src/share/vm/oops/generateOopMap.cpp

Mon, 29 Apr 2013 16:13:57 -0400

author
hseigel
date
Mon, 29 Apr 2013 16:13:57 -0400
changeset 4987
f258c5828eb8
parent 4773
2eef6d34833b
child 5241
f75faf51e8c4
permissions
-rw-r--r--

8011773: Some tests on Interned String crashed JVM with OOM
Summary: Instead of terminating the VM, throw OutOfMemoryError exceptions.
Reviewed-by: coleenp, dholmes

duke@435 1 /*
coleenp@4643 2 * Copyright (c) 1997, 2013, Oracle and/or its affiliates. All rights reserved.
duke@435 3 * DO NOT ALTER OR REMOVE COPYRIGHT NOTICES OR THIS FILE HEADER.
duke@435 4 *
duke@435 5 * This code is free software; you can redistribute it and/or modify it
duke@435 6 * under the terms of the GNU General Public License version 2 only, as
duke@435 7 * published by the Free Software Foundation.
duke@435 8 *
duke@435 9 * This code is distributed in the hope that it will be useful, but WITHOUT
duke@435 10 * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
duke@435 11 * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
duke@435 12 * version 2 for more details (a copy is included in the LICENSE file that
duke@435 13 * accompanied this code).
duke@435 14 *
duke@435 15 * You should have received a copy of the GNU General Public License version
duke@435 16 * 2 along with this work; if not, write to the Free Software Foundation,
duke@435 17 * Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA.
duke@435 18 *
trims@1907 19 * Please contact Oracle, 500 Oracle Parkway, Redwood Shores, CA 94065 USA
trims@1907 20 * or visit www.oracle.com if you need additional information or have any
trims@1907 21 * questions.
duke@435 22 *
duke@435 23 */
duke@435 24
stefank@2314 25 #include "precompiled.hpp"
stefank@2314 26 #include "interpreter/bytecodeStream.hpp"
stefank@2314 27 #include "oops/generateOopMap.hpp"
stefank@2314 28 #include "oops/oop.inline.hpp"
coleenp@2497 29 #include "oops/symbol.hpp"
stefank@2314 30 #include "runtime/handles.inline.hpp"
stefank@2314 31 #include "runtime/java.hpp"
stefank@2314 32 #include "runtime/relocator.hpp"
stefank@2314 33 #include "utilities/bitMap.inline.hpp"
twisti@3969 34 #include "prims/methodHandles.hpp"
stefank@2314 35
duke@435 36 //
duke@435 37 //
duke@435 38 // Compute stack layouts for each instruction in method.
duke@435 39 //
duke@435 40 // Problems:
duke@435 41 // - What to do about jsr with different types of local vars?
duke@435 42 // Need maps that are conditional on jsr path?
duke@435 43 // - Jsr and exceptions should be done more efficiently (the retAddr stuff)
duke@435 44 //
duke@435 45 // Alternative:
duke@435 46 // - Could extend verifier to provide this information.
duke@435 47 // For: one fewer abstract interpreter to maintain. Against: the verifier
duke@435 48 // solves a bigger problem so slower (undesirable to force verification of
duke@435 49 // everything?).
duke@435 50 //
duke@435 51 // Algorithm:
duke@435 52 // Partition bytecodes into basic blocks
duke@435 53 // For each basic block: store entry state (vars, stack). For instructions
duke@435 54 // inside basic blocks we do not store any state (instead we recompute it
duke@435 55 // from state produced by previous instruction).
duke@435 56 //
duke@435 57 // Perform abstract interpretation of bytecodes over this lattice:
duke@435 58 //
duke@435 59 // _--'#'--_
duke@435 60 // / / \ \
duke@435 61 // / / \ \
duke@435 62 // / | | \
duke@435 63 // 'r' 'v' 'p' ' '
duke@435 64 // \ | | /
duke@435 65 // \ \ / /
duke@435 66 // \ \ / /
duke@435 67 // -- '@' --
duke@435 68 //
duke@435 69 // '#' top, result of conflict merge
duke@435 70 // 'r' reference type
duke@435 71 // 'v' value type
duke@435 72 // 'p' pc type for jsr/ret
duke@435 73 // ' ' uninitialized; never occurs on operand stack in Java
duke@435 74 // '@' bottom/unexecuted; initial state each bytecode.
duke@435 75 //
duke@435 76 // Basic block headers are the only merge points. We use this iteration to
duke@435 77 // compute the information:
duke@435 78 //
duke@435 79 // find basic blocks;
duke@435 80 // initialize them with uninitialized state;
duke@435 81 // initialize first BB according to method signature;
duke@435 82 // mark first BB changed
duke@435 83 // while (some BB is changed) do {
duke@435 84 // perform abstract interpration of all bytecodes in BB;
duke@435 85 // merge exit state of BB into entry state of all successor BBs,
duke@435 86 // noting if any of these change;
duke@435 87 // }
duke@435 88 //
duke@435 89 // One additional complication is necessary. The jsr instruction pushes
duke@435 90 // a return PC on the stack (a 'p' type in the abstract interpretation).
duke@435 91 // To be able to process "ret" bytecodes, we keep track of these return
duke@435 92 // PC's in a 'retAddrs' structure in abstract interpreter context (when
duke@435 93 // processing a "ret" bytecodes, it is not sufficient to know that it gets
duke@435 94 // an argument of the right type 'p'; we need to know which address it
duke@435 95 // returns to).
duke@435 96 //
duke@435 97 // (Note this comment is borrowed form the original author of the algorithm)
duke@435 98
duke@435 99 // ComputeCallStack
duke@435 100 //
duke@435 101 // Specialization of SignatureIterator - compute the effects of a call
duke@435 102 //
duke@435 103 class ComputeCallStack : public SignatureIterator {
duke@435 104 CellTypeState *_effect;
duke@435 105 int _idx;
duke@435 106
duke@435 107 void setup();
duke@435 108 void set(CellTypeState state) { _effect[_idx++] = state; }
duke@435 109 int length() { return _idx; };
duke@435 110
duke@435 111 virtual void do_bool () { set(CellTypeState::value); };
duke@435 112 virtual void do_char () { set(CellTypeState::value); };
duke@435 113 virtual void do_float () { set(CellTypeState::value); };
duke@435 114 virtual void do_byte () { set(CellTypeState::value); };
duke@435 115 virtual void do_short () { set(CellTypeState::value); };
duke@435 116 virtual void do_int () { set(CellTypeState::value); };
duke@435 117 virtual void do_void () { set(CellTypeState::bottom);};
duke@435 118 virtual void do_object(int begin, int end) { set(CellTypeState::ref); };
duke@435 119 virtual void do_array (int begin, int end) { set(CellTypeState::ref); };
duke@435 120
duke@435 121 void do_double() { set(CellTypeState::value);
duke@435 122 set(CellTypeState::value); }
duke@435 123 void do_long () { set(CellTypeState::value);
duke@435 124 set(CellTypeState::value); }
duke@435 125
duke@435 126 public:
coleenp@2497 127 ComputeCallStack(Symbol* signature) : SignatureIterator(signature) {};
duke@435 128
duke@435 129 // Compute methods
duke@435 130 int compute_for_parameters(bool is_static, CellTypeState *effect) {
duke@435 131 _idx = 0;
duke@435 132 _effect = effect;
duke@435 133
duke@435 134 if (!is_static)
duke@435 135 effect[_idx++] = CellTypeState::ref;
duke@435 136
duke@435 137 iterate_parameters();
duke@435 138
duke@435 139 return length();
duke@435 140 };
duke@435 141
duke@435 142 int compute_for_returntype(CellTypeState *effect) {
duke@435 143 _idx = 0;
duke@435 144 _effect = effect;
duke@435 145 iterate_returntype();
duke@435 146 set(CellTypeState::bottom); // Always terminate with a bottom state, so ppush works
duke@435 147
duke@435 148 return length();
duke@435 149 }
duke@435 150 };
duke@435 151
duke@435 152 //=========================================================================================
duke@435 153 // ComputeEntryStack
duke@435 154 //
duke@435 155 // Specialization of SignatureIterator - in order to set up first stack frame
duke@435 156 //
duke@435 157 class ComputeEntryStack : public SignatureIterator {
duke@435 158 CellTypeState *_effect;
duke@435 159 int _idx;
duke@435 160
duke@435 161 void setup();
duke@435 162 void set(CellTypeState state) { _effect[_idx++] = state; }
duke@435 163 int length() { return _idx; };
duke@435 164
duke@435 165 virtual void do_bool () { set(CellTypeState::value); };
duke@435 166 virtual void do_char () { set(CellTypeState::value); };
duke@435 167 virtual void do_float () { set(CellTypeState::value); };
duke@435 168 virtual void do_byte () { set(CellTypeState::value); };
duke@435 169 virtual void do_short () { set(CellTypeState::value); };
duke@435 170 virtual void do_int () { set(CellTypeState::value); };
duke@435 171 virtual void do_void () { set(CellTypeState::bottom);};
duke@435 172 virtual void do_object(int begin, int end) { set(CellTypeState::make_slot_ref(_idx)); }
duke@435 173 virtual void do_array (int begin, int end) { set(CellTypeState::make_slot_ref(_idx)); }
duke@435 174
duke@435 175 void do_double() { set(CellTypeState::value);
duke@435 176 set(CellTypeState::value); }
duke@435 177 void do_long () { set(CellTypeState::value);
duke@435 178 set(CellTypeState::value); }
duke@435 179
duke@435 180 public:
coleenp@2497 181 ComputeEntryStack(Symbol* signature) : SignatureIterator(signature) {};
duke@435 182
duke@435 183 // Compute methods
duke@435 184 int compute_for_parameters(bool is_static, CellTypeState *effect) {
duke@435 185 _idx = 0;
duke@435 186 _effect = effect;
duke@435 187
duke@435 188 if (!is_static)
duke@435 189 effect[_idx++] = CellTypeState::make_slot_ref(0);
duke@435 190
duke@435 191 iterate_parameters();
duke@435 192
duke@435 193 return length();
duke@435 194 };
duke@435 195
duke@435 196 int compute_for_returntype(CellTypeState *effect) {
duke@435 197 _idx = 0;
duke@435 198 _effect = effect;
duke@435 199 iterate_returntype();
duke@435 200 set(CellTypeState::bottom); // Always terminate with a bottom state, so ppush works
duke@435 201
duke@435 202 return length();
duke@435 203 }
duke@435 204 };
duke@435 205
duke@435 206 //=====================================================================================
duke@435 207 //
duke@435 208 // Implementation of RetTable/RetTableEntry
duke@435 209 //
duke@435 210 // Contains function to itereate through all bytecodes
duke@435 211 // and find all return entry points
duke@435 212 //
duke@435 213 int RetTable::_init_nof_entries = 10;
duke@435 214 int RetTableEntry::_init_nof_jsrs = 5;
duke@435 215
duke@435 216 void RetTableEntry::add_delta(int bci, int delta) {
duke@435 217 if (_target_bci > bci) _target_bci += delta;
duke@435 218
duke@435 219 for (int k = 0; k < _jsrs->length(); k++) {
duke@435 220 int jsr = _jsrs->at(k);
duke@435 221 if (jsr > bci) _jsrs->at_put(k, jsr+delta);
duke@435 222 }
duke@435 223 }
duke@435 224
duke@435 225 void RetTable::compute_ret_table(methodHandle method) {
duke@435 226 BytecodeStream i(method);
duke@435 227 Bytecodes::Code bytecode;
duke@435 228
duke@435 229 while( (bytecode = i.next()) >= 0) {
duke@435 230 switch (bytecode) {
duke@435 231 case Bytecodes::_jsr:
duke@435 232 add_jsr(i.next_bci(), i.dest());
duke@435 233 break;
duke@435 234 case Bytecodes::_jsr_w:
duke@435 235 add_jsr(i.next_bci(), i.dest_w());
duke@435 236 break;
duke@435 237 }
duke@435 238 }
duke@435 239 }
duke@435 240
duke@435 241 void RetTable::add_jsr(int return_bci, int target_bci) {
duke@435 242 RetTableEntry* entry = _first;
duke@435 243
duke@435 244 // Scan table for entry
duke@435 245 for (;entry && entry->target_bci() != target_bci; entry = entry->next());
duke@435 246
duke@435 247 if (!entry) {
duke@435 248 // Allocate new entry and put in list
duke@435 249 entry = new RetTableEntry(target_bci, _first);
duke@435 250 _first = entry;
duke@435 251 }
duke@435 252
duke@435 253 // Now "entry" is set. Make sure that the entry is initialized
duke@435 254 // and has room for the new jsr.
duke@435 255 entry->add_jsr(return_bci);
duke@435 256 }
duke@435 257
duke@435 258 RetTableEntry* RetTable::find_jsrs_for_target(int targBci) {
duke@435 259 RetTableEntry *cur = _first;
duke@435 260
duke@435 261 while(cur) {
duke@435 262 assert(cur->target_bci() != -1, "sanity check");
duke@435 263 if (cur->target_bci() == targBci) return cur;
duke@435 264 cur = cur->next();
duke@435 265 }
duke@435 266 ShouldNotReachHere();
duke@435 267 return NULL;
duke@435 268 }
duke@435 269
duke@435 270 // The instruction at bci is changing size by "delta". Update the return map.
duke@435 271 void RetTable::update_ret_table(int bci, int delta) {
duke@435 272 RetTableEntry *cur = _first;
duke@435 273 while(cur) {
duke@435 274 cur->add_delta(bci, delta);
duke@435 275 cur = cur->next();
duke@435 276 }
duke@435 277 }
duke@435 278
duke@435 279 //
duke@435 280 // Celltype state
duke@435 281 //
duke@435 282
duke@435 283 CellTypeState CellTypeState::bottom = CellTypeState::make_bottom();
duke@435 284 CellTypeState CellTypeState::uninit = CellTypeState::make_any(uninit_value);
duke@435 285 CellTypeState CellTypeState::ref = CellTypeState::make_any(ref_conflict);
duke@435 286 CellTypeState CellTypeState::value = CellTypeState::make_any(val_value);
duke@435 287 CellTypeState CellTypeState::refUninit = CellTypeState::make_any(ref_conflict | uninit_value);
duke@435 288 CellTypeState CellTypeState::top = CellTypeState::make_top();
duke@435 289 CellTypeState CellTypeState::addr = CellTypeState::make_any(addr_conflict);
duke@435 290
duke@435 291 // Commonly used constants
duke@435 292 static CellTypeState epsilonCTS[1] = { CellTypeState::bottom };
duke@435 293 static CellTypeState refCTS = CellTypeState::ref;
duke@435 294 static CellTypeState valCTS = CellTypeState::value;
duke@435 295 static CellTypeState vCTS[2] = { CellTypeState::value, CellTypeState::bottom };
duke@435 296 static CellTypeState rCTS[2] = { CellTypeState::ref, CellTypeState::bottom };
duke@435 297 static CellTypeState rrCTS[3] = { CellTypeState::ref, CellTypeState::ref, CellTypeState::bottom };
duke@435 298 static CellTypeState vrCTS[3] = { CellTypeState::value, CellTypeState::ref, CellTypeState::bottom };
duke@435 299 static CellTypeState vvCTS[3] = { CellTypeState::value, CellTypeState::value, CellTypeState::bottom };
duke@435 300 static CellTypeState rvrCTS[4] = { CellTypeState::ref, CellTypeState::value, CellTypeState::ref, CellTypeState::bottom };
duke@435 301 static CellTypeState vvrCTS[4] = { CellTypeState::value, CellTypeState::value, CellTypeState::ref, CellTypeState::bottom };
duke@435 302 static CellTypeState vvvCTS[4] = { CellTypeState::value, CellTypeState::value, CellTypeState::value, CellTypeState::bottom };
duke@435 303 static CellTypeState vvvrCTS[5] = { CellTypeState::value, CellTypeState::value, CellTypeState::value, CellTypeState::ref, CellTypeState::bottom };
duke@435 304 static CellTypeState vvvvCTS[5] = { CellTypeState::value, CellTypeState::value, CellTypeState::value, CellTypeState::value, CellTypeState::bottom };
duke@435 305
duke@435 306 char CellTypeState::to_char() const {
duke@435 307 if (can_be_reference()) {
duke@435 308 if (can_be_value() || can_be_address())
duke@435 309 return '#'; // Conflict that needs to be rewritten
duke@435 310 else
duke@435 311 return 'r';
duke@435 312 } else if (can_be_value())
duke@435 313 return 'v';
duke@435 314 else if (can_be_address())
duke@435 315 return 'p';
duke@435 316 else if (can_be_uninit())
duke@435 317 return ' ';
duke@435 318 else
duke@435 319 return '@';
duke@435 320 }
duke@435 321
duke@435 322
duke@435 323 // Print a detailed CellTypeState. Indicate all bits that are set. If
duke@435 324 // the CellTypeState represents an address or a reference, print the
duke@435 325 // value of the additional information.
duke@435 326 void CellTypeState::print(outputStream *os) {
duke@435 327 if (can_be_address()) {
duke@435 328 os->print("(p");
duke@435 329 } else {
duke@435 330 os->print("( ");
duke@435 331 }
duke@435 332 if (can_be_reference()) {
duke@435 333 os->print("r");
duke@435 334 } else {
duke@435 335 os->print(" ");
duke@435 336 }
duke@435 337 if (can_be_value()) {
duke@435 338 os->print("v");
duke@435 339 } else {
duke@435 340 os->print(" ");
duke@435 341 }
duke@435 342 if (can_be_uninit()) {
duke@435 343 os->print("u|");
duke@435 344 } else {
duke@435 345 os->print(" |");
duke@435 346 }
duke@435 347 if (is_info_top()) {
duke@435 348 os->print("Top)");
duke@435 349 } else if (is_info_bottom()) {
duke@435 350 os->print("Bot)");
duke@435 351 } else {
duke@435 352 if (is_reference()) {
duke@435 353 int info = get_info();
duke@435 354 int data = info & ~(ref_not_lock_bit | ref_slot_bit);
duke@435 355 if (info & ref_not_lock_bit) {
duke@435 356 // Not a monitor lock reference.
duke@435 357 if (info & ref_slot_bit) {
duke@435 358 // slot
duke@435 359 os->print("slot%d)", data);
duke@435 360 } else {
duke@435 361 // line
duke@435 362 os->print("line%d)", data);
duke@435 363 }
duke@435 364 } else {
duke@435 365 // lock
duke@435 366 os->print("lock%d)", data);
duke@435 367 }
duke@435 368 } else {
duke@435 369 os->print("%d)", get_info());
duke@435 370 }
duke@435 371 }
duke@435 372 }
duke@435 373
duke@435 374 //
duke@435 375 // Basicblock handling methods
duke@435 376 //
duke@435 377
duke@435 378 void GenerateOopMap ::initialize_bb() {
duke@435 379 _gc_points = 0;
duke@435 380 _bb_count = 0;
ysr@777 381 _bb_hdr_bits.clear();
ysr@777 382 _bb_hdr_bits.resize(method()->code_size());
duke@435 383 }
duke@435 384
duke@435 385 void GenerateOopMap::bb_mark_fct(GenerateOopMap *c, int bci, int *data) {
duke@435 386 assert(bci>= 0 && bci < c->method()->code_size(), "index out of bounds");
duke@435 387 if (c->is_bb_header(bci))
duke@435 388 return;
duke@435 389
duke@435 390 if (TraceNewOopMapGeneration) {
duke@435 391 tty->print_cr("Basicblock#%d begins at: %d", c->_bb_count, bci);
duke@435 392 }
duke@435 393 c->set_bbmark_bit(bci);
duke@435 394 c->_bb_count++;
duke@435 395 }
duke@435 396
duke@435 397
duke@435 398 void GenerateOopMap::mark_bbheaders_and_count_gc_points() {
duke@435 399 initialize_bb();
duke@435 400
duke@435 401 bool fellThrough = false; // False to get first BB marked.
duke@435 402
duke@435 403 // First mark all exception handlers as start of a basic-block
jiangli@3917 404 ExceptionTable excps(method());
jiangli@3917 405 for(int i = 0; i < excps.length(); i ++) {
jiangli@3917 406 bb_mark_fct(this, excps.handler_pc(i), NULL);
duke@435 407 }
duke@435 408
duke@435 409 // Then iterate through the code
duke@435 410 BytecodeStream bcs(_method);
duke@435 411 Bytecodes::Code bytecode;
duke@435 412
duke@435 413 while( (bytecode = bcs.next()) >= 0) {
duke@435 414 int bci = bcs.bci();
duke@435 415
duke@435 416 if (!fellThrough)
duke@435 417 bb_mark_fct(this, bci, NULL);
duke@435 418
duke@435 419 fellThrough = jump_targets_do(&bcs, &GenerateOopMap::bb_mark_fct, NULL);
duke@435 420
duke@435 421 /* We will also mark successors of jsr's as basic block headers. */
duke@435 422 switch (bytecode) {
duke@435 423 case Bytecodes::_jsr:
duke@435 424 assert(!fellThrough, "should not happen");
duke@435 425 bb_mark_fct(this, bci + Bytecodes::length_for(bytecode), NULL);
duke@435 426 break;
duke@435 427 case Bytecodes::_jsr_w:
duke@435 428 assert(!fellThrough, "should not happen");
duke@435 429 bb_mark_fct(this, bci + Bytecodes::length_for(bytecode), NULL);
duke@435 430 break;
duke@435 431 }
duke@435 432
duke@435 433 if (possible_gc_point(&bcs))
duke@435 434 _gc_points++;
duke@435 435 }
duke@435 436 }
duke@435 437
duke@435 438 void GenerateOopMap::reachable_basicblock(GenerateOopMap *c, int bci, int *data) {
duke@435 439 assert(bci>= 0 && bci < c->method()->code_size(), "index out of bounds");
duke@435 440 BasicBlock* bb = c->get_basic_block_at(bci);
duke@435 441 if (bb->is_dead()) {
duke@435 442 bb->mark_as_alive();
duke@435 443 *data = 1; // Mark basicblock as changed
duke@435 444 }
duke@435 445 }
duke@435 446
duke@435 447
duke@435 448 void GenerateOopMap::mark_reachable_code() {
duke@435 449 int change = 1; // int to get function pointers to work
duke@435 450
duke@435 451 // Mark entry basic block as alive and all exception handlers
duke@435 452 _basic_blocks[0].mark_as_alive();
jiangli@3917 453 ExceptionTable excps(method());
jiangli@3917 454 for(int i = 0; i < excps.length(); i++) {
jiangli@3917 455 BasicBlock *bb = get_basic_block_at(excps.handler_pc(i));
duke@435 456 // If block is not already alive (due to multiple exception handlers to same bb), then
duke@435 457 // make it alive
duke@435 458 if (bb->is_dead()) bb->mark_as_alive();
duke@435 459 }
duke@435 460
duke@435 461 BytecodeStream bcs(_method);
duke@435 462
duke@435 463 // Iterate through all basic blocks until we reach a fixpoint
duke@435 464 while (change) {
duke@435 465 change = 0;
duke@435 466
duke@435 467 for (int i = 0; i < _bb_count; i++) {
duke@435 468 BasicBlock *bb = &_basic_blocks[i];
duke@435 469 if (bb->is_alive()) {
duke@435 470 // Position bytecodestream at last bytecode in basicblock
duke@435 471 bcs.set_start(bb->_end_bci);
duke@435 472 bcs.next();
duke@435 473 Bytecodes::Code bytecode = bcs.code();
duke@435 474 int bci = bcs.bci();
duke@435 475 assert(bci == bb->_end_bci, "wrong bci");
duke@435 476
duke@435 477 bool fell_through = jump_targets_do(&bcs, &GenerateOopMap::reachable_basicblock, &change);
duke@435 478
duke@435 479 // We will also mark successors of jsr's as alive.
duke@435 480 switch (bytecode) {
duke@435 481 case Bytecodes::_jsr:
duke@435 482 case Bytecodes::_jsr_w:
duke@435 483 assert(!fell_through, "should not happen");
duke@435 484 reachable_basicblock(this, bci + Bytecodes::length_for(bytecode), &change);
duke@435 485 break;
duke@435 486 }
duke@435 487 if (fell_through) {
duke@435 488 // Mark successor as alive
duke@435 489 if (bb[1].is_dead()) {
duke@435 490 bb[1].mark_as_alive();
duke@435 491 change = 1;
duke@435 492 }
duke@435 493 }
duke@435 494 }
duke@435 495 }
duke@435 496 }
duke@435 497 }
duke@435 498
duke@435 499 /* If the current instruction in "c" has no effect on control flow,
duke@435 500 returns "true". Otherwise, calls "jmpFct" one or more times, with
duke@435 501 "c", an appropriate "pcDelta", and "data" as arguments, then
duke@435 502 returns "false". There is one exception: if the current
duke@435 503 instruction is a "ret", returns "false" without calling "jmpFct".
duke@435 504 Arrangements for tracking the control flow of a "ret" must be made
duke@435 505 externally. */
duke@435 506 bool GenerateOopMap::jump_targets_do(BytecodeStream *bcs, jmpFct_t jmpFct, int *data) {
duke@435 507 int bci = bcs->bci();
duke@435 508
duke@435 509 switch (bcs->code()) {
duke@435 510 case Bytecodes::_ifeq:
duke@435 511 case Bytecodes::_ifne:
duke@435 512 case Bytecodes::_iflt:
duke@435 513 case Bytecodes::_ifge:
duke@435 514 case Bytecodes::_ifgt:
duke@435 515 case Bytecodes::_ifle:
duke@435 516 case Bytecodes::_if_icmpeq:
duke@435 517 case Bytecodes::_if_icmpne:
duke@435 518 case Bytecodes::_if_icmplt:
duke@435 519 case Bytecodes::_if_icmpge:
duke@435 520 case Bytecodes::_if_icmpgt:
duke@435 521 case Bytecodes::_if_icmple:
duke@435 522 case Bytecodes::_if_acmpeq:
duke@435 523 case Bytecodes::_if_acmpne:
duke@435 524 case Bytecodes::_ifnull:
duke@435 525 case Bytecodes::_ifnonnull:
duke@435 526 (*jmpFct)(this, bcs->dest(), data);
duke@435 527 (*jmpFct)(this, bci + 3, data);
duke@435 528 break;
duke@435 529
duke@435 530 case Bytecodes::_goto:
duke@435 531 (*jmpFct)(this, bcs->dest(), data);
duke@435 532 break;
duke@435 533 case Bytecodes::_goto_w:
duke@435 534 (*jmpFct)(this, bcs->dest_w(), data);
duke@435 535 break;
duke@435 536 case Bytecodes::_tableswitch:
never@2462 537 { Bytecode_tableswitch tableswitch(method(), bcs->bcp());
never@2462 538 int len = tableswitch.length();
duke@435 539
never@2462 540 (*jmpFct)(this, bci + tableswitch.default_offset(), data); /* Default. jump address */
duke@435 541 while (--len >= 0) {
never@2462 542 (*jmpFct)(this, bci + tableswitch.dest_offset_at(len), data);
duke@435 543 }
duke@435 544 break;
duke@435 545 }
duke@435 546
duke@435 547 case Bytecodes::_lookupswitch:
never@2462 548 { Bytecode_lookupswitch lookupswitch(method(), bcs->bcp());
never@2462 549 int npairs = lookupswitch.number_of_pairs();
never@2462 550 (*jmpFct)(this, bci + lookupswitch.default_offset(), data); /* Default. */
duke@435 551 while(--npairs >= 0) {
never@2462 552 LookupswitchPair pair = lookupswitch.pair_at(npairs);
never@2462 553 (*jmpFct)(this, bci + pair.offset(), data);
duke@435 554 }
duke@435 555 break;
duke@435 556 }
duke@435 557 case Bytecodes::_jsr:
duke@435 558 assert(bcs->is_wide()==false, "sanity check");
duke@435 559 (*jmpFct)(this, bcs->dest(), data);
duke@435 560
duke@435 561
duke@435 562
duke@435 563 break;
duke@435 564 case Bytecodes::_jsr_w:
duke@435 565 (*jmpFct)(this, bcs->dest_w(), data);
duke@435 566 break;
duke@435 567 case Bytecodes::_wide:
duke@435 568 ShouldNotReachHere();
duke@435 569 return true;
duke@435 570 break;
duke@435 571 case Bytecodes::_athrow:
duke@435 572 case Bytecodes::_ireturn:
duke@435 573 case Bytecodes::_lreturn:
duke@435 574 case Bytecodes::_freturn:
duke@435 575 case Bytecodes::_dreturn:
duke@435 576 case Bytecodes::_areturn:
duke@435 577 case Bytecodes::_return:
duke@435 578 case Bytecodes::_ret:
duke@435 579 break;
duke@435 580 default:
duke@435 581 return true;
duke@435 582 }
duke@435 583 return false;
duke@435 584 }
duke@435 585
duke@435 586 /* Requires "pc" to be the head of a basic block; returns that basic
duke@435 587 block. */
duke@435 588 BasicBlock *GenerateOopMap::get_basic_block_at(int bci) const {
duke@435 589 BasicBlock* bb = get_basic_block_containing(bci);
duke@435 590 assert(bb->_bci == bci, "should have found BB");
duke@435 591 return bb;
duke@435 592 }
duke@435 593
duke@435 594 // Requires "pc" to be the start of an instruction; returns the basic
duke@435 595 // block containing that instruction. */
duke@435 596 BasicBlock *GenerateOopMap::get_basic_block_containing(int bci) const {
duke@435 597 BasicBlock *bbs = _basic_blocks;
duke@435 598 int lo = 0, hi = _bb_count - 1;
duke@435 599
duke@435 600 while (lo <= hi) {
duke@435 601 int m = (lo + hi) / 2;
duke@435 602 int mbci = bbs[m]._bci;
duke@435 603 int nbci;
duke@435 604
duke@435 605 if ( m == _bb_count-1) {
duke@435 606 assert( bci >= mbci && bci < method()->code_size(), "sanity check failed");
duke@435 607 return bbs+m;
duke@435 608 } else {
duke@435 609 nbci = bbs[m+1]._bci;
duke@435 610 }
duke@435 611
duke@435 612 if ( mbci <= bci && bci < nbci) {
duke@435 613 return bbs+m;
duke@435 614 } else if (mbci < bci) {
duke@435 615 lo = m + 1;
duke@435 616 } else {
duke@435 617 assert(mbci > bci, "sanity check");
duke@435 618 hi = m - 1;
duke@435 619 }
duke@435 620 }
duke@435 621
duke@435 622 fatal("should have found BB");
duke@435 623 return NULL;
duke@435 624 }
duke@435 625
duke@435 626 void GenerateOopMap::restore_state(BasicBlock *bb)
duke@435 627 {
duke@435 628 memcpy(_state, bb->_state, _state_len*sizeof(CellTypeState));
duke@435 629 _stack_top = bb->_stack_top;
duke@435 630 _monitor_top = bb->_monitor_top;
duke@435 631 }
duke@435 632
duke@435 633 int GenerateOopMap::next_bb_start_pc(BasicBlock *bb) {
duke@435 634 int bbNum = bb - _basic_blocks + 1;
duke@435 635 if (bbNum == _bb_count)
duke@435 636 return method()->code_size();
duke@435 637
duke@435 638 return _basic_blocks[bbNum]._bci;
duke@435 639 }
duke@435 640
duke@435 641 //
duke@435 642 // CellType handling methods
duke@435 643 //
duke@435 644
duke@435 645 void GenerateOopMap::init_state() {
duke@435 646 _state_len = _max_locals + _max_stack + _max_monitors;
duke@435 647 _state = NEW_RESOURCE_ARRAY(CellTypeState, _state_len);
duke@435 648 memset(_state, 0, _state_len * sizeof(CellTypeState));
duke@435 649 _state_vec_buf = NEW_RESOURCE_ARRAY(char, MAX3(_max_locals, _max_stack, _max_monitors) + 1/*for null terminator char */);
duke@435 650 }
duke@435 651
duke@435 652 void GenerateOopMap::make_context_uninitialized() {
duke@435 653 CellTypeState* vs = vars();
duke@435 654
duke@435 655 for (int i = 0; i < _max_locals; i++)
duke@435 656 vs[i] = CellTypeState::uninit;
duke@435 657
duke@435 658 _stack_top = 0;
duke@435 659 _monitor_top = 0;
duke@435 660 }
duke@435 661
coleenp@2497 662 int GenerateOopMap::methodsig_to_effect(Symbol* signature, bool is_static, CellTypeState* effect) {
duke@435 663 ComputeEntryStack ces(signature);
duke@435 664 return ces.compute_for_parameters(is_static, effect);
duke@435 665 }
duke@435 666
duke@435 667 // Return result of merging cts1 and cts2.
duke@435 668 CellTypeState CellTypeState::merge(CellTypeState cts, int slot) const {
duke@435 669 CellTypeState result;
duke@435 670
duke@435 671 assert(!is_bottom() && !cts.is_bottom(),
duke@435 672 "merge of bottom values is handled elsewhere");
duke@435 673
duke@435 674 result._state = _state | cts._state;
duke@435 675
duke@435 676 // If the top bit is set, we don't need to do any more work.
duke@435 677 if (!result.is_info_top()) {
duke@435 678 assert((result.can_be_address() || result.can_be_reference()),
duke@435 679 "only addresses and references have non-top info");
duke@435 680
duke@435 681 if (!equal(cts)) {
duke@435 682 // The two values being merged are different. Raise to top.
duke@435 683 if (result.is_reference()) {
duke@435 684 result = CellTypeState::make_slot_ref(slot);
duke@435 685 } else {
duke@435 686 result._state |= info_conflict;
duke@435 687 }
duke@435 688 }
duke@435 689 }
duke@435 690 assert(result.is_valid_state(), "checking that CTS merge maintains legal state");
duke@435 691
duke@435 692 return result;
duke@435 693 }
duke@435 694
duke@435 695 // Merge the variable state for locals and stack from cts into bbts.
duke@435 696 bool GenerateOopMap::merge_local_state_vectors(CellTypeState* cts,
duke@435 697 CellTypeState* bbts) {
duke@435 698 int i;
duke@435 699 int len = _max_locals + _stack_top;
duke@435 700 bool change = false;
duke@435 701
duke@435 702 for (i = len - 1; i >= 0; i--) {
duke@435 703 CellTypeState v = cts[i].merge(bbts[i], i);
duke@435 704 change = change || !v.equal(bbts[i]);
duke@435 705 bbts[i] = v;
duke@435 706 }
duke@435 707
duke@435 708 return change;
duke@435 709 }
duke@435 710
duke@435 711 // Merge the monitor stack state from cts into bbts.
duke@435 712 bool GenerateOopMap::merge_monitor_state_vectors(CellTypeState* cts,
duke@435 713 CellTypeState* bbts) {
duke@435 714 bool change = false;
duke@435 715 if (_max_monitors > 0 && _monitor_top != bad_monitors) {
duke@435 716 // If there are no monitors in the program, or there has been
duke@435 717 // a monitor matching error before this point in the program,
duke@435 718 // then we do not merge in the monitor state.
duke@435 719
duke@435 720 int base = _max_locals + _max_stack;
duke@435 721 int len = base + _monitor_top;
duke@435 722 for (int i = len - 1; i >= base; i--) {
duke@435 723 CellTypeState v = cts[i].merge(bbts[i], i);
duke@435 724
duke@435 725 // Can we prove that, when there has been a change, it will already
duke@435 726 // have been detected at this point? That would make this equal
duke@435 727 // check here unnecessary.
duke@435 728 change = change || !v.equal(bbts[i]);
duke@435 729 bbts[i] = v;
duke@435 730 }
duke@435 731 }
duke@435 732
duke@435 733 return change;
duke@435 734 }
duke@435 735
duke@435 736 void GenerateOopMap::copy_state(CellTypeState *dst, CellTypeState *src) {
duke@435 737 int len = _max_locals + _stack_top;
duke@435 738 for (int i = 0; i < len; i++) {
duke@435 739 if (src[i].is_nonlock_reference()) {
duke@435 740 dst[i] = CellTypeState::make_slot_ref(i);
duke@435 741 } else {
duke@435 742 dst[i] = src[i];
duke@435 743 }
duke@435 744 }
duke@435 745 if (_max_monitors > 0 && _monitor_top != bad_monitors) {
duke@435 746 int base = _max_locals + _max_stack;
duke@435 747 len = base + _monitor_top;
duke@435 748 for (int i = base; i < len; i++) {
duke@435 749 dst[i] = src[i];
duke@435 750 }
duke@435 751 }
duke@435 752 }
duke@435 753
duke@435 754
duke@435 755 // Merge the states for the current block and the next. As long as a
duke@435 756 // block is reachable the locals and stack must be merged. If the
duke@435 757 // stack heights don't match then this is a verification error and
duke@435 758 // it's impossible to interpret the code. Simultaneously monitor
duke@435 759 // states are being check to see if they nest statically. If monitor
duke@435 760 // depths match up then their states are merged. Otherwise the
duke@435 761 // mismatch is simply recorded and interpretation continues since
duke@435 762 // monitor matching is purely informational and doesn't say anything
duke@435 763 // about the correctness of the code.
duke@435 764 void GenerateOopMap::merge_state_into_bb(BasicBlock *bb) {
morris@4773 765 guarantee(bb != NULL, "null basicblock");
duke@435 766 assert(bb->is_alive(), "merging state into a dead basicblock");
duke@435 767
duke@435 768 if (_stack_top == bb->_stack_top) {
duke@435 769 // always merge local state even if monitors don't match.
duke@435 770 if (merge_local_state_vectors(_state, bb->_state)) {
duke@435 771 bb->set_changed(true);
duke@435 772 }
duke@435 773 if (_monitor_top == bb->_monitor_top) {
duke@435 774 // monitors still match so continue merging monitor states.
duke@435 775 if (merge_monitor_state_vectors(_state, bb->_state)) {
duke@435 776 bb->set_changed(true);
duke@435 777 }
duke@435 778 } else {
duke@435 779 if (TraceMonitorMismatch) {
duke@435 780 report_monitor_mismatch("monitor stack height merge conflict");
duke@435 781 }
duke@435 782 // When the monitor stacks are not matched, we set _monitor_top to
duke@435 783 // bad_monitors. This signals that, from here on, the monitor stack cannot
duke@435 784 // be trusted. In particular, monitorexit bytecodes may throw
duke@435 785 // exceptions. We mark this block as changed so that the change
duke@435 786 // propagates properly.
duke@435 787 bb->_monitor_top = bad_monitors;
duke@435 788 bb->set_changed(true);
duke@435 789 _monitor_safe = false;
duke@435 790 }
duke@435 791 } else if (!bb->is_reachable()) {
duke@435 792 // First time we look at this BB
duke@435 793 copy_state(bb->_state, _state);
duke@435 794 bb->_stack_top = _stack_top;
duke@435 795 bb->_monitor_top = _monitor_top;
duke@435 796 bb->set_changed(true);
duke@435 797 } else {
duke@435 798 verify_error("stack height conflict: %d vs. %d", _stack_top, bb->_stack_top);
duke@435 799 }
duke@435 800 }
duke@435 801
duke@435 802 void GenerateOopMap::merge_state(GenerateOopMap *gom, int bci, int* data) {
duke@435 803 gom->merge_state_into_bb(gom->get_basic_block_at(bci));
duke@435 804 }
duke@435 805
duke@435 806 void GenerateOopMap::set_var(int localNo, CellTypeState cts) {
duke@435 807 assert(cts.is_reference() || cts.is_value() || cts.is_address(),
duke@435 808 "wrong celltypestate");
duke@435 809 if (localNo < 0 || localNo > _max_locals) {
duke@435 810 verify_error("variable write error: r%d", localNo);
duke@435 811 return;
duke@435 812 }
duke@435 813 vars()[localNo] = cts;
duke@435 814 }
duke@435 815
duke@435 816 CellTypeState GenerateOopMap::get_var(int localNo) {
jcoomes@1844 817 assert(localNo < _max_locals + _nof_refval_conflicts, "variable read error");
duke@435 818 if (localNo < 0 || localNo > _max_locals) {
duke@435 819 verify_error("variable read error: r%d", localNo);
duke@435 820 return valCTS; // just to pick something;
duke@435 821 }
duke@435 822 return vars()[localNo];
duke@435 823 }
duke@435 824
duke@435 825 CellTypeState GenerateOopMap::pop() {
duke@435 826 if ( _stack_top <= 0) {
duke@435 827 verify_error("stack underflow");
duke@435 828 return valCTS; // just to pick something
duke@435 829 }
duke@435 830 return stack()[--_stack_top];
duke@435 831 }
duke@435 832
duke@435 833 void GenerateOopMap::push(CellTypeState cts) {
duke@435 834 if ( _stack_top >= _max_stack) {
duke@435 835 verify_error("stack overflow");
duke@435 836 return;
duke@435 837 }
duke@435 838 stack()[_stack_top++] = cts;
duke@435 839 }
duke@435 840
duke@435 841 CellTypeState GenerateOopMap::monitor_pop() {
duke@435 842 assert(_monitor_top != bad_monitors, "monitor_pop called on error monitor stack");
duke@435 843 if (_monitor_top == 0) {
duke@435 844 // We have detected a pop of an empty monitor stack.
duke@435 845 _monitor_safe = false;
duke@435 846 _monitor_top = bad_monitors;
duke@435 847
duke@435 848 if (TraceMonitorMismatch) {
duke@435 849 report_monitor_mismatch("monitor stack underflow");
duke@435 850 }
duke@435 851 return CellTypeState::ref; // just to keep the analysis going.
duke@435 852 }
duke@435 853 return monitors()[--_monitor_top];
duke@435 854 }
duke@435 855
duke@435 856 void GenerateOopMap::monitor_push(CellTypeState cts) {
duke@435 857 assert(_monitor_top != bad_monitors, "monitor_push called on error monitor stack");
duke@435 858 if (_monitor_top >= _max_monitors) {
duke@435 859 // Some monitorenter is being executed more than once.
duke@435 860 // This means that the monitor stack cannot be simulated.
duke@435 861 _monitor_safe = false;
duke@435 862 _monitor_top = bad_monitors;
duke@435 863
duke@435 864 if (TraceMonitorMismatch) {
duke@435 865 report_monitor_mismatch("monitor stack overflow");
duke@435 866 }
duke@435 867 return;
duke@435 868 }
duke@435 869 monitors()[_monitor_top++] = cts;
duke@435 870 }
duke@435 871
duke@435 872 //
duke@435 873 // Interpretation handling methods
duke@435 874 //
duke@435 875
duke@435 876 void GenerateOopMap::do_interpretation()
duke@435 877 {
duke@435 878 // "i" is just for debugging, so we can detect cases where this loop is
duke@435 879 // iterated more than once.
duke@435 880 int i = 0;
duke@435 881 do {
duke@435 882 #ifndef PRODUCT
duke@435 883 if (TraceNewOopMapGeneration) {
duke@435 884 tty->print("\n\nIteration #%d of do_interpretation loop, method:\n", i);
duke@435 885 method()->print_name(tty);
duke@435 886 tty->print("\n\n");
duke@435 887 }
duke@435 888 #endif
duke@435 889 _conflict = false;
duke@435 890 _monitor_safe = true;
duke@435 891 // init_state is now called from init_basic_blocks. The length of a
duke@435 892 // state vector cannot be determined until we have made a pass through
duke@435 893 // the bytecodes counting the possible monitor entries.
duke@435 894 if (!_got_error) init_basic_blocks();
duke@435 895 if (!_got_error) setup_method_entry_state();
duke@435 896 if (!_got_error) interp_all();
duke@435 897 if (!_got_error) rewrite_refval_conflicts();
duke@435 898 i++;
duke@435 899 } while (_conflict && !_got_error);
duke@435 900 }
duke@435 901
duke@435 902 void GenerateOopMap::init_basic_blocks() {
duke@435 903 // Note: Could consider reserving only the needed space for each BB's state
duke@435 904 // (entry stack may not be of maximal height for every basic block).
duke@435 905 // But cumbersome since we don't know the stack heights yet. (Nor the
duke@435 906 // monitor stack heights...)
duke@435 907
duke@435 908 _basic_blocks = NEW_RESOURCE_ARRAY(BasicBlock, _bb_count);
duke@435 909
duke@435 910 // Make a pass through the bytecodes. Count the number of monitorenters.
duke@435 911 // This can be used an upper bound on the monitor stack depth in programs
duke@435 912 // which obey stack discipline with their monitor usage. Initialize the
duke@435 913 // known information about basic blocks.
duke@435 914 BytecodeStream j(_method);
duke@435 915 Bytecodes::Code bytecode;
duke@435 916
duke@435 917 int bbNo = 0;
duke@435 918 int monitor_count = 0;
duke@435 919 int prev_bci = -1;
duke@435 920 while( (bytecode = j.next()) >= 0) {
duke@435 921 if (j.code() == Bytecodes::_monitorenter) {
duke@435 922 monitor_count++;
duke@435 923 }
duke@435 924
duke@435 925 int bci = j.bci();
duke@435 926 if (is_bb_header(bci)) {
duke@435 927 // Initialize the basicblock structure
duke@435 928 BasicBlock *bb = _basic_blocks + bbNo;
duke@435 929 bb->_bci = bci;
duke@435 930 bb->_max_locals = _max_locals;
duke@435 931 bb->_max_stack = _max_stack;
duke@435 932 bb->set_changed(false);
duke@435 933 bb->_stack_top = BasicBlock::_dead_basic_block; // Initialize all basicblocks are dead.
duke@435 934 bb->_monitor_top = bad_monitors;
duke@435 935
duke@435 936 if (bbNo > 0) {
duke@435 937 _basic_blocks[bbNo - 1]._end_bci = prev_bci;
duke@435 938 }
duke@435 939
duke@435 940 bbNo++;
duke@435 941 }
duke@435 942 // Remember prevous bci.
duke@435 943 prev_bci = bci;
duke@435 944 }
duke@435 945 // Set
duke@435 946 _basic_blocks[bbNo-1]._end_bci = prev_bci;
duke@435 947
duke@435 948
ysr@777 949 // Check that the correct number of basicblocks was found
ysr@777 950 if (bbNo !=_bb_count) {
ysr@777 951 if (bbNo < _bb_count) {
ysr@777 952 verify_error("jump into the middle of instruction?");
ysr@777 953 return;
ysr@777 954 } else {
ysr@777 955 verify_error("extra basic blocks - should not happen?");
ysr@777 956 return;
ysr@777 957 }
ysr@777 958 }
ysr@777 959
duke@435 960 _max_monitors = monitor_count;
duke@435 961
duke@435 962 // Now that we have a bound on the depth of the monitor stack, we can
duke@435 963 // initialize the CellTypeState-related information.
duke@435 964 init_state();
duke@435 965
kamg@3060 966 // We allocate space for all state-vectors for all basicblocks in one huge
kamg@3060 967 // chunk. Then in the next part of the code, we set a pointer in each
kamg@3060 968 // _basic_block that points to each piece.
kamg@3060 969
kamg@3060 970 // The product of bbNo and _state_len can get large if there are lots of
kamg@3060 971 // basic blocks and stack/locals/monitors. Need to check to make sure
kamg@3060 972 // we don't overflow the capacity of a pointer.
kamg@3060 973 if ((unsigned)bbNo > UINTPTR_MAX / sizeof(CellTypeState) / _state_len) {
kamg@3060 974 report_error("The amount of memory required to analyze this method "
kamg@3060 975 "exceeds addressable range");
kamg@3060 976 return;
kamg@3060 977 }
kamg@3060 978
kamg@3060 979 CellTypeState *basicBlockState =
kamg@3060 980 NEW_RESOURCE_ARRAY(CellTypeState, bbNo * _state_len);
duke@435 981 memset(basicBlockState, 0, bbNo * _state_len * sizeof(CellTypeState));
duke@435 982
duke@435 983 // Make a pass over the basicblocks and assign their state vectors.
duke@435 984 for (int blockNum=0; blockNum < bbNo; blockNum++) {
duke@435 985 BasicBlock *bb = _basic_blocks + blockNum;
duke@435 986 bb->_state = basicBlockState + blockNum * _state_len;
duke@435 987
duke@435 988 #ifdef ASSERT
duke@435 989 if (blockNum + 1 < bbNo) {
duke@435 990 address bcp = _method->bcp_from(bb->_end_bci);
never@2462 991 int bc_len = Bytecodes::java_length_at(_method(), bcp);
duke@435 992 assert(bb->_end_bci + bc_len == bb[1]._bci, "unmatched bci info in basicblock");
duke@435 993 }
duke@435 994 #endif
duke@435 995 }
duke@435 996 #ifdef ASSERT
duke@435 997 { BasicBlock *bb = &_basic_blocks[bbNo-1];
duke@435 998 address bcp = _method->bcp_from(bb->_end_bci);
never@2462 999 int bc_len = Bytecodes::java_length_at(_method(), bcp);
duke@435 1000 assert(bb->_end_bci + bc_len == _method->code_size(), "wrong end bci");
duke@435 1001 }
duke@435 1002 #endif
duke@435 1003
duke@435 1004 // Mark all alive blocks
duke@435 1005 mark_reachable_code();
duke@435 1006 }
duke@435 1007
duke@435 1008 void GenerateOopMap::setup_method_entry_state() {
duke@435 1009
duke@435 1010 // Initialize all locals to 'uninit' and set stack-height to 0
duke@435 1011 make_context_uninitialized();
duke@435 1012
duke@435 1013 // Initialize CellState type of arguments
duke@435 1014 methodsig_to_effect(method()->signature(), method()->is_static(), vars());
duke@435 1015
duke@435 1016 // If some references must be pre-assigned to null, then set that up
duke@435 1017 initialize_vars();
duke@435 1018
duke@435 1019 // This is the start state
duke@435 1020 merge_state_into_bb(&_basic_blocks[0]);
duke@435 1021
duke@435 1022 assert(_basic_blocks[0].changed(), "we are not getting off the ground");
duke@435 1023 }
duke@435 1024
duke@435 1025 // The instruction at bci is changing size by "delta". Update the basic blocks.
duke@435 1026 void GenerateOopMap::update_basic_blocks(int bci, int delta,
duke@435 1027 int new_method_size) {
duke@435 1028 assert(new_method_size >= method()->code_size() + delta,
duke@435 1029 "new method size is too small");
duke@435 1030
ysr@777 1031 BitMap::bm_word_t* new_bb_hdr_bits =
ysr@777 1032 NEW_RESOURCE_ARRAY(BitMap::bm_word_t,
ysr@777 1033 BitMap::word_align_up(new_method_size));
ysr@777 1034 _bb_hdr_bits.set_map(new_bb_hdr_bits);
ysr@777 1035 _bb_hdr_bits.set_size(new_method_size);
ysr@777 1036 _bb_hdr_bits.clear();
duke@435 1037
duke@435 1038
duke@435 1039 for(int k = 0; k < _bb_count; k++) {
duke@435 1040 if (_basic_blocks[k]._bci > bci) {
duke@435 1041 _basic_blocks[k]._bci += delta;
duke@435 1042 _basic_blocks[k]._end_bci += delta;
duke@435 1043 }
ysr@777 1044 _bb_hdr_bits.at_put(_basic_blocks[k]._bci, true);
duke@435 1045 }
duke@435 1046 }
duke@435 1047
duke@435 1048 //
duke@435 1049 // Initvars handling
duke@435 1050 //
duke@435 1051
duke@435 1052 void GenerateOopMap::initialize_vars() {
duke@435 1053 for (int k = 0; k < _init_vars->length(); k++)
duke@435 1054 _state[_init_vars->at(k)] = CellTypeState::make_slot_ref(k);
duke@435 1055 }
duke@435 1056
duke@435 1057 void GenerateOopMap::add_to_ref_init_set(int localNo) {
duke@435 1058
duke@435 1059 if (TraceNewOopMapGeneration)
duke@435 1060 tty->print_cr("Added init vars: %d", localNo);
duke@435 1061
duke@435 1062 // Is it already in the set?
duke@435 1063 if (_init_vars->contains(localNo) )
duke@435 1064 return;
duke@435 1065
duke@435 1066 _init_vars->append(localNo);
duke@435 1067 }
duke@435 1068
duke@435 1069 //
duke@435 1070 // Interpreration code
duke@435 1071 //
duke@435 1072
duke@435 1073 void GenerateOopMap::interp_all() {
duke@435 1074 bool change = true;
duke@435 1075
duke@435 1076 while (change && !_got_error) {
duke@435 1077 change = false;
duke@435 1078 for (int i = 0; i < _bb_count && !_got_error; i++) {
duke@435 1079 BasicBlock *bb = &_basic_blocks[i];
duke@435 1080 if (bb->changed()) {
duke@435 1081 if (_got_error) return;
duke@435 1082 change = true;
duke@435 1083 bb->set_changed(false);
duke@435 1084 interp_bb(bb);
duke@435 1085 }
duke@435 1086 }
duke@435 1087 }
duke@435 1088 }
duke@435 1089
duke@435 1090 void GenerateOopMap::interp_bb(BasicBlock *bb) {
duke@435 1091
duke@435 1092 // We do not want to do anything in case the basic-block has not been initialized. This
duke@435 1093 // will happen in the case where there is dead-code hang around in a method.
duke@435 1094 assert(bb->is_reachable(), "should be reachable or deadcode exist");
duke@435 1095 restore_state(bb);
duke@435 1096
duke@435 1097 BytecodeStream itr(_method);
duke@435 1098
duke@435 1099 // Set iterator interval to be the current basicblock
duke@435 1100 int lim_bci = next_bb_start_pc(bb);
duke@435 1101 itr.set_interval(bb->_bci, lim_bci);
duke@435 1102 assert(lim_bci != bb->_bci, "must be at least one instruction in a basicblock");
duke@435 1103 itr.next(); // read first instruction
duke@435 1104
duke@435 1105 // Iterates through all bytecodes except the last in a basic block.
duke@435 1106 // We handle the last one special, since there is controlflow change.
duke@435 1107 while(itr.next_bci() < lim_bci && !_got_error) {
duke@435 1108 if (_has_exceptions || _monitor_top != 0) {
duke@435 1109 // We do not need to interpret the results of exceptional
duke@435 1110 // continuation from this instruction when the method has no
duke@435 1111 // exception handlers and the monitor stack is currently
duke@435 1112 // empty.
duke@435 1113 do_exception_edge(&itr);
duke@435 1114 }
duke@435 1115 interp1(&itr);
duke@435 1116 itr.next();
duke@435 1117 }
duke@435 1118
duke@435 1119 // Handle last instruction.
duke@435 1120 if (!_got_error) {
duke@435 1121 assert(itr.next_bci() == lim_bci, "must point to end");
duke@435 1122 if (_has_exceptions || _monitor_top != 0) {
duke@435 1123 do_exception_edge(&itr);
duke@435 1124 }
duke@435 1125 interp1(&itr);
duke@435 1126
duke@435 1127 bool fall_through = jump_targets_do(&itr, GenerateOopMap::merge_state, NULL);
duke@435 1128 if (_got_error) return;
duke@435 1129
duke@435 1130 if (itr.code() == Bytecodes::_ret) {
duke@435 1131 assert(!fall_through, "cannot be set if ret instruction");
duke@435 1132 // Automatically handles 'wide' ret indicies
duke@435 1133 ret_jump_targets_do(&itr, GenerateOopMap::merge_state, itr.get_index(), NULL);
duke@435 1134 } else if (fall_through) {
duke@435 1135 // Hit end of BB, but the instr. was a fall-through instruction,
duke@435 1136 // so perform transition as if the BB ended in a "jump".
duke@435 1137 if (lim_bci != bb[1]._bci) {
duke@435 1138 verify_error("bytecodes fell through last instruction");
duke@435 1139 return;
duke@435 1140 }
duke@435 1141 merge_state_into_bb(bb + 1);
duke@435 1142 }
duke@435 1143 }
duke@435 1144 }
duke@435 1145
duke@435 1146 void GenerateOopMap::do_exception_edge(BytecodeStream* itr) {
duke@435 1147 // Only check exception edge, if bytecode can trap
duke@435 1148 if (!Bytecodes::can_trap(itr->code())) return;
duke@435 1149 switch (itr->code()) {
duke@435 1150 case Bytecodes::_aload_0:
duke@435 1151 // These bytecodes can trap for rewriting. We need to assume that
duke@435 1152 // they do not throw exceptions to make the monitor analysis work.
duke@435 1153 return;
duke@435 1154
duke@435 1155 case Bytecodes::_ireturn:
duke@435 1156 case Bytecodes::_lreturn:
duke@435 1157 case Bytecodes::_freturn:
duke@435 1158 case Bytecodes::_dreturn:
duke@435 1159 case Bytecodes::_areturn:
duke@435 1160 case Bytecodes::_return:
duke@435 1161 // If the monitor stack height is not zero when we leave the method,
duke@435 1162 // then we are either exiting with a non-empty stack or we have
duke@435 1163 // found monitor trouble earlier in our analysis. In either case,
duke@435 1164 // assume an exception could be taken here.
duke@435 1165 if (_monitor_top == 0) {
duke@435 1166 return;
duke@435 1167 }
duke@435 1168 break;
duke@435 1169
duke@435 1170 case Bytecodes::_monitorexit:
duke@435 1171 // If the monitor stack height is bad_monitors, then we have detected a
duke@435 1172 // monitor matching problem earlier in the analysis. If the
duke@435 1173 // monitor stack height is 0, we are about to pop a monitor
duke@435 1174 // off of an empty stack. In either case, the bytecode
duke@435 1175 // could throw an exception.
duke@435 1176 if (_monitor_top != bad_monitors && _monitor_top != 0) {
duke@435 1177 return;
duke@435 1178 }
duke@435 1179 break;
duke@435 1180 }
duke@435 1181
duke@435 1182 if (_has_exceptions) {
duke@435 1183 int bci = itr->bci();
jiangli@3917 1184 ExceptionTable exct(method());
jiangli@3917 1185 for(int i = 0; i< exct.length(); i++) {
jiangli@3917 1186 int start_pc = exct.start_pc(i);
jiangli@3917 1187 int end_pc = exct.end_pc(i);
jiangli@3917 1188 int handler_pc = exct.handler_pc(i);
jiangli@3917 1189 int catch_type = exct.catch_type_index(i);
duke@435 1190
duke@435 1191 if (start_pc <= bci && bci < end_pc) {
duke@435 1192 BasicBlock *excBB = get_basic_block_at(handler_pc);
morris@4773 1193 guarantee(excBB != NULL, "no basic block for exception");
duke@435 1194 CellTypeState *excStk = excBB->stack();
duke@435 1195 CellTypeState *cOpStck = stack();
duke@435 1196 CellTypeState cOpStck_0 = cOpStck[0];
duke@435 1197 int cOpStackTop = _stack_top;
duke@435 1198
duke@435 1199 // Exception stacks are always the same.
duke@435 1200 assert(method()->max_stack() > 0, "sanity check");
duke@435 1201
duke@435 1202 // We remembered the size and first element of "cOpStck"
duke@435 1203 // above; now we temporarily set them to the appropriate
duke@435 1204 // values for an exception handler. */
duke@435 1205 cOpStck[0] = CellTypeState::make_slot_ref(_max_locals);
duke@435 1206 _stack_top = 1;
duke@435 1207
duke@435 1208 merge_state_into_bb(excBB);
duke@435 1209
duke@435 1210 // Now undo the temporary change.
duke@435 1211 cOpStck[0] = cOpStck_0;
duke@435 1212 _stack_top = cOpStackTop;
duke@435 1213
duke@435 1214 // If this is a "catch all" handler, then we do not need to
duke@435 1215 // consider any additional handlers.
duke@435 1216 if (catch_type == 0) {
duke@435 1217 return;
duke@435 1218 }
duke@435 1219 }
duke@435 1220 }
duke@435 1221 }
duke@435 1222
duke@435 1223 // It is possible that none of the exception handlers would have caught
duke@435 1224 // the exception. In this case, we will exit the method. We must
duke@435 1225 // ensure that the monitor stack is empty in this case.
duke@435 1226 if (_monitor_top == 0) {
duke@435 1227 return;
duke@435 1228 }
duke@435 1229
duke@435 1230 // We pessimistically assume that this exception can escape the
duke@435 1231 // method. (It is possible that it will always be caught, but
duke@435 1232 // we don't care to analyse the types of the catch clauses.)
duke@435 1233
duke@435 1234 // We don't set _monitor_top to bad_monitors because there are no successors
duke@435 1235 // to this exceptional exit.
duke@435 1236
duke@435 1237 if (TraceMonitorMismatch && _monitor_safe) {
duke@435 1238 // We check _monitor_safe so that we only report the first mismatched
duke@435 1239 // exceptional exit.
duke@435 1240 report_monitor_mismatch("non-empty monitor stack at exceptional exit");
duke@435 1241 }
duke@435 1242 _monitor_safe = false;
duke@435 1243
duke@435 1244 }
duke@435 1245
duke@435 1246 void GenerateOopMap::report_monitor_mismatch(const char *msg) {
duke@435 1247 #ifndef PRODUCT
duke@435 1248 tty->print(" Monitor mismatch in method ");
duke@435 1249 method()->print_short_name(tty);
duke@435 1250 tty->print_cr(": %s", msg);
duke@435 1251 #endif
duke@435 1252 }
duke@435 1253
duke@435 1254 void GenerateOopMap::print_states(outputStream *os,
duke@435 1255 CellTypeState* vec, int num) {
duke@435 1256 for (int i = 0; i < num; i++) {
duke@435 1257 vec[i].print(tty);
duke@435 1258 }
duke@435 1259 }
duke@435 1260
duke@435 1261 // Print the state values at the current bytecode.
duke@435 1262 void GenerateOopMap::print_current_state(outputStream *os,
duke@435 1263 BytecodeStream *currentBC,
duke@435 1264 bool detailed) {
duke@435 1265
duke@435 1266 if (detailed) {
duke@435 1267 os->print(" %4d vars = ", currentBC->bci());
duke@435 1268 print_states(os, vars(), _max_locals);
duke@435 1269 os->print(" %s", Bytecodes::name(currentBC->code()));
duke@435 1270 switch(currentBC->code()) {
duke@435 1271 case Bytecodes::_invokevirtual:
duke@435 1272 case Bytecodes::_invokespecial:
duke@435 1273 case Bytecodes::_invokestatic:
jrose@1161 1274 case Bytecodes::_invokedynamic:
duke@435 1275 case Bytecodes::_invokeinterface:
jrose@2265 1276 int idx = currentBC->has_index_u4() ? currentBC->get_index_u4() : currentBC->get_index_u2_cpcache();
coleenp@4037 1277 ConstantPool* cp = method()->constants();
duke@435 1278 int nameAndTypeIdx = cp->name_and_type_ref_index_at(idx);
duke@435 1279 int signatureIdx = cp->signature_ref_index_at(nameAndTypeIdx);
coleenp@2497 1280 Symbol* signature = cp->symbol_at(signatureIdx);
duke@435 1281 os->print("%s", signature->as_C_string());
duke@435 1282 }
duke@435 1283 os->cr();
duke@435 1284 os->print(" stack = ");
duke@435 1285 print_states(os, stack(), _stack_top);
duke@435 1286 os->cr();
duke@435 1287 if (_monitor_top != bad_monitors) {
duke@435 1288 os->print(" monitors = ");
duke@435 1289 print_states(os, monitors(), _monitor_top);
duke@435 1290 } else {
duke@435 1291 os->print(" [bad monitor stack]");
duke@435 1292 }
duke@435 1293 os->cr();
duke@435 1294 } else {
duke@435 1295 os->print(" %4d vars = '%s' ", currentBC->bci(), state_vec_to_string(vars(), _max_locals));
duke@435 1296 os->print(" stack = '%s' ", state_vec_to_string(stack(), _stack_top));
duke@435 1297 if (_monitor_top != bad_monitors) {
duke@435 1298 os->print(" monitors = '%s' \t%s", state_vec_to_string(monitors(), _monitor_top), Bytecodes::name(currentBC->code()));
duke@435 1299 } else {
duke@435 1300 os->print(" [bad monitor stack]");
duke@435 1301 }
duke@435 1302 switch(currentBC->code()) {
duke@435 1303 case Bytecodes::_invokevirtual:
duke@435 1304 case Bytecodes::_invokespecial:
duke@435 1305 case Bytecodes::_invokestatic:
jrose@1161 1306 case Bytecodes::_invokedynamic:
duke@435 1307 case Bytecodes::_invokeinterface:
jrose@2265 1308 int idx = currentBC->has_index_u4() ? currentBC->get_index_u4() : currentBC->get_index_u2_cpcache();
coleenp@4037 1309 ConstantPool* cp = method()->constants();
duke@435 1310 int nameAndTypeIdx = cp->name_and_type_ref_index_at(idx);
duke@435 1311 int signatureIdx = cp->signature_ref_index_at(nameAndTypeIdx);
coleenp@2497 1312 Symbol* signature = cp->symbol_at(signatureIdx);
duke@435 1313 os->print("%s", signature->as_C_string());
duke@435 1314 }
duke@435 1315 os->cr();
duke@435 1316 }
duke@435 1317 }
duke@435 1318
duke@435 1319 // Sets the current state to be the state after executing the
duke@435 1320 // current instruction, starting in the current state.
duke@435 1321 void GenerateOopMap::interp1(BytecodeStream *itr) {
duke@435 1322 if (TraceNewOopMapGeneration) {
duke@435 1323 print_current_state(tty, itr, TraceNewOopMapGenerationDetailed);
duke@435 1324 }
duke@435 1325
duke@435 1326 // Should we report the results? Result is reported *before* the instruction at the current bci is executed.
duke@435 1327 // However, not for calls. For calls we do not want to include the arguments, so we postpone the reporting until
duke@435 1328 // they have been popped (in method ppl).
duke@435 1329 if (_report_result == true) {
duke@435 1330 switch(itr->code()) {
duke@435 1331 case Bytecodes::_invokevirtual:
duke@435 1332 case Bytecodes::_invokespecial:
duke@435 1333 case Bytecodes::_invokestatic:
jrose@1161 1334 case Bytecodes::_invokedynamic:
duke@435 1335 case Bytecodes::_invokeinterface:
duke@435 1336 _itr_send = itr;
duke@435 1337 _report_result_for_send = true;
duke@435 1338 break;
duke@435 1339 default:
duke@435 1340 fill_stackmap_for_opcodes(itr, vars(), stack(), _stack_top);
duke@435 1341 break;
duke@435 1342 }
duke@435 1343 }
duke@435 1344
duke@435 1345 // abstract interpretation of current opcode
duke@435 1346 switch(itr->code()) {
duke@435 1347 case Bytecodes::_nop: break;
duke@435 1348 case Bytecodes::_goto: break;
duke@435 1349 case Bytecodes::_goto_w: break;
duke@435 1350 case Bytecodes::_iinc: break;
duke@435 1351 case Bytecodes::_return: do_return_monitor_check();
duke@435 1352 break;
duke@435 1353
duke@435 1354 case Bytecodes::_aconst_null:
duke@435 1355 case Bytecodes::_new: ppush1(CellTypeState::make_line_ref(itr->bci()));
duke@435 1356 break;
duke@435 1357
duke@435 1358 case Bytecodes::_iconst_m1:
duke@435 1359 case Bytecodes::_iconst_0:
duke@435 1360 case Bytecodes::_iconst_1:
duke@435 1361 case Bytecodes::_iconst_2:
duke@435 1362 case Bytecodes::_iconst_3:
duke@435 1363 case Bytecodes::_iconst_4:
duke@435 1364 case Bytecodes::_iconst_5:
duke@435 1365 case Bytecodes::_fconst_0:
duke@435 1366 case Bytecodes::_fconst_1:
duke@435 1367 case Bytecodes::_fconst_2:
duke@435 1368 case Bytecodes::_bipush:
duke@435 1369 case Bytecodes::_sipush: ppush1(valCTS); break;
duke@435 1370
duke@435 1371 case Bytecodes::_lconst_0:
duke@435 1372 case Bytecodes::_lconst_1:
duke@435 1373 case Bytecodes::_dconst_0:
duke@435 1374 case Bytecodes::_dconst_1: ppush(vvCTS); break;
duke@435 1375
duke@435 1376 case Bytecodes::_ldc2_w: ppush(vvCTS); break;
duke@435 1377
jrose@2265 1378 case Bytecodes::_ldc: // fall through:
jrose@2265 1379 case Bytecodes::_ldc_w: do_ldc(itr->bci()); break;
duke@435 1380
duke@435 1381 case Bytecodes::_iload:
duke@435 1382 case Bytecodes::_fload: ppload(vCTS, itr->get_index()); break;
duke@435 1383
duke@435 1384 case Bytecodes::_lload:
duke@435 1385 case Bytecodes::_dload: ppload(vvCTS,itr->get_index()); break;
duke@435 1386
duke@435 1387 case Bytecodes::_aload: ppload(rCTS, itr->get_index()); break;
duke@435 1388
duke@435 1389 case Bytecodes::_iload_0:
duke@435 1390 case Bytecodes::_fload_0: ppload(vCTS, 0); break;
duke@435 1391 case Bytecodes::_iload_1:
duke@435 1392 case Bytecodes::_fload_1: ppload(vCTS, 1); break;
duke@435 1393 case Bytecodes::_iload_2:
duke@435 1394 case Bytecodes::_fload_2: ppload(vCTS, 2); break;
duke@435 1395 case Bytecodes::_iload_3:
duke@435 1396 case Bytecodes::_fload_3: ppload(vCTS, 3); break;
duke@435 1397
duke@435 1398 case Bytecodes::_lload_0:
duke@435 1399 case Bytecodes::_dload_0: ppload(vvCTS, 0); break;
duke@435 1400 case Bytecodes::_lload_1:
duke@435 1401 case Bytecodes::_dload_1: ppload(vvCTS, 1); break;
duke@435 1402 case Bytecodes::_lload_2:
duke@435 1403 case Bytecodes::_dload_2: ppload(vvCTS, 2); break;
duke@435 1404 case Bytecodes::_lload_3:
duke@435 1405 case Bytecodes::_dload_3: ppload(vvCTS, 3); break;
duke@435 1406
duke@435 1407 case Bytecodes::_aload_0: ppload(rCTS, 0); break;
duke@435 1408 case Bytecodes::_aload_1: ppload(rCTS, 1); break;
duke@435 1409 case Bytecodes::_aload_2: ppload(rCTS, 2); break;
duke@435 1410 case Bytecodes::_aload_3: ppload(rCTS, 3); break;
duke@435 1411
duke@435 1412 case Bytecodes::_iaload:
duke@435 1413 case Bytecodes::_faload:
duke@435 1414 case Bytecodes::_baload:
duke@435 1415 case Bytecodes::_caload:
duke@435 1416 case Bytecodes::_saload: pp(vrCTS, vCTS); break;
duke@435 1417
duke@435 1418 case Bytecodes::_laload: pp(vrCTS, vvCTS); break;
duke@435 1419 case Bytecodes::_daload: pp(vrCTS, vvCTS); break;
duke@435 1420
duke@435 1421 case Bytecodes::_aaload: pp_new_ref(vrCTS, itr->bci()); break;
duke@435 1422
duke@435 1423 case Bytecodes::_istore:
duke@435 1424 case Bytecodes::_fstore: ppstore(vCTS, itr->get_index()); break;
duke@435 1425
duke@435 1426 case Bytecodes::_lstore:
duke@435 1427 case Bytecodes::_dstore: ppstore(vvCTS, itr->get_index()); break;
duke@435 1428
duke@435 1429 case Bytecodes::_astore: do_astore(itr->get_index()); break;
duke@435 1430
duke@435 1431 case Bytecodes::_istore_0:
duke@435 1432 case Bytecodes::_fstore_0: ppstore(vCTS, 0); break;
duke@435 1433 case Bytecodes::_istore_1:
duke@435 1434 case Bytecodes::_fstore_1: ppstore(vCTS, 1); break;
duke@435 1435 case Bytecodes::_istore_2:
duke@435 1436 case Bytecodes::_fstore_2: ppstore(vCTS, 2); break;
duke@435 1437 case Bytecodes::_istore_3:
duke@435 1438 case Bytecodes::_fstore_3: ppstore(vCTS, 3); break;
duke@435 1439
duke@435 1440 case Bytecodes::_lstore_0:
duke@435 1441 case Bytecodes::_dstore_0: ppstore(vvCTS, 0); break;
duke@435 1442 case Bytecodes::_lstore_1:
duke@435 1443 case Bytecodes::_dstore_1: ppstore(vvCTS, 1); break;
duke@435 1444 case Bytecodes::_lstore_2:
duke@435 1445 case Bytecodes::_dstore_2: ppstore(vvCTS, 2); break;
duke@435 1446 case Bytecodes::_lstore_3:
duke@435 1447 case Bytecodes::_dstore_3: ppstore(vvCTS, 3); break;
duke@435 1448
duke@435 1449 case Bytecodes::_astore_0: do_astore(0); break;
duke@435 1450 case Bytecodes::_astore_1: do_astore(1); break;
duke@435 1451 case Bytecodes::_astore_2: do_astore(2); break;
duke@435 1452 case Bytecodes::_astore_3: do_astore(3); break;
duke@435 1453
duke@435 1454 case Bytecodes::_iastore:
duke@435 1455 case Bytecodes::_fastore:
duke@435 1456 case Bytecodes::_bastore:
duke@435 1457 case Bytecodes::_castore:
duke@435 1458 case Bytecodes::_sastore: ppop(vvrCTS); break;
duke@435 1459 case Bytecodes::_lastore:
duke@435 1460 case Bytecodes::_dastore: ppop(vvvrCTS); break;
duke@435 1461 case Bytecodes::_aastore: ppop(rvrCTS); break;
duke@435 1462
duke@435 1463 case Bytecodes::_pop: ppop_any(1); break;
duke@435 1464 case Bytecodes::_pop2: ppop_any(2); break;
duke@435 1465
duke@435 1466 case Bytecodes::_dup: ppdupswap(1, "11"); break;
duke@435 1467 case Bytecodes::_dup_x1: ppdupswap(2, "121"); break;
duke@435 1468 case Bytecodes::_dup_x2: ppdupswap(3, "1321"); break;
duke@435 1469 case Bytecodes::_dup2: ppdupswap(2, "2121"); break;
duke@435 1470 case Bytecodes::_dup2_x1: ppdupswap(3, "21321"); break;
duke@435 1471 case Bytecodes::_dup2_x2: ppdupswap(4, "214321"); break;
duke@435 1472 case Bytecodes::_swap: ppdupswap(2, "12"); break;
duke@435 1473
duke@435 1474 case Bytecodes::_iadd:
duke@435 1475 case Bytecodes::_fadd:
duke@435 1476 case Bytecodes::_isub:
duke@435 1477 case Bytecodes::_fsub:
duke@435 1478 case Bytecodes::_imul:
duke@435 1479 case Bytecodes::_fmul:
duke@435 1480 case Bytecodes::_idiv:
duke@435 1481 case Bytecodes::_fdiv:
duke@435 1482 case Bytecodes::_irem:
duke@435 1483 case Bytecodes::_frem:
duke@435 1484 case Bytecodes::_ishl:
duke@435 1485 case Bytecodes::_ishr:
duke@435 1486 case Bytecodes::_iushr:
duke@435 1487 case Bytecodes::_iand:
duke@435 1488 case Bytecodes::_ior:
duke@435 1489 case Bytecodes::_ixor:
duke@435 1490 case Bytecodes::_l2f:
duke@435 1491 case Bytecodes::_l2i:
duke@435 1492 case Bytecodes::_d2f:
duke@435 1493 case Bytecodes::_d2i:
duke@435 1494 case Bytecodes::_fcmpl:
duke@435 1495 case Bytecodes::_fcmpg: pp(vvCTS, vCTS); break;
duke@435 1496
duke@435 1497 case Bytecodes::_ladd:
duke@435 1498 case Bytecodes::_dadd:
duke@435 1499 case Bytecodes::_lsub:
duke@435 1500 case Bytecodes::_dsub:
duke@435 1501 case Bytecodes::_lmul:
duke@435 1502 case Bytecodes::_dmul:
duke@435 1503 case Bytecodes::_ldiv:
duke@435 1504 case Bytecodes::_ddiv:
duke@435 1505 case Bytecodes::_lrem:
duke@435 1506 case Bytecodes::_drem:
duke@435 1507 case Bytecodes::_land:
duke@435 1508 case Bytecodes::_lor:
duke@435 1509 case Bytecodes::_lxor: pp(vvvvCTS, vvCTS); break;
duke@435 1510
duke@435 1511 case Bytecodes::_ineg:
duke@435 1512 case Bytecodes::_fneg:
duke@435 1513 case Bytecodes::_i2f:
duke@435 1514 case Bytecodes::_f2i:
duke@435 1515 case Bytecodes::_i2c:
duke@435 1516 case Bytecodes::_i2s:
duke@435 1517 case Bytecodes::_i2b: pp(vCTS, vCTS); break;
duke@435 1518
duke@435 1519 case Bytecodes::_lneg:
duke@435 1520 case Bytecodes::_dneg:
duke@435 1521 case Bytecodes::_l2d:
duke@435 1522 case Bytecodes::_d2l: pp(vvCTS, vvCTS); break;
duke@435 1523
duke@435 1524 case Bytecodes::_lshl:
duke@435 1525 case Bytecodes::_lshr:
duke@435 1526 case Bytecodes::_lushr: pp(vvvCTS, vvCTS); break;
duke@435 1527
duke@435 1528 case Bytecodes::_i2l:
duke@435 1529 case Bytecodes::_i2d:
duke@435 1530 case Bytecodes::_f2l:
duke@435 1531 case Bytecodes::_f2d: pp(vCTS, vvCTS); break;
duke@435 1532
duke@435 1533 case Bytecodes::_lcmp: pp(vvvvCTS, vCTS); break;
duke@435 1534 case Bytecodes::_dcmpl:
duke@435 1535 case Bytecodes::_dcmpg: pp(vvvvCTS, vCTS); break;
duke@435 1536
duke@435 1537 case Bytecodes::_ifeq:
duke@435 1538 case Bytecodes::_ifne:
duke@435 1539 case Bytecodes::_iflt:
duke@435 1540 case Bytecodes::_ifge:
duke@435 1541 case Bytecodes::_ifgt:
duke@435 1542 case Bytecodes::_ifle:
duke@435 1543 case Bytecodes::_tableswitch: ppop1(valCTS);
duke@435 1544 break;
duke@435 1545 case Bytecodes::_ireturn:
duke@435 1546 case Bytecodes::_freturn: do_return_monitor_check();
duke@435 1547 ppop1(valCTS);
duke@435 1548 break;
duke@435 1549 case Bytecodes::_if_icmpeq:
duke@435 1550 case Bytecodes::_if_icmpne:
duke@435 1551 case Bytecodes::_if_icmplt:
duke@435 1552 case Bytecodes::_if_icmpge:
duke@435 1553 case Bytecodes::_if_icmpgt:
duke@435 1554 case Bytecodes::_if_icmple: ppop(vvCTS);
duke@435 1555 break;
duke@435 1556
duke@435 1557 case Bytecodes::_lreturn: do_return_monitor_check();
duke@435 1558 ppop(vvCTS);
duke@435 1559 break;
duke@435 1560
duke@435 1561 case Bytecodes::_dreturn: do_return_monitor_check();
duke@435 1562 ppop(vvCTS);
duke@435 1563 break;
duke@435 1564
duke@435 1565 case Bytecodes::_if_acmpeq:
duke@435 1566 case Bytecodes::_if_acmpne: ppop(rrCTS); break;
duke@435 1567
duke@435 1568 case Bytecodes::_jsr: do_jsr(itr->dest()); break;
duke@435 1569 case Bytecodes::_jsr_w: do_jsr(itr->dest_w()); break;
duke@435 1570
never@3036 1571 case Bytecodes::_getstatic: do_field(true, true, itr->get_index_u2_cpcache(), itr->bci()); break;
jrose@1920 1572 case Bytecodes::_putstatic: do_field(false, true, itr->get_index_u2_cpcache(), itr->bci()); break;
jrose@1920 1573 case Bytecodes::_getfield: do_field(true, false, itr->get_index_u2_cpcache(), itr->bci()); break;
jrose@1920 1574 case Bytecodes::_putfield: do_field(false, false, itr->get_index_u2_cpcache(), itr->bci()); break;
duke@435 1575
twisti@1573 1576 case Bytecodes::_invokevirtual:
jrose@1920 1577 case Bytecodes::_invokespecial: do_method(false, false, itr->get_index_u2_cpcache(), itr->bci()); break;
jrose@1920 1578 case Bytecodes::_invokestatic: do_method(true, false, itr->get_index_u2_cpcache(), itr->bci()); break;
jrose@1920 1579 case Bytecodes::_invokedynamic: do_method(true, false, itr->get_index_u4(), itr->bci()); break;
jrose@1920 1580 case Bytecodes::_invokeinterface: do_method(false, true, itr->get_index_u2_cpcache(), itr->bci()); break;
twisti@1573 1581 case Bytecodes::_newarray:
twisti@1573 1582 case Bytecodes::_anewarray: pp_new_ref(vCTS, itr->bci()); break;
duke@435 1583 case Bytecodes::_checkcast: do_checkcast(); break;
duke@435 1584 case Bytecodes::_arraylength:
duke@435 1585 case Bytecodes::_instanceof: pp(rCTS, vCTS); break;
duke@435 1586 case Bytecodes::_monitorenter: do_monitorenter(itr->bci()); break;
duke@435 1587 case Bytecodes::_monitorexit: do_monitorexit(itr->bci()); break;
duke@435 1588
duke@435 1589 case Bytecodes::_athrow: // handled by do_exception_edge() BUT ...
duke@435 1590 // vlh(apple): do_exception_edge() does not get
duke@435 1591 // called if method has no exception handlers
duke@435 1592 if ((!_has_exceptions) && (_monitor_top > 0)) {
duke@435 1593 _monitor_safe = false;
duke@435 1594 }
duke@435 1595 break;
duke@435 1596
duke@435 1597 case Bytecodes::_areturn: do_return_monitor_check();
duke@435 1598 ppop1(refCTS);
duke@435 1599 break;
duke@435 1600 case Bytecodes::_ifnull:
duke@435 1601 case Bytecodes::_ifnonnull: ppop1(refCTS); break;
duke@435 1602 case Bytecodes::_multianewarray: do_multianewarray(*(itr->bcp()+3), itr->bci()); break;
duke@435 1603
duke@435 1604 case Bytecodes::_wide: fatal("Iterator should skip this bytecode"); break;
duke@435 1605 case Bytecodes::_ret: break;
duke@435 1606
duke@435 1607 // Java opcodes
duke@435 1608 case Bytecodes::_lookupswitch: ppop1(valCTS); break;
duke@435 1609
duke@435 1610 default:
duke@435 1611 tty->print("unexpected opcode: %d\n", itr->code());
duke@435 1612 ShouldNotReachHere();
duke@435 1613 break;
duke@435 1614 }
duke@435 1615 }
duke@435 1616
duke@435 1617 void GenerateOopMap::check_type(CellTypeState expected, CellTypeState actual) {
duke@435 1618 if (!expected.equal_kind(actual)) {
duke@435 1619 verify_error("wrong type on stack (found: %c expected: %c)", actual.to_char(), expected.to_char());
duke@435 1620 }
duke@435 1621 }
duke@435 1622
duke@435 1623 void GenerateOopMap::ppstore(CellTypeState *in, int loc_no) {
duke@435 1624 while(!(*in).is_bottom()) {
duke@435 1625 CellTypeState expected =*in++;
duke@435 1626 CellTypeState actual = pop();
duke@435 1627 check_type(expected, actual);
duke@435 1628 assert(loc_no >= 0, "sanity check");
duke@435 1629 set_var(loc_no++, actual);
duke@435 1630 }
duke@435 1631 }
duke@435 1632
duke@435 1633 void GenerateOopMap::ppload(CellTypeState *out, int loc_no) {
duke@435 1634 while(!(*out).is_bottom()) {
duke@435 1635 CellTypeState out1 = *out++;
duke@435 1636 CellTypeState vcts = get_var(loc_no);
duke@435 1637 assert(out1.can_be_reference() || out1.can_be_value(),
duke@435 1638 "can only load refs. and values.");
duke@435 1639 if (out1.is_reference()) {
duke@435 1640 assert(loc_no>=0, "sanity check");
duke@435 1641 if (!vcts.is_reference()) {
duke@435 1642 // We were asked to push a reference, but the type of the
duke@435 1643 // variable can be something else
duke@435 1644 _conflict = true;
duke@435 1645 if (vcts.can_be_uninit()) {
duke@435 1646 // It is a ref-uninit conflict (at least). If there are other
duke@435 1647 // problems, we'll get them in the next round
duke@435 1648 add_to_ref_init_set(loc_no);
duke@435 1649 vcts = out1;
duke@435 1650 } else {
duke@435 1651 // It wasn't a ref-uninit conflict. So must be a
duke@435 1652 // ref-val or ref-pc conflict. Split the variable.
duke@435 1653 record_refval_conflict(loc_no);
duke@435 1654 vcts = out1;
duke@435 1655 }
duke@435 1656 push(out1); // recover...
duke@435 1657 } else {
duke@435 1658 push(vcts); // preserve reference.
duke@435 1659 }
duke@435 1660 // Otherwise it is a conflict, but one that verification would
duke@435 1661 // have caught if illegal. In particular, it can't be a topCTS
duke@435 1662 // resulting from mergeing two difference pcCTS's since the verifier
duke@435 1663 // would have rejected any use of such a merge.
duke@435 1664 } else {
duke@435 1665 push(out1); // handle val/init conflict
duke@435 1666 }
duke@435 1667 loc_no++;
duke@435 1668 }
duke@435 1669 }
duke@435 1670
duke@435 1671 void GenerateOopMap::ppdupswap(int poplen, const char *out) {
duke@435 1672 CellTypeState actual[5];
duke@435 1673 assert(poplen < 5, "this must be less than length of actual vector");
duke@435 1674
duke@435 1675 // pop all arguments
duke@435 1676 for(int i = 0; i < poplen; i++) actual[i] = pop();
duke@435 1677
duke@435 1678 // put them back
duke@435 1679 char push_ch = *out++;
duke@435 1680 while (push_ch != '\0') {
duke@435 1681 int idx = push_ch - '1';
duke@435 1682 assert(idx >= 0 && idx < poplen, "wrong arguments");
duke@435 1683 push(actual[idx]);
duke@435 1684 push_ch = *out++;
duke@435 1685 }
duke@435 1686 }
duke@435 1687
duke@435 1688 void GenerateOopMap::ppop1(CellTypeState out) {
duke@435 1689 CellTypeState actual = pop();
duke@435 1690 check_type(out, actual);
duke@435 1691 }
duke@435 1692
duke@435 1693 void GenerateOopMap::ppop(CellTypeState *out) {
duke@435 1694 while (!(*out).is_bottom()) {
duke@435 1695 ppop1(*out++);
duke@435 1696 }
duke@435 1697 }
duke@435 1698
duke@435 1699 void GenerateOopMap::ppush1(CellTypeState in) {
duke@435 1700 assert(in.is_reference() | in.is_value(), "sanity check");
duke@435 1701 push(in);
duke@435 1702 }
duke@435 1703
duke@435 1704 void GenerateOopMap::ppush(CellTypeState *in) {
duke@435 1705 while (!(*in).is_bottom()) {
duke@435 1706 ppush1(*in++);
duke@435 1707 }
duke@435 1708 }
duke@435 1709
duke@435 1710 void GenerateOopMap::pp(CellTypeState *in, CellTypeState *out) {
duke@435 1711 ppop(in);
duke@435 1712 ppush(out);
duke@435 1713 }
duke@435 1714
duke@435 1715 void GenerateOopMap::pp_new_ref(CellTypeState *in, int bci) {
duke@435 1716 ppop(in);
duke@435 1717 ppush1(CellTypeState::make_line_ref(bci));
duke@435 1718 }
duke@435 1719
duke@435 1720 void GenerateOopMap::ppop_any(int poplen) {
duke@435 1721 if (_stack_top >= poplen) {
duke@435 1722 _stack_top -= poplen;
duke@435 1723 } else {
duke@435 1724 verify_error("stack underflow");
duke@435 1725 }
duke@435 1726 }
duke@435 1727
duke@435 1728 // Replace all occurences of the state 'match' with the state 'replace'
duke@435 1729 // in our current state vector.
duke@435 1730 void GenerateOopMap::replace_all_CTS_matches(CellTypeState match,
duke@435 1731 CellTypeState replace) {
duke@435 1732 int i;
duke@435 1733 int len = _max_locals + _stack_top;
duke@435 1734 bool change = false;
duke@435 1735
duke@435 1736 for (i = len - 1; i >= 0; i--) {
duke@435 1737 if (match.equal(_state[i])) {
duke@435 1738 _state[i] = replace;
duke@435 1739 }
duke@435 1740 }
duke@435 1741
duke@435 1742 if (_monitor_top > 0) {
duke@435 1743 int base = _max_locals + _max_stack;
duke@435 1744 len = base + _monitor_top;
duke@435 1745 for (i = len - 1; i >= base; i--) {
duke@435 1746 if (match.equal(_state[i])) {
duke@435 1747 _state[i] = replace;
duke@435 1748 }
duke@435 1749 }
duke@435 1750 }
duke@435 1751 }
duke@435 1752
duke@435 1753 void GenerateOopMap::do_checkcast() {
duke@435 1754 CellTypeState actual = pop();
duke@435 1755 check_type(refCTS, actual);
duke@435 1756 push(actual);
duke@435 1757 }
duke@435 1758
duke@435 1759 void GenerateOopMap::do_monitorenter(int bci) {
duke@435 1760 CellTypeState actual = pop();
duke@435 1761 if (_monitor_top == bad_monitors) {
duke@435 1762 return;
duke@435 1763 }
duke@435 1764
duke@435 1765 // Bail out when we get repeated locks on an identical monitor. This case
duke@435 1766 // isn't too hard to handle and can be made to work if supporting nested
duke@435 1767 // redundant synchronized statements becomes a priority.
duke@435 1768 //
duke@435 1769 // See also "Note" in do_monitorexit(), below.
duke@435 1770 if (actual.is_lock_reference()) {
duke@435 1771 _monitor_top = bad_monitors;
duke@435 1772 _monitor_safe = false;
duke@435 1773
duke@435 1774 if (TraceMonitorMismatch) {
duke@435 1775 report_monitor_mismatch("nested redundant lock -- bailout...");
duke@435 1776 }
duke@435 1777 return;
duke@435 1778 }
duke@435 1779
duke@435 1780 CellTypeState lock = CellTypeState::make_lock_ref(bci);
duke@435 1781 check_type(refCTS, actual);
duke@435 1782 if (!actual.is_info_top()) {
duke@435 1783 replace_all_CTS_matches(actual, lock);
duke@435 1784 monitor_push(lock);
duke@435 1785 }
duke@435 1786 }
duke@435 1787
duke@435 1788 void GenerateOopMap::do_monitorexit(int bci) {
duke@435 1789 CellTypeState actual = pop();
duke@435 1790 if (_monitor_top == bad_monitors) {
duke@435 1791 return;
duke@435 1792 }
duke@435 1793 check_type(refCTS, actual);
duke@435 1794 CellTypeState expected = monitor_pop();
duke@435 1795 if (!actual.is_lock_reference() || !expected.equal(actual)) {
duke@435 1796 // The monitor we are exiting is not verifiably the one
duke@435 1797 // on the top of our monitor stack. This causes a monitor
duke@435 1798 // mismatch.
duke@435 1799 _monitor_top = bad_monitors;
duke@435 1800 _monitor_safe = false;
duke@435 1801
duke@435 1802 // We need to mark this basic block as changed so that
duke@435 1803 // this monitorexit will be visited again. We need to
duke@435 1804 // do this to ensure that we have accounted for the
duke@435 1805 // possibility that this bytecode will throw an
duke@435 1806 // exception.
duke@435 1807 BasicBlock* bb = get_basic_block_containing(bci);
morris@4773 1808 guarantee(bb != NULL, "no basic block for bci");
duke@435 1809 bb->set_changed(true);
duke@435 1810 bb->_monitor_top = bad_monitors;
duke@435 1811
duke@435 1812 if (TraceMonitorMismatch) {
duke@435 1813 report_monitor_mismatch("improper monitor pair");
duke@435 1814 }
duke@435 1815 } else {
duke@435 1816 // This code is a fix for the case where we have repeated
duke@435 1817 // locking of the same object in straightline code. We clear
duke@435 1818 // out the lock when it is popped from the monitor stack
duke@435 1819 // and replace it with an unobtrusive reference value that can
duke@435 1820 // be locked again.
duke@435 1821 //
duke@435 1822 // Note: when generateOopMap is fixed to properly handle repeated,
duke@435 1823 // nested, redundant locks on the same object, then this
duke@435 1824 // fix will need to be removed at that time.
duke@435 1825 replace_all_CTS_matches(actual, CellTypeState::make_line_ref(bci));
duke@435 1826 }
duke@435 1827 }
duke@435 1828
duke@435 1829 void GenerateOopMap::do_return_monitor_check() {
duke@435 1830 if (_monitor_top > 0) {
duke@435 1831 // The monitor stack must be empty when we leave the method
duke@435 1832 // for the monitors to be properly matched.
duke@435 1833 _monitor_safe = false;
duke@435 1834
duke@435 1835 // Since there are no successors to the *return bytecode, it
duke@435 1836 // isn't necessary to set _monitor_top to bad_monitors.
duke@435 1837
duke@435 1838 if (TraceMonitorMismatch) {
duke@435 1839 report_monitor_mismatch("non-empty monitor stack at return");
duke@435 1840 }
duke@435 1841 }
duke@435 1842 }
duke@435 1843
duke@435 1844 void GenerateOopMap::do_jsr(int targ_bci) {
duke@435 1845 push(CellTypeState::make_addr(targ_bci));
duke@435 1846 }
duke@435 1847
duke@435 1848
duke@435 1849
jrose@2265 1850 void GenerateOopMap::do_ldc(int bci) {
never@2462 1851 Bytecode_loadconstant ldc(method(), bci);
coleenp@4037 1852 ConstantPool* cp = method()->constants();
coleenp@4037 1853 constantTag tag = cp->tag_at(ldc.pool_index()); // idx is index in resolved_references
never@2462 1854 BasicType bt = ldc.result_type();
coleenp@4037 1855 CellTypeState cts;
coleenp@4037 1856 if (tag.is_klass() ||
coleenp@4037 1857 tag.is_unresolved_klass() ||
coleenp@4037 1858 tag.is_string() ||
coleenp@4037 1859 tag.is_method_handle() ||
coleenp@4037 1860 tag.is_method_type()) {
coleenp@4037 1861 assert(bt == T_OBJECT, "Guard is incorrect");
coleenp@4037 1862 cts = CellTypeState::make_line_ref(bci);
coleenp@4037 1863 } else {
coleenp@4037 1864 assert(bt != T_OBJECT, "Guard is incorrect");
coleenp@4037 1865 cts = valCTS;
coleenp@4037 1866 }
duke@435 1867 ppush1(cts);
duke@435 1868 }
duke@435 1869
duke@435 1870 void GenerateOopMap::do_multianewarray(int dims, int bci) {
duke@435 1871 assert(dims >= 1, "sanity check");
duke@435 1872 for(int i = dims -1; i >=0; i--) {
duke@435 1873 ppop1(valCTS);
duke@435 1874 }
duke@435 1875 ppush1(CellTypeState::make_line_ref(bci));
duke@435 1876 }
duke@435 1877
duke@435 1878 void GenerateOopMap::do_astore(int idx) {
duke@435 1879 CellTypeState r_or_p = pop();
duke@435 1880 if (!r_or_p.is_address() && !r_or_p.is_reference()) {
duke@435 1881 // We actually expected ref or pc, but we only report that we expected a ref. It does not
duke@435 1882 // really matter (at least for now)
duke@435 1883 verify_error("wrong type on stack (found: %c, expected: {pr})", r_or_p.to_char());
duke@435 1884 return;
duke@435 1885 }
duke@435 1886 set_var(idx, r_or_p);
duke@435 1887 }
duke@435 1888
duke@435 1889 // Copies bottom/zero terminated CTS string from "src" into "dst".
duke@435 1890 // Does NOT terminate with a bottom. Returns the number of cells copied.
duke@435 1891 int GenerateOopMap::copy_cts(CellTypeState *dst, CellTypeState *src) {
duke@435 1892 int idx = 0;
duke@435 1893 while (!src[idx].is_bottom()) {
duke@435 1894 dst[idx] = src[idx];
duke@435 1895 idx++;
duke@435 1896 }
duke@435 1897 return idx;
duke@435 1898 }
duke@435 1899
duke@435 1900 void GenerateOopMap::do_field(int is_get, int is_static, int idx, int bci) {
duke@435 1901 // Dig up signature for field in constant pool
coleenp@4037 1902 ConstantPool* cp = method()->constants();
duke@435 1903 int nameAndTypeIdx = cp->name_and_type_ref_index_at(idx);
duke@435 1904 int signatureIdx = cp->signature_ref_index_at(nameAndTypeIdx);
coleenp@2497 1905 Symbol* signature = cp->symbol_at(signatureIdx);
duke@435 1906
duke@435 1907 // Parse signature (espcially simple for fields)
duke@435 1908 assert(signature->utf8_length() > 0, "field signatures cannot have zero length");
duke@435 1909 // The signature is UFT8 encoded, but the first char is always ASCII for signatures.
duke@435 1910 char sigch = (char)*(signature->base());
duke@435 1911 CellTypeState temp[4];
duke@435 1912 CellTypeState *eff = sigchar_to_effect(sigch, bci, temp);
duke@435 1913
duke@435 1914 CellTypeState in[4];
duke@435 1915 CellTypeState *out;
duke@435 1916 int i = 0;
duke@435 1917
duke@435 1918 if (is_get) {
duke@435 1919 out = eff;
duke@435 1920 } else {
duke@435 1921 out = epsilonCTS;
duke@435 1922 i = copy_cts(in, eff);
duke@435 1923 }
duke@435 1924 if (!is_static) in[i++] = CellTypeState::ref;
duke@435 1925 in[i] = CellTypeState::bottom;
duke@435 1926 assert(i<=3, "sanity check");
duke@435 1927 pp(in, out);
duke@435 1928 }
duke@435 1929
duke@435 1930 void GenerateOopMap::do_method(int is_static, int is_interface, int idx, int bci) {
jrose@1494 1931 // Dig up signature for field in constant pool
coleenp@4037 1932 ConstantPool* cp = _method->constants();
coleenp@2497 1933 Symbol* signature = cp->signature_ref_at(idx);
duke@435 1934
duke@435 1935 // Parse method signature
duke@435 1936 CellTypeState out[4];
duke@435 1937 CellTypeState in[MAXARGSIZE+1]; // Includes result
duke@435 1938 ComputeCallStack cse(signature);
duke@435 1939
duke@435 1940 // Compute return type
duke@435 1941 int res_length= cse.compute_for_returntype(out);
duke@435 1942
duke@435 1943 // Temporary hack.
duke@435 1944 if (out[0].equal(CellTypeState::ref) && out[1].equal(CellTypeState::bottom)) {
duke@435 1945 out[0] = CellTypeState::make_line_ref(bci);
duke@435 1946 }
duke@435 1947
duke@435 1948 assert(res_length<=4, "max value should be vv");
duke@435 1949
duke@435 1950 // Compute arguments
duke@435 1951 int arg_length = cse.compute_for_parameters(is_static != 0, in);
duke@435 1952 assert(arg_length<=MAXARGSIZE, "too many locals");
duke@435 1953
duke@435 1954 // Pop arguments
duke@435 1955 for (int i = arg_length - 1; i >= 0; i--) ppop1(in[i]);// Do args in reverse order.
duke@435 1956
duke@435 1957 // Report results
duke@435 1958 if (_report_result_for_send == true) {
duke@435 1959 fill_stackmap_for_opcodes(_itr_send, vars(), stack(), _stack_top);
duke@435 1960 _report_result_for_send = false;
duke@435 1961 }
duke@435 1962
duke@435 1963 // Push return address
duke@435 1964 ppush(out);
duke@435 1965 }
duke@435 1966
duke@435 1967 // This is used to parse the signature for fields, since they are very simple...
duke@435 1968 CellTypeState *GenerateOopMap::sigchar_to_effect(char sigch, int bci, CellTypeState *out) {
duke@435 1969 // Object and array
duke@435 1970 if (sigch=='L' || sigch=='[') {
duke@435 1971 out[0] = CellTypeState::make_line_ref(bci);
duke@435 1972 out[1] = CellTypeState::bottom;
duke@435 1973 return out;
duke@435 1974 }
duke@435 1975 if (sigch == 'J' || sigch == 'D' ) return vvCTS; // Long and Double
duke@435 1976 if (sigch == 'V' ) return epsilonCTS; // Void
duke@435 1977 return vCTS; // Otherwise
duke@435 1978 }
duke@435 1979
duke@435 1980 long GenerateOopMap::_total_byte_count = 0;
duke@435 1981 elapsedTimer GenerateOopMap::_total_oopmap_time;
duke@435 1982
duke@435 1983 // This function assumes "bcs" is at a "ret" instruction and that the vars
duke@435 1984 // state is valid for that instruction. Furthermore, the ret instruction
duke@435 1985 // must be the last instruction in "bb" (we store information about the
duke@435 1986 // "ret" in "bb").
duke@435 1987 void GenerateOopMap::ret_jump_targets_do(BytecodeStream *bcs, jmpFct_t jmpFct, int varNo, int *data) {
duke@435 1988 CellTypeState ra = vars()[varNo];
duke@435 1989 if (!ra.is_good_address()) {
duke@435 1990 verify_error("ret returns from two jsr subroutines?");
duke@435 1991 return;
duke@435 1992 }
duke@435 1993 int target = ra.get_info();
duke@435 1994
duke@435 1995 RetTableEntry* rtEnt = _rt.find_jsrs_for_target(target);
duke@435 1996 int bci = bcs->bci();
duke@435 1997 for (int i = 0; i < rtEnt->nof_jsrs(); i++) {
duke@435 1998 int target_bci = rtEnt->jsrs(i);
duke@435 1999 // Make sure a jrtRet does not set the changed bit for dead basicblock.
duke@435 2000 BasicBlock* jsr_bb = get_basic_block_containing(target_bci - 1);
duke@435 2001 debug_only(BasicBlock* target_bb = &jsr_bb[1];)
duke@435 2002 assert(target_bb == get_basic_block_at(target_bci), "wrong calc. of successor basicblock");
duke@435 2003 bool alive = jsr_bb->is_alive();
duke@435 2004 if (TraceNewOopMapGeneration) {
duke@435 2005 tty->print("pc = %d, ret -> %d alive: %s\n", bci, target_bci, alive ? "true" : "false");
duke@435 2006 }
duke@435 2007 if (alive) jmpFct(this, target_bci, data);
duke@435 2008 }
duke@435 2009 }
duke@435 2010
duke@435 2011 //
duke@435 2012 // Debug method
duke@435 2013 //
duke@435 2014 char* GenerateOopMap::state_vec_to_string(CellTypeState* vec, int len) {
duke@435 2015 #ifdef ASSERT
duke@435 2016 int checklen = MAX3(_max_locals, _max_stack, _max_monitors) + 1;
duke@435 2017 assert(len < checklen, "state_vec_buf overflow");
duke@435 2018 #endif
duke@435 2019 for (int i = 0; i < len; i++) _state_vec_buf[i] = vec[i].to_char();
duke@435 2020 _state_vec_buf[len] = 0;
duke@435 2021 return _state_vec_buf;
duke@435 2022 }
duke@435 2023
duke@435 2024 void GenerateOopMap::print_time() {
duke@435 2025 tty->print_cr ("Accumulated oopmap times:");
duke@435 2026 tty->print_cr ("---------------------------");
duke@435 2027 tty->print_cr (" Total : %3.3f sec.", GenerateOopMap::_total_oopmap_time.seconds());
duke@435 2028 tty->print_cr (" (%3.0f bytecodes per sec) ",
duke@435 2029 GenerateOopMap::_total_byte_count / GenerateOopMap::_total_oopmap_time.seconds());
duke@435 2030 }
duke@435 2031
duke@435 2032 //
duke@435 2033 // ============ Main Entry Point ===========
duke@435 2034 //
duke@435 2035 GenerateOopMap::GenerateOopMap(methodHandle method) {
twisti@1040 2036 // We have to initialize all variables here, that can be queried directly
duke@435 2037 _method = method;
duke@435 2038 _max_locals=0;
duke@435 2039 _init_vars = NULL;
duke@435 2040
duke@435 2041 #ifndef PRODUCT
duke@435 2042 // If we are doing a detailed trace, include the regular trace information.
duke@435 2043 if (TraceNewOopMapGenerationDetailed) {
duke@435 2044 TraceNewOopMapGeneration = true;
duke@435 2045 }
duke@435 2046 #endif
duke@435 2047 }
duke@435 2048
duke@435 2049 void GenerateOopMap::compute_map(TRAPS) {
duke@435 2050 #ifndef PRODUCT
duke@435 2051 if (TimeOopMap2) {
duke@435 2052 method()->print_short_name(tty);
duke@435 2053 tty->print(" ");
duke@435 2054 }
duke@435 2055 if (TimeOopMap) {
duke@435 2056 _total_byte_count += method()->code_size();
duke@435 2057 }
duke@435 2058 #endif
duke@435 2059 TraceTime t_single("oopmap time", TimeOopMap2);
duke@435 2060 TraceTime t_all(NULL, &_total_oopmap_time, TimeOopMap);
duke@435 2061
duke@435 2062 // Initialize values
duke@435 2063 _got_error = false;
duke@435 2064 _conflict = false;
duke@435 2065 _max_locals = method()->max_locals();
duke@435 2066 _max_stack = method()->max_stack();
jiangli@3917 2067 _has_exceptions = (method()->has_exception_handler());
duke@435 2068 _nof_refval_conflicts = 0;
duke@435 2069 _init_vars = new GrowableArray<intptr_t>(5); // There are seldom more than 5 init_vars
duke@435 2070 _report_result = false;
duke@435 2071 _report_result_for_send = false;
duke@435 2072 _new_var_map = NULL;
duke@435 2073 _ret_adr_tos = new GrowableArray<intptr_t>(5); // 5 seems like a good number;
duke@435 2074 _did_rewriting = false;
duke@435 2075 _did_relocation = false;
duke@435 2076
duke@435 2077 if (TraceNewOopMapGeneration) {
duke@435 2078 tty->print("Method name: %s\n", method()->name()->as_C_string());
duke@435 2079 if (Verbose) {
duke@435 2080 _method->print_codes();
duke@435 2081 tty->print_cr("Exception table:");
jiangli@3917 2082 ExceptionTable excps(method());
jiangli@3917 2083 for(int i = 0; i < excps.length(); i ++) {
jiangli@3917 2084 tty->print_cr("[%d - %d] -> %d",
jiangli@3917 2085 excps.start_pc(i), excps.end_pc(i), excps.handler_pc(i));
duke@435 2086 }
duke@435 2087 }
duke@435 2088 }
duke@435 2089
duke@435 2090 // if no code - do nothing
duke@435 2091 // compiler needs info
duke@435 2092 if (method()->code_size() == 0 || _max_locals + method()->max_stack() == 0) {
duke@435 2093 fill_stackmap_prolog(0);
duke@435 2094 fill_stackmap_epilog();
duke@435 2095 return;
duke@435 2096 }
duke@435 2097 // Step 1: Compute all jump targets and their return value
duke@435 2098 if (!_got_error)
duke@435 2099 _rt.compute_ret_table(_method);
duke@435 2100
duke@435 2101 // Step 2: Find all basic blocks and count GC points
duke@435 2102 if (!_got_error)
duke@435 2103 mark_bbheaders_and_count_gc_points();
duke@435 2104
duke@435 2105 // Step 3: Calculate stack maps
duke@435 2106 if (!_got_error)
duke@435 2107 do_interpretation();
duke@435 2108
duke@435 2109 // Step 4:Return results
duke@435 2110 if (!_got_error && report_results())
duke@435 2111 report_result();
duke@435 2112
duke@435 2113 if (_got_error) {
duke@435 2114 THROW_HANDLE(_exception);
duke@435 2115 }
duke@435 2116 }
duke@435 2117
duke@435 2118 // Error handling methods
duke@435 2119 // These methods create an exception for the current thread which is thrown
duke@435 2120 // at the bottom of the call stack, when it returns to compute_map(). The
duke@435 2121 // _got_error flag controls execution. NOT TODO: The VM exception propagation
duke@435 2122 // mechanism using TRAPS/CHECKs could be used here instead but it would need
duke@435 2123 // to be added as a parameter to every function and checked for every call.
duke@435 2124 // The tons of extra code it would generate didn't seem worth the change.
duke@435 2125 //
duke@435 2126 void GenerateOopMap::error_work(const char *format, va_list ap) {
duke@435 2127 _got_error = true;
duke@435 2128 char msg_buffer[512];
duke@435 2129 vsnprintf(msg_buffer, sizeof(msg_buffer), format, ap);
duke@435 2130 // Append method name
duke@435 2131 char msg_buffer2[512];
duke@435 2132 jio_snprintf(msg_buffer2, sizeof(msg_buffer2), "%s in method %s", msg_buffer, method()->name()->as_C_string());
duke@435 2133 _exception = Exceptions::new_exception(Thread::current(),
duke@435 2134 vmSymbols::java_lang_LinkageError(), msg_buffer2);
duke@435 2135 }
duke@435 2136
duke@435 2137 void GenerateOopMap::report_error(const char *format, ...) {
duke@435 2138 va_list ap;
duke@435 2139 va_start(ap, format);
duke@435 2140 error_work(format, ap);
duke@435 2141 }
duke@435 2142
duke@435 2143 void GenerateOopMap::verify_error(const char *format, ...) {
duke@435 2144 // We do not distinguish between different types of errors for verification
duke@435 2145 // errors. Let the verifier give a better message.
duke@435 2146 const char *msg = "Illegal class file encountered. Try running with -Xverify:all";
bobv@2036 2147 _got_error = true;
bobv@2036 2148 // Append method name
bobv@2036 2149 char msg_buffer2[512];
bobv@2036 2150 jio_snprintf(msg_buffer2, sizeof(msg_buffer2), "%s in method %s", msg,
bobv@2036 2151 method()->name()->as_C_string());
bobv@2036 2152 _exception = Exceptions::new_exception(Thread::current(),
bobv@2036 2153 vmSymbols::java_lang_LinkageError(), msg_buffer2);
duke@435 2154 }
duke@435 2155
duke@435 2156 //
duke@435 2157 // Report result opcodes
duke@435 2158 //
duke@435 2159 void GenerateOopMap::report_result() {
duke@435 2160
duke@435 2161 if (TraceNewOopMapGeneration) tty->print_cr("Report result pass");
duke@435 2162
duke@435 2163 // We now want to report the result of the parse
duke@435 2164 _report_result = true;
duke@435 2165
duke@435 2166 // Prolog code
duke@435 2167 fill_stackmap_prolog(_gc_points);
duke@435 2168
duke@435 2169 // Mark everything changed, then do one interpretation pass.
duke@435 2170 for (int i = 0; i<_bb_count; i++) {
duke@435 2171 if (_basic_blocks[i].is_reachable()) {
duke@435 2172 _basic_blocks[i].set_changed(true);
duke@435 2173 interp_bb(&_basic_blocks[i]);
duke@435 2174 }
duke@435 2175 }
duke@435 2176
duke@435 2177 // Note: Since we are skipping dead-code when we are reporting results, then
duke@435 2178 // the no. of encountered gc-points might be fewer than the previously number
duke@435 2179 // we have counted. (dead-code is a pain - it should be removed before we get here)
duke@435 2180 fill_stackmap_epilog();
duke@435 2181
duke@435 2182 // Report initvars
duke@435 2183 fill_init_vars(_init_vars);
duke@435 2184
duke@435 2185 _report_result = false;
duke@435 2186 }
duke@435 2187
duke@435 2188 void GenerateOopMap::result_for_basicblock(int bci) {
duke@435 2189 if (TraceNewOopMapGeneration) tty->print_cr("Report result pass for basicblock");
duke@435 2190
duke@435 2191 // We now want to report the result of the parse
duke@435 2192 _report_result = true;
duke@435 2193
duke@435 2194 // Find basicblock and report results
duke@435 2195 BasicBlock* bb = get_basic_block_containing(bci);
morris@4773 2196 guarantee(bb != NULL, "no basic block for bci");
duke@435 2197 assert(bb->is_reachable(), "getting result from unreachable basicblock");
duke@435 2198 bb->set_changed(true);
duke@435 2199 interp_bb(bb);
duke@435 2200 }
duke@435 2201
duke@435 2202 //
duke@435 2203 // Conflict handling code
duke@435 2204 //
duke@435 2205
duke@435 2206 void GenerateOopMap::record_refval_conflict(int varNo) {
duke@435 2207 assert(varNo>=0 && varNo< _max_locals, "index out of range");
duke@435 2208
duke@435 2209 if (TraceOopMapRewrites) {
duke@435 2210 tty->print("### Conflict detected (local no: %d)\n", varNo);
duke@435 2211 }
duke@435 2212
duke@435 2213 if (!_new_var_map) {
duke@435 2214 _new_var_map = NEW_RESOURCE_ARRAY(int, _max_locals);
duke@435 2215 for (int k = 0; k < _max_locals; k++) _new_var_map[k] = k;
duke@435 2216 }
duke@435 2217
duke@435 2218 if ( _new_var_map[varNo] == varNo) {
duke@435 2219 // Check if max. number of locals has been reached
duke@435 2220 if (_max_locals + _nof_refval_conflicts >= MAX_LOCAL_VARS) {
duke@435 2221 report_error("Rewriting exceeded local variable limit");
duke@435 2222 return;
duke@435 2223 }
duke@435 2224 _new_var_map[varNo] = _max_locals + _nof_refval_conflicts;
duke@435 2225 _nof_refval_conflicts++;
duke@435 2226 }
duke@435 2227 }
duke@435 2228
duke@435 2229 void GenerateOopMap::rewrite_refval_conflicts()
duke@435 2230 {
duke@435 2231 // We can get here two ways: Either a rewrite conflict was detected, or
duke@435 2232 // an uninitialize reference was detected. In the second case, we do not
duke@435 2233 // do any rewriting, we just want to recompute the reference set with the
duke@435 2234 // new information
duke@435 2235
duke@435 2236 int nof_conflicts = 0; // Used for debugging only
duke@435 2237
duke@435 2238 if ( _nof_refval_conflicts == 0 )
duke@435 2239 return;
duke@435 2240
duke@435 2241 // Check if rewrites are allowed in this parse.
duke@435 2242 if (!allow_rewrites() && !IgnoreRewrites) {
duke@435 2243 fatal("Rewriting method not allowed at this stage");
duke@435 2244 }
duke@435 2245
duke@435 2246
duke@435 2247 // This following flag is to tempoary supress rewrites. The locals that might conflict will
duke@435 2248 // all be set to contain values. This is UNSAFE - however, until the rewriting has been completely
duke@435 2249 // tested it is nice to have.
duke@435 2250 if (IgnoreRewrites) {
duke@435 2251 if (Verbose) {
duke@435 2252 tty->print("rewrites suppressed for local no. ");
duke@435 2253 for (int l = 0; l < _max_locals; l++) {
duke@435 2254 if (_new_var_map[l] != l) {
duke@435 2255 tty->print("%d ", l);
duke@435 2256 vars()[l] = CellTypeState::value;
duke@435 2257 }
duke@435 2258 }
duke@435 2259 tty->cr();
duke@435 2260 }
duke@435 2261
duke@435 2262 // That was that...
duke@435 2263 _new_var_map = NULL;
duke@435 2264 _nof_refval_conflicts = 0;
duke@435 2265 _conflict = false;
duke@435 2266
duke@435 2267 return;
duke@435 2268 }
duke@435 2269
duke@435 2270 // Tracing flag
duke@435 2271 _did_rewriting = true;
duke@435 2272
duke@435 2273 if (TraceOopMapRewrites) {
duke@435 2274 tty->print_cr("ref/value conflict for method %s - bytecodes are getting rewritten", method()->name()->as_C_string());
duke@435 2275 method()->print();
duke@435 2276 method()->print_codes();
duke@435 2277 }
duke@435 2278
duke@435 2279 assert(_new_var_map!=NULL, "nothing to rewrite");
duke@435 2280 assert(_conflict==true, "We should not be here");
duke@435 2281
duke@435 2282 compute_ret_adr_at_TOS();
duke@435 2283 if (!_got_error) {
duke@435 2284 for (int k = 0; k < _max_locals && !_got_error; k++) {
duke@435 2285 if (_new_var_map[k] != k) {
duke@435 2286 if (TraceOopMapRewrites) {
duke@435 2287 tty->print_cr("Rewriting: %d -> %d", k, _new_var_map[k]);
duke@435 2288 }
duke@435 2289 rewrite_refval_conflict(k, _new_var_map[k]);
duke@435 2290 if (_got_error) return;
duke@435 2291 nof_conflicts++;
duke@435 2292 }
duke@435 2293 }
duke@435 2294 }
duke@435 2295
duke@435 2296 assert(nof_conflicts == _nof_refval_conflicts, "sanity check");
duke@435 2297
duke@435 2298 // Adjust the number of locals
duke@435 2299 method()->set_max_locals(_max_locals+_nof_refval_conflicts);
duke@435 2300 _max_locals += _nof_refval_conflicts;
duke@435 2301
duke@435 2302 // That was that...
duke@435 2303 _new_var_map = NULL;
duke@435 2304 _nof_refval_conflicts = 0;
duke@435 2305 }
duke@435 2306
duke@435 2307 void GenerateOopMap::rewrite_refval_conflict(int from, int to) {
duke@435 2308 bool startOver;
duke@435 2309 do {
duke@435 2310 // Make sure that the BytecodeStream is constructed in the loop, since
duke@435 2311 // during rewriting a new method oop is going to be used, and the next time
duke@435 2312 // around we want to use that.
duke@435 2313 BytecodeStream bcs(_method);
duke@435 2314 startOver = false;
duke@435 2315
coleenp@4037 2316 while( !startOver && !_got_error &&
coleenp@4037 2317 // test bcs in case method changed and it became invalid
coleenp@4037 2318 bcs.next() >=0) {
duke@435 2319 startOver = rewrite_refval_conflict_inst(&bcs, from, to);
duke@435 2320 }
duke@435 2321 } while (startOver && !_got_error);
duke@435 2322 }
duke@435 2323
duke@435 2324 /* If the current instruction is one that uses local variable "from"
duke@435 2325 in a ref way, change it to use "to". There's a subtle reason why we
duke@435 2326 renumber the ref uses and not the non-ref uses: non-ref uses may be
duke@435 2327 2 slots wide (double, long) which would necessitate keeping track of
duke@435 2328 whether we should add one or two variables to the method. If the change
duke@435 2329 affected the width of some instruction, returns "TRUE"; otherwise, returns "FALSE".
duke@435 2330 Another reason for moving ref's value is for solving (addr, ref) conflicts, which
duke@435 2331 both uses aload/astore methods.
duke@435 2332 */
duke@435 2333 bool GenerateOopMap::rewrite_refval_conflict_inst(BytecodeStream *itr, int from, int to) {
duke@435 2334 Bytecodes::Code bc = itr->code();
duke@435 2335 int index;
duke@435 2336 int bci = itr->bci();
duke@435 2337
duke@435 2338 if (is_aload(itr, &index) && index == from) {
duke@435 2339 if (TraceOopMapRewrites) {
duke@435 2340 tty->print_cr("Rewriting aload at bci: %d", bci);
duke@435 2341 }
duke@435 2342 return rewrite_load_or_store(itr, Bytecodes::_aload, Bytecodes::_aload_0, to);
duke@435 2343 }
duke@435 2344
duke@435 2345 if (is_astore(itr, &index) && index == from) {
duke@435 2346 if (!stack_top_holds_ret_addr(bci)) {
duke@435 2347 if (TraceOopMapRewrites) {
duke@435 2348 tty->print_cr("Rewriting astore at bci: %d", bci);
duke@435 2349 }
duke@435 2350 return rewrite_load_or_store(itr, Bytecodes::_astore, Bytecodes::_astore_0, to);
duke@435 2351 } else {
duke@435 2352 if (TraceOopMapRewrites) {
duke@435 2353 tty->print_cr("Supress rewriting of astore at bci: %d", bci);
duke@435 2354 }
duke@435 2355 }
duke@435 2356 }
duke@435 2357
duke@435 2358 return false;
duke@435 2359 }
duke@435 2360
duke@435 2361 // The argument to this method is:
duke@435 2362 // bc : Current bytecode
duke@435 2363 // bcN : either _aload or _astore
duke@435 2364 // bc0 : either _aload_0 or _astore_0
duke@435 2365 bool GenerateOopMap::rewrite_load_or_store(BytecodeStream *bcs, Bytecodes::Code bcN, Bytecodes::Code bc0, unsigned int varNo) {
duke@435 2366 assert(bcN == Bytecodes::_astore || bcN == Bytecodes::_aload, "wrong argument (bcN)");
duke@435 2367 assert(bc0 == Bytecodes::_astore_0 || bc0 == Bytecodes::_aload_0, "wrong argument (bc0)");
never@2462 2368 int ilen = Bytecodes::length_at(_method(), bcs->bcp());
duke@435 2369 int newIlen;
duke@435 2370
duke@435 2371 if (ilen == 4) {
duke@435 2372 // Original instruction was wide; keep it wide for simplicity
duke@435 2373 newIlen = 4;
duke@435 2374 } else if (varNo < 4)
duke@435 2375 newIlen = 1;
duke@435 2376 else if (varNo >= 256)
duke@435 2377 newIlen = 4;
duke@435 2378 else
duke@435 2379 newIlen = 2;
duke@435 2380
duke@435 2381 // If we need to relocate in order to patch the byte, we
duke@435 2382 // do the patching in a temp. buffer, that is passed to the reloc.
duke@435 2383 // The patching of the bytecode stream is then done by the Relocator.
duke@435 2384 // This is neccesary, since relocating the instruction at a certain bci, might
duke@435 2385 // also relocate that instruction, e.g., if a _goto before it gets widen to a _goto_w.
duke@435 2386 // Hence, we do not know which bci to patch after relocation.
duke@435 2387
duke@435 2388 assert(newIlen <= 4, "sanity check");
duke@435 2389 u_char inst_buffer[4]; // Max. instruction size is 4.
duke@435 2390 address bcp;
duke@435 2391
duke@435 2392 if (newIlen != ilen) {
duke@435 2393 // Relocation needed do patching in temp. buffer
duke@435 2394 bcp = (address)inst_buffer;
duke@435 2395 } else {
duke@435 2396 bcp = _method->bcp_from(bcs->bci());
duke@435 2397 }
duke@435 2398
coleenp@4037 2399 // Patch either directly in Method* or in temp. buffer
duke@435 2400 if (newIlen == 1) {
duke@435 2401 assert(varNo < 4, "varNo too large");
duke@435 2402 *bcp = bc0 + varNo;
duke@435 2403 } else if (newIlen == 2) {
duke@435 2404 assert(varNo < 256, "2-byte index needed!");
duke@435 2405 *(bcp + 0) = bcN;
duke@435 2406 *(bcp + 1) = varNo;
duke@435 2407 } else {
duke@435 2408 assert(newIlen == 4, "Wrong instruction length");
duke@435 2409 *(bcp + 0) = Bytecodes::_wide;
duke@435 2410 *(bcp + 1) = bcN;
duke@435 2411 Bytes::put_Java_u2(bcp+2, varNo);
duke@435 2412 }
duke@435 2413
duke@435 2414 if (newIlen != ilen) {
duke@435 2415 expand_current_instr(bcs->bci(), ilen, newIlen, inst_buffer);
duke@435 2416 }
duke@435 2417
duke@435 2418
duke@435 2419 return (newIlen != ilen);
duke@435 2420 }
duke@435 2421
duke@435 2422 class RelocCallback : public RelocatorListener {
duke@435 2423 private:
duke@435 2424 GenerateOopMap* _gom;
duke@435 2425 public:
duke@435 2426 RelocCallback(GenerateOopMap* gom) { _gom = gom; };
duke@435 2427
duke@435 2428 // Callback method
duke@435 2429 virtual void relocated(int bci, int delta, int new_code_length) {
duke@435 2430 _gom->update_basic_blocks (bci, delta, new_code_length);
duke@435 2431 _gom->update_ret_adr_at_TOS(bci, delta);
duke@435 2432 _gom->_rt.update_ret_table (bci, delta);
duke@435 2433 }
duke@435 2434 };
duke@435 2435
duke@435 2436 // Returns true if expanding was succesful. Otherwise, reports an error and
duke@435 2437 // returns false.
duke@435 2438 void GenerateOopMap::expand_current_instr(int bci, int ilen, int newIlen, u_char inst_buffer[]) {
duke@435 2439 Thread *THREAD = Thread::current(); // Could really have TRAPS argument.
duke@435 2440 RelocCallback rcb(this);
duke@435 2441 Relocator rc(_method, &rcb);
duke@435 2442 methodHandle m= rc.insert_space_at(bci, newIlen, inst_buffer, THREAD);
duke@435 2443 if (m.is_null() || HAS_PENDING_EXCEPTION) {
duke@435 2444 report_error("could not rewrite method - exception occurred or bytecode buffer overflow");
duke@435 2445 return;
duke@435 2446 }
duke@435 2447
duke@435 2448 // Relocator returns a new method oop.
duke@435 2449 _did_relocation = true;
duke@435 2450 _method = m;
duke@435 2451 }
duke@435 2452
duke@435 2453
duke@435 2454 bool GenerateOopMap::is_astore(BytecodeStream *itr, int *index) {
duke@435 2455 Bytecodes::Code bc = itr->code();
duke@435 2456 switch(bc) {
duke@435 2457 case Bytecodes::_astore_0:
duke@435 2458 case Bytecodes::_astore_1:
duke@435 2459 case Bytecodes::_astore_2:
duke@435 2460 case Bytecodes::_astore_3:
duke@435 2461 *index = bc - Bytecodes::_astore_0;
duke@435 2462 return true;
duke@435 2463 case Bytecodes::_astore:
duke@435 2464 *index = itr->get_index();
duke@435 2465 return true;
duke@435 2466 }
duke@435 2467 return false;
duke@435 2468 }
duke@435 2469
duke@435 2470 bool GenerateOopMap::is_aload(BytecodeStream *itr, int *index) {
duke@435 2471 Bytecodes::Code bc = itr->code();
duke@435 2472 switch(bc) {
duke@435 2473 case Bytecodes::_aload_0:
duke@435 2474 case Bytecodes::_aload_1:
duke@435 2475 case Bytecodes::_aload_2:
duke@435 2476 case Bytecodes::_aload_3:
duke@435 2477 *index = bc - Bytecodes::_aload_0;
duke@435 2478 return true;
duke@435 2479
duke@435 2480 case Bytecodes::_aload:
duke@435 2481 *index = itr->get_index();
duke@435 2482 return true;
duke@435 2483 }
duke@435 2484 return false;
duke@435 2485 }
duke@435 2486
duke@435 2487
duke@435 2488 // Return true iff the top of the operand stack holds a return address at
duke@435 2489 // the current instruction
duke@435 2490 bool GenerateOopMap::stack_top_holds_ret_addr(int bci) {
duke@435 2491 for(int i = 0; i < _ret_adr_tos->length(); i++) {
duke@435 2492 if (_ret_adr_tos->at(i) == bci)
duke@435 2493 return true;
duke@435 2494 }
duke@435 2495
duke@435 2496 return false;
duke@435 2497 }
duke@435 2498
duke@435 2499 void GenerateOopMap::compute_ret_adr_at_TOS() {
duke@435 2500 assert(_ret_adr_tos != NULL, "must be initialized");
duke@435 2501 _ret_adr_tos->clear();
duke@435 2502
duke@435 2503 for (int i = 0; i < bb_count(); i++) {
duke@435 2504 BasicBlock* bb = &_basic_blocks[i];
duke@435 2505
duke@435 2506 // Make sure to only check basicblocks that are reachable
duke@435 2507 if (bb->is_reachable()) {
duke@435 2508
duke@435 2509 // For each Basic block we check all instructions
duke@435 2510 BytecodeStream bcs(_method);
duke@435 2511 bcs.set_interval(bb->_bci, next_bb_start_pc(bb));
duke@435 2512
duke@435 2513 restore_state(bb);
duke@435 2514
duke@435 2515 while (bcs.next()>=0 && !_got_error) {
duke@435 2516 // TDT: should this be is_good_address() ?
duke@435 2517 if (_stack_top > 0 && stack()[_stack_top-1].is_address()) {
duke@435 2518 _ret_adr_tos->append(bcs.bci());
duke@435 2519 if (TraceNewOopMapGeneration) {
duke@435 2520 tty->print_cr("Ret_adr TOS at bci: %d", bcs.bci());
duke@435 2521 }
duke@435 2522 }
duke@435 2523 interp1(&bcs);
duke@435 2524 }
duke@435 2525 }
duke@435 2526 }
duke@435 2527 }
duke@435 2528
duke@435 2529 void GenerateOopMap::update_ret_adr_at_TOS(int bci, int delta) {
duke@435 2530 for(int i = 0; i < _ret_adr_tos->length(); i++) {
duke@435 2531 int v = _ret_adr_tos->at(i);
duke@435 2532 if (v > bci) _ret_adr_tos->at_put(i, v + delta);
duke@435 2533 }
duke@435 2534 }
duke@435 2535
duke@435 2536 // ===================================================================
duke@435 2537
duke@435 2538 #ifndef PRODUCT
duke@435 2539 int ResolveOopMapConflicts::_nof_invocations = 0;
duke@435 2540 int ResolveOopMapConflicts::_nof_rewrites = 0;
duke@435 2541 int ResolveOopMapConflicts::_nof_relocations = 0;
duke@435 2542 #endif
duke@435 2543
duke@435 2544 methodHandle ResolveOopMapConflicts::do_potential_rewrite(TRAPS) {
duke@435 2545 compute_map(CHECK_(methodHandle()));
duke@435 2546
duke@435 2547 #ifndef PRODUCT
duke@435 2548 // Tracking and statistics
duke@435 2549 if (PrintRewrites) {
duke@435 2550 _nof_invocations++;
duke@435 2551 if (did_rewriting()) {
duke@435 2552 _nof_rewrites++;
duke@435 2553 if (did_relocation()) _nof_relocations++;
duke@435 2554 tty->print("Method was rewritten %s: ", (did_relocation()) ? "and relocated" : "");
duke@435 2555 method()->print_value(); tty->cr();
duke@435 2556 tty->print_cr("Cand.: %d rewrts: %d (%d%%) reloc.: %d (%d%%)",
duke@435 2557 _nof_invocations,
duke@435 2558 _nof_rewrites, (_nof_rewrites * 100) / _nof_invocations,
duke@435 2559 _nof_relocations, (_nof_relocations * 100) / _nof_invocations);
duke@435 2560 }
duke@435 2561 }
duke@435 2562 #endif
duke@435 2563 return methodHandle(THREAD, method());
duke@435 2564 }

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