSeqAIJGetArrayF90(x,xx_v,ierr)
7589        a = xx_v(3)
7590        call MatSeqAIJRestoreArrayF90(x,xx_v,ierr)
7591 .ve
7592 
7593     Level: advanced
7594 
7595 .seealso:  MatSeqAIJGetArrayF90(), MatSeqAIJGetArray(), MatSeqAIJRestoreArray(), MatDenseRestoreArrayF90()
7596 
7597 M*/
7598 
7599 
7600 /*@
7601     MatGetSubMatrix - Gets a single submatrix on the same number of processors
7602                       as the original matrix.
7603 
7604     Collective on Mat
7605 
7606     Input Parameters:
7607 +   mat - the original matrix
7608 .   isrow - parallel IS containing the rows this processor should obtain
7609 .   iscol - parallel IS containing all columns you wish to keep. Each process should list the columns that will be in IT's "diagonal part" in the new matrix.
7610 -   cll - either MAT_INITIAL_MATRIX or MAT_REUSE_MATRIX
7611 
7612     Output Parameter:
7613 .   newmat - the new submatrix, of the same type as the old
7614 
7615     Level: advanced
7616 
7617     Notes:
7618     The submatrix will be able to be multiplied with vectors using the same layout as iscol.
7619 
7620     Some matrix types place restrictions on the row and column indices, such
7621     as that they be sorted or that they be equal to each other.
7622 
7623     The index sets may not have duplicate entries.
7624 
7625       The first time this is called you should use a cll of MAT_INITIAL_MATRIX,
7626    the MatGetSubMatrix() routine will create the newmat for you. Any additional calls
7627    to this routine with a mat of the same nonzero structure and with a call of MAT_REUSE_MATRIX
7628    will reuse the matrix generated the first time.  You should call MatDestroy() on newmat when
7629    you are finished using it.
7630 
7631     The communicator of the newly obtained matrix is ALWAYS the same as the communicator of
7632     the input matrix.
7633 
7634     If iscol is NULL then all columns are obtained (not supported in Fortran).
7635 
7636    Example usage:
7637    Consider the following 8x8 matrix with 34 non-zero values, that is
7638    assembled across 3 processors. Let's assume that proc0 owns 3 rows,
7639    proc1 owns 3 rows, proc2 owns 2 rows. This division can be shown
7640    as follows:
7641 
7642 .vb
7643             1  2  0  |  0  3  0  |  0  4
7644     Proc0   0  5  6  |  7  0  0  |  8  0
7645             9  0 10  | 11  0  0  | 12  0
7646     -------------------------------------
7647            13  0 14  | 15 16 17  |  0  0
7648     Proc1   0 18  0  | 19 20 21  |  0  0
7649             0  0  0  | 22 23  0  | 24  0
7650     -------------------------------------
7651     Proc2  25 26 27  |  0  0 28  | 29  0
7652            30  0  0  | 31 32 33  |  0 34
7653 .ve
7654 
7655     Suppose isrow = [0 1 | 4 | 6 7] and iscol = [1 2 | 3 4 5 | 6].  The resulting submatrix is
7656 
7657 .vb
7658             2  0  |  0  3  0  |  0
7659     Proc0   5  6  |  7  0  0  |  8
7660     -------------------------------
7661     Proc1  18  0  | 19 20 21  |  0
7662     -------------------------------
7663     Proc2  26 27  |  0  0 28  | 29
7664             0  0  | 31 32 33  |  0
7665 .ve
7666 
7667 
7668     Concepts: matrices^submatrices
7669 
7670 .seealso: MatGetSubMatrices()
7671 @*/
7672 PetscErrorCode MatGetSubMatrix(Mat mat,IS isrow,IS iscol,MatReuse cll,Mat *newmat)
7673 {
7674   PetscErrorCode ierr;
7675   PetscMPIInt    size;
7676   Mat            *local;
7677   IS             iscoltmp;
7678 
7679   PetscFunctionBegin;
7680   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
7681   PetscValidHeaderSpecific(isrow,IS_CLASSID,2);
7682   if (iscol) PetscValidHeaderSpecific(iscol,IS_CLASSID,3);
7683   PetscValidPointer(newmat,5);
7684   if (cll == MAT_REUSE_MATRIX) PetscValidHeaderSpecific(*newmat,MAT_CLASSID,5);
7685   PetscValidType(mat,1);
7686   if (mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
7687   if (cll == MAT_IGNORE_MATRIX) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Cannot use MAT_IGNORE_MATRIX");
7688 
7689   MatCheckPreallocated(mat,1);
7690   ierr = MPI_Comm_size(PetscObjectComm((PetscObject)mat),&size);CHKERRQ(ierr);
7691 
7692   if (!iscol || isrow == iscol) {
7693     PetscBool   stride;
7694     PetscMPIInt grabentirematrix = 0,grab;
7695     ierr = PetscObjectTypeCompare((PetscObject)isrow,ISSTRIDE,&stride);CHKERRQ(ierr);
7696     if (stride) {
7697       PetscInt first,step,n,rstart,rend;
7698       ierr = ISStrideGetInfo(isrow,&first,&step);CHKERRQ(ierr);
7699       if (step == 1) {
7700         ierr = MatGetOwnershipRange(mat,&rstart,&rend);CHKERRQ(ierr);
7701         if (rstart == first) {
7702           ierr = ISGetLocalSize(isrow,&n);CHKERRQ(ierr);
7703           if (n == rend-rstart) {
7704             grabentirematrix = 1;
7705           }
7706         }
7707       }
7708     }
7709     ierr = MPIU_Allreduce(&grabentirematrix,&grab,1,MPI_INT,MPI_MIN,PetscObjectComm((PetscObject)mat));CHKERRQ(ierr);
7710     if (grab) {
7711       ierr = PetscInfo(mat,"Getting entire matrix as submatrix\n");CHKERRQ(ierr);
7712       if (cll == MAT_INITIAL_MATRIX) {
7713         *newmat = mat;
7714         ierr    = PetscObjectReference((PetscObject)mat);CHKERRQ(ierr);
7715       }
7716       PetscFunctionReturn(0);
7717     }
7718   }
7719 
7720   if (!iscol) {
7721     ierr = ISCreateStride(PetscObjectComm((PetscObject)mat),mat->cmap->n,mat->cmap->rstart,1,&iscoltmp);CHKERRQ(ierr);
7722   } else {
7723     iscoltmp = iscol;
7724   }
7725 
7726   /* if original matrix is on just one processor then use submatrix generated */
7727   if (mat->ops->getsubmatrices && !mat->ops->getsubmatrix && size == 1 && cll == MAT_REUSE_MATRIX) {
7728     ierr = MatGetSubMatrices(mat,1,&isrow,&iscoltmp,MAT_REUSE_MATRIX,&newmat);CHKERRQ(ierr);
7729     if (!iscol) {ierr = ISDestroy(&iscoltmp);CHKERRQ(ierr);}
7730     PetscFunctionReturn(0);
7731   } else if (mat->ops->getsubmatrices && !mat->ops->getsubmatrix && size == 1) {
7732     ierr    = MatGetSubMatrices(mat,1,&isrow,&iscoltmp,MAT_INITIAL_MATRIX,&local);CHKERRQ(ierr);
7733     *newmat = *local;
7734     ierr    = PetscFree(local);CHKERRQ(ierr);
7735     if (!iscol) {ierr = ISDestroy(&iscoltmp);CHKERRQ(ierr);}
7736     PetscFunctionReturn(0);
7737   } else if (!mat->ops->getsubmatrix) {
7738     /* Create a new matrix type that implements the operation using the full matrix */
7739     ierr = PetscLogEventBegin(MAT_GetSubMatrix,mat,0,0,0);CHKERRQ(ierr);
7740     switch (cll) {
7741     case MAT_INITIAL_MATRIX:
7742       ierr = MatCreateSubMatrix(mat,isrow,iscoltmp,newmat);CHKERRQ(ierr);
7743       break;
7744     case MAT_REUSE_MATRIX:
7745       ierr = MatSubMatrixUpdate(*newmat,mat,isrow,iscoltmp);CHKERRQ(ierr);
7746       break;
7747     default: SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_OUTOFRANGE,"Invalid MatReuse, must be either MAT_INITIAL_MATRIX or MAT_REUSE_MATRIX");
7748     }
7749     ierr = PetscLogEventEnd(MAT_GetSubMatrix,mat,0,0,0);CHKERRQ(ierr);
7750     if (!iscol) {ierr = ISDestroy(&iscoltmp);CHKERRQ(ierr);}
7751     PetscFunctionReturn(0);
7752   }
7753 
7754   if (!mat->ops->getsubmatrix) SETERRQ1(PETSC_COMM_SELF,PETSC_ERR_SUP,"Mat type %s",((PetscObject)mat)->type_name);
7755   ierr = PetscLogEventBegin(MAT_GetSubMatrix,mat,0,0,0);CHKERRQ(ierr);
7756   ierr = (*mat->ops->getsubmatrix)(mat,isrow,iscoltmp,cll,newmat);CHKERRQ(ierr);
7757   ierr = PetscLogEventEnd(MAT_GetSubMatrix,mat,0,0,0);CHKERRQ(ierr);
7758   if (!iscol) {ierr = ISDestroy(&iscoltmp);CHKERRQ(ierr);}
7759   if (*newmat && cll == MAT_INITIAL_MATRIX) {ierr = PetscObjectStateIncrease((PetscObject)*newmat);CHKERRQ(ierr);}
7760   PetscFunctionReturn(0);
7761 }
7762 
7763 /*@
7764    MatStashSetInitialSize - sets the sizes of the matrix stash, that is
7765    used during the assembly process to store values that belong to
7766    other processors.
7767 
7768    Not Collective
7769 
7770    Input Parameters:
7771 +  mat   - the matrix
7772 .  size  - the initial size of the stash.
7773 -  bsize - the initial size of the block-stash(if used).
7774 
7775    Options Database Keys:
7776 +   -matstash_initial_size <size> or <size0,size1,...sizep-1>
7777 -   -matstash_block_initial_size <bsize>  or <bsize0,bsize1,...bsizep-1>
7778 
7779    Level: intermediate
7780 
7781    Notes:
7782      The block-stash is used for values set with MatSetValuesBlocked() while
7783      the stash is used for values set with MatSetValues()
7784 
7785      Run with the option -info and look for output of the form
7786      MatAssemblyBegin_MPIXXX:Stash has MM entries, uses nn mallocs.
7787      to determine the appropriate value, MM, to use for size and
7788      MatAssemblyBegin_MPIXXX:Block-Stash has BMM entries, uses nn mallocs.
7789      to determine the value, BMM to use for bsize
7790 
7791    Concepts: stash^setting matrix size
7792    Concepts: matrices^stash
7793 
7794 .seealso: MatAssemblyBegin(), MatAssemblyEnd(), Mat, MatStashGetInfo()
7795 
7796 @*/
7797 PetscErrorCode MatStashSetInitialSize(Mat mat,PetscInt size, PetscInt bsize)
7798 {
7799   PetscErrorCode ierr;
7800 
7801   PetscFunctionBegin;
7802   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
7803   PetscValidType(mat,1);
7804   ierr = MatStashSetInitialSize_Private(&mat->stash,size);CHKERRQ(ierr);
7805   ierr = MatStashSetInitialSize_Private(&mat->bstash,bsize);CHKERRQ(ierr);
7806   PetscFunctionReturn(0);
7807 }
7808 
7809 /*@
7810    MatInterpolateAdd - w = y + A*x or A'*x depending on the shape of
7811      the matrix
7812 
7813    Neighbor-wise Collective on Mat
7814 
7815    Input Parameters:
7816 +  mat   - the matrix
7817 .  x,y - the vectors
7818 -  w - where the result is stored
7819 
7820    Level: intermediate
7821 
7822    Notes:
7823     w may be the same vector as y.
7824 
7825     This allows one to use either the restriction or interpolation (its transpose)
7826     matrix to do the interpolation
7827 
7828     Concepts: interpolation
7829 
7830 .seealso: MatMultAdd(), MatMultTransposeAdd(), MatRestrict()
7831 
7832 @*/
7833 PetscErrorCode MatInterpolateAdd(Mat A,Vec x,Vec y,Vec w)
7834 {
7835   PetscErrorCode ierr;
7836   PetscInt       M,N,Ny;
7837 
7838   PetscFunctionBegin;
7839   PetscValidHeaderSpecific(A,MAT_CLASSID,1);
7840   PetscValidHeaderSpecific(x,VEC_CLASSID,2);
7841   PetscValidHeaderSpecific(y,VEC_CLASSID,3);
7842   PetscValidHeaderSpecific(w,VEC_CLASSID,4);
7843   PetscValidType(A,1);
7844   MatCheckPreallocated(A,1);
7845   ierr = MatGetSize(A,&M,&N);CHKERRQ(ierr);
7846   ierr = VecGetSize(y,&Ny);CHKERRQ(ierr);
7847   if (M == Ny) {
7848     ierr = MatMultAdd(A,x,y,w);CHKERRQ(ierr);
7849   } else {
7850     ierr = MatMultTransposeAdd(A,x,y,w);CHKERRQ(ierr);
7851   }
7852   PetscFunctionReturn(0);
7853 }
7854 
7855 /*@
7856    MatInterpolate - y = A*x or A'*x depending on the shape of
7857      the matrix
7858 
7859    Neighbor-wise Collective on Mat
7860 
7861    Input Parameters:
7862 +  mat   - the matrix
7863 -  x,y - the vectors
7864 
7865    Level: intermediate
7866 
7867    Notes:
7868     This allows one to use either the restriction or interpolation (its transpose)
7869     matrix to do the interpolation
7870 
7871    Concepts: matrices^interpolation
7872 
7873 .seealso: MatMultAdd(), MatMultTransposeAdd(), MatRestrict()
7874 
7875 @*/
7876 PetscErrorCode MatInterpolate(Mat A,Vec x,Vec y)
7877 {
7878   PetscErrorCode ierr;
7879   PetscInt       M,N,Ny;
7880 
7881   PetscFunctionBegin;
7882   PetscValidHeaderSpecific(A,MAT_CLASSID,1);
7883   PetscValidHeaderSpecific(x,VEC_CLASSID,2);
7884   PetscValidHeaderSpecific(y,VEC_CLASSID,3);
7885   PetscValidType(A,1);
7886   MatCheckPreallocated(A,1);
7887   ierr = MatGetSize(A,&M,&N);CHKERRQ(ierr);
7888   ierr = VecGetSize(y,&Ny);CHKERRQ(ierr);
7889   if (M == Ny) {
7890     ierr = MatMult(A,x,y);CHKERRQ(ierr);
7891   } else {
7892     ierr = MatMultTranspose(A,x,y);CHKERRQ(ierr);
7893   }
7894   PetscFunctionReturn(0);
7895 }
7896 
7897 /*@
7898    MatRestrict - y = A*x or A'*x
7899 
7900    Neighbor-wise Collective on Mat
7901 
7902    Input Parameters:
7903 +  mat   - the matrix
7904 -  x,y - the vectors
7905 
7906    Level: intermediate
7907 
7908    Notes:
7909     This allows one to use either the restriction or interpolation (its transpose)
7910     matrix to do the restriction
7911 
7912    Concepts: matrices^restriction
7913 
7914 .seealso: MatMultAdd(), MatMultTransposeAdd(), MatInterpolate()
7915 
7916 @*/
7917 PetscErrorCode MatRestrict(Mat A,Vec x,Vec y)
7918 {
7919   PetscErrorCode ierr;
7920   PetscInt       M,N,Ny;
7921 
7922   PetscFunctionBegin;
7923   PetscValidHeaderSpecific(A,MAT_CLASSID,1);
7924   PetscValidHeaderSpecific(x,VEC_CLASSID,2);
7925   PetscValidHeaderSpecific(y,VEC_CLASSID,3);
7926   PetscValidType(A,1);
7927   MatCheckPreallocated(A,1);
7928 
7929   ierr = MatGetSize(A,&M,&N);CHKERRQ(ierr);
7930   ierr = VecGetSize(y,&Ny);CHKERRQ(ierr);
7931   if (M == Ny) {
7932     ierr = MatMult(A,x,y);CHKERRQ(ierr);
7933   } else {
7934     ierr = MatMultTranspose(A,x,y);CHKERRQ(ierr);
7935   }
7936   PetscFunctionReturn(0);
7937 }
7938 
7939 /*@
7940    MatGetNullSpace - retrieves the null space to a matrix.
7941 
7942    Logically Collective on Mat and MatNullSpace
7943 
7944    Input Parameters:
7945 +  mat - the matrix
7946 -  nullsp - the null space object
7947 
7948    Level: developer
7949 
7950    Concepts: null space^attaching to matrix
7951 
7952 .seealso: MatCreate(), MatNullSpaceCreate(), MatSetNearNullSpace(), MatSetNullSpace()
7953 @*/
7954 PetscErrorCode MatGetNullSpace(Mat mat, MatNullSpace *nullsp)
7955 {
7956   PetscFunctionBegin;
7957   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
7958   PetscValidType(mat,1);
7959   PetscValidPointer(nullsp,2);
7960   *nullsp = mat->nullsp;
7961   PetscFunctionReturn(0);
7962 }
7963 
7964 /*@
7965    MatSetNullSpace - attaches a null space to a matrix.
7966 
7967    Logically Collective on Mat and MatNullSpace
7968 
7969    Input Parameters:
7970 +  mat - the matrix
7971 -  nullsp - the null space object
7972 
7973    Level: advanced
7974 
7975    Notes:
7976       This null space is used by the linear solvers. Overwrites any previous null space that may have been attached
7977 
7978       For inconsistent singular systems (linear systems where the right hand side is not in the range of the operator) you also likely should
7979       call MatSetTransposeNullSpace(). This allows the linear system to be solved in a least squares sense.
7980 
7981       You can remove the null space by calling this routine with an nullsp of NULL
7982 
7983 
7984       The fundamental theorem of linear algebra (Gilbert Strang, Introduction to Applied Mathematics, page 72) states that
7985    the domain of a matrix A (from R^n to R^m (m rows, n columns) R^n = the direct sum of the null space of A, n(A), + the range of A^T, R(A^T).
7986    Similarly R^m = direct sum n(A^T) + R(A).  Hence the linear system A x = b has a solution only if b in R(A) (or correspondingly b is orthogonal to
7987    n(A^T)) and if x is a solution then x + alpha n(A) is a solution for any alpha. The minimum norm solution is orthogonal to n(A). For problems without a solution
7988    the solution that minimizes the norm of the residual (the least squares solution) can be obtained by solving A x = \hat{b} where \hat{b} is b orthogonalized to the n(A^T).
7989 
7990       Krylov solvers can produce the minimal norm solution to the least squares problem by utilizing MatNullSpaceRemove().
7991 
7992     If the matrix is known to be symmetric because it is an SBAIJ matrix or one as called MatSetOption(mat,MAT_SYMMETRIC or MAT_SYMMETRIC_ETERNAL,PETSC_TRUE); this
7993     routine also automatically calls MatSetTransposeNullSpace().
7994 
7995    Concepts: null space^attaching to matrix
7996 
7997 .seealso: MatCreate(), MatNullSpaceCreate(), MatSetNearNullSpace(), MatGetNullSpace(), MatSetTransposeNullSpace(), MatGetTransposeNullSpace(), MatNullSpaceRemove()
7998 @*/
7999 PetscErrorCode MatSetNullSpace(Mat mat,MatNullSpace nullsp)
8000 {
8001   PetscErrorCode ierr;
8002 
8003   PetscFunctionBegin;
8004   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
8005   PetscValidType(mat,1);
8006   if (nullsp) PetscValidHeaderSpecific(nullsp,MAT_NULLSPACE_CLASSID,2);
8007   MatCheckPreallocated(mat,1);
8008   if (nullsp) {ierr = PetscObjectReference((PetscObject)nullsp);CHKERRQ(ierr);}
8009   ierr = MatNullSpaceDestroy(&mat->nullsp);CHKERRQ(ierr);
8010   mat->nullsp = nullsp;
8011   if (mat->symmetric_set && mat->symmetric) {
8012     ierr = MatSetTransposeNullSpace(mat,nullsp);CHKERRQ(ierr);
8013   }
8014   PetscFunctionReturn(0);
8015 }
8016 
8017 /*@
8018    MatGetTransposeNullSpace - retrieves the null space of the transpose of a matrix.
8019 
8020    Logically Collective on Mat and MatNullSpace
8021 
8022    Input Parameters:
8023 +  mat - the matrix
8024 -  nullsp - the null space object
8025 
8026    Level: developer
8027 
8028    Concepts: null space^attaching to matrix
8029 
8030 .seealso: MatCreate(), MatNullSpaceCreate(), MatSetNearNullSpace(), MatSetTransposeNullSpace(), MatSetNullSpace(), MatGetNullSpace()
8031 @*/
8032 PetscErrorCode MatGetTransposeNullSpace(Mat mat, MatNullSpace *nullsp)
8033 {
8034   PetscFunctionBegin;
8035   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
8036   PetscValidType(mat,1);
8037   PetscValidPointer(nullsp,2);
8038   *nullsp = mat->transnullsp;
8039   PetscFunctionReturn(0);
8040 }
8041 
8042 /*@
8043    MatSetTransposeNullSpace - attaches a null space to a matrix.
8044 
8045    Logically Collective on Mat and MatNullSpace
8046 
8047    Input Parameters:
8048 +  mat - the matrix
8049 -  nullsp - the null space object
8050 
8051    Level: advanced
8052 
8053    Notes:
8054       For inconsistent singular systems (linear systems where the right hand side is not in the range of the operator) this allows the linear system to be solved in a least squares sense.
8055       You must also call MatSetNullSpace()
8056 
8057 
8058       The fundamental theorem of linear algebra (Gilbert Strang, Introduction to Applied Mathematics, page 72) states that
8059    the domain of a matrix A (from R^n to R^m (m rows, n columns) R^n = the direct sum of the null space of A, n(A), + the range of A^T, R(A^T).
8060    Similarly R^m = direct sum n(A^T) + R(A).  Hence the linear system A x = b has a solution only if b in R(A) (or correspondingly b is orthogonal to
8061    n(A^T)) and if x is a solution then x + alpha n(A) is a solution for any alpha. The minimum norm solution is orthogonal to n(A). For problems without a solution
8062    the solution that minimizes the norm of the residual (the least squares solution) can be obtained by solving A x = \hat{b} where \hat{b} is b orthogonalized to the n(A^T).
8063 
8064       Krylov solvers can produce the minimal norm solution to the least squares problem by utilizing MatNullSpaceRemove().
8065 
8066    Concepts: null space^attaching to matrix
8067 
8068 .seealso: MatCreate(), MatNullSpaceCreate(), MatSetNearNullSpace(), MatGetNullSpace(), MatSetNullSpace(), MatGetTransposeNullSpace(), MatNullSpaceRemove()
8069 @*/
8070 PetscErrorCode MatSetTransposeNullSpace(Mat mat,MatNullSpace nullsp)
8071 {
8072   PetscErrorCode ierr;
8073 
8074   PetscFunctionBegin;
8075   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
8076   PetscValidType(mat,1);
8077   PetscValidHeaderSpecific(nullsp,MAT_NULLSPACE_CLASSID,2);
8078   MatCheckPreallocated(mat,1);
8079   ierr = PetscObjectReference((PetscObject)nullsp);CHKERRQ(ierr);
8080   ierr = MatNullSpaceDestroy(&mat->transnullsp);CHKERRQ(ierr);
8081   mat->transnullsp = nullsp;
8082   PetscFunctionReturn(0);
8083 }
8084 
8085 /*@
8086    MatSetNearNullSpace - attaches a null space to a matrix, which is often the null space (rigid body modes) of the operator without boundary conditions
8087         This null space will be used to provide near null space vectors to a multigrid preconditioner built from this matrix.
8088 
8089    Logically Collective on Mat and MatNullSpace
8090 
8091    Input Parameters:
8092 +  mat - the matrix
8093 -  nullsp - the null space object
8094 
8095    Level: advanced
8096 
8097    Notes:
8098       Overwrites any previous near null space that may have been attached
8099 
8100       You can remove the null space by calling this routine with an nullsp of NULL
8101 
8102    Concepts: null space^attaching to matrix
8103 
8104 .seealso: MatCreate(), MatNullSpaceCreate(), MatSetNullSpace(), MatNullSpaceCreateRigidBody(), MatGetNearNullSpace()
8105 @*/
8106 PetscErrorCode MatSetNearNullSpace(Mat mat,MatNullSpace nullsp)
8107 {
8108   PetscErrorCode ierr;
8109 
8110   PetscFunctionBegin;
8111   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
8112   PetscValidType(mat,1);
8113   if (nullsp) PetscValidHeaderSpecific(nullsp,MAT_NULLSPACE_CLASSID,2);
8114   MatCheckPreallocated(mat,1);
8115   if (nullsp) {ierr = PetscObjectReference((PetscObject)nullsp);CHKERRQ(ierr);}
8116   ierr = MatNullSpaceDestroy(&mat->nearnullsp);CHKERRQ(ierr);
8117   mat->nearnullsp = nullsp;
8118   PetscFunctionReturn(0);
8119 }
8120 
8121 /*@
8122    MatGetNearNullSpace -Get null space attached with MatSetNearNullSpace()
8123 
8124    Not Collective
8125 
8126    Input Parameters:
8127 .  mat - the matrix
8128 
8129    Output Parameters:
8130 .  nullsp - the null space object, NULL if not set
8131 
8132    Level: developer
8133 
8134    Concepts: null space^attaching to matrix
8135 
8136 .seealso: MatSetNearNullSpace(), MatGetNullSpace(), MatNullSpaceCreate()
8137 @*/
8138 PetscErrorCode MatGetNearNullSpace(Mat mat,MatNullSpace *nullsp)
8139 {
8140   PetscFunctionBegin;
8141   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
8142   PetscValidType(mat,1);
8143   PetscValidPointer(nullsp,2);
8144   MatCheckPreallocated(mat,1);
8145   *nullsp = mat->nearnullsp;
8146   PetscFunctionReturn(0);
8147 }
8148 
8149 /*@C
8150    MatICCFactor - Performs in-place incomplete Cholesky factorization of matrix.
8151 
8152    Collective on Mat
8153 
8154    Input Parameters:
8155 +  mat - the matrix
8156 .  row - row/column permutation
8157 .  fill - expected fill factor >= 1.0
8158 -  level - level of fill, for ICC(k)
8159 
8160    Notes:
8161    Probably really in-place only when level of fill is zero, otherwise allocates
8162    new space to store factored matrix and deletes previous memory.
8163 
8164    Most users should employ the simplified KSP interface for linear solvers
8165    instead of working directly with matrix algebra routines such as this.
8166    See, e.g., KSPCreate().
8167 
8168    Level: developer
8169 
8170    Concepts: matrices^incomplete Cholesky factorization
8171    Concepts: Cholesky factorization
8172 
8173 .seealso: MatICCFactorSymbolic(), MatLUFactorNumeric(), MatCholeskyFactor()
8174 
8175     Developer Note: fortran interface is not autogenerated as the f90
8176     interface defintion cannot be generated correctly [due to MatFactorInfo]
8177 
8178 @*/
8179 PetscErrorCode MatICCFactor(Mat mat,IS row,const MatFactorInfo *info)
8180 {
8181   PetscErrorCode ierr;
8182 
8183   PetscFunctionBegin;
8184   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
8185   PetscValidType(mat,1);
8186   if (row) PetscValidHeaderSpecific(row,IS_CLASSID,2);
8187   PetscValidPointer(info,3);
8188   if (mat->rmap->N != mat->cmap->N) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONG,"matrix must be square");
8189   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
8190   if (mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
8191   if (!mat->ops->iccfactor) SETERRQ1(PetscObjectComm((PetscObject)mat),PETSC_ERR_SUP,"Mat type %s",((PetscObject)mat)->type_name);
8192   MatCheckPreallocated(mat,1);
8193   ierr = (*mat->ops->iccfactor)(mat,row,info);CHKERRQ(ierr);
8194   ierr = PetscObjectStateIncrease((PetscObject)mat);CHKERRQ(ierr);
8195   PetscFunctionReturn(0);
8196 }
8197 
8198 /*@
8199    MatDiagonalScaleLocal - Scales columns of a matrix given the scaling values including the
8200          ghosted ones.
8201 
8202    Not Collective
8203 
8204    Input Parameters:
8205 +  mat - the matrix
8206 -  diag = the diagonal values, including ghost ones
8207 
8208    Level: developer
8209 
8210    Notes: Works only for MPIAIJ and MPIBAIJ matrices
8211 
8212 .seealso: MatDiagonalScale()
8213 @*/
8214 PetscErrorCode MatDiagonalScaleLocal(Mat mat,Vec diag)
8215 {
8216   PetscErrorCode ierr;
8217   PetscMPIInt    size;
8218 
8219   PetscFunctionBegin;
8220   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
8221   PetscValidHeaderSpecific(diag,VEC_CLASSID,2);
8222   PetscValidType(mat,1);
8223 
8224   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Matrix must be already assembled");
8225   ierr = PetscLogEventBegin(MAT_Scale,mat,0,0,0);CHKERRQ(ierr);
8226   ierr = MPI_Comm_size(PetscObjectComm((PetscObject)mat),&size);CHKERRQ(ierr);
8227   if (size == 1) {
8228     PetscInt n,m;
8229     ierr = VecGetSize(diag,&n);CHKERRQ(ierr);
8230     ierr = MatGetSize(mat,0,&m);CHKERRQ(ierr);
8231     if (m == n) {
8232       ierr = MatDiagonalScale(mat,0,diag);CHKERRQ(ierr);
8233     } else SETERRQ(PETSC_COMM_SELF,PETSC_ERR_SUP,"Only supported for sequential matrices when no ghost points/periodic conditions");
8234   } else {
8235     ierr = PetscUseMethod(mat,"MatDiagonalScaleLocal_C",(Mat,Vec),(mat,diag));CHKERRQ(ierr);
8236   }
8237   ierr = PetscLogEventEnd(MAT_Scale,mat,0,0,0);CHKERRQ(ierr);
8238   ierr = PetscObjectStateIncrease((PetscObject)mat);CHKERRQ(ierr);
8239   PetscFunctionReturn(0);
8240 }
8241 
8242 /*@
8243    MatGetInertia - Gets the inertia from a factored matrix
8244 
8245    Collective on Mat
8246 
8247    Input Parameter:
8248 .  mat - the matrix
8249 
8250    Output Parameters:
8251 +   nneg - number of negative eigenvalues
8252 .   nzero - number of zero eigenvalues
8253 -   npos - number of positive eigenvalues
8254 
8255    Level: advanced
8256 
8257    Notes: Matrix must have been factored by MatCholeskyFactor()
8258 
8259 
8260 @*/
8261 PetscErrorCode MatGetInertia(Mat mat,PetscInt *nneg,PetscInt *nzero,PetscInt *npos)
8262 {
8263   PetscErrorCode ierr;
8264 
8265   PetscFunctionBegin;
8266   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
8267   PetscValidType(mat,1);
8268   if (!mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Unfactored matrix");
8269   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Numeric factor mat is not assembled");
8270   if (!mat->ops->getinertia) SETERRQ1(PetscObjectComm((PetscObject)mat),PETSC_ERR_SUP,"Mat type %s",((PetscObject)mat)->type_name);
8271   ierr = (*mat->ops->getinertia)(mat,nneg,nzero,npos);CHKERRQ(ierr);
8272   PetscFunctionReturn(0);
8273 }
8274 
8275 /* ----------------------------------------------------------------*/
8276 /*@C
8277    MatSolves - Solves A x = b, given a factored matrix, for a collection of vectors
8278 
8279    Neighbor-wise Collective on Mat and Vecs
8280 
8281    Input Parameters:
8282 +  mat - the factored matrix
8283 -  b - the right-hand-side vectors
8284 
8285    Output Parameter:
8286 .  x - the result vectors
8287 
8288    Notes:
8289    The vectors b and x cannot be the same.  I.e., one cannot
8290    call MatSolves(A,x,x).
8291 
8292    Notes:
8293    Most users should employ the simplified KSP interface for linear solvers
8294    instead of working directly with matrix algebra routines such as this.
8295    See, e.g., KSPCreate().
8296 
8297    Level: developer
8298 
8299    Concepts: matrices^triangular solves
8300 
8301 .seealso: MatSolveAdd(), MatSolveTranspose(), MatSolveTransposeAdd(), MatSolve()
8302 @*/
8303 PetscErrorCode MatSolves(Mat mat,Vecs b,Vecs x)
8304 {
8305   PetscErrorCode ierr;
8306 
8307   PetscFunctionBegin;
8308   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
8309   PetscValidType(mat,1);
8310   if (x == b) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_IDN,"x and b must be different vectors");
8311   if (!mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Unfactored matrix");
8312   if (!mat->rmap->N && !mat->cmap->N) PetscFunctionReturn(0);
8313 
8314   if (!mat->ops->solves) SETERRQ1(PetscObjectComm((PetscObject)mat),PETSC_ERR_SUP,"Mat type %s",((PetscObject)mat)->type_name);
8315   MatCheckPreallocated(mat,1);
8316   ierr = PetscLogEventBegin(MAT_Solves,mat,0,0,0);CHKERRQ(ierr);
8317   ierr = (*mat->ops->solves)(mat,b,x);CHKERRQ(ierr);
8318   ierr = PetscLogEventEnd(MAT_Solves,mat,0,0,0);CHKERRQ(ierr);
8319   PetscFunctionReturn(0);
8320 }
8321 
8322 /*@
8323    MatIsSymmetric - Test whether a matrix is symmetric
8324 
8325    Collective on Mat
8326 
8327    Input Parameter:
8328 +  A - the matrix to test
8329 -  tol - difference between value and its transpose less than this amount counts as equal (use 0.0 for exact transpose)
8330 
8331    Output Parameters:
8332 .  flg - the result
8333 
8334    Notes: For real numbers MatIsSymmetric() and MatIsHermitian() return identical results
8335 
8336    Level: intermediate
8337 
8338    Concepts: matrix^symmetry
8339 
8340 .seealso: MatTranspose(), MatIsTranspose(), MatIsHermitian(), MatIsStructurallySymmetric(), MatSetOption(), MatIsSymmetricKnown()
8341 @*/
8342 PetscErrorCode MatIsSymmetric(Mat A,PetscReal tol,PetscBool  *flg)
8343 {
8344   PetscErrorCode ierr;
8345 
8346   PetscFunctionBegin;
8347   PetscValidHeaderSpecific(A,MAT_CLASSID,1);
8348   PetscValidPointer(flg,2);
8349 
8350   if (!A->symmetric_set) {
8351     if (!A->ops->issymmetric) {
8352       MatType mattype;
8353       ierr = MatGetType(A,&mattype);CHKERRQ(ierr);
8354       SETERRQ1(PETSC_COMM_SELF,PETSC_ERR_SUP,"Matrix of type <%s> does not support checking for symmetric",mattype);
8355     }
8356     ierr = (*A->ops->issymmetric)(A,tol,flg);CHKERRQ(ierr);
8357     if (!tol) {
8358       A->symmetric_set = PETSC_TRUE;
8359       A->symmetric     = *flg;
8360       if (A->symmetric) {
8361         A->structurally_symmetric_set = PETSC_TRUE;
8362         A->structurally_symmetric     = PETSC_TRUE;
8363       }
8364     }
8365   } else if (A->symmetric) {
8366     *flg = PETSC_TRUE;
8367   } else if (!tol) {
8368     *flg = PETSC_FALSE;
8369   } else {
8370     if (!A->ops->issymmetric) {
8371       MatType mattype;
8372       ierr = MatGetType(A,&mattype);CHKERRQ(ierr);
8373       SETERRQ1(PETSC_COMM_SELF,PETSC_ERR_SUP,"Matrix of type <%s> does not support checking for symmetric",mattype);
8374     }
8375     ierr = (*A->ops->issymmetric)(A,tol,flg);CHKERRQ(ierr);
8376   }
8377   PetscFunctionReturn(0);
8378 }
8379 
8380 /*@
8381    MatIsHermitian - Test whether a matrix is Hermitian
8382 
8383    Collective on Mat
8384 
8385    Input Parameter:
8386 +  A - the matrix to test
8387 -  tol - difference between value and its transpose less than this amount counts as equal (use 0.0 for exact Hermitian)
8388 
8389    Output Parameters:
8390 .  flg - the result
8391 
8392    Level: intermediate
8393 
8394    Concepts: matrix^symmetry
8395 
8396 .seealso: MatTranspose(), MatIsTranspose(), MatIsHermitian(), MatIsStructurallySymmetric(), MatSetOption(),
8397           MatIsSymmetricKnown(), MatIsSymmetric()
8398 @*/
8399 PetscErrorCode MatIsHermitian(Mat A,PetscReal tol,PetscBool  *flg)
8400 {
8401   PetscErrorCode ierr;
8402 
8403   PetscFunctionBegin;
8404   PetscValidHeaderSpecific(A,MAT_CLASSID,1);
8405   PetscValidPointer(flg,2);
8406 
8407   if (!A->hermitian_set) {
8408     if (!A->ops->ishermitian) {
8409       MatType mattype;
8410       ierr = MatGetType(A,&mattype);CHKERRQ(ierr);
8411       SETERRQ1(PETSC_COMM_SELF,PETSC_ERR_SUP,"Matrix of type <%s> does not support checking for hermitian",mattype);
8412     }
8413     ierr = (*A->ops->ishermitian)(A,tol,flg);CHKERRQ(ierr);
8414     if (!tol) {
8415       A->hermitian_set = PETSC_TRUE;
8416       A->hermitian     = *flg;
8417       if (A->hermitian) {
8418         A->structurally_symmetric_set = PETSC_TRUE;
8419         A->structurally_symmetric     = PETSC_TRUE;
8420       }
8421     }
8422   } else if (A->hermitian) {
8423     *flg = PETSC_TRUE;
8424   } else if (!tol) {
8425     *flg = PETSC_FALSE;
8426   } else {
8427     if (!A->ops->ishermitian) {
8428       MatType mattype;
8429       ierr = MatGetType(A,&mattype);CHKERRQ(ierr);
8430       SETERRQ1(PETSC_COMM_SELF,PETSC_ERR_SUP,"Matrix of type <%s> does not support checking for hermitian",mattype);
8431     }
8432     ierr = (*A->ops->ishermitian)(A,tol,flg);CHKERRQ(ierr);
8433   }
8434   PetscFunctionReturn(0);
8435 }
8436 
8437 /*@
8438    MatIsSymmetricKnown - Checks the flag on the matrix to see if it is symmetric.
8439 
8440    Not Collective
8441 
8442    Input Parameter:
8443 .  A - the matrix to check
8444 
8445    Output Parameters:
8446 +  set - if the symmetric flag is set (this tells you if the next flag is valid)
8447 -  flg - the result
8448 
8449    Level: advanced
8450 
8451    Concepts: matrix^symmetry
8452 
8453    Note: Does not check the matrix values directly, so this may return unknown (set = PETSC_FALSE). Use MatIsSymmetric()
8454          if you want it explicitly checked
8455 
8456 .seealso: MatTranspose(), MatIsTranspose(), MatIsHermitian(), MatIsStructurallySymmetric(), MatSetOption(), MatIsSymmetric()
8457 @*/
8458 PetscErrorCode MatIsSymmetricKnown(Mat A,PetscBool  *set,PetscBool  *flg)
8459 {
8460   PetscFunctionBegin;
8461   PetscValidHeaderSpecific(A,MAT_CLASSID,1);
8462   PetscValidPointer(set,2);
8463   PetscValidPointer(flg,3);
8464   if (A->symmetric_set) {
8465     *set = PETSC_TRUE;
8466     *flg = A->symmetric;
8467   } else {
8468     *set = PETSC_FALSE;
8469   }
8470   PetscFunctionReturn(0);
8471 }
8472 
8473 /*@
8474    MatIsHermitianKnown - Checks the flag on the matrix to see if it is hermitian.
8475 
8476    Not Collective
8477 
8478    Input Parameter:
8479 .  A - the matrix to check
8480 
8481    Output Parameters:
8482 +  set - if the hermitian flag is set (this tells you if the next flag is valid)
8483 -  flg - the result
8484 
8485    Level: advanced
8486 
8487    Concepts: matrix^symmetry
8488 
8489    Note: Does not check the matrix values directly, so this may return unknown (set = PETSC_FALSE). Use MatIsHermitian()
8490          if you want it explicitly checked
8491 
8492 .seealso: MatTranspose(), MatIsTranspose(), MatIsHermitian(), MatIsStructurallySymmetric(), MatSetOption(), MatIsSymmetric()
8493 @*/
8494 PetscErrorCode MatIsHermitianKnown(Mat A,PetscBool  *set,PetscBool  *flg)
8495 {
8496   PetscFunctionBegin;
8497   PetscValidHeaderSpecific(A,MAT_CLASSID,1);
8498   PetscValidPointer(set,2);
8499   PetscValidPointer(flg,3);
8500   if (A->hermitian_set) {
8501     *set = PETSC_TRUE;
8502     *flg = A->hermitian;
8503   } else {
8504     *set = PETSC_FALSE;
8505   }
8506   PetscFunctionReturn(0);
8507 }
8508 
8509 /*@
8510    MatIsStructurallySymmetric - Test whether a matrix is structurally symmetric
8511 
8512    Collective on Mat
8513 
8514    Input Parameter:
8515 .  A - the matrix to test
8516 
8517    Output Parameters:
8518 .  flg - the result
8519 
8520    Level: intermediate
8521 
8522    Concepts: matrix^symmetry
8523 
8524 .seealso: MatTranspose(), MatIsTranspose(), MatIsHermitian(), MatIsSymmetric(), MatSetOption()
8525 @*/
8526 PetscErrorCode MatIsStructurallySymmetric(Mat A,PetscBool  *flg)
8527 {
8528   PetscErrorCode ierr;
8529 
8530   PetscFunctionBegin;
8531   PetscValidHeaderSpecific(A,MAT_CLASSID,1);
8532   PetscValidPointer(flg,2);
8533   if (!A->structurally_symmetric_set) {
8534     if (!A->ops->isstructurallysymmetric) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_SUP,"Matrix does not support checking for structural symmetric");
8535     ierr = (*A->ops->isstructurallysymmetric)(A,&A->structurally_symmetric);CHKERRQ(ierr);
8536 
8537     A->structurally_symmetric_set = PETSC_TRUE;
8538   }
8539   *flg = A->structurally_symmetric;
8540   PetscFunctionReturn(0);
8541 }
8542 
8543 extern PetscErrorCode MatStashGetInfo_Private(MatStash*,PetscInt*,PetscInt*);
8544 /*@
8545    MatStashGetInfo - Gets how many values are currently in the matrix stash, i.e. need
8546        to be communicated to other processors during the MatAssemblyBegin/End() process
8547 
8548     Not collective
8549 
8550    Input Parameter:
8551 .   vec - the vector
8552 
8553    Output Parameters:
8554 +   nstash   - the size of the stash
8555 .   reallocs - the number of additional mallocs incurred.
8556 .   bnstash   - the size of the block stash
8557 -   breallocs - the number of additional mallocs incurred.in the block stash
8558 
8559    Level: advanced
8560 
8561 .seealso: MatAssemblyBegin(), MatAssemblyEnd(), Mat, MatStashSetInitialSize()
8562 
8563 @*/
8564 PetscErrorCode MatStashGetInfo(Mat mat,PetscInt *nstash,PetscInt *reallocs,PetscInt *bnstash,PetscInt *breallocs)
8565 {
8566   PetscErrorCode ierr;
8567 
8568   PetscFunctionBegin;
8569   ierr = MatStashGetInfo_Private(&mat->stash,nstash,reallocs);CHKERRQ(ierr);
8570   ierr = MatStashGetInfo_Private(&mat->bstash,bnstash,breallocs);CHKERRQ(ierr);
8571   PetscFunctionReturn(0);
8572 }
8573 
8574 /*@C
8575    MatCreateVecs - Get vector(s) compatible with the matrix, i.e. with the same
8576      parallel layout
8577 
8578    Collective on Mat
8579 
8580    Input Parameter:
8581 .  mat - the matrix
8582 
8583    Output Parameter:
8584 +   right - (optional) vector that the matrix can be multiplied against
8585 -   left - (optional) vector that the matrix vector product can be stored in
8586 
8587    Notes:
8588     The blocksize of the returned vectors is determined by the row and column block sizes set with MatSetBlockSizes() or the single blocksize (same for both) set by MatSetBlockSize().
8589 
8590   Notes: These are new vectors which are not owned by the Mat, they should be destroyed in VecDestroy() when no longer needed
8591 
8592   Level: advanced
8593 
8594 .seealso: MatCreate(), VecDestroy()
8595 @*/
8596 PetscErrorCode MatCreateVecs(Mat mat,Vec *right,Vec *left)
8597 {
8598   PetscErrorCode ierr;
8599 
8600   PetscFunctionBegin;
8601   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
8602   PetscValidType(mat,1);
8603   if (mat->ops->getvecs) {
8604     ierr = (*mat->ops->getvecs)(mat,right,left);CHKERRQ(ierr);
8605   } else {
8606     PetscInt rbs,cbs;
8607     ierr = MatGetBlockSizes(mat,&rbs,&cbs);CHKERRQ(ierr);
8608     if (right) {
8609       if (mat->cmap->n < 0) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"PetscLayout for columns not yet setup");
8610       ierr = VecCreate(PetscObjectComm((PetscObject)mat),right);CHKERRQ(ierr);
8611       ierr = VecSetSizes(*right,mat->cmap->n,PETSC_DETERMINE);CHKERRQ(ierr);
8612       ierr = VecSetBlockSize(*right,cbs);CHKERRQ(ierr);
8613       ierr = VecSetType(*right,VECSTANDARD);CHKERRQ(ierr);
8614       ierr = PetscLayoutReference(mat->cmap,&(*right)->map);CHKERRQ(ierr);
8615     }
8616     if (left) {
8617       if (mat->rmap->n < 0) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"PetscLayout for rows not yet setup");
8618       ierr = VecCreate(PetscObjectComm((PetscObject)mat),left);CHKERRQ(ierr);
8619       ierr = VecSetSizes(*left,mat->rmap->n,PETSC_DETERMINE);CHKERRQ(ierr);
8620       ierr = VecSetBlockSize(*left,rbs);CHKERRQ(ierr);
8621       ierr = VecSetType(*left,VECSTANDARD);CHKERRQ(ierr);
8622       ierr = PetscLayoutReference(mat->rmap,&(*left)->map);CHKERRQ(ierr);
8623     }
8624   }
8625   PetscFunctionReturn(0);
8626 }
8627 
8628 /*@C
8629    MatFactorInfoInitialize - Initializes a MatFactorInfo data structure
8630      with default values.
8631 
8632    Not Collective
8633 
8634    Input Parameters:
8635 .    info - the MatFactorInfo data structure
8636 
8637 
8638    Notes: The solvers are generally used through the KSP and PC objects, for example
8639           PCLU, PCILU, PCCHOLESKY, PCICC
8640 
8641    Level: developer
8642 
8643 .seealso: MatFactorInfo
8644 
8645     Developer Note: fortran interface is not autogenerated as the f90
8646     interface defintion cannot be generated correctly [due to MatFactorInfo]
8647 
8648 @*/
8649 
8650 PetscErrorCode MatFactorInfoInitialize(MatFactorInfo *info)
8651 {
8652   PetscErrorCode ierr;
8653 
8654   PetscFunctionBegin;
8655   ierr = PetscMemzero(info,sizeof(MatFactorInfo));CHKERRQ(ierr);
8656   PetscFunctionReturn(0);
8657 }
8658 
8659 /*@
8660    MatFactorSetSchurIS - Set indices corresponding to the Schur complement
8661 
8662    Collective on Mat
8663 
8664    Input Parameters:
8665 +  mat - the factored matrix
8666 -  is - the index set defining the Schur indices (0-based)
8667 
8668    Notes:
8669 
8670    Level: developer
8671 
8672    Concepts:
8673 
8674 .seealso: MatGetFactor(), MatFactorSetSchurIS(), MatFactorRestoreSchurComplement(), MatFactorCreateSchurComplement()
8675 
8676 @*/
8677 PetscErrorCode MatFactorSetSchurIS(Mat mat,IS is)
8678 {
8679   PetscErrorCode ierr,(*f)(Mat,IS);
8680 
8681   PetscFunctionBegin;
8682   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
8683   PetscValidType(mat,1);
8684   PetscValidHeaderSpecific(is,IS_CLASSID,2);
8685   PetscValidType(is,2);
8686   PetscCheckSameComm(mat,1,is,2);
8687   if (!mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Only for factored matrix");
8688   ierr = PetscObjectQueryFunction((PetscObject)mat,"MatFactorSetSchurIS_C",&f);CHKERRQ(ierr);
8689   if (!f) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_SUP,"The selected MatSolverPackage does not support Schur complement computation. You should use MATSOLVERMUMPS or MATSOLVERMKL_PARDISO");
8690   ierr = (*f)(mat,is);CHKERRQ(ierr);
8691   PetscFunctionReturn(0);
8692 }
8693 
8694 /*@
8695   MatFactorCreateSchurComplement - Create a Schur complement matrix object using Schur data computed during the factorization step
8696 
8697    Logically Collective on Mat
8698 
8699    Input Parameters:
8700 +  F - the factored matrix obtained by calling MatGetFactor() from PETSc-MUMPS interface
8701 .  *S - location where to return the Schur complement (MATDENSE)
8702 
8703    Notes:
8704    The routine provides a copy of the Schur data stored within solver's data strutures. The caller must destroy the object when it is no longer needed.
8705    If MatFactorInvertSchurComplement has been called, the routine gets back the inverse
8706 
8707    Level: advanced
8708 
8709    References:
8710 
8711 .seealso: MatGetFactor(), MatFactorSetSchurIS(), MatFactorGetSchurComplement()
8712 @*/
8713 PetscErrorCode MatFactorCreateSchurComplement(Mat F,Mat* S)
8714 {
8715   PetscErrorCode ierr;
8716 
8717   PetscFunctionBegin;
8718   PetscValidHeaderSpecific(F,MAT_CLASSID,1);
8719   ierr = PetscUseMethod(F,"MatFactorCreateSchurComplement_C",(Mat,Mat*),(F,S));CHKERRQ(ierr);
8720   PetscFunctionReturn(0);
8721 }
8722 
8723 /*@
8724   MatFactorGetSchurComplement - Get a Schur complement matrix object using the current Schur data
8725 
8726    Logically Collective on Mat
8727 
8728    Input Parameters:
8729 +  F - the factored matrix obtained by calling MatGetFactor()
8730 .  *S - location where to return the Schur complement (in MATDENSE format)
8731 
8732    Notes:
8733    Schur complement mode is currently implemented for sequential matrices.
8734    The routine returns a dense matrix pointing to the raw data of the Schur Complement stored within the data strutures of the solver; e.g. if MatFactorInvertSchurComplement has been called, the returned matrix is actually the inverse of the Schur complement.
8735    The caller should call MatFactorRestoreSchurComplement when the object is no longer needed.
8736 
8737    Level: advanced
8738 
8739    References:
8740 
8741 .seealso: MatGetFactor(), MatFactorSetSchurIS(), MatFactorRestoreSchurComplement(), MatFactorCreateSchurComplement()
8742 @*/
8743 PetscErrorCode MatFactorGetSchurComplement(Mat F,Mat* S)
8744 {
8745   PetscErrorCode ierr;
8746 
8747   PetscFunctionBegin;
8748   PetscValidHeaderSpecific(F,MAT_CLASSID,1);
8749   ierr = PetscUseMethod(F,"MatFactorGetSchurComplement_C",(Mat,Mat*),(F,S));CHKERRQ(ierr);
8750   PetscFunctionReturn(0);
8751 }
8752 
8753 /*@
8754   MatFactorRestoreSchurComplement - Restore the Schur complement matrix object obtained from a call to MatFactorGetSchurComplement
8755 
8756    Logically Collective on Mat
8757 
8758    Input Parameters:
8759 +  F - the factored matrix obtained by calling MatGetFactor()
8760 .  *S - location where the Schur complement is stored
8761 
8762    Notes:
8763 
8764    Level: advanced
8765 
8766    References:
8767 
8768 .seealso: MatGetFactor(), MatFactorSetSchurIS(), MatFactorRestoreSchurComplement(), MatFactorCreateSchurComplement()
8769 @*/
8770 PetscErrorCode MatFactorRestoreSchurComplement(Mat F,Mat* S)
8771 {
8772   PetscErrorCode ierr;
8773 
8774   PetscFunctionBegin;
8775   PetscValidHeaderSpecific(F,MAT_CLASSID,1);
8776   PetscValidHeaderSpecific(*S,MAT_CLASSID,1);
8777   ierr = MatDestroy(S);CHKERRQ(ierr);
8778   PetscFunctionReturn(0);
8779 }
8780 
8781 /*@
8782   MatFactorSolveSchurComplementTranspose - Solve the transpose of the Schur complement system computed during the factorization step
8783 
8784    Logically Collective on Mat
8785 
8786    Input Parameters:
8787 +  F - the factored matrix obtained by calling MatGetFactor()
8788 .  rhs - location where the right hand side of the Schur complement system is stored
8789 -  sol - location where the solution of the Schur complement system has to be returned
8790 
8791    Notes:
8792    The sizes of the vectors should match the size of the Schur complement
8793 
8794    Level: advanced
8795 
8796    References:
8797 
8798 .seealso: MatGetFactor(), MatFactorSetSchurIS()
8799 @*/
8800 PetscErrorCode MatFactorSolveSchurComplementTranspose(Mat F, Vec rhs, Vec sol)
8801 {
8802   PetscErrorCode ierr;
8803 
8804   PetscFunctionBegin;
8805   PetscValidHeaderSpecific(F,MAT_CLASSID,1);
8806   PetscValidHeaderSpecific(rhs,VEC_CLASSID,2);
8807   PetscValidHeaderSpecific(sol,VEC_CLASSID,2);
8808   PetscCheckSameComm(F,1,rhs,2);
8809   PetscCheckSameComm(F,1,sol,3);
8810   ierr = PetscUseMethod(F,"MatFactorSolveSchurComplementTranspose_C",(Mat,Vec,Vec),(F,rhs,sol));CHKERRQ(ierr);
8811   PetscFunctionReturn(0);
8812 }
8813 
8814 /*@
8815   MatFactorSolveSchurComplement - Solve the Schur complement system computed during the factorization step
8816 
8817    Logically Collective on Mat
8818 
8819    Input Parameters:
8820 +  F - the factored matrix obtained by calling MatGetFactor()
8821 .  rhs - location where the right hand side of the Schur complement system is stored
8822 -  sol - location where the solution of the Schur complement system has to be returned
8823 
8824    Notes:
8825    The sizes of the vectors should match the size of the Schur complement
8826 
8827    Level: advanced
8828 
8829    References:
8830 
8831 .seealso: MatGetFactor(), MatFactorSetSchurIS()
8832 @*/
8833 PetscErrorCode MatFactorSolveSchurComplement(Mat F, Vec rhs, Vec sol)
8834 {
8835   PetscErrorCode ierr;
8836 
8837   PetscFunctionBegin;
8838   PetscValidHeaderSpecific(F,MAT_CLASSID,1);
8839   PetscValidHeaderSpecific(rhs,VEC_CLASSID,2);
8840   PetscValidHeaderSpecific(sol,VEC_CLASSID,2);
8841   PetscCheckSameComm(F,1,rhs,2);
8842   PetscCheckSameComm(F,1,sol,3);
8843   ierr = PetscUseMethod(F,"MatFactorSolveSchurComplement_C",(Mat,Vec,Vec),(F,rhs,sol));CHKERRQ(ierr);
8844   PetscFunctionReturn(0);
8845 }
8846 
8847 /*@
8848   MatFactorInvertSchurComplement - Invert the raw Schur data computed during the factorization step
8849 
8850    Logically Collective on Mat
8851 
8852    Input Parameters:
8853 +  F - the factored matrix obtained by calling MatGetFactor()
8854 
8855    Notes:
8856 
8857    Level: advanced
8858 
8859    References:
8860 
8861 .seealso: MatGetFactor(), MatFactorSetSchurIS()
8862 @*/
8863 PetscErrorCode MatFactorInvertSchurComplement(Mat F)
8864 {
8865   PetscErrorCode ierr;
8866 
8867   PetscFunctionBegin;
8868   PetscValidHeaderSpecific(F,MAT_CLASSID,1);
8869   ierr = PetscUseMethod(F,"MatFactorInvertSchurComplement_C",(Mat),(F));CHKERRQ(ierr);
8870   PetscFunctionReturn(0);
8871 }
8872 
8873 /*@
8874   MatFactorFactorizeSchurComplement - Factorize the raw Schur data computed during the factorization step
8875 
8876    Logically Collective on Mat
8877 
8878    Input Parameters:
8879 +  F - the factored matrix obtained by calling MatGetFactor()
8880 
8881    Notes:
8882    The routine uses the pointer to the raw data of the Schur Complement stored within the solver.
8883 
8884    Level: advanced
8885 
8886    References:
8887 
8888 .seealso: MatGetFactor(), MatMumpsSetSchurIS()
8889 @*/
8890 PetscErrorCode MatFactorFactorizeSchurComplement(Mat F)
8891 {
8892   PetscErrorCode ierr;
8893 
8894   PetscFunctionBegin;
8895   PetscValidHeaderSpecific(F,MAT_CLASSID,1);
8896   ierr = PetscUseMethod(F,"MatFactorFactorizeSchurComplement_C",(Mat),(F));CHKERRQ(ierr);
8897   PetscFunctionReturn(0);
8898 }
8899 
8900 /*@
8901   MatFactorSetSchurComplementSolverType - Set type of solver for Schur complement
8902 
8903    Logically Collective on Mat
8904 
8905    Input Parameters:
8906 +  F - the factored matrix obtained by calling MatGetFactor()
8907 -  type - either 0 (non-symmetric), 1 (symmetric positive definite) or 2 (symmetric indefinite)
8908 
8909    Notes:
8910    The parameter is used to compute the correct factorization of the Schur complement matrices
8911    This could be useful in case the nature of the Schur complement is different from that of the matrix to be factored
8912 
8913    Level: advanced
8914 
8915    References:
8916 
8917 .seealso: MatGetFactor(), MatFactorSetSchurIS()
8918 @*/
8919 PetscErrorCode MatFactorSetSchurComplementSolverType(Mat F, PetscInt type)
8920 {
8921   PetscErrorCode ierr;
8922 
8923   PetscFunctionBegin;
8924   PetscValidHeaderSpecific(F,MAT_CLASSID,1);
8925   PetscValidLogicalCollectiveInt(F,type,2);
8926   ierr = PetscTryMethod(F,"MatFactorSetSchurComplementSolverType_C",(Mat,PetscInt),(F,type));CHKERRQ(ierr);
8927   PetscFunctionReturn(0);
8928 }
8929 
8930 /*@
8931    MatPtAP - Creates the matrix product C = P^T * A * P
8932 
8933    Neighbor-wise Collective on Mat
8934 
8935    Input Parameters:
8936 +  A - the matrix
8937 .  P - the projection matrix
8938 .  scall - either MAT_INITIAL_MATRIX or MAT_REUSE_MATRIX
8939 -  fill - expected fill as ratio of nnz(C)/(nnz(A) + nnz(P)), use PETSC_DEFAULT if you do not have a good estimate
8940           if the result is a dense matrix this is irrelevent
8941 
8942    Output Parameters:
8943 .  C - the product matrix
8944 
8945    Notes:
8946    C will be created and must be destroyed by the user with MatDestroy().
8947 
8948    This routine is currently only implemented for pairs of AIJ matrices and classes
8949    which inherit from AIJ.
8950 
8951    Level: intermediate
8952 
8953 .seealso: MatPtAPSymbolic(), MatPtAPNumeric(), MatMatMult(), MatRARt()
8954 @*/
8955 PetscErrorCode MatPtAP(Mat A,Mat P,MatReuse scall,PetscReal fill,Mat *C)
8956 {
8957   PetscErrorCode ierr;
8958   PetscErrorCode (*fA)(Mat,Mat,MatReuse,PetscReal,Mat*);
8959   PetscErrorCode (*fP)(Mat,Mat,MatReuse,PetscReal,Mat*);
8960   PetscErrorCode (*ptap)(Mat,Mat,MatReuse,PetscReal,Mat*)=NULL;
8961   PetscBool      viatranspose=PETSC_FALSE,viamatmatmatmult=PETSC_FALSE;
8962 
8963   PetscFunctionBegin;
8964   ierr = PetscOptionsGetBool(((PetscObject)A)->options,((PetscObject)A)->prefix,"-matptap_viatranspose",&viatranspose,NULL);CHKERRQ(ierr);
8965   ierr = PetscOptionsGetBool(((PetscObject)A)->options,((PetscObject)A)->prefix,"-matptap_viamatmatmatmult",&viamatmatmatmult,NULL);CHKERRQ(ierr);
8966 
8967   PetscValidHeaderSpecific(A,MAT_CLASSID,1);
8968   PetscValidType(A,1);
8969   MatCheckPreallocated(A,1);
8970   if (scall == MAT_INPLACE_MATRIX) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_SUP,"Inplace product not supported");
8971   if (!A->assembled) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
8972   if (A->factortype) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
8973   PetscValidHeaderSpecific(P,MAT_CLASSID,2);
8974   PetscValidType(P,2);
8975   MatCheckPreallocated(P,2);
8976   if (!P->assembled) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
8977   if (P->factortype) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
8978 
8979   if (A->rmap->N!= A->cmap->N) SETERRQ2(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_SIZ,"Matrix A must be square, %D != %D",A->rmap->N,A->cmap->N);
8980   if (P->rmap->N != A->cmap->N) SETERRQ2(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_SIZ,"Matrix dimensions are incompatible, %D != %D",P->rmap->N,A->cmap->N);
8981   if (fill == PETSC_DEFAULT || fill == PETSC_DECIDE) fill = 2.0;
8982   if (fill < 1.0) SETERRQ1(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_SIZ,"Expected fill=%g must be >= 1.0",(double)fill);
8983 
8984   if (scall == MAT_REUSE_MATRIX) {
8985     PetscValidPointer(*C,5);
8986     PetscValidHeaderSpecific(*C,MAT_CLASSID,5);
8987     if (viatranspose || viamatmatmatmult) {
8988       Mat Pt;
8989       ierr = MatTranspose(P,MAT_INITIAL_MATRIX,&Pt);CHKERRQ(ierr);
8990       if (viamatmatmatmult) {
8991         ierr = MatMatMatMult(Pt,A,P,scall,fill,C);CHKERRQ(ierr);
8992       } else {
8993         Mat AP;
8994         ierr = MatMatMult(A,P,MAT_INITIAL_MATRIX,fill,&AP);CHKERRQ(ierr);
8995         ierr = MatMatMult(Pt,AP,scall,fill,C);CHKERRQ(ierr);
8996         ierr = MatDestroy(&AP);CHKERRQ(ierr);
8997       }
8998       ierr = MatDestroy(&Pt);CHKERRQ(ierr);
8999     } else {
9000       ierr = PetscLogEventBegin(MAT_PtAP,A,P,0,0);CHKERRQ(ierr);
9001       ierr = PetscLogEventBegin(MAT_PtAPNumeric,A,P,0,0);CHKERRQ(ierr);
9002       ierr = (*(*C)->ops->ptapnumeric)(A,P,*C);CHKERRQ(ierr);
9003       ierr = PetscLogEventEnd(MAT_PtAPNumeric,A,P,0,0);CHKERRQ(ierr);
9004       ierr = PetscLogEventEnd(MAT_PtAP,A,P,0,0);CHKERRQ(ierr);
9005     }
9006     PetscFunctionReturn(0);
9007   }
9008 
9009   if (fill == PETSC_DEFAULT || fill == PETSC_DECIDE) fill = 2.0;
9010   if (fill < 1.0) SETERRQ1(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_SIZ,"Expected fill=%g must be >= 1.0",(double)fill);
9011 
9012   fA = A->ops->ptap;
9013   fP = P->ops->ptap;
9014   if (fP == fA) {
9015     if (!fA) SETERRQ1(PetscObjectComm((PetscObject)A),PETSC_ERR_SUP,"MatPtAP not supported for A of type %s",((PetscObject)A)->type_name);
9016     ptap = fA;
9017   } else {
9018     /* dispatch based on the type of A and P from their PetscObject's PetscFunctionLists. */
9019     char ptapname[256];
9020     ierr = PetscStrcpy(ptapname,"MatPtAP_");CHKERRQ(ierr);
9021     ierr = PetscStrcat(ptapname,((PetscObject)A)->type_name);CHKERRQ(ierr);
9022     ierr = PetscStrcat(ptapname,"_");CHKERRQ(ierr);
9023     ierr = PetscStrcat(ptapname,((PetscObject)P)->type_name);CHKERRQ(ierr);
9024     ierr = PetscStrcat(ptapname,"_C");CHKERRQ(ierr); /* e.g., ptapname = "MatPtAP_seqdense_seqaij_C" */
9025     ierr = PetscObjectQueryFunction((PetscObject)P,ptapname,&ptap);CHKERRQ(ierr);
9026     if (!ptap) SETERRQ2(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_INCOMP,"MatPtAP requires A, %s, to be compatible with P, %s",((PetscObject)A)->type_name,((PetscObject)P)->type_name);
9027   }
9028 
9029   if (viatranspose || viamatmatmatmult) {
9030     Mat Pt;
9031     ierr = MatTranspose(P,MAT_INITIAL_MATRIX,&Pt);CHKERRQ(ierr);
9032     if (viamatmatmatmult) {
9033       ierr = MatMatMatMult(Pt,A,P,scall,fill,C);CHKERRQ(ierr);
9034       ierr = PetscInfo(*C,"MatPtAP via MatMatMatMult\n");CHKERRQ(ierr);
9035     } else {
9036       Mat AP;
9037       ierr = MatMatMult(A,P,MAT_INITIAL_MATRIX,fill,&AP);CHKERRQ(ierr);
9038       ierr = MatMatMult(Pt,AP,scall,fill,C);CHKERRQ(ierr);
9039       ierr = MatDestroy(&AP);CHKERRQ(ierr);
9040       ierr = PetscInfo(*C,"MatPtAP via MatTranspose and MatMatMult\n");CHKERRQ(ierr);
9041     }
9042     ierr = MatDestroy(&Pt);CHKERRQ(ierr);
9043   } else {
9044     ierr = PetscLogEventBegin(MAT_PtAP,A,P,0,0);CHKERRQ(ierr);
9045     ierr = (*ptap)(A,P,scall,fill,C);CHKERRQ(ierr);
9046     ierr = PetscLogEventEnd(MAT_PtAP,A,P,0,0);CHKERRQ(ierr);
9047   }
9048   PetscFunctionReturn(0);
9049 }
9050 
9051 /*@
9052    MatPtAPNumeric - Computes the matrix product C = P^T * A * P
9053 
9054    Neighbor-wise Collective on Mat
9055 
9056    Input Parameters:
9057 +  A - the matrix
9058 -  P - the projection matrix
9059 
9060    Output Parameters:
9061 .  C - the product matrix
9062 
9063    Notes:
9064    C must have been created by calling MatPtAPSymbolic and must be destroyed by
9065    the user using MatDeatroy().
9066 
9067    This routine is currently only implemented for pairs of AIJ matrices and classes
9068    which inherit from AIJ.  C will be of type MATAIJ.
9069 
9070    Level: intermediate
9071 
9072 .seealso: MatPtAP(), MatPtAPSymbolic(), MatMatMultNumeric()
9073 @*/
9074 PetscErrorCode MatPtAPNumeric(Mat A,Mat P,Mat C)
9075 {
9076   PetscErrorCode ierr;
9077 
9078   PetscFunctionBegin;
9079   PetscValidHeaderSpecific(A,MAT_CLASSID,1);
9080   PetscValidType(A,1);
9081   if (!A->assembled) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
9082   if (A->factortype) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
9083   PetscValidHeaderSpecific(P,MAT_CLASSID,2);
9084   PetscValidType(P,2);
9085   MatCheckPreallocated(P,2);
9086   if (!P->assembled) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
9087   if (P->factortype) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
9088   PetscValidHeaderSpecific(C,MAT_CLASSID,3);
9089   PetscValidType(C,3);
9090   MatCheckPreallocated(C,3);
9091   if (C->factortype) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
9092   if (P->cmap->N!=C->rmap->N) SETERRQ2(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_SIZ,"Matrix dimensions are incompatible, %D != %D",P->cmap->N,C->rmap->N);
9093   if (P->rmap->N!=A->cmap->N) SETERRQ2(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_SIZ,"Matrix dimensions are incompatible, %D != %D",P->rmap->N,A->cmap->N);
9094   if (A->rmap->N!=A->cmap->N) SETERRQ2(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_SIZ,"Matrix 'A' must be square, %D != %D",A->rmap->N,A->cmap->N);
9095   if (P->cmap->N!=C->cmap->N) SETERRQ2(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_SIZ,"Matrix dimensions are incompatible, %D != %D",P->cmap->N,C->cmap->N);
9096   MatCheckPreallocated(A,1);
9097 
9098   ierr = PetscLogEventBegin(MAT_PtAPNumeric,A,P,0,0);CHKERRQ(ierr);
9099   ierr = (*C->ops->ptapnumeric)(A,P,C);CHKERRQ(ierr);
9100   ierr = PetscLogEventEnd(MAT_PtAPNumeric,A,P,0,0);CHKERRQ(ierr);
9101   PetscFunctionReturn(0);
9102 }
9103 
9104 /*@
9105    MatPtAPSymbolic - Creates the (i,j) structure of the matrix product C = P^T * A * P
9106 
9107    Neighbor-wise Collective on Mat
9108 
9109    Input Parameters:
9110 +  A - the matrix
9111 -  P - the projection matrix
9112 
9113    Output Parameters:
9114 .  C - the (i,j) structure of the product matrix
9115 
9116    Notes:
9117    C will be created and must be destroyed by the user with MatDestroy().
9118 
9119    This routine is currently only implemented for pairs of SeqAIJ matrices and classes
9120    which inherit from SeqAIJ.  C will be of type MATSEQAIJ.  The product is computed using
9121    this (i,j) structure by calling MatPtAPNumeric().
9122 
9123    Level: intermediate
9124 
9125 .seealso: MatPtAP(), MatPtAPNumeric(), MatMatMultSymbolic()
9126 @*/
9127 PetscErrorCode MatPtAPSymbolic(Mat A,Mat P,PetscReal fill,Mat *C)
9128 {
9129   PetscErrorCode ierr;
9130 
9131   PetscFunctionBegin;
9132   PetscValidHeaderSpecific(A,MAT_CLASSID,1);
9133   PetscValidType(A,1);
9134   if (!A->assembled) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
9135   if (A->factortype) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
9136   if (fill <1.0) SETERRQ1(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_SIZ,"Expected fill=%g must be >= 1.0",(double)fill);
9137   PetscValidHeaderSpecific(P,MAT_CLASSID,2);
9138   PetscValidType(P,2);
9139   MatCheckPreallocated(P,2);
9140   if (!P->assembled) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
9141   if (P->factortype) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
9142   PetscValidPointer(C,3);
9143 
9144   if (P->rmap->N!=A->cmap->N) SETERRQ2(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_SIZ,"Matrix dimensions are incompatible, %D != %D",P->rmap->N,A->cmap->N);
9145   if (A->rmap->N!=A->cmap->N) SETERRQ2(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_SIZ,"Matrix 'A' must be square, %D != %D",A->rmap->N,A->cmap->N);
9146   MatCheckPreallocated(A,1);
9147   ierr = PetscLogEventBegin(MAT_PtAPSymbolic,A,P,0,0);CHKERRQ(ierr);
9148   ierr = (*A->ops->ptapsymbolic)(A,P,fill,C);CHKERRQ(ierr);
9149   ierr = PetscLogEventEnd(MAT_PtAPSymbolic,A,P,0,0);CHKERRQ(ierr);
9150 
9151   /* ierr = MatSetBlockSize(*C,A->rmap->bs);CHKERRQ(ierr); NO! this is not always true -ma */
9152   PetscFunctionReturn(0);
9153 }
9154 
9155 /*@
9156    MatRARt - Creates the matrix product C = R * A * R^T
9157 
9158    Neighbor-wise Collective on Mat
9159 
9160    Input Parameters:
9161 +  A - the matrix
9162 .  R - the projection matrix
9163 .  scall - either MAT_INITIAL_MATRIX or MAT_REUSE_MATRIX
9164 -  fill - expected fill as ratio of nnz(C)/nnz(A), use PETSC_DEFAULT if you do not have a good estimate
9165           if the result is a dense matrix this is irrelevent
9166 
9167    Output Parameters:
9168 .  C - the product matrix
9169 
9170    Notes:
9171    C will be created and must be destroyed by the user with MatDestroy().
9172 
9173    This routine is currently only implemented for pairs of AIJ matrices and classes
9174    which inherit from AIJ.
9175 
9176    Level: intermediate
9177 
9178 .seealso: MatRARtSymbolic(), MatRARtNumeric(), MatMatMult(), MatPtAP()
9179 @*/
9180 PetscErrorCode MatRARt(Mat A,Mat R,MatReuse scall,PetscReal fill,Mat *C)
9181 {
9182   PetscErrorCode ierr;
9183 
9184   PetscFunctionBegin;
9185   PetscValidHeaderSpecific(A,MAT_CLASSID,1);
9186   PetscValidType(A,1);
9187   if (scall == MAT_INPLACE_MATRIX) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_SUP,"Inplace product not supported");
9188   if (!A->assembled) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
9189   if (A->factortype) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
9190   PetscValidHeaderSpecific(R,MAT_CLASSID,2);
9191   PetscValidType(R,2);
9192   MatCheckPreallocated(R,2);
9193   if (!R->assembled) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
9194   if (R->factortype) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
9195   PetscValidPointer(C,3);
9196   if (R->cmap->N!=A->rmap->N) SETERRQ2(PetscObjectComm((PetscObject)R),PETSC_ERR_ARG_SIZ,"Matrix dimensions are incompatible, %D != %D",R->cmap->N,A->rmap->N);
9197 
9198   if (fill == PETSC_DEFAULT || fill == PETSC_DECIDE) fill = 2.0;
9199   if (fill < 1.0) SETERRQ1(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_SIZ,"Expected fill=%g must be >= 1.0",(double)fill);
9200   MatCheckPreallocated(A,1);
9201 
9202   if (!A->ops->rart) {
9203     MatType mattype;
9204     ierr = MatGetType(A,&mattype);CHKERRQ(ierr);
9205     SETERRQ1(PetscObjectComm((PetscObject)A),PETSC_ERR_SUP,"Matrix of type <%s> does not support RARt",mattype);
9206   }
9207   ierr = PetscLogEventBegin(MAT_RARt,A,R,0,0);CHKERRQ(ierr);
9208   ierr = (*A->ops->rart)(A,R,scall,fill,C);CHKERRQ(ierr);
9209   ierr = PetscLogEventEnd(MAT_RARt,A,R,0,0);CHKERRQ(ierr);
9210   PetscFunctionReturn(0);
9211 }
9212 
9213 /*@
9214    MatRARtNumeric - Computes the matrix product C = R * A * R^T
9215 
9216    Neighbor-wise Collective on Mat
9217 
9218    Input Parameters:
9219 +  A - the matrix
9220 -  R - the projection matrix
9221 
9222    Output Parameters:
9223 .  C - the product matrix
9224 
9225    Notes:
9226    C must have been created by calling MatRARtSymbolic and must be destroyed by
9227    the user using MatDestroy().
9228 
9229    This routine is currently only implemented for pairs of AIJ matrices and classes
9230    which inherit from AIJ.  C will be of type MATAIJ.
9231 
9232    Level: intermediate
9233 
9234 .seealso: MatRARt(), MatRARtSymbolic(), MatMatMultNumeric()
9235 @*/
9236 PetscErrorCode MatRARtNumeric(Mat A,Mat R,Mat C)
9237 {
9238   PetscErrorCode ierr;
9239 
9240   PetscFunctionBegin;
9241   PetscValidHeaderSpecific(A,MAT_CLASSID,1);
9242   PetscValidType(A,1);
9243   if (!A->assembled) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
9244   if (A->factortype) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
9245   PetscValidHeaderSpecific(R,MAT_CLASSID,2);
9246   PetscValidType(R,2);
9247   MatCheckPreallocated(R,2);
9248   if (!R->assembled) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
9249   if (R->factortype) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
9250   PetscValidHeaderSpecific(C,MAT_CLASSID,3);
9251   PetscValidType(C,3);
9252   MatCheckPreallocated(C,3);
9253   if (C->factortype) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
9254   if (R->rmap->N!=C->rmap->N) SETERRQ2(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_SIZ,"Matrix dimensions are incompatible, %D != %D",R->rmap->N,C->rmap->N);
9255   if (R->cmap->N!=A->rmap->N) SETERRQ2(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_SIZ,"Matrix dimensions are incompatible, %D != %D",R->cmap->N,A->rmap->N);
9256   if (A->rmap->N!=A->cmap->N) SETERRQ2(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_SIZ,"Matrix 'A' must be square, %D != %D",A->rmap->N,A->cmap->N);
9257   if (R->rmap->N!=C->cmap->N) SETERRQ2(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_SIZ,"Matrix dimensions are incompatible, %D != %D",R->rmap->N,C->cmap->N);
9258   MatCheckPreallocated(A,1);
9259 
9260   ierr = PetscLogEventBegin(MAT_RARtNumeric,A,R,0,0);CHKERRQ(ierr);
9261   ierr = (*A->ops->rartnumeric)(A,R,C);CHKERRQ(ierr);
9262   ierr = PetscLogEventEnd(MAT_RARtNumeric,A,R,0,0);CHKERRQ(ierr);
9263   PetscFunctionReturn(0);
9264 }
9265 
9266 /*@
9267    MatRARtSymbolic - Creates the (i,j) structure of the matrix product C = R * A * R^T
9268 
9269    Neighbor-wise Collective on Mat
9270 
9271    Input Parameters:
9272 +  A - the matrix
9273 -  R - the projection matrix
9274 
9275    Output Parameters:
9276 .  C - the (i,j) structure of the product matrix
9277 
9278    Notes:
9279    C will be created and must be destroyed by the user with MatDestroy().
9280 
9281    This routine is currently only implemented for pairs of SeqAIJ matrices and classes
9282    which inherit from SeqAIJ.  C will be of type MATSEQAIJ.  The product is computed using
9283    this (i,j) structure by calling MatRARtNumeric().
9284 
9285    Level: intermediate
9286 
9287 .seealso: MatRARt(), MatRARtNumeric(), MatMatMultSymbolic()
9288 @*/
9289 PetscErrorCode MatRARtSymbolic(Mat A,Mat R,PetscReal fill,Mat *C)
9290 {
9291   PetscErrorCode ierr;
9292 
9293   PetscFunctionBegin;
9294   PetscValidHeaderSpecific(A,MAT_CLASSID,1);
9295   PetscValidType(A,1);
9296   if (!A->assembled) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
9297   if (A->factortype) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
9298   if (fill <1.0) SETERRQ1(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_SIZ,"Expected fill=%g must be >= 1.0",(double)fill);
9299   PetscValidHeaderSpecific(R,MAT_CLASSID,2);
9300   PetscValidType(R,2);
9301   MatCheckPreallocated(R,2);
9302   if (!R->assembled) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
9303   if (R->factortype) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
9304   PetscValidPointer(C,3);
9305 
9306   if (R->cmap->N!=A->rmap->N) SETERRQ2(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_SIZ,"Matrix dimensions are incompatible, %D != %D",R->cmap->N,A->rmap->N);
9307   if (A->rmap->N!=A->cmap->N) SETERRQ2(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_SIZ,"Matrix 'A' must be square, %D != %D",A->rmap->N,A->cmap->N);
9308   MatCheckPreallocated(A,1);
9309   ierr = PetscLogEventBegin(MAT_RARtSymbolic,A,R,0,0);CHKERRQ(ierr);
9310   ierr = (*A->ops->rartsymbolic)(A,R,fill,C);CHKERRQ(ierr);
9311   ierr = PetscLogEventEnd(MAT_RARtSymbolic,A,R,0,0);CHKERRQ(ierr);
9312 
9313   ierr = MatSetBlockSizes(*C,PetscAbs(R->rmap->bs),PetscAbs(R->rmap->bs));CHKERRQ(ierr);
9314   PetscFunctionReturn(0);
9315 }
9316 
9317 /*@
9318    MatMatMult - Performs Matrix-Matrix Multiplication C=A*B.
9319 
9320    Neighbor-wise Collective on Mat
9321 
9322    Input Parameters:
9323 +  A - the left matrix
9324 .  B - the right matrix
9325 .  scall - either MAT_INITIAL_MATRIX or MAT_REUSE_MATRIX
9326 -  fill - expected fill as ratio of nnz(C)/(nnz(A) + nnz(B)), use PETSC_DEFAULT if you do not have a good estimate
9327           if the result is a dense matrix this is irrelevent
9328 
9329    Output Parameters:
9330 .  C - the product matrix
9331 
9332    Notes:
9333    Unless scall is MAT_REUSE_MATRIX C will be created.
9334 
9335    MAT_REUSE_MATRIX can only be used if the matrices A and B have the same nonzero pattern as in the previous call
9336 
9337    To determine the correct fill value, run with -info and search for the string "Fill ratio" to see the value
9338    actually needed.
9339 
9340    If you have many matrices with the same non-zero structure to multiply, you
9341    should either
9342 $   1) use MAT_REUSE_MATRIX in all calls but the first or
9343 $   2) call MatMatMultSymbolic() once and then MatMatMultNumeric() for each product needed
9344    In the special case where matrix B (and hence C) are dense you can create the correctly sized matrix C yourself and then call this routine
9345    with MAT_REUSE_MATRIX, rather than first having MatMatMult() create it for you. You can NEVER do this if the matrix C is sparse.
9346 
9347    Level: intermediate
9348 
9349 .seealso: MatMatMultSymbolic(), MatMatMultNumeric(), MatTransposeMatMult(),  MatMatTransposeMult(), MatPtAP()
9350 @*/
9351 PetscErrorCode MatMatMult(Mat A,Mat B,MatReuse scall,PetscReal fill,Mat *C)
9352 {
9353   PetscErrorCode ierr;
9354   PetscErrorCode (*fA)(Mat,Mat,MatReuse,PetscReal,Mat*);
9355   PetscErrorCode (*fB)(Mat,Mat,MatReuse,PetscReal,Mat*);
9356   PetscErrorCode (*mult)(Mat,Mat,MatReuse,PetscReal,Mat*)=NULL;
9357 
9358   PetscFunctionBegin;
9359   PetscValidHeaderSpecific(A,MAT_CLASSID,1);
9360   PetscValidType(A,1);
9361   MatCheckPreallocated(A,1);
9362   if (!A->assembled) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
9363   if (A->factortype) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
9364   PetscValidHeaderSpecific(B,MAT_CLASSID,2);
9365   PetscValidType(B,2);
9366   MatCheckPreallocated(B,2);
9367   if (!B->assembled) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
9368   if (B->factortype) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
9369   PetscValidPointer(C,3);
9370   if (scall == MAT_INPLACE_MATRIX) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_SUP,"Inplace product not supported");
9371   if (B->rmap->N!=A->cmap->N) SETERRQ2(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_SIZ,"Matrix dimensions are incompatible, %D != %D",B->rmap->N,A->cmap->N);
9372   if (scall == MAT_REUSE_MATRIX) {
9373     PetscValidPointer(*C,5);
9374     PetscValidHeaderSpecific(*C,MAT_CLASSID,5);
9375     ierr = PetscLogEventBegin(MAT_MatMult,A,B,0,0);CHKERRQ(ierr);
9376     ierr = PetscLogEventBegin(MAT_MatMultNumeric,A,B,0,0);CHKERRQ(ierr);
9377     ierr = (*(*C)->ops->matmultnumeric)(A,B,*C);CHKERRQ(ierr);
9378     ierr = PetscLogEventEnd(MAT_MatMultNumeric,A,B,0,0);CHKERRQ(ierr);
9379     ierr = PetscLogEventEnd(MAT_MatMult,A,B,0,0);CHKERRQ(ierr);
9380     PetscFunctionReturn(0);
9381   }
9382   if (fill == PETSC_DEFAULT || fill == PETSC_DECIDE) fill = 2.0;
9383   if (fill < 1.0) SETERRQ1(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_SIZ,"Expected fill=%g must be >= 1.0",(double)fill);
9384 
9385   fA = A->ops->matmult;
9386   fB = B->ops->matmult;
9387   if (fB == fA) {
9388     if (!fB) SETERRQ1(PetscObjectComm((PetscObject)A),PETSC_ERR_SUP,"MatMatMult not supported for B of type %s",((PetscObject)B)->type_name);
9389     mult = fB;
9390   } else {
9391     /* dispatch based on the type of A and B from their PetscObject's PetscFunctionLists. */
9392     char multname[256];
9393     ierr = PetscStrcpy(multname,"MatMatMult_");CHKERRQ(ierr);
9394     ierr = PetscStrcat(multname,((PetscObject)A)->type_name);CHKERRQ(ierr);
9395     ierr = PetscStrcat(multname,"_");CHKERRQ(ierr);
9396     ierr = PetscStrcat(multname,((PetscObject)B)->type_name);CHKERRQ(ierr);
9397     ierr = PetscStrcat(multname,"_C");CHKERRQ(ierr); /* e.g., multname = "MatMatMult_seqdense_seqaij_C" */
9398     ierr = PetscObjectQueryFunction((PetscObject)B,multname,&mult);CHKERRQ(ierr);
9399     if (!mult) SETERRQ2(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_INCOMP,"MatMatMult requires A, %s, to be compatible with B, %s",((PetscObject)A)->type_name,((PetscObject)B)->type_name);
9400   }
9401   ierr = PetscLogEventBegin(MAT_MatMult,A,B,0,0);CHKERRQ(ierr);
9402   ierr = (*mult)(A,B,scall,fill,C);CHKERRQ(ierr);
9403   ierr = PetscLogEventEnd(MAT_MatMult,A,B,0,0);CHKERRQ(ierr);
9404   PetscFunctionReturn(0);
9405 }
9406 
9407 /*@
9408    MatMatMultSymbolic - Performs construction, preallocation, and computes the ij structure
9409    of the matrix-matrix product C=A*B.  Call this routine before calling MatMatMultNumeric().
9410 
9411    Neighbor-wise Collective on Mat
9412 
9413    Input Parameters:
9414 +  A - the left matrix
9415 .  B - the right matrix
9416 -  fill - expected fill as ratio of nnz(C)/(nnz(A) + nnz(B)), use PETSC_DEFAULT if you do not have a good estimate,
9417       if C is a dense matrix this is irrelevent
9418 
9419    Output Parameters:
9420 .  C - the product matrix
9421 
9422    Notes:
9423    Unless scall is MAT_REUSE_MATRIX C will be created.
9424 
9425    To determine the correct fill value, run with -info and search for the string "Fill ratio" to see the value
9426    actually needed.
9427 
9428    This routine is currently implemented for
9429     - pairs of AIJ matrices and classes which inherit from AIJ, C will be of type AIJ
9430     - pairs of AIJ (A) and Dense (B) matrix, C will be of type Dense.
9431     - pairs of Dense (A) and AIJ (B) matrix, C will be of type Dense.
9432 
9433    Level: intermediate
9434 
9435    Developers Note: There are ways to estimate the number of nonzeros in the resulting product, see for example, http://arxiv.org/abs/1006.4173
9436      We should incorporate them into PETSc.
9437 
9438 .seealso: MatMatMult(), MatMatMultNumeric()
9439 @*/
9440 PetscErrorCode MatMatMultSymbolic(Mat A,Mat B,PetscReal fill,Mat *C)
9441 {
9442   PetscErrorCode ierr;
9443   PetscErrorCode (*Asymbolic)(Mat,Mat,PetscReal,Mat*);
9444   PetscErrorCode (*Bsymbolic)(Mat,Mat,PetscReal,Mat*);
9445   PetscErrorCode (*symbolic)(Mat,Mat,PetscReal,Mat*)=NULL;
9446 
9447   PetscFunctionBegin;
9448   PetscValidHeaderSpecific(A,MAT_CLASSID,1);
9449   PetscValidType(A,1);
9450   if (!A->assembled) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
9451   if (A->factortype) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
9452 
9453   PetscValidHeaderSpecific(B,MAT_CLASSID,2);
9454   PetscValidType(B,2);
9455   MatCheckPreallocated(B,2);
9456   if (!B->assembled) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
9457   if (B->factortype) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
9458   PetscValidPointer(C,3);
9459 
9460   if (B->rmap->N!=A->cmap->N) SETERRQ2(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_SIZ,"Matrix dimensions are incompatible, %D != %D",B->rmap->N,A->cmap->N);
9461   if (fill == PETSC_DEFAULT) fill = 2.0;
9462   if (fill < 1.0) SETERRQ1(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_SIZ,"Expected fill=%g must be > 1.0",(double)fill);
9463   MatCheckPreallocated(A,1);
9464 
9465   Asymbolic = A->ops->matmultsymbolic;
9466   Bsymbolic = B->ops->matmultsymbolic;
9467   if (Asymbolic == Bsymbolic) {
9468     if (!Bsymbolic) SETERRQ1(PetscObjectComm((PetscObject)A),PETSC_ERR_SUP,"C=A*B not implemented for B of type %s",((PetscObject)B)->type_name);
9469     symbolic = Bsymbolic;
9470   } else { /* dispatch based on the type of A and B */
9471     char symbolicname[256];
9472     ierr = PetscStrcpy(symbolicname,"MatMatMultSymbolic_");CHKERRQ(ierr);
9473     ierr = PetscStrcat(symbolicname,((PetscObject)A)->type_name);CHKERRQ(ierr);
9474     ierr = PetscStrcat(symbolicname,"_");CHKERRQ(ierr);
9475     ierr = PetscStrcat(symbolicname,((PetscObject)B)->type_name);CHKERRQ(ierr);
9476     ierr = PetscStrcat(symbolicname,"_C");CHKERRQ(ierr);
9477     ierr = PetscObjectQueryFunction((PetscObject)B,symbolicname,&symbolic);CHKERRQ(ierr);
9478     if (!symbolic) SETERRQ2(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_INCOMP,"MatMatMultSymbolic requires A, %s, to be compatible with B, %s",((PetscObject)A)->type_name,((PetscObject)B)->type_name);
9479   }
9480   ierr = PetscLogEventBegin(MAT_MatMultSymbolic,A,B,0,0);CHKERRQ(ierr);
9481   ierr = (*symbolic)(A,B,fill,C);CHKERRQ(ierr);
9482   ierr = PetscLogEventEnd(MAT_MatMultSymbolic,A,B,0,0);CHKERRQ(ierr);
9483   PetscFunctionReturn(0);
9484 }
9485 
9486 /*@
9487    MatMatMultNumeric - Performs the numeric matrix-matrix product.
9488    Call this routine after first calling MatMatMultSymbolic().
9489 
9490    Neighbor-wise Collective on Mat
9491 
9492    Input Parameters:
9493 +  A - the left matrix
9494 -  B - the right matrix
9495 
9496    Output Parameters:
9497 .  C - the product matrix, which was created by from MatMatMultSymbolic() or a call to MatMatMult().
9498 
9499    Notes:
9500    C must have been created with MatMatMultSymbolic().
9501 
9502    This routine is currently implemented for
9503     - pairs of AIJ matrices and classes which inherit from AIJ, C will be of type MATAIJ.
9504     - pairs of AIJ (A) and Dense (B) matrix, C will be of type Dense.
9505     - pairs of Dense (A) and AIJ (B) matrix, C will be of type Dense.
9506 
9507    Level: intermediate
9508 
9509 .seealso: MatMatMult(), MatMatMultSymbolic()
9510 @*/
9511 PetscErrorCode MatMatMultNumeric(Mat A,Mat B,Mat C)
9512 {
9513   PetscErrorCode ierr;
9514 
9515   PetscFunctionBegin;
9516   ierr = MatMatMult(A,B,MAT_REUSE_MATRIX,0.0,&C);CHKERRQ(ierr);
9517   PetscFunctionReturn(0);
9518 }
9519 
9520 /*@
9521    MatMatTransposeMult - Performs Matrix-Matrix Multiplication C=A*B^T.
9522 
9523    Neighbor-wise Collective on Mat
9524 
9525    Input Parameters:
9526 +  A - the left matrix
9527 .  B - the right matrix
9528 .  scall - either MAT_INITIAL_MATRIX or MAT_REUSE_MATRIX
9529 -  fill - expected fill as ratio of nnz(C)/(nnz(A) + nnz(B)), use PETSC_DEFAULT if not known
9530 
9531    Output Parameters:
9532 .  C - the product matrix
9533 
9534    Notes:
9535    C will be created if MAT_INITIAL_MATRIX and must be destroyed by the user with MatDestroy().
9536 
9537    MAT_REUSE_MATRIX can only be used if the matrices A and B have the same nonzero pattern as in the previous call
9538 
9539   To determine the correct fill value, run with -info and search for the string "Fill ratio" to see the value
9540    actually needed.
9541 
9542    This routine is currently only implemented for pairs of SeqAIJ matrices.  C will be of type MATSEQAIJ.
9543 
9544    Level: intermediate
9545 
9546 .seealso: MatMatTransposeMultSymbolic(), MatMatTransposeMultNumeric(), MatMatMult(), MatTransposeMatMult() MatPtAP()
9547 @*/
9548 PetscErrorCode MatMatTransposeMult(Mat A,Mat B,MatReuse scall,PetscReal fill,Mat *C)
9549 {
9550   PetscErrorCode ierr;
9551   PetscErrorCode (*fA)(Mat,Mat,MatReuse,PetscReal,Mat*);
9552   PetscErrorCode (*fB)(Mat,Mat,MatReuse,PetscReal,Mat*);
9553 
9554   PetscFunctionBegin;
9555   PetscValidHeaderSpecific(A,MAT_CLASSID,1);
9556   PetscValidType(A,1);
9557   if (scall == MAT_INPLACE_MATRIX) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_SUP,"Inplace product not supported");
9558   if (!A->assembled) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
9559   if (A->factortype) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
9560   PetscValidHeaderSpecific(B,MAT_CLASSID,2);
9561   PetscValidType(B,2);
9562   MatCheckPreallocated(B,2);
9563   if (!B->assembled) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
9564   if (B->factortype) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
9565   PetscValidPointer(C,3);
9566   if (B->cmap->N!=A->cmap->N) SETERRQ2(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_SIZ,"Matrix dimensions are incompatible, AN %D != BN %D",A->cmap->N,B->cmap->N);
9567   if (fill == PETSC_DEFAULT || fill == PETSC_DECIDE) fill = 2.0;
9568   if (fill < 1.0) SETERRQ1(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_SIZ,"Expected fill=%g must be > 1.0",(double)fill);
9569   MatCheckPreallocated(A,1);
9570 
9571   fA = A->ops->mattransposemult;
9572   if (!fA) SETERRQ1(PetscObjectComm((PetscObject)A),PETSC_ERR_SUP,"MatMatTransposeMult not supported for A of type %s",((PetscObject)A)->type_name);
9573   fB = B->ops->mattransposemult;
9574   if (!fB) SETERRQ1(PetscObjectComm((PetscObject)A),PETSC_ERR_SUP,"MatMatTransposeMult not supported for B of type %s",((PetscObject)B)->type_name);
9575   if (fB!=fA) SETERRQ2(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_INCOMP,"MatMatTransposeMult requires A, %s, to be compatible with B, %s",((PetscObject)A)->type_name,((PetscObject)B)->type_name);
9576 
9577   ierr = PetscLogEventBegin(MAT_MatTransposeMult,A,B,0,0);CHKERRQ(ierr);
9578   if (scall == MAT_INITIAL_MATRIX) {
9579     ierr = PetscLogEventBegin(MAT_MatTransposeMultSymbolic,A,B,0,0);CHKERRQ(ierr);
9580     ierr = (*A->ops->mattransposemultsymbolic)(A,B,fill,C);CHKERRQ(ierr);
9581     ierr = PetscLogEventEnd(MAT_MatTransposeMultSymbolic,A,B,0,0);CHKERRQ(ierr);
9582   }
9583   ierr = PetscLogEventBegin(MAT_MatTransposeMultNumeric,A,B,0,0);CHKERRQ(ierr);
9584   ierr = (*A->ops->mattransposemultnumeric)(A,B,*C);CHKERRQ(ierr);
9585   ierr = PetscLogEventEnd(MAT_MatTransposeMultNumeric,A,B,0,0);CHKERRQ(ierr);
9586   ierr = PetscLogEventEnd(MAT_MatTransposeMult,A,B,0,0);CHKERRQ(ierr);
9587   PetscFunctionReturn(0);
9588 }
9589 
9590 /*@
9591    MatTransposeMatMult - Performs Matrix-Matrix Multiplication C=A^T*B.
9592 
9593    Neighbor-wise Collective on Mat
9594 
9595    Input Parameters:
9596 +  A - the left matrix
9597 .  B - the right matrix
9598 .  scall - either MAT_INITIAL_MATRIX or MAT_REUSE_MATRIX
9599 -  fill - expected fill as ratio of nnz(C)/(nnz(A) + nnz(B)), use PETSC_DEFAULT if not known
9600 
9601    Output Parameters:
9602 .  C - the product matrix
9603 
9604    Notes:
9605    C will be created if MAT_INITIAL_MATRIX and must be destroyed by the user with MatDestroy().
9606 
9607    MAT_REUSE_MATRIX can only be used if the matrices A and B have the same nonzero pattern as in the previous call
9608 
9609   To determine the correct fill value, run with -info and search for the string "Fill ratio" to see the value
9610    actually needed.
9611 
9612    This routine is currently implemented for pairs of AIJ matrices and pairs of SeqDense matrices and classes
9613    which inherit from SeqAIJ.  C will be of same type as the input matrices.
9614 
9615    Level: intermediate
9616 
9617 .seealso: MatTransposeMatMultSymbolic(), MatTransposeMatMultNumeric(), MatMatMult(), MatMatTransposeMult(), MatPtAP()
9618 @*/
9619 PetscErrorCode MatTransposeMatMult(Mat A,Mat B,MatReuse scall,PetscReal fill,Mat *C)
9620 {
9621   PetscErrorCode ierr;
9622   PetscErrorCode (*fA)(Mat,Mat,MatReuse,PetscReal,Mat*);
9623   PetscErrorCode (*fB)(Mat,Mat,MatReuse,PetscReal,Mat*);
9624   PetscErrorCode (*transposematmult)(Mat,Mat,MatReuse,PetscReal,Mat*) = NULL;
9625 
9626   PetscFunctionBegin;
9627   PetscValidHeaderSpecific(A,MAT_CLASSID,1);
9628   PetscValidType(A,1);
9629   if (scall == MAT_INPLACE_MATRIX) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_SUP,"Inplace product not supported");
9630   if (!A->assembled) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
9631   if (A->factortype) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
9632   PetscValidHeaderSpecific(B,MAT_CLASSID,2);
9633   PetscValidType(B,2);
9634   MatCheckPreallocated(B,2);
9635   if (!B->assembled) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
9636   if (B->factortype) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
9637   PetscValidPointer(C,3);
9638   if (B->rmap->N!=A->rmap->N) SETERRQ2(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_SIZ,"Matrix dimensions are incompatible, %D != %D",B->rmap->N,A->rmap->N);
9639   if (fill == PETSC_DEFAULT || fill == PETSC_DECIDE) fill = 2.0;
9640   if (fill < 1.0) SETERRQ1(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_SIZ,"Expected fill=%g must be > 1.0",(double)fill);
9641   MatCheckPreallocated(A,1);
9642 
9643   fA = A->ops->transposematmult;
9644   fB = B->ops->transposematmult;
9645   if (fB==fA) {
9646     if (!fA) SETERRQ1(PetscObjectComm((PetscObject)A),PETSC_ERR_SUP,"MatTransposeMatMult not supported for A of type %s",((PetscObject)A)->type_name);
9647     transposematmult = fA;
9648   } else {
9649     /* dispatch based on the type of A and B from their PetscObject's PetscFunctionLists. */
9650     char multname[256];
9651     ierr = PetscStrcpy(multname,"MatTransposeMatMult_");CHKERRQ(ierr);
9652     ierr = PetscStrcat(multname,((PetscObject)A)->type_name);CHKERRQ(ierr);
9653     ierr = PetscStrcat(multname,"_");CHKERRQ(ierr);
9654     ierr = PetscStrcat(multname,((PetscObject)B)->type_name);CHKERRQ(ierr);
9655     ierr = PetscStrcat(multname,"_C");CHKERRQ(ierr); /* e.g., multname = "MatMatMult_seqdense_seqaij_C" */
9656     ierr = PetscObjectQueryFunction((PetscObject)B,multname,&transposematmult);CHKERRQ(ierr);
9657     if (!transposematmult) SETERRQ2(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_INCOMP,"MatTransposeMatMult requires A, %s, to be compatible with B, %s",((PetscObject)A)->type_name,((PetscObject)B)->type_name);
9658   }
9659   ierr = PetscLogEventBegin(MAT_TransposeMatMult,A,B,0,0);CHKERRQ(ierr);
9660   ierr = (*transposematmult)(A,B,scall,fill,C);CHKERRQ(ierr);
9661   ierr = PetscLogEventEnd(MAT_TransposeMatMult,A,B,0,0);CHKERRQ(ierr);
9662   PetscFunctionReturn(0);
9663 }
9664 
9665 /*@
9666    MatMatMatMult - Performs Matrix-Matrix-Matrix Multiplication D=A*B*C.
9667 
9668    Neighbor-wise Collective on Mat
9669 
9670    Input Parameters:
9671 +  A - the left matrix
9672 .  B - the middle matrix
9673 .  C - the right matrix
9674 .  scall - either MAT_INITIAL_MATRIX or MAT_REUSE_MATRIX
9675 -  fill - expected fill as ratio of nnz(D)/(nnz(A) + nnz(B)+nnz(C)), use PETSC_DEFAULT if you do not have a good estimate
9676           if the result is a dense matrix this is irrelevent
9677 
9678    Output Parameters:
9679 .  D - the product matrix
9680 
9681    Notes:
9682    Unless scall is MAT_REUSE_MATRIX D will be created.
9683 
9684    MAT_REUSE_MATRIX can only be used if the matrices A, B and C have the same nonzero pattern as in the previous call
9685 
9686    To determine the correct fill value, run with -info and search for the string "Fill ratio" to see the value
9687    actually needed.
9688 
9689    If you have many matrices with the same non-zero structure to multiply, you
9690    should use MAT_REUSE_MATRIX in all calls but the first or
9691 
9692    Level: intermediate
9693 
9694 .seealso: MatMatMult, MatPtAP()
9695 @*/
9696 PetscErrorCode MatMatMatMult(Mat A,Mat B,Mat C,MatReuse scall,PetscReal fill,Mat *D)
9697 {
9698   PetscErrorCode ierr;
9699   PetscErrorCode (*fA)(Mat,Mat,Mat,MatReuse,PetscReal,Mat*);
9700   PetscErrorCode (*fB)(Mat,Mat,Mat,MatReuse,PetscReal,Mat*);
9701   PetscErrorCode (*fC)(Mat,Mat,Mat,MatReuse,PetscReal,Mat*);
9702   PetscErrorCode (*mult)(Mat,Mat,Mat,MatReuse,PetscReal,Mat*)=NULL;
9703 
9704   PetscFunctionBegin;
9705   PetscValidHeaderSpecific(A,MAT_CLASSID,1);
9706   PetscValidType(A,1);
9707   MatCheckPreallocated(A,1);
9708   if (scall == MAT_INPLACE_MATRIX) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_SUP,"Inplace product not supported");
9709   if (!A->assembled) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
9710   if (A->factortype) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
9711   PetscValidHeaderSpecific(B,MAT_CLASSID,2);
9712   PetscValidType(B,2);
9713   MatCheckPreallocated(B,2);
9714   if (!B->assembled) SETERRQ(PetscObjectComm((PetscObject)B),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
9715   if (B->factortype) SETERRQ(PetscObjectComm((PetscObject)B),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
9716   PetscValidHeaderSpecific(C,MAT_CLASSID,3);
9717   PetscValidPointer(C,3);
9718   MatCheckPreallocated(C,3);
9719   if (!C->assembled) SETERRQ(PetscObjectComm((PetscObject)C),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
9720   if (C->factortype) SETERRQ(PetscObjectComm((PetscObject)C),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
9721   if (B->rmap->N!=A->cmap->N) SETERRQ2(PetscObjectComm((PetscObject)B),PETSC_ERR_ARG_SIZ,"Matrix dimensions are incompatible, %D != %D",B->rmap->N,A->cmap->N);
9722   if (C->rmap->N!=B->cmap->N) SETERRQ2(PetscObjectComm((PetscObject)C),PETSC_ERR_ARG_SIZ,"Matrix dimensions are incompatible, %D != %D",C->rmap->N,B->cmap->N);
9723   if (scall == MAT_REUSE_MATRIX) {
9724     PetscValidPointer(*D,6);
9725     PetscValidHeaderSpecific(*D,MAT_CLASSID,6);
9726     ierr = PetscLogEventBegin(MAT_MatMatMult,A,B,0,0);CHKERRQ(ierr);
9727     ierr = (*(*D)->ops->matmatmult)(A,B,C,scall,fill,D);CHKERRQ(ierr);
9728     ierr = PetscLogEventEnd(MAT_MatMatMult,A,B,0,0);CHKERRQ(ierr);
9729     PetscFunctionReturn(0);
9730   }
9731   if (fill == PETSC_DEFAULT || fill == PETSC_DECIDE) fill = 2.0;
9732   if (fill < 1.0) SETERRQ1(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_SIZ,"Expected fill=%g must be >= 1.0",(double)fill);
9733 
9734   fA = A->ops->matmatmult;
9735   fB = B->ops->matmatmult;
9736   fC = C->ops->matmatmult;
9737   if (fA == fB && fA == fC) {
9738     if (!fA) SETERRQ1(PetscObjectComm((PetscObject)A),PETSC_ERR_SUP,"MatMatMatMult not supported for A of type %s",((PetscObject)A)->type_name);
9739     mult = fA;
9740   } else {
9741     /* dispatch based on the type of A, B and C from their PetscObject's PetscFunctionLists. */
9742     char multname[256];
9743     ierr = PetscStrcpy(multname,"MatMatMatMult_");CHKERRQ(ierr);
9744     ierr = PetscStrcat(multname,((PetscObject)A)->type_name);CHKERRQ(ierr);
9745     ierr = PetscStrcat(multname,"_");CHKERRQ(ierr);
9746     ierr = PetscStrcat(multname,((PetscObject)B)->type_name);CHKERRQ(ierr);
9747     ierr = PetscStrcat(multname,"_");CHKERRQ(ierr);
9748     ierr = PetscStrcat(multname,((PetscObject)C)->type_name);CHKERRQ(ierr);
9749     ierr = PetscStrcat(multname,"_C");CHKERRQ(ierr);
9750     ierr = PetscObjectQueryFunction((PetscObject)B,multname,&mult);CHKERRQ(ierr);
9751     if (!mult) SETERRQ3(PetscObjectComm((PetscObject)A),PETSC_ERR_ARG_INCOMP,"MatMatMatMult requires A, %s, to be compatible with B, %s, C, %s",((PetscObject)A)->type_name,((PetscObject)B)->type_name,((PetscObject)C)->type_name);
9752   }
9753   ierr = PetscLogEventBegin(MAT_MatMatMult,A,B,0,0);CHKERRQ(ierr);
9754   ierr = (*mult)(A,B,C,scall,fill,D);CHKERRQ(ierr);
9755   ierr = PetscLogEventEnd(MAT_MatMatMult,A,B,0,0);CHKERRQ(ierr);
9756   PetscFunctionReturn(0);
9757 }
9758 
9759 /*@
9760    MatCreateRedundantMatrix - Create redundant matrices and put them into processors of subcommunicators.
9761 
9762    Collective on Mat
9763 
9764    Input Parameters:
9765 +  mat - the matrix
9766 .  nsubcomm - the number of subcommunicators (= number of redundant parallel or sequential matrices)
9767 .  subcomm - MPI communicator split from the communicator where mat resides in (or MPI_COMM_NULL if nsubcomm is used)
9768 -  reuse - either MAT_INITIAL_MATRIX or MAT_REUSE_MATRIX
9769 
9770    Output Parameter:
9771 .  matredundant - redundant matrix
9772 
9773    Notes:
9774    MAT_REUSE_MATRIX can only be used when the nonzero structure of the
9775    original matrix has not changed from that last call to MatCreateRedundantMatrix().
9776 
9777    This routine creates the duplicated matrices in subcommunicators; you should NOT create them before
9778    calling it.
9779 
9780    Level: advanced
9781 
9782    Concepts: subcommunicator
9783    Concepts: duplicate matrix
9784 
9785 .seealso: MatDestroy()
9786 @*/
9787 PetscErrorCode MatCreateRedundantMatrix(Mat mat,PetscInt nsubcomm,MPI_Comm subcomm,MatReuse reuse,Mat *matredundant)
9788 {
9789   PetscErrorCode ierr;
9790   MPI_Comm       comm;
9791   PetscMPIInt    size;
9792   PetscInt       mloc_sub,rstart,rend,M=mat->rmap->N,N=mat->cmap->N,bs=mat->rmap->bs;
9793   Mat_Redundant  *redund=NULL;
9794   PetscSubcomm   psubcomm=NULL;
9795   MPI_Comm       subcomm_in=subcomm;
9796   Mat            *matseq;
9797   IS             isrow,iscol;
9798   PetscBool      newsubcomm=PETSC_FALSE;
9799 
9800   PetscFunctionBegin;
9801   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
9802   if (nsubcomm && reuse == MAT_REUSE_MATRIX) {
9803     PetscValidPointer(*matredundant,5);
9804     PetscValidHeaderSpecific(*matredundant,MAT_CLASSID,5);
9805   }
9806 
9807   ierr = MPI_Comm_size(PetscObjectComm((PetscObject)mat),&size);CHKERRQ(ierr);
9808   if (size == 1 || nsubcomm == 1) {
9809     if (reuse == MAT_INITIAL_MATRIX) {
9810       ierr = MatDuplicate(mat,MAT_COPY_VALUES,matredundant);CHKERRQ(ierr);
9811     } else {
9812       if (*matredundant == mat) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_WRONG,"MAT_REUSE_MATRIX means reuse the matrix passed in as the final argument, not the original matrix");
9813       ierr = MatCopy(mat,*matredundant,SAME_NONZERO_PATTERN);CHKERRQ(ierr);
9814     }
9815     PetscFunctionReturn(0);
9816   }
9817 
9818   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
9819   if (mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
9820   MatCheckPreallocated(mat,1);
9821 
9822   ierr = PetscLogEventBegin(MAT_RedundantMat,mat,0,0,0);CHKERRQ(ierr);
9823   if (subcomm_in == MPI_COMM_NULL && reuse == MAT_INITIAL_MATRIX) { /* get subcomm if user does not provide subcomm */
9824     /* create psubcomm, then get subcomm */
9825     ierr = PetscObjectGetComm((PetscObject)mat,&comm);CHKERRQ(ierr);
9826     ierr = MPI_Comm_size(comm,&size);CHKERRQ(ierr);
9827     if (nsubcomm < 1 || nsubcomm > size) SETERRQ1(PETSC_COMM_SELF,PETSC_ERR_ARG_SIZ,"nsubcomm must between 1 and %D",size);
9828 
9829     ierr = PetscSubcommCreate(comm,&psubcomm);CHKERRQ(ierr);
9830     ierr = PetscSubcommSetNumber(psubcomm,nsubcomm);CHKERRQ(ierr);
9831     ierr = PetscSubcommSetType(psubcomm,PETSC_SUBCOMM_CONTIGUOUS);CHKERRQ(ierr);
9832     ierr = PetscSubcommSetFromOptions(psubcomm);CHKERRQ(ierr);
9833     ierr = PetscCommDuplicate(PetscSubcommChild(psubcomm),&subcomm,NULL);CHKERRQ(ierr);
9834     newsubcomm = PETSC_TRUE;
9835     ierr = PetscSubcommDestroy(&psubcomm);CHKERRQ(ierr);
9836   }
9837 
9838   /* get isrow, iscol and a local sequential matrix matseq[0] */
9839   if (reuse == MAT_INITIAL_MATRIX) {
9840     mloc_sub = PETSC_DECIDE;
9841     if (bs < 1) {
9842       ierr = PetscSplitOwnership(subcomm,&mloc_sub,&M);CHKERRQ(ierr);
9843     } else {
9844       ierr = PetscSplitOwnershipBlock(subcomm,bs,&mloc_sub,&M);CHKERRQ(ierr);
9845     }
9846     ierr = MPI_Scan(&mloc_sub,&rend,1,MPIU_INT,MPI_SUM,subcomm);CHKERRQ(ierr);
9847     rstart = rend - mloc_sub;
9848     ierr = ISCreateStride(PETSC_COMM_SELF,mloc_sub,rstart,1,&isrow);CHKERRQ(ierr);
9849     ierr = ISCreateStride(PETSC_COMM_SELF,N,0,1,&iscol);CHKERRQ(ierr);
9850   } else { /* reuse == MAT_REUSE_MATRIX */
9851     if (*matredundant == mat) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_WRONG,"MAT_REUSE_MATRIX means reuse the matrix passed in as the final argument, not the original matrix");
9852     /* retrieve subcomm */
9853     ierr = PetscObjectGetComm((PetscObject)(*matredundant),&subcomm);CHKERRQ(ierr);
9854     redund = (*matredundant)->redundant;
9855     isrow  = redund->isrow;
9856     iscol  = redund->iscol;
9857     matseq = redund->matseq;
9858   }
9859   ierr = MatGetSubMatrices(mat,1,&isrow,&iscol,reuse,&matseq);CHKERRQ(ierr);
9860 
9861   /* get matredundant over subcomm */
9862   if (reuse == MAT_INITIAL_MATRIX) {
9863     ierr = MatCreateMPIMatConcatenateSeqMat(subcomm,matseq[0],mloc_sub,reuse,matredundant);CHKERRQ(ierr);
9864 
9865     /* create a supporting struct and attach it to C for reuse */
9866     ierr = PetscNewLog(*matredundant,&redund);CHKERRQ(ierr);
9867     (*matredundant)->redundant = redund;
9868     redund->isrow              = isrow;
9869     redund->iscol              = iscol;
9870     redund->matseq             = matseq;
9871     if (newsubcomm) {
9872       redund->subcomm          = subcomm;
9873     } else {
9874       redund->subcomm          = MPI_COMM_NULL;
9875     }
9876   } else {
9877     ierr = MatCreateMPIMatConcatenateSeqMat(subcomm,matseq[0],PETSC_DECIDE,reuse,matredundant);CHKERRQ(ierr);
9878   }
9879   ierr = PetscLogEventEnd(MAT_RedundantMat,mat,0,0,0);CHKERRQ(ierr);
9880   PetscFunctionReturn(0);
9881 }
9882 
9883 /*@C
9884    MatGetMultiProcBlock - Create multiple [bjacobi] 'parallel submatrices' from
9885    a given 'mat' object. Each submatrix can span multiple procs.
9886 
9887    Collective on Mat
9888 
9889    Input Parameters:
9890 +  mat - the matrix
9891 .  subcomm - the subcommunicator obtained by com_split(comm)
9892 -  scall - either MAT_INITIAL_MATRIX or MAT_REUSE_MATRIX
9893 
9894    Output Parameter:
9895 .  subMat - 'parallel submatrices each spans a given subcomm
9896 
9897   Notes:
9898   The submatrix partition across processors is dictated by 'subComm' a
9899   communicator obtained by com_split(comm). The comm_split
9900   is not restriced to be grouped with consecutive original ranks.
9901 
9902   Due the comm_split() usage, the parallel layout of the submatrices
9903   map directly to the layout of the original matrix [wrt the local
9904   row,col partitioning]. So the original 'DiagonalMat' naturally maps
9905   into the 'DiagonalMat' of the subMat, hence it is used directly from
9906   the subMat. However the offDiagMat looses some columns - and this is
9907   reconstructed with MatSetValues()
9908 
9909   Level: advanced
9910 
9911   Concepts: subcommunicator
9912   Concepts: submatrices
9913 
9914 .seealso: MatGetSubMatrices()
9915 @*/
9916 PetscErrorCode   MatGetMultiProcBlock(Mat mat, MPI_Comm subComm, MatReuse scall,Mat *subMat)
9917 {
9918   PetscErrorCode ierr;
9919   PetscMPIInt    commsize,subCommSize;
9920 
9921   PetscFunctionBegin;
9922   ierr = MPI_Comm_size(PetscObjectComm((PetscObject)mat),&commsize);CHKERRQ(ierr);
9923   ierr = MPI_Comm_size(subComm,&subCommSize);CHKERRQ(ierr);
9924   if (subCommSize > commsize) SETERRQ2(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_OUTOFRANGE,"CommSize %D < SubCommZize %D",commsize,subCommSize);
9925 
9926   if (scall == MAT_REUSE_MATRIX && *subMat == mat) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_WRONG,"MAT_REUSE_MATRIX means reuse the matrix passed in as the final argument, not the original matrix");
9927   ierr = PetscLogEventBegin(MAT_GetMultiProcBlock,mat,0,0,0);CHKERRQ(ierr);
9928   ierr = (*mat->ops->getmultiprocblock)(mat,subComm,scall,subMat);CHKERRQ(ierr);
9929   ierr = PetscLogEventEnd(MAT_GetMultiProcBlock,mat,0,0,0);CHKERRQ(ierr);
9930   PetscFunctionReturn(0);
9931 }
9932 
9933 /*@
9934    MatGetLocalSubMatrix - Gets a reference to a submatrix specified in local numbering
9935 
9936    Not Collective
9937 
9938    Input Arguments:
9939    mat - matrix to extract local submatrix from
9940    isrow - local row indices for submatrix
9941    iscol - local column indices for submatrix
9942 
9943    Output Arguments:
9944    submat - the submatrix
9945 
9946    Level: intermediate
9947 
9948    Notes:
9949    The submat should be returned with MatRestoreLocalSubMatrix().
9950 
9951    Depending on the format of mat, the returned submat may not implement MatMult().  Its communicator may be
9952    the same as mat, it may be PETSC_COMM_SELF, or some other subcomm of mat's.
9953 
9954    The submat always implements MatSetValuesLocal().  If isrow and iscol have the same block size, then
9955    MatSetValuesBlockedLocal() will also be implemented.
9956 
9957    The mat must have had a ISLocalToGlobalMapping provided to it with MatSetLocalToGlobalMapping(). Note that
9958    matrices obtained with DMCreateMat() generally already have the local to global mapping provided.
9959 
9960 .seealso: MatRestoreLocalSubMatrix(), MatCreateLocalRef(), MatSetLocalToGlobalMapping()
9961 @*/
9962 PetscErrorCode MatGetLocalSubMatrix(Mat mat,IS isrow,IS iscol,Mat *submat)
9963 {
9964   PetscErrorCode ierr;
9965 
9966   PetscFunctionBegin;
9967   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
9968   PetscValidHeaderSpecific(isrow,IS_CLASSID,2);
9969   PetscValidHeaderSpecific(iscol,IS_CLASSID,3);
9970   PetscCheckSameComm(isrow,2,iscol,3);
9971   PetscValidPointer(submat,4);
9972   if (!mat->rmap->mapping) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Matrix must have local to global mapping provided before this call");
9973 
9974   if (mat->ops->getlocalsubmatrix) {
9975     ierr = (*mat->ops->getlocalsubmatrix)(mat,isrow,iscol,submat);CHKERRQ(ierr);
9976   } else {
9977     ierr = MatCreateLocalRef(mat,isrow,iscol,submat);CHKERRQ(ierr);
9978   }
9979   PetscFunctionReturn(0);
9980 }
9981 
9982 /*@
9983    MatRestoreLocalSubMatrix - Restores a reference to a submatrix specified in local numbering
9984 
9985    Not Collective
9986 
9987    Input Arguments:
9988    mat - matrix to extract local submatrix from
9989    isrow - local row indices for submatrix
9990    iscol - local column indices for submatrix
9991    submat - the submatrix
9992 
9993    Level: intermediate
9994 
9995 .seealso: MatGetLocalSubMatrix()
9996 @*/
9997 PetscErrorCode MatRestoreLocalSubMatrix(Mat mat,IS isrow,IS iscol,Mat *submat)
9998 {
9999   PetscErrorCode ierr;
10000 
10001   PetscFunctionBegin;
10002   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
10003   PetscValidHeaderSpecific(isrow,IS_CLASSID,2);
10004   PetscValidHeaderSpecific(iscol,IS_CLASSID,3);
10005   PetscCheckSameComm(isrow,2,iscol,3);
10006   PetscValidPointer(submat,4);
10007   if (*submat) {
10008     PetscValidHeaderSpecific(*submat,MAT_CLASSID,4);
10009   }
10010 
10011   if (mat->ops->restorelocalsubmatrix) {
10012     ierr = (*mat->ops->restorelocalsubmatrix)(mat,isrow,iscol,submat);CHKERRQ(ierr);
10013   } else {
10014     ierr = MatDestroy(submat);CHKERRQ(ierr);
10015   }
10016   *submat = NULL;
10017   PetscFunctionReturn(0);
10018 }
10019 
10020 /* --------------------------------------------------------*/
10021 /*@
10022    MatFindZeroDiagonals - Finds all the rows of a matrix that have zero or no diagonal entry in the matrix
10023 
10024    Collective on Mat
10025 
10026    Input Parameter:
10027 .  mat - the matrix
10028 
10029    Output Parameter:
10030 .  is - if any rows have zero diagonals this contains the list of them
10031 
10032    Level: developer
10033 
10034    Concepts: matrix-vector product
10035 
10036 .seealso: MatMultTranspose(), MatMultAdd(), MatMultTransposeAdd()
10037 @*/
10038 PetscErrorCode MatFindZeroDiagonals(Mat mat,IS *is)
10039 {
10040   PetscErrorCode ierr;
10041 
10042   PetscFunctionBegin;
10043   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
10044   PetscValidType(mat,1);
10045   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
10046   if (mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
10047 
10048   if (!mat->ops->findzerodiagonals) {
10049     Vec                diag;
10050     const PetscScalar *a;
10051     PetscInt          *rows;
10052     PetscInt           rStart, rEnd, r, nrow = 0;
10053 
10054     ierr = MatCreateVecs(mat, &diag, NULL);CHKERRQ(ierr);
10055     ierr = MatGetDiagonal(mat, diag);CHKERRQ(ierr);
10056     ierr = MatGetOwnershipRange(mat, &rStart, &rEnd);CHKERRQ(ierr);
10057     ierr = VecGetArrayRead(diag, &a);CHKERRQ(ierr);
10058     for (r = 0; r < rEnd-rStart; ++r) if (a[r] == 0.0) ++nrow;
10059     ierr = PetscMalloc1(nrow, &rows);CHKERRQ(ierr);
10060     nrow = 0;
10061     for (r = 0; r < rEnd-rStart; ++r) if (a[r] == 0.0) rows[nrow++] = r+rStart;
10062     ierr = VecRestoreArrayRead(diag, &a);CHKERRQ(ierr);
10063     ierr = VecDestroy(&diag);CHKERRQ(ierr);
10064     ierr = ISCreateGeneral(PetscObjectComm((PetscObject) mat), nrow, rows, PETSC_OWN_POINTER, is);CHKERRQ(ierr);
10065   } else {
10066     ierr = (*mat->ops->findzerodiagonals)(mat, is);CHKERRQ(ierr);
10067   }
10068   PetscFunctionReturn(0);
10069 }
10070 
10071 /*@
10072    MatFindOffBlockDiagonalEntries - Finds all the rows of a matrix that have entries outside of the main diagonal block (defined by the matrix block size)
10073 
10074    Collective on Mat
10075 
10076    Input Parameter:
10077 .  mat - the matrix
10078 
10079    Output Parameter:
10080 .  is - contains the list of rows with off block diagonal entries
10081 
10082    Level: developer
10083 
10084    Concepts: matrix-vector product
10085 
10086 .seealso: MatMultTranspose(), MatMultAdd(), MatMultTransposeAdd()
10087 @*/
10088 PetscErrorCode MatFindOffBlockDiagonalEntries(Mat mat,IS *is)
10089 {
10090   PetscErrorCode ierr;
10091 
10092   PetscFunctionBegin;
10093   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
10094   PetscValidType(mat,1);
10095   if (!mat->assembled) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
10096   if (mat->factortype) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
10097 
10098   if (!mat->ops->findoffblockdiagonalentries) SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_SUP,"This matrix type does not have a find off block diagonal entries defined");
10099   ierr = (*mat->ops->findoffblockdiagonalentries)(mat,is);CHKERRQ(ierr);
10100   PetscFunctionReturn(0);
10101 }
10102 
10103 /*@C
10104   MatInvertBlockDiagonal - Inverts the block diagonal entries.
10105 
10106   Collective on Mat
10107 
10108   Input Parameters:
10109 . mat - the matrix
10110 
10111   Output Parameters:
10112 . values - the block inverses in column major order (FORTRAN-like)
10113 
10114    Note:
10115    This routine is not available from Fortran.
10116 
10117   Level: advanced
10118 @*/
10119 PetscErrorCode MatInvertBlockDiagonal(Mat mat,const PetscScalar **values)
10120 {
10121   PetscErrorCode ierr;
10122 
10123   PetscFunctionBegin;
10124   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
10125   if (!mat->assembled) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_WRONGSTATE,"Not for unassembled matrix");
10126   if (mat->factortype) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_WRONGSTATE,"Not for factored matrix");
10127   if (!mat->ops->invertblockdiagonal) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_SUP,"Not supported");
10128   ierr = (*mat->ops->invertblockdiagonal)(mat,values);CHKERRQ(ierr);
10129   PetscFunctionReturn(0);
10130 }
10131 
10132 /*@C
10133     MatTransposeColoringDestroy - Destroys a coloring context for matrix product C=A*B^T that was created
10134     via MatTransposeColoringCreate().
10135 
10136     Collective on MatTransposeColoring
10137 
10138     Input Parameter:
10139 .   c - coloring context
10140 
10141     Level: intermediate
10142 
10143 .seealso: MatTransposeColoringCreate()
10144 @*/
10145 PetscErrorCode MatTransposeColoringDestroy(MatTransposeColoring *c)
10146 {
10147   PetscErrorCode       ierr;
10148   MatTransposeColoring matcolor=*c;
10149 
10150   PetscFunctionBegin;
10151   if (!matcolor) PetscFunctionReturn(0);
10152   if (--((PetscObject)matcolor)->refct > 0) {matcolor = 0; PetscFunctionReturn(0);}
10153 
10154   ierr = PetscFree3(matcolor->ncolumns,matcolor->nrows,matcolor->colorforrow);CHKERRQ(ierr);
10155   ierr = PetscFree(matcolor->rows);CHKERRQ(ierr);
10156   ierr = PetscFree(matcolor->den2sp);CHKERRQ(ierr);
10157   ierr = PetscFree(matcolor->colorforcol);CHKERRQ(ierr);
10158   ierr = PetscFree(matcolor->columns);CHKERRQ(ierr);
10159   if (matcolor->brows>0) {
10160     ierr = PetscFree(matcolor->lstart);CHKERRQ(ierr);
10161   }
10162   ierr = PetscHeaderDestroy(c);CHKERRQ(ierr);
10163   PetscFunctionReturn(0);
10164 }
10165 
10166 /*@C
10167     MatTransColoringApplySpToDen - Given a symbolic matrix product C=A*B^T for which
10168     a MatTransposeColoring context has been created, computes a dense B^T by Apply
10169     MatTransposeColoring to sparse B.
10170 
10171     Collective on MatTransposeColoring
10172 
10173     Input Parameters:
10174 +   B - sparse matrix B
10175 .   Btdense - symbolic dense matrix B^T
10176 -   coloring - coloring context created with MatTransposeColoringCreate()
10177 
10178     Output Parameter:
10179 .   Btdense - dense matrix B^T
10180 
10181     Level: advanced
10182 
10183      Notes: These are used internally for some implementations of MatRARt()
10184 
10185 .seealso: MatTransposeColoringCreate(), MatTransposeColoringDestroy(), MatTransColoringApplyDenToSp()
10186 
10187 .keywords: coloring
10188 @*/
10189 PetscErrorCode MatTransColoringApplySpToDen(MatTransposeColoring coloring,Mat B,Mat Btdense)
10190 {
10191   PetscErrorCode ierr;
10192 
10193   PetscFunctionBegin;
10194   PetscValidHeaderSpecific(B,MAT_CLASSID,1);
10195   PetscValidHeaderSpecific(Btdense,MAT_CLASSID,2);
10196   PetscValidHeaderSpecific(coloring,MAT_TRANSPOSECOLORING_CLASSID,3);
10197 
10198   if (!B->ops->transcoloringapplysptoden) SETERRQ1(PETSC_COMM_SELF,PETSC_ERR_SUP,"Not supported for this matrix type %s",((PetscObject)B)->type_name);
10199   ierr = (B->ops->transcoloringapplysptoden)(coloring,B,Btdense);CHKERRQ(ierr);
10200   PetscFunctionReturn(0);
10201 }
10202 
10203 /*@C
10204     MatTransColoringApplyDenToSp - Given a symbolic matrix product Csp=A*B^T for which
10205     a MatTransposeColoring context has been created and a dense matrix Cden=A*Btdense
10206     in which Btdens is obtained from MatTransColoringApplySpToDen(), recover sparse matrix
10207     Csp from Cden.
10208 
10209     Collective on MatTransposeColoring
10210 
10211     Input Parameters:
10212 +   coloring - coloring context created with MatTransposeColoringCreate()
10213 -   Cden - matrix product of a sparse matrix and a dense matrix Btdense
10214 
10215     Output Parameter:
10216 .   Csp - sparse matrix
10217 
10218     Level: advanced
10219 
10220      Notes: These are used internally for some implementations of MatRARt()
10221 
10222 .seealso: MatTransposeColoringCreate(), MatTransposeColoringDestroy(), MatTransColoringApplySpToDen()
10223 
10224 .keywords: coloring
10225 @*/
10226 PetscErrorCode MatTransColoringApplyDenToSp(MatTransposeColoring matcoloring,Mat Cden,Mat Csp)
10227 {
10228   PetscErrorCode ierr;
10229 
10230   PetscFunctionBegin;
10231   PetscValidHeaderSpecific(matcoloring,MAT_TRANSPOSECOLORING_CLASSID,1);
10232   PetscValidHeaderSpecific(Cden,MAT_CLASSID,2);
10233   PetscValidHeaderSpecific(Csp,MAT_CLASSID,3);
10234 
10235   if (!Csp->ops->transcoloringapplydentosp) SETERRQ1(PETSC_COMM_SELF,PETSC_ERR_SUP,"Not supported for this matrix type %s",((PetscObject)Csp)->type_name);
10236   ierr = (Csp->ops->transcoloringapplydentosp)(matcoloring,Cden,Csp);CHKERRQ(ierr);
10237   PetscFunctionReturn(0);
10238 }
10239 
10240 /*@C
10241    MatTransposeColoringCreate - Creates a matrix coloring context for matrix product C=A*B^T.
10242 
10243    Collective on Mat
10244 
10245    Input Parameters:
10246 +  mat - the matrix product C
10247 -  iscoloring - the coloring of the matrix; usually obtained with MatColoringCreate() or DMCreateColoring()
10248 
10249     Output Parameter:
10250 .   color - the new coloring context
10251 
10252     Level: intermediate
10253 
10254 .seealso: MatTransposeColoringDestroy(),  MatTransColoringApplySpToDen(),
10255            MatTransColoringApplyDenToSp()
10256 @*/
10257 PetscErrorCode MatTransposeColoringCreate(Mat mat,ISColoring iscoloring,MatTransposeColoring *color)
10258 {
10259   MatTransposeColoring c;
10260   MPI_Comm             comm;
10261   PetscErrorCode       ierr;
10262 
10263   PetscFunctionBegin;
10264   ierr = PetscLogEventBegin(MAT_TransposeColoringCreate,mat,0,0,0);CHKERRQ(ierr);
10265   ierr = PetscObjectGetComm((PetscObject)mat,&comm);CHKERRQ(ierr);
10266   ierr = PetscHeaderCreate(c,MAT_TRANSPOSECOLORING_CLASSID,"MatTransposeColoring","Matrix product C=A*B^T via coloring","Mat",comm,MatTransposeColoringDestroy,NULL);CHKERRQ(ierr);
10267 
10268   c->ctype = iscoloring->ctype;
10269   if (mat->ops->transposecoloringcreate) {
10270     ierr = (*mat->ops->transposecoloringcreate)(mat,iscoloring,c);CHKERRQ(ierr);
10271   } else SETERRQ(PetscObjectComm((PetscObject)mat),PETSC_ERR_SUP,"Code not yet written for this matrix type");
10272 
10273   *color = c;
10274   ierr   = PetscLogEventEnd(MAT_TransposeColoringCreate,mat,0,0,0);CHKERRQ(ierr);
10275   PetscFunctionReturn(0);
10276 }
10277 
10278 /*@
10279       MatGetNonzeroState - Returns a 64 bit integer representing the current state of nonzeros in the matrix. If the
10280         matrix has had no new nonzero locations added to the matrix since the previous call then the value will be the
10281         same, otherwise it will be larger
10282 
10283      Not Collective
10284 
10285   Input Parameter:
10286 .    A  - the matrix
10287 
10288   Output Parameter:
10289 .    state - the current state
10290 
10291   Notes: You can only compare states from two different calls to the SAME matrix, you cannot compare calls between
10292          different matrices
10293 
10294   Level: intermediate
10295 
10296 @*/
10297 PetscErrorCode MatGetNonzeroState(Mat mat,PetscObjectState *state)
10298 {
10299   PetscFunctionBegin;
10300   PetscValidHeaderSpecific(mat,MAT_CLASSID,1);
10301   *state = mat->nonzerostate;
10302   PetscFunctionReturn(0);
10303 }
10304 
10305 /*@
10306       MatCreateMPIMatConcatenateSeqMat - Creates a single large PETSc matrix by concatenating sequential
10307                  matrices from each processor
10308 
10309     Collective on MPI_Comm
10310 
10311    Input Parameters:
10312 +    comm - the communicators the parallel matrix will live on
10313 .    seqmat - the input sequential matrices
10314 .    n - number of local columns (or PETSC_DECIDE)
10315 -    reuse - either MAT_INITIAL_MATRIX or MAT_REUSE_MATRIX
10316 
10317    Output Parameter:
10318 .    mpimat - the parallel matrix generated
10319 
10320     Level: advanced
10321 
10322    Notes: The number of columns of the matrix in EACH processor MUST be the same.
10323 
10324 @*/
10325 PetscErrorCode MatCreateMPIMatConcatenateSeqMat(MPI_Comm comm,Mat seqmat,PetscInt n,MatReuse reuse,Mat *mpimat)
10326 {
10327   PetscErrorCode ierr;
10328 
10329   PetscFunctionBegin;
10330   if (!seqmat->ops->creatempimatconcatenateseqmat) SETERRQ1(PetscObjectComm((PetscObject)seqmat),PETSC_ERR_SUP,"Mat type %s",((PetscObject)seqmat)->type_name);
10331   if (reuse == MAT_REUSE_MATRIX && seqmat == *mpimat) SETERRQ(PETSC_COMM_SELF,PETSC_ERR_ARG_WRONG,"MAT_REUSE_MATRIX means reuse the matrix passed in as the final argument, not the original matrix");
10332 
10333   ierr = PetscLogEventBegin(MAT_Merge,seqmat,0,0,0);CHKERRQ(ierr);
10334   ierr = (*seqmat->ops->creatempimatconcatenateseqmat)(comm,seqmat,n,reuse,mpimat);CHKERRQ(ierr);
10335   ierr = PetscLogEventEnd(MAT_Merge,seqmat,0,0,0);CHKERRQ(ierr);
10336   PetscFunctionReturn(0);
10337 }
10338 
10339 /*@
10340      MatSubdomainsCreateCoalesce - Creates index subdomains by coalescing adjacent
10341                  ranks' ownership ranges.
10342 
10343     Collective on A
10344 
10345    Input Parameters:
10346 +    A   - the matrix to create subdomains from
10347 -    N   - requested number of subdomains
10348 
10349 
10350    Output Parameters:
10351 +    n   - number of subdomains resulting on this rank
10352 -    iss - IS list with indices of subdomains on this rank
10353 
10354     Level: advanced
10355 
10356     Notes: number of subdomains must be smaller than the communicator size
10357 @*/
10358 PetscErrorCode MatSubdomainsCreateCoalesce(Mat A,PetscInt N,PetscInt *n,IS *iss[])
10359 {
10360   MPI_Comm        comm,subcomm;
10361   PetscMPIInt     size,rank,color;
10362   PetscInt        rstart,rend,k;
10363   PetscErrorCode  ierr;
10364 
10365   PetscFunctionBegin;
10366   ierr = PetscObjectGetComm((PetscObject)A,&comm);CHKERRQ(ierr);
10367   ierr = MPI_Comm_size(comm,&size);CHKERRQ(ierr);
10368   ierr = MPI_Comm_rank(comm,&rank);CHKERRQ(ierr);
10369   if (N < 1 || N >= (PetscInt)size) SETERRQ2(PETSC_COMM_SELF,PETSC_ERR_ARG_WRONG,"number of subdomains must be > 0 and < %D, got N = %D",size,N);
10370   *n = 1;
10371   k = ((PetscInt)size)/N + ((PetscInt)size%N>0); /* There are up to k ranks to a color */
10372   color = rank/k;
10373   ierr = MPI_Comm_split(comm,color,rank,&subcomm);CHKERRQ(ierr);
10374   ierr = PetscMalloc1(1,iss);CHKERRQ(ierr);
10375   ierr = MatGetOwnershipRange(A,&rstart,&rend);CHKERRQ(ierr);
10376   ierr = ISCreateStride(subcomm,rend-rstart,rstart,1,iss[0]);CHKERRQ(ierr);
10377   ierr = MPI_Comm_free(&subcomm);CHKERRQ(ierr);
10378   PetscFunctionReturn(0);
10379 }
10380 
10381 /*@
10382    MatGalerkin - Constructs the coarse grid problem via Galerkin projection.
10383 
10384    If the interpolation and restriction operators are the same, uses MatPtAP.
10385    If they are not the same, use MatMatMatMult.
10386 
10387    Once the coarse grid problem is constructed, correct for interpolation operators
10388    that are not of full rank, which can legitimately happen in the case of non-nested
10389    geometric multigrid.
10390 
10391    Input Parameters:
10392 +  restrct - restriction operator
10393 .  dA - fine grid matrix
10394 .  interpolate - interpolation operator
10395 .  reuse - either MAT_INITIAL_MATRIX or MAT_REUSE_MATRIX
10396 -  fill - expected fill, use PETSC_DEFAULT if you do not have a good estimate
10397 
10398    Output Parameters:
10399 .  A - the Galerkin coarse matrix
10400 
10401    Options Database Key:
10402 .  -pc_mg_galerkin <both,pmat,mat,none>
10403 
10404    Level: developer
10405 
10406 .keywords: MG, multigrid, Galerkin
10407 
10408 .seealso: MatPtAP(), MatMatMatMult()
10409 @*/
10410 PetscErrorCode  MatGalerkin(Mat restrct, Mat dA, Mat interpolate, MatReuse reuse, PetscReal fill, Mat *A)
10411 {
10412   PetscErrorCode ierr;
10413   IS             zerorows;
10414   Vec            diag;
10415 
10416   PetscFunctionBegin;
10417   if (reuse == MAT_INPLACE_MATRIX) SETERRQ(PetscObjectComm((PetscObject)A),PETSC_ERR_SUP,"Inplace product not supported");
10418   /* Construct the coarse grid matrix */
10419   if (interpolate == restrct) {
10420     ierr = MatPtAP(dA,interpolate,reuse,fill,A);CHKERRQ(ierr);
10421   } else {
10422     ierr = MatMatMatMult(restrct,dA,interpolate,reuse,fill,A);CHKERRQ(ierr);
10423   }
10424 
10425   /* If the interpolation matrix is not of full rank, A will have zero rows.
10426      This can legitimately happen in the case of non-nested geometric multigrid.
10427      In that event, we set the rows of the matrix to the rows of the identity,
10428      ignoring the equations (as the RHS will also be zero). */
10429 
10430   ierr = MatFindZeroRows(*A, &zerorows);CHKERRQ(ierr);
10431 
10432   if (zerorows != NULL) { /* if there are any zero rows */
10433     ierr = MatCreateVecs(*A, &diag, NULL);CHKERRQ(ierr);
10434     ierr = MatGetDiagonal(*A, diag);CHKERRQ(ierr);
10435     ierr = VecISSet(diag, zerorows, 1.0);CHKERRQ(ierr);
10436     ierr = MatDiagonalSet(*A, diag, INSERT_VALUES);CHKERRQ(ierr);
10437     ierr = VecDestroy(&diag);CHKERRQ(ierr);
10438     ierr = ISDestroy(&zerorows);CHKERRQ(ierr);
10439   }
10440   PetscFunctionReturn(0);
10441 }
10442