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058e97ec 1/* Building internal representation for IRA.
a5544970 2 Copyright (C) 2006-2019 Free Software Foundation, Inc.
058e97ec
VM
3 Contributed by Vladimir Makarov <vmakarov@redhat.com>.
4
5This file is part of GCC.
6
7GCC is free software; you can redistribute it and/or modify it under
8the terms of the GNU General Public License as published by the Free
9Software Foundation; either version 3, or (at your option) any later
10version.
11
12GCC is distributed in the hope that it will be useful, but WITHOUT ANY
13WARRANTY; without even the implied warranty of MERCHANTABILITY or
14FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
15for more details.
16
17You should have received a copy of the GNU General Public License
18along with GCC; see the file COPYING3. If not see
19<http://www.gnu.org/licenses/>. */
20
21#include "config.h"
22#include "system.h"
23#include "coretypes.h"
c7131fb2 24#include "backend.h"
957060b5 25#include "target.h"
058e97ec 26#include "rtl.h"
957060b5 27#include "predict.h"
c7131fb2 28#include "df.h"
058e97ec 29#include "insn-config.h"
957060b5 30#include "regs.h"
4d0cdd0c 31#include "memmodel.h"
957060b5
AM
32#include "ira.h"
33#include "ira-int.h"
058e97ec 34#include "params.h"
058e97ec 35#include "sparseset.h"
c7131fb2 36#include "cfgloop.h"
058e97ec 37
070a1983 38static ira_copy_t find_allocno_copy (ira_allocno_t, ira_allocno_t, rtx_insn *,
058e97ec
VM
39 ira_loop_tree_node_t);
40
41/* The root of the loop tree corresponding to the all function. */
42ira_loop_tree_node_t ira_loop_tree_root;
43
44/* Height of the loop tree. */
45int ira_loop_tree_height;
46
47/* All nodes representing basic blocks are referred through the
48 following array. We can not use basic block member `aux' for this
49 because it is used for insertion of insns on edges. */
50ira_loop_tree_node_t ira_bb_nodes;
51
52/* All nodes representing loops are referred through the following
53 array. */
54ira_loop_tree_node_t ira_loop_nodes;
55
caff7edf
JJ
56/* And size of the ira_loop_nodes array. */
57unsigned int ira_loop_nodes_count;
58
b8698a0f 59/* Map regno -> allocnos with given regno (see comments for
058e97ec
VM
60 allocno member `next_regno_allocno'). */
61ira_allocno_t *ira_regno_allocno_map;
62
63/* Array of references to all allocnos. The order number of the
64 allocno corresponds to the index in the array. Removed allocnos
65 have NULL element value. */
66ira_allocno_t *ira_allocnos;
67
68/* Sizes of the previous array. */
69int ira_allocnos_num;
70
a49ae217
BS
71/* Count of conflict record structures we've created, used when creating
72 a new conflict id. */
73int ira_objects_num;
74
75/* Map a conflict id to its conflict record. */
76ira_object_t *ira_object_id_map;
058e97ec 77
3b6d1699
VM
78/* Array of references to all allocno preferences. The order number
79 of the preference corresponds to the index in the array. */
80ira_pref_t *ira_prefs;
81
82/* Size of the previous array. */
83int ira_prefs_num;
84
058e97ec
VM
85/* Array of references to all copies. The order number of the copy
86 corresponds to the index in the array. Removed copies have NULL
87 element value. */
88ira_copy_t *ira_copies;
89
90/* Size of the previous array. */
91int ira_copies_num;
92
93\f
94
95/* LAST_BASIC_BLOCK before generating additional insns because of live
96 range splitting. Emitting insns on a critical edge creates a new
97 basic block. */
98static int last_basic_block_before_change;
99
2608d841
VM
100/* Initialize some members in loop tree node NODE. Use LOOP_NUM for
101 the member loop_num. */
058e97ec 102static void
2608d841
VM
103init_loop_tree_node (struct ira_loop_tree_node *node, int loop_num)
104{
105 int max_regno = max_reg_num ();
106
107 node->regno_allocno_map
108 = (ira_allocno_t *) ira_allocate (sizeof (ira_allocno_t) * max_regno);
109 memset (node->regno_allocno_map, 0, sizeof (ira_allocno_t) * max_regno);
110 memset (node->reg_pressure, 0, sizeof (node->reg_pressure));
111 node->all_allocnos = ira_allocate_bitmap ();
112 node->modified_regnos = ira_allocate_bitmap ();
113 node->border_allocnos = ira_allocate_bitmap ();
114 node->local_copies = ira_allocate_bitmap ();
115 node->loop_num = loop_num;
116 node->children = NULL;
117 node->subloops = NULL;
118}
119
120
121/* The following function allocates the loop tree nodes. If
122 CURRENT_LOOPS is NULL, the nodes corresponding to the loops (except
123 the root which corresponds the all function) will be not allocated
124 but nodes will still be allocated for basic blocks. */
125static void
126create_loop_tree_nodes (void)
058e97ec
VM
127{
128 unsigned int i, j;
058e97ec
VM
129 bool skip_p;
130 edge_iterator ei;
131 edge e;
9771b263 132 vec<edge> edges;
058e97ec
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133 loop_p loop;
134
135 ira_bb_nodes
136 = ((struct ira_loop_tree_node *)
8b1c6fd7
DM
137 ira_allocate (sizeof (struct ira_loop_tree_node)
138 * last_basic_block_for_fn (cfun)));
139 last_basic_block_before_change = last_basic_block_for_fn (cfun);
140 for (i = 0; i < (unsigned int) last_basic_block_for_fn (cfun); i++)
058e97ec
VM
141 {
142 ira_bb_nodes[i].regno_allocno_map = NULL;
143 memset (ira_bb_nodes[i].reg_pressure, 0,
144 sizeof (ira_bb_nodes[i].reg_pressure));
49d988e7 145 ira_bb_nodes[i].all_allocnos = NULL;
058e97ec
VM
146 ira_bb_nodes[i].modified_regnos = NULL;
147 ira_bb_nodes[i].border_allocnos = NULL;
148 ira_bb_nodes[i].local_copies = NULL;
149 }
2608d841
VM
150 if (current_loops == NULL)
151 {
caff7edf 152 ira_loop_nodes_count = 1;
2608d841
VM
153 ira_loop_nodes = ((struct ira_loop_tree_node *)
154 ira_allocate (sizeof (struct ira_loop_tree_node)));
155 init_loop_tree_node (ira_loop_nodes, 0);
156 return;
157 }
0fc822d0 158 ira_loop_nodes_count = number_of_loops (cfun);
058e97ec
VM
159 ira_loop_nodes = ((struct ira_loop_tree_node *)
160 ira_allocate (sizeof (struct ira_loop_tree_node)
caff7edf 161 * ira_loop_nodes_count));
0fc822d0 162 FOR_EACH_VEC_SAFE_ELT (get_loops (cfun), i, loop)
058e97ec 163 {
661bc682 164 if (loop_outer (loop) != NULL)
058e97ec
VM
165 {
166 ira_loop_nodes[i].regno_allocno_map = NULL;
058e97ec
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167 skip_p = false;
168 FOR_EACH_EDGE (e, ei, loop->header->preds)
169 if (e->src != loop->latch
170 && (e->flags & EDGE_ABNORMAL) && EDGE_CRITICAL_P (e))
171 {
172 skip_p = true;
173 break;
174 }
175 if (skip_p)
176 continue;
177 edges = get_loop_exit_edges (loop);
9771b263 178 FOR_EACH_VEC_ELT (edges, j, e)
058e97ec
VM
179 if ((e->flags & EDGE_ABNORMAL) && EDGE_CRITICAL_P (e))
180 {
181 skip_p = true;
182 break;
183 }
9771b263 184 edges.release ();
058e97ec
VM
185 if (skip_p)
186 continue;
187 }
2608d841 188 init_loop_tree_node (&ira_loop_nodes[i], loop->num);
058e97ec
VM
189 }
190}
191
192/* The function returns TRUE if there are more one allocation
193 region. */
194static bool
195more_one_region_p (void)
196{
197 unsigned int i;
198 loop_p loop;
199
2608d841 200 if (current_loops != NULL)
0fc822d0 201 FOR_EACH_VEC_SAFE_ELT (get_loops (cfun), i, loop)
2608d841
VM
202 if (ira_loop_nodes[i].regno_allocno_map != NULL
203 && ira_loop_tree_root != &ira_loop_nodes[i])
204 return true;
058e97ec
VM
205 return false;
206}
207
208/* Free the loop tree node of a loop. */
209static void
210finish_loop_tree_node (ira_loop_tree_node_t loop)
211{
212 if (loop->regno_allocno_map != NULL)
213 {
214 ira_assert (loop->bb == NULL);
215 ira_free_bitmap (loop->local_copies);
216 ira_free_bitmap (loop->border_allocnos);
217 ira_free_bitmap (loop->modified_regnos);
49d988e7 218 ira_free_bitmap (loop->all_allocnos);
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VM
219 ira_free (loop->regno_allocno_map);
220 loop->regno_allocno_map = NULL;
221 }
222}
223
224/* Free the loop tree nodes. */
225static void
226finish_loop_tree_nodes (void)
227{
228 unsigned int i;
058e97ec 229
caff7edf
JJ
230 for (i = 0; i < ira_loop_nodes_count; i++)
231 finish_loop_tree_node (&ira_loop_nodes[i]);
058e97ec
VM
232 ira_free (ira_loop_nodes);
233 for (i = 0; i < (unsigned int) last_basic_block_before_change; i++)
234 {
235 if (ira_bb_nodes[i].local_copies != NULL)
236 ira_free_bitmap (ira_bb_nodes[i].local_copies);
237 if (ira_bb_nodes[i].border_allocnos != NULL)
238 ira_free_bitmap (ira_bb_nodes[i].border_allocnos);
239 if (ira_bb_nodes[i].modified_regnos != NULL)
240 ira_free_bitmap (ira_bb_nodes[i].modified_regnos);
49d988e7
VM
241 if (ira_bb_nodes[i].all_allocnos != NULL)
242 ira_free_bitmap (ira_bb_nodes[i].all_allocnos);
058e97ec
VM
243 if (ira_bb_nodes[i].regno_allocno_map != NULL)
244 ira_free (ira_bb_nodes[i].regno_allocno_map);
245 }
246 ira_free (ira_bb_nodes);
247}
248
249\f
250
251/* The following recursive function adds LOOP to the loop tree
2608d841
VM
252 hierarchy. LOOP is added only once. If LOOP is NULL we adding
253 loop designating the whole function when CFG loops are not
254 built. */
058e97ec
VM
255static void
256add_loop_to_tree (struct loop *loop)
257{
2608d841 258 int loop_num;
058e97ec
VM
259 struct loop *parent;
260 ira_loop_tree_node_t loop_node, parent_node;
261
262 /* We can not use loop node access macros here because of potential
263 checking and because the nodes are not initialized enough
264 yet. */
2608d841 265 if (loop != NULL && loop_outer (loop) != NULL)
058e97ec 266 add_loop_to_tree (loop_outer (loop));
2608d841
VM
267 loop_num = loop != NULL ? loop->num : 0;
268 if (ira_loop_nodes[loop_num].regno_allocno_map != NULL
269 && ira_loop_nodes[loop_num].children == NULL)
058e97ec
VM
270 {
271 /* We have not added loop node to the tree yet. */
2608d841 272 loop_node = &ira_loop_nodes[loop_num];
058e97ec
VM
273 loop_node->loop = loop;
274 loop_node->bb = NULL;
2608d841
VM
275 if (loop == NULL)
276 parent = NULL;
277 else
278 {
279 for (parent = loop_outer (loop);
280 parent != NULL;
281 parent = loop_outer (parent))
282 if (ira_loop_nodes[parent->num].regno_allocno_map != NULL)
283 break;
284 }
058e97ec
VM
285 if (parent == NULL)
286 {
287 loop_node->next = NULL;
288 loop_node->subloop_next = NULL;
289 loop_node->parent = NULL;
290 }
291 else
292 {
293 parent_node = &ira_loop_nodes[parent->num];
294 loop_node->next = parent_node->children;
295 parent_node->children = loop_node;
296 loop_node->subloop_next = parent_node->subloops;
297 parent_node->subloops = loop_node;
298 loop_node->parent = parent_node;
299 }
300 }
301}
302
303/* The following recursive function sets up levels of nodes of the
304 tree given its root LOOP_NODE. The enumeration starts with LEVEL.
305 The function returns maximal value of level in the tree + 1. */
306static int
307setup_loop_tree_level (ira_loop_tree_node_t loop_node, int level)
308{
309 int height, max_height;
310 ira_loop_tree_node_t subloop_node;
311
312 ira_assert (loop_node->bb == NULL);
313 loop_node->level = level;
314 max_height = level + 1;
315 for (subloop_node = loop_node->subloops;
316 subloop_node != NULL;
317 subloop_node = subloop_node->subloop_next)
318 {
319 ira_assert (subloop_node->bb == NULL);
320 height = setup_loop_tree_level (subloop_node, level + 1);
321 if (height > max_height)
322 max_height = height;
323 }
324 return max_height;
325}
326
327/* Create the loop tree. The algorithm is designed to provide correct
328 order of loops (they are ordered by their last loop BB) and basic
329 blocks in the chain formed by member next. */
330static void
331form_loop_tree (void)
332{
058e97ec
VM
333 basic_block bb;
334 struct loop *parent;
335 ira_loop_tree_node_t bb_node, loop_node;
058e97ec
VM
336
337 /* We can not use loop/bb node access macros because of potential
338 checking and because the nodes are not initialized enough
339 yet. */
11cd3bed 340 FOR_EACH_BB_FN (bb, cfun)
058e97ec
VM
341 {
342 bb_node = &ira_bb_nodes[bb->index];
343 bb_node->bb = bb;
344 bb_node->loop = NULL;
345 bb_node->subloops = NULL;
346 bb_node->children = NULL;
347 bb_node->subloop_next = NULL;
348 bb_node->next = NULL;
2608d841
VM
349 if (current_loops == NULL)
350 parent = NULL;
351 else
352 {
353 for (parent = bb->loop_father;
354 parent != NULL;
355 parent = loop_outer (parent))
356 if (ira_loop_nodes[parent->num].regno_allocno_map != NULL)
357 break;
358 }
058e97ec 359 add_loop_to_tree (parent);
2608d841 360 loop_node = &ira_loop_nodes[parent == NULL ? 0 : parent->num];
058e97ec
VM
361 bb_node->next = loop_node->children;
362 bb_node->parent = loop_node;
363 loop_node->children = bb_node;
364 }
2608d841 365 ira_loop_tree_root = IRA_LOOP_NODE_BY_INDEX (0);
058e97ec
VM
366 ira_loop_tree_height = setup_loop_tree_level (ira_loop_tree_root, 0);
367 ira_assert (ira_loop_tree_root->regno_allocno_map != NULL);
368}
369
370\f
371
372/* Rebuild IRA_REGNO_ALLOCNO_MAP and REGNO_ALLOCNO_MAPs of the loop
373 tree nodes. */
374static void
375rebuild_regno_allocno_maps (void)
376{
377 unsigned int l;
378 int max_regno, regno;
379 ira_allocno_t a;
380 ira_loop_tree_node_t loop_tree_node;
381 loop_p loop;
382 ira_allocno_iterator ai;
383
2608d841 384 ira_assert (current_loops != NULL);
058e97ec 385 max_regno = max_reg_num ();
0fc822d0 386 FOR_EACH_VEC_SAFE_ELT (get_loops (cfun), l, loop)
058e97ec
VM
387 if (ira_loop_nodes[l].regno_allocno_map != NULL)
388 {
389 ira_free (ira_loop_nodes[l].regno_allocno_map);
390 ira_loop_nodes[l].regno_allocno_map
391 = (ira_allocno_t *) ira_allocate (sizeof (ira_allocno_t)
392 * max_regno);
393 memset (ira_loop_nodes[l].regno_allocno_map, 0,
394 sizeof (ira_allocno_t) * max_regno);
395 }
396 ira_free (ira_regno_allocno_map);
397 ira_regno_allocno_map
398 = (ira_allocno_t *) ira_allocate (max_regno * sizeof (ira_allocno_t));
399 memset (ira_regno_allocno_map, 0, max_regno * sizeof (ira_allocno_t));
400 FOR_EACH_ALLOCNO (a, ai)
401 {
402 if (ALLOCNO_CAP_MEMBER (a) != NULL)
403 /* Caps are not in the regno allocno maps. */
404 continue;
405 regno = ALLOCNO_REGNO (a);
406 loop_tree_node = ALLOCNO_LOOP_TREE_NODE (a);
407 ALLOCNO_NEXT_REGNO_ALLOCNO (a) = ira_regno_allocno_map[regno];
408 ira_regno_allocno_map[regno] = a;
409 if (loop_tree_node->regno_allocno_map[regno] == NULL)
410 /* Remember that we can create temporary allocnos to break
411 cycles in register shuffle. */
412 loop_tree_node->regno_allocno_map[regno] = a;
413 }
414}
058e97ec
VM
415\f
416
a49ae217 417/* Pools for allocnos, allocno live ranges and objects. */
fcb87c50
MM
418static object_allocator<live_range> live_range_pool ("live ranges");
419static object_allocator<ira_allocno> allocno_pool ("allocnos");
420static object_allocator<ira_object> object_pool ("objects");
058e97ec
VM
421
422/* Vec containing references to all created allocnos. It is a
423 container of array allocnos. */
9771b263 424static vec<ira_allocno_t> allocno_vec;
058e97ec 425
a49ae217
BS
426/* Vec containing references to all created ira_objects. It is a
427 container of ira_object_id_map. */
9771b263 428static vec<ira_object_t> ira_object_id_map_vec;
058e97ec
VM
429
430/* Initialize data concerning allocnos. */
431static void
432initiate_allocnos (void)
433{
9771b263 434 allocno_vec.create (max_reg_num () * 2);
058e97ec
VM
435 ira_allocnos = NULL;
436 ira_allocnos_num = 0;
a49ae217 437 ira_objects_num = 0;
9771b263 438 ira_object_id_map_vec.create (max_reg_num () * 2);
a49ae217 439 ira_object_id_map = NULL;
058e97ec 440 ira_regno_allocno_map
1756cb66
VM
441 = (ira_allocno_t *) ira_allocate (max_reg_num ()
442 * sizeof (ira_allocno_t));
058e97ec
VM
443 memset (ira_regno_allocno_map, 0, max_reg_num () * sizeof (ira_allocno_t));
444}
445
a49ae217
BS
446/* Create and return an object corresponding to a new allocno A. */
447static ira_object_t
ac0ab4f7 448ira_create_object (ira_allocno_t a, int subword)
a49ae217 449{
1756cb66 450 enum reg_class aclass = ALLOCNO_CLASS (a);
0b470bae 451 ira_object_t obj = object_pool.allocate ();
a49ae217
BS
452
453 OBJECT_ALLOCNO (obj) = a;
ac0ab4f7 454 OBJECT_SUBWORD (obj) = subword;
a49ae217
BS
455 OBJECT_CONFLICT_ID (obj) = ira_objects_num;
456 OBJECT_CONFLICT_VEC_P (obj) = false;
457 OBJECT_CONFLICT_ARRAY (obj) = NULL;
458 OBJECT_NUM_CONFLICTS (obj) = 0;
459 COPY_HARD_REG_SET (OBJECT_CONFLICT_HARD_REGS (obj), ira_no_alloc_regs);
460 COPY_HARD_REG_SET (OBJECT_TOTAL_CONFLICT_HARD_REGS (obj), ira_no_alloc_regs);
461 IOR_COMPL_HARD_REG_SET (OBJECT_CONFLICT_HARD_REGS (obj),
1756cb66 462 reg_class_contents[aclass]);
a49ae217 463 IOR_COMPL_HARD_REG_SET (OBJECT_TOTAL_CONFLICT_HARD_REGS (obj),
1756cb66 464 reg_class_contents[aclass]);
a49ae217
BS
465 OBJECT_MIN (obj) = INT_MAX;
466 OBJECT_MAX (obj) = -1;
9140d27b 467 OBJECT_LIVE_RANGES (obj) = NULL;
a49ae217 468
9771b263 469 ira_object_id_map_vec.safe_push (obj);
a49ae217 470 ira_object_id_map
9771b263
DN
471 = ira_object_id_map_vec.address ();
472 ira_objects_num = ira_object_id_map_vec.length ();
ac0ab4f7 473
a49ae217
BS
474 return obj;
475}
476
058e97ec
VM
477/* Create and return the allocno corresponding to REGNO in
478 LOOP_TREE_NODE. Add the allocno to the list of allocnos with the
479 same regno if CAP_P is FALSE. */
480ira_allocno_t
1756cb66
VM
481ira_create_allocno (int regno, bool cap_p,
482 ira_loop_tree_node_t loop_tree_node)
058e97ec
VM
483{
484 ira_allocno_t a;
485
0b470bae 486 a = allocno_pool.allocate ();
058e97ec
VM
487 ALLOCNO_REGNO (a) = regno;
488 ALLOCNO_LOOP_TREE_NODE (a) = loop_tree_node;
489 if (! cap_p)
490 {
491 ALLOCNO_NEXT_REGNO_ALLOCNO (a) = ira_regno_allocno_map[regno];
492 ira_regno_allocno_map[regno] = a;
493 if (loop_tree_node->regno_allocno_map[regno] == NULL)
494 /* Remember that we can create temporary allocnos to break
495 cycles in register shuffle on region borders (see
496 ira-emit.c). */
497 loop_tree_node->regno_allocno_map[regno] = a;
498 }
499 ALLOCNO_CAP (a) = NULL;
500 ALLOCNO_CAP_MEMBER (a) = NULL;
501 ALLOCNO_NUM (a) = ira_allocnos_num;
49d988e7 502 bitmap_set_bit (loop_tree_node->all_allocnos, ALLOCNO_NUM (a));
058e97ec 503 ALLOCNO_NREFS (a) = 0;
854bd721 504 ALLOCNO_FREQ (a) = 0;
058e97ec
VM
505 ALLOCNO_HARD_REGNO (a) = -1;
506 ALLOCNO_CALL_FREQ (a) = 0;
507 ALLOCNO_CALLS_CROSSED_NUM (a) = 0;
e384e6b5 508 ALLOCNO_CHEAP_CALLS_CROSSED_NUM (a) = 0;
c2ba7e7a 509 CLEAR_HARD_REG_SET (ALLOCNO_CROSSED_CALLS_CLOBBERED_REGS (a));
058e97ec
VM
510#ifdef STACK_REGS
511 ALLOCNO_NO_STACK_REG_P (a) = false;
512 ALLOCNO_TOTAL_NO_STACK_REG_P (a) = false;
513#endif
058e97ec 514 ALLOCNO_DONT_REASSIGN_P (a) = false;
927425df 515 ALLOCNO_BAD_SPILL_P (a) = false;
058e97ec 516 ALLOCNO_ASSIGNED_P (a) = false;
058e97ec 517 ALLOCNO_MODE (a) = (regno < 0 ? VOIDmode : PSEUDO_REGNO_MODE (regno));
d1bb282e 518 ALLOCNO_WMODE (a) = ALLOCNO_MODE (a);
3b6d1699 519 ALLOCNO_PREFS (a) = NULL;
058e97ec
VM
520 ALLOCNO_COPIES (a) = NULL;
521 ALLOCNO_HARD_REG_COSTS (a) = NULL;
522 ALLOCNO_CONFLICT_HARD_REG_COSTS (a) = NULL;
523 ALLOCNO_UPDATED_HARD_REG_COSTS (a) = NULL;
524 ALLOCNO_UPDATED_CONFLICT_HARD_REG_COSTS (a) = NULL;
1756cb66
VM
525 ALLOCNO_CLASS (a) = NO_REGS;
526 ALLOCNO_UPDATED_CLASS_COST (a) = 0;
527 ALLOCNO_CLASS_COST (a) = 0;
058e97ec
VM
528 ALLOCNO_MEMORY_COST (a) = 0;
529 ALLOCNO_UPDATED_MEMORY_COST (a) = 0;
530 ALLOCNO_EXCESS_PRESSURE_POINTS_NUM (a) = 0;
ac0ab4f7 531 ALLOCNO_NUM_OBJECTS (a) = 0;
a49ae217 532
1756cb66 533 ALLOCNO_ADD_DATA (a) = NULL;
9771b263
DN
534 allocno_vec.safe_push (a);
535 ira_allocnos = allocno_vec.address ();
536 ira_allocnos_num = allocno_vec.length ();
ac0ab4f7 537
058e97ec
VM
538 return a;
539}
540
1756cb66
VM
541/* Set up register class for A and update its conflict hard
542 registers. */
058e97ec 543void
1756cb66 544ira_set_allocno_class (ira_allocno_t a, enum reg_class aclass)
058e97ec 545{
1756cb66
VM
546 ira_allocno_object_iterator oi;
547 ira_object_t obj;
548
549 ALLOCNO_CLASS (a) = aclass;
550 FOR_EACH_ALLOCNO_OBJECT (a, obj, oi)
551 {
552 IOR_COMPL_HARD_REG_SET (OBJECT_CONFLICT_HARD_REGS (obj),
553 reg_class_contents[aclass]);
554 IOR_COMPL_HARD_REG_SET (OBJECT_TOTAL_CONFLICT_HARD_REGS (obj),
555 reg_class_contents[aclass]);
556 }
a49ae217
BS
557}
558
ac0ab4f7
BS
559/* Determine the number of objects we should associate with allocno A
560 and allocate them. */
a49ae217 561void
ac0ab4f7 562ira_create_allocno_objects (ira_allocno_t a)
a49ae217 563{
ef4bddc2 564 machine_mode mode = ALLOCNO_MODE (a);
1756cb66
VM
565 enum reg_class aclass = ALLOCNO_CLASS (a);
566 int n = ira_reg_class_max_nregs[aclass][mode];
ac0ab4f7
BS
567 int i;
568
cf098191 569 if (n != 2 || maybe_ne (GET_MODE_SIZE (mode), n * UNITS_PER_WORD))
ac0ab4f7
BS
570 n = 1;
571
572 ALLOCNO_NUM_OBJECTS (a) = n;
573 for (i = 0; i < n; i++)
574 ALLOCNO_OBJECT (a, i) = ira_create_object (a, i);
a49ae217
BS
575}
576
ac0ab4f7 577/* For each allocno, set ALLOCNO_NUM_OBJECTS and create the
1756cb66 578 ALLOCNO_OBJECT structures. This must be called after the allocno
ac0ab4f7 579 classes are known. */
a49ae217
BS
580static void
581create_allocno_objects (void)
582{
583 ira_allocno_t a;
584 ira_allocno_iterator ai;
585
586 FOR_EACH_ALLOCNO (a, ai)
ac0ab4f7 587 ira_create_allocno_objects (a);
058e97ec
VM
588}
589
ac0ab4f7
BS
590/* Merge hard register conflict information for all objects associated with
591 allocno TO into the corresponding objects associated with FROM.
592 If TOTAL_ONLY is true, we only merge OBJECT_TOTAL_CONFLICT_HARD_REGS. */
3c55880a
BS
593static void
594merge_hard_reg_conflicts (ira_allocno_t from, ira_allocno_t to,
595 bool total_only)
596{
ac0ab4f7
BS
597 int i;
598 gcc_assert (ALLOCNO_NUM_OBJECTS (to) == ALLOCNO_NUM_OBJECTS (from));
599 for (i = 0; i < ALLOCNO_NUM_OBJECTS (to); i++)
600 {
601 ira_object_t from_obj = ALLOCNO_OBJECT (from, i);
602 ira_object_t to_obj = ALLOCNO_OBJECT (to, i);
1756cb66 603
ac0ab4f7
BS
604 if (!total_only)
605 IOR_HARD_REG_SET (OBJECT_CONFLICT_HARD_REGS (to_obj),
606 OBJECT_CONFLICT_HARD_REGS (from_obj));
607 IOR_HARD_REG_SET (OBJECT_TOTAL_CONFLICT_HARD_REGS (to_obj),
608 OBJECT_TOTAL_CONFLICT_HARD_REGS (from_obj));
609 }
3c55880a
BS
610#ifdef STACK_REGS
611 if (!total_only && ALLOCNO_NO_STACK_REG_P (from))
612 ALLOCNO_NO_STACK_REG_P (to) = true;
613 if (ALLOCNO_TOTAL_NO_STACK_REG_P (from))
614 ALLOCNO_TOTAL_NO_STACK_REG_P (to) = true;
615#endif
616}
617
ac0ab4f7
BS
618/* Update hard register conflict information for all objects associated with
619 A to include the regs in SET. */
620void
621ior_hard_reg_conflicts (ira_allocno_t a, HARD_REG_SET *set)
622{
623 ira_allocno_object_iterator i;
624 ira_object_t obj;
1756cb66 625
ac0ab4f7
BS
626 FOR_EACH_ALLOCNO_OBJECT (a, obj, i)
627 {
628 IOR_HARD_REG_SET (OBJECT_CONFLICT_HARD_REGS (obj), *set);
629 IOR_HARD_REG_SET (OBJECT_TOTAL_CONFLICT_HARD_REGS (obj), *set);
630 }
631}
632
a49ae217
BS
633/* Return TRUE if a conflict vector with NUM elements is more
634 profitable than a conflict bit vector for OBJ. */
058e97ec 635bool
a49ae217 636ira_conflict_vector_profitable_p (ira_object_t obj, int num)
058e97ec
VM
637{
638 int nw;
a49ae217
BS
639 int max = OBJECT_MAX (obj);
640 int min = OBJECT_MIN (obj);
058e97ec 641
a49ae217
BS
642 if (max < min)
643 /* We prefer a bit vector in such case because it does not result
644 in allocation. */
058e97ec
VM
645 return false;
646
a49ae217
BS
647 nw = (max - min + IRA_INT_BITS) / IRA_INT_BITS;
648 return (2 * sizeof (ira_object_t) * (num + 1)
058e97ec
VM
649 < 3 * nw * sizeof (IRA_INT_TYPE));
650}
651
a49ae217
BS
652/* Allocates and initialize the conflict vector of OBJ for NUM
653 conflicting objects. */
058e97ec 654void
a49ae217 655ira_allocate_conflict_vec (ira_object_t obj, int num)
058e97ec
VM
656{
657 int size;
a49ae217 658 ira_object_t *vec;
058e97ec 659
a49ae217 660 ira_assert (OBJECT_CONFLICT_ARRAY (obj) == NULL);
058e97ec 661 num++; /* for NULL end marker */
a49ae217
BS
662 size = sizeof (ira_object_t) * num;
663 OBJECT_CONFLICT_ARRAY (obj) = ira_allocate (size);
664 vec = (ira_object_t *) OBJECT_CONFLICT_ARRAY (obj);
058e97ec 665 vec[0] = NULL;
a49ae217
BS
666 OBJECT_NUM_CONFLICTS (obj) = 0;
667 OBJECT_CONFLICT_ARRAY_SIZE (obj) = size;
668 OBJECT_CONFLICT_VEC_P (obj) = true;
058e97ec
VM
669}
670
a49ae217 671/* Allocate and initialize the conflict bit vector of OBJ. */
058e97ec 672static void
a49ae217 673allocate_conflict_bit_vec (ira_object_t obj)
058e97ec
VM
674{
675 unsigned int size;
676
a49ae217
BS
677 ira_assert (OBJECT_CONFLICT_ARRAY (obj) == NULL);
678 size = ((OBJECT_MAX (obj) - OBJECT_MIN (obj) + IRA_INT_BITS)
058e97ec 679 / IRA_INT_BITS * sizeof (IRA_INT_TYPE));
a49ae217
BS
680 OBJECT_CONFLICT_ARRAY (obj) = ira_allocate (size);
681 memset (OBJECT_CONFLICT_ARRAY (obj), 0, size);
682 OBJECT_CONFLICT_ARRAY_SIZE (obj) = size;
683 OBJECT_CONFLICT_VEC_P (obj) = false;
058e97ec
VM
684}
685
686/* Allocate and initialize the conflict vector or conflict bit vector
ac0ab4f7 687 of OBJ for NUM conflicting allocnos whatever is more profitable. */
058e97ec 688void
ac0ab4f7 689ira_allocate_object_conflicts (ira_object_t obj, int num)
058e97ec 690{
ac0ab4f7
BS
691 if (ira_conflict_vector_profitable_p (obj, num))
692 ira_allocate_conflict_vec (obj, num);
058e97ec 693 else
ac0ab4f7 694 allocate_conflict_bit_vec (obj);
058e97ec
VM
695}
696
a49ae217 697/* Add OBJ2 to the conflicts of OBJ1. */
058e97ec 698static void
a49ae217 699add_to_conflicts (ira_object_t obj1, ira_object_t obj2)
058e97ec
VM
700{
701 int num;
702 unsigned int size;
703
a49ae217 704 if (OBJECT_CONFLICT_VEC_P (obj1))
058e97ec 705 {
a49ae217
BS
706 ira_object_t *vec = OBJECT_CONFLICT_VEC (obj1);
707 int curr_num = OBJECT_NUM_CONFLICTS (obj1);
708 num = curr_num + 2;
709 if (OBJECT_CONFLICT_ARRAY_SIZE (obj1) < num * sizeof (ira_object_t))
058e97ec 710 {
a49ae217 711 ira_object_t *newvec;
058e97ec 712 size = (3 * num / 2 + 1) * sizeof (ira_allocno_t);
a49ae217
BS
713 newvec = (ira_object_t *) ira_allocate (size);
714 memcpy (newvec, vec, curr_num * sizeof (ira_object_t));
715 ira_free (vec);
716 vec = newvec;
717 OBJECT_CONFLICT_ARRAY (obj1) = vec;
718 OBJECT_CONFLICT_ARRAY_SIZE (obj1) = size;
058e97ec 719 }
a49ae217 720 vec[num - 2] = obj2;
058e97ec 721 vec[num - 1] = NULL;
a49ae217 722 OBJECT_NUM_CONFLICTS (obj1)++;
058e97ec
VM
723 }
724 else
725 {
726 int nw, added_head_nw, id;
a49ae217 727 IRA_INT_TYPE *vec = OBJECT_CONFLICT_BITVEC (obj1);
058e97ec 728
a49ae217
BS
729 id = OBJECT_CONFLICT_ID (obj2);
730 if (OBJECT_MIN (obj1) > id)
058e97ec
VM
731 {
732 /* Expand head of the bit vector. */
a49ae217
BS
733 added_head_nw = (OBJECT_MIN (obj1) - id - 1) / IRA_INT_BITS + 1;
734 nw = (OBJECT_MAX (obj1) - OBJECT_MIN (obj1)) / IRA_INT_BITS + 1;
058e97ec 735 size = (nw + added_head_nw) * sizeof (IRA_INT_TYPE);
a49ae217 736 if (OBJECT_CONFLICT_ARRAY_SIZE (obj1) >= size)
058e97ec
VM
737 {
738 memmove ((char *) vec + added_head_nw * sizeof (IRA_INT_TYPE),
739 vec, nw * sizeof (IRA_INT_TYPE));
740 memset (vec, 0, added_head_nw * sizeof (IRA_INT_TYPE));
741 }
742 else
743 {
744 size
745 = (3 * (nw + added_head_nw) / 2 + 1) * sizeof (IRA_INT_TYPE);
746 vec = (IRA_INT_TYPE *) ira_allocate (size);
747 memcpy ((char *) vec + added_head_nw * sizeof (IRA_INT_TYPE),
a49ae217 748 OBJECT_CONFLICT_ARRAY (obj1), nw * sizeof (IRA_INT_TYPE));
058e97ec
VM
749 memset (vec, 0, added_head_nw * sizeof (IRA_INT_TYPE));
750 memset ((char *) vec
751 + (nw + added_head_nw) * sizeof (IRA_INT_TYPE),
752 0, size - (nw + added_head_nw) * sizeof (IRA_INT_TYPE));
a49ae217
BS
753 ira_free (OBJECT_CONFLICT_ARRAY (obj1));
754 OBJECT_CONFLICT_ARRAY (obj1) = vec;
755 OBJECT_CONFLICT_ARRAY_SIZE (obj1) = size;
058e97ec 756 }
a49ae217 757 OBJECT_MIN (obj1) -= added_head_nw * IRA_INT_BITS;
058e97ec 758 }
a49ae217 759 else if (OBJECT_MAX (obj1) < id)
058e97ec 760 {
a49ae217 761 nw = (id - OBJECT_MIN (obj1)) / IRA_INT_BITS + 1;
058e97ec 762 size = nw * sizeof (IRA_INT_TYPE);
a49ae217 763 if (OBJECT_CONFLICT_ARRAY_SIZE (obj1) < size)
058e97ec
VM
764 {
765 /* Expand tail of the bit vector. */
766 size = (3 * nw / 2 + 1) * sizeof (IRA_INT_TYPE);
767 vec = (IRA_INT_TYPE *) ira_allocate (size);
a49ae217
BS
768 memcpy (vec, OBJECT_CONFLICT_ARRAY (obj1), OBJECT_CONFLICT_ARRAY_SIZE (obj1));
769 memset ((char *) vec + OBJECT_CONFLICT_ARRAY_SIZE (obj1),
770 0, size - OBJECT_CONFLICT_ARRAY_SIZE (obj1));
771 ira_free (OBJECT_CONFLICT_ARRAY (obj1));
772 OBJECT_CONFLICT_ARRAY (obj1) = vec;
773 OBJECT_CONFLICT_ARRAY_SIZE (obj1) = size;
058e97ec 774 }
a49ae217 775 OBJECT_MAX (obj1) = id;
058e97ec 776 }
a49ae217 777 SET_MINMAX_SET_BIT (vec, id, OBJECT_MIN (obj1), OBJECT_MAX (obj1));
058e97ec
VM
778 }
779}
780
a49ae217
BS
781/* Add OBJ1 to the conflicts of OBJ2 and vice versa. */
782static void
783ira_add_conflict (ira_object_t obj1, ira_object_t obj2)
058e97ec 784{
a49ae217
BS
785 add_to_conflicts (obj1, obj2);
786 add_to_conflicts (obj2, obj1);
058e97ec
VM
787}
788
a49ae217 789/* Clear all conflicts of OBJ. */
058e97ec 790static void
a49ae217 791clear_conflicts (ira_object_t obj)
058e97ec 792{
a49ae217 793 if (OBJECT_CONFLICT_VEC_P (obj))
058e97ec 794 {
a49ae217
BS
795 OBJECT_NUM_CONFLICTS (obj) = 0;
796 OBJECT_CONFLICT_VEC (obj)[0] = NULL;
058e97ec 797 }
a49ae217 798 else if (OBJECT_CONFLICT_ARRAY_SIZE (obj) != 0)
058e97ec
VM
799 {
800 int nw;
801
a49ae217
BS
802 nw = (OBJECT_MAX (obj) - OBJECT_MIN (obj)) / IRA_INT_BITS + 1;
803 memset (OBJECT_CONFLICT_BITVEC (obj), 0, nw * sizeof (IRA_INT_TYPE));
058e97ec
VM
804 }
805}
806
807/* The array used to find duplications in conflict vectors of
808 allocnos. */
a49ae217 809static int *conflict_check;
058e97ec
VM
810
811/* The value used to mark allocation presence in conflict vector of
812 the current allocno. */
a49ae217 813static int curr_conflict_check_tick;
058e97ec 814
a49ae217 815/* Remove duplications in conflict vector of OBJ. */
058e97ec 816static void
a49ae217 817compress_conflict_vec (ira_object_t obj)
058e97ec 818{
a49ae217 819 ira_object_t *vec, conflict_obj;
058e97ec
VM
820 int i, j;
821
a49ae217
BS
822 ira_assert (OBJECT_CONFLICT_VEC_P (obj));
823 vec = OBJECT_CONFLICT_VEC (obj);
824 curr_conflict_check_tick++;
825 for (i = j = 0; (conflict_obj = vec[i]) != NULL; i++)
058e97ec 826 {
a49ae217
BS
827 int id = OBJECT_CONFLICT_ID (conflict_obj);
828 if (conflict_check[id] != curr_conflict_check_tick)
058e97ec 829 {
a49ae217
BS
830 conflict_check[id] = curr_conflict_check_tick;
831 vec[j++] = conflict_obj;
058e97ec
VM
832 }
833 }
a49ae217 834 OBJECT_NUM_CONFLICTS (obj) = j;
058e97ec
VM
835 vec[j] = NULL;
836}
837
838/* Remove duplications in conflict vectors of all allocnos. */
839static void
840compress_conflict_vecs (void)
841{
ac0ab4f7
BS
842 ira_object_t obj;
843 ira_object_iterator oi;
058e97ec 844
a49ae217
BS
845 conflict_check = (int *) ira_allocate (sizeof (int) * ira_objects_num);
846 memset (conflict_check, 0, sizeof (int) * ira_objects_num);
847 curr_conflict_check_tick = 0;
ac0ab4f7 848 FOR_EACH_OBJECT (obj, oi)
a49ae217 849 {
a49ae217
BS
850 if (OBJECT_CONFLICT_VEC_P (obj))
851 compress_conflict_vec (obj);
852 }
853 ira_free (conflict_check);
058e97ec
VM
854}
855
856/* This recursive function outputs allocno A and if it is a cap the
857 function outputs its members. */
858void
859ira_print_expanded_allocno (ira_allocno_t a)
860{
861 basic_block bb;
862
863 fprintf (ira_dump_file, " a%d(r%d", ALLOCNO_NUM (a), ALLOCNO_REGNO (a));
864 if ((bb = ALLOCNO_LOOP_TREE_NODE (a)->bb) != NULL)
865 fprintf (ira_dump_file, ",b%d", bb->index);
866 else
2608d841 867 fprintf (ira_dump_file, ",l%d", ALLOCNO_LOOP_TREE_NODE (a)->loop_num);
058e97ec
VM
868 if (ALLOCNO_CAP_MEMBER (a) != NULL)
869 {
870 fprintf (ira_dump_file, ":");
871 ira_print_expanded_allocno (ALLOCNO_CAP_MEMBER (a));
872 }
873 fprintf (ira_dump_file, ")");
874}
875
876/* Create and return the cap representing allocno A in the
877 parent loop. */
878static ira_allocno_t
879create_cap_allocno (ira_allocno_t a)
880{
881 ira_allocno_t cap;
882 ira_loop_tree_node_t parent;
1756cb66 883 enum reg_class aclass;
058e97ec 884
058e97ec
VM
885 parent = ALLOCNO_LOOP_TREE_NODE (a)->parent;
886 cap = ira_create_allocno (ALLOCNO_REGNO (a), true, parent);
887 ALLOCNO_MODE (cap) = ALLOCNO_MODE (a);
d1bb282e 888 ALLOCNO_WMODE (cap) = ALLOCNO_WMODE (a);
1756cb66
VM
889 aclass = ALLOCNO_CLASS (a);
890 ira_set_allocno_class (cap, aclass);
ac0ab4f7 891 ira_create_allocno_objects (cap);
058e97ec 892 ALLOCNO_CAP_MEMBER (cap) = a;
058e97ec 893 ALLOCNO_CAP (a) = cap;
1756cb66 894 ALLOCNO_CLASS_COST (cap) = ALLOCNO_CLASS_COST (a);
058e97ec 895 ALLOCNO_MEMORY_COST (cap) = ALLOCNO_MEMORY_COST (a);
058e97ec 896 ira_allocate_and_copy_costs
1756cb66 897 (&ALLOCNO_HARD_REG_COSTS (cap), aclass, ALLOCNO_HARD_REG_COSTS (a));
058e97ec 898 ira_allocate_and_copy_costs
1756cb66 899 (&ALLOCNO_CONFLICT_HARD_REG_COSTS (cap), aclass,
058e97ec 900 ALLOCNO_CONFLICT_HARD_REG_COSTS (a));
927425df 901 ALLOCNO_BAD_SPILL_P (cap) = ALLOCNO_BAD_SPILL_P (a);
058e97ec
VM
902 ALLOCNO_NREFS (cap) = ALLOCNO_NREFS (a);
903 ALLOCNO_FREQ (cap) = ALLOCNO_FREQ (a);
904 ALLOCNO_CALL_FREQ (cap) = ALLOCNO_CALL_FREQ (a);
ac0ab4f7 905
3c55880a 906 merge_hard_reg_conflicts (a, cap, false);
ac0ab4f7 907
058e97ec 908 ALLOCNO_CALLS_CROSSED_NUM (cap) = ALLOCNO_CALLS_CROSSED_NUM (a);
e384e6b5 909 ALLOCNO_CHEAP_CALLS_CROSSED_NUM (cap) = ALLOCNO_CHEAP_CALLS_CROSSED_NUM (a);
c2ba7e7a
RO
910 IOR_HARD_REG_SET (ALLOCNO_CROSSED_CALLS_CLOBBERED_REGS (cap),
911 ALLOCNO_CROSSED_CALLS_CLOBBERED_REGS (a));
058e97ec
VM
912 if (internal_flag_ira_verbose > 2 && ira_dump_file != NULL)
913 {
914 fprintf (ira_dump_file, " Creating cap ");
915 ira_print_expanded_allocno (cap);
916 fprintf (ira_dump_file, "\n");
917 }
918 return cap;
919}
920
ac0ab4f7 921/* Create and return a live range for OBJECT with given attributes. */
b14151b5 922live_range_t
9140d27b
BS
923ira_create_live_range (ira_object_t obj, int start, int finish,
924 live_range_t next)
058e97ec 925{
b14151b5 926 live_range_t p;
058e97ec 927
0b470bae 928 p = live_range_pool.allocate ();
9140d27b 929 p->object = obj;
058e97ec
VM
930 p->start = start;
931 p->finish = finish;
932 p->next = next;
933 return p;
934}
935
ac0ab4f7
BS
936/* Create a new live range for OBJECT and queue it at the head of its
937 live range list. */
938void
939ira_add_live_range_to_object (ira_object_t object, int start, int finish)
940{
941 live_range_t p;
942 p = ira_create_live_range (object, start, finish,
943 OBJECT_LIVE_RANGES (object));
944 OBJECT_LIVE_RANGES (object) = p;
945}
946
058e97ec 947/* Copy allocno live range R and return the result. */
b14151b5 948static live_range_t
9140d27b 949copy_live_range (live_range_t r)
058e97ec 950{
b14151b5 951 live_range_t p;
058e97ec 952
0b470bae 953 p = live_range_pool.allocate ();
058e97ec
VM
954 *p = *r;
955 return p;
956}
957
958/* Copy allocno live range list given by its head R and return the
959 result. */
b14151b5 960live_range_t
9140d27b 961ira_copy_live_range_list (live_range_t r)
058e97ec 962{
b14151b5 963 live_range_t p, first, last;
058e97ec
VM
964
965 if (r == NULL)
966 return NULL;
967 for (first = last = NULL; r != NULL; r = r->next)
968 {
9140d27b 969 p = copy_live_range (r);
058e97ec
VM
970 if (first == NULL)
971 first = p;
972 else
973 last->next = p;
974 last = p;
975 }
976 return first;
977}
978
3553f0bb
VM
979/* Merge ranges R1 and R2 and returns the result. The function
980 maintains the order of ranges and tries to minimize number of the
981 result ranges. */
b14151b5 982live_range_t
9140d27b 983ira_merge_live_ranges (live_range_t r1, live_range_t r2)
3553f0bb 984{
fab27f52 985 live_range_t first, last;
3553f0bb
VM
986
987 if (r1 == NULL)
988 return r2;
989 if (r2 == NULL)
990 return r1;
991 for (first = last = NULL; r1 != NULL && r2 != NULL;)
992 {
993 if (r1->start < r2->start)
fab27f52 994 std::swap (r1, r2);
3553f0bb
VM
995 if (r1->start <= r2->finish + 1)
996 {
997 /* Intersected ranges: merge r1 and r2 into r1. */
998 r1->start = r2->start;
999 if (r1->finish < r2->finish)
1000 r1->finish = r2->finish;
fab27f52 1001 live_range_t temp = r2;
3553f0bb 1002 r2 = r2->next;
9140d27b 1003 ira_finish_live_range (temp);
3553f0bb
VM
1004 if (r2 == NULL)
1005 {
1006 /* To try to merge with subsequent ranges in r1. */
1007 r2 = r1->next;
1008 r1->next = NULL;
1009 }
1010 }
1011 else
1012 {
1013 /* Add r1 to the result. */
1014 if (first == NULL)
1015 first = last = r1;
1016 else
1017 {
1018 last->next = r1;
1019 last = r1;
1020 }
1021 r1 = r1->next;
1022 if (r1 == NULL)
1023 {
1024 /* To try to merge with subsequent ranges in r2. */
1025 r1 = r2->next;
1026 r2->next = NULL;
1027 }
1028 }
1029 }
1030 if (r1 != NULL)
1031 {
1032 if (first == NULL)
1033 first = r1;
1034 else
1035 last->next = r1;
1036 ira_assert (r1->next == NULL);
1037 }
1038 else if (r2 != NULL)
1039 {
1040 if (first == NULL)
1041 first = r2;
1042 else
1043 last->next = r2;
1044 ira_assert (r2->next == NULL);
1045 }
1046 else
1047 {
1048 ira_assert (last->next == NULL);
1049 }
1050 return first;
1051}
1052
1053/* Return TRUE if live ranges R1 and R2 intersect. */
1054bool
9140d27b 1055ira_live_ranges_intersect_p (live_range_t r1, live_range_t r2)
3553f0bb
VM
1056{
1057 /* Remember the live ranges are always kept ordered. */
1058 while (r1 != NULL && r2 != NULL)
1059 {
1060 if (r1->start > r2->finish)
1061 r1 = r1->next;
1062 else if (r2->start > r1->finish)
1063 r2 = r2->next;
1064 else
1065 return true;
1066 }
1067 return false;
1068}
1069
058e97ec
VM
1070/* Free allocno live range R. */
1071void
9140d27b 1072ira_finish_live_range (live_range_t r)
058e97ec 1073{
0b470bae 1074 live_range_pool.remove (r);
058e97ec
VM
1075}
1076
3553f0bb
VM
1077/* Free list of allocno live ranges starting with R. */
1078void
9140d27b 1079ira_finish_live_range_list (live_range_t r)
3553f0bb 1080{
b14151b5 1081 live_range_t next_r;
3553f0bb
VM
1082
1083 for (; r != NULL; r = next_r)
1084 {
1085 next_r = r->next;
9140d27b 1086 ira_finish_live_range (r);
3553f0bb
VM
1087 }
1088}
1089
058e97ec
VM
1090/* Free updated register costs of allocno A. */
1091void
1092ira_free_allocno_updated_costs (ira_allocno_t a)
1093{
1756cb66 1094 enum reg_class aclass;
058e97ec 1095
1756cb66 1096 aclass = ALLOCNO_CLASS (a);
058e97ec 1097 if (ALLOCNO_UPDATED_HARD_REG_COSTS (a) != NULL)
1756cb66 1098 ira_free_cost_vector (ALLOCNO_UPDATED_HARD_REG_COSTS (a), aclass);
058e97ec
VM
1099 ALLOCNO_UPDATED_HARD_REG_COSTS (a) = NULL;
1100 if (ALLOCNO_UPDATED_CONFLICT_HARD_REG_COSTS (a) != NULL)
1101 ira_free_cost_vector (ALLOCNO_UPDATED_CONFLICT_HARD_REG_COSTS (a),
1756cb66 1102 aclass);
058e97ec
VM
1103 ALLOCNO_UPDATED_CONFLICT_HARD_REG_COSTS (a) = NULL;
1104}
1105
1756cb66
VM
1106/* Free and nullify all cost vectors allocated earlier for allocno
1107 A. */
058e97ec 1108static void
1756cb66 1109ira_free_allocno_costs (ira_allocno_t a)
058e97ec 1110{
1756cb66 1111 enum reg_class aclass = ALLOCNO_CLASS (a);
ac0ab4f7
BS
1112 ira_object_t obj;
1113 ira_allocno_object_iterator oi;
058e97ec 1114
ac0ab4f7
BS
1115 FOR_EACH_ALLOCNO_OBJECT (a, obj, oi)
1116 {
1117 ira_finish_live_range_list (OBJECT_LIVE_RANGES (obj));
1118 ira_object_id_map[OBJECT_CONFLICT_ID (obj)] = NULL;
1119 if (OBJECT_CONFLICT_ARRAY (obj) != NULL)
1120 ira_free (OBJECT_CONFLICT_ARRAY (obj));
0b470bae 1121 object_pool.remove (obj);
ac0ab4f7 1122 }
9140d27b 1123
058e97ec 1124 ira_allocnos[ALLOCNO_NUM (a)] = NULL;
058e97ec 1125 if (ALLOCNO_HARD_REG_COSTS (a) != NULL)
1756cb66 1126 ira_free_cost_vector (ALLOCNO_HARD_REG_COSTS (a), aclass);
058e97ec 1127 if (ALLOCNO_CONFLICT_HARD_REG_COSTS (a) != NULL)
1756cb66 1128 ira_free_cost_vector (ALLOCNO_CONFLICT_HARD_REG_COSTS (a), aclass);
058e97ec 1129 if (ALLOCNO_UPDATED_HARD_REG_COSTS (a) != NULL)
1756cb66 1130 ira_free_cost_vector (ALLOCNO_UPDATED_HARD_REG_COSTS (a), aclass);
058e97ec
VM
1131 if (ALLOCNO_UPDATED_CONFLICT_HARD_REG_COSTS (a) != NULL)
1132 ira_free_cost_vector (ALLOCNO_UPDATED_CONFLICT_HARD_REG_COSTS (a),
1756cb66
VM
1133 aclass);
1134 ALLOCNO_HARD_REG_COSTS (a) = NULL;
1135 ALLOCNO_CONFLICT_HARD_REG_COSTS (a) = NULL;
1136 ALLOCNO_UPDATED_HARD_REG_COSTS (a) = NULL;
1137 ALLOCNO_UPDATED_CONFLICT_HARD_REG_COSTS (a) = NULL;
1138}
1139
1140/* Free the memory allocated for allocno A. */
1141static void
1142finish_allocno (ira_allocno_t a)
1143{
1144 ira_free_allocno_costs (a);
0b470bae 1145 allocno_pool.remove (a);
058e97ec
VM
1146}
1147
1148/* Free the memory allocated for all allocnos. */
1149static void
1150finish_allocnos (void)
1151{
1152 ira_allocno_t a;
1153 ira_allocno_iterator ai;
1154
1155 FOR_EACH_ALLOCNO (a, ai)
1156 finish_allocno (a);
1157 ira_free (ira_regno_allocno_map);
9771b263
DN
1158 ira_object_id_map_vec.release ();
1159 allocno_vec.release ();
0b470bae
ML
1160 allocno_pool.release ();
1161 object_pool.release ();
1162 live_range_pool.release ();
058e97ec
VM
1163}
1164
1165\f
1166
3b6d1699 1167/* Pools for allocno preferences. */
fcb87c50 1168static object_allocator <ira_allocno_pref> pref_pool ("prefs");
3b6d1699
VM
1169
1170/* Vec containing references to all created preferences. It is a
1171 container of array ira_prefs. */
1172static vec<ira_pref_t> pref_vec;
1173
1174/* The function initializes data concerning allocno prefs. */
1175static void
1176initiate_prefs (void)
1177{
3b6d1699
VM
1178 pref_vec.create (get_max_uid ());
1179 ira_prefs = NULL;
1180 ira_prefs_num = 0;
1181}
1182
1183/* Return pref for A and HARD_REGNO if any. */
1184static ira_pref_t
1185find_allocno_pref (ira_allocno_t a, int hard_regno)
1186{
1187 ira_pref_t pref;
1188
1189 for (pref = ALLOCNO_PREFS (a); pref != NULL; pref = pref->next_pref)
1190 if (pref->allocno == a && pref->hard_regno == hard_regno)
1191 return pref;
1192 return NULL;
1193}
1194
1195/* Create and return pref with given attributes A, HARD_REGNO, and FREQ. */
1196ira_pref_t
1197ira_create_pref (ira_allocno_t a, int hard_regno, int freq)
1198{
1199 ira_pref_t pref;
1200
0b470bae 1201 pref = pref_pool.allocate ();
3b6d1699
VM
1202 pref->num = ira_prefs_num;
1203 pref->allocno = a;
1204 pref->hard_regno = hard_regno;
1205 pref->freq = freq;
1206 pref_vec.safe_push (pref);
1207 ira_prefs = pref_vec.address ();
1208 ira_prefs_num = pref_vec.length ();
1209 return pref;
1210}
1211
df3e3493 1212/* Attach a pref PREF to the corresponding allocno. */
3b6d1699
VM
1213static void
1214add_allocno_pref_to_list (ira_pref_t pref)
1215{
1216 ira_allocno_t a = pref->allocno;
1217
1218 pref->next_pref = ALLOCNO_PREFS (a);
1219 ALLOCNO_PREFS (a) = pref;
1220}
1221
1222/* Create (or update frequency if the pref already exists) the pref of
1223 allocnos A preferring HARD_REGNO with frequency FREQ. */
1224void
1225ira_add_allocno_pref (ira_allocno_t a, int hard_regno, int freq)
1226{
1227 ira_pref_t pref;
1228
1229 if (freq <= 0)
1230 return;
1231 if ((pref = find_allocno_pref (a, hard_regno)) != NULL)
1232 {
1233 pref->freq += freq;
1234 return;
1235 }
1236 pref = ira_create_pref (a, hard_regno, freq);
1237 ira_assert (a != NULL);
1238 add_allocno_pref_to_list (pref);
1239}
1240
1241/* Print info about PREF into file F. */
1242static void
1243print_pref (FILE *f, ira_pref_t pref)
1244{
1245 fprintf (f, " pref%d:a%d(r%d)<-hr%d@%d\n", pref->num,
1246 ALLOCNO_NUM (pref->allocno), ALLOCNO_REGNO (pref->allocno),
1247 pref->hard_regno, pref->freq);
1248}
1249
1250/* Print info about PREF into stderr. */
1251void
1252ira_debug_pref (ira_pref_t pref)
1253{
1254 print_pref (stderr, pref);
1255}
1256
1257/* Print info about all prefs into file F. */
1258static void
1259print_prefs (FILE *f)
1260{
1261 ira_pref_t pref;
1262 ira_pref_iterator pi;
1263
1264 FOR_EACH_PREF (pref, pi)
1265 print_pref (f, pref);
1266}
1267
1268/* Print info about all prefs into stderr. */
1269void
1270ira_debug_prefs (void)
1271{
1272 print_prefs (stderr);
1273}
1274
1275/* Print info about prefs involving allocno A into file F. */
1276static void
1277print_allocno_prefs (FILE *f, ira_allocno_t a)
1278{
1279 ira_pref_t pref;
1280
1281 fprintf (f, " a%d(r%d):", ALLOCNO_NUM (a), ALLOCNO_REGNO (a));
1282 for (pref = ALLOCNO_PREFS (a); pref != NULL; pref = pref->next_pref)
1283 fprintf (f, " pref%d:hr%d@%d", pref->num, pref->hard_regno, pref->freq);
1284 fprintf (f, "\n");
1285}
1286
1287/* Print info about prefs involving allocno A into stderr. */
1288void
1289ira_debug_allocno_prefs (ira_allocno_t a)
1290{
1291 print_allocno_prefs (stderr, a);
1292}
1293
1294/* The function frees memory allocated for PREF. */
1295static void
1296finish_pref (ira_pref_t pref)
1297{
1298 ira_prefs[pref->num] = NULL;
0b470bae 1299 pref_pool.remove (pref);
3b6d1699
VM
1300}
1301
1302/* Remove PREF from the list of allocno prefs and free memory for
1303 it. */
1304void
1305ira_remove_pref (ira_pref_t pref)
1306{
1307 ira_pref_t cpref, prev;
1308
1309 if (internal_flag_ira_verbose > 1 && ira_dump_file != NULL)
1310 fprintf (ira_dump_file, " Removing pref%d:hr%d@%d\n",
1311 pref->num, pref->hard_regno, pref->freq);
1312 for (prev = NULL, cpref = ALLOCNO_PREFS (pref->allocno);
1313 cpref != NULL;
1314 prev = cpref, cpref = cpref->next_pref)
1315 if (cpref == pref)
1316 break;
1317 ira_assert (cpref != NULL);
1318 if (prev == NULL)
1319 ALLOCNO_PREFS (pref->allocno) = pref->next_pref;
1320 else
1321 prev->next_pref = pref->next_pref;
1322 finish_pref (pref);
1323}
1324
1325/* Remove all prefs of allocno A. */
1326void
1327ira_remove_allocno_prefs (ira_allocno_t a)
1328{
1329 ira_pref_t pref, next_pref;
1330
1331 for (pref = ALLOCNO_PREFS (a); pref != NULL; pref = next_pref)
1332 {
1333 next_pref = pref->next_pref;
1334 finish_pref (pref);
1335 }
1336 ALLOCNO_PREFS (a) = NULL;
1337}
1338
1339/* Free memory allocated for all prefs. */
1340static void
1341finish_prefs (void)
1342{
1343 ira_pref_t pref;
1344 ira_pref_iterator pi;
1345
1346 FOR_EACH_PREF (pref, pi)
1347 finish_pref (pref);
1348 pref_vec.release ();
0b470bae 1349 pref_pool.release ();
3b6d1699
VM
1350}
1351
1352\f
1353
058e97ec 1354/* Pools for copies. */
fcb87c50 1355static object_allocator<ira_allocno_copy> copy_pool ("copies");
058e97ec
VM
1356
1357/* Vec containing references to all created copies. It is a
1358 container of array ira_copies. */
9771b263 1359static vec<ira_copy_t> copy_vec;
058e97ec
VM
1360
1361/* The function initializes data concerning allocno copies. */
1362static void
1363initiate_copies (void)
1364{
9771b263 1365 copy_vec.create (get_max_uid ());
058e97ec
VM
1366 ira_copies = NULL;
1367 ira_copies_num = 0;
1368}
1369
1370/* Return copy connecting A1 and A2 and originated from INSN of
1371 LOOP_TREE_NODE if any. */
1372static ira_copy_t
070a1983 1373find_allocno_copy (ira_allocno_t a1, ira_allocno_t a2, rtx_insn *insn,
058e97ec
VM
1374 ira_loop_tree_node_t loop_tree_node)
1375{
1376 ira_copy_t cp, next_cp;
1377 ira_allocno_t another_a;
1378
1379 for (cp = ALLOCNO_COPIES (a1); cp != NULL; cp = next_cp)
1380 {
1381 if (cp->first == a1)
1382 {
1383 next_cp = cp->next_first_allocno_copy;
1384 another_a = cp->second;
1385 }
1386 else if (cp->second == a1)
1387 {
1388 next_cp = cp->next_second_allocno_copy;
1389 another_a = cp->first;
1390 }
1391 else
1392 gcc_unreachable ();
1393 if (another_a == a2 && cp->insn == insn
1394 && cp->loop_tree_node == loop_tree_node)
1395 return cp;
1396 }
1397 return NULL;
1398}
1399
1400/* Create and return copy with given attributes LOOP_TREE_NODE, FIRST,
548a6322 1401 SECOND, FREQ, CONSTRAINT_P, and INSN. */
058e97ec 1402ira_copy_t
548a6322 1403ira_create_copy (ira_allocno_t first, ira_allocno_t second, int freq,
070a1983 1404 bool constraint_p, rtx_insn *insn,
058e97ec
VM
1405 ira_loop_tree_node_t loop_tree_node)
1406{
1407 ira_copy_t cp;
1408
0b470bae 1409 cp = copy_pool.allocate ();
058e97ec
VM
1410 cp->num = ira_copies_num;
1411 cp->first = first;
1412 cp->second = second;
1413 cp->freq = freq;
548a6322 1414 cp->constraint_p = constraint_p;
058e97ec
VM
1415 cp->insn = insn;
1416 cp->loop_tree_node = loop_tree_node;
9771b263
DN
1417 copy_vec.safe_push (cp);
1418 ira_copies = copy_vec.address ();
1419 ira_copies_num = copy_vec.length ();
058e97ec
VM
1420 return cp;
1421}
1422
1423/* Attach a copy CP to allocnos involved into the copy. */
3b6d1699
VM
1424static void
1425add_allocno_copy_to_list (ira_copy_t cp)
058e97ec
VM
1426{
1427 ira_allocno_t first = cp->first, second = cp->second;
1428
1429 cp->prev_first_allocno_copy = NULL;
1430 cp->prev_second_allocno_copy = NULL;
1431 cp->next_first_allocno_copy = ALLOCNO_COPIES (first);
1432 if (cp->next_first_allocno_copy != NULL)
1433 {
1434 if (cp->next_first_allocno_copy->first == first)
1435 cp->next_first_allocno_copy->prev_first_allocno_copy = cp;
1436 else
1437 cp->next_first_allocno_copy->prev_second_allocno_copy = cp;
1438 }
1439 cp->next_second_allocno_copy = ALLOCNO_COPIES (second);
1440 if (cp->next_second_allocno_copy != NULL)
1441 {
1442 if (cp->next_second_allocno_copy->second == second)
1443 cp->next_second_allocno_copy->prev_second_allocno_copy = cp;
1444 else
1445 cp->next_second_allocno_copy->prev_first_allocno_copy = cp;
1446 }
1447 ALLOCNO_COPIES (first) = cp;
1448 ALLOCNO_COPIES (second) = cp;
1449}
1450
058e97ec
VM
1451/* Make a copy CP a canonical copy where number of the
1452 first allocno is less than the second one. */
3b6d1699
VM
1453static void
1454swap_allocno_copy_ends_if_necessary (ira_copy_t cp)
058e97ec 1455{
058e97ec
VM
1456 if (ALLOCNO_NUM (cp->first) <= ALLOCNO_NUM (cp->second))
1457 return;
1458
fab27f52
MM
1459 std::swap (cp->first, cp->second);
1460 std::swap (cp->prev_first_allocno_copy, cp->prev_second_allocno_copy);
1461 std::swap (cp->next_first_allocno_copy, cp->next_second_allocno_copy);
058e97ec
VM
1462}
1463
1464/* Create (or update frequency if the copy already exists) and return
1465 the copy of allocnos FIRST and SECOND with frequency FREQ
1466 corresponding to move insn INSN (if any) and originated from
1467 LOOP_TREE_NODE. */
1468ira_copy_t
1469ira_add_allocno_copy (ira_allocno_t first, ira_allocno_t second, int freq,
070a1983 1470 bool constraint_p, rtx_insn *insn,
548a6322 1471 ira_loop_tree_node_t loop_tree_node)
058e97ec
VM
1472{
1473 ira_copy_t cp;
1474
1475 if ((cp = find_allocno_copy (first, second, insn, loop_tree_node)) != NULL)
1476 {
1477 cp->freq += freq;
1478 return cp;
1479 }
548a6322
VM
1480 cp = ira_create_copy (first, second, freq, constraint_p, insn,
1481 loop_tree_node);
058e97ec 1482 ira_assert (first != NULL && second != NULL);
3b6d1699
VM
1483 add_allocno_copy_to_list (cp);
1484 swap_allocno_copy_ends_if_necessary (cp);
058e97ec
VM
1485 return cp;
1486}
1487
4cda38d5
VM
1488/* Print info about copy CP into file F. */
1489static void
1490print_copy (FILE *f, ira_copy_t cp)
1491{
548a6322 1492 fprintf (f, " cp%d:a%d(r%d)<->a%d(r%d)@%d:%s\n", cp->num,
4cda38d5 1493 ALLOCNO_NUM (cp->first), ALLOCNO_REGNO (cp->first),
548a6322
VM
1494 ALLOCNO_NUM (cp->second), ALLOCNO_REGNO (cp->second), cp->freq,
1495 cp->insn != NULL
1496 ? "move" : cp->constraint_p ? "constraint" : "shuffle");
4cda38d5
VM
1497}
1498
7b3b6ae4
LC
1499DEBUG_FUNCTION void
1500debug (ira_allocno_copy &ref)
1501{
1502 print_copy (stderr, &ref);
1503}
1504
1505DEBUG_FUNCTION void
1506debug (ira_allocno_copy *ptr)
1507{
1508 if (ptr)
1509 debug (*ptr);
1510 else
1511 fprintf (stderr, "<nil>\n");
1512}
1513
4cda38d5
VM
1514/* Print info about copy CP into stderr. */
1515void
1516ira_debug_copy (ira_copy_t cp)
1517{
1518 print_copy (stderr, cp);
1519}
1520
1521/* Print info about all copies into file F. */
1522static void
1523print_copies (FILE *f)
1524{
1525 ira_copy_t cp;
1526 ira_copy_iterator ci;
1527
1528 FOR_EACH_COPY (cp, ci)
1529 print_copy (f, cp);
1530}
1531
1532/* Print info about all copies into stderr. */
1533void
1534ira_debug_copies (void)
1535{
1536 print_copies (stderr);
1537}
1538
058e97ec
VM
1539/* Print info about copies involving allocno A into file F. */
1540static void
1541print_allocno_copies (FILE *f, ira_allocno_t a)
1542{
1543 ira_allocno_t another_a;
1544 ira_copy_t cp, next_cp;
1545
1546 fprintf (f, " a%d(r%d):", ALLOCNO_NUM (a), ALLOCNO_REGNO (a));
1547 for (cp = ALLOCNO_COPIES (a); cp != NULL; cp = next_cp)
1548 {
1549 if (cp->first == a)
1550 {
1551 next_cp = cp->next_first_allocno_copy;
1552 another_a = cp->second;
1553 }
1554 else if (cp->second == a)
1555 {
1556 next_cp = cp->next_second_allocno_copy;
1557 another_a = cp->first;
1558 }
1559 else
1560 gcc_unreachable ();
1561 fprintf (f, " cp%d:a%d(r%d)@%d", cp->num,
1562 ALLOCNO_NUM (another_a), ALLOCNO_REGNO (another_a), cp->freq);
1563 }
1564 fprintf (f, "\n");
1565}
1566
7b3b6ae4
LC
1567DEBUG_FUNCTION void
1568debug (ira_allocno &ref)
1569{
1570 print_allocno_copies (stderr, &ref);
1571}
1572
1573DEBUG_FUNCTION void
1574debug (ira_allocno *ptr)
1575{
1576 if (ptr)
1577 debug (*ptr);
1578 else
1579 fprintf (stderr, "<nil>\n");
1580}
1581
1582
058e97ec
VM
1583/* Print info about copies involving allocno A into stderr. */
1584void
1585ira_debug_allocno_copies (ira_allocno_t a)
1586{
1587 print_allocno_copies (stderr, a);
1588}
1589
1590/* The function frees memory allocated for copy CP. */
1591static void
1592finish_copy (ira_copy_t cp)
1593{
0b470bae 1594 copy_pool.remove (cp);
058e97ec
VM
1595}
1596
1597
1598/* Free memory allocated for all copies. */
1599static void
1600finish_copies (void)
1601{
1602 ira_copy_t cp;
1603 ira_copy_iterator ci;
1604
1605 FOR_EACH_COPY (cp, ci)
1606 finish_copy (cp);
9771b263 1607 copy_vec.release ();
0b470bae 1608 copy_pool.release ();
058e97ec
VM
1609}
1610
1611\f
1612
1756cb66 1613/* Pools for cost vectors. It is defined only for allocno classes. */
fb0b2914 1614static pool_allocator *cost_vector_pool[N_REG_CLASSES];
058e97ec
VM
1615
1616/* The function initiates work with hard register cost vectors. It
1756cb66 1617 creates allocation pool for each allocno class. */
058e97ec
VM
1618static void
1619initiate_cost_vectors (void)
1620{
1621 int i;
1756cb66 1622 enum reg_class aclass;
058e97ec 1623
1756cb66 1624 for (i = 0; i < ira_allocno_classes_num; i++)
058e97ec 1625 {
1756cb66 1626 aclass = ira_allocno_classes[i];
fb0b2914 1627 cost_vector_pool[aclass] = new pool_allocator
fcb87c50 1628 ("cost vectors", sizeof (int) * (ira_class_hard_regs_num[aclass]));
058e97ec
VM
1629 }
1630}
1631
1756cb66 1632/* Allocate and return a cost vector VEC for ACLASS. */
058e97ec 1633int *
6f76a878 1634ira_allocate_cost_vector (reg_class_t aclass)
058e97ec 1635{
fb0b2914 1636 return (int*) cost_vector_pool[(int) aclass]->allocate ();
058e97ec
VM
1637}
1638
1756cb66 1639/* Free a cost vector VEC for ACLASS. */
058e97ec 1640void
6f76a878 1641ira_free_cost_vector (int *vec, reg_class_t aclass)
058e97ec
VM
1642{
1643 ira_assert (vec != NULL);
3599f64a 1644 cost_vector_pool[(int) aclass]->remove (vec);
058e97ec
VM
1645}
1646
1647/* Finish work with hard register cost vectors. Release allocation
1756cb66 1648 pool for each allocno class. */
058e97ec
VM
1649static void
1650finish_cost_vectors (void)
1651{
1652 int i;
1756cb66 1653 enum reg_class aclass;
058e97ec 1654
1756cb66 1655 for (i = 0; i < ira_allocno_classes_num; i++)
058e97ec 1656 {
1756cb66 1657 aclass = ira_allocno_classes[i];
3599f64a 1658 delete cost_vector_pool[aclass];
058e97ec
VM
1659 }
1660}
1661
1662\f
1663
e6a7da82
SB
1664/* Compute a post-ordering of the reverse control flow of the loop body
1665 designated by the children nodes of LOOP_NODE, whose body nodes in
1666 pre-order are input as LOOP_PREORDER. Return a VEC with a post-order
1667 of the reverse loop body.
1668
1669 For the post-order of the reverse CFG, we visit the basic blocks in
1670 LOOP_PREORDER array in the reverse order of where they appear.
1671 This is important: We do not just want to compute a post-order of
1672 the reverse CFG, we want to make a best-guess for a visiting order that
1673 minimizes the number of chain elements per allocno live range. If the
1674 blocks would be visited in a different order, we would still compute a
1675 correct post-ordering but it would be less likely that two nodes
9c582551 1676 connected by an edge in the CFG are neighbors in the topsort. */
e6a7da82 1677
9771b263 1678static vec<ira_loop_tree_node_t>
e6a7da82 1679ira_loop_tree_body_rev_postorder (ira_loop_tree_node_t loop_node ATTRIBUTE_UNUSED,
9771b263 1680 vec<ira_loop_tree_node_t> loop_preorder)
e6a7da82 1681{
6e1aa848 1682 vec<ira_loop_tree_node_t> topsort_nodes = vNULL;
e6a7da82
SB
1683 unsigned int n_loop_preorder;
1684
9771b263 1685 n_loop_preorder = loop_preorder.length ();
e6a7da82
SB
1686 if (n_loop_preorder != 0)
1687 {
1688 ira_loop_tree_node_t subloop_node;
1689 unsigned int i;
ef062b13 1690 auto_vec<ira_loop_tree_node_t> dfs_stack;
e6a7da82
SB
1691
1692 /* This is a bit of strange abuse of the BB_VISITED flag: We use
1693 the flag to mark blocks we still have to visit to add them to
1694 our post-order. Define an alias to avoid confusion. */
1695#define BB_TO_VISIT BB_VISITED
1696
9771b263 1697 FOR_EACH_VEC_ELT (loop_preorder, i, subloop_node)
e6a7da82
SB
1698 {
1699 gcc_checking_assert (! (subloop_node->bb->flags & BB_TO_VISIT));
1700 subloop_node->bb->flags |= BB_TO_VISIT;
1701 }
1702
9771b263
DN
1703 topsort_nodes.create (n_loop_preorder);
1704 dfs_stack.create (n_loop_preorder);
e6a7da82 1705
9771b263 1706 FOR_EACH_VEC_ELT_REVERSE (loop_preorder, i, subloop_node)
e6a7da82
SB
1707 {
1708 if (! (subloop_node->bb->flags & BB_TO_VISIT))
1709 continue;
1710
1711 subloop_node->bb->flags &= ~BB_TO_VISIT;
9771b263
DN
1712 dfs_stack.quick_push (subloop_node);
1713 while (! dfs_stack.is_empty ())
e6a7da82
SB
1714 {
1715 edge e;
1716 edge_iterator ei;
1717
9771b263 1718 ira_loop_tree_node_t n = dfs_stack.last ();
e6a7da82
SB
1719 FOR_EACH_EDGE (e, ei, n->bb->preds)
1720 {
1721 ira_loop_tree_node_t pred_node;
1722 basic_block pred_bb = e->src;
1723
fefa31b5 1724 if (e->src == ENTRY_BLOCK_PTR_FOR_FN (cfun))
e6a7da82
SB
1725 continue;
1726
1727 pred_node = IRA_BB_NODE_BY_INDEX (pred_bb->index);
1728 if (pred_node != n
1729 && (pred_node->bb->flags & BB_TO_VISIT))
1730 {
1731 pred_node->bb->flags &= ~BB_TO_VISIT;
9771b263 1732 dfs_stack.quick_push (pred_node);
e6a7da82
SB
1733 }
1734 }
9771b263 1735 if (n == dfs_stack.last ())
e6a7da82 1736 {
9771b263
DN
1737 dfs_stack.pop ();
1738 topsort_nodes.quick_push (n);
e6a7da82
SB
1739 }
1740 }
1741 }
1742
1743#undef BB_TO_VISIT
e6a7da82
SB
1744 }
1745
9771b263 1746 gcc_assert (topsort_nodes.length () == n_loop_preorder);
e6a7da82
SB
1747 return topsort_nodes;
1748}
1749
058e97ec
VM
1750/* The current loop tree node and its regno allocno map. */
1751ira_loop_tree_node_t ira_curr_loop_tree_node;
1752ira_allocno_t *ira_curr_regno_allocno_map;
1753
1754/* This recursive function traverses loop tree with root LOOP_NODE
1755 calling non-null functions PREORDER_FUNC and POSTORDER_FUNC
1756 correspondingly in preorder and postorder. The function sets up
1757 IRA_CURR_LOOP_TREE_NODE and IRA_CURR_REGNO_ALLOCNO_MAP. If BB_P,
1758 basic block nodes of LOOP_NODE is also processed (before its
e6a7da82
SB
1759 subloop nodes).
1760
1761 If BB_P is set and POSTORDER_FUNC is given, the basic blocks in
1762 the loop are passed in the *reverse* post-order of the *reverse*
1763 CFG. This is only used by ira_create_allocno_live_ranges, which
1764 wants to visit basic blocks in this order to minimize the number
1765 of elements per live range chain.
1766 Note that the loop tree nodes are still visited in the normal,
1767 forward post-order of the loop tree. */
1768
058e97ec
VM
1769void
1770ira_traverse_loop_tree (bool bb_p, ira_loop_tree_node_t loop_node,
1771 void (*preorder_func) (ira_loop_tree_node_t),
1772 void (*postorder_func) (ira_loop_tree_node_t))
1773{
1774 ira_loop_tree_node_t subloop_node;
1775
1776 ira_assert (loop_node->bb == NULL);
1777 ira_curr_loop_tree_node = loop_node;
1778 ira_curr_regno_allocno_map = ira_curr_loop_tree_node->regno_allocno_map;
1779
1780 if (preorder_func != NULL)
1781 (*preorder_func) (loop_node);
b8698a0f 1782
058e97ec 1783 if (bb_p)
e6a7da82 1784 {
ef062b13 1785 auto_vec<ira_loop_tree_node_t> loop_preorder;
e6a7da82
SB
1786 unsigned int i;
1787
1788 /* Add all nodes to the set of nodes to visit. The IRA loop tree
1789 is set up such that nodes in the loop body appear in a pre-order
1790 of their place in the CFG. */
1791 for (subloop_node = loop_node->children;
1792 subloop_node != NULL;
1793 subloop_node = subloop_node->next)
1794 if (subloop_node->bb != NULL)
9771b263 1795 loop_preorder.safe_push (subloop_node);
e6a7da82
SB
1796
1797 if (preorder_func != NULL)
9771b263 1798 FOR_EACH_VEC_ELT (loop_preorder, i, subloop_node)
e6a7da82
SB
1799 (*preorder_func) (subloop_node);
1800
1801 if (postorder_func != NULL)
058e97ec 1802 {
9771b263 1803 vec<ira_loop_tree_node_t> loop_rev_postorder =
e6a7da82 1804 ira_loop_tree_body_rev_postorder (loop_node, loop_preorder);
9771b263 1805 FOR_EACH_VEC_ELT_REVERSE (loop_rev_postorder, i, subloop_node)
058e97ec 1806 (*postorder_func) (subloop_node);
9771b263 1807 loop_rev_postorder.release ();
058e97ec 1808 }
e6a7da82
SB
1809 }
1810
058e97ec
VM
1811 for (subloop_node = loop_node->subloops;
1812 subloop_node != NULL;
1813 subloop_node = subloop_node->subloop_next)
1814 {
1815 ira_assert (subloop_node->bb == NULL);
1816 ira_traverse_loop_tree (bb_p, subloop_node,
1817 preorder_func, postorder_func);
1818 }
1819
1820 ira_curr_loop_tree_node = loop_node;
1821 ira_curr_regno_allocno_map = ira_curr_loop_tree_node->regno_allocno_map;
1822
1823 if (postorder_func != NULL)
1824 (*postorder_func) (loop_node);
1825}
1826
1827\f
1828
1829/* The basic block currently being processed. */
1830static basic_block curr_bb;
1831
1832/* This recursive function creates allocnos corresponding to
1833 pseudo-registers containing in X. True OUTPUT_P means that X is
d1bb282e 1834 an lvalue. PARENT corresponds to the parent expression of X. */
058e97ec 1835static void
d1bb282e 1836create_insn_allocnos (rtx x, rtx outer, bool output_p)
058e97ec
VM
1837{
1838 int i, j;
1839 const char *fmt;
1840 enum rtx_code code = GET_CODE (x);
1841
1842 if (code == REG)
1843 {
1844 int regno;
1845
1846 if ((regno = REGNO (x)) >= FIRST_PSEUDO_REGISTER)
1847 {
1848 ira_allocno_t a;
1849
1850 if ((a = ira_curr_regno_allocno_map[regno]) == NULL)
d1bb282e
DS
1851 {
1852 a = ira_create_allocno (regno, false, ira_curr_loop_tree_node);
1853 if (outer != NULL && GET_CODE (outer) == SUBREG)
1854 {
ef4bddc2 1855 machine_mode wmode = GET_MODE (outer);
bd4288c0 1856 if (partial_subreg_p (ALLOCNO_WMODE (a), wmode))
d1bb282e
DS
1857 ALLOCNO_WMODE (a) = wmode;
1858 }
1859 }
b8698a0f 1860
058e97ec
VM
1861 ALLOCNO_NREFS (a)++;
1862 ALLOCNO_FREQ (a) += REG_FREQ_FROM_BB (curr_bb);
058e97ec
VM
1863 if (output_p)
1864 bitmap_set_bit (ira_curr_loop_tree_node->modified_regnos, regno);
1865 }
1866 return;
1867 }
1868 else if (code == SET)
1869 {
d1bb282e
DS
1870 create_insn_allocnos (SET_DEST (x), NULL, true);
1871 create_insn_allocnos (SET_SRC (x), NULL, false);
058e97ec
VM
1872 return;
1873 }
1874 else if (code == CLOBBER)
1875 {
d1bb282e 1876 create_insn_allocnos (XEXP (x, 0), NULL, true);
058e97ec
VM
1877 return;
1878 }
8df47bdf
AH
1879 else if (code == CLOBBER_HIGH)
1880 {
1881 gcc_assert (REG_P (XEXP (x, 0)) && HARD_REGISTER_P (XEXP (x, 0)));
1882 return;
1883 }
058e97ec
VM
1884 else if (code == MEM)
1885 {
d1bb282e 1886 create_insn_allocnos (XEXP (x, 0), NULL, false);
058e97ec
VM
1887 return;
1888 }
b8698a0f 1889 else if (code == PRE_DEC || code == POST_DEC || code == PRE_INC ||
058e97ec
VM
1890 code == POST_INC || code == POST_MODIFY || code == PRE_MODIFY)
1891 {
d1bb282e
DS
1892 create_insn_allocnos (XEXP (x, 0), NULL, true);
1893 create_insn_allocnos (XEXP (x, 0), NULL, false);
058e97ec
VM
1894 return;
1895 }
1896
1897 fmt = GET_RTX_FORMAT (code);
1898 for (i = GET_RTX_LENGTH (code) - 1; i >= 0; i--)
1899 {
1900 if (fmt[i] == 'e')
d1bb282e 1901 create_insn_allocnos (XEXP (x, i), x, output_p);
058e97ec
VM
1902 else if (fmt[i] == 'E')
1903 for (j = 0; j < XVECLEN (x, i); j++)
d1bb282e 1904 create_insn_allocnos (XVECEXP (x, i, j), x, output_p);
058e97ec
VM
1905 }
1906}
1907
1908/* Create allocnos corresponding to pseudo-registers living in the
1909 basic block represented by the corresponding loop tree node
1910 BB_NODE. */
1911static void
1912create_bb_allocnos (ira_loop_tree_node_t bb_node)
1913{
1914 basic_block bb;
070a1983 1915 rtx_insn *insn;
058e97ec
VM
1916 unsigned int i;
1917 bitmap_iterator bi;
1918
1919 curr_bb = bb = bb_node->bb;
1920 ira_assert (bb != NULL);
acb37d29 1921 FOR_BB_INSNS_REVERSE (bb, insn)
b5b8b0ac 1922 if (NONDEBUG_INSN_P (insn))
d1bb282e 1923 create_insn_allocnos (PATTERN (insn), NULL, false);
058e97ec
VM
1924 /* It might be a allocno living through from one subloop to
1925 another. */
bf744527 1926 EXECUTE_IF_SET_IN_REG_SET (df_get_live_in (bb), FIRST_PSEUDO_REGISTER, i, bi)
058e97ec
VM
1927 if (ira_curr_regno_allocno_map[i] == NULL)
1928 ira_create_allocno (i, false, ira_curr_loop_tree_node);
1929}
1930
1931/* Create allocnos corresponding to pseudo-registers living on edge E
1932 (a loop entry or exit). Also mark the allocnos as living on the
1933 loop border. */
1934static void
1935create_loop_allocnos (edge e)
1936{
1937 unsigned int i;
1938 bitmap live_in_regs, border_allocnos;
1939 bitmap_iterator bi;
1940 ira_loop_tree_node_t parent;
1941
bf744527 1942 live_in_regs = df_get_live_in (e->dest);
058e97ec 1943 border_allocnos = ira_curr_loop_tree_node->border_allocnos;
bf744527 1944 EXECUTE_IF_SET_IN_REG_SET (df_get_live_out (e->src),
058e97ec
VM
1945 FIRST_PSEUDO_REGISTER, i, bi)
1946 if (bitmap_bit_p (live_in_regs, i))
1947 {
1948 if (ira_curr_regno_allocno_map[i] == NULL)
1949 {
1950 /* The order of creations is important for right
1951 ira_regno_allocno_map. */
1952 if ((parent = ira_curr_loop_tree_node->parent) != NULL
1953 && parent->regno_allocno_map[i] == NULL)
1954 ira_create_allocno (i, false, parent);
1955 ira_create_allocno (i, false, ira_curr_loop_tree_node);
1956 }
1957 bitmap_set_bit (border_allocnos,
1958 ALLOCNO_NUM (ira_curr_regno_allocno_map[i]));
1959 }
1960}
1961
1962/* Create allocnos corresponding to pseudo-registers living in loop
1963 represented by the corresponding loop tree node LOOP_NODE. This
1964 function is called by ira_traverse_loop_tree. */
1965static void
1966create_loop_tree_node_allocnos (ira_loop_tree_node_t loop_node)
1967{
1968 if (loop_node->bb != NULL)
1969 create_bb_allocnos (loop_node);
1970 else if (loop_node != ira_loop_tree_root)
1971 {
1972 int i;
1973 edge_iterator ei;
1974 edge e;
9771b263 1975 vec<edge> edges;
058e97ec 1976
2608d841 1977 ira_assert (current_loops != NULL);
058e97ec
VM
1978 FOR_EACH_EDGE (e, ei, loop_node->loop->header->preds)
1979 if (e->src != loop_node->loop->latch)
1980 create_loop_allocnos (e);
b8698a0f 1981
058e97ec 1982 edges = get_loop_exit_edges (loop_node->loop);
9771b263 1983 FOR_EACH_VEC_ELT (edges, i, e)
058e97ec 1984 create_loop_allocnos (e);
9771b263 1985 edges.release ();
058e97ec
VM
1986 }
1987}
1988
1989/* Propagate information about allocnos modified inside the loop given
1990 by its LOOP_TREE_NODE to its parent. */
1991static void
1992propagate_modified_regnos (ira_loop_tree_node_t loop_tree_node)
1993{
1994 if (loop_tree_node == ira_loop_tree_root)
1995 return;
1996 ira_assert (loop_tree_node->bb == NULL);
1997 bitmap_ior_into (loop_tree_node->parent->modified_regnos,
1998 loop_tree_node->modified_regnos);
1999}
2000
2001/* Propagate new info about allocno A (see comments about accumulated
2002 info in allocno definition) to the corresponding allocno on upper
2003 loop tree level. So allocnos on upper levels accumulate
2004 information about the corresponding allocnos in nested regions.
2005 The new info means allocno info finally calculated in this
2006 file. */
2007static void
2008propagate_allocno_info (void)
2009{
2010 int i;
2011 ira_allocno_t a, parent_a;
2012 ira_loop_tree_node_t parent;
1756cb66 2013 enum reg_class aclass;
058e97ec 2014
7db7ed3c
VM
2015 if (flag_ira_region != IRA_REGION_ALL
2016 && flag_ira_region != IRA_REGION_MIXED)
058e97ec
VM
2017 return;
2018 for (i = max_reg_num () - 1; i >= FIRST_PSEUDO_REGISTER; i--)
2019 for (a = ira_regno_allocno_map[i];
2020 a != NULL;
2021 a = ALLOCNO_NEXT_REGNO_ALLOCNO (a))
2022 if ((parent = ALLOCNO_LOOP_TREE_NODE (a)->parent) != NULL
2023 && (parent_a = parent->regno_allocno_map[i]) != NULL
2024 /* There are no caps yet at this point. So use
2025 border_allocnos to find allocnos for the propagation. */
2026 && bitmap_bit_p (ALLOCNO_LOOP_TREE_NODE (a)->border_allocnos,
2027 ALLOCNO_NUM (a)))
2028 {
927425df
VM
2029 if (! ALLOCNO_BAD_SPILL_P (a))
2030 ALLOCNO_BAD_SPILL_P (parent_a) = false;
058e97ec
VM
2031 ALLOCNO_NREFS (parent_a) += ALLOCNO_NREFS (a);
2032 ALLOCNO_FREQ (parent_a) += ALLOCNO_FREQ (a);
2033 ALLOCNO_CALL_FREQ (parent_a) += ALLOCNO_CALL_FREQ (a);
3c55880a 2034 merge_hard_reg_conflicts (a, parent_a, true);
058e97ec
VM
2035 ALLOCNO_CALLS_CROSSED_NUM (parent_a)
2036 += ALLOCNO_CALLS_CROSSED_NUM (a);
e384e6b5
BS
2037 ALLOCNO_CHEAP_CALLS_CROSSED_NUM (parent_a)
2038 += ALLOCNO_CHEAP_CALLS_CROSSED_NUM (a);
c2ba7e7a
RO
2039 IOR_HARD_REG_SET (ALLOCNO_CROSSED_CALLS_CLOBBERED_REGS (parent_a),
2040 ALLOCNO_CROSSED_CALLS_CLOBBERED_REGS (a));
058e97ec
VM
2041 ALLOCNO_EXCESS_PRESSURE_POINTS_NUM (parent_a)
2042 += ALLOCNO_EXCESS_PRESSURE_POINTS_NUM (a);
1756cb66
VM
2043 aclass = ALLOCNO_CLASS (a);
2044 ira_assert (aclass == ALLOCNO_CLASS (parent_a));
058e97ec 2045 ira_allocate_and_accumulate_costs
1756cb66 2046 (&ALLOCNO_HARD_REG_COSTS (parent_a), aclass,
058e97ec
VM
2047 ALLOCNO_HARD_REG_COSTS (a));
2048 ira_allocate_and_accumulate_costs
2049 (&ALLOCNO_CONFLICT_HARD_REG_COSTS (parent_a),
1756cb66 2050 aclass,
058e97ec 2051 ALLOCNO_CONFLICT_HARD_REG_COSTS (a));
1756cb66
VM
2052 ALLOCNO_CLASS_COST (parent_a)
2053 += ALLOCNO_CLASS_COST (a);
058e97ec 2054 ALLOCNO_MEMORY_COST (parent_a) += ALLOCNO_MEMORY_COST (a);
058e97ec
VM
2055 }
2056}
2057
2058/* Create allocnos corresponding to pseudo-registers in the current
2059 function. Traverse the loop tree for this. */
2060static void
2061create_allocnos (void)
2062{
2063 /* We need to process BB first to correctly link allocnos by member
2064 next_regno_allocno. */
2065 ira_traverse_loop_tree (true, ira_loop_tree_root,
2066 create_loop_tree_node_allocnos, NULL);
2067 if (optimize)
2068 ira_traverse_loop_tree (false, ira_loop_tree_root, NULL,
2069 propagate_modified_regnos);
2070}
2071
2072\f
2073
2074/* The page contains function to remove some regions from a separate
2075 register allocation. We remove regions whose separate allocation
2076 will hardly improve the result. As a result we speed up regional
2077 register allocation. */
2078
9140d27b 2079/* The function changes the object in range list given by R to OBJ. */
058e97ec 2080static void
9140d27b 2081change_object_in_range_list (live_range_t r, ira_object_t obj)
058e97ec
VM
2082{
2083 for (; r != NULL; r = r->next)
9140d27b 2084 r->object = obj;
058e97ec
VM
2085}
2086
3c55880a
BS
2087/* Move all live ranges associated with allocno FROM to allocno TO. */
2088static void
2089move_allocno_live_ranges (ira_allocno_t from, ira_allocno_t to)
2090{
ac0ab4f7
BS
2091 int i;
2092 int n = ALLOCNO_NUM_OBJECTS (from);
2093
2094 gcc_assert (n == ALLOCNO_NUM_OBJECTS (to));
3c55880a 2095
ac0ab4f7 2096 for (i = 0; i < n; i++)
3c55880a 2097 {
ac0ab4f7
BS
2098 ira_object_t from_obj = ALLOCNO_OBJECT (from, i);
2099 ira_object_t to_obj = ALLOCNO_OBJECT (to, i);
2100 live_range_t lr = OBJECT_LIVE_RANGES (from_obj);
2101
2102 if (internal_flag_ira_verbose > 4 && ira_dump_file != NULL)
2103 {
2104 fprintf (ira_dump_file,
2105 " Moving ranges of a%dr%d to a%dr%d: ",
2106 ALLOCNO_NUM (from), ALLOCNO_REGNO (from),
2107 ALLOCNO_NUM (to), ALLOCNO_REGNO (to));
2108 ira_print_live_range_list (ira_dump_file, lr);
2109 }
2110 change_object_in_range_list (lr, to_obj);
2111 OBJECT_LIVE_RANGES (to_obj)
2112 = ira_merge_live_ranges (lr, OBJECT_LIVE_RANGES (to_obj));
2113 OBJECT_LIVE_RANGES (from_obj) = NULL;
3c55880a 2114 }
3c55880a
BS
2115}
2116
3c55880a
BS
2117static void
2118copy_allocno_live_ranges (ira_allocno_t from, ira_allocno_t to)
2119{
ac0ab4f7
BS
2120 int i;
2121 int n = ALLOCNO_NUM_OBJECTS (from);
3c55880a 2122
ac0ab4f7
BS
2123 gcc_assert (n == ALLOCNO_NUM_OBJECTS (to));
2124
2125 for (i = 0; i < n; i++)
3c55880a 2126 {
ac0ab4f7
BS
2127 ira_object_t from_obj = ALLOCNO_OBJECT (from, i);
2128 ira_object_t to_obj = ALLOCNO_OBJECT (to, i);
2129 live_range_t lr = OBJECT_LIVE_RANGES (from_obj);
2130
2131 if (internal_flag_ira_verbose > 4 && ira_dump_file != NULL)
2132 {
2133 fprintf (ira_dump_file, " Copying ranges of a%dr%d to a%dr%d: ",
2134 ALLOCNO_NUM (from), ALLOCNO_REGNO (from),
2135 ALLOCNO_NUM (to), ALLOCNO_REGNO (to));
2136 ira_print_live_range_list (ira_dump_file, lr);
2137 }
2138 lr = ira_copy_live_range_list (lr);
2139 change_object_in_range_list (lr, to_obj);
2140 OBJECT_LIVE_RANGES (to_obj)
2141 = ira_merge_live_ranges (lr, OBJECT_LIVE_RANGES (to_obj));
3c55880a 2142 }
3c55880a
BS
2143}
2144
058e97ec
VM
2145/* Return TRUE if NODE represents a loop with low register
2146 pressure. */
2147static bool
2148low_pressure_loop_node_p (ira_loop_tree_node_t node)
2149{
2150 int i;
1756cb66 2151 enum reg_class pclass;
b8698a0f 2152
058e97ec
VM
2153 if (node->bb != NULL)
2154 return false;
b8698a0f 2155
1756cb66 2156 for (i = 0; i < ira_pressure_classes_num; i++)
058e97ec 2157 {
1756cb66 2158 pclass = ira_pressure_classes[i];
f508f827
RS
2159 if (node->reg_pressure[pclass] > ira_class_hard_regs_num[pclass]
2160 && ira_class_hard_regs_num[pclass] > 1)
058e97ec
VM
2161 return false;
2162 }
2163 return true;
2164}
2165
30a435d8
VM
2166#ifdef STACK_REGS
2167/* Return TRUE if LOOP has a complex enter or exit edge. We don't
2168 form a region from such loop if the target use stack register
2169 because reg-stack.c can not deal with such edges. */
8c5fdaae 2170static bool
30a435d8 2171loop_with_complex_edge_p (struct loop *loop)
8c5fdaae
VM
2172{
2173 int i;
2174 edge_iterator ei;
2175 edge e;
9771b263 2176 vec<edge> edges;
f5843d08 2177 bool res;
8c5fdaae
VM
2178
2179 FOR_EACH_EDGE (e, ei, loop->header->preds)
2180 if (e->flags & EDGE_EH)
2181 return true;
2182 edges = get_loop_exit_edges (loop);
f5843d08 2183 res = false;
9771b263 2184 FOR_EACH_VEC_ELT (edges, i, e)
30a435d8 2185 if (e->flags & EDGE_COMPLEX)
f5843d08
RG
2186 {
2187 res = true;
2188 break;
2189 }
9771b263 2190 edges.release ();
f5843d08 2191 return res;
8c5fdaae 2192}
30a435d8 2193#endif
8c5fdaae 2194
30ea859e
VM
2195/* Sort loops for marking them for removal. We put already marked
2196 loops first, then less frequent loops next, and then outer loops
2197 next. */
2198static int
2199loop_compare_func (const void *v1p, const void *v2p)
2200{
2201 int diff;
2202 ira_loop_tree_node_t l1 = *(const ira_loop_tree_node_t *) v1p;
2203 ira_loop_tree_node_t l2 = *(const ira_loop_tree_node_t *) v2p;
2204
2205 ira_assert (l1->parent != NULL && l2->parent != NULL);
2206 if (l1->to_remove_p && ! l2->to_remove_p)
2207 return -1;
2208 if (! l1->to_remove_p && l2->to_remove_p)
2209 return 1;
e7a74006
JH
2210 if ((diff = l1->loop->header->count.to_frequency (cfun)
2211 - l2->loop->header->count.to_frequency (cfun)) != 0)
30ea859e
VM
2212 return diff;
2213 if ((diff = (int) loop_depth (l1->loop) - (int) loop_depth (l2->loop)) != 0)
2214 return diff;
2215 /* Make sorting stable. */
2608d841 2216 return l1->loop_num - l2->loop_num;
30ea859e
VM
2217}
2218
30ea859e
VM
2219/* Mark loops which should be removed from regional allocation. We
2220 remove a loop with low register pressure inside another loop with
2221 register pressure. In this case a separate allocation of the loop
2222 hardly helps (for irregular register file architecture it could
2223 help by choosing a better hard register in the loop but we prefer
2224 faster allocation even in this case). We also remove cheap loops
8c5fdaae
VM
2225 if there are more than IRA_MAX_LOOPS_NUM of them. Loop with EH
2226 exit or enter edges are removed too because the allocation might
2227 require put pseudo moves on the EH edges (we could still do this
2228 for pseudos with caller saved hard registers in some cases but it
2229 is impossible to say here or during top-down allocation pass what
2230 hard register the pseudos get finally). */
30ea859e
VM
2231static void
2232mark_loops_for_removal (void)
058e97ec 2233{
30ea859e
VM
2234 int i, n;
2235 ira_loop_tree_node_t *sorted_loops;
2236 loop_p loop;
2237
2608d841 2238 ira_assert (current_loops != NULL);
30ea859e
VM
2239 sorted_loops
2240 = (ira_loop_tree_node_t *) ira_allocate (sizeof (ira_loop_tree_node_t)
0fc822d0
RB
2241 * number_of_loops (cfun));
2242 for (n = i = 0; vec_safe_iterate (get_loops (cfun), i, &loop); i++)
30ea859e
VM
2243 if (ira_loop_nodes[i].regno_allocno_map != NULL)
2244 {
2245 if (ira_loop_nodes[i].parent == NULL)
2246 {
2247 /* Don't remove the root. */
2248 ira_loop_nodes[i].to_remove_p = false;
2249 continue;
2250 }
2251 sorted_loops[n++] = &ira_loop_nodes[i];
2252 ira_loop_nodes[i].to_remove_p
8c5fdaae
VM
2253 = ((low_pressure_loop_node_p (ira_loop_nodes[i].parent)
2254 && low_pressure_loop_node_p (&ira_loop_nodes[i]))
30a435d8
VM
2255#ifdef STACK_REGS
2256 || loop_with_complex_edge_p (ira_loop_nodes[i].loop)
2257#endif
2258 );
30ea859e
VM
2259 }
2260 qsort (sorted_loops, n, sizeof (ira_loop_tree_node_t), loop_compare_func);
5548d9cd 2261 for (i = 0; i < n - IRA_MAX_LOOPS_NUM; i++)
30ea859e
VM
2262 {
2263 sorted_loops[i]->to_remove_p = true;
2264 if (internal_flag_ira_verbose > 1 && ira_dump_file != NULL)
2265 fprintf
2266 (ira_dump_file,
2267 " Mark loop %d (header %d, freq %d, depth %d) for removal (%s)\n",
2608d841 2268 sorted_loops[i]->loop_num, sorted_loops[i]->loop->header->index,
e7a74006 2269 sorted_loops[i]->loop->header->count.to_frequency (cfun),
30ea859e
VM
2270 loop_depth (sorted_loops[i]->loop),
2271 low_pressure_loop_node_p (sorted_loops[i]->parent)
2272 && low_pressure_loop_node_p (sorted_loops[i])
2273 ? "low pressure" : "cheap loop");
2274 }
2275 ira_free (sorted_loops);
058e97ec
VM
2276}
2277
311aab06
VM
2278/* Mark all loops but root for removing. */
2279static void
2280mark_all_loops_for_removal (void)
2281{
2282 int i;
2283 loop_p loop;
2284
2608d841 2285 ira_assert (current_loops != NULL);
0fc822d0 2286 FOR_EACH_VEC_SAFE_ELT (get_loops (cfun), i, loop)
311aab06
VM
2287 if (ira_loop_nodes[i].regno_allocno_map != NULL)
2288 {
2289 if (ira_loop_nodes[i].parent == NULL)
2290 {
2291 /* Don't remove the root. */
2292 ira_loop_nodes[i].to_remove_p = false;
2293 continue;
2294 }
2295 ira_loop_nodes[i].to_remove_p = true;
2296 if (internal_flag_ira_verbose > 1 && ira_dump_file != NULL)
2297 fprintf
2298 (ira_dump_file,
2299 " Mark loop %d (header %d, freq %d, depth %d) for removal\n",
2608d841 2300 ira_loop_nodes[i].loop_num,
311aab06 2301 ira_loop_nodes[i].loop->header->index,
e7a74006 2302 ira_loop_nodes[i].loop->header->count.to_frequency (cfun),
311aab06
VM
2303 loop_depth (ira_loop_nodes[i].loop));
2304 }
2305}
30ea859e 2306
058e97ec 2307/* Definition of vector of loop tree nodes. */
058e97ec
VM
2308
2309/* Vec containing references to all removed loop tree nodes. */
9771b263 2310static vec<ira_loop_tree_node_t> removed_loop_vec;
058e97ec
VM
2311
2312/* Vec containing references to all children of loop tree nodes. */
9771b263 2313static vec<ira_loop_tree_node_t> children_vec;
058e97ec
VM
2314
2315/* Remove subregions of NODE if their separate allocation will not
2316 improve the result. */
2317static void
2318remove_uneccesary_loop_nodes_from_loop_tree (ira_loop_tree_node_t node)
2319{
2320 unsigned int start;
2321 bool remove_p;
2322 ira_loop_tree_node_t subnode;
2323
30ea859e 2324 remove_p = node->to_remove_p;
058e97ec 2325 if (! remove_p)
9771b263
DN
2326 children_vec.safe_push (node);
2327 start = children_vec.length ();
058e97ec
VM
2328 for (subnode = node->children; subnode != NULL; subnode = subnode->next)
2329 if (subnode->bb == NULL)
2330 remove_uneccesary_loop_nodes_from_loop_tree (subnode);
2331 else
9771b263 2332 children_vec.safe_push (subnode);
058e97ec
VM
2333 node->children = node->subloops = NULL;
2334 if (remove_p)
2335 {
9771b263 2336 removed_loop_vec.safe_push (node);
058e97ec
VM
2337 return;
2338 }
9771b263 2339 while (children_vec.length () > start)
058e97ec 2340 {
9771b263 2341 subnode = children_vec.pop ();
058e97ec
VM
2342 subnode->parent = node;
2343 subnode->next = node->children;
2344 node->children = subnode;
2345 if (subnode->bb == NULL)
2346 {
2347 subnode->subloop_next = node->subloops;
2348 node->subloops = subnode;
2349 }
2350 }
2351}
2352
c6bb4c93
VM
2353/* Return TRUE if NODE is inside PARENT. */
2354static bool
2355loop_is_inside_p (ira_loop_tree_node_t node, ira_loop_tree_node_t parent)
2356{
2357 for (node = node->parent; node != NULL; node = node->parent)
2358 if (node == parent)
2359 return true;
2360 return false;
2361}
2362
2363/* Sort allocnos according to their order in regno allocno list. */
2364static int
2365regno_allocno_order_compare_func (const void *v1p, const void *v2p)
2366{
2367 ira_allocno_t a1 = *(const ira_allocno_t *) v1p;
2368 ira_allocno_t a2 = *(const ira_allocno_t *) v2p;
2369 ira_loop_tree_node_t n1 = ALLOCNO_LOOP_TREE_NODE (a1);
2370 ira_loop_tree_node_t n2 = ALLOCNO_LOOP_TREE_NODE (a2);
2371
2372 if (loop_is_inside_p (n1, n2))
2373 return -1;
2374 else if (loop_is_inside_p (n2, n1))
2375 return 1;
2376 /* If allocnos are equally good, sort by allocno numbers, so that
2377 the results of qsort leave nothing to chance. We put allocnos
2378 with higher number first in the list because it is the original
2379 order for allocnos from loops on the same levels. */
2380 return ALLOCNO_NUM (a2) - ALLOCNO_NUM (a1);
2381}
2382
2383/* This array is used to sort allocnos to restore allocno order in
2384 the regno allocno list. */
2385static ira_allocno_t *regno_allocnos;
2386
2387/* Restore allocno order for REGNO in the regno allocno list. */
2388static void
2389ira_rebuild_regno_allocno_list (int regno)
2390{
2391 int i, n;
2392 ira_allocno_t a;
2393
2394 for (n = 0, a = ira_regno_allocno_map[regno];
2395 a != NULL;
2396 a = ALLOCNO_NEXT_REGNO_ALLOCNO (a))
2397 regno_allocnos[n++] = a;
2398 ira_assert (n > 0);
b8698a0f 2399 qsort (regno_allocnos, n, sizeof (ira_allocno_t),
c6bb4c93
VM
2400 regno_allocno_order_compare_func);
2401 for (i = 1; i < n; i++)
2402 ALLOCNO_NEXT_REGNO_ALLOCNO (regno_allocnos[i - 1]) = regno_allocnos[i];
2403 ALLOCNO_NEXT_REGNO_ALLOCNO (regno_allocnos[n - 1]) = NULL;
2404 ira_regno_allocno_map[regno] = regno_allocnos[0];
2405 if (internal_flag_ira_verbose > 1 && ira_dump_file != NULL)
2406 fprintf (ira_dump_file, " Rebuilding regno allocno list for %d\n", regno);
2407}
2408
311aab06
VM
2409/* Propagate info from allocno FROM_A to allocno A. */
2410static void
2411propagate_some_info_from_allocno (ira_allocno_t a, ira_allocno_t from_a)
2412{
1756cb66 2413 enum reg_class aclass;
311aab06 2414
3c55880a 2415 merge_hard_reg_conflicts (from_a, a, false);
311aab06
VM
2416 ALLOCNO_NREFS (a) += ALLOCNO_NREFS (from_a);
2417 ALLOCNO_FREQ (a) += ALLOCNO_FREQ (from_a);
2418 ALLOCNO_CALL_FREQ (a) += ALLOCNO_CALL_FREQ (from_a);
311aab06 2419 ALLOCNO_CALLS_CROSSED_NUM (a) += ALLOCNO_CALLS_CROSSED_NUM (from_a);
e384e6b5
BS
2420 ALLOCNO_CHEAP_CALLS_CROSSED_NUM (a)
2421 += ALLOCNO_CHEAP_CALLS_CROSSED_NUM (from_a);
c2ba7e7a
RO
2422 IOR_HARD_REG_SET (ALLOCNO_CROSSED_CALLS_CLOBBERED_REGS (a),
2423 ALLOCNO_CROSSED_CALLS_CLOBBERED_REGS (from_a));
2424
311aab06
VM
2425 ALLOCNO_EXCESS_PRESSURE_POINTS_NUM (a)
2426 += ALLOCNO_EXCESS_PRESSURE_POINTS_NUM (from_a);
2427 if (! ALLOCNO_BAD_SPILL_P (from_a))
2428 ALLOCNO_BAD_SPILL_P (a) = false;
1756cb66
VM
2429 aclass = ALLOCNO_CLASS (from_a);
2430 ira_assert (aclass == ALLOCNO_CLASS (a));
2431 ira_allocate_and_accumulate_costs (&ALLOCNO_HARD_REG_COSTS (a), aclass,
311aab06
VM
2432 ALLOCNO_HARD_REG_COSTS (from_a));
2433 ira_allocate_and_accumulate_costs (&ALLOCNO_CONFLICT_HARD_REG_COSTS (a),
1756cb66 2434 aclass,
311aab06 2435 ALLOCNO_CONFLICT_HARD_REG_COSTS (from_a));
1756cb66 2436 ALLOCNO_CLASS_COST (a) += ALLOCNO_CLASS_COST (from_a);
311aab06
VM
2437 ALLOCNO_MEMORY_COST (a) += ALLOCNO_MEMORY_COST (from_a);
2438}
2439
058e97ec
VM
2440/* Remove allocnos from loops removed from the allocation
2441 consideration. */
2442static void
2443remove_unnecessary_allocnos (void)
2444{
2445 int regno;
c6bb4c93 2446 bool merged_p, rebuild_p;
058e97ec
VM
2447 ira_allocno_t a, prev_a, next_a, parent_a;
2448 ira_loop_tree_node_t a_node, parent;
058e97ec
VM
2449
2450 merged_p = false;
c6bb4c93 2451 regno_allocnos = NULL;
058e97ec 2452 for (regno = max_reg_num () - 1; regno >= FIRST_PSEUDO_REGISTER; regno--)
c6bb4c93
VM
2453 {
2454 rebuild_p = false;
2455 for (prev_a = NULL, a = ira_regno_allocno_map[regno];
2456 a != NULL;
2457 a = next_a)
2458 {
2459 next_a = ALLOCNO_NEXT_REGNO_ALLOCNO (a);
2460 a_node = ALLOCNO_LOOP_TREE_NODE (a);
2461 if (! a_node->to_remove_p)
2462 prev_a = a;
2463 else
2464 {
2465 for (parent = a_node->parent;
2466 (parent_a = parent->regno_allocno_map[regno]) == NULL
2467 && parent->to_remove_p;
2468 parent = parent->parent)
2469 ;
2470 if (parent_a == NULL)
2471 {
311aab06
VM
2472 /* There are no allocnos with the same regno in
2473 upper region -- just move the allocno to the
2474 upper region. */
c6bb4c93
VM
2475 prev_a = a;
2476 ALLOCNO_LOOP_TREE_NODE (a) = parent;
2477 parent->regno_allocno_map[regno] = a;
2478 bitmap_set_bit (parent->all_allocnos, ALLOCNO_NUM (a));
2479 rebuild_p = true;
2480 }
2481 else
2482 {
2483 /* Remove the allocno and update info of allocno in
2484 the upper region. */
2485 if (prev_a == NULL)
2486 ira_regno_allocno_map[regno] = next_a;
2487 else
2488 ALLOCNO_NEXT_REGNO_ALLOCNO (prev_a) = next_a;
3c55880a 2489 move_allocno_live_ranges (a, parent_a);
c6bb4c93 2490 merged_p = true;
311aab06 2491 propagate_some_info_from_allocno (parent_a, a);
46044dd9
L
2492 /* Remove it from the corresponding regno allocno
2493 map to avoid info propagation of subsequent
2494 allocno into this already removed allocno. */
2495 a_node->regno_allocno_map[regno] = NULL;
3b6d1699 2496 ira_remove_allocno_prefs (a);
c6bb4c93
VM
2497 finish_allocno (a);
2498 }
2499 }
2500 }
2501 if (rebuild_p)
2502 /* We need to restore the order in regno allocno list. */
2503 {
2504 if (regno_allocnos == NULL)
2505 regno_allocnos
2506 = (ira_allocno_t *) ira_allocate (sizeof (ira_allocno_t)
2507 * ira_allocnos_num);
2508 ira_rebuild_regno_allocno_list (regno);
2509 }
2510 }
058e97ec
VM
2511 if (merged_p)
2512 ira_rebuild_start_finish_chains ();
c6bb4c93
VM
2513 if (regno_allocnos != NULL)
2514 ira_free (regno_allocnos);
058e97ec
VM
2515}
2516
311aab06 2517/* Remove allocnos from all loops but the root. */
058e97ec 2518static void
311aab06 2519remove_low_level_allocnos (void)
058e97ec 2520{
311aab06
VM
2521 int regno;
2522 bool merged_p, propagate_p;
2523 ira_allocno_t a, top_a;
2524 ira_loop_tree_node_t a_node, parent;
311aab06
VM
2525 ira_allocno_iterator ai;
2526
2527 merged_p = false;
2528 FOR_EACH_ALLOCNO (a, ai)
2529 {
2530 a_node = ALLOCNO_LOOP_TREE_NODE (a);
2531 if (a_node == ira_loop_tree_root || ALLOCNO_CAP_MEMBER (a) != NULL)
2532 continue;
2533 regno = ALLOCNO_REGNO (a);
2534 if ((top_a = ira_loop_tree_root->regno_allocno_map[regno]) == NULL)
2535 {
2536 ALLOCNO_LOOP_TREE_NODE (a) = ira_loop_tree_root;
2537 ira_loop_tree_root->regno_allocno_map[regno] = a;
2538 continue;
2539 }
2540 propagate_p = a_node->parent->regno_allocno_map[regno] == NULL;
2541 /* Remove the allocno and update info of allocno in the upper
2542 region. */
3c55880a 2543 move_allocno_live_ranges (a, top_a);
311aab06 2544 merged_p = true;
311aab06
VM
2545 if (propagate_p)
2546 propagate_some_info_from_allocno (top_a, a);
2547 }
2548 FOR_EACH_ALLOCNO (a, ai)
2549 {
2550 a_node = ALLOCNO_LOOP_TREE_NODE (a);
2551 if (a_node == ira_loop_tree_root)
2552 continue;
2553 parent = a_node->parent;
2554 regno = ALLOCNO_REGNO (a);
2555 if (ALLOCNO_CAP_MEMBER (a) != NULL)
2556 ira_assert (ALLOCNO_CAP (a) != NULL);
2557 else if (ALLOCNO_CAP (a) == NULL)
2558 ira_assert (parent->regno_allocno_map[regno] != NULL);
2559 }
2560 FOR_EACH_ALLOCNO (a, ai)
2561 {
2562 regno = ALLOCNO_REGNO (a);
2563 if (ira_loop_tree_root->regno_allocno_map[regno] == a)
2564 {
ac0ab4f7
BS
2565 ira_object_t obj;
2566 ira_allocno_object_iterator oi;
a49ae217 2567
311aab06
VM
2568 ira_regno_allocno_map[regno] = a;
2569 ALLOCNO_NEXT_REGNO_ALLOCNO (a) = NULL;
2570 ALLOCNO_CAP_MEMBER (a) = NULL;
ac0ab4f7
BS
2571 FOR_EACH_ALLOCNO_OBJECT (a, obj, oi)
2572 COPY_HARD_REG_SET (OBJECT_CONFLICT_HARD_REGS (obj),
2573 OBJECT_TOTAL_CONFLICT_HARD_REGS (obj));
311aab06
VM
2574#ifdef STACK_REGS
2575 if (ALLOCNO_TOTAL_NO_STACK_REG_P (a))
2576 ALLOCNO_NO_STACK_REG_P (a) = true;
2577#endif
2578 }
2579 else
3b6d1699
VM
2580 {
2581 ira_remove_allocno_prefs (a);
2582 finish_allocno (a);
2583 }
311aab06
VM
2584 }
2585 if (merged_p)
2586 ira_rebuild_start_finish_chains ();
2587}
2588
2589/* Remove loops from consideration. We remove all loops except for
2590 root if ALL_P or loops for which a separate allocation will not
2591 improve the result. We have to do this after allocno creation and
1756cb66
VM
2592 their costs and allocno class evaluation because only after that
2593 the register pressure can be known and is calculated. */
311aab06
VM
2594static void
2595remove_unnecessary_regions (bool all_p)
2596{
2608d841
VM
2597 if (current_loops == NULL)
2598 return;
311aab06
VM
2599 if (all_p)
2600 mark_all_loops_for_removal ();
2601 else
2602 mark_loops_for_removal ();
8b1c6fd7
DM
2603 children_vec.create (last_basic_block_for_fn (cfun)
2604 + number_of_loops (cfun));
2605 removed_loop_vec.create (last_basic_block_for_fn (cfun)
2606 + number_of_loops (cfun));
9771b263
DN
2607 remove_uneccesary_loop_nodes_from_loop_tree (ira_loop_tree_root);
2608 children_vec.release ();
311aab06
VM
2609 if (all_p)
2610 remove_low_level_allocnos ();
2611 else
2612 remove_unnecessary_allocnos ();
9771b263
DN
2613 while (removed_loop_vec.length () > 0)
2614 finish_loop_tree_node (removed_loop_vec.pop ());
2615 removed_loop_vec.release ();
058e97ec
VM
2616}
2617
2618\f
2619
927425df
VM
2620/* At this point true value of allocno attribute bad_spill_p means
2621 that there is an insn where allocno occurs and where the allocno
2622 can not be used as memory. The function updates the attribute, now
2623 it can be true only for allocnos which can not be used as memory in
2624 an insn and in whose live ranges there is other allocno deaths.
2625 Spilling allocnos with true value will not improve the code because
2626 it will not make other allocnos colorable and additional reloads
2627 for the corresponding pseudo will be generated in reload pass for
2628 each insn it occurs.
2629
2630 This is a trick mentioned in one classic article of Chaitin etc
2631 which is frequently omitted in other implementations of RA based on
2632 graph coloring. */
2633static void
2634update_bad_spill_attribute (void)
2635{
2636 int i;
2637 ira_allocno_t a;
2638 ira_allocno_iterator ai;
ac0ab4f7
BS
2639 ira_allocno_object_iterator aoi;
2640 ira_object_t obj;
b14151b5 2641 live_range_t r;
1756cb66 2642 enum reg_class aclass;
927425df
VM
2643 bitmap_head dead_points[N_REG_CLASSES];
2644
1756cb66 2645 for (i = 0; i < ira_allocno_classes_num; i++)
927425df 2646 {
1756cb66
VM
2647 aclass = ira_allocno_classes[i];
2648 bitmap_initialize (&dead_points[aclass], &reg_obstack);
927425df
VM
2649 }
2650 FOR_EACH_ALLOCNO (a, ai)
2651 {
1756cb66
VM
2652 aclass = ALLOCNO_CLASS (a);
2653 if (aclass == NO_REGS)
927425df 2654 continue;
ac0ab4f7
BS
2655 FOR_EACH_ALLOCNO_OBJECT (a, obj, aoi)
2656 for (r = OBJECT_LIVE_RANGES (obj); r != NULL; r = r->next)
1756cb66 2657 bitmap_set_bit (&dead_points[aclass], r->finish);
927425df
VM
2658 }
2659 FOR_EACH_ALLOCNO (a, ai)
2660 {
1756cb66
VM
2661 aclass = ALLOCNO_CLASS (a);
2662 if (aclass == NO_REGS)
927425df
VM
2663 continue;
2664 if (! ALLOCNO_BAD_SPILL_P (a))
2665 continue;
ac0ab4f7 2666 FOR_EACH_ALLOCNO_OBJECT (a, obj, aoi)
927425df 2667 {
ac0ab4f7
BS
2668 for (r = OBJECT_LIVE_RANGES (obj); r != NULL; r = r->next)
2669 {
2670 for (i = r->start + 1; i < r->finish; i++)
1756cb66 2671 if (bitmap_bit_p (&dead_points[aclass], i))
ac0ab4f7
BS
2672 break;
2673 if (i < r->finish)
2674 break;
2675 }
2676 if (r != NULL)
2677 {
2678 ALLOCNO_BAD_SPILL_P (a) = false;
927425df 2679 break;
ac0ab4f7 2680 }
927425df 2681 }
927425df 2682 }
1756cb66 2683 for (i = 0; i < ira_allocno_classes_num; i++)
927425df 2684 {
1756cb66
VM
2685 aclass = ira_allocno_classes[i];
2686 bitmap_clear (&dead_points[aclass]);
927425df
VM
2687 }
2688}
2689
2690\f
2691
058e97ec
VM
2692/* Set up minimal and maximal live range points for allocnos. */
2693static void
2694setup_min_max_allocno_live_range_point (void)
2695{
2696 int i;
2697 ira_allocno_t a, parent_a, cap;
2698 ira_allocno_iterator ai;
ac0ab4f7
BS
2699#ifdef ENABLE_IRA_CHECKING
2700 ira_object_iterator oi;
2701 ira_object_t obj;
2702#endif
b14151b5 2703 live_range_t r;
058e97ec
VM
2704 ira_loop_tree_node_t parent;
2705
2706 FOR_EACH_ALLOCNO (a, ai)
2707 {
ac0ab4f7 2708 int n = ALLOCNO_NUM_OBJECTS (a);
1756cb66 2709
ac0ab4f7
BS
2710 for (i = 0; i < n; i++)
2711 {
2712 ira_object_t obj = ALLOCNO_OBJECT (a, i);
2713 r = OBJECT_LIVE_RANGES (obj);
2714 if (r == NULL)
2715 continue;
2716 OBJECT_MAX (obj) = r->finish;
2717 for (; r->next != NULL; r = r->next)
2718 ;
2719 OBJECT_MIN (obj) = r->start;
2720 }
058e97ec
VM
2721 }
2722 for (i = max_reg_num () - 1; i >= FIRST_PSEUDO_REGISTER; i--)
2723 for (a = ira_regno_allocno_map[i];
2724 a != NULL;
2725 a = ALLOCNO_NEXT_REGNO_ALLOCNO (a))
2726 {
ac0ab4f7
BS
2727 int j;
2728 int n = ALLOCNO_NUM_OBJECTS (a);
1756cb66 2729
ac0ab4f7 2730 for (j = 0; j < n; j++)
058e97ec 2731 {
ac0ab4f7
BS
2732 ira_object_t obj = ALLOCNO_OBJECT (a, j);
2733 ira_object_t parent_obj;
2734
2735 if (OBJECT_MAX (obj) < 0)
ffd464df
VM
2736 {
2737 /* The object is not used and hence does not live. */
2738 ira_assert (OBJECT_LIVE_RANGES (obj) == NULL);
2739 OBJECT_MAX (obj) = 0;
2740 OBJECT_MIN (obj) = 1;
2741 continue;
2742 }
ac0ab4f7
BS
2743 ira_assert (ALLOCNO_CAP_MEMBER (a) == NULL);
2744 /* Accumulation of range info. */
2745 if (ALLOCNO_CAP (a) != NULL)
058e97ec 2746 {
ac0ab4f7
BS
2747 for (cap = ALLOCNO_CAP (a); cap != NULL; cap = ALLOCNO_CAP (cap))
2748 {
2749 ira_object_t cap_obj = ALLOCNO_OBJECT (cap, j);
2750 if (OBJECT_MAX (cap_obj) < OBJECT_MAX (obj))
2751 OBJECT_MAX (cap_obj) = OBJECT_MAX (obj);
2752 if (OBJECT_MIN (cap_obj) > OBJECT_MIN (obj))
2753 OBJECT_MIN (cap_obj) = OBJECT_MIN (obj);
2754 }
2755 continue;
058e97ec 2756 }
ac0ab4f7
BS
2757 if ((parent = ALLOCNO_LOOP_TREE_NODE (a)->parent) == NULL)
2758 continue;
2759 parent_a = parent->regno_allocno_map[i];
2760 parent_obj = ALLOCNO_OBJECT (parent_a, j);
2761 if (OBJECT_MAX (parent_obj) < OBJECT_MAX (obj))
2762 OBJECT_MAX (parent_obj) = OBJECT_MAX (obj);
2763 if (OBJECT_MIN (parent_obj) > OBJECT_MIN (obj))
2764 OBJECT_MIN (parent_obj) = OBJECT_MIN (obj);
058e97ec 2765 }
058e97ec
VM
2766 }
2767#ifdef ENABLE_IRA_CHECKING
ac0ab4f7 2768 FOR_EACH_OBJECT (obj, oi)
058e97ec 2769 {
01512446
JJ
2770 if ((OBJECT_MIN (obj) >= 0 && OBJECT_MIN (obj) <= ira_max_point)
2771 && (OBJECT_MAX (obj) >= 0 && OBJECT_MAX (obj) <= ira_max_point))
058e97ec
VM
2772 continue;
2773 gcc_unreachable ();
2774 }
2775#endif
2776}
2777
2778/* Sort allocnos according to their live ranges. Allocnos with
1756cb66
VM
2779 smaller allocno class are put first unless we use priority
2780 coloring. Allocnos with the same class are ordered according
2781 their start (min). Allocnos with the same start are ordered
2782 according their finish (max). */
058e97ec 2783static int
ac0ab4f7 2784object_range_compare_func (const void *v1p, const void *v2p)
058e97ec
VM
2785{
2786 int diff;
a49ae217
BS
2787 ira_object_t obj1 = *(const ira_object_t *) v1p;
2788 ira_object_t obj2 = *(const ira_object_t *) v2p;
2789 ira_allocno_t a1 = OBJECT_ALLOCNO (obj1);
2790 ira_allocno_t a2 = OBJECT_ALLOCNO (obj2);
058e97ec 2791
a49ae217 2792 if ((diff = OBJECT_MIN (obj1) - OBJECT_MIN (obj2)) != 0)
058e97ec 2793 return diff;
a49ae217 2794 if ((diff = OBJECT_MAX (obj1) - OBJECT_MAX (obj2)) != 0)
058e97ec
VM
2795 return diff;
2796 return ALLOCNO_NUM (a1) - ALLOCNO_NUM (a2);
2797}
2798
a49ae217 2799/* Sort ira_object_id_map and set up conflict id of allocnos. */
058e97ec 2800static void
a49ae217 2801sort_conflict_id_map (void)
058e97ec
VM
2802{
2803 int i, num;
2804 ira_allocno_t a;
2805 ira_allocno_iterator ai;
2806
2807 num = 0;
2808 FOR_EACH_ALLOCNO (a, ai)
ac0ab4f7
BS
2809 {
2810 ira_allocno_object_iterator oi;
2811 ira_object_t obj;
2812
2813 FOR_EACH_ALLOCNO_OBJECT (a, obj, oi)
2814 ira_object_id_map[num++] = obj;
2815 }
85c00e0b
JJ
2816 if (num > 1)
2817 qsort (ira_object_id_map, num, sizeof (ira_object_t),
2818 object_range_compare_func);
058e97ec 2819 for (i = 0; i < num; i++)
a49ae217
BS
2820 {
2821 ira_object_t obj = ira_object_id_map[i];
1756cb66 2822
a49ae217
BS
2823 gcc_assert (obj != NULL);
2824 OBJECT_CONFLICT_ID (obj) = i;
2825 }
2826 for (i = num; i < ira_objects_num; i++)
2827 ira_object_id_map[i] = NULL;
058e97ec
VM
2828}
2829
2830/* Set up minimal and maximal conflict ids of allocnos with which
2831 given allocno can conflict. */
2832static void
2833setup_min_max_conflict_allocno_ids (void)
2834{
1756cb66 2835 int aclass;
058e97ec
VM
2836 int i, j, min, max, start, finish, first_not_finished, filled_area_start;
2837 int *live_range_min, *last_lived;
ac0ab4f7 2838 int word0_min, word0_max;
058e97ec 2839 ira_allocno_t a;
ac0ab4f7 2840 ira_allocno_iterator ai;
058e97ec 2841
a49ae217 2842 live_range_min = (int *) ira_allocate (sizeof (int) * ira_objects_num);
1756cb66 2843 aclass = -1;
058e97ec 2844 first_not_finished = -1;
a49ae217 2845 for (i = 0; i < ira_objects_num; i++)
058e97ec 2846 {
a49ae217 2847 ira_object_t obj = ira_object_id_map[i];
1756cb66 2848
a49ae217 2849 if (obj == NULL)
058e97ec 2850 continue;
a49ae217
BS
2851
2852 a = OBJECT_ALLOCNO (obj);
2853
1756cb66 2854 if (aclass < 0)
058e97ec 2855 {
1756cb66 2856 aclass = ALLOCNO_CLASS (a);
058e97ec
VM
2857 min = i;
2858 first_not_finished = i;
2859 }
2860 else
2861 {
a49ae217 2862 start = OBJECT_MIN (obj);
058e97ec
VM
2863 /* If we skip an allocno, the allocno with smaller ids will
2864 be also skipped because of the secondary sorting the
2865 range finishes (see function
ac0ab4f7 2866 object_range_compare_func). */
058e97ec 2867 while (first_not_finished < i
a49ae217 2868 && start > OBJECT_MAX (ira_object_id_map
ac0ab4f7 2869 [first_not_finished]))
058e97ec
VM
2870 first_not_finished++;
2871 min = first_not_finished;
b8698a0f 2872 }
058e97ec
VM
2873 if (min == i)
2874 /* We could increase min further in this case but it is good
2875 enough. */
2876 min++;
a49ae217
BS
2877 live_range_min[i] = OBJECT_MIN (obj);
2878 OBJECT_MIN (obj) = min;
058e97ec
VM
2879 }
2880 last_lived = (int *) ira_allocate (sizeof (int) * ira_max_point);
1756cb66 2881 aclass = -1;
058e97ec 2882 filled_area_start = -1;
a49ae217 2883 for (i = ira_objects_num - 1; i >= 0; i--)
058e97ec 2884 {
a49ae217 2885 ira_object_t obj = ira_object_id_map[i];
1756cb66 2886
a49ae217 2887 if (obj == NULL)
058e97ec 2888 continue;
a49ae217
BS
2889
2890 a = OBJECT_ALLOCNO (obj);
1756cb66 2891 if (aclass < 0)
058e97ec 2892 {
1756cb66 2893 aclass = ALLOCNO_CLASS (a);
058e97ec
VM
2894 for (j = 0; j < ira_max_point; j++)
2895 last_lived[j] = -1;
2896 filled_area_start = ira_max_point;
2897 }
2898 min = live_range_min[i];
a49ae217 2899 finish = OBJECT_MAX (obj);
058e97ec
VM
2900 max = last_lived[finish];
2901 if (max < 0)
2902 /* We could decrease max further in this case but it is good
2903 enough. */
a49ae217
BS
2904 max = OBJECT_CONFLICT_ID (obj) - 1;
2905 OBJECT_MAX (obj) = max;
058e97ec
VM
2906 /* In filling, we can go further A range finish to recognize
2907 intersection quickly because if the finish of subsequently
2908 processed allocno (it has smaller conflict id) range is
2909 further A range finish than they are definitely intersected
2910 (the reason for this is the allocnos with bigger conflict id
2911 have their range starts not smaller than allocnos with
2912 smaller ids. */
2913 for (j = min; j < filled_area_start; j++)
2914 last_lived[j] = i;
2915 filled_area_start = min;
2916 }
2917 ira_free (last_lived);
2918 ira_free (live_range_min);
ac0ab4f7
BS
2919
2920 /* For allocnos with more than one object, we may later record extra conflicts in
2921 subobject 0 that we cannot really know about here.
2922 For now, simply widen the min/max range of these subobjects. */
2923
2924 word0_min = INT_MAX;
2925 word0_max = INT_MIN;
2926
2927 FOR_EACH_ALLOCNO (a, ai)
2928 {
2929 int n = ALLOCNO_NUM_OBJECTS (a);
2930 ira_object_t obj0;
1756cb66 2931
ac0ab4f7
BS
2932 if (n < 2)
2933 continue;
2934 obj0 = ALLOCNO_OBJECT (a, 0);
2935 if (OBJECT_CONFLICT_ID (obj0) < word0_min)
2936 word0_min = OBJECT_CONFLICT_ID (obj0);
2937 if (OBJECT_CONFLICT_ID (obj0) > word0_max)
2938 word0_max = OBJECT_CONFLICT_ID (obj0);
2939 }
2940 FOR_EACH_ALLOCNO (a, ai)
2941 {
2942 int n = ALLOCNO_NUM_OBJECTS (a);
2943 ira_object_t obj0;
1756cb66 2944
ac0ab4f7
BS
2945 if (n < 2)
2946 continue;
2947 obj0 = ALLOCNO_OBJECT (a, 0);
2948 if (OBJECT_MIN (obj0) > word0_min)
2949 OBJECT_MIN (obj0) = word0_min;
2950 if (OBJECT_MAX (obj0) < word0_max)
2951 OBJECT_MAX (obj0) = word0_max;
2952 }
058e97ec
VM
2953}
2954
2955\f
2956
2957static void
2958create_caps (void)
2959{
2960 ira_allocno_t a;
2961 ira_allocno_iterator ai;
2962 ira_loop_tree_node_t loop_tree_node;
2963
2964 FOR_EACH_ALLOCNO (a, ai)
2965 {
2966 if (ALLOCNO_LOOP_TREE_NODE (a) == ira_loop_tree_root)
2967 continue;
2968 if (ALLOCNO_CAP_MEMBER (a) != NULL)
2969 create_cap_allocno (a);
2970 else if (ALLOCNO_CAP (a) == NULL)
2971 {
2972 loop_tree_node = ALLOCNO_LOOP_TREE_NODE (a);
2973 if (!bitmap_bit_p (loop_tree_node->border_allocnos, ALLOCNO_NUM (a)))
2974 create_cap_allocno (a);
2975 }
2976 }
2977}
2978
2979\f
2980
2981/* The page contains code transforming more one region internal
2982 representation (IR) to one region IR which is necessary for reload.
2983 This transformation is called IR flattening. We might just rebuild
2984 the IR for one region but we don't do it because it takes a lot of
2985 time. */
2986
82b33628
VM
2987/* Map: regno -> allocnos which will finally represent the regno for
2988 IR with one region. */
2989static ira_allocno_t *regno_top_level_allocno_map;
2990
029da7d4
BS
2991/* Find the allocno that corresponds to A at a level one higher up in the
2992 loop tree. Returns NULL if A is a cap, or if it has no parent. */
2993ira_allocno_t
2994ira_parent_allocno (ira_allocno_t a)
2995{
2996 ira_loop_tree_node_t parent;
2997
2998 if (ALLOCNO_CAP (a) != NULL)
2999 return NULL;
3000
3001 parent = ALLOCNO_LOOP_TREE_NODE (a)->parent;
3002 if (parent == NULL)
3003 return NULL;
3004
3005 return parent->regno_allocno_map[ALLOCNO_REGNO (a)];
3006}
3007
3008/* Find the allocno that corresponds to A at a level one higher up in the
3009 loop tree. If ALLOCNO_CAP is set for A, return that. */
3010ira_allocno_t
3011ira_parent_or_cap_allocno (ira_allocno_t a)
3012{
3013 if (ALLOCNO_CAP (a) != NULL)
3014 return ALLOCNO_CAP (a);
3015
3016 return ira_parent_allocno (a);
3017}
3018
82b33628 3019/* Process all allocnos originated from pseudo REGNO and copy live
801f03e3
VM
3020 ranges, hard reg conflicts, and allocno stack reg attributes from
3021 low level allocnos to final allocnos which are destinations of
3022 removed stores at a loop exit. Return true if we copied live
3023 ranges. */
82b33628 3024static bool
801f03e3 3025copy_info_to_removed_store_destinations (int regno)
82b33628 3026{
504b33d8
ILT
3027 ira_allocno_t a;
3028 ira_allocno_t parent_a = NULL;
82b33628 3029 ira_loop_tree_node_t parent;
82b33628
VM
3030 bool merged_p;
3031
3032 merged_p = false;
3033 for (a = ira_regno_allocno_map[regno];
3034 a != NULL;
3035 a = ALLOCNO_NEXT_REGNO_ALLOCNO (a))
3036 {
1756cb66 3037 if (a != regno_top_level_allocno_map[REGNO (allocno_emit_reg (a))])
82b33628
VM
3038 /* This allocno will be removed. */
3039 continue;
ac0ab4f7 3040
82b33628
VM
3041 /* Caps will be removed. */
3042 ira_assert (ALLOCNO_CAP_MEMBER (a) == NULL);
3043 for (parent = ALLOCNO_LOOP_TREE_NODE (a)->parent;
3044 parent != NULL;
3045 parent = parent->parent)
3046 if ((parent_a = parent->regno_allocno_map[regno]) == NULL
1756cb66
VM
3047 || (parent_a
3048 == regno_top_level_allocno_map[REGNO
3049 (allocno_emit_reg (parent_a))]
3050 && ALLOCNO_EMIT_DATA (parent_a)->mem_optimized_dest_p))
82b33628
VM
3051 break;
3052 if (parent == NULL || parent_a == NULL)
3053 continue;
ac0ab4f7 3054
3c55880a
BS
3055 copy_allocno_live_ranges (a, parent_a);
3056 merge_hard_reg_conflicts (a, parent_a, true);
ac0ab4f7 3057
ea1c67e6
VM
3058 ALLOCNO_CALL_FREQ (parent_a) += ALLOCNO_CALL_FREQ (a);
3059 ALLOCNO_CALLS_CROSSED_NUM (parent_a)
3060 += ALLOCNO_CALLS_CROSSED_NUM (a);
e384e6b5
BS
3061 ALLOCNO_CHEAP_CALLS_CROSSED_NUM (parent_a)
3062 += ALLOCNO_CHEAP_CALLS_CROSSED_NUM (a);
c2ba7e7a
RO
3063 IOR_HARD_REG_SET (ALLOCNO_CROSSED_CALLS_CLOBBERED_REGS (parent_a),
3064 ALLOCNO_CROSSED_CALLS_CLOBBERED_REGS (a));
ea1c67e6
VM
3065 ALLOCNO_EXCESS_PRESSURE_POINTS_NUM (parent_a)
3066 += ALLOCNO_EXCESS_PRESSURE_POINTS_NUM (a);
82b33628
VM
3067 merged_p = true;
3068 }
3069 return merged_p;
058e97ec
VM
3070}
3071
3072/* Flatten the IR. In other words, this function transforms IR as if
3073 it were built with one region (without loops). We could make it
3074 much simpler by rebuilding IR with one region, but unfortunately it
3075 takes a lot of time. MAX_REGNO_BEFORE_EMIT and
3076 IRA_MAX_POINT_BEFORE_EMIT are correspondingly MAX_REG_NUM () and
3077 IRA_MAX_POINT before emitting insns on the loop borders. */
3078void
3079ira_flattening (int max_regno_before_emit, int ira_max_point_before_emit)
3080{
9140d27b 3081 int i, j;
ea1c67e6 3082 bool keep_p;
058e97ec 3083 int hard_regs_num;
82b33628 3084 bool new_pseudos_p, merged_p, mem_dest_p;
058e97ec 3085 unsigned int n;
1756cb66 3086 enum reg_class aclass;
058e97ec 3087 ira_allocno_t a, parent_a, first, second, node_first, node_second;
058e97ec 3088 ira_copy_t cp;
029da7d4 3089 ira_loop_tree_node_t node;
b14151b5 3090 live_range_t r;
058e97ec
VM
3091 ira_allocno_iterator ai;
3092 ira_copy_iterator ci;
058e97ec
VM
3093
3094 regno_top_level_allocno_map
1756cb66
VM
3095 = (ira_allocno_t *) ira_allocate (max_reg_num ()
3096 * sizeof (ira_allocno_t));
058e97ec
VM
3097 memset (regno_top_level_allocno_map, 0,
3098 max_reg_num () * sizeof (ira_allocno_t));
058e97ec 3099 new_pseudos_p = merged_p = false;
0ca9fa56
VM
3100 FOR_EACH_ALLOCNO (a, ai)
3101 {
ac0ab4f7
BS
3102 ira_allocno_object_iterator oi;
3103 ira_object_t obj;
1756cb66 3104
0ca9fa56
VM
3105 if (ALLOCNO_CAP_MEMBER (a) != NULL)
3106 /* Caps are not in the regno allocno maps and they are never
3107 will be transformed into allocnos existing after IR
3108 flattening. */
3109 continue;
ac0ab4f7
BS
3110 FOR_EACH_ALLOCNO_OBJECT (a, obj, oi)
3111 COPY_HARD_REG_SET (OBJECT_TOTAL_CONFLICT_HARD_REGS (obj),
3112 OBJECT_CONFLICT_HARD_REGS (obj));
0ca9fa56
VM
3113#ifdef STACK_REGS
3114 ALLOCNO_TOTAL_NO_STACK_REG_P (a) = ALLOCNO_NO_STACK_REG_P (a);
3115#endif
3116 }
058e97ec
VM
3117 /* Fix final allocno attributes. */
3118 for (i = max_regno_before_emit - 1; i >= FIRST_PSEUDO_REGISTER; i--)
3119 {
0ca9fa56 3120 mem_dest_p = false;
058e97ec
VM
3121 for (a = ira_regno_allocno_map[i];
3122 a != NULL;
3123 a = ALLOCNO_NEXT_REGNO_ALLOCNO (a))
3124 {
1756cb66
VM
3125 ira_emit_data_t parent_data, data = ALLOCNO_EMIT_DATA (a);
3126
058e97ec 3127 ira_assert (ALLOCNO_CAP_MEMBER (a) == NULL);
1756cb66 3128 if (data->somewhere_renamed_p)
058e97ec 3129 new_pseudos_p = true;
029da7d4
BS
3130 parent_a = ira_parent_allocno (a);
3131 if (parent_a == NULL)
058e97ec
VM
3132 {
3133 ALLOCNO_COPIES (a) = NULL;
1756cb66 3134 regno_top_level_allocno_map[REGNO (data->reg)] = a;
058e97ec
VM
3135 continue;
3136 }
3137 ira_assert (ALLOCNO_CAP_MEMBER (parent_a) == NULL);
b8698a0f 3138
1756cb66 3139 if (data->mem_optimized_dest != NULL)
82b33628 3140 mem_dest_p = true;
1756cb66
VM
3141 parent_data = ALLOCNO_EMIT_DATA (parent_a);
3142 if (REGNO (data->reg) == REGNO (parent_data->reg))
058e97ec 3143 {
3c55880a
BS
3144 merge_hard_reg_conflicts (a, parent_a, true);
3145 move_allocno_live_ranges (a, parent_a);
058e97ec 3146 merged_p = true;
1756cb66
VM
3147 parent_data->mem_optimized_dest_p
3148 = (parent_data->mem_optimized_dest_p
3149 || data->mem_optimized_dest_p);
058e97ec
VM
3150 continue;
3151 }
3152 new_pseudos_p = true;
058e97ec
VM
3153 for (;;)
3154 {
058e97ec
VM
3155 ALLOCNO_NREFS (parent_a) -= ALLOCNO_NREFS (a);
3156 ALLOCNO_FREQ (parent_a) -= ALLOCNO_FREQ (a);
ea1c67e6
VM
3157 ALLOCNO_CALL_FREQ (parent_a) -= ALLOCNO_CALL_FREQ (a);
3158 ALLOCNO_CALLS_CROSSED_NUM (parent_a)
3159 -= ALLOCNO_CALLS_CROSSED_NUM (a);
e384e6b5
BS
3160 ALLOCNO_CHEAP_CALLS_CROSSED_NUM (parent_a)
3161 -= ALLOCNO_CHEAP_CALLS_CROSSED_NUM (a);
ea1c67e6
VM
3162 ALLOCNO_EXCESS_PRESSURE_POINTS_NUM (parent_a)
3163 -= ALLOCNO_EXCESS_PRESSURE_POINTS_NUM (a);
058e97ec
VM
3164 ira_assert (ALLOCNO_CALLS_CROSSED_NUM (parent_a) >= 0
3165 && ALLOCNO_NREFS (parent_a) >= 0
3166 && ALLOCNO_FREQ (parent_a) >= 0);
1756cb66
VM
3167 aclass = ALLOCNO_CLASS (parent_a);
3168 hard_regs_num = ira_class_hard_regs_num[aclass];
058e97ec
VM
3169 if (ALLOCNO_HARD_REG_COSTS (a) != NULL
3170 && ALLOCNO_HARD_REG_COSTS (parent_a) != NULL)
3171 for (j = 0; j < hard_regs_num; j++)
3172 ALLOCNO_HARD_REG_COSTS (parent_a)[j]
3173 -= ALLOCNO_HARD_REG_COSTS (a)[j];
3174 if (ALLOCNO_CONFLICT_HARD_REG_COSTS (a) != NULL
3175 && ALLOCNO_CONFLICT_HARD_REG_COSTS (parent_a) != NULL)
3176 for (j = 0; j < hard_regs_num; j++)
3177 ALLOCNO_CONFLICT_HARD_REG_COSTS (parent_a)[j]
3178 -= ALLOCNO_CONFLICT_HARD_REG_COSTS (a)[j];
1756cb66
VM
3179 ALLOCNO_CLASS_COST (parent_a)
3180 -= ALLOCNO_CLASS_COST (a);
058e97ec 3181 ALLOCNO_MEMORY_COST (parent_a) -= ALLOCNO_MEMORY_COST (a);
029da7d4
BS
3182 parent_a = ira_parent_allocno (parent_a);
3183 if (parent_a == NULL)
058e97ec
VM
3184 break;
3185 }
058e97ec 3186 ALLOCNO_COPIES (a) = NULL;
1756cb66 3187 regno_top_level_allocno_map[REGNO (data->reg)] = a;
058e97ec 3188 }
801f03e3 3189 if (mem_dest_p && copy_info_to_removed_store_destinations (i))
82b33628 3190 merged_p = true;
058e97ec 3191 }
058e97ec
VM
3192 ira_assert (new_pseudos_p || ira_max_point_before_emit == ira_max_point);
3193 if (merged_p || ira_max_point_before_emit != ira_max_point)
3194 ira_rebuild_start_finish_chains ();
3195 if (new_pseudos_p)
3196 {
9140d27b
BS
3197 sparseset objects_live;
3198
058e97ec
VM
3199 /* Rebuild conflicts. */
3200 FOR_EACH_ALLOCNO (a, ai)
3201 {
ac0ab4f7
BS
3202 ira_allocno_object_iterator oi;
3203 ira_object_t obj;
1756cb66
VM
3204
3205 if (a != regno_top_level_allocno_map[REGNO (allocno_emit_reg (a))]
058e97ec
VM
3206 || ALLOCNO_CAP_MEMBER (a) != NULL)
3207 continue;
ac0ab4f7
BS
3208 FOR_EACH_ALLOCNO_OBJECT (a, obj, oi)
3209 {
3210 for (r = OBJECT_LIVE_RANGES (obj); r != NULL; r = r->next)
3211 ira_assert (r->object == obj);
3212 clear_conflicts (obj);
3213 }
058e97ec 3214 }
9140d27b 3215 objects_live = sparseset_alloc (ira_objects_num);
058e97ec
VM
3216 for (i = 0; i < ira_max_point; i++)
3217 {
3218 for (r = ira_start_point_ranges[i]; r != NULL; r = r->start_next)
3219 {
9140d27b 3220 ira_object_t obj = r->object;
1756cb66 3221
9140d27b 3222 a = OBJECT_ALLOCNO (obj);
1756cb66 3223 if (a != regno_top_level_allocno_map[REGNO (allocno_emit_reg (a))]
058e97ec
VM
3224 || ALLOCNO_CAP_MEMBER (a) != NULL)
3225 continue;
ac0ab4f7 3226
1756cb66 3227 aclass = ALLOCNO_CLASS (a);
9140d27b 3228 EXECUTE_IF_SET_IN_SPARSESET (objects_live, n)
058e97ec 3229 {
9140d27b
BS
3230 ira_object_t live_obj = ira_object_id_map[n];
3231 ira_allocno_t live_a = OBJECT_ALLOCNO (live_obj);
1756cb66
VM
3232 enum reg_class live_aclass = ALLOCNO_CLASS (live_a);
3233
3234 if (ira_reg_classes_intersect_p[aclass][live_aclass]
058e97ec 3235 /* Don't set up conflict for the allocno with itself. */
9140d27b
BS
3236 && live_a != a)
3237 ira_add_conflict (obj, live_obj);
058e97ec 3238 }
3feb0298 3239 sparseset_set_bit (objects_live, OBJECT_CONFLICT_ID (obj));
058e97ec 3240 }
b8698a0f 3241
058e97ec 3242 for (r = ira_finish_point_ranges[i]; r != NULL; r = r->finish_next)
9140d27b 3243 sparseset_clear_bit (objects_live, OBJECT_CONFLICT_ID (r->object));
058e97ec 3244 }
9140d27b 3245 sparseset_free (objects_live);
058e97ec
VM
3246 compress_conflict_vecs ();
3247 }
3248 /* Mark some copies for removing and change allocnos in the rest
3249 copies. */
3250 FOR_EACH_COPY (cp, ci)
3251 {
3252 if (ALLOCNO_CAP_MEMBER (cp->first) != NULL
3253 || ALLOCNO_CAP_MEMBER (cp->second) != NULL)
3254 {
3255 if (internal_flag_ira_verbose > 4 && ira_dump_file != NULL)
3256 fprintf
3257 (ira_dump_file, " Remove cp%d:%c%dr%d-%c%dr%d\n",
3258 cp->num, ALLOCNO_CAP_MEMBER (cp->first) != NULL ? 'c' : 'a',
1756cb66
VM
3259 ALLOCNO_NUM (cp->first),
3260 REGNO (allocno_emit_reg (cp->first)),
058e97ec 3261 ALLOCNO_CAP_MEMBER (cp->second) != NULL ? 'c' : 'a',
1756cb66
VM
3262 ALLOCNO_NUM (cp->second),
3263 REGNO (allocno_emit_reg (cp->second)));
058e97ec
VM
3264 cp->loop_tree_node = NULL;
3265 continue;
3266 }
1756cb66
VM
3267 first
3268 = regno_top_level_allocno_map[REGNO (allocno_emit_reg (cp->first))];
3269 second
3270 = regno_top_level_allocno_map[REGNO (allocno_emit_reg (cp->second))];
058e97ec
VM
3271 node = cp->loop_tree_node;
3272 if (node == NULL)
3273 keep_p = true; /* It copy generated in ira-emit.c. */
3274 else
3275 {
3276 /* Check that the copy was not propagated from level on
3277 which we will have different pseudos. */
3278 node_first = node->regno_allocno_map[ALLOCNO_REGNO (cp->first)];
3279 node_second = node->regno_allocno_map[ALLOCNO_REGNO (cp->second)];
1756cb66
VM
3280 keep_p = ((REGNO (allocno_emit_reg (first))
3281 == REGNO (allocno_emit_reg (node_first)))
3282 && (REGNO (allocno_emit_reg (second))
3283 == REGNO (allocno_emit_reg (node_second))));
058e97ec
VM
3284 }
3285 if (keep_p)
3286 {
3287 cp->loop_tree_node = ira_loop_tree_root;
3288 cp->first = first;
3289 cp->second = second;
3290 }
3291 else
3292 {
3293 cp->loop_tree_node = NULL;
3294 if (internal_flag_ira_verbose > 4 && ira_dump_file != NULL)
3295 fprintf (ira_dump_file, " Remove cp%d:a%dr%d-a%dr%d\n",
3296 cp->num, ALLOCNO_NUM (cp->first),
1756cb66
VM
3297 REGNO (allocno_emit_reg (cp->first)),
3298 ALLOCNO_NUM (cp->second),
3299 REGNO (allocno_emit_reg (cp->second)));
058e97ec
VM
3300 }
3301 }
3302 /* Remove unnecessary allocnos on lower levels of the loop tree. */
3303 FOR_EACH_ALLOCNO (a, ai)
3304 {
1756cb66 3305 if (a != regno_top_level_allocno_map[REGNO (allocno_emit_reg (a))]
058e97ec
VM
3306 || ALLOCNO_CAP_MEMBER (a) != NULL)
3307 {
3308 if (internal_flag_ira_verbose > 4 && ira_dump_file != NULL)
3309 fprintf (ira_dump_file, " Remove a%dr%d\n",
1756cb66 3310 ALLOCNO_NUM (a), REGNO (allocno_emit_reg (a)));
3b6d1699 3311 ira_remove_allocno_prefs (a);
058e97ec
VM
3312 finish_allocno (a);
3313 continue;
3314 }
3315 ALLOCNO_LOOP_TREE_NODE (a) = ira_loop_tree_root;
1756cb66 3316 ALLOCNO_REGNO (a) = REGNO (allocno_emit_reg (a));
058e97ec 3317 ALLOCNO_CAP (a) = NULL;
cb1ca6ac 3318 /* Restore updated costs for assignments from reload. */
058e97ec 3319 ALLOCNO_UPDATED_MEMORY_COST (a) = ALLOCNO_MEMORY_COST (a);
1756cb66 3320 ALLOCNO_UPDATED_CLASS_COST (a) = ALLOCNO_CLASS_COST (a);
058e97ec
VM
3321 if (! ALLOCNO_ASSIGNED_P (a))
3322 ira_free_allocno_updated_costs (a);
3323 ira_assert (ALLOCNO_UPDATED_HARD_REG_COSTS (a) == NULL);
3324 ira_assert (ALLOCNO_UPDATED_CONFLICT_HARD_REG_COSTS (a) == NULL);
3325 }
3326 /* Remove unnecessary copies. */
3327 FOR_EACH_COPY (cp, ci)
3328 {
3329 if (cp->loop_tree_node == NULL)
3330 {
3331 ira_copies[cp->num] = NULL;
3332 finish_copy (cp);
3333 continue;
3334 }
3335 ira_assert
3336 (ALLOCNO_LOOP_TREE_NODE (cp->first) == ira_loop_tree_root
3337 && ALLOCNO_LOOP_TREE_NODE (cp->second) == ira_loop_tree_root);
3b6d1699
VM
3338 add_allocno_copy_to_list (cp);
3339 swap_allocno_copy_ends_if_necessary (cp);
058e97ec
VM
3340 }
3341 rebuild_regno_allocno_maps ();
b15a7ae6
VM
3342 if (ira_max_point != ira_max_point_before_emit)
3343 ira_compress_allocno_live_ranges ();
058e97ec
VM
3344 ira_free (regno_top_level_allocno_map);
3345}
3346
3347\f
3348
3349#ifdef ENABLE_IRA_CHECKING
3350/* Check creation of all allocnos. Allocnos on lower levels should
3351 have allocnos or caps on all upper levels. */
3352static void
3353check_allocno_creation (void)
3354{
3355 ira_allocno_t a;
3356 ira_allocno_iterator ai;
3357 ira_loop_tree_node_t loop_tree_node;
3358
3359 FOR_EACH_ALLOCNO (a, ai)
3360 {
49d988e7
VM
3361 loop_tree_node = ALLOCNO_LOOP_TREE_NODE (a);
3362 ira_assert (bitmap_bit_p (loop_tree_node->all_allocnos,
3363 ALLOCNO_NUM (a)));
3364 if (loop_tree_node == ira_loop_tree_root)
058e97ec
VM
3365 continue;
3366 if (ALLOCNO_CAP_MEMBER (a) != NULL)
49d988e7 3367 ira_assert (ALLOCNO_CAP (a) != NULL);
058e97ec 3368 else if (ALLOCNO_CAP (a) == NULL)
49d988e7
VM
3369 ira_assert (loop_tree_node->parent
3370 ->regno_allocno_map[ALLOCNO_REGNO (a)] != NULL
3371 && bitmap_bit_p (loop_tree_node->border_allocnos,
3372 ALLOCNO_NUM (a)));
058e97ec
VM
3373 }
3374}
3375#endif
3376
4ac293e2
VM
3377/* Identify allocnos which prefer a register class with a single hard register.
3378 Adjust ALLOCNO_CONFLICT_HARD_REG_COSTS so that conflicting allocnos are
3379 less likely to use the preferred singleton register. */
3380static void
3381update_conflict_hard_reg_costs (void)
3382{
3383 ira_allocno_t a;
3384 ira_allocno_iterator ai;
3385 int i, index, min;
3386
3387 FOR_EACH_ALLOCNO (a, ai)
3388 {
6f76a878
AS
3389 reg_class_t aclass = ALLOCNO_CLASS (a);
3390 reg_class_t pref = reg_preferred_class (ALLOCNO_REGNO (a));
c9d74da6
RS
3391 int singleton = ira_class_singleton[pref][ALLOCNO_MODE (a)];
3392 if (singleton < 0)
4ac293e2 3393 continue;
c9d74da6 3394 index = ira_class_hard_reg_index[(int) aclass][singleton];
4ac293e2
VM
3395 if (index < 0)
3396 continue;
3397 if (ALLOCNO_CONFLICT_HARD_REG_COSTS (a) == NULL
3398 || ALLOCNO_HARD_REG_COSTS (a) == NULL)
3399 continue;
3400 min = INT_MAX;
6f76a878 3401 for (i = ira_class_hard_regs_num[(int) aclass] - 1; i >= 0; i--)
1756cb66 3402 if (ALLOCNO_HARD_REG_COSTS (a)[i] > ALLOCNO_CLASS_COST (a)
4ac293e2
VM
3403 && min > ALLOCNO_HARD_REG_COSTS (a)[i])
3404 min = ALLOCNO_HARD_REG_COSTS (a)[i];
3405 if (min == INT_MAX)
3406 continue;
3407 ira_allocate_and_set_costs (&ALLOCNO_CONFLICT_HARD_REG_COSTS (a),
1756cb66 3408 aclass, 0);
4ac293e2 3409 ALLOCNO_CONFLICT_HARD_REG_COSTS (a)[index]
1756cb66 3410 -= min - ALLOCNO_CLASS_COST (a);
4ac293e2
VM
3411 }
3412}
3413
058e97ec 3414/* Create a internal representation (IR) for IRA (allocnos, copies,
2608d841
VM
3415 loop tree nodes). The function returns TRUE if we generate loop
3416 structure (besides nodes representing all function and the basic
3417 blocks) for regional allocation. A true return means that we
3418 really need to flatten IR before the reload. */
058e97ec 3419bool
2608d841 3420ira_build (void)
058e97ec 3421{
2608d841 3422 bool loops_p;
058e97ec 3423
2608d841 3424 df_analyze ();
058e97ec
VM
3425 initiate_cost_vectors ();
3426 initiate_allocnos ();
3b6d1699 3427 initiate_prefs ();
058e97ec 3428 initiate_copies ();
2608d841 3429 create_loop_tree_nodes ();
058e97ec
VM
3430 form_loop_tree ();
3431 create_allocnos ();
3432 ira_costs ();
a49ae217 3433 create_allocno_objects ();
058e97ec 3434 ira_create_allocno_live_ranges ();
311aab06 3435 remove_unnecessary_regions (false);
b15a7ae6 3436 ira_compress_allocno_live_ranges ();
927425df 3437 update_bad_spill_attribute ();
058e97ec
VM
3438 loops_p = more_one_region_p ();
3439 if (loops_p)
3440 {
3441 propagate_allocno_info ();
3442 create_caps ();
3443 }
1756cb66 3444 ira_tune_allocno_costs ();
058e97ec
VM
3445#ifdef ENABLE_IRA_CHECKING
3446 check_allocno_creation ();
3447#endif
3448 setup_min_max_allocno_live_range_point ();
a49ae217 3449 sort_conflict_id_map ();
058e97ec
VM
3450 setup_min_max_conflict_allocno_ids ();
3451 ira_build_conflicts ();
4ac293e2 3452 update_conflict_hard_reg_costs ();
311aab06
VM
3453 if (! ira_conflicts_p)
3454 {
3455 ira_allocno_t a;
3456 ira_allocno_iterator ai;
3457
3458 /* Remove all regions but root one. */
3459 if (loops_p)
3460 {
3461 remove_unnecessary_regions (true);
3462 loops_p = false;
3463 }
3464 /* We don't save hard registers around calls for fast allocation
3465 -- add caller clobbered registers as conflicting ones to
3466 allocno crossing calls. */
3467 FOR_EACH_ALLOCNO (a, ai)
3468 if (ALLOCNO_CALLS_CROSSED_NUM (a) != 0)
ac0ab4f7 3469 ior_hard_reg_conflicts (a, &call_used_reg_set);
311aab06 3470 }
4cda38d5
VM
3471 if (internal_flag_ira_verbose > 2 && ira_dump_file != NULL)
3472 print_copies (ira_dump_file);
3b6d1699
VM
3473 if (internal_flag_ira_verbose > 2 && ira_dump_file != NULL)
3474 print_prefs (ira_dump_file);
058e97ec
VM
3475 if (internal_flag_ira_verbose > 0 && ira_dump_file != NULL)
3476 {
ac0ab4f7 3477 int n, nr, nr_big;
058e97ec 3478 ira_allocno_t a;
b14151b5 3479 live_range_t r;
058e97ec
VM
3480 ira_allocno_iterator ai;
3481
3482 n = 0;
ac0ab4f7
BS
3483 nr = 0;
3484 nr_big = 0;
058e97ec 3485 FOR_EACH_ALLOCNO (a, ai)
a49ae217 3486 {
ac0ab4f7 3487 int j, nobj = ALLOCNO_NUM_OBJECTS (a);
1756cb66 3488
ac0ab4f7
BS
3489 if (nobj > 1)
3490 nr_big++;
3491 for (j = 0; j < nobj; j++)
3492 {
3493 ira_object_t obj = ALLOCNO_OBJECT (a, j);
3494 n += OBJECT_NUM_CONFLICTS (obj);
3495 for (r = OBJECT_LIVE_RANGES (obj); r != NULL; r = r->next)
3496 nr++;
3497 }
a49ae217 3498 }
058e97ec 3499 fprintf (ira_dump_file, " regions=%d, blocks=%d, points=%d\n",
0fc822d0 3500 current_loops == NULL ? 1 : number_of_loops (cfun),
0cae8d31 3501 n_basic_blocks_for_fn (cfun), ira_max_point);
058e97ec 3502 fprintf (ira_dump_file,
ac0ab4f7
BS
3503 " allocnos=%d (big %d), copies=%d, conflicts=%d, ranges=%d\n",
3504 ira_allocnos_num, nr_big, ira_copies_num, n, nr);
058e97ec
VM
3505 }
3506 return loops_p;
3507}
3508
3509/* Release the data created by function ira_build. */
3510void
3511ira_destroy (void)
3512{
3513 finish_loop_tree_nodes ();
3b6d1699 3514 finish_prefs ();
058e97ec
VM
3515 finish_copies ();
3516 finish_allocnos ();
3517 finish_cost_vectors ();
3518 ira_finish_allocno_live_ranges ();
3519}