xref: /petsc/src/mat/impls/baij/seq/baijfact13.c (revision d9ba8547aa8a2fda9df3f80c4a05828a795aacb7)
1 #define PETSCMAT_DLL
2 
3 /*
4     Factorization code for BAIJ format.
5 */
6 #include "../src/mat/impls/baij/seq/baij.h"
7 #include "../src/mat/blockinvert.h"
8 
9 /*
10       Version for when blocks are 3 by 3
11 */
12 #undef __FUNCT__
13 #define __FUNCT__ "MatLUFactorNumeric_SeqBAIJ_3"
14 PetscErrorCode MatLUFactorNumeric_SeqBAIJ_3(Mat C,Mat A,const MatFactorInfo *info)
15 {
16   Mat_SeqBAIJ    *a = (Mat_SeqBAIJ*)A->data,*b = (Mat_SeqBAIJ *)C->data;
17   IS             isrow = b->row,isicol = b->icol;
18   PetscErrorCode ierr;
19   const PetscInt *r,*ic;
20   PetscInt       i,j,n = a->mbs,*bi = b->i,*bj = b->j;
21   PetscInt       *ajtmpold,*ajtmp,nz,row,*ai=a->i,*aj=a->j;
22   PetscInt       *diag_offset = b->diag,idx,*pj;
23   MatScalar      *pv,*v,*rtmp,*pc,*w,*x;
24   MatScalar      p1,p2,p3,p4,m1,m2,m3,m4,m5,m6,m7,m8,m9,x1,x2,x3,x4;
25   MatScalar      p5,p6,p7,p8,p9,x5,x6,x7,x8,x9;
26   MatScalar      *ba = b->a,*aa = a->a;
27   PetscReal      shift = info->shiftinblocks;
28 
29   PetscFunctionBegin;
30   ierr = ISGetIndices(isrow,&r);CHKERRQ(ierr);
31   ierr = ISGetIndices(isicol,&ic);CHKERRQ(ierr);
32   ierr = PetscMalloc(9*(n+1)*sizeof(MatScalar),&rtmp);CHKERRQ(ierr);
33 
34   for (i=0; i<n; i++) {
35     nz    = bi[i+1] - bi[i];
36     ajtmp = bj + bi[i];
37     for  (j=0; j<nz; j++) {
38       x = rtmp + 9*ajtmp[j];
39       x[0] = x[1] = x[2] = x[3] = x[4] = x[5] = x[6] = x[7] = x[8] = 0.0;
40     }
41     /* load in initial (unfactored row) */
42     idx      = r[i];
43     nz       = ai[idx+1] - ai[idx];
44     ajtmpold = aj + ai[idx];
45     v        = aa + 9*ai[idx];
46     for (j=0; j<nz; j++) {
47       x    = rtmp + 9*ic[ajtmpold[j]];
48       x[0] = v[0]; x[1] = v[1]; x[2] = v[2]; x[3] = v[3];
49       x[4] = v[4]; x[5] = v[5]; x[6] = v[6]; x[7] = v[7]; x[8] = v[8];
50       v    += 9;
51     }
52     row = *ajtmp++;
53     while (row < i) {
54       pc = rtmp + 9*row;
55       p1 = pc[0]; p2 = pc[1]; p3 = pc[2]; p4 = pc[3];
56       p5 = pc[4]; p6 = pc[5]; p7 = pc[6]; p8 = pc[7]; p9 = pc[8];
57       if (p1 != 0.0 || p2 != 0.0 || p3 != 0.0 || p4 != 0.0 || p5 != 0.0 ||
58           p6 != 0.0 || p7 != 0.0 || p8 != 0.0 || p9 != 0.0) {
59         pv = ba + 9*diag_offset[row];
60         pj = bj + diag_offset[row] + 1;
61         x1 = pv[0]; x2 = pv[1]; x3 = pv[2]; x4 = pv[3];
62         x5 = pv[4]; x6 = pv[5]; x7 = pv[6]; x8 = pv[7]; x9 = pv[8];
63         pc[0] = m1 = p1*x1 + p4*x2 + p7*x3;
64         pc[1] = m2 = p2*x1 + p5*x2 + p8*x3;
65         pc[2] = m3 = p3*x1 + p6*x2 + p9*x3;
66 
67         pc[3] = m4 = p1*x4 + p4*x5 + p7*x6;
68         pc[4] = m5 = p2*x4 + p5*x5 + p8*x6;
69         pc[5] = m6 = p3*x4 + p6*x5 + p9*x6;
70 
71         pc[6] = m7 = p1*x7 + p4*x8 + p7*x9;
72         pc[7] = m8 = p2*x7 + p5*x8 + p8*x9;
73         pc[8] = m9 = p3*x7 + p6*x8 + p9*x9;
74         nz = bi[row+1] - diag_offset[row] - 1;
75         pv += 9;
76         for (j=0; j<nz; j++) {
77           x1   = pv[0]; x2 = pv[1]; x3 = pv[2]; x4 = pv[3];
78           x5   = pv[4]; x6 = pv[5]; x7 = pv[6]; x8 = pv[7]; x9 = pv[8];
79           x    = rtmp + 9*pj[j];
80           x[0] -= m1*x1 + m4*x2 + m7*x3;
81           x[1] -= m2*x1 + m5*x2 + m8*x3;
82           x[2] -= m3*x1 + m6*x2 + m9*x3;
83 
84           x[3] -= m1*x4 + m4*x5 + m7*x6;
85           x[4] -= m2*x4 + m5*x5 + m8*x6;
86           x[5] -= m3*x4 + m6*x5 + m9*x6;
87 
88           x[6] -= m1*x7 + m4*x8 + m7*x9;
89           x[7] -= m2*x7 + m5*x8 + m8*x9;
90           x[8] -= m3*x7 + m6*x8 + m9*x9;
91           pv   += 9;
92         }
93         ierr = PetscLogFlops(54.0*nz+36.0);CHKERRQ(ierr);
94       }
95       row = *ajtmp++;
96     }
97     /* finished row so stick it into b->a */
98     pv = ba + 9*bi[i];
99     pj = bj + bi[i];
100     nz = bi[i+1] - bi[i];
101     for (j=0; j<nz; j++) {
102       x     = rtmp + 9*pj[j];
103       pv[0] = x[0]; pv[1] = x[1]; pv[2] = x[2]; pv[3] = x[3];
104       pv[4] = x[4]; pv[5] = x[5]; pv[6] = x[6]; pv[7] = x[7]; pv[8] = x[8];
105       pv   += 9;
106     }
107     /* invert diagonal block */
108     w = ba + 9*diag_offset[i];
109     ierr = Kernel_A_gets_inverse_A_3(w,shift);CHKERRQ(ierr);
110   }
111 
112   ierr = PetscFree(rtmp);CHKERRQ(ierr);
113   ierr = ISRestoreIndices(isicol,&ic);CHKERRQ(ierr);
114   ierr = ISRestoreIndices(isrow,&r);CHKERRQ(ierr);
115   C->ops->solve          = MatSolve_SeqBAIJ_3;
116   C->ops->solvetranspose = MatSolveTranspose_SeqBAIJ_3;
117   C->assembled = PETSC_TRUE;
118   ierr = PetscLogFlops(1.3333*27*b->mbs);CHKERRQ(ierr); /* from inverting diagonal blocks */
119   PetscFunctionReturn(0);
120 }
121 
122 /* MatLUFactorNumeric_SeqBAIJ_3_newdatastruct -
123      copied from MatLUFactorNumeric_SeqBAIJ_N_newdatastruct() and manually re-implemented
124        Kernel_A_gets_A_times_B()
125        Kernel_A_gets_A_minus_B_times_C()
126        Kernel_A_gets_inverse_A()
127 */
128 #undef __FUNCT__
129 #define __FUNCT__ "MatLUFactorNumeric_SeqBAIJ_3_newdatastruct"
130 PetscErrorCode MatLUFactorNumeric_SeqBAIJ_3_newdatastruct(Mat B,Mat A,const MatFactorInfo *info)
131 {
132   Mat            C=B;
133   Mat_SeqBAIJ    *a=(Mat_SeqBAIJ*)A->data,*b=(Mat_SeqBAIJ *)C->data;
134   IS             isrow = b->row,isicol = b->icol;
135   PetscErrorCode ierr;
136   const PetscInt *r,*ic,*ics;
137   PetscInt       i,j,k,n=a->mbs,*ai=a->i,*aj=a->j,*bi=b->i,*bj=b->j;
138   PetscInt       *ajtmp,*bjtmp,nz,nzL,row,*bdiag=b->diag,*pj;
139   MatScalar      *rtmp,*pc,*mwork,*v,*pv,*aa=a->a;
140   PetscInt       bs2 = a->bs2,flg;
141   PetscReal      shift = info->shiftinblocks;
142 
143   PetscFunctionBegin;
144   ierr = ISGetIndices(isrow,&r);CHKERRQ(ierr);
145   ierr = ISGetIndices(isicol,&ic);CHKERRQ(ierr);
146 
147   /* generate work space needed by the factorization */
148   ierr = PetscMalloc2(bs2*n,MatScalar,&rtmp,bs2,MatScalar,&mwork);CHKERRQ(ierr);
149   ierr = PetscMemzero(rtmp,bs2*n*sizeof(MatScalar));CHKERRQ(ierr);
150   ics  = ic;
151 
152   for (i=0; i<n; i++){
153     /* zero rtmp */
154     /* L part */
155     nz    = bi[i+1] - bi[i];
156     bjtmp = bj + bi[i];
157     for  (j=0; j<nz; j++){
158       ierr = PetscMemzero(rtmp+bs2*bjtmp[j],bs2*sizeof(MatScalar));CHKERRQ(ierr);
159     }
160 
161     /* U part */
162     nz = bdiag[i] - bdiag[i+1];
163     bjtmp = bj + bdiag[i+1]+1;
164     for  (j=0; j<nz; j++){
165       ierr = PetscMemzero(rtmp+bs2*bjtmp[j],bs2*sizeof(MatScalar));CHKERRQ(ierr);
166     }
167 
168     /* load in initial (unfactored row) */
169     nz    = ai[r[i]+1] - ai[r[i]];
170     ajtmp = aj + ai[r[i]];
171     v     = aa + bs2*ai[r[i]];
172     for (j=0; j<nz; j++) {
173       ierr = PetscMemcpy(rtmp+bs2*ic[ajtmp[j]],v+bs2*j,bs2*sizeof(MatScalar));CHKERRQ(ierr);
174     }
175 
176     /* elimination */
177     bjtmp = bj + bi[i];
178     nzL   = bi[i+1] - bi[i];
179     for(k = 0;k < nzL;k++){
180       row = bjtmp[k];
181       pc = rtmp + bs2*row;
182       for (flg=0,j=0; j<bs2; j++) { if (pc[j]!=0.0) { flg = 1; break; }}
183       if (flg) {
184         pv = b->a + bs2*bdiag[row];
185         /* Kernel_A_gets_A_times_B(bs,pc,pv,mwork); *pc = *pc * (*pv); */
186         ierr = Kernel_A_gets_A_times_B_3(pc,pv,mwork);CHKERRQ(ierr);
187 
188    	pj = b->j + bdiag[row+1] + 1; /* beginning of U(row,:) */
189 	pv = b->a + bs2*(bdiag[row+1]+1);
190 	nz = bdiag[row] - bdiag[row+1] - 1; /* num of entries in U(row,:) excluding diag */
191         for (j=0; j<nz; j++) {
192           /* Kernel_A_gets_A_minus_B_times_C(bs,rtmp+bs2*pj[j],pc,pv+bs2*j); */
193           /* rtmp+bs2*pj[j] = rtmp+bs2*pj[j] - (*pc)*(pv+bs2*j) */
194           v    = rtmp + bs2*pj[j];
195           ierr = Kernel_A_gets_A_minus_B_times_C_3(v,pc,pv);CHKERRQ(ierr);
196           pv  += bs2;
197         }
198         ierr = PetscLogFlops(54*nz+45);CHKERRQ(ierr); /* flops = 2*bs^3*nz + 2*bs^3 - bs2) */
199       }
200     }
201 
202     /* finished row so stick it into b->a */
203     /* L part */
204     pv   = b->a + bs2*bi[i] ;
205     pj   = b->j + bi[i] ;
206     nz   = bi[i+1] - bi[i];
207     for (j=0; j<nz; j++) {
208       ierr = PetscMemcpy(pv+bs2*j,rtmp+bs2*pj[j],bs2*sizeof(MatScalar));CHKERRQ(ierr);
209     }
210 
211     /* Mark diagonal and invert diagonal for simplier triangular solves */
212     pv   = b->a + bs2*bdiag[i];
213     pj   = b->j + bdiag[i];
214     ierr = PetscMemcpy(pv,rtmp+bs2*pj[0],bs2*sizeof(MatScalar));CHKERRQ(ierr);
215     /* ierr = Kernel_A_gets_inverse_A(bs,pv,v_pivots,v_work);CHKERRQ(ierr); */
216     ierr = Kernel_A_gets_inverse_A_3(pv,shift);CHKERRQ(ierr);
217 
218     /* U part */
219     pj = b->j + bdiag[i+1] + 1;
220     pv = b->a + bs2*(bdiag[i+1]+1);
221     nz = bdiag[i] - bdiag[i+1] - 1;
222     for (j=0; j<nz; j++){
223       ierr = PetscMemcpy(pv+bs2*j,rtmp+bs2*pj[j],bs2*sizeof(MatScalar));CHKERRQ(ierr);
224     }
225   }
226 
227   ierr = PetscFree2(rtmp,mwork);CHKERRQ(ierr);
228   ierr = ISRestoreIndices(isicol,&ic);CHKERRQ(ierr);
229   ierr = ISRestoreIndices(isrow,&r);CHKERRQ(ierr);
230   C->ops->solve = MatSolve_SeqBAIJ_3_newdatastruct_v2;
231 
232   C->assembled = PETSC_TRUE;
233   ierr = PetscLogFlops(1.3333*bs2*n);CHKERRQ(ierr); /* from inverting diagonal blocks */
234   PetscFunctionReturn(0);
235 }
236 
237 #undef __FUNCT__
238 #define __FUNCT__ "MatLUFactorNumeric_SeqBAIJ_3_NaturalOrdering"
239 PetscErrorCode MatLUFactorNumeric_SeqBAIJ_3_NaturalOrdering(Mat C,Mat A,const MatFactorInfo *info)
240 {
241   Mat_SeqBAIJ    *a = (Mat_SeqBAIJ*)A->data,*b = (Mat_SeqBAIJ *)C->data;
242   PetscErrorCode ierr;
243   PetscInt       i,j,n = a->mbs,*bi = b->i,*bj = b->j;
244   PetscInt       *ajtmpold,*ajtmp,nz,row;
245   PetscInt       *diag_offset = b->diag,*ai=a->i,*aj=a->j,*pj;
246   MatScalar      *pv,*v,*rtmp,*pc,*w,*x;
247   MatScalar      p1,p2,p3,p4,m1,m2,m3,m4,m5,m6,m7,m8,m9,x1,x2,x3,x4;
248   MatScalar      p5,p6,p7,p8,p9,x5,x6,x7,x8,x9;
249   MatScalar      *ba = b->a,*aa = a->a;
250   PetscReal      shift = info->shiftinblocks;
251 
252   PetscFunctionBegin;
253   ierr = PetscMalloc(9*(n+1)*sizeof(MatScalar),&rtmp);CHKERRQ(ierr);
254 
255   for (i=0; i<n; i++) {
256     nz    = bi[i+1] - bi[i];
257     ajtmp = bj + bi[i];
258     for  (j=0; j<nz; j++) {
259       x = rtmp+9*ajtmp[j];
260       x[0]  = x[1]  = x[2]  = x[3]  = x[4]  = x[5]  = x[6] = x[7] = x[8] = 0.0;
261     }
262     /* load in initial (unfactored row) */
263     nz       = ai[i+1] - ai[i];
264     ajtmpold = aj + ai[i];
265     v        = aa + 9*ai[i];
266     for (j=0; j<nz; j++) {
267       x    = rtmp+9*ajtmpold[j];
268       x[0]  = v[0];  x[1]  = v[1];  x[2]  = v[2];  x[3]  = v[3];
269       x[4]  = v[4];  x[5]  = v[5];  x[6]  = v[6];  x[7]  = v[7];  x[8]  = v[8];
270       v    += 9;
271     }
272     row = *ajtmp++;
273     while (row < i) {
274       pc  = rtmp + 9*row;
275       p1  = pc[0];  p2  = pc[1];  p3  = pc[2];  p4  = pc[3];
276       p5  = pc[4];  p6  = pc[5];  p7  = pc[6];  p8  = pc[7];  p9  = pc[8];
277       if (p1 != 0.0 || p2 != 0.0 || p3 != 0.0 || p4 != 0.0 || p5 != 0.0 ||
278           p6 != 0.0 || p7 != 0.0 || p8 != 0.0 || p9 != 0.0) {
279         pv = ba + 9*diag_offset[row];
280         pj = bj + diag_offset[row] + 1;
281         x1  = pv[0];  x2  = pv[1];  x3  = pv[2];  x4  = pv[3];
282         x5  = pv[4];  x6  = pv[5];  x7  = pv[6];  x8  = pv[7];  x9  = pv[8];
283         pc[0] = m1 = p1*x1 + p4*x2 + p7*x3;
284         pc[1] = m2 = p2*x1 + p5*x2 + p8*x3;
285         pc[2] = m3 = p3*x1 + p6*x2 + p9*x3;
286 
287         pc[3] = m4 = p1*x4 + p4*x5 + p7*x6;
288         pc[4] = m5 = p2*x4 + p5*x5 + p8*x6;
289         pc[5] = m6 = p3*x4 + p6*x5 + p9*x6;
290 
291         pc[6] = m7 = p1*x7 + p4*x8 + p7*x9;
292         pc[7] = m8 = p2*x7 + p5*x8 + p8*x9;
293         pc[8] = m9 = p3*x7 + p6*x8 + p9*x9;
294 
295         nz = bi[row+1] - diag_offset[row] - 1;
296         pv += 9;
297         for (j=0; j<nz; j++) {
298           x1   = pv[0];  x2  = pv[1];   x3 = pv[2];  x4  = pv[3];
299           x5   = pv[4];  x6  = pv[5];   x7 = pv[6];  x8  = pv[7]; x9 = pv[8];
300           x    = rtmp + 9*pj[j];
301           x[0] -= m1*x1 + m4*x2 + m7*x3;
302           x[1] -= m2*x1 + m5*x2 + m8*x3;
303           x[2] -= m3*x1 + m6*x2 + m9*x3;
304 
305           x[3] -= m1*x4 + m4*x5 + m7*x6;
306           x[4] -= m2*x4 + m5*x5 + m8*x6;
307           x[5] -= m3*x4 + m6*x5 + m9*x6;
308 
309           x[6] -= m1*x7 + m4*x8 + m7*x9;
310           x[7] -= m2*x7 + m5*x8 + m8*x9;
311           x[8] -= m3*x7 + m6*x8 + m9*x9;
312           pv   += 9;
313         }
314         ierr = PetscLogFlops(54.0*nz+36.0);CHKERRQ(ierr);
315       }
316       row = *ajtmp++;
317     }
318     /* finished row so stick it into b->a */
319     pv = ba + 9*bi[i];
320     pj = bj + bi[i];
321     nz = bi[i+1] - bi[i];
322     for (j=0; j<nz; j++) {
323       x      = rtmp+9*pj[j];
324       pv[0]  = x[0];  pv[1]  = x[1];  pv[2]  = x[2];  pv[3]  = x[3];
325       pv[4]  = x[4];  pv[5]  = x[5];  pv[6]  = x[6];  pv[7]  = x[7]; pv[8] = x[8];
326       pv   += 9;
327     }
328     /* invert diagonal block */
329     w = ba + 9*diag_offset[i];
330     ierr = Kernel_A_gets_inverse_A_3(w,shift);CHKERRQ(ierr);
331   }
332 
333   ierr = PetscFree(rtmp);CHKERRQ(ierr);
334   C->ops->solve          = MatSolve_SeqBAIJ_3_NaturalOrdering;
335   C->ops->solvetranspose = MatSolveTranspose_SeqBAIJ_3_NaturalOrdering;
336   C->assembled = PETSC_TRUE;
337   ierr = PetscLogFlops(1.3333*27*b->mbs);CHKERRQ(ierr); /* from inverting diagonal blocks */
338   PetscFunctionReturn(0);
339 }
340 
341 /*
342   MatLUFactorNumeric_SeqBAIJ_3_NaturalOrdering_newdatastruct -
343     copied from MatLUFactorNumeric_SeqBAIJ_2_NaturalOrdering_newdatastruct()
344 */
345 #undef __FUNCT__
346 #define __FUNCT__ "MatLUFactorNumeric_SeqBAIJ_3_NaturalOrdering_newdatastruct"
347 PetscErrorCode MatLUFactorNumeric_SeqBAIJ_3_NaturalOrdering_newdatastruct(Mat B,Mat A,const MatFactorInfo *info)
348 {
349   Mat            C=B;
350   Mat_SeqBAIJ    *a=(Mat_SeqBAIJ*)A->data,*b=(Mat_SeqBAIJ *)C->data;
351   PetscErrorCode ierr;
352   PetscInt       i,j,k,n=a->mbs,*ai=a->i,*aj=a->j,*bi=b->i,*bj=b->j;
353   PetscInt       *ajtmp,*bjtmp,nz,nzL,row,*bdiag=b->diag,*pj;
354   MatScalar      *rtmp,*pc,*mwork,*v,*pv,*aa=a->a;
355   PetscInt       bs2 = a->bs2,flg;
356   PetscReal      shift = info->shiftinblocks;
357 
358   PetscFunctionBegin;
359   /* generate work space needed by the factorization */
360   ierr = PetscMalloc2(bs2*n,MatScalar,&rtmp,bs2,MatScalar,&mwork);CHKERRQ(ierr);
361   ierr = PetscMemzero(rtmp,bs2*n*sizeof(MatScalar));CHKERRQ(ierr);
362 
363   for (i=0; i<n; i++){
364     /* zero rtmp */
365     /* L part */
366     nz    = bi[i+1] - bi[i];
367     bjtmp = bj + bi[i];
368     for  (j=0; j<nz; j++){
369       ierr = PetscMemzero(rtmp+bs2*bjtmp[j],bs2*sizeof(MatScalar));CHKERRQ(ierr);
370     }
371 
372     /* U part */
373     nz = bdiag[i] - bdiag[i+1];
374     bjtmp = bj + bdiag[i+1] + 1;
375     for  (j=0; j<nz; j++){
376       ierr = PetscMemzero(rtmp+bs2*bjtmp[j],bs2*sizeof(MatScalar));CHKERRQ(ierr);
377     }
378 
379     /* load in initial (unfactored row) */
380     nz    = ai[i+1] - ai[i];
381     ajtmp = aj + ai[i];
382     v     = aa + bs2*ai[i];
383     for (j=0; j<nz; j++) {
384       ierr = PetscMemcpy(rtmp+bs2*ajtmp[j],v+bs2*j,bs2*sizeof(MatScalar));CHKERRQ(ierr);
385     }
386 
387     /* elimination */
388     bjtmp = bj + bi[i];
389     nzL   = bi[i+1] - bi[i];
390     for(k=0;k<nzL;k++){
391       row = bjtmp[k];
392       pc = rtmp + bs2*row;
393       for (flg=0,j=0; j<bs2; j++) { if (pc[j]!=0.0) { flg = 1; break; }}
394       if (flg) {
395         pv = b->a + bs2*bdiag[row];
396         /* Kernel_A_gets_A_times_B(bs,pc,pv,mwork); *pc = *pc * (*pv); */
397         ierr = Kernel_A_gets_A_times_B_3(pc,pv,mwork);CHKERRQ(ierr);
398 
399         pj = b->j + bdiag[row+1]+1; /* beginning of U(row,:) */
400 	pv = b->a + bs2*(bdiag[row+1]+1);
401 	nz = bdiag[row] - bdiag[row+1] - 1; /* num of entries in U(row,:) excluding diag */
402         for (j=0; j<nz; j++) {
403           /* Kernel_A_gets_A_minus_B_times_C(bs,rtmp+bs2*pj[j],pc,pv+bs2*j); */
404           /* rtmp+bs2*pj[j] = rtmp+bs2*pj[j] - (*pc)*(pv+bs2*j) */
405           v    = rtmp + bs2*pj[j];
406           ierr = Kernel_A_gets_A_minus_B_times_C_3(v,pc,pv);CHKERRQ(ierr);
407           pv  += bs2;
408         }
409         ierr = PetscLogFlops(54*nz+45);CHKERRQ(ierr); /* flops = 2*bs^3*nz + 2*bs^3 - bs2) */
410       }
411     }
412 
413     /* finished row so stick it into b->a */
414     /* L part */
415     pv   = b->a + bs2*bi[i] ;
416     pj   = b->j + bi[i] ;
417     nz   = bi[i+1] - bi[i];
418     for (j=0; j<nz; j++) {
419       ierr = PetscMemcpy(pv+bs2*j,rtmp+bs2*pj[j],bs2*sizeof(MatScalar));CHKERRQ(ierr);
420     }
421 
422     /* Mark diagonal and invert diagonal for simplier triangular solves */
423     pv   = b->a + bs2*bdiag[i];
424     pj   = b->j + bdiag[i];
425     ierr = PetscMemcpy(pv,rtmp+bs2*pj[0],bs2*sizeof(MatScalar));CHKERRQ(ierr);
426     /* ierr = Kernel_A_gets_inverse_A(bs,pv,v_pivots,v_work);CHKERRQ(ierr); */
427     ierr = Kernel_A_gets_inverse_A_3(pv,shift);CHKERRQ(ierr);
428 
429     /* U part */
430     pv = b->a + bs2*(bdiag[i+1]+1);
431     pj = b->j + bdiag[i+1]+1;
432     nz = bdiag[i] - bdiag[i+1] - 1;
433     for (j=0; j<nz; j++){
434       ierr = PetscMemcpy(pv+bs2*j,rtmp+bs2*pj[j],bs2*sizeof(MatScalar));CHKERRQ(ierr);
435     }
436   }
437   ierr = PetscFree2(rtmp,mwork);CHKERRQ(ierr);
438   C->ops->solve          = MatSolve_SeqBAIJ_3_NaturalOrdering_newdatastruct_v2;
439   /*  C->ops->solvetranspose = MatSolveTranspose_SeqBAIJ_3_NaturalOrdering; */
440   C->assembled = PETSC_TRUE;
441   ierr = PetscLogFlops(1.3333*bs2*n);CHKERRQ(ierr); /* from inverting diagonal blocks */
442   PetscFunctionReturn(0);
443 }
444 
445