src/share/vm/opto/loopTransform.cpp

Thu, 24 May 2018 19:26:50 +0800

author
aoqi
date
Thu, 24 May 2018 19:26:50 +0800
changeset 8862
fd13a567f179
parent 8856
ac27a9c85bea
child 9637
eef07cd490d4
permissions
-rw-r--r--

#7046 C2 supports long branch
Contributed-by: fujie

aoqi@0 1 /*
aoqi@0 2 * Copyright (c) 2000, 2013, Oracle and/or its affiliates. All rights reserved.
aoqi@0 3 * DO NOT ALTER OR REMOVE COPYRIGHT NOTICES OR THIS FILE HEADER.
aoqi@0 4 *
aoqi@0 5 * This code is free software; you can redistribute it and/or modify it
aoqi@0 6 * under the terms of the GNU General Public License version 2 only, as
aoqi@0 7 * published by the Free Software Foundation.
aoqi@0 8 *
aoqi@0 9 * This code is distributed in the hope that it will be useful, but WITHOUT
aoqi@0 10 * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
aoqi@0 11 * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
aoqi@0 12 * version 2 for more details (a copy is included in the LICENSE file that
aoqi@0 13 * accompanied this code).
aoqi@0 14 *
aoqi@0 15 * You should have received a copy of the GNU General Public License version
aoqi@0 16 * 2 along with this work; if not, write to the Free Software Foundation,
aoqi@0 17 * Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA.
aoqi@0 18 *
aoqi@0 19 * Please contact Oracle, 500 Oracle Parkway, Redwood Shores, CA 94065 USA
aoqi@0 20 * or visit www.oracle.com if you need additional information or have any
aoqi@0 21 * questions.
aoqi@0 22 *
aoqi@0 23 */
aoqi@0 24
aoqi@0 25 #include "precompiled.hpp"
aoqi@0 26 #include "compiler/compileLog.hpp"
aoqi@0 27 #include "memory/allocation.inline.hpp"
aoqi@0 28 #include "opto/addnode.hpp"
aoqi@0 29 #include "opto/callnode.hpp"
aoqi@0 30 #include "opto/connode.hpp"
aoqi@0 31 #include "opto/divnode.hpp"
aoqi@0 32 #include "opto/loopnode.hpp"
aoqi@0 33 #include "opto/mulnode.hpp"
aoqi@0 34 #include "opto/rootnode.hpp"
aoqi@0 35 #include "opto/runtime.hpp"
aoqi@0 36 #include "opto/subnode.hpp"
aoqi@0 37
aoqi@0 38 //------------------------------is_loop_exit-----------------------------------
aoqi@0 39 // Given an IfNode, return the loop-exiting projection or NULL if both
aoqi@0 40 // arms remain in the loop.
aoqi@0 41 Node *IdealLoopTree::is_loop_exit(Node *iff) const {
aoqi@0 42 if( iff->outcnt() != 2 ) return NULL; // Ignore partially dead tests
aoqi@0 43 PhaseIdealLoop *phase = _phase;
aoqi@0 44 // Test is an IfNode, has 2 projections. If BOTH are in the loop
aoqi@0 45 // we need loop unswitching instead of peeling.
aoqi@0 46 if( !is_member(phase->get_loop( iff->raw_out(0) )) )
aoqi@0 47 return iff->raw_out(0);
aoqi@0 48 if( !is_member(phase->get_loop( iff->raw_out(1) )) )
aoqi@0 49 return iff->raw_out(1);
aoqi@0 50 return NULL;
aoqi@0 51 }
aoqi@0 52
aoqi@0 53
aoqi@0 54 //=============================================================================
aoqi@0 55
aoqi@0 56
aoqi@0 57 //------------------------------record_for_igvn----------------------------
aoqi@0 58 // Put loop body on igvn work list
aoqi@0 59 void IdealLoopTree::record_for_igvn() {
aoqi@0 60 for( uint i = 0; i < _body.size(); i++ ) {
aoqi@0 61 Node *n = _body.at(i);
aoqi@0 62 _phase->_igvn._worklist.push(n);
aoqi@0 63 }
aoqi@0 64 }
aoqi@0 65
aoqi@0 66 //------------------------------compute_exact_trip_count-----------------------
aoqi@0 67 // Compute loop exact trip count if possible. Do not recalculate trip count for
aoqi@0 68 // split loops (pre-main-post) which have their limits and inits behind Opaque node.
aoqi@0 69 void IdealLoopTree::compute_exact_trip_count( PhaseIdealLoop *phase ) {
aoqi@0 70 if (!_head->as_Loop()->is_valid_counted_loop()) {
aoqi@0 71 return;
aoqi@0 72 }
aoqi@0 73 CountedLoopNode* cl = _head->as_CountedLoop();
aoqi@0 74 // Trip count may become nonexact for iteration split loops since
aoqi@0 75 // RCE modifies limits. Note, _trip_count value is not reset since
aoqi@0 76 // it is used to limit unrolling of main loop.
aoqi@0 77 cl->set_nonexact_trip_count();
aoqi@0 78
aoqi@0 79 // Loop's test should be part of loop.
aoqi@0 80 if (!phase->is_member(this, phase->get_ctrl(cl->loopexit()->in(CountedLoopEndNode::TestValue))))
aoqi@0 81 return; // Infinite loop
aoqi@0 82
aoqi@0 83 #ifdef ASSERT
aoqi@0 84 BoolTest::mask bt = cl->loopexit()->test_trip();
aoqi@0 85 assert(bt == BoolTest::lt || bt == BoolTest::gt ||
aoqi@0 86 bt == BoolTest::ne, "canonical test is expected");
aoqi@0 87 #endif
aoqi@0 88
aoqi@0 89 Node* init_n = cl->init_trip();
aoqi@0 90 Node* limit_n = cl->limit();
aoqi@0 91 if (init_n != NULL && init_n->is_Con() &&
aoqi@0 92 limit_n != NULL && limit_n->is_Con()) {
aoqi@0 93 // Use longs to avoid integer overflow.
aoqi@0 94 int stride_con = cl->stride_con();
aoqi@0 95 jlong init_con = cl->init_trip()->get_int();
aoqi@0 96 jlong limit_con = cl->limit()->get_int();
aoqi@0 97 int stride_m = stride_con - (stride_con > 0 ? 1 : -1);
aoqi@0 98 jlong trip_count = (limit_con - init_con + stride_m)/stride_con;
aoqi@0 99 if (trip_count > 0 && (julong)trip_count < (julong)max_juint) {
aoqi@0 100 // Set exact trip count.
aoqi@0 101 cl->set_exact_trip_count((uint)trip_count);
aoqi@0 102 }
aoqi@0 103 }
aoqi@0 104 }
aoqi@0 105
aoqi@0 106 //------------------------------compute_profile_trip_cnt----------------------------
aoqi@0 107 // Compute loop trip count from profile data as
aoqi@0 108 // (backedge_count + loop_exit_count) / loop_exit_count
aoqi@0 109 void IdealLoopTree::compute_profile_trip_cnt( PhaseIdealLoop *phase ) {
aoqi@0 110 if (!_head->is_CountedLoop()) {
aoqi@0 111 return;
aoqi@0 112 }
aoqi@0 113 CountedLoopNode* head = _head->as_CountedLoop();
aoqi@0 114 if (head->profile_trip_cnt() != COUNT_UNKNOWN) {
aoqi@0 115 return; // Already computed
aoqi@0 116 }
aoqi@0 117 float trip_cnt = (float)max_jint; // default is big
aoqi@0 118
aoqi@0 119 Node* back = head->in(LoopNode::LoopBackControl);
aoqi@0 120 while (back != head) {
aoqi@0 121 if ((back->Opcode() == Op_IfTrue || back->Opcode() == Op_IfFalse) &&
aoqi@0 122 back->in(0) &&
aoqi@0 123 back->in(0)->is_If() &&
aoqi@0 124 back->in(0)->as_If()->_fcnt != COUNT_UNKNOWN &&
aoqi@0 125 back->in(0)->as_If()->_prob != PROB_UNKNOWN) {
aoqi@0 126 break;
aoqi@0 127 }
aoqi@0 128 back = phase->idom(back);
aoqi@0 129 }
aoqi@0 130 if (back != head) {
aoqi@0 131 assert((back->Opcode() == Op_IfTrue || back->Opcode() == Op_IfFalse) &&
aoqi@0 132 back->in(0), "if-projection exists");
aoqi@0 133 IfNode* back_if = back->in(0)->as_If();
aoqi@0 134 float loop_back_cnt = back_if->_fcnt * back_if->_prob;
aoqi@0 135
aoqi@0 136 // Now compute a loop exit count
aoqi@0 137 float loop_exit_cnt = 0.0f;
aoqi@0 138 for( uint i = 0; i < _body.size(); i++ ) {
aoqi@0 139 Node *n = _body[i];
aoqi@0 140 if( n->is_If() ) {
aoqi@0 141 IfNode *iff = n->as_If();
aoqi@0 142 if( iff->_fcnt != COUNT_UNKNOWN && iff->_prob != PROB_UNKNOWN ) {
aoqi@0 143 Node *exit = is_loop_exit(iff);
aoqi@0 144 if( exit ) {
aoqi@0 145 float exit_prob = iff->_prob;
aoqi@0 146 if (exit->Opcode() == Op_IfFalse) exit_prob = 1.0 - exit_prob;
aoqi@0 147 if (exit_prob > PROB_MIN) {
aoqi@0 148 float exit_cnt = iff->_fcnt * exit_prob;
aoqi@0 149 loop_exit_cnt += exit_cnt;
aoqi@0 150 }
aoqi@0 151 }
aoqi@0 152 }
aoqi@0 153 }
aoqi@0 154 }
aoqi@0 155 if (loop_exit_cnt > 0.0f) {
aoqi@0 156 trip_cnt = (loop_back_cnt + loop_exit_cnt) / loop_exit_cnt;
aoqi@0 157 } else {
aoqi@0 158 // No exit count so use
aoqi@0 159 trip_cnt = loop_back_cnt;
aoqi@0 160 }
aoqi@0 161 }
aoqi@0 162 #ifndef PRODUCT
aoqi@0 163 if (TraceProfileTripCount) {
aoqi@0 164 tty->print_cr("compute_profile_trip_cnt lp: %d cnt: %f\n", head->_idx, trip_cnt);
aoqi@0 165 }
aoqi@0 166 #endif
aoqi@0 167 head->set_profile_trip_cnt(trip_cnt);
aoqi@0 168 }
aoqi@0 169
aoqi@0 170 //---------------------is_invariant_addition-----------------------------
aoqi@0 171 // Return nonzero index of invariant operand for an Add or Sub
aoqi@0 172 // of (nonconstant) invariant and variant values. Helper for reassociate_invariants.
aoqi@0 173 int IdealLoopTree::is_invariant_addition(Node* n, PhaseIdealLoop *phase) {
aoqi@0 174 int op = n->Opcode();
aoqi@0 175 if (op == Op_AddI || op == Op_SubI) {
aoqi@0 176 bool in1_invar = this->is_invariant(n->in(1));
aoqi@0 177 bool in2_invar = this->is_invariant(n->in(2));
aoqi@0 178 if (in1_invar && !in2_invar) return 1;
aoqi@0 179 if (!in1_invar && in2_invar) return 2;
aoqi@0 180 }
aoqi@0 181 return 0;
aoqi@0 182 }
aoqi@0 183
aoqi@0 184 //---------------------reassociate_add_sub-----------------------------
aoqi@0 185 // Reassociate invariant add and subtract expressions:
aoqi@0 186 //
aoqi@0 187 // inv1 + (x + inv2) => ( inv1 + inv2) + x
aoqi@0 188 // (x + inv2) + inv1 => ( inv1 + inv2) + x
aoqi@0 189 // inv1 + (x - inv2) => ( inv1 - inv2) + x
aoqi@0 190 // inv1 - (inv2 - x) => ( inv1 - inv2) + x
aoqi@0 191 // (x + inv2) - inv1 => (-inv1 + inv2) + x
aoqi@0 192 // (x - inv2) + inv1 => ( inv1 - inv2) + x
aoqi@0 193 // (x - inv2) - inv1 => (-inv1 - inv2) + x
aoqi@0 194 // inv1 + (inv2 - x) => ( inv1 + inv2) - x
aoqi@0 195 // inv1 - (x - inv2) => ( inv1 + inv2) - x
aoqi@0 196 // (inv2 - x) + inv1 => ( inv1 + inv2) - x
aoqi@0 197 // (inv2 - x) - inv1 => (-inv1 + inv2) - x
aoqi@0 198 // inv1 - (x + inv2) => ( inv1 - inv2) - x
aoqi@0 199 //
aoqi@0 200 Node* IdealLoopTree::reassociate_add_sub(Node* n1, PhaseIdealLoop *phase) {
aoqi@0 201 if (!n1->is_Add() && !n1->is_Sub() || n1->outcnt() == 0) return NULL;
aoqi@0 202 if (is_invariant(n1)) return NULL;
aoqi@0 203 int inv1_idx = is_invariant_addition(n1, phase);
aoqi@0 204 if (!inv1_idx) return NULL;
aoqi@0 205 // Don't mess with add of constant (igvn moves them to expression tree root.)
aoqi@0 206 if (n1->is_Add() && n1->in(2)->is_Con()) return NULL;
aoqi@0 207 Node* inv1 = n1->in(inv1_idx);
aoqi@0 208 Node* n2 = n1->in(3 - inv1_idx);
aoqi@0 209 int inv2_idx = is_invariant_addition(n2, phase);
aoqi@0 210 if (!inv2_idx) return NULL;
aoqi@0 211 Node* x = n2->in(3 - inv2_idx);
aoqi@0 212 Node* inv2 = n2->in(inv2_idx);
aoqi@0 213
aoqi@0 214 bool neg_x = n2->is_Sub() && inv2_idx == 1;
aoqi@0 215 bool neg_inv2 = n2->is_Sub() && inv2_idx == 2;
aoqi@0 216 bool neg_inv1 = n1->is_Sub() && inv1_idx == 2;
aoqi@0 217 if (n1->is_Sub() && inv1_idx == 1) {
aoqi@0 218 neg_x = !neg_x;
aoqi@0 219 neg_inv2 = !neg_inv2;
aoqi@0 220 }
aoqi@0 221 Node* inv1_c = phase->get_ctrl(inv1);
aoqi@0 222 Node* inv2_c = phase->get_ctrl(inv2);
aoqi@0 223 Node* n_inv1;
aoqi@0 224 if (neg_inv1) {
aoqi@0 225 Node *zero = phase->_igvn.intcon(0);
aoqi@0 226 phase->set_ctrl(zero, phase->C->root());
aoqi@0 227 n_inv1 = new (phase->C) SubINode(zero, inv1);
aoqi@0 228 phase->register_new_node(n_inv1, inv1_c);
aoqi@0 229 } else {
aoqi@0 230 n_inv1 = inv1;
aoqi@0 231 }
aoqi@0 232 Node* inv;
aoqi@0 233 if (neg_inv2) {
aoqi@0 234 inv = new (phase->C) SubINode(n_inv1, inv2);
aoqi@0 235 } else {
aoqi@0 236 inv = new (phase->C) AddINode(n_inv1, inv2);
aoqi@0 237 }
aoqi@0 238 phase->register_new_node(inv, phase->get_early_ctrl(inv));
aoqi@0 239
aoqi@0 240 Node* addx;
aoqi@0 241 if (neg_x) {
aoqi@0 242 addx = new (phase->C) SubINode(inv, x);
aoqi@0 243 } else {
aoqi@0 244 addx = new (phase->C) AddINode(x, inv);
aoqi@0 245 }
aoqi@0 246 phase->register_new_node(addx, phase->get_ctrl(x));
aoqi@0 247 phase->_igvn.replace_node(n1, addx);
aoqi@0 248 assert(phase->get_loop(phase->get_ctrl(n1)) == this, "");
aoqi@0 249 _body.yank(n1);
aoqi@0 250 return addx;
aoqi@0 251 }
aoqi@0 252
aoqi@0 253 //---------------------reassociate_invariants-----------------------------
aoqi@0 254 // Reassociate invariant expressions:
aoqi@0 255 void IdealLoopTree::reassociate_invariants(PhaseIdealLoop *phase) {
aoqi@0 256 for (int i = _body.size() - 1; i >= 0; i--) {
aoqi@0 257 Node *n = _body.at(i);
aoqi@0 258 for (int j = 0; j < 5; j++) {
aoqi@0 259 Node* nn = reassociate_add_sub(n, phase);
aoqi@0 260 if (nn == NULL) break;
aoqi@0 261 n = nn; // again
aoqi@0 262 };
aoqi@0 263 }
aoqi@0 264 }
aoqi@0 265
aoqi@0 266 //------------------------------policy_peeling---------------------------------
aoqi@0 267 // Return TRUE or FALSE if the loop should be peeled or not. Peel if we can
aoqi@0 268 // make some loop-invariant test (usually a null-check) happen before the loop.
aoqi@0 269 bool IdealLoopTree::policy_peeling( PhaseIdealLoop *phase ) const {
aoqi@0 270 Node *test = ((IdealLoopTree*)this)->tail();
aoqi@0 271 int body_size = ((IdealLoopTree*)this)->_body.size();
aoqi@0 272 // Peeling does loop cloning which can result in O(N^2) node construction
aoqi@0 273 if( body_size > 255 /* Prevent overflow for large body_size */
vlivanov@7385 274 || (body_size * body_size + phase->C->live_nodes()) > phase->C->max_node_limit() ) {
aoqi@0 275 return false; // too large to safely clone
aoqi@0 276 }
aoqi@0 277 while( test != _head ) { // Scan till run off top of loop
aoqi@0 278 if( test->is_If() ) { // Test?
aoqi@0 279 Node *ctrl = phase->get_ctrl(test->in(1));
aoqi@0 280 if (ctrl->is_top())
aoqi@0 281 return false; // Found dead test on live IF? No peeling!
aoqi@0 282 // Standard IF only has one input value to check for loop invariance
aoqi@0 283 assert( test->Opcode() == Op_If || test->Opcode() == Op_CountedLoopEnd, "Check this code when new subtype is added");
aoqi@0 284 // Condition is not a member of this loop?
aoqi@0 285 if( !is_member(phase->get_loop(ctrl)) &&
aoqi@0 286 is_loop_exit(test) )
aoqi@0 287 return true; // Found reason to peel!
aoqi@0 288 }
aoqi@0 289 // Walk up dominators to loop _head looking for test which is
aoqi@0 290 // executed on every path thru loop.
aoqi@0 291 test = phase->idom(test);
aoqi@0 292 }
aoqi@0 293 return false;
aoqi@0 294 }
aoqi@0 295
aoqi@0 296 //------------------------------peeled_dom_test_elim---------------------------
aoqi@0 297 // If we got the effect of peeling, either by actually peeling or by making
aoqi@0 298 // a pre-loop which must execute at least once, we can remove all
aoqi@0 299 // loop-invariant dominated tests in the main body.
aoqi@0 300 void PhaseIdealLoop::peeled_dom_test_elim( IdealLoopTree *loop, Node_List &old_new ) {
aoqi@0 301 bool progress = true;
aoqi@0 302 while( progress ) {
aoqi@0 303 progress = false; // Reset for next iteration
aoqi@0 304 Node *prev = loop->_head->in(LoopNode::LoopBackControl);//loop->tail();
aoqi@0 305 Node *test = prev->in(0);
aoqi@0 306 while( test != loop->_head ) { // Scan till run off top of loop
aoqi@0 307
aoqi@0 308 int p_op = prev->Opcode();
aoqi@0 309 if( (p_op == Op_IfFalse || p_op == Op_IfTrue) &&
aoqi@0 310 test->is_If() && // Test?
aoqi@0 311 !test->in(1)->is_Con() && // And not already obvious?
aoqi@0 312 // Condition is not a member of this loop?
aoqi@0 313 !loop->is_member(get_loop(get_ctrl(test->in(1))))){
aoqi@0 314 // Walk loop body looking for instances of this test
aoqi@0 315 for( uint i = 0; i < loop->_body.size(); i++ ) {
aoqi@0 316 Node *n = loop->_body.at(i);
aoqi@0 317 if( n->is_If() && n->in(1) == test->in(1) /*&& n != loop->tail()->in(0)*/ ) {
aoqi@0 318 // IfNode was dominated by version in peeled loop body
aoqi@0 319 progress = true;
aoqi@0 320 dominated_by( old_new[prev->_idx], n );
aoqi@0 321 }
aoqi@0 322 }
aoqi@0 323 }
aoqi@0 324 prev = test;
aoqi@0 325 test = idom(test);
aoqi@0 326 } // End of scan tests in loop
aoqi@0 327
aoqi@0 328 } // End of while( progress )
aoqi@0 329 }
aoqi@0 330
aoqi@0 331 //------------------------------do_peeling-------------------------------------
aoqi@0 332 // Peel the first iteration of the given loop.
aoqi@0 333 // Step 1: Clone the loop body. The clone becomes the peeled iteration.
aoqi@0 334 // The pre-loop illegally has 2 control users (old & new loops).
aoqi@0 335 // Step 2: Make the old-loop fall-in edges point to the peeled iteration.
aoqi@0 336 // Do this by making the old-loop fall-in edges act as if they came
aoqi@0 337 // around the loopback from the prior iteration (follow the old-loop
aoqi@0 338 // backedges) and then map to the new peeled iteration. This leaves
aoqi@0 339 // the pre-loop with only 1 user (the new peeled iteration), but the
aoqi@0 340 // peeled-loop backedge has 2 users.
aoqi@0 341 // Step 3: Cut the backedge on the clone (so its not a loop) and remove the
aoqi@0 342 // extra backedge user.
aoqi@0 343 //
aoqi@0 344 // orig
aoqi@0 345 //
aoqi@0 346 // stmt1
aoqi@0 347 // |
aoqi@0 348 // v
aoqi@0 349 // loop predicate
aoqi@0 350 // |
aoqi@0 351 // v
aoqi@0 352 // loop<----+
aoqi@0 353 // | |
aoqi@0 354 // stmt2 |
aoqi@0 355 // | |
aoqi@0 356 // v |
aoqi@0 357 // if ^
aoqi@0 358 // / \ |
aoqi@0 359 // / \ |
aoqi@0 360 // v v |
aoqi@0 361 // false true |
aoqi@0 362 // / \ |
aoqi@0 363 // / ----+
aoqi@0 364 // |
aoqi@0 365 // v
aoqi@0 366 // exit
aoqi@0 367 //
aoqi@0 368 //
aoqi@0 369 // after clone loop
aoqi@0 370 //
aoqi@0 371 // stmt1
aoqi@0 372 // |
aoqi@0 373 // v
aoqi@0 374 // loop predicate
aoqi@0 375 // / \
aoqi@0 376 // clone / \ orig
aoqi@0 377 // / \
aoqi@0 378 // / \
aoqi@0 379 // v v
aoqi@0 380 // +---->loop clone loop<----+
aoqi@0 381 // | | | |
aoqi@0 382 // | stmt2 clone stmt2 |
aoqi@0 383 // | | | |
aoqi@0 384 // | v v |
aoqi@0 385 // ^ if clone If ^
aoqi@0 386 // | / \ / \ |
aoqi@0 387 // | / \ / \ |
aoqi@0 388 // | v v v v |
aoqi@0 389 // | true false false true |
aoqi@0 390 // | / \ / \ |
aoqi@0 391 // +---- \ / ----+
aoqi@0 392 // \ /
aoqi@0 393 // 1v v2
aoqi@0 394 // region
aoqi@0 395 // |
aoqi@0 396 // v
aoqi@0 397 // exit
aoqi@0 398 //
aoqi@0 399 //
aoqi@0 400 // after peel and predicate move
aoqi@0 401 //
aoqi@0 402 // stmt1
aoqi@0 403 // /
aoqi@0 404 // /
aoqi@0 405 // clone / orig
aoqi@0 406 // /
aoqi@0 407 // / +----------+
aoqi@0 408 // / | |
aoqi@0 409 // / loop predicate |
aoqi@0 410 // / | |
aoqi@0 411 // v v |
aoqi@0 412 // TOP-->loop clone loop<----+ |
aoqi@0 413 // | | | |
aoqi@0 414 // stmt2 clone stmt2 | |
aoqi@0 415 // | | | ^
aoqi@0 416 // v v | |
aoqi@0 417 // if clone If ^ |
aoqi@0 418 // / \ / \ | |
aoqi@0 419 // / \ / \ | |
aoqi@0 420 // v v v v | |
aoqi@0 421 // true false false true | |
aoqi@0 422 // | \ / \ | |
aoqi@0 423 // | \ / ----+ ^
aoqi@0 424 // | \ / |
aoqi@0 425 // | 1v v2 |
aoqi@0 426 // v region |
aoqi@0 427 // | | |
aoqi@0 428 // | v |
aoqi@0 429 // | exit |
aoqi@0 430 // | |
aoqi@0 431 // +--------------->-----------------+
aoqi@0 432 //
aoqi@0 433 //
aoqi@0 434 // final graph
aoqi@0 435 //
aoqi@0 436 // stmt1
aoqi@0 437 // |
aoqi@0 438 // v
aoqi@0 439 // stmt2 clone
aoqi@0 440 // |
aoqi@0 441 // v
aoqi@0 442 // if clone
aoqi@0 443 // / |
aoqi@0 444 // / |
aoqi@0 445 // v v
aoqi@0 446 // false true
aoqi@0 447 // | |
aoqi@0 448 // | v
aoqi@0 449 // | loop predicate
aoqi@0 450 // | |
aoqi@0 451 // | v
aoqi@0 452 // | loop<----+
aoqi@0 453 // | | |
aoqi@0 454 // | stmt2 |
aoqi@0 455 // | | |
aoqi@0 456 // | v |
aoqi@0 457 // v if ^
aoqi@0 458 // | / \ |
aoqi@0 459 // | / \ |
aoqi@0 460 // | v v |
aoqi@0 461 // | false true |
aoqi@0 462 // | | \ |
aoqi@0 463 // v v --+
aoqi@0 464 // region
aoqi@0 465 // |
aoqi@0 466 // v
aoqi@0 467 // exit
aoqi@0 468 //
aoqi@0 469 void PhaseIdealLoop::do_peeling( IdealLoopTree *loop, Node_List &old_new ) {
aoqi@0 470
aoqi@0 471 C->set_major_progress();
aoqi@0 472 // Peeling a 'main' loop in a pre/main/post situation obfuscates the
aoqi@0 473 // 'pre' loop from the main and the 'pre' can no longer have it's
aoqi@0 474 // iterations adjusted. Therefore, we need to declare this loop as
aoqi@0 475 // no longer a 'main' loop; it will need new pre and post loops before
aoqi@0 476 // we can do further RCE.
aoqi@0 477 #ifndef PRODUCT
aoqi@0 478 if (TraceLoopOpts) {
aoqi@0 479 tty->print("Peel ");
aoqi@0 480 loop->dump_head();
aoqi@0 481 }
aoqi@0 482 #endif
aoqi@0 483 Node* head = loop->_head;
aoqi@0 484 bool counted_loop = head->is_CountedLoop();
aoqi@0 485 if (counted_loop) {
aoqi@0 486 CountedLoopNode *cl = head->as_CountedLoop();
aoqi@0 487 assert(cl->trip_count() > 0, "peeling a fully unrolled loop");
aoqi@0 488 cl->set_trip_count(cl->trip_count() - 1);
aoqi@0 489 if (cl->is_main_loop()) {
aoqi@0 490 cl->set_normal_loop();
aoqi@0 491 #ifndef PRODUCT
aoqi@0 492 if (PrintOpto && VerifyLoopOptimizations) {
aoqi@0 493 tty->print("Peeling a 'main' loop; resetting to 'normal' ");
aoqi@0 494 loop->dump_head();
aoqi@0 495 }
aoqi@0 496 #endif
aoqi@0 497 }
aoqi@0 498 }
aoqi@0 499 Node* entry = head->in(LoopNode::EntryControl);
aoqi@0 500
aoqi@0 501 // Step 1: Clone the loop body. The clone becomes the peeled iteration.
aoqi@0 502 // The pre-loop illegally has 2 control users (old & new loops).
aoqi@0 503 clone_loop( loop, old_new, dom_depth(head) );
aoqi@0 504
aoqi@0 505 // Step 2: Make the old-loop fall-in edges point to the peeled iteration.
aoqi@0 506 // Do this by making the old-loop fall-in edges act as if they came
aoqi@0 507 // around the loopback from the prior iteration (follow the old-loop
aoqi@0 508 // backedges) and then map to the new peeled iteration. This leaves
aoqi@0 509 // the pre-loop with only 1 user (the new peeled iteration), but the
aoqi@0 510 // peeled-loop backedge has 2 users.
aoqi@0 511 Node* new_entry = old_new[head->in(LoopNode::LoopBackControl)->_idx];
aoqi@0 512 _igvn.hash_delete(head);
aoqi@0 513 head->set_req(LoopNode::EntryControl, new_entry);
aoqi@0 514 for (DUIterator_Fast jmax, j = head->fast_outs(jmax); j < jmax; j++) {
aoqi@0 515 Node* old = head->fast_out(j);
aoqi@0 516 if (old->in(0) == loop->_head && old->req() == 3 && old->is_Phi()) {
aoqi@0 517 Node* new_exit_value = old_new[old->in(LoopNode::LoopBackControl)->_idx];
aoqi@0 518 if (!new_exit_value ) // Backedge value is ALSO loop invariant?
aoqi@0 519 // Then loop body backedge value remains the same.
aoqi@0 520 new_exit_value = old->in(LoopNode::LoopBackControl);
aoqi@0 521 _igvn.hash_delete(old);
aoqi@0 522 old->set_req(LoopNode::EntryControl, new_exit_value);
aoqi@0 523 }
aoqi@0 524 }
aoqi@0 525
aoqi@0 526
aoqi@0 527 // Step 3: Cut the backedge on the clone (so its not a loop) and remove the
aoqi@0 528 // extra backedge user.
aoqi@0 529 Node* new_head = old_new[head->_idx];
aoqi@0 530 _igvn.hash_delete(new_head);
aoqi@0 531 new_head->set_req(LoopNode::LoopBackControl, C->top());
aoqi@0 532 for (DUIterator_Fast j2max, j2 = new_head->fast_outs(j2max); j2 < j2max; j2++) {
aoqi@0 533 Node* use = new_head->fast_out(j2);
aoqi@0 534 if (use->in(0) == new_head && use->req() == 3 && use->is_Phi()) {
aoqi@0 535 _igvn.hash_delete(use);
aoqi@0 536 use->set_req(LoopNode::LoopBackControl, C->top());
aoqi@0 537 }
aoqi@0 538 }
aoqi@0 539
aoqi@0 540
aoqi@0 541 // Step 4: Correct dom-depth info. Set to loop-head depth.
aoqi@0 542 int dd = dom_depth(head);
aoqi@0 543 set_idom(head, head->in(1), dd);
aoqi@0 544 for (uint j3 = 0; j3 < loop->_body.size(); j3++) {
aoqi@0 545 Node *old = loop->_body.at(j3);
aoqi@0 546 Node *nnn = old_new[old->_idx];
aoqi@0 547 if (!has_ctrl(nnn))
aoqi@0 548 set_idom(nnn, idom(nnn), dd-1);
aoqi@0 549 }
aoqi@0 550
aoqi@0 551 // Now force out all loop-invariant dominating tests. The optimizer
aoqi@0 552 // finds some, but we _know_ they are all useless.
aoqi@0 553 peeled_dom_test_elim(loop,old_new);
aoqi@0 554
aoqi@0 555 loop->record_for_igvn();
aoqi@0 556 }
aoqi@0 557
aoqi@0 558 #define EMPTY_LOOP_SIZE 7 // number of nodes in an empty loop
aoqi@0 559
aoqi@0 560 //------------------------------policy_maximally_unroll------------------------
aoqi@0 561 // Calculate exact loop trip count and return true if loop can be maximally
aoqi@0 562 // unrolled.
aoqi@0 563 bool IdealLoopTree::policy_maximally_unroll( PhaseIdealLoop *phase ) const {
aoqi@0 564 CountedLoopNode *cl = _head->as_CountedLoop();
aoqi@0 565 assert(cl->is_normal_loop(), "");
aoqi@0 566 if (!cl->is_valid_counted_loop())
aoqi@0 567 return false; // Malformed counted loop
aoqi@0 568
aoqi@0 569 if (!cl->has_exact_trip_count()) {
aoqi@0 570 // Trip count is not exact.
aoqi@0 571 return false;
aoqi@0 572 }
aoqi@0 573
aoqi@0 574 uint trip_count = cl->trip_count();
aoqi@0 575 // Note, max_juint is used to indicate unknown trip count.
aoqi@0 576 assert(trip_count > 1, "one iteration loop should be optimized out already");
aoqi@0 577 assert(trip_count < max_juint, "exact trip_count should be less than max_uint.");
aoqi@0 578
aoqi@0 579 // Real policy: if we maximally unroll, does it get too big?
aoqi@0 580 // Allow the unrolled mess to get larger than standard loop
aoqi@0 581 // size. After all, it will no longer be a loop.
aoqi@0 582 uint body_size = _body.size();
aoqi@0 583 uint unroll_limit = (uint)LoopUnrollLimit * 4;
aoqi@0 584 assert( (intx)unroll_limit == LoopUnrollLimit * 4, "LoopUnrollLimit must fit in 32bits");
aoqi@0 585 if (trip_count > unroll_limit || body_size > unroll_limit) {
aoqi@0 586 return false;
aoqi@0 587 }
aoqi@0 588
aoqi@0 589 // Fully unroll a loop with few iterations regardless next
aoqi@0 590 // conditions since following loop optimizations will split
aoqi@0 591 // such loop anyway (pre-main-post).
aoqi@0 592 if (trip_count <= 3)
aoqi@0 593 return true;
aoqi@0 594
aoqi@0 595 // Take into account that after unroll conjoined heads and tails will fold,
aoqi@0 596 // otherwise policy_unroll() may allow more unrolling than max unrolling.
aoqi@0 597 uint new_body_size = EMPTY_LOOP_SIZE + (body_size - EMPTY_LOOP_SIZE) * trip_count;
aoqi@0 598 uint tst_body_size = (new_body_size - EMPTY_LOOP_SIZE) / trip_count + EMPTY_LOOP_SIZE;
aoqi@0 599 if (body_size != tst_body_size) // Check for int overflow
aoqi@0 600 return false;
aoqi@0 601 if (new_body_size > unroll_limit ||
aoqi@0 602 // Unrolling can result in a large amount of node construction
vlivanov@7385 603 new_body_size >= phase->C->max_node_limit() - phase->C->live_nodes()) {
aoqi@0 604 return false;
aoqi@0 605 }
aoqi@0 606
aoqi@0 607 // Do not unroll a loop with String intrinsics code.
aoqi@0 608 // String intrinsics are large and have loops.
aoqi@0 609 for (uint k = 0; k < _body.size(); k++) {
aoqi@0 610 Node* n = _body.at(k);
aoqi@0 611 switch (n->Opcode()) {
aoqi@0 612 case Op_StrComp:
aoqi@0 613 case Op_StrEquals:
aoqi@0 614 case Op_StrIndexOf:
aoqi@0 615 case Op_EncodeISOArray:
aoqi@0 616 case Op_AryEq: {
aoqi@0 617 return false;
aoqi@0 618 }
aoqi@0 619 #if INCLUDE_RTM_OPT
aoqi@0 620 case Op_FastLock:
aoqi@0 621 case Op_FastUnlock: {
aoqi@0 622 // Don't unroll RTM locking code because it is large.
aoqi@0 623 if (UseRTMLocking) {
aoqi@0 624 return false;
aoqi@0 625 }
aoqi@0 626 }
aoqi@0 627 #endif
aoqi@0 628 } // switch
aoqi@0 629 }
aoqi@0 630
aoqi@0 631 return true; // Do maximally unroll
aoqi@0 632 }
aoqi@0 633
aoqi@0 634
aoqi@0 635 //------------------------------policy_unroll----------------------------------
aoqi@0 636 // Return TRUE or FALSE if the loop should be unrolled or not. Unroll if
aoqi@0 637 // the loop is a CountedLoop and the body is small enough.
aoqi@0 638 bool IdealLoopTree::policy_unroll( PhaseIdealLoop *phase ) const {
aoqi@0 639
aoqi@0 640 CountedLoopNode *cl = _head->as_CountedLoop();
aoqi@0 641 assert(cl->is_normal_loop() || cl->is_main_loop(), "");
aoqi@0 642
aoqi@0 643 if (!cl->is_valid_counted_loop())
aoqi@0 644 return false; // Malformed counted loop
aoqi@0 645
aoqi@0 646 // Protect against over-unrolling.
aoqi@0 647 // After split at least one iteration will be executed in pre-loop.
aoqi@0 648 if (cl->trip_count() <= (uint)(cl->is_normal_loop() ? 2 : 1)) return false;
aoqi@0 649
aoqi@0 650 int future_unroll_ct = cl->unrolled_count() * 2;
aoqi@0 651 if (future_unroll_ct > LoopMaxUnroll) return false;
aoqi@0 652
aoqi@0 653 // Check for initial stride being a small enough constant
aoqi@0 654 if (abs(cl->stride_con()) > (1<<2)*future_unroll_ct) return false;
aoqi@0 655
aoqi@0 656 // Don't unroll if the next round of unrolling would push us
aoqi@0 657 // over the expected trip count of the loop. One is subtracted
aoqi@0 658 // from the expected trip count because the pre-loop normally
aoqi@0 659 // executes 1 iteration.
aoqi@0 660 if (UnrollLimitForProfileCheck > 0 &&
aoqi@0 661 cl->profile_trip_cnt() != COUNT_UNKNOWN &&
aoqi@0 662 future_unroll_ct > UnrollLimitForProfileCheck &&
aoqi@0 663 (float)future_unroll_ct > cl->profile_trip_cnt() - 1.0) {
aoqi@0 664 return false;
aoqi@0 665 }
aoqi@0 666
aoqi@0 667 // When unroll count is greater than LoopUnrollMin, don't unroll if:
aoqi@0 668 // the residual iterations are more than 10% of the trip count
aoqi@0 669 // and rounds of "unroll,optimize" are not making significant progress
aoqi@0 670 // Progress defined as current size less than 20% larger than previous size.
aoqi@0 671 if (UseSuperWord && cl->node_count_before_unroll() > 0 &&
aoqi@0 672 future_unroll_ct > LoopUnrollMin &&
aoqi@0 673 (future_unroll_ct - 1) * 10.0 > cl->profile_trip_cnt() &&
aoqi@0 674 1.2 * cl->node_count_before_unroll() < (double)_body.size()) {
aoqi@0 675 return false;
aoqi@0 676 }
aoqi@0 677
aoqi@0 678 Node *init_n = cl->init_trip();
aoqi@0 679 Node *limit_n = cl->limit();
aoqi@0 680 int stride_con = cl->stride_con();
aoqi@0 681 // Non-constant bounds.
aoqi@0 682 // Protect against over-unrolling when init or/and limit are not constant
aoqi@0 683 // (so that trip_count's init value is maxint) but iv range is known.
aoqi@0 684 if (init_n == NULL || !init_n->is_Con() ||
aoqi@0 685 limit_n == NULL || !limit_n->is_Con()) {
aoqi@0 686 Node* phi = cl->phi();
aoqi@0 687 if (phi != NULL) {
aoqi@0 688 assert(phi->is_Phi() && phi->in(0) == _head, "Counted loop should have iv phi.");
aoqi@0 689 const TypeInt* iv_type = phase->_igvn.type(phi)->is_int();
aoqi@0 690 int next_stride = stride_con * 2; // stride after this unroll
aoqi@0 691 if (next_stride > 0) {
aoqi@0 692 if (iv_type->_lo + next_stride <= iv_type->_lo || // overflow
aoqi@0 693 iv_type->_lo + next_stride > iv_type->_hi) {
aoqi@0 694 return false; // over-unrolling
aoqi@0 695 }
aoqi@0 696 } else if (next_stride < 0) {
aoqi@0 697 if (iv_type->_hi + next_stride >= iv_type->_hi || // overflow
aoqi@0 698 iv_type->_hi + next_stride < iv_type->_lo) {
aoqi@0 699 return false; // over-unrolling
aoqi@0 700 }
aoqi@0 701 }
aoqi@0 702 }
aoqi@0 703 }
aoqi@0 704
aoqi@0 705 // After unroll limit will be adjusted: new_limit = limit-stride.
aoqi@0 706 // Bailout if adjustment overflow.
aoqi@0 707 const TypeInt* limit_type = phase->_igvn.type(limit_n)->is_int();
aoqi@0 708 if (stride_con > 0 && ((limit_type->_hi - stride_con) >= limit_type->_hi) ||
aoqi@0 709 stride_con < 0 && ((limit_type->_lo - stride_con) <= limit_type->_lo))
aoqi@0 710 return false; // overflow
aoqi@0 711
aoqi@0 712 // Adjust body_size to determine if we unroll or not
aoqi@0 713 uint body_size = _body.size();
aoqi@0 714 // Key test to unroll loop in CRC32 java code
aoqi@0 715 int xors_in_loop = 0;
aoqi@0 716 // Also count ModL, DivL and MulL which expand mightly
aoqi@0 717 for (uint k = 0; k < _body.size(); k++) {
aoqi@0 718 Node* n = _body.at(k);
aoqi@0 719 switch (n->Opcode()) {
aoqi@0 720 case Op_XorI: xors_in_loop++; break; // CRC32 java code
aoqi@0 721 case Op_ModL: body_size += 30; break;
aoqi@0 722 case Op_DivL: body_size += 30; break;
aoqi@0 723 case Op_MulL: body_size += 10; break;
aoqi@0 724 case Op_StrComp:
aoqi@0 725 case Op_StrEquals:
aoqi@0 726 case Op_StrIndexOf:
aoqi@0 727 case Op_EncodeISOArray:
aoqi@0 728 case Op_AryEq: {
aoqi@0 729 // Do not unroll a loop with String intrinsics code.
aoqi@0 730 // String intrinsics are large and have loops.
aoqi@0 731 return false;
aoqi@0 732 }
aoqi@0 733 #if INCLUDE_RTM_OPT
aoqi@0 734 case Op_FastLock:
aoqi@0 735 case Op_FastUnlock: {
aoqi@0 736 // Don't unroll RTM locking code because it is large.
aoqi@0 737 if (UseRTMLocking) {
aoqi@0 738 return false;
aoqi@0 739 }
aoqi@0 740 }
aoqi@0 741 #endif
aoqi@0 742 } // switch
aoqi@0 743 }
aoqi@0 744
aoqi@0 745 // Check for being too big
aoqi@0 746 if (body_size > (uint)LoopUnrollLimit) {
aoqi@0 747 if (xors_in_loop >= 4 && body_size < (uint)LoopUnrollLimit*4) return true;
aoqi@0 748 // Normal case: loop too big
aoqi@0 749 return false;
aoqi@0 750 }
aoqi@0 751
aoqi@0 752 // Unroll once! (Each trip will soon do double iterations)
aoqi@0 753 return true;
aoqi@0 754 }
aoqi@0 755
aoqi@0 756 //------------------------------policy_align-----------------------------------
aoqi@0 757 // Return TRUE or FALSE if the loop should be cache-line aligned. Gather the
aoqi@0 758 // expression that does the alignment. Note that only one array base can be
aoqi@0 759 // aligned in a loop (unless the VM guarantees mutual alignment). Note that
aoqi@0 760 // if we vectorize short memory ops into longer memory ops, we may want to
aoqi@0 761 // increase alignment.
aoqi@0 762 bool IdealLoopTree::policy_align( PhaseIdealLoop *phase ) const {
aoqi@0 763 return false;
aoqi@0 764 }
aoqi@0 765
aoqi@0 766 //------------------------------policy_range_check-----------------------------
aoqi@0 767 // Return TRUE or FALSE if the loop should be range-check-eliminated.
aoqi@0 768 // Actually we do iteration-splitting, a more powerful form of RCE.
aoqi@0 769 bool IdealLoopTree::policy_range_check( PhaseIdealLoop *phase ) const {
aoqi@0 770 if (!RangeCheckElimination) return false;
aoqi@0 771
aoqi@0 772 CountedLoopNode *cl = _head->as_CountedLoop();
aoqi@0 773 // If we unrolled with no intention of doing RCE and we later
aoqi@0 774 // changed our minds, we got no pre-loop. Either we need to
aoqi@0 775 // make a new pre-loop, or we gotta disallow RCE.
aoqi@0 776 if (cl->is_main_no_pre_loop()) return false; // Disallowed for now.
aoqi@0 777 Node *trip_counter = cl->phi();
aoqi@0 778
aoqi@0 779 // Check loop body for tests of trip-counter plus loop-invariant vs
aoqi@0 780 // loop-invariant.
aoqi@0 781 for (uint i = 0; i < _body.size(); i++) {
aoqi@0 782 Node *iff = _body[i];
aoqi@0 783 if (iff->Opcode() == Op_If) { // Test?
aoqi@0 784
aoqi@0 785 // Comparing trip+off vs limit
aoqi@0 786 Node *bol = iff->in(1);
aoqi@0 787 if (bol->req() != 2) continue; // dead constant test
aoqi@0 788 if (!bol->is_Bool()) {
aoqi@0 789 assert(UseLoopPredicate && bol->Opcode() == Op_Conv2B, "predicate check only");
aoqi@0 790 continue;
aoqi@0 791 }
aoqi@0 792 if (bol->as_Bool()->_test._test == BoolTest::ne)
aoqi@0 793 continue; // not RC
aoqi@0 794
aoqi@0 795 Node *cmp = bol->in(1);
aoqi@0 796 Node *rc_exp = cmp->in(1);
aoqi@0 797 Node *limit = cmp->in(2);
aoqi@0 798
aoqi@0 799 Node *limit_c = phase->get_ctrl(limit);
aoqi@0 800 if( limit_c == phase->C->top() )
aoqi@0 801 return false; // Found dead test on live IF? No RCE!
aoqi@0 802 if( is_member(phase->get_loop(limit_c) ) ) {
aoqi@0 803 // Compare might have operands swapped; commute them
aoqi@0 804 rc_exp = cmp->in(2);
aoqi@0 805 limit = cmp->in(1);
aoqi@0 806 limit_c = phase->get_ctrl(limit);
aoqi@0 807 if( is_member(phase->get_loop(limit_c) ) )
aoqi@0 808 continue; // Both inputs are loop varying; cannot RCE
aoqi@0 809 }
aoqi@0 810
aoqi@0 811 if (!phase->is_scaled_iv_plus_offset(rc_exp, trip_counter, NULL, NULL)) {
aoqi@0 812 continue;
aoqi@0 813 }
aoqi@0 814 // Yeah! Found a test like 'trip+off vs limit'
aoqi@0 815 // Test is an IfNode, has 2 projections. If BOTH are in the loop
aoqi@0 816 // we need loop unswitching instead of iteration splitting.
aoqi@0 817 if( is_loop_exit(iff) )
aoqi@0 818 return true; // Found reason to split iterations
aoqi@0 819 } // End of is IF
aoqi@0 820 }
aoqi@0 821
aoqi@0 822 return false;
aoqi@0 823 }
aoqi@0 824
aoqi@0 825 //------------------------------policy_peel_only-------------------------------
aoqi@0 826 // Return TRUE or FALSE if the loop should NEVER be RCE'd or aligned. Useful
aoqi@0 827 // for unrolling loops with NO array accesses.
aoqi@0 828 bool IdealLoopTree::policy_peel_only( PhaseIdealLoop *phase ) const {
aoqi@0 829
aoqi@0 830 for( uint i = 0; i < _body.size(); i++ )
aoqi@0 831 if( _body[i]->is_Mem() )
aoqi@0 832 return false;
aoqi@0 833
aoqi@0 834 // No memory accesses at all!
aoqi@0 835 return true;
aoqi@0 836 }
aoqi@0 837
aoqi@0 838 //------------------------------clone_up_backedge_goo--------------------------
aoqi@0 839 // If Node n lives in the back_ctrl block and cannot float, we clone a private
aoqi@0 840 // version of n in preheader_ctrl block and return that, otherwise return n.
aoqi@0 841 Node *PhaseIdealLoop::clone_up_backedge_goo( Node *back_ctrl, Node *preheader_ctrl, Node *n, VectorSet &visited, Node_Stack &clones ) {
aoqi@0 842 if( get_ctrl(n) != back_ctrl ) return n;
aoqi@0 843
aoqi@0 844 // Only visit once
aoqi@0 845 if (visited.test_set(n->_idx)) {
aoqi@0 846 Node *x = clones.find(n->_idx);
aoqi@0 847 if (x != NULL)
aoqi@0 848 return x;
aoqi@0 849 return n;
aoqi@0 850 }
aoqi@0 851
aoqi@0 852 Node *x = NULL; // If required, a clone of 'n'
aoqi@0 853 // Check for 'n' being pinned in the backedge.
aoqi@0 854 if( n->in(0) && n->in(0) == back_ctrl ) {
aoqi@0 855 assert(clones.find(n->_idx) == NULL, "dead loop");
aoqi@0 856 x = n->clone(); // Clone a copy of 'n' to preheader
aoqi@0 857 clones.push(x, n->_idx);
aoqi@0 858 x->set_req( 0, preheader_ctrl ); // Fix x's control input to preheader
aoqi@0 859 }
aoqi@0 860
aoqi@0 861 // Recursive fixup any other input edges into x.
aoqi@0 862 // If there are no changes we can just return 'n', otherwise
aoqi@0 863 // we need to clone a private copy and change it.
aoqi@0 864 for( uint i = 1; i < n->req(); i++ ) {
aoqi@0 865 Node *g = clone_up_backedge_goo( back_ctrl, preheader_ctrl, n->in(i), visited, clones );
aoqi@0 866 if( g != n->in(i) ) {
aoqi@0 867 if( !x ) {
aoqi@0 868 assert(clones.find(n->_idx) == NULL, "dead loop");
aoqi@0 869 x = n->clone();
aoqi@0 870 clones.push(x, n->_idx);
aoqi@0 871 }
aoqi@0 872 x->set_req(i, g);
aoqi@0 873 }
aoqi@0 874 }
aoqi@0 875 if( x ) { // x can legally float to pre-header location
aoqi@0 876 register_new_node( x, preheader_ctrl );
aoqi@0 877 return x;
aoqi@0 878 } else { // raise n to cover LCA of uses
aoqi@0 879 set_ctrl( n, find_non_split_ctrl(back_ctrl->in(0)) );
aoqi@0 880 }
aoqi@0 881 return n;
aoqi@0 882 }
aoqi@0 883
roland@7394 884 bool PhaseIdealLoop::cast_incr_before_loop(Node* incr, Node* ctrl, Node* loop) {
roland@7394 885 Node* castii = new (C) CastIINode(incr, TypeInt::INT, true);
roland@7394 886 castii->set_req(0, ctrl);
roland@7394 887 register_new_node(castii, ctrl);
roland@7394 888 for (DUIterator_Fast imax, i = incr->fast_outs(imax); i < imax; i++) {
roland@7394 889 Node* n = incr->fast_out(i);
roland@7394 890 if (n->is_Phi() && n->in(0) == loop) {
roland@7394 891 int nrep = n->replace_edge(incr, castii);
roland@7394 892 return true;
roland@7394 893 }
roland@7394 894 }
roland@7394 895 return false;
roland@7394 896 }
roland@7394 897
aoqi@0 898 //------------------------------insert_pre_post_loops--------------------------
aoqi@0 899 // Insert pre and post loops. If peel_only is set, the pre-loop can not have
aoqi@0 900 // more iterations added. It acts as a 'peel' only, no lower-bound RCE, no
aoqi@0 901 // alignment. Useful to unroll loops that do no array accesses.
aoqi@0 902 void PhaseIdealLoop::insert_pre_post_loops( IdealLoopTree *loop, Node_List &old_new, bool peel_only ) {
aoqi@0 903
aoqi@0 904 #ifndef PRODUCT
aoqi@0 905 if (TraceLoopOpts) {
aoqi@0 906 if (peel_only)
aoqi@0 907 tty->print("PeelMainPost ");
aoqi@0 908 else
aoqi@0 909 tty->print("PreMainPost ");
aoqi@0 910 loop->dump_head();
aoqi@0 911 }
aoqi@0 912 #endif
aoqi@0 913 C->set_major_progress();
aoqi@0 914
aoqi@0 915 // Find common pieces of the loop being guarded with pre & post loops
aoqi@0 916 CountedLoopNode *main_head = loop->_head->as_CountedLoop();
aoqi@0 917 assert( main_head->is_normal_loop(), "" );
aoqi@0 918 CountedLoopEndNode *main_end = main_head->loopexit();
aoqi@0 919 guarantee(main_end != NULL, "no loop exit node");
aoqi@0 920 assert( main_end->outcnt() == 2, "1 true, 1 false path only" );
aoqi@0 921 uint dd_main_head = dom_depth(main_head);
aoqi@0 922 uint max = main_head->outcnt();
aoqi@0 923
aoqi@0 924 Node *pre_header= main_head->in(LoopNode::EntryControl);
aoqi@0 925 Node *init = main_head->init_trip();
aoqi@0 926 Node *incr = main_end ->incr();
aoqi@0 927 Node *limit = main_end ->limit();
aoqi@0 928 Node *stride = main_end ->stride();
aoqi@0 929 Node *cmp = main_end ->cmp_node();
aoqi@0 930 BoolTest::mask b_test = main_end->test_trip();
aoqi@0 931
aoqi@0 932 // Need only 1 user of 'bol' because I will be hacking the loop bounds.
aoqi@0 933 Node *bol = main_end->in(CountedLoopEndNode::TestValue);
aoqi@0 934 if( bol->outcnt() != 1 ) {
aoqi@0 935 bol = bol->clone();
aoqi@0 936 register_new_node(bol,main_end->in(CountedLoopEndNode::TestControl));
aoqi@0 937 _igvn.hash_delete(main_end);
aoqi@0 938 main_end->set_req(CountedLoopEndNode::TestValue, bol);
aoqi@0 939 }
aoqi@0 940 // Need only 1 user of 'cmp' because I will be hacking the loop bounds.
aoqi@0 941 if( cmp->outcnt() != 1 ) {
aoqi@0 942 cmp = cmp->clone();
aoqi@0 943 register_new_node(cmp,main_end->in(CountedLoopEndNode::TestControl));
aoqi@0 944 _igvn.hash_delete(bol);
aoqi@0 945 bol->set_req(1, cmp);
aoqi@0 946 }
aoqi@0 947
aoqi@0 948 //------------------------------
aoqi@0 949 // Step A: Create Post-Loop.
aoqi@0 950 Node* main_exit = main_end->proj_out(false);
aoqi@0 951 assert( main_exit->Opcode() == Op_IfFalse, "" );
aoqi@0 952 int dd_main_exit = dom_depth(main_exit);
aoqi@0 953
aoqi@0 954 // Step A1: Clone the loop body. The clone becomes the post-loop. The main
aoqi@0 955 // loop pre-header illegally has 2 control users (old & new loops).
aoqi@0 956 clone_loop( loop, old_new, dd_main_exit );
aoqi@0 957 assert( old_new[main_end ->_idx]->Opcode() == Op_CountedLoopEnd, "" );
aoqi@0 958 CountedLoopNode *post_head = old_new[main_head->_idx]->as_CountedLoop();
aoqi@0 959 post_head->set_post_loop(main_head);
aoqi@0 960
aoqi@0 961 // Reduce the post-loop trip count.
aoqi@0 962 CountedLoopEndNode* post_end = old_new[main_end ->_idx]->as_CountedLoopEnd();
aoqi@0 963 post_end->_prob = PROB_FAIR;
aoqi@0 964
aoqi@0 965 // Build the main-loop normal exit.
aoqi@0 966 IfFalseNode *new_main_exit = new (C) IfFalseNode(main_end);
aoqi@0 967 _igvn.register_new_node_with_optimizer( new_main_exit );
aoqi@0 968 set_idom(new_main_exit, main_end, dd_main_exit );
aoqi@0 969 set_loop(new_main_exit, loop->_parent);
aoqi@0 970
aoqi@0 971 // Step A2: Build a zero-trip guard for the post-loop. After leaving the
aoqi@0 972 // main-loop, the post-loop may not execute at all. We 'opaque' the incr
aoqi@0 973 // (the main-loop trip-counter exit value) because we will be changing
aoqi@0 974 // the exit value (via unrolling) so we cannot constant-fold away the zero
aoqi@0 975 // trip guard until all unrolling is done.
aoqi@0 976 Node *zer_opaq = new (C) Opaque1Node(C, incr);
aoqi@0 977 Node *zer_cmp = new (C) CmpINode( zer_opaq, limit );
aoqi@0 978 Node *zer_bol = new (C) BoolNode( zer_cmp, b_test );
aoqi@0 979 register_new_node( zer_opaq, new_main_exit );
aoqi@0 980 register_new_node( zer_cmp , new_main_exit );
aoqi@0 981 register_new_node( zer_bol , new_main_exit );
aoqi@0 982
aoqi@0 983 // Build the IfNode
aoqi@0 984 IfNode *zer_iff = new (C) IfNode( new_main_exit, zer_bol, PROB_FAIR, COUNT_UNKNOWN );
aoqi@0 985 _igvn.register_new_node_with_optimizer( zer_iff );
aoqi@0 986 set_idom(zer_iff, new_main_exit, dd_main_exit);
aoqi@0 987 set_loop(zer_iff, loop->_parent);
aoqi@0 988
aoqi@0 989 // Plug in the false-path, taken if we need to skip post-loop
aoqi@0 990 _igvn.replace_input_of(main_exit, 0, zer_iff);
aoqi@0 991 set_idom(main_exit, zer_iff, dd_main_exit);
aoqi@0 992 set_idom(main_exit->unique_out(), zer_iff, dd_main_exit);
aoqi@0 993 // Make the true-path, must enter the post loop
aoqi@0 994 Node *zer_taken = new (C) IfTrueNode( zer_iff );
aoqi@0 995 _igvn.register_new_node_with_optimizer( zer_taken );
aoqi@0 996 set_idom(zer_taken, zer_iff, dd_main_exit);
aoqi@0 997 set_loop(zer_taken, loop->_parent);
aoqi@0 998 // Plug in the true path
aoqi@0 999 _igvn.hash_delete( post_head );
aoqi@0 1000 post_head->set_req(LoopNode::EntryControl, zer_taken);
aoqi@0 1001 set_idom(post_head, zer_taken, dd_main_exit);
aoqi@0 1002
aoqi@0 1003 Arena *a = Thread::current()->resource_area();
aoqi@0 1004 VectorSet visited(a);
aoqi@0 1005 Node_Stack clones(a, main_head->back_control()->outcnt());
aoqi@0 1006 // Step A3: Make the fall-in values to the post-loop come from the
aoqi@0 1007 // fall-out values of the main-loop.
aoqi@0 1008 for (DUIterator_Fast imax, i = main_head->fast_outs(imax); i < imax; i++) {
aoqi@0 1009 Node* main_phi = main_head->fast_out(i);
aoqi@0 1010 if( main_phi->is_Phi() && main_phi->in(0) == main_head && main_phi->outcnt() >0 ) {
aoqi@0 1011 Node *post_phi = old_new[main_phi->_idx];
aoqi@0 1012 Node *fallmain = clone_up_backedge_goo(main_head->back_control(),
aoqi@0 1013 post_head->init_control(),
aoqi@0 1014 main_phi->in(LoopNode::LoopBackControl),
aoqi@0 1015 visited, clones);
aoqi@0 1016 _igvn.hash_delete(post_phi);
aoqi@0 1017 post_phi->set_req( LoopNode::EntryControl, fallmain );
aoqi@0 1018 }
aoqi@0 1019 }
aoqi@0 1020
aoqi@0 1021 // Update local caches for next stanza
aoqi@0 1022 main_exit = new_main_exit;
aoqi@0 1023
aoqi@0 1024
aoqi@0 1025 //------------------------------
aoqi@0 1026 // Step B: Create Pre-Loop.
aoqi@0 1027
aoqi@0 1028 // Step B1: Clone the loop body. The clone becomes the pre-loop. The main
aoqi@0 1029 // loop pre-header illegally has 2 control users (old & new loops).
aoqi@0 1030 clone_loop( loop, old_new, dd_main_head );
aoqi@0 1031 CountedLoopNode* pre_head = old_new[main_head->_idx]->as_CountedLoop();
aoqi@0 1032 CountedLoopEndNode* pre_end = old_new[main_end ->_idx]->as_CountedLoopEnd();
aoqi@0 1033 pre_head->set_pre_loop(main_head);
aoqi@0 1034 Node *pre_incr = old_new[incr->_idx];
aoqi@0 1035
aoqi@0 1036 // Reduce the pre-loop trip count.
aoqi@0 1037 pre_end->_prob = PROB_FAIR;
aoqi@0 1038
aoqi@0 1039 // Find the pre-loop normal exit.
aoqi@0 1040 Node* pre_exit = pre_end->proj_out(false);
aoqi@0 1041 assert( pre_exit->Opcode() == Op_IfFalse, "" );
aoqi@0 1042 IfFalseNode *new_pre_exit = new (C) IfFalseNode(pre_end);
aoqi@0 1043 _igvn.register_new_node_with_optimizer( new_pre_exit );
aoqi@0 1044 set_idom(new_pre_exit, pre_end, dd_main_head);
aoqi@0 1045 set_loop(new_pre_exit, loop->_parent);
aoqi@0 1046
aoqi@0 1047 // Step B2: Build a zero-trip guard for the main-loop. After leaving the
aoqi@0 1048 // pre-loop, the main-loop may not execute at all. Later in life this
aoqi@0 1049 // zero-trip guard will become the minimum-trip guard when we unroll
aoqi@0 1050 // the main-loop.
aoqi@0 1051 Node *min_opaq = new (C) Opaque1Node(C, limit);
aoqi@0 1052 Node *min_cmp = new (C) CmpINode( pre_incr, min_opaq );
aoqi@0 1053 Node *min_bol = new (C) BoolNode( min_cmp, b_test );
aoqi@0 1054 register_new_node( min_opaq, new_pre_exit );
aoqi@0 1055 register_new_node( min_cmp , new_pre_exit );
aoqi@0 1056 register_new_node( min_bol , new_pre_exit );
aoqi@0 1057
aoqi@0 1058 // Build the IfNode (assume the main-loop is executed always).
aoqi@0 1059 IfNode *min_iff = new (C) IfNode( new_pre_exit, min_bol, PROB_ALWAYS, COUNT_UNKNOWN );
aoqi@0 1060 _igvn.register_new_node_with_optimizer( min_iff );
aoqi@0 1061 set_idom(min_iff, new_pre_exit, dd_main_head);
aoqi@0 1062 set_loop(min_iff, loop->_parent);
aoqi@0 1063
aoqi@0 1064 // Plug in the false-path, taken if we need to skip main-loop
aoqi@0 1065 _igvn.hash_delete( pre_exit );
aoqi@0 1066 pre_exit->set_req(0, min_iff);
aoqi@0 1067 set_idom(pre_exit, min_iff, dd_main_head);
aoqi@0 1068 set_idom(pre_exit->unique_out(), min_iff, dd_main_head);
aoqi@0 1069 // Make the true-path, must enter the main loop
aoqi@0 1070 Node *min_taken = new (C) IfTrueNode( min_iff );
aoqi@0 1071 _igvn.register_new_node_with_optimizer( min_taken );
aoqi@0 1072 set_idom(min_taken, min_iff, dd_main_head);
aoqi@0 1073 set_loop(min_taken, loop->_parent);
aoqi@0 1074 // Plug in the true path
aoqi@0 1075 _igvn.hash_delete( main_head );
aoqi@0 1076 main_head->set_req(LoopNode::EntryControl, min_taken);
aoqi@0 1077 set_idom(main_head, min_taken, dd_main_head);
aoqi@0 1078
aoqi@0 1079 visited.Clear();
aoqi@0 1080 clones.clear();
aoqi@0 1081 // Step B3: Make the fall-in values to the main-loop come from the
aoqi@0 1082 // fall-out values of the pre-loop.
aoqi@0 1083 for (DUIterator_Fast i2max, i2 = main_head->fast_outs(i2max); i2 < i2max; i2++) {
aoqi@0 1084 Node* main_phi = main_head->fast_out(i2);
aoqi@0 1085 if( main_phi->is_Phi() && main_phi->in(0) == main_head && main_phi->outcnt() > 0 ) {
aoqi@0 1086 Node *pre_phi = old_new[main_phi->_idx];
aoqi@0 1087 Node *fallpre = clone_up_backedge_goo(pre_head->back_control(),
aoqi@0 1088 main_head->init_control(),
aoqi@0 1089 pre_phi->in(LoopNode::LoopBackControl),
aoqi@0 1090 visited, clones);
aoqi@0 1091 _igvn.hash_delete(main_phi);
aoqi@0 1092 main_phi->set_req( LoopNode::EntryControl, fallpre );
aoqi@0 1093 }
aoqi@0 1094 }
aoqi@0 1095
roland@7394 1096 // Nodes inside the loop may be control dependent on a predicate
roland@7394 1097 // that was moved before the preloop. If the back branch of the main
roland@7394 1098 // or post loops becomes dead, those nodes won't be dependent on the
roland@7394 1099 // test that guards that loop nest anymore which could lead to an
roland@7394 1100 // incorrect array access because it executes independently of the
roland@7394 1101 // test that was guarding the loop nest. We add a special CastII on
roland@7394 1102 // the if branch that enters the loop, between the input induction
roland@7394 1103 // variable value and the induction variable Phi to preserve correct
roland@7394 1104 // dependencies.
roland@7394 1105
roland@7394 1106 // CastII for the post loop:
roland@7394 1107 bool inserted = cast_incr_before_loop(zer_opaq->in(1), zer_taken, post_head);
roland@7394 1108 assert(inserted, "no castII inserted");
roland@7394 1109
roland@7394 1110 // CastII for the main loop:
roland@7394 1111 inserted = cast_incr_before_loop(pre_incr, min_taken, main_head);
roland@7394 1112 assert(inserted, "no castII inserted");
roland@7394 1113
aoqi@0 1114 // Step B4: Shorten the pre-loop to run only 1 iteration (for now).
aoqi@0 1115 // RCE and alignment may change this later.
aoqi@0 1116 Node *cmp_end = pre_end->cmp_node();
aoqi@0 1117 assert( cmp_end->in(2) == limit, "" );
aoqi@0 1118 Node *pre_limit = new (C) AddINode( init, stride );
aoqi@0 1119
aoqi@0 1120 // Save the original loop limit in this Opaque1 node for
aoqi@0 1121 // use by range check elimination.
aoqi@0 1122 Node *pre_opaq = new (C) Opaque1Node(C, pre_limit, limit);
aoqi@0 1123
aoqi@0 1124 register_new_node( pre_limit, pre_head->in(0) );
aoqi@0 1125 register_new_node( pre_opaq , pre_head->in(0) );
aoqi@0 1126
aoqi@0 1127 // Since no other users of pre-loop compare, I can hack limit directly
aoqi@0 1128 assert( cmp_end->outcnt() == 1, "no other users" );
aoqi@0 1129 _igvn.hash_delete(cmp_end);
aoqi@0 1130 cmp_end->set_req(2, peel_only ? pre_limit : pre_opaq);
aoqi@0 1131
aoqi@0 1132 // Special case for not-equal loop bounds:
aoqi@0 1133 // Change pre loop test, main loop test, and the
aoqi@0 1134 // main loop guard test to use lt or gt depending on stride
aoqi@0 1135 // direction:
aoqi@0 1136 // positive stride use <
aoqi@0 1137 // negative stride use >
aoqi@0 1138 //
aoqi@0 1139 // not-equal test is kept for post loop to handle case
aoqi@0 1140 // when init > limit when stride > 0 (and reverse).
aoqi@0 1141
aoqi@0 1142 if (pre_end->in(CountedLoopEndNode::TestValue)->as_Bool()->_test._test == BoolTest::ne) {
aoqi@0 1143
aoqi@0 1144 BoolTest::mask new_test = (main_end->stride_con() > 0) ? BoolTest::lt : BoolTest::gt;
aoqi@0 1145 // Modify pre loop end condition
aoqi@0 1146 Node* pre_bol = pre_end->in(CountedLoopEndNode::TestValue)->as_Bool();
aoqi@0 1147 BoolNode* new_bol0 = new (C) BoolNode(pre_bol->in(1), new_test);
aoqi@0 1148 register_new_node( new_bol0, pre_head->in(0) );
aoqi@0 1149 _igvn.hash_delete(pre_end);
aoqi@0 1150 pre_end->set_req(CountedLoopEndNode::TestValue, new_bol0);
aoqi@0 1151 // Modify main loop guard condition
aoqi@0 1152 assert(min_iff->in(CountedLoopEndNode::TestValue) == min_bol, "guard okay");
aoqi@0 1153 BoolNode* new_bol1 = new (C) BoolNode(min_bol->in(1), new_test);
aoqi@0 1154 register_new_node( new_bol1, new_pre_exit );
aoqi@0 1155 _igvn.hash_delete(min_iff);
aoqi@0 1156 min_iff->set_req(CountedLoopEndNode::TestValue, new_bol1);
aoqi@0 1157 // Modify main loop end condition
aoqi@0 1158 BoolNode* main_bol = main_end->in(CountedLoopEndNode::TestValue)->as_Bool();
aoqi@0 1159 BoolNode* new_bol2 = new (C) BoolNode(main_bol->in(1), new_test);
aoqi@0 1160 register_new_node( new_bol2, main_end->in(CountedLoopEndNode::TestControl) );
aoqi@0 1161 _igvn.hash_delete(main_end);
aoqi@0 1162 main_end->set_req(CountedLoopEndNode::TestValue, new_bol2);
aoqi@0 1163 }
aoqi@0 1164
aoqi@0 1165 // Flag main loop
aoqi@0 1166 main_head->set_main_loop();
aoqi@0 1167 if( peel_only ) main_head->set_main_no_pre_loop();
aoqi@0 1168
aoqi@0 1169 // Subtract a trip count for the pre-loop.
aoqi@0 1170 main_head->set_trip_count(main_head->trip_count() - 1);
aoqi@0 1171
aoqi@0 1172 // It's difficult to be precise about the trip-counts
aoqi@0 1173 // for the pre/post loops. They are usually very short,
aoqi@0 1174 // so guess that 4 trips is a reasonable value.
aoqi@0 1175 post_head->set_profile_trip_cnt(4.0);
aoqi@0 1176 pre_head->set_profile_trip_cnt(4.0);
aoqi@0 1177
aoqi@0 1178 // Now force out all loop-invariant dominating tests. The optimizer
aoqi@0 1179 // finds some, but we _know_ they are all useless.
aoqi@0 1180 peeled_dom_test_elim(loop,old_new);
aoqi@0 1181 loop->record_for_igvn();
aoqi@0 1182 }
aoqi@0 1183
aoqi@0 1184 //------------------------------is_invariant-----------------------------
aoqi@0 1185 // Return true if n is invariant
aoqi@0 1186 bool IdealLoopTree::is_invariant(Node* n) const {
aoqi@0 1187 Node *n_c = _phase->has_ctrl(n) ? _phase->get_ctrl(n) : n;
aoqi@0 1188 if (n_c->is_top()) return false;
aoqi@0 1189 return !is_member(_phase->get_loop(n_c));
aoqi@0 1190 }
aoqi@0 1191
aoqi@0 1192
aoqi@0 1193 //------------------------------do_unroll--------------------------------------
aoqi@0 1194 // Unroll the loop body one step - make each trip do 2 iterations.
aoqi@0 1195 void PhaseIdealLoop::do_unroll( IdealLoopTree *loop, Node_List &old_new, bool adjust_min_trip ) {
aoqi@0 1196 assert(LoopUnrollLimit, "");
aoqi@0 1197 CountedLoopNode *loop_head = loop->_head->as_CountedLoop();
aoqi@0 1198 CountedLoopEndNode *loop_end = loop_head->loopexit();
aoqi@0 1199 assert(loop_end, "");
aoqi@0 1200 #ifndef PRODUCT
aoqi@0 1201 if (PrintOpto && VerifyLoopOptimizations) {
aoqi@0 1202 tty->print("Unrolling ");
aoqi@0 1203 loop->dump_head();
aoqi@0 1204 } else if (TraceLoopOpts) {
aoqi@0 1205 if (loop_head->trip_count() < (uint)LoopUnrollLimit) {
aoqi@0 1206 tty->print("Unroll %d(%2d) ", loop_head->unrolled_count()*2, loop_head->trip_count());
aoqi@0 1207 } else {
aoqi@0 1208 tty->print("Unroll %d ", loop_head->unrolled_count()*2);
aoqi@0 1209 }
aoqi@0 1210 loop->dump_head();
aoqi@0 1211 }
aoqi@0 1212 #endif
aoqi@0 1213
aoqi@0 1214 // Remember loop node count before unrolling to detect
aoqi@0 1215 // if rounds of unroll,optimize are making progress
aoqi@0 1216 loop_head->set_node_count_before_unroll(loop->_body.size());
aoqi@0 1217
aoqi@0 1218 Node *ctrl = loop_head->in(LoopNode::EntryControl);
aoqi@0 1219 Node *limit = loop_head->limit();
aoqi@0 1220 Node *init = loop_head->init_trip();
aoqi@0 1221 Node *stride = loop_head->stride();
aoqi@0 1222
aoqi@0 1223 Node *opaq = NULL;
aoqi@0 1224 if (adjust_min_trip) { // If not maximally unrolling, need adjustment
aoqi@0 1225 // Search for zero-trip guard.
aoqi@0 1226 assert( loop_head->is_main_loop(), "" );
aoqi@0 1227 assert( ctrl->Opcode() == Op_IfTrue || ctrl->Opcode() == Op_IfFalse, "" );
aoqi@0 1228 Node *iff = ctrl->in(0);
aoqi@0 1229 assert( iff->Opcode() == Op_If, "" );
aoqi@0 1230 Node *bol = iff->in(1);
aoqi@0 1231 assert( bol->Opcode() == Op_Bool, "" );
aoqi@0 1232 Node *cmp = bol->in(1);
aoqi@0 1233 assert( cmp->Opcode() == Op_CmpI, "" );
aoqi@0 1234 opaq = cmp->in(2);
aoqi@0 1235 // Occasionally it's possible for a zero-trip guard Opaque1 node to be
aoqi@0 1236 // optimized away and then another round of loop opts attempted.
aoqi@0 1237 // We can not optimize this particular loop in that case.
aoqi@0 1238 if (opaq->Opcode() != Op_Opaque1)
aoqi@0 1239 return; // Cannot find zero-trip guard! Bail out!
aoqi@0 1240 // Zero-trip test uses an 'opaque' node which is not shared.
aoqi@0 1241 assert(opaq->outcnt() == 1 && opaq->in(1) == limit, "");
aoqi@0 1242 }
aoqi@0 1243
aoqi@0 1244 C->set_major_progress();
aoqi@0 1245
aoqi@0 1246 Node* new_limit = NULL;
aoqi@0 1247 if (UnrollLimitCheck) {
aoqi@0 1248 int stride_con = stride->get_int();
aoqi@0 1249 int stride_p = (stride_con > 0) ? stride_con : -stride_con;
aoqi@0 1250 uint old_trip_count = loop_head->trip_count();
aoqi@0 1251 // Verify that unroll policy result is still valid.
aoqi@0 1252 assert(old_trip_count > 1 &&
aoqi@0 1253 (!adjust_min_trip || stride_p <= (1<<3)*loop_head->unrolled_count()), "sanity");
aoqi@0 1254
aoqi@0 1255 // Adjust loop limit to keep valid iterations number after unroll.
aoqi@0 1256 // Use (limit - stride) instead of (((limit - init)/stride) & (-2))*stride
aoqi@0 1257 // which may overflow.
aoqi@0 1258 if (!adjust_min_trip) {
aoqi@0 1259 assert(old_trip_count > 1 && (old_trip_count & 1) == 0,
aoqi@0 1260 "odd trip count for maximally unroll");
aoqi@0 1261 // Don't need to adjust limit for maximally unroll since trip count is even.
aoqi@0 1262 } else if (loop_head->has_exact_trip_count() && init->is_Con()) {
aoqi@0 1263 // Loop's limit is constant. Loop's init could be constant when pre-loop
aoqi@0 1264 // become peeled iteration.
aoqi@0 1265 jlong init_con = init->get_int();
aoqi@0 1266 // We can keep old loop limit if iterations count stays the same:
aoqi@0 1267 // old_trip_count == new_trip_count * 2
aoqi@0 1268 // Note: since old_trip_count >= 2 then new_trip_count >= 1
aoqi@0 1269 // so we also don't need to adjust zero trip test.
aoqi@0 1270 jlong limit_con = limit->get_int();
aoqi@0 1271 // (stride_con*2) not overflow since stride_con <= 8.
aoqi@0 1272 int new_stride_con = stride_con * 2;
aoqi@0 1273 int stride_m = new_stride_con - (stride_con > 0 ? 1 : -1);
aoqi@0 1274 jlong trip_count = (limit_con - init_con + stride_m)/new_stride_con;
aoqi@0 1275 // New trip count should satisfy next conditions.
aoqi@0 1276 assert(trip_count > 0 && (julong)trip_count < (julong)max_juint/2, "sanity");
aoqi@0 1277 uint new_trip_count = (uint)trip_count;
aoqi@0 1278 adjust_min_trip = (old_trip_count != new_trip_count*2);
aoqi@0 1279 }
aoqi@0 1280
aoqi@0 1281 if (adjust_min_trip) {
aoqi@0 1282 // Step 2: Adjust the trip limit if it is called for.
aoqi@0 1283 // The adjustment amount is -stride. Need to make sure if the
aoqi@0 1284 // adjustment underflows or overflows, then the main loop is skipped.
aoqi@0 1285 Node* cmp = loop_end->cmp_node();
aoqi@0 1286 assert(cmp->in(2) == limit, "sanity");
aoqi@0 1287 assert(opaq != NULL && opaq->in(1) == limit, "sanity");
aoqi@0 1288
aoqi@0 1289 // Verify that policy_unroll result is still valid.
aoqi@0 1290 const TypeInt* limit_type = _igvn.type(limit)->is_int();
aoqi@0 1291 assert(stride_con > 0 && ((limit_type->_hi - stride_con) < limit_type->_hi) ||
aoqi@0 1292 stride_con < 0 && ((limit_type->_lo - stride_con) > limit_type->_lo), "sanity");
aoqi@0 1293
aoqi@0 1294 if (limit->is_Con()) {
aoqi@0 1295 // The check in policy_unroll and the assert above guarantee
aoqi@0 1296 // no underflow if limit is constant.
aoqi@0 1297 new_limit = _igvn.intcon(limit->get_int() - stride_con);
aoqi@0 1298 set_ctrl(new_limit, C->root());
aoqi@0 1299 } else {
aoqi@0 1300 // Limit is not constant.
aoqi@0 1301 if (loop_head->unrolled_count() == 1) { // only for first unroll
aoqi@0 1302 // Separate limit by Opaque node in case it is an incremented
aoqi@0 1303 // variable from previous loop to avoid using pre-incremented
aoqi@0 1304 // value which could increase register pressure.
aoqi@0 1305 // Otherwise reorg_offsets() optimization will create a separate
aoqi@0 1306 // Opaque node for each use of trip-counter and as result
aoqi@0 1307 // zero trip guard limit will be different from loop limit.
aoqi@0 1308 assert(has_ctrl(opaq), "should have it");
aoqi@0 1309 Node* opaq_ctrl = get_ctrl(opaq);
aoqi@0 1310 limit = new (C) Opaque2Node( C, limit );
aoqi@0 1311 register_new_node( limit, opaq_ctrl );
aoqi@0 1312 }
aoqi@0 1313 if (stride_con > 0 && ((limit_type->_lo - stride_con) < limit_type->_lo) ||
aoqi@0 1314 stride_con < 0 && ((limit_type->_hi - stride_con) > limit_type->_hi)) {
aoqi@0 1315 // No underflow.
aoqi@0 1316 new_limit = new (C) SubINode(limit, stride);
aoqi@0 1317 } else {
aoqi@0 1318 // (limit - stride) may underflow.
aoqi@0 1319 // Clamp the adjustment value with MININT or MAXINT:
aoqi@0 1320 //
aoqi@0 1321 // new_limit = limit-stride
aoqi@0 1322 // if (stride > 0)
aoqi@0 1323 // new_limit = (limit < new_limit) ? MININT : new_limit;
aoqi@0 1324 // else
aoqi@0 1325 // new_limit = (limit > new_limit) ? MAXINT : new_limit;
aoqi@0 1326 //
aoqi@0 1327 BoolTest::mask bt = loop_end->test_trip();
aoqi@0 1328 assert(bt == BoolTest::lt || bt == BoolTest::gt, "canonical test is expected");
aoqi@0 1329 Node* adj_max = _igvn.intcon((stride_con > 0) ? min_jint : max_jint);
aoqi@0 1330 set_ctrl(adj_max, C->root());
aoqi@0 1331 Node* old_limit = NULL;
aoqi@0 1332 Node* adj_limit = NULL;
aoqi@0 1333 Node* bol = limit->is_CMove() ? limit->in(CMoveNode::Condition) : NULL;
aoqi@0 1334 if (loop_head->unrolled_count() > 1 &&
aoqi@0 1335 limit->is_CMove() && limit->Opcode() == Op_CMoveI &&
aoqi@0 1336 limit->in(CMoveNode::IfTrue) == adj_max &&
aoqi@0 1337 bol->as_Bool()->_test._test == bt &&
aoqi@0 1338 bol->in(1)->Opcode() == Op_CmpI &&
aoqi@0 1339 bol->in(1)->in(2) == limit->in(CMoveNode::IfFalse)) {
aoqi@0 1340 // Loop was unrolled before.
aoqi@0 1341 // Optimize the limit to avoid nested CMove:
aoqi@0 1342 // use original limit as old limit.
aoqi@0 1343 old_limit = bol->in(1)->in(1);
aoqi@0 1344 // Adjust previous adjusted limit.
aoqi@0 1345 adj_limit = limit->in(CMoveNode::IfFalse);
aoqi@0 1346 adj_limit = new (C) SubINode(adj_limit, stride);
aoqi@0 1347 } else {
aoqi@0 1348 old_limit = limit;
aoqi@0 1349 adj_limit = new (C) SubINode(limit, stride);
aoqi@0 1350 }
aoqi@0 1351 assert(old_limit != NULL && adj_limit != NULL, "");
aoqi@0 1352 register_new_node( adj_limit, ctrl ); // adjust amount
aoqi@0 1353 Node* adj_cmp = new (C) CmpINode(old_limit, adj_limit);
aoqi@0 1354 register_new_node( adj_cmp, ctrl );
aoqi@0 1355 Node* adj_bool = new (C) BoolNode(adj_cmp, bt);
aoqi@0 1356 register_new_node( adj_bool, ctrl );
aoqi@0 1357 new_limit = new (C) CMoveINode(adj_bool, adj_limit, adj_max, TypeInt::INT);
aoqi@0 1358 }
aoqi@0 1359 register_new_node(new_limit, ctrl);
aoqi@0 1360 }
aoqi@0 1361 assert(new_limit != NULL, "");
aoqi@0 1362 // Replace in loop test.
aoqi@0 1363 assert(loop_end->in(1)->in(1) == cmp, "sanity");
aoqi@0 1364 if (cmp->outcnt() == 1 && loop_end->in(1)->outcnt() == 1) {
aoqi@0 1365 // Don't need to create new test since only one user.
aoqi@0 1366 _igvn.hash_delete(cmp);
aoqi@0 1367 cmp->set_req(2, new_limit);
aoqi@0 1368 } else {
aoqi@0 1369 // Create new test since it is shared.
aoqi@0 1370 Node* ctrl2 = loop_end->in(0);
aoqi@0 1371 Node* cmp2 = cmp->clone();
aoqi@0 1372 cmp2->set_req(2, new_limit);
aoqi@0 1373 register_new_node(cmp2, ctrl2);
aoqi@0 1374 Node* bol2 = loop_end->in(1)->clone();
aoqi@0 1375 bol2->set_req(1, cmp2);
aoqi@0 1376 register_new_node(bol2, ctrl2);
aoqi@0 1377 _igvn.hash_delete(loop_end);
aoqi@0 1378 loop_end->set_req(1, bol2);
aoqi@0 1379 }
aoqi@0 1380 // Step 3: Find the min-trip test guaranteed before a 'main' loop.
aoqi@0 1381 // Make it a 1-trip test (means at least 2 trips).
aoqi@0 1382
aoqi@0 1383 // Guard test uses an 'opaque' node which is not shared. Hence I
aoqi@0 1384 // can edit it's inputs directly. Hammer in the new limit for the
aoqi@0 1385 // minimum-trip guard.
aoqi@0 1386 assert(opaq->outcnt() == 1, "");
aoqi@0 1387 _igvn.hash_delete(opaq);
aoqi@0 1388 opaq->set_req(1, new_limit);
aoqi@0 1389 }
aoqi@0 1390
aoqi@0 1391 // Adjust max trip count. The trip count is intentionally rounded
aoqi@0 1392 // down here (e.g. 15-> 7-> 3-> 1) because if we unwittingly over-unroll,
aoqi@0 1393 // the main, unrolled, part of the loop will never execute as it is protected
aoqi@0 1394 // by the min-trip test. See bug 4834191 for a case where we over-unrolled
aoqi@0 1395 // and later determined that part of the unrolled loop was dead.
aoqi@0 1396 loop_head->set_trip_count(old_trip_count / 2);
aoqi@0 1397
aoqi@0 1398 // Double the count of original iterations in the unrolled loop body.
aoqi@0 1399 loop_head->double_unrolled_count();
aoqi@0 1400
aoqi@0 1401 } else { // LoopLimitCheck
aoqi@0 1402
aoqi@0 1403 // Adjust max trip count. The trip count is intentionally rounded
aoqi@0 1404 // down here (e.g. 15-> 7-> 3-> 1) because if we unwittingly over-unroll,
aoqi@0 1405 // the main, unrolled, part of the loop will never execute as it is protected
aoqi@0 1406 // by the min-trip test. See bug 4834191 for a case where we over-unrolled
aoqi@0 1407 // and later determined that part of the unrolled loop was dead.
aoqi@0 1408 loop_head->set_trip_count(loop_head->trip_count() / 2);
aoqi@0 1409
aoqi@0 1410 // Double the count of original iterations in the unrolled loop body.
aoqi@0 1411 loop_head->double_unrolled_count();
aoqi@0 1412
aoqi@0 1413 // -----------
aoqi@0 1414 // Step 2: Cut back the trip counter for an unroll amount of 2.
aoqi@0 1415 // Loop will normally trip (limit - init)/stride_con. Since it's a
aoqi@0 1416 // CountedLoop this is exact (stride divides limit-init exactly).
aoqi@0 1417 // We are going to double the loop body, so we want to knock off any
aoqi@0 1418 // odd iteration: (trip_cnt & ~1). Then back compute a new limit.
aoqi@0 1419 Node *span = new (C) SubINode( limit, init );
aoqi@0 1420 register_new_node( span, ctrl );
aoqi@0 1421 Node *trip = new (C) DivINode( 0, span, stride );
aoqi@0 1422 register_new_node( trip, ctrl );
aoqi@0 1423 Node *mtwo = _igvn.intcon(-2);
aoqi@0 1424 set_ctrl(mtwo, C->root());
aoqi@0 1425 Node *rond = new (C) AndINode( trip, mtwo );
aoqi@0 1426 register_new_node( rond, ctrl );
aoqi@0 1427 Node *spn2 = new (C) MulINode( rond, stride );
aoqi@0 1428 register_new_node( spn2, ctrl );
aoqi@0 1429 new_limit = new (C) AddINode( spn2, init );
aoqi@0 1430 register_new_node( new_limit, ctrl );
aoqi@0 1431
aoqi@0 1432 // Hammer in the new limit
aoqi@0 1433 Node *ctrl2 = loop_end->in(0);
aoqi@0 1434 Node *cmp2 = new (C) CmpINode( loop_head->incr(), new_limit );
aoqi@0 1435 register_new_node( cmp2, ctrl2 );
aoqi@0 1436 Node *bol2 = new (C) BoolNode( cmp2, loop_end->test_trip() );
aoqi@0 1437 register_new_node( bol2, ctrl2 );
aoqi@0 1438 _igvn.hash_delete(loop_end);
aoqi@0 1439 loop_end->set_req(CountedLoopEndNode::TestValue, bol2);
aoqi@0 1440
aoqi@0 1441 // Step 3: Find the min-trip test guaranteed before a 'main' loop.
aoqi@0 1442 // Make it a 1-trip test (means at least 2 trips).
aoqi@0 1443 if( adjust_min_trip ) {
aoqi@0 1444 assert( new_limit != NULL, "" );
aoqi@0 1445 // Guard test uses an 'opaque' node which is not shared. Hence I
aoqi@0 1446 // can edit it's inputs directly. Hammer in the new limit for the
aoqi@0 1447 // minimum-trip guard.
aoqi@0 1448 assert( opaq->outcnt() == 1, "" );
aoqi@0 1449 _igvn.hash_delete(opaq);
aoqi@0 1450 opaq->set_req(1, new_limit);
aoqi@0 1451 }
aoqi@0 1452 } // LoopLimitCheck
aoqi@0 1453
aoqi@0 1454 // ---------
aoqi@0 1455 // Step 4: Clone the loop body. Move it inside the loop. This loop body
aoqi@0 1456 // represents the odd iterations; since the loop trips an even number of
aoqi@0 1457 // times its backedge is never taken. Kill the backedge.
aoqi@0 1458 uint dd = dom_depth(loop_head);
aoqi@0 1459 clone_loop( loop, old_new, dd );
aoqi@0 1460
aoqi@0 1461 // Make backedges of the clone equal to backedges of the original.
aoqi@0 1462 // Make the fall-in from the original come from the fall-out of the clone.
aoqi@0 1463 for (DUIterator_Fast jmax, j = loop_head->fast_outs(jmax); j < jmax; j++) {
aoqi@0 1464 Node* phi = loop_head->fast_out(j);
aoqi@0 1465 if( phi->is_Phi() && phi->in(0) == loop_head && phi->outcnt() > 0 ) {
aoqi@0 1466 Node *newphi = old_new[phi->_idx];
aoqi@0 1467 _igvn.hash_delete( phi );
aoqi@0 1468 _igvn.hash_delete( newphi );
aoqi@0 1469
aoqi@0 1470 phi ->set_req(LoopNode:: EntryControl, newphi->in(LoopNode::LoopBackControl));
aoqi@0 1471 newphi->set_req(LoopNode::LoopBackControl, phi ->in(LoopNode::LoopBackControl));
aoqi@0 1472 phi ->set_req(LoopNode::LoopBackControl, C->top());
aoqi@0 1473 }
aoqi@0 1474 }
aoqi@0 1475 Node *clone_head = old_new[loop_head->_idx];
aoqi@0 1476 _igvn.hash_delete( clone_head );
aoqi@0 1477 loop_head ->set_req(LoopNode:: EntryControl, clone_head->in(LoopNode::LoopBackControl));
aoqi@0 1478 clone_head->set_req(LoopNode::LoopBackControl, loop_head ->in(LoopNode::LoopBackControl));
aoqi@0 1479 loop_head ->set_req(LoopNode::LoopBackControl, C->top());
aoqi@0 1480 loop->_head = clone_head; // New loop header
aoqi@0 1481
aoqi@0 1482 set_idom(loop_head, loop_head ->in(LoopNode::EntryControl), dd);
aoqi@0 1483 set_idom(clone_head, clone_head->in(LoopNode::EntryControl), dd);
aoqi@0 1484
aoqi@0 1485 // Kill the clone's backedge
aoqi@0 1486 Node *newcle = old_new[loop_end->_idx];
aoqi@0 1487 _igvn.hash_delete( newcle );
aoqi@0 1488 Node *one = _igvn.intcon(1);
aoqi@0 1489 set_ctrl(one, C->root());
aoqi@0 1490 newcle->set_req(1, one);
aoqi@0 1491 // Force clone into same loop body
aoqi@0 1492 uint max = loop->_body.size();
aoqi@0 1493 for( uint k = 0; k < max; k++ ) {
aoqi@0 1494 Node *old = loop->_body.at(k);
aoqi@0 1495 Node *nnn = old_new[old->_idx];
aoqi@0 1496 loop->_body.push(nnn);
aoqi@0 1497 if (!has_ctrl(old))
aoqi@0 1498 set_loop(nnn, loop);
aoqi@0 1499 }
aoqi@0 1500
aoqi@0 1501 loop->record_for_igvn();
aoqi@0 1502 }
aoqi@0 1503
aoqi@0 1504 //------------------------------do_maximally_unroll----------------------------
aoqi@0 1505
aoqi@0 1506 void PhaseIdealLoop::do_maximally_unroll( IdealLoopTree *loop, Node_List &old_new ) {
aoqi@0 1507 CountedLoopNode *cl = loop->_head->as_CountedLoop();
aoqi@0 1508 assert(cl->has_exact_trip_count(), "trip count is not exact");
aoqi@0 1509 assert(cl->trip_count() > 0, "");
aoqi@0 1510 #ifndef PRODUCT
aoqi@0 1511 if (TraceLoopOpts) {
aoqi@0 1512 tty->print("MaxUnroll %d ", cl->trip_count());
aoqi@0 1513 loop->dump_head();
aoqi@0 1514 }
aoqi@0 1515 #endif
aoqi@0 1516
aoqi@0 1517 // If loop is tripping an odd number of times, peel odd iteration
aoqi@0 1518 if ((cl->trip_count() & 1) == 1) {
aoqi@0 1519 do_peeling(loop, old_new);
aoqi@0 1520 }
aoqi@0 1521
aoqi@0 1522 // Now its tripping an even number of times remaining. Double loop body.
aoqi@0 1523 // Do not adjust pre-guards; they are not needed and do not exist.
aoqi@0 1524 if (cl->trip_count() > 0) {
aoqi@0 1525 assert((cl->trip_count() & 1) == 0, "missed peeling");
aoqi@0 1526 do_unroll(loop, old_new, false);
aoqi@0 1527 }
aoqi@0 1528 }
aoqi@0 1529
aoqi@0 1530 //------------------------------dominates_backedge---------------------------------
aoqi@0 1531 // Returns true if ctrl is executed on every complete iteration
aoqi@0 1532 bool IdealLoopTree::dominates_backedge(Node* ctrl) {
aoqi@0 1533 assert(ctrl->is_CFG(), "must be control");
aoqi@0 1534 Node* backedge = _head->as_Loop()->in(LoopNode::LoopBackControl);
aoqi@0 1535 return _phase->dom_lca_internal(ctrl, backedge) == ctrl;
aoqi@0 1536 }
aoqi@0 1537
aoqi@0 1538 //------------------------------adjust_limit-----------------------------------
aoqi@0 1539 // Helper function for add_constraint().
aoqi@0 1540 Node* PhaseIdealLoop::adjust_limit(int stride_con, Node * scale, Node *offset, Node *rc_limit, Node *loop_limit, Node *pre_ctrl) {
aoqi@0 1541 // Compute "I :: (limit-offset)/scale"
aoqi@0 1542 Node *con = new (C) SubINode(rc_limit, offset);
aoqi@0 1543 register_new_node(con, pre_ctrl);
aoqi@0 1544 Node *X = new (C) DivINode(0, con, scale);
aoqi@0 1545 register_new_node(X, pre_ctrl);
aoqi@0 1546
aoqi@0 1547 // Adjust loop limit
aoqi@0 1548 loop_limit = (stride_con > 0)
aoqi@0 1549 ? (Node*)(new (C) MinINode(loop_limit, X))
aoqi@0 1550 : (Node*)(new (C) MaxINode(loop_limit, X));
aoqi@0 1551 register_new_node(loop_limit, pre_ctrl);
aoqi@0 1552 return loop_limit;
aoqi@0 1553 }
aoqi@0 1554
aoqi@0 1555 //------------------------------add_constraint---------------------------------
aoqi@0 1556 // Constrain the main loop iterations so the conditions:
aoqi@0 1557 // low_limit <= scale_con * I + offset < upper_limit
aoqi@0 1558 // always holds true. That is, either increase the number of iterations in
aoqi@0 1559 // the pre-loop or the post-loop until the condition holds true in the main
aoqi@0 1560 // loop. Stride, scale, offset and limit are all loop invariant. Further,
aoqi@0 1561 // stride and scale are constants (offset and limit often are).
aoqi@0 1562 void PhaseIdealLoop::add_constraint( int stride_con, int scale_con, Node *offset, Node *low_limit, Node *upper_limit, Node *pre_ctrl, Node **pre_limit, Node **main_limit ) {
aoqi@0 1563 // For positive stride, the pre-loop limit always uses a MAX function
aoqi@0 1564 // and the main loop a MIN function. For negative stride these are
aoqi@0 1565 // reversed.
aoqi@0 1566
aoqi@0 1567 // Also for positive stride*scale the affine function is increasing, so the
aoqi@0 1568 // pre-loop must check for underflow and the post-loop for overflow.
aoqi@0 1569 // Negative stride*scale reverses this; pre-loop checks for overflow and
aoqi@0 1570 // post-loop for underflow.
aoqi@0 1571
aoqi@0 1572 Node *scale = _igvn.intcon(scale_con);
aoqi@0 1573 set_ctrl(scale, C->root());
aoqi@0 1574
aoqi@0 1575 if ((stride_con^scale_con) >= 0) { // Use XOR to avoid overflow
aoqi@0 1576 // The overflow limit: scale*I+offset < upper_limit
aoqi@0 1577 // For main-loop compute
aoqi@0 1578 // ( if (scale > 0) /* and stride > 0 */
aoqi@0 1579 // I < (upper_limit-offset)/scale
aoqi@0 1580 // else /* scale < 0 and stride < 0 */
aoqi@0 1581 // I > (upper_limit-offset)/scale
aoqi@0 1582 // )
aoqi@0 1583 //
aoqi@0 1584 // (upper_limit-offset) may overflow or underflow.
aoqi@0 1585 // But it is fine since main loop will either have
aoqi@0 1586 // less iterations or will be skipped in such case.
aoqi@0 1587 *main_limit = adjust_limit(stride_con, scale, offset, upper_limit, *main_limit, pre_ctrl);
aoqi@0 1588
aoqi@0 1589 // The underflow limit: low_limit <= scale*I+offset.
aoqi@0 1590 // For pre-loop compute
aoqi@0 1591 // NOT(scale*I+offset >= low_limit)
aoqi@0 1592 // scale*I+offset < low_limit
aoqi@0 1593 // ( if (scale > 0) /* and stride > 0 */
aoqi@0 1594 // I < (low_limit-offset)/scale
aoqi@0 1595 // else /* scale < 0 and stride < 0 */
aoqi@0 1596 // I > (low_limit-offset)/scale
aoqi@0 1597 // )
aoqi@0 1598
aoqi@0 1599 if (low_limit->get_int() == -max_jint) {
aoqi@0 1600 if (!RangeLimitCheck) return;
aoqi@0 1601 // We need this guard when scale*pre_limit+offset >= limit
aoqi@0 1602 // due to underflow. So we need execute pre-loop until
aoqi@0 1603 // scale*I+offset >= min_int. But (min_int-offset) will
aoqi@0 1604 // underflow when offset > 0 and X will be > original_limit
aoqi@0 1605 // when stride > 0. To avoid it we replace positive offset with 0.
aoqi@0 1606 //
aoqi@0 1607 // Also (min_int+1 == -max_int) is used instead of min_int here
aoqi@0 1608 // to avoid problem with scale == -1 (min_int/(-1) == min_int).
aoqi@0 1609 Node* shift = _igvn.intcon(31);
aoqi@0 1610 set_ctrl(shift, C->root());
aoqi@0 1611 Node* sign = new (C) RShiftINode(offset, shift);
aoqi@0 1612 register_new_node(sign, pre_ctrl);
aoqi@0 1613 offset = new (C) AndINode(offset, sign);
aoqi@0 1614 register_new_node(offset, pre_ctrl);
aoqi@0 1615 } else {
aoqi@0 1616 assert(low_limit->get_int() == 0, "wrong low limit for range check");
aoqi@0 1617 // The only problem we have here when offset == min_int
aoqi@0 1618 // since (0-min_int) == min_int. It may be fine for stride > 0
aoqi@0 1619 // but for stride < 0 X will be < original_limit. To avoid it
aoqi@0 1620 // max(pre_limit, original_limit) is used in do_range_check().
aoqi@0 1621 }
aoqi@0 1622 // Pass (-stride) to indicate pre_loop_cond = NOT(main_loop_cond);
aoqi@0 1623 *pre_limit = adjust_limit((-stride_con), scale, offset, low_limit, *pre_limit, pre_ctrl);
aoqi@0 1624
aoqi@0 1625 } else { // stride_con*scale_con < 0
aoqi@0 1626 // For negative stride*scale pre-loop checks for overflow and
aoqi@0 1627 // post-loop for underflow.
aoqi@0 1628 //
aoqi@0 1629 // The overflow limit: scale*I+offset < upper_limit
aoqi@0 1630 // For pre-loop compute
aoqi@0 1631 // NOT(scale*I+offset < upper_limit)
aoqi@0 1632 // scale*I+offset >= upper_limit
aoqi@0 1633 // scale*I+offset+1 > upper_limit
aoqi@0 1634 // ( if (scale < 0) /* and stride > 0 */
aoqi@0 1635 // I < (upper_limit-(offset+1))/scale
aoqi@0 1636 // else /* scale > 0 and stride < 0 */
aoqi@0 1637 // I > (upper_limit-(offset+1))/scale
aoqi@0 1638 // )
aoqi@0 1639 //
aoqi@0 1640 // (upper_limit-offset-1) may underflow or overflow.
aoqi@0 1641 // To avoid it min(pre_limit, original_limit) is used
aoqi@0 1642 // in do_range_check() for stride > 0 and max() for < 0.
aoqi@0 1643 Node *one = _igvn.intcon(1);
aoqi@0 1644 set_ctrl(one, C->root());
aoqi@0 1645
aoqi@0 1646 Node *plus_one = new (C) AddINode(offset, one);
aoqi@0 1647 register_new_node( plus_one, pre_ctrl );
aoqi@0 1648 // Pass (-stride) to indicate pre_loop_cond = NOT(main_loop_cond);
aoqi@0 1649 *pre_limit = adjust_limit((-stride_con), scale, plus_one, upper_limit, *pre_limit, pre_ctrl);
aoqi@0 1650
aoqi@0 1651 if (low_limit->get_int() == -max_jint) {
aoqi@0 1652 if (!RangeLimitCheck) return;
aoqi@0 1653 // We need this guard when scale*main_limit+offset >= limit
aoqi@0 1654 // due to underflow. So we need execute main-loop while
aoqi@0 1655 // scale*I+offset+1 > min_int. But (min_int-offset-1) will
aoqi@0 1656 // underflow when (offset+1) > 0 and X will be < main_limit
aoqi@0 1657 // when scale < 0 (and stride > 0). To avoid it we replace
aoqi@0 1658 // positive (offset+1) with 0.
aoqi@0 1659 //
aoqi@0 1660 // Also (min_int+1 == -max_int) is used instead of min_int here
aoqi@0 1661 // to avoid problem with scale == -1 (min_int/(-1) == min_int).
aoqi@0 1662 Node* shift = _igvn.intcon(31);
aoqi@0 1663 set_ctrl(shift, C->root());
aoqi@0 1664 Node* sign = new (C) RShiftINode(plus_one, shift);
aoqi@0 1665 register_new_node(sign, pre_ctrl);
aoqi@0 1666 plus_one = new (C) AndINode(plus_one, sign);
aoqi@0 1667 register_new_node(plus_one, pre_ctrl);
aoqi@0 1668 } else {
aoqi@0 1669 assert(low_limit->get_int() == 0, "wrong low limit for range check");
aoqi@0 1670 // The only problem we have here when offset == max_int
aoqi@0 1671 // since (max_int+1) == min_int and (0-min_int) == min_int.
aoqi@0 1672 // But it is fine since main loop will either have
aoqi@0 1673 // less iterations or will be skipped in such case.
aoqi@0 1674 }
aoqi@0 1675 // The underflow limit: low_limit <= scale*I+offset.
aoqi@0 1676 // For main-loop compute
aoqi@0 1677 // scale*I+offset+1 > low_limit
aoqi@0 1678 // ( if (scale < 0) /* and stride > 0 */
aoqi@0 1679 // I < (low_limit-(offset+1))/scale
aoqi@0 1680 // else /* scale > 0 and stride < 0 */
aoqi@0 1681 // I > (low_limit-(offset+1))/scale
aoqi@0 1682 // )
aoqi@0 1683
aoqi@0 1684 *main_limit = adjust_limit(stride_con, scale, plus_one, low_limit, *main_limit, pre_ctrl);
aoqi@0 1685 }
aoqi@0 1686 }
aoqi@0 1687
aoqi@0 1688
aoqi@0 1689 //------------------------------is_scaled_iv---------------------------------
aoqi@0 1690 // Return true if exp is a constant times an induction var
aoqi@0 1691 bool PhaseIdealLoop::is_scaled_iv(Node* exp, Node* iv, int* p_scale) {
aoqi@0 1692 if (exp == iv) {
aoqi@0 1693 if (p_scale != NULL) {
aoqi@0 1694 *p_scale = 1;
aoqi@0 1695 }
aoqi@0 1696 return true;
aoqi@0 1697 }
aoqi@0 1698 int opc = exp->Opcode();
aoqi@0 1699 if (opc == Op_MulI) {
aoqi@0 1700 if (exp->in(1) == iv && exp->in(2)->is_Con()) {
aoqi@0 1701 if (p_scale != NULL) {
aoqi@0 1702 *p_scale = exp->in(2)->get_int();
aoqi@0 1703 }
aoqi@0 1704 return true;
aoqi@0 1705 }
aoqi@0 1706 if (exp->in(2) == iv && exp->in(1)->is_Con()) {
aoqi@0 1707 if (p_scale != NULL) {
aoqi@0 1708 *p_scale = exp->in(1)->get_int();
aoqi@0 1709 }
aoqi@0 1710 return true;
aoqi@0 1711 }
aoqi@0 1712 } else if (opc == Op_LShiftI) {
aoqi@0 1713 if (exp->in(1) == iv && exp->in(2)->is_Con()) {
aoqi@0 1714 if (p_scale != NULL) {
aoqi@0 1715 *p_scale = 1 << exp->in(2)->get_int();
aoqi@0 1716 }
aoqi@0 1717 return true;
aoqi@0 1718 }
aoqi@0 1719 }
aoqi@0 1720 return false;
aoqi@0 1721 }
aoqi@0 1722
aoqi@0 1723 //-----------------------------is_scaled_iv_plus_offset------------------------------
aoqi@0 1724 // Return true if exp is a simple induction variable expression: k1*iv + (invar + k2)
aoqi@0 1725 bool PhaseIdealLoop::is_scaled_iv_plus_offset(Node* exp, Node* iv, int* p_scale, Node** p_offset, int depth) {
aoqi@0 1726 if (is_scaled_iv(exp, iv, p_scale)) {
aoqi@0 1727 if (p_offset != NULL) {
aoqi@0 1728 Node *zero = _igvn.intcon(0);
aoqi@0 1729 set_ctrl(zero, C->root());
aoqi@0 1730 *p_offset = zero;
aoqi@0 1731 }
aoqi@0 1732 return true;
aoqi@0 1733 }
aoqi@0 1734 int opc = exp->Opcode();
aoqi@0 1735 if (opc == Op_AddI) {
aoqi@0 1736 if (is_scaled_iv(exp->in(1), iv, p_scale)) {
aoqi@0 1737 if (p_offset != NULL) {
aoqi@0 1738 *p_offset = exp->in(2);
aoqi@0 1739 }
aoqi@0 1740 return true;
aoqi@0 1741 }
thartmann@8207 1742 if (is_scaled_iv(exp->in(2), iv, p_scale)) {
thartmann@8207 1743 if (p_offset != NULL) {
thartmann@8207 1744 *p_offset = exp->in(1);
thartmann@8207 1745 }
thartmann@8207 1746 return true;
thartmann@8207 1747 }
aoqi@0 1748 if (exp->in(2)->is_Con()) {
aoqi@0 1749 Node* offset2 = NULL;
aoqi@0 1750 if (depth < 2 &&
aoqi@0 1751 is_scaled_iv_plus_offset(exp->in(1), iv, p_scale,
aoqi@0 1752 p_offset != NULL ? &offset2 : NULL, depth+1)) {
aoqi@0 1753 if (p_offset != NULL) {
aoqi@0 1754 Node *ctrl_off2 = get_ctrl(offset2);
aoqi@0 1755 Node* offset = new (C) AddINode(offset2, exp->in(2));
aoqi@0 1756 register_new_node(offset, ctrl_off2);
aoqi@0 1757 *p_offset = offset;
aoqi@0 1758 }
aoqi@0 1759 return true;
aoqi@0 1760 }
aoqi@0 1761 }
aoqi@0 1762 } else if (opc == Op_SubI) {
aoqi@0 1763 if (is_scaled_iv(exp->in(1), iv, p_scale)) {
aoqi@0 1764 if (p_offset != NULL) {
aoqi@0 1765 Node *zero = _igvn.intcon(0);
aoqi@0 1766 set_ctrl(zero, C->root());
aoqi@0 1767 Node *ctrl_off = get_ctrl(exp->in(2));
aoqi@0 1768 Node* offset = new (C) SubINode(zero, exp->in(2));
aoqi@0 1769 register_new_node(offset, ctrl_off);
aoqi@0 1770 *p_offset = offset;
aoqi@0 1771 }
aoqi@0 1772 return true;
aoqi@0 1773 }
aoqi@0 1774 if (is_scaled_iv(exp->in(2), iv, p_scale)) {
aoqi@0 1775 if (p_offset != NULL) {
aoqi@0 1776 *p_scale *= -1;
aoqi@0 1777 *p_offset = exp->in(1);
aoqi@0 1778 }
aoqi@0 1779 return true;
aoqi@0 1780 }
aoqi@0 1781 }
aoqi@0 1782 return false;
aoqi@0 1783 }
aoqi@0 1784
aoqi@0 1785 //------------------------------do_range_check---------------------------------
aoqi@0 1786 // Eliminate range-checks and other trip-counter vs loop-invariant tests.
aoqi@0 1787 void PhaseIdealLoop::do_range_check( IdealLoopTree *loop, Node_List &old_new ) {
aoqi@0 1788 #ifndef PRODUCT
aoqi@0 1789 if (PrintOpto && VerifyLoopOptimizations) {
aoqi@0 1790 tty->print("Range Check Elimination ");
aoqi@0 1791 loop->dump_head();
aoqi@0 1792 } else if (TraceLoopOpts) {
aoqi@0 1793 tty->print("RangeCheck ");
aoqi@0 1794 loop->dump_head();
aoqi@0 1795 }
aoqi@0 1796 #endif
aoqi@0 1797 assert(RangeCheckElimination, "");
aoqi@0 1798 CountedLoopNode *cl = loop->_head->as_CountedLoop();
aoqi@0 1799 assert(cl->is_main_loop(), "");
aoqi@0 1800
aoqi@0 1801 // protect against stride not being a constant
aoqi@0 1802 if (!cl->stride_is_con())
aoqi@0 1803 return;
aoqi@0 1804
aoqi@0 1805 // Find the trip counter; we are iteration splitting based on it
aoqi@0 1806 Node *trip_counter = cl->phi();
aoqi@0 1807 // Find the main loop limit; we will trim it's iterations
aoqi@0 1808 // to not ever trip end tests
aoqi@0 1809 Node *main_limit = cl->limit();
aoqi@0 1810
aoqi@0 1811 // Need to find the main-loop zero-trip guard
aoqi@0 1812 Node *ctrl = cl->in(LoopNode::EntryControl);
aoqi@0 1813 assert(ctrl->Opcode() == Op_IfTrue || ctrl->Opcode() == Op_IfFalse, "");
aoqi@0 1814 Node *iffm = ctrl->in(0);
aoqi@0 1815 assert(iffm->Opcode() == Op_If, "");
aoqi@0 1816 Node *bolzm = iffm->in(1);
aoqi@0 1817 assert(bolzm->Opcode() == Op_Bool, "");
aoqi@0 1818 Node *cmpzm = bolzm->in(1);
aoqi@0 1819 assert(cmpzm->is_Cmp(), "");
aoqi@0 1820 Node *opqzm = cmpzm->in(2);
aoqi@0 1821 // Can not optimize a loop if zero-trip Opaque1 node is optimized
aoqi@0 1822 // away and then another round of loop opts attempted.
aoqi@0 1823 if (opqzm->Opcode() != Op_Opaque1)
aoqi@0 1824 return;
aoqi@0 1825 assert(opqzm->in(1) == main_limit, "do not understand situation");
aoqi@0 1826
aoqi@0 1827 // Find the pre-loop limit; we will expand it's iterations to
aoqi@0 1828 // not ever trip low tests.
aoqi@0 1829 Node *p_f = iffm->in(0);
roland@7869 1830 // pre loop may have been optimized out
roland@7869 1831 if (p_f->Opcode() != Op_IfFalse) {
roland@7869 1832 return;
roland@7869 1833 }
aoqi@0 1834 CountedLoopEndNode *pre_end = p_f->in(0)->as_CountedLoopEnd();
aoqi@0 1835 assert(pre_end->loopnode()->is_pre_loop(), "");
aoqi@0 1836 Node *pre_opaq1 = pre_end->limit();
aoqi@0 1837 // Occasionally it's possible for a pre-loop Opaque1 node to be
aoqi@0 1838 // optimized away and then another round of loop opts attempted.
aoqi@0 1839 // We can not optimize this particular loop in that case.
aoqi@0 1840 if (pre_opaq1->Opcode() != Op_Opaque1)
aoqi@0 1841 return;
aoqi@0 1842 Opaque1Node *pre_opaq = (Opaque1Node*)pre_opaq1;
aoqi@0 1843 Node *pre_limit = pre_opaq->in(1);
aoqi@0 1844
aoqi@0 1845 // Where do we put new limit calculations
aoqi@0 1846 Node *pre_ctrl = pre_end->loopnode()->in(LoopNode::EntryControl);
aoqi@0 1847
aoqi@0 1848 // Ensure the original loop limit is available from the
aoqi@0 1849 // pre-loop Opaque1 node.
aoqi@0 1850 Node *orig_limit = pre_opaq->original_loop_limit();
aoqi@0 1851 if (orig_limit == NULL || _igvn.type(orig_limit) == Type::TOP)
aoqi@0 1852 return;
aoqi@0 1853
aoqi@0 1854 // Must know if its a count-up or count-down loop
aoqi@0 1855
aoqi@0 1856 int stride_con = cl->stride_con();
aoqi@0 1857 Node *zero = _igvn.intcon(0);
aoqi@0 1858 Node *one = _igvn.intcon(1);
aoqi@0 1859 // Use symmetrical int range [-max_jint,max_jint]
aoqi@0 1860 Node *mini = _igvn.intcon(-max_jint);
aoqi@0 1861 set_ctrl(zero, C->root());
aoqi@0 1862 set_ctrl(one, C->root());
aoqi@0 1863 set_ctrl(mini, C->root());
aoqi@0 1864
aoqi@0 1865 // Range checks that do not dominate the loop backedge (ie.
aoqi@0 1866 // conditionally executed) can lengthen the pre loop limit beyond
aoqi@0 1867 // the original loop limit. To prevent this, the pre limit is
aoqi@0 1868 // (for stride > 0) MINed with the original loop limit (MAXed
aoqi@0 1869 // stride < 0) when some range_check (rc) is conditionally
aoqi@0 1870 // executed.
aoqi@0 1871 bool conditional_rc = false;
aoqi@0 1872
aoqi@0 1873 // Check loop body for tests of trip-counter plus loop-invariant vs
aoqi@0 1874 // loop-invariant.
aoqi@0 1875 for( uint i = 0; i < loop->_body.size(); i++ ) {
aoqi@0 1876 Node *iff = loop->_body[i];
aoqi@0 1877 if( iff->Opcode() == Op_If ) { // Test?
aoqi@0 1878
aoqi@0 1879 // Test is an IfNode, has 2 projections. If BOTH are in the loop
aoqi@0 1880 // we need loop unswitching instead of iteration splitting.
aoqi@0 1881 Node *exit = loop->is_loop_exit(iff);
aoqi@0 1882 if( !exit ) continue;
aoqi@0 1883 int flip = (exit->Opcode() == Op_IfTrue) ? 1 : 0;
aoqi@0 1884
aoqi@0 1885 // Get boolean condition to test
aoqi@0 1886 Node *i1 = iff->in(1);
aoqi@0 1887 if( !i1->is_Bool() ) continue;
aoqi@0 1888 BoolNode *bol = i1->as_Bool();
aoqi@0 1889 BoolTest b_test = bol->_test;
aoqi@0 1890 // Flip sense of test if exit condition is flipped
aoqi@0 1891 if( flip )
aoqi@0 1892 b_test = b_test.negate();
aoqi@0 1893
aoqi@0 1894 // Get compare
aoqi@0 1895 Node *cmp = bol->in(1);
aoqi@0 1896
aoqi@0 1897 // Look for trip_counter + offset vs limit
aoqi@0 1898 Node *rc_exp = cmp->in(1);
aoqi@0 1899 Node *limit = cmp->in(2);
aoqi@0 1900 jint scale_con= 1; // Assume trip counter not scaled
aoqi@0 1901
aoqi@0 1902 Node *limit_c = get_ctrl(limit);
aoqi@0 1903 if( loop->is_member(get_loop(limit_c) ) ) {
aoqi@0 1904 // Compare might have operands swapped; commute them
aoqi@0 1905 b_test = b_test.commute();
aoqi@0 1906 rc_exp = cmp->in(2);
aoqi@0 1907 limit = cmp->in(1);
aoqi@0 1908 limit_c = get_ctrl(limit);
aoqi@0 1909 if( loop->is_member(get_loop(limit_c) ) )
aoqi@0 1910 continue; // Both inputs are loop varying; cannot RCE
aoqi@0 1911 }
aoqi@0 1912 // Here we know 'limit' is loop invariant
aoqi@0 1913
aoqi@0 1914 // 'limit' maybe pinned below the zero trip test (probably from a
aoqi@0 1915 // previous round of rce), in which case, it can't be used in the
aoqi@0 1916 // zero trip test expression which must occur before the zero test's if.
aoqi@0 1917 if( limit_c == ctrl ) {
aoqi@0 1918 continue; // Don't rce this check but continue looking for other candidates.
aoqi@0 1919 }
aoqi@0 1920
aoqi@0 1921 // Check for scaled induction variable plus an offset
aoqi@0 1922 Node *offset = NULL;
aoqi@0 1923
aoqi@0 1924 if (!is_scaled_iv_plus_offset(rc_exp, trip_counter, &scale_con, &offset)) {
aoqi@0 1925 continue;
aoqi@0 1926 }
aoqi@0 1927
aoqi@0 1928 Node *offset_c = get_ctrl(offset);
aoqi@0 1929 if( loop->is_member( get_loop(offset_c) ) )
aoqi@0 1930 continue; // Offset is not really loop invariant
aoqi@0 1931 // Here we know 'offset' is loop invariant.
aoqi@0 1932
aoqi@0 1933 // As above for the 'limit', the 'offset' maybe pinned below the
aoqi@0 1934 // zero trip test.
aoqi@0 1935 if( offset_c == ctrl ) {
aoqi@0 1936 continue; // Don't rce this check but continue looking for other candidates.
aoqi@0 1937 }
aoqi@0 1938 #ifdef ASSERT
aoqi@0 1939 if (TraceRangeLimitCheck) {
aoqi@0 1940 tty->print_cr("RC bool node%s", flip ? " flipped:" : ":");
aoqi@0 1941 bol->dump(2);
aoqi@0 1942 }
aoqi@0 1943 #endif
aoqi@0 1944 // At this point we have the expression as:
aoqi@0 1945 // scale_con * trip_counter + offset :: limit
aoqi@0 1946 // where scale_con, offset and limit are loop invariant. Trip_counter
aoqi@0 1947 // monotonically increases by stride_con, a constant. Both (or either)
aoqi@0 1948 // stride_con and scale_con can be negative which will flip about the
aoqi@0 1949 // sense of the test.
aoqi@0 1950
aoqi@0 1951 // Adjust pre and main loop limits to guard the correct iteration set
aoqi@0 1952 if( cmp->Opcode() == Op_CmpU ) {// Unsigned compare is really 2 tests
aoqi@0 1953 if( b_test._test == BoolTest::lt ) { // Range checks always use lt
aoqi@0 1954 // The underflow and overflow limits: 0 <= scale*I+offset < limit
aoqi@0 1955 add_constraint( stride_con, scale_con, offset, zero, limit, pre_ctrl, &pre_limit, &main_limit );
aoqi@0 1956 if (!conditional_rc) {
aoqi@0 1957 // (0-offset)/scale could be outside of loop iterations range.
aoqi@0 1958 conditional_rc = !loop->dominates_backedge(iff) || RangeLimitCheck;
aoqi@0 1959 }
aoqi@0 1960 } else {
aoqi@0 1961 #ifndef PRODUCT
aoqi@0 1962 if( PrintOpto )
aoqi@0 1963 tty->print_cr("missed RCE opportunity");
aoqi@0 1964 #endif
aoqi@0 1965 continue; // In release mode, ignore it
aoqi@0 1966 }
aoqi@0 1967 } else { // Otherwise work on normal compares
aoqi@0 1968 switch( b_test._test ) {
aoqi@0 1969 case BoolTest::gt:
aoqi@0 1970 // Fall into GE case
aoqi@0 1971 case BoolTest::ge:
aoqi@0 1972 // Convert (I*scale+offset) >= Limit to (I*(-scale)+(-offset)) <= -Limit
aoqi@0 1973 scale_con = -scale_con;
aoqi@0 1974 offset = new (C) SubINode( zero, offset );
aoqi@0 1975 register_new_node( offset, pre_ctrl );
aoqi@0 1976 limit = new (C) SubINode( zero, limit );
aoqi@0 1977 register_new_node( limit, pre_ctrl );
aoqi@0 1978 // Fall into LE case
aoqi@0 1979 case BoolTest::le:
aoqi@0 1980 if (b_test._test != BoolTest::gt) {
aoqi@0 1981 // Convert X <= Y to X < Y+1
aoqi@0 1982 limit = new (C) AddINode( limit, one );
aoqi@0 1983 register_new_node( limit, pre_ctrl );
aoqi@0 1984 }
aoqi@0 1985 // Fall into LT case
aoqi@0 1986 case BoolTest::lt:
aoqi@0 1987 // The underflow and overflow limits: MIN_INT <= scale*I+offset < limit
aoqi@0 1988 // Note: (MIN_INT+1 == -MAX_INT) is used instead of MIN_INT here
aoqi@0 1989 // to avoid problem with scale == -1: MIN_INT/(-1) == MIN_INT.
aoqi@0 1990 add_constraint( stride_con, scale_con, offset, mini, limit, pre_ctrl, &pre_limit, &main_limit );
aoqi@0 1991 if (!conditional_rc) {
aoqi@0 1992 // ((MIN_INT+1)-offset)/scale could be outside of loop iterations range.
aoqi@0 1993 // Note: negative offset is replaced with 0 but (MIN_INT+1)/scale could
aoqi@0 1994 // still be outside of loop range.
aoqi@0 1995 conditional_rc = !loop->dominates_backedge(iff) || RangeLimitCheck;
aoqi@0 1996 }
aoqi@0 1997 break;
aoqi@0 1998 default:
aoqi@0 1999 #ifndef PRODUCT
aoqi@0 2000 if( PrintOpto )
aoqi@0 2001 tty->print_cr("missed RCE opportunity");
aoqi@0 2002 #endif
aoqi@0 2003 continue; // Unhandled case
aoqi@0 2004 }
aoqi@0 2005 }
aoqi@0 2006
aoqi@0 2007 // Kill the eliminated test
aoqi@0 2008 C->set_major_progress();
aoqi@0 2009 Node *kill_con = _igvn.intcon( 1-flip );
aoqi@0 2010 set_ctrl(kill_con, C->root());
aoqi@0 2011 _igvn.replace_input_of(iff, 1, kill_con);
aoqi@0 2012 // Find surviving projection
aoqi@0 2013 assert(iff->is_If(), "");
aoqi@0 2014 ProjNode* dp = ((IfNode*)iff)->proj_out(1-flip);
aoqi@0 2015 // Find loads off the surviving projection; remove their control edge
aoqi@0 2016 for (DUIterator_Fast imax, i = dp->fast_outs(imax); i < imax; i++) {
aoqi@0 2017 Node* cd = dp->fast_out(i); // Control-dependent node
aoqi@0 2018 if (cd->is_Load() && cd->depends_only_on_test()) { // Loads can now float around in the loop
aoqi@0 2019 // Allow the load to float around in the loop, or before it
aoqi@0 2020 // but NOT before the pre-loop.
aoqi@0 2021 _igvn.replace_input_of(cd, 0, ctrl); // ctrl, not NULL
aoqi@0 2022 --i;
aoqi@0 2023 --imax;
aoqi@0 2024 }
aoqi@0 2025 }
aoqi@0 2026
aoqi@0 2027 } // End of is IF
aoqi@0 2028
aoqi@0 2029 }
aoqi@0 2030
aoqi@0 2031 // Update loop limits
aoqi@0 2032 if (conditional_rc) {
aoqi@0 2033 pre_limit = (stride_con > 0) ? (Node*)new (C) MinINode(pre_limit, orig_limit)
aoqi@0 2034 : (Node*)new (C) MaxINode(pre_limit, orig_limit);
aoqi@0 2035 register_new_node(pre_limit, pre_ctrl);
aoqi@0 2036 }
aoqi@0 2037 _igvn.hash_delete(pre_opaq);
aoqi@0 2038 pre_opaq->set_req(1, pre_limit);
aoqi@0 2039
aoqi@0 2040 // Note:: we are making the main loop limit no longer precise;
aoqi@0 2041 // need to round up based on stride.
aoqi@0 2042 cl->set_nonexact_trip_count();
aoqi@0 2043 if (!LoopLimitCheck && stride_con != 1 && stride_con != -1) { // Cutout for common case
aoqi@0 2044 // "Standard" round-up logic: ([main_limit-init+(y-1)]/y)*y+init
aoqi@0 2045 // Hopefully, compiler will optimize for powers of 2.
aoqi@0 2046 Node *ctrl = get_ctrl(main_limit);
aoqi@0 2047 Node *stride = cl->stride();
aoqi@0 2048 Node *init = cl->init_trip();
aoqi@0 2049 Node *span = new (C) SubINode(main_limit,init);
aoqi@0 2050 register_new_node(span,ctrl);
aoqi@0 2051 Node *rndup = _igvn.intcon(stride_con + ((stride_con>0)?-1:1));
aoqi@0 2052 Node *add = new (C) AddINode(span,rndup);
aoqi@0 2053 register_new_node(add,ctrl);
aoqi@0 2054 Node *div = new (C) DivINode(0,add,stride);
aoqi@0 2055 register_new_node(div,ctrl);
aoqi@0 2056 Node *mul = new (C) MulINode(div,stride);
aoqi@0 2057 register_new_node(mul,ctrl);
aoqi@0 2058 Node *newlim = new (C) AddINode(mul,init);
aoqi@0 2059 register_new_node(newlim,ctrl);
aoqi@0 2060 main_limit = newlim;
aoqi@0 2061 }
aoqi@0 2062
aoqi@0 2063 Node *main_cle = cl->loopexit();
aoqi@0 2064 Node *main_bol = main_cle->in(1);
aoqi@0 2065 // Hacking loop bounds; need private copies of exit test
aoqi@0 2066 if( main_bol->outcnt() > 1 ) {// BoolNode shared?
aoqi@0 2067 _igvn.hash_delete(main_cle);
aoqi@0 2068 main_bol = main_bol->clone();// Clone a private BoolNode
aoqi@0 2069 register_new_node( main_bol, main_cle->in(0) );
aoqi@0 2070 main_cle->set_req(1,main_bol);
aoqi@0 2071 }
aoqi@0 2072 Node *main_cmp = main_bol->in(1);
aoqi@0 2073 if( main_cmp->outcnt() > 1 ) { // CmpNode shared?
aoqi@0 2074 _igvn.hash_delete(main_bol);
aoqi@0 2075 main_cmp = main_cmp->clone();// Clone a private CmpNode
aoqi@0 2076 register_new_node( main_cmp, main_cle->in(0) );
aoqi@0 2077 main_bol->set_req(1,main_cmp);
aoqi@0 2078 }
aoqi@0 2079 // Hack the now-private loop bounds
aoqi@0 2080 _igvn.replace_input_of(main_cmp, 2, main_limit);
aoqi@0 2081 // The OpaqueNode is unshared by design
aoqi@0 2082 assert( opqzm->outcnt() == 1, "cannot hack shared node" );
aoqi@0 2083 _igvn.replace_input_of(opqzm, 1, main_limit);
aoqi@0 2084 }
aoqi@0 2085
aoqi@0 2086 //------------------------------DCE_loop_body----------------------------------
aoqi@0 2087 // Remove simplistic dead code from loop body
aoqi@0 2088 void IdealLoopTree::DCE_loop_body() {
aoqi@0 2089 for( uint i = 0; i < _body.size(); i++ )
aoqi@0 2090 if( _body.at(i)->outcnt() == 0 )
aoqi@0 2091 _body.map( i--, _body.pop() );
aoqi@0 2092 }
aoqi@0 2093
aoqi@0 2094
aoqi@0 2095 //------------------------------adjust_loop_exit_prob--------------------------
aoqi@0 2096 // Look for loop-exit tests with the 50/50 (or worse) guesses from the parsing stage.
aoqi@0 2097 // Replace with a 1-in-10 exit guess.
aoqi@0 2098 void IdealLoopTree::adjust_loop_exit_prob( PhaseIdealLoop *phase ) {
aoqi@0 2099 Node *test = tail();
aoqi@0 2100 while( test != _head ) {
aoqi@0 2101 uint top = test->Opcode();
aoqi@0 2102 if( top == Op_IfTrue || top == Op_IfFalse ) {
aoqi@0 2103 int test_con = ((ProjNode*)test)->_con;
aoqi@0 2104 assert(top == (uint)(test_con? Op_IfTrue: Op_IfFalse), "sanity");
aoqi@0 2105 IfNode *iff = test->in(0)->as_If();
aoqi@0 2106 if( iff->outcnt() == 2 ) { // Ignore dead tests
aoqi@0 2107 Node *bol = iff->in(1);
aoqi@0 2108 if( bol && bol->req() > 1 && bol->in(1) &&
aoqi@0 2109 ((bol->in(1)->Opcode() == Op_StorePConditional ) ||
aoqi@0 2110 (bol->in(1)->Opcode() == Op_StoreIConditional ) ||
aoqi@0 2111 (bol->in(1)->Opcode() == Op_StoreLConditional ) ||
aoqi@0 2112 (bol->in(1)->Opcode() == Op_CompareAndSwapI ) ||
aoqi@0 2113 (bol->in(1)->Opcode() == Op_CompareAndSwapL ) ||
aoqi@0 2114 (bol->in(1)->Opcode() == Op_CompareAndSwapP ) ||
aoqi@0 2115 (bol->in(1)->Opcode() == Op_CompareAndSwapN )))
aoqi@0 2116 return; // Allocation loops RARELY take backedge
aoqi@0 2117 // Find the OTHER exit path from the IF
aoqi@0 2118 Node* ex = iff->proj_out(1-test_con);
aoqi@0 2119 float p = iff->_prob;
aoqi@0 2120 if( !phase->is_member( this, ex ) && iff->_fcnt == COUNT_UNKNOWN ) {
aoqi@0 2121 if( top == Op_IfTrue ) {
aoqi@0 2122 if( p < (PROB_FAIR + PROB_UNLIKELY_MAG(3))) {
aoqi@0 2123 iff->_prob = PROB_STATIC_FREQUENT;
aoqi@0 2124 }
aoqi@0 2125 } else {
aoqi@0 2126 if( p > (PROB_FAIR - PROB_UNLIKELY_MAG(3))) {
aoqi@0 2127 iff->_prob = PROB_STATIC_INFREQUENT;
aoqi@0 2128 }
aoqi@0 2129 }
aoqi@0 2130 }
aoqi@0 2131 }
aoqi@0 2132 }
aoqi@0 2133 test = phase->idom(test);
aoqi@0 2134 }
aoqi@0 2135 }
aoqi@0 2136
aoqi@0 2137
aoqi@0 2138 //------------------------------policy_do_remove_empty_loop--------------------
aoqi@0 2139 // Micro-benchmark spamming. Policy is to always remove empty loops.
aoqi@0 2140 // The 'DO' part is to replace the trip counter with the value it will
aoqi@0 2141 // have on the last iteration. This will break the loop.
aoqi@0 2142 bool IdealLoopTree::policy_do_remove_empty_loop( PhaseIdealLoop *phase ) {
aoqi@0 2143 // Minimum size must be empty loop
aoqi@0 2144 if (_body.size() > EMPTY_LOOP_SIZE)
aoqi@0 2145 return false;
aoqi@0 2146
aoqi@0 2147 if (!_head->is_CountedLoop())
aoqi@0 2148 return false; // Dead loop
aoqi@0 2149 CountedLoopNode *cl = _head->as_CountedLoop();
aoqi@0 2150 if (!cl->is_valid_counted_loop())
aoqi@0 2151 return false; // Malformed loop
aoqi@0 2152 if (!phase->is_member(this, phase->get_ctrl(cl->loopexit()->in(CountedLoopEndNode::TestValue))))
aoqi@0 2153 return false; // Infinite loop
aoqi@0 2154
aoqi@0 2155 #ifdef ASSERT
aoqi@0 2156 // Ensure only one phi which is the iv.
aoqi@0 2157 Node* iv = NULL;
aoqi@0 2158 for (DUIterator_Fast imax, i = cl->fast_outs(imax); i < imax; i++) {
aoqi@0 2159 Node* n = cl->fast_out(i);
aoqi@0 2160 if (n->Opcode() == Op_Phi) {
aoqi@0 2161 assert(iv == NULL, "Too many phis" );
aoqi@0 2162 iv = n;
aoqi@0 2163 }
aoqi@0 2164 }
aoqi@0 2165 assert(iv == cl->phi(), "Wrong phi" );
aoqi@0 2166 #endif
aoqi@0 2167
aoqi@0 2168 // main and post loops have explicitly created zero trip guard
aoqi@0 2169 bool needs_guard = !cl->is_main_loop() && !cl->is_post_loop();
aoqi@0 2170 if (needs_guard) {
aoqi@0 2171 // Skip guard if values not overlap.
aoqi@0 2172 const TypeInt* init_t = phase->_igvn.type(cl->init_trip())->is_int();
aoqi@0 2173 const TypeInt* limit_t = phase->_igvn.type(cl->limit())->is_int();
aoqi@0 2174 int stride_con = cl->stride_con();
aoqi@0 2175 if (stride_con > 0) {
aoqi@0 2176 needs_guard = (init_t->_hi >= limit_t->_lo);
aoqi@0 2177 } else {
aoqi@0 2178 needs_guard = (init_t->_lo <= limit_t->_hi);
aoqi@0 2179 }
aoqi@0 2180 }
aoqi@0 2181 if (needs_guard) {
aoqi@0 2182 // Check for an obvious zero trip guard.
aoqi@0 2183 Node* inctrl = PhaseIdealLoop::skip_loop_predicates(cl->in(LoopNode::EntryControl));
aoqi@0 2184 if (inctrl->Opcode() == Op_IfTrue) {
aoqi@0 2185 // The test should look like just the backedge of a CountedLoop
aoqi@0 2186 Node* iff = inctrl->in(0);
aoqi@0 2187 if (iff->is_If()) {
aoqi@0 2188 Node* bol = iff->in(1);
aoqi@0 2189 if (bol->is_Bool() && bol->as_Bool()->_test._test == cl->loopexit()->test_trip()) {
aoqi@0 2190 Node* cmp = bol->in(1);
aoqi@0 2191 if (cmp->is_Cmp() && cmp->in(1) == cl->init_trip() && cmp->in(2) == cl->limit()) {
aoqi@0 2192 needs_guard = false;
aoqi@0 2193 }
aoqi@0 2194 }
aoqi@0 2195 }
aoqi@0 2196 }
aoqi@0 2197 }
aoqi@0 2198
aoqi@0 2199 #ifndef PRODUCT
aoqi@0 2200 if (PrintOpto) {
aoqi@0 2201 tty->print("Removing empty loop with%s zero trip guard", needs_guard ? "out" : "");
aoqi@0 2202 this->dump_head();
aoqi@0 2203 } else if (TraceLoopOpts) {
aoqi@0 2204 tty->print("Empty with%s zero trip guard ", needs_guard ? "out" : "");
aoqi@0 2205 this->dump_head();
aoqi@0 2206 }
aoqi@0 2207 #endif
aoqi@0 2208
aoqi@0 2209 if (needs_guard) {
aoqi@0 2210 // Peel the loop to ensure there's a zero trip guard
aoqi@0 2211 Node_List old_new;
aoqi@0 2212 phase->do_peeling(this, old_new);
aoqi@0 2213 }
aoqi@0 2214
aoqi@0 2215 // Replace the phi at loop head with the final value of the last
aoqi@0 2216 // iteration. Then the CountedLoopEnd will collapse (backedge never
aoqi@0 2217 // taken) and all loop-invariant uses of the exit values will be correct.
aoqi@0 2218 Node *phi = cl->phi();
aoqi@0 2219 Node *exact_limit = phase->exact_limit(this);
aoqi@0 2220 if (exact_limit != cl->limit()) {
aoqi@0 2221 // We also need to replace the original limit to collapse loop exit.
aoqi@0 2222 Node* cmp = cl->loopexit()->cmp_node();
aoqi@0 2223 assert(cl->limit() == cmp->in(2), "sanity");
aoqi@0 2224 phase->_igvn._worklist.push(cmp->in(2)); // put limit on worklist
aoqi@0 2225 phase->_igvn.replace_input_of(cmp, 2, exact_limit); // put cmp on worklist
aoqi@0 2226 }
aoqi@0 2227 // Note: the final value after increment should not overflow since
aoqi@0 2228 // counted loop has limit check predicate.
aoqi@0 2229 Node *final = new (phase->C) SubINode( exact_limit, cl->stride() );
aoqi@0 2230 phase->register_new_node(final,cl->in(LoopNode::EntryControl));
aoqi@0 2231 phase->_igvn.replace_node(phi,final);
aoqi@0 2232 phase->C->set_major_progress();
aoqi@0 2233 return true;
aoqi@0 2234 }
aoqi@0 2235
aoqi@0 2236 //------------------------------policy_do_one_iteration_loop-------------------
aoqi@0 2237 // Convert one iteration loop into normal code.
aoqi@0 2238 bool IdealLoopTree::policy_do_one_iteration_loop( PhaseIdealLoop *phase ) {
aoqi@0 2239 if (!_head->as_Loop()->is_valid_counted_loop())
aoqi@0 2240 return false; // Only for counted loop
aoqi@0 2241
aoqi@0 2242 CountedLoopNode *cl = _head->as_CountedLoop();
aoqi@0 2243 if (!cl->has_exact_trip_count() || cl->trip_count() != 1) {
aoqi@0 2244 return false;
aoqi@0 2245 }
aoqi@0 2246
aoqi@0 2247 #ifndef PRODUCT
aoqi@0 2248 if(TraceLoopOpts) {
aoqi@0 2249 tty->print("OneIteration ");
aoqi@0 2250 this->dump_head();
aoqi@0 2251 }
aoqi@0 2252 #endif
aoqi@0 2253
aoqi@0 2254 Node *init_n = cl->init_trip();
aoqi@0 2255 #ifdef ASSERT
aoqi@0 2256 // Loop boundaries should be constant since trip count is exact.
aoqi@0 2257 assert(init_n->get_int() + cl->stride_con() >= cl->limit()->get_int(), "should be one iteration");
aoqi@0 2258 #endif
aoqi@0 2259 // Replace the phi at loop head with the value of the init_trip.
aoqi@0 2260 // Then the CountedLoopEnd will collapse (backedge will not be taken)
aoqi@0 2261 // and all loop-invariant uses of the exit values will be correct.
aoqi@0 2262 phase->_igvn.replace_node(cl->phi(), cl->init_trip());
aoqi@0 2263 phase->C->set_major_progress();
aoqi@0 2264 return true;
aoqi@0 2265 }
aoqi@0 2266
aoqi@0 2267 //=============================================================================
aoqi@0 2268 //------------------------------iteration_split_impl---------------------------
aoqi@0 2269 bool IdealLoopTree::iteration_split_impl( PhaseIdealLoop *phase, Node_List &old_new ) {
aoqi@0 2270 // Compute exact loop trip count if possible.
aoqi@0 2271 compute_exact_trip_count(phase);
aoqi@0 2272
aoqi@0 2273 // Convert one iteration loop into normal code.
aoqi@0 2274 if (policy_do_one_iteration_loop(phase))
aoqi@0 2275 return true;
aoqi@0 2276
aoqi@0 2277 // Check and remove empty loops (spam micro-benchmarks)
aoqi@0 2278 if (policy_do_remove_empty_loop(phase))
aoqi@0 2279 return true; // Here we removed an empty loop
aoqi@0 2280
aoqi@0 2281 bool should_peel = policy_peeling(phase); // Should we peel?
aoqi@0 2282
aoqi@0 2283 bool should_unswitch = policy_unswitching(phase);
aoqi@0 2284
aoqi@0 2285 // Non-counted loops may be peeled; exactly 1 iteration is peeled.
aoqi@0 2286 // This removes loop-invariant tests (usually null checks).
aoqi@0 2287 if (!_head->is_CountedLoop()) { // Non-counted loop
aoqi@0 2288 if (PartialPeelLoop && phase->partial_peel(this, old_new)) {
aoqi@0 2289 // Partial peel succeeded so terminate this round of loop opts
aoqi@0 2290 return false;
aoqi@0 2291 }
aoqi@0 2292 if (should_peel) { // Should we peel?
aoqi@0 2293 #ifndef PRODUCT
aoqi@0 2294 if (PrintOpto) tty->print_cr("should_peel");
aoqi@0 2295 #endif
aoqi@0 2296 phase->do_peeling(this,old_new);
aoqi@0 2297 } else if (should_unswitch) {
aoqi@0 2298 phase->do_unswitching(this, old_new);
aoqi@0 2299 }
aoqi@0 2300 return true;
aoqi@0 2301 }
aoqi@0 2302 CountedLoopNode *cl = _head->as_CountedLoop();
aoqi@0 2303
aoqi@0 2304 if (!cl->is_valid_counted_loop()) return true; // Ignore various kinds of broken loops
aoqi@0 2305
aoqi@0 2306 // Do nothing special to pre- and post- loops
aoqi@0 2307 if (cl->is_pre_loop() || cl->is_post_loop()) return true;
aoqi@0 2308
aoqi@0 2309 // Compute loop trip count from profile data
aoqi@0 2310 compute_profile_trip_cnt(phase);
aoqi@0 2311
aoqi@0 2312 // Before attempting fancy unrolling, RCE or alignment, see if we want
aoqi@0 2313 // to completely unroll this loop or do loop unswitching.
aoqi@0 2314 if (cl->is_normal_loop()) {
aoqi@0 2315 if (should_unswitch) {
aoqi@0 2316 phase->do_unswitching(this, old_new);
aoqi@0 2317 return true;
aoqi@0 2318 }
aoqi@0 2319 bool should_maximally_unroll = policy_maximally_unroll(phase);
aoqi@0 2320 if (should_maximally_unroll) {
aoqi@0 2321 // Here we did some unrolling and peeling. Eventually we will
aoqi@0 2322 // completely unroll this loop and it will no longer be a loop.
aoqi@0 2323 phase->do_maximally_unroll(this,old_new);
aoqi@0 2324 return true;
aoqi@0 2325 }
aoqi@0 2326 }
aoqi@0 2327
aoqi@0 2328 // Skip next optimizations if running low on nodes. Note that
aoqi@0 2329 // policy_unswitching and policy_maximally_unroll have this check.
vlivanov@7385 2330 int nodes_left = phase->C->max_node_limit() - phase->C->live_nodes();
vlivanov@7385 2331 if ((int)(2 * _body.size()) > nodes_left) {
aoqi@0 2332 return true;
aoqi@0 2333 }
aoqi@0 2334
aoqi@0 2335 // Counted loops may be peeled, may need some iterations run up
aoqi@0 2336 // front for RCE, and may want to align loop refs to a cache
aoqi@0 2337 // line. Thus we clone a full loop up front whose trip count is
aoqi@0 2338 // at least 1 (if peeling), but may be several more.
aoqi@0 2339
aoqi@0 2340 // The main loop will start cache-line aligned with at least 1
aoqi@0 2341 // iteration of the unrolled body (zero-trip test required) and
aoqi@0 2342 // will have some range checks removed.
aoqi@0 2343
aoqi@0 2344 // A post-loop will finish any odd iterations (leftover after
aoqi@0 2345 // unrolling), plus any needed for RCE purposes.
aoqi@0 2346
aoqi@0 2347 bool should_unroll = policy_unroll(phase);
aoqi@0 2348
aoqi@0 2349 bool should_rce = policy_range_check(phase);
aoqi@0 2350
aoqi@0 2351 bool should_align = policy_align(phase);
aoqi@0 2352
aoqi@0 2353 // If not RCE'ing (iteration splitting) or Aligning, then we do not
aoqi@0 2354 // need a pre-loop. We may still need to peel an initial iteration but
aoqi@0 2355 // we will not be needing an unknown number of pre-iterations.
aoqi@0 2356 //
aoqi@0 2357 // Basically, if may_rce_align reports FALSE first time through,
aoqi@0 2358 // we will not be able to later do RCE or Aligning on this loop.
aoqi@0 2359 bool may_rce_align = !policy_peel_only(phase) || should_rce || should_align;
aoqi@0 2360
aoqi@0 2361 // If we have any of these conditions (RCE, alignment, unrolling) met, then
aoqi@0 2362 // we switch to the pre-/main-/post-loop model. This model also covers
aoqi@0 2363 // peeling.
aoqi@0 2364 if (should_rce || should_align || should_unroll) {
aoqi@0 2365 if (cl->is_normal_loop()) // Convert to 'pre/main/post' loops
aoqi@0 2366 phase->insert_pre_post_loops(this,old_new, !may_rce_align);
aoqi@0 2367
aoqi@0 2368 // Adjust the pre- and main-loop limits to let the pre and post loops run
aoqi@0 2369 // with full checks, but the main-loop with no checks. Remove said
aoqi@0 2370 // checks from the main body.
aoqi@0 2371 if (should_rce)
aoqi@0 2372 phase->do_range_check(this,old_new);
aoqi@0 2373
aoqi@0 2374 // Double loop body for unrolling. Adjust the minimum-trip test (will do
aoqi@0 2375 // twice as many iterations as before) and the main body limit (only do
aoqi@0 2376 // an even number of trips). If we are peeling, we might enable some RCE
aoqi@0 2377 // and we'd rather unroll the post-RCE'd loop SO... do not unroll if
aoqi@0 2378 // peeling.
aoqi@0 2379 if (should_unroll && !should_peel)
aoqi@0 2380 phase->do_unroll(this,old_new, true);
aoqi@0 2381
aoqi@0 2382 // Adjust the pre-loop limits to align the main body
aoqi@0 2383 // iterations.
aoqi@0 2384 if (should_align)
aoqi@0 2385 Unimplemented();
aoqi@0 2386
aoqi@0 2387 } else { // Else we have an unchanged counted loop
aoqi@0 2388 if (should_peel) // Might want to peel but do nothing else
aoqi@0 2389 phase->do_peeling(this,old_new);
aoqi@0 2390 }
aoqi@0 2391 return true;
aoqi@0 2392 }
aoqi@0 2393
aoqi@0 2394
aoqi@0 2395 //=============================================================================
aoqi@0 2396 //------------------------------iteration_split--------------------------------
aoqi@0 2397 bool IdealLoopTree::iteration_split( PhaseIdealLoop *phase, Node_List &old_new ) {
aoqi@0 2398 // Recursively iteration split nested loops
aoqi@0 2399 if (_child && !_child->iteration_split(phase, old_new))
aoqi@0 2400 return false;
aoqi@0 2401
aoqi@0 2402 // Clean out prior deadwood
aoqi@0 2403 DCE_loop_body();
aoqi@0 2404
aoqi@0 2405
aoqi@0 2406 // Look for loop-exit tests with my 50/50 guesses from the Parsing stage.
aoqi@0 2407 // Replace with a 1-in-10 exit guess.
aoqi@0 2408 if (_parent /*not the root loop*/ &&
aoqi@0 2409 !_irreducible &&
aoqi@0 2410 // Also ignore the occasional dead backedge
aoqi@0 2411 !tail()->is_top()) {
aoqi@0 2412 adjust_loop_exit_prob(phase);
aoqi@0 2413 }
aoqi@0 2414
aoqi@0 2415 // Gate unrolling, RCE and peeling efforts.
aoqi@0 2416 if (!_child && // If not an inner loop, do not split
aoqi@0 2417 !_irreducible &&
aoqi@0 2418 _allow_optimizations &&
aoqi@0 2419 !tail()->is_top()) { // Also ignore the occasional dead backedge
aoqi@0 2420 if (!_has_call) {
aoqi@0 2421 if (!iteration_split_impl(phase, old_new)) {
aoqi@0 2422 return false;
aoqi@0 2423 }
aoqi@0 2424 } else if (policy_unswitching(phase)) {
aoqi@0 2425 phase->do_unswitching(this, old_new);
aoqi@0 2426 }
aoqi@0 2427 }
aoqi@0 2428
aoqi@0 2429 // Minor offset re-organization to remove loop-fallout uses of
aoqi@0 2430 // trip counter when there was no major reshaping.
aoqi@0 2431 phase->reorg_offsets(this);
aoqi@0 2432
aoqi@0 2433 if (_next && !_next->iteration_split(phase, old_new))
aoqi@0 2434 return false;
aoqi@0 2435 return true;
aoqi@0 2436 }
aoqi@0 2437
aoqi@0 2438
aoqi@0 2439 //=============================================================================
aoqi@0 2440 // Process all the loops in the loop tree and replace any fill
thartmann@8476 2441 // patterns with an intrinsic version.
aoqi@0 2442 bool PhaseIdealLoop::do_intrinsify_fill() {
aoqi@0 2443 bool changed = false;
aoqi@0 2444 for (LoopTreeIterator iter(_ltree_root); !iter.done(); iter.next()) {
aoqi@0 2445 IdealLoopTree* lpt = iter.current();
aoqi@0 2446 changed |= intrinsify_fill(lpt);
aoqi@0 2447 }
aoqi@0 2448 return changed;
aoqi@0 2449 }
aoqi@0 2450
aoqi@0 2451
aoqi@0 2452 // Examine an inner loop looking for a a single store of an invariant
aoqi@0 2453 // value in a unit stride loop,
aoqi@0 2454 bool PhaseIdealLoop::match_fill_loop(IdealLoopTree* lpt, Node*& store, Node*& store_value,
aoqi@0 2455 Node*& shift, Node*& con) {
aoqi@0 2456 const char* msg = NULL;
aoqi@0 2457 Node* msg_node = NULL;
aoqi@0 2458
aoqi@0 2459 store_value = NULL;
aoqi@0 2460 con = NULL;
aoqi@0 2461 shift = NULL;
aoqi@0 2462
aoqi@0 2463 // Process the loop looking for stores. If there are multiple
aoqi@0 2464 // stores or extra control flow give at this point.
aoqi@0 2465 CountedLoopNode* head = lpt->_head->as_CountedLoop();
aoqi@0 2466 for (uint i = 0; msg == NULL && i < lpt->_body.size(); i++) {
aoqi@0 2467 Node* n = lpt->_body.at(i);
aoqi@0 2468 if (n->outcnt() == 0) continue; // Ignore dead
aoqi@0 2469 if (n->is_Store()) {
aoqi@0 2470 if (store != NULL) {
aoqi@0 2471 msg = "multiple stores";
aoqi@0 2472 break;
aoqi@0 2473 }
aoqi@0 2474 int opc = n->Opcode();
aoqi@0 2475 if (opc == Op_StoreP || opc == Op_StoreN || opc == Op_StoreNKlass || opc == Op_StoreCM) {
aoqi@0 2476 msg = "oop fills not handled";
aoqi@0 2477 break;
aoqi@0 2478 }
aoqi@0 2479 Node* value = n->in(MemNode::ValueIn);
aoqi@0 2480 if (!lpt->is_invariant(value)) {
aoqi@0 2481 msg = "variant store value";
aoqi@0 2482 } else if (!_igvn.type(n->in(MemNode::Address))->isa_aryptr()) {
aoqi@0 2483 msg = "not array address";
aoqi@0 2484 }
aoqi@0 2485 store = n;
aoqi@0 2486 store_value = value;
aoqi@0 2487 } else if (n->is_If() && n != head->loopexit()) {
aoqi@0 2488 msg = "extra control flow";
aoqi@0 2489 msg_node = n;
aoqi@0 2490 }
aoqi@0 2491 }
aoqi@0 2492
aoqi@0 2493 if (store == NULL) {
aoqi@0 2494 // No store in loop
aoqi@0 2495 return false;
aoqi@0 2496 }
aoqi@0 2497
aoqi@0 2498 if (msg == NULL && head->stride_con() != 1) {
aoqi@0 2499 // could handle negative strides too
aoqi@0 2500 if (head->stride_con() < 0) {
aoqi@0 2501 msg = "negative stride";
aoqi@0 2502 } else {
aoqi@0 2503 msg = "non-unit stride";
aoqi@0 2504 }
aoqi@0 2505 }
aoqi@0 2506
aoqi@0 2507 if (msg == NULL && !store->in(MemNode::Address)->is_AddP()) {
aoqi@0 2508 msg = "can't handle store address";
aoqi@0 2509 msg_node = store->in(MemNode::Address);
aoqi@0 2510 }
aoqi@0 2511
aoqi@0 2512 if (msg == NULL &&
aoqi@0 2513 (!store->in(MemNode::Memory)->is_Phi() ||
aoqi@0 2514 store->in(MemNode::Memory)->in(LoopNode::LoopBackControl) != store)) {
aoqi@0 2515 msg = "store memory isn't proper phi";
aoqi@0 2516 msg_node = store->in(MemNode::Memory);
aoqi@0 2517 }
aoqi@0 2518
aoqi@0 2519 // Make sure there is an appropriate fill routine
aoqi@0 2520 BasicType t = store->as_Mem()->memory_type();
aoqi@0 2521 const char* fill_name;
aoqi@0 2522 if (msg == NULL &&
aoqi@0 2523 StubRoutines::select_fill_function(t, false, fill_name) == NULL) {
aoqi@0 2524 msg = "unsupported store";
aoqi@0 2525 msg_node = store;
aoqi@0 2526 }
aoqi@0 2527
aoqi@0 2528 if (msg != NULL) {
aoqi@0 2529 #ifndef PRODUCT
aoqi@0 2530 if (TraceOptimizeFill) {
aoqi@0 2531 tty->print_cr("not fill intrinsic candidate: %s", msg);
aoqi@0 2532 if (msg_node != NULL) msg_node->dump();
aoqi@0 2533 }
aoqi@0 2534 #endif
aoqi@0 2535 return false;
aoqi@0 2536 }
aoqi@0 2537
aoqi@0 2538 // Make sure the address expression can be handled. It should be
thartmann@8476 2539 // head->phi * elsize + con. head->phi might have a ConvI2L(CastII()).
aoqi@0 2540 Node* elements[4];
thartmann@8476 2541 Node* cast = NULL;
aoqi@0 2542 Node* conv = NULL;
aoqi@0 2543 bool found_index = false;
aoqi@0 2544 int count = store->in(MemNode::Address)->as_AddP()->unpack_offsets(elements, ARRAY_SIZE(elements));
aoqi@0 2545 for (int e = 0; e < count; e++) {
aoqi@0 2546 Node* n = elements[e];
aoqi@0 2547 if (n->is_Con() && con == NULL) {
aoqi@0 2548 con = n;
aoqi@0 2549 } else if (n->Opcode() == Op_LShiftX && shift == NULL) {
aoqi@0 2550 Node* value = n->in(1);
aoqi@0 2551 #ifdef _LP64
aoqi@0 2552 if (value->Opcode() == Op_ConvI2L) {
aoqi@0 2553 conv = value;
aoqi@0 2554 value = value->in(1);
aoqi@0 2555 }
thartmann@8476 2556 if (value->Opcode() == Op_CastII &&
thartmann@8476 2557 value->as_CastII()->has_range_check()) {
thartmann@8476 2558 // Skip range check dependent CastII nodes
thartmann@8476 2559 cast = value;
thartmann@8476 2560 value = value->in(1);
thartmann@8476 2561 }
aoqi@0 2562 #endif
aoqi@0 2563 if (value != head->phi()) {
aoqi@0 2564 msg = "unhandled shift in address";
aoqi@0 2565 } else {
aoqi@0 2566 if (type2aelembytes(store->as_Mem()->memory_type(), true) != (1 << n->in(2)->get_int())) {
aoqi@0 2567 msg = "scale doesn't match";
aoqi@0 2568 } else {
aoqi@0 2569 found_index = true;
aoqi@0 2570 shift = n;
aoqi@0 2571 }
aoqi@0 2572 }
aoqi@0 2573 } else if (n->Opcode() == Op_ConvI2L && conv == NULL) {
thartmann@8476 2574 conv = n;
thartmann@8476 2575 n = n->in(1);
thartmann@8476 2576 if (n->Opcode() == Op_CastII &&
thartmann@8476 2577 n->as_CastII()->has_range_check()) {
thartmann@8476 2578 // Skip range check dependent CastII nodes
thartmann@8476 2579 cast = n;
thartmann@8476 2580 n = n->in(1);
thartmann@8476 2581 }
thartmann@8476 2582 if (n == head->phi()) {
aoqi@0 2583 found_index = true;
aoqi@0 2584 } else {
aoqi@0 2585 msg = "unhandled input to ConvI2L";
aoqi@0 2586 }
aoqi@0 2587 } else if (n == head->phi()) {
aoqi@0 2588 // no shift, check below for allowed cases
aoqi@0 2589 found_index = true;
aoqi@0 2590 } else {
aoqi@0 2591 msg = "unhandled node in address";
aoqi@0 2592 msg_node = n;
aoqi@0 2593 }
aoqi@0 2594 }
aoqi@0 2595
aoqi@0 2596 if (count == -1) {
aoqi@0 2597 msg = "malformed address expression";
aoqi@0 2598 msg_node = store;
aoqi@0 2599 }
aoqi@0 2600
aoqi@0 2601 if (!found_index) {
aoqi@0 2602 msg = "missing use of index";
aoqi@0 2603 }
aoqi@0 2604
aoqi@0 2605 // byte sized items won't have a shift
aoqi@0 2606 if (msg == NULL && shift == NULL && t != T_BYTE && t != T_BOOLEAN) {
aoqi@0 2607 msg = "can't find shift";
aoqi@0 2608 msg_node = store;
aoqi@0 2609 }
aoqi@0 2610
aoqi@0 2611 if (msg != NULL) {
aoqi@0 2612 #ifndef PRODUCT
aoqi@0 2613 if (TraceOptimizeFill) {
aoqi@0 2614 tty->print_cr("not fill intrinsic: %s", msg);
aoqi@0 2615 if (msg_node != NULL) msg_node->dump();
aoqi@0 2616 }
aoqi@0 2617 #endif
aoqi@0 2618 return false;
aoqi@0 2619 }
aoqi@0 2620
aoqi@0 2621 // No make sure all the other nodes in the loop can be handled
aoqi@0 2622 VectorSet ok(Thread::current()->resource_area());
aoqi@0 2623
aoqi@0 2624 // store related values are ok
aoqi@0 2625 ok.set(store->_idx);
aoqi@0 2626 ok.set(store->in(MemNode::Memory)->_idx);
aoqi@0 2627
aoqi@0 2628 CountedLoopEndNode* loop_exit = head->loopexit();
aoqi@0 2629 guarantee(loop_exit != NULL, "no loop exit node");
aoqi@0 2630
aoqi@0 2631 // Loop structure is ok
aoqi@0 2632 ok.set(head->_idx);
aoqi@0 2633 ok.set(loop_exit->_idx);
aoqi@0 2634 ok.set(head->phi()->_idx);
aoqi@0 2635 ok.set(head->incr()->_idx);
aoqi@0 2636 ok.set(loop_exit->cmp_node()->_idx);
aoqi@0 2637 ok.set(loop_exit->in(1)->_idx);
aoqi@0 2638
aoqi@0 2639 // Address elements are ok
aoqi@0 2640 if (con) ok.set(con->_idx);
aoqi@0 2641 if (shift) ok.set(shift->_idx);
thartmann@8476 2642 if (cast) ok.set(cast->_idx);
aoqi@0 2643 if (conv) ok.set(conv->_idx);
aoqi@0 2644
aoqi@0 2645 for (uint i = 0; msg == NULL && i < lpt->_body.size(); i++) {
aoqi@0 2646 Node* n = lpt->_body.at(i);
aoqi@0 2647 if (n->outcnt() == 0) continue; // Ignore dead
aoqi@0 2648 if (ok.test(n->_idx)) continue;
aoqi@0 2649 // Backedge projection is ok
aoqi@0 2650 if (n->is_IfTrue() && n->in(0) == loop_exit) continue;
aoqi@0 2651 if (!n->is_AddP()) {
aoqi@0 2652 msg = "unhandled node";
aoqi@0 2653 msg_node = n;
aoqi@0 2654 break;
aoqi@0 2655 }
aoqi@0 2656 }
aoqi@0 2657
aoqi@0 2658 // Make sure no unexpected values are used outside the loop
aoqi@0 2659 for (uint i = 0; msg == NULL && i < lpt->_body.size(); i++) {
aoqi@0 2660 Node* n = lpt->_body.at(i);
aoqi@0 2661 // These values can be replaced with other nodes if they are used
aoqi@0 2662 // outside the loop.
aoqi@0 2663 if (n == store || n == loop_exit || n == head->incr() || n == store->in(MemNode::Memory)) continue;
aoqi@0 2664 for (SimpleDUIterator iter(n); iter.has_next(); iter.next()) {
aoqi@0 2665 Node* use = iter.get();
aoqi@0 2666 if (!lpt->_body.contains(use)) {
aoqi@0 2667 msg = "node is used outside loop";
aoqi@0 2668 // lpt->_body.dump();
aoqi@0 2669 msg_node = n;
aoqi@0 2670 break;
aoqi@0 2671 }
aoqi@0 2672 }
aoqi@0 2673 }
aoqi@0 2674
aoqi@0 2675 #ifdef ASSERT
aoqi@0 2676 if (TraceOptimizeFill) {
aoqi@0 2677 if (msg != NULL) {
aoqi@0 2678 tty->print_cr("no fill intrinsic: %s", msg);
aoqi@0 2679 if (msg_node != NULL) msg_node->dump();
aoqi@0 2680 } else {
aoqi@0 2681 tty->print_cr("fill intrinsic for:");
aoqi@0 2682 }
aoqi@0 2683 store->dump();
aoqi@0 2684 if (Verbose) {
aoqi@0 2685 lpt->_body.dump();
aoqi@0 2686 }
aoqi@0 2687 }
aoqi@0 2688 #endif
aoqi@0 2689
aoqi@0 2690 return msg == NULL;
aoqi@0 2691 }
aoqi@0 2692
aoqi@0 2693
aoqi@0 2694
aoqi@0 2695 bool PhaseIdealLoop::intrinsify_fill(IdealLoopTree* lpt) {
aoqi@0 2696 // Only for counted inner loops
aoqi@0 2697 if (!lpt->is_counted() || !lpt->is_inner()) {
aoqi@0 2698 return false;
aoqi@0 2699 }
aoqi@0 2700
aoqi@0 2701 // Must have constant stride
aoqi@0 2702 CountedLoopNode* head = lpt->_head->as_CountedLoop();
aoqi@0 2703 if (!head->is_valid_counted_loop() || !head->is_normal_loop()) {
aoqi@0 2704 return false;
aoqi@0 2705 }
aoqi@0 2706
aoqi@0 2707 // Check that the body only contains a store of a loop invariant
aoqi@0 2708 // value that is indexed by the loop phi.
aoqi@0 2709 Node* store = NULL;
aoqi@0 2710 Node* store_value = NULL;
aoqi@0 2711 Node* shift = NULL;
aoqi@0 2712 Node* offset = NULL;
aoqi@0 2713 if (!match_fill_loop(lpt, store, store_value, shift, offset)) {
aoqi@0 2714 return false;
aoqi@0 2715 }
aoqi@0 2716
rraghavan@8777 2717 Node* exit = head->loopexit()->proj_out(0);
rraghavan@8777 2718 if (exit == NULL) {
rraghavan@8777 2719 return false;
rraghavan@8777 2720 }
rraghavan@8777 2721
aoqi@0 2722 #ifndef PRODUCT
aoqi@0 2723 if (TraceLoopOpts) {
aoqi@0 2724 tty->print("ArrayFill ");
aoqi@0 2725 lpt->dump_head();
aoqi@0 2726 }
aoqi@0 2727 #endif
aoqi@0 2728
aoqi@0 2729 // Now replace the whole loop body by a call to a fill routine that
aoqi@0 2730 // covers the same region as the loop.
aoqi@0 2731 Node* base = store->in(MemNode::Address)->as_AddP()->in(AddPNode::Base);
aoqi@0 2732
aoqi@0 2733 // Build an expression for the beginning of the copy region
aoqi@0 2734 Node* index = head->init_trip();
aoqi@0 2735 #ifdef _LP64
aoqi@0 2736 index = new (C) ConvI2LNode(index);
aoqi@0 2737 _igvn.register_new_node_with_optimizer(index);
aoqi@0 2738 #endif
aoqi@0 2739 if (shift != NULL) {
aoqi@0 2740 // byte arrays don't require a shift but others do.
aoqi@0 2741 index = new (C) LShiftXNode(index, shift->in(2));
aoqi@0 2742 _igvn.register_new_node_with_optimizer(index);
aoqi@0 2743 }
aoqi@0 2744 index = new (C) AddPNode(base, base, index);
aoqi@0 2745 _igvn.register_new_node_with_optimizer(index);
aoqi@0 2746 Node* from = new (C) AddPNode(base, index, offset);
aoqi@0 2747 _igvn.register_new_node_with_optimizer(from);
aoqi@0 2748 // Compute the number of elements to copy
aoqi@0 2749 Node* len = new (C) SubINode(head->limit(), head->init_trip());
aoqi@0 2750 _igvn.register_new_node_with_optimizer(len);
aoqi@0 2751
aoqi@0 2752 BasicType t = store->as_Mem()->memory_type();
aoqi@0 2753 bool aligned = false;
aoqi@0 2754 if (offset != NULL && head->init_trip()->is_Con()) {
aoqi@0 2755 int element_size = type2aelembytes(t);
aoqi@0 2756 aligned = (offset->find_intptr_t_type()->get_con() + head->init_trip()->get_int() * element_size) % HeapWordSize == 0;
aoqi@0 2757 }
aoqi@0 2758
aoqi@0 2759 // Build a call to the fill routine
aoqi@0 2760 const char* fill_name;
aoqi@0 2761 address fill = StubRoutines::select_fill_function(t, aligned, fill_name);
aoqi@0 2762 assert(fill != NULL, "what?");
aoqi@0 2763
aoqi@0 2764 // Convert float/double to int/long for fill routines
aoqi@0 2765 if (t == T_FLOAT) {
aoqi@0 2766 store_value = new (C) MoveF2INode(store_value);
aoqi@0 2767 _igvn.register_new_node_with_optimizer(store_value);
aoqi@0 2768 } else if (t == T_DOUBLE) {
aoqi@0 2769 store_value = new (C) MoveD2LNode(store_value);
aoqi@0 2770 _igvn.register_new_node_with_optimizer(store_value);
aoqi@0 2771 }
aoqi@0 2772
aoqi@0 2773 if (CCallingConventionRequiresIntsAsLongs &&
aoqi@0 2774 // See StubRoutines::select_fill_function for types. FLOAT has been converted to INT.
aoqi@0 2775 (t == T_FLOAT || t == T_INT || is_subword_type(t))) {
aoqi@0 2776 store_value = new (C) ConvI2LNode(store_value);
aoqi@0 2777 _igvn.register_new_node_with_optimizer(store_value);
aoqi@0 2778 }
aoqi@0 2779
aoqi@0 2780 Node* mem_phi = store->in(MemNode::Memory);
aoqi@0 2781 Node* result_ctrl;
aoqi@0 2782 Node* result_mem;
aoqi@0 2783 const TypeFunc* call_type = OptoRuntime::array_fill_Type();
aoqi@0 2784 CallLeafNode *call = new (C) CallLeafNoFPNode(call_type, fill,
aoqi@0 2785 fill_name, TypeAryPtr::get_array_body_type(t));
aoqi@0 2786 uint cnt = 0;
aoqi@0 2787 call->init_req(TypeFunc::Parms + cnt++, from);
aoqi@0 2788 call->init_req(TypeFunc::Parms + cnt++, store_value);
aoqi@0 2789 if (CCallingConventionRequiresIntsAsLongs) {
aoqi@0 2790 call->init_req(TypeFunc::Parms + cnt++, C->top());
aoqi@0 2791 }
aoqi@0 2792 #ifdef _LP64
aoqi@0 2793 len = new (C) ConvI2LNode(len);
aoqi@0 2794 _igvn.register_new_node_with_optimizer(len);
aoqi@0 2795 #endif
aoqi@0 2796 call->init_req(TypeFunc::Parms + cnt++, len);
aoqi@0 2797 #ifdef _LP64
aoqi@0 2798 call->init_req(TypeFunc::Parms + cnt++, C->top());
aoqi@0 2799 #endif
aoqi@0 2800 call->init_req(TypeFunc::Control, head->init_control());
aoqi@0 2801 call->init_req(TypeFunc::I_O, C->top()); // Does no I/O.
aoqi@0 2802 call->init_req(TypeFunc::Memory, mem_phi->in(LoopNode::EntryControl));
aoqi@0 2803 call->init_req(TypeFunc::ReturnAdr, C->start()->proj_out(TypeFunc::ReturnAdr));
aoqi@0 2804 call->init_req(TypeFunc::FramePtr, C->start()->proj_out(TypeFunc::FramePtr));
aoqi@0 2805 _igvn.register_new_node_with_optimizer(call);
aoqi@0 2806 result_ctrl = new (C) ProjNode(call,TypeFunc::Control);
aoqi@0 2807 _igvn.register_new_node_with_optimizer(result_ctrl);
aoqi@0 2808 result_mem = new (C) ProjNode(call,TypeFunc::Memory);
aoqi@0 2809 _igvn.register_new_node_with_optimizer(result_mem);
aoqi@0 2810
aoqi@0 2811 /* Disable following optimization until proper fix (add missing checks).
aoqi@0 2812
aoqi@0 2813 // If this fill is tightly coupled to an allocation and overwrites
aoqi@0 2814 // the whole body, allow it to take over the zeroing.
aoqi@0 2815 AllocateNode* alloc = AllocateNode::Ideal_allocation(base, this);
aoqi@0 2816 if (alloc != NULL && alloc->is_AllocateArray()) {
aoqi@0 2817 Node* length = alloc->as_AllocateArray()->Ideal_length();
aoqi@0 2818 if (head->limit() == length &&
aoqi@0 2819 head->init_trip() == _igvn.intcon(0)) {
aoqi@0 2820 if (TraceOptimizeFill) {
aoqi@0 2821 tty->print_cr("Eliminated zeroing in allocation");
aoqi@0 2822 }
aoqi@0 2823 alloc->maybe_set_complete(&_igvn);
aoqi@0 2824 } else {
aoqi@0 2825 #ifdef ASSERT
aoqi@0 2826 if (TraceOptimizeFill) {
aoqi@0 2827 tty->print_cr("filling array but bounds don't match");
aoqi@0 2828 alloc->dump();
aoqi@0 2829 head->init_trip()->dump();
aoqi@0 2830 head->limit()->dump();
aoqi@0 2831 length->dump();
aoqi@0 2832 }
aoqi@0 2833 #endif
aoqi@0 2834 }
aoqi@0 2835 }
aoqi@0 2836 */
aoqi@0 2837
aoqi@0 2838 // Redirect the old control and memory edges that are outside the loop.
aoqi@0 2839 // Sometimes the memory phi of the head is used as the outgoing
aoqi@0 2840 // state of the loop. It's safe in this case to replace it with the
aoqi@0 2841 // result_mem.
aoqi@0 2842 _igvn.replace_node(store->in(MemNode::Memory), result_mem);
roland@8311 2843 lazy_replace(exit, result_ctrl);
aoqi@0 2844 _igvn.replace_node(store, result_mem);
aoqi@0 2845 // Any uses the increment outside of the loop become the loop limit.
aoqi@0 2846 _igvn.replace_node(head->incr(), head->limit());
aoqi@0 2847
aoqi@0 2848 // Disconnect the head from the loop.
aoqi@0 2849 for (uint i = 0; i < lpt->_body.size(); i++) {
aoqi@0 2850 Node* n = lpt->_body.at(i);
aoqi@0 2851 _igvn.replace_node(n, C->top());
aoqi@0 2852 }
aoqi@0 2853
aoqi@0 2854 return true;
aoqi@0 2855 }

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