Tue, 04 Feb 2020 18:13:14 +0800
Merge
1 /*
2 * Copyright (c) 2005, 2015, Oracle and/or its affiliates. All rights reserved.
3 * DO NOT ALTER OR REMOVE COPYRIGHT NOTICES OR THIS FILE HEADER.
4 *
5 * This code is free software; you can redistribute it and/or modify it
6 * under the terms of the GNU General Public License version 2 only, as
7 * published by the Free Software Foundation.
8 *
9 * This code is distributed in the hope that it will be useful, but WITHOUT
10 * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
11 * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
12 * version 2 for more details (a copy is included in the LICENSE file that
13 * accompanied this code).
14 *
15 * You should have received a copy of the GNU General Public License version
16 * 2 along with this work; if not, write to the Free Software Foundation,
17 * Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA.
18 *
19 * Please contact Oracle, 500 Oracle Parkway, Redwood Shores, CA 94065 USA
20 * or visit www.oracle.com if you need additional information or have any
21 * questions.
22 *
23 */
25 #include "precompiled.hpp"
26 #include "ci/bcEscapeAnalyzer.hpp"
27 #include "compiler/compileLog.hpp"
28 #include "libadt/vectset.hpp"
29 #include "memory/allocation.hpp"
30 #include "opto/c2compiler.hpp"
31 #include "opto/callnode.hpp"
32 #include "opto/cfgnode.hpp"
33 #include "opto/compile.hpp"
34 #include "opto/escape.hpp"
35 #include "opto/phaseX.hpp"
36 #include "opto/rootnode.hpp"
38 ConnectionGraph::ConnectionGraph(Compile * C, PhaseIterGVN *igvn) :
39 _nodes(C->comp_arena(), C->unique(), C->unique(), NULL),
40 _in_worklist(C->comp_arena()),
41 _next_pidx(0),
42 _collecting(true),
43 _verify(false),
44 _compile(C),
45 _igvn(igvn),
46 _node_map(C->comp_arena()) {
47 // Add unknown java object.
48 add_java_object(C->top(), PointsToNode::GlobalEscape);
49 phantom_obj = ptnode_adr(C->top()->_idx)->as_JavaObject();
50 // Add ConP(#NULL) and ConN(#NULL) nodes.
51 Node* oop_null = igvn->zerocon(T_OBJECT);
52 assert(oop_null->_idx < nodes_size(), "should be created already");
53 add_java_object(oop_null, PointsToNode::NoEscape);
54 null_obj = ptnode_adr(oop_null->_idx)->as_JavaObject();
55 if (UseCompressedOops) {
56 Node* noop_null = igvn->zerocon(T_NARROWOOP);
57 assert(noop_null->_idx < nodes_size(), "should be created already");
58 map_ideal_node(noop_null, null_obj);
59 }
60 _pcmp_neq = NULL; // Should be initialized
61 _pcmp_eq = NULL;
62 }
64 bool ConnectionGraph::has_candidates(Compile *C) {
65 // EA brings benefits only when the code has allocations and/or locks which
66 // are represented by ideal Macro nodes.
67 int cnt = C->macro_count();
68 for (int i = 0; i < cnt; i++) {
69 Node *n = C->macro_node(i);
70 if (n->is_Allocate())
71 return true;
72 if (n->is_Lock()) {
73 Node* obj = n->as_Lock()->obj_node()->uncast();
74 if (!(obj->is_Parm() || obj->is_Con()))
75 return true;
76 }
77 if (n->is_CallStaticJava() &&
78 n->as_CallStaticJava()->is_boxing_method()) {
79 return true;
80 }
81 }
82 return false;
83 }
85 void ConnectionGraph::do_analysis(Compile *C, PhaseIterGVN *igvn) {
86 Compile::TracePhase t2("escapeAnalysis", &Phase::_t_escapeAnalysis, true);
87 ResourceMark rm;
89 // Add ConP#NULL and ConN#NULL nodes before ConnectionGraph construction
90 // to create space for them in ConnectionGraph::_nodes[].
91 Node* oop_null = igvn->zerocon(T_OBJECT);
92 Node* noop_null = igvn->zerocon(T_NARROWOOP);
93 ConnectionGraph* congraph = new(C->comp_arena()) ConnectionGraph(C, igvn);
94 // Perform escape analysis
95 if (congraph->compute_escape()) {
96 // There are non escaping objects.
97 C->set_congraph(congraph);
98 }
99 // Cleanup.
100 if (oop_null->outcnt() == 0)
101 igvn->hash_delete(oop_null);
102 if (noop_null->outcnt() == 0)
103 igvn->hash_delete(noop_null);
104 }
106 bool ConnectionGraph::compute_escape() {
107 Compile* C = _compile;
108 PhaseGVN* igvn = _igvn;
110 // Worklists used by EA.
111 Unique_Node_List delayed_worklist;
112 GrowableArray<Node*> alloc_worklist;
113 GrowableArray<Node*> ptr_cmp_worklist;
114 GrowableArray<Node*> storestore_worklist;
115 GrowableArray<PointsToNode*> ptnodes_worklist;
116 GrowableArray<JavaObjectNode*> java_objects_worklist;
117 GrowableArray<JavaObjectNode*> non_escaped_worklist;
118 GrowableArray<FieldNode*> oop_fields_worklist;
119 DEBUG_ONLY( GrowableArray<Node*> addp_worklist; )
121 { Compile::TracePhase t3("connectionGraph", &Phase::_t_connectionGraph, true);
123 // 1. Populate Connection Graph (CG) with PointsTo nodes.
124 ideal_nodes.map(C->live_nodes(), NULL); // preallocate space
125 // Initialize worklist
126 if (C->root() != NULL) {
127 ideal_nodes.push(C->root());
128 }
129 // Processed ideal nodes are unique on ideal_nodes list
130 // but several ideal nodes are mapped to the phantom_obj.
131 // To avoid duplicated entries on the following worklists
132 // add the phantom_obj only once to them.
133 ptnodes_worklist.append(phantom_obj);
134 java_objects_worklist.append(phantom_obj);
135 for( uint next = 0; next < ideal_nodes.size(); ++next ) {
136 Node* n = ideal_nodes.at(next);
137 // Create PointsTo nodes and add them to Connection Graph. Called
138 // only once per ideal node since ideal_nodes is Unique_Node list.
139 add_node_to_connection_graph(n, &delayed_worklist);
140 PointsToNode* ptn = ptnode_adr(n->_idx);
141 if (ptn != NULL && ptn != phantom_obj) {
142 ptnodes_worklist.append(ptn);
143 if (ptn->is_JavaObject()) {
144 java_objects_worklist.append(ptn->as_JavaObject());
145 if ((n->is_Allocate() || n->is_CallStaticJava()) &&
146 (ptn->escape_state() < PointsToNode::GlobalEscape)) {
147 // Only allocations and java static calls results are interesting.
148 non_escaped_worklist.append(ptn->as_JavaObject());
149 }
150 } else if (ptn->is_Field() && ptn->as_Field()->is_oop()) {
151 oop_fields_worklist.append(ptn->as_Field());
152 }
153 }
154 if (n->is_MergeMem()) {
155 // Collect all MergeMem nodes to add memory slices for
156 // scalar replaceable objects in split_unique_types().
157 _mergemem_worklist.append(n->as_MergeMem());
158 } else if (OptimizePtrCompare && n->is_Cmp() &&
159 (n->Opcode() == Op_CmpP || n->Opcode() == Op_CmpN)) {
160 // Collect compare pointers nodes.
161 ptr_cmp_worklist.append(n);
162 } else if (n->is_MemBarStoreStore()) {
163 // Collect all MemBarStoreStore nodes so that depending on the
164 // escape status of the associated Allocate node some of them
165 // may be eliminated.
166 storestore_worklist.append(n);
167 } else if (n->is_MemBar() && (n->Opcode() == Op_MemBarRelease) &&
168 (n->req() > MemBarNode::Precedent)) {
169 record_for_optimizer(n);
170 #ifdef ASSERT
171 } else if (n->is_AddP()) {
172 // Collect address nodes for graph verification.
173 addp_worklist.append(n);
174 #endif
175 }
176 for (DUIterator_Fast imax, i = n->fast_outs(imax); i < imax; i++) {
177 Node* m = n->fast_out(i); // Get user
178 ideal_nodes.push(m);
179 }
180 }
181 if (non_escaped_worklist.length() == 0) {
182 _collecting = false;
183 return false; // Nothing to do.
184 }
185 // Add final simple edges to graph.
186 while(delayed_worklist.size() > 0) {
187 Node* n = delayed_worklist.pop();
188 add_final_edges(n);
189 }
190 int ptnodes_length = ptnodes_worklist.length();
192 #ifdef ASSERT
193 if (VerifyConnectionGraph) {
194 // Verify that no new simple edges could be created and all
195 // local vars has edges.
196 _verify = true;
197 for (int next = 0; next < ptnodes_length; ++next) {
198 PointsToNode* ptn = ptnodes_worklist.at(next);
199 add_final_edges(ptn->ideal_node());
200 if (ptn->is_LocalVar() && ptn->edge_count() == 0) {
201 ptn->dump();
202 assert(ptn->as_LocalVar()->edge_count() > 0, "sanity");
203 }
204 }
205 _verify = false;
206 }
207 #endif
208 // Bytecode analyzer BCEscapeAnalyzer, used for Call nodes
209 // processing, calls to CI to resolve symbols (types, fields, methods)
210 // referenced in bytecode. During symbol resolution VM may throw
211 // an exception which CI cleans and converts to compilation failure.
212 if (C->failing()) return false;
214 // 2. Finish Graph construction by propagating references to all
215 // java objects through graph.
216 if (!complete_connection_graph(ptnodes_worklist, non_escaped_worklist,
217 java_objects_worklist, oop_fields_worklist)) {
218 // All objects escaped or hit time or iterations limits.
219 _collecting = false;
220 return false;
221 }
223 // 3. Adjust scalar_replaceable state of nonescaping objects and push
224 // scalar replaceable allocations on alloc_worklist for processing
225 // in split_unique_types().
226 int non_escaped_length = non_escaped_worklist.length();
227 for (int next = 0; next < non_escaped_length; next++) {
228 JavaObjectNode* ptn = non_escaped_worklist.at(next);
229 bool noescape = (ptn->escape_state() == PointsToNode::NoEscape);
230 Node* n = ptn->ideal_node();
231 if (n->is_Allocate()) {
232 n->as_Allocate()->_is_non_escaping = noescape;
233 }
234 if (n->is_CallStaticJava()) {
235 n->as_CallStaticJava()->_is_non_escaping = noescape;
236 }
237 if (noescape && ptn->scalar_replaceable()) {
238 adjust_scalar_replaceable_state(ptn);
239 if (ptn->scalar_replaceable()) {
240 alloc_worklist.append(ptn->ideal_node());
241 }
242 }
243 }
245 #ifdef ASSERT
246 if (VerifyConnectionGraph) {
247 // Verify that graph is complete - no new edges could be added or needed.
248 verify_connection_graph(ptnodes_worklist, non_escaped_worklist,
249 java_objects_worklist, addp_worklist);
250 }
251 assert(C->unique() == nodes_size(), "no new ideal nodes should be added during ConnectionGraph build");
252 assert(null_obj->escape_state() == PointsToNode::NoEscape &&
253 null_obj->edge_count() == 0 &&
254 !null_obj->arraycopy_src() &&
255 !null_obj->arraycopy_dst(), "sanity");
256 #endif
258 _collecting = false;
260 } // TracePhase t3("connectionGraph")
262 // 4. Optimize ideal graph based on EA information.
263 bool has_non_escaping_obj = (non_escaped_worklist.length() > 0);
264 if (has_non_escaping_obj) {
265 optimize_ideal_graph(ptr_cmp_worklist, storestore_worklist);
266 }
268 #ifndef PRODUCT
269 if (PrintEscapeAnalysis) {
270 dump(ptnodes_worklist); // Dump ConnectionGraph
271 }
272 #endif
274 bool has_scalar_replaceable_candidates = (alloc_worklist.length() > 0);
275 #ifdef ASSERT
276 if (VerifyConnectionGraph) {
277 int alloc_length = alloc_worklist.length();
278 for (int next = 0; next < alloc_length; ++next) {
279 Node* n = alloc_worklist.at(next);
280 PointsToNode* ptn = ptnode_adr(n->_idx);
281 assert(ptn->escape_state() == PointsToNode::NoEscape && ptn->scalar_replaceable(), "sanity");
282 }
283 }
284 #endif
286 // 5. Separate memory graph for scalar replaceable allcations.
287 if (has_scalar_replaceable_candidates &&
288 C->AliasLevel() >= 3 && EliminateAllocations) {
289 // Now use the escape information to create unique types for
290 // scalar replaceable objects.
291 split_unique_types(alloc_worklist);
292 if (C->failing()) return false;
293 C->print_method(PHASE_AFTER_EA, 2);
295 #ifdef ASSERT
296 } else if (Verbose && (PrintEscapeAnalysis || PrintEliminateAllocations)) {
297 tty->print("=== No allocations eliminated for ");
298 C->method()->print_short_name();
299 if(!EliminateAllocations) {
300 tty->print(" since EliminateAllocations is off ===");
301 } else if(!has_scalar_replaceable_candidates) {
302 tty->print(" since there are no scalar replaceable candidates ===");
303 } else if(C->AliasLevel() < 3) {
304 tty->print(" since AliasLevel < 3 ===");
305 }
306 tty->cr();
307 #endif
308 }
309 return has_non_escaping_obj;
310 }
312 // Utility function for nodes that load an object
313 void ConnectionGraph::add_objload_to_connection_graph(Node *n, Unique_Node_List *delayed_worklist) {
314 // Using isa_ptr() instead of isa_oopptr() for LoadP and Phi because
315 // ThreadLocal has RawPtr type.
316 const Type* t = _igvn->type(n);
317 if (t->make_ptr() != NULL) {
318 Node* adr = n->in(MemNode::Address);
319 #ifdef ASSERT
320 if (!adr->is_AddP()) {
321 assert(_igvn->type(adr)->isa_rawptr(), "sanity");
322 } else {
323 assert((ptnode_adr(adr->_idx) == NULL ||
324 ptnode_adr(adr->_idx)->as_Field()->is_oop()), "sanity");
325 }
326 #endif
327 add_local_var_and_edge(n, PointsToNode::NoEscape,
328 adr, delayed_worklist);
329 }
330 }
332 // Populate Connection Graph with PointsTo nodes and create simple
333 // connection graph edges.
334 void ConnectionGraph::add_node_to_connection_graph(Node *n, Unique_Node_List *delayed_worklist) {
335 assert(!_verify, "this method sould not be called for verification");
336 PhaseGVN* igvn = _igvn;
337 uint n_idx = n->_idx;
338 PointsToNode* n_ptn = ptnode_adr(n_idx);
339 if (n_ptn != NULL)
340 return; // No need to redefine PointsTo node during first iteration.
342 if (n->is_Call()) {
343 // Arguments to allocation and locking don't escape.
344 if (n->is_AbstractLock()) {
345 // Put Lock and Unlock nodes on IGVN worklist to process them during
346 // first IGVN optimization when escape information is still available.
347 record_for_optimizer(n);
348 } else if (n->is_Allocate()) {
349 add_call_node(n->as_Call());
350 record_for_optimizer(n);
351 } else {
352 if (n->is_CallStaticJava()) {
353 const char* name = n->as_CallStaticJava()->_name;
354 if (name != NULL && strcmp(name, "uncommon_trap") == 0)
355 return; // Skip uncommon traps
356 }
357 // Don't mark as processed since call's arguments have to be processed.
358 delayed_worklist->push(n);
359 // Check if a call returns an object.
360 if ((n->as_Call()->returns_pointer() &&
361 n->as_Call()->proj_out(TypeFunc::Parms) != NULL) ||
362 (n->is_CallStaticJava() &&
363 n->as_CallStaticJava()->is_boxing_method())) {
364 add_call_node(n->as_Call());
365 }
366 }
367 return;
368 }
369 // Put this check here to process call arguments since some call nodes
370 // point to phantom_obj.
371 if (n_ptn == phantom_obj || n_ptn == null_obj)
372 return; // Skip predefined nodes.
374 int opcode = n->Opcode();
375 switch (opcode) {
376 case Op_AddP: {
377 Node* base = get_addp_base(n);
378 PointsToNode* ptn_base = ptnode_adr(base->_idx);
379 // Field nodes are created for all field types. They are used in
380 // adjust_scalar_replaceable_state() and split_unique_types().
381 // Note, non-oop fields will have only base edges in Connection
382 // Graph because such fields are not used for oop loads and stores.
383 int offset = address_offset(n, igvn);
384 add_field(n, PointsToNode::NoEscape, offset);
385 if (ptn_base == NULL) {
386 delayed_worklist->push(n); // Process it later.
387 } else {
388 n_ptn = ptnode_adr(n_idx);
389 add_base(n_ptn->as_Field(), ptn_base);
390 }
391 break;
392 }
393 case Op_CastX2P: {
394 map_ideal_node(n, phantom_obj);
395 break;
396 }
397 case Op_CastPP:
398 case Op_CheckCastPP:
399 case Op_EncodeP:
400 case Op_DecodeN:
401 case Op_EncodePKlass:
402 case Op_DecodeNKlass: {
403 add_local_var_and_edge(n, PointsToNode::NoEscape,
404 n->in(1), delayed_worklist);
405 break;
406 }
407 case Op_CMoveP: {
408 add_local_var(n, PointsToNode::NoEscape);
409 // Do not add edges during first iteration because some could be
410 // not defined yet.
411 delayed_worklist->push(n);
412 break;
413 }
414 case Op_ConP:
415 case Op_ConN:
416 case Op_ConNKlass: {
417 // assume all oop constants globally escape except for null
418 PointsToNode::EscapeState es;
419 const Type* t = igvn->type(n);
420 if (t == TypePtr::NULL_PTR || t == TypeNarrowOop::NULL_PTR) {
421 es = PointsToNode::NoEscape;
422 } else {
423 es = PointsToNode::GlobalEscape;
424 }
425 add_java_object(n, es);
426 break;
427 }
428 case Op_CreateEx: {
429 // assume that all exception objects globally escape
430 map_ideal_node(n, phantom_obj);
431 break;
432 }
433 case Op_LoadKlass:
434 case Op_LoadNKlass: {
435 // Unknown class is loaded
436 map_ideal_node(n, phantom_obj);
437 break;
438 }
439 case Op_LoadP:
440 case Op_LoadN:
441 case Op_LoadPLocked: {
442 add_objload_to_connection_graph(n, delayed_worklist);
443 break;
444 }
445 case Op_Parm: {
446 map_ideal_node(n, phantom_obj);
447 break;
448 }
449 case Op_PartialSubtypeCheck: {
450 // Produces Null or notNull and is used in only in CmpP so
451 // phantom_obj could be used.
452 map_ideal_node(n, phantom_obj); // Result is unknown
453 break;
454 }
455 case Op_Phi: {
456 // Using isa_ptr() instead of isa_oopptr() for LoadP and Phi because
457 // ThreadLocal has RawPtr type.
458 const Type* t = n->as_Phi()->type();
459 if (t->make_ptr() != NULL) {
460 add_local_var(n, PointsToNode::NoEscape);
461 // Do not add edges during first iteration because some could be
462 // not defined yet.
463 delayed_worklist->push(n);
464 }
465 break;
466 }
467 case Op_Proj: {
468 // we are only interested in the oop result projection from a call
469 if (n->as_Proj()->_con == TypeFunc::Parms && n->in(0)->is_Call() &&
470 n->in(0)->as_Call()->returns_pointer()) {
471 add_local_var_and_edge(n, PointsToNode::NoEscape,
472 n->in(0), delayed_worklist);
473 }
474 break;
475 }
476 case Op_Rethrow: // Exception object escapes
477 case Op_Return: {
478 if (n->req() > TypeFunc::Parms &&
479 igvn->type(n->in(TypeFunc::Parms))->isa_oopptr()) {
480 // Treat Return value as LocalVar with GlobalEscape escape state.
481 add_local_var_and_edge(n, PointsToNode::GlobalEscape,
482 n->in(TypeFunc::Parms), delayed_worklist);
483 }
484 break;
485 }
486 case Op_GetAndSetP:
487 case Op_GetAndSetN: {
488 add_objload_to_connection_graph(n, delayed_worklist);
489 // fallthrough
490 }
491 case Op_StoreP:
492 case Op_StoreN:
493 case Op_StoreNKlass:
494 case Op_StorePConditional:
495 case Op_CompareAndSwapP:
496 case Op_CompareAndSwapN: {
497 Node* adr = n->in(MemNode::Address);
498 const Type *adr_type = igvn->type(adr);
499 adr_type = adr_type->make_ptr();
500 if (adr_type == NULL) {
501 break; // skip dead nodes
502 }
503 if (adr_type->isa_oopptr() ||
504 (opcode == Op_StoreP || opcode == Op_StoreN || opcode == Op_StoreNKlass) &&
505 (adr_type == TypeRawPtr::NOTNULL &&
506 adr->in(AddPNode::Address)->is_Proj() &&
507 adr->in(AddPNode::Address)->in(0)->is_Allocate())) {
508 delayed_worklist->push(n); // Process it later.
509 #ifdef ASSERT
510 assert(adr->is_AddP(), "expecting an AddP");
511 if (adr_type == TypeRawPtr::NOTNULL) {
512 // Verify a raw address for a store captured by Initialize node.
513 int offs = (int)igvn->find_intptr_t_con(adr->in(AddPNode::Offset), Type::OffsetBot);
514 assert(offs != Type::OffsetBot, "offset must be a constant");
515 }
516 #endif
517 } else {
518 // Ignore copy the displaced header to the BoxNode (OSR compilation).
519 if (adr->is_BoxLock())
520 break;
521 // Stored value escapes in unsafe access.
522 if ((opcode == Op_StoreP) && (adr_type == TypeRawPtr::BOTTOM)) {
523 // Pointer stores in G1 barriers looks like unsafe access.
524 // Ignore such stores to be able scalar replace non-escaping
525 // allocations.
526 if (UseG1GC && adr->is_AddP()) {
527 Node* base = get_addp_base(adr);
528 if (base->Opcode() == Op_LoadP &&
529 base->in(MemNode::Address)->is_AddP()) {
530 adr = base->in(MemNode::Address);
531 Node* tls = get_addp_base(adr);
532 if (tls->Opcode() == Op_ThreadLocal) {
533 int offs = (int)igvn->find_intptr_t_con(adr->in(AddPNode::Offset), Type::OffsetBot);
534 if (offs == in_bytes(JavaThread::satb_mark_queue_offset() +
535 PtrQueue::byte_offset_of_buf())) {
536 break; // G1 pre barier previous oop value store.
537 }
538 if (offs == in_bytes(JavaThread::dirty_card_queue_offset() +
539 PtrQueue::byte_offset_of_buf())) {
540 break; // G1 post barier card address store.
541 }
542 }
543 }
544 }
545 delayed_worklist->push(n); // Process unsafe access later.
546 break;
547 }
548 #ifdef ASSERT
549 n->dump(1);
550 assert(false, "not unsafe or G1 barrier raw StoreP");
551 #endif
552 }
553 break;
554 }
555 case Op_AryEq:
556 case Op_StrComp:
557 case Op_StrEquals:
558 case Op_StrIndexOf:
559 case Op_EncodeISOArray: {
560 add_local_var(n, PointsToNode::ArgEscape);
561 delayed_worklist->push(n); // Process it later.
562 break;
563 }
564 case Op_ThreadLocal: {
565 add_java_object(n, PointsToNode::ArgEscape);
566 break;
567 }
568 default:
569 ; // Do nothing for nodes not related to EA.
570 }
571 return;
572 }
574 #ifdef ASSERT
575 #define ELSE_FAIL(name) \
576 /* Should not be called for not pointer type. */ \
577 n->dump(1); \
578 assert(false, name); \
579 break;
580 #else
581 #define ELSE_FAIL(name) \
582 break;
583 #endif
585 // Add final simple edges to graph.
586 void ConnectionGraph::add_final_edges(Node *n) {
587 PointsToNode* n_ptn = ptnode_adr(n->_idx);
588 #ifdef ASSERT
589 if (_verify && n_ptn->is_JavaObject())
590 return; // This method does not change graph for JavaObject.
591 #endif
593 if (n->is_Call()) {
594 process_call_arguments(n->as_Call());
595 return;
596 }
597 assert(n->is_Store() || n->is_LoadStore() ||
598 (n_ptn != NULL) && (n_ptn->ideal_node() != NULL),
599 "node should be registered already");
600 int opcode = n->Opcode();
601 switch (opcode) {
602 case Op_AddP: {
603 Node* base = get_addp_base(n);
604 PointsToNode* ptn_base = ptnode_adr(base->_idx);
605 assert(ptn_base != NULL, "field's base should be registered");
606 add_base(n_ptn->as_Field(), ptn_base);
607 break;
608 }
609 case Op_CastPP:
610 case Op_CheckCastPP:
611 case Op_EncodeP:
612 case Op_DecodeN:
613 case Op_EncodePKlass:
614 case Op_DecodeNKlass: {
615 add_local_var_and_edge(n, PointsToNode::NoEscape,
616 n->in(1), NULL);
617 break;
618 }
619 case Op_CMoveP: {
620 for (uint i = CMoveNode::IfFalse; i < n->req(); i++) {
621 Node* in = n->in(i);
622 if (in == NULL)
623 continue; // ignore NULL
624 Node* uncast_in = in->uncast();
625 if (uncast_in->is_top() || uncast_in == n)
626 continue; // ignore top or inputs which go back this node
627 PointsToNode* ptn = ptnode_adr(in->_idx);
628 assert(ptn != NULL, "node should be registered");
629 add_edge(n_ptn, ptn);
630 }
631 break;
632 }
633 case Op_LoadP:
634 case Op_LoadN:
635 case Op_LoadPLocked: {
636 // Using isa_ptr() instead of isa_oopptr() for LoadP and Phi because
637 // ThreadLocal has RawPtr type.
638 const Type* t = _igvn->type(n);
639 if (t->make_ptr() != NULL) {
640 Node* adr = n->in(MemNode::Address);
641 add_local_var_and_edge(n, PointsToNode::NoEscape, adr, NULL);
642 break;
643 }
644 ELSE_FAIL("Op_LoadP");
645 }
646 case Op_Phi: {
647 // Using isa_ptr() instead of isa_oopptr() for LoadP and Phi because
648 // ThreadLocal has RawPtr type.
649 const Type* t = n->as_Phi()->type();
650 if (t->make_ptr() != NULL) {
651 for (uint i = 1; i < n->req(); i++) {
652 Node* in = n->in(i);
653 if (in == NULL)
654 continue; // ignore NULL
655 Node* uncast_in = in->uncast();
656 if (uncast_in->is_top() || uncast_in == n)
657 continue; // ignore top or inputs which go back this node
658 PointsToNode* ptn = ptnode_adr(in->_idx);
659 assert(ptn != NULL, "node should be registered");
660 add_edge(n_ptn, ptn);
661 }
662 break;
663 }
664 ELSE_FAIL("Op_Phi");
665 }
666 case Op_Proj: {
667 // we are only interested in the oop result projection from a call
668 if (n->as_Proj()->_con == TypeFunc::Parms && n->in(0)->is_Call() &&
669 n->in(0)->as_Call()->returns_pointer()) {
670 add_local_var_and_edge(n, PointsToNode::NoEscape, n->in(0), NULL);
671 break;
672 }
673 ELSE_FAIL("Op_Proj");
674 }
675 case Op_Rethrow: // Exception object escapes
676 case Op_Return: {
677 if (n->req() > TypeFunc::Parms &&
678 _igvn->type(n->in(TypeFunc::Parms))->isa_oopptr()) {
679 // Treat Return value as LocalVar with GlobalEscape escape state.
680 add_local_var_and_edge(n, PointsToNode::GlobalEscape,
681 n->in(TypeFunc::Parms), NULL);
682 break;
683 }
684 ELSE_FAIL("Op_Return");
685 }
686 case Op_StoreP:
687 case Op_StoreN:
688 case Op_StoreNKlass:
689 case Op_StorePConditional:
690 case Op_CompareAndSwapP:
691 case Op_CompareAndSwapN:
692 case Op_GetAndSetP:
693 case Op_GetAndSetN: {
694 Node* adr = n->in(MemNode::Address);
695 const Type *adr_type = _igvn->type(adr);
696 adr_type = adr_type->make_ptr();
697 #ifdef ASSERT
698 if (adr_type == NULL) {
699 n->dump(1);
700 assert(adr_type != NULL, "dead node should not be on list");
701 break;
702 }
703 #endif
704 if (opcode == Op_GetAndSetP || opcode == Op_GetAndSetN) {
705 add_local_var_and_edge(n, PointsToNode::NoEscape, adr, NULL);
706 }
707 if (adr_type->isa_oopptr() ||
708 (opcode == Op_StoreP || opcode == Op_StoreN || opcode == Op_StoreNKlass) &&
709 (adr_type == TypeRawPtr::NOTNULL &&
710 adr->in(AddPNode::Address)->is_Proj() &&
711 adr->in(AddPNode::Address)->in(0)->is_Allocate())) {
712 // Point Address to Value
713 PointsToNode* adr_ptn = ptnode_adr(adr->_idx);
714 assert(adr_ptn != NULL &&
715 adr_ptn->as_Field()->is_oop(), "node should be registered");
716 Node *val = n->in(MemNode::ValueIn);
717 PointsToNode* ptn = ptnode_adr(val->_idx);
718 assert(ptn != NULL, "node should be registered");
719 add_edge(adr_ptn, ptn);
720 break;
721 } else if ((opcode == Op_StoreP) && (adr_type == TypeRawPtr::BOTTOM)) {
722 // Stored value escapes in unsafe access.
723 Node *val = n->in(MemNode::ValueIn);
724 PointsToNode* ptn = ptnode_adr(val->_idx);
725 assert(ptn != NULL, "node should be registered");
726 set_escape_state(ptn, PointsToNode::GlobalEscape);
727 // Add edge to object for unsafe access with offset.
728 PointsToNode* adr_ptn = ptnode_adr(adr->_idx);
729 assert(adr_ptn != NULL, "node should be registered");
730 if (adr_ptn->is_Field()) {
731 assert(adr_ptn->as_Field()->is_oop(), "should be oop field");
732 add_edge(adr_ptn, ptn);
733 }
734 break;
735 }
736 ELSE_FAIL("Op_StoreP");
737 }
738 case Op_AryEq:
739 case Op_StrComp:
740 case Op_StrEquals:
741 case Op_StrIndexOf:
742 case Op_EncodeISOArray: {
743 // char[] arrays passed to string intrinsic do not escape but
744 // they are not scalar replaceable. Adjust escape state for them.
745 // Start from in(2) edge since in(1) is memory edge.
746 for (uint i = 2; i < n->req(); i++) {
747 Node* adr = n->in(i);
748 const Type* at = _igvn->type(adr);
749 if (!adr->is_top() && at->isa_ptr()) {
750 assert(at == Type::TOP || at == TypePtr::NULL_PTR ||
751 at->isa_ptr() != NULL, "expecting a pointer");
752 if (adr->is_AddP()) {
753 adr = get_addp_base(adr);
754 }
755 PointsToNode* ptn = ptnode_adr(adr->_idx);
756 assert(ptn != NULL, "node should be registered");
757 add_edge(n_ptn, ptn);
758 }
759 }
760 break;
761 }
762 default: {
763 // This method should be called only for EA specific nodes which may
764 // miss some edges when they were created.
765 #ifdef ASSERT
766 n->dump(1);
767 #endif
768 guarantee(false, "unknown node");
769 }
770 }
771 return;
772 }
774 void ConnectionGraph::add_call_node(CallNode* call) {
775 assert(call->returns_pointer(), "only for call which returns pointer");
776 uint call_idx = call->_idx;
777 if (call->is_Allocate()) {
778 Node* k = call->in(AllocateNode::KlassNode);
779 const TypeKlassPtr* kt = k->bottom_type()->isa_klassptr();
780 assert(kt != NULL, "TypeKlassPtr required.");
781 ciKlass* cik = kt->klass();
782 PointsToNode::EscapeState es = PointsToNode::NoEscape;
783 bool scalar_replaceable = true;
784 if (call->is_AllocateArray()) {
785 if (!cik->is_array_klass()) { // StressReflectiveCode
786 es = PointsToNode::GlobalEscape;
787 } else {
788 int length = call->in(AllocateNode::ALength)->find_int_con(-1);
789 if (length < 0 || length > EliminateAllocationArraySizeLimit) {
790 // Not scalar replaceable if the length is not constant or too big.
791 scalar_replaceable = false;
792 }
793 }
794 } else { // Allocate instance
795 if (cik->is_subclass_of(_compile->env()->Thread_klass()) ||
796 cik->is_subclass_of(_compile->env()->Reference_klass()) ||
797 !cik->is_instance_klass() || // StressReflectiveCode
798 cik->as_instance_klass()->has_finalizer()) {
799 es = PointsToNode::GlobalEscape;
800 }
801 }
802 add_java_object(call, es);
803 PointsToNode* ptn = ptnode_adr(call_idx);
804 if (!scalar_replaceable && ptn->scalar_replaceable()) {
805 ptn->set_scalar_replaceable(false);
806 }
807 } else if (call->is_CallStaticJava()) {
808 // Call nodes could be different types:
809 //
810 // 1. CallDynamicJavaNode (what happened during call is unknown):
811 //
812 // - mapped to GlobalEscape JavaObject node if oop is returned;
813 //
814 // - all oop arguments are escaping globally;
815 //
816 // 2. CallStaticJavaNode (execute bytecode analysis if possible):
817 //
818 // - the same as CallDynamicJavaNode if can't do bytecode analysis;
819 //
820 // - mapped to GlobalEscape JavaObject node if unknown oop is returned;
821 // - mapped to NoEscape JavaObject node if non-escaping object allocated
822 // during call is returned;
823 // - mapped to ArgEscape LocalVar node pointed to object arguments
824 // which are returned and does not escape during call;
825 //
826 // - oop arguments escaping status is defined by bytecode analysis;
827 //
828 // For a static call, we know exactly what method is being called.
829 // Use bytecode estimator to record whether the call's return value escapes.
830 ciMethod* meth = call->as_CallJava()->method();
831 if (meth == NULL) {
832 const char* name = call->as_CallStaticJava()->_name;
833 assert(strncmp(name, "_multianewarray", 15) == 0, "TODO: add failed case check");
834 // Returns a newly allocated unescaped object.
835 add_java_object(call, PointsToNode::NoEscape);
836 ptnode_adr(call_idx)->set_scalar_replaceable(false);
837 } else if (meth->is_boxing_method()) {
838 // Returns boxing object
839 PointsToNode::EscapeState es;
840 vmIntrinsics::ID intr = meth->intrinsic_id();
841 if (intr == vmIntrinsics::_floatValue || intr == vmIntrinsics::_doubleValue) {
842 // It does not escape if object is always allocated.
843 es = PointsToNode::NoEscape;
844 } else {
845 // It escapes globally if object could be loaded from cache.
846 es = PointsToNode::GlobalEscape;
847 }
848 add_java_object(call, es);
849 } else {
850 BCEscapeAnalyzer* call_analyzer = meth->get_bcea();
851 call_analyzer->copy_dependencies(_compile->dependencies());
852 if (call_analyzer->is_return_allocated()) {
853 // Returns a newly allocated unescaped object, simply
854 // update dependency information.
855 // Mark it as NoEscape so that objects referenced by
856 // it's fields will be marked as NoEscape at least.
857 add_java_object(call, PointsToNode::NoEscape);
858 ptnode_adr(call_idx)->set_scalar_replaceable(false);
859 } else {
860 // Determine whether any arguments are returned.
861 const TypeTuple* d = call->tf()->domain();
862 bool ret_arg = false;
863 for (uint i = TypeFunc::Parms; i < d->cnt(); i++) {
864 if (d->field_at(i)->isa_ptr() != NULL &&
865 call_analyzer->is_arg_returned(i - TypeFunc::Parms)) {
866 ret_arg = true;
867 break;
868 }
869 }
870 if (ret_arg) {
871 add_local_var(call, PointsToNode::ArgEscape);
872 } else {
873 // Returns unknown object.
874 map_ideal_node(call, phantom_obj);
875 }
876 }
877 }
878 } else {
879 // An other type of call, assume the worst case:
880 // returned value is unknown and globally escapes.
881 assert(call->Opcode() == Op_CallDynamicJava, "add failed case check");
882 map_ideal_node(call, phantom_obj);
883 }
884 }
886 void ConnectionGraph::process_call_arguments(CallNode *call) {
887 bool is_arraycopy = false;
888 switch (call->Opcode()) {
889 #ifdef ASSERT
890 case Op_Allocate:
891 case Op_AllocateArray:
892 case Op_Lock:
893 case Op_Unlock:
894 assert(false, "should be done already");
895 break;
896 #endif
897 case Op_CallLeafNoFP:
898 is_arraycopy = (call->as_CallLeaf()->_name != NULL &&
899 strstr(call->as_CallLeaf()->_name, "arraycopy") != 0);
900 // fall through
901 case Op_CallLeaf: {
902 // Stub calls, objects do not escape but they are not scale replaceable.
903 // Adjust escape state for outgoing arguments.
904 const TypeTuple * d = call->tf()->domain();
905 bool src_has_oops = false;
906 for (uint i = TypeFunc::Parms; i < d->cnt(); i++) {
907 const Type* at = d->field_at(i);
908 Node *arg = call->in(i);
909 const Type *aat = _igvn->type(arg);
910 if (arg->is_top() || !at->isa_ptr() || !aat->isa_ptr())
911 continue;
912 if (arg->is_AddP()) {
913 //
914 // The inline_native_clone() case when the arraycopy stub is called
915 // after the allocation before Initialize and CheckCastPP nodes.
916 // Or normal arraycopy for object arrays case.
917 //
918 // Set AddP's base (Allocate) as not scalar replaceable since
919 // pointer to the base (with offset) is passed as argument.
920 //
921 arg = get_addp_base(arg);
922 }
923 PointsToNode* arg_ptn = ptnode_adr(arg->_idx);
924 assert(arg_ptn != NULL, "should be registered");
925 PointsToNode::EscapeState arg_esc = arg_ptn->escape_state();
926 if (is_arraycopy || arg_esc < PointsToNode::ArgEscape) {
927 assert(aat == Type::TOP || aat == TypePtr::NULL_PTR ||
928 aat->isa_ptr() != NULL, "expecting an Ptr");
929 bool arg_has_oops = aat->isa_oopptr() &&
930 (aat->isa_oopptr()->klass() == NULL || aat->isa_instptr() ||
931 (aat->isa_aryptr() && aat->isa_aryptr()->klass()->is_obj_array_klass()));
932 if (i == TypeFunc::Parms) {
933 src_has_oops = arg_has_oops;
934 }
935 //
936 // src or dst could be j.l.Object when other is basic type array:
937 //
938 // arraycopy(char[],0,Object*,0,size);
939 // arraycopy(Object*,0,char[],0,size);
940 //
941 // Don't add edges in such cases.
942 //
943 bool arg_is_arraycopy_dest = src_has_oops && is_arraycopy &&
944 arg_has_oops && (i > TypeFunc::Parms);
945 #ifdef ASSERT
946 if (!(is_arraycopy ||
947 (call->as_CallLeaf()->_name != NULL &&
948 (strcmp(call->as_CallLeaf()->_name, "g1_wb_pre") == 0 ||
949 strcmp(call->as_CallLeaf()->_name, "g1_wb_post") == 0 ||
950 strcmp(call->as_CallLeaf()->_name, "updateBytesCRC32") == 0 ||
951 strcmp(call->as_CallLeaf()->_name, "aescrypt_encryptBlock") == 0 ||
952 strcmp(call->as_CallLeaf()->_name, "aescrypt_decryptBlock") == 0 ||
953 strcmp(call->as_CallLeaf()->_name, "cipherBlockChaining_encryptAESCrypt") == 0 ||
954 strcmp(call->as_CallLeaf()->_name, "cipherBlockChaining_decryptAESCrypt") == 0 ||
955 strcmp(call->as_CallLeaf()->_name, "ghash_processBlocks") == 0 ||
956 strcmp(call->as_CallLeaf()->_name, "sha1_implCompress") == 0 ||
957 strcmp(call->as_CallLeaf()->_name, "sha1_implCompressMB") == 0 ||
958 strcmp(call->as_CallLeaf()->_name, "sha256_implCompress") == 0 ||
959 strcmp(call->as_CallLeaf()->_name, "sha256_implCompressMB") == 0 ||
960 strcmp(call->as_CallLeaf()->_name, "sha512_implCompress") == 0 ||
961 strcmp(call->as_CallLeaf()->_name, "sha512_implCompressMB") == 0 ||
962 strcmp(call->as_CallLeaf()->_name, "multiplyToLen") == 0 ||
963 strcmp(call->as_CallLeaf()->_name, "squareToLen") == 0 ||
964 strcmp(call->as_CallLeaf()->_name, "mulAdd") == 0 ||
965 strcmp(call->as_CallLeaf()->_name, "montgomery_multiply") == 0 ||
966 strcmp(call->as_CallLeaf()->_name, "montgomery_square") == 0)
967 ))) {
968 call->dump();
969 fatal(err_msg_res("EA unexpected CallLeaf %s", call->as_CallLeaf()->_name));
970 }
971 #endif
972 // Always process arraycopy's destination object since
973 // we need to add all possible edges to references in
974 // source object.
975 if (arg_esc >= PointsToNode::ArgEscape &&
976 !arg_is_arraycopy_dest) {
977 continue;
978 }
979 set_escape_state(arg_ptn, PointsToNode::ArgEscape);
980 if (arg_is_arraycopy_dest) {
981 Node* src = call->in(TypeFunc::Parms);
982 if (src->is_AddP()) {
983 src = get_addp_base(src);
984 }
985 PointsToNode* src_ptn = ptnode_adr(src->_idx);
986 assert(src_ptn != NULL, "should be registered");
987 if (arg_ptn != src_ptn) {
988 // Special arraycopy edge:
989 // A destination object's field can't have the source object
990 // as base since objects escape states are not related.
991 // Only escape state of destination object's fields affects
992 // escape state of fields in source object.
993 add_arraycopy(call, PointsToNode::ArgEscape, src_ptn, arg_ptn);
994 }
995 }
996 }
997 }
998 break;
999 }
1000 case Op_CallStaticJava: {
1001 // For a static call, we know exactly what method is being called.
1002 // Use bytecode estimator to record the call's escape affects
1003 #ifdef ASSERT
1004 const char* name = call->as_CallStaticJava()->_name;
1005 assert((name == NULL || strcmp(name, "uncommon_trap") != 0), "normal calls only");
1006 #endif
1007 ciMethod* meth = call->as_CallJava()->method();
1008 if ((meth != NULL) && meth->is_boxing_method()) {
1009 break; // Boxing methods do not modify any oops.
1010 }
1011 BCEscapeAnalyzer* call_analyzer = (meth !=NULL) ? meth->get_bcea() : NULL;
1012 // fall-through if not a Java method or no analyzer information
1013 if (call_analyzer != NULL) {
1014 PointsToNode* call_ptn = ptnode_adr(call->_idx);
1015 const TypeTuple* d = call->tf()->domain();
1016 for (uint i = TypeFunc::Parms; i < d->cnt(); i++) {
1017 const Type* at = d->field_at(i);
1018 int k = i - TypeFunc::Parms;
1019 Node* arg = call->in(i);
1020 PointsToNode* arg_ptn = ptnode_adr(arg->_idx);
1021 if (at->isa_ptr() != NULL &&
1022 call_analyzer->is_arg_returned(k)) {
1023 // The call returns arguments.
1024 if (call_ptn != NULL) { // Is call's result used?
1025 assert(call_ptn->is_LocalVar(), "node should be registered");
1026 assert(arg_ptn != NULL, "node should be registered");
1027 add_edge(call_ptn, arg_ptn);
1028 }
1029 }
1030 if (at->isa_oopptr() != NULL &&
1031 arg_ptn->escape_state() < PointsToNode::GlobalEscape) {
1032 if (!call_analyzer->is_arg_stack(k)) {
1033 // The argument global escapes
1034 set_escape_state(arg_ptn, PointsToNode::GlobalEscape);
1035 } else {
1036 set_escape_state(arg_ptn, PointsToNode::ArgEscape);
1037 if (!call_analyzer->is_arg_local(k)) {
1038 // The argument itself doesn't escape, but any fields might
1039 set_fields_escape_state(arg_ptn, PointsToNode::GlobalEscape);
1040 }
1041 }
1042 }
1043 }
1044 if (call_ptn != NULL && call_ptn->is_LocalVar()) {
1045 // The call returns arguments.
1046 assert(call_ptn->edge_count() > 0, "sanity");
1047 if (!call_analyzer->is_return_local()) {
1048 // Returns also unknown object.
1049 add_edge(call_ptn, phantom_obj);
1050 }
1051 }
1052 break;
1053 }
1054 }
1055 default: {
1056 // Fall-through here if not a Java method or no analyzer information
1057 // or some other type of call, assume the worst case: all arguments
1058 // globally escape.
1059 const TypeTuple* d = call->tf()->domain();
1060 for (uint i = TypeFunc::Parms; i < d->cnt(); i++) {
1061 const Type* at = d->field_at(i);
1062 if (at->isa_oopptr() != NULL) {
1063 Node* arg = call->in(i);
1064 if (arg->is_AddP()) {
1065 arg = get_addp_base(arg);
1066 }
1067 assert(ptnode_adr(arg->_idx) != NULL, "should be defined already");
1068 set_escape_state(ptnode_adr(arg->_idx), PointsToNode::GlobalEscape);
1069 }
1070 }
1071 }
1072 }
1073 }
1076 // Finish Graph construction.
1077 bool ConnectionGraph::complete_connection_graph(
1078 GrowableArray<PointsToNode*>& ptnodes_worklist,
1079 GrowableArray<JavaObjectNode*>& non_escaped_worklist,
1080 GrowableArray<JavaObjectNode*>& java_objects_worklist,
1081 GrowableArray<FieldNode*>& oop_fields_worklist) {
1082 // Normally only 1-3 passes needed to build Connection Graph depending
1083 // on graph complexity. Observed 8 passes in jvm2008 compiler.compiler.
1084 // Set limit to 20 to catch situation when something did go wrong and
1085 // bailout Escape Analysis.
1086 // Also limit build time to 20 sec (60 in debug VM), EscapeAnalysisTimeout flag.
1087 #define CG_BUILD_ITER_LIMIT 20
1089 // Propagate GlobalEscape and ArgEscape escape states and check that
1090 // we still have non-escaping objects. The method pushs on _worklist
1091 // Field nodes which reference phantom_object.
1092 if (!find_non_escaped_objects(ptnodes_worklist, non_escaped_worklist)) {
1093 return false; // Nothing to do.
1094 }
1095 // Now propagate references to all JavaObject nodes.
1096 int java_objects_length = java_objects_worklist.length();
1097 elapsedTimer time;
1098 bool timeout = false;
1099 int new_edges = 1;
1100 int iterations = 0;
1101 do {
1102 while ((new_edges > 0) &&
1103 (iterations++ < CG_BUILD_ITER_LIMIT)) {
1104 double start_time = time.seconds();
1105 time.start();
1106 new_edges = 0;
1107 // Propagate references to phantom_object for nodes pushed on _worklist
1108 // by find_non_escaped_objects() and find_field_value().
1109 new_edges += add_java_object_edges(phantom_obj, false);
1110 for (int next = 0; next < java_objects_length; ++next) {
1111 JavaObjectNode* ptn = java_objects_worklist.at(next);
1112 new_edges += add_java_object_edges(ptn, true);
1114 #define SAMPLE_SIZE 4
1115 if ((next % SAMPLE_SIZE) == 0) {
1116 // Each 4 iterations calculate how much time it will take
1117 // to complete graph construction.
1118 time.stop();
1119 // Poll for requests from shutdown mechanism to quiesce compiler
1120 // because Connection graph construction may take long time.
1121 CompileBroker::maybe_block();
1122 double stop_time = time.seconds();
1123 double time_per_iter = (stop_time - start_time) / (double)SAMPLE_SIZE;
1124 double time_until_end = time_per_iter * (double)(java_objects_length - next);
1125 if ((start_time + time_until_end) >= EscapeAnalysisTimeout) {
1126 timeout = true;
1127 break; // Timeout
1128 }
1129 start_time = stop_time;
1130 time.start();
1131 }
1132 #undef SAMPLE_SIZE
1134 }
1135 if (timeout) break;
1136 if (new_edges > 0) {
1137 // Update escape states on each iteration if graph was updated.
1138 if (!find_non_escaped_objects(ptnodes_worklist, non_escaped_worklist)) {
1139 return false; // Nothing to do.
1140 }
1141 }
1142 time.stop();
1143 if (time.seconds() >= EscapeAnalysisTimeout) {
1144 timeout = true;
1145 break;
1146 }
1147 }
1148 if ((iterations < CG_BUILD_ITER_LIMIT) && !timeout) {
1149 time.start();
1150 // Find fields which have unknown value.
1151 int fields_length = oop_fields_worklist.length();
1152 for (int next = 0; next < fields_length; next++) {
1153 FieldNode* field = oop_fields_worklist.at(next);
1154 if (field->edge_count() == 0) {
1155 new_edges += find_field_value(field);
1156 // This code may added new edges to phantom_object.
1157 // Need an other cycle to propagate references to phantom_object.
1158 }
1159 }
1160 time.stop();
1161 if (time.seconds() >= EscapeAnalysisTimeout) {
1162 timeout = true;
1163 break;
1164 }
1165 } else {
1166 new_edges = 0; // Bailout
1167 }
1168 } while (new_edges > 0);
1170 // Bailout if passed limits.
1171 if ((iterations >= CG_BUILD_ITER_LIMIT) || timeout) {
1172 Compile* C = _compile;
1173 if (C->log() != NULL) {
1174 C->log()->begin_elem("connectionGraph_bailout reason='reached ");
1175 C->log()->text("%s", timeout ? "time" : "iterations");
1176 C->log()->end_elem(" limit'");
1177 }
1178 assert(ExitEscapeAnalysisOnTimeout, err_msg_res("infinite EA connection graph build (%f sec, %d iterations) with %d nodes and worklist size %d",
1179 time.seconds(), iterations, nodes_size(), ptnodes_worklist.length()));
1180 // Possible infinite build_connection_graph loop,
1181 // bailout (no changes to ideal graph were made).
1182 return false;
1183 }
1184 #ifdef ASSERT
1185 if (Verbose && PrintEscapeAnalysis) {
1186 tty->print_cr("EA: %d iterations to build connection graph with %d nodes and worklist size %d",
1187 iterations, nodes_size(), ptnodes_worklist.length());
1188 }
1189 #endif
1191 #undef CG_BUILD_ITER_LIMIT
1193 // Find fields initialized by NULL for non-escaping Allocations.
1194 int non_escaped_length = non_escaped_worklist.length();
1195 for (int next = 0; next < non_escaped_length; next++) {
1196 JavaObjectNode* ptn = non_escaped_worklist.at(next);
1197 PointsToNode::EscapeState es = ptn->escape_state();
1198 assert(es <= PointsToNode::ArgEscape, "sanity");
1199 if (es == PointsToNode::NoEscape) {
1200 if (find_init_values(ptn, null_obj, _igvn) > 0) {
1201 // Adding references to NULL object does not change escape states
1202 // since it does not escape. Also no fields are added to NULL object.
1203 add_java_object_edges(null_obj, false);
1204 }
1205 }
1206 Node* n = ptn->ideal_node();
1207 if (n->is_Allocate()) {
1208 // The object allocated by this Allocate node will never be
1209 // seen by an other thread. Mark it so that when it is
1210 // expanded no MemBarStoreStore is added.
1211 InitializeNode* ini = n->as_Allocate()->initialization();
1212 if (ini != NULL)
1213 ini->set_does_not_escape();
1214 }
1215 }
1216 return true; // Finished graph construction.
1217 }
1219 // Propagate GlobalEscape and ArgEscape escape states to all nodes
1220 // and check that we still have non-escaping java objects.
1221 bool ConnectionGraph::find_non_escaped_objects(GrowableArray<PointsToNode*>& ptnodes_worklist,
1222 GrowableArray<JavaObjectNode*>& non_escaped_worklist) {
1223 GrowableArray<PointsToNode*> escape_worklist;
1224 // First, put all nodes with GlobalEscape and ArgEscape states on worklist.
1225 int ptnodes_length = ptnodes_worklist.length();
1226 for (int next = 0; next < ptnodes_length; ++next) {
1227 PointsToNode* ptn = ptnodes_worklist.at(next);
1228 if (ptn->escape_state() >= PointsToNode::ArgEscape ||
1229 ptn->fields_escape_state() >= PointsToNode::ArgEscape) {
1230 escape_worklist.push(ptn);
1231 }
1232 }
1233 // Set escape states to referenced nodes (edges list).
1234 while (escape_worklist.length() > 0) {
1235 PointsToNode* ptn = escape_worklist.pop();
1236 PointsToNode::EscapeState es = ptn->escape_state();
1237 PointsToNode::EscapeState field_es = ptn->fields_escape_state();
1238 if (ptn->is_Field() && ptn->as_Field()->is_oop() &&
1239 es >= PointsToNode::ArgEscape) {
1240 // GlobalEscape or ArgEscape state of field means it has unknown value.
1241 if (add_edge(ptn, phantom_obj)) {
1242 // New edge was added
1243 add_field_uses_to_worklist(ptn->as_Field());
1244 }
1245 }
1246 for (EdgeIterator i(ptn); i.has_next(); i.next()) {
1247 PointsToNode* e = i.get();
1248 if (e->is_Arraycopy()) {
1249 assert(ptn->arraycopy_dst(), "sanity");
1250 // Propagate only fields escape state through arraycopy edge.
1251 if (e->fields_escape_state() < field_es) {
1252 set_fields_escape_state(e, field_es);
1253 escape_worklist.push(e);
1254 }
1255 } else if (es >= field_es) {
1256 // fields_escape_state is also set to 'es' if it is less than 'es'.
1257 if (e->escape_state() < es) {
1258 set_escape_state(e, es);
1259 escape_worklist.push(e);
1260 }
1261 } else {
1262 // Propagate field escape state.
1263 bool es_changed = false;
1264 if (e->fields_escape_state() < field_es) {
1265 set_fields_escape_state(e, field_es);
1266 es_changed = true;
1267 }
1268 if ((e->escape_state() < field_es) &&
1269 e->is_Field() && ptn->is_JavaObject() &&
1270 e->as_Field()->is_oop()) {
1271 // Change escape state of referenced fileds.
1272 set_escape_state(e, field_es);
1273 es_changed = true;;
1274 } else if (e->escape_state() < es) {
1275 set_escape_state(e, es);
1276 es_changed = true;;
1277 }
1278 if (es_changed) {
1279 escape_worklist.push(e);
1280 }
1281 }
1282 }
1283 }
1284 // Remove escaped objects from non_escaped list.
1285 for (int next = non_escaped_worklist.length()-1; next >= 0 ; --next) {
1286 JavaObjectNode* ptn = non_escaped_worklist.at(next);
1287 if (ptn->escape_state() >= PointsToNode::GlobalEscape) {
1288 non_escaped_worklist.delete_at(next);
1289 }
1290 if (ptn->escape_state() == PointsToNode::NoEscape) {
1291 // Find fields in non-escaped allocations which have unknown value.
1292 find_init_values(ptn, phantom_obj, NULL);
1293 }
1294 }
1295 return (non_escaped_worklist.length() > 0);
1296 }
1298 // Add all references to JavaObject node by walking over all uses.
1299 int ConnectionGraph::add_java_object_edges(JavaObjectNode* jobj, bool populate_worklist) {
1300 int new_edges = 0;
1301 if (populate_worklist) {
1302 // Populate _worklist by uses of jobj's uses.
1303 for (UseIterator i(jobj); i.has_next(); i.next()) {
1304 PointsToNode* use = i.get();
1305 if (use->is_Arraycopy())
1306 continue;
1307 add_uses_to_worklist(use);
1308 if (use->is_Field() && use->as_Field()->is_oop()) {
1309 // Put on worklist all field's uses (loads) and
1310 // related field nodes (same base and offset).
1311 add_field_uses_to_worklist(use->as_Field());
1312 }
1313 }
1314 }
1315 for (int l = 0; l < _worklist.length(); l++) {
1316 PointsToNode* use = _worklist.at(l);
1317 if (PointsToNode::is_base_use(use)) {
1318 // Add reference from jobj to field and from field to jobj (field's base).
1319 use = PointsToNode::get_use_node(use)->as_Field();
1320 if (add_base(use->as_Field(), jobj)) {
1321 new_edges++;
1322 }
1323 continue;
1324 }
1325 assert(!use->is_JavaObject(), "sanity");
1326 if (use->is_Arraycopy()) {
1327 if (jobj == null_obj) // NULL object does not have field edges
1328 continue;
1329 // Added edge from Arraycopy node to arraycopy's source java object
1330 if (add_edge(use, jobj)) {
1331 jobj->set_arraycopy_src();
1332 new_edges++;
1333 }
1334 // and stop here.
1335 continue;
1336 }
1337 if (!add_edge(use, jobj))
1338 continue; // No new edge added, there was such edge already.
1339 new_edges++;
1340 if (use->is_LocalVar()) {
1341 add_uses_to_worklist(use);
1342 if (use->arraycopy_dst()) {
1343 for (EdgeIterator i(use); i.has_next(); i.next()) {
1344 PointsToNode* e = i.get();
1345 if (e->is_Arraycopy()) {
1346 if (jobj == null_obj) // NULL object does not have field edges
1347 continue;
1348 // Add edge from arraycopy's destination java object to Arraycopy node.
1349 if (add_edge(jobj, e)) {
1350 new_edges++;
1351 jobj->set_arraycopy_dst();
1352 }
1353 }
1354 }
1355 }
1356 } else {
1357 // Added new edge to stored in field values.
1358 // Put on worklist all field's uses (loads) and
1359 // related field nodes (same base and offset).
1360 add_field_uses_to_worklist(use->as_Field());
1361 }
1362 }
1363 _worklist.clear();
1364 _in_worklist.Reset();
1365 return new_edges;
1366 }
1368 // Put on worklist all related field nodes.
1369 void ConnectionGraph::add_field_uses_to_worklist(FieldNode* field) {
1370 assert(field->is_oop(), "sanity");
1371 int offset = field->offset();
1372 add_uses_to_worklist(field);
1373 // Loop over all bases of this field and push on worklist Field nodes
1374 // with the same offset and base (since they may reference the same field).
1375 for (BaseIterator i(field); i.has_next(); i.next()) {
1376 PointsToNode* base = i.get();
1377 add_fields_to_worklist(field, base);
1378 // Check if the base was source object of arraycopy and go over arraycopy's
1379 // destination objects since values stored to a field of source object are
1380 // accessable by uses (loads) of fields of destination objects.
1381 if (base->arraycopy_src()) {
1382 for (UseIterator j(base); j.has_next(); j.next()) {
1383 PointsToNode* arycp = j.get();
1384 if (arycp->is_Arraycopy()) {
1385 for (UseIterator k(arycp); k.has_next(); k.next()) {
1386 PointsToNode* abase = k.get();
1387 if (abase->arraycopy_dst() && abase != base) {
1388 // Look for the same arracopy reference.
1389 add_fields_to_worklist(field, abase);
1390 }
1391 }
1392 }
1393 }
1394 }
1395 }
1396 }
1398 // Put on worklist all related field nodes.
1399 void ConnectionGraph::add_fields_to_worklist(FieldNode* field, PointsToNode* base) {
1400 int offset = field->offset();
1401 if (base->is_LocalVar()) {
1402 for (UseIterator j(base); j.has_next(); j.next()) {
1403 PointsToNode* f = j.get();
1404 if (PointsToNode::is_base_use(f)) { // Field
1405 f = PointsToNode::get_use_node(f);
1406 if (f == field || !f->as_Field()->is_oop())
1407 continue;
1408 int offs = f->as_Field()->offset();
1409 if (offs == offset || offset == Type::OffsetBot || offs == Type::OffsetBot) {
1410 add_to_worklist(f);
1411 }
1412 }
1413 }
1414 } else {
1415 assert(base->is_JavaObject(), "sanity");
1416 if (// Skip phantom_object since it is only used to indicate that
1417 // this field's content globally escapes.
1418 (base != phantom_obj) &&
1419 // NULL object node does not have fields.
1420 (base != null_obj)) {
1421 for (EdgeIterator i(base); i.has_next(); i.next()) {
1422 PointsToNode* f = i.get();
1423 // Skip arraycopy edge since store to destination object field
1424 // does not update value in source object field.
1425 if (f->is_Arraycopy()) {
1426 assert(base->arraycopy_dst(), "sanity");
1427 continue;
1428 }
1429 if (f == field || !f->as_Field()->is_oop())
1430 continue;
1431 int offs = f->as_Field()->offset();
1432 if (offs == offset || offset == Type::OffsetBot || offs == Type::OffsetBot) {
1433 add_to_worklist(f);
1434 }
1435 }
1436 }
1437 }
1438 }
1440 // Find fields which have unknown value.
1441 int ConnectionGraph::find_field_value(FieldNode* field) {
1442 // Escaped fields should have init value already.
1443 assert(field->escape_state() == PointsToNode::NoEscape, "sanity");
1444 int new_edges = 0;
1445 for (BaseIterator i(field); i.has_next(); i.next()) {
1446 PointsToNode* base = i.get();
1447 if (base->is_JavaObject()) {
1448 // Skip Allocate's fields which will be processed later.
1449 if (base->ideal_node()->is_Allocate())
1450 return 0;
1451 assert(base == null_obj, "only NULL ptr base expected here");
1452 }
1453 }
1454 if (add_edge(field, phantom_obj)) {
1455 // New edge was added
1456 new_edges++;
1457 add_field_uses_to_worklist(field);
1458 }
1459 return new_edges;
1460 }
1462 // Find fields initializing values for allocations.
1463 int ConnectionGraph::find_init_values(JavaObjectNode* pta, PointsToNode* init_val, PhaseTransform* phase) {
1464 assert(pta->escape_state() == PointsToNode::NoEscape, "Not escaped Allocate nodes only");
1465 int new_edges = 0;
1466 Node* alloc = pta->ideal_node();
1467 if (init_val == phantom_obj) {
1468 // Do nothing for Allocate nodes since its fields values are "known".
1469 if (alloc->is_Allocate())
1470 return 0;
1471 assert(alloc->as_CallStaticJava(), "sanity");
1472 #ifdef ASSERT
1473 if (alloc->as_CallStaticJava()->method() == NULL) {
1474 const char* name = alloc->as_CallStaticJava()->_name;
1475 assert(strncmp(name, "_multianewarray", 15) == 0, "sanity");
1476 }
1477 #endif
1478 // Non-escaped allocation returned from Java or runtime call have
1479 // unknown values in fields.
1480 for (EdgeIterator i(pta); i.has_next(); i.next()) {
1481 PointsToNode* field = i.get();
1482 if (field->is_Field() && field->as_Field()->is_oop()) {
1483 if (add_edge(field, phantom_obj)) {
1484 // New edge was added
1485 new_edges++;
1486 add_field_uses_to_worklist(field->as_Field());
1487 }
1488 }
1489 }
1490 return new_edges;
1491 }
1492 assert(init_val == null_obj, "sanity");
1493 // Do nothing for Call nodes since its fields values are unknown.
1494 if (!alloc->is_Allocate())
1495 return 0;
1497 InitializeNode* ini = alloc->as_Allocate()->initialization();
1498 Compile* C = _compile;
1499 bool visited_bottom_offset = false;
1500 GrowableArray<int> offsets_worklist;
1502 // Check if an oop field's initializing value is recorded and add
1503 // a corresponding NULL if field's value if it is not recorded.
1504 // Connection Graph does not record a default initialization by NULL
1505 // captured by Initialize node.
1506 //
1507 for (EdgeIterator i(pta); i.has_next(); i.next()) {
1508 PointsToNode* field = i.get(); // Field (AddP)
1509 if (!field->is_Field() || !field->as_Field()->is_oop())
1510 continue; // Not oop field
1511 int offset = field->as_Field()->offset();
1512 if (offset == Type::OffsetBot) {
1513 if (!visited_bottom_offset) {
1514 // OffsetBot is used to reference array's element,
1515 // always add reference to NULL to all Field nodes since we don't
1516 // known which element is referenced.
1517 if (add_edge(field, null_obj)) {
1518 // New edge was added
1519 new_edges++;
1520 add_field_uses_to_worklist(field->as_Field());
1521 visited_bottom_offset = true;
1522 }
1523 }
1524 } else {
1525 // Check only oop fields.
1526 const Type* adr_type = field->ideal_node()->as_AddP()->bottom_type();
1527 if (adr_type->isa_rawptr()) {
1528 #ifdef ASSERT
1529 // Raw pointers are used for initializing stores so skip it
1530 // since it should be recorded already
1531 Node* base = get_addp_base(field->ideal_node());
1532 assert(adr_type->isa_rawptr() && base->is_Proj() &&
1533 (base->in(0) == alloc),"unexpected pointer type");
1534 #endif
1535 continue;
1536 }
1537 if (!offsets_worklist.contains(offset)) {
1538 offsets_worklist.append(offset);
1539 Node* value = NULL;
1540 if (ini != NULL) {
1541 // StoreP::memory_type() == T_ADDRESS
1542 BasicType ft = UseCompressedOops ? T_NARROWOOP : T_ADDRESS;
1543 Node* store = ini->find_captured_store(offset, type2aelembytes(ft, true), phase);
1544 // Make sure initializing store has the same type as this AddP.
1545 // This AddP may reference non existing field because it is on a
1546 // dead branch of bimorphic call which is not eliminated yet.
1547 if (store != NULL && store->is_Store() &&
1548 store->as_Store()->memory_type() == ft) {
1549 value = store->in(MemNode::ValueIn);
1550 #ifdef ASSERT
1551 if (VerifyConnectionGraph) {
1552 // Verify that AddP already points to all objects the value points to.
1553 PointsToNode* val = ptnode_adr(value->_idx);
1554 assert((val != NULL), "should be processed already");
1555 PointsToNode* missed_obj = NULL;
1556 if (val->is_JavaObject()) {
1557 if (!field->points_to(val->as_JavaObject())) {
1558 missed_obj = val;
1559 }
1560 } else {
1561 if (!val->is_LocalVar() || (val->edge_count() == 0)) {
1562 tty->print_cr("----------init store has invalid value -----");
1563 store->dump();
1564 val->dump();
1565 assert(val->is_LocalVar() && (val->edge_count() > 0), "should be processed already");
1566 }
1567 for (EdgeIterator j(val); j.has_next(); j.next()) {
1568 PointsToNode* obj = j.get();
1569 if (obj->is_JavaObject()) {
1570 if (!field->points_to(obj->as_JavaObject())) {
1571 missed_obj = obj;
1572 break;
1573 }
1574 }
1575 }
1576 }
1577 if (missed_obj != NULL) {
1578 tty->print_cr("----------field---------------------------------");
1579 field->dump();
1580 tty->print_cr("----------missed referernce to object-----------");
1581 missed_obj->dump();
1582 tty->print_cr("----------object referernced by init store -----");
1583 store->dump();
1584 val->dump();
1585 assert(!field->points_to(missed_obj->as_JavaObject()), "missed JavaObject reference");
1586 }
1587 }
1588 #endif
1589 } else {
1590 // There could be initializing stores which follow allocation.
1591 // For example, a volatile field store is not collected
1592 // by Initialize node.
1593 //
1594 // Need to check for dependent loads to separate such stores from
1595 // stores which follow loads. For now, add initial value NULL so
1596 // that compare pointers optimization works correctly.
1597 }
1598 }
1599 if (value == NULL) {
1600 // A field's initializing value was not recorded. Add NULL.
1601 if (add_edge(field, null_obj)) {
1602 // New edge was added
1603 new_edges++;
1604 add_field_uses_to_worklist(field->as_Field());
1605 }
1606 }
1607 }
1608 }
1609 }
1610 return new_edges;
1611 }
1613 // Adjust scalar_replaceable state after Connection Graph is built.
1614 void ConnectionGraph::adjust_scalar_replaceable_state(JavaObjectNode* jobj) {
1615 // Search for non-escaping objects which are not scalar replaceable
1616 // and mark them to propagate the state to referenced objects.
1618 // 1. An object is not scalar replaceable if the field into which it is
1619 // stored has unknown offset (stored into unknown element of an array).
1620 //
1621 for (UseIterator i(jobj); i.has_next(); i.next()) {
1622 PointsToNode* use = i.get();
1623 assert(!use->is_Arraycopy(), "sanity");
1624 if (use->is_Field()) {
1625 FieldNode* field = use->as_Field();
1626 assert(field->is_oop() && field->scalar_replaceable() &&
1627 field->fields_escape_state() == PointsToNode::NoEscape, "sanity");
1628 if (field->offset() == Type::OffsetBot) {
1629 jobj->set_scalar_replaceable(false);
1630 return;
1631 }
1632 // 2. An object is not scalar replaceable if the field into which it is
1633 // stored has multiple bases one of which is null.
1634 if (field->base_count() > 1) {
1635 for (BaseIterator i(field); i.has_next(); i.next()) {
1636 PointsToNode* base = i.get();
1637 if (base == null_obj) {
1638 jobj->set_scalar_replaceable(false);
1639 return;
1640 }
1641 }
1642 }
1643 }
1644 assert(use->is_Field() || use->is_LocalVar(), "sanity");
1645 // 3. An object is not scalar replaceable if it is merged with other objects.
1646 for (EdgeIterator j(use); j.has_next(); j.next()) {
1647 PointsToNode* ptn = j.get();
1648 if (ptn->is_JavaObject() && ptn != jobj) {
1649 // Mark all objects.
1650 jobj->set_scalar_replaceable(false);
1651 ptn->set_scalar_replaceable(false);
1652 }
1653 }
1654 if (!jobj->scalar_replaceable()) {
1655 return;
1656 }
1657 }
1659 for (EdgeIterator j(jobj); j.has_next(); j.next()) {
1660 // Non-escaping object node should point only to field nodes.
1661 FieldNode* field = j.get()->as_Field();
1662 int offset = field->as_Field()->offset();
1664 // 4. An object is not scalar replaceable if it has a field with unknown
1665 // offset (array's element is accessed in loop).
1666 if (offset == Type::OffsetBot) {
1667 jobj->set_scalar_replaceable(false);
1668 return;
1669 }
1670 // 5. Currently an object is not scalar replaceable if a LoadStore node
1671 // access its field since the field value is unknown after it.
1672 //
1673 Node* n = field->ideal_node();
1674 for (DUIterator_Fast imax, i = n->fast_outs(imax); i < imax; i++) {
1675 if (n->fast_out(i)->is_LoadStore()) {
1676 jobj->set_scalar_replaceable(false);
1677 return;
1678 }
1679 }
1681 // 6. Or the address may point to more then one object. This may produce
1682 // the false positive result (set not scalar replaceable)
1683 // since the flow-insensitive escape analysis can't separate
1684 // the case when stores overwrite the field's value from the case
1685 // when stores happened on different control branches.
1686 //
1687 // Note: it will disable scalar replacement in some cases:
1688 //
1689 // Point p[] = new Point[1];
1690 // p[0] = new Point(); // Will be not scalar replaced
1691 //
1692 // but it will save us from incorrect optimizations in next cases:
1693 //
1694 // Point p[] = new Point[1];
1695 // if ( x ) p[0] = new Point(); // Will be not scalar replaced
1696 //
1697 if (field->base_count() > 1) {
1698 for (BaseIterator i(field); i.has_next(); i.next()) {
1699 PointsToNode* base = i.get();
1700 // Don't take into account LocalVar nodes which
1701 // may point to only one object which should be also
1702 // this field's base by now.
1703 if (base->is_JavaObject() && base != jobj) {
1704 // Mark all bases.
1705 jobj->set_scalar_replaceable(false);
1706 base->set_scalar_replaceable(false);
1707 }
1708 }
1709 }
1710 }
1711 }
1713 #ifdef ASSERT
1714 void ConnectionGraph::verify_connection_graph(
1715 GrowableArray<PointsToNode*>& ptnodes_worklist,
1716 GrowableArray<JavaObjectNode*>& non_escaped_worklist,
1717 GrowableArray<JavaObjectNode*>& java_objects_worklist,
1718 GrowableArray<Node*>& addp_worklist) {
1719 // Verify that graph is complete - no new edges could be added.
1720 int java_objects_length = java_objects_worklist.length();
1721 int non_escaped_length = non_escaped_worklist.length();
1722 int new_edges = 0;
1723 for (int next = 0; next < java_objects_length; ++next) {
1724 JavaObjectNode* ptn = java_objects_worklist.at(next);
1725 new_edges += add_java_object_edges(ptn, true);
1726 }
1727 assert(new_edges == 0, "graph was not complete");
1728 // Verify that escape state is final.
1729 int length = non_escaped_worklist.length();
1730 find_non_escaped_objects(ptnodes_worklist, non_escaped_worklist);
1731 assert((non_escaped_length == non_escaped_worklist.length()) &&
1732 (non_escaped_length == length) &&
1733 (_worklist.length() == 0), "escape state was not final");
1735 // Verify fields information.
1736 int addp_length = addp_worklist.length();
1737 for (int next = 0; next < addp_length; ++next ) {
1738 Node* n = addp_worklist.at(next);
1739 FieldNode* field = ptnode_adr(n->_idx)->as_Field();
1740 if (field->is_oop()) {
1741 // Verify that field has all bases
1742 Node* base = get_addp_base(n);
1743 PointsToNode* ptn = ptnode_adr(base->_idx);
1744 if (ptn->is_JavaObject()) {
1745 assert(field->has_base(ptn->as_JavaObject()), "sanity");
1746 } else {
1747 assert(ptn->is_LocalVar(), "sanity");
1748 for (EdgeIterator i(ptn); i.has_next(); i.next()) {
1749 PointsToNode* e = i.get();
1750 if (e->is_JavaObject()) {
1751 assert(field->has_base(e->as_JavaObject()), "sanity");
1752 }
1753 }
1754 }
1755 // Verify that all fields have initializing values.
1756 if (field->edge_count() == 0) {
1757 tty->print_cr("----------field does not have references----------");
1758 field->dump();
1759 for (BaseIterator i(field); i.has_next(); i.next()) {
1760 PointsToNode* base = i.get();
1761 tty->print_cr("----------field has next base---------------------");
1762 base->dump();
1763 if (base->is_JavaObject() && (base != phantom_obj) && (base != null_obj)) {
1764 tty->print_cr("----------base has fields-------------------------");
1765 for (EdgeIterator j(base); j.has_next(); j.next()) {
1766 j.get()->dump();
1767 }
1768 tty->print_cr("----------base has references---------------------");
1769 for (UseIterator j(base); j.has_next(); j.next()) {
1770 j.get()->dump();
1771 }
1772 }
1773 }
1774 for (UseIterator i(field); i.has_next(); i.next()) {
1775 i.get()->dump();
1776 }
1777 assert(field->edge_count() > 0, "sanity");
1778 }
1779 }
1780 }
1781 }
1782 #endif
1784 // Optimize ideal graph.
1785 void ConnectionGraph::optimize_ideal_graph(GrowableArray<Node*>& ptr_cmp_worklist,
1786 GrowableArray<Node*>& storestore_worklist) {
1787 Compile* C = _compile;
1788 PhaseIterGVN* igvn = _igvn;
1789 if (EliminateLocks) {
1790 // Mark locks before changing ideal graph.
1791 int cnt = C->macro_count();
1792 for( int i=0; i < cnt; i++ ) {
1793 Node *n = C->macro_node(i);
1794 if (n->is_AbstractLock()) { // Lock and Unlock nodes
1795 AbstractLockNode* alock = n->as_AbstractLock();
1796 if (!alock->is_non_esc_obj()) {
1797 if (not_global_escape(alock->obj_node())) {
1798 assert(!alock->is_eliminated() || alock->is_coarsened(), "sanity");
1799 // The lock could be marked eliminated by lock coarsening
1800 // code during first IGVN before EA. Replace coarsened flag
1801 // to eliminate all associated locks/unlocks.
1802 #ifdef ASSERT
1803 alock->log_lock_optimization(C, "eliminate_lock_set_non_esc3");
1804 #endif
1805 alock->set_non_esc_obj();
1806 }
1807 }
1808 }
1809 }
1810 }
1812 if (OptimizePtrCompare) {
1813 // Add ConI(#CC_GT) and ConI(#CC_EQ).
1814 _pcmp_neq = igvn->makecon(TypeInt::CC_GT);
1815 _pcmp_eq = igvn->makecon(TypeInt::CC_EQ);
1816 // Optimize objects compare.
1817 while (ptr_cmp_worklist.length() != 0) {
1818 Node *n = ptr_cmp_worklist.pop();
1819 Node *res = optimize_ptr_compare(n);
1820 if (res != NULL) {
1821 #ifndef PRODUCT
1822 if (PrintOptimizePtrCompare) {
1823 tty->print_cr("++++ Replaced: %d %s(%d,%d) --> %s", n->_idx, (n->Opcode() == Op_CmpP ? "CmpP" : "CmpN"), n->in(1)->_idx, n->in(2)->_idx, (res == _pcmp_eq ? "EQ" : "NotEQ"));
1824 if (Verbose) {
1825 n->dump(1);
1826 }
1827 }
1828 #endif
1829 igvn->replace_node(n, res);
1830 }
1831 }
1832 // cleanup
1833 if (_pcmp_neq->outcnt() == 0)
1834 igvn->hash_delete(_pcmp_neq);
1835 if (_pcmp_eq->outcnt() == 0)
1836 igvn->hash_delete(_pcmp_eq);
1837 }
1839 // For MemBarStoreStore nodes added in library_call.cpp, check
1840 // escape status of associated AllocateNode and optimize out
1841 // MemBarStoreStore node if the allocated object never escapes.
1842 while (storestore_worklist.length() != 0) {
1843 Node *n = storestore_worklist.pop();
1844 MemBarStoreStoreNode *storestore = n ->as_MemBarStoreStore();
1845 Node *alloc = storestore->in(MemBarNode::Precedent)->in(0);
1846 assert (alloc->is_Allocate(), "storestore should point to AllocateNode");
1847 if (not_global_escape(alloc)) {
1848 MemBarNode* mb = MemBarNode::make(C, Op_MemBarCPUOrder, Compile::AliasIdxBot);
1849 mb->init_req(TypeFunc::Memory, storestore->in(TypeFunc::Memory));
1850 mb->init_req(TypeFunc::Control, storestore->in(TypeFunc::Control));
1851 igvn->register_new_node_with_optimizer(mb);
1852 igvn->replace_node(storestore, mb);
1853 }
1854 }
1855 }
1857 // Optimize objects compare.
1858 Node* ConnectionGraph::optimize_ptr_compare(Node* n) {
1859 assert(OptimizePtrCompare, "sanity");
1860 PointsToNode* ptn1 = ptnode_adr(n->in(1)->_idx);
1861 PointsToNode* ptn2 = ptnode_adr(n->in(2)->_idx);
1862 JavaObjectNode* jobj1 = unique_java_object(n->in(1));
1863 JavaObjectNode* jobj2 = unique_java_object(n->in(2));
1864 assert(ptn1->is_JavaObject() || ptn1->is_LocalVar(), "sanity");
1865 assert(ptn2->is_JavaObject() || ptn2->is_LocalVar(), "sanity");
1867 // Check simple cases first.
1868 if (jobj1 != NULL) {
1869 if (jobj1->escape_state() == PointsToNode::NoEscape) {
1870 if (jobj1 == jobj2) {
1871 // Comparing the same not escaping object.
1872 return _pcmp_eq;
1873 }
1874 Node* obj = jobj1->ideal_node();
1875 // Comparing not escaping allocation.
1876 if ((obj->is_Allocate() || obj->is_CallStaticJava()) &&
1877 !ptn2->points_to(jobj1)) {
1878 return _pcmp_neq; // This includes nullness check.
1879 }
1880 }
1881 }
1882 if (jobj2 != NULL) {
1883 if (jobj2->escape_state() == PointsToNode::NoEscape) {
1884 Node* obj = jobj2->ideal_node();
1885 // Comparing not escaping allocation.
1886 if ((obj->is_Allocate() || obj->is_CallStaticJava()) &&
1887 !ptn1->points_to(jobj2)) {
1888 return _pcmp_neq; // This includes nullness check.
1889 }
1890 }
1891 }
1892 if (jobj1 != NULL && jobj1 != phantom_obj &&
1893 jobj2 != NULL && jobj2 != phantom_obj &&
1894 jobj1->ideal_node()->is_Con() &&
1895 jobj2->ideal_node()->is_Con()) {
1896 // Klass or String constants compare. Need to be careful with
1897 // compressed pointers - compare types of ConN and ConP instead of nodes.
1898 const Type* t1 = jobj1->ideal_node()->get_ptr_type();
1899 const Type* t2 = jobj2->ideal_node()->get_ptr_type();
1900 if (t1->make_ptr() == t2->make_ptr()) {
1901 return _pcmp_eq;
1902 } else {
1903 return _pcmp_neq;
1904 }
1905 }
1906 if (ptn1->meet(ptn2)) {
1907 return NULL; // Sets are not disjoint
1908 }
1910 // Sets are disjoint.
1911 bool set1_has_unknown_ptr = ptn1->points_to(phantom_obj);
1912 bool set2_has_unknown_ptr = ptn2->points_to(phantom_obj);
1913 bool set1_has_null_ptr = ptn1->points_to(null_obj);
1914 bool set2_has_null_ptr = ptn2->points_to(null_obj);
1915 if (set1_has_unknown_ptr && set2_has_null_ptr ||
1916 set2_has_unknown_ptr && set1_has_null_ptr) {
1917 // Check nullness of unknown object.
1918 return NULL;
1919 }
1921 // Disjointness by itself is not sufficient since
1922 // alias analysis is not complete for escaped objects.
1923 // Disjoint sets are definitely unrelated only when
1924 // at least one set has only not escaping allocations.
1925 if (!set1_has_unknown_ptr && !set1_has_null_ptr) {
1926 if (ptn1->non_escaping_allocation()) {
1927 return _pcmp_neq;
1928 }
1929 }
1930 if (!set2_has_unknown_ptr && !set2_has_null_ptr) {
1931 if (ptn2->non_escaping_allocation()) {
1932 return _pcmp_neq;
1933 }
1934 }
1935 return NULL;
1936 }
1938 // Connection Graph constuction functions.
1940 void ConnectionGraph::add_local_var(Node *n, PointsToNode::EscapeState es) {
1941 PointsToNode* ptadr = _nodes.at(n->_idx);
1942 if (ptadr != NULL) {
1943 assert(ptadr->is_LocalVar() && ptadr->ideal_node() == n, "sanity");
1944 return;
1945 }
1946 Compile* C = _compile;
1947 ptadr = new (C->comp_arena()) LocalVarNode(this, n, es);
1948 _nodes.at_put(n->_idx, ptadr);
1949 }
1951 void ConnectionGraph::add_java_object(Node *n, PointsToNode::EscapeState es) {
1952 PointsToNode* ptadr = _nodes.at(n->_idx);
1953 if (ptadr != NULL) {
1954 assert(ptadr->is_JavaObject() && ptadr->ideal_node() == n, "sanity");
1955 return;
1956 }
1957 Compile* C = _compile;
1958 ptadr = new (C->comp_arena()) JavaObjectNode(this, n, es);
1959 _nodes.at_put(n->_idx, ptadr);
1960 }
1962 void ConnectionGraph::add_field(Node *n, PointsToNode::EscapeState es, int offset) {
1963 PointsToNode* ptadr = _nodes.at(n->_idx);
1964 if (ptadr != NULL) {
1965 assert(ptadr->is_Field() && ptadr->ideal_node() == n, "sanity");
1966 return;
1967 }
1968 bool unsafe = false;
1969 bool is_oop = is_oop_field(n, offset, &unsafe);
1970 if (unsafe) {
1971 es = PointsToNode::GlobalEscape;
1972 }
1973 Compile* C = _compile;
1974 FieldNode* field = new (C->comp_arena()) FieldNode(this, n, es, offset, is_oop);
1975 _nodes.at_put(n->_idx, field);
1976 }
1978 void ConnectionGraph::add_arraycopy(Node *n, PointsToNode::EscapeState es,
1979 PointsToNode* src, PointsToNode* dst) {
1980 assert(!src->is_Field() && !dst->is_Field(), "only for JavaObject and LocalVar");
1981 assert((src != null_obj) && (dst != null_obj), "not for ConP NULL");
1982 PointsToNode* ptadr = _nodes.at(n->_idx);
1983 if (ptadr != NULL) {
1984 assert(ptadr->is_Arraycopy() && ptadr->ideal_node() == n, "sanity");
1985 return;
1986 }
1987 Compile* C = _compile;
1988 ptadr = new (C->comp_arena()) ArraycopyNode(this, n, es);
1989 _nodes.at_put(n->_idx, ptadr);
1990 // Add edge from arraycopy node to source object.
1991 (void)add_edge(ptadr, src);
1992 src->set_arraycopy_src();
1993 // Add edge from destination object to arraycopy node.
1994 (void)add_edge(dst, ptadr);
1995 dst->set_arraycopy_dst();
1996 }
1998 bool ConnectionGraph::is_oop_field(Node* n, int offset, bool* unsafe) {
1999 const Type* adr_type = n->as_AddP()->bottom_type();
2000 BasicType bt = T_INT;
2001 if (offset == Type::OffsetBot) {
2002 // Check only oop fields.
2003 if (!adr_type->isa_aryptr() ||
2004 (adr_type->isa_aryptr()->klass() == NULL) ||
2005 adr_type->isa_aryptr()->klass()->is_obj_array_klass()) {
2006 // OffsetBot is used to reference array's element. Ignore first AddP.
2007 if (find_second_addp(n, n->in(AddPNode::Base)) == NULL) {
2008 bt = T_OBJECT;
2009 }
2010 }
2011 } else if (offset != oopDesc::klass_offset_in_bytes()) {
2012 if (adr_type->isa_instptr()) {
2013 ciField* field = _compile->alias_type(adr_type->isa_instptr())->field();
2014 if (field != NULL) {
2015 bt = field->layout_type();
2016 } else {
2017 // Check for unsafe oop field access
2018 for (DUIterator_Fast imax, i = n->fast_outs(imax); i < imax; i++) {
2019 int opcode = n->fast_out(i)->Opcode();
2020 if (opcode == Op_StoreP || opcode == Op_StoreN ||
2021 opcode == Op_LoadP || opcode == Op_LoadN ||
2022 opcode == Op_GetAndSetP || opcode == Op_GetAndSetN ||
2023 opcode == Op_CompareAndSwapP || opcode == Op_CompareAndSwapN) {
2024 bt = T_OBJECT;
2025 (*unsafe) = true;
2026 break;
2027 }
2028 }
2029 }
2030 } else if (adr_type->isa_aryptr()) {
2031 if (offset == arrayOopDesc::length_offset_in_bytes()) {
2032 // Ignore array length load.
2033 } else if (find_second_addp(n, n->in(AddPNode::Base)) != NULL) {
2034 // Ignore first AddP.
2035 } else {
2036 const Type* elemtype = adr_type->isa_aryptr()->elem();
2037 bt = elemtype->array_element_basic_type();
2038 }
2039 } else if (adr_type->isa_rawptr() || adr_type->isa_klassptr()) {
2040 // Allocation initialization, ThreadLocal field access, unsafe access
2041 for (DUIterator_Fast imax, i = n->fast_outs(imax); i < imax; i++) {
2042 int opcode = n->fast_out(i)->Opcode();
2043 if (opcode == Op_StoreP || opcode == Op_StoreN ||
2044 opcode == Op_LoadP || opcode == Op_LoadN ||
2045 opcode == Op_GetAndSetP || opcode == Op_GetAndSetN ||
2046 opcode == Op_CompareAndSwapP || opcode == Op_CompareAndSwapN) {
2047 bt = T_OBJECT;
2048 break;
2049 }
2050 }
2051 }
2052 }
2053 return (bt == T_OBJECT || bt == T_NARROWOOP || bt == T_ARRAY);
2054 }
2056 // Returns unique pointed java object or NULL.
2057 JavaObjectNode* ConnectionGraph::unique_java_object(Node *n) {
2058 assert(!_collecting, "should not call when contructed graph");
2059 // If the node was created after the escape computation we can't answer.
2060 uint idx = n->_idx;
2061 if (idx >= nodes_size()) {
2062 return NULL;
2063 }
2064 PointsToNode* ptn = ptnode_adr(idx);
2065 if (ptn->is_JavaObject()) {
2066 return ptn->as_JavaObject();
2067 }
2068 assert(ptn->is_LocalVar(), "sanity");
2069 // Check all java objects it points to.
2070 JavaObjectNode* jobj = NULL;
2071 for (EdgeIterator i(ptn); i.has_next(); i.next()) {
2072 PointsToNode* e = i.get();
2073 if (e->is_JavaObject()) {
2074 if (jobj == NULL) {
2075 jobj = e->as_JavaObject();
2076 } else if (jobj != e) {
2077 return NULL;
2078 }
2079 }
2080 }
2081 return jobj;
2082 }
2084 // Return true if this node points only to non-escaping allocations.
2085 bool PointsToNode::non_escaping_allocation() {
2086 if (is_JavaObject()) {
2087 Node* n = ideal_node();
2088 if (n->is_Allocate() || n->is_CallStaticJava()) {
2089 return (escape_state() == PointsToNode::NoEscape);
2090 } else {
2091 return false;
2092 }
2093 }
2094 assert(is_LocalVar(), "sanity");
2095 // Check all java objects it points to.
2096 for (EdgeIterator i(this); i.has_next(); i.next()) {
2097 PointsToNode* e = i.get();
2098 if (e->is_JavaObject()) {
2099 Node* n = e->ideal_node();
2100 if ((e->escape_state() != PointsToNode::NoEscape) ||
2101 !(n->is_Allocate() || n->is_CallStaticJava())) {
2102 return false;
2103 }
2104 }
2105 }
2106 return true;
2107 }
2109 // Return true if we know the node does not escape globally.
2110 bool ConnectionGraph::not_global_escape(Node *n) {
2111 assert(!_collecting, "should not call during graph construction");
2112 // If the node was created after the escape computation we can't answer.
2113 uint idx = n->_idx;
2114 if (idx >= nodes_size()) {
2115 return false;
2116 }
2117 PointsToNode* ptn = ptnode_adr(idx);
2118 if (ptn == NULL) {
2119 return false; // not in congraph (e.g. ConI)
2120 }
2121 PointsToNode::EscapeState es = ptn->escape_state();
2122 // If we have already computed a value, return it.
2123 if (es >= PointsToNode::GlobalEscape)
2124 return false;
2125 if (ptn->is_JavaObject()) {
2126 return true; // (es < PointsToNode::GlobalEscape);
2127 }
2128 assert(ptn->is_LocalVar(), "sanity");
2129 // Check all java objects it points to.
2130 for (EdgeIterator i(ptn); i.has_next(); i.next()) {
2131 if (i.get()->escape_state() >= PointsToNode::GlobalEscape)
2132 return false;
2133 }
2134 return true;
2135 }
2138 // Helper functions
2140 // Return true if this node points to specified node or nodes it points to.
2141 bool PointsToNode::points_to(JavaObjectNode* ptn) const {
2142 if (is_JavaObject()) {
2143 return (this == ptn);
2144 }
2145 assert(is_LocalVar() || is_Field(), "sanity");
2146 for (EdgeIterator i(this); i.has_next(); i.next()) {
2147 if (i.get() == ptn)
2148 return true;
2149 }
2150 return false;
2151 }
2153 // Return true if one node points to an other.
2154 bool PointsToNode::meet(PointsToNode* ptn) {
2155 if (this == ptn) {
2156 return true;
2157 } else if (ptn->is_JavaObject()) {
2158 return this->points_to(ptn->as_JavaObject());
2159 } else if (this->is_JavaObject()) {
2160 return ptn->points_to(this->as_JavaObject());
2161 }
2162 assert(this->is_LocalVar() && ptn->is_LocalVar(), "sanity");
2163 int ptn_count = ptn->edge_count();
2164 for (EdgeIterator i(this); i.has_next(); i.next()) {
2165 PointsToNode* this_e = i.get();
2166 for (int j = 0; j < ptn_count; j++) {
2167 if (this_e == ptn->edge(j))
2168 return true;
2169 }
2170 }
2171 return false;
2172 }
2174 #ifdef ASSERT
2175 // Return true if bases point to this java object.
2176 bool FieldNode::has_base(JavaObjectNode* jobj) const {
2177 for (BaseIterator i(this); i.has_next(); i.next()) {
2178 if (i.get() == jobj)
2179 return true;
2180 }
2181 return false;
2182 }
2183 #endif
2185 int ConnectionGraph::address_offset(Node* adr, PhaseTransform *phase) {
2186 const Type *adr_type = phase->type(adr);
2187 if (adr->is_AddP() && adr_type->isa_oopptr() == NULL &&
2188 adr->in(AddPNode::Address)->is_Proj() &&
2189 adr->in(AddPNode::Address)->in(0)->is_Allocate()) {
2190 // We are computing a raw address for a store captured by an Initialize
2191 // compute an appropriate address type. AddP cases #3 and #5 (see below).
2192 int offs = (int)phase->find_intptr_t_con(adr->in(AddPNode::Offset), Type::OffsetBot);
2193 assert(offs != Type::OffsetBot ||
2194 adr->in(AddPNode::Address)->in(0)->is_AllocateArray(),
2195 "offset must be a constant or it is initialization of array");
2196 return offs;
2197 }
2198 const TypePtr *t_ptr = adr_type->isa_ptr();
2199 assert(t_ptr != NULL, "must be a pointer type");
2200 return t_ptr->offset();
2201 }
2203 Node* ConnectionGraph::get_addp_base(Node *addp) {
2204 assert(addp->is_AddP(), "must be AddP");
2205 //
2206 // AddP cases for Base and Address inputs:
2207 // case #1. Direct object's field reference:
2208 // Allocate
2209 // |
2210 // Proj #5 ( oop result )
2211 // |
2212 // CheckCastPP (cast to instance type)
2213 // | |
2214 // AddP ( base == address )
2215 //
2216 // case #2. Indirect object's field reference:
2217 // Phi
2218 // |
2219 // CastPP (cast to instance type)
2220 // | |
2221 // AddP ( base == address )
2222 //
2223 // case #3. Raw object's field reference for Initialize node:
2224 // Allocate
2225 // |
2226 // Proj #5 ( oop result )
2227 // top |
2228 // \ |
2229 // AddP ( base == top )
2230 //
2231 // case #4. Array's element reference:
2232 // {CheckCastPP | CastPP}
2233 // | | |
2234 // | AddP ( array's element offset )
2235 // | |
2236 // AddP ( array's offset )
2237 //
2238 // case #5. Raw object's field reference for arraycopy stub call:
2239 // The inline_native_clone() case when the arraycopy stub is called
2240 // after the allocation before Initialize and CheckCastPP nodes.
2241 // Allocate
2242 // |
2243 // Proj #5 ( oop result )
2244 // | |
2245 // AddP ( base == address )
2246 //
2247 // case #6. Constant Pool, ThreadLocal, CastX2P or
2248 // Raw object's field reference:
2249 // {ConP, ThreadLocal, CastX2P, raw Load}
2250 // top |
2251 // \ |
2252 // AddP ( base == top )
2253 //
2254 // case #7. Klass's field reference.
2255 // LoadKlass
2256 // | |
2257 // AddP ( base == address )
2258 //
2259 // case #8. narrow Klass's field reference.
2260 // LoadNKlass
2261 // |
2262 // DecodeN
2263 // | |
2264 // AddP ( base == address )
2265 //
2266 Node *base = addp->in(AddPNode::Base);
2267 if (base->uncast()->is_top()) { // The AddP case #3 and #6.
2268 base = addp->in(AddPNode::Address);
2269 while (base->is_AddP()) {
2270 // Case #6 (unsafe access) may have several chained AddP nodes.
2271 assert(base->in(AddPNode::Base)->uncast()->is_top(), "expected unsafe access address only");
2272 base = base->in(AddPNode::Address);
2273 }
2274 Node* uncast_base = base->uncast();
2275 int opcode = uncast_base->Opcode();
2276 assert(opcode == Op_ConP || opcode == Op_ThreadLocal ||
2277 opcode == Op_CastX2P || uncast_base->is_DecodeNarrowPtr() ||
2278 (uncast_base->is_Mem() && (uncast_base->bottom_type()->isa_rawptr() != NULL)) ||
2279 (uncast_base->is_Proj() && uncast_base->in(0)->is_Allocate()), "sanity");
2280 }
2281 return base;
2282 }
2284 Node* ConnectionGraph::find_second_addp(Node* addp, Node* n) {
2285 assert(addp->is_AddP() && addp->outcnt() > 0, "Don't process dead nodes");
2286 Node* addp2 = addp->raw_out(0);
2287 if (addp->outcnt() == 1 && addp2->is_AddP() &&
2288 addp2->in(AddPNode::Base) == n &&
2289 addp2->in(AddPNode::Address) == addp) {
2290 assert(addp->in(AddPNode::Base) == n, "expecting the same base");
2291 //
2292 // Find array's offset to push it on worklist first and
2293 // as result process an array's element offset first (pushed second)
2294 // to avoid CastPP for the array's offset.
2295 // Otherwise the inserted CastPP (LocalVar) will point to what
2296 // the AddP (Field) points to. Which would be wrong since
2297 // the algorithm expects the CastPP has the same point as
2298 // as AddP's base CheckCastPP (LocalVar).
2299 //
2300 // ArrayAllocation
2301 // |
2302 // CheckCastPP
2303 // |
2304 // memProj (from ArrayAllocation CheckCastPP)
2305 // | ||
2306 // | || Int (element index)
2307 // | || | ConI (log(element size))
2308 // | || | /
2309 // | || LShift
2310 // | || /
2311 // | AddP (array's element offset)
2312 // | |
2313 // | | ConI (array's offset: #12(32-bits) or #24(64-bits))
2314 // | / /
2315 // AddP (array's offset)
2316 // |
2317 // Load/Store (memory operation on array's element)
2318 //
2319 return addp2;
2320 }
2321 return NULL;
2322 }
2324 //
2325 // Adjust the type and inputs of an AddP which computes the
2326 // address of a field of an instance
2327 //
2328 bool ConnectionGraph::split_AddP(Node *addp, Node *base) {
2329 PhaseGVN* igvn = _igvn;
2330 const TypeOopPtr *base_t = igvn->type(base)->isa_oopptr();
2331 assert(base_t != NULL && base_t->is_known_instance(), "expecting instance oopptr");
2332 const TypeOopPtr *t = igvn->type(addp)->isa_oopptr();
2333 if (t == NULL) {
2334 // We are computing a raw address for a store captured by an Initialize
2335 // compute an appropriate address type (cases #3 and #5).
2336 assert(igvn->type(addp) == TypeRawPtr::NOTNULL, "must be raw pointer");
2337 assert(addp->in(AddPNode::Address)->is_Proj(), "base of raw address must be result projection from allocation");
2338 intptr_t offs = (int)igvn->find_intptr_t_con(addp->in(AddPNode::Offset), Type::OffsetBot);
2339 assert(offs != Type::OffsetBot, "offset must be a constant");
2340 t = base_t->add_offset(offs)->is_oopptr();
2341 }
2342 int inst_id = base_t->instance_id();
2343 assert(!t->is_known_instance() || t->instance_id() == inst_id,
2344 "old type must be non-instance or match new type");
2346 // The type 't' could be subclass of 'base_t'.
2347 // As result t->offset() could be large then base_t's size and it will
2348 // cause the failure in add_offset() with narrow oops since TypeOopPtr()
2349 // constructor verifies correctness of the offset.
2350 //
2351 // It could happened on subclass's branch (from the type profiling
2352 // inlining) which was not eliminated during parsing since the exactness
2353 // of the allocation type was not propagated to the subclass type check.
2354 //
2355 // Or the type 't' could be not related to 'base_t' at all.
2356 // It could happened when CHA type is different from MDO type on a dead path
2357 // (for example, from instanceof check) which is not collapsed during parsing.
2358 //
2359 // Do nothing for such AddP node and don't process its users since
2360 // this code branch will go away.
2361 //
2362 if (!t->is_known_instance() &&
2363 !base_t->klass()->is_subtype_of(t->klass())) {
2364 return false; // bail out
2365 }
2366 const TypeOopPtr *tinst = base_t->add_offset(t->offset())->is_oopptr();
2367 // Do NOT remove the next line: ensure a new alias index is allocated
2368 // for the instance type. Note: C++ will not remove it since the call
2369 // has side effect.
2370 int alias_idx = _compile->get_alias_index(tinst);
2371 igvn->set_type(addp, tinst);
2372 // record the allocation in the node map
2373 set_map(addp, get_map(base->_idx));
2374 // Set addp's Base and Address to 'base'.
2375 Node *abase = addp->in(AddPNode::Base);
2376 Node *adr = addp->in(AddPNode::Address);
2377 if (adr->is_Proj() && adr->in(0)->is_Allocate() &&
2378 adr->in(0)->_idx == (uint)inst_id) {
2379 // Skip AddP cases #3 and #5.
2380 } else {
2381 assert(!abase->is_top(), "sanity"); // AddP case #3
2382 if (abase != base) {
2383 igvn->hash_delete(addp);
2384 addp->set_req(AddPNode::Base, base);
2385 if (abase == adr) {
2386 addp->set_req(AddPNode::Address, base);
2387 } else {
2388 // AddP case #4 (adr is array's element offset AddP node)
2389 #ifdef ASSERT
2390 const TypeOopPtr *atype = igvn->type(adr)->isa_oopptr();
2391 assert(adr->is_AddP() && atype != NULL &&
2392 atype->instance_id() == inst_id, "array's element offset should be processed first");
2393 #endif
2394 }
2395 igvn->hash_insert(addp);
2396 }
2397 }
2398 // Put on IGVN worklist since at least addp's type was changed above.
2399 record_for_optimizer(addp);
2400 return true;
2401 }
2403 //
2404 // Create a new version of orig_phi if necessary. Returns either the newly
2405 // created phi or an existing phi. Sets create_new to indicate whether a new
2406 // phi was created. Cache the last newly created phi in the node map.
2407 //
2408 PhiNode *ConnectionGraph::create_split_phi(PhiNode *orig_phi, int alias_idx, GrowableArray<PhiNode *> &orig_phi_worklist, bool &new_created) {
2409 Compile *C = _compile;
2410 PhaseGVN* igvn = _igvn;
2411 new_created = false;
2412 int phi_alias_idx = C->get_alias_index(orig_phi->adr_type());
2413 // nothing to do if orig_phi is bottom memory or matches alias_idx
2414 if (phi_alias_idx == alias_idx) {
2415 return orig_phi;
2416 }
2417 // Have we recently created a Phi for this alias index?
2418 PhiNode *result = get_map_phi(orig_phi->_idx);
2419 if (result != NULL && C->get_alias_index(result->adr_type()) == alias_idx) {
2420 return result;
2421 }
2422 // Previous check may fail when the same wide memory Phi was split into Phis
2423 // for different memory slices. Search all Phis for this region.
2424 if (result != NULL) {
2425 Node* region = orig_phi->in(0);
2426 for (DUIterator_Fast imax, i = region->fast_outs(imax); i < imax; i++) {
2427 Node* phi = region->fast_out(i);
2428 if (phi->is_Phi() &&
2429 C->get_alias_index(phi->as_Phi()->adr_type()) == alias_idx) {
2430 assert(phi->_idx >= nodes_size(), "only new Phi per instance memory slice");
2431 return phi->as_Phi();
2432 }
2433 }
2434 }
2435 if (C->live_nodes() + 2*NodeLimitFudgeFactor > C->max_node_limit()) {
2436 if (C->do_escape_analysis() == true && !C->failing()) {
2437 // Retry compilation without escape analysis.
2438 // If this is the first failure, the sentinel string will "stick"
2439 // to the Compile object, and the C2Compiler will see it and retry.
2440 C->record_failure(C2Compiler::retry_no_escape_analysis());
2441 }
2442 return NULL;
2443 }
2444 orig_phi_worklist.append_if_missing(orig_phi);
2445 const TypePtr *atype = C->get_adr_type(alias_idx);
2446 result = PhiNode::make(orig_phi->in(0), NULL, Type::MEMORY, atype);
2447 C->copy_node_notes_to(result, orig_phi);
2448 igvn->set_type(result, result->bottom_type());
2449 record_for_optimizer(result);
2450 set_map(orig_phi, result);
2451 new_created = true;
2452 return result;
2453 }
2455 //
2456 // Return a new version of Memory Phi "orig_phi" with the inputs having the
2457 // specified alias index.
2458 //
2459 PhiNode *ConnectionGraph::split_memory_phi(PhiNode *orig_phi, int alias_idx, GrowableArray<PhiNode *> &orig_phi_worklist) {
2460 assert(alias_idx != Compile::AliasIdxBot, "can't split out bottom memory");
2461 Compile *C = _compile;
2462 PhaseGVN* igvn = _igvn;
2463 bool new_phi_created;
2464 PhiNode *result = create_split_phi(orig_phi, alias_idx, orig_phi_worklist, new_phi_created);
2465 if (!new_phi_created) {
2466 return result;
2467 }
2468 GrowableArray<PhiNode *> phi_list;
2469 GrowableArray<uint> cur_input;
2470 PhiNode *phi = orig_phi;
2471 uint idx = 1;
2472 bool finished = false;
2473 while(!finished) {
2474 while (idx < phi->req()) {
2475 Node *mem = find_inst_mem(phi->in(idx), alias_idx, orig_phi_worklist);
2476 if (mem != NULL && mem->is_Phi()) {
2477 PhiNode *newphi = create_split_phi(mem->as_Phi(), alias_idx, orig_phi_worklist, new_phi_created);
2478 if (new_phi_created) {
2479 // found an phi for which we created a new split, push current one on worklist and begin
2480 // processing new one
2481 phi_list.push(phi);
2482 cur_input.push(idx);
2483 phi = mem->as_Phi();
2484 result = newphi;
2485 idx = 1;
2486 continue;
2487 } else {
2488 mem = newphi;
2489 }
2490 }
2491 if (C->failing()) {
2492 return NULL;
2493 }
2494 result->set_req(idx++, mem);
2495 }
2496 #ifdef ASSERT
2497 // verify that the new Phi has an input for each input of the original
2498 assert( phi->req() == result->req(), "must have same number of inputs.");
2499 assert( result->in(0) != NULL && result->in(0) == phi->in(0), "regions must match");
2500 #endif
2501 // Check if all new phi's inputs have specified alias index.
2502 // Otherwise use old phi.
2503 for (uint i = 1; i < phi->req(); i++) {
2504 Node* in = result->in(i);
2505 assert((phi->in(i) == NULL) == (in == NULL), "inputs must correspond.");
2506 }
2507 // we have finished processing a Phi, see if there are any more to do
2508 finished = (phi_list.length() == 0 );
2509 if (!finished) {
2510 phi = phi_list.pop();
2511 idx = cur_input.pop();
2512 PhiNode *prev_result = get_map_phi(phi->_idx);
2513 prev_result->set_req(idx++, result);
2514 result = prev_result;
2515 }
2516 }
2517 return result;
2518 }
2520 //
2521 // The next methods are derived from methods in MemNode.
2522 //
2523 Node* ConnectionGraph::step_through_mergemem(MergeMemNode *mmem, int alias_idx, const TypeOopPtr *toop) {
2524 Node *mem = mmem;
2525 // TypeOopPtr::NOTNULL+any is an OOP with unknown offset - generally
2526 // means an array I have not precisely typed yet. Do not do any
2527 // alias stuff with it any time soon.
2528 if (toop->base() != Type::AnyPtr &&
2529 !(toop->klass() != NULL &&
2530 toop->klass()->is_java_lang_Object() &&
2531 toop->offset() == Type::OffsetBot)) {
2532 mem = mmem->memory_at(alias_idx);
2533 // Update input if it is progress over what we have now
2534 }
2535 return mem;
2536 }
2538 //
2539 // Move memory users to their memory slices.
2540 //
2541 void ConnectionGraph::move_inst_mem(Node* n, GrowableArray<PhiNode *> &orig_phis) {
2542 Compile* C = _compile;
2543 PhaseGVN* igvn = _igvn;
2544 const TypePtr* tp = igvn->type(n->in(MemNode::Address))->isa_ptr();
2545 assert(tp != NULL, "ptr type");
2546 int alias_idx = C->get_alias_index(tp);
2547 int general_idx = C->get_general_index(alias_idx);
2549 // Move users first
2550 for (DUIterator_Fast imax, i = n->fast_outs(imax); i < imax; i++) {
2551 Node* use = n->fast_out(i);
2552 if (use->is_MergeMem()) {
2553 MergeMemNode* mmem = use->as_MergeMem();
2554 assert(n == mmem->memory_at(alias_idx), "should be on instance memory slice");
2555 if (n != mmem->memory_at(general_idx) || alias_idx == general_idx) {
2556 continue; // Nothing to do
2557 }
2558 // Replace previous general reference to mem node.
2559 uint orig_uniq = C->unique();
2560 Node* m = find_inst_mem(n, general_idx, orig_phis);
2561 assert(orig_uniq == C->unique(), "no new nodes");
2562 mmem->set_memory_at(general_idx, m);
2563 --imax;
2564 --i;
2565 } else if (use->is_MemBar()) {
2566 assert(!use->is_Initialize(), "initializing stores should not be moved");
2567 if (use->req() > MemBarNode::Precedent &&
2568 use->in(MemBarNode::Precedent) == n) {
2569 // Don't move related membars.
2570 record_for_optimizer(use);
2571 continue;
2572 }
2573 tp = use->as_MemBar()->adr_type()->isa_ptr();
2574 if (tp != NULL && C->get_alias_index(tp) == alias_idx ||
2575 alias_idx == general_idx) {
2576 continue; // Nothing to do
2577 }
2578 // Move to general memory slice.
2579 uint orig_uniq = C->unique();
2580 Node* m = find_inst_mem(n, general_idx, orig_phis);
2581 assert(orig_uniq == C->unique(), "no new nodes");
2582 igvn->hash_delete(use);
2583 imax -= use->replace_edge(n, m);
2584 igvn->hash_insert(use);
2585 record_for_optimizer(use);
2586 --i;
2587 #ifdef ASSERT
2588 } else if (use->is_Mem()) {
2589 if (use->Opcode() == Op_StoreCM && use->in(MemNode::OopStore) == n) {
2590 // Don't move related cardmark.
2591 continue;
2592 }
2593 // Memory nodes should have new memory input.
2594 tp = igvn->type(use->in(MemNode::Address))->isa_ptr();
2595 assert(tp != NULL, "ptr type");
2596 int idx = C->get_alias_index(tp);
2597 assert(get_map(use->_idx) != NULL || idx == alias_idx,
2598 "Following memory nodes should have new memory input or be on the same memory slice");
2599 } else if (use->is_Phi()) {
2600 // Phi nodes should be split and moved already.
2601 tp = use->as_Phi()->adr_type()->isa_ptr();
2602 assert(tp != NULL, "ptr type");
2603 int idx = C->get_alias_index(tp);
2604 assert(idx == alias_idx, "Following Phi nodes should be on the same memory slice");
2605 } else {
2606 use->dump();
2607 assert(false, "should not be here");
2608 #endif
2609 }
2610 }
2611 }
2613 //
2614 // Search memory chain of "mem" to find a MemNode whose address
2615 // is the specified alias index.
2616 //
2617 Node* ConnectionGraph::find_inst_mem(Node *orig_mem, int alias_idx, GrowableArray<PhiNode *> &orig_phis) {
2618 if (orig_mem == NULL)
2619 return orig_mem;
2620 Compile* C = _compile;
2621 PhaseGVN* igvn = _igvn;
2622 const TypeOopPtr *toop = C->get_adr_type(alias_idx)->isa_oopptr();
2623 bool is_instance = (toop != NULL) && toop->is_known_instance();
2624 Node *start_mem = C->start()->proj_out(TypeFunc::Memory);
2625 Node *prev = NULL;
2626 Node *result = orig_mem;
2627 while (prev != result) {
2628 prev = result;
2629 if (result == start_mem)
2630 break; // hit one of our sentinels
2631 if (result->is_Mem()) {
2632 const Type *at = igvn->type(result->in(MemNode::Address));
2633 if (at == Type::TOP)
2634 break; // Dead
2635 assert (at->isa_ptr() != NULL, "pointer type required.");
2636 int idx = C->get_alias_index(at->is_ptr());
2637 if (idx == alias_idx)
2638 break; // Found
2639 if (!is_instance && (at->isa_oopptr() == NULL ||
2640 !at->is_oopptr()->is_known_instance())) {
2641 break; // Do not skip store to general memory slice.
2642 }
2643 result = result->in(MemNode::Memory);
2644 }
2645 if (!is_instance)
2646 continue; // don't search further for non-instance types
2647 // skip over a call which does not affect this memory slice
2648 if (result->is_Proj() && result->as_Proj()->_con == TypeFunc::Memory) {
2649 Node *proj_in = result->in(0);
2650 if (proj_in->is_Allocate() && proj_in->_idx == (uint)toop->instance_id()) {
2651 break; // hit one of our sentinels
2652 } else if (proj_in->is_Call()) {
2653 CallNode *call = proj_in->as_Call();
2654 if (!call->may_modify(toop, igvn)) {
2655 result = call->in(TypeFunc::Memory);
2656 }
2657 } else if (proj_in->is_Initialize()) {
2658 AllocateNode* alloc = proj_in->as_Initialize()->allocation();
2659 // Stop if this is the initialization for the object instance which
2660 // which contains this memory slice, otherwise skip over it.
2661 if (alloc == NULL || alloc->_idx != (uint)toop->instance_id()) {
2662 result = proj_in->in(TypeFunc::Memory);
2663 }
2664 } else if (proj_in->is_MemBar()) {
2665 result = proj_in->in(TypeFunc::Memory);
2666 }
2667 } else if (result->is_MergeMem()) {
2668 MergeMemNode *mmem = result->as_MergeMem();
2669 result = step_through_mergemem(mmem, alias_idx, toop);
2670 if (result == mmem->base_memory()) {
2671 // Didn't find instance memory, search through general slice recursively.
2672 result = mmem->memory_at(C->get_general_index(alias_idx));
2673 result = find_inst_mem(result, alias_idx, orig_phis);
2674 if (C->failing()) {
2675 return NULL;
2676 }
2677 mmem->set_memory_at(alias_idx, result);
2678 }
2679 } else if (result->is_Phi() &&
2680 C->get_alias_index(result->as_Phi()->adr_type()) != alias_idx) {
2681 Node *un = result->as_Phi()->unique_input(igvn);
2682 if (un != NULL) {
2683 orig_phis.append_if_missing(result->as_Phi());
2684 result = un;
2685 } else {
2686 break;
2687 }
2688 } else if (result->is_ClearArray()) {
2689 if (!ClearArrayNode::step_through(&result, (uint)toop->instance_id(), igvn)) {
2690 // Can not bypass initialization of the instance
2691 // we are looking for.
2692 break;
2693 }
2694 // Otherwise skip it (the call updated 'result' value).
2695 } else if (result->Opcode() == Op_SCMemProj) {
2696 Node* mem = result->in(0);
2697 Node* adr = NULL;
2698 if (mem->is_LoadStore()) {
2699 adr = mem->in(MemNode::Address);
2700 } else {
2701 assert(mem->Opcode() == Op_EncodeISOArray, "sanity");
2702 adr = mem->in(3); // Memory edge corresponds to destination array
2703 }
2704 const Type *at = igvn->type(adr);
2705 if (at != Type::TOP) {
2706 assert (at->isa_ptr() != NULL, "pointer type required.");
2707 int idx = C->get_alias_index(at->is_ptr());
2708 assert(idx != alias_idx, "Object is not scalar replaceable if a LoadStore node access its field");
2709 break;
2710 }
2711 result = mem->in(MemNode::Memory);
2712 }
2713 }
2714 if (result->is_Phi()) {
2715 PhiNode *mphi = result->as_Phi();
2716 assert(mphi->bottom_type() == Type::MEMORY, "memory phi required");
2717 const TypePtr *t = mphi->adr_type();
2718 if (!is_instance) {
2719 // Push all non-instance Phis on the orig_phis worklist to update inputs
2720 // during Phase 4 if needed.
2721 orig_phis.append_if_missing(mphi);
2722 } else if (C->get_alias_index(t) != alias_idx) {
2723 // Create a new Phi with the specified alias index type.
2724 result = split_memory_phi(mphi, alias_idx, orig_phis);
2725 }
2726 }
2727 // the result is either MemNode, PhiNode, InitializeNode.
2728 return result;
2729 }
2731 //
2732 // Convert the types of unescaped object to instance types where possible,
2733 // propagate the new type information through the graph, and update memory
2734 // edges and MergeMem inputs to reflect the new type.
2735 //
2736 // We start with allocations (and calls which may be allocations) on alloc_worklist.
2737 // The processing is done in 4 phases:
2738 //
2739 // Phase 1: Process possible allocations from alloc_worklist. Create instance
2740 // types for the CheckCastPP for allocations where possible.
2741 // Propagate the the new types through users as follows:
2742 // casts and Phi: push users on alloc_worklist
2743 // AddP: cast Base and Address inputs to the instance type
2744 // push any AddP users on alloc_worklist and push any memnode
2745 // users onto memnode_worklist.
2746 // Phase 2: Process MemNode's from memnode_worklist. compute new address type and
2747 // search the Memory chain for a store with the appropriate type
2748 // address type. If a Phi is found, create a new version with
2749 // the appropriate memory slices from each of the Phi inputs.
2750 // For stores, process the users as follows:
2751 // MemNode: push on memnode_worklist
2752 // MergeMem: push on mergemem_worklist
2753 // Phase 3: Process MergeMem nodes from mergemem_worklist. Walk each memory slice
2754 // moving the first node encountered of each instance type to the
2755 // the input corresponding to its alias index.
2756 // appropriate memory slice.
2757 // Phase 4: Update the inputs of non-instance memory Phis and the Memory input of memnodes.
2758 //
2759 // In the following example, the CheckCastPP nodes are the cast of allocation
2760 // results and the allocation of node 29 is unescaped and eligible to be an
2761 // instance type.
2762 //
2763 // We start with:
2764 //
2765 // 7 Parm #memory
2766 // 10 ConI "12"
2767 // 19 CheckCastPP "Foo"
2768 // 20 AddP _ 19 19 10 Foo+12 alias_index=4
2769 // 29 CheckCastPP "Foo"
2770 // 30 AddP _ 29 29 10 Foo+12 alias_index=4
2771 //
2772 // 40 StoreP 25 7 20 ... alias_index=4
2773 // 50 StoreP 35 40 30 ... alias_index=4
2774 // 60 StoreP 45 50 20 ... alias_index=4
2775 // 70 LoadP _ 60 30 ... alias_index=4
2776 // 80 Phi 75 50 60 Memory alias_index=4
2777 // 90 LoadP _ 80 30 ... alias_index=4
2778 // 100 LoadP _ 80 20 ... alias_index=4
2779 //
2780 //
2781 // Phase 1 creates an instance type for node 29 assigning it an instance id of 24
2782 // and creating a new alias index for node 30. This gives:
2783 //
2784 // 7 Parm #memory
2785 // 10 ConI "12"
2786 // 19 CheckCastPP "Foo"
2787 // 20 AddP _ 19 19 10 Foo+12 alias_index=4
2788 // 29 CheckCastPP "Foo" iid=24
2789 // 30 AddP _ 29 29 10 Foo+12 alias_index=6 iid=24
2790 //
2791 // 40 StoreP 25 7 20 ... alias_index=4
2792 // 50 StoreP 35 40 30 ... alias_index=6
2793 // 60 StoreP 45 50 20 ... alias_index=4
2794 // 70 LoadP _ 60 30 ... alias_index=6
2795 // 80 Phi 75 50 60 Memory alias_index=4
2796 // 90 LoadP _ 80 30 ... alias_index=6
2797 // 100 LoadP _ 80 20 ... alias_index=4
2798 //
2799 // In phase 2, new memory inputs are computed for the loads and stores,
2800 // And a new version of the phi is created. In phase 4, the inputs to
2801 // node 80 are updated and then the memory nodes are updated with the
2802 // values computed in phase 2. This results in:
2803 //
2804 // 7 Parm #memory
2805 // 10 ConI "12"
2806 // 19 CheckCastPP "Foo"
2807 // 20 AddP _ 19 19 10 Foo+12 alias_index=4
2808 // 29 CheckCastPP "Foo" iid=24
2809 // 30 AddP _ 29 29 10 Foo+12 alias_index=6 iid=24
2810 //
2811 // 40 StoreP 25 7 20 ... alias_index=4
2812 // 50 StoreP 35 7 30 ... alias_index=6
2813 // 60 StoreP 45 40 20 ... alias_index=4
2814 // 70 LoadP _ 50 30 ... alias_index=6
2815 // 80 Phi 75 40 60 Memory alias_index=4
2816 // 120 Phi 75 50 50 Memory alias_index=6
2817 // 90 LoadP _ 120 30 ... alias_index=6
2818 // 100 LoadP _ 80 20 ... alias_index=4
2819 //
2820 void ConnectionGraph::split_unique_types(GrowableArray<Node *> &alloc_worklist) {
2821 GrowableArray<Node *> memnode_worklist;
2822 GrowableArray<PhiNode *> orig_phis;
2823 PhaseIterGVN *igvn = _igvn;
2824 uint new_index_start = (uint) _compile->num_alias_types();
2825 Arena* arena = Thread::current()->resource_area();
2826 VectorSet visited(arena);
2827 ideal_nodes.clear(); // Reset for use with set_map/get_map.
2828 uint unique_old = _compile->unique();
2830 // Phase 1: Process possible allocations from alloc_worklist.
2831 // Create instance types for the CheckCastPP for allocations where possible.
2832 //
2833 // (Note: don't forget to change the order of the second AddP node on
2834 // the alloc_worklist if the order of the worklist processing is changed,
2835 // see the comment in find_second_addp().)
2836 //
2837 while (alloc_worklist.length() != 0) {
2838 Node *n = alloc_worklist.pop();
2839 uint ni = n->_idx;
2840 if (n->is_Call()) {
2841 CallNode *alloc = n->as_Call();
2842 // copy escape information to call node
2843 PointsToNode* ptn = ptnode_adr(alloc->_idx);
2844 PointsToNode::EscapeState es = ptn->escape_state();
2845 // We have an allocation or call which returns a Java object,
2846 // see if it is unescaped.
2847 if (es != PointsToNode::NoEscape || !ptn->scalar_replaceable())
2848 continue;
2849 // Find CheckCastPP for the allocate or for the return value of a call
2850 n = alloc->result_cast();
2851 if (n == NULL) { // No uses except Initialize node
2852 if (alloc->is_Allocate()) {
2853 // Set the scalar_replaceable flag for allocation
2854 // so it could be eliminated if it has no uses.
2855 alloc->as_Allocate()->_is_scalar_replaceable = true;
2856 }
2857 if (alloc->is_CallStaticJava()) {
2858 // Set the scalar_replaceable flag for boxing method
2859 // so it could be eliminated if it has no uses.
2860 alloc->as_CallStaticJava()->_is_scalar_replaceable = true;
2861 }
2862 continue;
2863 }
2864 if (!n->is_CheckCastPP()) { // not unique CheckCastPP.
2865 assert(!alloc->is_Allocate(), "allocation should have unique type");
2866 continue;
2867 }
2869 // The inline code for Object.clone() casts the allocation result to
2870 // java.lang.Object and then to the actual type of the allocated
2871 // object. Detect this case and use the second cast.
2872 // Also detect j.l.reflect.Array.newInstance(jobject, jint) case when
2873 // the allocation result is cast to java.lang.Object and then
2874 // to the actual Array type.
2875 if (alloc->is_Allocate() && n->as_Type()->type() == TypeInstPtr::NOTNULL
2876 && (alloc->is_AllocateArray() ||
2877 igvn->type(alloc->in(AllocateNode::KlassNode)) != TypeKlassPtr::OBJECT)) {
2878 Node *cast2 = NULL;
2879 for (DUIterator_Fast imax, i = n->fast_outs(imax); i < imax; i++) {
2880 Node *use = n->fast_out(i);
2881 if (use->is_CheckCastPP()) {
2882 cast2 = use;
2883 break;
2884 }
2885 }
2886 if (cast2 != NULL) {
2887 n = cast2;
2888 } else {
2889 // Non-scalar replaceable if the allocation type is unknown statically
2890 // (reflection allocation), the object can't be restored during
2891 // deoptimization without precise type.
2892 continue;
2893 }
2894 }
2896 const TypeOopPtr *t = igvn->type(n)->isa_oopptr();
2897 if (t == NULL)
2898 continue; // not a TypeOopPtr
2899 if (!t->klass_is_exact())
2900 continue; // not an unique type
2902 if (alloc->is_Allocate()) {
2903 // Set the scalar_replaceable flag for allocation
2904 // so it could be eliminated.
2905 alloc->as_Allocate()->_is_scalar_replaceable = true;
2906 }
2907 if (alloc->is_CallStaticJava()) {
2908 // Set the scalar_replaceable flag for boxing method
2909 // so it could be eliminated.
2910 alloc->as_CallStaticJava()->_is_scalar_replaceable = true;
2911 }
2912 set_escape_state(ptnode_adr(n->_idx), es); // CheckCastPP escape state
2913 // in order for an object to be scalar-replaceable, it must be:
2914 // - a direct allocation (not a call returning an object)
2915 // - non-escaping
2916 // - eligible to be a unique type
2917 // - not determined to be ineligible by escape analysis
2918 set_map(alloc, n);
2919 set_map(n, alloc);
2920 const TypeOopPtr* tinst = t->cast_to_instance_id(ni);
2921 igvn->hash_delete(n);
2922 igvn->set_type(n, tinst);
2923 n->raise_bottom_type(tinst);
2924 igvn->hash_insert(n);
2925 record_for_optimizer(n);
2926 if (alloc->is_Allocate() && (t->isa_instptr() || t->isa_aryptr())) {
2928 // First, put on the worklist all Field edges from Connection Graph
2929 // which is more accurate then putting immediate users from Ideal Graph.
2930 for (EdgeIterator e(ptn); e.has_next(); e.next()) {
2931 PointsToNode* tgt = e.get();
2932 Node* use = tgt->ideal_node();
2933 assert(tgt->is_Field() && use->is_AddP(),
2934 "only AddP nodes are Field edges in CG");
2935 if (use->outcnt() > 0) { // Don't process dead nodes
2936 Node* addp2 = find_second_addp(use, use->in(AddPNode::Base));
2937 if (addp2 != NULL) {
2938 assert(alloc->is_AllocateArray(),"array allocation was expected");
2939 alloc_worklist.append_if_missing(addp2);
2940 }
2941 alloc_worklist.append_if_missing(use);
2942 }
2943 }
2945 // An allocation may have an Initialize which has raw stores. Scan
2946 // the users of the raw allocation result and push AddP users
2947 // on alloc_worklist.
2948 Node *raw_result = alloc->proj_out(TypeFunc::Parms);
2949 assert (raw_result != NULL, "must have an allocation result");
2950 for (DUIterator_Fast imax, i = raw_result->fast_outs(imax); i < imax; i++) {
2951 Node *use = raw_result->fast_out(i);
2952 if (use->is_AddP() && use->outcnt() > 0) { // Don't process dead nodes
2953 Node* addp2 = find_second_addp(use, raw_result);
2954 if (addp2 != NULL) {
2955 assert(alloc->is_AllocateArray(),"array allocation was expected");
2956 alloc_worklist.append_if_missing(addp2);
2957 }
2958 alloc_worklist.append_if_missing(use);
2959 } else if (use->is_MemBar()) {
2960 memnode_worklist.append_if_missing(use);
2961 }
2962 }
2963 }
2964 } else if (n->is_AddP()) {
2965 JavaObjectNode* jobj = unique_java_object(get_addp_base(n));
2966 if (jobj == NULL || jobj == phantom_obj) {
2967 #ifdef ASSERT
2968 ptnode_adr(get_addp_base(n)->_idx)->dump();
2969 ptnode_adr(n->_idx)->dump();
2970 assert(jobj != NULL && jobj != phantom_obj, "escaped allocation");
2971 #endif
2972 _compile->record_failure(C2Compiler::retry_no_escape_analysis());
2973 return;
2974 }
2975 Node *base = get_map(jobj->idx()); // CheckCastPP node
2976 if (!split_AddP(n, base)) continue; // wrong type from dead path
2977 } else if (n->is_Phi() ||
2978 n->is_CheckCastPP() ||
2979 n->is_EncodeP() ||
2980 n->is_DecodeN() ||
2981 (n->is_ConstraintCast() && n->Opcode() == Op_CastPP)) {
2982 if (visited.test_set(n->_idx)) {
2983 assert(n->is_Phi(), "loops only through Phi's");
2984 continue; // already processed
2985 }
2986 JavaObjectNode* jobj = unique_java_object(n);
2987 if (jobj == NULL || jobj == phantom_obj) {
2988 #ifdef ASSERT
2989 ptnode_adr(n->_idx)->dump();
2990 assert(jobj != NULL && jobj != phantom_obj, "escaped allocation");
2991 #endif
2992 _compile->record_failure(C2Compiler::retry_no_escape_analysis());
2993 return;
2994 } else {
2995 Node *val = get_map(jobj->idx()); // CheckCastPP node
2996 TypeNode *tn = n->as_Type();
2997 const TypeOopPtr* tinst = igvn->type(val)->isa_oopptr();
2998 assert(tinst != NULL && tinst->is_known_instance() &&
2999 tinst->instance_id() == jobj->idx() , "instance type expected.");
3001 const Type *tn_type = igvn->type(tn);
3002 const TypeOopPtr *tn_t;
3003 if (tn_type->isa_narrowoop()) {
3004 tn_t = tn_type->make_ptr()->isa_oopptr();
3005 } else {
3006 tn_t = tn_type->isa_oopptr();
3007 }
3008 if (tn_t != NULL && tinst->klass()->is_subtype_of(tn_t->klass())) {
3009 if (tn_type->isa_narrowoop()) {
3010 tn_type = tinst->make_narrowoop();
3011 } else {
3012 tn_type = tinst;
3013 }
3014 igvn->hash_delete(tn);
3015 igvn->set_type(tn, tn_type);
3016 tn->set_type(tn_type);
3017 igvn->hash_insert(tn);
3018 record_for_optimizer(n);
3019 } else {
3020 assert(tn_type == TypePtr::NULL_PTR ||
3021 tn_t != NULL && !tinst->klass()->is_subtype_of(tn_t->klass()),
3022 "unexpected type");
3023 continue; // Skip dead path with different type
3024 }
3025 }
3026 } else {
3027 debug_only(n->dump();)
3028 assert(false, "EA: unexpected node");
3029 continue;
3030 }
3031 // push allocation's users on appropriate worklist
3032 for (DUIterator_Fast imax, i = n->fast_outs(imax); i < imax; i++) {
3033 Node *use = n->fast_out(i);
3034 if(use->is_Mem() && use->in(MemNode::Address) == n) {
3035 // Load/store to instance's field
3036 memnode_worklist.append_if_missing(use);
3037 } else if (use->is_MemBar()) {
3038 if (use->in(TypeFunc::Memory) == n) { // Ignore precedent edge
3039 memnode_worklist.append_if_missing(use);
3040 }
3041 } else if (use->is_AddP() && use->outcnt() > 0) { // No dead nodes
3042 Node* addp2 = find_second_addp(use, n);
3043 if (addp2 != NULL) {
3044 alloc_worklist.append_if_missing(addp2);
3045 }
3046 alloc_worklist.append_if_missing(use);
3047 } else if (use->is_Phi() ||
3048 use->is_CheckCastPP() ||
3049 use->is_EncodeNarrowPtr() ||
3050 use->is_DecodeNarrowPtr() ||
3051 (use->is_ConstraintCast() && use->Opcode() == Op_CastPP)) {
3052 alloc_worklist.append_if_missing(use);
3053 #ifdef ASSERT
3054 } else if (use->is_Mem()) {
3055 assert(use->in(MemNode::Address) != n, "EA: missing allocation reference path");
3056 } else if (use->is_MergeMem()) {
3057 assert(_mergemem_worklist.contains(use->as_MergeMem()), "EA: missing MergeMem node in the worklist");
3058 } else if (use->is_SafePoint()) {
3059 // Look for MergeMem nodes for calls which reference unique allocation
3060 // (through CheckCastPP nodes) even for debug info.
3061 Node* m = use->in(TypeFunc::Memory);
3062 if (m->is_MergeMem()) {
3063 assert(_mergemem_worklist.contains(m->as_MergeMem()), "EA: missing MergeMem node in the worklist");
3064 }
3065 } else if (use->Opcode() == Op_EncodeISOArray) {
3066 if (use->in(MemNode::Memory) == n || use->in(3) == n) {
3067 // EncodeISOArray overwrites destination array
3068 memnode_worklist.append_if_missing(use);
3069 }
3070 } else {
3071 uint op = use->Opcode();
3072 if (!(op == Op_CmpP || op == Op_Conv2B ||
3073 op == Op_CastP2X || op == Op_StoreCM ||
3074 op == Op_FastLock || op == Op_AryEq || op == Op_StrComp ||
3075 op == Op_StrEquals || op == Op_StrIndexOf)) {
3076 n->dump();
3077 use->dump();
3078 assert(false, "EA: missing allocation reference path");
3079 }
3080 #endif
3081 }
3082 }
3084 }
3085 // New alias types were created in split_AddP().
3086 uint new_index_end = (uint) _compile->num_alias_types();
3087 assert(unique_old == _compile->unique(), "there should be no new ideal nodes after Phase 1");
3089 // Phase 2: Process MemNode's from memnode_worklist. compute new address type and
3090 // compute new values for Memory inputs (the Memory inputs are not
3091 // actually updated until phase 4.)
3092 if (memnode_worklist.length() == 0)
3093 return; // nothing to do
3094 while (memnode_worklist.length() != 0) {
3095 Node *n = memnode_worklist.pop();
3096 if (visited.test_set(n->_idx))
3097 continue;
3098 if (n->is_Phi() || n->is_ClearArray()) {
3099 // we don't need to do anything, but the users must be pushed
3100 } else if (n->is_MemBar()) { // Initialize, MemBar nodes
3101 // we don't need to do anything, but the users must be pushed
3102 n = n->as_MemBar()->proj_out(TypeFunc::Memory);
3103 if (n == NULL)
3104 continue;
3105 } else if (n->Opcode() == Op_EncodeISOArray) {
3106 // get the memory projection
3107 for (DUIterator_Fast imax, i = n->fast_outs(imax); i < imax; i++) {
3108 Node *use = n->fast_out(i);
3109 if (use->Opcode() == Op_SCMemProj) {
3110 n = use;
3111 break;
3112 }
3113 }
3114 assert(n->Opcode() == Op_SCMemProj, "memory projection required");
3115 } else {
3116 assert(n->is_Mem(), "memory node required.");
3117 Node *addr = n->in(MemNode::Address);
3118 const Type *addr_t = igvn->type(addr);
3119 if (addr_t == Type::TOP)
3120 continue;
3121 assert (addr_t->isa_ptr() != NULL, "pointer type required.");
3122 int alias_idx = _compile->get_alias_index(addr_t->is_ptr());
3123 assert ((uint)alias_idx < new_index_end, "wrong alias index");
3124 Node *mem = find_inst_mem(n->in(MemNode::Memory), alias_idx, orig_phis);
3125 if (_compile->failing()) {
3126 return;
3127 }
3128 if (mem != n->in(MemNode::Memory)) {
3129 // We delay the memory edge update since we need old one in
3130 // MergeMem code below when instances memory slices are separated.
3131 set_map(n, mem);
3132 }
3133 if (n->is_Load()) {
3134 continue; // don't push users
3135 } else if (n->is_LoadStore()) {
3136 // get the memory projection
3137 for (DUIterator_Fast imax, i = n->fast_outs(imax); i < imax; i++) {
3138 Node *use = n->fast_out(i);
3139 if (use->Opcode() == Op_SCMemProj) {
3140 n = use;
3141 break;
3142 }
3143 }
3144 assert(n->Opcode() == Op_SCMemProj, "memory projection required");
3145 }
3146 }
3147 // push user on appropriate worklist
3148 for (DUIterator_Fast imax, i = n->fast_outs(imax); i < imax; i++) {
3149 Node *use = n->fast_out(i);
3150 if (use->is_Phi() || use->is_ClearArray()) {
3151 memnode_worklist.append_if_missing(use);
3152 } else if (use->is_Mem() && use->in(MemNode::Memory) == n) {
3153 if (use->Opcode() == Op_StoreCM) // Ignore cardmark stores
3154 continue;
3155 memnode_worklist.append_if_missing(use);
3156 } else if (use->is_MemBar()) {
3157 if (use->in(TypeFunc::Memory) == n) { // Ignore precedent edge
3158 memnode_worklist.append_if_missing(use);
3159 }
3160 #ifdef ASSERT
3161 } else if(use->is_Mem()) {
3162 assert(use->in(MemNode::Memory) != n, "EA: missing memory path");
3163 } else if (use->is_MergeMem()) {
3164 assert(_mergemem_worklist.contains(use->as_MergeMem()), "EA: missing MergeMem node in the worklist");
3165 } else if (use->Opcode() == Op_EncodeISOArray) {
3166 if (use->in(MemNode::Memory) == n || use->in(3) == n) {
3167 // EncodeISOArray overwrites destination array
3168 memnode_worklist.append_if_missing(use);
3169 }
3170 } else {
3171 uint op = use->Opcode();
3172 if (!(op == Op_StoreCM ||
3173 (op == Op_CallLeaf && use->as_CallLeaf()->_name != NULL &&
3174 strcmp(use->as_CallLeaf()->_name, "g1_wb_pre") == 0) ||
3175 op == Op_AryEq || op == Op_StrComp ||
3176 op == Op_StrEquals || op == Op_StrIndexOf)) {
3177 n->dump();
3178 use->dump();
3179 assert(false, "EA: missing memory path");
3180 }
3181 #endif
3182 }
3183 }
3184 }
3186 // Phase 3: Process MergeMem nodes from mergemem_worklist.
3187 // Walk each memory slice moving the first node encountered of each
3188 // instance type to the the input corresponding to its alias index.
3189 uint length = _mergemem_worklist.length();
3190 for( uint next = 0; next < length; ++next ) {
3191 MergeMemNode* nmm = _mergemem_worklist.at(next);
3192 assert(!visited.test_set(nmm->_idx), "should not be visited before");
3193 // Note: we don't want to use MergeMemStream here because we only want to
3194 // scan inputs which exist at the start, not ones we add during processing.
3195 // Note 2: MergeMem may already contains instance memory slices added
3196 // during find_inst_mem() call when memory nodes were processed above.
3197 igvn->hash_delete(nmm);
3198 uint nslices = MIN2(nmm->req(), new_index_start);
3199 for (uint i = Compile::AliasIdxRaw+1; i < nslices; i++) {
3200 Node* mem = nmm->in(i);
3201 Node* cur = NULL;
3202 if (mem == NULL || mem->is_top())
3203 continue;
3204 // First, update mergemem by moving memory nodes to corresponding slices
3205 // if their type became more precise since this mergemem was created.
3206 while (mem->is_Mem()) {
3207 const Type *at = igvn->type(mem->in(MemNode::Address));
3208 if (at != Type::TOP) {
3209 assert (at->isa_ptr() != NULL, "pointer type required.");
3210 uint idx = (uint)_compile->get_alias_index(at->is_ptr());
3211 if (idx == i) {
3212 if (cur == NULL)
3213 cur = mem;
3214 } else {
3215 if (idx >= nmm->req() || nmm->is_empty_memory(nmm->in(idx))) {
3216 nmm->set_memory_at(idx, mem);
3217 }
3218 }
3219 }
3220 mem = mem->in(MemNode::Memory);
3221 }
3222 nmm->set_memory_at(i, (cur != NULL) ? cur : mem);
3223 // Find any instance of the current type if we haven't encountered
3224 // already a memory slice of the instance along the memory chain.
3225 for (uint ni = new_index_start; ni < new_index_end; ni++) {
3226 if((uint)_compile->get_general_index(ni) == i) {
3227 Node *m = (ni >= nmm->req()) ? nmm->empty_memory() : nmm->in(ni);
3228 if (nmm->is_empty_memory(m)) {
3229 Node* result = find_inst_mem(mem, ni, orig_phis);
3230 if (_compile->failing()) {
3231 return;
3232 }
3233 nmm->set_memory_at(ni, result);
3234 }
3235 }
3236 }
3237 }
3238 // Find the rest of instances values
3239 for (uint ni = new_index_start; ni < new_index_end; ni++) {
3240 const TypeOopPtr *tinst = _compile->get_adr_type(ni)->isa_oopptr();
3241 Node* result = step_through_mergemem(nmm, ni, tinst);
3242 if (result == nmm->base_memory()) {
3243 // Didn't find instance memory, search through general slice recursively.
3244 result = nmm->memory_at(_compile->get_general_index(ni));
3245 result = find_inst_mem(result, ni, orig_phis);
3246 if (_compile->failing()) {
3247 return;
3248 }
3249 nmm->set_memory_at(ni, result);
3250 }
3251 }
3252 igvn->hash_insert(nmm);
3253 record_for_optimizer(nmm);
3254 }
3256 // Phase 4: Update the inputs of non-instance memory Phis and
3257 // the Memory input of memnodes
3258 // First update the inputs of any non-instance Phi's from
3259 // which we split out an instance Phi. Note we don't have
3260 // to recursively process Phi's encounted on the input memory
3261 // chains as is done in split_memory_phi() since they will
3262 // also be processed here.
3263 for (int j = 0; j < orig_phis.length(); j++) {
3264 PhiNode *phi = orig_phis.at(j);
3265 int alias_idx = _compile->get_alias_index(phi->adr_type());
3266 igvn->hash_delete(phi);
3267 for (uint i = 1; i < phi->req(); i++) {
3268 Node *mem = phi->in(i);
3269 Node *new_mem = find_inst_mem(mem, alias_idx, orig_phis);
3270 if (_compile->failing()) {
3271 return;
3272 }
3273 if (mem != new_mem) {
3274 phi->set_req(i, new_mem);
3275 }
3276 }
3277 igvn->hash_insert(phi);
3278 record_for_optimizer(phi);
3279 }
3281 // Update the memory inputs of MemNodes with the value we computed
3282 // in Phase 2 and move stores memory users to corresponding memory slices.
3283 // Disable memory split verification code until the fix for 6984348.
3284 // Currently it produces false negative results since it does not cover all cases.
3285 #if 0 // ifdef ASSERT
3286 visited.Reset();
3287 Node_Stack old_mems(arena, _compile->unique() >> 2);
3288 #endif
3289 for (uint i = 0; i < ideal_nodes.size(); i++) {
3290 Node* n = ideal_nodes.at(i);
3291 Node* nmem = get_map(n->_idx);
3292 assert(nmem != NULL, "sanity");
3293 if (n->is_Mem()) {
3294 #if 0 // ifdef ASSERT
3295 Node* old_mem = n->in(MemNode::Memory);
3296 if (!visited.test_set(old_mem->_idx)) {
3297 old_mems.push(old_mem, old_mem->outcnt());
3298 }
3299 #endif
3300 assert(n->in(MemNode::Memory) != nmem, "sanity");
3301 if (!n->is_Load()) {
3302 // Move memory users of a store first.
3303 move_inst_mem(n, orig_phis);
3304 }
3305 // Now update memory input
3306 igvn->hash_delete(n);
3307 n->set_req(MemNode::Memory, nmem);
3308 igvn->hash_insert(n);
3309 record_for_optimizer(n);
3310 } else {
3311 assert(n->is_Allocate() || n->is_CheckCastPP() ||
3312 n->is_AddP() || n->is_Phi(), "unknown node used for set_map()");
3313 }
3314 }
3315 #if 0 // ifdef ASSERT
3316 // Verify that memory was split correctly
3317 while (old_mems.is_nonempty()) {
3318 Node* old_mem = old_mems.node();
3319 uint old_cnt = old_mems.index();
3320 old_mems.pop();
3321 assert(old_cnt == old_mem->outcnt(), "old mem could be lost");
3322 }
3323 #endif
3324 }
3326 #ifndef PRODUCT
3327 static const char *node_type_names[] = {
3328 "UnknownType",
3329 "JavaObject",
3330 "LocalVar",
3331 "Field",
3332 "Arraycopy"
3333 };
3335 static const char *esc_names[] = {
3336 "UnknownEscape",
3337 "NoEscape",
3338 "ArgEscape",
3339 "GlobalEscape"
3340 };
3342 void PointsToNode::dump(bool print_state) const {
3343 NodeType nt = node_type();
3344 tty->print("%s ", node_type_names[(int) nt]);
3345 if (print_state) {
3346 EscapeState es = escape_state();
3347 EscapeState fields_es = fields_escape_state();
3348 tty->print("%s(%s) ", esc_names[(int)es], esc_names[(int)fields_es]);
3349 if (nt == PointsToNode::JavaObject && !this->scalar_replaceable())
3350 tty->print("NSR ");
3351 }
3352 if (is_Field()) {
3353 FieldNode* f = (FieldNode*)this;
3354 if (f->is_oop())
3355 tty->print("oop ");
3356 if (f->offset() > 0)
3357 tty->print("+%d ", f->offset());
3358 tty->print("(");
3359 for (BaseIterator i(f); i.has_next(); i.next()) {
3360 PointsToNode* b = i.get();
3361 tty->print(" %d%s", b->idx(),(b->is_JavaObject() ? "P" : ""));
3362 }
3363 tty->print(" )");
3364 }
3365 tty->print("[");
3366 for (EdgeIterator i(this); i.has_next(); i.next()) {
3367 PointsToNode* e = i.get();
3368 tty->print(" %d%s%s", e->idx(),(e->is_JavaObject() ? "P" : (e->is_Field() ? "F" : "")), e->is_Arraycopy() ? "cp" : "");
3369 }
3370 tty->print(" [");
3371 for (UseIterator i(this); i.has_next(); i.next()) {
3372 PointsToNode* u = i.get();
3373 bool is_base = false;
3374 if (PointsToNode::is_base_use(u)) {
3375 is_base = true;
3376 u = PointsToNode::get_use_node(u)->as_Field();
3377 }
3378 tty->print(" %d%s%s", u->idx(), is_base ? "b" : "", u->is_Arraycopy() ? "cp" : "");
3379 }
3380 tty->print(" ]] ");
3381 if (_node == NULL)
3382 tty->print_cr("<null>");
3383 else
3384 _node->dump();
3385 }
3387 void ConnectionGraph::dump(GrowableArray<PointsToNode*>& ptnodes_worklist) {
3388 bool first = true;
3389 int ptnodes_length = ptnodes_worklist.length();
3390 for (int i = 0; i < ptnodes_length; i++) {
3391 PointsToNode *ptn = ptnodes_worklist.at(i);
3392 if (ptn == NULL || !ptn->is_JavaObject())
3393 continue;
3394 PointsToNode::EscapeState es = ptn->escape_state();
3395 if ((es != PointsToNode::NoEscape) && !Verbose) {
3396 continue;
3397 }
3398 Node* n = ptn->ideal_node();
3399 if (n->is_Allocate() || (n->is_CallStaticJava() &&
3400 n->as_CallStaticJava()->is_boxing_method())) {
3401 if (first) {
3402 tty->cr();
3403 tty->print("======== Connection graph for ");
3404 _compile->method()->print_short_name();
3405 tty->cr();
3406 first = false;
3407 }
3408 ptn->dump();
3409 // Print all locals and fields which reference this allocation
3410 for (UseIterator j(ptn); j.has_next(); j.next()) {
3411 PointsToNode* use = j.get();
3412 if (use->is_LocalVar()) {
3413 use->dump(Verbose);
3414 } else if (Verbose) {
3415 use->dump();
3416 }
3417 }
3418 tty->cr();
3419 }
3420 }
3421 }
3422 #endif