| version 1.9, 2019/09/19 06:29:47 |
version 1.26, 2021/12/23 08:55:33 |
|
|
| * DEVELOPER SHALL HAVE NO LIABILITY IN CONNECTION WITH THE USE, |
* DEVELOPER SHALL HAVE NO LIABILITY IN CONNECTION WITH THE USE, |
| * PERFORMANCE OR NON-PERFORMANCE OF THE SOFTWARE. |
* PERFORMANCE OR NON-PERFORMANCE OF THE SOFTWARE. |
| * |
* |
| * $OpenXM: OpenXM_contrib2/asir2018/engine/dist.c,v 1.8 2019/09/13 02:04:42 noro Exp $ |
* $OpenXM: OpenXM_contrib2/asir2018/engine/dist.c,v 1.25 2021/01/11 08:37:44 noro Exp $ |
| */ |
*/ |
| #include "ca.h" |
#include "ca.h" |
| |
|
| Line 210 void initd(struct order_spec *spec) |
|
| Line 210 void initd(struct order_spec *spec) |
|
| |
|
| int dpm_ordtype; |
int dpm_ordtype; |
| |
|
| |
#if 0 |
| void ptod(VL vl,VL dvl,P p,DP *pr) |
void ptod(VL vl,VL dvl,P p,DP *pr) |
| { |
{ |
| int n,i,j,k; |
int n,i,j,k; |
| Line 267 void ptod(VL vl,VL dvl,P p,DP *pr) |
|
| Line 268 void ptod(VL vl,VL dvl,P p,DP *pr) |
|
| dp_fcoeffs = N_GFS; |
dp_fcoeffs = N_GFS; |
| #endif |
#endif |
| } |
} |
| |
#else |
| |
void ptod(VL vl,VL dvl,P p,DP *pr) |
| |
{ |
| |
int n,i,j,k; |
| |
VL tvl; |
| |
V v; |
| |
DL d; |
| |
MP m; |
| |
DCP dc; |
| |
DP *y; |
| |
DP r,s,t,u; |
| |
P x,c; |
| |
|
| |
if ( !p ) |
| |
*pr = 0; |
| |
else if ( OID(p) > O_P ) |
| |
error("ptod : only polynomials can be converted."); |
| |
else { |
| |
for ( n = 0, tvl = dvl; tvl; tvl = NEXT(tvl), n++ ); |
| |
if ( NUM(p) ) { |
| |
NEWDL(d,n); |
| |
NEWMP(m); m->dl = d; C(m) = (Obj)p; NEXT(m) = 0; MKDP(n,m,*pr); (*pr)->sugar = 0; |
| |
} else { |
| |
for ( i = 0, tvl = dvl, v = VR(p); tvl && tvl->v != v; tvl = NEXT(tvl), i++ ); |
| |
for ( dc = DC(p), k = 0; dc; dc = NEXT(dc), k++ ); |
| |
y = (DP *)ALLOCA(k*sizeof(DP)); |
| |
if ( !tvl ) { |
| |
MKV(v,x); |
| |
for ( dc = DC(p), j = 0; dc; dc = NEXT(dc), j++ ) { |
| |
ptod(vl,dvl,COEF(dc),&t); pwrp(vl,x,DEG(dc),&c); |
| |
muldc(vl,t,(Obj)c,&y[j]); |
| |
} |
| |
} else { |
| |
for ( dc = DC(p), j = 0; dc; dc = NEXT(dc), j++ ) { |
| |
ptod(vl,dvl,COEF(dc),&t); |
| |
NEWDL(d,n); |
| |
d->d[i] = ZTOS(DEG(dc)); |
| |
d->td = MUL_WEIGHT(d->d[i],i); |
| |
NEWMP(m); m->dl = d; C(m) = (Obj)ONE; NEXT(m) = 0; MKDP(n,m,u); u->sugar = d->td; |
| |
comm_muld(vl,t,u,&y[j]); |
| |
} |
| |
} |
| |
for ( j = k-1, s = 0; j >= 0; j-- ) { |
| |
addd(vl,y[j],s,&t); s = t; |
| |
} |
| |
*pr = s; |
| |
} |
| |
} |
| |
#if 0 |
| |
if ( !dp_fcoeffs && has_sfcoef(*pr) ) |
| |
dp_fcoeffs = N_GFS; |
| |
#endif |
| |
} |
| |
#endif |
| |
|
| void dtop(VL vl,VL dvl,DP p,Obj *pr) |
void dtop(VL vl,VL dvl,DP p,Obj *pr) |
| { |
{ |
| int n,i,j,k; |
int n,i,j,k; |
| Line 353 void nodetodpm(NODE node,Obj pos,DPM *dp) |
|
| Line 408 void nodetodpm(NODE node,Obj pos,DPM *dp) |
|
| } |
} |
| d->td = td; |
d->td = td; |
| p = ZTOS((Q)pos); |
p = ZTOS((Q)pos); |
| if ( dp_current_spec->module_rank ) { |
if ( dp_current_spec->module_top_weight ) { |
| if ( p > dp_current_spec->module_rank ) |
if ( p > dp_current_spec->module_rank ) |
| error("nodetodpm : inconsistent order spec"); |
error("nodetodpm : inconsistent order spec"); |
| d->td += dp_current_spec->module_top_weight[p-1]; |
d->td += dp_current_spec->module_top_weight[p-1]; |
| Line 371 void dtodpm(DP d,int pos,DPM *dp) |
|
| Line 426 void dtodpm(DP d,int pos,DPM *dp) |
|
| if ( !d ) *dp = 0; |
if ( !d ) *dp = 0; |
| else { |
else { |
| shift = 0; |
shift = 0; |
| if ( dp_current_spec->module_rank ) { |
if ( dp_current_spec->module_top_weight ) { |
| if ( pos > dp_current_spec->module_rank ) |
if ( pos > dp_current_spec->module_rank ) |
| error("nodetodpm : inconsistent order spec"); |
error("nodetodpm : inconsistent order spec"); |
| shift = dp_current_spec->module_top_weight[pos-1]; |
shift = dp_current_spec->module_top_weight[pos-1]; |
| Line 582 void _adddl(int n,DL d1,DL d2,DL d3) |
|
| Line 637 void _adddl(int n,DL d1,DL d2,DL d3) |
|
| d3->d[i] = d1->d[i]+d2->d[i]; |
d3->d[i] = d1->d[i]+d2->d[i]; |
| } |
} |
| |
|
| |
void _subdl(int n,DL d1,DL d2,DL d3) |
| |
{ |
| |
int i; |
| |
|
| |
d3->td = d1->td-d2->td; |
| |
for ( i = 0; i < n; i++ ) |
| |
d3->d[i] = d1->d[i]-d2->d[i]; |
| |
} |
| |
|
| |
|
| void _addtodl(int n,DL d1,DL d2) |
void _addtodl(int n,DL d1,DL d2) |
| { |
{ |
| int i; |
int i; |
| Line 591 void _addtodl(int n,DL d1,DL d2) |
|
| Line 656 void _addtodl(int n,DL d1,DL d2) |
|
| d2->d[i] += d1->d[i]; |
d2->d[i] += d1->d[i]; |
| } |
} |
| |
|
| |
void _subfromdl(int n,DL d1,DL d2) |
| |
{ |
| |
int i; |
| |
|
| |
d2->td -= d1->td; |
| |
for ( i = 0; i < n; i++ ) |
| |
d2->d[i] -= d1->d[i]; |
| |
} |
| |
|
| void _copydl(int n,DL d1,DL d2) |
void _copydl(int n,DL d1,DL d2) |
| { |
{ |
| int i; |
int i; |
| Line 2654 int dpm_base_ordtype;; |
|
| Line 2728 int dpm_base_ordtype;; |
|
| DMMstack push_schreyer_order(LIST data,DMMstack stack) |
DMMstack push_schreyer_order(LIST data,DMMstack stack) |
| { |
{ |
| DMMstack t; |
DMMstack t; |
| int len,i; |
DP dp; |
| |
MP mp; |
| |
DMM m0,m1; |
| |
DPM dpm0,dpm1; |
| |
int len,i,nv; |
| NODE in,t1; |
NODE in,t1; |
| LIST l; |
LIST l; |
| |
|
| Line 2666 DMMstack push_schreyer_order(LIST data,DMMstack stack) |
|
| Line 2744 DMMstack push_schreyer_order(LIST data,DMMstack stack) |
|
| NEWDMMstack(t); |
NEWDMMstack(t); |
| t->rank = len; |
t->rank = len; |
| t->in = (DMM *)MALLOC((len+1)*sizeof(DMM)); |
t->in = (DMM *)MALLOC((len+1)*sizeof(DMM)); |
| |
t->sum = (DMM *)MALLOC((len+1)*sizeof(DMM)); |
| if ( stack ) { |
if ( stack ) { |
| MKNODE(t1,data,BDY(stack->obj)); MKLIST(l,t1); t->obj = l; |
MKNODE(t1,data,BDY(stack->obj)); MKLIST(l,t1); t->obj = l; |
| |
for ( i = 1; i <= len; i++, in = NEXT(in) ) { |
| |
m1 = t->in[i] = BDY((DPM)BDY(in)); |
| |
NEWMP(mp); mp->dl = m1->dl; mp->c = m1->c; NEXT(mp) = 0; |
| |
nv = ((DPM)BDY(in))->nv; |
| |
MKDP(nv,mp,dp); dp->sugar = mp->dl->td; |
| |
m0 = stack->sum[m1->pos]; MKDPM(nv,m0,dpm0); |
| |
mulobjdpm(CO,(Obj)dp,dpm0,&dpm1); |
| |
t->sum[i] = BDY(dpm1); |
| |
} |
| } else { |
} else { |
| MKNODE(t1,data,0); MKLIST(l,t1); t->obj = l; |
MKNODE(t1,data,0); MKLIST(l,t1); t->obj = l; |
| |
for ( i = 1; i <= len; i++, in = NEXT(in) ) { |
| |
t->sum[i] = t->in[i] = BDY((DPM)BDY(in)); |
| |
} |
| } |
} |
| for ( i = 1; i <= len; i++, in = NEXT(in) ) { |
|
| t->in[i] = BDY((DPM)BDY(in)); |
|
| } |
|
| t->next = stack;; |
t->next = stack;; |
| dpm_ordtype = 3; |
dpm_ordtype = 3; |
| return t; |
return t; |
| Line 2708 void set_schreyer_order(LIST data) |
|
| Line 2796 void set_schreyer_order(LIST data) |
|
| } |
} |
| } |
} |
| |
|
| |
void set_schreyer_level(DMMstack_array array,int level) |
| |
{ |
| |
if ( !level ) { |
| |
dmm_stack = 0; |
| |
if ( dp_current_spec && dp_current_spec->id >= 256 ) |
| |
dpm_ordtype = dp_current_spec->module_ordtype; |
| |
else |
| |
dpm_ordtype = 0; |
| |
return; |
| |
} else { |
| |
if ( !dp_current_spec || dp_current_spec->id < 256 ) |
| |
error("set_schreyer_level : base module order is not set"); |
| |
if ( level > array->len ) |
| |
error("set_schreyer_level : invalid level"); |
| |
dmm_stack = array->body[level-1]; |
| |
dpm_base_ordtype = dp_current_spec->module_ordtype; |
| |
dpm_ordtype = 3; |
| |
} |
| |
} |
| |
|
| // construct a base of syz(g) |
// construct a base of syz(g) |
| // assuming the schrerer order is properly set |
// assuming the schrerer order is properly set |
| |
|
| DP dpm_sp_hm(DPM p1,DPM p2); |
DP dpm_sp_hm(DPM p1,DPM p2); |
| void dpm_sp(DPM p1,DPM p2,DPM *sp,DP *t1,DP *t2); |
void dpm_sp(DPM p1,DPM p2,DPM *sp,DP *t1,DP *t2); |
| DP *dpm_nf_and_quotient(NODE b,DPM sp,VECT psv,DPM *nf,P *dn); |
DPM dpm_nf_and_quotient3(DPM sp,VECT psv,DPM *nf,P *dn); |
| |
DPM dpm_nf_and_quotient4(DPM sp,DPM *ps,VECT psiv,DPM head,DPM *nf,P *dn); |
| |
DPM dpm_sp_nf(VECT psv,VECT psiv,int i,int j,DPM *nf); |
| |
DPM dpm_sp_nf_zlist(VECT psv,VECT psiv,int i,int j,int top,DPM *nf); |
| |
DPM dpm_sp_nf_asir(VECT psv,int i,int j,DPM *nf); |
| void dpm_sort(DPM p,DPM *r); |
void dpm_sort(DPM p,DPM *r); |
| |
|
| extern int DP_Multiple; |
extern int DP_Multiple; |
| |
extern int DP_Print; |
| |
|
| void dpm_nf_z(NODE b,DPM g,VECT psv,int full,int multiple,DPM *rp); |
void dpm_nf_z(NODE b,DPM g,VECT psv,int full,int multiple,DPM *rp); |
| NODE dpm_sort_list(NODE l); |
NODE dpm_sort_list(NODE l); |
| Line 2751 NODE dpm_reduceall(NODE in) |
|
| Line 2864 NODE dpm_reduceall(NODE in) |
|
| struct oEGT egra; |
struct oEGT egra; |
| |
|
| void dpm_ht(DPM d,DPM *r); |
void dpm_ht(DPM d,DPM *r); |
| |
NODE reverse_node(NODE b); |
| |
|
| void dpm_schreyer_base(LIST g,LIST *s) |
void dpm_schreyer_base(LIST g,LIST *s) |
| { |
{ |
| NODE nd,t0,t,b0,b; |
NODE nd,t0,t,b0,b; |
| int n,i,j,k,nv; |
int n,i,j,k,nv,max,pos; |
| LIST l; |
LIST l; |
| Z cont; |
|
| P dn,c; |
|
| DP h,t1,t2; |
DP h,t1,t2; |
| MP d; |
MP d; |
| DMM r0,r; |
DMM r0,r,r1; |
| DPM sp,nf,dpm; |
DPM sp,nf,dpm; |
| DPM *ps; |
DPM *ps; |
| VECT psv; |
VECT psv,psiv; |
| DP **m,*quo; |
DPM quo; |
| struct oEGT eg0,eg1; |
DP *mm; |
| |
NODE *psi; |
| |
NODE n1,n2,n3; |
| |
int p1,p2,p3; |
| |
struct oEGT eg0,eg1,egsp,egnf; |
| extern struct oEGT egred; |
extern struct oEGT egred; |
| |
extern int sch_count,schrec_count,schlast_count; |
| |
|
| |
sch_count = schlast_count= 0; |
| init_eg(&egra); |
init_eg(&egra); |
| |
init_eg(&egsp); |
| |
init_eg(&egnf); |
| nd = BDY(g); |
nd = BDY(g); |
| n = length(nd); |
n = length(nd); |
| MKVECT(psv,n); |
MKVECT(psv,n+1); |
| ps = (DPM *)BDY(psv); |
ps = (DPM *)BDY(psv); |
| for ( i = 0, t = nd; i < n; i++, t = NEXT(t) ) ps[i] = (DPM)BDY(t); |
for ( i = 1, t = nd; i <= n; i++, t = NEXT(t) ) ps[i] = (DPM)BDY(t); |
| nv = ps[0]->nv; |
for ( i = 1, max = 0; i <= n; i++ ) |
| m = (DP **)almat_pointer(n,n); |
if ( (pos=BDY(ps[i])->pos) > max ) max = pos; |
| |
MKVECT(psiv,max+1); |
| |
psi = (NODE *)BDY(psiv); |
| |
for ( i = n; i >= 1; i-- ) { |
| |
pos = BDY(ps[i])->pos; |
| |
MKNODE(nd,(long)i,psi[pos]); psi[pos] = nd; |
| |
} |
| |
nv = ps[1]->nv; |
| |
mm = (DP *)MALLOC((n+1)*sizeof(DP)); |
| b0 = 0; |
b0 = 0; |
| for ( i = 0; i < n; i++ ) { |
get_eg(&eg0); |
| // sp(ps[i],ps[j]) = ti*ps[i]-tj*ps[j] => m[i][j] = ti |
for ( i = 1; i <= max; i++ ) { |
| for ( j = i+1; j < n; j++ ) m[i][j] = dpm_sp_hm(ps[i],ps[j]); |
memset(mm,0,(n+1)*sizeof(DP)); |
| for ( j = i+1; j < n; j++ ) { |
for ( n1 = psi[i]; n1; n1 = NEXT(n1) ) { |
| if ( !m[i][j] ) continue; |
p1 = (long)BDY(n1); |
| for ( h = m[i][j], k = i+1; k < n; k++ ) |
for ( n2 = NEXT(n1); n2; n2 = NEXT(n2) ) { |
| if ( k != j && m[i][k] && dp_redble(m[i][k],h) ) m[i][k] = 0; |
p2 = (long)BDY(n2); |
| } |
mm[p2] = dpm_sp_hm(ps[p1],ps[p2]); |
| for ( j = i+1; j < n; j++ ) { |
} |
| if ( m[i][j] ) { |
for ( n2 = NEXT(n1); n2; n2 = NEXT(n2) ) { |
| dpm_sp(ps[i],ps[j],&sp,&t1,&t2); |
p2 = (long)BDY(n2); |
| quo = dpm_nf_and_quotient(0,sp,psv,&nf,&dn); |
if ( !mm[p2] ) continue; |
| if ( nf ) |
for ( h = mm[p2], n3 = NEXT(n1); n3; n3 = NEXT(n3) ) { |
| error("dpm_schreyer_base : cannot happen"); |
p3 = (long)BDY(n3); |
| NEWDMM(r0); r = r0; |
if ( n3 != n2 && mm[p3] && dp_redble(mm[p3],h) ) mm[p3] = 0; |
| mulp(CO,(P)BDY(t1)->c,dn,(P *)&r->c); r->pos = i+1; r->dl = BDY(t1)->dl; |
|
| NEWDMM(NEXT(r)); r=NEXT(r); |
|
| mulp(CO,(P)BDY(t2)->c,dn,&c); chsgnp(c,(P *)&r->c); r->pos = j+1; r->dl = BDY(t2)->dl; |
|
| if ( quo ) { |
|
| for ( k = 0; k < n; k++ ) { |
|
| if ( !quo[k] ) continue; |
|
| for ( d = BDY(quo[k]); d; d = NEXT(d) ) { |
|
| NEXTDMM(r0,r); chsgnp((P)d->c,(P *)&r->c); r->pos = k+1; r->dl = d->dl; |
|
| } |
|
| } |
|
| } |
} |
| NEXT(r) = 0; |
|
| MKDPM(nv,r0,dpm); // XXX : sugar is not set |
|
| NEXTNODE(b0,b); |
|
| BDY(b) = (pointer)dpm; |
|
| } |
} |
| |
for ( j = p1+1; j <= n; j++ ) { |
| |
if ( mm[j] ) { |
| |
quo = dpm_sp_nf(psv,psiv,p1,j,&nf); |
| |
if ( nf ) |
| |
error("dpm_schreyer_base : cannot happen"); |
| |
NEXTNODE(b0,b); BDY(b) = (pointer)quo; |
| |
} |
| |
} |
| } |
} |
| if ( b0 ) NEXT(b) = 0; |
|
| } |
} |
| for ( t0 = t, nd = BDY(g); nd; nd = NEXT(nd) ) { |
get_eg(&eg1); add_eg(&egsp,&eg0,&eg1); print_eg("SP",&egsp); |
| |
get_eg(&eg0); |
| |
get_eg(&eg1); add_eg(&egnf,&eg0,&eg1); print_eg("NF",&egnf); printf("\n"); |
| |
if ( b0 ) NEXT(b) = 0; |
| |
for ( t0 = 0, nd = BDY(g); nd; nd = NEXT(nd) ) { |
| dpm_ht((DPM)BDY(nd),&dpm); NEXTNODE(t0,t); BDY(t) = (pointer)dpm; |
dpm_ht((DPM)BDY(nd),&dpm); NEXTNODE(t0,t); BDY(t) = (pointer)dpm; |
| } |
} |
| if ( t0 ) NEXT(t) = 0; |
if ( t0 ) NEXT(t) = 0; |
| MKLIST(l,t0); |
MKLIST(l,t0); |
| dmm_stack = push_schreyer_order(l,dmm_stack); |
dmm_stack = push_schreyer_order(l,dmm_stack); |
| for ( t = b0; t; t = NEXT(t) ) { |
// b0 = dpm_sort_list(b0); |
| dpm_sort((DPM)BDY(t),&dpm); |
// get_eg(&eg0); |
| BDY(t) = (pointer)dpm; |
// b0 = dpm_reduceall(b0); |
| |
// get_eg(&eg1); add_eg(&egra,&eg0,&eg1); print_eg("RA",&egra); |
| |
MKLIST(*s,b0); |
| |
// print_eg("red",&egred); printf("\n"); |
| |
printf("sch_count=%d, schlast_count=%d\n",sch_count,schlast_count); |
| |
} |
| |
|
| |
void dpm_list_to_array(LIST g,VECT *psvect,VECT *psindvect) |
| |
{ |
| |
NODE nd,t; |
| |
int n; |
| |
VECT psv,psiv; |
| |
DPM *ps; |
| |
int i,max,pos; |
| |
LIST *psi; |
| |
LIST l; |
| |
Z iz; |
| |
|
| |
nd = BDY(g); |
| |
n = length(nd); |
| |
MKVECT(psv,n+1); |
| |
ps = (DPM *)BDY(psv); |
| |
for ( i = 1, t = nd; i <= n; i++, t = NEXT(t) ) ps[i] = (DPM)BDY(t); |
| |
for ( i = 1, max = 0; i <= n; i++ ) |
| |
if ( (pos=BDY(ps[i])->pos) > max ) max = pos; |
| |
MKVECT(psiv,max+1); |
| |
psi = (LIST *)BDY(psiv); |
| |
for ( i = 0; i <= max; i++ ) { |
| |
MKLIST(l,0); psi[i] = l; |
| } |
} |
| b0 = dpm_sort_list(b0); |
for ( i = n; i >= 1; i-- ) { |
| // get_eg(&eg0); |
pos = BDY(ps[i])->pos; |
| b0 = dpm_reduceall(b0); |
STOZ(i,iz); MKNODE(nd,iz,BDY(psi[pos])); BDY(psi[pos]) = nd; |
| // get_eg(&eg1); add_eg(&egra,&eg0,&eg1); print_eg("RA",&egra); |
} |
| |
*psvect = psv; *psindvect = psiv; |
| |
} |
| |
|
| |
#if 0 |
| |
void dpm_insert_to_zlist(VECT psiv,int pos,int i) |
| |
{ |
| |
LIST l; |
| |
NODE prev,cur,nd; |
| |
int curi; |
| |
Z iz; |
| |
|
| |
l = (LIST)BDY(psiv)[pos]; |
| |
for ( prev = 0, cur = BDY(l); cur; cur = NEXT(cur) ) { |
| |
curi = ZTOS((Q)BDY(cur)); |
| |
if ( curi == i ) |
| |
error("dpm_insert_to_list : invalid index"); |
| |
if ( i < curi ) break; |
| |
prev = cur; |
| |
} |
| |
STOZ(i,iz); MKNODE(nd,iz,cur); |
| |
if ( prev == 0 ) BDY(l) = nd; |
| |
else NEXT(prev) = nd; |
| |
} |
| |
#else |
| |
void dpm_insert_to_zlist(VECT psiv,int pos,int i) |
| |
{ |
| |
LIST l; |
| |
NODE prev,cur,nd; |
| |
int curi; |
| |
Z iz; |
| |
|
| |
l = (LIST)BDY(psiv)[pos]; |
| |
for ( prev = 0, cur = BDY(l); cur; cur = NEXT(cur) ) { |
| |
curi = ZTOS((Q)BDY(cur)); |
| |
if ( curi == i ) |
| |
error("dpm_insert_to_list : invalid index"); |
| |
prev = cur; |
| |
} |
| |
STOZ(i,iz); MKNODE(nd,iz,cur); |
| |
if ( prev == 0 ) BDY(l) = nd; |
| |
else NEXT(prev) = nd; |
| |
} |
| |
#endif |
| |
|
| |
void dpm_schreyer_base_zlist(LIST g,LIST *s) |
| |
{ |
| |
NODE nd,t0,t,b0,b; |
| |
int n,i,j,k,nv,max,pos; |
| |
LIST l; |
| |
DP h,t1,t2; |
| |
MP d; |
| |
DMM r0,r,r1; |
| |
DPM sp,nf,dpm; |
| |
DPM *ps; |
| |
VECT psv,psiv; |
| |
DPM quo; |
| |
DP *mm; |
| |
LIST *psi; |
| |
NODE n1,n2,n3; |
| |
int p1,p2,p3; |
| |
Z iz; |
| |
struct oEGT eg0,eg1,egsp,egnf; |
| |
extern struct oEGT egred; |
| |
extern int sch_count,schrec_count,schlast_count; |
| |
|
| |
sch_count = schlast_count= 0; |
| |
init_eg(&egra); |
| |
init_eg(&egsp); |
| |
init_eg(&egnf); |
| |
dpm_list_to_array(g,&psv,&psiv); |
| |
ps = (DPM *)BDY(psv); |
| |
psi = (LIST *)BDY(psiv); |
| |
nv = ps[1]->nv; |
| |
n = psv->len-1; |
| |
max = psiv->len-1; |
| |
mm = (DP *)MALLOC((n+1)*sizeof(DP)); |
| |
b0 = 0; |
| |
get_eg(&eg0); |
| |
for ( i = 1; i <= max; i++ ) { |
| |
memset(mm,0,(n+1)*sizeof(DP)); |
| |
for ( n1 = BDY((LIST)psi[i]); n1; n1 = NEXT(n1) ) { |
| |
p1 = ZTOS((Q)BDY(n1)); |
| |
for ( n2 = NEXT(n1); n2; n2 = NEXT(n2) ) { |
| |
p2 = ZTOS((Q)BDY(n2)); |
| |
mm[p2] = dpm_sp_hm(ps[p1],ps[p2]); |
| |
} |
| |
for ( n2 = NEXT(n1); n2; n2 = NEXT(n2) ) { |
| |
p2 = ZTOS((Q)BDY(n2)); |
| |
if ( !mm[p2] ) continue; |
| |
for ( h = mm[p2], n3 = NEXT(n1); n3; n3 = NEXT(n3) ) { |
| |
p3 = ZTOS((Q)BDY(n3)); |
| |
if ( n3 != n2 && mm[p3] && dp_redble(mm[p3],h) ) mm[p3] = 0; |
| |
} |
| |
} |
| |
for ( j = p1+1; j <= n; j++ ) { |
| |
if ( mm[j] ) { |
| |
quo = dpm_sp_nf_zlist(psv,psiv,p1,j,0,&nf); |
| |
if ( nf ) |
| |
error("dpm_schreyer_base : cannot happen"); |
| |
NEXTNODE(b0,b); BDY(b) = (pointer)quo; |
| |
} |
| |
} |
| |
} |
| |
} |
| |
get_eg(&eg1); add_eg(&egsp,&eg0,&eg1); print_eg("SP",&egsp); |
| |
get_eg(&eg0); |
| |
get_eg(&eg1); add_eg(&egnf,&eg0,&eg1); print_eg("NF",&egnf); printf("\n"); |
| |
if ( b0 ) NEXT(b) = 0; |
| |
for ( t0 = 0, nd = BDY(g); nd; nd = NEXT(nd) ) { |
| |
dpm_ht((DPM)BDY(nd),&dpm); NEXTNODE(t0,t); BDY(t) = (pointer)dpm; |
| |
} |
| |
if ( t0 ) NEXT(t) = 0; |
| |
MKLIST(l,t0); |
| |
dmm_stack = push_schreyer_order(l,dmm_stack); |
| |
// b0 = dpm_sort_list(b0); |
| |
// get_eg(&eg0); |
| |
// b0 = dpm_reduceall(b0); |
| |
// get_eg(&eg1); add_eg(&egra,&eg0,&eg1); print_eg("RA",&egra); |
| MKLIST(*s,b0); |
MKLIST(*s,b0); |
| // print_eg("red",&egred); printf("\n"); |
// print_eg("red",&egred); printf("\n"); |
| |
printf("sch_count=%d, schlast_count=%d\n",sch_count,schlast_count); |
| } |
} |
| |
|
| |
static int compdp_nv; |
| |
|
| |
int compdp_revgradlex(DP *a,DP *b) |
| |
{ |
| |
return -cmpdl_revgradlex(compdp_nv,BDY(*a)->dl,BDY(*b)->dl); |
| |
} |
| |
|
| |
int compdp_lex(DP *a,DP *b) |
| |
{ |
| |
return -cmpdl_lex(compdp_nv,BDY(*a)->dl,BDY(*b)->dl); |
| |
} |
| |
|
| |
DMMstack_array dpm_schreyer_frame(NODE g,int lex) |
| |
{ |
| |
LIST l; |
| |
NODE nd,in,b0,b,n1,n2,n3,t; |
| |
NODE *psi; |
| |
long p1,p2,p3; |
| |
int nv,n,i,j,k,max,pos,level; |
| |
DMMstack s,s1; |
| |
DMM m1,m0,dmm; |
| |
MP mp; |
| |
DP dp,h; |
| |
DP *m,*m2; |
| |
DPM dpm,dpm0,dpm1; |
| |
VECT psv,psiv; |
| |
DPM *ps; |
| |
DMMstack_array dmmstack_array; |
| |
|
| |
nd = g; |
| |
compdp_nv = nv = ((DPM)BDY(nd))->nv; |
| |
s = 0; |
| |
level = 0; |
| |
while ( 1 ) { |
| |
/* store the current nd to a DMMstack */ |
| |
n = length(nd); |
| |
NEWDMMstack(s1); |
| |
MKLIST(l,nd); s1->obj = l; |
| |
s1->rank = n; |
| |
s1->in = (DMM *)MALLOC((n+1)*sizeof(DMM)); |
| |
s1->sum = (DMM *)MALLOC((n+1)*sizeof(DMM)); |
| |
NEXT(s1) = s; |
| |
if ( s ) { |
| |
for ( i = 1, in = nd; i <= n; i++, in = NEXT(in) ) { |
| |
m1 = s1->in[i] = BDY((DPM)BDY(in)); |
| |
NEWMP(mp); mp->dl = m1->dl; mp->c = m1->c; NEXT(mp) = 0; |
| |
MKDP(nv,mp,dp); dp->sugar = mp->dl->td; |
| |
m0 = s->sum[m1->pos]; MKDPM(nv,m0,dpm0); |
| |
mulobjdpm(CO,(Obj)dp,dpm0,&dpm1); |
| |
s1->sum[i] = BDY(dpm1); |
| |
} |
| |
} else { |
| |
for ( i = 1, in = nd; i <= n; i++, in = NEXT(in) ) { |
| |
m0 = BDY((DPM)BDY(in)); |
| |
NEWDMM(m1); *m1 = *m0; m1->c = (Obj)ONE; NEXT(m1) = 0; |
| |
s1->sum[i] = s1->in[i] = m1; |
| |
} |
| |
} |
| |
s = s1; |
| |
level++; |
| |
if ( DP_Print ) printf("level=%d,len=%d\n",level,n); |
| |
|
| |
/* create new list */ |
| |
MKVECT(psv,n+1); |
| |
ps = (DPM *)BDY(psv); |
| |
for ( i = 1, t = nd; i <= n; i++, t = NEXT(t) ) ps[i] = (DPM)BDY(t); |
| |
for ( i = 1, max = 0; i <= n; i++ ) |
| |
if ( (pos=BDY(ps[i])->pos) > max ) max = pos; |
| |
MKVECT(psiv,max+1); |
| |
psi = (NODE *)BDY(psiv); |
| |
for ( i = n; i >= 1; i-- ) { |
| |
pos = BDY(ps[i])->pos; |
| |
MKNODE(nd,(long)i,psi[pos]); psi[pos] = nd; |
| |
} |
| |
m = (DP *)MALLOC((n+1)*sizeof(DP)); |
| |
m2 = (DP *)MALLOC((n+1)*sizeof(DP)); |
| |
b0 = 0; |
| |
for ( i = 1; i <= max; i++ ) { |
| |
for ( n1 = psi[i]; n1; n1 = NEXT(n1) ) { |
| |
bzero(m,(n+1)*sizeof(DP)); |
| |
p1 = (long)BDY(n1); |
| |
for ( n2 = NEXT(n1); n2; n2 = NEXT(n2) ) { |
| |
p2 = (long)BDY(n2); |
| |
h = dpm_sp_hm(ps[p1],ps[p2]); |
| |
for ( n3 = NEXT(n1); n3 != n2; n3 = NEXT(n3) ) { |
| |
p3 = (long)BDY(n3); |
| |
if ( m[p3] ) { |
| |
if ( dp_redble(h,m[p3]) ) { |
| |
h = 0; break; |
| |
} |
| |
if ( dp_redble(m[p3],h) ) m[p3] = 0; |
| |
} |
| |
} |
| |
if ( h ) m[p2] = h; |
| |
} |
| |
if ( lex ) { |
| |
// compress m to m2 |
| |
for ( j = 0, n2 = NEXT(n1); n2; n2 = NEXT(n2) ) { |
| |
p2 = (long)BDY(n2); |
| |
if ( m[p2] ) m2[j++] = m[p2]; |
| |
} |
| |
qsort(m2,j,sizeof(DP),(int (*)(const void *,const void *))compdp_lex); |
| |
for ( k = 0; k < j; k++ ) { |
| |
NEWDMM(dmm); dmm->dl = BDY(m2[k])->dl; dmm->pos = p1; dmm->c = (Obj)ONE; |
| |
MKDPM(nv,dmm,dpm); |
| |
NEXTNODE(b0,b); BDY(b) = (pointer)dpm; |
| |
} |
| |
} else { |
| |
for ( n2 = NEXT(n1); n2; n2 = NEXT(n2) ) { |
| |
p2 = (long)BDY(n2); |
| |
if ( m[p2] ) { |
| |
NEWDMM(dmm); dmm->dl = BDY(m[p2])->dl; dmm->pos = p1; dmm->c = (Obj)ONE; |
| |
MKDPM(nv,dmm,dpm); |
| |
NEXTNODE(b0,b); BDY(b) = (pointer)dpm; |
| |
} |
| |
} |
| |
} |
| |
} |
| |
} |
| |
if ( !b0 ) { |
| |
NEWDMMstack_array(dmmstack_array); |
| |
dmmstack_array->len = level; |
| |
dmmstack_array->body = (DMMstack *)MALLOC(level*sizeof(DMMstack)); |
| |
for ( i = level-1, s1 = s; i >= 0; i--, s1 = NEXT(s1) ) |
| |
dmmstack_array->body[i] = s1; |
| |
return dmmstack_array; |
| |
} else { |
| |
NEXT(b) = 0; |
| |
nd = b0; |
| |
} |
| |
} |
| |
} |
| |
|
| |
int sch_count,schlast_count; |
| |
|
| int compdmm_schreyer(int n,DMM m1,DMM m2) |
int compdmm_schreyer(int n,DMM m1,DMM m2) |
| { |
{ |
| int pos1,pos2,t; |
int pos1,pos2,t,npos1,npos2; |
| DMM *in; |
DMM *in,*sum; |
| DMMstack s; |
DMMstack s; |
| static DL d1=0,d2=0; |
static DL d1=0,d2=0; |
| static int dlen=0; |
static int dlen=0; |
| |
|
| pos1 = m1->pos; pos2 = m2->pos; |
sch_count++; |
| if ( pos1 == pos2 ) return (*cmpdl)(n,m1->dl,m2->dl); |
pos1 = m1->pos; pos2 = m2->pos; |
| if ( n > dlen ) { |
if ( pos1 == pos2 ) return (*cmpdl)(n,m1->dl,m2->dl); |
| NEWDL(d1,n); NEWDL(d2,n); dlen = n; |
if ( n > dlen ) { |
| } |
NEWDL(d1,n); NEWDL(d2,n); dlen = n; |
| _copydl(n,m1->dl,d1); |
} |
| _copydl(n,m2->dl,d2); |
sum = dmm_stack->sum; |
| for ( s = dmm_stack; s; s = NEXT(s) ) { |
_adddl(n,m1->dl,sum[pos1]->dl,d1); |
| in = s->in; |
_adddl(n,m2->dl,sum[pos2]->dl,d2); |
| _addtodl(n,in[pos1]->dl,d1); |
t = (*cmpdl)(n,d1,d2); |
| _addtodl(n,in[pos2]->dl,d2); |
if ( sum[pos1]->pos == sum[pos2]->pos && t == 0 ) { |
| if ( in[pos1]->pos == in[pos2]->pos && _eqdl(n,d1,d2)) { |
for ( s = dmm_stack; s; s = NEXT(s) ) { |
| if ( pos1 < pos2 ) return 1; |
in = s->in; |
| else if ( pos1 > pos2 ) return -1; |
npos1 = in[pos1]->pos; |
| else return 0; |
npos2 = in[pos2]->pos; |
| } |
if ( npos1 == npos2 ) break; |
| pos1 = in[pos1]->pos; |
else { |
| pos2 = in[pos2]->pos; |
pos1 = npos1; |
| if ( pos1 == pos2 ) return (*cmpdl)(n,d1,d2); |
pos2 = npos2; |
| } |
} |
| // comparison by the bottom order |
} |
| LAST: |
// (pos1,pos2) = the last pair s.t. pos1 != pos2 |
| |
// simply compare pos1 and pos2 |
| |
if ( pos1 < pos2 ) return 1; |
| |
else if ( pos1 > pos2 ) return -1; |
| |
} else { |
| |
schlast_count++; |
| |
pos1 = sum[pos1]->pos; |
| |
pos2 = sum[pos2]->pos; |
| |
if ( dpm_base_ordtype == 1 ) { |
| |
if ( pos1 < pos2 ) return 1; |
| |
else if ( pos1 > pos2 ) return -1; |
| |
else return t; |
| |
} else { |
| |
if ( t ) return t; |
| |
else if ( pos1 < pos2 ) return 1; |
| |
else if ( pos1 > pos2 ) return -1; |
| |
else return 0; |
| |
} |
| |
} |
| |
/* XXX */ |
| |
return 0; |
| |
} |
| |
|
| |
int compdmm_schreyer_old(int n,DMM m1,DMM m2) |
| |
{ |
| |
int pos1,pos2,t,npos1,npos2; |
| |
DMM *in,*sum; |
| |
DMMstack s; |
| |
static DL d1=0,d2=0; |
| |
static int dlen=0; |
| |
|
| |
sch_count++; |
| |
pos1 = m1->pos; pos2 = m2->pos; |
| |
if ( pos1 == pos2 ) return (*cmpdl)(n,m1->dl,m2->dl); |
| |
if ( n > dlen ) { |
| |
NEWDL(d1,n); NEWDL(d2,n); dlen = n; |
| |
} |
| |
sum = dmm_stack->sum; |
| |
_copydl(n,m1->dl,d1); |
| |
_copydl(n,m2->dl,d2); |
| |
for ( s = dmm_stack; s; s = NEXT(s) ) { |
| |
in = s->in; |
| |
_addtodl(n,in[pos1]->dl,d1); |
| |
_addtodl(n,in[pos2]->dl,d2); |
| |
if ( in[pos1]->pos == in[pos2]->pos && _eqdl(n,d1,d2)) { |
| |
if ( pos1 < pos2 ) return 1; |
| |
else if ( pos1 > pos2 ) return -1; |
| |
else return 0; |
| |
} |
| |
pos1 = in[pos1]->pos; |
| |
pos2 = in[pos2]->pos; |
| |
if ( pos1 == pos2 ) return (*cmpdl)(n,d1,d2); |
| |
} |
| if ( dpm_base_ordtype == 1 ) { |
if ( dpm_base_ordtype == 1 ) { |
| if ( pos1 < pos2 ) return 1; |
if ( pos1 < pos2 ) return 1; |
| else if ( pos1 > pos2 ) return -1; |
else if ( pos1 > pos2 ) return -1; |
|
|
| } |
} |
| } |
} |
| |
|
| |
extern int NaiveSchreyer; |
| |
|
| int compdmm(int n,DMM m1,DMM m2) |
int compdmm(int n,DMM m1,DMM m2) |
| { |
{ |
| int t; |
int t,t1; |
| |
int *base_ord; |
| |
|
| switch ( dpm_ordtype ) { |
switch ( dpm_ordtype ) { |
| case 0: /* TOP ord->pos */ |
case 0: /* TOP ord->pos */ |
| Line 2895 int compdmm(int n,DMM m1,DMM m2) |
|
| Line 3357 int compdmm(int n,DMM m1,DMM m2) |
|
| else if ( m1->pos > m2->pos ) return -1; |
else if ( m1->pos > m2->pos ) return -1; |
| else return (*cmpdl)(n,m1->dl,m2->dl); |
else return (*cmpdl)(n,m1->dl,m2->dl); |
| case 3: /* Schreyer */ |
case 3: /* Schreyer */ |
| return compdmm_schreyer(n,m1,m2); |
if ( NaiveSchreyer ) |
| |
t = compdmm_schreyer_old(n,m1,m2); |
| |
else |
| |
t = compdmm_schreyer(n,m1,m2); |
| |
return t; |
| |
case 4: /* POT with base_ord */ |
| |
base_ord = dp_current_spec->module_base_ord; |
| |
if ( base_ord[m1->pos] < base_ord[m2->pos] ) return 1; |
| |
else if ( base_ord[m1->pos] > base_ord[m2->pos] ) return -1; |
| |
else return (*cmpdl)(n,m1->dl,m2->dl); |
| default: |
default: |
| error("compdmm : invalid dpm_ordtype"); |
error("compdmm : invalid dpm_ordtype"); |
| |
return 0; |
| } |
} |
| } |
} |
| |
|
| Line 3153 int compdpm(VL vl,DPM p1,DPM p2) |
|
| Line 3625 int compdpm(VL vl,DPM p1,DPM p2) |
|
| } |
} |
| } |
} |
| |
|
| |
void dpm_removecont2(DPM p1,DPM p2,DPM *r1p,DPM *r2p,Z *contp); |
| |
|
| // p = ...+c*<<0,...0:pos>>+... |
// p = ...+c*<<0,...0:pos>>+... |
| DPM dpm_eliminate_term(DPM a,DPM p,Obj c,int pos) |
DPM dpm_eliminate_term(DPM a,DPM p,Obj c,int pos) |
| { |
{ |
| MP d0,d; |
MP d0,d; |
| |
DL dl; |
| DMM m; |
DMM m; |
| DP f; |
DP f; |
| DPM a1,p1,r; |
DPM a1,p1,r,r1,dmy; |
| |
Z dmyz; |
| |
|
| if ( !a ) return 0; |
if ( !a ) return 0; |
| d0 = 0; |
d0 = 0; |
| for ( m = BDY(a); m; m = NEXT(m) ) |
for ( m = BDY(a); m; m = NEXT(m) ) |
| if ( m->pos == pos ) { |
if ( m->pos == pos ) { |
| NEXTMP(d0,d); d->dl = m->dl; arf_chsgn(m->c,&d->c); |
NEXTMP(d0,d); |
| |
arf_chsgn(m->c,&d->c); |
| |
if ( !dp_current_spec || !dp_current_spec->module_top_weight ) |
| |
d->dl = m->dl; |
| |
else { |
| |
NEWDL(dl,NV(a)); |
| |
_copydl(NV(a),m->dl,dl); |
| |
dl->td -= dp_current_spec->module_top_weight[pos-1]; |
| |
d->dl = dl; |
| |
} |
| } |
} |
| if ( d0 ) { |
if ( d0 ) { |
| NEXT(d) = 0; MKDP(NV(a),d0,f); |
NEXT(d) = 0; MKDP(NV(a),d0,f); |
| mulcdpm(CO,c,a,&a1); |
mulcdpm(CO,c,a,&a1); |
| mulobjdpm(CO,(Obj)f,p,&p1); |
mulobjdpm(CO,(Obj)f,p,&p1); |
| adddpm(CO,a1,p1,&r); |
adddpm(CO,a1,p1,&r); |
| return r; |
dpm_removecont2(0,r,&dmy,&r1,&dmyz); |
| |
return r1; |
| } else |
} else |
| return a; |
return a; |
| } |
} |
| Line 3198 DPM dpm_compress(DPM p,int *tab) |
|
| Line 3684 DPM dpm_compress(DPM p,int *tab) |
|
| } |
} |
| |
|
| // input : s, s = syz(m) output simplified s, m |
// input : s, s = syz(m) output simplified s, m |
| void dpm_simplify_syz(LIST s,LIST m,LIST *s1,LIST *m1) |
// assuming the term order is POT |
| |
void dpm_simplify_syz(LIST s,LIST m,LIST *s1,LIST *m1,LIST *w1) |
| { |
{ |
| int lm,ls,i,j,k,pos,nv; |
int lm,ls,i,j,k,pos,nv; |
| DPM *am,*as; |
DPM *am,*as; |
| DPM p; |
DPM p; |
| DMM d; |
DMM d; |
| Obj c; |
Obj c; |
| int *tab,*dd; |
Z q; |
| |
int *tab,*dd,*new_w; |
| NODE t,t1; |
NODE t,t1; |
| |
|
| lm = length(BDY(m)); |
lm = length(BDY(m)); |
| Line 3219 void dpm_simplify_syz(LIST s,LIST m,LIST *s1,LIST *m1) |
|
| Line 3707 void dpm_simplify_syz(LIST s,LIST m,LIST *s1,LIST *m1) |
|
| p = as[i]; |
p = as[i]; |
| if ( p == 0 ) continue; |
if ( p == 0 ) continue; |
| nv = NV(p); |
nv = NV(p); |
| for ( d = BDY(p); d; d = NEXT(d) ) { |
for ( d = BDY(p); d; ) { |
| dd = d->dl->d; |
dd = d->dl->d; |
| for ( k = 0; k < nv; k++ ) if ( dd[k] ) break; |
for ( k = 0; k < nv; k++ ) if ( dd[k] ) break; |
| if ( k == nv ) break; |
if ( k == nv ) break; |
| |
pos = d->pos; |
| |
while ( d && d->pos == pos ) d = NEXT(d); |
| } |
} |
| if ( d ) { |
if ( d ) { |
| c = d->c; pos = d->pos; |
c = d->c; pos = d->pos; |
| Line 3241 void dpm_simplify_syz(LIST s,LIST m,LIST *s1,LIST *m1) |
|
| Line 3731 void dpm_simplify_syz(LIST s,LIST m,LIST *s1,LIST *m1) |
|
| tab = (int *)MALLOC((lm+1)*sizeof(int)); |
tab = (int *)MALLOC((lm+1)*sizeof(int)); |
| for ( j = 0, i = 1; i <= lm; i++ ) { |
for ( j = 0, i = 1; i <= lm; i++ ) { |
| if ( am[i] ) { j++; tab[i] = j; } |
if ( am[i] ) { j++; tab[i] = j; } |
| else tab[i] = 0; |
else { tab[i] = 0; } |
| } |
} |
| t = 0; |
t = 0; |
| for ( i = ls-1; i >= 0; i-- ) |
for ( i = ls-1; i >= 0; i-- ) |
| Line 3250 void dpm_simplify_syz(LIST s,LIST m,LIST *s1,LIST *m1) |
|
| Line 3740 void dpm_simplify_syz(LIST s,LIST m,LIST *s1,LIST *m1) |
|
| MKNODE(t1,(pointer)p,t); t = t1; |
MKNODE(t1,(pointer)p,t); t = t1; |
| } |
} |
| MKLIST(*s1,t); |
MKLIST(*s1,t); |
| |
|
| |
if ( dp_current_spec && dp_current_spec->module_top_weight ) { |
| |
new_w = (int *)MALLOC(j*sizeof(int)); |
| |
for ( j = 0, i = 1; i <= lm; i++ ) |
| |
if ( tab[i] ) { new_w[j++] = dp_current_spec->module_top_weight[i-1]; } |
| |
t = 0; |
| |
for ( i = j-1; i >= 0; i-- ) { |
| |
STOZ(new_w[i],q); |
| |
MKNODE(t1,q,t); t = t1; |
| |
} |
| |
} else |
| |
t = 0; |
| |
MKLIST(*w1,t); |
| |
|
| t = 0; |
t = 0; |
| for ( i = lm; i >= 1; i-- ) |
for ( i = lm; i >= 1; i-- ) |
| if ( am[i] ) { |
if ( am[i] ) { |