xref: /petsc/src/ts/utils/dmplexlandau/plexland.c (revision d9acb416d05abeed0a33bde3a81aeb2ea0364f6a)
1 #include <../src/mat/impls/aij/seq/aij.h>
2 #include <petsc/private/dmpleximpl.h> /*I "petscdmplex.h" I*/
3 #include <petsclandau.h>              /*I "petsclandau.h"   I*/
4 #include <petscts.h>
5 #include <petscdmforest.h>
6 #include <petscdmcomposite.h>
7 
8 /* Landau collision operator */
9 
10 /* relativistic terms */
11 #if defined(PETSC_USE_REAL_SINGLE)
12   #define SPEED_OF_LIGHT 2.99792458e8F
13   #define C_0(v0)        (SPEED_OF_LIGHT / v0) /* needed for relativistic tensor on all architectures */
14 #else
15   #define SPEED_OF_LIGHT 2.99792458e8
16   #define C_0(v0)        (SPEED_OF_LIGHT / v0) /* needed for relativistic tensor on all architectures */
17 #endif
18 
19 #include "land_tensors.h"
20 
21 #if defined(PETSC_HAVE_OPENMP)
22   #include <omp.h>
23 #endif
24 
25 static PetscErrorCode LandauGPUMapsDestroy(void *ptr)
26 {
27   P4estVertexMaps *maps = (P4estVertexMaps *)ptr;
28   PetscFunctionBegin;
29   // free device data
30   if (maps[0].deviceType != LANDAU_CPU) {
31 #if defined(PETSC_HAVE_KOKKOS)
32     if (maps[0].deviceType == LANDAU_KOKKOS) {
33       PetscCall(LandauKokkosDestroyMatMaps(maps, maps[0].numgrids)); // implies Kokkos does
34     }
35 #endif
36   }
37   // free host data
38   for (PetscInt grid = 0; grid < maps[0].numgrids; grid++) {
39     PetscCall(PetscFree(maps[grid].c_maps));
40     PetscCall(PetscFree(maps[grid].gIdx));
41   }
42   PetscCall(PetscFree(maps));
43 
44   PetscFunctionReturn(PETSC_SUCCESS);
45 }
46 static PetscErrorCode energy_f(PetscInt dim, PetscReal time, const PetscReal x[], PetscInt Nf_dummy, PetscScalar *u, void *actx)
47 {
48   PetscReal v2 = 0;
49   PetscFunctionBegin;
50   /* compute v^2 / 2 */
51   for (int i = 0; i < dim; ++i) v2 += x[i] * x[i];
52   /* evaluate the Maxwellian */
53   u[0] = v2 / 2;
54   PetscFunctionReturn(PETSC_SUCCESS);
55 }
56 
57 /* needs double */
58 static PetscErrorCode gamma_m1_f(PetscInt dim, PetscReal time, const PetscReal x[], PetscInt Nf_dummy, PetscScalar *u, void *actx)
59 {
60   PetscReal *c2_0_arr = ((PetscReal *)actx);
61   double     u2 = 0, c02 = (double)*c2_0_arr, xx;
62 
63   PetscFunctionBegin;
64   /* compute u^2 / 2 */
65   for (int i = 0; i < dim; ++i) u2 += x[i] * x[i];
66   /* gamma - 1 = g_eps, for conditioning and we only take derivatives */
67   xx = u2 / c02;
68 #if defined(PETSC_USE_DEBUG)
69   u[0] = PetscSqrtReal(1. + xx);
70 #else
71   u[0] = xx / (PetscSqrtReal(1. + xx) + 1.) - 1.; // better conditioned. -1 might help condition and only used for derivative
72 #endif
73   PetscFunctionReturn(PETSC_SUCCESS);
74 }
75 
76 /*
77  LandauFormJacobian_Internal - Evaluates Jacobian matrix.
78 
79  Input Parameters:
80  .  globX - input vector
81  .  actx - optional user-defined context
82  .  dim - dimension
83 
84  Output Parameter:
85  .  J0acP - Jacobian matrix filled, not created
86  */
87 static PetscErrorCode LandauFormJacobian_Internal(Vec a_X, Mat JacP, const PetscInt dim, PetscReal shift, void *a_ctx)
88 {
89   LandauCtx         *ctx = (LandauCtx *)a_ctx;
90   PetscInt           numCells[LANDAU_MAX_GRIDS], Nq, Nb;
91   PetscQuadrature    quad;
92   PetscReal          Eq_m[LANDAU_MAX_SPECIES]; // could be static data w/o quench (ex2)
93   PetscScalar       *cellClosure = NULL;
94   const PetscScalar *xdata       = NULL;
95   PetscDS            prob;
96   PetscContainer     container;
97   P4estVertexMaps   *maps;
98   Mat                subJ[LANDAU_MAX_GRIDS * LANDAU_MAX_BATCH_SZ];
99 
100   PetscFunctionBegin;
101   PetscValidHeaderSpecific(a_X, VEC_CLASSID, 1);
102   PetscValidHeaderSpecific(JacP, MAT_CLASSID, 2);
103   PetscAssertPointer(ctx, 5);
104   /* check for matrix container for GPU assembly. Support CPU assembly for debugging */
105   PetscCheck(ctx->plex[0] != NULL, ctx->comm, PETSC_ERR_ARG_WRONG, "Plex not created");
106   PetscCall(PetscLogEventBegin(ctx->events[10], 0, 0, 0, 0));
107   PetscCall(DMGetDS(ctx->plex[0], &prob)); // same DS for all grids
108   PetscCall(PetscObjectQuery((PetscObject)JacP, "assembly_maps", (PetscObject *)&container));
109   if (container) {
110     PetscCheck(ctx->gpu_assembly, ctx->comm, PETSC_ERR_ARG_WRONG, "maps but no GPU assembly");
111     PetscCall(PetscContainerGetPointer(container, (void **)&maps));
112     PetscCheck(maps, ctx->comm, PETSC_ERR_ARG_WRONG, "empty GPU matrix container");
113     for (PetscInt i = 0; i < ctx->num_grids * ctx->batch_sz; i++) subJ[i] = NULL;
114   } else {
115     PetscCheck(!ctx->gpu_assembly, ctx->comm, PETSC_ERR_ARG_WRONG, "No maps but GPU assembly");
116     for (PetscInt tid = 0; tid < ctx->batch_sz; tid++) {
117       for (PetscInt grid = 0; grid < ctx->num_grids; grid++) PetscCall(DMCreateMatrix(ctx->plex[grid], &subJ[LAND_PACK_IDX(tid, grid)]));
118     }
119     maps = NULL;
120   }
121   // get dynamic data (Eq is odd, for quench and Spitzer test) for CPU assembly and raw data for Jacobian GPU assembly. Get host numCells[], Nq (yuck)
122   PetscCall(PetscFEGetQuadrature(ctx->fe[0], &quad));
123   PetscCall(PetscQuadratureGetData(quad, NULL, NULL, &Nq, NULL, NULL));
124   PetscCall(PetscFEGetDimension(ctx->fe[0], &Nb));
125   PetscCheck(Nq <= LANDAU_MAX_NQND, ctx->comm, PETSC_ERR_ARG_WRONG, "Order too high. Nq = %" PetscInt_FMT " > LANDAU_MAX_NQND (%d)", Nq, LANDAU_MAX_NQND);
126   PetscCheck(Nb <= LANDAU_MAX_NQND, ctx->comm, PETSC_ERR_ARG_WRONG, "Order too high. Nb = %" PetscInt_FMT " > LANDAU_MAX_NQND (%d)", Nb, LANDAU_MAX_NQND);
127   // get metadata for collecting dynamic data
128   for (PetscInt grid = 0; grid < ctx->num_grids; grid++) {
129     PetscInt cStart, cEnd;
130     PetscCheck(ctx->plex[grid] != NULL, ctx->comm, PETSC_ERR_ARG_WRONG, "Plex not created");
131     PetscCall(DMPlexGetHeightStratum(ctx->plex[grid], 0, &cStart, &cEnd));
132     numCells[grid] = cEnd - cStart; // grids can have different topology
133   }
134   PetscCall(PetscLogEventEnd(ctx->events[10], 0, 0, 0, 0));
135   if (shift == 0) { /* create dynamic point data: f_alpha for closure of each cell (cellClosure[nbatch,ngrids,ncells[g],f[Nb,ns[g]]]) or xdata */
136     DM pack;
137     PetscCall(VecGetDM(a_X, &pack));
138     PetscCheck(pack, PETSC_COMM_SELF, PETSC_ERR_PLIB, "pack has no DM");
139     PetscCall(PetscLogEventBegin(ctx->events[1], 0, 0, 0, 0));
140     for (PetscInt fieldA = 0; fieldA < ctx->num_species; fieldA++) {
141       Eq_m[fieldA] = ctx->Ez * ctx->t_0 * ctx->charges[fieldA] / (ctx->v_0 * ctx->masses[fieldA]); /* normalize dimensionless */
142       if (dim == 2) Eq_m[fieldA] *= 2 * PETSC_PI;                                                  /* add the 2pi term that is not in Landau */
143     }
144     if (!ctx->gpu_assembly) {
145       Vec         *locXArray, *globXArray;
146       PetscScalar *cellClosure_it;
147       PetscInt     cellClosure_sz = 0, nDMs, Nf[LANDAU_MAX_GRIDS];
148       PetscSection section[LANDAU_MAX_GRIDS], globsection[LANDAU_MAX_GRIDS];
149       for (PetscInt grid = 0; grid < ctx->num_grids; grid++) {
150         PetscCall(DMGetLocalSection(ctx->plex[grid], &section[grid]));
151         PetscCall(DMGetGlobalSection(ctx->plex[grid], &globsection[grid]));
152         PetscCall(PetscSectionGetNumFields(section[grid], &Nf[grid]));
153       }
154       /* count cellClosure size */
155       PetscCall(DMCompositeGetNumberDM(pack, &nDMs));
156       for (PetscInt grid = 0; grid < ctx->num_grids; grid++) cellClosure_sz += Nb * Nf[grid] * numCells[grid];
157       PetscCall(PetscMalloc1(cellClosure_sz * ctx->batch_sz, &cellClosure));
158       cellClosure_it = cellClosure;
159       PetscCall(PetscMalloc(sizeof(*locXArray) * nDMs, &locXArray));
160       PetscCall(PetscMalloc(sizeof(*globXArray) * nDMs, &globXArray));
161       PetscCall(DMCompositeGetLocalAccessArray(pack, a_X, nDMs, NULL, locXArray));
162       PetscCall(DMCompositeGetAccessArray(pack, a_X, nDMs, NULL, globXArray));
163       for (PetscInt b_id = 0; b_id < ctx->batch_sz; b_id++) { // OpenMP (once)
164         for (PetscInt grid = 0; grid < ctx->num_grids; grid++) {
165           Vec      locX = locXArray[LAND_PACK_IDX(b_id, grid)], globX = globXArray[LAND_PACK_IDX(b_id, grid)], locX2;
166           PetscInt cStart, cEnd, ei;
167           PetscCall(VecDuplicate(locX, &locX2));
168           PetscCall(DMGlobalToLocalBegin(ctx->plex[grid], globX, INSERT_VALUES, locX2));
169           PetscCall(DMGlobalToLocalEnd(ctx->plex[grid], globX, INSERT_VALUES, locX2));
170           PetscCall(DMPlexGetHeightStratum(ctx->plex[grid], 0, &cStart, &cEnd));
171           for (ei = cStart; ei < cEnd; ++ei) {
172             PetscScalar *coef = NULL;
173             PetscCall(DMPlexVecGetClosure(ctx->plex[grid], section[grid], locX2, ei, NULL, &coef));
174             PetscCall(PetscMemcpy(cellClosure_it, coef, Nb * Nf[grid] * sizeof(*cellClosure_it))); /* change if LandauIPReal != PetscScalar */
175             PetscCall(DMPlexVecRestoreClosure(ctx->plex[grid], section[grid], locX2, ei, NULL, &coef));
176             cellClosure_it += Nb * Nf[grid];
177           }
178           PetscCall(VecDestroy(&locX2));
179         }
180       }
181       PetscCheck(cellClosure_it - cellClosure == cellClosure_sz * ctx->batch_sz, PETSC_COMM_SELF, PETSC_ERR_PLIB, "iteration wrong %" PetscCount_FMT " != cellClosure_sz = %" PetscInt_FMT, (PetscCount)(cellClosure_it - cellClosure),
182                  cellClosure_sz * ctx->batch_sz);
183       PetscCall(DMCompositeRestoreLocalAccessArray(pack, a_X, nDMs, NULL, locXArray));
184       PetscCall(DMCompositeRestoreAccessArray(pack, a_X, nDMs, NULL, globXArray));
185       PetscCall(PetscFree(locXArray));
186       PetscCall(PetscFree(globXArray));
187       xdata = NULL;
188     } else {
189       PetscMemType mtype;
190       if (ctx->jacobian_field_major_order) { // get data in batch ordering
191         PetscCall(VecScatterBegin(ctx->plex_batch, a_X, ctx->work_vec, INSERT_VALUES, SCATTER_FORWARD));
192         PetscCall(VecScatterEnd(ctx->plex_batch, a_X, ctx->work_vec, INSERT_VALUES, SCATTER_FORWARD));
193         PetscCall(VecGetArrayReadAndMemType(ctx->work_vec, &xdata, &mtype));
194       } else {
195         PetscCall(VecGetArrayReadAndMemType(a_X, &xdata, &mtype));
196       }
197       PetscCheck(mtype == PETSC_MEMTYPE_HOST || ctx->deviceType != LANDAU_CPU, ctx->comm, PETSC_ERR_ARG_WRONG, "CPU run with device data: use -mat_type aij");
198       cellClosure = NULL;
199     }
200     PetscCall(PetscLogEventEnd(ctx->events[1], 0, 0, 0, 0));
201   } else xdata = cellClosure = NULL;
202 
203   /* do it */
204   if (ctx->deviceType == LANDAU_KOKKOS) {
205 #if defined(PETSC_HAVE_KOKKOS)
206     PetscCall(LandauKokkosJacobian(ctx->plex, Nq, Nb, ctx->batch_sz, ctx->num_grids, numCells, Eq_m, cellClosure, xdata, &ctx->SData_d, shift, ctx->events, ctx->mat_offset, ctx->species_offset, subJ, JacP));
207 #else
208     SETERRQ(ctx->comm, PETSC_ERR_ARG_WRONG, "-landau_device_type %s not built", "kokkos");
209 #endif
210   } else {               /* CPU version */
211     PetscTabulation *Tf; // used for CPU and print info. Same on all grids and all species
212     PetscInt         ip_offset[LANDAU_MAX_GRIDS + 1], ipf_offset[LANDAU_MAX_GRIDS + 1], elem_offset[LANDAU_MAX_GRIDS + 1], IPf_sz_glb, IPf_sz_tot, num_grids = ctx->num_grids, Nf[LANDAU_MAX_GRIDS];
213     PetscReal       *ff, *dudx, *dudy, *dudz, *invJ_a = (PetscReal *)ctx->SData_d.invJ, *xx = (PetscReal *)ctx->SData_d.x, *yy = (PetscReal *)ctx->SData_d.y, *zz = (PetscReal *)ctx->SData_d.z, *ww = (PetscReal *)ctx->SData_d.w;
214     PetscReal       *nu_alpha = (PetscReal *)ctx->SData_d.alpha, *nu_beta = (PetscReal *)ctx->SData_d.beta, *invMass = (PetscReal *)ctx->SData_d.invMass;
215     PetscReal(*lambdas)[LANDAU_MAX_GRIDS][LANDAU_MAX_GRIDS] = (PetscReal(*)[LANDAU_MAX_GRIDS][LANDAU_MAX_GRIDS])ctx->SData_d.lambdas;
216     PetscSection section[LANDAU_MAX_GRIDS], globsection[LANDAU_MAX_GRIDS];
217     PetscScalar *coo_vals = NULL;
218     for (PetscInt grid = 0; grid < ctx->num_grids; grid++) {
219       PetscCall(DMGetLocalSection(ctx->plex[grid], &section[grid]));
220       PetscCall(DMGetGlobalSection(ctx->plex[grid], &globsection[grid]));
221       PetscCall(PetscSectionGetNumFields(section[grid], &Nf[grid]));
222     }
223     /* count IPf size, etc */
224     PetscCall(PetscDSGetTabulation(prob, &Tf)); // Bf, &Df same for all grids
225     const PetscReal *const BB = Tf[0]->T[0], *const DD = Tf[0]->T[1];
226     ip_offset[0] = ipf_offset[0] = elem_offset[0] = 0;
227     for (PetscInt grid = 0; grid < num_grids; grid++) {
228       PetscInt nfloc        = ctx->species_offset[grid + 1] - ctx->species_offset[grid];
229       elem_offset[grid + 1] = elem_offset[grid] + numCells[grid];
230       ip_offset[grid + 1]   = ip_offset[grid] + numCells[grid] * Nq;
231       ipf_offset[grid + 1]  = ipf_offset[grid] + Nq * nfloc * numCells[grid];
232     }
233     IPf_sz_glb = ipf_offset[num_grids];
234     IPf_sz_tot = IPf_sz_glb * ctx->batch_sz;
235     // prep COO
236     PetscCall(PetscMalloc1(ctx->SData_d.coo_size, &coo_vals)); // allocate every time?
237     if (shift == 0.0) {                                        /* compute dynamic data f and df and init data for Jacobian */
238 #if defined(PETSC_HAVE_THREADSAFETY)
239       double starttime, endtime;
240       starttime = MPI_Wtime();
241 #endif
242       PetscCall(PetscLogEventBegin(ctx->events[8], 0, 0, 0, 0));
243       PetscCall(PetscMalloc4(IPf_sz_tot, &ff, IPf_sz_tot, &dudx, IPf_sz_tot, &dudy, dim == 3 ? IPf_sz_tot : 0, &dudz));
244       // F df/dx
245       for (PetscInt tid = 0; tid < ctx->batch_sz * elem_offset[num_grids]; tid++) {                        // for each element
246         const PetscInt b_Nelem = elem_offset[num_grids], b_elem_idx = tid % b_Nelem, b_id = tid / b_Nelem; // b_id == OMP thd_id in batch
247         // find my grid:
248         PetscInt grid = 0;
249         while (b_elem_idx >= elem_offset[grid + 1]) grid++; // yuck search for grid
250         {
251           const PetscInt loc_nip = numCells[grid] * Nq, loc_Nf = ctx->species_offset[grid + 1] - ctx->species_offset[grid], loc_elem = b_elem_idx - elem_offset[grid];
252           const PetscInt moffset = LAND_MOFFSET(b_id, grid, ctx->batch_sz, ctx->num_grids, ctx->mat_offset); //b_id*b_N + ctx->mat_offset[grid];
253           PetscScalar   *coef, coef_buff[LANDAU_MAX_SPECIES * LANDAU_MAX_NQND];
254           PetscReal     *invJe = &invJ_a[(ip_offset[grid] + loc_elem * Nq) * dim * dim]; // ingJ is static data on batch 0
255           PetscInt       b, f, q;
256           if (cellClosure) {
257             coef = &cellClosure[b_id * IPf_sz_glb + ipf_offset[grid] + loc_elem * Nb * loc_Nf]; // this is const
258           } else {
259             coef = coef_buff;
260             for (f = 0; f < loc_Nf; ++f) {
261               LandauIdx *const Idxs = &maps[grid].gIdx[loc_elem][f][0];
262               for (b = 0; b < Nb; ++b) {
263                 PetscInt idx = Idxs[b];
264                 if (idx >= 0) {
265                   coef[f * Nb + b] = xdata[idx + moffset];
266                 } else {
267                   idx              = -idx - 1;
268                   coef[f * Nb + b] = 0;
269                   for (q = 0; q < maps[grid].num_face; q++) {
270                     PetscInt    id    = maps[grid].c_maps[idx][q].gid;
271                     PetscScalar scale = maps[grid].c_maps[idx][q].scale;
272                     coef[f * Nb + b] += scale * xdata[id + moffset];
273                   }
274                 }
275               }
276             }
277           }
278           /* get f and df */
279           for (PetscInt qi = 0; qi < Nq; qi++) {
280             const PetscReal *invJ = &invJe[qi * dim * dim];
281             const PetscReal *Bq   = &BB[qi * Nb];
282             const PetscReal *Dq   = &DD[qi * Nb * dim];
283             PetscReal        u_x[LANDAU_DIM];
284             /* get f & df */
285             for (f = 0; f < loc_Nf; ++f) {
286               const PetscInt idx = b_id * IPf_sz_glb + ipf_offset[grid] + f * loc_nip + loc_elem * Nq + qi;
287               PetscInt       b, e;
288               PetscReal      refSpaceDer[LANDAU_DIM];
289               ff[idx] = 0.0;
290               for (int d = 0; d < LANDAU_DIM; ++d) refSpaceDer[d] = 0.0;
291               for (b = 0; b < Nb; ++b) {
292                 const PetscInt cidx = b;
293                 ff[idx] += Bq[cidx] * PetscRealPart(coef[f * Nb + cidx]);
294                 for (int d = 0; d < dim; ++d) refSpaceDer[d] += Dq[cidx * dim + d] * PetscRealPart(coef[f * Nb + cidx]);
295               }
296               for (int d = 0; d < LANDAU_DIM; ++d) {
297                 for (e = 0, u_x[d] = 0.0; e < LANDAU_DIM; ++e) u_x[d] += invJ[e * dim + d] * refSpaceDer[e];
298               }
299               dudx[idx] = u_x[0];
300               dudy[idx] = u_x[1];
301 #if LANDAU_DIM == 3
302               dudz[idx] = u_x[2];
303 #endif
304             }
305           } // q
306         }   // grid
307       }     // grid*batch
308       PetscCall(PetscLogEventEnd(ctx->events[8], 0, 0, 0, 0));
309 #if defined(PETSC_HAVE_THREADSAFETY)
310       endtime = MPI_Wtime();
311       if (ctx->stage) ctx->times[LANDAU_F_DF] += (endtime - starttime);
312 #endif
313     } // Jacobian setup
314     // assemble Jacobian (or mass)
315     for (PetscInt tid = 0; tid < ctx->batch_sz * elem_offset[num_grids]; tid++) { // for each element
316       const PetscInt b_Nelem      = elem_offset[num_grids];
317       const PetscInt glb_elem_idx = tid % b_Nelem, b_id = tid / b_Nelem;
318       PetscInt       grid = 0;
319 #if defined(PETSC_HAVE_THREADSAFETY)
320       double starttime, endtime;
321       starttime = MPI_Wtime();
322 #endif
323       while (glb_elem_idx >= elem_offset[grid + 1]) grid++;
324       {
325         const PetscInt   loc_Nf = ctx->species_offset[grid + 1] - ctx->species_offset[grid], loc_elem = glb_elem_idx - elem_offset[grid];
326         const PetscInt   moffset = LAND_MOFFSET(b_id, grid, ctx->batch_sz, ctx->num_grids, ctx->mat_offset), totDim = loc_Nf * Nq, elemMatSize = totDim * totDim;
327         PetscScalar     *elemMat;
328         const PetscReal *invJe = &invJ_a[(ip_offset[grid] + loc_elem * Nq) * dim * dim];
329         PetscCall(PetscMalloc1(elemMatSize, &elemMat));
330         PetscCall(PetscMemzero(elemMat, elemMatSize * sizeof(*elemMat)));
331         if (shift == 0.0) { // Jacobian
332           PetscCall(PetscLogEventBegin(ctx->events[4], 0, 0, 0, 0));
333         } else { // mass
334           PetscCall(PetscLogEventBegin(ctx->events[16], 0, 0, 0, 0));
335         }
336         for (PetscInt qj = 0; qj < Nq; ++qj) {
337           const PetscInt jpidx_glb = ip_offset[grid] + qj + loc_elem * Nq;
338           PetscReal      g0[LANDAU_MAX_SPECIES], g2[LANDAU_MAX_SPECIES][LANDAU_DIM], g3[LANDAU_MAX_SPECIES][LANDAU_DIM][LANDAU_DIM]; // could make a LANDAU_MAX_SPECIES_GRID ~ number of ions - 1
339           PetscInt       d, d2, dp, d3, IPf_idx;
340           if (shift == 0.0) { // Jacobian
341             const PetscReal *const invJj = &invJe[qj * dim * dim];
342             PetscReal              gg2[LANDAU_MAX_SPECIES][LANDAU_DIM], gg3[LANDAU_MAX_SPECIES][LANDAU_DIM][LANDAU_DIM], gg2_temp[LANDAU_DIM], gg3_temp[LANDAU_DIM][LANDAU_DIM];
343             const PetscReal        vj[3] = {xx[jpidx_glb], yy[jpidx_glb], zz ? zz[jpidx_glb] : 0}, wj = ww[jpidx_glb];
344             // create g2 & g3
345             for (d = 0; d < LANDAU_DIM; d++) { // clear accumulation data D & K
346               gg2_temp[d] = 0;
347               for (d2 = 0; d2 < LANDAU_DIM; d2++) gg3_temp[d][d2] = 0;
348             }
349             /* inner beta reduction */
350             IPf_idx = 0;
351             for (PetscInt grid_r = 0, f_off = 0, ipidx = 0; grid_r < ctx->num_grids; grid_r++, f_off = ctx->species_offset[grid_r]) { // IPf_idx += nip_loc_r*Nfloc_r
352               PetscInt nip_loc_r = numCells[grid_r] * Nq, Nfloc_r = Nf[grid_r];
353               for (PetscInt ei_r = 0, loc_fdf_idx = 0; ei_r < numCells[grid_r]; ++ei_r) {
354                 for (PetscInt qi = 0; qi < Nq; qi++, ipidx++, loc_fdf_idx++) {
355                   const PetscReal wi = ww[ipidx], x = xx[ipidx], y = yy[ipidx];
356                   PetscReal       temp1[3] = {0, 0, 0}, temp2 = 0;
357 #if LANDAU_DIM == 2
358                   PetscReal Ud[2][2], Uk[2][2], mask = (PetscAbs(vj[0] - x) < 100 * PETSC_SQRT_MACHINE_EPSILON && PetscAbs(vj[1] - y) < 100 * PETSC_SQRT_MACHINE_EPSILON) ? 0. : 1.;
359                   LandauTensor2D(vj, x, y, Ud, Uk, mask);
360 #else
361                   PetscReal U[3][3], z = zz[ipidx], mask = (PetscAbs(vj[0] - x) < 100 * PETSC_SQRT_MACHINE_EPSILON && PetscAbs(vj[1] - y) < 100 * PETSC_SQRT_MACHINE_EPSILON && PetscAbs(vj[2] - z) < 100 * PETSC_SQRT_MACHINE_EPSILON) ? 0. : 1.;
362                   if (ctx->use_relativistic_corrections) {
363                     LandauTensor3DRelativistic(vj, x, y, z, U, mask, C_0(ctx->v_0));
364                   } else {
365                     LandauTensor3D(vj, x, y, z, U, mask);
366                   }
367 #endif
368                   for (int f = 0; f < Nfloc_r; ++f) {
369                     const PetscInt idx = b_id * IPf_sz_glb + ipf_offset[grid_r] + f * nip_loc_r + ei_r * Nq + qi; // IPf_idx + f*nip_loc_r + loc_fdf_idx;
370                     temp1[0] += dudx[idx] * nu_beta[f + f_off] * invMass[f + f_off] * (*lambdas)[grid][grid_r];
371                     temp1[1] += dudy[idx] * nu_beta[f + f_off] * invMass[f + f_off] * (*lambdas)[grid][grid_r];
372 #if LANDAU_DIM == 3
373                     temp1[2] += dudz[idx] * nu_beta[f + f_off] * invMass[f + f_off] * (*lambdas)[grid][grid_r];
374 #endif
375                     temp2 += ff[idx] * nu_beta[f + f_off] * (*lambdas)[grid][grid_r];
376                   }
377                   temp1[0] *= wi;
378                   temp1[1] *= wi;
379 #if LANDAU_DIM == 3
380                   temp1[2] *= wi;
381 #endif
382                   temp2 *= wi;
383 #if LANDAU_DIM == 2
384                   for (d2 = 0; d2 < 2; d2++) {
385                     for (d3 = 0; d3 < 2; ++d3) {
386                       /* K = U * grad(f): g2=e: i,A */
387                       gg2_temp[d2] += Uk[d2][d3] * temp1[d3];
388                       /* D = -U * (I \kron (fx)): g3=f: i,j,A */
389                       gg3_temp[d2][d3] += Ud[d2][d3] * temp2;
390                     }
391                   }
392 #else
393                   for (d2 = 0; d2 < 3; ++d2) {
394                     for (d3 = 0; d3 < 3; ++d3) {
395                       /* K = U * grad(f): g2 = e: i,A */
396                       gg2_temp[d2] += U[d2][d3] * temp1[d3];
397                       /* D = -U * (I \kron (fx)): g3 = f: i,j,A */
398                       gg3_temp[d2][d3] += U[d2][d3] * temp2;
399                     }
400                   }
401 #endif
402                 } // qi
403               }   // ei_r
404               IPf_idx += nip_loc_r * Nfloc_r;
405             } /* grid_r - IPs */
406             PetscCheck(IPf_idx == IPf_sz_glb, PETSC_COMM_SELF, PETSC_ERR_PLIB, "IPf_idx != IPf_sz %" PetscInt_FMT " %" PetscInt_FMT, IPf_idx, IPf_sz_glb);
407             // add alpha and put in gg2/3
408             for (PetscInt fieldA = 0, f_off = ctx->species_offset[grid]; fieldA < loc_Nf; ++fieldA) {
409               for (d2 = 0; d2 < LANDAU_DIM; d2++) {
410                 gg2[fieldA][d2] = gg2_temp[d2] * nu_alpha[fieldA + f_off];
411                 for (d3 = 0; d3 < LANDAU_DIM; d3++) gg3[fieldA][d2][d3] = -gg3_temp[d2][d3] * nu_alpha[fieldA + f_off] * invMass[fieldA + f_off];
412               }
413             }
414             /* add electric field term once per IP */
415             for (PetscInt fieldA = 0, f_off = ctx->species_offset[grid]; fieldA < loc_Nf; ++fieldA) gg2[fieldA][LANDAU_DIM - 1] += Eq_m[fieldA + f_off];
416             /* Jacobian transform - g2, g3 */
417             for (PetscInt fieldA = 0; fieldA < loc_Nf; ++fieldA) {
418               for (d = 0; d < dim; ++d) {
419                 g2[fieldA][d] = 0.0;
420                 for (d2 = 0; d2 < dim; ++d2) {
421                   g2[fieldA][d] += invJj[d * dim + d2] * gg2[fieldA][d2];
422                   g3[fieldA][d][d2] = 0.0;
423                   for (d3 = 0; d3 < dim; ++d3) {
424                     for (dp = 0; dp < dim; ++dp) g3[fieldA][d][d2] += invJj[d * dim + d3] * gg3[fieldA][d3][dp] * invJj[d2 * dim + dp];
425                   }
426                   g3[fieldA][d][d2] *= wj;
427                 }
428                 g2[fieldA][d] *= wj;
429               }
430             }
431           } else { // mass
432             PetscReal wj = ww[jpidx_glb];
433             /* Jacobian transform - g0 */
434             for (PetscInt fieldA = 0; fieldA < loc_Nf; ++fieldA) {
435               if (dim == 2) {
436                 g0[fieldA] = wj * shift * 2. * PETSC_PI; // move this to below and remove g0
437               } else {
438                 g0[fieldA] = wj * shift; // move this to below and remove g0
439               }
440             }
441           }
442           /* FE matrix construction */
443           {
444             PetscInt         fieldA, d, f, d2, g;
445             const PetscReal *BJq = &BB[qj * Nb], *DIq = &DD[qj * Nb * dim];
446             /* assemble - on the diagonal (I,I) */
447             for (fieldA = 0; fieldA < loc_Nf; fieldA++) {
448               for (f = 0; f < Nb; f++) {
449                 const PetscInt i = fieldA * Nb + f; /* Element matrix row */
450                 for (g = 0; g < Nb; ++g) {
451                   const PetscInt j    = fieldA * Nb + g; /* Element matrix column */
452                   const PetscInt fOff = i * totDim + j;
453                   if (shift == 0.0) {
454                     for (d = 0; d < dim; ++d) {
455                       elemMat[fOff] += DIq[f * dim + d] * g2[fieldA][d] * BJq[g];
456                       for (d2 = 0; d2 < dim; ++d2) elemMat[fOff] += DIq[f * dim + d] * g3[fieldA][d][d2] * DIq[g * dim + d2];
457                     }
458                   } else { // mass
459                     elemMat[fOff] += BJq[f] * g0[fieldA] * BJq[g];
460                   }
461                 }
462               }
463             }
464           }
465         }                   /* qj loop */
466         if (shift == 0.0) { // Jacobian
467           PetscCall(PetscLogEventEnd(ctx->events[4], 0, 0, 0, 0));
468         } else {
469           PetscCall(PetscLogEventEnd(ctx->events[16], 0, 0, 0, 0));
470         }
471 #if defined(PETSC_HAVE_THREADSAFETY)
472         endtime = MPI_Wtime();
473         if (ctx->stage) ctx->times[LANDAU_KERNEL] += (endtime - starttime);
474 #endif
475         /* assemble matrix */
476         if (!container) {
477           PetscInt cStart;
478           PetscCall(PetscLogEventBegin(ctx->events[6], 0, 0, 0, 0));
479           PetscCall(DMPlexGetHeightStratum(ctx->plex[grid], 0, &cStart, NULL));
480           PetscCall(DMPlexMatSetClosure(ctx->plex[grid], section[grid], globsection[grid], subJ[LAND_PACK_IDX(b_id, grid)], loc_elem + cStart, elemMat, ADD_VALUES));
481           PetscCall(PetscLogEventEnd(ctx->events[6], 0, 0, 0, 0));
482         } else { // GPU like assembly for debugging
483           PetscInt    fieldA, q, f, g, d, nr, nc, rows0[LANDAU_MAX_Q_FACE] = {0}, cols0[LANDAU_MAX_Q_FACE] = {0}, rows[LANDAU_MAX_Q_FACE], cols[LANDAU_MAX_Q_FACE];
484           PetscScalar vals[LANDAU_MAX_Q_FACE * LANDAU_MAX_Q_FACE] = {0}, row_scale[LANDAU_MAX_Q_FACE] = {0}, col_scale[LANDAU_MAX_Q_FACE] = {0};
485           LandauIdx *coo_elem_offsets = (LandauIdx *)ctx->SData_d.coo_elem_offsets, *coo_elem_fullNb = (LandauIdx *)ctx->SData_d.coo_elem_fullNb, (*coo_elem_point_offsets)[LANDAU_MAX_NQND + 1] = (LandauIdx(*)[LANDAU_MAX_NQND + 1]) ctx->SData_d.coo_elem_point_offsets;
486           /* assemble - from the diagonal (I,I) in this format for DMPlexMatSetClosure */
487           for (fieldA = 0; fieldA < loc_Nf; fieldA++) {
488             LandauIdx *const Idxs = &maps[grid].gIdx[loc_elem][fieldA][0];
489             for (f = 0; f < Nb; f++) {
490               PetscInt idx = Idxs[f];
491               if (idx >= 0) {
492                 nr           = 1;
493                 rows0[0]     = idx;
494                 row_scale[0] = 1.;
495               } else {
496                 idx = -idx - 1;
497                 for (q = 0, nr = 0; q < maps[grid].num_face; q++, nr++) {
498                   if (maps[grid].c_maps[idx][q].gid < 0) break;
499                   rows0[q]     = maps[grid].c_maps[idx][q].gid;
500                   row_scale[q] = maps[grid].c_maps[idx][q].scale;
501                 }
502               }
503               for (g = 0; g < Nb; ++g) {
504                 idx = Idxs[g];
505                 if (idx >= 0) {
506                   nc           = 1;
507                   cols0[0]     = idx;
508                   col_scale[0] = 1.;
509                 } else {
510                   idx = -idx - 1;
511                   nc  = maps[grid].num_face;
512                   for (q = 0, nc = 0; q < maps[grid].num_face; q++, nc++) {
513                     if (maps[grid].c_maps[idx][q].gid < 0) break;
514                     cols0[q]     = maps[grid].c_maps[idx][q].gid;
515                     col_scale[q] = maps[grid].c_maps[idx][q].scale;
516                   }
517                 }
518                 const PetscInt    i   = fieldA * Nb + f; /* Element matrix row */
519                 const PetscInt    j   = fieldA * Nb + g; /* Element matrix column */
520                 const PetscScalar Aij = elemMat[i * totDim + j];
521                 if (coo_vals) { // mirror (i,j) in CreateStaticGPUData
522                   const int fullNb = coo_elem_fullNb[glb_elem_idx], fullNb2 = fullNb * fullNb;
523                   const int idx0 = b_id * coo_elem_offsets[elem_offset[num_grids]] + coo_elem_offsets[glb_elem_idx] + fieldA * fullNb2 + fullNb * coo_elem_point_offsets[glb_elem_idx][f] + nr * coo_elem_point_offsets[glb_elem_idx][g];
524                   for (int q = 0, idx2 = idx0; q < nr; q++) {
525                     for (int d = 0; d < nc; d++, idx2++) coo_vals[idx2] = row_scale[q] * col_scale[d] * Aij;
526                   }
527                 } else {
528                   for (q = 0; q < nr; q++) rows[q] = rows0[q] + moffset;
529                   for (d = 0; d < nc; d++) cols[d] = cols0[d] + moffset;
530                   for (q = 0; q < nr; q++) {
531                     for (d = 0; d < nc; d++) vals[q * nc + d] = row_scale[q] * col_scale[d] * Aij;
532                   }
533                   PetscCall(MatSetValues(JacP, nr, rows, nc, cols, vals, ADD_VALUES));
534                 }
535               }
536             }
537           }
538         }
539         if (loc_elem == -1) {
540           PetscCall(PetscPrintf(ctx->comm, "CPU Element matrix\n"));
541           for (int d = 0; d < totDim; ++d) {
542             for (int f = 0; f < totDim; ++f) PetscCall(PetscPrintf(ctx->comm, " %12.5e", (double)PetscRealPart(elemMat[d * totDim + f])));
543             PetscCall(PetscPrintf(ctx->comm, "\n"));
544           }
545           exit(12);
546         }
547         PetscCall(PetscFree(elemMat));
548       }                 /* grid */
549     }                   /* outer element & batch loop */
550     if (shift == 0.0) { // mass
551       PetscCall(PetscFree4(ff, dudx, dudy, dudz));
552     }
553     if (!container) {                                         // 'CPU' assembly move nest matrix to global JacP
554       for (PetscInt b_id = 0; b_id < ctx->batch_sz; b_id++) { // OpenMP
555         for (PetscInt grid = 0; grid < ctx->num_grids; grid++) {
556           const PetscInt     moffset = LAND_MOFFSET(b_id, grid, ctx->batch_sz, ctx->num_grids, ctx->mat_offset); // b_id*b_N + ctx->mat_offset[grid];
557           PetscInt           nloc, nzl, colbuf[1024], row;
558           const PetscInt    *cols;
559           const PetscScalar *vals;
560           Mat                B = subJ[LAND_PACK_IDX(b_id, grid)];
561           PetscCall(MatAssemblyBegin(B, MAT_FINAL_ASSEMBLY));
562           PetscCall(MatAssemblyEnd(B, MAT_FINAL_ASSEMBLY));
563           PetscCall(MatGetSize(B, &nloc, NULL));
564           for (int i = 0; i < nloc; i++) {
565             PetscCall(MatGetRow(B, i, &nzl, &cols, &vals));
566             PetscCheck(nzl <= 1024, PetscObjectComm((PetscObject)B), PETSC_ERR_PLIB, "Row too big: %" PetscInt_FMT, nzl);
567             for (int j = 0; j < nzl; j++) colbuf[j] = moffset + cols[j];
568             row = moffset + i;
569             PetscCall(MatSetValues(JacP, 1, &row, nzl, colbuf, vals, ADD_VALUES));
570             PetscCall(MatRestoreRow(B, i, &nzl, &cols, &vals));
571           }
572           PetscCall(MatDestroy(&B));
573         }
574       }
575     }
576     if (coo_vals) {
577       PetscCall(MatSetValuesCOO(JacP, coo_vals, ADD_VALUES));
578       PetscCall(PetscFree(coo_vals));
579     }
580   } /* CPU version */
581   PetscCall(MatAssemblyBegin(JacP, MAT_FINAL_ASSEMBLY));
582   PetscCall(MatAssemblyEnd(JacP, MAT_FINAL_ASSEMBLY));
583   /* clean up */
584   if (cellClosure) PetscCall(PetscFree(cellClosure));
585   if (xdata) PetscCall(VecRestoreArrayReadAndMemType(a_X, &xdata));
586   PetscFunctionReturn(PETSC_SUCCESS);
587 }
588 
589 static PetscErrorCode GeometryDMLandau(DM base, PetscInt point, PetscInt dim, const PetscReal abc[], PetscReal xyz[], void *a_ctx)
590 {
591   PetscReal r = abc[0], z = abc[1];
592 
593   PetscFunctionBegin;
594   xyz[0] = r;
595   xyz[1] = z;
596   if (dim == 3) xyz[2] = abc[2];
597 
598   PetscFunctionReturn(PETSC_SUCCESS);
599 }
600 
601 /* create DMComposite of meshes for each species group */
602 static PetscErrorCode LandauDMCreateVMeshes(MPI_Comm comm_self, const PetscInt dim, const char prefix[], LandauCtx *ctx, DM pack)
603 {
604   PetscFunctionBegin;
605   { /* p4est, quads */
606     /* Create plex mesh of Landau domain */
607     for (PetscInt grid = 0; grid < ctx->num_grids; grid++) {
608       PetscReal par_radius = ctx->radius_par[grid], perp_radius = ctx->radius_perp[grid];
609       if (!ctx->sphere && !ctx->simplex) { // 2 or 3D (only 3D option)
610         PetscReal      lo[] = {-perp_radius, -par_radius, -par_radius}, hi[] = {perp_radius, par_radius, par_radius};
611         DMBoundaryType periodicity[3] = {DM_BOUNDARY_NONE, dim == 2 ? DM_BOUNDARY_NONE : DM_BOUNDARY_NONE, DM_BOUNDARY_NONE};
612         if (dim == 2) lo[0] = 0;
613         else {
614           lo[1] = -perp_radius;
615           hi[1] = perp_radius; // 3D y is a perp
616         }
617         PetscCall(DMPlexCreateBoxMesh(comm_self, dim, PETSC_FALSE, ctx->cells0, lo, hi, periodicity, PETSC_TRUE, &ctx->plex[grid])); // todo: make composite and create dm[grid] here
618         PetscCall(DMLocalizeCoordinates(ctx->plex[grid]));                                                                           /* needed for periodic */
619         if (dim == 3) PetscCall(PetscObjectSetName((PetscObject)ctx->plex[grid], "cube"));
620         else PetscCall(PetscObjectSetName((PetscObject)ctx->plex[grid], "half-plane"));
621       } else if (dim == 2) {
622         size_t len;
623         PetscCall(PetscStrlen(ctx->filename, &len));
624         if (len) {
625           Vec          coords;
626           PetscScalar *x;
627           PetscInt     N;
628           char         str[] = "-dm_landau_view_file_0";
629           str[21] += grid;
630           PetscCall(DMPlexCreateFromFile(comm_self, ctx->filename, "plexland.c", PETSC_TRUE, &ctx->plex[grid]));
631           PetscCall(DMPlexOrient(ctx->plex[grid]));
632           PetscCall(DMGetCoordinatesLocal(ctx->plex[grid], &coords));
633           PetscCall(VecGetSize(coords, &N));
634           PetscCall(VecGetArray(coords, &x));
635           /* scale by domain size */
636           for (PetscInt i = 0; i < N; i += 2) {
637             x[i + 0] *= ctx->radius_perp[grid];
638             x[i + 1] *= ctx->radius_par[grid];
639           }
640           PetscCall(VecRestoreArray(coords, &x));
641           PetscCall(PetscObjectSetName((PetscObject)ctx->plex[grid], ctx->filename));
642           PetscCall(PetscInfo(ctx->plex[grid], "%d) Read %s mesh file (%s)\n", (int)grid, ctx->filename, str));
643           PetscCall(DMViewFromOptions(ctx->plex[grid], NULL, str));
644         } else {
645           PetscInt       numCells = ctx->simplex ? 12 : 6, cell_size = ctx->simplex ? 3 : 4, j;
646           const PetscInt numVerts    = 11;
647           PetscInt       cellsT[][4] = {
648             {0,  1, 6, 5 },
649             {1,  2, 7, 6 },
650             {2,  3, 8, 7 },
651             {3,  4, 9, 8 },
652             {5,  6, 7, 10},
653             {10, 7, 8, 9 }
654           };
655           PetscInt cellsS[][3] = {
656             {0,  1, 6 },
657             {1,  2, 6 },
658             {6,  2, 7 },
659             {7,  2, 8 },
660             {8,  2, 3 },
661             {8,  3, 4 },
662             {0,  6, 5 },
663             {5,  6, 7 },
664             {5,  7, 10},
665             {10, 7, 9 },
666             {9,  7, 8 },
667             {9,  8, 4 }
668           };
669           const PetscInt *pcell = (const PetscInt *)(ctx->simplex ? &cellsS[0][0] : &cellsT[0][0]);
670           PetscReal       coords[11][2], *flatCoords = (PetscReal *)&coords[0][0];
671           PetscReal       rad = ctx->radius[grid];
672           for (j = 0; j < 5; j++) { // outside edge
673             PetscReal z, r, theta = -PETSC_PI / 2 + (j % 5) * PETSC_PI / 4;
674             r            = rad * PetscCosReal(theta);
675             coords[j][0] = r;
676             z            = rad * PetscSinReal(theta);
677             coords[j][1] = z;
678           }
679           coords[j][0]   = 0;
680           coords[j++][1] = -rad * ctx->sphere_inner_radius_90degree;
681           coords[j][0]   = rad * ctx->sphere_inner_radius_45degree;
682           coords[j++][1] = -rad * ctx->sphere_inner_radius_45degree;
683           coords[j][0]   = rad * ctx->sphere_inner_radius_90degree;
684           coords[j++][1] = 0;
685           coords[j][0]   = rad * ctx->sphere_inner_radius_45degree;
686           coords[j++][1] = rad * ctx->sphere_inner_radius_45degree;
687           coords[j][0]   = 0;
688           coords[j++][1] = rad * ctx->sphere_inner_radius_90degree;
689           coords[j][0]   = 0;
690           coords[j++][1] = 0;
691           PetscCall(DMPlexCreateFromCellListPetsc(comm_self, 2, numCells, numVerts, cell_size, ctx->interpolate, pcell, 2, flatCoords, &ctx->plex[grid]));
692           PetscCall(PetscObjectSetName((PetscObject)ctx->plex[grid], "semi-circle"));
693           PetscCall(PetscInfo(ctx->plex[grid], "\t%" PetscInt_FMT ") Make circle %s mesh\n", grid, ctx->simplex ? "simplex" : "tensor"));
694         }
695       } else SETERRQ(ctx->comm, PETSC_ERR_PLIB, "Velocity space meshes does not support 3V cubed sphere or simplex");
696       PetscCall(DMSetFromOptions(ctx->plex[grid]));
697     } // grid loop
698     PetscCall(PetscObjectSetOptionsPrefix((PetscObject)pack, prefix));
699     { /* convert to p4est (or whatever), wait for discretization to create pack */
700       char      convType[256];
701       PetscBool flg;
702 
703       PetscOptionsBegin(ctx->comm, prefix, "Mesh conversion options", "DMPLEX");
704       PetscCall(PetscOptionsFList("-dm_landau_type", "Convert DMPlex to another format (p4est)", "plexland.c", DMList, DMPLEX, convType, 256, &flg));
705       PetscOptionsEnd();
706       if (flg) {
707         ctx->use_p4est = PETSC_TRUE; /* flag for Forest */
708         for (PetscInt grid = 0; grid < ctx->num_grids; grid++) {
709           DM dmforest;
710           PetscCall(DMConvert(ctx->plex[grid], convType, &dmforest));
711           if (dmforest) {
712             PetscBool isForest;
713             PetscCall(PetscObjectSetOptionsPrefix((PetscObject)dmforest, prefix));
714             PetscCall(DMIsForest(dmforest, &isForest));
715             if (isForest) {
716               if (ctx->sphere) PetscCall(DMForestSetBaseCoordinateMapping(dmforest, GeometryDMLandau, ctx));
717               PetscCall(DMDestroy(&ctx->plex[grid]));
718               ctx->plex[grid] = dmforest; // Forest for adaptivity
719             } else SETERRQ(ctx->comm, PETSC_ERR_PLIB, "Converted to non Forest?");
720           } else SETERRQ(ctx->comm, PETSC_ERR_PLIB, "Convert failed?");
721         }
722       } else ctx->use_p4est = PETSC_FALSE; /* flag for Forest */
723     }
724   } /* non-file */
725   PetscCall(DMSetDimension(pack, dim));
726   PetscCall(PetscObjectSetName((PetscObject)pack, "Mesh"));
727   PetscCall(DMSetApplicationContext(pack, ctx));
728 
729   PetscFunctionReturn(PETSC_SUCCESS);
730 }
731 
732 static PetscErrorCode SetupDS(DM pack, PetscInt dim, PetscInt grid, LandauCtx *ctx)
733 {
734   PetscInt     ii, i0;
735   char         buf[256];
736   PetscSection section;
737 
738   PetscFunctionBegin;
739   for (ii = ctx->species_offset[grid], i0 = 0; ii < ctx->species_offset[grid + 1]; ii++, i0++) {
740     if (ii == 0) PetscCall(PetscSNPrintf(buf, sizeof(buf), "e"));
741     else PetscCall(PetscSNPrintf(buf, sizeof(buf), "i%" PetscInt_FMT, ii));
742     /* Setup Discretization - FEM */
743     PetscCall(PetscFECreateDefault(PETSC_COMM_SELF, dim, 1, ctx->simplex, NULL, PETSC_DECIDE, &ctx->fe[ii]));
744     PetscCall(PetscObjectSetName((PetscObject)ctx->fe[ii], buf));
745     PetscCall(DMSetField(ctx->plex[grid], i0, NULL, (PetscObject)ctx->fe[ii]));
746   }
747   PetscCall(DMCreateDS(ctx->plex[grid]));
748   PetscCall(DMGetSection(ctx->plex[grid], &section));
749   for (PetscInt ii = ctx->species_offset[grid], i0 = 0; ii < ctx->species_offset[grid + 1]; ii++, i0++) {
750     if (ii == 0) PetscCall(PetscSNPrintf(buf, sizeof(buf), "se"));
751     else PetscCall(PetscSNPrintf(buf, sizeof(buf), "si%" PetscInt_FMT, ii));
752     PetscCall(PetscSectionSetComponentName(section, i0, 0, buf));
753   }
754   PetscFunctionReturn(PETSC_SUCCESS);
755 }
756 
757 /* Define a Maxwellian function for testing out the operator. */
758 
759 /* Using cartesian velocity space coordinates, the particle */
760 /* density, [1/m^3], is defined according to */
761 
762 /* $$ n=\int_{R^3} dv^3 \left(\frac{m}{2\pi T}\right)^{3/2}\exp [- mv^2/(2T)] $$ */
763 
764 /* Using some constant, c, we normalize the velocity vector into a */
765 /* dimensionless variable according to v=c*x. Thus the density, $n$, becomes */
766 
767 /* $$ n=\int_{R^3} dx^3 \left(\frac{mc^2}{2\pi T}\right)^{3/2}\exp [- mc^2/(2T)*x^2] $$ */
768 
769 /* Defining $\theta=2T/mc^2$, we thus find that the probability density */
770 /* for finding the particle within the interval in a box dx^3 around x is */
771 
772 /* f(x;\theta)=\left(\frac{1}{\pi\theta}\right)^{3/2} \exp [ -x^2/\theta ] */
773 
774 typedef struct {
775   PetscReal v_0;
776   PetscReal kT_m;
777   PetscReal n;
778   PetscReal shift;
779 } MaxwellianCtx;
780 
781 static PetscErrorCode maxwellian(PetscInt dim, PetscReal time, const PetscReal x[], PetscInt Nf_dummy, PetscScalar *u, void *actx)
782 {
783   MaxwellianCtx *mctx = (MaxwellianCtx *)actx;
784   PetscInt       i;
785   PetscReal      v2 = 0, theta = 2 * mctx->kT_m / (mctx->v_0 * mctx->v_0), shift; /* theta = 2kT/mc^2 */
786   PetscFunctionBegin;
787   /* compute the exponents, v^2 */
788   for (i = 0; i < dim; ++i) v2 += x[i] * x[i];
789   /* evaluate the Maxwellian */
790   if (mctx->shift < 0) shift = -mctx->shift;
791   else {
792     u[0]  = mctx->n * PetscPowReal(PETSC_PI * theta, -1.5) * (PetscExpReal(-v2 / theta));
793     shift = mctx->shift;
794   }
795   if (shift != 0.) {
796     v2 = 0;
797     for (i = 0; i < dim - 1; ++i) v2 += x[i] * x[i];
798     v2 += (x[dim - 1] - shift) * (x[dim - 1] - shift);
799     /* evaluate the shifted Maxwellian */
800     u[0] += mctx->n * PetscPowReal(PETSC_PI * theta, -1.5) * (PetscExpReal(-v2 / theta));
801   }
802   PetscFunctionReturn(PETSC_SUCCESS);
803 }
804 
805 /*@
806   DMPlexLandauAddMaxwellians - Add a Maxwellian distribution to a state
807 
808   Collective
809 
810   Input Parameters:
811 + dm      - The mesh (local)
812 . time    - Current time
813 . temps   - Temperatures of each species (global)
814 . ns      - Number density of each species (global)
815 . grid    - index into current grid - just used for offset into `temp` and `ns`
816 . b_id    - batch index
817 . n_batch - number of batches
818 - actx    - Landau context
819 
820   Output Parameter:
821 . X - The state (local to this grid)
822 
823   Level: beginner
824 
825 .seealso: `DMPlexLandauCreateVelocitySpace()`
826  @*/
827 PetscErrorCode DMPlexLandauAddMaxwellians(DM dm, Vec X, PetscReal time, PetscReal temps[], PetscReal ns[], PetscInt grid, PetscInt b_id, PetscInt n_batch, void *actx)
828 {
829   LandauCtx *ctx = (LandauCtx *)actx;
830   PetscErrorCode (*initu[LANDAU_MAX_SPECIES])(PetscInt, PetscReal, const PetscReal[], PetscInt, PetscScalar[], void *);
831   PetscInt       dim;
832   MaxwellianCtx *mctxs[LANDAU_MAX_SPECIES], data[LANDAU_MAX_SPECIES];
833 
834   PetscFunctionBegin;
835   PetscCall(DMGetDimension(dm, &dim));
836   if (!ctx) PetscCall(DMGetApplicationContext(dm, &ctx));
837   for (PetscInt ii = ctx->species_offset[grid], i0 = 0; ii < ctx->species_offset[grid + 1]; ii++, i0++) {
838     mctxs[i0]      = &data[i0];
839     data[i0].v_0   = ctx->v_0;                             // v_0 same for all grids
840     data[i0].kT_m  = ctx->k * temps[ii] / ctx->masses[ii]; /* kT/m */
841     data[i0].n     = ns[ii];
842     initu[i0]      = maxwellian;
843     data[i0].shift = 0;
844   }
845   data[0].shift = ctx->electronShift;
846   /* need to make ADD_ALL_VALUES work - TODO */
847   PetscCall(DMProjectFunction(dm, time, initu, (void **)mctxs, INSERT_ALL_VALUES, X));
848   PetscFunctionReturn(PETSC_SUCCESS);
849 }
850 
851 /*
852  LandauSetInitialCondition - Adds Maxwellians with context
853 
854  Collective
855 
856  Input Parameters:
857  .   dm - The mesh
858  -   grid - index into current grid - just used for offset into temp and ns
859  .   b_id - batch index
860  -   n_batch - number of batches
861  +   actx - Landau context with T and n
862 
863  Output Parameter:
864  .   X  - The state
865 
866  Level: beginner
867 
868 .seealso: `DMPlexLandauCreateVelocitySpace()`, `DMPlexLandauAddMaxwellians()`
869  */
870 static PetscErrorCode LandauSetInitialCondition(DM dm, Vec X, PetscInt grid, PetscInt b_id, PetscInt n_batch, void *actx)
871 {
872   LandauCtx *ctx = (LandauCtx *)actx;
873   PetscFunctionBegin;
874   if (!ctx) PetscCall(DMGetApplicationContext(dm, &ctx));
875   PetscCall(VecZeroEntries(X));
876   PetscCall(DMPlexLandauAddMaxwellians(dm, X, 0.0, ctx->thermal_temps, ctx->n, grid, b_id, n_batch, ctx));
877   PetscFunctionReturn(PETSC_SUCCESS);
878 }
879 
880 // adapt a level once. Forest in/out
881 #if defined(PETSC_USE_INFO)
882 static const char *s_refine_names[] = {"RE", "Z1", "Origin", "Z2", "Uniform"};
883 #endif
884 static PetscErrorCode adaptToleranceFEM(PetscFE fem, Vec sol, PetscInt type, PetscInt grid, LandauCtx *ctx, DM *newForest)
885 {
886   DM              forest, plex, adaptedDM = NULL;
887   PetscDS         prob;
888   PetscBool       isForest;
889   PetscQuadrature quad;
890   PetscInt        Nq, Nb, *Nb2, cStart, cEnd, c, dim, qj, k;
891   DMLabel         adaptLabel = NULL;
892 
893   PetscFunctionBegin;
894   forest = ctx->plex[grid];
895   PetscCall(DMCreateDS(forest));
896   PetscCall(DMGetDS(forest, &prob));
897   PetscCall(DMGetDimension(forest, &dim));
898   PetscCall(DMIsForest(forest, &isForest));
899   PetscCheck(isForest, ctx->comm, PETSC_ERR_ARG_WRONG, "! Forest");
900   PetscCall(DMConvert(forest, DMPLEX, &plex));
901   PetscCall(DMPlexGetHeightStratum(plex, 0, &cStart, &cEnd));
902   PetscCall(DMLabelCreate(PETSC_COMM_SELF, "adapt", &adaptLabel));
903   PetscCall(PetscFEGetQuadrature(fem, &quad));
904   PetscCall(PetscQuadratureGetData(quad, NULL, NULL, &Nq, NULL, NULL));
905   PetscCheck(Nq <= LANDAU_MAX_NQND, ctx->comm, PETSC_ERR_ARG_WRONG, "Order too high. Nq = %" PetscInt_FMT " > LANDAU_MAX_NQND (%d)", Nq, LANDAU_MAX_NQND);
906   PetscCall(PetscFEGetDimension(ctx->fe[0], &Nb));
907   PetscCall(PetscDSGetDimensions(prob, &Nb2));
908   PetscCheck(Nb2[0] == Nb, ctx->comm, PETSC_ERR_ARG_WRONG, " Nb = %" PetscInt_FMT " != Nb (%d)", Nb, (int)Nb2[0]);
909   PetscCheck(Nb <= LANDAU_MAX_NQND, ctx->comm, PETSC_ERR_ARG_WRONG, "Order too high. Nb = %" PetscInt_FMT " > LANDAU_MAX_NQND (%d)", Nb, LANDAU_MAX_NQND);
910   PetscCall(PetscInfo(sol, "%" PetscInt_FMT ") Refine phase: %s\n", grid, s_refine_names[type]));
911   if (type == 4) {
912     for (c = cStart; c < cEnd; c++) PetscCall(DMLabelSetValue(adaptLabel, c, DM_ADAPT_REFINE));
913   } else if (type == 2) {
914     PetscInt  rCellIdx[8], nr = 0, nrmax = (dim == 3) ? 8 : 2;
915     PetscReal minRad = PETSC_INFINITY, r;
916     for (c = cStart; c < cEnd; c++) {
917       PetscReal tt, v0[LANDAU_MAX_NQND * 3], detJ[LANDAU_MAX_NQND];
918       PetscCall(DMPlexComputeCellGeometryFEM(plex, c, quad, v0, NULL, NULL, detJ));
919       for (qj = 0; qj < Nq; ++qj) {
920         tt = PetscSqr(v0[dim * qj + 0]) + PetscSqr(v0[dim * qj + 1]) + PetscSqr(((dim == 3) ? v0[dim * qj + 2] : 0));
921         r  = PetscSqrtReal(tt);
922         if (r < minRad - PETSC_SQRT_MACHINE_EPSILON * 10.) {
923           minRad         = r;
924           nr             = 0;
925           rCellIdx[nr++] = c;
926           PetscCall(PetscInfo(sol, "\t\t%" PetscInt_FMT ") Found first inner r=%e, cell %" PetscInt_FMT ", qp %" PetscInt_FMT "/%" PetscInt_FMT "\n", grid, (double)r, c, qj + 1, Nq));
927         } else if ((r - minRad) < PETSC_SQRT_MACHINE_EPSILON * 100. && nr < nrmax) {
928           for (k = 0; k < nr; k++)
929             if (c == rCellIdx[k]) break;
930           if (k == nr) {
931             rCellIdx[nr++] = c;
932             PetscCall(PetscInfo(sol, "\t\t\t%" PetscInt_FMT ") Found another inner r=%e, cell %" PetscInt_FMT ", qp %" PetscInt_FMT "/%" PetscInt_FMT ", d=%e\n", grid, (double)r, c, qj + 1, Nq, (double)(r - minRad)));
933           }
934         }
935       }
936     }
937     for (k = 0; k < nr; k++) PetscCall(DMLabelSetValue(adaptLabel, rCellIdx[k], DM_ADAPT_REFINE));
938     PetscCall(PetscInfo(sol, "\t\t\t%" PetscInt_FMT ") Refined %" PetscInt_FMT " origin cells %" PetscInt_FMT ",%" PetscInt_FMT " r=%g\n", grid, nr, rCellIdx[0], rCellIdx[1], (double)minRad));
939   } else if (type == 0 || type == 1 || type == 3) { /* refine along r=0 axis */
940     PetscScalar *coef = NULL;
941     Vec          coords;
942     PetscInt     csize, Nv, d, nz, nrefined = 0;
943     DM           cdm;
944     PetscSection cs;
945     PetscCall(DMGetCoordinatesLocal(forest, &coords));
946     PetscCall(DMGetCoordinateDM(forest, &cdm));
947     PetscCall(DMGetLocalSection(cdm, &cs));
948     for (c = cStart; c < cEnd; c++) {
949       PetscInt doit = 0, outside = 0;
950       PetscCall(DMPlexVecGetClosure(cdm, cs, coords, c, &csize, &coef));
951       Nv = csize / dim;
952       for (nz = d = 0; d < Nv; d++) {
953         PetscReal z = PetscRealPart(coef[d * dim + (dim - 1)]), x = PetscSqr(PetscRealPart(coef[d * dim + 0])) + ((dim == 3) ? PetscSqr(PetscRealPart(coef[d * dim + 1])) : 0);
954         x = PetscSqrtReal(x);
955         if (type == 0) {
956           if (ctx->re_radius > PETSC_SQRT_MACHINE_EPSILON && (z < -PETSC_MACHINE_EPSILON * 10. || z > ctx->re_radius + PETSC_MACHINE_EPSILON * 10.)) outside++; /* first pass don't refine bottom */
957         } else if (type == 1 && (z > ctx->vperp0_radius1 || z < -ctx->vperp0_radius1)) {
958           outside++; /* don't refine outside electron refine radius */
959           PetscCall(PetscInfo(sol, "\t%" PetscInt_FMT ") (debug) found %s cells\n", grid, s_refine_names[type]));
960         } else if (type == 3 && (z > ctx->vperp0_radius2 || z < -ctx->vperp0_radius2)) {
961           outside++; /* refine r=0 cells on refinement front */
962           PetscCall(PetscInfo(sol, "\t%" PetscInt_FMT ") (debug) found %s cells\n", grid, s_refine_names[type]));
963         }
964         if (x < PETSC_MACHINE_EPSILON * 10. && (type != 0 || ctx->re_radius > PETSC_SQRT_MACHINE_EPSILON)) nz++;
965       }
966       PetscCall(DMPlexVecRestoreClosure(cdm, cs, coords, c, &csize, &coef));
967       if (doit || (outside < Nv && nz)) {
968         PetscCall(DMLabelSetValue(adaptLabel, c, DM_ADAPT_REFINE));
969         nrefined++;
970       }
971     }
972     PetscCall(PetscInfo(sol, "\t%" PetscInt_FMT ") Refined %" PetscInt_FMT " cells\n", grid, nrefined));
973   }
974   PetscCall(DMDestroy(&plex));
975   PetscCall(DMAdaptLabel(forest, adaptLabel, &adaptedDM));
976   PetscCall(DMLabelDestroy(&adaptLabel));
977   *newForest = adaptedDM;
978   if (adaptedDM) {
979     if (isForest) {
980       PetscCall(DMForestSetAdaptivityForest(adaptedDM, NULL)); // ????
981     }
982     PetscCall(DMConvert(adaptedDM, DMPLEX, &plex));
983     PetscCall(DMPlexGetHeightStratum(plex, 0, &cStart, &cEnd));
984     PetscCall(PetscInfo(sol, "\t\t\t\t%" PetscInt_FMT ") %" PetscInt_FMT " cells, %" PetscInt_FMT " total quadrature points\n", grid, cEnd - cStart, Nq * (cEnd - cStart)));
985     PetscCall(DMDestroy(&plex));
986   } else *newForest = NULL;
987   PetscFunctionReturn(PETSC_SUCCESS);
988 }
989 
990 // forest goes in (ctx->plex[grid]), plex comes out
991 static PetscErrorCode adapt(PetscInt grid, LandauCtx *ctx, Vec *uu)
992 {
993   PetscInt adaptIter;
994 
995   PetscFunctionBegin;
996   PetscInt type, limits[5] = {(grid == 0) ? ctx->numRERefine : 0, (grid == 0) ? ctx->nZRefine1 : 0, ctx->numAMRRefine[grid], (grid == 0) ? ctx->nZRefine2 : 0, ctx->postAMRRefine[grid]};
997   for (type = 0; type < 5; type++) {
998     for (adaptIter = 0; adaptIter < limits[type]; adaptIter++) {
999       DM newForest = NULL;
1000       PetscCall(adaptToleranceFEM(ctx->fe[0], *uu, type, grid, ctx, &newForest));
1001       if (newForest) {
1002         PetscCall(DMDestroy(&ctx->plex[grid]));
1003         PetscCall(VecDestroy(uu));
1004         PetscCall(DMCreateGlobalVector(newForest, uu));
1005         PetscCall(PetscObjectSetName((PetscObject)*uu, "uAMR"));
1006         PetscCall(LandauSetInitialCondition(newForest, *uu, grid, 0, 1, ctx));
1007         ctx->plex[grid] = newForest;
1008       } else {
1009         PetscCall(PetscInfo(*uu, "No refinement\n"));
1010       }
1011     }
1012   }
1013   PetscFunctionReturn(PETSC_SUCCESS);
1014 }
1015 
1016 // make log(Lambdas) from NRL Plasma formulary
1017 static PetscErrorCode makeLambdas(LandauCtx *ctx)
1018 {
1019   PetscFunctionBegin;
1020   for (PetscInt gridi = 0; gridi < ctx->num_grids; gridi++) {
1021     int       iii   = ctx->species_offset[gridi];
1022     PetscReal Ti_ev = (ctx->thermal_temps[iii] / 1.1604525e7) * 1000; // convert (back) to eV
1023     PetscReal ni    = ctx->n[iii] * ctx->n_0;
1024     for (PetscInt gridj = gridi; gridj < ctx->num_grids; gridj++) {
1025       PetscInt  jjj = ctx->species_offset[gridj];
1026       PetscReal Zj  = ctx->charges[jjj] / 1.6022e-19;
1027       if (gridi == 0) {
1028         if (gridj == 0) { // lam_ee
1029           ctx->lambdas[gridi][gridj] = 23.5 - PetscLogReal(PetscSqrtReal(ni) * PetscPowReal(Ti_ev, -1.25)) - PetscSqrtReal(1e-5 + PetscSqr(PetscLogReal(Ti_ev) - 2) / 16);
1030         } else { // lam_ei == lam_ie
1031           if (10 * Zj * Zj > Ti_ev) {
1032             ctx->lambdas[gridi][gridj] = ctx->lambdas[gridj][gridi] = 23 - PetscLogReal(PetscSqrtReal(ni) * Zj * PetscPowReal(Ti_ev, -1.5));
1033           } else {
1034             ctx->lambdas[gridi][gridj] = ctx->lambdas[gridj][gridi] = 24 - PetscLogReal(PetscSqrtReal(ni) / Ti_ev);
1035           }
1036         }
1037       } else { // lam_ii'
1038         PetscReal mui = ctx->masses[iii] / 1.6720e-27, Zi = ctx->charges[iii] / 1.6022e-19;
1039         PetscReal Tj_ev            = (ctx->thermal_temps[jjj] / 1.1604525e7) * 1000; // convert (back) to eV
1040         PetscReal muj              = ctx->masses[jjj] / 1.6720e-27;
1041         PetscReal nj               = ctx->n[jjj] * ctx->n_0;
1042         ctx->lambdas[gridi][gridj] = ctx->lambdas[gridj][gridi] = 23 - PetscLogReal(Zi * Zj * (mui + muj) / (mui * Tj_ev + muj * Ti_ev) * PetscSqrtReal(ni * Zi * Zi / Ti_ev + nj * Zj * Zj / Tj_ev));
1043       }
1044     }
1045   }
1046   //PetscReal v0 = PetscSqrtReal(ctx->k * ctx->thermal_temps[iii] / ctx->masses[iii]); /* arbitrary units for non-dimensionalization: plasma formulary def */
1047   PetscFunctionReturn(PETSC_SUCCESS);
1048 }
1049 
1050 static PetscErrorCode ProcessOptions(LandauCtx *ctx, const char prefix[])
1051 {
1052   PetscBool flg, fileflg;
1053   PetscInt  ii, nt, nm, nc, num_species_grid[LANDAU_MAX_GRIDS], non_dim_grid;
1054   PetscReal lnLam = 10;
1055   DM        dummy;
1056 
1057   PetscFunctionBegin;
1058   PetscCall(DMCreate(ctx->comm, &dummy));
1059   /* get options - initialize context */
1060   ctx->verbose        = 1; // should be 0 for silent compliance
1061   ctx->batch_sz       = 1;
1062   ctx->batch_view_idx = 0;
1063   ctx->interpolate    = PETSC_TRUE;
1064   ctx->gpu_assembly   = PETSC_TRUE;
1065   ctx->norm_state     = 0;
1066   ctx->electronShift  = 0;
1067   ctx->M              = NULL;
1068   ctx->J              = NULL;
1069   /* geometry and grids */
1070   ctx->sphere    = PETSC_FALSE;
1071   ctx->use_p4est = PETSC_FALSE;
1072   ctx->simplex   = PETSC_FALSE;
1073   for (PetscInt grid = 0; grid < LANDAU_MAX_GRIDS; grid++) {
1074     ctx->radius[grid]             = 5.; /* thermal radius (velocity) */
1075     ctx->radius_perp[grid]        = 5.; /* thermal radius (velocity) */
1076     ctx->radius_par[grid]         = 5.; /* thermal radius (velocity) */
1077     ctx->numAMRRefine[grid]       = 0;
1078     ctx->postAMRRefine[grid]      = 0;
1079     ctx->species_offset[grid + 1] = 1; // one species default
1080     num_species_grid[grid]        = 0;
1081     ctx->plex[grid]               = NULL; /* cache as expensive to Convert */
1082   }
1083   ctx->species_offset[0] = 0;
1084   ctx->re_radius         = 0.;
1085   ctx->vperp0_radius1    = 0;
1086   ctx->vperp0_radius2    = 0;
1087   ctx->nZRefine1         = 0;
1088   ctx->nZRefine2         = 0;
1089   ctx->numRERefine       = 0;
1090   num_species_grid[0]    = 1; // one species default
1091   /* species - [0] electrons, [1] one ion species eg, duetarium, [2] heavy impurity ion, ... */
1092   ctx->charges[0]       = -1;                       /* electron charge (MKS) */
1093   ctx->masses[0]        = 1 / 1835.469965278441013; /* temporary value in proton mass */
1094   ctx->n[0]             = 1;
1095   ctx->v_0              = 1; /* thermal velocity, we could start with a scale != 1 */
1096   ctx->thermal_temps[0] = 1;
1097   /* constants, etc. */
1098   ctx->epsilon0 = 8.8542e-12;     /* permittivity of free space (MKS) F/m */
1099   ctx->k        = 1.38064852e-23; /* Boltzmann constant (MKS) J/K */
1100   ctx->n_0      = 1.e20;          /* typical plasma n, but could set it to 1 */
1101   ctx->Ez       = 0;
1102   for (PetscInt grid = 0; grid < LANDAU_NUM_TIMERS; grid++) ctx->times[grid] = 0;
1103   for (PetscInt ii = 0; ii < LANDAU_DIM; ii++) ctx->cells0[ii] = 2;
1104   if (LANDAU_DIM == 2) ctx->cells0[0] = 1;
1105   ctx->use_matrix_mass                = PETSC_FALSE;
1106   ctx->use_relativistic_corrections   = PETSC_FALSE;
1107   ctx->use_energy_tensor_trick        = PETSC_FALSE; /* Use Eero's trick for energy conservation v --> grad(v^2/2) */
1108   ctx->SData_d.w                      = NULL;
1109   ctx->SData_d.x                      = NULL;
1110   ctx->SData_d.y                      = NULL;
1111   ctx->SData_d.z                      = NULL;
1112   ctx->SData_d.invJ                   = NULL;
1113   ctx->jacobian_field_major_order     = PETSC_FALSE;
1114   ctx->SData_d.coo_elem_offsets       = NULL;
1115   ctx->SData_d.coo_elem_point_offsets = NULL;
1116   ctx->SData_d.coo_elem_fullNb        = NULL;
1117   ctx->SData_d.coo_size               = 0;
1118   PetscOptionsBegin(ctx->comm, prefix, "Options for Fokker-Plank-Landau collision operator", "none");
1119 #if defined(PETSC_HAVE_KOKKOS)
1120   ctx->deviceType = LANDAU_KOKKOS;
1121   PetscCall(PetscStrncpy(ctx->filename, "kokkos", sizeof(ctx->filename)));
1122 #else
1123   ctx->deviceType = LANDAU_CPU;
1124   PetscCall(PetscStrncpy(ctx->filename, "cpu", sizeof(ctx->filename)));
1125 #endif
1126   PetscCall(PetscOptionsString("-dm_landau_device_type", "Use kernels on 'cpu' 'kokkos'", "plexland.c", ctx->filename, ctx->filename, sizeof(ctx->filename), NULL));
1127   PetscCall(PetscStrcmp("cpu", ctx->filename, &flg));
1128   if (flg) {
1129     ctx->deviceType = LANDAU_CPU;
1130   } else {
1131     PetscCall(PetscStrcmp("kokkos", ctx->filename, &flg));
1132     if (flg) ctx->deviceType = LANDAU_KOKKOS;
1133     else SETERRQ(ctx->comm, PETSC_ERR_ARG_WRONG, "-dm_landau_device_type %s", ctx->filename);
1134   }
1135   ctx->filename[0] = '\0';
1136   PetscCall(PetscOptionsString("-dm_landau_filename", "file to read mesh from", "plexland.c", ctx->filename, ctx->filename, sizeof(ctx->filename), &fileflg));
1137   PetscCall(PetscOptionsReal("-dm_landau_electron_shift", "Shift in thermal velocity of electrons", "none", ctx->electronShift, &ctx->electronShift, NULL));
1138   PetscCall(PetscOptionsInt("-dm_landau_verbose", "Level of verbosity output", "plexland.c", ctx->verbose, &ctx->verbose, NULL));
1139   PetscCall(PetscOptionsInt("-dm_landau_batch_size", "Number of 'vertices' to batch", "ex2.c", ctx->batch_sz, &ctx->batch_sz, NULL));
1140   PetscCheck(LANDAU_MAX_BATCH_SZ >= ctx->batch_sz, ctx->comm, PETSC_ERR_ARG_WRONG, "LANDAU_MAX_BATCH_SZ %" PetscInt_FMT " < ctx->batch_sz %" PetscInt_FMT, (PetscInt)LANDAU_MAX_BATCH_SZ, ctx->batch_sz);
1141   PetscCall(PetscOptionsInt("-dm_landau_batch_view_idx", "Index of batch for diagnostics like plotting", "ex2.c", ctx->batch_view_idx, &ctx->batch_view_idx, NULL));
1142   PetscCheck(ctx->batch_view_idx < ctx->batch_sz, ctx->comm, PETSC_ERR_ARG_WRONG, "-ctx->batch_view_idx %" PetscInt_FMT " > ctx->batch_sz %" PetscInt_FMT, ctx->batch_view_idx, ctx->batch_sz);
1143   PetscCall(PetscOptionsReal("-dm_landau_Ez", "Initial parallel electric field in unites of Conner-Hastie critical field", "plexland.c", ctx->Ez, &ctx->Ez, NULL));
1144   PetscCall(PetscOptionsReal("-dm_landau_n_0", "Normalization constant for number density", "plexland.c", ctx->n_0, &ctx->n_0, NULL));
1145   PetscCall(PetscOptionsBool("-dm_landau_use_mataxpy_mass", "Use fast but slightly fragile MATAXPY to add mass term", "plexland.c", ctx->use_matrix_mass, &ctx->use_matrix_mass, NULL));
1146   PetscCall(PetscOptionsBool("-dm_landau_use_relativistic_corrections", "Use relativistic corrections", "plexland.c", ctx->use_relativistic_corrections, &ctx->use_relativistic_corrections, NULL));
1147   PetscCall(PetscOptionsBool("-dm_landau_simplex", "Use simplex elements", "plexland.c", ctx->simplex, &ctx->simplex, NULL));
1148   if (LANDAU_DIM == 2 && ctx->use_relativistic_corrections) ctx->use_relativistic_corrections = PETSC_FALSE; // should warn
1149   PetscCall(PetscOptionsBool("-dm_landau_use_energy_tensor_trick", "Use Eero's trick of using grad(v^2/2) instead of v as args to Landau tensor to conserve energy with relativistic corrections and Q1 elements", "plexland.c", ctx->use_energy_tensor_trick,
1150                              &ctx->use_energy_tensor_trick, NULL));
1151 
1152   /* get num species with temperature, set defaults */
1153   for (ii = 1; ii < LANDAU_MAX_SPECIES; ii++) {
1154     ctx->thermal_temps[ii] = 1;
1155     ctx->charges[ii]       = 1;
1156     ctx->masses[ii]        = 1;
1157     ctx->n[ii]             = 1;
1158   }
1159   nt = LANDAU_MAX_SPECIES;
1160   PetscCall(PetscOptionsRealArray("-dm_landau_thermal_temps", "Temperature of each species [e,i_0,i_1,...] in keV (must be set to set number of species)", "plexland.c", ctx->thermal_temps, &nt, &flg));
1161   if (flg) {
1162     PetscCall(PetscInfo(dummy, "num_species set to number of thermal temps provided (%" PetscInt_FMT ")\n", nt));
1163     ctx->num_species = nt;
1164   } else SETERRQ(ctx->comm, PETSC_ERR_ARG_WRONG, "-dm_landau_thermal_temps ,t1,t2,.. must be provided to set the number of species");
1165   for (ii = 0; ii < ctx->num_species; ii++) ctx->thermal_temps[ii] *= 1.1604525e7; /* convert to Kelvin */
1166   nm = LANDAU_MAX_SPECIES - 1;
1167   PetscCall(PetscOptionsRealArray("-dm_landau_ion_masses", "Mass of each species in units of proton mass [i_0=2,i_1=40...]", "plexland.c", &ctx->masses[1], &nm, &flg));
1168   PetscCheck(!flg || nm == ctx->num_species - 1, ctx->comm, PETSC_ERR_ARG_WRONG, "num ion masses %" PetscInt_FMT " != num species %" PetscInt_FMT, nm, ctx->num_species - 1);
1169   nm = LANDAU_MAX_SPECIES;
1170   PetscCall(PetscOptionsRealArray("-dm_landau_n", "Number density of each species = n_s * n_0", "plexland.c", ctx->n, &nm, &flg));
1171   PetscCheck(!flg || nm == ctx->num_species, ctx->comm, PETSC_ERR_ARG_WRONG, "wrong num n: %" PetscInt_FMT " != num species %" PetscInt_FMT, nm, ctx->num_species);
1172   for (ii = 0; ii < LANDAU_MAX_SPECIES; ii++) ctx->masses[ii] *= 1.6720e-27; /* scale by proton mass kg */
1173   ctx->masses[0] = 9.10938356e-31;                                           /* electron mass kg (should be about right already) */
1174   nc             = LANDAU_MAX_SPECIES - 1;
1175   PetscCall(PetscOptionsRealArray("-dm_landau_ion_charges", "Charge of each species in units of proton charge [i_0=2,i_1=18,...]", "plexland.c", &ctx->charges[1], &nc, &flg));
1176   if (flg) PetscCheck(nc == ctx->num_species - 1, ctx->comm, PETSC_ERR_ARG_WRONG, "num charges %" PetscInt_FMT " != num species %" PetscInt_FMT, nc, ctx->num_species - 1);
1177   for (ii = 0; ii < LANDAU_MAX_SPECIES; ii++) ctx->charges[ii] *= 1.6022e-19; /* electron/proton charge (MKS) */
1178   /* geometry and grids */
1179   nt = LANDAU_MAX_GRIDS;
1180   PetscCall(PetscOptionsIntArray("-dm_landau_num_species_grid", "Number of species on each grid: [ 1, ....] or [S, 0 ....] for single grid", "plexland.c", num_species_grid, &nt, &flg));
1181   if (flg) {
1182     ctx->num_grids = nt;
1183     for (ii = nt = 0; ii < ctx->num_grids; ii++) nt += num_species_grid[ii];
1184     PetscCheck(ctx->num_species == nt, ctx->comm, PETSC_ERR_ARG_WRONG, "-dm_landau_num_species_grid: sum %" PetscInt_FMT " != num_species = %" PetscInt_FMT ". %" PetscInt_FMT " grids (check that number of grids <= LANDAU_MAX_GRIDS = %d)", nt, ctx->num_species,
1185                ctx->num_grids, LANDAU_MAX_GRIDS);
1186   } else {
1187     if (ctx->num_species > LANDAU_MAX_GRIDS) {
1188       num_species_grid[0] = 1;
1189       num_species_grid[1] = ctx->num_species - 1;
1190       ctx->num_grids      = 2;
1191     } else {
1192       ctx->num_grids = ctx->num_species;
1193       for (ii = 0; ii < ctx->num_grids; ii++) num_species_grid[ii] = 1;
1194     }
1195   }
1196   for (ctx->species_offset[0] = ii = 0; ii < ctx->num_grids; ii++) ctx->species_offset[ii + 1] = ctx->species_offset[ii] + num_species_grid[ii];
1197   PetscCheck(ctx->species_offset[ctx->num_grids] == ctx->num_species, ctx->comm, PETSC_ERR_ARG_WRONG, "ctx->species_offset[ctx->num_grids] %" PetscInt_FMT " != ctx->num_species = %" PetscInt_FMT " ???????????", ctx->species_offset[ctx->num_grids],
1198              ctx->num_species);
1199   for (PetscInt grid = 0; grid < ctx->num_grids; grid++) {
1200     int iii                  = ctx->species_offset[grid];                                          // normalize with first (arbitrary) species on grid
1201     ctx->thermal_speed[grid] = PetscSqrtReal(ctx->k * ctx->thermal_temps[iii] / ctx->masses[iii]); /* arbitrary units for non-dimensionalization: plasma formulary def */
1202   }
1203   // get lambdas here because we need them for t_0 etc
1204   PetscCall(PetscOptionsReal("-dm_landau_ln_lambda", "Universal cross section parameter. Default uses NRL formulas", "plexland.c", lnLam, &lnLam, &flg));
1205   if (flg) {
1206     for (PetscInt grid = 0; grid < LANDAU_MAX_GRIDS; grid++) {
1207       for (PetscInt gridj = 0; gridj < LANDAU_MAX_GRIDS; gridj++) ctx->lambdas[gridj][grid] = lnLam; /* cross section ratio large - small angle collisions */
1208     }
1209   } else {
1210     PetscCall(makeLambdas(ctx));
1211   }
1212   non_dim_grid = 0;
1213   PetscCall(PetscOptionsInt("-dm_landau_normalization_grid", "Index of grid to use for setting v_0, m_0, t_0. (Not recommended)", "plexland.c", non_dim_grid, &non_dim_grid, &flg));
1214   if (non_dim_grid != 0) PetscCall(PetscInfo(dummy, "Normalization grid set to %" PetscInt_FMT ", but non-default not well verified\n", non_dim_grid));
1215   PetscCheck(non_dim_grid >= 0 && non_dim_grid < ctx->num_species, ctx->comm, PETSC_ERR_ARG_WRONG, "Normalization grid wrong: %" PetscInt_FMT, non_dim_grid);
1216   ctx->v_0 = ctx->thermal_speed[non_dim_grid]; /* arbitrary units for non dimensionalization: global mean velocity in 1D of electrons */
1217   ctx->m_0 = ctx->masses[non_dim_grid];        /* arbitrary reference mass, electrons */
1218   ctx->t_0 = 8 * PETSC_PI * PetscSqr(ctx->epsilon0 * ctx->m_0 / PetscSqr(ctx->charges[non_dim_grid])) / ctx->lambdas[non_dim_grid][non_dim_grid] / ctx->n_0 * PetscPowReal(ctx->v_0, 3); /* note, this t_0 makes nu[non_dim_grid,non_dim_grid]=1 */
1219   /* domain */
1220   nt = LANDAU_MAX_GRIDS;
1221   PetscCall(PetscOptionsRealArray("-dm_landau_domain_radius", "Phase space size in units of thermal velocity of grid", "plexland.c", ctx->radius, &nt, &flg));
1222   if (flg) {
1223     PetscCheck(nt >= ctx->num_grids, ctx->comm, PETSC_ERR_ARG_WRONG, "-dm_landau_domain_radius: given %" PetscInt_FMT " radius != number grids %" PetscInt_FMT, nt, ctx->num_grids);
1224     while (nt--) ctx->radius_par[nt] = ctx->radius_perp[nt] = ctx->radius[nt];
1225   } else {
1226     nt = LANDAU_MAX_GRIDS;
1227     PetscCall(PetscOptionsRealArray("-dm_landau_domain_max_par", "Parallel velocity domain size in units of thermal velocity of grid", "plexland.c", ctx->radius_par, &nt, &flg));
1228     if (flg) PetscCheck(nt >= ctx->num_grids, ctx->comm, PETSC_ERR_ARG_WRONG, "-dm_landau_domain_max_par: given %" PetscInt_FMT " radius != number grids %" PetscInt_FMT, nt, ctx->num_grids);
1229     PetscCall(PetscOptionsRealArray("-dm_landau_domain_max_perp", "Perpendicular velocity domain size in units of thermal velocity of grid", "plexland.c", ctx->radius_perp, &nt, &flg));
1230     if (flg) PetscCheck(nt >= ctx->num_grids, ctx->comm, PETSC_ERR_ARG_WRONG, "-dm_landau_domain_max_perp: given %" PetscInt_FMT " radius != number grids %" PetscInt_FMT, nt, ctx->num_grids);
1231   }
1232   for (PetscInt grid = 0; grid < ctx->num_grids; grid++) {
1233     if (flg && ctx->radius[grid] <= 0) { /* negative is ratio of c - need to set par and perp with this -- todo */
1234       if (ctx->radius[grid] == 0) ctx->radius[grid] = 0.75;
1235       else ctx->radius[grid] = -ctx->radius[grid];
1236       ctx->radius[grid] = ctx->radius[grid] * SPEED_OF_LIGHT / ctx->v_0; // use any species on grid to normalize (v_0 same for all on grid)
1237       PetscCall(PetscInfo(dummy, "Change domain radius to %g for grid %" PetscInt_FMT "\n", (double)ctx->radius[grid], grid));
1238     }
1239     ctx->radius[grid] *= ctx->thermal_speed[grid] / ctx->v_0;      // scale domain by thermal radius relative to v_0
1240     ctx->radius_perp[grid] *= ctx->thermal_speed[grid] / ctx->v_0; // scale domain by thermal radius relative to v_0
1241     ctx->radius_par[grid] *= ctx->thermal_speed[grid] / ctx->v_0;  // scale domain by thermal radius relative to v_0
1242   }
1243   /* amr parameters */
1244   if (!fileflg) {
1245     nt = LANDAU_MAX_GRIDS;
1246     PetscCall(PetscOptionsIntArray("-dm_landau_amr_levels_max", "Number of AMR levels of refinement around origin, after (RE) refinements along z", "plexland.c", ctx->numAMRRefine, &nt, &flg));
1247     PetscCheck(!flg || nt >= ctx->num_grids, ctx->comm, PETSC_ERR_ARG_WRONG, "-dm_landau_amr_levels_max: given %" PetscInt_FMT " != number grids %" PetscInt_FMT, nt, ctx->num_grids);
1248     nt = LANDAU_MAX_GRIDS;
1249     PetscCall(PetscOptionsIntArray("-dm_landau_amr_post_refine", "Number of levels to uniformly refine after AMR", "plexland.c", ctx->postAMRRefine, &nt, &flg));
1250     for (ii = 1; ii < ctx->num_grids; ii++) ctx->postAMRRefine[ii] = ctx->postAMRRefine[0]; // all grids the same now
1251     PetscCall(PetscOptionsInt("-dm_landau_amr_re_levels", "Number of levels to refine along v_perp=0, z>0", "plexland.c", ctx->numRERefine, &ctx->numRERefine, &flg));
1252     PetscCall(PetscOptionsInt("-dm_landau_amr_z_refine_pre", "Number of levels to refine along v_perp=0 before origin refine", "plexland.c", ctx->nZRefine1, &ctx->nZRefine1, &flg));
1253     PetscCall(PetscOptionsInt("-dm_landau_amr_z_refine_post", "Number of levels to refine along v_perp=0 after origin refine", "plexland.c", ctx->nZRefine2, &ctx->nZRefine2, &flg));
1254     PetscCall(PetscOptionsReal("-dm_landau_re_radius", "velocity range to refine on positive (z>0) r=0 axis for runaways", "plexland.c", ctx->re_radius, &ctx->re_radius, &flg));
1255     PetscCall(PetscOptionsReal("-dm_landau_z_radius_pre", "velocity range to refine r=0 axis (for electrons)", "plexland.c", ctx->vperp0_radius1, &ctx->vperp0_radius1, &flg));
1256     PetscCall(PetscOptionsReal("-dm_landau_z_radius_post", "velocity range to refine r=0 axis (for electrons) after origin AMR", "plexland.c", ctx->vperp0_radius2, &ctx->vperp0_radius2, &flg));
1257     /* spherical domain (not used) */
1258     PetscCall(PetscOptionsBool("-dm_landau_sphere", "use sphere/semi-circle domain instead of rectangle", "plexland.c", ctx->sphere, &ctx->sphere, NULL));
1259     if (ctx->sphere || ctx->simplex) {
1260       ctx->sphere_inner_radius_90degree = 0.40;
1261       ctx->sphere_inner_radius_45degree = 0.35;
1262       PetscCall(PetscOptionsReal("-dm_landau_sphere_inner_radius_90degree_scale", "Scaling of radius for inner circle on 90 degree grid", "plexland.c", ctx->sphere_inner_radius_90degree, &ctx->sphere_inner_radius_90degree, NULL));
1263       PetscCall(PetscOptionsReal("-dm_landau_sphere_inner_radius_45degree_scale", "Scaling of radius for inner circle on 45 degree grid", "plexland.c", ctx->sphere_inner_radius_45degree, &ctx->sphere_inner_radius_45degree, NULL));
1264     } else {
1265       nt = LANDAU_DIM;
1266       PetscCall(PetscOptionsIntArray("-dm_landau_num_cells", "Number of cells in each dimension of base grid", "plexland.c", ctx->cells0, &nt, &flg));
1267     }
1268   }
1269   /* processing options */
1270   PetscCall(PetscOptionsBool("-dm_landau_gpu_assembly", "Assemble Jacobian on GPU", "plexland.c", ctx->gpu_assembly, &ctx->gpu_assembly, NULL));
1271   PetscCall(PetscOptionsBool("-dm_landau_jacobian_field_major_order", "Reorder Jacobian for GPU assembly with field major, or block diagonal, ordering (DEPRECATED)", "plexland.c", ctx->jacobian_field_major_order, &ctx->jacobian_field_major_order, NULL));
1272   if (ctx->jacobian_field_major_order) PetscCheck(ctx->gpu_assembly, ctx->comm, PETSC_ERR_ARG_WRONG, "-dm_landau_jacobian_field_major_order requires -dm_landau_gpu_assembly");
1273   PetscCheck(!ctx->jacobian_field_major_order, ctx->comm, PETSC_ERR_ARG_WRONG, "-dm_landau_jacobian_field_major_order DEPRECATED");
1274   PetscOptionsEnd();
1275 
1276   for (ii = ctx->num_species; ii < LANDAU_MAX_SPECIES; ii++) ctx->masses[ii] = ctx->thermal_temps[ii] = ctx->charges[ii] = 0;
1277   if (ctx->verbose != 0) {
1278     PetscCall(PetscPrintf(PETSC_COMM_WORLD, "masses:        e=%10.3e; ions in proton mass units:   %10.3e %10.3e ...\n", (double)ctx->masses[0], (double)(ctx->masses[1] / 1.6720e-27), (double)(ctx->num_species > 2 ? ctx->masses[2] / 1.6720e-27 : 0)));
1279     PetscCall(PetscPrintf(PETSC_COMM_WORLD, "charges:       e=%10.3e; charges in elementary units: %10.3e %10.3e\n", (double)ctx->charges[0], (double)(-ctx->charges[1] / ctx->charges[0]), (double)(ctx->num_species > 2 ? -ctx->charges[2] / ctx->charges[0] : 0)));
1280     PetscCall(PetscPrintf(PETSC_COMM_WORLD, "n:             e: %10.3e                           i: %10.3e %10.3e\n", (double)ctx->n[0], (double)ctx->n[1], (double)(ctx->num_species > 2 ? ctx->n[2] : 0)));
1281     PetscCall(PetscPrintf(PETSC_COMM_WORLD, "thermal T (K): e=%10.3e i=%10.3e %10.3e. Normalization grid %d: v_0=%10.3e (%10.3ec) n_0=%10.3e t_0=%10.3e %" PetscInt_FMT " batched, view batch %" PetscInt_FMT "\n", (double)ctx->thermal_temps[0],
1282                           (double)ctx->thermal_temps[1], (double)((ctx->num_species > 2) ? ctx->thermal_temps[2] : 0), (int)non_dim_grid, (double)ctx->v_0, (double)(ctx->v_0 / SPEED_OF_LIGHT), (double)ctx->n_0, (double)ctx->t_0, ctx->batch_sz, ctx->batch_view_idx));
1283     PetscCall(PetscPrintf(PETSC_COMM_WORLD, "Domain radius (AMR levels) grid %d: par=%10.3e perp=%10.3e (%" PetscInt_FMT ") ", 0, (double)ctx->radius_par[0], (double)ctx->radius_perp[0], ctx->numAMRRefine[0]));
1284     for (ii = 1; ii < ctx->num_grids; ii++) PetscCall(PetscPrintf(PETSC_COMM_WORLD, ", %" PetscInt_FMT ": par=%10.3e perp=%10.3e (%" PetscInt_FMT ") ", ii, (double)ctx->radius_par[ii], (double)ctx->radius_perp[ii], ctx->numAMRRefine[ii]));
1285     if (ctx->use_relativistic_corrections) PetscCall(PetscPrintf(PETSC_COMM_WORLD, "\nUse relativistic corrections\n"));
1286     else PetscCall(PetscPrintf(PETSC_COMM_WORLD, "\n"));
1287   }
1288   PetscCall(DMDestroy(&dummy));
1289   {
1290     PetscMPIInt rank;
1291     PetscCallMPI(MPI_Comm_rank(PETSC_COMM_WORLD, &rank));
1292     ctx->stage = 0;
1293     PetscCall(PetscLogEventRegister("Landau Create", DM_CLASSID, &ctx->events[13]));   /* 13 */
1294     PetscCall(PetscLogEventRegister(" GPU ass. setup", DM_CLASSID, &ctx->events[2]));  /* 2 */
1295     PetscCall(PetscLogEventRegister(" Build matrix", DM_CLASSID, &ctx->events[12]));   /* 12 */
1296     PetscCall(PetscLogEventRegister(" Assembly maps", DM_CLASSID, &ctx->events[15]));  /* 15 */
1297     PetscCall(PetscLogEventRegister("Landau Mass mat", DM_CLASSID, &ctx->events[14])); /* 14 */
1298     PetscCall(PetscLogEventRegister("Landau Operator", DM_CLASSID, &ctx->events[11])); /* 11 */
1299     PetscCall(PetscLogEventRegister("Landau Jacobian", DM_CLASSID, &ctx->events[0]));  /* 0 */
1300     PetscCall(PetscLogEventRegister("Landau Mass", DM_CLASSID, &ctx->events[9]));      /* 9 */
1301     PetscCall(PetscLogEventRegister(" Preamble", DM_CLASSID, &ctx->events[10]));       /* 10 */
1302     PetscCall(PetscLogEventRegister(" static IP Data", DM_CLASSID, &ctx->events[7]));  /* 7 */
1303     PetscCall(PetscLogEventRegister(" dynamic IP-Jac", DM_CLASSID, &ctx->events[1]));  /* 1 */
1304     PetscCall(PetscLogEventRegister(" Kernel-init", DM_CLASSID, &ctx->events[3]));     /* 3 */
1305     PetscCall(PetscLogEventRegister(" Jac-f-df (GPU)", DM_CLASSID, &ctx->events[8]));  /* 8 */
1306     PetscCall(PetscLogEventRegister(" J Kernel (GPU)", DM_CLASSID, &ctx->events[4]));  /* 4 */
1307     PetscCall(PetscLogEventRegister(" M Kernel (GPU)", DM_CLASSID, &ctx->events[16])); /* 16 */
1308     PetscCall(PetscLogEventRegister(" Copy to CPU", DM_CLASSID, &ctx->events[5]));     /* 5 */
1309     PetscCall(PetscLogEventRegister(" CPU assemble", DM_CLASSID, &ctx->events[6]));    /* 6 */
1310 
1311     if (rank) { /* turn off output stuff for duplicate runs - do we need to add the prefix to all this? */
1312       PetscCall(PetscOptionsClearValue(NULL, "-snes_converged_reason"));
1313       PetscCall(PetscOptionsClearValue(NULL, "-ksp_converged_reason"));
1314       PetscCall(PetscOptionsClearValue(NULL, "-snes_monitor"));
1315       PetscCall(PetscOptionsClearValue(NULL, "-ksp_monitor"));
1316       PetscCall(PetscOptionsClearValue(NULL, "-ts_monitor"));
1317       PetscCall(PetscOptionsClearValue(NULL, "-ts_view"));
1318       PetscCall(PetscOptionsClearValue(NULL, "-ts_adapt_monitor"));
1319       PetscCall(PetscOptionsClearValue(NULL, "-dm_landau_amr_dm_view"));
1320       PetscCall(PetscOptionsClearValue(NULL, "-dm_landau_amr_vec_view"));
1321       PetscCall(PetscOptionsClearValue(NULL, "-dm_landau_mass_dm_view"));
1322       PetscCall(PetscOptionsClearValue(NULL, "-dm_landau_mass_view"));
1323       PetscCall(PetscOptionsClearValue(NULL, "-dm_landau_jacobian_view"));
1324       PetscCall(PetscOptionsClearValue(NULL, "-dm_landau_mat_view"));
1325       PetscCall(PetscOptionsClearValue(NULL, "-pc_bjkokkos_ksp_converged_reason"));
1326       PetscCall(PetscOptionsClearValue(NULL, "-pc_bjkokkos_ksp_monitor"));
1327       PetscCall(PetscOptionsClearValue(NULL, "-"));
1328       PetscCall(PetscOptionsClearValue(NULL, "-info"));
1329     }
1330   }
1331   PetscFunctionReturn(PETSC_SUCCESS);
1332 }
1333 
1334 static PetscErrorCode CreateStaticData(PetscInt dim, IS grid_batch_is_inv[], LandauCtx *ctx)
1335 {
1336   PetscSection     section[LANDAU_MAX_GRIDS], globsection[LANDAU_MAX_GRIDS];
1337   PetscQuadrature  quad;
1338   const PetscReal *quadWeights;
1339   PetscReal        invMass[LANDAU_MAX_SPECIES], nu_alpha[LANDAU_MAX_SPECIES], nu_beta[LANDAU_MAX_SPECIES];
1340   PetscInt         numCells[LANDAU_MAX_GRIDS], Nq, Nb, Nf[LANDAU_MAX_GRIDS], ncellsTot = 0, MAP_BF_SIZE = 64 * LANDAU_DIM * LANDAU_DIM * LANDAU_MAX_Q_FACE * LANDAU_MAX_SPECIES;
1341   PetscTabulation *Tf;
1342   PetscDS          prob;
1343 
1344   PetscFunctionBegin;
1345   PetscCall(PetscFEGetDimension(ctx->fe[0], &Nb));
1346   PetscCheck(Nb <= LANDAU_MAX_NQND, ctx->comm, PETSC_ERR_ARG_WRONG, "Order too high. Nb = %" PetscInt_FMT " > LANDAU_MAX_NQND (%d)", Nb, LANDAU_MAX_NQND);
1347   for (PetscInt grid = 0; grid < ctx->num_grids; grid++) {
1348     for (PetscInt ii = ctx->species_offset[grid]; ii < ctx->species_offset[grid + 1]; ii++) {
1349       invMass[ii]  = ctx->m_0 / ctx->masses[ii];
1350       nu_alpha[ii] = PetscSqr(ctx->charges[ii] / ctx->m_0) * ctx->m_0 / ctx->masses[ii];
1351       nu_beta[ii]  = PetscSqr(ctx->charges[ii] / ctx->epsilon0) / (8 * PETSC_PI) * ctx->t_0 * ctx->n_0 / PetscPowReal(ctx->v_0, 3);
1352     }
1353   }
1354   if (ctx->verbose == 4) {
1355     PetscCall(PetscPrintf(PETSC_COMM_WORLD, "nu_alpha: "));
1356     for (PetscInt grid = 0; grid < ctx->num_grids; grid++) {
1357       int iii = ctx->species_offset[grid];
1358       for (PetscInt ii = iii; ii < ctx->species_offset[grid + 1]; ii++) PetscCall(PetscPrintf(PETSC_COMM_WORLD, " %e", (double)nu_alpha[ii]));
1359     }
1360     PetscCall(PetscPrintf(PETSC_COMM_WORLD, "\nnu_beta: "));
1361     for (PetscInt grid = 0; grid < ctx->num_grids; grid++) {
1362       int iii = ctx->species_offset[grid];
1363       for (PetscInt ii = iii; ii < ctx->species_offset[grid + 1]; ii++) PetscCall(PetscPrintf(PETSC_COMM_WORLD, " %e", (double)nu_beta[ii]));
1364     }
1365     PetscCall(PetscPrintf(PETSC_COMM_WORLD, "\nnu_alpha[i]*nu_beta[j]*lambda[i][j]:\n"));
1366     for (PetscInt grid = 0; grid < ctx->num_grids; grid++) {
1367       int iii = ctx->species_offset[grid];
1368       for (PetscInt ii = iii; ii < ctx->species_offset[grid + 1]; ii++) {
1369         for (PetscInt gridj = 0; gridj < ctx->num_grids; gridj++) {
1370           int jjj = ctx->species_offset[gridj];
1371           for (PetscInt jj = jjj; jj < ctx->species_offset[gridj + 1]; jj++) PetscCall(PetscPrintf(PETSC_COMM_WORLD, " %14.9e", (double)(nu_alpha[ii] * nu_beta[jj] * ctx->lambdas[grid][gridj])));
1372         }
1373         PetscCall(PetscPrintf(PETSC_COMM_WORLD, "\n"));
1374       }
1375     }
1376     PetscCall(PetscPrintf(PETSC_COMM_WORLD, "lambda[i][j]:\n"));
1377     for (PetscInt grid = 0; grid < ctx->num_grids; grid++) {
1378       int iii = ctx->species_offset[grid];
1379       for (PetscInt ii = iii; ii < ctx->species_offset[grid + 1]; ii++) {
1380         for (PetscInt gridj = 0; gridj < ctx->num_grids; gridj++) {
1381           int jjj = ctx->species_offset[gridj];
1382           for (PetscInt jj = jjj; jj < ctx->species_offset[gridj + 1]; jj++) PetscCall(PetscPrintf(PETSC_COMM_WORLD, " %14.9e", (double)ctx->lambdas[grid][gridj]));
1383         }
1384         PetscCall(PetscPrintf(PETSC_COMM_WORLD, "\n"));
1385       }
1386     }
1387   }
1388   PetscCall(DMGetDS(ctx->plex[0], &prob));    // same DS for all grids
1389   PetscCall(PetscDSGetTabulation(prob, &Tf)); // Bf, &Df same for all grids
1390   /* DS, Tab and quad is same on all grids */
1391   PetscCheck(ctx->plex[0], ctx->comm, PETSC_ERR_ARG_WRONG, "Plex not created");
1392   PetscCall(PetscFEGetQuadrature(ctx->fe[0], &quad));
1393   PetscCall(PetscQuadratureGetData(quad, NULL, NULL, &Nq, NULL, &quadWeights));
1394   PetscCheck(Nq <= LANDAU_MAX_NQND, ctx->comm, PETSC_ERR_ARG_WRONG, "Order too high. Nq = %" PetscInt_FMT " > LANDAU_MAX_NQND (%d)", Nq, LANDAU_MAX_NQND);
1395   /* setup each grid */
1396   for (PetscInt grid = 0; grid < ctx->num_grids; grid++) {
1397     PetscInt cStart, cEnd;
1398     PetscCheck(ctx->plex[grid] != NULL, ctx->comm, PETSC_ERR_ARG_WRONG, "Plex not created");
1399     PetscCall(DMPlexGetHeightStratum(ctx->plex[grid], 0, &cStart, &cEnd));
1400     numCells[grid] = cEnd - cStart; // grids can have different topology
1401     PetscCall(DMGetLocalSection(ctx->plex[grid], &section[grid]));
1402     PetscCall(DMGetGlobalSection(ctx->plex[grid], &globsection[grid]));
1403     PetscCall(PetscSectionGetNumFields(section[grid], &Nf[grid]));
1404     ncellsTot += numCells[grid];
1405   }
1406   /* create GPU assembly data */
1407   if (ctx->gpu_assembly) { /* we need GPU object with GPU assembly */
1408     PetscContainer container;
1409     PetscScalar   *elemMatrix, *elMat;
1410     pointInterpolationP4est(*pointMaps)[LANDAU_MAX_Q_FACE];
1411     P4estVertexMaps *maps;
1412     const PetscInt  *plex_batch = NULL, elMatSz = Nb * Nb * ctx->num_species * ctx->num_species;
1413     LandauIdx       *coo_elem_offsets = NULL, *coo_elem_fullNb = NULL, (*coo_elem_point_offsets)[LANDAU_MAX_NQND + 1] = NULL;
1414     /* create GPU assembly data */
1415     PetscCall(PetscInfo(ctx->plex[0], "Make GPU maps %d\n", 1));
1416     PetscCall(PetscLogEventBegin(ctx->events[2], 0, 0, 0, 0));
1417     PetscCall(PetscMalloc(sizeof(*maps) * ctx->num_grids, &maps));
1418     PetscCall(PetscMalloc(sizeof(*pointMaps) * MAP_BF_SIZE, &pointMaps));
1419     PetscCall(PetscMalloc(sizeof(*elemMatrix) * elMatSz, &elemMatrix));
1420 
1421     {                                                                                                                             // setup COO assembly -- put COO metadata directly in ctx->SData_d
1422       PetscCall(PetscMalloc3(ncellsTot + 1, &coo_elem_offsets, ncellsTot, &coo_elem_fullNb, ncellsTot, &coo_elem_point_offsets)); // array of integer pointers
1423       coo_elem_offsets[0] = 0;                                                                                                    // finish later
1424       PetscCall(PetscInfo(ctx->plex[0], "COO initialization, %" PetscInt_FMT " cells\n", ncellsTot));
1425       ctx->SData_d.coo_n_cellsTot         = ncellsTot;
1426       ctx->SData_d.coo_elem_offsets       = (void *)coo_elem_offsets;
1427       ctx->SData_d.coo_elem_fullNb        = (void *)coo_elem_fullNb;
1428       ctx->SData_d.coo_elem_point_offsets = (void *)coo_elem_point_offsets;
1429     }
1430 
1431     ctx->SData_d.coo_max_fullnb = 0;
1432     for (PetscInt grid = 0, glb_elem_idx = 0; grid < ctx->num_grids; grid++) {
1433       PetscInt cStart, cEnd, Nfloc = Nf[grid], totDim = Nfloc * Nb;
1434       if (grid_batch_is_inv[grid]) PetscCall(ISGetIndices(grid_batch_is_inv[grid], &plex_batch));
1435       PetscCheck(!plex_batch, ctx->comm, PETSC_ERR_ARG_WRONG, "-dm_landau_jacobian_field_major_order DEPRECATED");
1436       PetscCall(DMPlexGetHeightStratum(ctx->plex[grid], 0, &cStart, &cEnd));
1437       // make maps
1438       maps[grid].d_self       = NULL;
1439       maps[grid].num_elements = numCells[grid];
1440       maps[grid].num_face     = (PetscInt)(pow(Nq, 1. / ((double)dim)) + .001);                 // Q
1441       maps[grid].num_face     = (PetscInt)(pow(maps[grid].num_face, (double)(dim - 1)) + .001); // Q^2
1442       maps[grid].num_reduced  = 0;
1443       maps[grid].deviceType   = ctx->deviceType;
1444       maps[grid].numgrids     = ctx->num_grids;
1445       // count reduced and get
1446       PetscCall(PetscMalloc(maps[grid].num_elements * sizeof(*maps[grid].gIdx), &maps[grid].gIdx));
1447       for (int ej = cStart, eidx = 0; ej < cEnd; ++ej, ++eidx, glb_elem_idx++) {
1448         if (coo_elem_offsets) coo_elem_offsets[glb_elem_idx + 1] = coo_elem_offsets[glb_elem_idx]; // start with last one, then add
1449         for (int fieldA = 0; fieldA < Nf[grid]; fieldA++) {
1450           int fullNb = 0;
1451           for (int q = 0; q < Nb; ++q) {
1452             PetscInt     numindices, *indices;
1453             PetscScalar *valuesOrig = elMat = elemMatrix;
1454             PetscCall(PetscArrayzero(elMat, totDim * totDim));
1455             elMat[(fieldA * Nb + q) * totDim + fieldA * Nb + q] = 1;
1456             PetscCall(DMPlexGetClosureIndices(ctx->plex[grid], section[grid], globsection[grid], ej, PETSC_TRUE, &numindices, &indices, NULL, (PetscScalar **)&elMat));
1457             if (ctx->simplex) {
1458               PetscCheck(numindices == Nb, ctx->comm, PETSC_ERR_ARG_WRONG, "numindices != Nb numindices=%d Nb=%d", (int)numindices, (int)Nb);
1459               for (int q = 0; q < numindices; ++q) { maps[grid].gIdx[eidx][fieldA][q] = (LandauIdx)indices[q]; }
1460               fullNb++;
1461             } else {
1462               for (PetscInt f = 0; f < numindices; ++f) { // look for a non-zero on the diagonal (is this too complicated for simplices?)
1463                 if (PetscAbs(PetscRealPart(elMat[f * numindices + f])) > PETSC_MACHINE_EPSILON) {
1464                   // found it
1465                   if (PetscAbs(PetscRealPart(elMat[f * numindices + f] - 1.)) < PETSC_MACHINE_EPSILON) { // normal vertex 1.0
1466                     if (plex_batch) {
1467                       maps[grid].gIdx[eidx][fieldA][q] = (LandauIdx)plex_batch[indices[f]];
1468                     } else {
1469                       maps[grid].gIdx[eidx][fieldA][q] = (LandauIdx)indices[f];
1470                     }
1471                     fullNb++;
1472                   } else { //found a constraint
1473                     int            jj                = 0;
1474                     PetscReal      sum               = 0;
1475                     const PetscInt ff                = f;
1476                     maps[grid].gIdx[eidx][fieldA][q] = -maps[grid].num_reduced - 1; // store (-)index: id = -(idx+1): idx = -id - 1
1477                     PetscCheck(!ctx->simplex, ctx->comm, PETSC_ERR_ARG_WRONG, "No constraints with simplex");
1478                     do {                                                                                              // constraints are continuous in Plex - exploit that here
1479                       int ii;                                                                                         // get 'scale'
1480                       for (ii = 0, pointMaps[maps[grid].num_reduced][jj].scale = 0; ii < maps[grid].num_face; ii++) { // sum row of outer product to recover vector value
1481                         if (ff + ii < numindices) {                                                                   // 3D has Q and Q^2 interps so might run off end. We could test that elMat[f*numindices + ff + ii] > 0, and break if not
1482                           pointMaps[maps[grid].num_reduced][jj].scale += PetscRealPart(elMat[f * numindices + ff + ii]);
1483                         }
1484                       }
1485                       sum += pointMaps[maps[grid].num_reduced][jj].scale; // diagnostic
1486                       // get 'gid'
1487                       if (pointMaps[maps[grid].num_reduced][jj].scale == 0) pointMaps[maps[grid].num_reduced][jj].gid = -1; // 3D has Q and Q^2 interps
1488                       else {
1489                         if (plex_batch) {
1490                           pointMaps[maps[grid].num_reduced][jj].gid = plex_batch[indices[f]];
1491                         } else {
1492                           pointMaps[maps[grid].num_reduced][jj].gid = indices[f];
1493                         }
1494                         fullNb++;
1495                       }
1496                     } while (++jj < maps[grid].num_face && ++f < numindices); // jj is incremented if we hit the end
1497                     while (jj < maps[grid].num_face) {
1498                       pointMaps[maps[grid].num_reduced][jj].scale = 0;
1499                       pointMaps[maps[grid].num_reduced][jj].gid   = -1;
1500                       jj++;
1501                     }
1502                     if (PetscAbs(sum - 1.0) > 10 * PETSC_MACHINE_EPSILON) { // debug
1503                       int       d, f;
1504                       PetscReal tmp = 0;
1505                       PetscCall(PetscPrintf(PETSC_COMM_SELF, "\t\t%d.%d.%d) ERROR total I = %22.16e (LANDAU_MAX_Q_FACE=%d, #face=%d)\n", eidx, q, fieldA, (double)sum, LANDAU_MAX_Q_FACE, maps[grid].num_face));
1506                       for (d = 0, tmp = 0; d < numindices; ++d) {
1507                         if (tmp != 0 && PetscAbs(tmp - 1.0) > 10 * PETSC_MACHINE_EPSILON) PetscCall(PetscPrintf(PETSC_COMM_WORLD, "%3d) %3" PetscInt_FMT ": ", d, indices[d]));
1508                         for (f = 0; f < numindices; ++f) tmp += PetscRealPart(elMat[d * numindices + f]);
1509                         if (tmp != 0) PetscCall(PetscPrintf(ctx->comm, " | %22.16e\n", (double)tmp));
1510                       }
1511                     }
1512                     maps[grid].num_reduced++;
1513                     PetscCheck(maps[grid].num_reduced < MAP_BF_SIZE, PETSC_COMM_SELF, PETSC_ERR_PLIB, "maps[grid].num_reduced %d > %" PetscInt_FMT, maps[grid].num_reduced, MAP_BF_SIZE);
1514                   }
1515                   break;
1516                 }
1517               }
1518             } // !simplex
1519             // cleanup
1520             PetscCall(DMPlexRestoreClosureIndices(ctx->plex[grid], section[grid], globsection[grid], ej, PETSC_TRUE, &numindices, &indices, NULL, (PetscScalar **)&elMat));
1521             if (elMat != valuesOrig) PetscCall(DMRestoreWorkArray(ctx->plex[grid], numindices * numindices, MPIU_SCALAR, &elMat));
1522           }
1523           {                                                        // setup COO assembly
1524             coo_elem_offsets[glb_elem_idx + 1] += fullNb * fullNb; // one species block, adds a block for each species, on this element in this grid
1525             if (fieldA == 0) {                                     // cache full Nb for this element, on this grid per species
1526               coo_elem_fullNb[glb_elem_idx] = fullNb;
1527               if (fullNb > ctx->SData_d.coo_max_fullnb) ctx->SData_d.coo_max_fullnb = fullNb;
1528             } else PetscCheck(coo_elem_fullNb[glb_elem_idx] == fullNb, PETSC_COMM_SELF, PETSC_ERR_PLIB, "full element size change with species %d %d", coo_elem_fullNb[glb_elem_idx], fullNb);
1529           }
1530         } // field
1531       }   // cell
1532       // allocate and copy point data maps[grid].gIdx[eidx][field][q]
1533       PetscCall(PetscMalloc(maps[grid].num_reduced * sizeof(*maps[grid].c_maps), &maps[grid].c_maps));
1534       for (int ej = 0; ej < maps[grid].num_reduced; ++ej) {
1535         for (int q = 0; q < maps[grid].num_face; ++q) {
1536           maps[grid].c_maps[ej][q].scale = pointMaps[ej][q].scale;
1537           maps[grid].c_maps[ej][q].gid   = pointMaps[ej][q].gid;
1538         }
1539       }
1540 #if defined(PETSC_HAVE_KOKKOS)
1541       if (ctx->deviceType == LANDAU_KOKKOS) {
1542         PetscCall(LandauKokkosCreateMatMaps(maps, pointMaps, Nf, grid)); // implies Kokkos does
1543       }
1544 #endif
1545       if (plex_batch) {
1546         PetscCall(ISRestoreIndices(grid_batch_is_inv[grid], &plex_batch));
1547         PetscCall(ISDestroy(&grid_batch_is_inv[grid])); // we are done with this
1548       }
1549     } /* grids */
1550     // finish COO
1551     { // setup COO assembly
1552       PetscInt *oor, *ooc;
1553       ctx->SData_d.coo_size = coo_elem_offsets[ncellsTot] * ctx->batch_sz;
1554       PetscCall(PetscMalloc2(ctx->SData_d.coo_size, &oor, ctx->SData_d.coo_size, &ooc));
1555       for (int i = 0; i < ctx->SData_d.coo_size; i++) oor[i] = ooc[i] = -1;
1556       // get
1557       for (int grid = 0, glb_elem_idx = 0; grid < ctx->num_grids; grid++) {
1558         for (int ej = 0; ej < numCells[grid]; ++ej, glb_elem_idx++) {
1559           const int              fullNb           = coo_elem_fullNb[glb_elem_idx];
1560           const LandauIdx *const Idxs             = &maps[grid].gIdx[ej][0][0]; // just use field-0 maps, They should be the same but this is just for COO storage
1561           coo_elem_point_offsets[glb_elem_idx][0] = 0;
1562           for (int f = 0, cnt2 = 0; f < Nb; f++) {
1563             int idx                                     = Idxs[f];
1564             coo_elem_point_offsets[glb_elem_idx][f + 1] = coo_elem_point_offsets[glb_elem_idx][f]; // start at last
1565             if (idx >= 0) {
1566               cnt2++;
1567               coo_elem_point_offsets[glb_elem_idx][f + 1]++; // inc
1568             } else {
1569               idx = -idx - 1;
1570               for (int q = 0; q < maps[grid].num_face; q++) {
1571                 if (maps[grid].c_maps[idx][q].gid < 0) break;
1572                 cnt2++;
1573                 coo_elem_point_offsets[glb_elem_idx][f + 1]++; // inc
1574               }
1575             }
1576             PetscCheck(cnt2 <= fullNb, PETSC_COMM_SELF, PETSC_ERR_PLIB, "wrong count %d < %d", fullNb, cnt2);
1577           }
1578           PetscCheck(coo_elem_point_offsets[glb_elem_idx][Nb] == fullNb, PETSC_COMM_SELF, PETSC_ERR_PLIB, "coo_elem_point_offsets size %d != fullNb=%d", coo_elem_point_offsets[glb_elem_idx][Nb], fullNb);
1579         }
1580       }
1581       // set
1582       for (PetscInt b_id = 0; b_id < ctx->batch_sz; b_id++) {
1583         for (int grid = 0, glb_elem_idx = 0; grid < ctx->num_grids; grid++) {
1584           const PetscInt moffset = LAND_MOFFSET(b_id, grid, ctx->batch_sz, ctx->num_grids, ctx->mat_offset);
1585           for (int ej = 0; ej < numCells[grid]; ++ej, glb_elem_idx++) {
1586             const int fullNb = coo_elem_fullNb[glb_elem_idx], fullNb2 = fullNb * fullNb;
1587             // set (i,j)
1588             for (int fieldA = 0; fieldA < Nf[grid]; fieldA++) {
1589               const LandauIdx *const Idxs = &maps[grid].gIdx[ej][fieldA][0];
1590               int                    rows[LANDAU_MAX_Q_FACE], cols[LANDAU_MAX_Q_FACE];
1591               for (int f = 0; f < Nb; ++f) {
1592                 const int nr = coo_elem_point_offsets[glb_elem_idx][f + 1] - coo_elem_point_offsets[glb_elem_idx][f];
1593                 if (nr == 1) rows[0] = Idxs[f];
1594                 else {
1595                   const int idx = -Idxs[f] - 1;
1596                   for (int q = 0; q < nr; q++) rows[q] = maps[grid].c_maps[idx][q].gid;
1597                 }
1598                 for (int g = 0; g < Nb; ++g) {
1599                   const int nc = coo_elem_point_offsets[glb_elem_idx][g + 1] - coo_elem_point_offsets[glb_elem_idx][g];
1600                   if (nc == 1) cols[0] = Idxs[g];
1601                   else {
1602                     const int idx = -Idxs[g] - 1;
1603                     for (int q = 0; q < nc; q++) cols[q] = maps[grid].c_maps[idx][q].gid;
1604                   }
1605                   const int idx0 = b_id * coo_elem_offsets[ncellsTot] + coo_elem_offsets[glb_elem_idx] + fieldA * fullNb2 + fullNb * coo_elem_point_offsets[glb_elem_idx][f] + nr * coo_elem_point_offsets[glb_elem_idx][g];
1606                   for (int q = 0, idx = idx0; q < nr; q++) {
1607                     for (int d = 0; d < nc; d++, idx++) {
1608                       oor[idx] = rows[q] + moffset;
1609                       ooc[idx] = cols[d] + moffset;
1610                     }
1611                   }
1612                 }
1613               }
1614             }
1615           } // cell
1616         }   // grid
1617       }     // batch
1618       PetscCall(MatSetPreallocationCOO(ctx->J, ctx->SData_d.coo_size, oor, ooc));
1619       PetscCall(PetscFree2(oor, ooc));
1620     }
1621     PetscCall(PetscFree(pointMaps));
1622     PetscCall(PetscFree(elemMatrix));
1623     PetscCall(PetscContainerCreate(PETSC_COMM_SELF, &container));
1624     PetscCall(PetscContainerSetPointer(container, (void *)maps));
1625     PetscCall(PetscContainerSetUserDestroy(container, LandauGPUMapsDestroy));
1626     PetscCall(PetscObjectCompose((PetscObject)ctx->J, "assembly_maps", (PetscObject)container));
1627     PetscCall(PetscContainerDestroy(&container));
1628     PetscCall(PetscLogEventEnd(ctx->events[2], 0, 0, 0, 0));
1629   } // end GPU assembly
1630   { /* create static point data, Jacobian called first, only one vertex copy */
1631     PetscReal *invJe, *ww, *xx, *yy, *zz = NULL, *invJ_a;
1632     PetscInt   outer_ipidx, outer_ej, grid, nip_glb = 0;
1633     PetscFE    fe;
1634     PetscCall(PetscLogEventBegin(ctx->events[7], 0, 0, 0, 0));
1635     PetscCall(PetscInfo(ctx->plex[0], "Initialize static data\n"));
1636     for (PetscInt grid = 0; grid < ctx->num_grids; grid++) nip_glb += Nq * numCells[grid];
1637     /* collect f data, first time is for Jacobian, but make mass now */
1638     if (ctx->verbose != 0) {
1639       PetscInt ncells = 0, N;
1640       PetscCall(MatGetSize(ctx->J, &N, NULL));
1641       for (PetscInt grid = 0; grid < ctx->num_grids; grid++) ncells += numCells[grid];
1642       PetscCall(PetscPrintf(PETSC_COMM_WORLD, "%d) %s %" PetscInt_FMT " IPs, %" PetscInt_FMT " cells total, Nb=%" PetscInt_FMT ", Nq=%" PetscInt_FMT ", dim=%" PetscInt_FMT ", Tab: Nb=%" PetscInt_FMT " Nf=%" PetscInt_FMT " Np=%" PetscInt_FMT " cdim=%" PetscInt_FMT " N=%" PetscInt_FMT "\n", 0, "FormLandau", nip_glb, ncells, Nb, Nq, dim, Nb,
1643                             ctx->num_species, Nb, dim, N));
1644     }
1645     PetscCall(PetscMalloc4(nip_glb, &ww, nip_glb, &xx, nip_glb, &yy, nip_glb * dim * dim, &invJ_a));
1646     if (dim == 3) PetscCall(PetscMalloc1(nip_glb, &zz));
1647     if (ctx->use_energy_tensor_trick) {
1648       PetscCall(PetscFECreateDefault(PETSC_COMM_SELF, dim, 1, ctx->simplex, NULL, PETSC_DECIDE, &fe));
1649       PetscCall(PetscObjectSetName((PetscObject)fe, "energy"));
1650     }
1651     /* init each grids static data - no batch */
1652     for (grid = 0, outer_ipidx = 0, outer_ej = 0; grid < ctx->num_grids; grid++) { // OpenMP (once)
1653       Vec          v2_2 = NULL;                                                    // projected function: v^2/2 for non-relativistic, gamma... for relativistic
1654       PetscSection e_section;
1655       DM           dmEnergy;
1656       PetscInt     cStart, cEnd, ej;
1657 
1658       PetscCall(DMPlexGetHeightStratum(ctx->plex[grid], 0, &cStart, &cEnd));
1659       // prep energy trick, get v^2 / 2 vector
1660       if (ctx->use_energy_tensor_trick) {
1661         PetscErrorCode (*energyf[1])(PetscInt, PetscReal, const PetscReal[], PetscInt, PetscScalar[], void *) = {ctx->use_relativistic_corrections ? gamma_m1_f : energy_f};
1662         Vec        glob_v2;
1663         PetscReal *c2_0[1], data[1] = {PetscSqr(C_0(ctx->v_0))};
1664 
1665         PetscCall(DMClone(ctx->plex[grid], &dmEnergy));
1666         PetscCall(PetscObjectSetName((PetscObject)dmEnergy, "energy"));
1667         PetscCall(DMSetField(dmEnergy, 0, NULL, (PetscObject)fe));
1668         PetscCall(DMCreateDS(dmEnergy));
1669         PetscCall(DMGetSection(dmEnergy, &e_section));
1670         PetscCall(DMGetGlobalVector(dmEnergy, &glob_v2));
1671         PetscCall(PetscObjectSetName((PetscObject)glob_v2, "trick"));
1672         c2_0[0] = &data[0];
1673         PetscCall(DMProjectFunction(dmEnergy, 0., energyf, (void **)c2_0, INSERT_ALL_VALUES, glob_v2));
1674         PetscCall(DMGetLocalVector(dmEnergy, &v2_2));
1675         PetscCall(VecZeroEntries(v2_2)); /* zero BCs so don't set */
1676         PetscCall(DMGlobalToLocalBegin(dmEnergy, glob_v2, INSERT_VALUES, v2_2));
1677         PetscCall(DMGlobalToLocalEnd(dmEnergy, glob_v2, INSERT_VALUES, v2_2));
1678         PetscCall(DMViewFromOptions(dmEnergy, NULL, "-energy_dm_view"));
1679         PetscCall(VecViewFromOptions(glob_v2, NULL, "-energy_vec_view"));
1680         PetscCall(DMRestoreGlobalVector(dmEnergy, &glob_v2));
1681       }
1682       /* append part of the IP data for each grid */
1683       for (ej = 0; ej < numCells[grid]; ++ej, ++outer_ej) {
1684         PetscScalar *coefs = NULL;
1685         PetscReal    vj[LANDAU_MAX_NQND * LANDAU_DIM], detJj[LANDAU_MAX_NQND], Jdummy[LANDAU_MAX_NQND * LANDAU_DIM * LANDAU_DIM], c0 = C_0(ctx->v_0), c02 = PetscSqr(c0);
1686         invJe = invJ_a + outer_ej * Nq * dim * dim;
1687         PetscCall(DMPlexComputeCellGeometryFEM(ctx->plex[grid], ej + cStart, quad, vj, Jdummy, invJe, detJj));
1688         if (ctx->use_energy_tensor_trick) PetscCall(DMPlexVecGetClosure(dmEnergy, e_section, v2_2, ej + cStart, NULL, &coefs));
1689         /* create static point data */
1690         for (PetscInt qj = 0; qj < Nq; qj++, outer_ipidx++) {
1691           const PetscInt   gidx = outer_ipidx;
1692           const PetscReal *invJ = &invJe[qj * dim * dim];
1693           ww[gidx]              = detJj[qj] * quadWeights[qj];
1694           if (dim == 2) ww[gidx] *= vj[qj * dim + 0]; /* cylindrical coordinate, w/o 2pi */
1695           // get xx, yy, zz
1696           if (ctx->use_energy_tensor_trick) {
1697             double                 refSpaceDer[3], eGradPhi[3];
1698             const PetscReal *const DD = Tf[0]->T[1];
1699             const PetscReal       *Dq = &DD[qj * Nb * dim];
1700             for (int d = 0; d < 3; ++d) refSpaceDer[d] = eGradPhi[d] = 0.0;
1701             for (int b = 0; b < Nb; ++b) {
1702               for (int d = 0; d < dim; ++d) refSpaceDer[d] += Dq[b * dim + d] * PetscRealPart(coefs[b]);
1703             }
1704             xx[gidx] = 1e10;
1705             if (ctx->use_relativistic_corrections) {
1706               double dg2_c2 = 0;
1707               //for (int d = 0; d < dim; ++d) refSpaceDer[d] *= c02;
1708               for (int d = 0; d < dim; ++d) dg2_c2 += PetscSqr(refSpaceDer[d]);
1709               dg2_c2 *= (double)c02;
1710               if (dg2_c2 >= .999) {
1711                 xx[gidx] = vj[qj * dim + 0]; /* coordinate */
1712                 yy[gidx] = vj[qj * dim + 1];
1713                 if (dim == 3) zz[gidx] = vj[qj * dim + 2];
1714                 PetscCall(PetscPrintf(ctx->comm, "Error: %12.5e %" PetscInt_FMT ".%" PetscInt_FMT ") dg2/c02 = %12.5e x= %12.5e %12.5e %12.5e\n", (double)PetscSqrtReal(xx[gidx] * xx[gidx] + yy[gidx] * yy[gidx] + zz[gidx] * zz[gidx]), ej, qj, dg2_c2, (double)xx[gidx], (double)yy[gidx], (double)zz[gidx]));
1715               } else {
1716                 PetscReal fact = c02 / PetscSqrtReal(1. - dg2_c2);
1717                 for (int d = 0; d < dim; ++d) refSpaceDer[d] *= fact;
1718                 // could test with other point u' that (grad - grad') * U (refSpaceDer, refSpaceDer') == 0
1719               }
1720             }
1721             if (xx[gidx] == 1e10) {
1722               for (int d = 0; d < dim; ++d) {
1723                 for (int e = 0; e < dim; ++e) eGradPhi[d] += invJ[e * dim + d] * refSpaceDer[e];
1724               }
1725               xx[gidx] = eGradPhi[0];
1726               yy[gidx] = eGradPhi[1];
1727               if (dim == 3) zz[gidx] = eGradPhi[2];
1728             }
1729           } else {
1730             xx[gidx] = vj[qj * dim + 0]; /* coordinate */
1731             yy[gidx] = vj[qj * dim + 1];
1732             if (dim == 3) zz[gidx] = vj[qj * dim + 2];
1733           }
1734         } /* q */
1735         if (ctx->use_energy_tensor_trick) PetscCall(DMPlexVecRestoreClosure(dmEnergy, e_section, v2_2, ej + cStart, NULL, &coefs));
1736       } /* ej */
1737       if (ctx->use_energy_tensor_trick) {
1738         PetscCall(DMRestoreLocalVector(dmEnergy, &v2_2));
1739         PetscCall(DMDestroy(&dmEnergy));
1740       }
1741     } /* grid */
1742     if (ctx->use_energy_tensor_trick) PetscCall(PetscFEDestroy(&fe));
1743     /* cache static data */
1744     if (ctx->deviceType == LANDAU_KOKKOS) {
1745 #if defined(PETSC_HAVE_KOKKOS)
1746       PetscCall(LandauKokkosStaticDataSet(ctx->plex[0], Nq, Nb, ctx->batch_sz, ctx->num_grids, numCells, ctx->species_offset, ctx->mat_offset, nu_alpha, nu_beta, invMass, (PetscReal *)ctx->lambdas, invJ_a, xx, yy, zz, ww, &ctx->SData_d));
1747 #else
1748       SETERRQ(ctx->comm, PETSC_ERR_ARG_WRONG, "-landau_device_type kokkos not built");
1749 #endif
1750       /* free */
1751       PetscCall(PetscFree4(ww, xx, yy, invJ_a));
1752       if (dim == 3) PetscCall(PetscFree(zz));
1753     } else {                                                                                                                                                                   /* CPU version, just copy in, only use part */
1754       PetscReal *nu_alpha_p = (PetscReal *)ctx->SData_d.alpha, *nu_beta_p = (PetscReal *)ctx->SData_d.beta, *invMass_p = (PetscReal *)ctx->SData_d.invMass, *lambdas_p = NULL; // why set these ?
1755       ctx->SData_d.w    = (void *)ww;
1756       ctx->SData_d.x    = (void *)xx;
1757       ctx->SData_d.y    = (void *)yy;
1758       ctx->SData_d.z    = (void *)zz;
1759       ctx->SData_d.invJ = (void *)invJ_a;
1760       PetscCall(PetscMalloc4(ctx->num_species, &nu_alpha_p, ctx->num_species, &nu_beta_p, ctx->num_species, &invMass_p, LANDAU_MAX_GRIDS * LANDAU_MAX_GRIDS, &lambdas_p));
1761       for (PetscInt ii = 0; ii < ctx->num_species; ii++) {
1762         nu_alpha_p[ii] = nu_alpha[ii];
1763         nu_beta_p[ii]  = nu_beta[ii];
1764         invMass_p[ii]  = invMass[ii];
1765       }
1766       ctx->SData_d.alpha   = (void *)nu_alpha_p;
1767       ctx->SData_d.beta    = (void *)nu_beta_p;
1768       ctx->SData_d.invMass = (void *)invMass_p;
1769       ctx->SData_d.lambdas = (void *)lambdas_p;
1770       for (PetscInt grid = 0; grid < LANDAU_MAX_GRIDS; grid++) {
1771         PetscReal(*lambdas)[LANDAU_MAX_GRIDS][LANDAU_MAX_GRIDS] = (PetscReal(*)[LANDAU_MAX_GRIDS][LANDAU_MAX_GRIDS])ctx->SData_d.lambdas;
1772         for (PetscInt gridj = 0; gridj < LANDAU_MAX_GRIDS; gridj++) { (*lambdas)[grid][gridj] = ctx->lambdas[grid][gridj]; }
1773       }
1774     }
1775     PetscCall(PetscLogEventEnd(ctx->events[7], 0, 0, 0, 0));
1776   } // initialize
1777   PetscFunctionReturn(PETSC_SUCCESS);
1778 }
1779 
1780 /* < v, u > */
1781 static void g0_1(PetscInt dim, PetscInt Nf, PetscInt NfAux, const PetscInt uOff[], const PetscInt uOff_x[], const PetscScalar u[], const PetscScalar u_t[], const PetscScalar u_x[], const PetscInt aOff[], const PetscInt aOff_x[], const PetscScalar a[], const PetscScalar a_t[], const PetscScalar a_x[], PetscReal t, PetscReal u_tShift, const PetscReal x[], PetscInt numConstants, const PetscScalar constants[], PetscScalar g0[])
1782 {
1783   g0[0] = 1.;
1784 }
1785 
1786 /* < v, u > */
1787 static void g0_fake(PetscInt dim, PetscInt Nf, PetscInt NfAux, const PetscInt uOff[], const PetscInt uOff_x[], const PetscScalar u[], const PetscScalar u_t[], const PetscScalar u_x[], const PetscInt aOff[], const PetscInt aOff_x[], const PetscScalar a[], const PetscScalar a_t[], const PetscScalar a_x[], PetscReal t, PetscReal u_tShift, const PetscReal x[], PetscInt numConstants, const PetscScalar constants[], PetscScalar g0[])
1788 {
1789   static double ttt = 1e-12;
1790   g0[0]             = ttt++;
1791 }
1792 
1793 /* < v, u > */
1794 static void g0_r(PetscInt dim, PetscInt Nf, PetscInt NfAux, const PetscInt uOff[], const PetscInt uOff_x[], const PetscScalar u[], const PetscScalar u_t[], const PetscScalar u_x[], const PetscInt aOff[], const PetscInt aOff_x[], const PetscScalar a[], const PetscScalar a_t[], const PetscScalar a_x[], PetscReal t, PetscReal u_tShift, const PetscReal x[], PetscInt numConstants, const PetscScalar constants[], PetscScalar g0[])
1795 {
1796   g0[0] = 2. * PETSC_PI * x[0];
1797 }
1798 
1799 static PetscErrorCode MatrixNfDestroy(void *ptr)
1800 {
1801   PetscInt *nf = (PetscInt *)ptr;
1802   PetscFunctionBegin;
1803   PetscCall(PetscFree(nf));
1804   PetscFunctionReturn(PETSC_SUCCESS);
1805 }
1806 
1807 /*
1808  LandauCreateJacobianMatrix - creates ctx->J with without real data. Hard to keep sparse.
1809   - Like DMPlexLandauCreateMassMatrix. Should remove one and combine
1810   - has old support for field major ordering
1811  */
1812 static PetscErrorCode LandauCreateJacobianMatrix(MPI_Comm comm, Vec X, IS grid_batch_is_inv[LANDAU_MAX_GRIDS], LandauCtx *ctx)
1813 {
1814   PetscInt *idxs = NULL;
1815   Mat       subM[LANDAU_MAX_GRIDS];
1816 
1817   PetscFunctionBegin;
1818   if (!ctx->gpu_assembly) { /* we need GPU object with GPU assembly */
1819     PetscFunctionReturn(PETSC_SUCCESS);
1820   }
1821   // get the RCM for this grid to separate out species into blocks -- create 'idxs' & 'ctx->batch_is' -- not used
1822   if (ctx->gpu_assembly && ctx->jacobian_field_major_order) PetscCall(PetscMalloc1(ctx->mat_offset[ctx->num_grids] * ctx->batch_sz, &idxs));
1823   for (PetscInt grid = 0; grid < ctx->num_grids; grid++) {
1824     const PetscInt *values, n = ctx->mat_offset[grid + 1] - ctx->mat_offset[grid];
1825     Mat             gMat;
1826     DM              massDM;
1827     PetscDS         prob;
1828     Vec             tvec;
1829     // get "mass" matrix for reordering
1830     PetscCall(DMClone(ctx->plex[grid], &massDM));
1831     PetscCall(DMCopyFields(ctx->plex[grid], massDM));
1832     PetscCall(DMCreateDS(massDM));
1833     PetscCall(DMGetDS(massDM, &prob));
1834     for (int ix = 0, ii = ctx->species_offset[grid]; ii < ctx->species_offset[grid + 1]; ii++, ix++) PetscCall(PetscDSSetJacobian(prob, ix, ix, g0_fake, NULL, NULL, NULL));
1835     PetscCall(PetscOptionsInsertString(NULL, "-dm_preallocate_only")); // this trick is need to both sparsify the matrix and avoid runtime error
1836     PetscCall(DMCreateMatrix(massDM, &gMat));
1837     PetscCall(PetscOptionsInsertString(NULL, "-dm_preallocate_only false"));
1838     PetscCall(MatSetOption(gMat, MAT_STRUCTURALLY_SYMMETRIC, PETSC_TRUE));
1839     PetscCall(MatSetOption(gMat, MAT_IGNORE_ZERO_ENTRIES, PETSC_TRUE));
1840     PetscCall(DMCreateLocalVector(ctx->plex[grid], &tvec));
1841     PetscCall(DMPlexSNESComputeJacobianFEM(massDM, tvec, gMat, gMat, ctx));
1842     PetscCall(MatViewFromOptions(gMat, NULL, "-dm_landau_reorder_mat_view"));
1843     PetscCall(DMDestroy(&massDM));
1844     PetscCall(VecDestroy(&tvec));
1845     subM[grid] = gMat;
1846     if (ctx->gpu_assembly && ctx->jacobian_field_major_order) {
1847       MatOrderingType rtype = MATORDERINGRCM;
1848       IS              isrow, isicol;
1849       PetscCall(MatGetOrdering(gMat, rtype, &isrow, &isicol));
1850       PetscCall(ISInvertPermutation(isrow, PETSC_DECIDE, &grid_batch_is_inv[grid]));
1851       PetscCall(ISGetIndices(isrow, &values));
1852       for (PetscInt b_id = 0; b_id < ctx->batch_sz; b_id++) { // add batch size DMs for this species grid
1853 #if !defined(LANDAU_SPECIES_MAJOR)
1854         PetscInt N = ctx->mat_offset[ctx->num_grids], n0 = ctx->mat_offset[grid] + b_id * N;
1855         for (int ii = 0; ii < n; ++ii) idxs[n0 + ii] = values[ii] + n0;
1856 #else
1857         PetscInt n0 = ctx->mat_offset[grid] * ctx->batch_sz + b_id * n;
1858         for (int ii = 0; ii < n; ++ii) idxs[n0 + ii] = values[ii] + n0;
1859 #endif
1860       }
1861       PetscCall(ISRestoreIndices(isrow, &values));
1862       PetscCall(ISDestroy(&isrow));
1863       PetscCall(ISDestroy(&isicol));
1864     }
1865   }
1866   if (ctx->gpu_assembly && ctx->jacobian_field_major_order) PetscCall(ISCreateGeneral(comm, ctx->mat_offset[ctx->num_grids] * ctx->batch_sz, idxs, PETSC_OWN_POINTER, &ctx->batch_is));
1867   // get a block matrix
1868   for (PetscInt grid = 0; grid < ctx->num_grids; grid++) {
1869     Mat      B = subM[grid];
1870     PetscInt nloc, nzl, *colbuf, row, COL_BF_SIZE = 1024;
1871     PetscCall(PetscMalloc(sizeof(*colbuf) * COL_BF_SIZE, &colbuf));
1872     PetscCall(MatGetSize(B, &nloc, NULL));
1873     for (PetscInt b_id = 0; b_id < ctx->batch_sz; b_id++) {
1874       const PetscInt     moffset = LAND_MOFFSET(b_id, grid, ctx->batch_sz, ctx->num_grids, ctx->mat_offset);
1875       const PetscInt    *cols;
1876       const PetscScalar *vals;
1877       for (int i = 0; i < nloc; i++) {
1878         PetscCall(MatGetRow(B, i, &nzl, NULL, NULL));
1879         if (nzl > COL_BF_SIZE) {
1880           PetscCall(PetscFree(colbuf));
1881           PetscCall(PetscInfo(ctx->plex[grid], "Realloc buffer %" PetscInt_FMT " to %" PetscInt_FMT " (row size %" PetscInt_FMT ") \n", COL_BF_SIZE, 2 * COL_BF_SIZE, nzl));
1882           COL_BF_SIZE = nzl;
1883           PetscCall(PetscMalloc(sizeof(*colbuf) * COL_BF_SIZE, &colbuf));
1884         }
1885         PetscCall(MatGetRow(B, i, &nzl, &cols, &vals));
1886         for (int j = 0; j < nzl; j++) colbuf[j] = cols[j] + moffset;
1887         row = i + moffset;
1888         PetscCall(MatSetValues(ctx->J, 1, &row, nzl, colbuf, vals, INSERT_VALUES));
1889         PetscCall(MatRestoreRow(B, i, &nzl, &cols, &vals));
1890       }
1891     }
1892     PetscCall(PetscFree(colbuf));
1893   }
1894   for (PetscInt grid = 0; grid < ctx->num_grids; grid++) PetscCall(MatDestroy(&subM[grid]));
1895   PetscCall(MatAssemblyBegin(ctx->J, MAT_FINAL_ASSEMBLY));
1896   PetscCall(MatAssemblyEnd(ctx->J, MAT_FINAL_ASSEMBLY));
1897 
1898   // debug
1899   PetscCall(MatViewFromOptions(ctx->J, NULL, "-dm_landau_mat_view"));
1900   if (ctx->gpu_assembly && ctx->jacobian_field_major_order) {
1901     Mat mat_block_order;
1902     PetscCall(MatCreateSubMatrix(ctx->J, ctx->batch_is, ctx->batch_is, MAT_INITIAL_MATRIX, &mat_block_order)); // use MatPermute
1903     PetscCall(MatViewFromOptions(mat_block_order, NULL, "-dm_landau_mat_view"));
1904     PetscCall(MatDestroy(&mat_block_order));
1905     PetscCall(VecScatterCreate(X, ctx->batch_is, X, NULL, &ctx->plex_batch));
1906     PetscCall(VecDuplicate(X, &ctx->work_vec));
1907   }
1908 
1909   PetscFunctionReturn(PETSC_SUCCESS);
1910 }
1911 
1912 PetscErrorCode DMPlexLandauCreateMassMatrix(DM pack, Mat *Amat);
1913 /*@C
1914   DMPlexLandauCreateVelocitySpace - Create a `DMPLEX` velocity space mesh
1915 
1916   Collective
1917 
1918   Input Parameters:
1919 + comm   - The MPI communicator
1920 . dim    - velocity space dimension (2 for axisymmetric, 3 for full 3X + 3V solver)
1921 - prefix - prefix for options (not tested)
1922 
1923   Output Parameters:
1924 + pack - The `DM` object representing the mesh
1925 . X    - A vector (user destroys)
1926 - J    - Optional matrix (object destroys)
1927 
1928   Level: beginner
1929 
1930 .seealso: `DMPlexCreate()`, `DMPlexLandauDestroyVelocitySpace()`
1931  @*/
1932 PetscErrorCode DMPlexLandauCreateVelocitySpace(MPI_Comm comm, PetscInt dim, const char prefix[], Vec *X, Mat *J, DM *pack)
1933 {
1934   LandauCtx *ctx;
1935   Vec        Xsub[LANDAU_MAX_GRIDS];
1936   IS         grid_batch_is_inv[LANDAU_MAX_GRIDS];
1937 
1938   PetscFunctionBegin;
1939   PetscCheck(dim == 2 || dim == 3, PETSC_COMM_SELF, PETSC_ERR_PLIB, "Only 2D and 3D supported");
1940   PetscCheck(LANDAU_DIM == dim, PETSC_COMM_SELF, PETSC_ERR_PLIB, "dim %" PetscInt_FMT " != LANDAU_DIM %d", dim, LANDAU_DIM);
1941   PetscCall(PetscNew(&ctx));
1942   ctx->comm = comm; /* used for diagnostics and global errors */
1943   /* process options */
1944   PetscCall(ProcessOptions(ctx, prefix));
1945   if (dim == 2) ctx->use_relativistic_corrections = PETSC_FALSE;
1946   /* Create Mesh */
1947   PetscCall(DMCompositeCreate(PETSC_COMM_SELF, pack));
1948   PetscCall(PetscLogEventBegin(ctx->events[13], 0, 0, 0, 0));
1949   PetscCall(PetscLogEventBegin(ctx->events[15], 0, 0, 0, 0));
1950   PetscCall(LandauDMCreateVMeshes(PETSC_COMM_SELF, dim, prefix, ctx, *pack)); // creates grids (Forest of AMR)
1951   for (PetscInt grid = 0; grid < ctx->num_grids; grid++) {
1952     /* create FEM */
1953     PetscCall(SetupDS(ctx->plex[grid], dim, grid, ctx));
1954     /* set initial state */
1955     PetscCall(DMCreateGlobalVector(ctx->plex[grid], &Xsub[grid]));
1956     PetscCall(PetscObjectSetName((PetscObject)Xsub[grid], "u_orig"));
1957     /* initial static refinement, no solve */
1958     PetscCall(LandauSetInitialCondition(ctx->plex[grid], Xsub[grid], grid, 0, 1, ctx));
1959     /* forest refinement - forest goes in (if forest), plex comes out */
1960     if (ctx->use_p4est) {
1961       DM plex;
1962       PetscCall(adapt(grid, ctx, &Xsub[grid]));                                      // forest goes in, plex comes out
1963       PetscCall(DMViewFromOptions(ctx->plex[grid], NULL, "-dm_landau_amr_dm_view")); // need to differentiate - todo
1964       PetscCall(VecViewFromOptions(Xsub[grid], NULL, "-dm_landau_amr_vec_view"));
1965       // convert to plex, all done with this level
1966       PetscCall(DMConvert(ctx->plex[grid], DMPLEX, &plex));
1967       PetscCall(DMDestroy(&ctx->plex[grid]));
1968       ctx->plex[grid] = plex;
1969     }
1970 #if !defined(LANDAU_SPECIES_MAJOR)
1971     PetscCall(DMCompositeAddDM(*pack, ctx->plex[grid]));
1972 #else
1973     for (PetscInt b_id = 0; b_id < ctx->batch_sz; b_id++) { // add batch size DMs for this species grid
1974       PetscCall(DMCompositeAddDM(*pack, ctx->plex[grid]));
1975     }
1976 #endif
1977     PetscCall(DMSetApplicationContext(ctx->plex[grid], ctx));
1978   }
1979 #if !defined(LANDAU_SPECIES_MAJOR)
1980   // stack the batched DMs, could do it all here!!! b_id=0
1981   for (PetscInt b_id = 1; b_id < ctx->batch_sz; b_id++) {
1982     for (PetscInt grid = 0; grid < ctx->num_grids; grid++) PetscCall(DMCompositeAddDM(*pack, ctx->plex[grid]));
1983   }
1984 #endif
1985   // create ctx->mat_offset
1986   ctx->mat_offset[0] = 0;
1987   for (PetscInt grid = 0; grid < ctx->num_grids; grid++) {
1988     PetscInt n;
1989     PetscCall(VecGetLocalSize(Xsub[grid], &n));
1990     ctx->mat_offset[grid + 1] = ctx->mat_offset[grid] + n;
1991   }
1992   // creat DM & Jac
1993   PetscCall(DMSetApplicationContext(*pack, ctx));
1994   PetscCall(PetscOptionsInsertString(NULL, "-dm_preallocate_only"));
1995   PetscCall(DMCreateMatrix(*pack, &ctx->J));
1996   PetscCall(PetscOptionsInsertString(NULL, "-dm_preallocate_only false"));
1997   PetscCall(MatSetOption(ctx->J, MAT_STRUCTURALLY_SYMMETRIC, PETSC_TRUE));
1998   PetscCall(MatSetOption(ctx->J, MAT_IGNORE_ZERO_ENTRIES, PETSC_TRUE));
1999   PetscCall(PetscObjectSetName((PetscObject)ctx->J, "Jac"));
2000   // construct initial conditions in X
2001   PetscCall(DMCreateGlobalVector(*pack, X));
2002   for (PetscInt grid = 0; grid < ctx->num_grids; grid++) {
2003     PetscInt n;
2004     PetscCall(VecGetLocalSize(Xsub[grid], &n));
2005     for (PetscInt b_id = 0; b_id < ctx->batch_sz; b_id++) {
2006       PetscScalar const *values;
2007       const PetscInt     moffset = LAND_MOFFSET(b_id, grid, ctx->batch_sz, ctx->num_grids, ctx->mat_offset);
2008       PetscCall(LandauSetInitialCondition(ctx->plex[grid], Xsub[grid], grid, b_id, ctx->batch_sz, ctx));
2009       PetscCall(VecGetArrayRead(Xsub[grid], &values)); // Drop whole grid in Plex ordering
2010       for (int i = 0, idx = moffset; i < n; i++, idx++) PetscCall(VecSetValue(*X, idx, values[i], INSERT_VALUES));
2011       PetscCall(VecRestoreArrayRead(Xsub[grid], &values));
2012     }
2013   }
2014   // cleanup
2015   for (PetscInt grid = 0; grid < ctx->num_grids; grid++) PetscCall(VecDestroy(&Xsub[grid]));
2016   /* check for correct matrix type */
2017   if (ctx->gpu_assembly) { /* we need GPU object with GPU assembly */
2018     PetscBool flg;
2019     if (ctx->deviceType == LANDAU_KOKKOS) {
2020       PetscCall(PetscObjectTypeCompareAny((PetscObject)ctx->J, &flg, MATSEQAIJKOKKOS, MATMPIAIJKOKKOS, MATAIJKOKKOS, ""));
2021 #if defined(PETSC_HAVE_KOKKOS)
2022       PetscCheck(flg, ctx->comm, PETSC_ERR_ARG_WRONG, "must use '-dm_mat_type aijkokkos -dm_vec_type kokkos' for GPU assembly and Kokkos or use '-dm_landau_device_type cpu'");
2023 #else
2024       PetscCheck(flg, ctx->comm, PETSC_ERR_ARG_WRONG, "must configure with '--download-kokkos-kernels' for GPU assembly and Kokkos or use '-dm_landau_device_type cpu'");
2025 #endif
2026     }
2027   }
2028   PetscCall(PetscLogEventEnd(ctx->events[15], 0, 0, 0, 0));
2029 
2030   // create field major ordering
2031   ctx->work_vec   = NULL;
2032   ctx->plex_batch = NULL;
2033   ctx->batch_is   = NULL;
2034   for (int i = 0; i < LANDAU_MAX_GRIDS; i++) grid_batch_is_inv[i] = NULL;
2035   PetscCall(PetscLogEventBegin(ctx->events[12], 0, 0, 0, 0));
2036   PetscCall(LandauCreateJacobianMatrix(comm, *X, grid_batch_is_inv, ctx));
2037   PetscCall(PetscLogEventEnd(ctx->events[12], 0, 0, 0, 0));
2038 
2039   // create AMR GPU assembly maps and static GPU data
2040   PetscCall(CreateStaticData(dim, grid_batch_is_inv, ctx));
2041 
2042   PetscCall(PetscLogEventEnd(ctx->events[13], 0, 0, 0, 0));
2043 
2044   // create mass matrix
2045   PetscCall(DMPlexLandauCreateMassMatrix(*pack, NULL));
2046 
2047   if (J) *J = ctx->J;
2048 
2049   if (ctx->gpu_assembly && ctx->jacobian_field_major_order) {
2050     PetscContainer container;
2051     // cache ctx for KSP with batch/field major Jacobian ordering -ksp_type gmres/etc -dm_landau_jacobian_field_major_order
2052     PetscCall(PetscContainerCreate(PETSC_COMM_SELF, &container));
2053     PetscCall(PetscContainerSetPointer(container, (void *)ctx));
2054     PetscCall(PetscObjectCompose((PetscObject)ctx->J, "LandauCtx", (PetscObject)container));
2055     PetscCall(PetscContainerDestroy(&container));
2056     // batch solvers need to map -- can batch solvers work
2057     PetscCall(PetscContainerCreate(PETSC_COMM_SELF, &container));
2058     PetscCall(PetscContainerSetPointer(container, (void *)ctx->plex_batch));
2059     PetscCall(PetscObjectCompose((PetscObject)ctx->J, "plex_batch_is", (PetscObject)container));
2060     PetscCall(PetscContainerDestroy(&container));
2061   }
2062   // for batch solvers
2063   {
2064     PetscContainer container;
2065     PetscInt      *pNf;
2066     PetscCall(PetscContainerCreate(PETSC_COMM_SELF, &container));
2067     PetscCall(PetscMalloc1(sizeof(*pNf), &pNf));
2068     *pNf = ctx->batch_sz;
2069     PetscCall(PetscContainerSetPointer(container, (void *)pNf));
2070     PetscCall(PetscContainerSetUserDestroy(container, MatrixNfDestroy));
2071     PetscCall(PetscObjectCompose((PetscObject)ctx->J, "batch size", (PetscObject)container));
2072     PetscCall(PetscContainerDestroy(&container));
2073   }
2074 
2075   PetscFunctionReturn(PETSC_SUCCESS);
2076 }
2077 
2078 /*@C
2079   DMPlexLandauAccess - Access to the distribution function with user callback
2080 
2081   Collective
2082 
2083   Input Parameters:
2084 + pack     - the `DMCOMPOSITE`
2085 . func     - call back function
2086 - user_ctx - user context
2087 
2088   Input/Output Parameter:
2089 . X - Vector to data to
2090 
2091   Level: advanced
2092 
2093 .seealso: `DMPlexLandauCreateVelocitySpace()`
2094  @*/
2095 PetscErrorCode DMPlexLandauAccess(DM pack, Vec X, PetscErrorCode (*func)(DM, Vec, PetscInt, PetscInt, PetscInt, void *), void *user_ctx)
2096 {
2097   LandauCtx *ctx;
2098   PetscFunctionBegin;
2099   PetscCall(DMGetApplicationContext(pack, &ctx)); // uses ctx->num_grids; ctx->plex[grid]; ctx->batch_sz; ctx->mat_offset
2100   for (PetscInt grid = 0; grid < ctx->num_grids; grid++) {
2101     PetscInt dim, n;
2102     PetscCall(DMGetDimension(pack, &dim));
2103     for (PetscInt sp = ctx->species_offset[grid], i0 = 0; sp < ctx->species_offset[grid + 1]; sp++, i0++) {
2104       Vec      vec;
2105       PetscInt vf[1] = {i0};
2106       IS       vis;
2107       DM       vdm;
2108       PetscCall(DMCreateSubDM(ctx->plex[grid], 1, vf, &vis, &vdm));
2109       PetscCall(DMSetApplicationContext(vdm, ctx)); // the user might want this
2110       PetscCall(DMCreateGlobalVector(vdm, &vec));
2111       PetscCall(VecGetSize(vec, &n));
2112       for (PetscInt b_id = 0; b_id < ctx->batch_sz; b_id++) {
2113         const PetscInt moffset = LAND_MOFFSET(b_id, grid, ctx->batch_sz, ctx->num_grids, ctx->mat_offset);
2114         PetscCall(VecZeroEntries(vec));
2115         /* Add your data with 'dm' for species 'sp' to 'vec' */
2116         PetscCall(func(vdm, vec, i0, grid, b_id, user_ctx));
2117         /* add to global */
2118         PetscScalar const *values;
2119         const PetscInt    *offsets;
2120         PetscCall(VecGetArrayRead(vec, &values));
2121         PetscCall(ISGetIndices(vis, &offsets));
2122         for (int i = 0; i < n; i++) PetscCall(VecSetValue(X, moffset + offsets[i], values[i], ADD_VALUES));
2123         PetscCall(VecRestoreArrayRead(vec, &values));
2124         PetscCall(ISRestoreIndices(vis, &offsets));
2125       } // batch
2126       PetscCall(VecDestroy(&vec));
2127       PetscCall(ISDestroy(&vis));
2128       PetscCall(DMDestroy(&vdm));
2129     }
2130   } // grid
2131   PetscFunctionReturn(PETSC_SUCCESS);
2132 }
2133 
2134 /*@
2135   DMPlexLandauDestroyVelocitySpace - Destroy a `DMPLEX` velocity space mesh
2136 
2137   Collective
2138 
2139   Input/Output Parameters:
2140 . dm - the `DM` to destroy
2141 
2142   Level: beginner
2143 
2144 .seealso: `DMPlexLandauCreateVelocitySpace()`
2145  @*/
2146 PetscErrorCode DMPlexLandauDestroyVelocitySpace(DM *dm)
2147 {
2148   LandauCtx *ctx;
2149   PetscFunctionBegin;
2150   PetscCall(DMGetApplicationContext(*dm, &ctx));
2151   PetscCall(MatDestroy(&ctx->M));
2152   PetscCall(MatDestroy(&ctx->J));
2153   for (PetscInt ii = 0; ii < ctx->num_species; ii++) PetscCall(PetscFEDestroy(&ctx->fe[ii]));
2154   PetscCall(ISDestroy(&ctx->batch_is));
2155   PetscCall(VecDestroy(&ctx->work_vec));
2156   PetscCall(VecScatterDestroy(&ctx->plex_batch));
2157   if (ctx->deviceType == LANDAU_KOKKOS) {
2158 #if defined(PETSC_HAVE_KOKKOS)
2159     PetscCall(LandauKokkosStaticDataClear(&ctx->SData_d));
2160 #else
2161     SETERRQ(ctx->comm, PETSC_ERR_ARG_WRONG, "-landau_device_type %s not built", "kokkos");
2162 #endif
2163   } else {
2164     if (ctx->SData_d.x) { /* in a CPU run */
2165       PetscReal *invJ = (PetscReal *)ctx->SData_d.invJ, *xx = (PetscReal *)ctx->SData_d.x, *yy = (PetscReal *)ctx->SData_d.y, *zz = (PetscReal *)ctx->SData_d.z, *ww = (PetscReal *)ctx->SData_d.w;
2166       LandauIdx *coo_elem_offsets = (LandauIdx *)ctx->SData_d.coo_elem_offsets, *coo_elem_fullNb = (LandauIdx *)ctx->SData_d.coo_elem_fullNb, (*coo_elem_point_offsets)[LANDAU_MAX_NQND + 1] = (LandauIdx(*)[LANDAU_MAX_NQND + 1]) ctx->SData_d.coo_elem_point_offsets;
2167       PetscCall(PetscFree4(ww, xx, yy, invJ));
2168       if (zz) PetscCall(PetscFree(zz));
2169       if (coo_elem_offsets) {
2170         PetscCall(PetscFree3(coo_elem_offsets, coo_elem_fullNb, coo_elem_point_offsets)); // could be NULL
2171       }
2172       PetscCall(PetscFree4(ctx->SData_d.alpha, ctx->SData_d.beta, ctx->SData_d.invMass, ctx->SData_d.lambdas));
2173     }
2174   }
2175 
2176   if (ctx->times[LANDAU_MATRIX_TOTAL] > 0) { // OMP timings
2177     PetscCall(PetscPrintf(ctx->comm, "TSStep               N  1.0 %10.3e\n", ctx->times[LANDAU_EX2_TSSOLVE]));
2178     PetscCall(PetscPrintf(ctx->comm, "2:           Solve:  %10.3e with %" PetscInt_FMT " threads\n", ctx->times[LANDAU_EX2_TSSOLVE] - ctx->times[LANDAU_MATRIX_TOTAL], ctx->batch_sz));
2179     PetscCall(PetscPrintf(ctx->comm, "3:          Landau:  %10.3e\n", ctx->times[LANDAU_MATRIX_TOTAL]));
2180     PetscCall(PetscPrintf(ctx->comm, "Landau Jacobian       %" PetscInt_FMT " 1.0 %10.3e\n", (PetscInt)ctx->times[LANDAU_JACOBIAN_COUNT], ctx->times[LANDAU_JACOBIAN]));
2181     PetscCall(PetscPrintf(ctx->comm, "Landau Operator       N 1.0  %10.3e\n", ctx->times[LANDAU_OPERATOR]));
2182     PetscCall(PetscPrintf(ctx->comm, "Landau Mass           N 1.0  %10.3e\n", ctx->times[LANDAU_MASS]));
2183     PetscCall(PetscPrintf(ctx->comm, " Jac-f-df (GPU)       N 1.0  %10.3e\n", ctx->times[LANDAU_F_DF]));
2184     PetscCall(PetscPrintf(ctx->comm, " Kernel (GPU)         N 1.0  %10.3e\n", ctx->times[LANDAU_KERNEL]));
2185     PetscCall(PetscPrintf(ctx->comm, "MatLUFactorNum        X 1.0 %10.3e\n", ctx->times[KSP_FACTOR]));
2186     PetscCall(PetscPrintf(ctx->comm, "MatSolve              X 1.0 %10.3e\n", ctx->times[KSP_SOLVE]));
2187   }
2188   for (PetscInt grid = 0; grid < ctx->num_grids; grid++) PetscCall(DMDestroy(&ctx->plex[grid]));
2189   PetscCall(PetscFree(ctx));
2190   PetscCall(DMDestroy(dm));
2191   PetscFunctionReturn(PETSC_SUCCESS);
2192 }
2193 
2194 /* < v, ru > */
2195 static void f0_s_den(PetscInt dim, PetscInt Nf, PetscInt NfAux, const PetscInt uOff[], const PetscInt uOff_x[], const PetscScalar u[], const PetscScalar u_t[], const PetscScalar u_x[], const PetscInt aOff[], const PetscInt aOff_x[], const PetscScalar a[], const PetscScalar a_t[], const PetscScalar a_x[], PetscReal t, const PetscReal x[], PetscInt numConstants, const PetscScalar constants[], PetscScalar *f0)
2196 {
2197   PetscInt ii = (PetscInt)PetscRealPart(constants[0]);
2198   f0[0]       = u[ii];
2199 }
2200 
2201 /* < v, ru > */
2202 static void f0_s_mom(PetscInt dim, PetscInt Nf, PetscInt NfAux, const PetscInt uOff[], const PetscInt uOff_x[], const PetscScalar u[], const PetscScalar u_t[], const PetscScalar u_x[], const PetscInt aOff[], const PetscInt aOff_x[], const PetscScalar a[], const PetscScalar a_t[], const PetscScalar a_x[], PetscReal t, const PetscReal x[], PetscInt numConstants, const PetscScalar constants[], PetscScalar *f0)
2203 {
2204   PetscInt ii = (PetscInt)PetscRealPart(constants[0]), jj = (PetscInt)PetscRealPart(constants[1]);
2205   f0[0] = x[jj] * u[ii]; /* x momentum */
2206 }
2207 
2208 static void f0_s_v2(PetscInt dim, PetscInt Nf, PetscInt NfAux, const PetscInt uOff[], const PetscInt uOff_x[], const PetscScalar u[], const PetscScalar u_t[], const PetscScalar u_x[], const PetscInt aOff[], const PetscInt aOff_x[], const PetscScalar a[], const PetscScalar a_t[], const PetscScalar a_x[], PetscReal t, const PetscReal x[], PetscInt numConstants, const PetscScalar constants[], PetscScalar *f0)
2209 {
2210   PetscInt i, ii = (PetscInt)PetscRealPart(constants[0]);
2211   double   tmp1 = 0.;
2212   for (i = 0; i < dim; ++i) tmp1 += x[i] * x[i];
2213   f0[0] = tmp1 * u[ii];
2214 }
2215 
2216 static PetscErrorCode gamma_n_f(PetscInt dim, PetscReal time, const PetscReal x[], PetscInt Nf, PetscScalar *u, void *actx)
2217 {
2218   const PetscReal *c2_0_arr = ((PetscReal *)actx);
2219   const PetscReal  c02      = c2_0_arr[0];
2220 
2221   PetscFunctionBegin;
2222   for (int s = 0; s < Nf; s++) {
2223     PetscReal tmp1 = 0.;
2224     for (int i = 0; i < dim; ++i) tmp1 += x[i] * x[i];
2225 #if defined(PETSC_USE_DEBUG)
2226     u[s] = PetscSqrtReal(1. + tmp1 / c02); //  u[0] = PetscSqrtReal(1. + xx);
2227 #else
2228     {
2229       PetscReal xx = tmp1 / c02;
2230       u[s]         = xx / (PetscSqrtReal(1. + xx) + 1.); // better conditioned = xx/(PetscSqrtReal(1. + xx) + 1.)
2231     }
2232 #endif
2233   }
2234   PetscFunctionReturn(PETSC_SUCCESS);
2235 }
2236 
2237 /* < v, ru > */
2238 static void f0_s_rden(PetscInt dim, PetscInt Nf, PetscInt NfAux, const PetscInt uOff[], const PetscInt uOff_x[], const PetscScalar u[], const PetscScalar u_t[], const PetscScalar u_x[], const PetscInt aOff[], const PetscInt aOff_x[], const PetscScalar a[], const PetscScalar a_t[], const PetscScalar a_x[], PetscReal t, const PetscReal x[], PetscInt numConstants, const PetscScalar constants[], PetscScalar *f0)
2239 {
2240   PetscInt ii = (PetscInt)PetscRealPart(constants[0]);
2241   f0[0]       = 2. * PETSC_PI * x[0] * u[ii];
2242 }
2243 
2244 /* < v, ru > */
2245 static void f0_s_rmom(PetscInt dim, PetscInt Nf, PetscInt NfAux, const PetscInt uOff[], const PetscInt uOff_x[], const PetscScalar u[], const PetscScalar u_t[], const PetscScalar u_x[], const PetscInt aOff[], const PetscInt aOff_x[], const PetscScalar a[], const PetscScalar a_t[], const PetscScalar a_x[], PetscReal t, const PetscReal x[], PetscInt numConstants, const PetscScalar constants[], PetscScalar *f0)
2246 {
2247   PetscInt ii = (PetscInt)PetscRealPart(constants[0]);
2248   f0[0]       = 2. * PETSC_PI * x[0] * x[1] * u[ii];
2249 }
2250 
2251 static void f0_s_rv2(PetscInt dim, PetscInt Nf, PetscInt NfAux, const PetscInt uOff[], const PetscInt uOff_x[], const PetscScalar u[], const PetscScalar u_t[], const PetscScalar u_x[], const PetscInt aOff[], const PetscInt aOff_x[], const PetscScalar a[], const PetscScalar a_t[], const PetscScalar a_x[], PetscReal t, const PetscReal x[], PetscInt numConstants, const PetscScalar constants[], PetscScalar *f0)
2252 {
2253   PetscInt ii = (PetscInt)PetscRealPart(constants[0]);
2254   f0[0]       = 2. * PETSC_PI * x[0] * (x[0] * x[0] + x[1] * x[1]) * u[ii];
2255 }
2256 
2257 /*@
2258   DMPlexLandauPrintNorms - collects moments and prints them
2259 
2260   Collective
2261 
2262   Input Parameters:
2263 + X     - the state
2264 - stepi - current step to print
2265 
2266   Level: beginner
2267 
2268 .seealso: `DMPlexLandauCreateVelocitySpace()`
2269  @*/
2270 PetscErrorCode DMPlexLandauPrintNorms(Vec X, PetscInt stepi)
2271 {
2272   LandauCtx  *ctx;
2273   PetscDS     prob;
2274   DM          pack;
2275   PetscInt    cStart, cEnd, dim, ii, i0, nDMs;
2276   PetscScalar xmomentumtot = 0, ymomentumtot = 0, zmomentumtot = 0, energytot = 0, densitytot = 0, tt[LANDAU_MAX_SPECIES];
2277   PetscScalar xmomentum[LANDAU_MAX_SPECIES], ymomentum[LANDAU_MAX_SPECIES], zmomentum[LANDAU_MAX_SPECIES], energy[LANDAU_MAX_SPECIES], density[LANDAU_MAX_SPECIES];
2278   Vec        *globXArray;
2279 
2280   PetscFunctionBegin;
2281   PetscCall(VecGetDM(X, &pack));
2282   PetscCheck(pack, PETSC_COMM_SELF, PETSC_ERR_PLIB, "Vector has no DM");
2283   PetscCall(DMGetDimension(pack, &dim));
2284   PetscCheck(dim == 2 || dim == 3, PETSC_COMM_SELF, PETSC_ERR_PLIB, "dim %" PetscInt_FMT " not in [2,3]", dim);
2285   PetscCall(DMGetApplicationContext(pack, &ctx));
2286   PetscCheck(ctx, PETSC_COMM_SELF, PETSC_ERR_PLIB, "no context");
2287   /* print momentum and energy */
2288   PetscCall(DMCompositeGetNumberDM(pack, &nDMs));
2289   PetscCheck(nDMs == ctx->num_grids * ctx->batch_sz, PETSC_COMM_WORLD, PETSC_ERR_PLIB, "#DM wrong %" PetscInt_FMT " %" PetscInt_FMT, nDMs, ctx->num_grids * ctx->batch_sz);
2290   PetscCall(PetscMalloc(sizeof(*globXArray) * nDMs, &globXArray));
2291   PetscCall(DMCompositeGetAccessArray(pack, X, nDMs, NULL, globXArray));
2292   for (PetscInt grid = 0; grid < ctx->num_grids; grid++) {
2293     Vec Xloc = globXArray[LAND_PACK_IDX(ctx->batch_view_idx, grid)];
2294     PetscCall(DMGetDS(ctx->plex[grid], &prob));
2295     for (ii = ctx->species_offset[grid], i0 = 0; ii < ctx->species_offset[grid + 1]; ii++, i0++) {
2296       PetscScalar user[2] = {(PetscScalar)i0, (PetscScalar)ctx->charges[ii]};
2297       PetscCall(PetscDSSetConstants(prob, 2, user));
2298       if (dim == 2) { /* 2/3X + 3V (cylindrical coordinates) */
2299         PetscCall(PetscDSSetObjective(prob, 0, &f0_s_rden));
2300         PetscCall(DMPlexComputeIntegralFEM(ctx->plex[grid], Xloc, tt, ctx));
2301         density[ii] = tt[0] * ctx->n_0 * ctx->charges[ii];
2302         PetscCall(PetscDSSetObjective(prob, 0, &f0_s_rmom));
2303         PetscCall(DMPlexComputeIntegralFEM(ctx->plex[grid], Xloc, tt, ctx));
2304         zmomentum[ii] = tt[0] * ctx->n_0 * ctx->v_0 * ctx->masses[ii];
2305         PetscCall(PetscDSSetObjective(prob, 0, &f0_s_rv2));
2306         PetscCall(DMPlexComputeIntegralFEM(ctx->plex[grid], Xloc, tt, ctx));
2307         energy[ii] = tt[0] * 0.5 * ctx->n_0 * ctx->v_0 * ctx->v_0 * ctx->masses[ii];
2308         zmomentumtot += zmomentum[ii];
2309         energytot += energy[ii];
2310         densitytot += density[ii];
2311         PetscCall(PetscPrintf(PETSC_COMM_WORLD, "%3" PetscInt_FMT ") species-%" PetscInt_FMT ": charge density= %20.13e z-momentum= %20.13e energy= %20.13e", stepi, ii, (double)PetscRealPart(density[ii]), (double)PetscRealPart(zmomentum[ii]), (double)PetscRealPart(energy[ii])));
2312       } else { /* 2/3Xloc + 3V */
2313         PetscCall(PetscDSSetObjective(prob, 0, &f0_s_den));
2314         PetscCall(DMPlexComputeIntegralFEM(ctx->plex[grid], Xloc, tt, ctx));
2315         density[ii] = tt[0] * ctx->n_0 * ctx->charges[ii];
2316         PetscCall(PetscDSSetObjective(prob, 0, &f0_s_mom));
2317         user[1] = 0;
2318         PetscCall(PetscDSSetConstants(prob, 2, user));
2319         PetscCall(DMPlexComputeIntegralFEM(ctx->plex[grid], Xloc, tt, ctx));
2320         xmomentum[ii] = tt[0] * ctx->n_0 * ctx->v_0 * ctx->masses[ii];
2321         user[1]       = 1;
2322         PetscCall(PetscDSSetConstants(prob, 2, user));
2323         PetscCall(DMPlexComputeIntegralFEM(ctx->plex[grid], Xloc, tt, ctx));
2324         ymomentum[ii] = tt[0] * ctx->n_0 * ctx->v_0 * ctx->masses[ii];
2325         user[1]       = 2;
2326         PetscCall(PetscDSSetConstants(prob, 2, user));
2327         PetscCall(DMPlexComputeIntegralFEM(ctx->plex[grid], Xloc, tt, ctx));
2328         zmomentum[ii] = tt[0] * ctx->n_0 * ctx->v_0 * ctx->masses[ii];
2329         if (ctx->use_relativistic_corrections) {
2330           /* gamma * M * f */
2331           if (ii == 0 && grid == 0) { // do all at once
2332             Vec Mf, globGamma, *globMfArray, *globGammaArray;
2333             PetscErrorCode (*gammaf[1])(PetscInt, PetscReal, const PetscReal[], PetscInt, PetscScalar[], void *) = {gamma_n_f};
2334             PetscReal *c2_0[1], data[1];
2335 
2336             PetscCall(VecDuplicate(X, &globGamma));
2337             PetscCall(VecDuplicate(X, &Mf));
2338             PetscCall(PetscMalloc(sizeof(*globMfArray) * nDMs, &globMfArray));
2339             PetscCall(PetscMalloc(sizeof(*globMfArray) * nDMs, &globGammaArray));
2340             /* M * f */
2341             PetscCall(MatMult(ctx->M, X, Mf));
2342             /* gamma */
2343             PetscCall(DMCompositeGetAccessArray(pack, globGamma, nDMs, NULL, globGammaArray));
2344             for (PetscInt grid = 0; grid < ctx->num_grids; grid++) { // yes a grid loop in a grid loop to print nice, need to fix for batching
2345               Vec v1  = globGammaArray[LAND_PACK_IDX(ctx->batch_view_idx, grid)];
2346               data[0] = PetscSqr(C_0(ctx->v_0));
2347               c2_0[0] = &data[0];
2348               PetscCall(DMProjectFunction(ctx->plex[grid], 0., gammaf, (void **)c2_0, INSERT_ALL_VALUES, v1));
2349             }
2350             PetscCall(DMCompositeRestoreAccessArray(pack, globGamma, nDMs, NULL, globGammaArray));
2351             /* gamma * Mf */
2352             PetscCall(DMCompositeGetAccessArray(pack, globGamma, nDMs, NULL, globGammaArray));
2353             PetscCall(DMCompositeGetAccessArray(pack, Mf, nDMs, NULL, globMfArray));
2354             for (PetscInt grid = 0; grid < ctx->num_grids; grid++) { // yes a grid loop in a grid loop to print nice
2355               PetscInt Nf    = ctx->species_offset[grid + 1] - ctx->species_offset[grid], N, bs;
2356               Vec      Mfsub = globMfArray[LAND_PACK_IDX(ctx->batch_view_idx, grid)], Gsub = globGammaArray[LAND_PACK_IDX(ctx->batch_view_idx, grid)], v1, v2;
2357               // get each component
2358               PetscCall(VecGetSize(Mfsub, &N));
2359               PetscCall(VecCreate(ctx->comm, &v1));
2360               PetscCall(VecSetSizes(v1, PETSC_DECIDE, N / Nf));
2361               PetscCall(VecCreate(ctx->comm, &v2));
2362               PetscCall(VecSetSizes(v2, PETSC_DECIDE, N / Nf));
2363               PetscCall(VecSetFromOptions(v1)); // ???
2364               PetscCall(VecSetFromOptions(v2));
2365               // get each component
2366               PetscCall(VecGetBlockSize(Gsub, &bs));
2367               PetscCheck(bs == Nf, PETSC_COMM_SELF, PETSC_ERR_PLIB, "bs %" PetscInt_FMT " != num_species %" PetscInt_FMT " in Gsub", bs, Nf);
2368               PetscCall(VecGetBlockSize(Mfsub, &bs));
2369               PetscCheck(bs == Nf, PETSC_COMM_SELF, PETSC_ERR_PLIB, "bs %" PetscInt_FMT " != num_species %" PetscInt_FMT, bs, Nf);
2370               for (int i = 0, ix = ctx->species_offset[grid]; i < Nf; i++, ix++) {
2371                 PetscScalar val;
2372                 PetscCall(VecStrideGather(Gsub, i, v1, INSERT_VALUES)); // this is not right -- TODO
2373                 PetscCall(VecStrideGather(Mfsub, i, v2, INSERT_VALUES));
2374                 PetscCall(VecDot(v1, v2, &val));
2375                 energy[ix] = PetscRealPart(val) * ctx->n_0 * ctx->v_0 * ctx->v_0 * ctx->masses[ix];
2376               }
2377               PetscCall(VecDestroy(&v1));
2378               PetscCall(VecDestroy(&v2));
2379             } /* grids */
2380             PetscCall(DMCompositeRestoreAccessArray(pack, globGamma, nDMs, NULL, globGammaArray));
2381             PetscCall(DMCompositeRestoreAccessArray(pack, Mf, nDMs, NULL, globMfArray));
2382             PetscCall(PetscFree(globGammaArray));
2383             PetscCall(PetscFree(globMfArray));
2384             PetscCall(VecDestroy(&globGamma));
2385             PetscCall(VecDestroy(&Mf));
2386           }
2387         } else {
2388           PetscCall(PetscDSSetObjective(prob, 0, &f0_s_v2));
2389           PetscCall(DMPlexComputeIntegralFEM(ctx->plex[grid], Xloc, tt, ctx));
2390           energy[ii] = 0.5 * tt[0] * ctx->n_0 * ctx->v_0 * ctx->v_0 * ctx->masses[ii];
2391         }
2392         PetscCall(PetscPrintf(PETSC_COMM_WORLD, "%3" PetscInt_FMT ") species %" PetscInt_FMT ": density=%20.13e, x-momentum=%20.13e, y-momentum=%20.13e, z-momentum=%20.13e, energy=%21.13e", stepi, ii, (double)PetscRealPart(density[ii]), (double)PetscRealPart(xmomentum[ii]), (double)PetscRealPart(ymomentum[ii]), (double)PetscRealPart(zmomentum[ii]), (double)PetscRealPart(energy[ii])));
2393         xmomentumtot += xmomentum[ii];
2394         ymomentumtot += ymomentum[ii];
2395         zmomentumtot += zmomentum[ii];
2396         energytot += energy[ii];
2397         densitytot += density[ii];
2398       }
2399       if (ctx->num_species > 1) PetscCall(PetscPrintf(PETSC_COMM_WORLD, "\n"));
2400     }
2401   }
2402   PetscCall(DMCompositeRestoreAccessArray(pack, X, nDMs, NULL, globXArray));
2403   PetscCall(PetscFree(globXArray));
2404   /* totals */
2405   PetscCall(DMPlexGetHeightStratum(ctx->plex[0], 0, &cStart, &cEnd));
2406   if (ctx->num_species > 1) {
2407     if (dim == 2) {
2408       PetscCall(PetscPrintf(PETSC_COMM_WORLD, "\t%3" PetscInt_FMT ") Total: charge density=%21.13e, momentum=%21.13e, energy=%21.13e (m_i[0]/m_e = %g, %" PetscInt_FMT " cells on electron grid)", stepi, (double)PetscRealPart(densitytot), (double)PetscRealPart(zmomentumtot), (double)PetscRealPart(energytot),
2409                             (double)(ctx->masses[1] / ctx->masses[0]), cEnd - cStart));
2410     } else {
2411       PetscCall(PetscPrintf(PETSC_COMM_WORLD, "\t%3" PetscInt_FMT ") Total: charge density=%21.13e, x-momentum=%21.13e, y-momentum=%21.13e, z-momentum=%21.13e, energy=%21.13e (m_i[0]/m_e = %g, %" PetscInt_FMT " cells)", stepi, (double)PetscRealPart(densitytot), (double)PetscRealPart(xmomentumtot), (double)PetscRealPart(ymomentumtot), (double)PetscRealPart(zmomentumtot), (double)PetscRealPart(energytot),
2412                             (double)(ctx->masses[1] / ctx->masses[0]), cEnd - cStart));
2413     }
2414   } else PetscCall(PetscPrintf(PETSC_COMM_WORLD, " -- %" PetscInt_FMT " cells", cEnd - cStart));
2415   PetscCall(PetscPrintf(PETSC_COMM_WORLD, "\n"));
2416   PetscFunctionReturn(PETSC_SUCCESS);
2417 }
2418 
2419 /*@
2420   DMPlexLandauCreateMassMatrix - Create mass matrix for Landau in Plex space (not field major order of Jacobian)
2421   - puts mass matrix into ctx->M
2422 
2423   Collective
2424 
2425   Input Parameter:
2426 . pack - the `DM` object. Puts matrix in Landau context M field
2427 
2428   Output Parameter:
2429 . Amat - The mass matrix (optional), mass matrix is added to the `DM` context
2430 
2431   Level: beginner
2432 
2433 .seealso: `DMPlexLandauCreateVelocitySpace()`
2434  @*/
2435 PetscErrorCode DMPlexLandauCreateMassMatrix(DM pack, Mat *Amat)
2436 {
2437   DM         mass_pack, massDM[LANDAU_MAX_GRIDS];
2438   PetscDS    prob;
2439   PetscInt   ii, dim, N1 = 1, N2;
2440   LandauCtx *ctx;
2441   Mat        packM, subM[LANDAU_MAX_GRIDS];
2442 
2443   PetscFunctionBegin;
2444   PetscValidHeaderSpecific(pack, DM_CLASSID, 1);
2445   if (Amat) PetscAssertPointer(Amat, 2);
2446   PetscCall(DMGetApplicationContext(pack, &ctx));
2447   PetscCheck(ctx, PETSC_COMM_SELF, PETSC_ERR_PLIB, "no context");
2448   PetscCall(PetscLogEventBegin(ctx->events[14], 0, 0, 0, 0));
2449   PetscCall(DMGetDimension(pack, &dim));
2450   PetscCall(DMCompositeCreate(PetscObjectComm((PetscObject)pack), &mass_pack));
2451   /* create pack mass matrix */
2452   for (PetscInt grid = 0, ix = 0; grid < ctx->num_grids; grid++) {
2453     PetscCall(DMClone(ctx->plex[grid], &massDM[grid]));
2454     PetscCall(DMCopyFields(ctx->plex[grid], massDM[grid]));
2455     PetscCall(DMCreateDS(massDM[grid]));
2456     PetscCall(DMGetDS(massDM[grid], &prob));
2457     for (ix = 0, ii = ctx->species_offset[grid]; ii < ctx->species_offset[grid + 1]; ii++, ix++) {
2458       if (dim == 3) PetscCall(PetscDSSetJacobian(prob, ix, ix, g0_1, NULL, NULL, NULL));
2459       else PetscCall(PetscDSSetJacobian(prob, ix, ix, g0_r, NULL, NULL, NULL));
2460     }
2461 #if !defined(LANDAU_SPECIES_MAJOR)
2462     PetscCall(DMCompositeAddDM(mass_pack, massDM[grid]));
2463 #else
2464     for (PetscInt b_id = 0; b_id < ctx->batch_sz; b_id++) { // add batch size DMs for this species grid
2465       PetscCall(DMCompositeAddDM(mass_pack, massDM[grid]));
2466     }
2467 #endif
2468     PetscCall(DMCreateMatrix(massDM[grid], &subM[grid]));
2469   }
2470 #if !defined(LANDAU_SPECIES_MAJOR)
2471   // stack the batched DMs
2472   for (PetscInt b_id = 1; b_id < ctx->batch_sz; b_id++) {
2473     for (PetscInt grid = 0; grid < ctx->num_grids; grid++) PetscCall(DMCompositeAddDM(mass_pack, massDM[grid]));
2474   }
2475 #endif
2476   PetscCall(PetscOptionsInsertString(NULL, "-dm_preallocate_only"));
2477   PetscCall(DMCreateMatrix(mass_pack, &packM));
2478   PetscCall(PetscOptionsInsertString(NULL, "-dm_preallocate_only false"));
2479   PetscCall(MatSetOption(packM, MAT_STRUCTURALLY_SYMMETRIC, PETSC_TRUE));
2480   PetscCall(MatSetOption(packM, MAT_IGNORE_ZERO_ENTRIES, PETSC_TRUE));
2481   PetscCall(DMDestroy(&mass_pack));
2482   /* make mass matrix for each block */
2483   for (PetscInt grid = 0; grid < ctx->num_grids; grid++) {
2484     Vec locX;
2485     DM  plex = massDM[grid];
2486     PetscCall(DMGetLocalVector(plex, &locX));
2487     /* Mass matrix is independent of the input, so no need to fill locX */
2488     PetscCall(DMPlexSNESComputeJacobianFEM(plex, locX, subM[grid], subM[grid], ctx));
2489     PetscCall(DMRestoreLocalVector(plex, &locX));
2490     PetscCall(DMDestroy(&massDM[grid]));
2491   }
2492   PetscCall(MatGetSize(ctx->J, &N1, NULL));
2493   PetscCall(MatGetSize(packM, &N2, NULL));
2494   PetscCheck(N1 == N2, PetscObjectComm((PetscObject)pack), PETSC_ERR_PLIB, "Incorrect matrix sizes: |Jacobian| = %" PetscInt_FMT ", |Mass|=%" PetscInt_FMT, N1, N2);
2495   /* assemble block diagonals */
2496   for (PetscInt grid = 0; grid < ctx->num_grids; grid++) {
2497     Mat      B = subM[grid];
2498     PetscInt nloc, nzl, *colbuf, COL_BF_SIZE = 1024, row;
2499     PetscCall(PetscMalloc(sizeof(*colbuf) * COL_BF_SIZE, &colbuf));
2500     PetscCall(MatGetSize(B, &nloc, NULL));
2501     for (PetscInt b_id = 0; b_id < ctx->batch_sz; b_id++) {
2502       const PetscInt     moffset = LAND_MOFFSET(b_id, grid, ctx->batch_sz, ctx->num_grids, ctx->mat_offset);
2503       const PetscInt    *cols;
2504       const PetscScalar *vals;
2505       for (int i = 0; i < nloc; i++) {
2506         PetscCall(MatGetRow(B, i, &nzl, NULL, NULL));
2507         if (nzl > COL_BF_SIZE) {
2508           PetscCall(PetscFree(colbuf));
2509           PetscCall(PetscInfo(pack, "Realloc buffer %" PetscInt_FMT " to %" PetscInt_FMT " (row size %" PetscInt_FMT ") \n", COL_BF_SIZE, 2 * COL_BF_SIZE, nzl));
2510           COL_BF_SIZE = nzl;
2511           PetscCall(PetscMalloc(sizeof(*colbuf) * COL_BF_SIZE, &colbuf));
2512         }
2513         PetscCall(MatGetRow(B, i, &nzl, &cols, &vals));
2514         for (int j = 0; j < nzl; j++) colbuf[j] = cols[j] + moffset;
2515         row = i + moffset;
2516         PetscCall(MatSetValues(packM, 1, &row, nzl, colbuf, vals, INSERT_VALUES));
2517         PetscCall(MatRestoreRow(B, i, &nzl, &cols, &vals));
2518       }
2519     }
2520     PetscCall(PetscFree(colbuf));
2521   }
2522   // cleanup
2523   for (PetscInt grid = 0; grid < ctx->num_grids; grid++) PetscCall(MatDestroy(&subM[grid]));
2524   PetscCall(MatAssemblyBegin(packM, MAT_FINAL_ASSEMBLY));
2525   PetscCall(MatAssemblyEnd(packM, MAT_FINAL_ASSEMBLY));
2526   PetscCall(PetscObjectSetName((PetscObject)packM, "mass"));
2527   PetscCall(MatViewFromOptions(packM, NULL, "-dm_landau_mass_view"));
2528   ctx->M = packM;
2529   if (Amat) *Amat = packM;
2530   PetscCall(PetscLogEventEnd(ctx->events[14], 0, 0, 0, 0));
2531   PetscFunctionReturn(PETSC_SUCCESS);
2532 }
2533 
2534 /*@
2535   DMPlexLandauIFunction - `TS` residual calculation, confusingly this computes the Jacobian w/o mass
2536 
2537   Collective
2538 
2539   Input Parameters:
2540 + ts         - The time stepping context
2541 . time_dummy - current time (not used)
2542 . X          - Current state
2543 . X_t        - Time derivative of current state
2544 - actx       - Landau context
2545 
2546   Output Parameter:
2547 . F - The residual
2548 
2549   Level: beginner
2550 
2551 .seealso: `DMPlexLandauCreateVelocitySpace()`, `DMPlexLandauIJacobian()`
2552  @*/
2553 PetscErrorCode DMPlexLandauIFunction(TS ts, PetscReal time_dummy, Vec X, Vec X_t, Vec F, void *actx)
2554 {
2555   LandauCtx *ctx = (LandauCtx *)actx;
2556   PetscInt   dim;
2557   DM         pack;
2558 #if defined(PETSC_HAVE_THREADSAFETY)
2559   double starttime, endtime;
2560 #endif
2561   PetscObjectState state;
2562 
2563   PetscFunctionBegin;
2564   PetscCall(TSGetDM(ts, &pack));
2565   PetscCall(DMGetApplicationContext(pack, &ctx));
2566   PetscCheck(ctx, PETSC_COMM_SELF, PETSC_ERR_PLIB, "no context");
2567   if (ctx->stage) PetscCall(PetscLogStagePush(ctx->stage));
2568   PetscCall(PetscLogEventBegin(ctx->events[11], 0, 0, 0, 0));
2569   PetscCall(PetscLogEventBegin(ctx->events[0], 0, 0, 0, 0));
2570 #if defined(PETSC_HAVE_THREADSAFETY)
2571   starttime = MPI_Wtime();
2572 #endif
2573   PetscCall(DMGetDimension(pack, &dim));
2574   PetscCall(PetscObjectStateGet((PetscObject)ctx->J, &state));
2575   if (state != ctx->norm_state) {
2576     PetscCall(MatZeroEntries(ctx->J));
2577     PetscCall(LandauFormJacobian_Internal(X, ctx->J, dim, 0.0, (void *)ctx));
2578     PetscCall(MatViewFromOptions(ctx->J, NULL, "-dm_landau_jacobian_view"));
2579     PetscCall(PetscObjectStateGet((PetscObject)ctx->J, &state));
2580     ctx->norm_state = state;
2581   } else {
2582     PetscCall(PetscInfo(ts, "WARNING Skip forming Jacobian, has not changed %" PetscInt64_FMT "\n", state));
2583   }
2584   /* mat vec for op */
2585   PetscCall(MatMult(ctx->J, X, F)); /* C*f */
2586   /* add time term */
2587   if (X_t) PetscCall(MatMultAdd(ctx->M, X_t, F, F));
2588 #if defined(PETSC_HAVE_THREADSAFETY)
2589   if (ctx->stage) {
2590     endtime = MPI_Wtime();
2591     ctx->times[LANDAU_OPERATOR] += (endtime - starttime);
2592     ctx->times[LANDAU_JACOBIAN] += (endtime - starttime);
2593     ctx->times[LANDAU_MATRIX_TOTAL] += (endtime - starttime);
2594     ctx->times[LANDAU_JACOBIAN_COUNT] += 1;
2595   }
2596 #endif
2597   PetscCall(PetscLogEventEnd(ctx->events[0], 0, 0, 0, 0));
2598   PetscCall(PetscLogEventEnd(ctx->events[11], 0, 0, 0, 0));
2599   if (ctx->stage) PetscCall(PetscLogStagePop());
2600   PetscFunctionReturn(PETSC_SUCCESS);
2601 }
2602 
2603 /*@
2604   DMPlexLandauIJacobian - `TS` Jacobian construction, confusingly this adds mass
2605 
2606   Collective
2607 
2608   Input Parameters:
2609 + ts         - The time stepping context
2610 . time_dummy - current time (not used)
2611 . X          - Current state
2612 . U_tdummy   - Time derivative of current state (not used)
2613 . shift      - shift for du/dt term
2614 - actx       - Landau context
2615 
2616   Output Parameters:
2617 + Amat - Jacobian
2618 - Pmat - same as Amat
2619 
2620   Level: beginner
2621 
2622 .seealso: `DMPlexLandauCreateVelocitySpace()`, `DMPlexLandauIFunction()`
2623  @*/
2624 PetscErrorCode DMPlexLandauIJacobian(TS ts, PetscReal time_dummy, Vec X, Vec U_tdummy, PetscReal shift, Mat Amat, Mat Pmat, void *actx)
2625 {
2626   LandauCtx *ctx = NULL;
2627   PetscInt   dim;
2628   DM         pack;
2629 #if defined(PETSC_HAVE_THREADSAFETY)
2630   double starttime, endtime;
2631 #endif
2632   PetscObjectState state;
2633 
2634   PetscFunctionBegin;
2635   PetscCall(TSGetDM(ts, &pack));
2636   PetscCall(DMGetApplicationContext(pack, &ctx));
2637   PetscCheck(ctx, PETSC_COMM_SELF, PETSC_ERR_PLIB, "no context");
2638   PetscCheck(Amat == Pmat && Amat == ctx->J, ctx->comm, PETSC_ERR_PLIB, "Amat!=Pmat || Amat!=ctx->J");
2639   PetscCall(DMGetDimension(pack, &dim));
2640   /* get collision Jacobian into A */
2641   if (ctx->stage) PetscCall(PetscLogStagePush(ctx->stage));
2642   PetscCall(PetscLogEventBegin(ctx->events[11], 0, 0, 0, 0));
2643   PetscCall(PetscLogEventBegin(ctx->events[9], 0, 0, 0, 0));
2644 #if defined(PETSC_HAVE_THREADSAFETY)
2645   starttime = MPI_Wtime();
2646 #endif
2647   PetscCheck(shift != 0.0, ctx->comm, PETSC_ERR_PLIB, "zero shift");
2648   PetscCall(PetscObjectStateGet((PetscObject)ctx->J, &state));
2649   PetscCheck(state == ctx->norm_state, ctx->comm, PETSC_ERR_PLIB, "wrong state, %" PetscInt64_FMT " %" PetscInt64_FMT "", ctx->norm_state, state);
2650   if (!ctx->use_matrix_mass) {
2651     PetscCall(LandauFormJacobian_Internal(X, ctx->J, dim, shift, (void *)ctx));
2652   } else { /* add mass */
2653     PetscCall(MatAXPY(Pmat, shift, ctx->M, SAME_NONZERO_PATTERN));
2654   }
2655 #if defined(PETSC_HAVE_THREADSAFETY)
2656   if (ctx->stage) {
2657     endtime = MPI_Wtime();
2658     ctx->times[LANDAU_OPERATOR] += (endtime - starttime);
2659     ctx->times[LANDAU_MASS] += (endtime - starttime);
2660     ctx->times[LANDAU_MATRIX_TOTAL] += (endtime - starttime);
2661   }
2662 #endif
2663   PetscCall(PetscLogEventEnd(ctx->events[9], 0, 0, 0, 0));
2664   PetscCall(PetscLogEventEnd(ctx->events[11], 0, 0, 0, 0));
2665   if (ctx->stage) PetscCall(PetscLogStagePop());
2666   PetscFunctionReturn(PETSC_SUCCESS);
2667 }
2668