Implement TARGET_IRA_CHANGE_PSEUDO_ALLOCNO_CLASS hook.
[official-gcc.git] / gcc / cfgloopanal.c
blob62fbd76a3cbfc25f97bc78b44727ddc5f4271689
1 /* Natural loop analysis code for GNU compiler.
2 Copyright (C) 2002-2015 Free Software Foundation, Inc.
4 This file is part of GCC.
6 GCC is free software; you can redistribute it and/or modify it under
7 the terms of the GNU General Public License as published by the Free
8 Software Foundation; either version 3, or (at your option) any later
9 version.
11 GCC is distributed in the hope that it will be useful, but WITHOUT ANY
12 WARRANTY; without even the implied warranty of MERCHANTABILITY or
13 FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
14 for more details.
16 You should have received a copy of the GNU General Public License
17 along with GCC; see the file COPYING3. If not see
18 <http://www.gnu.org/licenses/>. */
20 #include "config.h"
21 #include "system.h"
22 #include "coretypes.h"
23 #include "tm.h"
24 #include "rtl.h"
25 #include "hard-reg-set.h"
26 #include "obstack.h"
27 #include "predict.h"
28 #include "input.h"
29 #include "function.h"
30 #include "dominance.h"
31 #include "cfg.h"
32 #include "basic-block.h"
33 #include "cfgloop.h"
34 #include "symtab.h"
35 #include "flags.h"
36 #include "alias.h"
37 #include "tree.h"
38 #include "insn-config.h"
39 #include "expmed.h"
40 #include "dojump.h"
41 #include "explow.h"
42 #include "calls.h"
43 #include "emit-rtl.h"
44 #include "varasm.h"
45 #include "stmt.h"
46 #include "expr.h"
47 #include "graphds.h"
48 #include "params.h"
50 struct target_cfgloop default_target_cfgloop;
51 #if SWITCHABLE_TARGET
52 struct target_cfgloop *this_target_cfgloop = &default_target_cfgloop;
53 #endif
55 /* Checks whether BB is executed exactly once in each LOOP iteration. */
57 bool
58 just_once_each_iteration_p (const struct loop *loop, const_basic_block bb)
60 /* It must be executed at least once each iteration. */
61 if (!dominated_by_p (CDI_DOMINATORS, loop->latch, bb))
62 return false;
64 /* And just once. */
65 if (bb->loop_father != loop)
66 return false;
68 /* But this was not enough. We might have some irreducible loop here. */
69 if (bb->flags & BB_IRREDUCIBLE_LOOP)
70 return false;
72 return true;
75 /* Marks blocks and edges that are part of non-recognized loops; i.e. we
76 throw away all latch edges and mark blocks inside any remaining cycle.
77 Everything is a bit complicated due to fact we do not want to do this
78 for parts of cycles that only "pass" through some loop -- i.e. for
79 each cycle, we want to mark blocks that belong directly to innermost
80 loop containing the whole cycle.
82 LOOPS is the loop tree. */
84 #define LOOP_REPR(LOOP) ((LOOP)->num + last_basic_block_for_fn (cfun))
85 #define BB_REPR(BB) ((BB)->index + 1)
87 bool
88 mark_irreducible_loops (void)
90 basic_block act;
91 struct graph_edge *ge;
92 edge e;
93 edge_iterator ei;
94 int src, dest;
95 unsigned depth;
96 struct graph *g;
97 int num = number_of_loops (cfun);
98 struct loop *cloop;
99 bool irred_loop_found = false;
100 int i;
102 gcc_assert (current_loops != NULL);
104 /* Reset the flags. */
105 FOR_BB_BETWEEN (act, ENTRY_BLOCK_PTR_FOR_FN (cfun),
106 EXIT_BLOCK_PTR_FOR_FN (cfun), next_bb)
108 act->flags &= ~BB_IRREDUCIBLE_LOOP;
109 FOR_EACH_EDGE (e, ei, act->succs)
110 e->flags &= ~EDGE_IRREDUCIBLE_LOOP;
113 /* Create the edge lists. */
114 g = new_graph (last_basic_block_for_fn (cfun) + num);
116 FOR_BB_BETWEEN (act, ENTRY_BLOCK_PTR_FOR_FN (cfun),
117 EXIT_BLOCK_PTR_FOR_FN (cfun), next_bb)
118 FOR_EACH_EDGE (e, ei, act->succs)
120 /* Ignore edges to exit. */
121 if (e->dest == EXIT_BLOCK_PTR_FOR_FN (cfun))
122 continue;
124 src = BB_REPR (act);
125 dest = BB_REPR (e->dest);
127 /* Ignore latch edges. */
128 if (e->dest->loop_father->header == e->dest
129 && e->dest->loop_father->latch == act)
130 continue;
132 /* Edges inside a single loop should be left where they are. Edges
133 to subloop headers should lead to representative of the subloop,
134 but from the same place.
136 Edges exiting loops should lead from representative
137 of the son of nearest common ancestor of the loops in that
138 act lays. */
140 if (e->dest->loop_father->header == e->dest)
141 dest = LOOP_REPR (e->dest->loop_father);
143 if (!flow_bb_inside_loop_p (act->loop_father, e->dest))
145 depth = 1 + loop_depth (find_common_loop (act->loop_father,
146 e->dest->loop_father));
147 if (depth == loop_depth (act->loop_father))
148 cloop = act->loop_father;
149 else
150 cloop = (*act->loop_father->superloops)[depth];
152 src = LOOP_REPR (cloop);
155 add_edge (g, src, dest)->data = e;
158 /* Find the strongly connected components. */
159 graphds_scc (g, NULL);
161 /* Mark the irreducible loops. */
162 for (i = 0; i < g->n_vertices; i++)
163 for (ge = g->vertices[i].succ; ge; ge = ge->succ_next)
165 edge real = (edge) ge->data;
166 /* edge E in graph G is irreducible if it connects two vertices in the
167 same scc. */
169 /* All edges should lead from a component with higher number to the
170 one with lower one. */
171 gcc_assert (g->vertices[ge->src].component >= g->vertices[ge->dest].component);
173 if (g->vertices[ge->src].component != g->vertices[ge->dest].component)
174 continue;
176 real->flags |= EDGE_IRREDUCIBLE_LOOP;
177 irred_loop_found = true;
178 if (flow_bb_inside_loop_p (real->src->loop_father, real->dest))
179 real->src->flags |= BB_IRREDUCIBLE_LOOP;
182 free_graph (g);
184 loops_state_set (LOOPS_HAVE_MARKED_IRREDUCIBLE_REGIONS);
185 return irred_loop_found;
188 /* Counts number of insns inside LOOP. */
190 num_loop_insns (const struct loop *loop)
192 basic_block *bbs, bb;
193 unsigned i, ninsns = 0;
194 rtx_insn *insn;
196 bbs = get_loop_body (loop);
197 for (i = 0; i < loop->num_nodes; i++)
199 bb = bbs[i];
200 FOR_BB_INSNS (bb, insn)
201 if (NONDEBUG_INSN_P (insn))
202 ninsns++;
204 free (bbs);
206 if (!ninsns)
207 ninsns = 1; /* To avoid division by zero. */
209 return ninsns;
212 /* Counts number of insns executed on average per iteration LOOP. */
214 average_num_loop_insns (const struct loop *loop)
216 basic_block *bbs, bb;
217 unsigned i, binsns, ninsns, ratio;
218 rtx_insn *insn;
220 ninsns = 0;
221 bbs = get_loop_body (loop);
222 for (i = 0; i < loop->num_nodes; i++)
224 bb = bbs[i];
226 binsns = 0;
227 FOR_BB_INSNS (bb, insn)
228 if (NONDEBUG_INSN_P (insn))
229 binsns++;
231 ratio = loop->header->frequency == 0
232 ? BB_FREQ_MAX
233 : (bb->frequency * BB_FREQ_MAX) / loop->header->frequency;
234 ninsns += binsns * ratio;
236 free (bbs);
238 ninsns /= BB_FREQ_MAX;
239 if (!ninsns)
240 ninsns = 1; /* To avoid division by zero. */
242 return ninsns;
245 /* Returns expected number of iterations of LOOP, according to
246 measured or guessed profile. No bounding is done on the
247 value. */
249 gcov_type
250 expected_loop_iterations_unbounded (const struct loop *loop)
252 edge e;
253 edge_iterator ei;
255 if (loop->latch->count || loop->header->count)
257 gcov_type count_in, count_latch, expected;
259 count_in = 0;
260 count_latch = 0;
262 FOR_EACH_EDGE (e, ei, loop->header->preds)
263 if (e->src == loop->latch)
264 count_latch = e->count;
265 else
266 count_in += e->count;
268 if (count_in == 0)
269 expected = count_latch * 2;
270 else
271 expected = (count_latch + count_in - 1) / count_in;
273 return expected;
275 else
277 int freq_in, freq_latch;
279 freq_in = 0;
280 freq_latch = 0;
282 FOR_EACH_EDGE (e, ei, loop->header->preds)
283 if (e->src == loop->latch)
284 freq_latch = EDGE_FREQUENCY (e);
285 else
286 freq_in += EDGE_FREQUENCY (e);
288 if (freq_in == 0)
289 return freq_latch * 2;
291 return (freq_latch + freq_in - 1) / freq_in;
295 /* Returns expected number of LOOP iterations. The returned value is bounded
296 by REG_BR_PROB_BASE. */
298 unsigned
299 expected_loop_iterations (const struct loop *loop)
301 gcov_type expected = expected_loop_iterations_unbounded (loop);
302 return (expected > REG_BR_PROB_BASE ? REG_BR_PROB_BASE : expected);
305 /* Returns the maximum level of nesting of subloops of LOOP. */
307 unsigned
308 get_loop_level (const struct loop *loop)
310 const struct loop *ploop;
311 unsigned mx = 0, l;
313 for (ploop = loop->inner; ploop; ploop = ploop->next)
315 l = get_loop_level (ploop);
316 if (l >= mx)
317 mx = l + 1;
319 return mx;
322 /* Initialize the constants for computing set costs. */
324 void
325 init_set_costs (void)
327 int speed;
328 rtx_insn *seq;
329 rtx reg1 = gen_raw_REG (SImode, LAST_VIRTUAL_REGISTER + 1);
330 rtx reg2 = gen_raw_REG (SImode, LAST_VIRTUAL_REGISTER + 2);
331 rtx addr = gen_raw_REG (Pmode, LAST_VIRTUAL_REGISTER + 3);
332 rtx mem = validize_mem (gen_rtx_MEM (SImode, addr));
333 unsigned i;
335 target_avail_regs = 0;
336 target_clobbered_regs = 0;
337 for (i = 0; i < FIRST_PSEUDO_REGISTER; i++)
338 if (TEST_HARD_REG_BIT (reg_class_contents[GENERAL_REGS], i)
339 && !fixed_regs[i])
341 target_avail_regs++;
342 if (call_used_regs[i])
343 target_clobbered_regs++;
346 target_res_regs = 3;
348 for (speed = 0; speed < 2; speed++)
350 crtl->maybe_hot_insn_p = speed;
351 /* Set up the costs for using extra registers:
353 1) If not many free registers remain, we should prefer having an
354 additional move to decreasing the number of available registers.
355 (TARGET_REG_COST).
356 2) If no registers are available, we need to spill, which may require
357 storing the old value to memory and loading it back
358 (TARGET_SPILL_COST). */
360 start_sequence ();
361 emit_move_insn (reg1, reg2);
362 seq = get_insns ();
363 end_sequence ();
364 target_reg_cost [speed] = seq_cost (seq, speed);
366 start_sequence ();
367 emit_move_insn (mem, reg1);
368 emit_move_insn (reg2, mem);
369 seq = get_insns ();
370 end_sequence ();
371 target_spill_cost [speed] = seq_cost (seq, speed);
373 default_rtl_profile ();
376 /* Estimates cost of increased register pressure caused by making N_NEW new
377 registers live around the loop. N_OLD is the number of registers live
378 around the loop. If CALL_P is true, also take into account that
379 call-used registers may be clobbered in the loop body, reducing the
380 number of available registers before we spill. */
382 unsigned
383 estimate_reg_pressure_cost (unsigned n_new, unsigned n_old, bool speed,
384 bool call_p)
386 unsigned cost;
387 unsigned regs_needed = n_new + n_old;
388 unsigned available_regs = target_avail_regs;
390 /* If there is a call in the loop body, the call-clobbered registers
391 are not available for loop invariants. */
392 if (call_p)
393 available_regs = available_regs - target_clobbered_regs;
395 /* If we have enough registers, we should use them and not restrict
396 the transformations unnecessarily. */
397 if (regs_needed + target_res_regs <= available_regs)
398 return 0;
400 if (regs_needed <= available_regs)
401 /* If we are close to running out of registers, try to preserve
402 them. */
403 cost = target_reg_cost [speed] * n_new;
404 else
405 /* If we run out of registers, it is very expensive to add another
406 one. */
407 cost = target_spill_cost [speed] * n_new;
409 if (optimize && (flag_ira_region == IRA_REGION_ALL
410 || flag_ira_region == IRA_REGION_MIXED)
411 && number_of_loops (cfun) <= (unsigned) IRA_MAX_LOOPS_NUM)
412 /* IRA regional allocation deals with high register pressure
413 better. So decrease the cost (to do more accurate the cost
414 calculation for IRA, we need to know how many registers lives
415 through the loop transparently). */
416 cost /= 2;
418 return cost;
421 /* Sets EDGE_LOOP_EXIT flag for all loop exits. */
423 void
424 mark_loop_exit_edges (void)
426 basic_block bb;
427 edge e;
429 if (number_of_loops (cfun) <= 1)
430 return;
432 FOR_EACH_BB_FN (bb, cfun)
434 edge_iterator ei;
436 FOR_EACH_EDGE (e, ei, bb->succs)
438 if (loop_outer (bb->loop_father)
439 && loop_exit_edge_p (bb->loop_father, e))
440 e->flags |= EDGE_LOOP_EXIT;
441 else
442 e->flags &= ~EDGE_LOOP_EXIT;
447 /* Return exit edge if loop has only one exit that is likely
448 to be executed on runtime (i.e. it is not EH or leading
449 to noreturn call. */
451 edge
452 single_likely_exit (struct loop *loop)
454 edge found = single_exit (loop);
455 vec<edge> exits;
456 unsigned i;
457 edge ex;
459 if (found)
460 return found;
461 exits = get_loop_exit_edges (loop);
462 FOR_EACH_VEC_ELT (exits, i, ex)
464 if (ex->flags & (EDGE_EH | EDGE_ABNORMAL_CALL))
465 continue;
466 /* The constant of 5 is set in a way so noreturn calls are
467 ruled out by this test. The static branch prediction algorithm
468 will not assign such a low probability to conditionals for usual
469 reasons. */
470 if (profile_status_for_fn (cfun) != PROFILE_ABSENT
471 && ex->probability < 5 && !ex->count)
472 continue;
473 if (!found)
474 found = ex;
475 else
477 exits.release ();
478 return NULL;
481 exits.release ();
482 return found;
486 /* Gets basic blocks of a LOOP. Header is the 0-th block, rest is in dfs
487 order against direction of edges from latch. Specially, if
488 header != latch, latch is the 1-st block. */
490 vec<basic_block>
491 get_loop_hot_path (const struct loop *loop)
493 basic_block bb = loop->header;
494 vec<basic_block> path = vNULL;
495 bitmap visited = BITMAP_ALLOC (NULL);
497 while (true)
499 edge_iterator ei;
500 edge e;
501 edge best = NULL;
503 path.safe_push (bb);
504 bitmap_set_bit (visited, bb->index);
505 FOR_EACH_EDGE (e, ei, bb->succs)
506 if ((!best || e->probability > best->probability)
507 && !loop_exit_edge_p (loop, e)
508 && !bitmap_bit_p (visited, e->dest->index))
509 best = e;
510 if (!best || best->dest == loop->header)
511 break;
512 bb = best->dest;
514 BITMAP_FREE (visited);
515 return path;