xref: /petsc/src/mat/interface/matproduct.c (revision 856bee69f0e0908e75ff837867b1777dfb1ced96)
1 /*
2     Routines for matrix products. Calling procedure:
3 
4     MatProductCreate(A,B,C,&D); or MatProductCreateWithMat(A,B,C,D)
5     MatProductSetType(D, MATPRODUCT_AB/AtB/ABt/PtAP/RARt/ABC)
6     MatProductSetAlgorithm(D, alg)
7     MatProductSetFill(D,fill)
8     MatProductSetFromOptions(D)
9       -> MatProductSetFromOptions_Private(D)
10            # Check matrix global sizes
11            if the matrices have the same setfromoptions routine, use it
12            if not, try:
13              -> Query MatProductSetFromOptions_Atype_Btype_Ctype_C(D) from A, B and C (in order)
14              if found -> run the specific setup that must set the symbolic operation (these callbacks should never fail)
15            if callback not found or no symbolic operation set
16              -> Query MatProductSetFromOptions_anytype_C(D) from A, B and C (in order) (e.g, matrices may have inner matrices like MATTRANSPOSEVIRTUAL)
17            if dispatch found but combination still not present do
18              -> check if B is dense and product type AtB or AB -> if true, basic looping of dense columns
19              -> check if triple product (PtAP, RARt or ABC) -> if true, set the Basic routines
20 
21     #  The setfromoptions calls MatProductSetFromOptions_Atype_Btype_Ctype should
22     #    Check matrix local sizes for mpi matrices
23     #    Set default algorithm
24     #    Get runtime option
25     #    Set D->ops->productsymbolic = MatProductSymbolic_productype_Atype_Btype_Ctype if found
26 
27     MatProductSymbolic(D)
28       # Call MatProductSymbolic_productype_Atype_Btype_Ctype()
29         the callback must set the numeric phase D->ops->productnumeric = MatProductNumeric_productype_Atype_Btype_Ctype
30 
31     MatProductNumeric(D)
32       # Call the numeric phase
33 
34     # The symbolic phases are allowed to set extra data structures and attach those to the product
35     # this additional data can be reused between multiple numeric phases with the same matrices
36     # if not needed, call
37     MatProductClear(D)
38 */
39 
40 #include <petsc/private/matimpl.h> /*I "petscmat.h" I*/
41 
42 const char *const MatProductTypes[] = {"UNSPECIFIED", "AB", "AtB", "ABt", "PtAP", "RARt", "ABC"};
43 
44 /* these are basic implementations relying on the old function pointers
45  * they are dangerous and should be removed in the future */
46 static PetscErrorCode MatProductNumeric_PtAP_Unsafe(Mat C)
47 {
48   Mat_Product *product = C->product;
49   Mat          P = product->B, AP = product->Dwork;
50 
51   PetscFunctionBegin;
52   /* AP = A*P */
53   PetscCall(MatProductNumeric(AP));
54   /* C = P^T*AP */
55   PetscCall((*C->ops->transposematmultnumeric)(P, AP, C));
56   PetscFunctionReturn(PETSC_SUCCESS);
57 }
58 
59 static PetscErrorCode MatProductSymbolic_PtAP_Unsafe(Mat C)
60 {
61   Mat_Product *product = C->product;
62   Mat          A = product->A, P = product->B, AP;
63   PetscReal    fill = product->fill;
64 
65   PetscFunctionBegin;
66   PetscCall(PetscInfo((PetscObject)C, "for A %s, P %s is used\n", ((PetscObject)product->A)->type_name, ((PetscObject)product->B)->type_name));
67   /* AP = A*P */
68   PetscCall(MatProductCreate(A, P, NULL, &AP));
69   PetscCall(MatProductSetType(AP, MATPRODUCT_AB));
70   PetscCall(MatProductSetAlgorithm(AP, MATPRODUCTALGORITHMDEFAULT));
71   PetscCall(MatProductSetFill(AP, fill));
72   PetscCall(MatProductSetFromOptions(AP));
73   PetscCall(MatProductSymbolic(AP));
74 
75   /* C = P^T*AP */
76   PetscCall(MatProductSetType(C, MATPRODUCT_AtB));
77   PetscCall(MatProductSetAlgorithm(C, MATPRODUCTALGORITHMDEFAULT));
78   product->A = P;
79   product->B = AP;
80   PetscCall(MatProductSetFromOptions(C));
81   PetscCall(MatProductSymbolic(C));
82 
83   /* resume user's original input matrix setting for A and B */
84   product->A     = A;
85   product->B     = P;
86   product->Dwork = AP;
87 
88   C->ops->productnumeric = MatProductNumeric_PtAP_Unsafe;
89   PetscFunctionReturn(PETSC_SUCCESS);
90 }
91 
92 static PetscErrorCode MatProductNumeric_RARt_Unsafe(Mat C)
93 {
94   Mat_Product *product = C->product;
95   Mat          R = product->B, RA = product->Dwork;
96 
97   PetscFunctionBegin;
98   /* RA = R*A */
99   PetscCall(MatProductNumeric(RA));
100   /* C = RA*R^T */
101   PetscCall((*C->ops->mattransposemultnumeric)(RA, R, C));
102   PetscFunctionReturn(PETSC_SUCCESS);
103 }
104 
105 static PetscErrorCode MatProductSymbolic_RARt_Unsafe(Mat C)
106 {
107   Mat_Product *product = C->product;
108   Mat          A = product->A, R = product->B, RA;
109   PetscReal    fill = product->fill;
110 
111   PetscFunctionBegin;
112   PetscCall(PetscInfo((PetscObject)C, "for A %s, R %s is used\n", ((PetscObject)product->A)->type_name, ((PetscObject)product->B)->type_name));
113   /* RA = R*A */
114   PetscCall(MatProductCreate(R, A, NULL, &RA));
115   PetscCall(MatProductSetType(RA, MATPRODUCT_AB));
116   PetscCall(MatProductSetAlgorithm(RA, MATPRODUCTALGORITHMDEFAULT));
117   PetscCall(MatProductSetFill(RA, fill));
118   PetscCall(MatProductSetFromOptions(RA));
119   PetscCall(MatProductSymbolic(RA));
120 
121   /* C = RA*R^T */
122   PetscCall(MatProductSetType(C, MATPRODUCT_ABt));
123   PetscCall(MatProductSetAlgorithm(C, MATPRODUCTALGORITHMDEFAULT));
124   product->A = RA;
125   PetscCall(MatProductSetFromOptions(C));
126   PetscCall(MatProductSymbolic(C));
127 
128   /* resume user's original input matrix setting for A */
129   product->A             = A;
130   product->Dwork         = RA; /* save here so it will be destroyed with product C */
131   C->ops->productnumeric = MatProductNumeric_RARt_Unsafe;
132   PetscFunctionReturn(PETSC_SUCCESS);
133 }
134 
135 static PetscErrorCode MatProductNumeric_ABC_Unsafe(Mat mat)
136 {
137   Mat_Product *product = mat->product;
138   Mat          A = product->A, BC = product->Dwork;
139 
140   PetscFunctionBegin;
141   /* Numeric BC = B*C */
142   PetscCall(MatProductNumeric(BC));
143   /* Numeric mat = A*BC */
144   PetscCall((*mat->ops->matmultnumeric)(A, BC, mat));
145   PetscFunctionReturn(PETSC_SUCCESS);
146 }
147 
148 static PetscErrorCode MatProductSymbolic_ABC_Unsafe(Mat mat)
149 {
150   Mat_Product *product = mat->product;
151   Mat          B = product->B, C = product->C, BC;
152   PetscReal    fill = product->fill;
153 
154   PetscFunctionBegin;
155   PetscCall(PetscInfo((PetscObject)mat, "for A %s, B %s, C %s is used\n", ((PetscObject)product->A)->type_name, ((PetscObject)product->B)->type_name, ((PetscObject)product->C)->type_name));
156   /* Symbolic BC = B*C */
157   PetscCall(MatProductCreate(B, C, NULL, &BC));
158   PetscCall(MatProductSetType(BC, MATPRODUCT_AB));
159   PetscCall(MatProductSetAlgorithm(BC, MATPRODUCTALGORITHMDEFAULT));
160   PetscCall(MatProductSetFill(BC, fill));
161   PetscCall(MatProductSetFromOptions(BC));
162   PetscCall(MatProductSymbolic(BC));
163 
164   /* Symbolic mat = A*BC */
165   PetscCall(MatProductSetType(mat, MATPRODUCT_AB));
166   PetscCall(MatProductSetAlgorithm(mat, MATPRODUCTALGORITHMDEFAULT));
167   product->B     = BC;
168   product->Dwork = BC;
169   PetscCall(MatProductSetFromOptions(mat));
170   PetscCall(MatProductSymbolic(mat));
171 
172   /* resume user's original input matrix setting for B */
173   product->B               = B;
174   mat->ops->productnumeric = MatProductNumeric_ABC_Unsafe;
175   PetscFunctionReturn(PETSC_SUCCESS);
176 }
177 
178 static PetscErrorCode MatProductSymbolic_Unsafe(Mat mat)
179 {
180   Mat_Product *product = mat->product;
181 
182   PetscFunctionBegin;
183   switch (product->type) {
184   case MATPRODUCT_PtAP:
185     PetscCall(MatProductSymbolic_PtAP_Unsafe(mat));
186     break;
187   case MATPRODUCT_RARt:
188     PetscCall(MatProductSymbolic_RARt_Unsafe(mat));
189     break;
190   case MATPRODUCT_ABC:
191     PetscCall(MatProductSymbolic_ABC_Unsafe(mat));
192     break;
193   default:
194     SETERRQ(PetscObjectComm((PetscObject)mat), PETSC_ERR_SUP, "ProductType %s is not supported", MatProductTypes[product->type]);
195   }
196   PetscFunctionReturn(PETSC_SUCCESS);
197 }
198 
199 /*@C
200   MatProductReplaceMats - Replace the input matrices for the matrix-matrix product operation inside the computed matrix
201 
202   Collective
203 
204   Input Parameters:
205 + A - the matrix or `NULL` if not being replaced
206 . B - the matrix or `NULL` if not being replaced
207 . C - the matrix or `NULL` if not being replaced
208 - D - the matrix whose values are computed via a matrix-matrix product operation
209 
210   Level: intermediate
211 
212   Note:
213   To reuse the symbolic phase, the input matrices must have exactly the same data structure as the replaced one.
214   If the type of any of the input matrices is different than what was previously used, or their symmetry flag changed but
215   the symbolic phase took advantage of their symmetry, the product is cleared and `MatProductSetFromOptions()`
216   and `MatProductSymbolic()` are invoked again.
217 
218 .seealso: [](ch_matrices), `MatProduct`, `Mat`, `MatProductCreate()`, `MatProductSetFromOptions()`, `MatProductSymbolic().` `MatProductClear()`
219 @*/
220 PetscErrorCode MatProductReplaceMats(Mat A, Mat B, Mat C, Mat D)
221 {
222   Mat_Product *product;
223   PetscBool    flgA = PETSC_TRUE, flgB = PETSC_TRUE, flgC = PETSC_TRUE, isset, issym;
224 
225   PetscFunctionBegin;
226   PetscValidHeaderSpecific(D, MAT_CLASSID, 4);
227   MatCheckProduct(D, 4);
228   product = D->product;
229   if (A) {
230     PetscValidHeaderSpecific(A, MAT_CLASSID, 1);
231     PetscCall(PetscObjectReference((PetscObject)A));
232     PetscCall(PetscObjectTypeCompare((PetscObject)product->A, ((PetscObject)A)->type_name, &flgA));
233     PetscCall(MatIsSymmetricKnown(A, &isset, &issym));
234     if (product->symbolic_used_the_fact_A_is_symmetric && isset && !issym) { /* symbolic was built around a symmetric A, but the new A is not anymore */
235       flgA                                           = PETSC_FALSE;
236       product->symbolic_used_the_fact_A_is_symmetric = PETSC_FALSE; /* reinit */
237     }
238     PetscCall(MatDestroy(&product->A));
239     product->A = A;
240   }
241   if (B) {
242     PetscValidHeaderSpecific(B, MAT_CLASSID, 2);
243     PetscCall(PetscObjectReference((PetscObject)B));
244     PetscCall(PetscObjectTypeCompare((PetscObject)product->B, ((PetscObject)B)->type_name, &flgB));
245     PetscCall(MatIsSymmetricKnown(B, &isset, &issym));
246     if (product->symbolic_used_the_fact_B_is_symmetric && isset && !issym) {
247       flgB                                           = PETSC_FALSE;
248       product->symbolic_used_the_fact_B_is_symmetric = PETSC_FALSE; /* reinit */
249     }
250     PetscCall(MatDestroy(&product->B));
251     product->B = B;
252   }
253   if (C) {
254     PetscValidHeaderSpecific(C, MAT_CLASSID, 3);
255     PetscCall(PetscObjectReference((PetscObject)C));
256     PetscCall(PetscObjectTypeCompare((PetscObject)product->C, ((PetscObject)C)->type_name, &flgC));
257     PetscCall(MatIsSymmetricKnown(C, &isset, &issym));
258     if (product->symbolic_used_the_fact_C_is_symmetric && isset && !issym) {
259       flgC                                           = PETSC_FALSE;
260       product->symbolic_used_the_fact_C_is_symmetric = PETSC_FALSE; /* reinit */
261     }
262     PetscCall(MatDestroy(&product->C));
263     product->C = C;
264   }
265   /* Any of the replaced mats is of a different type, reset */
266   if (!flgA || !flgB || !flgC) {
267     if (D->product->destroy) PetscCall((*D->product->destroy)(D->product->data));
268     D->product->destroy = NULL;
269     D->product->data    = NULL;
270     if (D->ops->productnumeric || D->ops->productsymbolic) {
271       PetscCall(MatProductSetFromOptions(D));
272       PetscCall(MatProductSymbolic(D));
273     }
274   }
275   PetscFunctionReturn(PETSC_SUCCESS);
276 }
277 
278 static PetscErrorCode MatProductNumeric_X_Dense(Mat C)
279 {
280   Mat_Product *product = C->product;
281   Mat          A = product->A, B = product->B;
282   PetscInt     k, K              = B->cmap->N;
283   PetscBool    t = PETSC_TRUE, iscuda = PETSC_FALSE;
284   PetscBool    Bcpu = PETSC_TRUE, Ccpu = PETSC_TRUE;
285   char        *Btype = NULL, *Ctype = NULL;
286 
287   PetscFunctionBegin;
288   switch (product->type) {
289   case MATPRODUCT_AB:
290     t = PETSC_FALSE;
291   case MATPRODUCT_AtB:
292     break;
293   default:
294     SETERRQ(PetscObjectComm((PetscObject)C), PETSC_ERR_SUP, "MatProductNumeric type %s not supported for %s and %s matrices", MatProductTypes[product->type], ((PetscObject)A)->type_name, ((PetscObject)B)->type_name);
295   }
296   if (PetscDefined(HAVE_CUDA)) {
297     VecType vtype;
298 
299     PetscCall(MatGetVecType(A, &vtype));
300     PetscCall(PetscStrcmp(vtype, VECCUDA, &iscuda));
301     if (!iscuda) PetscCall(PetscStrcmp(vtype, VECSEQCUDA, &iscuda));
302     if (!iscuda) PetscCall(PetscStrcmp(vtype, VECMPICUDA, &iscuda));
303     if (iscuda) { /* Make sure we have up-to-date data on the GPU */
304       PetscCall(PetscStrallocpy(((PetscObject)B)->type_name, &Btype));
305       PetscCall(PetscStrallocpy(((PetscObject)C)->type_name, &Ctype));
306       PetscCall(MatConvert(B, MATDENSECUDA, MAT_INPLACE_MATRIX, &B));
307       if (!C->assembled) { /* need to flag the matrix as assembled, otherwise MatConvert will complain */
308         PetscCall(MatAssemblyBegin(C, MAT_FINAL_ASSEMBLY));
309         PetscCall(MatAssemblyEnd(C, MAT_FINAL_ASSEMBLY));
310       }
311       PetscCall(MatConvert(C, MATDENSECUDA, MAT_INPLACE_MATRIX, &C));
312     } else { /* Make sure we have up-to-date data on the CPU */
313 #if defined(PETSC_HAVE_CUDA) || defined(PETSC_HAVE_VIENNACL)
314       Bcpu = B->boundtocpu;
315       Ccpu = C->boundtocpu;
316 #endif
317       PetscCall(MatBindToCPU(B, PETSC_TRUE));
318       PetscCall(MatBindToCPU(C, PETSC_TRUE));
319     }
320   }
321   for (k = 0; k < K; k++) {
322     Vec x, y;
323 
324     PetscCall(MatDenseGetColumnVecRead(B, k, &x));
325     PetscCall(MatDenseGetColumnVecWrite(C, k, &y));
326     if (t) {
327       PetscCall(MatMultTranspose(A, x, y));
328     } else {
329       PetscCall(MatMult(A, x, y));
330     }
331     PetscCall(MatDenseRestoreColumnVecRead(B, k, &x));
332     PetscCall(MatDenseRestoreColumnVecWrite(C, k, &y));
333   }
334   PetscCall(MatAssemblyBegin(C, MAT_FINAL_ASSEMBLY));
335   PetscCall(MatAssemblyEnd(C, MAT_FINAL_ASSEMBLY));
336   if (PetscDefined(HAVE_CUDA)) {
337     if (iscuda) {
338       PetscCall(MatConvert(B, Btype, MAT_INPLACE_MATRIX, &B));
339       PetscCall(MatConvert(C, Ctype, MAT_INPLACE_MATRIX, &C));
340     } else {
341       PetscCall(MatBindToCPU(B, Bcpu));
342       PetscCall(MatBindToCPU(C, Ccpu));
343     }
344   }
345   PetscCall(PetscFree(Btype));
346   PetscCall(PetscFree(Ctype));
347   PetscFunctionReturn(PETSC_SUCCESS);
348 }
349 
350 static PetscErrorCode MatProductSymbolic_X_Dense(Mat C)
351 {
352   Mat_Product *product = C->product;
353   Mat          A = product->A, B = product->B;
354   PetscBool    isdense;
355 
356   PetscFunctionBegin;
357   switch (product->type) {
358   case MATPRODUCT_AB:
359     PetscCall(MatSetSizes(C, A->rmap->n, B->cmap->n, A->rmap->N, B->cmap->N));
360     break;
361   case MATPRODUCT_AtB:
362     PetscCall(MatSetSizes(C, A->cmap->n, B->cmap->n, A->cmap->N, B->cmap->N));
363     break;
364   default:
365     SETERRQ(PetscObjectComm((PetscObject)C), PETSC_ERR_SUP, "MatProductSymbolic type %s not supported for %s and %s matrices", MatProductTypes[product->type], ((PetscObject)A)->type_name, ((PetscObject)B)->type_name);
366   }
367   PetscCall(PetscObjectBaseTypeCompareAny((PetscObject)C, &isdense, MATSEQDENSE, MATMPIDENSE, ""));
368   if (!isdense) {
369     PetscCall(MatSetType(C, ((PetscObject)B)->type_name));
370     /* If matrix type of C was not set or not dense, we need to reset the pointer */
371     C->ops->productsymbolic = MatProductSymbolic_X_Dense;
372   }
373   C->ops->productnumeric = MatProductNumeric_X_Dense;
374   PetscCall(MatSetUp(C));
375   PetscFunctionReturn(PETSC_SUCCESS);
376 }
377 
378 /* a single driver to query the dispatching */
379 static PetscErrorCode MatProductSetFromOptions_Private(Mat mat)
380 {
381   Mat_Product      *product = mat->product;
382   PetscInt          Am, An, Bm, Bn, Cm, Cn;
383   Mat               A = product->A, B = product->B, C = product->C;
384   const char *const Bnames[] = {"B", "R", "P"};
385   const char       *bname;
386   PetscErrorCode (*fA)(Mat);
387   PetscErrorCode (*fB)(Mat);
388   PetscErrorCode (*fC)(Mat);
389   PetscErrorCode (*f)(Mat) = NULL;
390 
391   PetscFunctionBegin;
392   mat->ops->productsymbolic = NULL;
393   mat->ops->productnumeric  = NULL;
394   if (product->type == MATPRODUCT_UNSPECIFIED) PetscFunctionReturn(PETSC_SUCCESS);
395   PetscCheck(A, PetscObjectComm((PetscObject)mat), PETSC_ERR_PLIB, "Missing A mat");
396   PetscCheck(B, PetscObjectComm((PetscObject)mat), PETSC_ERR_PLIB, "Missing B mat");
397   PetscCheck(product->type != MATPRODUCT_ABC || C, PetscObjectComm((PetscObject)mat), PETSC_ERR_PLIB, "Missing C mat");
398   if (product->type != MATPRODUCT_ABC) C = NULL; /* do not use C if not needed */
399   if (product->type == MATPRODUCT_RARt) bname = Bnames[1];
400   else if (product->type == MATPRODUCT_PtAP) bname = Bnames[2];
401   else bname = Bnames[0];
402 
403   /* Check matrices sizes */
404   Am = A->rmap->N;
405   An = A->cmap->N;
406   Bm = B->rmap->N;
407   Bn = B->cmap->N;
408   Cm = C ? C->rmap->N : 0;
409   Cn = C ? C->cmap->N : 0;
410   if (product->type == MATPRODUCT_RARt || product->type == MATPRODUCT_ABt) {
411     PetscInt t = Bn;
412     Bn         = Bm;
413     Bm         = t;
414   }
415   if (product->type == MATPRODUCT_AtB) {
416     PetscInt t = An;
417     An         = Am;
418     Am         = t;
419   }
420   PetscCheck(An == Bm, PetscObjectComm((PetscObject)mat), PETSC_ERR_ARG_SIZ, "Matrix dimensions of A and %s are incompatible for MatProductType %s: A %" PetscInt_FMT "x%" PetscInt_FMT ", %s %" PetscInt_FMT "x%" PetscInt_FMT, bname,
421              MatProductTypes[product->type], A->rmap->N, A->cmap->N, bname, B->rmap->N, B->cmap->N);
422   PetscCheck(!Cm || Cm == Bn, PetscObjectComm((PetscObject)mat), PETSC_ERR_ARG_SIZ, "Matrix dimensions of B and C are incompatible for MatProductType %s: B %" PetscInt_FMT "x%" PetscInt_FMT ", C %" PetscInt_FMT "x%" PetscInt_FMT,
423              MatProductTypes[product->type], B->rmap->N, B->cmap->N, Cm, Cn);
424 
425   fA = A->ops->productsetfromoptions;
426   fB = B->ops->productsetfromoptions;
427   fC = C ? C->ops->productsetfromoptions : fA;
428   if (C) {
429     PetscCall(PetscInfo(mat, "MatProductType %s for A %s, %s %s, C %s\n", MatProductTypes[product->type], ((PetscObject)A)->type_name, bname, ((PetscObject)B)->type_name, ((PetscObject)C)->type_name));
430   } else {
431     PetscCall(PetscInfo(mat, "MatProductType %s for A %s, %s %s\n", MatProductTypes[product->type], ((PetscObject)A)->type_name, bname, ((PetscObject)B)->type_name));
432   }
433   if (fA == fB && fA == fC && fA) {
434     PetscCall(PetscInfo(mat, "  matching op\n"));
435     PetscCall((*fA)(mat));
436   }
437   /* We may have found f but it did not succeed */
438   if (!mat->ops->productsymbolic) { /* query MatProductSetFromOptions_Atype_Btype_Ctype */
439     char mtypes[256];
440     PetscCall(PetscStrncpy(mtypes, "MatProductSetFromOptions_", sizeof(mtypes)));
441     PetscCall(PetscStrlcat(mtypes, ((PetscObject)A)->type_name, sizeof(mtypes)));
442     PetscCall(PetscStrlcat(mtypes, "_", sizeof(mtypes)));
443     PetscCall(PetscStrlcat(mtypes, ((PetscObject)B)->type_name, sizeof(mtypes)));
444     if (C) {
445       PetscCall(PetscStrlcat(mtypes, "_", sizeof(mtypes)));
446       PetscCall(PetscStrlcat(mtypes, ((PetscObject)C)->type_name, sizeof(mtypes)));
447     }
448     PetscCall(PetscStrlcat(mtypes, "_C", sizeof(mtypes)));
449 #if defined(__clang__)
450     PETSC_PRAGMA_DIAGNOSTIC_IGNORED_BEGIN("-Wformat-pedantic")
451 #elif defined(__GNUC__) || defined(__GNUG__)
452     PETSC_PRAGMA_DIAGNOSTIC_IGNORED_BEGIN("-Wformat")
453 #endif
454     PetscCall(PetscObjectQueryFunction((PetscObject)A, mtypes, &f));
455     PetscCall(PetscInfo(mat, "  querying %s from A? %p\n", mtypes, f));
456     if (!f) {
457       PetscCall(PetscObjectQueryFunction((PetscObject)B, mtypes, &f));
458       PetscCall(PetscInfo(mat, "  querying %s from %s? %p\n", mtypes, bname, f));
459     }
460     if (!f && C) {
461       PetscCall(PetscObjectQueryFunction((PetscObject)C, mtypes, &f));
462       PetscCall(PetscInfo(mat, "  querying %s from C? %p\n", mtypes, f));
463     }
464     if (f) PetscCall((*f)(mat));
465 
466     /* We may have found f but it did not succeed */
467     /* some matrices (i.e. MATTRANSPOSEVIRTUAL, MATSHELL constructed from MatConvert), knows what to do with their inner matrices */
468     if (!mat->ops->productsymbolic) {
469       PetscCall(PetscStrncpy(mtypes, "MatProductSetFromOptions_anytype_C", sizeof(mtypes)));
470       PetscCall(PetscObjectQueryFunction((PetscObject)A, mtypes, &f));
471       PetscCall(PetscInfo(mat, "  querying %s from A? %p\n", mtypes, f));
472       if (!f) {
473         PetscCall(PetscObjectQueryFunction((PetscObject)B, mtypes, &f));
474         PetscCall(PetscInfo(mat, "  querying %s from %s? %p\n", mtypes, bname, f));
475       }
476       if (!f && C) {
477         PetscCall(PetscObjectQueryFunction((PetscObject)C, mtypes, &f));
478         PetscCall(PetscInfo(mat, "  querying %s from C? %p\n", mtypes, f));
479       }
480     }
481     if (f) PetscCall((*f)(mat));
482   }
483   PETSC_PRAGMA_DIAGNOSTIC_IGNORED_END()
484   /* We may have found f but it did not succeed */
485   if (!mat->ops->productsymbolic) {
486     /* we can still compute the product if B is of type dense */
487     if (product->type == MATPRODUCT_AB || product->type == MATPRODUCT_AtB) {
488       PetscBool isdense;
489 
490       PetscCall(PetscObjectBaseTypeCompareAny((PetscObject)B, &isdense, MATSEQDENSE, MATMPIDENSE, ""));
491       if (isdense) {
492         mat->ops->productsymbolic = MatProductSymbolic_X_Dense;
493         PetscCall(PetscInfo(mat, "  using basic looping over columns of a dense matrix\n"));
494       }
495     } else if (product->type != MATPRODUCT_ABt) { /* use MatProductSymbolic/Numeric_Unsafe() for triple products only */
496       /*
497          TODO: this should be changed to a proper setfromoptions, not setting the symbolic pointer here, because we do not know if
498                the combination will succeed. In order to be sure, we need MatProductGetProductType to return the type of the result
499                before computing the symbolic phase
500       */
501       PetscCall(PetscInfo(mat, "  symbolic product not supported, using MatProductSymbolic_Unsafe() implementation\n"));
502       mat->ops->productsymbolic = MatProductSymbolic_Unsafe;
503     }
504   }
505   if (!mat->ops->productsymbolic) PetscCall(PetscInfo(mat, "  symbolic product is not supported\n"));
506   PetscFunctionReturn(PETSC_SUCCESS);
507 }
508 
509 /*@C
510   MatProductSetFromOptions - Sets the options for the computation of a matrix-matrix product operation where the type,
511   the algorithm etc are determined from the options database.
512 
513   Logically Collective
514 
515   Input Parameter:
516 . mat - the matrix whose values are computed via a matrix-matrix product operation
517 
518   Options Database Keys:
519 + -mat_product_clear                 - Clear intermediate data structures after `MatProductNumeric()` has been called
520 . -mat_product_algorithm <algorithm> - Sets the algorithm, see `MatProductAlgorithm` for possible values
521 - -mat_product_algorithm_backend_cpu - Use the CPU to perform the computation even if the matrix is a GPU matrix
522 
523   Level: intermediate
524 
525   Note:
526   The `-mat_product_clear` option reduces memory usage but means that the matrix cannot be re-used for a matrix-matrix product operation
527 
528 .seealso: [](ch_matrices), `MatProduct`, `Mat`, `MatSetFromOptions()`, `MatProductCreate()`, `MatProductCreateWithMat()`, `MatProductNumeric()`,
529           `MatProductSetType()`, `MatProductSetAlgorithm()`, `MatProductAlgorithm`
530 @*/
531 PetscErrorCode MatProductSetFromOptions(Mat mat)
532 {
533   PetscFunctionBegin;
534   PetscValidHeaderSpecific(mat, MAT_CLASSID, 1);
535   MatCheckProduct(mat, 1);
536   PetscCheck(!mat->product->data, PetscObjectComm((PetscObject)mat), PETSC_ERR_ORDER, "Cannot call MatProductSetFromOptions with already present data");
537   PetscObjectOptionsBegin((PetscObject)mat);
538   PetscCall(PetscOptionsBool("-mat_product_clear", "Clear intermediate data structures after MatProductNumeric() has been called", "MatProductClear", mat->product->clear, &mat->product->clear, NULL));
539   PetscCall(PetscOptionsDeprecated("-mat_freeintermediatedatastructures", "-mat_product_clear", "3.13", "Or call MatProductClear() after MatProductNumeric()"));
540   PetscOptionsEnd();
541   PetscCall(MatProductSetFromOptions_Private(mat));
542   PetscCheck(mat->product, PetscObjectComm((PetscObject)mat), PETSC_ERR_PLIB, "Missing product after setup phase");
543   PetscFunctionReturn(PETSC_SUCCESS);
544 }
545 
546 /*@C
547   MatProductView - View the private matrix-matrix algorithm object within a matrix
548 
549   Logically Collective
550 
551   Input Parameters:
552 + mat    - the matrix obtained with `MatProductCreate()` or `MatProductCreateWithMat()`
553 - viewer - where the information on the matrix-matrix algorithm of `mat` should be reviewed
554 
555   Level: intermediate
556 
557 .seealso: [](ch_matrices), `MatProductType`, `Mat`, `MatProductSetFromOptions()`, `MatView()`, `MatProductCreate()`, `MatProductCreateWithMat()`
558 @*/
559 PetscErrorCode MatProductView(Mat mat, PetscViewer viewer)
560 {
561   PetscFunctionBegin;
562   PetscValidHeaderSpecific(mat, MAT_CLASSID, 1);
563   if (!mat->product) PetscFunctionReturn(PETSC_SUCCESS);
564   if (!viewer) PetscCall(PetscViewerASCIIGetStdout(PetscObjectComm((PetscObject)mat), &viewer));
565   PetscValidHeaderSpecific(viewer, PETSC_VIEWER_CLASSID, 2);
566   PetscCheckSameComm(mat, 1, viewer, 2);
567   if (mat->product->view) PetscCall((*mat->product->view)(mat, viewer));
568   PetscFunctionReturn(PETSC_SUCCESS);
569 }
570 
571 /* these are basic implementations relying on the old function pointers
572  * they are dangerous and should be removed in the future */
573 PetscErrorCode MatProductNumeric_AB(Mat mat)
574 {
575   Mat_Product *product = mat->product;
576   Mat          A = product->A, B = product->B;
577 
578   PetscFunctionBegin;
579   PetscCall((*mat->ops->matmultnumeric)(A, B, mat));
580   PetscFunctionReturn(PETSC_SUCCESS);
581 }
582 
583 PetscErrorCode MatProductNumeric_AtB(Mat mat)
584 {
585   Mat_Product *product = mat->product;
586   Mat          A = product->A, B = product->B;
587 
588   PetscFunctionBegin;
589   PetscCall((*mat->ops->transposematmultnumeric)(A, B, mat));
590   PetscFunctionReturn(PETSC_SUCCESS);
591 }
592 
593 PetscErrorCode MatProductNumeric_ABt(Mat mat)
594 {
595   Mat_Product *product = mat->product;
596   Mat          A = product->A, B = product->B;
597 
598   PetscFunctionBegin;
599   PetscCall((*mat->ops->mattransposemultnumeric)(A, B, mat));
600   PetscFunctionReturn(PETSC_SUCCESS);
601 }
602 
603 PetscErrorCode MatProductNumeric_PtAP(Mat mat)
604 {
605   Mat_Product *product = mat->product;
606   Mat          A = product->A, B = product->B;
607 
608   PetscFunctionBegin;
609   PetscCall((*mat->ops->ptapnumeric)(A, B, mat));
610   PetscFunctionReturn(PETSC_SUCCESS);
611 }
612 
613 PetscErrorCode MatProductNumeric_RARt(Mat mat)
614 {
615   Mat_Product *product = mat->product;
616   Mat          A = product->A, B = product->B;
617 
618   PetscFunctionBegin;
619   PetscCall((*mat->ops->rartnumeric)(A, B, mat));
620   PetscFunctionReturn(PETSC_SUCCESS);
621 }
622 
623 PetscErrorCode MatProductNumeric_ABC(Mat mat)
624 {
625   Mat_Product *product = mat->product;
626   Mat          A = product->A, B = product->B, C = product->C;
627 
628   PetscFunctionBegin;
629   PetscCall((*mat->ops->matmatmultnumeric)(A, B, C, mat));
630   PetscFunctionReturn(PETSC_SUCCESS);
631 }
632 
633 /*@
634   MatProductNumeric - Compute a matrix-matrix product operation with the numerical values
635 
636   Collective
637 
638   Input/Output Parameter:
639 . mat - the matrix whose values are computed via a matrix-matrix product operation
640 
641   Level: intermediate
642 
643   Note:
644   `MatProductSymbolic()` must have been called on `mat` before calling this function
645 
646 .seealso: [](ch_matrices), `MatProduct`, `Mat`, `MatProductSetAlgorithm()`, `MatProductSetType()`, `MatProductCreate()`, `MatSetType()`, `MatProductSymbolic()`
647 @*/
648 PetscErrorCode MatProductNumeric(Mat mat)
649 {
650 #if defined(PETSC_USE_LOG)
651   PetscLogEvent eventtype = -1;
652 #endif
653 
654   PetscFunctionBegin;
655   PetscValidHeaderSpecific(mat, MAT_CLASSID, 1);
656   MatCheckProduct(mat, 1);
657 #if defined(PETSC_USE_LOG)
658   switch (mat->product->type) {
659   case MATPRODUCT_AB:
660     eventtype = MAT_MatMultNumeric;
661     break;
662   case MATPRODUCT_AtB:
663     eventtype = MAT_TransposeMatMultNumeric;
664     break;
665   case MATPRODUCT_ABt:
666     eventtype = MAT_MatTransposeMultNumeric;
667     break;
668   case MATPRODUCT_PtAP:
669     eventtype = MAT_PtAPNumeric;
670     break;
671   case MATPRODUCT_RARt:
672     eventtype = MAT_RARtNumeric;
673     break;
674   case MATPRODUCT_ABC:
675     eventtype = MAT_MatMatMultNumeric;
676     break;
677   default:
678     SETERRQ(PetscObjectComm((PetscObject)mat), PETSC_ERR_SUP, "ProductType %s is not supported", MatProductTypes[mat->product->type]);
679   }
680 #endif
681 
682   if (mat->ops->productnumeric) {
683     PetscCall(PetscLogEventBegin(eventtype, mat, 0, 0, 0));
684     PetscUseTypeMethod(mat, productnumeric);
685     PetscCall(PetscLogEventEnd(eventtype, mat, 0, 0, 0));
686   } else if (mat->product) {
687     char errstr[256];
688 
689     if (mat->product->type == MATPRODUCT_ABC) {
690       PetscCall(PetscSNPrintf(errstr, 256, "%s with A %s, B %s, C %s", MatProductTypes[mat->product->type], ((PetscObject)mat->product->A)->type_name, ((PetscObject)mat->product->B)->type_name, ((PetscObject)mat->product->C)->type_name));
691     } else {
692       PetscCall(PetscSNPrintf(errstr, 256, "%s with A %s, B %s", MatProductTypes[mat->product->type], ((PetscObject)mat->product->A)->type_name, ((PetscObject)mat->product->B)->type_name));
693     }
694     SETERRQ(PetscObjectComm((PetscObject)mat), PETSC_ERR_PLIB, "Unspecified numeric phase for product %s", errstr);
695   }
696   PetscCheck(mat->product, PetscObjectComm((PetscObject)mat), PETSC_ERR_PLIB, "Missing struct after numeric phase for product");
697 
698   if (mat->product->clear) PetscCall(MatProductClear(mat));
699   PetscCall(PetscObjectStateIncrease((PetscObject)mat));
700   PetscFunctionReturn(PETSC_SUCCESS);
701 }
702 
703 /* these are basic implementations relying on the old function pointers
704  * they are dangerous and should be removed in the future */
705 PetscErrorCode MatProductSymbolic_AB(Mat mat)
706 {
707   Mat_Product *product = mat->product;
708   Mat          A = product->A, B = product->B;
709 
710   PetscFunctionBegin;
711   PetscCall((*mat->ops->matmultsymbolic)(A, B, product->fill, mat));
712   mat->ops->productnumeric = MatProductNumeric_AB;
713   PetscFunctionReturn(PETSC_SUCCESS);
714 }
715 
716 PetscErrorCode MatProductSymbolic_AtB(Mat mat)
717 {
718   Mat_Product *product = mat->product;
719   Mat          A = product->A, B = product->B;
720 
721   PetscFunctionBegin;
722   PetscCall((*mat->ops->transposematmultsymbolic)(A, B, product->fill, mat));
723   mat->ops->productnumeric = MatProductNumeric_AtB;
724   PetscFunctionReturn(PETSC_SUCCESS);
725 }
726 
727 PetscErrorCode MatProductSymbolic_ABt(Mat mat)
728 {
729   Mat_Product *product = mat->product;
730   Mat          A = product->A, B = product->B;
731 
732   PetscFunctionBegin;
733   PetscCall((*mat->ops->mattransposemultsymbolic)(A, B, product->fill, mat));
734   mat->ops->productnumeric = MatProductNumeric_ABt;
735   PetscFunctionReturn(PETSC_SUCCESS);
736 }
737 
738 PetscErrorCode MatProductSymbolic_ABC(Mat mat)
739 {
740   Mat_Product *product = mat->product;
741   Mat          A = product->A, B = product->B, C = product->C;
742 
743   PetscFunctionBegin;
744   PetscCall((*mat->ops->matmatmultsymbolic)(A, B, C, product->fill, mat));
745   mat->ops->productnumeric = MatProductNumeric_ABC;
746   PetscFunctionReturn(PETSC_SUCCESS);
747 }
748 
749 /*@
750   MatProductSymbolic - Perform the symbolic portion of a matrix-matrix product operation, this creates a data structure for use with the numerical
751   product to be done with `MatProductNumeric()`
752 
753   Collective
754 
755   Input/Output Parameter:
756 . mat - the matrix whose values are to be computed via a matrix-matrix product operation
757 
758   Level: intermediate
759 
760   Note:
761   `MatProductSetFromOptions()` must have been called on `mat` before calling this function
762 
763 .seealso: [](ch_matrices), `MatProduct`, `Mat`, `MatProductCreate()`, `MatProductCreateWithMat()`, `MatProductSetFromOptions()`, `MatProductNumeric()`, `MatProductSetType()`, `MatProductSetAlgorithm()`
764 @*/
765 PetscErrorCode MatProductSymbolic(Mat mat)
766 {
767 #if defined(PETSC_USE_LOG)
768   PetscLogEvent eventtype = -1;
769 #endif
770   PetscBool missing = PETSC_FALSE;
771 
772   PetscFunctionBegin;
773   PetscValidHeaderSpecific(mat, MAT_CLASSID, 1);
774   MatCheckProduct(mat, 1);
775   PetscCheck(!mat->product->data, PetscObjectComm((PetscObject)mat), PETSC_ERR_ORDER, "Cannot run symbolic phase. Product data not empty");
776 #if defined(PETSC_USE_LOG)
777   switch (mat->product->type) {
778   case MATPRODUCT_AB:
779     eventtype = MAT_MatMultSymbolic;
780     break;
781   case MATPRODUCT_AtB:
782     eventtype = MAT_TransposeMatMultSymbolic;
783     break;
784   case MATPRODUCT_ABt:
785     eventtype = MAT_MatTransposeMultSymbolic;
786     break;
787   case MATPRODUCT_PtAP:
788     eventtype = MAT_PtAPSymbolic;
789     break;
790   case MATPRODUCT_RARt:
791     eventtype = MAT_RARtSymbolic;
792     break;
793   case MATPRODUCT_ABC:
794     eventtype = MAT_MatMatMultSymbolic;
795     break;
796   default:
797     SETERRQ(PetscObjectComm((PetscObject)mat), PETSC_ERR_SUP, "ProductType %s is not supported", MatProductTypes[mat->product->type]);
798   }
799 #endif
800   mat->ops->productnumeric = NULL;
801   if (mat->ops->productsymbolic) {
802     PetscCall(PetscLogEventBegin(eventtype, mat, 0, 0, 0));
803     PetscUseTypeMethod(mat, productsymbolic);
804     PetscCall(PetscLogEventEnd(eventtype, mat, 0, 0, 0));
805   } else missing = PETSC_TRUE;
806 
807   if (missing || !mat->product || !mat->ops->productnumeric) {
808     char errstr[256];
809 
810     if (mat->product->type == MATPRODUCT_ABC) {
811       PetscCall(PetscSNPrintf(errstr, 256, "%s with A %s, B %s, C %s", MatProductTypes[mat->product->type], ((PetscObject)mat->product->A)->type_name, ((PetscObject)mat->product->B)->type_name, ((PetscObject)mat->product->C)->type_name));
812     } else {
813       PetscCall(PetscSNPrintf(errstr, 256, "%s with A %s, B %s", MatProductTypes[mat->product->type], ((PetscObject)mat->product->A)->type_name, ((PetscObject)mat->product->B)->type_name));
814     }
815     PetscCheck(!missing, PetscObjectComm((PetscObject)mat), PETSC_ERR_PLIB, "Unspecified symbolic phase for product %s. Call MatProductSetFromOptions() first", errstr);
816     PetscCheck(mat->product, PetscObjectComm((PetscObject)mat), PETSC_ERR_PLIB, "Missing struct after symbolic phase for product %s", errstr);
817   }
818 
819 #if defined(PETSC_HAVE_DEVICE)
820   Mat       A = mat->product->A;
821   Mat       B = mat->product->B;
822   Mat       C = mat->product->C;
823   PetscBool bindingpropagates;
824   bindingpropagates = (PetscBool)((A->boundtocpu && A->bindingpropagates) || (B->boundtocpu && B->bindingpropagates));
825   if (C) bindingpropagates = (PetscBool)(bindingpropagates || (C->boundtocpu && C->bindingpropagates));
826   if (bindingpropagates) {
827     PetscCall(MatBindToCPU(mat, PETSC_TRUE));
828     PetscCall(MatSetBindingPropagates(mat, PETSC_TRUE));
829   }
830 #endif
831   PetscFunctionReturn(PETSC_SUCCESS);
832 }
833 
834 /*@
835   MatProductSetFill - Set an expected fill of the matrix whose values are computed via a matrix-matrix product operation
836 
837   Collective
838 
839   Input Parameters:
840 + mat  - the matrix whose values are to be computed via a matrix-matrix product operation
841 - fill - expected fill as ratio of nnz(mat)/(nnz(A) + nnz(B) + nnz(C)); use `PETSC_DEFAULT` if you do not have a good estimate.
842           If the product is a dense matrix, this value is not used.
843 
844   Level: intermediate
845 
846 .seealso: [](ch_matrices), `MatProduct`, `Mat`, `MatProductSetFromOptions()`, `MatProductSetType()`, `MatProductSetAlgorithm()`, `MatProductCreate()`
847 @*/
848 PetscErrorCode MatProductSetFill(Mat mat, PetscReal fill)
849 {
850   PetscFunctionBegin;
851   PetscValidHeaderSpecific(mat, MAT_CLASSID, 1);
852   MatCheckProduct(mat, 1);
853   if (fill == (PetscReal)PETSC_DEFAULT || fill == (PetscReal)PETSC_DECIDE) mat->product->fill = 2.0;
854   else mat->product->fill = fill;
855   PetscFunctionReturn(PETSC_SUCCESS);
856 }
857 
858 /*@C
859   MatProductSetAlgorithm - Requests a particular algorithm for a matrix-matrix product operation that will perform to compute the given matrix
860 
861   Collective
862 
863   Input Parameters:
864 + mat - the matrix whose values are computed via a matrix-matrix product operation
865 - alg - particular implementation algorithm of the matrix product, e.g., `MATPRODUCTALGORITHMDEFAULT`.
866 
867   Options Database Key:
868 . -mat_product_algorithm <algorithm> - Sets the algorithm, see `MatProductAlgorithm`
869 
870   Level: intermediate
871 
872 .seealso: [](ch_matrices), `MatProduct`, `Mat`, `MatProductClear()`, `MatProductSetType()`, `MatProductSetFill()`, `MatProductCreate()`, `MatProductAlgorithm`, `MatProductType`
873 @*/
874 PetscErrorCode MatProductSetAlgorithm(Mat mat, MatProductAlgorithm alg)
875 {
876   PetscFunctionBegin;
877   PetscValidHeaderSpecific(mat, MAT_CLASSID, 1);
878   MatCheckProduct(mat, 1);
879   PetscCall(PetscFree(mat->product->alg));
880   PetscCall(PetscStrallocpy(alg, &mat->product->alg));
881   PetscFunctionReturn(PETSC_SUCCESS);
882 }
883 
884 /*@
885   MatProductSetType - Sets a particular matrix-matrix product operation to be used to compute the values of the given matrix
886 
887   Collective
888 
889   Input Parameters:
890 + mat        - the matrix whose values are computed via a matrix-matrix product operation
891 - productype - matrix product type, e.g., `MATPRODUCT_AB`,`MATPRODUCT_AtB`,`MATPRODUCT_ABt`,`MATPRODUCT_PtAP`,`MATPRODUCT_RARt`,`MATPRODUCT_ABC`,
892                   see `MatProductType`
893 
894   Level: intermediate
895 
896   Note:
897   The small t represents the transpose operation.
898 
899 .seealso: [](ch_matrices), `MatProduct`, `Mat`, `MatProductCreate()`, `MatProductType`,
900           `MATPRODUCT_AB`, `MATPRODUCT_AtB`, `MATPRODUCT_ABt`, `MATPRODUCT_PtAP`, `MATPRODUCT_RARt`, `MATPRODUCT_ABC`
901 @*/
902 PetscErrorCode MatProductSetType(Mat mat, MatProductType productype)
903 {
904   PetscFunctionBegin;
905   PetscValidHeaderSpecific(mat, MAT_CLASSID, 1);
906   MatCheckProduct(mat, 1);
907   PetscValidLogicalCollectiveEnum(mat, productype, 2);
908   if (productype != mat->product->type) {
909     if (mat->product->destroy) PetscCall((*mat->product->destroy)(mat->product->data));
910     mat->product->destroy     = NULL;
911     mat->product->data        = NULL;
912     mat->ops->productsymbolic = NULL;
913     mat->ops->productnumeric  = NULL;
914   }
915   mat->product->type = productype;
916   PetscFunctionReturn(PETSC_SUCCESS);
917 }
918 
919 /*@
920   MatProductClear - Clears from the matrix any internal data structures related to the computation of the values of the matrix from matrix-matrix product operations
921 
922   Collective
923 
924   Input Parameter:
925 . mat - the matrix whose values are to be computed via a matrix-matrix product operation
926 
927   Options Database Key:
928 . -mat_product_clear - Clear intermediate data structures after `MatProductNumeric()` has been called
929 
930   Level: intermediate
931 
932   Notes:
933   This function should be called to remove any intermediate data used to compute the matrix to free up memory.
934 
935   After having called this function, matrix-matrix product operations can no longer be used on `mat`
936 
937 .seealso: [](ch_matrices), `MatProduct`, `Mat`, `MatProductCreate()`
938 @*/
939 PetscErrorCode MatProductClear(Mat mat)
940 {
941   Mat_Product *product = mat->product;
942 
943   PetscFunctionBegin;
944   PetscValidHeaderSpecific(mat, MAT_CLASSID, 1);
945   if (product) {
946     PetscCall(MatDestroy(&product->A));
947     PetscCall(MatDestroy(&product->B));
948     PetscCall(MatDestroy(&product->C));
949     PetscCall(PetscFree(product->alg));
950     PetscCall(MatDestroy(&product->Dwork));
951     if (product->destroy) PetscCall((*product->destroy)(product->data));
952   }
953   PetscCall(PetscFree(mat->product));
954   mat->ops->productsymbolic = NULL;
955   mat->ops->productnumeric  = NULL;
956   PetscFunctionReturn(PETSC_SUCCESS);
957 }
958 
959 /* Create a supporting struct and attach it to the matrix product */
960 PetscErrorCode MatProductCreate_Private(Mat A, Mat B, Mat C, Mat D)
961 {
962   Mat_Product *product = NULL;
963 
964   PetscFunctionBegin;
965   PetscValidHeaderSpecific(D, MAT_CLASSID, 4);
966   PetscCheck(!D->product, PetscObjectComm((PetscObject)D), PETSC_ERR_PLIB, "Product already present");
967   PetscCall(PetscNew(&product));
968   product->A        = A;
969   product->B        = B;
970   product->C        = C;
971   product->type     = MATPRODUCT_UNSPECIFIED;
972   product->Dwork    = NULL;
973   product->api_user = PETSC_FALSE;
974   product->clear    = PETSC_FALSE;
975   D->product        = product;
976 
977   PetscCall(MatProductSetAlgorithm(D, MATPRODUCTALGORITHMDEFAULT));
978   PetscCall(MatProductSetFill(D, PETSC_DEFAULT));
979 
980   PetscCall(PetscObjectReference((PetscObject)A));
981   PetscCall(PetscObjectReference((PetscObject)B));
982   PetscCall(PetscObjectReference((PetscObject)C));
983   PetscFunctionReturn(PETSC_SUCCESS);
984 }
985 
986 /*@
987   MatProductCreateWithMat - Set a given matrix to have its values computed via matrix-matrix operations on other matrices.
988 
989   Collective
990 
991   Input Parameters:
992 + A - the first matrix
993 . B - the second matrix
994 . C - the third matrix (optional, use `NULL` if not needed)
995 - D - the matrix whose values are to be computed via a matrix-matrix product operation
996 
997   Level: intermediate
998 
999   Notes:
1000   Use `MatProductCreate()` if the matrix you wish computed (the `D` matrix) does not already exist
1001 
1002   See `MatProductCreate()` for details on the usage of the matrix-matrix product operations
1003 
1004   Any product data currently attached to `D` will be cleared
1005 
1006 .seealso: [](ch_matrices), `MatProduct`, `Mat`, `MatProductType`, `MatProductSetType()`, `MatProductAlgorithm`,
1007           `MatProductSetAlgorithm`, `MatProductCreate()`, `MatProductClear()`
1008 @*/
1009 PetscErrorCode MatProductCreateWithMat(Mat A, Mat B, Mat C, Mat D)
1010 {
1011   PetscFunctionBegin;
1012   PetscValidHeaderSpecific(A, MAT_CLASSID, 1);
1013   PetscValidType(A, 1);
1014   MatCheckPreallocated(A, 1);
1015   PetscCheck(A->assembled, PetscObjectComm((PetscObject)A), PETSC_ERR_ARG_WRONGSTATE, "Not for unassembled matrix");
1016   PetscCheck(!A->factortype, PetscObjectComm((PetscObject)A), PETSC_ERR_ARG_WRONGSTATE, "Not for factored matrix");
1017 
1018   PetscValidHeaderSpecific(B, MAT_CLASSID, 2);
1019   PetscValidType(B, 2);
1020   MatCheckPreallocated(B, 2);
1021   PetscCheck(B->assembled, PetscObjectComm((PetscObject)B), PETSC_ERR_ARG_WRONGSTATE, "Not for unassembled matrix");
1022   PetscCheck(!B->factortype, PetscObjectComm((PetscObject)B), PETSC_ERR_ARG_WRONGSTATE, "Not for factored matrix");
1023 
1024   if (C) {
1025     PetscValidHeaderSpecific(C, MAT_CLASSID, 3);
1026     PetscValidType(C, 3);
1027     MatCheckPreallocated(C, 3);
1028     PetscCheck(C->assembled, PetscObjectComm((PetscObject)C), PETSC_ERR_ARG_WRONGSTATE, "Not for unassembled matrix");
1029     PetscCheck(!C->factortype, PetscObjectComm((PetscObject)C), PETSC_ERR_ARG_WRONGSTATE, "Not for factored matrix");
1030   }
1031 
1032   PetscValidHeaderSpecific(D, MAT_CLASSID, 4);
1033   PetscValidType(D, 4);
1034   MatCheckPreallocated(D, 4);
1035   PetscCheck(D->assembled, PetscObjectComm((PetscObject)D), PETSC_ERR_ARG_WRONGSTATE, "Not for unassembled matrix");
1036   PetscCheck(!D->factortype, PetscObjectComm((PetscObject)D), PETSC_ERR_ARG_WRONGSTATE, "Not for factored matrix");
1037 
1038   /* Create a supporting struct and attach it to D */
1039   PetscCall(MatProductClear(D));
1040   PetscCall(MatProductCreate_Private(A, B, C, D));
1041   PetscFunctionReturn(PETSC_SUCCESS);
1042 }
1043 
1044 /*@
1045   MatProductCreate - create a matrix to hold the result of a matrix-matrix product operation
1046 
1047   Collective
1048 
1049   Input Parameters:
1050 + A - the first matrix
1051 . B - the second matrix
1052 - C - the third matrix (or `NULL`)
1053 
1054   Output Parameter:
1055 . D - the matrix whose values are to be computed via a matrix-matrix product operation
1056 
1057   Level: intermediate
1058 
1059   Example:
1060 .vb
1061     MatProductCreate(A,B,C,&D); or MatProductCreateWithMat(A,B,C,D)
1062     MatProductSetType(D, MATPRODUCT_AB or MATPRODUCT_AtB or MATPRODUCT_ABt or MATPRODUCT_PtAP or MATPRODUCT_RARt or MATPRODUCT_ABC)
1063     MatProductSetAlgorithm(D, alg)
1064     MatProductSetFill(D,fill)
1065     MatProductSetFromOptions(D)
1066     MatProductSymbolic(D)
1067     MatProductNumeric(D)
1068     Change numerical values in some of the matrices
1069     MatProductNumeric(D)
1070 .ve
1071 
1072   Notes:
1073   Use `MatProductCreateWithMat()` if the matrix you wish computed, the `D` matrix, already exists.
1074 
1075   The information computed during the symbolic stage can be reused for new numerical computations with the same non-zero structure
1076 
1077   Developer Notes:
1078   It is undocumented what happens if the nonzero structure of the input matrices changes. Is the symbolic stage automatically redone? Does it crash?
1079   Is there error checking for it?
1080 
1081 .seealso: [](ch_matrices), `MatProduct`, `Mat`, `MatProductCreateWithMat()`, `MatProductSetType()`, `MatProductSetAlgorithm()`, `MatProductClear()`
1082 @*/
1083 PetscErrorCode MatProductCreate(Mat A, Mat B, Mat C, Mat *D)
1084 {
1085   PetscFunctionBegin;
1086   PetscValidHeaderSpecific(A, MAT_CLASSID, 1);
1087   PetscValidType(A, 1);
1088   PetscValidHeaderSpecific(B, MAT_CLASSID, 2);
1089   PetscValidType(B, 2);
1090   PetscCheck(!A->factortype, PetscObjectComm((PetscObject)A), PETSC_ERR_ARG_WRONGSTATE, "Not for factored matrix A");
1091   PetscCheck(!B->factortype, PetscObjectComm((PetscObject)B), PETSC_ERR_ARG_WRONGSTATE, "Not for factored matrix B");
1092 
1093   if (C) {
1094     PetscValidHeaderSpecific(C, MAT_CLASSID, 3);
1095     PetscValidType(C, 3);
1096     PetscCheck(!C->factortype, PetscObjectComm((PetscObject)C), PETSC_ERR_ARG_WRONGSTATE, "Not for factored matrix C");
1097   }
1098 
1099   PetscAssertPointer(D, 4);
1100   PetscCall(MatCreate(PetscObjectComm((PetscObject)A), D));
1101   /* Delay setting type of D to the MatProduct symbolic phase, as we allow sparse A and dense B */
1102   PetscCall(MatProductCreate_Private(A, B, C, *D));
1103   PetscFunctionReturn(PETSC_SUCCESS);
1104 }
1105 
1106 /*
1107    These are safe basic implementations of ABC, RARt and PtAP
1108    that do not rely on mat->ops->matmatop function pointers.
1109    They only use the MatProduct API and are currently used by
1110    cuSPARSE and KOKKOS-KERNELS backends
1111 */
1112 typedef struct {
1113   Mat BC;
1114   Mat ABC;
1115 } MatMatMatPrivate;
1116 
1117 static PetscErrorCode MatDestroy_MatMatMatPrivate(void *data)
1118 {
1119   MatMatMatPrivate *mmdata = (MatMatMatPrivate *)data;
1120 
1121   PetscFunctionBegin;
1122   PetscCall(MatDestroy(&mmdata->BC));
1123   PetscCall(MatDestroy(&mmdata->ABC));
1124   PetscCall(PetscFree(data));
1125   PetscFunctionReturn(PETSC_SUCCESS);
1126 }
1127 
1128 static PetscErrorCode MatProductNumeric_ABC_Basic(Mat mat)
1129 {
1130   Mat_Product      *product = mat->product;
1131   MatMatMatPrivate *mmabc;
1132 
1133   PetscFunctionBegin;
1134   MatCheckProduct(mat, 1);
1135   PetscCheck(mat->product->data, PetscObjectComm((PetscObject)mat), PETSC_ERR_PLIB, "Product data empty");
1136   mmabc = (MatMatMatPrivate *)mat->product->data;
1137   PetscCheck(mmabc->BC->ops->productnumeric, PetscObjectComm((PetscObject)mat), PETSC_ERR_PLIB, "Missing numeric stage");
1138   /* use function pointer directly to prevent logging */
1139   PetscCall((*mmabc->BC->ops->productnumeric)(mmabc->BC));
1140   /* swap ABC product stuff with that of ABC for the numeric phase on mat */
1141   mat->product             = mmabc->ABC->product;
1142   mat->ops->productnumeric = mmabc->ABC->ops->productnumeric;
1143   /* use function pointer directly to prevent logging */
1144   PetscUseTypeMethod(mat, productnumeric);
1145   mat->ops->productnumeric = MatProductNumeric_ABC_Basic;
1146   mat->product             = product;
1147   PetscFunctionReturn(PETSC_SUCCESS);
1148 }
1149 
1150 PetscErrorCode MatProductSymbolic_ABC_Basic(Mat mat)
1151 {
1152   Mat_Product      *product = mat->product;
1153   Mat               A, B, C;
1154   MatProductType    p1, p2;
1155   MatMatMatPrivate *mmabc;
1156   const char       *prefix;
1157 
1158   PetscFunctionBegin;
1159   MatCheckProduct(mat, 1);
1160   PetscCheck(!mat->product->data, PetscObjectComm((PetscObject)mat), PETSC_ERR_PLIB, "Product data not empty");
1161   PetscCall(MatGetOptionsPrefix(mat, &prefix));
1162   PetscCall(PetscNew(&mmabc));
1163   product->data    = mmabc;
1164   product->destroy = MatDestroy_MatMatMatPrivate;
1165   switch (product->type) {
1166   case MATPRODUCT_PtAP:
1167     p1 = MATPRODUCT_AB;
1168     p2 = MATPRODUCT_AtB;
1169     A  = product->B;
1170     B  = product->A;
1171     C  = product->B;
1172     break;
1173   case MATPRODUCT_RARt:
1174     p1 = MATPRODUCT_ABt;
1175     p2 = MATPRODUCT_AB;
1176     A  = product->B;
1177     B  = product->A;
1178     C  = product->B;
1179     break;
1180   case MATPRODUCT_ABC:
1181     p1 = MATPRODUCT_AB;
1182     p2 = MATPRODUCT_AB;
1183     A  = product->A;
1184     B  = product->B;
1185     C  = product->C;
1186     break;
1187   default:
1188     SETERRQ(PetscObjectComm((PetscObject)mat), PETSC_ERR_PLIB, "Not for ProductType %s", MatProductTypes[product->type]);
1189   }
1190   PetscCall(MatProductCreate(B, C, NULL, &mmabc->BC));
1191   PetscCall(MatSetOptionsPrefix(mmabc->BC, prefix));
1192   PetscCall(MatAppendOptionsPrefix(mmabc->BC, "P1_"));
1193   PetscCall(MatProductSetType(mmabc->BC, p1));
1194   PetscCall(MatProductSetAlgorithm(mmabc->BC, MATPRODUCTALGORITHMDEFAULT));
1195   PetscCall(MatProductSetFill(mmabc->BC, product->fill));
1196   mmabc->BC->product->api_user = product->api_user;
1197   PetscCall(MatProductSetFromOptions(mmabc->BC));
1198   PetscCheck(mmabc->BC->ops->productsymbolic, PetscObjectComm((PetscObject)mat), PETSC_ERR_SUP, "Symbolic ProductType %s not supported with %s and %s", MatProductTypes[p1], ((PetscObject)B)->type_name, ((PetscObject)C)->type_name);
1199   /* use function pointer directly to prevent logging */
1200   PetscCall((*mmabc->BC->ops->productsymbolic)(mmabc->BC));
1201 
1202   PetscCall(MatProductCreate(A, mmabc->BC, NULL, &mmabc->ABC));
1203   PetscCall(MatSetOptionsPrefix(mmabc->ABC, prefix));
1204   PetscCall(MatAppendOptionsPrefix(mmabc->ABC, "P2_"));
1205   PetscCall(MatProductSetType(mmabc->ABC, p2));
1206   PetscCall(MatProductSetAlgorithm(mmabc->ABC, MATPRODUCTALGORITHMDEFAULT));
1207   PetscCall(MatProductSetFill(mmabc->ABC, product->fill));
1208   mmabc->ABC->product->api_user = product->api_user;
1209   PetscCall(MatProductSetFromOptions(mmabc->ABC));
1210   PetscCheck(mmabc->ABC->ops->productsymbolic, PetscObjectComm((PetscObject)mat), PETSC_ERR_SUP, "Symbolic ProductType %s not supported with %s and %s", MatProductTypes[p2], ((PetscObject)A)->type_name, ((PetscObject)mmabc->BC)->type_name);
1211   /* swap ABC product stuff with that of ABC for the symbolic phase on mat */
1212   mat->product              = mmabc->ABC->product;
1213   mat->ops->productsymbolic = mmabc->ABC->ops->productsymbolic;
1214   /* use function pointer directly to prevent logging */
1215   PetscUseTypeMethod(mat, productsymbolic);
1216   mmabc->ABC->ops->productnumeric = mat->ops->productnumeric;
1217   mat->ops->productsymbolic       = MatProductSymbolic_ABC_Basic;
1218   mat->ops->productnumeric        = MatProductNumeric_ABC_Basic;
1219   mat->product                    = product;
1220   PetscFunctionReturn(PETSC_SUCCESS);
1221 }
1222 
1223 /*@
1224   MatProductGetType - Returns the type of matrix-matrix product associated with computing values for the given matrix
1225 
1226   Not Collective
1227 
1228   Input Parameter:
1229 . mat - the matrix whose values are to be computed via a matrix-matrix product operation
1230 
1231   Output Parameter:
1232 . mtype - the `MatProductType`
1233 
1234   Level: intermediate
1235 
1236 .seealso: [](ch_matrices), `MatProduct`, `Mat`, `MatProductCreateWithMat()`, `MatProductSetType()`, `MatProductCreate()`, `MatProductType`, `MatProductAlgorithm`
1237 @*/
1238 PetscErrorCode MatProductGetType(Mat mat, MatProductType *mtype)
1239 {
1240   PetscFunctionBegin;
1241   PetscValidHeaderSpecific(mat, MAT_CLASSID, 1);
1242   PetscAssertPointer(mtype, 2);
1243   *mtype = MATPRODUCT_UNSPECIFIED;
1244   if (mat->product) *mtype = mat->product->type;
1245   PetscFunctionReturn(PETSC_SUCCESS);
1246 }
1247 
1248 /*@
1249   MatProductGetMats - Returns the matrices associated with the matrix-matrix product associated with computing values for the given matrix
1250 
1251   Not Collective
1252 
1253   Input Parameter:
1254 . mat - the matrix whose values are to be computed via a matrix-matrix product operation
1255 
1256   Output Parameters:
1257 + A - the first matrix
1258 . B - the second matrix
1259 - C - the third matrix (may be `NULL` for some `MatProductType`)
1260 
1261   Level: intermediate
1262 
1263 .seealso: [](ch_matrices), `MatProduct`, `Mat`, `MatProductCreateWithMat()`, `MatProductSetType()`, `MatProductSetAlgorithm()`, `MatProductCreate()`
1264 @*/
1265 PetscErrorCode MatProductGetMats(Mat mat, Mat *A, Mat *B, Mat *C)
1266 {
1267   PetscFunctionBegin;
1268   PetscValidHeaderSpecific(mat, MAT_CLASSID, 1);
1269   if (A) *A = mat->product ? mat->product->A : NULL;
1270   if (B) *B = mat->product ? mat->product->B : NULL;
1271   if (C) *C = mat->product ? mat->product->C : NULL;
1272   PetscFunctionReturn(PETSC_SUCCESS);
1273 }
1274