python: remove redundant is_string_type
[isl.git] / isl_aff.c
blob3f6022d5c706084151fe75feee051b3862d9e31a
1 /*
2 * Copyright 2011 INRIA Saclay
3 * Copyright 2011 Sven Verdoolaege
4 * Copyright 2012-2014 Ecole Normale Superieure
5 * Copyright 2014 INRIA Rocquencourt
7 * Use of this software is governed by the MIT license
9 * Written by Sven Verdoolaege, INRIA Saclay - Ile-de-France,
10 * Parc Club Orsay Universite, ZAC des vignes, 4 rue Jacques Monod,
11 * 91893 Orsay, France
12 * and Ecole Normale Superieure, 45 rue d’Ulm, 75230 Paris, France
13 * and Inria Paris - Rocquencourt, Domaine de Voluceau - Rocquencourt,
14 * B.P. 105 - 78153 Le Chesnay, France
17 #include <isl_ctx_private.h>
18 #define ISL_DIM_H
19 #include <isl_map_private.h>
20 #include <isl_union_map_private.h>
21 #include <isl_aff_private.h>
22 #include <isl_space_private.h>
23 #include <isl_local_space_private.h>
24 #include <isl_vec_private.h>
25 #include <isl_mat_private.h>
26 #include <isl/constraint.h>
27 #include <isl_seq.h>
28 #include <isl/set.h>
29 #include <isl_val_private.h>
30 #include <isl/deprecated/aff_int.h>
31 #include <isl_config.h>
33 #undef BASE
34 #define BASE aff
36 #include <isl_list_templ.c>
38 #undef BASE
39 #define BASE pw_aff
41 #include <isl_list_templ.c>
43 #undef BASE
44 #define BASE union_pw_aff
46 #include <isl_list_templ.c>
48 #undef BASE
49 #define BASE union_pw_multi_aff
51 #include <isl_list_templ.c>
53 __isl_give isl_aff *isl_aff_alloc_vec(__isl_take isl_local_space *ls,
54 __isl_take isl_vec *v)
56 isl_aff *aff;
58 if (!ls || !v)
59 goto error;
61 aff = isl_calloc_type(v->ctx, struct isl_aff);
62 if (!aff)
63 goto error;
65 aff->ref = 1;
66 aff->ls = ls;
67 aff->v = v;
69 return aff;
70 error:
71 isl_local_space_free(ls);
72 isl_vec_free(v);
73 return NULL;
76 __isl_give isl_aff *isl_aff_alloc(__isl_take isl_local_space *ls)
78 isl_ctx *ctx;
79 isl_vec *v;
80 unsigned total;
82 if (!ls)
83 return NULL;
85 ctx = isl_local_space_get_ctx(ls);
86 if (!isl_local_space_divs_known(ls))
87 isl_die(ctx, isl_error_invalid, "local space has unknown divs",
88 goto error);
89 if (!isl_local_space_is_set(ls))
90 isl_die(ctx, isl_error_invalid,
91 "domain of affine expression should be a set",
92 goto error);
94 total = isl_local_space_dim(ls, isl_dim_all);
95 v = isl_vec_alloc(ctx, 1 + 1 + total);
96 return isl_aff_alloc_vec(ls, v);
97 error:
98 isl_local_space_free(ls);
99 return NULL;
102 __isl_give isl_aff *isl_aff_zero_on_domain(__isl_take isl_local_space *ls)
104 isl_aff *aff;
106 aff = isl_aff_alloc(ls);
107 if (!aff)
108 return NULL;
110 isl_int_set_si(aff->v->el[0], 1);
111 isl_seq_clr(aff->v->el + 1, aff->v->size - 1);
113 return aff;
116 /* Return a piecewise affine expression defined on the specified domain
117 * that is equal to zero.
119 __isl_give isl_pw_aff *isl_pw_aff_zero_on_domain(__isl_take isl_local_space *ls)
121 return isl_pw_aff_from_aff(isl_aff_zero_on_domain(ls));
124 /* Return an affine expression defined on the specified domain
125 * that represents NaN.
127 __isl_give isl_aff *isl_aff_nan_on_domain(__isl_take isl_local_space *ls)
129 isl_aff *aff;
131 aff = isl_aff_alloc(ls);
132 if (!aff)
133 return NULL;
135 isl_seq_clr(aff->v->el, aff->v->size);
137 return aff;
140 /* Return a piecewise affine expression defined on the specified domain
141 * that represents NaN.
143 __isl_give isl_pw_aff *isl_pw_aff_nan_on_domain(__isl_take isl_local_space *ls)
145 return isl_pw_aff_from_aff(isl_aff_nan_on_domain(ls));
148 /* Return an affine expression that is equal to "val" on
149 * domain local space "ls".
151 __isl_give isl_aff *isl_aff_val_on_domain(__isl_take isl_local_space *ls,
152 __isl_take isl_val *val)
154 isl_aff *aff;
156 if (!ls || !val)
157 goto error;
158 if (!isl_val_is_rat(val))
159 isl_die(isl_val_get_ctx(val), isl_error_invalid,
160 "expecting rational value", goto error);
162 aff = isl_aff_alloc(isl_local_space_copy(ls));
163 if (!aff)
164 goto error;
166 isl_seq_clr(aff->v->el + 2, aff->v->size - 2);
167 isl_int_set(aff->v->el[1], val->n);
168 isl_int_set(aff->v->el[0], val->d);
170 isl_local_space_free(ls);
171 isl_val_free(val);
172 return aff;
173 error:
174 isl_local_space_free(ls);
175 isl_val_free(val);
176 return NULL;
179 /* Return an affine expression that is equal to the specified dimension
180 * in "ls".
182 __isl_give isl_aff *isl_aff_var_on_domain(__isl_take isl_local_space *ls,
183 enum isl_dim_type type, unsigned pos)
185 isl_space *space;
186 isl_aff *aff;
188 if (!ls)
189 return NULL;
191 space = isl_local_space_get_space(ls);
192 if (!space)
193 goto error;
194 if (isl_space_is_map(space))
195 isl_die(isl_space_get_ctx(space), isl_error_invalid,
196 "expecting (parameter) set space", goto error);
197 if (pos >= isl_local_space_dim(ls, type))
198 isl_die(isl_space_get_ctx(space), isl_error_invalid,
199 "position out of bounds", goto error);
201 isl_space_free(space);
202 aff = isl_aff_alloc(ls);
203 if (!aff)
204 return NULL;
206 pos += isl_local_space_offset(aff->ls, type);
208 isl_int_set_si(aff->v->el[0], 1);
209 isl_seq_clr(aff->v->el + 1, aff->v->size - 1);
210 isl_int_set_si(aff->v->el[1 + pos], 1);
212 return aff;
213 error:
214 isl_local_space_free(ls);
215 isl_space_free(space);
216 return NULL;
219 /* Return a piecewise affine expression that is equal to
220 * the specified dimension in "ls".
222 __isl_give isl_pw_aff *isl_pw_aff_var_on_domain(__isl_take isl_local_space *ls,
223 enum isl_dim_type type, unsigned pos)
225 return isl_pw_aff_from_aff(isl_aff_var_on_domain(ls, type, pos));
228 __isl_give isl_aff *isl_aff_copy(__isl_keep isl_aff *aff)
230 if (!aff)
231 return NULL;
233 aff->ref++;
234 return aff;
237 __isl_give isl_aff *isl_aff_dup(__isl_keep isl_aff *aff)
239 if (!aff)
240 return NULL;
242 return isl_aff_alloc_vec(isl_local_space_copy(aff->ls),
243 isl_vec_copy(aff->v));
246 __isl_give isl_aff *isl_aff_cow(__isl_take isl_aff *aff)
248 if (!aff)
249 return NULL;
251 if (aff->ref == 1)
252 return aff;
253 aff->ref--;
254 return isl_aff_dup(aff);
257 __isl_null isl_aff *isl_aff_free(__isl_take isl_aff *aff)
259 if (!aff)
260 return NULL;
262 if (--aff->ref > 0)
263 return NULL;
265 isl_local_space_free(aff->ls);
266 isl_vec_free(aff->v);
268 free(aff);
270 return NULL;
273 isl_ctx *isl_aff_get_ctx(__isl_keep isl_aff *aff)
275 return aff ? isl_local_space_get_ctx(aff->ls) : NULL;
278 /* Return a hash value that digests "aff".
280 uint32_t isl_aff_get_hash(__isl_keep isl_aff *aff)
282 uint32_t hash, ls_hash, v_hash;
284 if (!aff)
285 return 0;
287 hash = isl_hash_init();
288 ls_hash = isl_local_space_get_hash(aff->ls);
289 isl_hash_hash(hash, ls_hash);
290 v_hash = isl_vec_get_hash(aff->v);
291 isl_hash_hash(hash, v_hash);
293 return hash;
296 /* Externally, an isl_aff has a map space, but internally, the
297 * ls field corresponds to the domain of that space.
299 int isl_aff_dim(__isl_keep isl_aff *aff, enum isl_dim_type type)
301 if (!aff)
302 return 0;
303 if (type == isl_dim_out)
304 return 1;
305 if (type == isl_dim_in)
306 type = isl_dim_set;
307 return isl_local_space_dim(aff->ls, type);
310 /* Return the position of the dimension of the given type and name
311 * in "aff".
312 * Return -1 if no such dimension can be found.
314 int isl_aff_find_dim_by_name(__isl_keep isl_aff *aff, enum isl_dim_type type,
315 const char *name)
317 if (!aff)
318 return -1;
319 if (type == isl_dim_out)
320 return -1;
321 if (type == isl_dim_in)
322 type = isl_dim_set;
323 return isl_local_space_find_dim_by_name(aff->ls, type, name);
326 __isl_give isl_space *isl_aff_get_domain_space(__isl_keep isl_aff *aff)
328 return aff ? isl_local_space_get_space(aff->ls) : NULL;
331 __isl_give isl_space *isl_aff_get_space(__isl_keep isl_aff *aff)
333 isl_space *space;
334 if (!aff)
335 return NULL;
336 space = isl_local_space_get_space(aff->ls);
337 space = isl_space_from_domain(space);
338 space = isl_space_add_dims(space, isl_dim_out, 1);
339 return space;
342 __isl_give isl_local_space *isl_aff_get_domain_local_space(
343 __isl_keep isl_aff *aff)
345 return aff ? isl_local_space_copy(aff->ls) : NULL;
348 __isl_give isl_local_space *isl_aff_get_local_space(__isl_keep isl_aff *aff)
350 isl_local_space *ls;
351 if (!aff)
352 return NULL;
353 ls = isl_local_space_copy(aff->ls);
354 ls = isl_local_space_from_domain(ls);
355 ls = isl_local_space_add_dims(ls, isl_dim_out, 1);
356 return ls;
359 /* Externally, an isl_aff has a map space, but internally, the
360 * ls field corresponds to the domain of that space.
362 const char *isl_aff_get_dim_name(__isl_keep isl_aff *aff,
363 enum isl_dim_type type, unsigned pos)
365 if (!aff)
366 return NULL;
367 if (type == isl_dim_out)
368 return NULL;
369 if (type == isl_dim_in)
370 type = isl_dim_set;
371 return isl_local_space_get_dim_name(aff->ls, type, pos);
374 __isl_give isl_aff *isl_aff_reset_domain_space(__isl_take isl_aff *aff,
375 __isl_take isl_space *dim)
377 aff = isl_aff_cow(aff);
378 if (!aff || !dim)
379 goto error;
381 aff->ls = isl_local_space_reset_space(aff->ls, dim);
382 if (!aff->ls)
383 return isl_aff_free(aff);
385 return aff;
386 error:
387 isl_aff_free(aff);
388 isl_space_free(dim);
389 return NULL;
392 /* Reset the space of "aff". This function is called from isl_pw_templ.c
393 * and doesn't know if the space of an element object is represented
394 * directly or through its domain. It therefore passes along both.
396 __isl_give isl_aff *isl_aff_reset_space_and_domain(__isl_take isl_aff *aff,
397 __isl_take isl_space *space, __isl_take isl_space *domain)
399 isl_space_free(space);
400 return isl_aff_reset_domain_space(aff, domain);
403 /* Reorder the coefficients of the affine expression based
404 * on the given reodering.
405 * The reordering r is assumed to have been extended with the local
406 * variables.
408 static __isl_give isl_vec *vec_reorder(__isl_take isl_vec *vec,
409 __isl_take isl_reordering *r, int n_div)
411 isl_vec *res;
412 int i;
414 if (!vec || !r)
415 goto error;
417 res = isl_vec_alloc(vec->ctx,
418 2 + isl_space_dim(r->dim, isl_dim_all) + n_div);
419 if (!res)
420 goto error;
421 isl_seq_cpy(res->el, vec->el, 2);
422 isl_seq_clr(res->el + 2, res->size - 2);
423 for (i = 0; i < r->len; ++i)
424 isl_int_set(res->el[2 + r->pos[i]], vec->el[2 + i]);
426 isl_reordering_free(r);
427 isl_vec_free(vec);
428 return res;
429 error:
430 isl_vec_free(vec);
431 isl_reordering_free(r);
432 return NULL;
435 /* Reorder the dimensions of the domain of "aff" according
436 * to the given reordering.
438 __isl_give isl_aff *isl_aff_realign_domain(__isl_take isl_aff *aff,
439 __isl_take isl_reordering *r)
441 aff = isl_aff_cow(aff);
442 if (!aff)
443 goto error;
445 r = isl_reordering_extend(r, aff->ls->div->n_row);
446 aff->v = vec_reorder(aff->v, isl_reordering_copy(r),
447 aff->ls->div->n_row);
448 aff->ls = isl_local_space_realign(aff->ls, r);
450 if (!aff->v || !aff->ls)
451 return isl_aff_free(aff);
453 return aff;
454 error:
455 isl_aff_free(aff);
456 isl_reordering_free(r);
457 return NULL;
460 __isl_give isl_aff *isl_aff_align_params(__isl_take isl_aff *aff,
461 __isl_take isl_space *model)
463 if (!aff || !model)
464 goto error;
466 if (!isl_space_match(aff->ls->dim, isl_dim_param,
467 model, isl_dim_param)) {
468 isl_reordering *exp;
470 model = isl_space_drop_dims(model, isl_dim_in,
471 0, isl_space_dim(model, isl_dim_in));
472 model = isl_space_drop_dims(model, isl_dim_out,
473 0, isl_space_dim(model, isl_dim_out));
474 exp = isl_parameter_alignment_reordering(aff->ls->dim, model);
475 exp = isl_reordering_extend_space(exp,
476 isl_aff_get_domain_space(aff));
477 aff = isl_aff_realign_domain(aff, exp);
480 isl_space_free(model);
481 return aff;
482 error:
483 isl_space_free(model);
484 isl_aff_free(aff);
485 return NULL;
488 /* Is "aff" obviously equal to zero?
490 * If the denominator is zero, then "aff" is not equal to zero.
492 isl_bool isl_aff_plain_is_zero(__isl_keep isl_aff *aff)
494 if (!aff)
495 return isl_bool_error;
497 if (isl_int_is_zero(aff->v->el[0]))
498 return isl_bool_false;
499 return isl_seq_first_non_zero(aff->v->el + 1, aff->v->size - 1) < 0;
502 /* Does "aff" represent NaN?
504 isl_bool isl_aff_is_nan(__isl_keep isl_aff *aff)
506 if (!aff)
507 return isl_bool_error;
509 return isl_seq_first_non_zero(aff->v->el, 2) < 0;
512 /* Are "aff1" and "aff2" obviously equal?
514 * NaN is not equal to anything, not even to another NaN.
516 isl_bool isl_aff_plain_is_equal(__isl_keep isl_aff *aff1,
517 __isl_keep isl_aff *aff2)
519 isl_bool equal;
521 if (!aff1 || !aff2)
522 return isl_bool_error;
524 if (isl_aff_is_nan(aff1) || isl_aff_is_nan(aff2))
525 return isl_bool_false;
527 equal = isl_local_space_is_equal(aff1->ls, aff2->ls);
528 if (equal < 0 || !equal)
529 return equal;
531 return isl_vec_is_equal(aff1->v, aff2->v);
534 /* Return the common denominator of "aff" in "v".
536 * We cannot return anything meaningful in case of a NaN.
538 int isl_aff_get_denominator(__isl_keep isl_aff *aff, isl_int *v)
540 if (!aff)
541 return -1;
542 if (isl_aff_is_nan(aff))
543 isl_die(isl_aff_get_ctx(aff), isl_error_invalid,
544 "cannot get denominator of NaN", return -1);
545 isl_int_set(*v, aff->v->el[0]);
546 return 0;
549 /* Return the common denominator of "aff".
551 __isl_give isl_val *isl_aff_get_denominator_val(__isl_keep isl_aff *aff)
553 isl_ctx *ctx;
555 if (!aff)
556 return NULL;
558 ctx = isl_aff_get_ctx(aff);
559 if (isl_aff_is_nan(aff))
560 return isl_val_nan(ctx);
561 return isl_val_int_from_isl_int(ctx, aff->v->el[0]);
564 /* Return the constant term of "aff" in "v".
566 * We cannot return anything meaningful in case of a NaN.
568 int isl_aff_get_constant(__isl_keep isl_aff *aff, isl_int *v)
570 if (!aff)
571 return -1;
572 if (isl_aff_is_nan(aff))
573 isl_die(isl_aff_get_ctx(aff), isl_error_invalid,
574 "cannot get constant term of NaN", return -1);
575 isl_int_set(*v, aff->v->el[1]);
576 return 0;
579 /* Return the constant term of "aff".
581 __isl_give isl_val *isl_aff_get_constant_val(__isl_keep isl_aff *aff)
583 isl_ctx *ctx;
584 isl_val *v;
586 if (!aff)
587 return NULL;
589 ctx = isl_aff_get_ctx(aff);
590 if (isl_aff_is_nan(aff))
591 return isl_val_nan(ctx);
592 v = isl_val_rat_from_isl_int(ctx, aff->v->el[1], aff->v->el[0]);
593 return isl_val_normalize(v);
596 /* Return the coefficient of the variable of type "type" at position "pos"
597 * of "aff" in "v".
599 * We cannot return anything meaningful in case of a NaN.
601 int isl_aff_get_coefficient(__isl_keep isl_aff *aff,
602 enum isl_dim_type type, int pos, isl_int *v)
604 if (!aff)
605 return -1;
607 if (type == isl_dim_out)
608 isl_die(aff->v->ctx, isl_error_invalid,
609 "output/set dimension does not have a coefficient",
610 return -1);
611 if (type == isl_dim_in)
612 type = isl_dim_set;
614 if (pos >= isl_local_space_dim(aff->ls, type))
615 isl_die(aff->v->ctx, isl_error_invalid,
616 "position out of bounds", return -1);
618 if (isl_aff_is_nan(aff))
619 isl_die(isl_aff_get_ctx(aff), isl_error_invalid,
620 "cannot get coefficient of NaN", return -1);
621 pos += isl_local_space_offset(aff->ls, type);
622 isl_int_set(*v, aff->v->el[1 + pos]);
624 return 0;
627 /* Return the coefficient of the variable of type "type" at position "pos"
628 * of "aff".
630 __isl_give isl_val *isl_aff_get_coefficient_val(__isl_keep isl_aff *aff,
631 enum isl_dim_type type, int pos)
633 isl_ctx *ctx;
634 isl_val *v;
636 if (!aff)
637 return NULL;
639 ctx = isl_aff_get_ctx(aff);
640 if (type == isl_dim_out)
641 isl_die(ctx, isl_error_invalid,
642 "output/set dimension does not have a coefficient",
643 return NULL);
644 if (type == isl_dim_in)
645 type = isl_dim_set;
647 if (pos >= isl_local_space_dim(aff->ls, type))
648 isl_die(ctx, isl_error_invalid,
649 "position out of bounds", return NULL);
651 if (isl_aff_is_nan(aff))
652 return isl_val_nan(ctx);
653 pos += isl_local_space_offset(aff->ls, type);
654 v = isl_val_rat_from_isl_int(ctx, aff->v->el[1 + pos], aff->v->el[0]);
655 return isl_val_normalize(v);
658 /* Return the sign of the coefficient of the variable of type "type"
659 * at position "pos" of "aff".
661 int isl_aff_coefficient_sgn(__isl_keep isl_aff *aff, enum isl_dim_type type,
662 int pos)
664 isl_ctx *ctx;
666 if (!aff)
667 return 0;
669 ctx = isl_aff_get_ctx(aff);
670 if (type == isl_dim_out)
671 isl_die(ctx, isl_error_invalid,
672 "output/set dimension does not have a coefficient",
673 return 0);
674 if (type == isl_dim_in)
675 type = isl_dim_set;
677 if (pos >= isl_local_space_dim(aff->ls, type))
678 isl_die(ctx, isl_error_invalid,
679 "position out of bounds", return 0);
681 pos += isl_local_space_offset(aff->ls, type);
682 return isl_int_sgn(aff->v->el[1 + pos]);
685 /* Replace the denominator of "aff" by "v".
687 * A NaN is unaffected by this operation.
689 __isl_give isl_aff *isl_aff_set_denominator(__isl_take isl_aff *aff, isl_int v)
691 if (!aff)
692 return NULL;
693 if (isl_aff_is_nan(aff))
694 return aff;
695 aff = isl_aff_cow(aff);
696 if (!aff)
697 return NULL;
699 aff->v = isl_vec_cow(aff->v);
700 if (!aff->v)
701 return isl_aff_free(aff);
703 isl_int_set(aff->v->el[0], v);
705 return aff;
708 /* Replace the numerator of the constant term of "aff" by "v".
710 * A NaN is unaffected by this operation.
712 __isl_give isl_aff *isl_aff_set_constant(__isl_take isl_aff *aff, isl_int v)
714 if (!aff)
715 return NULL;
716 if (isl_aff_is_nan(aff))
717 return aff;
718 aff = isl_aff_cow(aff);
719 if (!aff)
720 return NULL;
722 aff->v = isl_vec_cow(aff->v);
723 if (!aff->v)
724 return isl_aff_free(aff);
726 isl_int_set(aff->v->el[1], v);
728 return aff;
731 /* Replace the constant term of "aff" by "v".
733 * A NaN is unaffected by this operation.
735 __isl_give isl_aff *isl_aff_set_constant_val(__isl_take isl_aff *aff,
736 __isl_take isl_val *v)
738 if (!aff || !v)
739 goto error;
741 if (isl_aff_is_nan(aff)) {
742 isl_val_free(v);
743 return aff;
746 if (!isl_val_is_rat(v))
747 isl_die(isl_aff_get_ctx(aff), isl_error_invalid,
748 "expecting rational value", goto error);
750 if (isl_int_eq(aff->v->el[1], v->n) &&
751 isl_int_eq(aff->v->el[0], v->d)) {
752 isl_val_free(v);
753 return aff;
756 aff = isl_aff_cow(aff);
757 if (!aff)
758 goto error;
759 aff->v = isl_vec_cow(aff->v);
760 if (!aff->v)
761 goto error;
763 if (isl_int_eq(aff->v->el[0], v->d)) {
764 isl_int_set(aff->v->el[1], v->n);
765 } else if (isl_int_is_one(v->d)) {
766 isl_int_mul(aff->v->el[1], aff->v->el[0], v->n);
767 } else {
768 isl_seq_scale(aff->v->el + 1,
769 aff->v->el + 1, v->d, aff->v->size - 1);
770 isl_int_mul(aff->v->el[1], aff->v->el[0], v->n);
771 isl_int_mul(aff->v->el[0], aff->v->el[0], v->d);
772 aff->v = isl_vec_normalize(aff->v);
773 if (!aff->v)
774 goto error;
777 isl_val_free(v);
778 return aff;
779 error:
780 isl_aff_free(aff);
781 isl_val_free(v);
782 return NULL;
785 /* Add "v" to the constant term of "aff".
787 * A NaN is unaffected by this operation.
789 __isl_give isl_aff *isl_aff_add_constant(__isl_take isl_aff *aff, isl_int v)
791 if (isl_int_is_zero(v))
792 return aff;
794 if (!aff)
795 return NULL;
796 if (isl_aff_is_nan(aff))
797 return aff;
798 aff = isl_aff_cow(aff);
799 if (!aff)
800 return NULL;
802 aff->v = isl_vec_cow(aff->v);
803 if (!aff->v)
804 return isl_aff_free(aff);
806 isl_int_addmul(aff->v->el[1], aff->v->el[0], v);
808 return aff;
811 /* Add "v" to the constant term of "aff".
813 * A NaN is unaffected by this operation.
815 __isl_give isl_aff *isl_aff_add_constant_val(__isl_take isl_aff *aff,
816 __isl_take isl_val *v)
818 if (!aff || !v)
819 goto error;
821 if (isl_aff_is_nan(aff) || isl_val_is_zero(v)) {
822 isl_val_free(v);
823 return aff;
826 if (!isl_val_is_rat(v))
827 isl_die(isl_aff_get_ctx(aff), isl_error_invalid,
828 "expecting rational value", goto error);
830 aff = isl_aff_cow(aff);
831 if (!aff)
832 goto error;
834 aff->v = isl_vec_cow(aff->v);
835 if (!aff->v)
836 goto error;
838 if (isl_int_is_one(v->d)) {
839 isl_int_addmul(aff->v->el[1], aff->v->el[0], v->n);
840 } else if (isl_int_eq(aff->v->el[0], v->d)) {
841 isl_int_add(aff->v->el[1], aff->v->el[1], v->n);
842 aff->v = isl_vec_normalize(aff->v);
843 if (!aff->v)
844 goto error;
845 } else {
846 isl_seq_scale(aff->v->el + 1,
847 aff->v->el + 1, v->d, aff->v->size - 1);
848 isl_int_addmul(aff->v->el[1], aff->v->el[0], v->n);
849 isl_int_mul(aff->v->el[0], aff->v->el[0], v->d);
850 aff->v = isl_vec_normalize(aff->v);
851 if (!aff->v)
852 goto error;
855 isl_val_free(v);
856 return aff;
857 error:
858 isl_aff_free(aff);
859 isl_val_free(v);
860 return NULL;
863 __isl_give isl_aff *isl_aff_add_constant_si(__isl_take isl_aff *aff, int v)
865 isl_int t;
867 isl_int_init(t);
868 isl_int_set_si(t, v);
869 aff = isl_aff_add_constant(aff, t);
870 isl_int_clear(t);
872 return aff;
875 /* Add "v" to the numerator of the constant term of "aff".
877 * A NaN is unaffected by this operation.
879 __isl_give isl_aff *isl_aff_add_constant_num(__isl_take isl_aff *aff, isl_int v)
881 if (isl_int_is_zero(v))
882 return aff;
884 if (!aff)
885 return NULL;
886 if (isl_aff_is_nan(aff))
887 return aff;
888 aff = isl_aff_cow(aff);
889 if (!aff)
890 return NULL;
892 aff->v = isl_vec_cow(aff->v);
893 if (!aff->v)
894 return isl_aff_free(aff);
896 isl_int_add(aff->v->el[1], aff->v->el[1], v);
898 return aff;
901 /* Add "v" to the numerator of the constant term of "aff".
903 * A NaN is unaffected by this operation.
905 __isl_give isl_aff *isl_aff_add_constant_num_si(__isl_take isl_aff *aff, int v)
907 isl_int t;
909 if (v == 0)
910 return aff;
912 isl_int_init(t);
913 isl_int_set_si(t, v);
914 aff = isl_aff_add_constant_num(aff, t);
915 isl_int_clear(t);
917 return aff;
920 /* Replace the numerator of the constant term of "aff" by "v".
922 * A NaN is unaffected by this operation.
924 __isl_give isl_aff *isl_aff_set_constant_si(__isl_take isl_aff *aff, int v)
926 if (!aff)
927 return NULL;
928 if (isl_aff_is_nan(aff))
929 return aff;
930 aff = isl_aff_cow(aff);
931 if (!aff)
932 return NULL;
934 aff->v = isl_vec_cow(aff->v);
935 if (!aff->v)
936 return isl_aff_free(aff);
938 isl_int_set_si(aff->v->el[1], v);
940 return aff;
943 /* Replace the numerator of the coefficient of the variable of type "type"
944 * at position "pos" of "aff" by "v".
946 * A NaN is unaffected by this operation.
948 __isl_give isl_aff *isl_aff_set_coefficient(__isl_take isl_aff *aff,
949 enum isl_dim_type type, int pos, isl_int v)
951 if (!aff)
952 return NULL;
954 if (type == isl_dim_out)
955 isl_die(aff->v->ctx, isl_error_invalid,
956 "output/set dimension does not have a coefficient",
957 return isl_aff_free(aff));
958 if (type == isl_dim_in)
959 type = isl_dim_set;
961 if (pos >= isl_local_space_dim(aff->ls, type))
962 isl_die(aff->v->ctx, isl_error_invalid,
963 "position out of bounds", return isl_aff_free(aff));
965 if (isl_aff_is_nan(aff))
966 return aff;
967 aff = isl_aff_cow(aff);
968 if (!aff)
969 return NULL;
971 aff->v = isl_vec_cow(aff->v);
972 if (!aff->v)
973 return isl_aff_free(aff);
975 pos += isl_local_space_offset(aff->ls, type);
976 isl_int_set(aff->v->el[1 + pos], v);
978 return aff;
981 /* Replace the numerator of the coefficient of the variable of type "type"
982 * at position "pos" of "aff" by "v".
984 * A NaN is unaffected by this operation.
986 __isl_give isl_aff *isl_aff_set_coefficient_si(__isl_take isl_aff *aff,
987 enum isl_dim_type type, int pos, int v)
989 if (!aff)
990 return NULL;
992 if (type == isl_dim_out)
993 isl_die(aff->v->ctx, isl_error_invalid,
994 "output/set dimension does not have a coefficient",
995 return isl_aff_free(aff));
996 if (type == isl_dim_in)
997 type = isl_dim_set;
999 if (pos < 0 || pos >= isl_local_space_dim(aff->ls, type))
1000 isl_die(aff->v->ctx, isl_error_invalid,
1001 "position out of bounds", return isl_aff_free(aff));
1003 if (isl_aff_is_nan(aff))
1004 return aff;
1005 pos += isl_local_space_offset(aff->ls, type);
1006 if (isl_int_cmp_si(aff->v->el[1 + pos], v) == 0)
1007 return aff;
1009 aff = isl_aff_cow(aff);
1010 if (!aff)
1011 return NULL;
1013 aff->v = isl_vec_cow(aff->v);
1014 if (!aff->v)
1015 return isl_aff_free(aff);
1017 isl_int_set_si(aff->v->el[1 + pos], v);
1019 return aff;
1022 /* Replace the coefficient of the variable of type "type" at position "pos"
1023 * of "aff" by "v".
1025 * A NaN is unaffected by this operation.
1027 __isl_give isl_aff *isl_aff_set_coefficient_val(__isl_take isl_aff *aff,
1028 enum isl_dim_type type, int pos, __isl_take isl_val *v)
1030 if (!aff || !v)
1031 goto error;
1033 if (type == isl_dim_out)
1034 isl_die(aff->v->ctx, isl_error_invalid,
1035 "output/set dimension does not have a coefficient",
1036 goto error);
1037 if (type == isl_dim_in)
1038 type = isl_dim_set;
1040 if (pos >= isl_local_space_dim(aff->ls, type))
1041 isl_die(aff->v->ctx, isl_error_invalid,
1042 "position out of bounds", goto error);
1044 if (isl_aff_is_nan(aff)) {
1045 isl_val_free(v);
1046 return aff;
1048 if (!isl_val_is_rat(v))
1049 isl_die(isl_aff_get_ctx(aff), isl_error_invalid,
1050 "expecting rational value", goto error);
1052 pos += isl_local_space_offset(aff->ls, type);
1053 if (isl_int_eq(aff->v->el[1 + pos], v->n) &&
1054 isl_int_eq(aff->v->el[0], v->d)) {
1055 isl_val_free(v);
1056 return aff;
1059 aff = isl_aff_cow(aff);
1060 if (!aff)
1061 goto error;
1062 aff->v = isl_vec_cow(aff->v);
1063 if (!aff->v)
1064 goto error;
1066 if (isl_int_eq(aff->v->el[0], v->d)) {
1067 isl_int_set(aff->v->el[1 + pos], v->n);
1068 } else if (isl_int_is_one(v->d)) {
1069 isl_int_mul(aff->v->el[1 + pos], aff->v->el[0], v->n);
1070 } else {
1071 isl_seq_scale(aff->v->el + 1,
1072 aff->v->el + 1, v->d, aff->v->size - 1);
1073 isl_int_mul(aff->v->el[1 + pos], aff->v->el[0], v->n);
1074 isl_int_mul(aff->v->el[0], aff->v->el[0], v->d);
1075 aff->v = isl_vec_normalize(aff->v);
1076 if (!aff->v)
1077 goto error;
1080 isl_val_free(v);
1081 return aff;
1082 error:
1083 isl_aff_free(aff);
1084 isl_val_free(v);
1085 return NULL;
1088 /* Add "v" to the coefficient of the variable of type "type"
1089 * at position "pos" of "aff".
1091 * A NaN is unaffected by this operation.
1093 __isl_give isl_aff *isl_aff_add_coefficient(__isl_take isl_aff *aff,
1094 enum isl_dim_type type, int pos, isl_int v)
1096 if (!aff)
1097 return NULL;
1099 if (type == isl_dim_out)
1100 isl_die(aff->v->ctx, isl_error_invalid,
1101 "output/set dimension does not have a coefficient",
1102 return isl_aff_free(aff));
1103 if (type == isl_dim_in)
1104 type = isl_dim_set;
1106 if (pos >= isl_local_space_dim(aff->ls, type))
1107 isl_die(aff->v->ctx, isl_error_invalid,
1108 "position out of bounds", return isl_aff_free(aff));
1110 if (isl_aff_is_nan(aff))
1111 return aff;
1112 aff = isl_aff_cow(aff);
1113 if (!aff)
1114 return NULL;
1116 aff->v = isl_vec_cow(aff->v);
1117 if (!aff->v)
1118 return isl_aff_free(aff);
1120 pos += isl_local_space_offset(aff->ls, type);
1121 isl_int_addmul(aff->v->el[1 + pos], aff->v->el[0], v);
1123 return aff;
1126 /* Add "v" to the coefficient of the variable of type "type"
1127 * at position "pos" of "aff".
1129 * A NaN is unaffected by this operation.
1131 __isl_give isl_aff *isl_aff_add_coefficient_val(__isl_take isl_aff *aff,
1132 enum isl_dim_type type, int pos, __isl_take isl_val *v)
1134 if (!aff || !v)
1135 goto error;
1137 if (isl_val_is_zero(v)) {
1138 isl_val_free(v);
1139 return aff;
1142 if (type == isl_dim_out)
1143 isl_die(aff->v->ctx, isl_error_invalid,
1144 "output/set dimension does not have a coefficient",
1145 goto error);
1146 if (type == isl_dim_in)
1147 type = isl_dim_set;
1149 if (pos >= isl_local_space_dim(aff->ls, type))
1150 isl_die(aff->v->ctx, isl_error_invalid,
1151 "position out of bounds", goto error);
1153 if (isl_aff_is_nan(aff)) {
1154 isl_val_free(v);
1155 return aff;
1157 if (!isl_val_is_rat(v))
1158 isl_die(isl_aff_get_ctx(aff), isl_error_invalid,
1159 "expecting rational value", goto error);
1161 aff = isl_aff_cow(aff);
1162 if (!aff)
1163 goto error;
1165 aff->v = isl_vec_cow(aff->v);
1166 if (!aff->v)
1167 goto error;
1169 pos += isl_local_space_offset(aff->ls, type);
1170 if (isl_int_is_one(v->d)) {
1171 isl_int_addmul(aff->v->el[1 + pos], aff->v->el[0], v->n);
1172 } else if (isl_int_eq(aff->v->el[0], v->d)) {
1173 isl_int_add(aff->v->el[1 + pos], aff->v->el[1 + pos], v->n);
1174 aff->v = isl_vec_normalize(aff->v);
1175 if (!aff->v)
1176 goto error;
1177 } else {
1178 isl_seq_scale(aff->v->el + 1,
1179 aff->v->el + 1, v->d, aff->v->size - 1);
1180 isl_int_addmul(aff->v->el[1 + pos], aff->v->el[0], v->n);
1181 isl_int_mul(aff->v->el[0], aff->v->el[0], v->d);
1182 aff->v = isl_vec_normalize(aff->v);
1183 if (!aff->v)
1184 goto error;
1187 isl_val_free(v);
1188 return aff;
1189 error:
1190 isl_aff_free(aff);
1191 isl_val_free(v);
1192 return NULL;
1195 __isl_give isl_aff *isl_aff_add_coefficient_si(__isl_take isl_aff *aff,
1196 enum isl_dim_type type, int pos, int v)
1198 isl_int t;
1200 isl_int_init(t);
1201 isl_int_set_si(t, v);
1202 aff = isl_aff_add_coefficient(aff, type, pos, t);
1203 isl_int_clear(t);
1205 return aff;
1208 __isl_give isl_aff *isl_aff_get_div(__isl_keep isl_aff *aff, int pos)
1210 if (!aff)
1211 return NULL;
1213 return isl_local_space_get_div(aff->ls, pos);
1216 /* Return the negation of "aff".
1218 * As a special case, -NaN = NaN.
1220 __isl_give isl_aff *isl_aff_neg(__isl_take isl_aff *aff)
1222 if (!aff)
1223 return NULL;
1224 if (isl_aff_is_nan(aff))
1225 return aff;
1226 aff = isl_aff_cow(aff);
1227 if (!aff)
1228 return NULL;
1229 aff->v = isl_vec_cow(aff->v);
1230 if (!aff->v)
1231 return isl_aff_free(aff);
1233 isl_seq_neg(aff->v->el + 1, aff->v->el + 1, aff->v->size - 1);
1235 return aff;
1238 /* Remove divs from the local space that do not appear in the affine
1239 * expression.
1240 * We currently only remove divs at the end.
1241 * Some intermediate divs may also not appear directly in the affine
1242 * expression, but we would also need to check that no other divs are
1243 * defined in terms of them.
1245 __isl_give isl_aff *isl_aff_remove_unused_divs(__isl_take isl_aff *aff)
1247 int pos;
1248 int off;
1249 int n;
1251 if (!aff)
1252 return NULL;
1254 n = isl_local_space_dim(aff->ls, isl_dim_div);
1255 off = isl_local_space_offset(aff->ls, isl_dim_div);
1257 pos = isl_seq_last_non_zero(aff->v->el + 1 + off, n) + 1;
1258 if (pos == n)
1259 return aff;
1261 aff = isl_aff_cow(aff);
1262 if (!aff)
1263 return NULL;
1265 aff->ls = isl_local_space_drop_dims(aff->ls, isl_dim_div, pos, n - pos);
1266 aff->v = isl_vec_drop_els(aff->v, 1 + off + pos, n - pos);
1267 if (!aff->ls || !aff->v)
1268 return isl_aff_free(aff);
1270 return aff;
1273 /* Given two affine expressions "p" of length p_len (including the
1274 * denominator and the constant term) and "subs" of length subs_len,
1275 * plug in "subs" for the variable at position "pos".
1276 * The variables of "subs" and "p" are assumed to match up to subs_len,
1277 * but "p" may have additional variables.
1278 * "v" is an initialized isl_int that can be used internally.
1280 * In particular, if "p" represents the expression
1282 * (a i + g)/m
1284 * with i the variable at position "pos" and "subs" represents the expression
1286 * f/d
1288 * then the result represents the expression
1290 * (a f + d g)/(m d)
1293 void isl_seq_substitute(isl_int *p, int pos, isl_int *subs,
1294 int p_len, int subs_len, isl_int v)
1296 isl_int_set(v, p[1 + pos]);
1297 isl_int_set_si(p[1 + pos], 0);
1298 isl_seq_combine(p + 1, subs[0], p + 1, v, subs + 1, subs_len - 1);
1299 isl_seq_scale(p + subs_len, p + subs_len, subs[0], p_len - subs_len);
1300 isl_int_mul(p[0], p[0], subs[0]);
1303 /* Look for any divs in the aff->ls with a denominator equal to one
1304 * and plug them into the affine expression and any subsequent divs
1305 * that may reference the div.
1307 static __isl_give isl_aff *plug_in_integral_divs(__isl_take isl_aff *aff)
1309 int i, n;
1310 int len;
1311 isl_int v;
1312 isl_vec *vec;
1313 isl_local_space *ls;
1314 unsigned pos;
1316 if (!aff)
1317 return NULL;
1319 n = isl_local_space_dim(aff->ls, isl_dim_div);
1320 len = aff->v->size;
1321 for (i = 0; i < n; ++i) {
1322 if (!isl_int_is_one(aff->ls->div->row[i][0]))
1323 continue;
1324 ls = isl_local_space_copy(aff->ls);
1325 ls = isl_local_space_substitute_seq(ls, isl_dim_div, i,
1326 aff->ls->div->row[i], len, i + 1, n - (i + 1));
1327 vec = isl_vec_copy(aff->v);
1328 vec = isl_vec_cow(vec);
1329 if (!ls || !vec)
1330 goto error;
1332 isl_int_init(v);
1334 pos = isl_local_space_offset(aff->ls, isl_dim_div) + i;
1335 isl_seq_substitute(vec->el, pos, aff->ls->div->row[i],
1336 len, len, v);
1338 isl_int_clear(v);
1340 isl_vec_free(aff->v);
1341 aff->v = vec;
1342 isl_local_space_free(aff->ls);
1343 aff->ls = ls;
1346 return aff;
1347 error:
1348 isl_vec_free(vec);
1349 isl_local_space_free(ls);
1350 return isl_aff_free(aff);
1353 /* Look for any divs j that appear with a unit coefficient inside
1354 * the definitions of other divs i and plug them into the definitions
1355 * of the divs i.
1357 * In particular, an expression of the form
1359 * floor((f(..) + floor(g(..)/n))/m)
1361 * is simplified to
1363 * floor((n * f(..) + g(..))/(n * m))
1365 * This simplification is correct because we can move the expression
1366 * f(..) into the inner floor in the original expression to obtain
1368 * floor(floor((n * f(..) + g(..))/n)/m)
1370 * from which we can derive the simplified expression.
1372 static __isl_give isl_aff *plug_in_unit_divs(__isl_take isl_aff *aff)
1374 int i, j, n;
1375 int off;
1377 if (!aff)
1378 return NULL;
1380 n = isl_local_space_dim(aff->ls, isl_dim_div);
1381 off = isl_local_space_offset(aff->ls, isl_dim_div);
1382 for (i = 1; i < n; ++i) {
1383 for (j = 0; j < i; ++j) {
1384 if (!isl_int_is_one(aff->ls->div->row[i][1 + off + j]))
1385 continue;
1386 aff->ls = isl_local_space_substitute_seq(aff->ls,
1387 isl_dim_div, j, aff->ls->div->row[j],
1388 aff->v->size, i, 1);
1389 if (!aff->ls)
1390 return isl_aff_free(aff);
1394 return aff;
1397 /* Swap divs "a" and "b" in "aff", which is assumed to be non-NULL.
1399 * Even though this function is only called on isl_affs with a single
1400 * reference, we are careful to only change aff->v and aff->ls together.
1402 static __isl_give isl_aff *swap_div(__isl_take isl_aff *aff, int a, int b)
1404 unsigned off = isl_local_space_offset(aff->ls, isl_dim_div);
1405 isl_local_space *ls;
1406 isl_vec *v;
1408 ls = isl_local_space_copy(aff->ls);
1409 ls = isl_local_space_swap_div(ls, a, b);
1410 v = isl_vec_copy(aff->v);
1411 v = isl_vec_cow(v);
1412 if (!ls || !v)
1413 goto error;
1415 isl_int_swap(v->el[1 + off + a], v->el[1 + off + b]);
1416 isl_vec_free(aff->v);
1417 aff->v = v;
1418 isl_local_space_free(aff->ls);
1419 aff->ls = ls;
1421 return aff;
1422 error:
1423 isl_vec_free(v);
1424 isl_local_space_free(ls);
1425 return isl_aff_free(aff);
1428 /* Merge divs "a" and "b" in "aff", which is assumed to be non-NULL.
1430 * We currently do not actually remove div "b", but simply add its
1431 * coefficient to that of "a" and then zero it out.
1433 static __isl_give isl_aff *merge_divs(__isl_take isl_aff *aff, int a, int b)
1435 unsigned off = isl_local_space_offset(aff->ls, isl_dim_div);
1437 if (isl_int_is_zero(aff->v->el[1 + off + b]))
1438 return aff;
1440 aff->v = isl_vec_cow(aff->v);
1441 if (!aff->v)
1442 return isl_aff_free(aff);
1444 isl_int_add(aff->v->el[1 + off + a],
1445 aff->v->el[1 + off + a], aff->v->el[1 + off + b]);
1446 isl_int_set_si(aff->v->el[1 + off + b], 0);
1448 return aff;
1451 /* Sort the divs in the local space of "aff" according to
1452 * the comparison function "cmp_row" in isl_local_space.c,
1453 * combining the coefficients of identical divs.
1455 * Reordering divs does not change the semantics of "aff",
1456 * so there is no need to call isl_aff_cow.
1457 * Moreover, this function is currently only called on isl_affs
1458 * with a single reference.
1460 static __isl_give isl_aff *sort_divs(__isl_take isl_aff *aff)
1462 int i, j, n;
1464 if (!aff)
1465 return NULL;
1467 n = isl_aff_dim(aff, isl_dim_div);
1468 for (i = 1; i < n; ++i) {
1469 for (j = i - 1; j >= 0; --j) {
1470 int cmp = isl_mat_cmp_div(aff->ls->div, j, j + 1);
1471 if (cmp < 0)
1472 break;
1473 if (cmp == 0)
1474 aff = merge_divs(aff, j, j + 1);
1475 else
1476 aff = swap_div(aff, j, j + 1);
1477 if (!aff)
1478 return NULL;
1482 return aff;
1485 /* Normalize the representation of "aff".
1487 * This function should only be called of "new" isl_affs, i.e.,
1488 * with only a single reference. We therefore do not need to
1489 * worry about affecting other instances.
1491 __isl_give isl_aff *isl_aff_normalize(__isl_take isl_aff *aff)
1493 if (!aff)
1494 return NULL;
1495 aff->v = isl_vec_normalize(aff->v);
1496 if (!aff->v)
1497 return isl_aff_free(aff);
1498 aff = plug_in_integral_divs(aff);
1499 aff = plug_in_unit_divs(aff);
1500 aff = sort_divs(aff);
1501 aff = isl_aff_remove_unused_divs(aff);
1502 return aff;
1505 /* Given f, return floor(f).
1506 * If f is an integer expression, then just return f.
1507 * If f is a constant, then return the constant floor(f).
1508 * Otherwise, if f = g/m, write g = q m + r,
1509 * create a new div d = [r/m] and return the expression q + d.
1510 * The coefficients in r are taken to lie between -m/2 and m/2.
1512 * reduce_div_coefficients performs the same normalization.
1514 * As a special case, floor(NaN) = NaN.
1516 __isl_give isl_aff *isl_aff_floor(__isl_take isl_aff *aff)
1518 int i;
1519 int size;
1520 isl_ctx *ctx;
1521 isl_vec *div;
1523 if (!aff)
1524 return NULL;
1526 if (isl_aff_is_nan(aff))
1527 return aff;
1528 if (isl_int_is_one(aff->v->el[0]))
1529 return aff;
1531 aff = isl_aff_cow(aff);
1532 if (!aff)
1533 return NULL;
1535 aff->v = isl_vec_cow(aff->v);
1536 if (!aff->v)
1537 return isl_aff_free(aff);
1539 if (isl_aff_is_cst(aff)) {
1540 isl_int_fdiv_q(aff->v->el[1], aff->v->el[1], aff->v->el[0]);
1541 isl_int_set_si(aff->v->el[0], 1);
1542 return aff;
1545 div = isl_vec_copy(aff->v);
1546 div = isl_vec_cow(div);
1547 if (!div)
1548 return isl_aff_free(aff);
1550 ctx = isl_aff_get_ctx(aff);
1551 isl_int_fdiv_q(aff->v->el[0], aff->v->el[0], ctx->two);
1552 for (i = 1; i < aff->v->size; ++i) {
1553 isl_int_fdiv_r(div->el[i], div->el[i], div->el[0]);
1554 isl_int_fdiv_q(aff->v->el[i], aff->v->el[i], div->el[0]);
1555 if (isl_int_gt(div->el[i], aff->v->el[0])) {
1556 isl_int_sub(div->el[i], div->el[i], div->el[0]);
1557 isl_int_add_ui(aff->v->el[i], aff->v->el[i], 1);
1561 aff->ls = isl_local_space_add_div(aff->ls, div);
1562 if (!aff->ls)
1563 return isl_aff_free(aff);
1565 size = aff->v->size;
1566 aff->v = isl_vec_extend(aff->v, size + 1);
1567 if (!aff->v)
1568 return isl_aff_free(aff);
1569 isl_int_set_si(aff->v->el[0], 1);
1570 isl_int_set_si(aff->v->el[size], 1);
1572 aff = isl_aff_normalize(aff);
1574 return aff;
1577 /* Compute
1579 * aff mod m = aff - m * floor(aff/m)
1581 __isl_give isl_aff *isl_aff_mod(__isl_take isl_aff *aff, isl_int m)
1583 isl_aff *res;
1585 res = isl_aff_copy(aff);
1586 aff = isl_aff_scale_down(aff, m);
1587 aff = isl_aff_floor(aff);
1588 aff = isl_aff_scale(aff, m);
1589 res = isl_aff_sub(res, aff);
1591 return res;
1594 /* Compute
1596 * aff mod m = aff - m * floor(aff/m)
1598 * with m an integer value.
1600 __isl_give isl_aff *isl_aff_mod_val(__isl_take isl_aff *aff,
1601 __isl_take isl_val *m)
1603 isl_aff *res;
1605 if (!aff || !m)
1606 goto error;
1608 if (!isl_val_is_int(m))
1609 isl_die(isl_val_get_ctx(m), isl_error_invalid,
1610 "expecting integer modulo", goto error);
1612 res = isl_aff_copy(aff);
1613 aff = isl_aff_scale_down_val(aff, isl_val_copy(m));
1614 aff = isl_aff_floor(aff);
1615 aff = isl_aff_scale_val(aff, m);
1616 res = isl_aff_sub(res, aff);
1618 return res;
1619 error:
1620 isl_aff_free(aff);
1621 isl_val_free(m);
1622 return NULL;
1625 /* Compute
1627 * pwaff mod m = pwaff - m * floor(pwaff/m)
1629 __isl_give isl_pw_aff *isl_pw_aff_mod(__isl_take isl_pw_aff *pwaff, isl_int m)
1631 isl_pw_aff *res;
1633 res = isl_pw_aff_copy(pwaff);
1634 pwaff = isl_pw_aff_scale_down(pwaff, m);
1635 pwaff = isl_pw_aff_floor(pwaff);
1636 pwaff = isl_pw_aff_scale(pwaff, m);
1637 res = isl_pw_aff_sub(res, pwaff);
1639 return res;
1642 /* Compute
1644 * pa mod m = pa - m * floor(pa/m)
1646 * with m an integer value.
1648 __isl_give isl_pw_aff *isl_pw_aff_mod_val(__isl_take isl_pw_aff *pa,
1649 __isl_take isl_val *m)
1651 if (!pa || !m)
1652 goto error;
1653 if (!isl_val_is_int(m))
1654 isl_die(isl_pw_aff_get_ctx(pa), isl_error_invalid,
1655 "expecting integer modulo", goto error);
1656 pa = isl_pw_aff_mod(pa, m->n);
1657 isl_val_free(m);
1658 return pa;
1659 error:
1660 isl_pw_aff_free(pa);
1661 isl_val_free(m);
1662 return NULL;
1665 /* Given f, return ceil(f).
1666 * If f is an integer expression, then just return f.
1667 * Otherwise, let f be the expression
1669 * e/m
1671 * then return
1673 * floor((e + m - 1)/m)
1675 * As a special case, ceil(NaN) = NaN.
1677 __isl_give isl_aff *isl_aff_ceil(__isl_take isl_aff *aff)
1679 if (!aff)
1680 return NULL;
1682 if (isl_aff_is_nan(aff))
1683 return aff;
1684 if (isl_int_is_one(aff->v->el[0]))
1685 return aff;
1687 aff = isl_aff_cow(aff);
1688 if (!aff)
1689 return NULL;
1690 aff->v = isl_vec_cow(aff->v);
1691 if (!aff->v)
1692 return isl_aff_free(aff);
1694 isl_int_add(aff->v->el[1], aff->v->el[1], aff->v->el[0]);
1695 isl_int_sub_ui(aff->v->el[1], aff->v->el[1], 1);
1696 aff = isl_aff_floor(aff);
1698 return aff;
1701 /* Apply the expansion computed by isl_merge_divs.
1702 * The expansion itself is given by "exp" while the resulting
1703 * list of divs is given by "div".
1705 __isl_give isl_aff *isl_aff_expand_divs(__isl_take isl_aff *aff,
1706 __isl_take isl_mat *div, int *exp)
1708 int old_n_div;
1709 int new_n_div;
1710 int offset;
1712 aff = isl_aff_cow(aff);
1713 if (!aff || !div)
1714 goto error;
1716 old_n_div = isl_local_space_dim(aff->ls, isl_dim_div);
1717 new_n_div = isl_mat_rows(div);
1718 offset = 1 + isl_local_space_offset(aff->ls, isl_dim_div);
1720 aff->v = isl_vec_expand(aff->v, offset, old_n_div, exp, new_n_div);
1721 aff->ls = isl_local_space_replace_divs(aff->ls, div);
1722 if (!aff->v || !aff->ls)
1723 return isl_aff_free(aff);
1724 return aff;
1725 error:
1726 isl_aff_free(aff);
1727 isl_mat_free(div);
1728 return NULL;
1731 /* Add two affine expressions that live in the same local space.
1733 static __isl_give isl_aff *add_expanded(__isl_take isl_aff *aff1,
1734 __isl_take isl_aff *aff2)
1736 isl_int gcd, f;
1738 aff1 = isl_aff_cow(aff1);
1739 if (!aff1 || !aff2)
1740 goto error;
1742 aff1->v = isl_vec_cow(aff1->v);
1743 if (!aff1->v)
1744 goto error;
1746 isl_int_init(gcd);
1747 isl_int_init(f);
1748 isl_int_gcd(gcd, aff1->v->el[0], aff2->v->el[0]);
1749 isl_int_divexact(f, aff2->v->el[0], gcd);
1750 isl_seq_scale(aff1->v->el + 1, aff1->v->el + 1, f, aff1->v->size - 1);
1751 isl_int_divexact(f, aff1->v->el[0], gcd);
1752 isl_seq_addmul(aff1->v->el + 1, f, aff2->v->el + 1, aff1->v->size - 1);
1753 isl_int_divexact(f, aff2->v->el[0], gcd);
1754 isl_int_mul(aff1->v->el[0], aff1->v->el[0], f);
1755 isl_int_clear(f);
1756 isl_int_clear(gcd);
1758 isl_aff_free(aff2);
1759 return aff1;
1760 error:
1761 isl_aff_free(aff1);
1762 isl_aff_free(aff2);
1763 return NULL;
1766 /* Return the sum of "aff1" and "aff2".
1768 * If either of the two is NaN, then the result is NaN.
1770 __isl_give isl_aff *isl_aff_add(__isl_take isl_aff *aff1,
1771 __isl_take isl_aff *aff2)
1773 isl_ctx *ctx;
1774 int *exp1 = NULL;
1775 int *exp2 = NULL;
1776 isl_mat *div;
1777 int n_div1, n_div2;
1779 if (!aff1 || !aff2)
1780 goto error;
1782 ctx = isl_aff_get_ctx(aff1);
1783 if (!isl_space_is_equal(aff1->ls->dim, aff2->ls->dim))
1784 isl_die(ctx, isl_error_invalid,
1785 "spaces don't match", goto error);
1787 if (isl_aff_is_nan(aff1)) {
1788 isl_aff_free(aff2);
1789 return aff1;
1791 if (isl_aff_is_nan(aff2)) {
1792 isl_aff_free(aff1);
1793 return aff2;
1796 n_div1 = isl_aff_dim(aff1, isl_dim_div);
1797 n_div2 = isl_aff_dim(aff2, isl_dim_div);
1798 if (n_div1 == 0 && n_div2 == 0)
1799 return add_expanded(aff1, aff2);
1801 exp1 = isl_alloc_array(ctx, int, n_div1);
1802 exp2 = isl_alloc_array(ctx, int, n_div2);
1803 if ((n_div1 && !exp1) || (n_div2 && !exp2))
1804 goto error;
1806 div = isl_merge_divs(aff1->ls->div, aff2->ls->div, exp1, exp2);
1807 aff1 = isl_aff_expand_divs(aff1, isl_mat_copy(div), exp1);
1808 aff2 = isl_aff_expand_divs(aff2, div, exp2);
1809 free(exp1);
1810 free(exp2);
1812 return add_expanded(aff1, aff2);
1813 error:
1814 free(exp1);
1815 free(exp2);
1816 isl_aff_free(aff1);
1817 isl_aff_free(aff2);
1818 return NULL;
1821 __isl_give isl_aff *isl_aff_sub(__isl_take isl_aff *aff1,
1822 __isl_take isl_aff *aff2)
1824 return isl_aff_add(aff1, isl_aff_neg(aff2));
1827 /* Return the result of scaling "aff" by a factor of "f".
1829 * As a special case, f * NaN = NaN.
1831 __isl_give isl_aff *isl_aff_scale(__isl_take isl_aff *aff, isl_int f)
1833 isl_int gcd;
1835 if (!aff)
1836 return NULL;
1837 if (isl_aff_is_nan(aff))
1838 return aff;
1840 if (isl_int_is_one(f))
1841 return aff;
1843 aff = isl_aff_cow(aff);
1844 if (!aff)
1845 return NULL;
1846 aff->v = isl_vec_cow(aff->v);
1847 if (!aff->v)
1848 return isl_aff_free(aff);
1850 if (isl_int_is_pos(f) && isl_int_is_divisible_by(aff->v->el[0], f)) {
1851 isl_int_divexact(aff->v->el[0], aff->v->el[0], f);
1852 return aff;
1855 isl_int_init(gcd);
1856 isl_int_gcd(gcd, aff->v->el[0], f);
1857 isl_int_divexact(aff->v->el[0], aff->v->el[0], gcd);
1858 isl_int_divexact(gcd, f, gcd);
1859 isl_seq_scale(aff->v->el + 1, aff->v->el + 1, gcd, aff->v->size - 1);
1860 isl_int_clear(gcd);
1862 return aff;
1865 /* Multiple "aff" by "v".
1867 __isl_give isl_aff *isl_aff_scale_val(__isl_take isl_aff *aff,
1868 __isl_take isl_val *v)
1870 if (!aff || !v)
1871 goto error;
1873 if (isl_val_is_one(v)) {
1874 isl_val_free(v);
1875 return aff;
1878 if (!isl_val_is_rat(v))
1879 isl_die(isl_aff_get_ctx(aff), isl_error_invalid,
1880 "expecting rational factor", goto error);
1882 aff = isl_aff_scale(aff, v->n);
1883 aff = isl_aff_scale_down(aff, v->d);
1885 isl_val_free(v);
1886 return aff;
1887 error:
1888 isl_aff_free(aff);
1889 isl_val_free(v);
1890 return NULL;
1893 /* Return the result of scaling "aff" down by a factor of "f".
1895 * As a special case, NaN/f = NaN.
1897 __isl_give isl_aff *isl_aff_scale_down(__isl_take isl_aff *aff, isl_int f)
1899 isl_int gcd;
1901 if (!aff)
1902 return NULL;
1903 if (isl_aff_is_nan(aff))
1904 return aff;
1906 if (isl_int_is_one(f))
1907 return aff;
1909 aff = isl_aff_cow(aff);
1910 if (!aff)
1911 return NULL;
1913 if (isl_int_is_zero(f))
1914 isl_die(isl_aff_get_ctx(aff), isl_error_invalid,
1915 "cannot scale down by zero", return isl_aff_free(aff));
1917 aff->v = isl_vec_cow(aff->v);
1918 if (!aff->v)
1919 return isl_aff_free(aff);
1921 isl_int_init(gcd);
1922 isl_seq_gcd(aff->v->el + 1, aff->v->size - 1, &gcd);
1923 isl_int_gcd(gcd, gcd, f);
1924 isl_seq_scale_down(aff->v->el + 1, aff->v->el + 1, gcd, aff->v->size - 1);
1925 isl_int_divexact(gcd, f, gcd);
1926 isl_int_mul(aff->v->el[0], aff->v->el[0], gcd);
1927 isl_int_clear(gcd);
1929 return aff;
1932 /* Divide "aff" by "v".
1934 __isl_give isl_aff *isl_aff_scale_down_val(__isl_take isl_aff *aff,
1935 __isl_take isl_val *v)
1937 if (!aff || !v)
1938 goto error;
1940 if (isl_val_is_one(v)) {
1941 isl_val_free(v);
1942 return aff;
1945 if (!isl_val_is_rat(v))
1946 isl_die(isl_aff_get_ctx(aff), isl_error_invalid,
1947 "expecting rational factor", goto error);
1948 if (!isl_val_is_pos(v))
1949 isl_die(isl_aff_get_ctx(aff), isl_error_invalid,
1950 "factor needs to be positive", goto error);
1952 aff = isl_aff_scale(aff, v->d);
1953 aff = isl_aff_scale_down(aff, v->n);
1955 isl_val_free(v);
1956 return aff;
1957 error:
1958 isl_aff_free(aff);
1959 isl_val_free(v);
1960 return NULL;
1963 __isl_give isl_aff *isl_aff_scale_down_ui(__isl_take isl_aff *aff, unsigned f)
1965 isl_int v;
1967 if (f == 1)
1968 return aff;
1970 isl_int_init(v);
1971 isl_int_set_ui(v, f);
1972 aff = isl_aff_scale_down(aff, v);
1973 isl_int_clear(v);
1975 return aff;
1978 __isl_give isl_aff *isl_aff_set_dim_name(__isl_take isl_aff *aff,
1979 enum isl_dim_type type, unsigned pos, const char *s)
1981 aff = isl_aff_cow(aff);
1982 if (!aff)
1983 return NULL;
1984 if (type == isl_dim_out)
1985 isl_die(aff->v->ctx, isl_error_invalid,
1986 "cannot set name of output/set dimension",
1987 return isl_aff_free(aff));
1988 if (type == isl_dim_in)
1989 type = isl_dim_set;
1990 aff->ls = isl_local_space_set_dim_name(aff->ls, type, pos, s);
1991 if (!aff->ls)
1992 return isl_aff_free(aff);
1994 return aff;
1997 __isl_give isl_aff *isl_aff_set_dim_id(__isl_take isl_aff *aff,
1998 enum isl_dim_type type, unsigned pos, __isl_take isl_id *id)
2000 aff = isl_aff_cow(aff);
2001 if (!aff)
2002 goto error;
2003 if (type == isl_dim_out)
2004 isl_die(aff->v->ctx, isl_error_invalid,
2005 "cannot set name of output/set dimension",
2006 goto error);
2007 if (type == isl_dim_in)
2008 type = isl_dim_set;
2009 aff->ls = isl_local_space_set_dim_id(aff->ls, type, pos, id);
2010 if (!aff->ls)
2011 return isl_aff_free(aff);
2013 return aff;
2014 error:
2015 isl_id_free(id);
2016 isl_aff_free(aff);
2017 return NULL;
2020 /* Replace the identifier of the input tuple of "aff" by "id".
2021 * type is currently required to be equal to isl_dim_in
2023 __isl_give isl_aff *isl_aff_set_tuple_id(__isl_take isl_aff *aff,
2024 enum isl_dim_type type, __isl_take isl_id *id)
2026 aff = isl_aff_cow(aff);
2027 if (!aff)
2028 goto error;
2029 if (type != isl_dim_out)
2030 isl_die(aff->v->ctx, isl_error_invalid,
2031 "cannot only set id of input tuple", goto error);
2032 aff->ls = isl_local_space_set_tuple_id(aff->ls, isl_dim_set, id);
2033 if (!aff->ls)
2034 return isl_aff_free(aff);
2036 return aff;
2037 error:
2038 isl_id_free(id);
2039 isl_aff_free(aff);
2040 return NULL;
2043 /* Exploit the equalities in "eq" to simplify the affine expression
2044 * and the expressions of the integer divisions in the local space.
2045 * The integer divisions in this local space are assumed to appear
2046 * as regular dimensions in "eq".
2048 static __isl_give isl_aff *isl_aff_substitute_equalities_lifted(
2049 __isl_take isl_aff *aff, __isl_take isl_basic_set *eq)
2051 int i, j;
2052 unsigned total;
2053 unsigned n_div;
2055 if (!eq)
2056 goto error;
2057 if (eq->n_eq == 0) {
2058 isl_basic_set_free(eq);
2059 return aff;
2062 aff = isl_aff_cow(aff);
2063 if (!aff)
2064 goto error;
2066 aff->ls = isl_local_space_substitute_equalities(aff->ls,
2067 isl_basic_set_copy(eq));
2068 aff->v = isl_vec_cow(aff->v);
2069 if (!aff->ls || !aff->v)
2070 goto error;
2072 total = 1 + isl_space_dim(eq->dim, isl_dim_all);
2073 n_div = eq->n_div;
2074 for (i = 0; i < eq->n_eq; ++i) {
2075 j = isl_seq_last_non_zero(eq->eq[i], total + n_div);
2076 if (j < 0 || j == 0 || j >= total)
2077 continue;
2079 isl_seq_elim(aff->v->el + 1, eq->eq[i], j, total,
2080 &aff->v->el[0]);
2083 isl_basic_set_free(eq);
2084 aff = isl_aff_normalize(aff);
2085 return aff;
2086 error:
2087 isl_basic_set_free(eq);
2088 isl_aff_free(aff);
2089 return NULL;
2092 /* Exploit the equalities in "eq" to simplify the affine expression
2093 * and the expressions of the integer divisions in the local space.
2095 __isl_give isl_aff *isl_aff_substitute_equalities(__isl_take isl_aff *aff,
2096 __isl_take isl_basic_set *eq)
2098 int n_div;
2100 if (!aff || !eq)
2101 goto error;
2102 n_div = isl_local_space_dim(aff->ls, isl_dim_div);
2103 if (n_div > 0)
2104 eq = isl_basic_set_add_dims(eq, isl_dim_set, n_div);
2105 return isl_aff_substitute_equalities_lifted(aff, eq);
2106 error:
2107 isl_basic_set_free(eq);
2108 isl_aff_free(aff);
2109 return NULL;
2112 /* Look for equalities among the variables shared by context and aff
2113 * and the integer divisions of aff, if any.
2114 * The equalities are then used to eliminate coefficients and/or integer
2115 * divisions from aff.
2117 __isl_give isl_aff *isl_aff_gist(__isl_take isl_aff *aff,
2118 __isl_take isl_set *context)
2120 isl_basic_set *hull;
2121 int n_div;
2123 if (!aff)
2124 goto error;
2125 n_div = isl_local_space_dim(aff->ls, isl_dim_div);
2126 if (n_div > 0) {
2127 isl_basic_set *bset;
2128 isl_local_space *ls;
2129 context = isl_set_add_dims(context, isl_dim_set, n_div);
2130 ls = isl_aff_get_domain_local_space(aff);
2131 bset = isl_basic_set_from_local_space(ls);
2132 bset = isl_basic_set_lift(bset);
2133 bset = isl_basic_set_flatten(bset);
2134 context = isl_set_intersect(context,
2135 isl_set_from_basic_set(bset));
2138 hull = isl_set_affine_hull(context);
2139 return isl_aff_substitute_equalities_lifted(aff, hull);
2140 error:
2141 isl_aff_free(aff);
2142 isl_set_free(context);
2143 return NULL;
2146 __isl_give isl_aff *isl_aff_gist_params(__isl_take isl_aff *aff,
2147 __isl_take isl_set *context)
2149 isl_set *dom_context = isl_set_universe(isl_aff_get_domain_space(aff));
2150 dom_context = isl_set_intersect_params(dom_context, context);
2151 return isl_aff_gist(aff, dom_context);
2154 /* Return a basic set containing those elements in the space
2155 * of aff where it is positive. "rational" should not be set.
2157 * If "aff" is NaN, then it is not positive.
2159 static __isl_give isl_basic_set *aff_pos_basic_set(__isl_take isl_aff *aff,
2160 int rational)
2162 isl_constraint *ineq;
2163 isl_basic_set *bset;
2164 isl_val *c;
2166 if (!aff)
2167 return NULL;
2168 if (isl_aff_is_nan(aff)) {
2169 isl_space *space = isl_aff_get_domain_space(aff);
2170 isl_aff_free(aff);
2171 return isl_basic_set_empty(space);
2173 if (rational)
2174 isl_die(isl_aff_get_ctx(aff), isl_error_unsupported,
2175 "rational sets not supported", goto error);
2177 ineq = isl_inequality_from_aff(aff);
2178 c = isl_constraint_get_constant_val(ineq);
2179 c = isl_val_sub_ui(c, 1);
2180 ineq = isl_constraint_set_constant_val(ineq, c);
2182 bset = isl_basic_set_from_constraint(ineq);
2183 bset = isl_basic_set_simplify(bset);
2184 return bset;
2185 error:
2186 isl_aff_free(aff);
2187 return NULL;
2190 /* Return a basic set containing those elements in the space
2191 * of aff where it is non-negative.
2192 * If "rational" is set, then return a rational basic set.
2194 * If "aff" is NaN, then it is not non-negative (it's not negative either).
2196 static __isl_give isl_basic_set *aff_nonneg_basic_set(
2197 __isl_take isl_aff *aff, int rational)
2199 isl_constraint *ineq;
2200 isl_basic_set *bset;
2202 if (!aff)
2203 return NULL;
2204 if (isl_aff_is_nan(aff)) {
2205 isl_space *space = isl_aff_get_domain_space(aff);
2206 isl_aff_free(aff);
2207 return isl_basic_set_empty(space);
2210 ineq = isl_inequality_from_aff(aff);
2212 bset = isl_basic_set_from_constraint(ineq);
2213 if (rational)
2214 bset = isl_basic_set_set_rational(bset);
2215 bset = isl_basic_set_simplify(bset);
2216 return bset;
2219 /* Return a basic set containing those elements in the space
2220 * of aff where it is non-negative.
2222 __isl_give isl_basic_set *isl_aff_nonneg_basic_set(__isl_take isl_aff *aff)
2224 return aff_nonneg_basic_set(aff, 0);
2227 /* Return a basic set containing those elements in the domain space
2228 * of aff where it is negative.
2230 __isl_give isl_basic_set *isl_aff_neg_basic_set(__isl_take isl_aff *aff)
2232 aff = isl_aff_neg(aff);
2233 aff = isl_aff_add_constant_num_si(aff, -1);
2234 return isl_aff_nonneg_basic_set(aff);
2237 /* Return a basic set containing those elements in the space
2238 * of aff where it is zero.
2239 * If "rational" is set, then return a rational basic set.
2241 * If "aff" is NaN, then it is not zero.
2243 static __isl_give isl_basic_set *aff_zero_basic_set(__isl_take isl_aff *aff,
2244 int rational)
2246 isl_constraint *ineq;
2247 isl_basic_set *bset;
2249 if (!aff)
2250 return NULL;
2251 if (isl_aff_is_nan(aff)) {
2252 isl_space *space = isl_aff_get_domain_space(aff);
2253 isl_aff_free(aff);
2254 return isl_basic_set_empty(space);
2257 ineq = isl_equality_from_aff(aff);
2259 bset = isl_basic_set_from_constraint(ineq);
2260 if (rational)
2261 bset = isl_basic_set_set_rational(bset);
2262 bset = isl_basic_set_simplify(bset);
2263 return bset;
2266 /* Return a basic set containing those elements in the space
2267 * of aff where it is zero.
2269 __isl_give isl_basic_set *isl_aff_zero_basic_set(__isl_take isl_aff *aff)
2271 return aff_zero_basic_set(aff, 0);
2274 /* Return a basic set containing those elements in the shared space
2275 * of aff1 and aff2 where aff1 is greater than or equal to aff2.
2277 __isl_give isl_basic_set *isl_aff_ge_basic_set(__isl_take isl_aff *aff1,
2278 __isl_take isl_aff *aff2)
2280 aff1 = isl_aff_sub(aff1, aff2);
2282 return isl_aff_nonneg_basic_set(aff1);
2285 /* Return a set containing those elements in the shared space
2286 * of aff1 and aff2 where aff1 is greater than or equal to aff2.
2288 __isl_give isl_set *isl_aff_ge_set(__isl_take isl_aff *aff1,
2289 __isl_take isl_aff *aff2)
2291 return isl_set_from_basic_set(isl_aff_ge_basic_set(aff1, aff2));
2294 /* Return a basic set containing those elements in the shared space
2295 * of aff1 and aff2 where aff1 is smaller than or equal to aff2.
2297 __isl_give isl_basic_set *isl_aff_le_basic_set(__isl_take isl_aff *aff1,
2298 __isl_take isl_aff *aff2)
2300 return isl_aff_ge_basic_set(aff2, aff1);
2303 /* Return a set containing those elements in the shared space
2304 * of aff1 and aff2 where aff1 is smaller than or equal to aff2.
2306 __isl_give isl_set *isl_aff_le_set(__isl_take isl_aff *aff1,
2307 __isl_take isl_aff *aff2)
2309 return isl_aff_ge_set(aff2, aff1);
2312 /* Return a basic set containing those elements in the shared space
2313 * of aff1 and aff2 where aff1 and aff2 are equal.
2315 __isl_give isl_basic_set *isl_aff_eq_basic_set(__isl_take isl_aff *aff1,
2316 __isl_take isl_aff *aff2)
2318 aff1 = isl_aff_sub(aff1, aff2);
2320 return isl_aff_zero_basic_set(aff1);
2323 /* Return a set containing those elements in the shared space
2324 * of aff1 and aff2 where aff1 and aff2 are equal.
2326 __isl_give isl_set *isl_aff_eq_set(__isl_take isl_aff *aff1,
2327 __isl_take isl_aff *aff2)
2329 return isl_set_from_basic_set(isl_aff_eq_basic_set(aff1, aff2));
2332 __isl_give isl_aff *isl_aff_add_on_domain(__isl_keep isl_set *dom,
2333 __isl_take isl_aff *aff1, __isl_take isl_aff *aff2)
2335 aff1 = isl_aff_add(aff1, aff2);
2336 aff1 = isl_aff_gist(aff1, isl_set_copy(dom));
2337 return aff1;
2340 int isl_aff_is_empty(__isl_keep isl_aff *aff)
2342 if (!aff)
2343 return -1;
2345 return 0;
2348 /* Check whether the given affine expression has non-zero coefficient
2349 * for any dimension in the given range or if any of these dimensions
2350 * appear with non-zero coefficients in any of the integer divisions
2351 * involved in the affine expression.
2353 isl_bool isl_aff_involves_dims(__isl_keep isl_aff *aff,
2354 enum isl_dim_type type, unsigned first, unsigned n)
2356 int i;
2357 isl_ctx *ctx;
2358 int *active = NULL;
2359 isl_bool involves = isl_bool_false;
2361 if (!aff)
2362 return isl_bool_error;
2363 if (n == 0)
2364 return isl_bool_false;
2366 ctx = isl_aff_get_ctx(aff);
2367 if (first + n > isl_aff_dim(aff, type))
2368 isl_die(ctx, isl_error_invalid,
2369 "range out of bounds", return isl_bool_error);
2371 active = isl_local_space_get_active(aff->ls, aff->v->el + 2);
2372 if (!active)
2373 goto error;
2375 first += isl_local_space_offset(aff->ls, type) - 1;
2376 for (i = 0; i < n; ++i)
2377 if (active[first + i]) {
2378 involves = isl_bool_true;
2379 break;
2382 free(active);
2384 return involves;
2385 error:
2386 free(active);
2387 return isl_bool_error;
2390 __isl_give isl_aff *isl_aff_drop_dims(__isl_take isl_aff *aff,
2391 enum isl_dim_type type, unsigned first, unsigned n)
2393 isl_ctx *ctx;
2395 if (!aff)
2396 return NULL;
2397 if (type == isl_dim_out)
2398 isl_die(aff->v->ctx, isl_error_invalid,
2399 "cannot drop output/set dimension",
2400 return isl_aff_free(aff));
2401 if (type == isl_dim_in)
2402 type = isl_dim_set;
2403 if (n == 0 && !isl_local_space_is_named_or_nested(aff->ls, type))
2404 return aff;
2406 ctx = isl_aff_get_ctx(aff);
2407 if (first + n > isl_local_space_dim(aff->ls, type))
2408 isl_die(ctx, isl_error_invalid, "range out of bounds",
2409 return isl_aff_free(aff));
2411 aff = isl_aff_cow(aff);
2412 if (!aff)
2413 return NULL;
2415 aff->ls = isl_local_space_drop_dims(aff->ls, type, first, n);
2416 if (!aff->ls)
2417 return isl_aff_free(aff);
2419 first += 1 + isl_local_space_offset(aff->ls, type);
2420 aff->v = isl_vec_drop_els(aff->v, first, n);
2421 if (!aff->v)
2422 return isl_aff_free(aff);
2424 return aff;
2427 /* Project the domain of the affine expression onto its parameter space.
2428 * The affine expression may not involve any of the domain dimensions.
2430 __isl_give isl_aff *isl_aff_project_domain_on_params(__isl_take isl_aff *aff)
2432 isl_space *space;
2433 unsigned n;
2434 int involves;
2436 n = isl_aff_dim(aff, isl_dim_in);
2437 involves = isl_aff_involves_dims(aff, isl_dim_in, 0, n);
2438 if (involves < 0)
2439 return isl_aff_free(aff);
2440 if (involves)
2441 isl_die(isl_aff_get_ctx(aff), isl_error_invalid,
2442 "affine expression involves some of the domain dimensions",
2443 return isl_aff_free(aff));
2444 aff = isl_aff_drop_dims(aff, isl_dim_in, 0, n);
2445 space = isl_aff_get_domain_space(aff);
2446 space = isl_space_params(space);
2447 aff = isl_aff_reset_domain_space(aff, space);
2448 return aff;
2451 __isl_give isl_aff *isl_aff_insert_dims(__isl_take isl_aff *aff,
2452 enum isl_dim_type type, unsigned first, unsigned n)
2454 isl_ctx *ctx;
2456 if (!aff)
2457 return NULL;
2458 if (type == isl_dim_out)
2459 isl_die(aff->v->ctx, isl_error_invalid,
2460 "cannot insert output/set dimensions",
2461 return isl_aff_free(aff));
2462 if (type == isl_dim_in)
2463 type = isl_dim_set;
2464 if (n == 0 && !isl_local_space_is_named_or_nested(aff->ls, type))
2465 return aff;
2467 ctx = isl_aff_get_ctx(aff);
2468 if (first > isl_local_space_dim(aff->ls, type))
2469 isl_die(ctx, isl_error_invalid, "position out of bounds",
2470 return isl_aff_free(aff));
2472 aff = isl_aff_cow(aff);
2473 if (!aff)
2474 return NULL;
2476 aff->ls = isl_local_space_insert_dims(aff->ls, type, first, n);
2477 if (!aff->ls)
2478 return isl_aff_free(aff);
2480 first += 1 + isl_local_space_offset(aff->ls, type);
2481 aff->v = isl_vec_insert_zero_els(aff->v, first, n);
2482 if (!aff->v)
2483 return isl_aff_free(aff);
2485 return aff;
2488 __isl_give isl_aff *isl_aff_add_dims(__isl_take isl_aff *aff,
2489 enum isl_dim_type type, unsigned n)
2491 unsigned pos;
2493 pos = isl_aff_dim(aff, type);
2495 return isl_aff_insert_dims(aff, type, pos, n);
2498 __isl_give isl_pw_aff *isl_pw_aff_add_dims(__isl_take isl_pw_aff *pwaff,
2499 enum isl_dim_type type, unsigned n)
2501 unsigned pos;
2503 pos = isl_pw_aff_dim(pwaff, type);
2505 return isl_pw_aff_insert_dims(pwaff, type, pos, n);
2508 /* Move the "n" dimensions of "src_type" starting at "src_pos" of "aff"
2509 * to dimensions of "dst_type" at "dst_pos".
2511 * We only support moving input dimensions to parameters and vice versa.
2513 __isl_give isl_aff *isl_aff_move_dims(__isl_take isl_aff *aff,
2514 enum isl_dim_type dst_type, unsigned dst_pos,
2515 enum isl_dim_type src_type, unsigned src_pos, unsigned n)
2517 unsigned g_dst_pos;
2518 unsigned g_src_pos;
2520 if (!aff)
2521 return NULL;
2522 if (n == 0 &&
2523 !isl_local_space_is_named_or_nested(aff->ls, src_type) &&
2524 !isl_local_space_is_named_or_nested(aff->ls, dst_type))
2525 return aff;
2527 if (dst_type == isl_dim_out || src_type == isl_dim_out)
2528 isl_die(isl_aff_get_ctx(aff), isl_error_invalid,
2529 "cannot move output/set dimension",
2530 return isl_aff_free(aff));
2531 if (dst_type == isl_dim_div || src_type == isl_dim_div)
2532 isl_die(isl_aff_get_ctx(aff), isl_error_invalid,
2533 "cannot move divs", return isl_aff_free(aff));
2534 if (dst_type == isl_dim_in)
2535 dst_type = isl_dim_set;
2536 if (src_type == isl_dim_in)
2537 src_type = isl_dim_set;
2539 if (src_pos + n > isl_local_space_dim(aff->ls, src_type))
2540 isl_die(isl_aff_get_ctx(aff), isl_error_invalid,
2541 "range out of bounds", return isl_aff_free(aff));
2542 if (dst_type == src_type)
2543 isl_die(isl_aff_get_ctx(aff), isl_error_unsupported,
2544 "moving dims within the same type not supported",
2545 return isl_aff_free(aff));
2547 aff = isl_aff_cow(aff);
2548 if (!aff)
2549 return NULL;
2551 g_src_pos = 1 + isl_local_space_offset(aff->ls, src_type) + src_pos;
2552 g_dst_pos = 1 + isl_local_space_offset(aff->ls, dst_type) + dst_pos;
2553 if (dst_type > src_type)
2554 g_dst_pos -= n;
2556 aff->v = isl_vec_move_els(aff->v, g_dst_pos, g_src_pos, n);
2557 aff->ls = isl_local_space_move_dims(aff->ls, dst_type, dst_pos,
2558 src_type, src_pos, n);
2559 if (!aff->v || !aff->ls)
2560 return isl_aff_free(aff);
2562 aff = sort_divs(aff);
2564 return aff;
2567 __isl_give isl_pw_aff *isl_pw_aff_from_aff(__isl_take isl_aff *aff)
2569 isl_set *dom = isl_set_universe(isl_aff_get_domain_space(aff));
2570 return isl_pw_aff_alloc(dom, aff);
2573 #define isl_aff_involves_nan isl_aff_is_nan
2575 #undef PW
2576 #define PW isl_pw_aff
2577 #undef EL
2578 #define EL isl_aff
2579 #undef EL_IS_ZERO
2580 #define EL_IS_ZERO is_empty
2581 #undef ZERO
2582 #define ZERO empty
2583 #undef IS_ZERO
2584 #define IS_ZERO is_empty
2585 #undef FIELD
2586 #define FIELD aff
2587 #undef DEFAULT_IS_ZERO
2588 #define DEFAULT_IS_ZERO 0
2590 #define NO_EVAL
2591 #define NO_OPT
2592 #define NO_LIFT
2593 #define NO_MORPH
2595 #include <isl_pw_templ.c>
2596 #include <isl_pw_hash.c>
2597 #include <isl_pw_union_opt.c>
2599 #undef UNION
2600 #define UNION isl_union_pw_aff
2601 #undef PART
2602 #define PART isl_pw_aff
2603 #undef PARTS
2604 #define PARTS pw_aff
2606 #include <isl_union_single.c>
2607 #include <isl_union_neg.c>
2609 static __isl_give isl_set *align_params_pw_pw_set_and(
2610 __isl_take isl_pw_aff *pwaff1, __isl_take isl_pw_aff *pwaff2,
2611 __isl_give isl_set *(*fn)(__isl_take isl_pw_aff *pwaff1,
2612 __isl_take isl_pw_aff *pwaff2))
2614 if (!pwaff1 || !pwaff2)
2615 goto error;
2616 if (isl_space_match(pwaff1->dim, isl_dim_param,
2617 pwaff2->dim, isl_dim_param))
2618 return fn(pwaff1, pwaff2);
2619 if (!isl_space_has_named_params(pwaff1->dim) ||
2620 !isl_space_has_named_params(pwaff2->dim))
2621 isl_die(isl_pw_aff_get_ctx(pwaff1), isl_error_invalid,
2622 "unaligned unnamed parameters", goto error);
2623 pwaff1 = isl_pw_aff_align_params(pwaff1, isl_pw_aff_get_space(pwaff2));
2624 pwaff2 = isl_pw_aff_align_params(pwaff2, isl_pw_aff_get_space(pwaff1));
2625 return fn(pwaff1, pwaff2);
2626 error:
2627 isl_pw_aff_free(pwaff1);
2628 isl_pw_aff_free(pwaff2);
2629 return NULL;
2632 /* Align the parameters of the to isl_pw_aff arguments and
2633 * then apply a function "fn" on them that returns an isl_map.
2635 static __isl_give isl_map *align_params_pw_pw_map_and(
2636 __isl_take isl_pw_aff *pa1, __isl_take isl_pw_aff *pa2,
2637 __isl_give isl_map *(*fn)(__isl_take isl_pw_aff *pa1,
2638 __isl_take isl_pw_aff *pa2))
2640 if (!pa1 || !pa2)
2641 goto error;
2642 if (isl_space_match(pa1->dim, isl_dim_param, pa2->dim, isl_dim_param))
2643 return fn(pa1, pa2);
2644 if (!isl_space_has_named_params(pa1->dim) ||
2645 !isl_space_has_named_params(pa2->dim))
2646 isl_die(isl_pw_aff_get_ctx(pa1), isl_error_invalid,
2647 "unaligned unnamed parameters", goto error);
2648 pa1 = isl_pw_aff_align_params(pa1, isl_pw_aff_get_space(pa2));
2649 pa2 = isl_pw_aff_align_params(pa2, isl_pw_aff_get_space(pa1));
2650 return fn(pa1, pa2);
2651 error:
2652 isl_pw_aff_free(pa1);
2653 isl_pw_aff_free(pa2);
2654 return NULL;
2657 /* Compute a piecewise quasi-affine expression with a domain that
2658 * is the union of those of pwaff1 and pwaff2 and such that on each
2659 * cell, the quasi-affine expression is the maximum of those of pwaff1
2660 * and pwaff2. If only one of pwaff1 or pwaff2 is defined on a given
2661 * cell, then the associated expression is the defined one.
2663 static __isl_give isl_pw_aff *pw_aff_union_max(__isl_take isl_pw_aff *pwaff1,
2664 __isl_take isl_pw_aff *pwaff2)
2666 return isl_pw_aff_union_opt_cmp(pwaff1, pwaff2, &isl_aff_ge_set);
2669 __isl_give isl_pw_aff *isl_pw_aff_union_max(__isl_take isl_pw_aff *pwaff1,
2670 __isl_take isl_pw_aff *pwaff2)
2672 return isl_pw_aff_align_params_pw_pw_and(pwaff1, pwaff2,
2673 &pw_aff_union_max);
2676 /* Compute a piecewise quasi-affine expression with a domain that
2677 * is the union of those of pwaff1 and pwaff2 and such that on each
2678 * cell, the quasi-affine expression is the minimum of those of pwaff1
2679 * and pwaff2. If only one of pwaff1 or pwaff2 is defined on a given
2680 * cell, then the associated expression is the defined one.
2682 static __isl_give isl_pw_aff *pw_aff_union_min(__isl_take isl_pw_aff *pwaff1,
2683 __isl_take isl_pw_aff *pwaff2)
2685 return isl_pw_aff_union_opt_cmp(pwaff1, pwaff2, &isl_aff_le_set);
2688 __isl_give isl_pw_aff *isl_pw_aff_union_min(__isl_take isl_pw_aff *pwaff1,
2689 __isl_take isl_pw_aff *pwaff2)
2691 return isl_pw_aff_align_params_pw_pw_and(pwaff1, pwaff2,
2692 &pw_aff_union_min);
2695 __isl_give isl_pw_aff *isl_pw_aff_union_opt(__isl_take isl_pw_aff *pwaff1,
2696 __isl_take isl_pw_aff *pwaff2, int max)
2698 if (max)
2699 return isl_pw_aff_union_max(pwaff1, pwaff2);
2700 else
2701 return isl_pw_aff_union_min(pwaff1, pwaff2);
2704 /* Construct a map with as domain the domain of pwaff and
2705 * one-dimensional range corresponding to the affine expressions.
2707 static __isl_give isl_map *map_from_pw_aff(__isl_take isl_pw_aff *pwaff)
2709 int i;
2710 isl_space *dim;
2711 isl_map *map;
2713 if (!pwaff)
2714 return NULL;
2716 dim = isl_pw_aff_get_space(pwaff);
2717 map = isl_map_empty(dim);
2719 for (i = 0; i < pwaff->n; ++i) {
2720 isl_basic_map *bmap;
2721 isl_map *map_i;
2723 bmap = isl_basic_map_from_aff(isl_aff_copy(pwaff->p[i].aff));
2724 map_i = isl_map_from_basic_map(bmap);
2725 map_i = isl_map_intersect_domain(map_i,
2726 isl_set_copy(pwaff->p[i].set));
2727 map = isl_map_union_disjoint(map, map_i);
2730 isl_pw_aff_free(pwaff);
2732 return map;
2735 /* Construct a map with as domain the domain of pwaff and
2736 * one-dimensional range corresponding to the affine expressions.
2738 __isl_give isl_map *isl_map_from_pw_aff(__isl_take isl_pw_aff *pwaff)
2740 if (!pwaff)
2741 return NULL;
2742 if (isl_space_is_set(pwaff->dim))
2743 isl_die(isl_pw_aff_get_ctx(pwaff), isl_error_invalid,
2744 "space of input is not a map", goto error);
2745 return map_from_pw_aff(pwaff);
2746 error:
2747 isl_pw_aff_free(pwaff);
2748 return NULL;
2751 /* Construct a one-dimensional set with as parameter domain
2752 * the domain of pwaff and the single set dimension
2753 * corresponding to the affine expressions.
2755 __isl_give isl_set *isl_set_from_pw_aff(__isl_take isl_pw_aff *pwaff)
2757 if (!pwaff)
2758 return NULL;
2759 if (!isl_space_is_set(pwaff->dim))
2760 isl_die(isl_pw_aff_get_ctx(pwaff), isl_error_invalid,
2761 "space of input is not a set", goto error);
2762 return map_from_pw_aff(pwaff);
2763 error:
2764 isl_pw_aff_free(pwaff);
2765 return NULL;
2768 /* Return a set containing those elements in the domain
2769 * of "pwaff" where it satisfies "fn" (if complement is 0) or
2770 * does not satisfy "fn" (if complement is 1).
2772 * The pieces with a NaN never belong to the result since
2773 * NaN does not satisfy any property.
2775 static __isl_give isl_set *pw_aff_locus(__isl_take isl_pw_aff *pwaff,
2776 __isl_give isl_basic_set *(*fn)(__isl_take isl_aff *aff, int rational),
2777 int complement)
2779 int i;
2780 isl_set *set;
2782 if (!pwaff)
2783 return NULL;
2785 set = isl_set_empty(isl_pw_aff_get_domain_space(pwaff));
2787 for (i = 0; i < pwaff->n; ++i) {
2788 isl_basic_set *bset;
2789 isl_set *set_i, *locus;
2790 int rational;
2792 if (isl_aff_is_nan(pwaff->p[i].aff))
2793 continue;
2795 rational = isl_set_has_rational(pwaff->p[i].set);
2796 bset = fn(isl_aff_copy(pwaff->p[i].aff), rational);
2797 locus = isl_set_from_basic_set(bset);
2798 set_i = isl_set_copy(pwaff->p[i].set);
2799 if (complement)
2800 set_i = isl_set_subtract(set_i, locus);
2801 else
2802 set_i = isl_set_intersect(set_i, locus);
2803 set = isl_set_union_disjoint(set, set_i);
2806 isl_pw_aff_free(pwaff);
2808 return set;
2811 /* Return a set containing those elements in the domain
2812 * of "pa" where it is positive.
2814 __isl_give isl_set *isl_pw_aff_pos_set(__isl_take isl_pw_aff *pa)
2816 return pw_aff_locus(pa, &aff_pos_basic_set, 0);
2819 /* Return a set containing those elements in the domain
2820 * of pwaff where it is non-negative.
2822 __isl_give isl_set *isl_pw_aff_nonneg_set(__isl_take isl_pw_aff *pwaff)
2824 return pw_aff_locus(pwaff, &aff_nonneg_basic_set, 0);
2827 /* Return a set containing those elements in the domain
2828 * of pwaff where it is zero.
2830 __isl_give isl_set *isl_pw_aff_zero_set(__isl_take isl_pw_aff *pwaff)
2832 return pw_aff_locus(pwaff, &aff_zero_basic_set, 0);
2835 /* Return a set containing those elements in the domain
2836 * of pwaff where it is not zero.
2838 __isl_give isl_set *isl_pw_aff_non_zero_set(__isl_take isl_pw_aff *pwaff)
2840 return pw_aff_locus(pwaff, &aff_zero_basic_set, 1);
2843 /* Return a set containing those elements in the shared domain
2844 * of pwaff1 and pwaff2 where pwaff1 is greater than (or equal) to pwaff2.
2846 * We compute the difference on the shared domain and then construct
2847 * the set of values where this difference is non-negative.
2848 * If strict is set, we first subtract 1 from the difference.
2849 * If equal is set, we only return the elements where pwaff1 and pwaff2
2850 * are equal.
2852 static __isl_give isl_set *pw_aff_gte_set(__isl_take isl_pw_aff *pwaff1,
2853 __isl_take isl_pw_aff *pwaff2, int strict, int equal)
2855 isl_set *set1, *set2;
2857 set1 = isl_pw_aff_domain(isl_pw_aff_copy(pwaff1));
2858 set2 = isl_pw_aff_domain(isl_pw_aff_copy(pwaff2));
2859 set1 = isl_set_intersect(set1, set2);
2860 pwaff1 = isl_pw_aff_intersect_domain(pwaff1, isl_set_copy(set1));
2861 pwaff2 = isl_pw_aff_intersect_domain(pwaff2, isl_set_copy(set1));
2862 pwaff1 = isl_pw_aff_add(pwaff1, isl_pw_aff_neg(pwaff2));
2864 if (strict) {
2865 isl_space *dim = isl_set_get_space(set1);
2866 isl_aff *aff;
2867 aff = isl_aff_zero_on_domain(isl_local_space_from_space(dim));
2868 aff = isl_aff_add_constant_si(aff, -1);
2869 pwaff1 = isl_pw_aff_add(pwaff1, isl_pw_aff_alloc(set1, aff));
2870 } else
2871 isl_set_free(set1);
2873 if (equal)
2874 return isl_pw_aff_zero_set(pwaff1);
2875 return isl_pw_aff_nonneg_set(pwaff1);
2878 /* Return a set containing those elements in the shared domain
2879 * of pwaff1 and pwaff2 where pwaff1 is equal to pwaff2.
2881 static __isl_give isl_set *pw_aff_eq_set(__isl_take isl_pw_aff *pwaff1,
2882 __isl_take isl_pw_aff *pwaff2)
2884 return pw_aff_gte_set(pwaff1, pwaff2, 0, 1);
2887 __isl_give isl_set *isl_pw_aff_eq_set(__isl_take isl_pw_aff *pwaff1,
2888 __isl_take isl_pw_aff *pwaff2)
2890 return align_params_pw_pw_set_and(pwaff1, pwaff2, &pw_aff_eq_set);
2893 /* Return a set containing those elements in the shared domain
2894 * of pwaff1 and pwaff2 where pwaff1 is greater than or equal to pwaff2.
2896 static __isl_give isl_set *pw_aff_ge_set(__isl_take isl_pw_aff *pwaff1,
2897 __isl_take isl_pw_aff *pwaff2)
2899 return pw_aff_gte_set(pwaff1, pwaff2, 0, 0);
2902 __isl_give isl_set *isl_pw_aff_ge_set(__isl_take isl_pw_aff *pwaff1,
2903 __isl_take isl_pw_aff *pwaff2)
2905 return align_params_pw_pw_set_and(pwaff1, pwaff2, &pw_aff_ge_set);
2908 /* Return a set containing those elements in the shared domain
2909 * of pwaff1 and pwaff2 where pwaff1 is strictly greater than pwaff2.
2911 static __isl_give isl_set *pw_aff_gt_set(__isl_take isl_pw_aff *pwaff1,
2912 __isl_take isl_pw_aff *pwaff2)
2914 return pw_aff_gte_set(pwaff1, pwaff2, 1, 0);
2917 __isl_give isl_set *isl_pw_aff_gt_set(__isl_take isl_pw_aff *pwaff1,
2918 __isl_take isl_pw_aff *pwaff2)
2920 return align_params_pw_pw_set_and(pwaff1, pwaff2, &pw_aff_gt_set);
2923 __isl_give isl_set *isl_pw_aff_le_set(__isl_take isl_pw_aff *pwaff1,
2924 __isl_take isl_pw_aff *pwaff2)
2926 return isl_pw_aff_ge_set(pwaff2, pwaff1);
2929 __isl_give isl_set *isl_pw_aff_lt_set(__isl_take isl_pw_aff *pwaff1,
2930 __isl_take isl_pw_aff *pwaff2)
2932 return isl_pw_aff_gt_set(pwaff2, pwaff1);
2935 /* Return a map containing pairs of elements in the domains of "pa1" and "pa2"
2936 * where the function values are ordered in the same way as "order",
2937 * which returns a set in the shared domain of its two arguments.
2938 * The parameters of "pa1" and "pa2" are assumed to have been aligned.
2940 * Let "pa1" and "pa2" be defined on domains A and B respectively.
2941 * We first pull back the two functions such that they are defined on
2942 * the domain [A -> B]. Then we apply "order", resulting in a set
2943 * in the space [A -> B]. Finally, we unwrap this set to obtain
2944 * a map in the space A -> B.
2946 static __isl_give isl_map *isl_pw_aff_order_map_aligned(
2947 __isl_take isl_pw_aff *pa1, __isl_take isl_pw_aff *pa2,
2948 __isl_give isl_set *(*order)(__isl_take isl_pw_aff *pa1,
2949 __isl_take isl_pw_aff *pa2))
2951 isl_space *space1, *space2;
2952 isl_multi_aff *ma;
2953 isl_set *set;
2955 space1 = isl_space_domain(isl_pw_aff_get_space(pa1));
2956 space2 = isl_space_domain(isl_pw_aff_get_space(pa2));
2957 space1 = isl_space_map_from_domain_and_range(space1, space2);
2958 ma = isl_multi_aff_domain_map(isl_space_copy(space1));
2959 pa1 = isl_pw_aff_pullback_multi_aff(pa1, ma);
2960 ma = isl_multi_aff_range_map(space1);
2961 pa2 = isl_pw_aff_pullback_multi_aff(pa2, ma);
2962 set = order(pa1, pa2);
2964 return isl_set_unwrap(set);
2967 /* Return a map containing pairs of elements in the domains of "pa1" and "pa2"
2968 * where the function values are equal.
2969 * The parameters of "pa1" and "pa2" are assumed to have been aligned.
2971 static __isl_give isl_map *isl_pw_aff_eq_map_aligned(__isl_take isl_pw_aff *pa1,
2972 __isl_take isl_pw_aff *pa2)
2974 return isl_pw_aff_order_map_aligned(pa1, pa2, &isl_pw_aff_eq_set);
2977 /* Return a map containing pairs of elements in the domains of "pa1" and "pa2"
2978 * where the function values are equal.
2980 __isl_give isl_map *isl_pw_aff_eq_map(__isl_take isl_pw_aff *pa1,
2981 __isl_take isl_pw_aff *pa2)
2983 return align_params_pw_pw_map_and(pa1, pa2, &isl_pw_aff_eq_map_aligned);
2986 /* Return a map containing pairs of elements in the domains of "pa1" and "pa2"
2987 * where the function value of "pa1" is less than the function value of "pa2".
2988 * The parameters of "pa1" and "pa2" are assumed to have been aligned.
2990 static __isl_give isl_map *isl_pw_aff_lt_map_aligned(__isl_take isl_pw_aff *pa1,
2991 __isl_take isl_pw_aff *pa2)
2993 return isl_pw_aff_order_map_aligned(pa1, pa2, &isl_pw_aff_lt_set);
2996 /* Return a map containing pairs of elements in the domains of "pa1" and "pa2"
2997 * where the function value of "pa1" is less than the function value of "pa2".
2999 __isl_give isl_map *isl_pw_aff_lt_map(__isl_take isl_pw_aff *pa1,
3000 __isl_take isl_pw_aff *pa2)
3002 return align_params_pw_pw_map_and(pa1, pa2, &isl_pw_aff_lt_map_aligned);
3005 /* Return a map containing pairs of elements in the domains of "pa1" and "pa2"
3006 * where the function value of "pa1" is greater than the function value
3007 * of "pa2".
3008 * The parameters of "pa1" and "pa2" are assumed to have been aligned.
3010 static __isl_give isl_map *isl_pw_aff_gt_map_aligned(__isl_take isl_pw_aff *pa1,
3011 __isl_take isl_pw_aff *pa2)
3013 return isl_pw_aff_order_map_aligned(pa1, pa2, &isl_pw_aff_gt_set);
3016 /* Return a map containing pairs of elements in the domains of "pa1" and "pa2"
3017 * where the function value of "pa1" is greater than the function value
3018 * of "pa2".
3020 __isl_give isl_map *isl_pw_aff_gt_map(__isl_take isl_pw_aff *pa1,
3021 __isl_take isl_pw_aff *pa2)
3023 return align_params_pw_pw_map_and(pa1, pa2, &isl_pw_aff_gt_map_aligned);
3026 /* Return a set containing those elements in the shared domain
3027 * of the elements of list1 and list2 where each element in list1
3028 * has the relation specified by "fn" with each element in list2.
3030 static __isl_give isl_set *pw_aff_list_set(__isl_take isl_pw_aff_list *list1,
3031 __isl_take isl_pw_aff_list *list2,
3032 __isl_give isl_set *(*fn)(__isl_take isl_pw_aff *pwaff1,
3033 __isl_take isl_pw_aff *pwaff2))
3035 int i, j;
3036 isl_ctx *ctx;
3037 isl_set *set;
3039 if (!list1 || !list2)
3040 goto error;
3042 ctx = isl_pw_aff_list_get_ctx(list1);
3043 if (list1->n < 1 || list2->n < 1)
3044 isl_die(ctx, isl_error_invalid,
3045 "list should contain at least one element", goto error);
3047 set = isl_set_universe(isl_pw_aff_get_domain_space(list1->p[0]));
3048 for (i = 0; i < list1->n; ++i)
3049 for (j = 0; j < list2->n; ++j) {
3050 isl_set *set_ij;
3052 set_ij = fn(isl_pw_aff_copy(list1->p[i]),
3053 isl_pw_aff_copy(list2->p[j]));
3054 set = isl_set_intersect(set, set_ij);
3057 isl_pw_aff_list_free(list1);
3058 isl_pw_aff_list_free(list2);
3059 return set;
3060 error:
3061 isl_pw_aff_list_free(list1);
3062 isl_pw_aff_list_free(list2);
3063 return NULL;
3066 /* Return a set containing those elements in the shared domain
3067 * of the elements of list1 and list2 where each element in list1
3068 * is equal to each element in list2.
3070 __isl_give isl_set *isl_pw_aff_list_eq_set(__isl_take isl_pw_aff_list *list1,
3071 __isl_take isl_pw_aff_list *list2)
3073 return pw_aff_list_set(list1, list2, &isl_pw_aff_eq_set);
3076 __isl_give isl_set *isl_pw_aff_list_ne_set(__isl_take isl_pw_aff_list *list1,
3077 __isl_take isl_pw_aff_list *list2)
3079 return pw_aff_list_set(list1, list2, &isl_pw_aff_ne_set);
3082 /* Return a set containing those elements in the shared domain
3083 * of the elements of list1 and list2 where each element in list1
3084 * is less than or equal to each element in list2.
3086 __isl_give isl_set *isl_pw_aff_list_le_set(__isl_take isl_pw_aff_list *list1,
3087 __isl_take isl_pw_aff_list *list2)
3089 return pw_aff_list_set(list1, list2, &isl_pw_aff_le_set);
3092 __isl_give isl_set *isl_pw_aff_list_lt_set(__isl_take isl_pw_aff_list *list1,
3093 __isl_take isl_pw_aff_list *list2)
3095 return pw_aff_list_set(list1, list2, &isl_pw_aff_lt_set);
3098 __isl_give isl_set *isl_pw_aff_list_ge_set(__isl_take isl_pw_aff_list *list1,
3099 __isl_take isl_pw_aff_list *list2)
3101 return pw_aff_list_set(list1, list2, &isl_pw_aff_ge_set);
3104 __isl_give isl_set *isl_pw_aff_list_gt_set(__isl_take isl_pw_aff_list *list1,
3105 __isl_take isl_pw_aff_list *list2)
3107 return pw_aff_list_set(list1, list2, &isl_pw_aff_gt_set);
3111 /* Return a set containing those elements in the shared domain
3112 * of pwaff1 and pwaff2 where pwaff1 is not equal to pwaff2.
3114 static __isl_give isl_set *pw_aff_ne_set(__isl_take isl_pw_aff *pwaff1,
3115 __isl_take isl_pw_aff *pwaff2)
3117 isl_set *set_lt, *set_gt;
3119 set_lt = isl_pw_aff_lt_set(isl_pw_aff_copy(pwaff1),
3120 isl_pw_aff_copy(pwaff2));
3121 set_gt = isl_pw_aff_gt_set(pwaff1, pwaff2);
3122 return isl_set_union_disjoint(set_lt, set_gt);
3125 __isl_give isl_set *isl_pw_aff_ne_set(__isl_take isl_pw_aff *pwaff1,
3126 __isl_take isl_pw_aff *pwaff2)
3128 return align_params_pw_pw_set_and(pwaff1, pwaff2, &pw_aff_ne_set);
3131 __isl_give isl_pw_aff *isl_pw_aff_scale_down(__isl_take isl_pw_aff *pwaff,
3132 isl_int v)
3134 int i;
3136 if (isl_int_is_one(v))
3137 return pwaff;
3138 if (!isl_int_is_pos(v))
3139 isl_die(isl_pw_aff_get_ctx(pwaff), isl_error_invalid,
3140 "factor needs to be positive",
3141 return isl_pw_aff_free(pwaff));
3142 pwaff = isl_pw_aff_cow(pwaff);
3143 if (!pwaff)
3144 return NULL;
3145 if (pwaff->n == 0)
3146 return pwaff;
3148 for (i = 0; i < pwaff->n; ++i) {
3149 pwaff->p[i].aff = isl_aff_scale_down(pwaff->p[i].aff, v);
3150 if (!pwaff->p[i].aff)
3151 return isl_pw_aff_free(pwaff);
3154 return pwaff;
3157 __isl_give isl_pw_aff *isl_pw_aff_floor(__isl_take isl_pw_aff *pwaff)
3159 int i;
3161 pwaff = isl_pw_aff_cow(pwaff);
3162 if (!pwaff)
3163 return NULL;
3164 if (pwaff->n == 0)
3165 return pwaff;
3167 for (i = 0; i < pwaff->n; ++i) {
3168 pwaff->p[i].aff = isl_aff_floor(pwaff->p[i].aff);
3169 if (!pwaff->p[i].aff)
3170 return isl_pw_aff_free(pwaff);
3173 return pwaff;
3176 __isl_give isl_pw_aff *isl_pw_aff_ceil(__isl_take isl_pw_aff *pwaff)
3178 int i;
3180 pwaff = isl_pw_aff_cow(pwaff);
3181 if (!pwaff)
3182 return NULL;
3183 if (pwaff->n == 0)
3184 return pwaff;
3186 for (i = 0; i < pwaff->n; ++i) {
3187 pwaff->p[i].aff = isl_aff_ceil(pwaff->p[i].aff);
3188 if (!pwaff->p[i].aff)
3189 return isl_pw_aff_free(pwaff);
3192 return pwaff;
3195 /* Assuming that "cond1" and "cond2" are disjoint,
3196 * return an affine expression that is equal to pwaff1 on cond1
3197 * and to pwaff2 on cond2.
3199 static __isl_give isl_pw_aff *isl_pw_aff_select(
3200 __isl_take isl_set *cond1, __isl_take isl_pw_aff *pwaff1,
3201 __isl_take isl_set *cond2, __isl_take isl_pw_aff *pwaff2)
3203 pwaff1 = isl_pw_aff_intersect_domain(pwaff1, cond1);
3204 pwaff2 = isl_pw_aff_intersect_domain(pwaff2, cond2);
3206 return isl_pw_aff_add_disjoint(pwaff1, pwaff2);
3209 /* Return an affine expression that is equal to pwaff_true for elements
3210 * where "cond" is non-zero and to pwaff_false for elements where "cond"
3211 * is zero.
3212 * That is, return cond ? pwaff_true : pwaff_false;
3214 * If "cond" involves and NaN, then we conservatively return a NaN
3215 * on its entire domain. In principle, we could consider the pieces
3216 * where it is NaN separately from those where it is not.
3218 * If "pwaff_true" and "pwaff_false" are obviously equal to each other,
3219 * then only use the domain of "cond" to restrict the domain.
3221 __isl_give isl_pw_aff *isl_pw_aff_cond(__isl_take isl_pw_aff *cond,
3222 __isl_take isl_pw_aff *pwaff_true, __isl_take isl_pw_aff *pwaff_false)
3224 isl_set *cond_true, *cond_false;
3225 isl_bool equal;
3227 if (!cond)
3228 goto error;
3229 if (isl_pw_aff_involves_nan(cond)) {
3230 isl_space *space = isl_pw_aff_get_domain_space(cond);
3231 isl_local_space *ls = isl_local_space_from_space(space);
3232 isl_pw_aff_free(cond);
3233 isl_pw_aff_free(pwaff_true);
3234 isl_pw_aff_free(pwaff_false);
3235 return isl_pw_aff_nan_on_domain(ls);
3238 pwaff_true = isl_pw_aff_align_params(pwaff_true,
3239 isl_pw_aff_get_space(pwaff_false));
3240 pwaff_false = isl_pw_aff_align_params(pwaff_false,
3241 isl_pw_aff_get_space(pwaff_true));
3242 equal = isl_pw_aff_plain_is_equal(pwaff_true, pwaff_false);
3243 if (equal < 0)
3244 goto error;
3245 if (equal) {
3246 isl_set *dom;
3248 dom = isl_set_coalesce(isl_pw_aff_domain(cond));
3249 isl_pw_aff_free(pwaff_false);
3250 return isl_pw_aff_intersect_domain(pwaff_true, dom);
3253 cond_true = isl_pw_aff_non_zero_set(isl_pw_aff_copy(cond));
3254 cond_false = isl_pw_aff_zero_set(cond);
3255 return isl_pw_aff_select(cond_true, pwaff_true,
3256 cond_false, pwaff_false);
3257 error:
3258 isl_pw_aff_free(cond);
3259 isl_pw_aff_free(pwaff_true);
3260 isl_pw_aff_free(pwaff_false);
3261 return NULL;
3264 isl_bool isl_aff_is_cst(__isl_keep isl_aff *aff)
3266 if (!aff)
3267 return isl_bool_error;
3269 return isl_seq_first_non_zero(aff->v->el + 2, aff->v->size - 2) == -1;
3272 /* Check whether pwaff is a piecewise constant.
3274 isl_bool isl_pw_aff_is_cst(__isl_keep isl_pw_aff *pwaff)
3276 int i;
3278 if (!pwaff)
3279 return isl_bool_error;
3281 for (i = 0; i < pwaff->n; ++i) {
3282 isl_bool is_cst = isl_aff_is_cst(pwaff->p[i].aff);
3283 if (is_cst < 0 || !is_cst)
3284 return is_cst;
3287 return isl_bool_true;
3290 /* Are all elements of "mpa" piecewise constants?
3292 isl_bool isl_multi_pw_aff_is_cst(__isl_keep isl_multi_pw_aff *mpa)
3294 int i;
3296 if (!mpa)
3297 return isl_bool_error;
3299 for (i = 0; i < mpa->n; ++i) {
3300 isl_bool is_cst = isl_pw_aff_is_cst(mpa->p[i]);
3301 if (is_cst < 0 || !is_cst)
3302 return is_cst;
3305 return isl_bool_true;
3308 /* Return the product of "aff1" and "aff2".
3310 * If either of the two is NaN, then the result is NaN.
3312 * Otherwise, at least one of "aff1" or "aff2" needs to be a constant.
3314 __isl_give isl_aff *isl_aff_mul(__isl_take isl_aff *aff1,
3315 __isl_take isl_aff *aff2)
3317 if (!aff1 || !aff2)
3318 goto error;
3320 if (isl_aff_is_nan(aff1)) {
3321 isl_aff_free(aff2);
3322 return aff1;
3324 if (isl_aff_is_nan(aff2)) {
3325 isl_aff_free(aff1);
3326 return aff2;
3329 if (!isl_aff_is_cst(aff2) && isl_aff_is_cst(aff1))
3330 return isl_aff_mul(aff2, aff1);
3332 if (!isl_aff_is_cst(aff2))
3333 isl_die(isl_aff_get_ctx(aff1), isl_error_invalid,
3334 "at least one affine expression should be constant",
3335 goto error);
3337 aff1 = isl_aff_cow(aff1);
3338 if (!aff1 || !aff2)
3339 goto error;
3341 aff1 = isl_aff_scale(aff1, aff2->v->el[1]);
3342 aff1 = isl_aff_scale_down(aff1, aff2->v->el[0]);
3344 isl_aff_free(aff2);
3345 return aff1;
3346 error:
3347 isl_aff_free(aff1);
3348 isl_aff_free(aff2);
3349 return NULL;
3352 /* Divide "aff1" by "aff2", assuming "aff2" is a constant.
3354 * If either of the two is NaN, then the result is NaN.
3356 __isl_give isl_aff *isl_aff_div(__isl_take isl_aff *aff1,
3357 __isl_take isl_aff *aff2)
3359 int is_cst;
3360 int neg;
3362 if (!aff1 || !aff2)
3363 goto error;
3365 if (isl_aff_is_nan(aff1)) {
3366 isl_aff_free(aff2);
3367 return aff1;
3369 if (isl_aff_is_nan(aff2)) {
3370 isl_aff_free(aff1);
3371 return aff2;
3374 is_cst = isl_aff_is_cst(aff2);
3375 if (is_cst < 0)
3376 goto error;
3377 if (!is_cst)
3378 isl_die(isl_aff_get_ctx(aff2), isl_error_invalid,
3379 "second argument should be a constant", goto error);
3381 if (!aff2)
3382 goto error;
3384 neg = isl_int_is_neg(aff2->v->el[1]);
3385 if (neg) {
3386 isl_int_neg(aff2->v->el[0], aff2->v->el[0]);
3387 isl_int_neg(aff2->v->el[1], aff2->v->el[1]);
3390 aff1 = isl_aff_scale(aff1, aff2->v->el[0]);
3391 aff1 = isl_aff_scale_down(aff1, aff2->v->el[1]);
3393 if (neg) {
3394 isl_int_neg(aff2->v->el[0], aff2->v->el[0]);
3395 isl_int_neg(aff2->v->el[1], aff2->v->el[1]);
3398 isl_aff_free(aff2);
3399 return aff1;
3400 error:
3401 isl_aff_free(aff1);
3402 isl_aff_free(aff2);
3403 return NULL;
3406 static __isl_give isl_pw_aff *pw_aff_add(__isl_take isl_pw_aff *pwaff1,
3407 __isl_take isl_pw_aff *pwaff2)
3409 return isl_pw_aff_on_shared_domain(pwaff1, pwaff2, &isl_aff_add);
3412 __isl_give isl_pw_aff *isl_pw_aff_add(__isl_take isl_pw_aff *pwaff1,
3413 __isl_take isl_pw_aff *pwaff2)
3415 return isl_pw_aff_align_params_pw_pw_and(pwaff1, pwaff2, &pw_aff_add);
3418 __isl_give isl_pw_aff *isl_pw_aff_union_add(__isl_take isl_pw_aff *pwaff1,
3419 __isl_take isl_pw_aff *pwaff2)
3421 return isl_pw_aff_union_add_(pwaff1, pwaff2);
3424 static __isl_give isl_pw_aff *pw_aff_mul(__isl_take isl_pw_aff *pwaff1,
3425 __isl_take isl_pw_aff *pwaff2)
3427 return isl_pw_aff_on_shared_domain(pwaff1, pwaff2, &isl_aff_mul);
3430 __isl_give isl_pw_aff *isl_pw_aff_mul(__isl_take isl_pw_aff *pwaff1,
3431 __isl_take isl_pw_aff *pwaff2)
3433 return isl_pw_aff_align_params_pw_pw_and(pwaff1, pwaff2, &pw_aff_mul);
3436 static __isl_give isl_pw_aff *pw_aff_div(__isl_take isl_pw_aff *pa1,
3437 __isl_take isl_pw_aff *pa2)
3439 return isl_pw_aff_on_shared_domain(pa1, pa2, &isl_aff_div);
3442 /* Divide "pa1" by "pa2", assuming "pa2" is a piecewise constant.
3444 __isl_give isl_pw_aff *isl_pw_aff_div(__isl_take isl_pw_aff *pa1,
3445 __isl_take isl_pw_aff *pa2)
3447 int is_cst;
3449 is_cst = isl_pw_aff_is_cst(pa2);
3450 if (is_cst < 0)
3451 goto error;
3452 if (!is_cst)
3453 isl_die(isl_pw_aff_get_ctx(pa2), isl_error_invalid,
3454 "second argument should be a piecewise constant",
3455 goto error);
3456 return isl_pw_aff_align_params_pw_pw_and(pa1, pa2, &pw_aff_div);
3457 error:
3458 isl_pw_aff_free(pa1);
3459 isl_pw_aff_free(pa2);
3460 return NULL;
3463 /* Compute the quotient of the integer division of "pa1" by "pa2"
3464 * with rounding towards zero.
3465 * "pa2" is assumed to be a piecewise constant.
3467 * In particular, return
3469 * pa1 >= 0 ? floor(pa1/pa2) : ceil(pa1/pa2)
3472 __isl_give isl_pw_aff *isl_pw_aff_tdiv_q(__isl_take isl_pw_aff *pa1,
3473 __isl_take isl_pw_aff *pa2)
3475 int is_cst;
3476 isl_set *cond;
3477 isl_pw_aff *f, *c;
3479 is_cst = isl_pw_aff_is_cst(pa2);
3480 if (is_cst < 0)
3481 goto error;
3482 if (!is_cst)
3483 isl_die(isl_pw_aff_get_ctx(pa2), isl_error_invalid,
3484 "second argument should be a piecewise constant",
3485 goto error);
3487 pa1 = isl_pw_aff_div(pa1, pa2);
3489 cond = isl_pw_aff_nonneg_set(isl_pw_aff_copy(pa1));
3490 f = isl_pw_aff_floor(isl_pw_aff_copy(pa1));
3491 c = isl_pw_aff_ceil(pa1);
3492 return isl_pw_aff_cond(isl_set_indicator_function(cond), f, c);
3493 error:
3494 isl_pw_aff_free(pa1);
3495 isl_pw_aff_free(pa2);
3496 return NULL;
3499 /* Compute the remainder of the integer division of "pa1" by "pa2"
3500 * with rounding towards zero.
3501 * "pa2" is assumed to be a piecewise constant.
3503 * In particular, return
3505 * pa1 - pa2 * (pa1 >= 0 ? floor(pa1/pa2) : ceil(pa1/pa2))
3508 __isl_give isl_pw_aff *isl_pw_aff_tdiv_r(__isl_take isl_pw_aff *pa1,
3509 __isl_take isl_pw_aff *pa2)
3511 int is_cst;
3512 isl_pw_aff *res;
3514 is_cst = isl_pw_aff_is_cst(pa2);
3515 if (is_cst < 0)
3516 goto error;
3517 if (!is_cst)
3518 isl_die(isl_pw_aff_get_ctx(pa2), isl_error_invalid,
3519 "second argument should be a piecewise constant",
3520 goto error);
3521 res = isl_pw_aff_tdiv_q(isl_pw_aff_copy(pa1), isl_pw_aff_copy(pa2));
3522 res = isl_pw_aff_mul(pa2, res);
3523 res = isl_pw_aff_sub(pa1, res);
3524 return res;
3525 error:
3526 isl_pw_aff_free(pa1);
3527 isl_pw_aff_free(pa2);
3528 return NULL;
3531 static __isl_give isl_pw_aff *pw_aff_min(__isl_take isl_pw_aff *pwaff1,
3532 __isl_take isl_pw_aff *pwaff2)
3534 isl_set *le;
3535 isl_set *dom;
3537 dom = isl_set_intersect(isl_pw_aff_domain(isl_pw_aff_copy(pwaff1)),
3538 isl_pw_aff_domain(isl_pw_aff_copy(pwaff2)));
3539 le = isl_pw_aff_le_set(isl_pw_aff_copy(pwaff1),
3540 isl_pw_aff_copy(pwaff2));
3541 dom = isl_set_subtract(dom, isl_set_copy(le));
3542 return isl_pw_aff_select(le, pwaff1, dom, pwaff2);
3545 __isl_give isl_pw_aff *isl_pw_aff_min(__isl_take isl_pw_aff *pwaff1,
3546 __isl_take isl_pw_aff *pwaff2)
3548 return isl_pw_aff_align_params_pw_pw_and(pwaff1, pwaff2, &pw_aff_min);
3551 static __isl_give isl_pw_aff *pw_aff_max(__isl_take isl_pw_aff *pwaff1,
3552 __isl_take isl_pw_aff *pwaff2)
3554 isl_set *ge;
3555 isl_set *dom;
3557 dom = isl_set_intersect(isl_pw_aff_domain(isl_pw_aff_copy(pwaff1)),
3558 isl_pw_aff_domain(isl_pw_aff_copy(pwaff2)));
3559 ge = isl_pw_aff_ge_set(isl_pw_aff_copy(pwaff1),
3560 isl_pw_aff_copy(pwaff2));
3561 dom = isl_set_subtract(dom, isl_set_copy(ge));
3562 return isl_pw_aff_select(ge, pwaff1, dom, pwaff2);
3565 __isl_give isl_pw_aff *isl_pw_aff_max(__isl_take isl_pw_aff *pwaff1,
3566 __isl_take isl_pw_aff *pwaff2)
3568 return isl_pw_aff_align_params_pw_pw_and(pwaff1, pwaff2, &pw_aff_max);
3571 static __isl_give isl_pw_aff *pw_aff_list_reduce(
3572 __isl_take isl_pw_aff_list *list,
3573 __isl_give isl_pw_aff *(*fn)(__isl_take isl_pw_aff *pwaff1,
3574 __isl_take isl_pw_aff *pwaff2))
3576 int i;
3577 isl_ctx *ctx;
3578 isl_pw_aff *res;
3580 if (!list)
3581 return NULL;
3583 ctx = isl_pw_aff_list_get_ctx(list);
3584 if (list->n < 1)
3585 isl_die(ctx, isl_error_invalid,
3586 "list should contain at least one element", goto error);
3588 res = isl_pw_aff_copy(list->p[0]);
3589 for (i = 1; i < list->n; ++i)
3590 res = fn(res, isl_pw_aff_copy(list->p[i]));
3592 isl_pw_aff_list_free(list);
3593 return res;
3594 error:
3595 isl_pw_aff_list_free(list);
3596 return NULL;
3599 /* Return an isl_pw_aff that maps each element in the intersection of the
3600 * domains of the elements of list to the minimal corresponding affine
3601 * expression.
3603 __isl_give isl_pw_aff *isl_pw_aff_list_min(__isl_take isl_pw_aff_list *list)
3605 return pw_aff_list_reduce(list, &isl_pw_aff_min);
3608 /* Return an isl_pw_aff that maps each element in the intersection of the
3609 * domains of the elements of list to the maximal corresponding affine
3610 * expression.
3612 __isl_give isl_pw_aff *isl_pw_aff_list_max(__isl_take isl_pw_aff_list *list)
3614 return pw_aff_list_reduce(list, &isl_pw_aff_max);
3617 /* Mark the domains of "pwaff" as rational.
3619 __isl_give isl_pw_aff *isl_pw_aff_set_rational(__isl_take isl_pw_aff *pwaff)
3621 int i;
3623 pwaff = isl_pw_aff_cow(pwaff);
3624 if (!pwaff)
3625 return NULL;
3626 if (pwaff->n == 0)
3627 return pwaff;
3629 for (i = 0; i < pwaff->n; ++i) {
3630 pwaff->p[i].set = isl_set_set_rational(pwaff->p[i].set);
3631 if (!pwaff->p[i].set)
3632 return isl_pw_aff_free(pwaff);
3635 return pwaff;
3638 /* Mark the domains of the elements of "list" as rational.
3640 __isl_give isl_pw_aff_list *isl_pw_aff_list_set_rational(
3641 __isl_take isl_pw_aff_list *list)
3643 int i, n;
3645 if (!list)
3646 return NULL;
3647 if (list->n == 0)
3648 return list;
3650 n = list->n;
3651 for (i = 0; i < n; ++i) {
3652 isl_pw_aff *pa;
3654 pa = isl_pw_aff_list_get_pw_aff(list, i);
3655 pa = isl_pw_aff_set_rational(pa);
3656 list = isl_pw_aff_list_set_pw_aff(list, i, pa);
3659 return list;
3662 /* Do the parameters of "aff" match those of "space"?
3664 int isl_aff_matching_params(__isl_keep isl_aff *aff,
3665 __isl_keep isl_space *space)
3667 isl_space *aff_space;
3668 int match;
3670 if (!aff || !space)
3671 return -1;
3673 aff_space = isl_aff_get_domain_space(aff);
3675 match = isl_space_match(space, isl_dim_param, aff_space, isl_dim_param);
3677 isl_space_free(aff_space);
3678 return match;
3681 /* Check that the domain space of "aff" matches "space".
3683 * Return 0 on success and -1 on error.
3685 int isl_aff_check_match_domain_space(__isl_keep isl_aff *aff,
3686 __isl_keep isl_space *space)
3688 isl_space *aff_space;
3689 int match;
3691 if (!aff || !space)
3692 return -1;
3694 aff_space = isl_aff_get_domain_space(aff);
3696 match = isl_space_match(space, isl_dim_param, aff_space, isl_dim_param);
3697 if (match < 0)
3698 goto error;
3699 if (!match)
3700 isl_die(isl_aff_get_ctx(aff), isl_error_invalid,
3701 "parameters don't match", goto error);
3702 match = isl_space_tuple_is_equal(space, isl_dim_in,
3703 aff_space, isl_dim_set);
3704 if (match < 0)
3705 goto error;
3706 if (!match)
3707 isl_die(isl_aff_get_ctx(aff), isl_error_invalid,
3708 "domains don't match", goto error);
3709 isl_space_free(aff_space);
3710 return 0;
3711 error:
3712 isl_space_free(aff_space);
3713 return -1;
3716 #undef BASE
3717 #define BASE aff
3718 #undef DOMBASE
3719 #define DOMBASE set
3720 #define NO_DOMAIN
3722 #include <isl_multi_templ.c>
3723 #include <isl_multi_apply_set.c>
3724 #include <isl_multi_cmp.c>
3725 #include <isl_multi_floor.c>
3726 #include <isl_multi_gist.c>
3728 #undef NO_DOMAIN
3730 /* Remove any internal structure of the domain of "ma".
3731 * If there is any such internal structure in the input,
3732 * then the name of the corresponding space is also removed.
3734 __isl_give isl_multi_aff *isl_multi_aff_flatten_domain(
3735 __isl_take isl_multi_aff *ma)
3737 isl_space *space;
3739 if (!ma)
3740 return NULL;
3742 if (!ma->space->nested[0])
3743 return ma;
3745 space = isl_multi_aff_get_space(ma);
3746 space = isl_space_flatten_domain(space);
3747 ma = isl_multi_aff_reset_space(ma, space);
3749 return ma;
3752 /* Given a map space, return an isl_multi_aff that maps a wrapped copy
3753 * of the space to its domain.
3755 __isl_give isl_multi_aff *isl_multi_aff_domain_map(__isl_take isl_space *space)
3757 int i, n_in;
3758 isl_local_space *ls;
3759 isl_multi_aff *ma;
3761 if (!space)
3762 return NULL;
3763 if (!isl_space_is_map(space))
3764 isl_die(isl_space_get_ctx(space), isl_error_invalid,
3765 "not a map space", goto error);
3767 n_in = isl_space_dim(space, isl_dim_in);
3768 space = isl_space_domain_map(space);
3770 ma = isl_multi_aff_alloc(isl_space_copy(space));
3771 if (n_in == 0) {
3772 isl_space_free(space);
3773 return ma;
3776 space = isl_space_domain(space);
3777 ls = isl_local_space_from_space(space);
3778 for (i = 0; i < n_in; ++i) {
3779 isl_aff *aff;
3781 aff = isl_aff_var_on_domain(isl_local_space_copy(ls),
3782 isl_dim_set, i);
3783 ma = isl_multi_aff_set_aff(ma, i, aff);
3785 isl_local_space_free(ls);
3786 return ma;
3787 error:
3788 isl_space_free(space);
3789 return NULL;
3792 /* Given a map space, return an isl_multi_aff that maps a wrapped copy
3793 * of the space to its range.
3795 __isl_give isl_multi_aff *isl_multi_aff_range_map(__isl_take isl_space *space)
3797 int i, n_in, n_out;
3798 isl_local_space *ls;
3799 isl_multi_aff *ma;
3801 if (!space)
3802 return NULL;
3803 if (!isl_space_is_map(space))
3804 isl_die(isl_space_get_ctx(space), isl_error_invalid,
3805 "not a map space", goto error);
3807 n_in = isl_space_dim(space, isl_dim_in);
3808 n_out = isl_space_dim(space, isl_dim_out);
3809 space = isl_space_range_map(space);
3811 ma = isl_multi_aff_alloc(isl_space_copy(space));
3812 if (n_out == 0) {
3813 isl_space_free(space);
3814 return ma;
3817 space = isl_space_domain(space);
3818 ls = isl_local_space_from_space(space);
3819 for (i = 0; i < n_out; ++i) {
3820 isl_aff *aff;
3822 aff = isl_aff_var_on_domain(isl_local_space_copy(ls),
3823 isl_dim_set, n_in + i);
3824 ma = isl_multi_aff_set_aff(ma, i, aff);
3826 isl_local_space_free(ls);
3827 return ma;
3828 error:
3829 isl_space_free(space);
3830 return NULL;
3833 /* Given a map space, return an isl_pw_multi_aff that maps a wrapped copy
3834 * of the space to its range.
3836 __isl_give isl_pw_multi_aff *isl_pw_multi_aff_range_map(
3837 __isl_take isl_space *space)
3839 return isl_pw_multi_aff_from_multi_aff(isl_multi_aff_range_map(space));
3842 /* Given the space of a set and a range of set dimensions,
3843 * construct an isl_multi_aff that projects out those dimensions.
3845 __isl_give isl_multi_aff *isl_multi_aff_project_out_map(
3846 __isl_take isl_space *space, enum isl_dim_type type,
3847 unsigned first, unsigned n)
3849 int i, dim;
3850 isl_local_space *ls;
3851 isl_multi_aff *ma;
3853 if (!space)
3854 return NULL;
3855 if (!isl_space_is_set(space))
3856 isl_die(isl_space_get_ctx(space), isl_error_unsupported,
3857 "expecting set space", goto error);
3858 if (type != isl_dim_set)
3859 isl_die(isl_space_get_ctx(space), isl_error_invalid,
3860 "only set dimensions can be projected out", goto error);
3862 dim = isl_space_dim(space, isl_dim_set);
3863 if (first + n > dim)
3864 isl_die(isl_space_get_ctx(space), isl_error_invalid,
3865 "range out of bounds", goto error);
3867 space = isl_space_from_domain(space);
3868 space = isl_space_add_dims(space, isl_dim_out, dim - n);
3870 if (dim == n)
3871 return isl_multi_aff_alloc(space);
3873 ma = isl_multi_aff_alloc(isl_space_copy(space));
3874 space = isl_space_domain(space);
3875 ls = isl_local_space_from_space(space);
3877 for (i = 0; i < first; ++i) {
3878 isl_aff *aff;
3880 aff = isl_aff_var_on_domain(isl_local_space_copy(ls),
3881 isl_dim_set, i);
3882 ma = isl_multi_aff_set_aff(ma, i, aff);
3885 for (i = 0; i < dim - (first + n); ++i) {
3886 isl_aff *aff;
3888 aff = isl_aff_var_on_domain(isl_local_space_copy(ls),
3889 isl_dim_set, first + n + i);
3890 ma = isl_multi_aff_set_aff(ma, first + i, aff);
3893 isl_local_space_free(ls);
3894 return ma;
3895 error:
3896 isl_space_free(space);
3897 return NULL;
3900 /* Given the space of a set and a range of set dimensions,
3901 * construct an isl_pw_multi_aff that projects out those dimensions.
3903 __isl_give isl_pw_multi_aff *isl_pw_multi_aff_project_out_map(
3904 __isl_take isl_space *space, enum isl_dim_type type,
3905 unsigned first, unsigned n)
3907 isl_multi_aff *ma;
3909 ma = isl_multi_aff_project_out_map(space, type, first, n);
3910 return isl_pw_multi_aff_from_multi_aff(ma);
3913 /* Create an isl_pw_multi_aff with the given isl_multi_aff on a universe
3914 * domain.
3916 __isl_give isl_pw_multi_aff *isl_pw_multi_aff_from_multi_aff(
3917 __isl_take isl_multi_aff *ma)
3919 isl_set *dom = isl_set_universe(isl_multi_aff_get_domain_space(ma));
3920 return isl_pw_multi_aff_alloc(dom, ma);
3923 /* Create a piecewise multi-affine expression in the given space that maps each
3924 * input dimension to the corresponding output dimension.
3926 __isl_give isl_pw_multi_aff *isl_pw_multi_aff_identity(
3927 __isl_take isl_space *space)
3929 return isl_pw_multi_aff_from_multi_aff(isl_multi_aff_identity(space));
3932 /* Exploit the equalities in "eq" to simplify the affine expressions.
3934 static __isl_give isl_multi_aff *isl_multi_aff_substitute_equalities(
3935 __isl_take isl_multi_aff *maff, __isl_take isl_basic_set *eq)
3937 int i;
3939 maff = isl_multi_aff_cow(maff);
3940 if (!maff || !eq)
3941 goto error;
3943 for (i = 0; i < maff->n; ++i) {
3944 maff->p[i] = isl_aff_substitute_equalities(maff->p[i],
3945 isl_basic_set_copy(eq));
3946 if (!maff->p[i])
3947 goto error;
3950 isl_basic_set_free(eq);
3951 return maff;
3952 error:
3953 isl_basic_set_free(eq);
3954 isl_multi_aff_free(maff);
3955 return NULL;
3958 __isl_give isl_multi_aff *isl_multi_aff_scale(__isl_take isl_multi_aff *maff,
3959 isl_int f)
3961 int i;
3963 maff = isl_multi_aff_cow(maff);
3964 if (!maff)
3965 return NULL;
3967 for (i = 0; i < maff->n; ++i) {
3968 maff->p[i] = isl_aff_scale(maff->p[i], f);
3969 if (!maff->p[i])
3970 return isl_multi_aff_free(maff);
3973 return maff;
3976 __isl_give isl_multi_aff *isl_multi_aff_add_on_domain(__isl_keep isl_set *dom,
3977 __isl_take isl_multi_aff *maff1, __isl_take isl_multi_aff *maff2)
3979 maff1 = isl_multi_aff_add(maff1, maff2);
3980 maff1 = isl_multi_aff_gist(maff1, isl_set_copy(dom));
3981 return maff1;
3984 int isl_multi_aff_is_empty(__isl_keep isl_multi_aff *maff)
3986 if (!maff)
3987 return -1;
3989 return 0;
3992 /* Return the set of domain elements where "ma1" is lexicographically
3993 * smaller than or equal to "ma2".
3995 __isl_give isl_set *isl_multi_aff_lex_le_set(__isl_take isl_multi_aff *ma1,
3996 __isl_take isl_multi_aff *ma2)
3998 return isl_multi_aff_lex_ge_set(ma2, ma1);
4001 /* Return the set of domain elements where "ma1" is lexicographically
4002 * smaller than "ma2".
4004 __isl_give isl_set *isl_multi_aff_lex_lt_set(__isl_take isl_multi_aff *ma1,
4005 __isl_take isl_multi_aff *ma2)
4007 return isl_multi_aff_lex_gt_set(ma2, ma1);
4010 /* Return the set of domain elements where "ma1" and "ma2"
4011 * satisfy "order".
4013 static __isl_give isl_set *isl_multi_aff_order_set(
4014 __isl_take isl_multi_aff *ma1, __isl_take isl_multi_aff *ma2,
4015 __isl_give isl_map *order(__isl_take isl_space *set_space))
4017 isl_space *space;
4018 isl_map *map1, *map2;
4019 isl_map *map, *ge;
4021 map1 = isl_map_from_multi_aff(ma1);
4022 map2 = isl_map_from_multi_aff(ma2);
4023 map = isl_map_range_product(map1, map2);
4024 space = isl_space_range(isl_map_get_space(map));
4025 space = isl_space_domain(isl_space_unwrap(space));
4026 ge = order(space);
4027 map = isl_map_intersect_range(map, isl_map_wrap(ge));
4029 return isl_map_domain(map);
4032 /* Return the set of domain elements where "ma1" is lexicographically
4033 * greater than or equal to "ma2".
4035 __isl_give isl_set *isl_multi_aff_lex_ge_set(__isl_take isl_multi_aff *ma1,
4036 __isl_take isl_multi_aff *ma2)
4038 return isl_multi_aff_order_set(ma1, ma2, &isl_map_lex_ge);
4041 /* Return the set of domain elements where "ma1" is lexicographically
4042 * greater than "ma2".
4044 __isl_give isl_set *isl_multi_aff_lex_gt_set(__isl_take isl_multi_aff *ma1,
4045 __isl_take isl_multi_aff *ma2)
4047 return isl_multi_aff_order_set(ma1, ma2, &isl_map_lex_gt);
4050 #undef PW
4051 #define PW isl_pw_multi_aff
4052 #undef EL
4053 #define EL isl_multi_aff
4054 #undef EL_IS_ZERO
4055 #define EL_IS_ZERO is_empty
4056 #undef ZERO
4057 #define ZERO empty
4058 #undef IS_ZERO
4059 #define IS_ZERO is_empty
4060 #undef FIELD
4061 #define FIELD maff
4062 #undef DEFAULT_IS_ZERO
4063 #define DEFAULT_IS_ZERO 0
4065 #define NO_SUB
4066 #define NO_EVAL
4067 #define NO_OPT
4068 #define NO_INVOLVES_DIMS
4069 #define NO_INSERT_DIMS
4070 #define NO_LIFT
4071 #define NO_MORPH
4073 #include <isl_pw_templ.c>
4074 #include <isl_pw_union_opt.c>
4076 #undef NO_SUB
4078 #undef UNION
4079 #define UNION isl_union_pw_multi_aff
4080 #undef PART
4081 #define PART isl_pw_multi_aff
4082 #undef PARTS
4083 #define PARTS pw_multi_aff
4085 #include <isl_union_multi.c>
4086 #include <isl_union_neg.c>
4088 static __isl_give isl_pw_multi_aff *pw_multi_aff_union_lexmax(
4089 __isl_take isl_pw_multi_aff *pma1,
4090 __isl_take isl_pw_multi_aff *pma2)
4092 return isl_pw_multi_aff_union_opt_cmp(pma1, pma2,
4093 &isl_multi_aff_lex_ge_set);
4096 /* Given two piecewise multi affine expressions, return a piecewise
4097 * multi-affine expression defined on the union of the definition domains
4098 * of the inputs that is equal to the lexicographic maximum of the two
4099 * inputs on each cell. If only one of the two inputs is defined on
4100 * a given cell, then it is considered to be the maximum.
4102 __isl_give isl_pw_multi_aff *isl_pw_multi_aff_union_lexmax(
4103 __isl_take isl_pw_multi_aff *pma1,
4104 __isl_take isl_pw_multi_aff *pma2)
4106 return isl_pw_multi_aff_align_params_pw_pw_and(pma1, pma2,
4107 &pw_multi_aff_union_lexmax);
4110 static __isl_give isl_pw_multi_aff *pw_multi_aff_union_lexmin(
4111 __isl_take isl_pw_multi_aff *pma1,
4112 __isl_take isl_pw_multi_aff *pma2)
4114 return isl_pw_multi_aff_union_opt_cmp(pma1, pma2,
4115 &isl_multi_aff_lex_le_set);
4118 /* Given two piecewise multi affine expressions, return a piecewise
4119 * multi-affine expression defined on the union of the definition domains
4120 * of the inputs that is equal to the lexicographic minimum of the two
4121 * inputs on each cell. If only one of the two inputs is defined on
4122 * a given cell, then it is considered to be the minimum.
4124 __isl_give isl_pw_multi_aff *isl_pw_multi_aff_union_lexmin(
4125 __isl_take isl_pw_multi_aff *pma1,
4126 __isl_take isl_pw_multi_aff *pma2)
4128 return isl_pw_multi_aff_align_params_pw_pw_and(pma1, pma2,
4129 &pw_multi_aff_union_lexmin);
4132 static __isl_give isl_pw_multi_aff *pw_multi_aff_add(
4133 __isl_take isl_pw_multi_aff *pma1, __isl_take isl_pw_multi_aff *pma2)
4135 return isl_pw_multi_aff_on_shared_domain(pma1, pma2,
4136 &isl_multi_aff_add);
4139 __isl_give isl_pw_multi_aff *isl_pw_multi_aff_add(
4140 __isl_take isl_pw_multi_aff *pma1, __isl_take isl_pw_multi_aff *pma2)
4142 return isl_pw_multi_aff_align_params_pw_pw_and(pma1, pma2,
4143 &pw_multi_aff_add);
4146 static __isl_give isl_pw_multi_aff *pw_multi_aff_sub(
4147 __isl_take isl_pw_multi_aff *pma1, __isl_take isl_pw_multi_aff *pma2)
4149 return isl_pw_multi_aff_on_shared_domain(pma1, pma2,
4150 &isl_multi_aff_sub);
4153 /* Subtract "pma2" from "pma1" and return the result.
4155 __isl_give isl_pw_multi_aff *isl_pw_multi_aff_sub(
4156 __isl_take isl_pw_multi_aff *pma1, __isl_take isl_pw_multi_aff *pma2)
4158 return isl_pw_multi_aff_align_params_pw_pw_and(pma1, pma2,
4159 &pw_multi_aff_sub);
4162 __isl_give isl_pw_multi_aff *isl_pw_multi_aff_union_add(
4163 __isl_take isl_pw_multi_aff *pma1, __isl_take isl_pw_multi_aff *pma2)
4165 return isl_pw_multi_aff_union_add_(pma1, pma2);
4168 /* Compute the sum of "upa1" and "upa2" on the union of their domains,
4169 * with the actual sum on the shared domain and
4170 * the defined expression on the symmetric difference of the domains.
4172 __isl_give isl_union_pw_aff *isl_union_pw_aff_union_add(
4173 __isl_take isl_union_pw_aff *upa1, __isl_take isl_union_pw_aff *upa2)
4175 return isl_union_pw_aff_union_add_(upa1, upa2);
4178 /* Compute the sum of "upma1" and "upma2" on the union of their domains,
4179 * with the actual sum on the shared domain and
4180 * the defined expression on the symmetric difference of the domains.
4182 __isl_give isl_union_pw_multi_aff *isl_union_pw_multi_aff_union_add(
4183 __isl_take isl_union_pw_multi_aff *upma1,
4184 __isl_take isl_union_pw_multi_aff *upma2)
4186 return isl_union_pw_multi_aff_union_add_(upma1, upma2);
4189 /* Given two piecewise multi-affine expressions A -> B and C -> D,
4190 * construct a piecewise multi-affine expression [A -> C] -> [B -> D].
4192 static __isl_give isl_pw_multi_aff *pw_multi_aff_product(
4193 __isl_take isl_pw_multi_aff *pma1, __isl_take isl_pw_multi_aff *pma2)
4195 int i, j, n;
4196 isl_space *space;
4197 isl_pw_multi_aff *res;
4199 if (!pma1 || !pma2)
4200 goto error;
4202 n = pma1->n * pma2->n;
4203 space = isl_space_product(isl_space_copy(pma1->dim),
4204 isl_space_copy(pma2->dim));
4205 res = isl_pw_multi_aff_alloc_size(space, n);
4207 for (i = 0; i < pma1->n; ++i) {
4208 for (j = 0; j < pma2->n; ++j) {
4209 isl_set *domain;
4210 isl_multi_aff *ma;
4212 domain = isl_set_product(isl_set_copy(pma1->p[i].set),
4213 isl_set_copy(pma2->p[j].set));
4214 ma = isl_multi_aff_product(
4215 isl_multi_aff_copy(pma1->p[i].maff),
4216 isl_multi_aff_copy(pma2->p[j].maff));
4217 res = isl_pw_multi_aff_add_piece(res, domain, ma);
4221 isl_pw_multi_aff_free(pma1);
4222 isl_pw_multi_aff_free(pma2);
4223 return res;
4224 error:
4225 isl_pw_multi_aff_free(pma1);
4226 isl_pw_multi_aff_free(pma2);
4227 return NULL;
4230 __isl_give isl_pw_multi_aff *isl_pw_multi_aff_product(
4231 __isl_take isl_pw_multi_aff *pma1, __isl_take isl_pw_multi_aff *pma2)
4233 return isl_pw_multi_aff_align_params_pw_pw_and(pma1, pma2,
4234 &pw_multi_aff_product);
4237 /* Construct a map mapping the domain of the piecewise multi-affine expression
4238 * to its range, with each dimension in the range equated to the
4239 * corresponding affine expression on its cell.
4241 * If the domain of "pma" is rational, then so is the constructed "map".
4243 __isl_give isl_map *isl_map_from_pw_multi_aff(__isl_take isl_pw_multi_aff *pma)
4245 int i;
4246 isl_map *map;
4248 if (!pma)
4249 return NULL;
4251 map = isl_map_empty(isl_pw_multi_aff_get_space(pma));
4253 for (i = 0; i < pma->n; ++i) {
4254 isl_bool rational;
4255 isl_multi_aff *maff;
4256 isl_basic_map *bmap;
4257 isl_map *map_i;
4259 rational = isl_set_is_rational(pma->p[i].set);
4260 if (rational < 0)
4261 map = isl_map_free(map);
4262 maff = isl_multi_aff_copy(pma->p[i].maff);
4263 bmap = isl_basic_map_from_multi_aff2(maff, rational);
4264 map_i = isl_map_from_basic_map(bmap);
4265 map_i = isl_map_intersect_domain(map_i,
4266 isl_set_copy(pma->p[i].set));
4267 map = isl_map_union_disjoint(map, map_i);
4270 isl_pw_multi_aff_free(pma);
4271 return map;
4274 __isl_give isl_set *isl_set_from_pw_multi_aff(__isl_take isl_pw_multi_aff *pma)
4276 if (!pma)
4277 return NULL;
4279 if (!isl_space_is_set(pma->dim))
4280 isl_die(isl_pw_multi_aff_get_ctx(pma), isl_error_invalid,
4281 "isl_pw_multi_aff cannot be converted into an isl_set",
4282 goto error);
4284 return isl_map_from_pw_multi_aff(pma);
4285 error:
4286 isl_pw_multi_aff_free(pma);
4287 return NULL;
4290 /* Subtract the initial "n" elements in "ma" with coefficients in "c" and
4291 * denominator "denom".
4292 * "denom" is allowed to be negative, in which case the actual denominator
4293 * is -denom and the expressions are added instead.
4295 static __isl_give isl_aff *subtract_initial(__isl_take isl_aff *aff,
4296 __isl_keep isl_multi_aff *ma, int n, isl_int *c, isl_int denom)
4298 int i, first;
4299 int sign;
4300 isl_int d;
4302 first = isl_seq_first_non_zero(c, n);
4303 if (first == -1)
4304 return aff;
4306 sign = isl_int_sgn(denom);
4307 isl_int_init(d);
4308 isl_int_abs(d, denom);
4309 for (i = first; i < n; ++i) {
4310 isl_aff *aff_i;
4312 if (isl_int_is_zero(c[i]))
4313 continue;
4314 aff_i = isl_multi_aff_get_aff(ma, i);
4315 aff_i = isl_aff_scale(aff_i, c[i]);
4316 aff_i = isl_aff_scale_down(aff_i, d);
4317 if (sign >= 0)
4318 aff = isl_aff_sub(aff, aff_i);
4319 else
4320 aff = isl_aff_add(aff, aff_i);
4322 isl_int_clear(d);
4324 return aff;
4327 /* Extract an affine expression that expresses the output dimension "pos"
4328 * of "bmap" in terms of the parameters and input dimensions from
4329 * equality "eq".
4330 * Note that this expression may involve integer divisions defined
4331 * in terms of parameters and input dimensions.
4332 * The equality may also involve references to earlier (but not later)
4333 * output dimensions. These are replaced by the corresponding elements
4334 * in "ma".
4336 * If the equality is of the form
4338 * f(i) + h(j) + a x + g(i) = 0,
4340 * with f(i) a linear combinations of the parameters and input dimensions,
4341 * g(i) a linear combination of integer divisions defined in terms of the same
4342 * and h(j) a linear combinations of earlier output dimensions,
4343 * then the affine expression is
4345 * (-f(i) - g(i))/a - h(j)/a
4347 * If the equality is of the form
4349 * f(i) + h(j) - a x + g(i) = 0,
4351 * then the affine expression is
4353 * (f(i) + g(i))/a - h(j)/(-a)
4356 * If "div" refers to an integer division (i.e., it is smaller than
4357 * the number of integer divisions), then the equality constraint
4358 * does involve an integer division (the one at position "div") that
4359 * is defined in terms of output dimensions. However, this integer
4360 * division can be eliminated by exploiting a pair of constraints
4361 * x >= l and x <= l + n, with n smaller than the coefficient of "div"
4362 * in the equality constraint. "ineq" refers to inequality x >= l, i.e.,
4363 * -l + x >= 0.
4364 * In particular, let
4366 * x = e(i) + m floor(...)
4368 * with e(i) the expression derived above and floor(...) the integer
4369 * division involving output dimensions.
4370 * From
4372 * l <= x <= l + n,
4374 * we have
4376 * 0 <= x - l <= n
4378 * This means
4380 * e(i) + m floor(...) - l = (e(i) + m floor(...) - l) mod m
4381 * = (e(i) - l) mod m
4383 * Therefore,
4385 * x - l = (e(i) - l) mod m
4387 * or
4389 * x = ((e(i) - l) mod m) + l
4391 * The variable "shift" below contains the expression -l, which may
4392 * also involve a linear combination of earlier output dimensions.
4394 static __isl_give isl_aff *extract_aff_from_equality(
4395 __isl_keep isl_basic_map *bmap, int pos, int eq, int div, int ineq,
4396 __isl_keep isl_multi_aff *ma)
4398 unsigned o_out;
4399 unsigned n_div, n_out;
4400 isl_ctx *ctx;
4401 isl_local_space *ls;
4402 isl_aff *aff, *shift;
4403 isl_val *mod;
4405 ctx = isl_basic_map_get_ctx(bmap);
4406 ls = isl_basic_map_get_local_space(bmap);
4407 ls = isl_local_space_domain(ls);
4408 aff = isl_aff_alloc(isl_local_space_copy(ls));
4409 if (!aff)
4410 goto error;
4411 o_out = isl_basic_map_offset(bmap, isl_dim_out);
4412 n_out = isl_basic_map_dim(bmap, isl_dim_out);
4413 n_div = isl_basic_map_dim(bmap, isl_dim_div);
4414 if (isl_int_is_neg(bmap->eq[eq][o_out + pos])) {
4415 isl_seq_cpy(aff->v->el + 1, bmap->eq[eq], o_out);
4416 isl_seq_cpy(aff->v->el + 1 + o_out,
4417 bmap->eq[eq] + o_out + n_out, n_div);
4418 } else {
4419 isl_seq_neg(aff->v->el + 1, bmap->eq[eq], o_out);
4420 isl_seq_neg(aff->v->el + 1 + o_out,
4421 bmap->eq[eq] + o_out + n_out, n_div);
4423 if (div < n_div)
4424 isl_int_set_si(aff->v->el[1 + o_out + div], 0);
4425 isl_int_abs(aff->v->el[0], bmap->eq[eq][o_out + pos]);
4426 aff = subtract_initial(aff, ma, pos, bmap->eq[eq] + o_out,
4427 bmap->eq[eq][o_out + pos]);
4428 if (div < n_div) {
4429 shift = isl_aff_alloc(isl_local_space_copy(ls));
4430 if (!shift)
4431 goto error;
4432 isl_seq_cpy(shift->v->el + 1, bmap->ineq[ineq], o_out);
4433 isl_seq_cpy(shift->v->el + 1 + o_out,
4434 bmap->ineq[ineq] + o_out + n_out, n_div);
4435 isl_int_set_si(shift->v->el[0], 1);
4436 shift = subtract_initial(shift, ma, pos,
4437 bmap->ineq[ineq] + o_out, ctx->negone);
4438 aff = isl_aff_add(aff, isl_aff_copy(shift));
4439 mod = isl_val_int_from_isl_int(ctx,
4440 bmap->eq[eq][o_out + n_out + div]);
4441 mod = isl_val_abs(mod);
4442 aff = isl_aff_mod_val(aff, mod);
4443 aff = isl_aff_sub(aff, shift);
4446 isl_local_space_free(ls);
4447 return aff;
4448 error:
4449 isl_local_space_free(ls);
4450 isl_aff_free(aff);
4451 return NULL;
4454 /* Given a basic map with output dimensions defined
4455 * in terms of the parameters input dimensions and earlier
4456 * output dimensions using an equality (and possibly a pair on inequalities),
4457 * extract an isl_aff that expresses output dimension "pos" in terms
4458 * of the parameters and input dimensions.
4459 * Note that this expression may involve integer divisions defined
4460 * in terms of parameters and input dimensions.
4461 * "ma" contains the expressions corresponding to earlier output dimensions.
4463 * This function shares some similarities with
4464 * isl_basic_map_has_defining_equality and isl_constraint_get_bound.
4466 static __isl_give isl_aff *extract_isl_aff_from_basic_map(
4467 __isl_keep isl_basic_map *bmap, int pos, __isl_keep isl_multi_aff *ma)
4469 int eq, div, ineq;
4470 isl_aff *aff;
4472 if (!bmap)
4473 return NULL;
4474 eq = isl_basic_map_output_defining_equality(bmap, pos, &div, &ineq);
4475 if (eq >= bmap->n_eq)
4476 isl_die(isl_basic_map_get_ctx(bmap), isl_error_invalid,
4477 "unable to find suitable equality", return NULL);
4478 aff = extract_aff_from_equality(bmap, pos, eq, div, ineq, ma);
4480 aff = isl_aff_remove_unused_divs(aff);
4481 return aff;
4484 /* Given a basic map where each output dimension is defined
4485 * in terms of the parameters and input dimensions using an equality,
4486 * extract an isl_multi_aff that expresses the output dimensions in terms
4487 * of the parameters and input dimensions.
4489 static __isl_give isl_multi_aff *extract_isl_multi_aff_from_basic_map(
4490 __isl_take isl_basic_map *bmap)
4492 int i;
4493 unsigned n_out;
4494 isl_multi_aff *ma;
4496 if (!bmap)
4497 return NULL;
4499 ma = isl_multi_aff_alloc(isl_basic_map_get_space(bmap));
4500 n_out = isl_basic_map_dim(bmap, isl_dim_out);
4502 for (i = 0; i < n_out; ++i) {
4503 isl_aff *aff;
4505 aff = extract_isl_aff_from_basic_map(bmap, i, ma);
4506 ma = isl_multi_aff_set_aff(ma, i, aff);
4509 isl_basic_map_free(bmap);
4511 return ma;
4514 /* Given a basic set where each set dimension is defined
4515 * in terms of the parameters using an equality,
4516 * extract an isl_multi_aff that expresses the set dimensions in terms
4517 * of the parameters.
4519 __isl_give isl_multi_aff *isl_multi_aff_from_basic_set_equalities(
4520 __isl_take isl_basic_set *bset)
4522 return extract_isl_multi_aff_from_basic_map(bset);
4525 /* Create an isl_pw_multi_aff that is equivalent to
4526 * isl_map_intersect_domain(isl_map_from_basic_map(bmap), domain).
4527 * The given basic map is such that each output dimension is defined
4528 * in terms of the parameters and input dimensions using an equality.
4530 * Since some applications expect the result of isl_pw_multi_aff_from_map
4531 * to only contain integer affine expressions, we compute the floor
4532 * of the expression before returning.
4534 * Remove all constraints involving local variables without
4535 * an explicit representation (resulting in the removal of those
4536 * local variables) prior to the actual extraction to ensure
4537 * that the local spaces in which the resulting affine expressions
4538 * are created do not contain any unknown local variables.
4539 * Removing such constraints is safe because constraints involving
4540 * unknown local variables are not used to determine whether
4541 * a basic map is obviously single-valued.
4543 static __isl_give isl_pw_multi_aff *plain_pw_multi_aff_from_map(
4544 __isl_take isl_set *domain, __isl_take isl_basic_map *bmap)
4546 isl_multi_aff *ma;
4548 bmap = isl_basic_map_drop_constraint_involving_unknown_divs(bmap);
4549 ma = extract_isl_multi_aff_from_basic_map(bmap);
4550 ma = isl_multi_aff_floor(ma);
4551 return isl_pw_multi_aff_alloc(domain, ma);
4554 /* Try and create an isl_pw_multi_aff that is equivalent to the given isl_map.
4555 * This obviously only works if the input "map" is single-valued.
4556 * If so, we compute the lexicographic minimum of the image in the form
4557 * of an isl_pw_multi_aff. Since the image is unique, it is equal
4558 * to its lexicographic minimum.
4559 * If the input is not single-valued, we produce an error.
4561 static __isl_give isl_pw_multi_aff *pw_multi_aff_from_map_base(
4562 __isl_take isl_map *map)
4564 int i;
4565 int sv;
4566 isl_pw_multi_aff *pma;
4568 sv = isl_map_is_single_valued(map);
4569 if (sv < 0)
4570 goto error;
4571 if (!sv)
4572 isl_die(isl_map_get_ctx(map), isl_error_invalid,
4573 "map is not single-valued", goto error);
4574 map = isl_map_make_disjoint(map);
4575 if (!map)
4576 return NULL;
4578 pma = isl_pw_multi_aff_empty(isl_map_get_space(map));
4580 for (i = 0; i < map->n; ++i) {
4581 isl_pw_multi_aff *pma_i;
4582 isl_basic_map *bmap;
4583 bmap = isl_basic_map_copy(map->p[i]);
4584 pma_i = isl_basic_map_lexmin_pw_multi_aff(bmap);
4585 pma = isl_pw_multi_aff_add_disjoint(pma, pma_i);
4588 isl_map_free(map);
4589 return pma;
4590 error:
4591 isl_map_free(map);
4592 return NULL;
4595 /* Try and create an isl_pw_multi_aff that is equivalent to the given isl_map,
4596 * taking into account that the output dimension at position "d"
4597 * can be represented as
4599 * x = floor((e(...) + c1) / m)
4601 * given that constraint "i" is of the form
4603 * e(...) + c1 - m x >= 0
4606 * Let "map" be of the form
4608 * A -> B
4610 * We construct a mapping
4612 * A -> [A -> x = floor(...)]
4614 * apply that to the map, obtaining
4616 * [A -> x = floor(...)] -> B
4618 * and equate dimension "d" to x.
4619 * We then compute a isl_pw_multi_aff representation of the resulting map
4620 * and plug in the mapping above.
4622 static __isl_give isl_pw_multi_aff *pw_multi_aff_from_map_div(
4623 __isl_take isl_map *map, __isl_take isl_basic_map *hull, int d, int i)
4625 isl_ctx *ctx;
4626 isl_space *space;
4627 isl_local_space *ls;
4628 isl_multi_aff *ma;
4629 isl_aff *aff;
4630 isl_vec *v;
4631 isl_map *insert;
4632 int offset;
4633 int n;
4634 int n_in;
4635 isl_pw_multi_aff *pma;
4636 int is_set;
4638 is_set = isl_map_is_set(map);
4640 offset = isl_basic_map_offset(hull, isl_dim_out);
4641 ctx = isl_map_get_ctx(map);
4642 space = isl_space_domain(isl_map_get_space(map));
4643 n_in = isl_space_dim(space, isl_dim_set);
4644 n = isl_space_dim(space, isl_dim_all);
4646 v = isl_vec_alloc(ctx, 1 + 1 + n);
4647 if (v) {
4648 isl_int_neg(v->el[0], hull->ineq[i][offset + d]);
4649 isl_seq_cpy(v->el + 1, hull->ineq[i], 1 + n);
4651 isl_basic_map_free(hull);
4653 ls = isl_local_space_from_space(isl_space_copy(space));
4654 aff = isl_aff_alloc_vec(ls, v);
4655 aff = isl_aff_floor(aff);
4656 if (is_set) {
4657 isl_space_free(space);
4658 ma = isl_multi_aff_from_aff(aff);
4659 } else {
4660 ma = isl_multi_aff_identity(isl_space_map_from_set(space));
4661 ma = isl_multi_aff_range_product(ma,
4662 isl_multi_aff_from_aff(aff));
4665 insert = isl_map_from_multi_aff(isl_multi_aff_copy(ma));
4666 map = isl_map_apply_domain(map, insert);
4667 map = isl_map_equate(map, isl_dim_in, n_in, isl_dim_out, d);
4668 pma = isl_pw_multi_aff_from_map(map);
4669 pma = isl_pw_multi_aff_pullback_multi_aff(pma, ma);
4671 return pma;
4674 /* Is constraint "c" of the form
4676 * e(...) + c1 - m x >= 0
4678 * or
4680 * -e(...) + c2 + m x >= 0
4682 * where m > 1 and e only depends on parameters and input dimemnsions?
4684 * "offset" is the offset of the output dimensions
4685 * "pos" is the position of output dimension x.
4687 static int is_potential_div_constraint(isl_int *c, int offset, int d, int total)
4689 if (isl_int_is_zero(c[offset + d]))
4690 return 0;
4691 if (isl_int_is_one(c[offset + d]))
4692 return 0;
4693 if (isl_int_is_negone(c[offset + d]))
4694 return 0;
4695 if (isl_seq_first_non_zero(c + offset, d) != -1)
4696 return 0;
4697 if (isl_seq_first_non_zero(c + offset + d + 1,
4698 total - (offset + d + 1)) != -1)
4699 return 0;
4700 return 1;
4703 /* Try and create an isl_pw_multi_aff that is equivalent to the given isl_map.
4705 * As a special case, we first check if there is any pair of constraints,
4706 * shared by all the basic maps in "map" that force a given dimension
4707 * to be equal to the floor of some affine combination of the input dimensions.
4709 * In particular, if we can find two constraints
4711 * e(...) + c1 - m x >= 0 i.e., m x <= e(...) + c1
4713 * and
4715 * -e(...) + c2 + m x >= 0 i.e., m x >= e(...) - c2
4717 * where m > 1 and e only depends on parameters and input dimemnsions,
4718 * and such that
4720 * c1 + c2 < m i.e., -c2 >= c1 - (m - 1)
4722 * then we know that we can take
4724 * x = floor((e(...) + c1) / m)
4726 * without having to perform any computation.
4728 * Note that we know that
4730 * c1 + c2 >= 1
4732 * If c1 + c2 were 0, then we would have detected an equality during
4733 * simplification. If c1 + c2 were negative, then we would have detected
4734 * a contradiction.
4736 static __isl_give isl_pw_multi_aff *pw_multi_aff_from_map_check_div(
4737 __isl_take isl_map *map)
4739 int d, dim;
4740 int i, j, n;
4741 int offset, total;
4742 isl_int sum;
4743 isl_basic_map *hull;
4745 hull = isl_map_unshifted_simple_hull(isl_map_copy(map));
4746 if (!hull)
4747 goto error;
4749 isl_int_init(sum);
4750 dim = isl_map_dim(map, isl_dim_out);
4751 offset = isl_basic_map_offset(hull, isl_dim_out);
4752 total = 1 + isl_basic_map_total_dim(hull);
4753 n = hull->n_ineq;
4754 for (d = 0; d < dim; ++d) {
4755 for (i = 0; i < n; ++i) {
4756 if (!is_potential_div_constraint(hull->ineq[i],
4757 offset, d, total))
4758 continue;
4759 for (j = i + 1; j < n; ++j) {
4760 if (!isl_seq_is_neg(hull->ineq[i] + 1,
4761 hull->ineq[j] + 1, total - 1))
4762 continue;
4763 isl_int_add(sum, hull->ineq[i][0],
4764 hull->ineq[j][0]);
4765 if (isl_int_abs_lt(sum,
4766 hull->ineq[i][offset + d]))
4767 break;
4770 if (j >= n)
4771 continue;
4772 isl_int_clear(sum);
4773 if (isl_int_is_pos(hull->ineq[j][offset + d]))
4774 j = i;
4775 return pw_multi_aff_from_map_div(map, hull, d, j);
4778 isl_int_clear(sum);
4779 isl_basic_map_free(hull);
4780 return pw_multi_aff_from_map_base(map);
4781 error:
4782 isl_map_free(map);
4783 isl_basic_map_free(hull);
4784 return NULL;
4787 /* Given an affine expression
4789 * [A -> B] -> f(A,B)
4791 * construct an isl_multi_aff
4793 * [A -> B] -> B'
4795 * such that dimension "d" in B' is set to "aff" and the remaining
4796 * dimensions are set equal to the corresponding dimensions in B.
4797 * "n_in" is the dimension of the space A.
4798 * "n_out" is the dimension of the space B.
4800 * If "is_set" is set, then the affine expression is of the form
4802 * [B] -> f(B)
4804 * and we construct an isl_multi_aff
4806 * B -> B'
4808 static __isl_give isl_multi_aff *range_map(__isl_take isl_aff *aff, int d,
4809 unsigned n_in, unsigned n_out, int is_set)
4811 int i;
4812 isl_multi_aff *ma;
4813 isl_space *space, *space2;
4814 isl_local_space *ls;
4816 space = isl_aff_get_domain_space(aff);
4817 ls = isl_local_space_from_space(isl_space_copy(space));
4818 space2 = isl_space_copy(space);
4819 if (!is_set)
4820 space2 = isl_space_range(isl_space_unwrap(space2));
4821 space = isl_space_map_from_domain_and_range(space, space2);
4822 ma = isl_multi_aff_alloc(space);
4823 ma = isl_multi_aff_set_aff(ma, d, aff);
4825 for (i = 0; i < n_out; ++i) {
4826 if (i == d)
4827 continue;
4828 aff = isl_aff_var_on_domain(isl_local_space_copy(ls),
4829 isl_dim_set, n_in + i);
4830 ma = isl_multi_aff_set_aff(ma, i, aff);
4833 isl_local_space_free(ls);
4835 return ma;
4838 /* Try and create an isl_pw_multi_aff that is equivalent to the given isl_map,
4839 * taking into account that the dimension at position "d" can be written as
4841 * x = m a + f(..) (1)
4843 * where m is equal to "gcd".
4844 * "i" is the index of the equality in "hull" that defines f(..).
4845 * In particular, the equality is of the form
4847 * f(..) - x + m g(existentials) = 0
4849 * or
4851 * -f(..) + x + m g(existentials) = 0
4853 * We basically plug (1) into "map", resulting in a map with "a"
4854 * in the range instead of "x". The corresponding isl_pw_multi_aff
4855 * defining "a" is then plugged back into (1) to obtain a definition for "x".
4857 * Specifically, given the input map
4859 * A -> B
4861 * We first wrap it into a set
4863 * [A -> B]
4865 * and define (1) on top of the corresponding space, resulting in "aff".
4866 * We use this to create an isl_multi_aff that maps the output position "d"
4867 * from "a" to "x", leaving all other (intput and output) dimensions unchanged.
4868 * We plug this into the wrapped map, unwrap the result and compute the
4869 * corresponding isl_pw_multi_aff.
4870 * The result is an expression
4872 * A -> T(A)
4874 * We adjust that to
4876 * A -> [A -> T(A)]
4878 * so that we can plug that into "aff", after extending the latter to
4879 * a mapping
4881 * [A -> B] -> B'
4884 * If "map" is actually a set, then there is no "A" space, meaning
4885 * that we do not need to perform any wrapping, and that the result
4886 * of the recursive call is of the form
4888 * [T]
4890 * which is plugged into a mapping of the form
4892 * B -> B'
4894 static __isl_give isl_pw_multi_aff *pw_multi_aff_from_map_stride(
4895 __isl_take isl_map *map, __isl_take isl_basic_map *hull, int d, int i,
4896 isl_int gcd)
4898 isl_set *set;
4899 isl_space *space;
4900 isl_local_space *ls;
4901 isl_aff *aff;
4902 isl_multi_aff *ma;
4903 isl_pw_multi_aff *pma, *id;
4904 unsigned n_in;
4905 unsigned o_out;
4906 unsigned n_out;
4907 int is_set;
4909 is_set = isl_map_is_set(map);
4911 n_in = isl_basic_map_dim(hull, isl_dim_in);
4912 n_out = isl_basic_map_dim(hull, isl_dim_out);
4913 o_out = isl_basic_map_offset(hull, isl_dim_out);
4915 if (is_set)
4916 set = map;
4917 else
4918 set = isl_map_wrap(map);
4919 space = isl_space_map_from_set(isl_set_get_space(set));
4920 ma = isl_multi_aff_identity(space);
4921 ls = isl_local_space_from_space(isl_set_get_space(set));
4922 aff = isl_aff_alloc(ls);
4923 if (aff) {
4924 isl_int_set_si(aff->v->el[0], 1);
4925 if (isl_int_is_one(hull->eq[i][o_out + d]))
4926 isl_seq_neg(aff->v->el + 1, hull->eq[i],
4927 aff->v->size - 1);
4928 else
4929 isl_seq_cpy(aff->v->el + 1, hull->eq[i],
4930 aff->v->size - 1);
4931 isl_int_set(aff->v->el[1 + o_out + d], gcd);
4933 ma = isl_multi_aff_set_aff(ma, n_in + d, isl_aff_copy(aff));
4934 set = isl_set_preimage_multi_aff(set, ma);
4936 ma = range_map(aff, d, n_in, n_out, is_set);
4938 if (is_set)
4939 map = set;
4940 else
4941 map = isl_set_unwrap(set);
4942 pma = isl_pw_multi_aff_from_map(map);
4944 if (!is_set) {
4945 space = isl_pw_multi_aff_get_domain_space(pma);
4946 space = isl_space_map_from_set(space);
4947 id = isl_pw_multi_aff_identity(space);
4948 pma = isl_pw_multi_aff_range_product(id, pma);
4950 id = isl_pw_multi_aff_from_multi_aff(ma);
4951 pma = isl_pw_multi_aff_pullback_pw_multi_aff(id, pma);
4953 isl_basic_map_free(hull);
4954 return pma;
4957 /* Try and create an isl_pw_multi_aff that is equivalent to the given isl_map.
4958 * "hull" contains the equalities valid for "map".
4960 * Check if any of the output dimensions is "strided".
4961 * That is, we check if it can be written as
4963 * x = m a + f(..)
4965 * with m greater than 1, a some combination of existentially quantified
4966 * variables and f an expression in the parameters and input dimensions.
4967 * If so, we remove the stride in pw_multi_aff_from_map_stride.
4969 * Otherwise, we continue with pw_multi_aff_from_map_check_div for a further
4970 * special case.
4972 static __isl_give isl_pw_multi_aff *pw_multi_aff_from_map_check_strides(
4973 __isl_take isl_map *map, __isl_take isl_basic_map *hull)
4975 int i, j;
4976 unsigned n_out;
4977 unsigned o_out;
4978 unsigned n_div;
4979 unsigned o_div;
4980 isl_int gcd;
4982 n_div = isl_basic_map_dim(hull, isl_dim_div);
4983 o_div = isl_basic_map_offset(hull, isl_dim_div);
4985 if (n_div == 0) {
4986 isl_basic_map_free(hull);
4987 return pw_multi_aff_from_map_check_div(map);
4990 isl_int_init(gcd);
4992 n_out = isl_basic_map_dim(hull, isl_dim_out);
4993 o_out = isl_basic_map_offset(hull, isl_dim_out);
4995 for (i = 0; i < n_out; ++i) {
4996 for (j = 0; j < hull->n_eq; ++j) {
4997 isl_int *eq = hull->eq[j];
4998 isl_pw_multi_aff *res;
5000 if (!isl_int_is_one(eq[o_out + i]) &&
5001 !isl_int_is_negone(eq[o_out + i]))
5002 continue;
5003 if (isl_seq_first_non_zero(eq + o_out, i) != -1)
5004 continue;
5005 if (isl_seq_first_non_zero(eq + o_out + i + 1,
5006 n_out - (i + 1)) != -1)
5007 continue;
5008 isl_seq_gcd(eq + o_div, n_div, &gcd);
5009 if (isl_int_is_zero(gcd))
5010 continue;
5011 if (isl_int_is_one(gcd))
5012 continue;
5014 res = pw_multi_aff_from_map_stride(map, hull,
5015 i, j, gcd);
5016 isl_int_clear(gcd);
5017 return res;
5021 isl_int_clear(gcd);
5022 isl_basic_map_free(hull);
5023 return pw_multi_aff_from_map_check_div(map);
5026 /* Try and create an isl_pw_multi_aff that is equivalent to the given isl_map.
5028 * As a special case, we first check if all output dimensions are uniquely
5029 * defined in terms of the parameters and input dimensions over the entire
5030 * domain. If so, we extract the desired isl_pw_multi_aff directly
5031 * from the affine hull of "map" and its domain.
5033 * Otherwise, continue with pw_multi_aff_from_map_check_strides for more
5034 * special cases.
5036 __isl_give isl_pw_multi_aff *isl_pw_multi_aff_from_map(__isl_take isl_map *map)
5038 isl_bool sv;
5039 isl_basic_map *hull;
5041 if (!map)
5042 return NULL;
5044 if (isl_map_n_basic_map(map) == 1) {
5045 hull = isl_map_unshifted_simple_hull(isl_map_copy(map));
5046 hull = isl_basic_map_plain_affine_hull(hull);
5047 sv = isl_basic_map_plain_is_single_valued(hull);
5048 if (sv >= 0 && sv)
5049 return plain_pw_multi_aff_from_map(isl_map_domain(map),
5050 hull);
5051 isl_basic_map_free(hull);
5053 map = isl_map_detect_equalities(map);
5054 hull = isl_map_unshifted_simple_hull(isl_map_copy(map));
5055 sv = isl_basic_map_plain_is_single_valued(hull);
5056 if (sv >= 0 && sv)
5057 return plain_pw_multi_aff_from_map(isl_map_domain(map), hull);
5058 if (sv >= 0)
5059 return pw_multi_aff_from_map_check_strides(map, hull);
5060 isl_basic_map_free(hull);
5061 isl_map_free(map);
5062 return NULL;
5065 __isl_give isl_pw_multi_aff *isl_pw_multi_aff_from_set(__isl_take isl_set *set)
5067 return isl_pw_multi_aff_from_map(set);
5070 /* Convert "map" into an isl_pw_multi_aff (if possible) and
5071 * add it to *user.
5073 static isl_stat pw_multi_aff_from_map(__isl_take isl_map *map, void *user)
5075 isl_union_pw_multi_aff **upma = user;
5076 isl_pw_multi_aff *pma;
5078 pma = isl_pw_multi_aff_from_map(map);
5079 *upma = isl_union_pw_multi_aff_add_pw_multi_aff(*upma, pma);
5081 return *upma ? isl_stat_ok : isl_stat_error;
5084 /* Create an isl_union_pw_multi_aff with the given isl_aff on a universe
5085 * domain.
5087 __isl_give isl_union_pw_multi_aff *isl_union_pw_multi_aff_from_aff(
5088 __isl_take isl_aff *aff)
5090 isl_multi_aff *ma;
5091 isl_pw_multi_aff *pma;
5093 ma = isl_multi_aff_from_aff(aff);
5094 pma = isl_pw_multi_aff_from_multi_aff(ma);
5095 return isl_union_pw_multi_aff_from_pw_multi_aff(pma);
5098 /* Try and create an isl_union_pw_multi_aff that is equivalent
5099 * to the given isl_union_map.
5100 * The isl_union_map is required to be single-valued in each space.
5101 * Otherwise, an error is produced.
5103 __isl_give isl_union_pw_multi_aff *isl_union_pw_multi_aff_from_union_map(
5104 __isl_take isl_union_map *umap)
5106 isl_space *space;
5107 isl_union_pw_multi_aff *upma;
5109 space = isl_union_map_get_space(umap);
5110 upma = isl_union_pw_multi_aff_empty(space);
5111 if (isl_union_map_foreach_map(umap, &pw_multi_aff_from_map, &upma) < 0)
5112 upma = isl_union_pw_multi_aff_free(upma);
5113 isl_union_map_free(umap);
5115 return upma;
5118 /* Try and create an isl_union_pw_multi_aff that is equivalent
5119 * to the given isl_union_set.
5120 * The isl_union_set is required to be a singleton in each space.
5121 * Otherwise, an error is produced.
5123 __isl_give isl_union_pw_multi_aff *isl_union_pw_multi_aff_from_union_set(
5124 __isl_take isl_union_set *uset)
5126 return isl_union_pw_multi_aff_from_union_map(uset);
5129 /* Return the piecewise affine expression "set ? 1 : 0".
5131 __isl_give isl_pw_aff *isl_set_indicator_function(__isl_take isl_set *set)
5133 isl_pw_aff *pa;
5134 isl_space *space = isl_set_get_space(set);
5135 isl_local_space *ls = isl_local_space_from_space(space);
5136 isl_aff *zero = isl_aff_zero_on_domain(isl_local_space_copy(ls));
5137 isl_aff *one = isl_aff_zero_on_domain(ls);
5139 one = isl_aff_add_constant_si(one, 1);
5140 pa = isl_pw_aff_alloc(isl_set_copy(set), one);
5141 set = isl_set_complement(set);
5142 pa = isl_pw_aff_add_disjoint(pa, isl_pw_aff_alloc(set, zero));
5144 return pa;
5147 /* Plug in "subs" for dimension "type", "pos" of "aff".
5149 * Let i be the dimension to replace and let "subs" be of the form
5151 * f/d
5153 * and "aff" of the form
5155 * (a i + g)/m
5157 * The result is
5159 * (a f + d g')/(m d)
5161 * where g' is the result of plugging in "subs" in each of the integer
5162 * divisions in g.
5164 __isl_give isl_aff *isl_aff_substitute(__isl_take isl_aff *aff,
5165 enum isl_dim_type type, unsigned pos, __isl_keep isl_aff *subs)
5167 isl_ctx *ctx;
5168 isl_int v;
5170 aff = isl_aff_cow(aff);
5171 if (!aff || !subs)
5172 return isl_aff_free(aff);
5174 ctx = isl_aff_get_ctx(aff);
5175 if (!isl_space_is_equal(aff->ls->dim, subs->ls->dim))
5176 isl_die(ctx, isl_error_invalid,
5177 "spaces don't match", return isl_aff_free(aff));
5178 if (isl_local_space_dim(subs->ls, isl_dim_div) != 0)
5179 isl_die(ctx, isl_error_unsupported,
5180 "cannot handle divs yet", return isl_aff_free(aff));
5182 aff->ls = isl_local_space_substitute(aff->ls, type, pos, subs);
5183 if (!aff->ls)
5184 return isl_aff_free(aff);
5186 aff->v = isl_vec_cow(aff->v);
5187 if (!aff->v)
5188 return isl_aff_free(aff);
5190 pos += isl_local_space_offset(aff->ls, type);
5192 isl_int_init(v);
5193 isl_seq_substitute(aff->v->el, pos, subs->v->el,
5194 aff->v->size, subs->v->size, v);
5195 isl_int_clear(v);
5197 return aff;
5200 /* Plug in "subs" for dimension "type", "pos" in each of the affine
5201 * expressions in "maff".
5203 __isl_give isl_multi_aff *isl_multi_aff_substitute(
5204 __isl_take isl_multi_aff *maff, enum isl_dim_type type, unsigned pos,
5205 __isl_keep isl_aff *subs)
5207 int i;
5209 maff = isl_multi_aff_cow(maff);
5210 if (!maff || !subs)
5211 return isl_multi_aff_free(maff);
5213 if (type == isl_dim_in)
5214 type = isl_dim_set;
5216 for (i = 0; i < maff->n; ++i) {
5217 maff->p[i] = isl_aff_substitute(maff->p[i], type, pos, subs);
5218 if (!maff->p[i])
5219 return isl_multi_aff_free(maff);
5222 return maff;
5225 /* Plug in "subs" for dimension "type", "pos" of "pma".
5227 * pma is of the form
5229 * A_i(v) -> M_i(v)
5231 * while subs is of the form
5233 * v' = B_j(v) -> S_j
5235 * Each pair i,j such that C_ij = A_i \cap B_i is non-empty
5236 * has a contribution in the result, in particular
5238 * C_ij(S_j) -> M_i(S_j)
5240 * Note that plugging in S_j in C_ij may also result in an empty set
5241 * and this contribution should simply be discarded.
5243 __isl_give isl_pw_multi_aff *isl_pw_multi_aff_substitute(
5244 __isl_take isl_pw_multi_aff *pma, enum isl_dim_type type, unsigned pos,
5245 __isl_keep isl_pw_aff *subs)
5247 int i, j, n;
5248 isl_pw_multi_aff *res;
5250 if (!pma || !subs)
5251 return isl_pw_multi_aff_free(pma);
5253 n = pma->n * subs->n;
5254 res = isl_pw_multi_aff_alloc_size(isl_space_copy(pma->dim), n);
5256 for (i = 0; i < pma->n; ++i) {
5257 for (j = 0; j < subs->n; ++j) {
5258 isl_set *common;
5259 isl_multi_aff *res_ij;
5260 int empty;
5262 common = isl_set_intersect(
5263 isl_set_copy(pma->p[i].set),
5264 isl_set_copy(subs->p[j].set));
5265 common = isl_set_substitute(common,
5266 type, pos, subs->p[j].aff);
5267 empty = isl_set_plain_is_empty(common);
5268 if (empty < 0 || empty) {
5269 isl_set_free(common);
5270 if (empty < 0)
5271 goto error;
5272 continue;
5275 res_ij = isl_multi_aff_substitute(
5276 isl_multi_aff_copy(pma->p[i].maff),
5277 type, pos, subs->p[j].aff);
5279 res = isl_pw_multi_aff_add_piece(res, common, res_ij);
5283 isl_pw_multi_aff_free(pma);
5284 return res;
5285 error:
5286 isl_pw_multi_aff_free(pma);
5287 isl_pw_multi_aff_free(res);
5288 return NULL;
5291 /* Compute the preimage of a range of dimensions in the affine expression "src"
5292 * under "ma" and put the result in "dst". The number of dimensions in "src"
5293 * that precede the range is given by "n_before". The number of dimensions
5294 * in the range is given by the number of output dimensions of "ma".
5295 * The number of dimensions that follow the range is given by "n_after".
5296 * If "has_denom" is set (to one),
5297 * then "src" and "dst" have an extra initial denominator.
5298 * "n_div_ma" is the number of existentials in "ma"
5299 * "n_div_bset" is the number of existentials in "src"
5300 * The resulting "dst" (which is assumed to have been allocated by
5301 * the caller) contains coefficients for both sets of existentials,
5302 * first those in "ma" and then those in "src".
5303 * f, c1, c2 and g are temporary objects that have been initialized
5304 * by the caller.
5306 * Let src represent the expression
5308 * (a(p) + f_u u + b v + f_w w + c(divs))/d
5310 * and let ma represent the expressions
5312 * v_i = (r_i(p) + s_i(y) + t_i(divs'))/m_i
5314 * We start out with the following expression for dst:
5316 * (a(p) + f_u u + 0 y + f_w w + 0 divs' + c(divs) + f \sum_i b_i v_i)/d
5318 * with the multiplication factor f initially equal to 1
5319 * and f \sum_i b_i v_i kept separately.
5320 * For each x_i that we substitute, we multiply the numerator
5321 * (and denominator) of dst by c_1 = m_i and add the numerator
5322 * of the x_i expression multiplied by c_2 = f b_i,
5323 * after removing the common factors of c_1 and c_2.
5324 * The multiplication factor f also needs to be multiplied by c_1
5325 * for the next x_j, j > i.
5327 void isl_seq_preimage(isl_int *dst, isl_int *src,
5328 __isl_keep isl_multi_aff *ma, int n_before, int n_after,
5329 int n_div_ma, int n_div_bmap,
5330 isl_int f, isl_int c1, isl_int c2, isl_int g, int has_denom)
5332 int i;
5333 int n_param, n_in, n_out;
5334 int o_dst, o_src;
5336 n_param = isl_multi_aff_dim(ma, isl_dim_param);
5337 n_in = isl_multi_aff_dim(ma, isl_dim_in);
5338 n_out = isl_multi_aff_dim(ma, isl_dim_out);
5340 isl_seq_cpy(dst, src, has_denom + 1 + n_param + n_before);
5341 o_dst = o_src = has_denom + 1 + n_param + n_before;
5342 isl_seq_clr(dst + o_dst, n_in);
5343 o_dst += n_in;
5344 o_src += n_out;
5345 isl_seq_cpy(dst + o_dst, src + o_src, n_after);
5346 o_dst += n_after;
5347 o_src += n_after;
5348 isl_seq_clr(dst + o_dst, n_div_ma);
5349 o_dst += n_div_ma;
5350 isl_seq_cpy(dst + o_dst, src + o_src, n_div_bmap);
5352 isl_int_set_si(f, 1);
5354 for (i = 0; i < n_out; ++i) {
5355 int offset = has_denom + 1 + n_param + n_before + i;
5357 if (isl_int_is_zero(src[offset]))
5358 continue;
5359 isl_int_set(c1, ma->p[i]->v->el[0]);
5360 isl_int_mul(c2, f, src[offset]);
5361 isl_int_gcd(g, c1, c2);
5362 isl_int_divexact(c1, c1, g);
5363 isl_int_divexact(c2, c2, g);
5365 isl_int_mul(f, f, c1);
5366 o_dst = has_denom;
5367 o_src = 1;
5368 isl_seq_combine(dst + o_dst, c1, dst + o_dst,
5369 c2, ma->p[i]->v->el + o_src, 1 + n_param);
5370 o_dst += 1 + n_param;
5371 o_src += 1 + n_param;
5372 isl_seq_scale(dst + o_dst, dst + o_dst, c1, n_before);
5373 o_dst += n_before;
5374 isl_seq_combine(dst + o_dst, c1, dst + o_dst,
5375 c2, ma->p[i]->v->el + o_src, n_in);
5376 o_dst += n_in;
5377 o_src += n_in;
5378 isl_seq_scale(dst + o_dst, dst + o_dst, c1, n_after);
5379 o_dst += n_after;
5380 isl_seq_combine(dst + o_dst, c1, dst + o_dst,
5381 c2, ma->p[i]->v->el + o_src, n_div_ma);
5382 o_dst += n_div_ma;
5383 o_src += n_div_ma;
5384 isl_seq_scale(dst + o_dst, dst + o_dst, c1, n_div_bmap);
5385 if (has_denom)
5386 isl_int_mul(dst[0], dst[0], c1);
5390 /* Compute the pullback of "aff" by the function represented by "ma".
5391 * In other words, plug in "ma" in "aff". The result is an affine expression
5392 * defined over the domain space of "ma".
5394 * If "aff" is represented by
5396 * (a(p) + b x + c(divs))/d
5398 * and ma is represented by
5400 * x = D(p) + F(y) + G(divs')
5402 * then the result is
5404 * (a(p) + b D(p) + b F(y) + b G(divs') + c(divs))/d
5406 * The divs in the local space of the input are similarly adjusted
5407 * through a call to isl_local_space_preimage_multi_aff.
5409 __isl_give isl_aff *isl_aff_pullback_multi_aff(__isl_take isl_aff *aff,
5410 __isl_take isl_multi_aff *ma)
5412 isl_aff *res = NULL;
5413 isl_local_space *ls;
5414 int n_div_aff, n_div_ma;
5415 isl_int f, c1, c2, g;
5417 ma = isl_multi_aff_align_divs(ma);
5418 if (!aff || !ma)
5419 goto error;
5421 n_div_aff = isl_aff_dim(aff, isl_dim_div);
5422 n_div_ma = ma->n ? isl_aff_dim(ma->p[0], isl_dim_div) : 0;
5424 ls = isl_aff_get_domain_local_space(aff);
5425 ls = isl_local_space_preimage_multi_aff(ls, isl_multi_aff_copy(ma));
5426 res = isl_aff_alloc(ls);
5427 if (!res)
5428 goto error;
5430 isl_int_init(f);
5431 isl_int_init(c1);
5432 isl_int_init(c2);
5433 isl_int_init(g);
5435 isl_seq_preimage(res->v->el, aff->v->el, ma, 0, 0, n_div_ma, n_div_aff,
5436 f, c1, c2, g, 1);
5438 isl_int_clear(f);
5439 isl_int_clear(c1);
5440 isl_int_clear(c2);
5441 isl_int_clear(g);
5443 isl_aff_free(aff);
5444 isl_multi_aff_free(ma);
5445 res = isl_aff_normalize(res);
5446 return res;
5447 error:
5448 isl_aff_free(aff);
5449 isl_multi_aff_free(ma);
5450 isl_aff_free(res);
5451 return NULL;
5454 /* Compute the pullback of "aff1" by the function represented by "aff2".
5455 * In other words, plug in "aff2" in "aff1". The result is an affine expression
5456 * defined over the domain space of "aff1".
5458 * The domain of "aff1" should match the range of "aff2", which means
5459 * that it should be single-dimensional.
5461 __isl_give isl_aff *isl_aff_pullback_aff(__isl_take isl_aff *aff1,
5462 __isl_take isl_aff *aff2)
5464 isl_multi_aff *ma;
5466 ma = isl_multi_aff_from_aff(aff2);
5467 return isl_aff_pullback_multi_aff(aff1, ma);
5470 /* Compute the pullback of "ma1" by the function represented by "ma2".
5471 * In other words, plug in "ma2" in "ma1".
5473 * The parameters of "ma1" and "ma2" are assumed to have been aligned.
5475 static __isl_give isl_multi_aff *isl_multi_aff_pullback_multi_aff_aligned(
5476 __isl_take isl_multi_aff *ma1, __isl_take isl_multi_aff *ma2)
5478 int i;
5479 isl_space *space = NULL;
5481 ma2 = isl_multi_aff_align_divs(ma2);
5482 ma1 = isl_multi_aff_cow(ma1);
5483 if (!ma1 || !ma2)
5484 goto error;
5486 space = isl_space_join(isl_multi_aff_get_space(ma2),
5487 isl_multi_aff_get_space(ma1));
5489 for (i = 0; i < ma1->n; ++i) {
5490 ma1->p[i] = isl_aff_pullback_multi_aff(ma1->p[i],
5491 isl_multi_aff_copy(ma2));
5492 if (!ma1->p[i])
5493 goto error;
5496 ma1 = isl_multi_aff_reset_space(ma1, space);
5497 isl_multi_aff_free(ma2);
5498 return ma1;
5499 error:
5500 isl_space_free(space);
5501 isl_multi_aff_free(ma2);
5502 isl_multi_aff_free(ma1);
5503 return NULL;
5506 /* Compute the pullback of "ma1" by the function represented by "ma2".
5507 * In other words, plug in "ma2" in "ma1".
5509 __isl_give isl_multi_aff *isl_multi_aff_pullback_multi_aff(
5510 __isl_take isl_multi_aff *ma1, __isl_take isl_multi_aff *ma2)
5512 return isl_multi_aff_align_params_multi_multi_and(ma1, ma2,
5513 &isl_multi_aff_pullback_multi_aff_aligned);
5516 /* Extend the local space of "dst" to include the divs
5517 * in the local space of "src".
5519 * If "src" does not have any divs or if the local spaces of "dst" and
5520 * "src" are the same, then no extension is required.
5522 __isl_give isl_aff *isl_aff_align_divs(__isl_take isl_aff *dst,
5523 __isl_keep isl_aff *src)
5525 isl_ctx *ctx;
5526 int src_n_div, dst_n_div;
5527 int *exp1 = NULL;
5528 int *exp2 = NULL;
5529 isl_bool equal;
5530 isl_mat *div;
5532 if (!src || !dst)
5533 return isl_aff_free(dst);
5535 ctx = isl_aff_get_ctx(src);
5536 equal = isl_local_space_has_equal_space(src->ls, dst->ls);
5537 if (equal < 0)
5538 return isl_aff_free(dst);
5539 if (!equal)
5540 isl_die(ctx, isl_error_invalid,
5541 "spaces don't match", goto error);
5543 src_n_div = isl_local_space_dim(src->ls, isl_dim_div);
5544 if (src_n_div == 0)
5545 return dst;
5546 equal = isl_local_space_is_equal(src->ls, dst->ls);
5547 if (equal < 0)
5548 return isl_aff_free(dst);
5549 if (equal)
5550 return dst;
5552 dst_n_div = isl_local_space_dim(dst->ls, isl_dim_div);
5553 exp1 = isl_alloc_array(ctx, int, src_n_div);
5554 exp2 = isl_alloc_array(ctx, int, dst_n_div);
5555 if (!exp1 || (dst_n_div && !exp2))
5556 goto error;
5558 div = isl_merge_divs(src->ls->div, dst->ls->div, exp1, exp2);
5559 dst = isl_aff_expand_divs(dst, div, exp2);
5560 free(exp1);
5561 free(exp2);
5563 return dst;
5564 error:
5565 free(exp1);
5566 free(exp2);
5567 return isl_aff_free(dst);
5570 /* Adjust the local spaces of the affine expressions in "maff"
5571 * such that they all have the save divs.
5573 __isl_give isl_multi_aff *isl_multi_aff_align_divs(
5574 __isl_take isl_multi_aff *maff)
5576 int i;
5578 if (!maff)
5579 return NULL;
5580 if (maff->n == 0)
5581 return maff;
5582 maff = isl_multi_aff_cow(maff);
5583 if (!maff)
5584 return NULL;
5586 for (i = 1; i < maff->n; ++i)
5587 maff->p[0] = isl_aff_align_divs(maff->p[0], maff->p[i]);
5588 for (i = 1; i < maff->n; ++i) {
5589 maff->p[i] = isl_aff_align_divs(maff->p[i], maff->p[0]);
5590 if (!maff->p[i])
5591 return isl_multi_aff_free(maff);
5594 return maff;
5597 __isl_give isl_aff *isl_aff_lift(__isl_take isl_aff *aff)
5599 aff = isl_aff_cow(aff);
5600 if (!aff)
5601 return NULL;
5603 aff->ls = isl_local_space_lift(aff->ls);
5604 if (!aff->ls)
5605 return isl_aff_free(aff);
5607 return aff;
5610 /* Lift "maff" to a space with extra dimensions such that the result
5611 * has no more existentially quantified variables.
5612 * If "ls" is not NULL, then *ls is assigned the local space that lies
5613 * at the basis of the lifting applied to "maff".
5615 __isl_give isl_multi_aff *isl_multi_aff_lift(__isl_take isl_multi_aff *maff,
5616 __isl_give isl_local_space **ls)
5618 int i;
5619 isl_space *space;
5620 unsigned n_div;
5622 if (ls)
5623 *ls = NULL;
5625 if (!maff)
5626 return NULL;
5628 if (maff->n == 0) {
5629 if (ls) {
5630 isl_space *space = isl_multi_aff_get_domain_space(maff);
5631 *ls = isl_local_space_from_space(space);
5632 if (!*ls)
5633 return isl_multi_aff_free(maff);
5635 return maff;
5638 maff = isl_multi_aff_cow(maff);
5639 maff = isl_multi_aff_align_divs(maff);
5640 if (!maff)
5641 return NULL;
5643 n_div = isl_aff_dim(maff->p[0], isl_dim_div);
5644 space = isl_multi_aff_get_space(maff);
5645 space = isl_space_lift(isl_space_domain(space), n_div);
5646 space = isl_space_extend_domain_with_range(space,
5647 isl_multi_aff_get_space(maff));
5648 if (!space)
5649 return isl_multi_aff_free(maff);
5650 isl_space_free(maff->space);
5651 maff->space = space;
5653 if (ls) {
5654 *ls = isl_aff_get_domain_local_space(maff->p[0]);
5655 if (!*ls)
5656 return isl_multi_aff_free(maff);
5659 for (i = 0; i < maff->n; ++i) {
5660 maff->p[i] = isl_aff_lift(maff->p[i]);
5661 if (!maff->p[i])
5662 goto error;
5665 return maff;
5666 error:
5667 if (ls)
5668 isl_local_space_free(*ls);
5669 return isl_multi_aff_free(maff);
5673 /* Extract an isl_pw_aff corresponding to output dimension "pos" of "pma".
5675 __isl_give isl_pw_aff *isl_pw_multi_aff_get_pw_aff(
5676 __isl_keep isl_pw_multi_aff *pma, int pos)
5678 int i;
5679 int n_out;
5680 isl_space *space;
5681 isl_pw_aff *pa;
5683 if (!pma)
5684 return NULL;
5686 n_out = isl_pw_multi_aff_dim(pma, isl_dim_out);
5687 if (pos < 0 || pos >= n_out)
5688 isl_die(isl_pw_multi_aff_get_ctx(pma), isl_error_invalid,
5689 "index out of bounds", return NULL);
5691 space = isl_pw_multi_aff_get_space(pma);
5692 space = isl_space_drop_dims(space, isl_dim_out,
5693 pos + 1, n_out - pos - 1);
5694 space = isl_space_drop_dims(space, isl_dim_out, 0, pos);
5696 pa = isl_pw_aff_alloc_size(space, pma->n);
5697 for (i = 0; i < pma->n; ++i) {
5698 isl_aff *aff;
5699 aff = isl_multi_aff_get_aff(pma->p[i].maff, pos);
5700 pa = isl_pw_aff_add_piece(pa, isl_set_copy(pma->p[i].set), aff);
5703 return pa;
5706 /* Return an isl_pw_multi_aff with the given "set" as domain and
5707 * an unnamed zero-dimensional range.
5709 __isl_give isl_pw_multi_aff *isl_pw_multi_aff_from_domain(
5710 __isl_take isl_set *set)
5712 isl_multi_aff *ma;
5713 isl_space *space;
5715 space = isl_set_get_space(set);
5716 space = isl_space_from_domain(space);
5717 ma = isl_multi_aff_zero(space);
5718 return isl_pw_multi_aff_alloc(set, ma);
5721 /* Add an isl_pw_multi_aff with the given "set" as domain and
5722 * an unnamed zero-dimensional range to *user.
5724 static isl_stat add_pw_multi_aff_from_domain(__isl_take isl_set *set,
5725 void *user)
5727 isl_union_pw_multi_aff **upma = user;
5728 isl_pw_multi_aff *pma;
5730 pma = isl_pw_multi_aff_from_domain(set);
5731 *upma = isl_union_pw_multi_aff_add_pw_multi_aff(*upma, pma);
5733 return isl_stat_ok;
5736 /* Return an isl_union_pw_multi_aff with the given "uset" as domain and
5737 * an unnamed zero-dimensional range.
5739 __isl_give isl_union_pw_multi_aff *isl_union_pw_multi_aff_from_domain(
5740 __isl_take isl_union_set *uset)
5742 isl_space *space;
5743 isl_union_pw_multi_aff *upma;
5745 if (!uset)
5746 return NULL;
5748 space = isl_union_set_get_space(uset);
5749 upma = isl_union_pw_multi_aff_empty(space);
5751 if (isl_union_set_foreach_set(uset,
5752 &add_pw_multi_aff_from_domain, &upma) < 0)
5753 goto error;
5755 isl_union_set_free(uset);
5756 return upma;
5757 error:
5758 isl_union_set_free(uset);
5759 isl_union_pw_multi_aff_free(upma);
5760 return NULL;
5763 /* Convert "pma" to an isl_map and add it to *umap.
5765 static isl_stat map_from_pw_multi_aff(__isl_take isl_pw_multi_aff *pma,
5766 void *user)
5768 isl_union_map **umap = user;
5769 isl_map *map;
5771 map = isl_map_from_pw_multi_aff(pma);
5772 *umap = isl_union_map_add_map(*umap, map);
5774 return isl_stat_ok;
5777 /* Construct a union map mapping the domain of the union
5778 * piecewise multi-affine expression to its range, with each dimension
5779 * in the range equated to the corresponding affine expression on its cell.
5781 __isl_give isl_union_map *isl_union_map_from_union_pw_multi_aff(
5782 __isl_take isl_union_pw_multi_aff *upma)
5784 isl_space *space;
5785 isl_union_map *umap;
5787 if (!upma)
5788 return NULL;
5790 space = isl_union_pw_multi_aff_get_space(upma);
5791 umap = isl_union_map_empty(space);
5793 if (isl_union_pw_multi_aff_foreach_pw_multi_aff(upma,
5794 &map_from_pw_multi_aff, &umap) < 0)
5795 goto error;
5797 isl_union_pw_multi_aff_free(upma);
5798 return umap;
5799 error:
5800 isl_union_pw_multi_aff_free(upma);
5801 isl_union_map_free(umap);
5802 return NULL;
5805 /* Local data for bin_entry and the callback "fn".
5807 struct isl_union_pw_multi_aff_bin_data {
5808 isl_union_pw_multi_aff *upma2;
5809 isl_union_pw_multi_aff *res;
5810 isl_pw_multi_aff *pma;
5811 isl_stat (*fn)(__isl_take isl_pw_multi_aff *pma, void *user);
5814 /* Given an isl_pw_multi_aff from upma1, store it in data->pma
5815 * and call data->fn for each isl_pw_multi_aff in data->upma2.
5817 static isl_stat bin_entry(__isl_take isl_pw_multi_aff *pma, void *user)
5819 struct isl_union_pw_multi_aff_bin_data *data = user;
5820 isl_stat r;
5822 data->pma = pma;
5823 r = isl_union_pw_multi_aff_foreach_pw_multi_aff(data->upma2,
5824 data->fn, data);
5825 isl_pw_multi_aff_free(pma);
5827 return r;
5830 /* Call "fn" on each pair of isl_pw_multi_affs in "upma1" and "upma2".
5831 * The isl_pw_multi_aff from upma1 is stored in data->pma (where data is
5832 * passed as user field) and the isl_pw_multi_aff from upma2 is available
5833 * as *entry. The callback should adjust data->res if desired.
5835 static __isl_give isl_union_pw_multi_aff *bin_op(
5836 __isl_take isl_union_pw_multi_aff *upma1,
5837 __isl_take isl_union_pw_multi_aff *upma2,
5838 isl_stat (*fn)(__isl_take isl_pw_multi_aff *pma, void *user))
5840 isl_space *space;
5841 struct isl_union_pw_multi_aff_bin_data data = { NULL, NULL, NULL, fn };
5843 space = isl_union_pw_multi_aff_get_space(upma2);
5844 upma1 = isl_union_pw_multi_aff_align_params(upma1, space);
5845 space = isl_union_pw_multi_aff_get_space(upma1);
5846 upma2 = isl_union_pw_multi_aff_align_params(upma2, space);
5848 if (!upma1 || !upma2)
5849 goto error;
5851 data.upma2 = upma2;
5852 data.res = isl_union_pw_multi_aff_alloc_same_size(upma1);
5853 if (isl_union_pw_multi_aff_foreach_pw_multi_aff(upma1,
5854 &bin_entry, &data) < 0)
5855 goto error;
5857 isl_union_pw_multi_aff_free(upma1);
5858 isl_union_pw_multi_aff_free(upma2);
5859 return data.res;
5860 error:
5861 isl_union_pw_multi_aff_free(upma1);
5862 isl_union_pw_multi_aff_free(upma2);
5863 isl_union_pw_multi_aff_free(data.res);
5864 return NULL;
5867 /* Given two aligned isl_pw_multi_affs A -> B and C -> D,
5868 * construct an isl_pw_multi_aff (A * C) -> [B -> D].
5870 static __isl_give isl_pw_multi_aff *pw_multi_aff_range_product(
5871 __isl_take isl_pw_multi_aff *pma1, __isl_take isl_pw_multi_aff *pma2)
5873 isl_space *space;
5875 space = isl_space_range_product(isl_pw_multi_aff_get_space(pma1),
5876 isl_pw_multi_aff_get_space(pma2));
5877 return isl_pw_multi_aff_on_shared_domain_in(pma1, pma2, space,
5878 &isl_multi_aff_range_product);
5881 /* Given two isl_pw_multi_affs A -> B and C -> D,
5882 * construct an isl_pw_multi_aff (A * C) -> [B -> D].
5884 __isl_give isl_pw_multi_aff *isl_pw_multi_aff_range_product(
5885 __isl_take isl_pw_multi_aff *pma1, __isl_take isl_pw_multi_aff *pma2)
5887 return isl_pw_multi_aff_align_params_pw_pw_and(pma1, pma2,
5888 &pw_multi_aff_range_product);
5891 /* Given two aligned isl_pw_multi_affs A -> B and C -> D,
5892 * construct an isl_pw_multi_aff (A * C) -> (B, D).
5894 static __isl_give isl_pw_multi_aff *pw_multi_aff_flat_range_product(
5895 __isl_take isl_pw_multi_aff *pma1, __isl_take isl_pw_multi_aff *pma2)
5897 isl_space *space;
5899 space = isl_space_range_product(isl_pw_multi_aff_get_space(pma1),
5900 isl_pw_multi_aff_get_space(pma2));
5901 space = isl_space_flatten_range(space);
5902 return isl_pw_multi_aff_on_shared_domain_in(pma1, pma2, space,
5903 &isl_multi_aff_flat_range_product);
5906 /* Given two isl_pw_multi_affs A -> B and C -> D,
5907 * construct an isl_pw_multi_aff (A * C) -> (B, D).
5909 __isl_give isl_pw_multi_aff *isl_pw_multi_aff_flat_range_product(
5910 __isl_take isl_pw_multi_aff *pma1, __isl_take isl_pw_multi_aff *pma2)
5912 return isl_pw_multi_aff_align_params_pw_pw_and(pma1, pma2,
5913 &pw_multi_aff_flat_range_product);
5916 /* If data->pma and "pma2" have the same domain space, then compute
5917 * their flat range product and the result to data->res.
5919 static isl_stat flat_range_product_entry(__isl_take isl_pw_multi_aff *pma2,
5920 void *user)
5922 struct isl_union_pw_multi_aff_bin_data *data = user;
5924 if (!isl_space_tuple_is_equal(data->pma->dim, isl_dim_in,
5925 pma2->dim, isl_dim_in)) {
5926 isl_pw_multi_aff_free(pma2);
5927 return isl_stat_ok;
5930 pma2 = isl_pw_multi_aff_flat_range_product(
5931 isl_pw_multi_aff_copy(data->pma), pma2);
5933 data->res = isl_union_pw_multi_aff_add_pw_multi_aff(data->res, pma2);
5935 return isl_stat_ok;
5938 /* Given two isl_union_pw_multi_affs A -> B and C -> D,
5939 * construct an isl_union_pw_multi_aff (A * C) -> (B, D).
5941 __isl_give isl_union_pw_multi_aff *isl_union_pw_multi_aff_flat_range_product(
5942 __isl_take isl_union_pw_multi_aff *upma1,
5943 __isl_take isl_union_pw_multi_aff *upma2)
5945 return bin_op(upma1, upma2, &flat_range_product_entry);
5948 /* Replace the affine expressions at position "pos" in "pma" by "pa".
5949 * The parameters are assumed to have been aligned.
5951 * The implementation essentially performs an isl_pw_*_on_shared_domain,
5952 * except that it works on two different isl_pw_* types.
5954 static __isl_give isl_pw_multi_aff *pw_multi_aff_set_pw_aff(
5955 __isl_take isl_pw_multi_aff *pma, unsigned pos,
5956 __isl_take isl_pw_aff *pa)
5958 int i, j, n;
5959 isl_pw_multi_aff *res = NULL;
5961 if (!pma || !pa)
5962 goto error;
5964 if (!isl_space_tuple_is_equal(pma->dim, isl_dim_in,
5965 pa->dim, isl_dim_in))
5966 isl_die(isl_pw_multi_aff_get_ctx(pma), isl_error_invalid,
5967 "domains don't match", goto error);
5968 if (pos >= isl_pw_multi_aff_dim(pma, isl_dim_out))
5969 isl_die(isl_pw_multi_aff_get_ctx(pma), isl_error_invalid,
5970 "index out of bounds", goto error);
5972 n = pma->n * pa->n;
5973 res = isl_pw_multi_aff_alloc_size(isl_pw_multi_aff_get_space(pma), n);
5975 for (i = 0; i < pma->n; ++i) {
5976 for (j = 0; j < pa->n; ++j) {
5977 isl_set *common;
5978 isl_multi_aff *res_ij;
5979 int empty;
5981 common = isl_set_intersect(isl_set_copy(pma->p[i].set),
5982 isl_set_copy(pa->p[j].set));
5983 empty = isl_set_plain_is_empty(common);
5984 if (empty < 0 || empty) {
5985 isl_set_free(common);
5986 if (empty < 0)
5987 goto error;
5988 continue;
5991 res_ij = isl_multi_aff_set_aff(
5992 isl_multi_aff_copy(pma->p[i].maff), pos,
5993 isl_aff_copy(pa->p[j].aff));
5994 res_ij = isl_multi_aff_gist(res_ij,
5995 isl_set_copy(common));
5997 res = isl_pw_multi_aff_add_piece(res, common, res_ij);
6001 isl_pw_multi_aff_free(pma);
6002 isl_pw_aff_free(pa);
6003 return res;
6004 error:
6005 isl_pw_multi_aff_free(pma);
6006 isl_pw_aff_free(pa);
6007 return isl_pw_multi_aff_free(res);
6010 /* Replace the affine expressions at position "pos" in "pma" by "pa".
6012 __isl_give isl_pw_multi_aff *isl_pw_multi_aff_set_pw_aff(
6013 __isl_take isl_pw_multi_aff *pma, unsigned pos,
6014 __isl_take isl_pw_aff *pa)
6016 if (!pma || !pa)
6017 goto error;
6018 if (isl_space_match(pma->dim, isl_dim_param, pa->dim, isl_dim_param))
6019 return pw_multi_aff_set_pw_aff(pma, pos, pa);
6020 if (!isl_space_has_named_params(pma->dim) ||
6021 !isl_space_has_named_params(pa->dim))
6022 isl_die(isl_pw_multi_aff_get_ctx(pma), isl_error_invalid,
6023 "unaligned unnamed parameters", goto error);
6024 pma = isl_pw_multi_aff_align_params(pma, isl_pw_aff_get_space(pa));
6025 pa = isl_pw_aff_align_params(pa, isl_pw_multi_aff_get_space(pma));
6026 return pw_multi_aff_set_pw_aff(pma, pos, pa);
6027 error:
6028 isl_pw_multi_aff_free(pma);
6029 isl_pw_aff_free(pa);
6030 return NULL;
6033 /* Do the parameters of "pa" match those of "space"?
6035 int isl_pw_aff_matching_params(__isl_keep isl_pw_aff *pa,
6036 __isl_keep isl_space *space)
6038 isl_space *pa_space;
6039 int match;
6041 if (!pa || !space)
6042 return -1;
6044 pa_space = isl_pw_aff_get_space(pa);
6046 match = isl_space_match(space, isl_dim_param, pa_space, isl_dim_param);
6048 isl_space_free(pa_space);
6049 return match;
6052 /* Check that the domain space of "pa" matches "space".
6054 * Return 0 on success and -1 on error.
6056 int isl_pw_aff_check_match_domain_space(__isl_keep isl_pw_aff *pa,
6057 __isl_keep isl_space *space)
6059 isl_space *pa_space;
6060 int match;
6062 if (!pa || !space)
6063 return -1;
6065 pa_space = isl_pw_aff_get_space(pa);
6067 match = isl_space_match(space, isl_dim_param, pa_space, isl_dim_param);
6068 if (match < 0)
6069 goto error;
6070 if (!match)
6071 isl_die(isl_pw_aff_get_ctx(pa), isl_error_invalid,
6072 "parameters don't match", goto error);
6073 match = isl_space_tuple_is_equal(space, isl_dim_in,
6074 pa_space, isl_dim_in);
6075 if (match < 0)
6076 goto error;
6077 if (!match)
6078 isl_die(isl_pw_aff_get_ctx(pa), isl_error_invalid,
6079 "domains don't match", goto error);
6080 isl_space_free(pa_space);
6081 return 0;
6082 error:
6083 isl_space_free(pa_space);
6084 return -1;
6087 #undef BASE
6088 #define BASE pw_aff
6089 #undef DOMBASE
6090 #define DOMBASE set
6092 #include <isl_multi_templ.c>
6093 #include <isl_multi_apply_set.c>
6094 #include <isl_multi_coalesce.c>
6095 #include <isl_multi_gist.c>
6096 #include <isl_multi_hash.c>
6097 #include <isl_multi_intersect.c>
6099 /* Scale the elements of "pma" by the corresponding elements of "mv".
6101 __isl_give isl_pw_multi_aff *isl_pw_multi_aff_scale_multi_val(
6102 __isl_take isl_pw_multi_aff *pma, __isl_take isl_multi_val *mv)
6104 int i;
6106 pma = isl_pw_multi_aff_cow(pma);
6107 if (!pma || !mv)
6108 goto error;
6109 if (!isl_space_tuple_is_equal(pma->dim, isl_dim_out,
6110 mv->space, isl_dim_set))
6111 isl_die(isl_pw_multi_aff_get_ctx(pma), isl_error_invalid,
6112 "spaces don't match", goto error);
6113 if (!isl_space_match(pma->dim, isl_dim_param,
6114 mv->space, isl_dim_param)) {
6115 pma = isl_pw_multi_aff_align_params(pma,
6116 isl_multi_val_get_space(mv));
6117 mv = isl_multi_val_align_params(mv,
6118 isl_pw_multi_aff_get_space(pma));
6119 if (!pma || !mv)
6120 goto error;
6123 for (i = 0; i < pma->n; ++i) {
6124 pma->p[i].maff = isl_multi_aff_scale_multi_val(pma->p[i].maff,
6125 isl_multi_val_copy(mv));
6126 if (!pma->p[i].maff)
6127 goto error;
6130 isl_multi_val_free(mv);
6131 return pma;
6132 error:
6133 isl_multi_val_free(mv);
6134 isl_pw_multi_aff_free(pma);
6135 return NULL;
6138 /* This function is called for each entry of an isl_union_pw_multi_aff.
6139 * If the space of the entry matches that of data->mv,
6140 * then apply isl_pw_multi_aff_scale_multi_val and return the result.
6141 * Otherwise, return an empty isl_pw_multi_aff.
6143 static __isl_give isl_pw_multi_aff *union_pw_multi_aff_scale_multi_val_entry(
6144 __isl_take isl_pw_multi_aff *pma, void *user)
6146 isl_multi_val *mv = user;
6148 if (!pma)
6149 return NULL;
6150 if (!isl_space_tuple_is_equal(pma->dim, isl_dim_out,
6151 mv->space, isl_dim_set)) {
6152 isl_space *space = isl_pw_multi_aff_get_space(pma);
6153 isl_pw_multi_aff_free(pma);
6154 return isl_pw_multi_aff_empty(space);
6157 return isl_pw_multi_aff_scale_multi_val(pma, isl_multi_val_copy(mv));
6160 /* Scale the elements of "upma" by the corresponding elements of "mv",
6161 * for those entries that match the space of "mv".
6163 __isl_give isl_union_pw_multi_aff *isl_union_pw_multi_aff_scale_multi_val(
6164 __isl_take isl_union_pw_multi_aff *upma, __isl_take isl_multi_val *mv)
6166 upma = isl_union_pw_multi_aff_align_params(upma,
6167 isl_multi_val_get_space(mv));
6168 mv = isl_multi_val_align_params(mv,
6169 isl_union_pw_multi_aff_get_space(upma));
6170 if (!upma || !mv)
6171 goto error;
6173 return isl_union_pw_multi_aff_transform(upma,
6174 &union_pw_multi_aff_scale_multi_val_entry, mv);
6176 isl_multi_val_free(mv);
6177 return upma;
6178 error:
6179 isl_multi_val_free(mv);
6180 isl_union_pw_multi_aff_free(upma);
6181 return NULL;
6184 /* Construct and return a piecewise multi affine expression
6185 * in the given space with value zero in each of the output dimensions and
6186 * a universe domain.
6188 __isl_give isl_pw_multi_aff *isl_pw_multi_aff_zero(__isl_take isl_space *space)
6190 return isl_pw_multi_aff_from_multi_aff(isl_multi_aff_zero(space));
6193 /* Construct and return a piecewise multi affine expression
6194 * that is equal to the given piecewise affine expression.
6196 __isl_give isl_pw_multi_aff *isl_pw_multi_aff_from_pw_aff(
6197 __isl_take isl_pw_aff *pa)
6199 int i;
6200 isl_space *space;
6201 isl_pw_multi_aff *pma;
6203 if (!pa)
6204 return NULL;
6206 space = isl_pw_aff_get_space(pa);
6207 pma = isl_pw_multi_aff_alloc_size(space, pa->n);
6209 for (i = 0; i < pa->n; ++i) {
6210 isl_set *set;
6211 isl_multi_aff *ma;
6213 set = isl_set_copy(pa->p[i].set);
6214 ma = isl_multi_aff_from_aff(isl_aff_copy(pa->p[i].aff));
6215 pma = isl_pw_multi_aff_add_piece(pma, set, ma);
6218 isl_pw_aff_free(pa);
6219 return pma;
6222 /* Construct a set or map mapping the shared (parameter) domain
6223 * of the piecewise affine expressions to the range of "mpa"
6224 * with each dimension in the range equated to the
6225 * corresponding piecewise affine expression.
6227 static __isl_give isl_map *map_from_multi_pw_aff(
6228 __isl_take isl_multi_pw_aff *mpa)
6230 int i;
6231 isl_space *space;
6232 isl_map *map;
6234 if (!mpa)
6235 return NULL;
6237 if (isl_space_dim(mpa->space, isl_dim_out) != mpa->n)
6238 isl_die(isl_multi_pw_aff_get_ctx(mpa), isl_error_internal,
6239 "invalid space", goto error);
6241 space = isl_multi_pw_aff_get_domain_space(mpa);
6242 map = isl_map_universe(isl_space_from_domain(space));
6244 for (i = 0; i < mpa->n; ++i) {
6245 isl_pw_aff *pa;
6246 isl_map *map_i;
6248 pa = isl_pw_aff_copy(mpa->p[i]);
6249 map_i = map_from_pw_aff(pa);
6251 map = isl_map_flat_range_product(map, map_i);
6254 map = isl_map_reset_space(map, isl_multi_pw_aff_get_space(mpa));
6256 isl_multi_pw_aff_free(mpa);
6257 return map;
6258 error:
6259 isl_multi_pw_aff_free(mpa);
6260 return NULL;
6263 /* Construct a map mapping the shared domain
6264 * of the piecewise affine expressions to the range of "mpa"
6265 * with each dimension in the range equated to the
6266 * corresponding piecewise affine expression.
6268 __isl_give isl_map *isl_map_from_multi_pw_aff(__isl_take isl_multi_pw_aff *mpa)
6270 if (!mpa)
6271 return NULL;
6272 if (isl_space_is_set(mpa->space))
6273 isl_die(isl_multi_pw_aff_get_ctx(mpa), isl_error_internal,
6274 "space of input is not a map", goto error);
6276 return map_from_multi_pw_aff(mpa);
6277 error:
6278 isl_multi_pw_aff_free(mpa);
6279 return NULL;
6282 /* Construct a set mapping the shared parameter domain
6283 * of the piecewise affine expressions to the space of "mpa"
6284 * with each dimension in the range equated to the
6285 * corresponding piecewise affine expression.
6287 __isl_give isl_set *isl_set_from_multi_pw_aff(__isl_take isl_multi_pw_aff *mpa)
6289 if (!mpa)
6290 return NULL;
6291 if (!isl_space_is_set(mpa->space))
6292 isl_die(isl_multi_pw_aff_get_ctx(mpa), isl_error_internal,
6293 "space of input is not a set", goto error);
6295 return map_from_multi_pw_aff(mpa);
6296 error:
6297 isl_multi_pw_aff_free(mpa);
6298 return NULL;
6301 /* Construct and return a piecewise multi affine expression
6302 * that is equal to the given multi piecewise affine expression
6303 * on the shared domain of the piecewise affine expressions.
6305 __isl_give isl_pw_multi_aff *isl_pw_multi_aff_from_multi_pw_aff(
6306 __isl_take isl_multi_pw_aff *mpa)
6308 int i;
6309 isl_space *space;
6310 isl_pw_aff *pa;
6311 isl_pw_multi_aff *pma;
6313 if (!mpa)
6314 return NULL;
6316 space = isl_multi_pw_aff_get_space(mpa);
6318 if (mpa->n == 0) {
6319 isl_multi_pw_aff_free(mpa);
6320 return isl_pw_multi_aff_zero(space);
6323 pa = isl_multi_pw_aff_get_pw_aff(mpa, 0);
6324 pma = isl_pw_multi_aff_from_pw_aff(pa);
6326 for (i = 1; i < mpa->n; ++i) {
6327 isl_pw_multi_aff *pma_i;
6329 pa = isl_multi_pw_aff_get_pw_aff(mpa, i);
6330 pma_i = isl_pw_multi_aff_from_pw_aff(pa);
6331 pma = isl_pw_multi_aff_range_product(pma, pma_i);
6334 pma = isl_pw_multi_aff_reset_space(pma, space);
6336 isl_multi_pw_aff_free(mpa);
6337 return pma;
6340 /* Construct and return a multi piecewise affine expression
6341 * that is equal to the given multi affine expression.
6343 __isl_give isl_multi_pw_aff *isl_multi_pw_aff_from_multi_aff(
6344 __isl_take isl_multi_aff *ma)
6346 int i, n;
6347 isl_multi_pw_aff *mpa;
6349 if (!ma)
6350 return NULL;
6352 n = isl_multi_aff_dim(ma, isl_dim_out);
6353 mpa = isl_multi_pw_aff_alloc(isl_multi_aff_get_space(ma));
6355 for (i = 0; i < n; ++i) {
6356 isl_pw_aff *pa;
6358 pa = isl_pw_aff_from_aff(isl_multi_aff_get_aff(ma, i));
6359 mpa = isl_multi_pw_aff_set_pw_aff(mpa, i, pa);
6362 isl_multi_aff_free(ma);
6363 return mpa;
6366 /* Construct and return a multi piecewise affine expression
6367 * that is equal to the given piecewise multi affine expression.
6369 __isl_give isl_multi_pw_aff *isl_multi_pw_aff_from_pw_multi_aff(
6370 __isl_take isl_pw_multi_aff *pma)
6372 int i, n;
6373 isl_space *space;
6374 isl_multi_pw_aff *mpa;
6376 if (!pma)
6377 return NULL;
6379 n = isl_pw_multi_aff_dim(pma, isl_dim_out);
6380 space = isl_pw_multi_aff_get_space(pma);
6381 mpa = isl_multi_pw_aff_alloc(space);
6383 for (i = 0; i < n; ++i) {
6384 isl_pw_aff *pa;
6386 pa = isl_pw_multi_aff_get_pw_aff(pma, i);
6387 mpa = isl_multi_pw_aff_set_pw_aff(mpa, i, pa);
6390 isl_pw_multi_aff_free(pma);
6391 return mpa;
6394 /* Do "pa1" and "pa2" represent the same function?
6396 * We first check if they are obviously equal.
6397 * If not, we convert them to maps and check if those are equal.
6399 * If "pa1" or "pa2" contain any NaNs, then they are considered
6400 * not to be the same. A NaN is not equal to anything, not even
6401 * to another NaN.
6403 isl_bool isl_pw_aff_is_equal(__isl_keep isl_pw_aff *pa1,
6404 __isl_keep isl_pw_aff *pa2)
6406 isl_bool equal;
6407 isl_bool has_nan;
6408 isl_map *map1, *map2;
6410 if (!pa1 || !pa2)
6411 return isl_bool_error;
6413 equal = isl_pw_aff_plain_is_equal(pa1, pa2);
6414 if (equal < 0 || equal)
6415 return equal;
6416 has_nan = isl_pw_aff_involves_nan(pa1);
6417 if (has_nan >= 0 && !has_nan)
6418 has_nan = isl_pw_aff_involves_nan(pa2);
6419 if (has_nan < 0)
6420 return isl_bool_error;
6421 if (has_nan)
6422 return isl_bool_false;
6424 map1 = map_from_pw_aff(isl_pw_aff_copy(pa1));
6425 map2 = map_from_pw_aff(isl_pw_aff_copy(pa2));
6426 equal = isl_map_is_equal(map1, map2);
6427 isl_map_free(map1);
6428 isl_map_free(map2);
6430 return equal;
6433 /* Do "mpa1" and "mpa2" represent the same function?
6435 * Note that we cannot convert the entire isl_multi_pw_aff
6436 * to a map because the domains of the piecewise affine expressions
6437 * may not be the same.
6439 isl_bool isl_multi_pw_aff_is_equal(__isl_keep isl_multi_pw_aff *mpa1,
6440 __isl_keep isl_multi_pw_aff *mpa2)
6442 int i;
6443 isl_bool equal;
6445 if (!mpa1 || !mpa2)
6446 return isl_bool_error;
6448 if (!isl_space_match(mpa1->space, isl_dim_param,
6449 mpa2->space, isl_dim_param)) {
6450 if (!isl_space_has_named_params(mpa1->space))
6451 return isl_bool_false;
6452 if (!isl_space_has_named_params(mpa2->space))
6453 return isl_bool_false;
6454 mpa1 = isl_multi_pw_aff_copy(mpa1);
6455 mpa2 = isl_multi_pw_aff_copy(mpa2);
6456 mpa1 = isl_multi_pw_aff_align_params(mpa1,
6457 isl_multi_pw_aff_get_space(mpa2));
6458 mpa2 = isl_multi_pw_aff_align_params(mpa2,
6459 isl_multi_pw_aff_get_space(mpa1));
6460 equal = isl_multi_pw_aff_is_equal(mpa1, mpa2);
6461 isl_multi_pw_aff_free(mpa1);
6462 isl_multi_pw_aff_free(mpa2);
6463 return equal;
6466 equal = isl_space_is_equal(mpa1->space, mpa2->space);
6467 if (equal < 0 || !equal)
6468 return equal;
6470 for (i = 0; i < mpa1->n; ++i) {
6471 equal = isl_pw_aff_is_equal(mpa1->p[i], mpa2->p[i]);
6472 if (equal < 0 || !equal)
6473 return equal;
6476 return isl_bool_true;
6479 /* Do "pma1" and "pma2" represent the same function?
6481 * First check if they are obviously equal.
6482 * If not, then convert them to maps and check if those are equal.
6484 * If "pa1" or "pa2" contain any NaNs, then they are considered
6485 * not to be the same. A NaN is not equal to anything, not even
6486 * to another NaN.
6488 isl_bool isl_pw_multi_aff_is_equal(__isl_keep isl_pw_multi_aff *pma1,
6489 __isl_keep isl_pw_multi_aff *pma2)
6491 isl_bool equal;
6492 isl_bool has_nan;
6493 isl_map *map1, *map2;
6495 if (!pma1 || !pma2)
6496 return isl_bool_error;
6498 equal = isl_pw_multi_aff_plain_is_equal(pma1, pma2);
6499 if (equal < 0 || equal)
6500 return equal;
6501 has_nan = isl_pw_multi_aff_involves_nan(pma1);
6502 if (has_nan >= 0 && !has_nan)
6503 has_nan = isl_pw_multi_aff_involves_nan(pma2);
6504 if (has_nan < 0 || has_nan)
6505 return isl_bool_not(has_nan);
6507 map1 = isl_map_from_pw_multi_aff(isl_pw_multi_aff_copy(pma1));
6508 map2 = isl_map_from_pw_multi_aff(isl_pw_multi_aff_copy(pma2));
6509 equal = isl_map_is_equal(map1, map2);
6510 isl_map_free(map1);
6511 isl_map_free(map2);
6513 return equal;
6516 /* Compute the pullback of "mpa" by the function represented by "ma".
6517 * In other words, plug in "ma" in "mpa".
6519 * The parameters of "mpa" and "ma" are assumed to have been aligned.
6521 static __isl_give isl_multi_pw_aff *isl_multi_pw_aff_pullback_multi_aff_aligned(
6522 __isl_take isl_multi_pw_aff *mpa, __isl_take isl_multi_aff *ma)
6524 int i;
6525 isl_space *space = NULL;
6527 mpa = isl_multi_pw_aff_cow(mpa);
6528 if (!mpa || !ma)
6529 goto error;
6531 space = isl_space_join(isl_multi_aff_get_space(ma),
6532 isl_multi_pw_aff_get_space(mpa));
6533 if (!space)
6534 goto error;
6536 for (i = 0; i < mpa->n; ++i) {
6537 mpa->p[i] = isl_pw_aff_pullback_multi_aff(mpa->p[i],
6538 isl_multi_aff_copy(ma));
6539 if (!mpa->p[i])
6540 goto error;
6543 isl_multi_aff_free(ma);
6544 isl_space_free(mpa->space);
6545 mpa->space = space;
6546 return mpa;
6547 error:
6548 isl_space_free(space);
6549 isl_multi_pw_aff_free(mpa);
6550 isl_multi_aff_free(ma);
6551 return NULL;
6554 /* Compute the pullback of "mpa" by the function represented by "ma".
6555 * In other words, plug in "ma" in "mpa".
6557 __isl_give isl_multi_pw_aff *isl_multi_pw_aff_pullback_multi_aff(
6558 __isl_take isl_multi_pw_aff *mpa, __isl_take isl_multi_aff *ma)
6560 if (!mpa || !ma)
6561 goto error;
6562 if (isl_space_match(mpa->space, isl_dim_param,
6563 ma->space, isl_dim_param))
6564 return isl_multi_pw_aff_pullback_multi_aff_aligned(mpa, ma);
6565 mpa = isl_multi_pw_aff_align_params(mpa, isl_multi_aff_get_space(ma));
6566 ma = isl_multi_aff_align_params(ma, isl_multi_pw_aff_get_space(mpa));
6567 return isl_multi_pw_aff_pullback_multi_aff_aligned(mpa, ma);
6568 error:
6569 isl_multi_pw_aff_free(mpa);
6570 isl_multi_aff_free(ma);
6571 return NULL;
6574 /* Compute the pullback of "mpa" by the function represented by "pma".
6575 * In other words, plug in "pma" in "mpa".
6577 * The parameters of "mpa" and "mpa" are assumed to have been aligned.
6579 static __isl_give isl_multi_pw_aff *
6580 isl_multi_pw_aff_pullback_pw_multi_aff_aligned(
6581 __isl_take isl_multi_pw_aff *mpa, __isl_take isl_pw_multi_aff *pma)
6583 int i;
6584 isl_space *space = NULL;
6586 mpa = isl_multi_pw_aff_cow(mpa);
6587 if (!mpa || !pma)
6588 goto error;
6590 space = isl_space_join(isl_pw_multi_aff_get_space(pma),
6591 isl_multi_pw_aff_get_space(mpa));
6593 for (i = 0; i < mpa->n; ++i) {
6594 mpa->p[i] = isl_pw_aff_pullback_pw_multi_aff_aligned(mpa->p[i],
6595 isl_pw_multi_aff_copy(pma));
6596 if (!mpa->p[i])
6597 goto error;
6600 isl_pw_multi_aff_free(pma);
6601 isl_space_free(mpa->space);
6602 mpa->space = space;
6603 return mpa;
6604 error:
6605 isl_space_free(space);
6606 isl_multi_pw_aff_free(mpa);
6607 isl_pw_multi_aff_free(pma);
6608 return NULL;
6611 /* Compute the pullback of "mpa" by the function represented by "pma".
6612 * In other words, plug in "pma" in "mpa".
6614 __isl_give isl_multi_pw_aff *isl_multi_pw_aff_pullback_pw_multi_aff(
6615 __isl_take isl_multi_pw_aff *mpa, __isl_take isl_pw_multi_aff *pma)
6617 if (!mpa || !pma)
6618 goto error;
6619 if (isl_space_match(mpa->space, isl_dim_param, pma->dim, isl_dim_param))
6620 return isl_multi_pw_aff_pullback_pw_multi_aff_aligned(mpa, pma);
6621 mpa = isl_multi_pw_aff_align_params(mpa,
6622 isl_pw_multi_aff_get_space(pma));
6623 pma = isl_pw_multi_aff_align_params(pma,
6624 isl_multi_pw_aff_get_space(mpa));
6625 return isl_multi_pw_aff_pullback_pw_multi_aff_aligned(mpa, pma);
6626 error:
6627 isl_multi_pw_aff_free(mpa);
6628 isl_pw_multi_aff_free(pma);
6629 return NULL;
6632 /* Apply "aff" to "mpa". The range of "mpa" needs to be compatible
6633 * with the domain of "aff". The domain of the result is the same
6634 * as that of "mpa".
6635 * "mpa" and "aff" are assumed to have been aligned.
6637 * We first extract the parametric constant from "aff", defined
6638 * over the correct domain.
6639 * Then we add the appropriate combinations of the members of "mpa".
6640 * Finally, we add the integer divisions through recursive calls.
6642 static __isl_give isl_pw_aff *isl_multi_pw_aff_apply_aff_aligned(
6643 __isl_take isl_multi_pw_aff *mpa, __isl_take isl_aff *aff)
6645 int i, n_in, n_div;
6646 isl_space *space;
6647 isl_val *v;
6648 isl_pw_aff *pa;
6649 isl_aff *tmp;
6651 n_in = isl_aff_dim(aff, isl_dim_in);
6652 n_div = isl_aff_dim(aff, isl_dim_div);
6654 space = isl_space_domain(isl_multi_pw_aff_get_space(mpa));
6655 tmp = isl_aff_copy(aff);
6656 tmp = isl_aff_drop_dims(tmp, isl_dim_div, 0, n_div);
6657 tmp = isl_aff_drop_dims(tmp, isl_dim_in, 0, n_in);
6658 tmp = isl_aff_add_dims(tmp, isl_dim_in,
6659 isl_space_dim(space, isl_dim_set));
6660 tmp = isl_aff_reset_domain_space(tmp, space);
6661 pa = isl_pw_aff_from_aff(tmp);
6663 for (i = 0; i < n_in; ++i) {
6664 isl_pw_aff *pa_i;
6666 if (!isl_aff_involves_dims(aff, isl_dim_in, i, 1))
6667 continue;
6668 v = isl_aff_get_coefficient_val(aff, isl_dim_in, i);
6669 pa_i = isl_multi_pw_aff_get_pw_aff(mpa, i);
6670 pa_i = isl_pw_aff_scale_val(pa_i, v);
6671 pa = isl_pw_aff_add(pa, pa_i);
6674 for (i = 0; i < n_div; ++i) {
6675 isl_aff *div;
6676 isl_pw_aff *pa_i;
6678 if (!isl_aff_involves_dims(aff, isl_dim_div, i, 1))
6679 continue;
6680 div = isl_aff_get_div(aff, i);
6681 pa_i = isl_multi_pw_aff_apply_aff_aligned(
6682 isl_multi_pw_aff_copy(mpa), div);
6683 pa_i = isl_pw_aff_floor(pa_i);
6684 v = isl_aff_get_coefficient_val(aff, isl_dim_div, i);
6685 pa_i = isl_pw_aff_scale_val(pa_i, v);
6686 pa = isl_pw_aff_add(pa, pa_i);
6689 isl_multi_pw_aff_free(mpa);
6690 isl_aff_free(aff);
6692 return pa;
6695 /* Apply "aff" to "mpa". The range of "mpa" needs to be compatible
6696 * with the domain of "aff". The domain of the result is the same
6697 * as that of "mpa".
6699 __isl_give isl_pw_aff *isl_multi_pw_aff_apply_aff(
6700 __isl_take isl_multi_pw_aff *mpa, __isl_take isl_aff *aff)
6702 if (!aff || !mpa)
6703 goto error;
6704 if (isl_space_match(aff->ls->dim, isl_dim_param,
6705 mpa->space, isl_dim_param))
6706 return isl_multi_pw_aff_apply_aff_aligned(mpa, aff);
6708 aff = isl_aff_align_params(aff, isl_multi_pw_aff_get_space(mpa));
6709 mpa = isl_multi_pw_aff_align_params(mpa, isl_aff_get_space(aff));
6711 return isl_multi_pw_aff_apply_aff_aligned(mpa, aff);
6712 error:
6713 isl_aff_free(aff);
6714 isl_multi_pw_aff_free(mpa);
6715 return NULL;
6718 /* Apply "pa" to "mpa". The range of "mpa" needs to be compatible
6719 * with the domain of "pa". The domain of the result is the same
6720 * as that of "mpa".
6721 * "mpa" and "pa" are assumed to have been aligned.
6723 * We consider each piece in turn. Note that the domains of the
6724 * pieces are assumed to be disjoint and they remain disjoint
6725 * after taking the preimage (over the same function).
6727 static __isl_give isl_pw_aff *isl_multi_pw_aff_apply_pw_aff_aligned(
6728 __isl_take isl_multi_pw_aff *mpa, __isl_take isl_pw_aff *pa)
6730 isl_space *space;
6731 isl_pw_aff *res;
6732 int i;
6734 if (!mpa || !pa)
6735 goto error;
6737 space = isl_space_join(isl_multi_pw_aff_get_space(mpa),
6738 isl_pw_aff_get_space(pa));
6739 res = isl_pw_aff_empty(space);
6741 for (i = 0; i < pa->n; ++i) {
6742 isl_pw_aff *pa_i;
6743 isl_set *domain;
6745 pa_i = isl_multi_pw_aff_apply_aff_aligned(
6746 isl_multi_pw_aff_copy(mpa),
6747 isl_aff_copy(pa->p[i].aff));
6748 domain = isl_set_copy(pa->p[i].set);
6749 domain = isl_set_preimage_multi_pw_aff(domain,
6750 isl_multi_pw_aff_copy(mpa));
6751 pa_i = isl_pw_aff_intersect_domain(pa_i, domain);
6752 res = isl_pw_aff_add_disjoint(res, pa_i);
6755 isl_pw_aff_free(pa);
6756 isl_multi_pw_aff_free(mpa);
6757 return res;
6758 error:
6759 isl_pw_aff_free(pa);
6760 isl_multi_pw_aff_free(mpa);
6761 return NULL;
6764 /* Apply "pa" to "mpa". The range of "mpa" needs to be compatible
6765 * with the domain of "pa". The domain of the result is the same
6766 * as that of "mpa".
6768 __isl_give isl_pw_aff *isl_multi_pw_aff_apply_pw_aff(
6769 __isl_take isl_multi_pw_aff *mpa, __isl_take isl_pw_aff *pa)
6771 if (!pa || !mpa)
6772 goto error;
6773 if (isl_space_match(pa->dim, isl_dim_param, mpa->space, isl_dim_param))
6774 return isl_multi_pw_aff_apply_pw_aff_aligned(mpa, pa);
6776 pa = isl_pw_aff_align_params(pa, isl_multi_pw_aff_get_space(mpa));
6777 mpa = isl_multi_pw_aff_align_params(mpa, isl_pw_aff_get_space(pa));
6779 return isl_multi_pw_aff_apply_pw_aff_aligned(mpa, pa);
6780 error:
6781 isl_pw_aff_free(pa);
6782 isl_multi_pw_aff_free(mpa);
6783 return NULL;
6786 /* Compute the pullback of "pa" by the function represented by "mpa".
6787 * In other words, plug in "mpa" in "pa".
6788 * "pa" and "mpa" are assumed to have been aligned.
6790 * The pullback is computed by applying "pa" to "mpa".
6792 static __isl_give isl_pw_aff *isl_pw_aff_pullback_multi_pw_aff_aligned(
6793 __isl_take isl_pw_aff *pa, __isl_take isl_multi_pw_aff *mpa)
6795 return isl_multi_pw_aff_apply_pw_aff_aligned(mpa, pa);
6798 /* Compute the pullback of "pa" by the function represented by "mpa".
6799 * In other words, plug in "mpa" in "pa".
6801 * The pullback is computed by applying "pa" to "mpa".
6803 __isl_give isl_pw_aff *isl_pw_aff_pullback_multi_pw_aff(
6804 __isl_take isl_pw_aff *pa, __isl_take isl_multi_pw_aff *mpa)
6806 return isl_multi_pw_aff_apply_pw_aff(mpa, pa);
6809 /* Compute the pullback of "mpa1" by the function represented by "mpa2".
6810 * In other words, plug in "mpa2" in "mpa1".
6812 * The parameters of "mpa1" and "mpa2" are assumed to have been aligned.
6814 * We pullback each member of "mpa1" in turn.
6816 static __isl_give isl_multi_pw_aff *
6817 isl_multi_pw_aff_pullback_multi_pw_aff_aligned(
6818 __isl_take isl_multi_pw_aff *mpa1, __isl_take isl_multi_pw_aff *mpa2)
6820 int i;
6821 isl_space *space = NULL;
6823 mpa1 = isl_multi_pw_aff_cow(mpa1);
6824 if (!mpa1 || !mpa2)
6825 goto error;
6827 space = isl_space_join(isl_multi_pw_aff_get_space(mpa2),
6828 isl_multi_pw_aff_get_space(mpa1));
6830 for (i = 0; i < mpa1->n; ++i) {
6831 mpa1->p[i] = isl_pw_aff_pullback_multi_pw_aff_aligned(
6832 mpa1->p[i], isl_multi_pw_aff_copy(mpa2));
6833 if (!mpa1->p[i])
6834 goto error;
6837 mpa1 = isl_multi_pw_aff_reset_space(mpa1, space);
6839 isl_multi_pw_aff_free(mpa2);
6840 return mpa1;
6841 error:
6842 isl_space_free(space);
6843 isl_multi_pw_aff_free(mpa1);
6844 isl_multi_pw_aff_free(mpa2);
6845 return NULL;
6848 /* Compute the pullback of "mpa1" by the function represented by "mpa2".
6849 * In other words, plug in "mpa2" in "mpa1".
6851 __isl_give isl_multi_pw_aff *isl_multi_pw_aff_pullback_multi_pw_aff(
6852 __isl_take isl_multi_pw_aff *mpa1, __isl_take isl_multi_pw_aff *mpa2)
6854 return isl_multi_pw_aff_align_params_multi_multi_and(mpa1, mpa2,
6855 &isl_multi_pw_aff_pullback_multi_pw_aff_aligned);
6858 /* Align the parameters of "mpa1" and "mpa2", check that the ranges
6859 * of "mpa1" and "mpa2" live in the same space, construct map space
6860 * between the domain spaces of "mpa1" and "mpa2" and call "order"
6861 * with this map space as extract argument.
6863 static __isl_give isl_map *isl_multi_pw_aff_order_map(
6864 __isl_take isl_multi_pw_aff *mpa1, __isl_take isl_multi_pw_aff *mpa2,
6865 __isl_give isl_map *(*order)(__isl_keep isl_multi_pw_aff *mpa1,
6866 __isl_keep isl_multi_pw_aff *mpa2, __isl_take isl_space *space))
6868 int match;
6869 isl_space *space1, *space2;
6870 isl_map *res;
6872 mpa1 = isl_multi_pw_aff_align_params(mpa1,
6873 isl_multi_pw_aff_get_space(mpa2));
6874 mpa2 = isl_multi_pw_aff_align_params(mpa2,
6875 isl_multi_pw_aff_get_space(mpa1));
6876 if (!mpa1 || !mpa2)
6877 goto error;
6878 match = isl_space_tuple_is_equal(mpa1->space, isl_dim_out,
6879 mpa2->space, isl_dim_out);
6880 if (match < 0)
6881 goto error;
6882 if (!match)
6883 isl_die(isl_multi_pw_aff_get_ctx(mpa1), isl_error_invalid,
6884 "range spaces don't match", goto error);
6885 space1 = isl_space_domain(isl_multi_pw_aff_get_space(mpa1));
6886 space2 = isl_space_domain(isl_multi_pw_aff_get_space(mpa2));
6887 space1 = isl_space_map_from_domain_and_range(space1, space2);
6889 res = order(mpa1, mpa2, space1);
6890 isl_multi_pw_aff_free(mpa1);
6891 isl_multi_pw_aff_free(mpa2);
6892 return res;
6893 error:
6894 isl_multi_pw_aff_free(mpa1);
6895 isl_multi_pw_aff_free(mpa2);
6896 return NULL;
6899 /* Return a map containing pairs of elements in the domains of "mpa1" and "mpa2"
6900 * where the function values are equal. "space" is the space of the result.
6901 * The parameters of "mpa1" and "mpa2" are assumed to have been aligned.
6903 * "mpa1" and "mpa2" are equal when each of the pairs of elements
6904 * in the sequences are equal.
6906 static __isl_give isl_map *isl_multi_pw_aff_eq_map_on_space(
6907 __isl_keep isl_multi_pw_aff *mpa1, __isl_keep isl_multi_pw_aff *mpa2,
6908 __isl_take isl_space *space)
6910 int i, n;
6911 isl_map *res;
6913 res = isl_map_universe(space);
6915 n = isl_multi_pw_aff_dim(mpa1, isl_dim_out);
6916 for (i = 0; i < n; ++i) {
6917 isl_pw_aff *pa1, *pa2;
6918 isl_map *map;
6920 pa1 = isl_multi_pw_aff_get_pw_aff(mpa1, i);
6921 pa2 = isl_multi_pw_aff_get_pw_aff(mpa2, i);
6922 map = isl_pw_aff_eq_map(pa1, pa2);
6923 res = isl_map_intersect(res, map);
6926 return res;
6929 /* Return a map containing pairs of elements in the domains of "mpa1" and "mpa2"
6930 * where the function values are equal.
6932 __isl_give isl_map *isl_multi_pw_aff_eq_map(__isl_take isl_multi_pw_aff *mpa1,
6933 __isl_take isl_multi_pw_aff *mpa2)
6935 return isl_multi_pw_aff_order_map(mpa1, mpa2,
6936 &isl_multi_pw_aff_eq_map_on_space);
6939 /* Return a map containing pairs of elements in the domains of "mpa1" and "mpa2"
6940 * where the function values of "mpa1" is lexicographically satisfies "base"
6941 * compared to that of "mpa2". "space" is the space of the result.
6942 * The parameters of "mpa1" and "mpa2" are assumed to have been aligned.
6944 * "mpa1" lexicographically satisfies "base" compared to "mpa2"
6945 * if its i-th element satisfies "base" when compared to
6946 * the i-th element of "mpa2" while all previous elements are
6947 * pairwise equal.
6949 static __isl_give isl_map *isl_multi_pw_aff_lex_map_on_space(
6950 __isl_take isl_multi_pw_aff *mpa1, __isl_take isl_multi_pw_aff *mpa2,
6951 __isl_give isl_map *(*base)(__isl_take isl_pw_aff *pa1,
6952 __isl_take isl_pw_aff *pa2),
6953 __isl_take isl_space *space)
6955 int i, n;
6956 isl_map *res, *rest;
6958 res = isl_map_empty(isl_space_copy(space));
6959 rest = isl_map_universe(space);
6961 n = isl_multi_pw_aff_dim(mpa1, isl_dim_out);
6962 for (i = 0; i < n; ++i) {
6963 isl_pw_aff *pa1, *pa2;
6964 isl_map *map;
6966 pa1 = isl_multi_pw_aff_get_pw_aff(mpa1, i);
6967 pa2 = isl_multi_pw_aff_get_pw_aff(mpa2, i);
6968 map = base(pa1, pa2);
6969 map = isl_map_intersect(map, isl_map_copy(rest));
6970 res = isl_map_union(res, map);
6972 if (i == n - 1)
6973 continue;
6975 pa1 = isl_multi_pw_aff_get_pw_aff(mpa1, i);
6976 pa2 = isl_multi_pw_aff_get_pw_aff(mpa2, i);
6977 map = isl_pw_aff_eq_map(pa1, pa2);
6978 rest = isl_map_intersect(rest, map);
6981 isl_map_free(rest);
6982 return res;
6985 /* Return a map containing pairs of elements in the domains of "mpa1" and "mpa2"
6986 * where the function value of "mpa1" is lexicographically less than that
6987 * of "mpa2". "space" is the space of the result.
6988 * The parameters of "mpa1" and "mpa2" are assumed to have been aligned.
6990 * "mpa1" is less than "mpa2" if its i-th element is smaller
6991 * than the i-th element of "mpa2" while all previous elements are
6992 * pairwise equal.
6994 __isl_give isl_map *isl_multi_pw_aff_lex_lt_map_on_space(
6995 __isl_take isl_multi_pw_aff *mpa1, __isl_take isl_multi_pw_aff *mpa2,
6996 __isl_take isl_space *space)
6998 return isl_multi_pw_aff_lex_map_on_space(mpa1, mpa2,
6999 &isl_pw_aff_lt_map, space);
7002 /* Return a map containing pairs of elements in the domains of "mpa1" and "mpa2"
7003 * where the function value of "mpa1" is lexicographically less than that
7004 * of "mpa2".
7006 __isl_give isl_map *isl_multi_pw_aff_lex_lt_map(
7007 __isl_take isl_multi_pw_aff *mpa1, __isl_take isl_multi_pw_aff *mpa2)
7009 return isl_multi_pw_aff_order_map(mpa1, mpa2,
7010 &isl_multi_pw_aff_lex_lt_map_on_space);
7013 /* Return a map containing pairs of elements in the domains of "mpa1" and "mpa2"
7014 * where the function value of "mpa1" is lexicographically greater than that
7015 * of "mpa2". "space" is the space of the result.
7016 * The parameters of "mpa1" and "mpa2" are assumed to have been aligned.
7018 * "mpa1" is greater than "mpa2" if its i-th element is greater
7019 * than the i-th element of "mpa2" while all previous elements are
7020 * pairwise equal.
7022 __isl_give isl_map *isl_multi_pw_aff_lex_gt_map_on_space(
7023 __isl_take isl_multi_pw_aff *mpa1, __isl_take isl_multi_pw_aff *mpa2,
7024 __isl_take isl_space *space)
7026 return isl_multi_pw_aff_lex_map_on_space(mpa1, mpa2,
7027 &isl_pw_aff_gt_map, space);
7030 /* Return a map containing pairs of elements in the domains of "mpa1" and "mpa2"
7031 * where the function value of "mpa1" is lexicographically greater than that
7032 * of "mpa2".
7034 __isl_give isl_map *isl_multi_pw_aff_lex_gt_map(
7035 __isl_take isl_multi_pw_aff *mpa1, __isl_take isl_multi_pw_aff *mpa2)
7037 return isl_multi_pw_aff_order_map(mpa1, mpa2,
7038 &isl_multi_pw_aff_lex_gt_map_on_space);
7041 /* Compare two isl_affs.
7043 * Return -1 if "aff1" is "smaller" than "aff2", 1 if "aff1" is "greater"
7044 * than "aff2" and 0 if they are equal.
7046 * The order is fairly arbitrary. We do consider expressions that only involve
7047 * earlier dimensions as "smaller".
7049 int isl_aff_plain_cmp(__isl_keep isl_aff *aff1, __isl_keep isl_aff *aff2)
7051 int cmp;
7052 int last1, last2;
7054 if (aff1 == aff2)
7055 return 0;
7057 if (!aff1)
7058 return -1;
7059 if (!aff2)
7060 return 1;
7062 cmp = isl_local_space_cmp(aff1->ls, aff2->ls);
7063 if (cmp != 0)
7064 return cmp;
7066 last1 = isl_seq_last_non_zero(aff1->v->el + 1, aff1->v->size - 1);
7067 last2 = isl_seq_last_non_zero(aff2->v->el + 1, aff1->v->size - 1);
7068 if (last1 != last2)
7069 return last1 - last2;
7071 return isl_seq_cmp(aff1->v->el, aff2->v->el, aff1->v->size);
7074 /* Compare two isl_pw_affs.
7076 * Return -1 if "pa1" is "smaller" than "pa2", 1 if "pa1" is "greater"
7077 * than "pa2" and 0 if they are equal.
7079 * The order is fairly arbitrary. We do consider expressions that only involve
7080 * earlier dimensions as "smaller".
7082 int isl_pw_aff_plain_cmp(__isl_keep isl_pw_aff *pa1,
7083 __isl_keep isl_pw_aff *pa2)
7085 int i;
7086 int cmp;
7088 if (pa1 == pa2)
7089 return 0;
7091 if (!pa1)
7092 return -1;
7093 if (!pa2)
7094 return 1;
7096 cmp = isl_space_cmp(pa1->dim, pa2->dim);
7097 if (cmp != 0)
7098 return cmp;
7100 if (pa1->n != pa2->n)
7101 return pa1->n - pa2->n;
7103 for (i = 0; i < pa1->n; ++i) {
7104 cmp = isl_set_plain_cmp(pa1->p[i].set, pa2->p[i].set);
7105 if (cmp != 0)
7106 return cmp;
7107 cmp = isl_aff_plain_cmp(pa1->p[i].aff, pa2->p[i].aff);
7108 if (cmp != 0)
7109 return cmp;
7112 return 0;
7115 /* Return a piecewise affine expression that is equal to "v" on "domain".
7117 __isl_give isl_pw_aff *isl_pw_aff_val_on_domain(__isl_take isl_set *domain,
7118 __isl_take isl_val *v)
7120 isl_space *space;
7121 isl_local_space *ls;
7122 isl_aff *aff;
7124 space = isl_set_get_space(domain);
7125 ls = isl_local_space_from_space(space);
7126 aff = isl_aff_val_on_domain(ls, v);
7128 return isl_pw_aff_alloc(domain, aff);
7131 /* Return a multi affine expression that is equal to "mv" on domain
7132 * space "space".
7134 __isl_give isl_multi_aff *isl_multi_aff_multi_val_on_space(
7135 __isl_take isl_space *space, __isl_take isl_multi_val *mv)
7137 int i, n;
7138 isl_space *space2;
7139 isl_local_space *ls;
7140 isl_multi_aff *ma;
7142 if (!space || !mv)
7143 goto error;
7145 n = isl_multi_val_dim(mv, isl_dim_set);
7146 space2 = isl_multi_val_get_space(mv);
7147 space2 = isl_space_align_params(space2, isl_space_copy(space));
7148 space = isl_space_align_params(space, isl_space_copy(space2));
7149 space = isl_space_map_from_domain_and_range(space, space2);
7150 ma = isl_multi_aff_alloc(isl_space_copy(space));
7151 ls = isl_local_space_from_space(isl_space_domain(space));
7152 for (i = 0; i < n; ++i) {
7153 isl_val *v;
7154 isl_aff *aff;
7156 v = isl_multi_val_get_val(mv, i);
7157 aff = isl_aff_val_on_domain(isl_local_space_copy(ls), v);
7158 ma = isl_multi_aff_set_aff(ma, i, aff);
7160 isl_local_space_free(ls);
7162 isl_multi_val_free(mv);
7163 return ma;
7164 error:
7165 isl_space_free(space);
7166 isl_multi_val_free(mv);
7167 return NULL;
7170 /* Return a piecewise multi-affine expression
7171 * that is equal to "mv" on "domain".
7173 __isl_give isl_pw_multi_aff *isl_pw_multi_aff_multi_val_on_domain(
7174 __isl_take isl_set *domain, __isl_take isl_multi_val *mv)
7176 isl_space *space;
7177 isl_multi_aff *ma;
7179 space = isl_set_get_space(domain);
7180 ma = isl_multi_aff_multi_val_on_space(space, mv);
7182 return isl_pw_multi_aff_alloc(domain, ma);
7185 /* Internal data structure for isl_union_pw_multi_aff_multi_val_on_domain.
7186 * mv is the value that should be attained on each domain set
7187 * res collects the results
7189 struct isl_union_pw_multi_aff_multi_val_on_domain_data {
7190 isl_multi_val *mv;
7191 isl_union_pw_multi_aff *res;
7194 /* Create an isl_pw_multi_aff equal to data->mv on "domain"
7195 * and add it to data->res.
7197 static isl_stat pw_multi_aff_multi_val_on_domain(__isl_take isl_set *domain,
7198 void *user)
7200 struct isl_union_pw_multi_aff_multi_val_on_domain_data *data = user;
7201 isl_pw_multi_aff *pma;
7202 isl_multi_val *mv;
7204 mv = isl_multi_val_copy(data->mv);
7205 pma = isl_pw_multi_aff_multi_val_on_domain(domain, mv);
7206 data->res = isl_union_pw_multi_aff_add_pw_multi_aff(data->res, pma);
7208 return data->res ? isl_stat_ok : isl_stat_error;
7211 /* Return a union piecewise multi-affine expression
7212 * that is equal to "mv" on "domain".
7214 __isl_give isl_union_pw_multi_aff *isl_union_pw_multi_aff_multi_val_on_domain(
7215 __isl_take isl_union_set *domain, __isl_take isl_multi_val *mv)
7217 struct isl_union_pw_multi_aff_multi_val_on_domain_data data;
7218 isl_space *space;
7220 space = isl_union_set_get_space(domain);
7221 data.res = isl_union_pw_multi_aff_empty(space);
7222 data.mv = mv;
7223 if (isl_union_set_foreach_set(domain,
7224 &pw_multi_aff_multi_val_on_domain, &data) < 0)
7225 data.res = isl_union_pw_multi_aff_free(data.res);
7226 isl_union_set_free(domain);
7227 isl_multi_val_free(mv);
7228 return data.res;
7231 /* Compute the pullback of data->pma by the function represented by "pma2",
7232 * provided the spaces match, and add the results to data->res.
7234 static isl_stat pullback_entry(__isl_take isl_pw_multi_aff *pma2, void *user)
7236 struct isl_union_pw_multi_aff_bin_data *data = user;
7238 if (!isl_space_tuple_is_equal(data->pma->dim, isl_dim_in,
7239 pma2->dim, isl_dim_out)) {
7240 isl_pw_multi_aff_free(pma2);
7241 return isl_stat_ok;
7244 pma2 = isl_pw_multi_aff_pullback_pw_multi_aff(
7245 isl_pw_multi_aff_copy(data->pma), pma2);
7247 data->res = isl_union_pw_multi_aff_add_pw_multi_aff(data->res, pma2);
7248 if (!data->res)
7249 return isl_stat_error;
7251 return isl_stat_ok;
7254 /* Compute the pullback of "upma1" by the function represented by "upma2".
7256 __isl_give isl_union_pw_multi_aff *
7257 isl_union_pw_multi_aff_pullback_union_pw_multi_aff(
7258 __isl_take isl_union_pw_multi_aff *upma1,
7259 __isl_take isl_union_pw_multi_aff *upma2)
7261 return bin_op(upma1, upma2, &pullback_entry);
7264 /* Check that the domain space of "upa" matches "space".
7266 * Return 0 on success and -1 on error.
7268 * This function is called from isl_multi_union_pw_aff_set_union_pw_aff and
7269 * can in principle never fail since the space "space" is that
7270 * of the isl_multi_union_pw_aff and is a set space such that
7271 * there is no domain space to match.
7273 * We check the parameters and double-check that "space" is
7274 * indeed that of a set.
7276 static int isl_union_pw_aff_check_match_domain_space(
7277 __isl_keep isl_union_pw_aff *upa, __isl_keep isl_space *space)
7279 isl_space *upa_space;
7280 int match;
7282 if (!upa || !space)
7283 return -1;
7285 match = isl_space_is_set(space);
7286 if (match < 0)
7287 return -1;
7288 if (!match)
7289 isl_die(isl_space_get_ctx(space), isl_error_invalid,
7290 "expecting set space", return -1);
7292 upa_space = isl_union_pw_aff_get_space(upa);
7293 match = isl_space_match(space, isl_dim_param, upa_space, isl_dim_param);
7294 if (match < 0)
7295 goto error;
7296 if (!match)
7297 isl_die(isl_space_get_ctx(space), isl_error_invalid,
7298 "parameters don't match", goto error);
7300 isl_space_free(upa_space);
7301 return 0;
7302 error:
7303 isl_space_free(upa_space);
7304 return -1;
7307 /* Do the parameters of "upa" match those of "space"?
7309 static int isl_union_pw_aff_matching_params(__isl_keep isl_union_pw_aff *upa,
7310 __isl_keep isl_space *space)
7312 isl_space *upa_space;
7313 int match;
7315 if (!upa || !space)
7316 return -1;
7318 upa_space = isl_union_pw_aff_get_space(upa);
7320 match = isl_space_match(space, isl_dim_param, upa_space, isl_dim_param);
7322 isl_space_free(upa_space);
7323 return match;
7326 /* Internal data structure for isl_union_pw_aff_reset_domain_space.
7327 * space represents the new parameters.
7328 * res collects the results.
7330 struct isl_union_pw_aff_reset_params_data {
7331 isl_space *space;
7332 isl_union_pw_aff *res;
7335 /* Replace the parameters of "pa" by data->space and
7336 * add the result to data->res.
7338 static isl_stat reset_params(__isl_take isl_pw_aff *pa, void *user)
7340 struct isl_union_pw_aff_reset_params_data *data = user;
7341 isl_space *space;
7343 space = isl_pw_aff_get_space(pa);
7344 space = isl_space_replace(space, isl_dim_param, data->space);
7345 pa = isl_pw_aff_reset_space(pa, space);
7346 data->res = isl_union_pw_aff_add_pw_aff(data->res, pa);
7348 return data->res ? isl_stat_ok : isl_stat_error;
7351 /* Replace the domain space of "upa" by "space".
7352 * Since a union expression does not have a (single) domain space,
7353 * "space" is necessarily a parameter space.
7355 * Since the order and the names of the parameters determine
7356 * the hash value, we need to create a new hash table.
7358 static __isl_give isl_union_pw_aff *isl_union_pw_aff_reset_domain_space(
7359 __isl_take isl_union_pw_aff *upa, __isl_take isl_space *space)
7361 struct isl_union_pw_aff_reset_params_data data = { space };
7362 int match;
7364 match = isl_union_pw_aff_matching_params(upa, space);
7365 if (match < 0)
7366 upa = isl_union_pw_aff_free(upa);
7367 else if (match) {
7368 isl_space_free(space);
7369 return upa;
7372 data.res = isl_union_pw_aff_empty(isl_space_copy(space));
7373 if (isl_union_pw_aff_foreach_pw_aff(upa, &reset_params, &data) < 0)
7374 data.res = isl_union_pw_aff_free(data.res);
7376 isl_union_pw_aff_free(upa);
7377 isl_space_free(space);
7378 return data.res;
7381 /* Return the floor of "pa".
7383 static __isl_give isl_pw_aff *floor_entry(__isl_take isl_pw_aff *pa, void *user)
7385 return isl_pw_aff_floor(pa);
7388 /* Given f, return floor(f).
7390 __isl_give isl_union_pw_aff *isl_union_pw_aff_floor(
7391 __isl_take isl_union_pw_aff *upa)
7393 return isl_union_pw_aff_transform_inplace(upa, &floor_entry, NULL);
7396 /* Compute
7398 * upa mod m = upa - m * floor(upa/m)
7400 * with m an integer value.
7402 __isl_give isl_union_pw_aff *isl_union_pw_aff_mod_val(
7403 __isl_take isl_union_pw_aff *upa, __isl_take isl_val *m)
7405 isl_union_pw_aff *res;
7407 if (!upa || !m)
7408 goto error;
7410 if (!isl_val_is_int(m))
7411 isl_die(isl_val_get_ctx(m), isl_error_invalid,
7412 "expecting integer modulo", goto error);
7413 if (!isl_val_is_pos(m))
7414 isl_die(isl_val_get_ctx(m), isl_error_invalid,
7415 "expecting positive modulo", goto error);
7417 res = isl_union_pw_aff_copy(upa);
7418 upa = isl_union_pw_aff_scale_down_val(upa, isl_val_copy(m));
7419 upa = isl_union_pw_aff_floor(upa);
7420 upa = isl_union_pw_aff_scale_val(upa, m);
7421 res = isl_union_pw_aff_sub(res, upa);
7423 return res;
7424 error:
7425 isl_val_free(m);
7426 isl_union_pw_aff_free(upa);
7427 return NULL;
7430 /* Internal data structure for isl_union_pw_aff_aff_on_domain.
7431 * "aff" is the symbolic value that the resulting isl_union_pw_aff
7432 * needs to attain.
7433 * "res" collects the results.
7435 struct isl_union_pw_aff_aff_on_domain_data {
7436 isl_aff *aff;
7437 isl_union_pw_aff *res;
7440 /* Construct a piecewise affine expression that is equal to data->aff
7441 * on "domain" and add the result to data->res.
7443 static isl_stat pw_aff_aff_on_domain(__isl_take isl_set *domain, void *user)
7445 struct isl_union_pw_aff_aff_on_domain_data *data = user;
7446 isl_pw_aff *pa;
7447 isl_aff *aff;
7448 int dim;
7450 aff = isl_aff_copy(data->aff);
7451 dim = isl_set_dim(domain, isl_dim_set);
7452 aff = isl_aff_add_dims(aff, isl_dim_in, dim);
7453 aff = isl_aff_reset_domain_space(aff, isl_set_get_space(domain));
7454 pa = isl_pw_aff_alloc(domain, aff);
7455 data->res = isl_union_pw_aff_add_pw_aff(data->res, pa);
7457 return data->res ? isl_stat_ok : isl_stat_error;
7460 /* Internal data structure for isl_union_pw_multi_aff_get_union_pw_aff.
7461 * pos is the output position that needs to be extracted.
7462 * res collects the results.
7464 struct isl_union_pw_multi_aff_get_union_pw_aff_data {
7465 int pos;
7466 isl_union_pw_aff *res;
7469 /* Extract an isl_pw_aff corresponding to output dimension "pos" of "pma"
7470 * (assuming it has such a dimension) and add it to data->res.
7472 static isl_stat get_union_pw_aff(__isl_take isl_pw_multi_aff *pma, void *user)
7474 struct isl_union_pw_multi_aff_get_union_pw_aff_data *data = user;
7475 int n_out;
7476 isl_pw_aff *pa;
7478 if (!pma)
7479 return isl_stat_error;
7481 n_out = isl_pw_multi_aff_dim(pma, isl_dim_out);
7482 if (data->pos >= n_out) {
7483 isl_pw_multi_aff_free(pma);
7484 return isl_stat_ok;
7487 pa = isl_pw_multi_aff_get_pw_aff(pma, data->pos);
7488 isl_pw_multi_aff_free(pma);
7490 data->res = isl_union_pw_aff_add_pw_aff(data->res, pa);
7492 return data->res ? isl_stat_ok : isl_stat_error;
7495 /* Extract an isl_union_pw_aff corresponding to
7496 * output dimension "pos" of "upma".
7498 __isl_give isl_union_pw_aff *isl_union_pw_multi_aff_get_union_pw_aff(
7499 __isl_keep isl_union_pw_multi_aff *upma, int pos)
7501 struct isl_union_pw_multi_aff_get_union_pw_aff_data data;
7502 isl_space *space;
7504 if (!upma)
7505 return NULL;
7507 if (pos < 0)
7508 isl_die(isl_union_pw_multi_aff_get_ctx(upma), isl_error_invalid,
7509 "cannot extract at negative position", return NULL);
7511 space = isl_union_pw_multi_aff_get_space(upma);
7512 data.res = isl_union_pw_aff_empty(space);
7513 data.pos = pos;
7514 if (isl_union_pw_multi_aff_foreach_pw_multi_aff(upma,
7515 &get_union_pw_aff, &data) < 0)
7516 data.res = isl_union_pw_aff_free(data.res);
7518 return data.res;
7521 /* Return a union piecewise affine expression
7522 * that is equal to "aff" on "domain".
7524 * Construct an isl_pw_aff on each of the sets in "domain" and
7525 * collect the results.
7527 __isl_give isl_union_pw_aff *isl_union_pw_aff_aff_on_domain(
7528 __isl_take isl_union_set *domain, __isl_take isl_aff *aff)
7530 struct isl_union_pw_aff_aff_on_domain_data data;
7531 isl_space *space;
7533 if (!domain || !aff)
7534 goto error;
7535 if (!isl_local_space_is_params(aff->ls))
7536 isl_die(isl_aff_get_ctx(aff), isl_error_invalid,
7537 "expecting parametric expression", goto error);
7539 space = isl_union_set_get_space(domain);
7540 data.res = isl_union_pw_aff_empty(space);
7541 data.aff = aff;
7542 if (isl_union_set_foreach_set(domain, &pw_aff_aff_on_domain, &data) < 0)
7543 data.res = isl_union_pw_aff_free(data.res);
7544 isl_union_set_free(domain);
7545 isl_aff_free(aff);
7546 return data.res;
7547 error:
7548 isl_union_set_free(domain);
7549 isl_aff_free(aff);
7550 return NULL;
7553 /* Internal data structure for isl_union_pw_aff_val_on_domain.
7554 * "v" is the value that the resulting isl_union_pw_aff needs to attain.
7555 * "res" collects the results.
7557 struct isl_union_pw_aff_val_on_domain_data {
7558 isl_val *v;
7559 isl_union_pw_aff *res;
7562 /* Construct a piecewise affine expression that is equal to data->v
7563 * on "domain" and add the result to data->res.
7565 static isl_stat pw_aff_val_on_domain(__isl_take isl_set *domain, void *user)
7567 struct isl_union_pw_aff_val_on_domain_data *data = user;
7568 isl_pw_aff *pa;
7569 isl_val *v;
7571 v = isl_val_copy(data->v);
7572 pa = isl_pw_aff_val_on_domain(domain, v);
7573 data->res = isl_union_pw_aff_add_pw_aff(data->res, pa);
7575 return data->res ? isl_stat_ok : isl_stat_error;
7578 /* Return a union piecewise affine expression
7579 * that is equal to "v" on "domain".
7581 * Construct an isl_pw_aff on each of the sets in "domain" and
7582 * collect the results.
7584 __isl_give isl_union_pw_aff *isl_union_pw_aff_val_on_domain(
7585 __isl_take isl_union_set *domain, __isl_take isl_val *v)
7587 struct isl_union_pw_aff_val_on_domain_data data;
7588 isl_space *space;
7590 space = isl_union_set_get_space(domain);
7591 data.res = isl_union_pw_aff_empty(space);
7592 data.v = v;
7593 if (isl_union_set_foreach_set(domain, &pw_aff_val_on_domain, &data) < 0)
7594 data.res = isl_union_pw_aff_free(data.res);
7595 isl_union_set_free(domain);
7596 isl_val_free(v);
7597 return data.res;
7600 /* Construct a piecewise multi affine expression
7601 * that is equal to "pa" and add it to upma.
7603 static isl_stat pw_multi_aff_from_pw_aff_entry(__isl_take isl_pw_aff *pa,
7604 void *user)
7606 isl_union_pw_multi_aff **upma = user;
7607 isl_pw_multi_aff *pma;
7609 pma = isl_pw_multi_aff_from_pw_aff(pa);
7610 *upma = isl_union_pw_multi_aff_add_pw_multi_aff(*upma, pma);
7612 return *upma ? isl_stat_ok : isl_stat_error;
7615 /* Construct and return a union piecewise multi affine expression
7616 * that is equal to the given union piecewise affine expression.
7618 __isl_give isl_union_pw_multi_aff *isl_union_pw_multi_aff_from_union_pw_aff(
7619 __isl_take isl_union_pw_aff *upa)
7621 isl_space *space;
7622 isl_union_pw_multi_aff *upma;
7624 if (!upa)
7625 return NULL;
7627 space = isl_union_pw_aff_get_space(upa);
7628 upma = isl_union_pw_multi_aff_empty(space);
7630 if (isl_union_pw_aff_foreach_pw_aff(upa,
7631 &pw_multi_aff_from_pw_aff_entry, &upma) < 0)
7632 upma = isl_union_pw_multi_aff_free(upma);
7634 isl_union_pw_aff_free(upa);
7635 return upma;
7638 /* Compute the set of elements in the domain of "pa" where it is zero and
7639 * add this set to "uset".
7641 static isl_stat zero_union_set(__isl_take isl_pw_aff *pa, void *user)
7643 isl_union_set **uset = (isl_union_set **)user;
7645 *uset = isl_union_set_add_set(*uset, isl_pw_aff_zero_set(pa));
7647 return *uset ? isl_stat_ok : isl_stat_error;
7650 /* Return a union set containing those elements in the domain
7651 * of "upa" where it is zero.
7653 __isl_give isl_union_set *isl_union_pw_aff_zero_union_set(
7654 __isl_take isl_union_pw_aff *upa)
7656 isl_union_set *zero;
7658 zero = isl_union_set_empty(isl_union_pw_aff_get_space(upa));
7659 if (isl_union_pw_aff_foreach_pw_aff(upa, &zero_union_set, &zero) < 0)
7660 zero = isl_union_set_free(zero);
7662 isl_union_pw_aff_free(upa);
7663 return zero;
7666 /* Convert "pa" to an isl_map and add it to *umap.
7668 static isl_stat map_from_pw_aff_entry(__isl_take isl_pw_aff *pa, void *user)
7670 isl_union_map **umap = user;
7671 isl_map *map;
7673 map = isl_map_from_pw_aff(pa);
7674 *umap = isl_union_map_add_map(*umap, map);
7676 return *umap ? isl_stat_ok : isl_stat_error;
7679 /* Construct a union map mapping the domain of the union
7680 * piecewise affine expression to its range, with the single output dimension
7681 * equated to the corresponding affine expressions on their cells.
7683 __isl_give isl_union_map *isl_union_map_from_union_pw_aff(
7684 __isl_take isl_union_pw_aff *upa)
7686 isl_space *space;
7687 isl_union_map *umap;
7689 if (!upa)
7690 return NULL;
7692 space = isl_union_pw_aff_get_space(upa);
7693 umap = isl_union_map_empty(space);
7695 if (isl_union_pw_aff_foreach_pw_aff(upa, &map_from_pw_aff_entry,
7696 &umap) < 0)
7697 umap = isl_union_map_free(umap);
7699 isl_union_pw_aff_free(upa);
7700 return umap;
7703 /* Internal data structure for isl_union_pw_aff_pullback_union_pw_multi_aff.
7704 * upma is the function that is plugged in.
7705 * pa is the current part of the function in which upma is plugged in.
7706 * res collects the results.
7708 struct isl_union_pw_aff_pullback_upma_data {
7709 isl_union_pw_multi_aff *upma;
7710 isl_pw_aff *pa;
7711 isl_union_pw_aff *res;
7714 /* Check if "pma" can be plugged into data->pa.
7715 * If so, perform the pullback and add the result to data->res.
7717 static isl_stat pa_pb_pma(__isl_take isl_pw_multi_aff *pma, void *user)
7719 struct isl_union_pw_aff_pullback_upma_data *data = user;
7720 isl_pw_aff *pa;
7722 if (!isl_space_tuple_is_equal(data->pa->dim, isl_dim_in,
7723 pma->dim, isl_dim_out)) {
7724 isl_pw_multi_aff_free(pma);
7725 return isl_stat_ok;
7728 pa = isl_pw_aff_copy(data->pa);
7729 pa = isl_pw_aff_pullback_pw_multi_aff(pa, pma);
7731 data->res = isl_union_pw_aff_add_pw_aff(data->res, pa);
7733 return data->res ? isl_stat_ok : isl_stat_error;
7736 /* Check if any of the elements of data->upma can be plugged into pa,
7737 * add if so add the result to data->res.
7739 static isl_stat upa_pb_upma(__isl_take isl_pw_aff *pa, void *user)
7741 struct isl_union_pw_aff_pullback_upma_data *data = user;
7742 isl_stat r;
7744 data->pa = pa;
7745 r = isl_union_pw_multi_aff_foreach_pw_multi_aff(data->upma,
7746 &pa_pb_pma, data);
7747 isl_pw_aff_free(pa);
7749 return r;
7752 /* Compute the pullback of "upa" by the function represented by "upma".
7753 * In other words, plug in "upma" in "upa". The result contains
7754 * expressions defined over the domain space of "upma".
7756 * Run over all pairs of elements in "upa" and "upma", perform
7757 * the pullback when appropriate and collect the results.
7758 * If the hash value were based on the domain space rather than
7759 * the function space, then we could run through all elements
7760 * of "upma" and directly pick out the corresponding element of "upa".
7762 __isl_give isl_union_pw_aff *isl_union_pw_aff_pullback_union_pw_multi_aff(
7763 __isl_take isl_union_pw_aff *upa,
7764 __isl_take isl_union_pw_multi_aff *upma)
7766 struct isl_union_pw_aff_pullback_upma_data data = { NULL, NULL };
7767 isl_space *space;
7769 space = isl_union_pw_multi_aff_get_space(upma);
7770 upa = isl_union_pw_aff_align_params(upa, space);
7771 space = isl_union_pw_aff_get_space(upa);
7772 upma = isl_union_pw_multi_aff_align_params(upma, space);
7774 if (!upa || !upma)
7775 goto error;
7777 data.upma = upma;
7778 data.res = isl_union_pw_aff_alloc_same_size(upa);
7779 if (isl_union_pw_aff_foreach_pw_aff(upa, &upa_pb_upma, &data) < 0)
7780 data.res = isl_union_pw_aff_free(data.res);
7782 isl_union_pw_aff_free(upa);
7783 isl_union_pw_multi_aff_free(upma);
7784 return data.res;
7785 error:
7786 isl_union_pw_aff_free(upa);
7787 isl_union_pw_multi_aff_free(upma);
7788 return NULL;
7791 #undef BASE
7792 #define BASE union_pw_aff
7793 #undef DOMBASE
7794 #define DOMBASE union_set
7796 #define NO_MOVE_DIMS
7797 #define NO_DIMS
7798 #define NO_DOMAIN
7799 #define NO_PRODUCT
7800 #define NO_SPLICE
7801 #define NO_ZERO
7802 #define NO_IDENTITY
7803 #define NO_GIST
7805 #include <isl_multi_templ.c>
7806 #include <isl_multi_apply_set.c>
7807 #include <isl_multi_apply_union_set.c>
7808 #include <isl_multi_coalesce.c>
7809 #include <isl_multi_floor.c>
7810 #include <isl_multi_gist.c>
7811 #include <isl_multi_intersect.c>
7813 /* Construct a multiple union piecewise affine expression
7814 * in the given space with value zero in each of the output dimensions.
7816 * Since there is no canonical zero value for
7817 * a union piecewise affine expression, we can only construct
7818 * zero-dimensional "zero" value.
7820 __isl_give isl_multi_union_pw_aff *isl_multi_union_pw_aff_zero(
7821 __isl_take isl_space *space)
7823 if (!space)
7824 return NULL;
7826 if (!isl_space_is_set(space))
7827 isl_die(isl_space_get_ctx(space), isl_error_invalid,
7828 "expecting set space", goto error);
7829 if (isl_space_dim(space , isl_dim_out) != 0)
7830 isl_die(isl_space_get_ctx(space), isl_error_invalid,
7831 "expecting 0D space", goto error);
7833 return isl_multi_union_pw_aff_alloc(space);
7834 error:
7835 isl_space_free(space);
7836 return NULL;
7839 /* Compute the sum of "mupa1" and "mupa2" on the union of their domains,
7840 * with the actual sum on the shared domain and
7841 * the defined expression on the symmetric difference of the domains.
7843 * We simply iterate over the elements in both arguments and
7844 * call isl_union_pw_aff_union_add on each of them.
7846 static __isl_give isl_multi_union_pw_aff *
7847 isl_multi_union_pw_aff_union_add_aligned(
7848 __isl_take isl_multi_union_pw_aff *mupa1,
7849 __isl_take isl_multi_union_pw_aff *mupa2)
7851 return isl_multi_union_pw_aff_bin_op(mupa1, mupa2,
7852 &isl_union_pw_aff_union_add);
7855 /* Compute the sum of "mupa1" and "mupa2" on the union of their domains,
7856 * with the actual sum on the shared domain and
7857 * the defined expression on the symmetric difference of the domains.
7859 __isl_give isl_multi_union_pw_aff *isl_multi_union_pw_aff_union_add(
7860 __isl_take isl_multi_union_pw_aff *mupa1,
7861 __isl_take isl_multi_union_pw_aff *mupa2)
7863 return isl_multi_union_pw_aff_align_params_multi_multi_and(mupa1, mupa2,
7864 &isl_multi_union_pw_aff_union_add_aligned);
7867 /* Construct and return a multi union piecewise affine expression
7868 * that is equal to the given multi affine expression.
7870 __isl_give isl_multi_union_pw_aff *isl_multi_union_pw_aff_from_multi_aff(
7871 __isl_take isl_multi_aff *ma)
7873 isl_multi_pw_aff *mpa;
7875 mpa = isl_multi_pw_aff_from_multi_aff(ma);
7876 return isl_multi_union_pw_aff_from_multi_pw_aff(mpa);
7879 /* Construct and return a multi union piecewise affine expression
7880 * that is equal to the given multi piecewise affine expression.
7882 __isl_give isl_multi_union_pw_aff *isl_multi_union_pw_aff_from_multi_pw_aff(
7883 __isl_take isl_multi_pw_aff *mpa)
7885 int i, n;
7886 isl_space *space;
7887 isl_multi_union_pw_aff *mupa;
7889 if (!mpa)
7890 return NULL;
7892 space = isl_multi_pw_aff_get_space(mpa);
7893 space = isl_space_range(space);
7894 mupa = isl_multi_union_pw_aff_alloc(space);
7896 n = isl_multi_pw_aff_dim(mpa, isl_dim_out);
7897 for (i = 0; i < n; ++i) {
7898 isl_pw_aff *pa;
7899 isl_union_pw_aff *upa;
7901 pa = isl_multi_pw_aff_get_pw_aff(mpa, i);
7902 upa = isl_union_pw_aff_from_pw_aff(pa);
7903 mupa = isl_multi_union_pw_aff_set_union_pw_aff(mupa, i, upa);
7906 isl_multi_pw_aff_free(mpa);
7908 return mupa;
7911 /* Extract the range space of "pma" and assign it to *space.
7912 * If *space has already been set (through a previous call to this function),
7913 * then check that the range space is the same.
7915 static isl_stat extract_space(__isl_take isl_pw_multi_aff *pma, void *user)
7917 isl_space **space = user;
7918 isl_space *pma_space;
7919 isl_bool equal;
7921 pma_space = isl_space_range(isl_pw_multi_aff_get_space(pma));
7922 isl_pw_multi_aff_free(pma);
7924 if (!pma_space)
7925 return isl_stat_error;
7926 if (!*space) {
7927 *space = pma_space;
7928 return isl_stat_ok;
7931 equal = isl_space_is_equal(pma_space, *space);
7932 isl_space_free(pma_space);
7934 if (equal < 0)
7935 return isl_stat_error;
7936 if (!equal)
7937 isl_die(isl_space_get_ctx(*space), isl_error_invalid,
7938 "range spaces not the same", return isl_stat_error);
7939 return isl_stat_ok;
7942 /* Construct and return a multi union piecewise affine expression
7943 * that is equal to the given union piecewise multi affine expression.
7945 * In order to be able to perform the conversion, the input
7946 * needs to be non-empty and may only involve a single range space.
7948 __isl_give isl_multi_union_pw_aff *
7949 isl_multi_union_pw_aff_from_union_pw_multi_aff(
7950 __isl_take isl_union_pw_multi_aff *upma)
7952 isl_space *space = NULL;
7953 isl_multi_union_pw_aff *mupa;
7954 int i, n;
7956 if (!upma)
7957 return NULL;
7958 if (isl_union_pw_multi_aff_n_pw_multi_aff(upma) == 0)
7959 isl_die(isl_union_pw_multi_aff_get_ctx(upma), isl_error_invalid,
7960 "cannot extract range space from empty input",
7961 goto error);
7962 if (isl_union_pw_multi_aff_foreach_pw_multi_aff(upma, &extract_space,
7963 &space) < 0)
7964 goto error;
7966 if (!space)
7967 goto error;
7969 n = isl_space_dim(space, isl_dim_set);
7970 mupa = isl_multi_union_pw_aff_alloc(space);
7972 for (i = 0; i < n; ++i) {
7973 isl_union_pw_aff *upa;
7975 upa = isl_union_pw_multi_aff_get_union_pw_aff(upma, i);
7976 mupa = isl_multi_union_pw_aff_set_union_pw_aff(mupa, i, upa);
7979 isl_union_pw_multi_aff_free(upma);
7980 return mupa;
7981 error:
7982 isl_space_free(space);
7983 isl_union_pw_multi_aff_free(upma);
7984 return NULL;
7987 /* Try and create an isl_multi_union_pw_aff that is equivalent
7988 * to the given isl_union_map.
7989 * The isl_union_map is required to be single-valued in each space.
7990 * Moreover, it cannot be empty and all range spaces need to be the same.
7991 * Otherwise, an error is produced.
7993 __isl_give isl_multi_union_pw_aff *isl_multi_union_pw_aff_from_union_map(
7994 __isl_take isl_union_map *umap)
7996 isl_union_pw_multi_aff *upma;
7998 upma = isl_union_pw_multi_aff_from_union_map(umap);
7999 return isl_multi_union_pw_aff_from_union_pw_multi_aff(upma);
8002 /* Return a multiple union piecewise affine expression
8003 * that is equal to "mv" on "domain", assuming "domain" and "mv"
8004 * have been aligned.
8006 static __isl_give isl_multi_union_pw_aff *
8007 isl_multi_union_pw_aff_multi_val_on_domain_aligned(
8008 __isl_take isl_union_set *domain, __isl_take isl_multi_val *mv)
8010 int i, n;
8011 isl_space *space;
8012 isl_multi_union_pw_aff *mupa;
8014 if (!domain || !mv)
8015 goto error;
8017 n = isl_multi_val_dim(mv, isl_dim_set);
8018 space = isl_multi_val_get_space(mv);
8019 mupa = isl_multi_union_pw_aff_alloc(space);
8020 for (i = 0; i < n; ++i) {
8021 isl_val *v;
8022 isl_union_pw_aff *upa;
8024 v = isl_multi_val_get_val(mv, i);
8025 upa = isl_union_pw_aff_val_on_domain(isl_union_set_copy(domain),
8027 mupa = isl_multi_union_pw_aff_set_union_pw_aff(mupa, i, upa);
8030 isl_union_set_free(domain);
8031 isl_multi_val_free(mv);
8032 return mupa;
8033 error:
8034 isl_union_set_free(domain);
8035 isl_multi_val_free(mv);
8036 return NULL;
8039 /* Return a multiple union piecewise affine expression
8040 * that is equal to "mv" on "domain".
8042 __isl_give isl_multi_union_pw_aff *isl_multi_union_pw_aff_multi_val_on_domain(
8043 __isl_take isl_union_set *domain, __isl_take isl_multi_val *mv)
8045 if (!domain || !mv)
8046 goto error;
8047 if (isl_space_match(domain->dim, isl_dim_param,
8048 mv->space, isl_dim_param))
8049 return isl_multi_union_pw_aff_multi_val_on_domain_aligned(
8050 domain, mv);
8051 domain = isl_union_set_align_params(domain,
8052 isl_multi_val_get_space(mv));
8053 mv = isl_multi_val_align_params(mv, isl_union_set_get_space(domain));
8054 return isl_multi_union_pw_aff_multi_val_on_domain_aligned(domain, mv);
8055 error:
8056 isl_union_set_free(domain);
8057 isl_multi_val_free(mv);
8058 return NULL;
8061 /* Return a multiple union piecewise affine expression
8062 * that is equal to "ma" on "domain", assuming "domain" and "ma"
8063 * have been aligned.
8065 static __isl_give isl_multi_union_pw_aff *
8066 isl_multi_union_pw_aff_multi_aff_on_domain_aligned(
8067 __isl_take isl_union_set *domain, __isl_take isl_multi_aff *ma)
8069 int i, n;
8070 isl_space *space;
8071 isl_multi_union_pw_aff *mupa;
8073 if (!domain || !ma)
8074 goto error;
8076 n = isl_multi_aff_dim(ma, isl_dim_set);
8077 space = isl_multi_aff_get_space(ma);
8078 mupa = isl_multi_union_pw_aff_alloc(space);
8079 for (i = 0; i < n; ++i) {
8080 isl_aff *aff;
8081 isl_union_pw_aff *upa;
8083 aff = isl_multi_aff_get_aff(ma, i);
8084 upa = isl_union_pw_aff_aff_on_domain(isl_union_set_copy(domain),
8085 aff);
8086 mupa = isl_multi_union_pw_aff_set_union_pw_aff(mupa, i, upa);
8089 isl_union_set_free(domain);
8090 isl_multi_aff_free(ma);
8091 return mupa;
8092 error:
8093 isl_union_set_free(domain);
8094 isl_multi_aff_free(ma);
8095 return NULL;
8098 /* Return a multiple union piecewise affine expression
8099 * that is equal to "ma" on "domain".
8101 __isl_give isl_multi_union_pw_aff *isl_multi_union_pw_aff_multi_aff_on_domain(
8102 __isl_take isl_union_set *domain, __isl_take isl_multi_aff *ma)
8104 if (!domain || !ma)
8105 goto error;
8106 if (isl_space_match(domain->dim, isl_dim_param,
8107 ma->space, isl_dim_param))
8108 return isl_multi_union_pw_aff_multi_aff_on_domain_aligned(
8109 domain, ma);
8110 domain = isl_union_set_align_params(domain,
8111 isl_multi_aff_get_space(ma));
8112 ma = isl_multi_aff_align_params(ma, isl_union_set_get_space(domain));
8113 return isl_multi_union_pw_aff_multi_aff_on_domain_aligned(domain, ma);
8114 error:
8115 isl_union_set_free(domain);
8116 isl_multi_aff_free(ma);
8117 return NULL;
8120 /* Return a union set containing those elements in the domains
8121 * of the elements of "mupa" where they are all zero.
8123 __isl_give isl_union_set *isl_multi_union_pw_aff_zero_union_set(
8124 __isl_take isl_multi_union_pw_aff *mupa)
8126 int i, n;
8127 isl_union_pw_aff *upa;
8128 isl_union_set *zero;
8130 if (!mupa)
8131 return NULL;
8133 n = isl_multi_union_pw_aff_dim(mupa, isl_dim_set);
8134 if (n == 0)
8135 isl_die(isl_multi_union_pw_aff_get_ctx(mupa), isl_error_invalid,
8136 "cannot determine zero set "
8137 "of zero-dimensional function", goto error);
8139 upa = isl_multi_union_pw_aff_get_union_pw_aff(mupa, 0);
8140 zero = isl_union_pw_aff_zero_union_set(upa);
8142 for (i = 1; i < n; ++i) {
8143 isl_union_set *zero_i;
8145 upa = isl_multi_union_pw_aff_get_union_pw_aff(mupa, i);
8146 zero_i = isl_union_pw_aff_zero_union_set(upa);
8148 zero = isl_union_set_intersect(zero, zero_i);
8151 isl_multi_union_pw_aff_free(mupa);
8152 return zero;
8153 error:
8154 isl_multi_union_pw_aff_free(mupa);
8155 return NULL;
8158 /* Construct a union map mapping the shared domain
8159 * of the union piecewise affine expressions to the range of "mupa"
8160 * with each dimension in the range equated to the
8161 * corresponding union piecewise affine expression.
8163 * The input cannot be zero-dimensional as there is
8164 * no way to extract a domain from a zero-dimensional isl_multi_union_pw_aff.
8166 __isl_give isl_union_map *isl_union_map_from_multi_union_pw_aff(
8167 __isl_take isl_multi_union_pw_aff *mupa)
8169 int i, n;
8170 isl_space *space;
8171 isl_union_map *umap;
8172 isl_union_pw_aff *upa;
8174 if (!mupa)
8175 return NULL;
8177 n = isl_multi_union_pw_aff_dim(mupa, isl_dim_set);
8178 if (n == 0)
8179 isl_die(isl_multi_union_pw_aff_get_ctx(mupa), isl_error_invalid,
8180 "cannot determine domain of zero-dimensional "
8181 "isl_multi_union_pw_aff", goto error);
8183 upa = isl_multi_union_pw_aff_get_union_pw_aff(mupa, 0);
8184 umap = isl_union_map_from_union_pw_aff(upa);
8186 for (i = 1; i < n; ++i) {
8187 isl_union_map *umap_i;
8189 upa = isl_multi_union_pw_aff_get_union_pw_aff(mupa, i);
8190 umap_i = isl_union_map_from_union_pw_aff(upa);
8191 umap = isl_union_map_flat_range_product(umap, umap_i);
8194 space = isl_multi_union_pw_aff_get_space(mupa);
8195 umap = isl_union_map_reset_range_space(umap, space);
8197 isl_multi_union_pw_aff_free(mupa);
8198 return umap;
8199 error:
8200 isl_multi_union_pw_aff_free(mupa);
8201 return NULL;
8204 /* Internal data structure for isl_union_pw_multi_aff_reset_range_space.
8205 * "range" is the space from which to set the range space.
8206 * "res" collects the results.
8208 struct isl_union_pw_multi_aff_reset_range_space_data {
8209 isl_space *range;
8210 isl_union_pw_multi_aff *res;
8213 /* Replace the range space of "pma" by the range space of data->range and
8214 * add the result to data->res.
8216 static isl_stat reset_range_space(__isl_take isl_pw_multi_aff *pma, void *user)
8218 struct isl_union_pw_multi_aff_reset_range_space_data *data = user;
8219 isl_space *space;
8221 space = isl_pw_multi_aff_get_space(pma);
8222 space = isl_space_domain(space);
8223 space = isl_space_extend_domain_with_range(space,
8224 isl_space_copy(data->range));
8225 pma = isl_pw_multi_aff_reset_space(pma, space);
8226 data->res = isl_union_pw_multi_aff_add_pw_multi_aff(data->res, pma);
8228 return data->res ? isl_stat_ok : isl_stat_error;
8231 /* Replace the range space of all the piecewise affine expressions in "upma" by
8232 * the range space of "space".
8234 * This assumes that all these expressions have the same output dimension.
8236 * Since the spaces of the expressions change, so do their hash values.
8237 * We therefore need to create a new isl_union_pw_multi_aff.
8238 * Note that the hash value is currently computed based on the entire
8239 * space even though there can only be a single expression with a given
8240 * domain space.
8242 static __isl_give isl_union_pw_multi_aff *
8243 isl_union_pw_multi_aff_reset_range_space(
8244 __isl_take isl_union_pw_multi_aff *upma, __isl_take isl_space *space)
8246 struct isl_union_pw_multi_aff_reset_range_space_data data = { space };
8247 isl_space *space_upma;
8249 space_upma = isl_union_pw_multi_aff_get_space(upma);
8250 data.res = isl_union_pw_multi_aff_empty(space_upma);
8251 if (isl_union_pw_multi_aff_foreach_pw_multi_aff(upma,
8252 &reset_range_space, &data) < 0)
8253 data.res = isl_union_pw_multi_aff_free(data.res);
8255 isl_space_free(space);
8256 isl_union_pw_multi_aff_free(upma);
8257 return data.res;
8260 /* Construct and return a union piecewise multi affine expression
8261 * that is equal to the given multi union piecewise affine expression.
8263 * In order to be able to perform the conversion, the input
8264 * needs to have a least one output dimension.
8266 __isl_give isl_union_pw_multi_aff *
8267 isl_union_pw_multi_aff_from_multi_union_pw_aff(
8268 __isl_take isl_multi_union_pw_aff *mupa)
8270 int i, n;
8271 isl_space *space;
8272 isl_union_pw_multi_aff *upma;
8273 isl_union_pw_aff *upa;
8275 if (!mupa)
8276 return NULL;
8278 n = isl_multi_union_pw_aff_dim(mupa, isl_dim_set);
8279 if (n == 0)
8280 isl_die(isl_multi_union_pw_aff_get_ctx(mupa), isl_error_invalid,
8281 "cannot determine domain of zero-dimensional "
8282 "isl_multi_union_pw_aff", goto error);
8284 space = isl_multi_union_pw_aff_get_space(mupa);
8285 upa = isl_multi_union_pw_aff_get_union_pw_aff(mupa, 0);
8286 upma = isl_union_pw_multi_aff_from_union_pw_aff(upa);
8288 for (i = 1; i < n; ++i) {
8289 isl_union_pw_multi_aff *upma_i;
8291 upa = isl_multi_union_pw_aff_get_union_pw_aff(mupa, i);
8292 upma_i = isl_union_pw_multi_aff_from_union_pw_aff(upa);
8293 upma = isl_union_pw_multi_aff_flat_range_product(upma, upma_i);
8296 upma = isl_union_pw_multi_aff_reset_range_space(upma, space);
8298 isl_multi_union_pw_aff_free(mupa);
8299 return upma;
8300 error:
8301 isl_multi_union_pw_aff_free(mupa);
8302 return NULL;
8305 /* Intersect the range of "mupa" with "range".
8306 * That is, keep only those domain elements that have a function value
8307 * in "range".
8309 __isl_give isl_multi_union_pw_aff *isl_multi_union_pw_aff_intersect_range(
8310 __isl_take isl_multi_union_pw_aff *mupa, __isl_take isl_set *range)
8312 isl_union_pw_multi_aff *upma;
8313 isl_union_set *domain;
8314 isl_space *space;
8315 int n;
8316 int match;
8318 if (!mupa || !range)
8319 goto error;
8321 space = isl_set_get_space(range);
8322 match = isl_space_tuple_is_equal(mupa->space, isl_dim_set,
8323 space, isl_dim_set);
8324 isl_space_free(space);
8325 if (match < 0)
8326 goto error;
8327 if (!match)
8328 isl_die(isl_multi_union_pw_aff_get_ctx(mupa), isl_error_invalid,
8329 "space don't match", goto error);
8330 n = isl_multi_union_pw_aff_dim(mupa, isl_dim_set);
8331 if (n == 0)
8332 isl_die(isl_multi_union_pw_aff_get_ctx(mupa), isl_error_invalid,
8333 "cannot intersect range of zero-dimensional "
8334 "isl_multi_union_pw_aff", goto error);
8336 upma = isl_union_pw_multi_aff_from_multi_union_pw_aff(
8337 isl_multi_union_pw_aff_copy(mupa));
8338 domain = isl_union_set_from_set(range);
8339 domain = isl_union_set_preimage_union_pw_multi_aff(domain, upma);
8340 mupa = isl_multi_union_pw_aff_intersect_domain(mupa, domain);
8342 return mupa;
8343 error:
8344 isl_multi_union_pw_aff_free(mupa);
8345 isl_set_free(range);
8346 return NULL;
8349 /* Return the shared domain of the elements of "mupa".
8351 __isl_give isl_union_set *isl_multi_union_pw_aff_domain(
8352 __isl_take isl_multi_union_pw_aff *mupa)
8354 int i, n;
8355 isl_union_pw_aff *upa;
8356 isl_union_set *dom;
8358 if (!mupa)
8359 return NULL;
8361 n = isl_multi_union_pw_aff_dim(mupa, isl_dim_set);
8362 if (n == 0)
8363 isl_die(isl_multi_union_pw_aff_get_ctx(mupa), isl_error_invalid,
8364 "cannot determine domain", goto error);
8366 upa = isl_multi_union_pw_aff_get_union_pw_aff(mupa, 0);
8367 dom = isl_union_pw_aff_domain(upa);
8368 for (i = 1; i < n; ++i) {
8369 isl_union_set *dom_i;
8371 upa = isl_multi_union_pw_aff_get_union_pw_aff(mupa, i);
8372 dom_i = isl_union_pw_aff_domain(upa);
8373 dom = isl_union_set_intersect(dom, dom_i);
8376 isl_multi_union_pw_aff_free(mupa);
8377 return dom;
8378 error:
8379 isl_multi_union_pw_aff_free(mupa);
8380 return NULL;
8383 /* Apply "aff" to "mupa". The space of "mupa" is equal to the domain of "aff".
8384 * In particular, the spaces have been aligned.
8385 * The result is defined over the shared domain of the elements of "mupa"
8387 * We first extract the parametric constant part of "aff" and
8388 * define that over the shared domain.
8389 * Then we iterate over all input dimensions of "aff" and add the corresponding
8390 * multiples of the elements of "mupa".
8391 * Finally, we consider the integer divisions, calling the function
8392 * recursively to obtain an isl_union_pw_aff corresponding to the
8393 * integer division argument.
8395 static __isl_give isl_union_pw_aff *multi_union_pw_aff_apply_aff(
8396 __isl_take isl_multi_union_pw_aff *mupa, __isl_take isl_aff *aff)
8398 int i, n_in, n_div;
8399 isl_union_pw_aff *upa;
8400 isl_union_set *uset;
8401 isl_val *v;
8402 isl_aff *cst;
8404 n_in = isl_aff_dim(aff, isl_dim_in);
8405 n_div = isl_aff_dim(aff, isl_dim_div);
8407 uset = isl_multi_union_pw_aff_domain(isl_multi_union_pw_aff_copy(mupa));
8408 cst = isl_aff_copy(aff);
8409 cst = isl_aff_drop_dims(cst, isl_dim_div, 0, n_div);
8410 cst = isl_aff_drop_dims(cst, isl_dim_in, 0, n_in);
8411 cst = isl_aff_project_domain_on_params(cst);
8412 upa = isl_union_pw_aff_aff_on_domain(uset, cst);
8414 for (i = 0; i < n_in; ++i) {
8415 isl_union_pw_aff *upa_i;
8417 if (!isl_aff_involves_dims(aff, isl_dim_in, i, 1))
8418 continue;
8419 v = isl_aff_get_coefficient_val(aff, isl_dim_in, i);
8420 upa_i = isl_multi_union_pw_aff_get_union_pw_aff(mupa, i);
8421 upa_i = isl_union_pw_aff_scale_val(upa_i, v);
8422 upa = isl_union_pw_aff_add(upa, upa_i);
8425 for (i = 0; i < n_div; ++i) {
8426 isl_aff *div;
8427 isl_union_pw_aff *upa_i;
8429 if (!isl_aff_involves_dims(aff, isl_dim_div, i, 1))
8430 continue;
8431 div = isl_aff_get_div(aff, i);
8432 upa_i = multi_union_pw_aff_apply_aff(
8433 isl_multi_union_pw_aff_copy(mupa), div);
8434 upa_i = isl_union_pw_aff_floor(upa_i);
8435 v = isl_aff_get_coefficient_val(aff, isl_dim_div, i);
8436 upa_i = isl_union_pw_aff_scale_val(upa_i, v);
8437 upa = isl_union_pw_aff_add(upa, upa_i);
8440 isl_multi_union_pw_aff_free(mupa);
8441 isl_aff_free(aff);
8443 return upa;
8446 /* Apply "aff" to "mupa". The space of "mupa" needs to be compatible
8447 * with the domain of "aff".
8448 * Furthermore, the dimension of this space needs to be greater than zero.
8449 * The result is defined over the shared domain of the elements of "mupa"
8451 * We perform these checks and then hand over control to
8452 * multi_union_pw_aff_apply_aff.
8454 __isl_give isl_union_pw_aff *isl_multi_union_pw_aff_apply_aff(
8455 __isl_take isl_multi_union_pw_aff *mupa, __isl_take isl_aff *aff)
8457 isl_space *space1, *space2;
8458 int equal;
8460 mupa = isl_multi_union_pw_aff_align_params(mupa,
8461 isl_aff_get_space(aff));
8462 aff = isl_aff_align_params(aff, isl_multi_union_pw_aff_get_space(mupa));
8463 if (!mupa || !aff)
8464 goto error;
8466 space1 = isl_multi_union_pw_aff_get_space(mupa);
8467 space2 = isl_aff_get_domain_space(aff);
8468 equal = isl_space_is_equal(space1, space2);
8469 isl_space_free(space1);
8470 isl_space_free(space2);
8471 if (equal < 0)
8472 goto error;
8473 if (!equal)
8474 isl_die(isl_aff_get_ctx(aff), isl_error_invalid,
8475 "spaces don't match", goto error);
8476 if (isl_aff_dim(aff, isl_dim_in) == 0)
8477 isl_die(isl_aff_get_ctx(aff), isl_error_invalid,
8478 "cannot determine domains", goto error);
8480 return multi_union_pw_aff_apply_aff(mupa, aff);
8481 error:
8482 isl_multi_union_pw_aff_free(mupa);
8483 isl_aff_free(aff);
8484 return NULL;
8487 /* Apply "ma" to "mupa". The space of "mupa" needs to be compatible
8488 * with the domain of "ma".
8489 * Furthermore, the dimension of this space needs to be greater than zero,
8490 * unless the dimension of the target space of "ma" is also zero.
8491 * The result is defined over the shared domain of the elements of "mupa"
8493 __isl_give isl_multi_union_pw_aff *isl_multi_union_pw_aff_apply_multi_aff(
8494 __isl_take isl_multi_union_pw_aff *mupa, __isl_take isl_multi_aff *ma)
8496 isl_space *space1, *space2;
8497 isl_multi_union_pw_aff *res;
8498 int equal;
8499 int i, n_out;
8501 mupa = isl_multi_union_pw_aff_align_params(mupa,
8502 isl_multi_aff_get_space(ma));
8503 ma = isl_multi_aff_align_params(ma,
8504 isl_multi_union_pw_aff_get_space(mupa));
8505 if (!mupa || !ma)
8506 goto error;
8508 space1 = isl_multi_union_pw_aff_get_space(mupa);
8509 space2 = isl_multi_aff_get_domain_space(ma);
8510 equal = isl_space_is_equal(space1, space2);
8511 isl_space_free(space1);
8512 isl_space_free(space2);
8513 if (equal < 0)
8514 goto error;
8515 if (!equal)
8516 isl_die(isl_multi_aff_get_ctx(ma), isl_error_invalid,
8517 "spaces don't match", goto error);
8518 n_out = isl_multi_aff_dim(ma, isl_dim_out);
8519 if (isl_multi_aff_dim(ma, isl_dim_in) == 0 && n_out != 0)
8520 isl_die(isl_multi_aff_get_ctx(ma), isl_error_invalid,
8521 "cannot determine domains", goto error);
8523 space1 = isl_space_range(isl_multi_aff_get_space(ma));
8524 res = isl_multi_union_pw_aff_alloc(space1);
8526 for (i = 0; i < n_out; ++i) {
8527 isl_aff *aff;
8528 isl_union_pw_aff *upa;
8530 aff = isl_multi_aff_get_aff(ma, i);
8531 upa = multi_union_pw_aff_apply_aff(
8532 isl_multi_union_pw_aff_copy(mupa), aff);
8533 res = isl_multi_union_pw_aff_set_union_pw_aff(res, i, upa);
8536 isl_multi_aff_free(ma);
8537 isl_multi_union_pw_aff_free(mupa);
8538 return res;
8539 error:
8540 isl_multi_union_pw_aff_free(mupa);
8541 isl_multi_aff_free(ma);
8542 return NULL;
8545 /* Apply "pa" to "mupa". The space of "mupa" needs to be compatible
8546 * with the domain of "pa".
8547 * Furthermore, the dimension of this space needs to be greater than zero.
8548 * The result is defined over the shared domain of the elements of "mupa"
8550 __isl_give isl_union_pw_aff *isl_multi_union_pw_aff_apply_pw_aff(
8551 __isl_take isl_multi_union_pw_aff *mupa, __isl_take isl_pw_aff *pa)
8553 int i;
8554 int equal;
8555 isl_space *space, *space2;
8556 isl_union_pw_aff *upa;
8558 mupa = isl_multi_union_pw_aff_align_params(mupa,
8559 isl_pw_aff_get_space(pa));
8560 pa = isl_pw_aff_align_params(pa,
8561 isl_multi_union_pw_aff_get_space(mupa));
8562 if (!mupa || !pa)
8563 goto error;
8565 space = isl_multi_union_pw_aff_get_space(mupa);
8566 space2 = isl_pw_aff_get_domain_space(pa);
8567 equal = isl_space_is_equal(space, space2);
8568 isl_space_free(space);
8569 isl_space_free(space2);
8570 if (equal < 0)
8571 goto error;
8572 if (!equal)
8573 isl_die(isl_pw_aff_get_ctx(pa), isl_error_invalid,
8574 "spaces don't match", goto error);
8575 if (isl_pw_aff_dim(pa, isl_dim_in) == 0)
8576 isl_die(isl_pw_aff_get_ctx(pa), isl_error_invalid,
8577 "cannot determine domains", goto error);
8579 space = isl_space_params(isl_multi_union_pw_aff_get_space(mupa));
8580 upa = isl_union_pw_aff_empty(space);
8582 for (i = 0; i < pa->n; ++i) {
8583 isl_aff *aff;
8584 isl_set *domain;
8585 isl_multi_union_pw_aff *mupa_i;
8586 isl_union_pw_aff *upa_i;
8588 mupa_i = isl_multi_union_pw_aff_copy(mupa);
8589 domain = isl_set_copy(pa->p[i].set);
8590 mupa_i = isl_multi_union_pw_aff_intersect_range(mupa_i, domain);
8591 aff = isl_aff_copy(pa->p[i].aff);
8592 upa_i = multi_union_pw_aff_apply_aff(mupa_i, aff);
8593 upa = isl_union_pw_aff_union_add(upa, upa_i);
8596 isl_multi_union_pw_aff_free(mupa);
8597 isl_pw_aff_free(pa);
8598 return upa;
8599 error:
8600 isl_multi_union_pw_aff_free(mupa);
8601 isl_pw_aff_free(pa);
8602 return NULL;
8605 /* Apply "pma" to "mupa". The space of "mupa" needs to be compatible
8606 * with the domain of "pma".
8607 * Furthermore, the dimension of this space needs to be greater than zero,
8608 * unless the dimension of the target space of "pma" is also zero.
8609 * The result is defined over the shared domain of the elements of "mupa"
8611 __isl_give isl_multi_union_pw_aff *isl_multi_union_pw_aff_apply_pw_multi_aff(
8612 __isl_take isl_multi_union_pw_aff *mupa,
8613 __isl_take isl_pw_multi_aff *pma)
8615 isl_space *space1, *space2;
8616 isl_multi_union_pw_aff *res;
8617 int equal;
8618 int i, n_out;
8620 mupa = isl_multi_union_pw_aff_align_params(mupa,
8621 isl_pw_multi_aff_get_space(pma));
8622 pma = isl_pw_multi_aff_align_params(pma,
8623 isl_multi_union_pw_aff_get_space(mupa));
8624 if (!mupa || !pma)
8625 goto error;
8627 space1 = isl_multi_union_pw_aff_get_space(mupa);
8628 space2 = isl_pw_multi_aff_get_domain_space(pma);
8629 equal = isl_space_is_equal(space1, space2);
8630 isl_space_free(space1);
8631 isl_space_free(space2);
8632 if (equal < 0)
8633 goto error;
8634 if (!equal)
8635 isl_die(isl_pw_multi_aff_get_ctx(pma), isl_error_invalid,
8636 "spaces don't match", goto error);
8637 n_out = isl_pw_multi_aff_dim(pma, isl_dim_out);
8638 if (isl_pw_multi_aff_dim(pma, isl_dim_in) == 0 && n_out != 0)
8639 isl_die(isl_pw_multi_aff_get_ctx(pma), isl_error_invalid,
8640 "cannot determine domains", goto error);
8642 space1 = isl_space_range(isl_pw_multi_aff_get_space(pma));
8643 res = isl_multi_union_pw_aff_alloc(space1);
8645 for (i = 0; i < n_out; ++i) {
8646 isl_pw_aff *pa;
8647 isl_union_pw_aff *upa;
8649 pa = isl_pw_multi_aff_get_pw_aff(pma, i);
8650 upa = isl_multi_union_pw_aff_apply_pw_aff(
8651 isl_multi_union_pw_aff_copy(mupa), pa);
8652 res = isl_multi_union_pw_aff_set_union_pw_aff(res, i, upa);
8655 isl_pw_multi_aff_free(pma);
8656 isl_multi_union_pw_aff_free(mupa);
8657 return res;
8658 error:
8659 isl_multi_union_pw_aff_free(mupa);
8660 isl_pw_multi_aff_free(pma);
8661 return NULL;
8664 /* Compute the pullback of "mupa" by the function represented by "upma".
8665 * In other words, plug in "upma" in "mupa". The result contains
8666 * expressions defined over the domain space of "upma".
8668 * Run over all elements of "mupa" and plug in "upma" in each of them.
8670 __isl_give isl_multi_union_pw_aff *
8671 isl_multi_union_pw_aff_pullback_union_pw_multi_aff(
8672 __isl_take isl_multi_union_pw_aff *mupa,
8673 __isl_take isl_union_pw_multi_aff *upma)
8675 int i, n;
8677 mupa = isl_multi_union_pw_aff_align_params(mupa,
8678 isl_union_pw_multi_aff_get_space(upma));
8679 upma = isl_union_pw_multi_aff_align_params(upma,
8680 isl_multi_union_pw_aff_get_space(mupa));
8681 if (!mupa || !upma)
8682 goto error;
8684 n = isl_multi_union_pw_aff_dim(mupa, isl_dim_set);
8685 for (i = 0; i < n; ++i) {
8686 isl_union_pw_aff *upa;
8688 upa = isl_multi_union_pw_aff_get_union_pw_aff(mupa, i);
8689 upa = isl_union_pw_aff_pullback_union_pw_multi_aff(upa,
8690 isl_union_pw_multi_aff_copy(upma));
8691 mupa = isl_multi_union_pw_aff_set_union_pw_aff(mupa, i, upa);
8694 isl_union_pw_multi_aff_free(upma);
8695 return mupa;
8696 error:
8697 isl_multi_union_pw_aff_free(mupa);
8698 isl_union_pw_multi_aff_free(upma);
8699 return NULL;
8702 /* Extract the sequence of elements in "mupa" with domain space "space"
8703 * (ignoring parameters).
8705 * For the elements of "mupa" that are not defined on the specified space,
8706 * the corresponding element in the result is empty.
8708 __isl_give isl_multi_pw_aff *isl_multi_union_pw_aff_extract_multi_pw_aff(
8709 __isl_keep isl_multi_union_pw_aff *mupa, __isl_take isl_space *space)
8711 int i, n;
8712 isl_space *space_mpa = NULL;
8713 isl_multi_pw_aff *mpa;
8715 if (!mupa || !space)
8716 goto error;
8718 space_mpa = isl_multi_union_pw_aff_get_space(mupa);
8719 if (!isl_space_match(space_mpa, isl_dim_param, space, isl_dim_param)) {
8720 space = isl_space_drop_dims(space, isl_dim_param,
8721 0, isl_space_dim(space, isl_dim_param));
8722 space = isl_space_align_params(space,
8723 isl_space_copy(space_mpa));
8724 if (!space)
8725 goto error;
8727 space_mpa = isl_space_map_from_domain_and_range(isl_space_copy(space),
8728 space_mpa);
8729 mpa = isl_multi_pw_aff_alloc(space_mpa);
8731 space = isl_space_from_domain(space);
8732 space = isl_space_add_dims(space, isl_dim_out, 1);
8733 n = isl_multi_union_pw_aff_dim(mupa, isl_dim_set);
8734 for (i = 0; i < n; ++i) {
8735 isl_union_pw_aff *upa;
8736 isl_pw_aff *pa;
8738 upa = isl_multi_union_pw_aff_get_union_pw_aff(mupa, i);
8739 pa = isl_union_pw_aff_extract_pw_aff(upa,
8740 isl_space_copy(space));
8741 mpa = isl_multi_pw_aff_set_pw_aff(mpa, i, pa);
8742 isl_union_pw_aff_free(upa);
8745 isl_space_free(space);
8746 return mpa;
8747 error:
8748 isl_space_free(space_mpa);
8749 isl_space_free(space);
8750 return NULL;