src/share/vm/interpreter/bytecodeInterpreter.cpp

Mon, 29 Oct 2012 11:08:48 -0700

author
twisti
date
Mon, 29 Oct 2012 11:08:48 -0700
changeset 4237
a3e2f723f2a5
parent 4142
d8ce2825b193
child 4278
070d523b96a7
permissions
-rw-r--r--

8000780: make Zero build and run with JDK8
Reviewed-by: coleenp, dholmes, twisti
Contributed-by: Roman Kennke <rkennke@redhat.com>

duke@435 1 /*
coleenp@4037 2 * Copyright (c) 2002, 2012, 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
duke@435 25 // no precompiled headers
stefank@2314 26 #include "classfile/vmSymbols.hpp"
stefank@2314 27 #include "gc_interface/collectedHeap.hpp"
stefank@2314 28 #include "interpreter/bytecodeHistogram.hpp"
stefank@2314 29 #include "interpreter/bytecodeInterpreter.hpp"
stefank@2314 30 #include "interpreter/bytecodeInterpreter.inline.hpp"
stefank@2314 31 #include "interpreter/interpreter.hpp"
stefank@2314 32 #include "interpreter/interpreterRuntime.hpp"
stefank@2314 33 #include "memory/cardTableModRefBS.hpp"
stefank@2314 34 #include "memory/resourceArea.hpp"
stefank@2314 35 #include "oops/objArrayKlass.hpp"
stefank@2314 36 #include "oops/oop.inline.hpp"
stefank@2314 37 #include "prims/jvmtiExport.hpp"
stefank@2314 38 #include "runtime/frame.inline.hpp"
stefank@2314 39 #include "runtime/handles.inline.hpp"
stefank@2314 40 #include "runtime/interfaceSupport.hpp"
stefank@2314 41 #include "runtime/sharedRuntime.hpp"
stefank@2314 42 #include "runtime/threadCritical.hpp"
stefank@2314 43 #include "utilities/exceptions.hpp"
stefank@2314 44 #ifdef TARGET_OS_ARCH_linux_x86
stefank@2314 45 # include "orderAccess_linux_x86.inline.hpp"
stefank@2314 46 #endif
stefank@2314 47 #ifdef TARGET_OS_ARCH_linux_sparc
stefank@2314 48 # include "orderAccess_linux_sparc.inline.hpp"
stefank@2314 49 #endif
stefank@2314 50 #ifdef TARGET_OS_ARCH_linux_zero
stefank@2314 51 # include "orderAccess_linux_zero.inline.hpp"
stefank@2314 52 #endif
stefank@2314 53 #ifdef TARGET_OS_ARCH_solaris_x86
stefank@2314 54 # include "orderAccess_solaris_x86.inline.hpp"
stefank@2314 55 #endif
stefank@2314 56 #ifdef TARGET_OS_ARCH_solaris_sparc
stefank@2314 57 # include "orderAccess_solaris_sparc.inline.hpp"
stefank@2314 58 #endif
stefank@2314 59 #ifdef TARGET_OS_ARCH_windows_x86
stefank@2314 60 # include "orderAccess_windows_x86.inline.hpp"
stefank@2314 61 #endif
bobv@2508 62 #ifdef TARGET_OS_ARCH_linux_arm
bobv@2508 63 # include "orderAccess_linux_arm.inline.hpp"
bobv@2508 64 #endif
bobv@2508 65 #ifdef TARGET_OS_ARCH_linux_ppc
bobv@2508 66 # include "orderAccess_linux_ppc.inline.hpp"
bobv@2508 67 #endif
never@3156 68 #ifdef TARGET_OS_ARCH_bsd_x86
never@3156 69 # include "orderAccess_bsd_x86.inline.hpp"
never@3156 70 #endif
never@3156 71 #ifdef TARGET_OS_ARCH_bsd_zero
never@3156 72 # include "orderAccess_bsd_zero.inline.hpp"
never@3156 73 #endif
stefank@2314 74
stefank@2314 75
stefank@2314 76 // no precompiled headers
duke@435 77 #ifdef CC_INTERP
duke@435 78
duke@435 79 /*
duke@435 80 * USELABELS - If using GCC, then use labels for the opcode dispatching
duke@435 81 * rather -then a switch statement. This improves performance because it
duke@435 82 * gives us the oportunity to have the instructions that calculate the
duke@435 83 * next opcode to jump to be intermixed with the rest of the instructions
duke@435 84 * that implement the opcode (see UPDATE_PC_AND_TOS_AND_CONTINUE macro).
duke@435 85 */
duke@435 86 #undef USELABELS
duke@435 87 #ifdef __GNUC__
duke@435 88 /*
duke@435 89 ASSERT signifies debugging. It is much easier to step thru bytecodes if we
duke@435 90 don't use the computed goto approach.
duke@435 91 */
duke@435 92 #ifndef ASSERT
duke@435 93 #define USELABELS
duke@435 94 #endif
duke@435 95 #endif
duke@435 96
duke@435 97 #undef CASE
duke@435 98 #ifdef USELABELS
duke@435 99 #define CASE(opcode) opc ## opcode
duke@435 100 #define DEFAULT opc_default
duke@435 101 #else
duke@435 102 #define CASE(opcode) case Bytecodes:: opcode
duke@435 103 #define DEFAULT default
duke@435 104 #endif
duke@435 105
duke@435 106 /*
duke@435 107 * PREFETCH_OPCCODE - Some compilers do better if you prefetch the next
duke@435 108 * opcode before going back to the top of the while loop, rather then having
duke@435 109 * the top of the while loop handle it. This provides a better opportunity
duke@435 110 * for instruction scheduling. Some compilers just do this prefetch
duke@435 111 * automatically. Some actually end up with worse performance if you
duke@435 112 * force the prefetch. Solaris gcc seems to do better, but cc does worse.
duke@435 113 */
duke@435 114 #undef PREFETCH_OPCCODE
duke@435 115 #define PREFETCH_OPCCODE
duke@435 116
duke@435 117 /*
duke@435 118 Interpreter safepoint: it is expected that the interpreter will have no live
duke@435 119 handles of its own creation live at an interpreter safepoint. Therefore we
duke@435 120 run a HandleMarkCleaner and trash all handles allocated in the call chain
duke@435 121 since the JavaCalls::call_helper invocation that initiated the chain.
duke@435 122 There really shouldn't be any handles remaining to trash but this is cheap
duke@435 123 in relation to a safepoint.
duke@435 124 */
duke@435 125 #define SAFEPOINT \
duke@435 126 if ( SafepointSynchronize::is_synchronizing()) { \
duke@435 127 { \
duke@435 128 /* zap freed handles rather than GC'ing them */ \
duke@435 129 HandleMarkCleaner __hmc(THREAD); \
duke@435 130 } \
duke@435 131 CALL_VM(SafepointSynchronize::block(THREAD), handle_exception); \
duke@435 132 }
duke@435 133
duke@435 134 /*
duke@435 135 * VM_JAVA_ERROR - Macro for throwing a java exception from
duke@435 136 * the interpreter loop. Should really be a CALL_VM but there
duke@435 137 * is no entry point to do the transition to vm so we just
duke@435 138 * do it by hand here.
duke@435 139 */
duke@435 140 #define VM_JAVA_ERROR_NO_JUMP(name, msg) \
duke@435 141 DECACHE_STATE(); \
duke@435 142 SET_LAST_JAVA_FRAME(); \
duke@435 143 { \
duke@435 144 ThreadInVMfromJava trans(THREAD); \
duke@435 145 Exceptions::_throw_msg(THREAD, __FILE__, __LINE__, name, msg); \
duke@435 146 } \
duke@435 147 RESET_LAST_JAVA_FRAME(); \
duke@435 148 CACHE_STATE();
duke@435 149
duke@435 150 // Normal throw of a java error
duke@435 151 #define VM_JAVA_ERROR(name, msg) \
duke@435 152 VM_JAVA_ERROR_NO_JUMP(name, msg) \
duke@435 153 goto handle_exception;
duke@435 154
duke@435 155 #ifdef PRODUCT
duke@435 156 #define DO_UPDATE_INSTRUCTION_COUNT(opcode)
duke@435 157 #else
duke@435 158 #define DO_UPDATE_INSTRUCTION_COUNT(opcode) \
duke@435 159 { \
duke@435 160 BytecodeCounter::_counter_value++; \
duke@435 161 BytecodeHistogram::_counters[(Bytecodes::Code)opcode]++; \
duke@435 162 if (StopInterpreterAt && StopInterpreterAt == BytecodeCounter::_counter_value) os::breakpoint(); \
duke@435 163 if (TraceBytecodes) { \
duke@435 164 CALL_VM((void)SharedRuntime::trace_bytecode(THREAD, 0, \
duke@435 165 topOfStack[Interpreter::expr_index_at(1)], \
duke@435 166 topOfStack[Interpreter::expr_index_at(2)]), \
duke@435 167 handle_exception); \
duke@435 168 } \
duke@435 169 }
duke@435 170 #endif
duke@435 171
duke@435 172 #undef DEBUGGER_SINGLE_STEP_NOTIFY
duke@435 173 #ifdef VM_JVMTI
duke@435 174 /* NOTE: (kbr) This macro must be called AFTER the PC has been
duke@435 175 incremented. JvmtiExport::at_single_stepping_point() may cause a
duke@435 176 breakpoint opcode to get inserted at the current PC to allow the
duke@435 177 debugger to coalesce single-step events.
duke@435 178
duke@435 179 As a result if we call at_single_stepping_point() we refetch opcode
duke@435 180 to get the current opcode. This will override any other prefetching
duke@435 181 that might have occurred.
duke@435 182 */
duke@435 183 #define DEBUGGER_SINGLE_STEP_NOTIFY() \
duke@435 184 { \
duke@435 185 if (_jvmti_interp_events) { \
duke@435 186 if (JvmtiExport::should_post_single_step()) { \
duke@435 187 DECACHE_STATE(); \
duke@435 188 SET_LAST_JAVA_FRAME(); \
duke@435 189 ThreadInVMfromJava trans(THREAD); \
duke@435 190 JvmtiExport::at_single_stepping_point(THREAD, \
duke@435 191 istate->method(), \
duke@435 192 pc); \
duke@435 193 RESET_LAST_JAVA_FRAME(); \
duke@435 194 CACHE_STATE(); \
duke@435 195 if (THREAD->pop_frame_pending() && \
duke@435 196 !THREAD->pop_frame_in_process()) { \
duke@435 197 goto handle_Pop_Frame; \
duke@435 198 } \
duke@435 199 opcode = *pc; \
duke@435 200 } \
duke@435 201 } \
duke@435 202 }
duke@435 203 #else
duke@435 204 #define DEBUGGER_SINGLE_STEP_NOTIFY()
duke@435 205 #endif
duke@435 206
duke@435 207 /*
duke@435 208 * CONTINUE - Macro for executing the next opcode.
duke@435 209 */
duke@435 210 #undef CONTINUE
duke@435 211 #ifdef USELABELS
duke@435 212 // Have to do this dispatch this way in C++ because otherwise gcc complains about crossing an
duke@435 213 // initialization (which is is the initialization of the table pointer...)
coleenp@955 214 #define DISPATCH(opcode) goto *(void*)dispatch_table[opcode]
duke@435 215 #define CONTINUE { \
duke@435 216 opcode = *pc; \
duke@435 217 DO_UPDATE_INSTRUCTION_COUNT(opcode); \
duke@435 218 DEBUGGER_SINGLE_STEP_NOTIFY(); \
duke@435 219 DISPATCH(opcode); \
duke@435 220 }
duke@435 221 #else
duke@435 222 #ifdef PREFETCH_OPCCODE
duke@435 223 #define CONTINUE { \
duke@435 224 opcode = *pc; \
duke@435 225 DO_UPDATE_INSTRUCTION_COUNT(opcode); \
duke@435 226 DEBUGGER_SINGLE_STEP_NOTIFY(); \
duke@435 227 continue; \
duke@435 228 }
duke@435 229 #else
duke@435 230 #define CONTINUE { \
duke@435 231 DO_UPDATE_INSTRUCTION_COUNT(opcode); \
duke@435 232 DEBUGGER_SINGLE_STEP_NOTIFY(); \
duke@435 233 continue; \
duke@435 234 }
duke@435 235 #endif
duke@435 236 #endif
duke@435 237
duke@435 238
duke@435 239 #define UPDATE_PC(opsize) {pc += opsize; }
duke@435 240 /*
duke@435 241 * UPDATE_PC_AND_TOS - Macro for updating the pc and topOfStack.
duke@435 242 */
duke@435 243 #undef UPDATE_PC_AND_TOS
duke@435 244 #define UPDATE_PC_AND_TOS(opsize, stack) \
duke@435 245 {pc += opsize; MORE_STACK(stack); }
duke@435 246
duke@435 247 /*
duke@435 248 * UPDATE_PC_AND_TOS_AND_CONTINUE - Macro for updating the pc and topOfStack,
duke@435 249 * and executing the next opcode. It's somewhat similar to the combination
duke@435 250 * of UPDATE_PC_AND_TOS and CONTINUE, but with some minor optimizations.
duke@435 251 */
duke@435 252 #undef UPDATE_PC_AND_TOS_AND_CONTINUE
duke@435 253 #ifdef USELABELS
duke@435 254 #define UPDATE_PC_AND_TOS_AND_CONTINUE(opsize, stack) { \
duke@435 255 pc += opsize; opcode = *pc; MORE_STACK(stack); \
duke@435 256 DO_UPDATE_INSTRUCTION_COUNT(opcode); \
duke@435 257 DEBUGGER_SINGLE_STEP_NOTIFY(); \
duke@435 258 DISPATCH(opcode); \
duke@435 259 }
duke@435 260
duke@435 261 #define UPDATE_PC_AND_CONTINUE(opsize) { \
duke@435 262 pc += opsize; opcode = *pc; \
duke@435 263 DO_UPDATE_INSTRUCTION_COUNT(opcode); \
duke@435 264 DEBUGGER_SINGLE_STEP_NOTIFY(); \
duke@435 265 DISPATCH(opcode); \
duke@435 266 }
duke@435 267 #else
duke@435 268 #ifdef PREFETCH_OPCCODE
duke@435 269 #define UPDATE_PC_AND_TOS_AND_CONTINUE(opsize, stack) { \
duke@435 270 pc += opsize; opcode = *pc; MORE_STACK(stack); \
duke@435 271 DO_UPDATE_INSTRUCTION_COUNT(opcode); \
duke@435 272 DEBUGGER_SINGLE_STEP_NOTIFY(); \
duke@435 273 goto do_continue; \
duke@435 274 }
duke@435 275
duke@435 276 #define UPDATE_PC_AND_CONTINUE(opsize) { \
duke@435 277 pc += opsize; opcode = *pc; \
duke@435 278 DO_UPDATE_INSTRUCTION_COUNT(opcode); \
duke@435 279 DEBUGGER_SINGLE_STEP_NOTIFY(); \
duke@435 280 goto do_continue; \
duke@435 281 }
duke@435 282 #else
duke@435 283 #define UPDATE_PC_AND_TOS_AND_CONTINUE(opsize, stack) { \
duke@435 284 pc += opsize; MORE_STACK(stack); \
duke@435 285 DO_UPDATE_INSTRUCTION_COUNT(opcode); \
duke@435 286 DEBUGGER_SINGLE_STEP_NOTIFY(); \
duke@435 287 goto do_continue; \
duke@435 288 }
duke@435 289
duke@435 290 #define UPDATE_PC_AND_CONTINUE(opsize) { \
duke@435 291 pc += opsize; \
duke@435 292 DO_UPDATE_INSTRUCTION_COUNT(opcode); \
duke@435 293 DEBUGGER_SINGLE_STEP_NOTIFY(); \
duke@435 294 goto do_continue; \
duke@435 295 }
duke@435 296 #endif /* PREFETCH_OPCCODE */
duke@435 297 #endif /* USELABELS */
duke@435 298
duke@435 299 // About to call a new method, update the save the adjusted pc and return to frame manager
duke@435 300 #define UPDATE_PC_AND_RETURN(opsize) \
duke@435 301 DECACHE_TOS(); \
duke@435 302 istate->set_bcp(pc+opsize); \
duke@435 303 return;
duke@435 304
duke@435 305
duke@435 306 #define METHOD istate->method()
duke@435 307 #define INVOCATION_COUNT METHOD->invocation_counter()
duke@435 308 #define BACKEDGE_COUNT METHOD->backedge_counter()
duke@435 309
duke@435 310
duke@435 311 #define INCR_INVOCATION_COUNT INVOCATION_COUNT->increment()
duke@435 312 #define OSR_REQUEST(res, branch_pc) \
duke@435 313 CALL_VM(res=InterpreterRuntime::frequency_counter_overflow(THREAD, branch_pc), handle_exception);
duke@435 314 /*
duke@435 315 * For those opcodes that need to have a GC point on a backwards branch
duke@435 316 */
duke@435 317
duke@435 318 // Backedge counting is kind of strange. The asm interpreter will increment
duke@435 319 // the backedge counter as a separate counter but it does it's comparisons
duke@435 320 // to the sum (scaled) of invocation counter and backedge count to make
duke@435 321 // a decision. Seems kind of odd to sum them together like that
duke@435 322
duke@435 323 // skip is delta from current bcp/bci for target, branch_pc is pre-branch bcp
duke@435 324
duke@435 325
duke@435 326 #define DO_BACKEDGE_CHECKS(skip, branch_pc) \
duke@435 327 if ((skip) <= 0) { \
twisti@1513 328 if (UseLoopCounter) { \
duke@435 329 bool do_OSR = UseOnStackReplacement; \
duke@435 330 BACKEDGE_COUNT->increment(); \
duke@435 331 if (do_OSR) do_OSR = BACKEDGE_COUNT->reached_InvocationLimit(); \
duke@435 332 if (do_OSR) { \
duke@435 333 nmethod* osr_nmethod; \
duke@435 334 OSR_REQUEST(osr_nmethod, branch_pc); \
duke@435 335 if (osr_nmethod != NULL && osr_nmethod->osr_entry_bci() != InvalidOSREntryBci) { \
twisti@1513 336 intptr_t* buf = SharedRuntime::OSR_migration_begin(THREAD); \
duke@435 337 istate->set_msg(do_osr); \
duke@435 338 istate->set_osr_buf((address)buf); \
duke@435 339 istate->set_osr_entry(osr_nmethod->osr_entry()); \
duke@435 340 return; \
duke@435 341 } \
duke@435 342 } \
duke@435 343 } /* UseCompiler ... */ \
duke@435 344 INCR_INVOCATION_COUNT; \
duke@435 345 SAFEPOINT; \
duke@435 346 }
duke@435 347
duke@435 348 /*
duke@435 349 * For those opcodes that need to have a GC point on a backwards branch
duke@435 350 */
duke@435 351
duke@435 352 /*
duke@435 353 * Macros for caching and flushing the interpreter state. Some local
duke@435 354 * variables need to be flushed out to the frame before we do certain
duke@435 355 * things (like pushing frames or becomming gc safe) and some need to
duke@435 356 * be recached later (like after popping a frame). We could use one
duke@435 357 * macro to cache or decache everything, but this would be less then
duke@435 358 * optimal because we don't always need to cache or decache everything
duke@435 359 * because some things we know are already cached or decached.
duke@435 360 */
duke@435 361 #undef DECACHE_TOS
duke@435 362 #undef CACHE_TOS
duke@435 363 #undef CACHE_PREV_TOS
duke@435 364 #define DECACHE_TOS() istate->set_stack(topOfStack);
duke@435 365
duke@435 366 #define CACHE_TOS() topOfStack = (intptr_t *)istate->stack();
duke@435 367
duke@435 368 #undef DECACHE_PC
duke@435 369 #undef CACHE_PC
duke@435 370 #define DECACHE_PC() istate->set_bcp(pc);
duke@435 371 #define CACHE_PC() pc = istate->bcp();
duke@435 372 #define CACHE_CP() cp = istate->constants();
duke@435 373 #define CACHE_LOCALS() locals = istate->locals();
duke@435 374 #undef CACHE_FRAME
duke@435 375 #define CACHE_FRAME()
duke@435 376
duke@435 377 /*
duke@435 378 * CHECK_NULL - Macro for throwing a NullPointerException if the object
duke@435 379 * passed is a null ref.
duke@435 380 * On some architectures/platforms it should be possible to do this implicitly
duke@435 381 */
duke@435 382 #undef CHECK_NULL
duke@435 383 #define CHECK_NULL(obj_) \
coleenp@955 384 if ((obj_) == NULL) { \
duke@435 385 VM_JAVA_ERROR(vmSymbols::java_lang_NullPointerException(), ""); \
bobv@2036 386 } \
bobv@2036 387 VERIFY_OOP(obj_)
duke@435 388
duke@435 389 #define VMdoubleConstZero() 0.0
duke@435 390 #define VMdoubleConstOne() 1.0
duke@435 391 #define VMlongConstZero() (max_jlong-max_jlong)
duke@435 392 #define VMlongConstOne() ((max_jlong-max_jlong)+1)
duke@435 393
duke@435 394 /*
duke@435 395 * Alignment
duke@435 396 */
duke@435 397 #define VMalignWordUp(val) (((uintptr_t)(val) + 3) & ~3)
duke@435 398
duke@435 399 // Decache the interpreter state that interpreter modifies directly (i.e. GC is indirect mod)
duke@435 400 #define DECACHE_STATE() DECACHE_PC(); DECACHE_TOS();
duke@435 401
duke@435 402 // Reload interpreter state after calling the VM or a possible GC
duke@435 403 #define CACHE_STATE() \
duke@435 404 CACHE_TOS(); \
duke@435 405 CACHE_PC(); \
duke@435 406 CACHE_CP(); \
duke@435 407 CACHE_LOCALS();
duke@435 408
duke@435 409 // Call the VM don't check for pending exceptions
duke@435 410 #define CALL_VM_NOCHECK(func) \
duke@435 411 DECACHE_STATE(); \
duke@435 412 SET_LAST_JAVA_FRAME(); \
duke@435 413 func; \
duke@435 414 RESET_LAST_JAVA_FRAME(); \
duke@435 415 CACHE_STATE(); \
duke@435 416 if (THREAD->pop_frame_pending() && \
duke@435 417 !THREAD->pop_frame_in_process()) { \
duke@435 418 goto handle_Pop_Frame; \
duke@435 419 }
duke@435 420
duke@435 421 // Call the VM and check for pending exceptions
duke@435 422 #define CALL_VM(func, label) { \
duke@435 423 CALL_VM_NOCHECK(func); \
duke@435 424 if (THREAD->has_pending_exception()) goto label; \
duke@435 425 }
duke@435 426
duke@435 427 /*
duke@435 428 * BytecodeInterpreter::run(interpreterState istate)
duke@435 429 * BytecodeInterpreter::runWithChecks(interpreterState istate)
duke@435 430 *
duke@435 431 * The real deal. This is where byte codes actually get interpreted.
duke@435 432 * Basically it's a big while loop that iterates until we return from
duke@435 433 * the method passed in.
duke@435 434 *
duke@435 435 * The runWithChecks is used if JVMTI is enabled.
duke@435 436 *
duke@435 437 */
duke@435 438 #if defined(VM_JVMTI)
duke@435 439 void
duke@435 440 BytecodeInterpreter::runWithChecks(interpreterState istate) {
duke@435 441 #else
duke@435 442 void
duke@435 443 BytecodeInterpreter::run(interpreterState istate) {
duke@435 444 #endif
duke@435 445
duke@435 446 // In order to simplify some tests based on switches set at runtime
duke@435 447 // we invoke the interpreter a single time after switches are enabled
duke@435 448 // and set simpler to to test variables rather than method calls or complex
duke@435 449 // boolean expressions.
duke@435 450
duke@435 451 static int initialized = 0;
duke@435 452 static int checkit = 0;
duke@435 453 static intptr_t* c_addr = NULL;
duke@435 454 static intptr_t c_value;
duke@435 455
duke@435 456 if (checkit && *c_addr != c_value) {
duke@435 457 os::breakpoint();
duke@435 458 }
duke@435 459 #ifdef VM_JVMTI
duke@435 460 static bool _jvmti_interp_events = 0;
duke@435 461 #endif
duke@435 462
duke@435 463 static int _compiling; // (UseCompiler || CountCompiledCalls)
duke@435 464
duke@435 465 #ifdef ASSERT
duke@435 466 if (istate->_msg != initialize) {
duke@435 467 assert(abs(istate->_stack_base - istate->_stack_limit) == (istate->_method->max_stack() + 1), "bad stack limit");
twisti@2084 468 #ifndef SHARK
twisti@2084 469 IA32_ONLY(assert(istate->_stack_limit == istate->_thread->last_Java_sp() + 1, "wrong"));
twisti@2084 470 #endif // !SHARK
duke@435 471 }
duke@435 472 // Verify linkages.
duke@435 473 interpreterState l = istate;
duke@435 474 do {
duke@435 475 assert(l == l->_self_link, "bad link");
duke@435 476 l = l->_prev_link;
duke@435 477 } while (l != NULL);
duke@435 478 // Screwups with stack management usually cause us to overwrite istate
duke@435 479 // save a copy so we can verify it.
duke@435 480 interpreterState orig = istate;
duke@435 481 #endif
duke@435 482
duke@435 483 static volatile jbyte* _byte_map_base; // adjusted card table base for oop store barrier
duke@435 484
duke@435 485 register intptr_t* topOfStack = (intptr_t *)istate->stack(); /* access with STACK macros */
duke@435 486 register address pc = istate->bcp();
duke@435 487 register jubyte opcode;
duke@435 488 register intptr_t* locals = istate->locals();
coleenp@4037 489 register ConstantPoolCache* cp = istate->constants(); // method()->constants()->cache()
duke@435 490 #ifdef LOTS_OF_REGS
duke@435 491 register JavaThread* THREAD = istate->thread();
duke@435 492 register volatile jbyte* BYTE_MAP_BASE = _byte_map_base;
duke@435 493 #else
duke@435 494 #undef THREAD
duke@435 495 #define THREAD istate->thread()
duke@435 496 #undef BYTE_MAP_BASE
duke@435 497 #define BYTE_MAP_BASE _byte_map_base
duke@435 498 #endif
duke@435 499
duke@435 500 #ifdef USELABELS
duke@435 501 const static void* const opclabels_data[256] = {
duke@435 502 /* 0x00 */ &&opc_nop, &&opc_aconst_null,&&opc_iconst_m1,&&opc_iconst_0,
duke@435 503 /* 0x04 */ &&opc_iconst_1,&&opc_iconst_2, &&opc_iconst_3, &&opc_iconst_4,
duke@435 504 /* 0x08 */ &&opc_iconst_5,&&opc_lconst_0, &&opc_lconst_1, &&opc_fconst_0,
duke@435 505 /* 0x0C */ &&opc_fconst_1,&&opc_fconst_2, &&opc_dconst_0, &&opc_dconst_1,
duke@435 506
duke@435 507 /* 0x10 */ &&opc_bipush, &&opc_sipush, &&opc_ldc, &&opc_ldc_w,
duke@435 508 /* 0x14 */ &&opc_ldc2_w, &&opc_iload, &&opc_lload, &&opc_fload,
duke@435 509 /* 0x18 */ &&opc_dload, &&opc_aload, &&opc_iload_0,&&opc_iload_1,
duke@435 510 /* 0x1C */ &&opc_iload_2,&&opc_iload_3,&&opc_lload_0,&&opc_lload_1,
duke@435 511
duke@435 512 /* 0x20 */ &&opc_lload_2,&&opc_lload_3,&&opc_fload_0,&&opc_fload_1,
duke@435 513 /* 0x24 */ &&opc_fload_2,&&opc_fload_3,&&opc_dload_0,&&opc_dload_1,
duke@435 514 /* 0x28 */ &&opc_dload_2,&&opc_dload_3,&&opc_aload_0,&&opc_aload_1,
duke@435 515 /* 0x2C */ &&opc_aload_2,&&opc_aload_3,&&opc_iaload, &&opc_laload,
duke@435 516
duke@435 517 /* 0x30 */ &&opc_faload, &&opc_daload, &&opc_aaload, &&opc_baload,
duke@435 518 /* 0x34 */ &&opc_caload, &&opc_saload, &&opc_istore, &&opc_lstore,
duke@435 519 /* 0x38 */ &&opc_fstore, &&opc_dstore, &&opc_astore, &&opc_istore_0,
duke@435 520 /* 0x3C */ &&opc_istore_1,&&opc_istore_2,&&opc_istore_3,&&opc_lstore_0,
duke@435 521
duke@435 522 /* 0x40 */ &&opc_lstore_1,&&opc_lstore_2,&&opc_lstore_3,&&opc_fstore_0,
duke@435 523 /* 0x44 */ &&opc_fstore_1,&&opc_fstore_2,&&opc_fstore_3,&&opc_dstore_0,
duke@435 524 /* 0x48 */ &&opc_dstore_1,&&opc_dstore_2,&&opc_dstore_3,&&opc_astore_0,
duke@435 525 /* 0x4C */ &&opc_astore_1,&&opc_astore_2,&&opc_astore_3,&&opc_iastore,
duke@435 526
duke@435 527 /* 0x50 */ &&opc_lastore,&&opc_fastore,&&opc_dastore,&&opc_aastore,
duke@435 528 /* 0x54 */ &&opc_bastore,&&opc_castore,&&opc_sastore,&&opc_pop,
duke@435 529 /* 0x58 */ &&opc_pop2, &&opc_dup, &&opc_dup_x1, &&opc_dup_x2,
duke@435 530 /* 0x5C */ &&opc_dup2, &&opc_dup2_x1,&&opc_dup2_x2,&&opc_swap,
duke@435 531
duke@435 532 /* 0x60 */ &&opc_iadd,&&opc_ladd,&&opc_fadd,&&opc_dadd,
duke@435 533 /* 0x64 */ &&opc_isub,&&opc_lsub,&&opc_fsub,&&opc_dsub,
duke@435 534 /* 0x68 */ &&opc_imul,&&opc_lmul,&&opc_fmul,&&opc_dmul,
duke@435 535 /* 0x6C */ &&opc_idiv,&&opc_ldiv,&&opc_fdiv,&&opc_ddiv,
duke@435 536
duke@435 537 /* 0x70 */ &&opc_irem, &&opc_lrem, &&opc_frem,&&opc_drem,
duke@435 538 /* 0x74 */ &&opc_ineg, &&opc_lneg, &&opc_fneg,&&opc_dneg,
duke@435 539 /* 0x78 */ &&opc_ishl, &&opc_lshl, &&opc_ishr,&&opc_lshr,
duke@435 540 /* 0x7C */ &&opc_iushr,&&opc_lushr,&&opc_iand,&&opc_land,
duke@435 541
duke@435 542 /* 0x80 */ &&opc_ior, &&opc_lor,&&opc_ixor,&&opc_lxor,
duke@435 543 /* 0x84 */ &&opc_iinc,&&opc_i2l,&&opc_i2f, &&opc_i2d,
duke@435 544 /* 0x88 */ &&opc_l2i, &&opc_l2f,&&opc_l2d, &&opc_f2i,
duke@435 545 /* 0x8C */ &&opc_f2l, &&opc_f2d,&&opc_d2i, &&opc_d2l,
duke@435 546
duke@435 547 /* 0x90 */ &&opc_d2f, &&opc_i2b, &&opc_i2c, &&opc_i2s,
duke@435 548 /* 0x94 */ &&opc_lcmp, &&opc_fcmpl,&&opc_fcmpg,&&opc_dcmpl,
duke@435 549 /* 0x98 */ &&opc_dcmpg,&&opc_ifeq, &&opc_ifne, &&opc_iflt,
duke@435 550 /* 0x9C */ &&opc_ifge, &&opc_ifgt, &&opc_ifle, &&opc_if_icmpeq,
duke@435 551
duke@435 552 /* 0xA0 */ &&opc_if_icmpne,&&opc_if_icmplt,&&opc_if_icmpge, &&opc_if_icmpgt,
duke@435 553 /* 0xA4 */ &&opc_if_icmple,&&opc_if_acmpeq,&&opc_if_acmpne, &&opc_goto,
duke@435 554 /* 0xA8 */ &&opc_jsr, &&opc_ret, &&opc_tableswitch,&&opc_lookupswitch,
duke@435 555 /* 0xAC */ &&opc_ireturn, &&opc_lreturn, &&opc_freturn, &&opc_dreturn,
duke@435 556
duke@435 557 /* 0xB0 */ &&opc_areturn, &&opc_return, &&opc_getstatic, &&opc_putstatic,
duke@435 558 /* 0xB4 */ &&opc_getfield, &&opc_putfield, &&opc_invokevirtual,&&opc_invokespecial,
twisti@2762 559 /* 0xB8 */ &&opc_invokestatic,&&opc_invokeinterface,&&opc_invokedynamic,&&opc_new,
duke@435 560 /* 0xBC */ &&opc_newarray, &&opc_anewarray, &&opc_arraylength, &&opc_athrow,
duke@435 561
duke@435 562 /* 0xC0 */ &&opc_checkcast, &&opc_instanceof, &&opc_monitorenter, &&opc_monitorexit,
duke@435 563 /* 0xC4 */ &&opc_wide, &&opc_multianewarray, &&opc_ifnull, &&opc_ifnonnull,
sgoldman@558 564 /* 0xC8 */ &&opc_goto_w, &&opc_jsr_w, &&opc_breakpoint, &&opc_default,
sgoldman@558 565 /* 0xCC */ &&opc_default, &&opc_default, &&opc_default, &&opc_default,
sgoldman@558 566
sgoldman@558 567 /* 0xD0 */ &&opc_default, &&opc_default, &&opc_default, &&opc_default,
duke@435 568 /* 0xD4 */ &&opc_default, &&opc_default, &&opc_default, &&opc_default,
duke@435 569 /* 0xD8 */ &&opc_default, &&opc_default, &&opc_default, &&opc_default,
duke@435 570 /* 0xDC */ &&opc_default, &&opc_default, &&opc_default, &&opc_default,
duke@435 571
duke@435 572 /* 0xE0 */ &&opc_default, &&opc_default, &&opc_default, &&opc_default,
twisti@2762 573 /* 0xE4 */ &&opc_default, &&opc_fast_aldc, &&opc_fast_aldc_w, &&opc_return_register_finalizer,
twisti@4237 574 /* 0xE8 */ &&opc_invokehandle,&&opc_default, &&opc_default, &&opc_default,
duke@435 575 /* 0xEC */ &&opc_default, &&opc_default, &&opc_default, &&opc_default,
duke@435 576
duke@435 577 /* 0xF0 */ &&opc_default, &&opc_default, &&opc_default, &&opc_default,
duke@435 578 /* 0xF4 */ &&opc_default, &&opc_default, &&opc_default, &&opc_default,
duke@435 579 /* 0xF8 */ &&opc_default, &&opc_default, &&opc_default, &&opc_default,
duke@435 580 /* 0xFC */ &&opc_default, &&opc_default, &&opc_default, &&opc_default
duke@435 581 };
duke@435 582 register uintptr_t *dispatch_table = (uintptr_t*)&opclabels_data[0];
duke@435 583 #endif /* USELABELS */
duke@435 584
duke@435 585 #ifdef ASSERT
duke@435 586 // this will trigger a VERIFY_OOP on entry
duke@435 587 if (istate->msg() != initialize && ! METHOD->is_static()) {
duke@435 588 oop rcvr = LOCALS_OBJECT(0);
bobv@2036 589 VERIFY_OOP(rcvr);
duke@435 590 }
duke@435 591 #endif
duke@435 592 // #define HACK
duke@435 593 #ifdef HACK
duke@435 594 bool interesting = false;
duke@435 595 #endif // HACK
duke@435 596
duke@435 597 /* QQQ this should be a stack method so we don't know actual direction */
bobv@2036 598 guarantee(istate->msg() == initialize ||
duke@435 599 topOfStack >= istate->stack_limit() &&
duke@435 600 topOfStack < istate->stack_base(),
duke@435 601 "Stack top out of range");
duke@435 602
duke@435 603 switch (istate->msg()) {
duke@435 604 case initialize: {
duke@435 605 if (initialized++) ShouldNotReachHere(); // Only one initialize call
duke@435 606 _compiling = (UseCompiler || CountCompiledCalls);
duke@435 607 #ifdef VM_JVMTI
duke@435 608 _jvmti_interp_events = JvmtiExport::can_post_interpreter_events();
duke@435 609 #endif
duke@435 610 BarrierSet* bs = Universe::heap()->barrier_set();
duke@435 611 assert(bs->kind() == BarrierSet::CardTableModRef, "Wrong barrier set kind");
duke@435 612 _byte_map_base = (volatile jbyte*)(((CardTableModRefBS*)bs)->byte_map_base);
duke@435 613 return;
duke@435 614 }
duke@435 615 break;
duke@435 616 case method_entry: {
duke@435 617 THREAD->set_do_not_unlock();
duke@435 618 // count invocations
duke@435 619 assert(initialized, "Interpreter not initialized");
duke@435 620 if (_compiling) {
duke@435 621 if (ProfileInterpreter) {
duke@435 622 METHOD->increment_interpreter_invocation_count();
duke@435 623 }
duke@435 624 INCR_INVOCATION_COUNT;
duke@435 625 if (INVOCATION_COUNT->reached_InvocationLimit()) {
duke@435 626 CALL_VM((void)InterpreterRuntime::frequency_counter_overflow(THREAD, NULL), handle_exception);
duke@435 627
duke@435 628 // We no longer retry on a counter overflow
duke@435 629
duke@435 630 // istate->set_msg(retry_method);
duke@435 631 // THREAD->clr_do_not_unlock();
duke@435 632 // return;
duke@435 633 }
duke@435 634 SAFEPOINT;
duke@435 635 }
duke@435 636
duke@435 637 if ((istate->_stack_base - istate->_stack_limit) != istate->method()->max_stack() + 1) {
duke@435 638 // initialize
duke@435 639 os::breakpoint();
duke@435 640 }
duke@435 641
duke@435 642 #ifdef HACK
duke@435 643 {
duke@435 644 ResourceMark rm;
duke@435 645 char *method_name = istate->method()->name_and_sig_as_C_string();
duke@435 646 if (strstr(method_name, "runThese$TestRunner.run()V") != NULL) {
duke@435 647 tty->print_cr("entering: depth %d bci: %d",
duke@435 648 (istate->_stack_base - istate->_stack),
duke@435 649 istate->_bcp - istate->_method->code_base());
duke@435 650 interesting = true;
duke@435 651 }
duke@435 652 }
duke@435 653 #endif // HACK
duke@435 654
duke@435 655
duke@435 656 // lock method if synchronized
duke@435 657 if (METHOD->is_synchronized()) {
duke@435 658 // oop rcvr = locals[0].j.r;
duke@435 659 oop rcvr;
duke@435 660 if (METHOD->is_static()) {
never@2658 661 rcvr = METHOD->constants()->pool_holder()->java_mirror();
duke@435 662 } else {
duke@435 663 rcvr = LOCALS_OBJECT(0);
bobv@2036 664 VERIFY_OOP(rcvr);
duke@435 665 }
duke@435 666 // The initial monitor is ours for the taking
duke@435 667 BasicObjectLock* mon = &istate->monitor_base()[-1];
duke@435 668 oop monobj = mon->obj();
duke@435 669 assert(mon->obj() == rcvr, "method monitor mis-initialized");
duke@435 670
duke@435 671 bool success = UseBiasedLocking;
duke@435 672 if (UseBiasedLocking) {
duke@435 673 markOop mark = rcvr->mark();
duke@435 674 if (mark->has_bias_pattern()) {
duke@435 675 // The bias pattern is present in the object's header. Need to check
duke@435 676 // whether the bias owner and the epoch are both still current.
duke@435 677 intptr_t xx = ((intptr_t) THREAD) ^ (intptr_t) mark;
coleenp@4037 678 xx = (intptr_t) rcvr->klass()->prototype_header() ^ xx;
duke@435 679 intptr_t yy = (xx & ~((int) markOopDesc::age_mask_in_place));
duke@435 680 if (yy != 0 ) {
duke@435 681 // At this point we know that the header has the bias pattern and
duke@435 682 // that we are not the bias owner in the current epoch. We need to
duke@435 683 // figure out more details about the state of the header in order to
duke@435 684 // know what operations can be legally performed on the object's
duke@435 685 // header.
duke@435 686
duke@435 687 // If the low three bits in the xor result aren't clear, that means
duke@435 688 // the prototype header is no longer biased and we have to revoke
duke@435 689 // the bias on this object.
duke@435 690
duke@435 691 if (yy & markOopDesc::biased_lock_mask_in_place == 0 ) {
duke@435 692 // Biasing is still enabled for this data type. See whether the
duke@435 693 // epoch of the current bias is still valid, meaning that the epoch
duke@435 694 // bits of the mark word are equal to the epoch bits of the
duke@435 695 // prototype header. (Note that the prototype header's epoch bits
duke@435 696 // only change at a safepoint.) If not, attempt to rebias the object
duke@435 697 // toward the current thread. Note that we must be absolutely sure
duke@435 698 // that the current epoch is invalid in order to do this because
duke@435 699 // otherwise the manipulations it performs on the mark word are
duke@435 700 // illegal.
duke@435 701 if (yy & markOopDesc::epoch_mask_in_place == 0) {
duke@435 702 // The epoch of the current bias is still valid but we know nothing
duke@435 703 // about the owner; it might be set or it might be clear. Try to
duke@435 704 // acquire the bias of the object using an atomic operation. If this
duke@435 705 // fails we will go in to the runtime to revoke the object's bias.
duke@435 706 // Note that we first construct the presumed unbiased header so we
duke@435 707 // don't accidentally blow away another thread's valid bias.
duke@435 708 intptr_t unbiased = (intptr_t) mark & (markOopDesc::biased_lock_mask_in_place |
duke@435 709 markOopDesc::age_mask_in_place |
duke@435 710 markOopDesc::epoch_mask_in_place);
duke@435 711 if (Atomic::cmpxchg_ptr((intptr_t)THREAD | unbiased, (intptr_t*) rcvr->mark_addr(), unbiased) != unbiased) {
duke@435 712 CALL_VM(InterpreterRuntime::monitorenter(THREAD, mon), handle_exception);
duke@435 713 }
duke@435 714 } else {
duke@435 715 try_rebias:
duke@435 716 // At this point we know the epoch has expired, meaning that the
duke@435 717 // current "bias owner", if any, is actually invalid. Under these
duke@435 718 // circumstances _only_, we are allowed to use the current header's
duke@435 719 // value as the comparison value when doing the cas to acquire the
duke@435 720 // bias in the current epoch. In other words, we allow transfer of
duke@435 721 // the bias from one thread to another directly in this situation.
coleenp@4037 722 xx = (intptr_t) rcvr->klass()->prototype_header() | (intptr_t) THREAD;
coleenp@4037 723 if (Atomic::cmpxchg_ptr((intptr_t)THREAD | (intptr_t) rcvr->klass()->prototype_header(),
duke@435 724 (intptr_t*) rcvr->mark_addr(),
duke@435 725 (intptr_t) mark) != (intptr_t) mark) {
duke@435 726 CALL_VM(InterpreterRuntime::monitorenter(THREAD, mon), handle_exception);
duke@435 727 }
duke@435 728 }
duke@435 729 } else {
duke@435 730 try_revoke_bias:
duke@435 731 // The prototype mark in the klass doesn't have the bias bit set any
duke@435 732 // more, indicating that objects of this data type are not supposed
duke@435 733 // to be biased any more. We are going to try to reset the mark of
duke@435 734 // this object to the prototype value and fall through to the
duke@435 735 // CAS-based locking scheme. Note that if our CAS fails, it means
duke@435 736 // that another thread raced us for the privilege of revoking the
duke@435 737 // bias of this particular object, so it's okay to continue in the
duke@435 738 // normal locking code.
duke@435 739 //
coleenp@4037 740 xx = (intptr_t) rcvr->klass()->prototype_header() | (intptr_t) THREAD;
coleenp@4037 741 if (Atomic::cmpxchg_ptr(rcvr->klass()->prototype_header(),
duke@435 742 (intptr_t*) rcvr->mark_addr(),
duke@435 743 mark) == mark) {
duke@435 744 // (*counters->revoked_lock_entry_count_addr())++;
duke@435 745 success = false;
duke@435 746 }
duke@435 747 }
duke@435 748 }
duke@435 749 } else {
duke@435 750 cas_label:
duke@435 751 success = false;
duke@435 752 }
duke@435 753 }
duke@435 754 if (!success) {
duke@435 755 markOop displaced = rcvr->mark()->set_unlocked();
duke@435 756 mon->lock()->set_displaced_header(displaced);
duke@435 757 if (Atomic::cmpxchg_ptr(mon, rcvr->mark_addr(), displaced) != displaced) {
duke@435 758 // Is it simple recursive case?
duke@435 759 if (THREAD->is_lock_owned((address) displaced->clear_lock_bits())) {
duke@435 760 mon->lock()->set_displaced_header(NULL);
duke@435 761 } else {
duke@435 762 CALL_VM(InterpreterRuntime::monitorenter(THREAD, mon), handle_exception);
duke@435 763 }
duke@435 764 }
duke@435 765 }
duke@435 766 }
duke@435 767 THREAD->clr_do_not_unlock();
duke@435 768
duke@435 769 // Notify jvmti
duke@435 770 #ifdef VM_JVMTI
duke@435 771 if (_jvmti_interp_events) {
duke@435 772 // Whenever JVMTI puts a thread in interp_only_mode, method
duke@435 773 // entry/exit events are sent for that thread to track stack depth.
duke@435 774 if (THREAD->is_interp_only_mode()) {
duke@435 775 CALL_VM(InterpreterRuntime::post_method_entry(THREAD),
duke@435 776 handle_exception);
duke@435 777 }
duke@435 778 }
duke@435 779 #endif /* VM_JVMTI */
duke@435 780
duke@435 781 goto run;
duke@435 782 }
duke@435 783
duke@435 784 case popping_frame: {
duke@435 785 // returned from a java call to pop the frame, restart the call
duke@435 786 // clear the message so we don't confuse ourselves later
bobv@2036 787 ShouldNotReachHere(); // we don't return this.
duke@435 788 assert(THREAD->pop_frame_in_process(), "wrong frame pop state");
duke@435 789 istate->set_msg(no_request);
duke@435 790 THREAD->clr_pop_frame_in_process();
duke@435 791 goto run;
duke@435 792 }
duke@435 793
duke@435 794 case method_resume: {
duke@435 795 if ((istate->_stack_base - istate->_stack_limit) != istate->method()->max_stack() + 1) {
duke@435 796 // resume
duke@435 797 os::breakpoint();
duke@435 798 }
duke@435 799 #ifdef HACK
duke@435 800 {
duke@435 801 ResourceMark rm;
duke@435 802 char *method_name = istate->method()->name_and_sig_as_C_string();
duke@435 803 if (strstr(method_name, "runThese$TestRunner.run()V") != NULL) {
duke@435 804 tty->print_cr("resume: depth %d bci: %d",
duke@435 805 (istate->_stack_base - istate->_stack) ,
duke@435 806 istate->_bcp - istate->_method->code_base());
duke@435 807 interesting = true;
duke@435 808 }
duke@435 809 }
duke@435 810 #endif // HACK
duke@435 811 // returned from a java call, continue executing.
duke@435 812 if (THREAD->pop_frame_pending() && !THREAD->pop_frame_in_process()) {
duke@435 813 goto handle_Pop_Frame;
duke@435 814 }
duke@435 815
duke@435 816 if (THREAD->has_pending_exception()) goto handle_exception;
duke@435 817 // Update the pc by the saved amount of the invoke bytecode size
duke@435 818 UPDATE_PC(istate->bcp_advance());
duke@435 819 goto run;
duke@435 820 }
duke@435 821
duke@435 822 case deopt_resume2: {
duke@435 823 // Returned from an opcode that will reexecute. Deopt was
duke@435 824 // a result of a PopFrame request.
duke@435 825 //
duke@435 826 goto run;
duke@435 827 }
duke@435 828
duke@435 829 case deopt_resume: {
duke@435 830 // Returned from an opcode that has completed. The stack has
duke@435 831 // the result all we need to do is skip across the bytecode
duke@435 832 // and continue (assuming there is no exception pending)
duke@435 833 //
duke@435 834 // compute continuation length
duke@435 835 //
duke@435 836 // Note: it is possible to deopt at a return_register_finalizer opcode
duke@435 837 // because this requires entering the vm to do the registering. While the
duke@435 838 // opcode is complete we can't advance because there are no more opcodes
duke@435 839 // much like trying to deopt at a poll return. In that has we simply
duke@435 840 // get out of here
duke@435 841 //
never@2462 842 if ( Bytecodes::code_at(METHOD, pc) == Bytecodes::_return_register_finalizer) {
duke@435 843 // this will do the right thing even if an exception is pending.
duke@435 844 goto handle_return;
duke@435 845 }
never@2462 846 UPDATE_PC(Bytecodes::length_at(METHOD, pc));
duke@435 847 if (THREAD->has_pending_exception()) goto handle_exception;
duke@435 848 goto run;
duke@435 849 }
duke@435 850 case got_monitors: {
duke@435 851 // continue locking now that we have a monitor to use
duke@435 852 // we expect to find newly allocated monitor at the "top" of the monitor stack.
duke@435 853 oop lockee = STACK_OBJECT(-1);
bobv@2036 854 VERIFY_OOP(lockee);
duke@435 855 // derefing's lockee ought to provoke implicit null check
duke@435 856 // find a free monitor
duke@435 857 BasicObjectLock* entry = (BasicObjectLock*) istate->stack_base();
duke@435 858 assert(entry->obj() == NULL, "Frame manager didn't allocate the monitor");
duke@435 859 entry->set_obj(lockee);
duke@435 860
duke@435 861 markOop displaced = lockee->mark()->set_unlocked();
duke@435 862 entry->lock()->set_displaced_header(displaced);
duke@435 863 if (Atomic::cmpxchg_ptr(entry, lockee->mark_addr(), displaced) != displaced) {
duke@435 864 // Is it simple recursive case?
duke@435 865 if (THREAD->is_lock_owned((address) displaced->clear_lock_bits())) {
duke@435 866 entry->lock()->set_displaced_header(NULL);
duke@435 867 } else {
duke@435 868 CALL_VM(InterpreterRuntime::monitorenter(THREAD, entry), handle_exception);
duke@435 869 }
duke@435 870 }
duke@435 871 UPDATE_PC_AND_TOS(1, -1);
duke@435 872 goto run;
duke@435 873 }
duke@435 874 default: {
duke@435 875 fatal("Unexpected message from frame manager");
duke@435 876 }
duke@435 877 }
duke@435 878
duke@435 879 run:
duke@435 880
duke@435 881 DO_UPDATE_INSTRUCTION_COUNT(*pc)
duke@435 882 DEBUGGER_SINGLE_STEP_NOTIFY();
duke@435 883 #ifdef PREFETCH_OPCCODE
duke@435 884 opcode = *pc; /* prefetch first opcode */
duke@435 885 #endif
duke@435 886
duke@435 887 #ifndef USELABELS
duke@435 888 while (1)
duke@435 889 #endif
duke@435 890 {
duke@435 891 #ifndef PREFETCH_OPCCODE
duke@435 892 opcode = *pc;
duke@435 893 #endif
duke@435 894 // Seems like this happens twice per opcode. At worst this is only
duke@435 895 // need at entry to the loop.
duke@435 896 // DEBUGGER_SINGLE_STEP_NOTIFY();
duke@435 897 /* Using this labels avoids double breakpoints when quickening and
duke@435 898 * when returing from transition frames.
duke@435 899 */
duke@435 900 opcode_switch:
duke@435 901 assert(istate == orig, "Corrupted istate");
duke@435 902 /* QQQ Hmm this has knowledge of direction, ought to be a stack method */
duke@435 903 assert(topOfStack >= istate->stack_limit(), "Stack overrun");
duke@435 904 assert(topOfStack < istate->stack_base(), "Stack underrun");
duke@435 905
duke@435 906 #ifdef USELABELS
duke@435 907 DISPATCH(opcode);
duke@435 908 #else
duke@435 909 switch (opcode)
duke@435 910 #endif
duke@435 911 {
duke@435 912 CASE(_nop):
duke@435 913 UPDATE_PC_AND_CONTINUE(1);
duke@435 914
duke@435 915 /* Push miscellaneous constants onto the stack. */
duke@435 916
duke@435 917 CASE(_aconst_null):
duke@435 918 SET_STACK_OBJECT(NULL, 0);
duke@435 919 UPDATE_PC_AND_TOS_AND_CONTINUE(1, 1);
duke@435 920
duke@435 921 #undef OPC_CONST_n
duke@435 922 #define OPC_CONST_n(opcode, const_type, value) \
duke@435 923 CASE(opcode): \
duke@435 924 SET_STACK_ ## const_type(value, 0); \
duke@435 925 UPDATE_PC_AND_TOS_AND_CONTINUE(1, 1);
duke@435 926
duke@435 927 OPC_CONST_n(_iconst_m1, INT, -1);
duke@435 928 OPC_CONST_n(_iconst_0, INT, 0);
duke@435 929 OPC_CONST_n(_iconst_1, INT, 1);
duke@435 930 OPC_CONST_n(_iconst_2, INT, 2);
duke@435 931 OPC_CONST_n(_iconst_3, INT, 3);
duke@435 932 OPC_CONST_n(_iconst_4, INT, 4);
duke@435 933 OPC_CONST_n(_iconst_5, INT, 5);
duke@435 934 OPC_CONST_n(_fconst_0, FLOAT, 0.0);
duke@435 935 OPC_CONST_n(_fconst_1, FLOAT, 1.0);
duke@435 936 OPC_CONST_n(_fconst_2, FLOAT, 2.0);
duke@435 937
duke@435 938 #undef OPC_CONST2_n
duke@435 939 #define OPC_CONST2_n(opcname, value, key, kind) \
duke@435 940 CASE(_##opcname): \
duke@435 941 { \
duke@435 942 SET_STACK_ ## kind(VM##key##Const##value(), 1); \
duke@435 943 UPDATE_PC_AND_TOS_AND_CONTINUE(1, 2); \
duke@435 944 }
duke@435 945 OPC_CONST2_n(dconst_0, Zero, double, DOUBLE);
duke@435 946 OPC_CONST2_n(dconst_1, One, double, DOUBLE);
duke@435 947 OPC_CONST2_n(lconst_0, Zero, long, LONG);
duke@435 948 OPC_CONST2_n(lconst_1, One, long, LONG);
duke@435 949
duke@435 950 /* Load constant from constant pool: */
duke@435 951
duke@435 952 /* Push a 1-byte signed integer value onto the stack. */
duke@435 953 CASE(_bipush):
duke@435 954 SET_STACK_INT((jbyte)(pc[1]), 0);
duke@435 955 UPDATE_PC_AND_TOS_AND_CONTINUE(2, 1);
duke@435 956
duke@435 957 /* Push a 2-byte signed integer constant onto the stack. */
duke@435 958 CASE(_sipush):
duke@435 959 SET_STACK_INT((int16_t)Bytes::get_Java_u2(pc + 1), 0);
duke@435 960 UPDATE_PC_AND_TOS_AND_CONTINUE(3, 1);
duke@435 961
duke@435 962 /* load from local variable */
duke@435 963
duke@435 964 CASE(_aload):
bobv@2036 965 VERIFY_OOP(LOCALS_OBJECT(pc[1]));
duke@435 966 SET_STACK_OBJECT(LOCALS_OBJECT(pc[1]), 0);
duke@435 967 UPDATE_PC_AND_TOS_AND_CONTINUE(2, 1);
duke@435 968
duke@435 969 CASE(_iload):
duke@435 970 CASE(_fload):
duke@435 971 SET_STACK_SLOT(LOCALS_SLOT(pc[1]), 0);
duke@435 972 UPDATE_PC_AND_TOS_AND_CONTINUE(2, 1);
duke@435 973
duke@435 974 CASE(_lload):
duke@435 975 SET_STACK_LONG_FROM_ADDR(LOCALS_LONG_AT(pc[1]), 1);
duke@435 976 UPDATE_PC_AND_TOS_AND_CONTINUE(2, 2);
duke@435 977
duke@435 978 CASE(_dload):
duke@435 979 SET_STACK_DOUBLE_FROM_ADDR(LOCALS_DOUBLE_AT(pc[1]), 1);
duke@435 980 UPDATE_PC_AND_TOS_AND_CONTINUE(2, 2);
duke@435 981
duke@435 982 #undef OPC_LOAD_n
duke@435 983 #define OPC_LOAD_n(num) \
duke@435 984 CASE(_aload_##num): \
bobv@2036 985 VERIFY_OOP(LOCALS_OBJECT(num)); \
duke@435 986 SET_STACK_OBJECT(LOCALS_OBJECT(num), 0); \
duke@435 987 UPDATE_PC_AND_TOS_AND_CONTINUE(1, 1); \
duke@435 988 \
duke@435 989 CASE(_iload_##num): \
duke@435 990 CASE(_fload_##num): \
duke@435 991 SET_STACK_SLOT(LOCALS_SLOT(num), 0); \
duke@435 992 UPDATE_PC_AND_TOS_AND_CONTINUE(1, 1); \
duke@435 993 \
duke@435 994 CASE(_lload_##num): \
duke@435 995 SET_STACK_LONG_FROM_ADDR(LOCALS_LONG_AT(num), 1); \
duke@435 996 UPDATE_PC_AND_TOS_AND_CONTINUE(1, 2); \
duke@435 997 CASE(_dload_##num): \
duke@435 998 SET_STACK_DOUBLE_FROM_ADDR(LOCALS_DOUBLE_AT(num), 1); \
duke@435 999 UPDATE_PC_AND_TOS_AND_CONTINUE(1, 2);
duke@435 1000
duke@435 1001 OPC_LOAD_n(0);
duke@435 1002 OPC_LOAD_n(1);
duke@435 1003 OPC_LOAD_n(2);
duke@435 1004 OPC_LOAD_n(3);
duke@435 1005
duke@435 1006 /* store to a local variable */
duke@435 1007
duke@435 1008 CASE(_astore):
duke@435 1009 astore(topOfStack, -1, locals, pc[1]);
duke@435 1010 UPDATE_PC_AND_TOS_AND_CONTINUE(2, -1);
duke@435 1011
duke@435 1012 CASE(_istore):
duke@435 1013 CASE(_fstore):
duke@435 1014 SET_LOCALS_SLOT(STACK_SLOT(-1), pc[1]);
duke@435 1015 UPDATE_PC_AND_TOS_AND_CONTINUE(2, -1);
duke@435 1016
duke@435 1017 CASE(_lstore):
duke@435 1018 SET_LOCALS_LONG(STACK_LONG(-1), pc[1]);
duke@435 1019 UPDATE_PC_AND_TOS_AND_CONTINUE(2, -2);
duke@435 1020
duke@435 1021 CASE(_dstore):
duke@435 1022 SET_LOCALS_DOUBLE(STACK_DOUBLE(-1), pc[1]);
duke@435 1023 UPDATE_PC_AND_TOS_AND_CONTINUE(2, -2);
duke@435 1024
duke@435 1025 CASE(_wide): {
duke@435 1026 uint16_t reg = Bytes::get_Java_u2(pc + 2);
duke@435 1027
duke@435 1028 opcode = pc[1];
duke@435 1029 switch(opcode) {
duke@435 1030 case Bytecodes::_aload:
bobv@2036 1031 VERIFY_OOP(LOCALS_OBJECT(reg));
duke@435 1032 SET_STACK_OBJECT(LOCALS_OBJECT(reg), 0);
duke@435 1033 UPDATE_PC_AND_TOS_AND_CONTINUE(4, 1);
duke@435 1034
duke@435 1035 case Bytecodes::_iload:
duke@435 1036 case Bytecodes::_fload:
duke@435 1037 SET_STACK_SLOT(LOCALS_SLOT(reg), 0);
duke@435 1038 UPDATE_PC_AND_TOS_AND_CONTINUE(4, 1);
duke@435 1039
duke@435 1040 case Bytecodes::_lload:
duke@435 1041 SET_STACK_LONG_FROM_ADDR(LOCALS_LONG_AT(reg), 1);
duke@435 1042 UPDATE_PC_AND_TOS_AND_CONTINUE(4, 2);
duke@435 1043
duke@435 1044 case Bytecodes::_dload:
duke@435 1045 SET_STACK_DOUBLE_FROM_ADDR(LOCALS_LONG_AT(reg), 1);
duke@435 1046 UPDATE_PC_AND_TOS_AND_CONTINUE(4, 2);
duke@435 1047
duke@435 1048 case Bytecodes::_astore:
duke@435 1049 astore(topOfStack, -1, locals, reg);
duke@435 1050 UPDATE_PC_AND_TOS_AND_CONTINUE(4, -1);
duke@435 1051
duke@435 1052 case Bytecodes::_istore:
duke@435 1053 case Bytecodes::_fstore:
duke@435 1054 SET_LOCALS_SLOT(STACK_SLOT(-1), reg);
duke@435 1055 UPDATE_PC_AND_TOS_AND_CONTINUE(4, -1);
duke@435 1056
duke@435 1057 case Bytecodes::_lstore:
duke@435 1058 SET_LOCALS_LONG(STACK_LONG(-1), reg);
duke@435 1059 UPDATE_PC_AND_TOS_AND_CONTINUE(4, -2);
duke@435 1060
duke@435 1061 case Bytecodes::_dstore:
duke@435 1062 SET_LOCALS_DOUBLE(STACK_DOUBLE(-1), reg);
duke@435 1063 UPDATE_PC_AND_TOS_AND_CONTINUE(4, -2);
duke@435 1064
duke@435 1065 case Bytecodes::_iinc: {
duke@435 1066 int16_t offset = (int16_t)Bytes::get_Java_u2(pc+4);
duke@435 1067 // Be nice to see what this generates.... QQQ
duke@435 1068 SET_LOCALS_INT(LOCALS_INT(reg) + offset, reg);
duke@435 1069 UPDATE_PC_AND_CONTINUE(6);
duke@435 1070 }
duke@435 1071 case Bytecodes::_ret:
duke@435 1072 pc = istate->method()->code_base() + (intptr_t)(LOCALS_ADDR(reg));
duke@435 1073 UPDATE_PC_AND_CONTINUE(0);
duke@435 1074 default:
duke@435 1075 VM_JAVA_ERROR(vmSymbols::java_lang_InternalError(), "undefined opcode");
duke@435 1076 }
duke@435 1077 }
duke@435 1078
duke@435 1079
duke@435 1080 #undef OPC_STORE_n
duke@435 1081 #define OPC_STORE_n(num) \
duke@435 1082 CASE(_astore_##num): \
duke@435 1083 astore(topOfStack, -1, locals, num); \
duke@435 1084 UPDATE_PC_AND_TOS_AND_CONTINUE(1, -1); \
duke@435 1085 CASE(_istore_##num): \
duke@435 1086 CASE(_fstore_##num): \
duke@435 1087 SET_LOCALS_SLOT(STACK_SLOT(-1), num); \
duke@435 1088 UPDATE_PC_AND_TOS_AND_CONTINUE(1, -1);
duke@435 1089
duke@435 1090 OPC_STORE_n(0);
duke@435 1091 OPC_STORE_n(1);
duke@435 1092 OPC_STORE_n(2);
duke@435 1093 OPC_STORE_n(3);
duke@435 1094
duke@435 1095 #undef OPC_DSTORE_n
duke@435 1096 #define OPC_DSTORE_n(num) \
duke@435 1097 CASE(_dstore_##num): \
duke@435 1098 SET_LOCALS_DOUBLE(STACK_DOUBLE(-1), num); \
duke@435 1099 UPDATE_PC_AND_TOS_AND_CONTINUE(1, -2); \
duke@435 1100 CASE(_lstore_##num): \
duke@435 1101 SET_LOCALS_LONG(STACK_LONG(-1), num); \
duke@435 1102 UPDATE_PC_AND_TOS_AND_CONTINUE(1, -2);
duke@435 1103
duke@435 1104 OPC_DSTORE_n(0);
duke@435 1105 OPC_DSTORE_n(1);
duke@435 1106 OPC_DSTORE_n(2);
duke@435 1107 OPC_DSTORE_n(3);
duke@435 1108
duke@435 1109 /* stack pop, dup, and insert opcodes */
duke@435 1110
duke@435 1111
duke@435 1112 CASE(_pop): /* Discard the top item on the stack */
duke@435 1113 UPDATE_PC_AND_TOS_AND_CONTINUE(1, -1);
duke@435 1114
duke@435 1115
duke@435 1116 CASE(_pop2): /* Discard the top 2 items on the stack */
duke@435 1117 UPDATE_PC_AND_TOS_AND_CONTINUE(1, -2);
duke@435 1118
duke@435 1119
duke@435 1120 CASE(_dup): /* Duplicate the top item on the stack */
duke@435 1121 dup(topOfStack);
duke@435 1122 UPDATE_PC_AND_TOS_AND_CONTINUE(1, 1);
duke@435 1123
duke@435 1124 CASE(_dup2): /* Duplicate the top 2 items on the stack */
duke@435 1125 dup2(topOfStack);
duke@435 1126 UPDATE_PC_AND_TOS_AND_CONTINUE(1, 2);
duke@435 1127
duke@435 1128 CASE(_dup_x1): /* insert top word two down */
duke@435 1129 dup_x1(topOfStack);
duke@435 1130 UPDATE_PC_AND_TOS_AND_CONTINUE(1, 1);
duke@435 1131
duke@435 1132 CASE(_dup_x2): /* insert top word three down */
duke@435 1133 dup_x2(topOfStack);
duke@435 1134 UPDATE_PC_AND_TOS_AND_CONTINUE(1, 1);
duke@435 1135
duke@435 1136 CASE(_dup2_x1): /* insert top 2 slots three down */
duke@435 1137 dup2_x1(topOfStack);
duke@435 1138 UPDATE_PC_AND_TOS_AND_CONTINUE(1, 2);
duke@435 1139
duke@435 1140 CASE(_dup2_x2): /* insert top 2 slots four down */
duke@435 1141 dup2_x2(topOfStack);
duke@435 1142 UPDATE_PC_AND_TOS_AND_CONTINUE(1, 2);
duke@435 1143
duke@435 1144 CASE(_swap): { /* swap top two elements on the stack */
duke@435 1145 swap(topOfStack);
duke@435 1146 UPDATE_PC_AND_CONTINUE(1);
duke@435 1147 }
duke@435 1148
duke@435 1149 /* Perform various binary integer operations */
duke@435 1150
duke@435 1151 #undef OPC_INT_BINARY
duke@435 1152 #define OPC_INT_BINARY(opcname, opname, test) \
duke@435 1153 CASE(_i##opcname): \
duke@435 1154 if (test && (STACK_INT(-1) == 0)) { \
duke@435 1155 VM_JAVA_ERROR(vmSymbols::java_lang_ArithmeticException(), \
bobv@2036 1156 "/ by zero"); \
duke@435 1157 } \
duke@435 1158 SET_STACK_INT(VMint##opname(STACK_INT(-2), \
duke@435 1159 STACK_INT(-1)), \
duke@435 1160 -2); \
duke@435 1161 UPDATE_PC_AND_TOS_AND_CONTINUE(1, -1); \
duke@435 1162 CASE(_l##opcname): \
duke@435 1163 { \
duke@435 1164 if (test) { \
duke@435 1165 jlong l1 = STACK_LONG(-1); \
duke@435 1166 if (VMlongEqz(l1)) { \
duke@435 1167 VM_JAVA_ERROR(vmSymbols::java_lang_ArithmeticException(), \
duke@435 1168 "/ by long zero"); \
duke@435 1169 } \
duke@435 1170 } \
duke@435 1171 /* First long at (-1,-2) next long at (-3,-4) */ \
duke@435 1172 SET_STACK_LONG(VMlong##opname(STACK_LONG(-3), \
duke@435 1173 STACK_LONG(-1)), \
duke@435 1174 -3); \
duke@435 1175 UPDATE_PC_AND_TOS_AND_CONTINUE(1, -2); \
duke@435 1176 }
duke@435 1177
duke@435 1178 OPC_INT_BINARY(add, Add, 0);
duke@435 1179 OPC_INT_BINARY(sub, Sub, 0);
duke@435 1180 OPC_INT_BINARY(mul, Mul, 0);
duke@435 1181 OPC_INT_BINARY(and, And, 0);
duke@435 1182 OPC_INT_BINARY(or, Or, 0);
duke@435 1183 OPC_INT_BINARY(xor, Xor, 0);
duke@435 1184 OPC_INT_BINARY(div, Div, 1);
duke@435 1185 OPC_INT_BINARY(rem, Rem, 1);
duke@435 1186
duke@435 1187
duke@435 1188 /* Perform various binary floating number operations */
duke@435 1189 /* On some machine/platforms/compilers div zero check can be implicit */
duke@435 1190
duke@435 1191 #undef OPC_FLOAT_BINARY
duke@435 1192 #define OPC_FLOAT_BINARY(opcname, opname) \
duke@435 1193 CASE(_d##opcname): { \
duke@435 1194 SET_STACK_DOUBLE(VMdouble##opname(STACK_DOUBLE(-3), \
duke@435 1195 STACK_DOUBLE(-1)), \
duke@435 1196 -3); \
duke@435 1197 UPDATE_PC_AND_TOS_AND_CONTINUE(1, -2); \
duke@435 1198 } \
duke@435 1199 CASE(_f##opcname): \
duke@435 1200 SET_STACK_FLOAT(VMfloat##opname(STACK_FLOAT(-2), \
duke@435 1201 STACK_FLOAT(-1)), \
duke@435 1202 -2); \
duke@435 1203 UPDATE_PC_AND_TOS_AND_CONTINUE(1, -1);
duke@435 1204
duke@435 1205
duke@435 1206 OPC_FLOAT_BINARY(add, Add);
duke@435 1207 OPC_FLOAT_BINARY(sub, Sub);
duke@435 1208 OPC_FLOAT_BINARY(mul, Mul);
duke@435 1209 OPC_FLOAT_BINARY(div, Div);
duke@435 1210 OPC_FLOAT_BINARY(rem, Rem);
duke@435 1211
duke@435 1212 /* Shift operations
duke@435 1213 * Shift left int and long: ishl, lshl
duke@435 1214 * Logical shift right int and long w/zero extension: iushr, lushr
duke@435 1215 * Arithmetic shift right int and long w/sign extension: ishr, lshr
duke@435 1216 */
duke@435 1217
duke@435 1218 #undef OPC_SHIFT_BINARY
duke@435 1219 #define OPC_SHIFT_BINARY(opcname, opname) \
duke@435 1220 CASE(_i##opcname): \
duke@435 1221 SET_STACK_INT(VMint##opname(STACK_INT(-2), \
duke@435 1222 STACK_INT(-1)), \
duke@435 1223 -2); \
duke@435 1224 UPDATE_PC_AND_TOS_AND_CONTINUE(1, -1); \
duke@435 1225 CASE(_l##opcname): \
duke@435 1226 { \
duke@435 1227 SET_STACK_LONG(VMlong##opname(STACK_LONG(-2), \
duke@435 1228 STACK_INT(-1)), \
duke@435 1229 -2); \
duke@435 1230 UPDATE_PC_AND_TOS_AND_CONTINUE(1, -1); \
duke@435 1231 }
duke@435 1232
duke@435 1233 OPC_SHIFT_BINARY(shl, Shl);
duke@435 1234 OPC_SHIFT_BINARY(shr, Shr);
duke@435 1235 OPC_SHIFT_BINARY(ushr, Ushr);
duke@435 1236
duke@435 1237 /* Increment local variable by constant */
duke@435 1238 CASE(_iinc):
duke@435 1239 {
duke@435 1240 // locals[pc[1]].j.i += (jbyte)(pc[2]);
duke@435 1241 SET_LOCALS_INT(LOCALS_INT(pc[1]) + (jbyte)(pc[2]), pc[1]);
duke@435 1242 UPDATE_PC_AND_CONTINUE(3);
duke@435 1243 }
duke@435 1244
duke@435 1245 /* negate the value on the top of the stack */
duke@435 1246
duke@435 1247 CASE(_ineg):
duke@435 1248 SET_STACK_INT(VMintNeg(STACK_INT(-1)), -1);
duke@435 1249 UPDATE_PC_AND_CONTINUE(1);
duke@435 1250
duke@435 1251 CASE(_fneg):
duke@435 1252 SET_STACK_FLOAT(VMfloatNeg(STACK_FLOAT(-1)), -1);
duke@435 1253 UPDATE_PC_AND_CONTINUE(1);
duke@435 1254
duke@435 1255 CASE(_lneg):
duke@435 1256 {
duke@435 1257 SET_STACK_LONG(VMlongNeg(STACK_LONG(-1)), -1);
duke@435 1258 UPDATE_PC_AND_CONTINUE(1);
duke@435 1259 }
duke@435 1260
duke@435 1261 CASE(_dneg):
duke@435 1262 {
duke@435 1263 SET_STACK_DOUBLE(VMdoubleNeg(STACK_DOUBLE(-1)), -1);
duke@435 1264 UPDATE_PC_AND_CONTINUE(1);
duke@435 1265 }
duke@435 1266
duke@435 1267 /* Conversion operations */
duke@435 1268
duke@435 1269 CASE(_i2f): /* convert top of stack int to float */
duke@435 1270 SET_STACK_FLOAT(VMint2Float(STACK_INT(-1)), -1);
duke@435 1271 UPDATE_PC_AND_CONTINUE(1);
duke@435 1272
duke@435 1273 CASE(_i2l): /* convert top of stack int to long */
duke@435 1274 {
duke@435 1275 // this is ugly QQQ
duke@435 1276 jlong r = VMint2Long(STACK_INT(-1));
duke@435 1277 MORE_STACK(-1); // Pop
duke@435 1278 SET_STACK_LONG(r, 1);
duke@435 1279
duke@435 1280 UPDATE_PC_AND_TOS_AND_CONTINUE(1, 2);
duke@435 1281 }
duke@435 1282
duke@435 1283 CASE(_i2d): /* convert top of stack int to double */
duke@435 1284 {
duke@435 1285 // this is ugly QQQ (why cast to jlong?? )
duke@435 1286 jdouble r = (jlong)STACK_INT(-1);
duke@435 1287 MORE_STACK(-1); // Pop
duke@435 1288 SET_STACK_DOUBLE(r, 1);
duke@435 1289
duke@435 1290 UPDATE_PC_AND_TOS_AND_CONTINUE(1, 2);
duke@435 1291 }
duke@435 1292
duke@435 1293 CASE(_l2i): /* convert top of stack long to int */
duke@435 1294 {
duke@435 1295 jint r = VMlong2Int(STACK_LONG(-1));
duke@435 1296 MORE_STACK(-2); // Pop
duke@435 1297 SET_STACK_INT(r, 0);
duke@435 1298 UPDATE_PC_AND_TOS_AND_CONTINUE(1, 1);
duke@435 1299 }
duke@435 1300
duke@435 1301 CASE(_l2f): /* convert top of stack long to float */
duke@435 1302 {
duke@435 1303 jlong r = STACK_LONG(-1);
duke@435 1304 MORE_STACK(-2); // Pop
duke@435 1305 SET_STACK_FLOAT(VMlong2Float(r), 0);
duke@435 1306 UPDATE_PC_AND_TOS_AND_CONTINUE(1, 1);
duke@435 1307 }
duke@435 1308
duke@435 1309 CASE(_l2d): /* convert top of stack long to double */
duke@435 1310 {
duke@435 1311 jlong r = STACK_LONG(-1);
duke@435 1312 MORE_STACK(-2); // Pop
duke@435 1313 SET_STACK_DOUBLE(VMlong2Double(r), 1);
duke@435 1314 UPDATE_PC_AND_TOS_AND_CONTINUE(1, 2);
duke@435 1315 }
duke@435 1316
duke@435 1317 CASE(_f2i): /* Convert top of stack float to int */
duke@435 1318 SET_STACK_INT(SharedRuntime::f2i(STACK_FLOAT(-1)), -1);
duke@435 1319 UPDATE_PC_AND_CONTINUE(1);
duke@435 1320
duke@435 1321 CASE(_f2l): /* convert top of stack float to long */
duke@435 1322 {
duke@435 1323 jlong r = SharedRuntime::f2l(STACK_FLOAT(-1));
duke@435 1324 MORE_STACK(-1); // POP
duke@435 1325 SET_STACK_LONG(r, 1);
duke@435 1326 UPDATE_PC_AND_TOS_AND_CONTINUE(1, 2);
duke@435 1327 }
duke@435 1328
duke@435 1329 CASE(_f2d): /* convert top of stack float to double */
duke@435 1330 {
duke@435 1331 jfloat f;
duke@435 1332 jdouble r;
duke@435 1333 f = STACK_FLOAT(-1);
duke@435 1334 r = (jdouble) f;
duke@435 1335 MORE_STACK(-1); // POP
duke@435 1336 SET_STACK_DOUBLE(r, 1);
duke@435 1337 UPDATE_PC_AND_TOS_AND_CONTINUE(1, 2);
duke@435 1338 }
duke@435 1339
duke@435 1340 CASE(_d2i): /* convert top of stack double to int */
duke@435 1341 {
duke@435 1342 jint r1 = SharedRuntime::d2i(STACK_DOUBLE(-1));
duke@435 1343 MORE_STACK(-2);
duke@435 1344 SET_STACK_INT(r1, 0);
duke@435 1345 UPDATE_PC_AND_TOS_AND_CONTINUE(1, 1);
duke@435 1346 }
duke@435 1347
duke@435 1348 CASE(_d2f): /* convert top of stack double to float */
duke@435 1349 {
duke@435 1350 jfloat r1 = VMdouble2Float(STACK_DOUBLE(-1));
duke@435 1351 MORE_STACK(-2);
duke@435 1352 SET_STACK_FLOAT(r1, 0);
duke@435 1353 UPDATE_PC_AND_TOS_AND_CONTINUE(1, 1);
duke@435 1354 }
duke@435 1355
duke@435 1356 CASE(_d2l): /* convert top of stack double to long */
duke@435 1357 {
duke@435 1358 jlong r1 = SharedRuntime::d2l(STACK_DOUBLE(-1));
duke@435 1359 MORE_STACK(-2);
duke@435 1360 SET_STACK_LONG(r1, 1);
duke@435 1361 UPDATE_PC_AND_TOS_AND_CONTINUE(1, 2);
duke@435 1362 }
duke@435 1363
duke@435 1364 CASE(_i2b):
duke@435 1365 SET_STACK_INT(VMint2Byte(STACK_INT(-1)), -1);
duke@435 1366 UPDATE_PC_AND_CONTINUE(1);
duke@435 1367
duke@435 1368 CASE(_i2c):
duke@435 1369 SET_STACK_INT(VMint2Char(STACK_INT(-1)), -1);
duke@435 1370 UPDATE_PC_AND_CONTINUE(1);
duke@435 1371
duke@435 1372 CASE(_i2s):
duke@435 1373 SET_STACK_INT(VMint2Short(STACK_INT(-1)), -1);
duke@435 1374 UPDATE_PC_AND_CONTINUE(1);
duke@435 1375
duke@435 1376 /* comparison operators */
duke@435 1377
duke@435 1378
duke@435 1379 #define COMPARISON_OP(name, comparison) \
duke@435 1380 CASE(_if_icmp##name): { \
duke@435 1381 int skip = (STACK_INT(-2) comparison STACK_INT(-1)) \
duke@435 1382 ? (int16_t)Bytes::get_Java_u2(pc + 1) : 3; \
duke@435 1383 address branch_pc = pc; \
duke@435 1384 UPDATE_PC_AND_TOS(skip, -2); \
duke@435 1385 DO_BACKEDGE_CHECKS(skip, branch_pc); \
duke@435 1386 CONTINUE; \
duke@435 1387 } \
duke@435 1388 CASE(_if##name): { \
duke@435 1389 int skip = (STACK_INT(-1) comparison 0) \
duke@435 1390 ? (int16_t)Bytes::get_Java_u2(pc + 1) : 3; \
duke@435 1391 address branch_pc = pc; \
duke@435 1392 UPDATE_PC_AND_TOS(skip, -1); \
duke@435 1393 DO_BACKEDGE_CHECKS(skip, branch_pc); \
duke@435 1394 CONTINUE; \
duke@435 1395 }
duke@435 1396
duke@435 1397 #define COMPARISON_OP2(name, comparison) \
duke@435 1398 COMPARISON_OP(name, comparison) \
duke@435 1399 CASE(_if_acmp##name): { \
duke@435 1400 int skip = (STACK_OBJECT(-2) comparison STACK_OBJECT(-1)) \
duke@435 1401 ? (int16_t)Bytes::get_Java_u2(pc + 1) : 3; \
duke@435 1402 address branch_pc = pc; \
duke@435 1403 UPDATE_PC_AND_TOS(skip, -2); \
duke@435 1404 DO_BACKEDGE_CHECKS(skip, branch_pc); \
duke@435 1405 CONTINUE; \
duke@435 1406 }
duke@435 1407
duke@435 1408 #define NULL_COMPARISON_NOT_OP(name) \
duke@435 1409 CASE(_if##name): { \
coleenp@955 1410 int skip = (!(STACK_OBJECT(-1) == NULL)) \
duke@435 1411 ? (int16_t)Bytes::get_Java_u2(pc + 1) : 3; \
duke@435 1412 address branch_pc = pc; \
duke@435 1413 UPDATE_PC_AND_TOS(skip, -1); \
duke@435 1414 DO_BACKEDGE_CHECKS(skip, branch_pc); \
duke@435 1415 CONTINUE; \
duke@435 1416 }
duke@435 1417
duke@435 1418 #define NULL_COMPARISON_OP(name) \
duke@435 1419 CASE(_if##name): { \
coleenp@955 1420 int skip = ((STACK_OBJECT(-1) == NULL)) \
duke@435 1421 ? (int16_t)Bytes::get_Java_u2(pc + 1) : 3; \
duke@435 1422 address branch_pc = pc; \
duke@435 1423 UPDATE_PC_AND_TOS(skip, -1); \
duke@435 1424 DO_BACKEDGE_CHECKS(skip, branch_pc); \
duke@435 1425 CONTINUE; \
duke@435 1426 }
duke@435 1427 COMPARISON_OP(lt, <);
duke@435 1428 COMPARISON_OP(gt, >);
duke@435 1429 COMPARISON_OP(le, <=);
duke@435 1430 COMPARISON_OP(ge, >=);
duke@435 1431 COMPARISON_OP2(eq, ==); /* include ref comparison */
duke@435 1432 COMPARISON_OP2(ne, !=); /* include ref comparison */
duke@435 1433 NULL_COMPARISON_OP(null);
duke@435 1434 NULL_COMPARISON_NOT_OP(nonnull);
duke@435 1435
duke@435 1436 /* Goto pc at specified offset in switch table. */
duke@435 1437
duke@435 1438 CASE(_tableswitch): {
duke@435 1439 jint* lpc = (jint*)VMalignWordUp(pc+1);
duke@435 1440 int32_t key = STACK_INT(-1);
duke@435 1441 int32_t low = Bytes::get_Java_u4((address)&lpc[1]);
duke@435 1442 int32_t high = Bytes::get_Java_u4((address)&lpc[2]);
duke@435 1443 int32_t skip;
duke@435 1444 key -= low;
duke@435 1445 skip = ((uint32_t) key > (uint32_t)(high - low))
duke@435 1446 ? Bytes::get_Java_u4((address)&lpc[0])
duke@435 1447 : Bytes::get_Java_u4((address)&lpc[key + 3]);
duke@435 1448 // Does this really need a full backedge check (osr?)
duke@435 1449 address branch_pc = pc;
duke@435 1450 UPDATE_PC_AND_TOS(skip, -1);
duke@435 1451 DO_BACKEDGE_CHECKS(skip, branch_pc);
duke@435 1452 CONTINUE;
duke@435 1453 }
duke@435 1454
duke@435 1455 /* Goto pc whose table entry matches specified key */
duke@435 1456
duke@435 1457 CASE(_lookupswitch): {
duke@435 1458 jint* lpc = (jint*)VMalignWordUp(pc+1);
duke@435 1459 int32_t key = STACK_INT(-1);
duke@435 1460 int32_t skip = Bytes::get_Java_u4((address) lpc); /* default amount */
duke@435 1461 int32_t npairs = Bytes::get_Java_u4((address) &lpc[1]);
duke@435 1462 while (--npairs >= 0) {
duke@435 1463 lpc += 2;
duke@435 1464 if (key == (int32_t)Bytes::get_Java_u4((address)lpc)) {
duke@435 1465 skip = Bytes::get_Java_u4((address)&lpc[1]);
duke@435 1466 break;
duke@435 1467 }
duke@435 1468 }
duke@435 1469 address branch_pc = pc;
duke@435 1470 UPDATE_PC_AND_TOS(skip, -1);
duke@435 1471 DO_BACKEDGE_CHECKS(skip, branch_pc);
duke@435 1472 CONTINUE;
duke@435 1473 }
duke@435 1474
duke@435 1475 CASE(_fcmpl):
duke@435 1476 CASE(_fcmpg):
duke@435 1477 {
duke@435 1478 SET_STACK_INT(VMfloatCompare(STACK_FLOAT(-2),
duke@435 1479 STACK_FLOAT(-1),
duke@435 1480 (opcode == Bytecodes::_fcmpl ? -1 : 1)),
duke@435 1481 -2);
duke@435 1482 UPDATE_PC_AND_TOS_AND_CONTINUE(1, -1);
duke@435 1483 }
duke@435 1484
duke@435 1485 CASE(_dcmpl):
duke@435 1486 CASE(_dcmpg):
duke@435 1487 {
duke@435 1488 int r = VMdoubleCompare(STACK_DOUBLE(-3),
duke@435 1489 STACK_DOUBLE(-1),
duke@435 1490 (opcode == Bytecodes::_dcmpl ? -1 : 1));
duke@435 1491 MORE_STACK(-4); // Pop
duke@435 1492 SET_STACK_INT(r, 0);
duke@435 1493 UPDATE_PC_AND_TOS_AND_CONTINUE(1, 1);
duke@435 1494 }
duke@435 1495
duke@435 1496 CASE(_lcmp):
duke@435 1497 {
duke@435 1498 int r = VMlongCompare(STACK_LONG(-3), STACK_LONG(-1));
duke@435 1499 MORE_STACK(-4);
duke@435 1500 SET_STACK_INT(r, 0);
duke@435 1501 UPDATE_PC_AND_TOS_AND_CONTINUE(1, 1);
duke@435 1502 }
duke@435 1503
duke@435 1504
duke@435 1505 /* Return from a method */
duke@435 1506
duke@435 1507 CASE(_areturn):
duke@435 1508 CASE(_ireturn):
duke@435 1509 CASE(_freturn):
duke@435 1510 {
duke@435 1511 // Allow a safepoint before returning to frame manager.
duke@435 1512 SAFEPOINT;
duke@435 1513
duke@435 1514 goto handle_return;
duke@435 1515 }
duke@435 1516
duke@435 1517 CASE(_lreturn):
duke@435 1518 CASE(_dreturn):
duke@435 1519 {
duke@435 1520 // Allow a safepoint before returning to frame manager.
duke@435 1521 SAFEPOINT;
duke@435 1522 goto handle_return;
duke@435 1523 }
duke@435 1524
duke@435 1525 CASE(_return_register_finalizer): {
duke@435 1526
duke@435 1527 oop rcvr = LOCALS_OBJECT(0);
bobv@2036 1528 VERIFY_OOP(rcvr);
coleenp@4037 1529 if (rcvr->klass()->has_finalizer()) {
duke@435 1530 CALL_VM(InterpreterRuntime::register_finalizer(THREAD, rcvr), handle_exception);
duke@435 1531 }
duke@435 1532 goto handle_return;
duke@435 1533 }
duke@435 1534 CASE(_return): {
duke@435 1535
duke@435 1536 // Allow a safepoint before returning to frame manager.
duke@435 1537 SAFEPOINT;
duke@435 1538 goto handle_return;
duke@435 1539 }
duke@435 1540
duke@435 1541 /* Array access byte-codes */
duke@435 1542
duke@435 1543 /* Every array access byte-code starts out like this */
duke@435 1544 // arrayOopDesc* arrObj = (arrayOopDesc*)STACK_OBJECT(arrayOff);
duke@435 1545 #define ARRAY_INTRO(arrayOff) \
duke@435 1546 arrayOop arrObj = (arrayOop)STACK_OBJECT(arrayOff); \
duke@435 1547 jint index = STACK_INT(arrayOff + 1); \
duke@435 1548 char message[jintAsStringSize]; \
duke@435 1549 CHECK_NULL(arrObj); \
duke@435 1550 if ((uint32_t)index >= (uint32_t)arrObj->length()) { \
duke@435 1551 sprintf(message, "%d", index); \
duke@435 1552 VM_JAVA_ERROR(vmSymbols::java_lang_ArrayIndexOutOfBoundsException(), \
duke@435 1553 message); \
duke@435 1554 }
duke@435 1555
duke@435 1556 /* 32-bit loads. These handle conversion from < 32-bit types */
duke@435 1557 #define ARRAY_LOADTO32(T, T2, format, stackRes, extra) \
duke@435 1558 { \
duke@435 1559 ARRAY_INTRO(-2); \
duke@435 1560 extra; \
duke@435 1561 SET_ ## stackRes(*(T2 *)(((address) arrObj->base(T)) + index * sizeof(T2)), \
duke@435 1562 -2); \
duke@435 1563 UPDATE_PC_AND_TOS_AND_CONTINUE(1, -1); \
duke@435 1564 }
duke@435 1565
duke@435 1566 /* 64-bit loads */
duke@435 1567 #define ARRAY_LOADTO64(T,T2, stackRes, extra) \
duke@435 1568 { \
duke@435 1569 ARRAY_INTRO(-2); \
duke@435 1570 SET_ ## stackRes(*(T2 *)(((address) arrObj->base(T)) + index * sizeof(T2)), -1); \
duke@435 1571 extra; \
duke@435 1572 UPDATE_PC_AND_CONTINUE(1); \
duke@435 1573 }
duke@435 1574
duke@435 1575 CASE(_iaload):
duke@435 1576 ARRAY_LOADTO32(T_INT, jint, "%d", STACK_INT, 0);
duke@435 1577 CASE(_faload):
duke@435 1578 ARRAY_LOADTO32(T_FLOAT, jfloat, "%f", STACK_FLOAT, 0);
duke@435 1579 CASE(_aaload):
duke@435 1580 ARRAY_LOADTO32(T_OBJECT, oop, INTPTR_FORMAT, STACK_OBJECT, 0);
duke@435 1581 CASE(_baload):
duke@435 1582 ARRAY_LOADTO32(T_BYTE, jbyte, "%d", STACK_INT, 0);
duke@435 1583 CASE(_caload):
duke@435 1584 ARRAY_LOADTO32(T_CHAR, jchar, "%d", STACK_INT, 0);
duke@435 1585 CASE(_saload):
duke@435 1586 ARRAY_LOADTO32(T_SHORT, jshort, "%d", STACK_INT, 0);
duke@435 1587 CASE(_laload):
duke@435 1588 ARRAY_LOADTO64(T_LONG, jlong, STACK_LONG, 0);
duke@435 1589 CASE(_daload):
duke@435 1590 ARRAY_LOADTO64(T_DOUBLE, jdouble, STACK_DOUBLE, 0);
duke@435 1591
duke@435 1592 /* 32-bit stores. These handle conversion to < 32-bit types */
duke@435 1593 #define ARRAY_STOREFROM32(T, T2, format, stackSrc, extra) \
duke@435 1594 { \
duke@435 1595 ARRAY_INTRO(-3); \
duke@435 1596 extra; \
duke@435 1597 *(T2 *)(((address) arrObj->base(T)) + index * sizeof(T2)) = stackSrc( -1); \
duke@435 1598 UPDATE_PC_AND_TOS_AND_CONTINUE(1, -3); \
duke@435 1599 }
duke@435 1600
duke@435 1601 /* 64-bit stores */
duke@435 1602 #define ARRAY_STOREFROM64(T, T2, stackSrc, extra) \
duke@435 1603 { \
duke@435 1604 ARRAY_INTRO(-4); \
duke@435 1605 extra; \
duke@435 1606 *(T2 *)(((address) arrObj->base(T)) + index * sizeof(T2)) = stackSrc( -1); \
duke@435 1607 UPDATE_PC_AND_TOS_AND_CONTINUE(1, -4); \
duke@435 1608 }
duke@435 1609
duke@435 1610 CASE(_iastore):
duke@435 1611 ARRAY_STOREFROM32(T_INT, jint, "%d", STACK_INT, 0);
duke@435 1612 CASE(_fastore):
duke@435 1613 ARRAY_STOREFROM32(T_FLOAT, jfloat, "%f", STACK_FLOAT, 0);
duke@435 1614 /*
duke@435 1615 * This one looks different because of the assignability check
duke@435 1616 */
duke@435 1617 CASE(_aastore): {
duke@435 1618 oop rhsObject = STACK_OBJECT(-1);
bobv@2036 1619 VERIFY_OOP(rhsObject);
duke@435 1620 ARRAY_INTRO( -3);
duke@435 1621 // arrObj, index are set
duke@435 1622 if (rhsObject != NULL) {
duke@435 1623 /* Check assignability of rhsObject into arrObj */
coleenp@4037 1624 Klass* rhsKlassOop = rhsObject->klass(); // EBX (subclass)
coleenp@4142 1625 Klass* elemKlassOop = ObjArrayKlass::cast(arrObj->klass())->element_klass(); // superklass EAX
duke@435 1626 //
duke@435 1627 // Check for compatibilty. This check must not GC!!
duke@435 1628 // Seems way more expensive now that we must dispatch
duke@435 1629 //
coleenp@4037 1630 if (rhsKlassOop != elemKlassOop && !rhsKlassOop->is_subtype_of(elemKlassOop)) { // ebx->is...
duke@435 1631 VM_JAVA_ERROR(vmSymbols::java_lang_ArrayStoreException(), "");
duke@435 1632 }
duke@435 1633 }
duke@435 1634 oop* elem_loc = (oop*)(((address) arrObj->base(T_OBJECT)) + index * sizeof(oop));
duke@435 1635 // *(oop*)(((address) arrObj->base(T_OBJECT)) + index * sizeof(oop)) = rhsObject;
duke@435 1636 *elem_loc = rhsObject;
duke@435 1637 // Mark the card
duke@435 1638 OrderAccess::release_store(&BYTE_MAP_BASE[(uintptr_t)elem_loc >> CardTableModRefBS::card_shift], 0);
duke@435 1639 UPDATE_PC_AND_TOS_AND_CONTINUE(1, -3);
duke@435 1640 }
duke@435 1641 CASE(_bastore):
duke@435 1642 ARRAY_STOREFROM32(T_BYTE, jbyte, "%d", STACK_INT, 0);
duke@435 1643 CASE(_castore):
duke@435 1644 ARRAY_STOREFROM32(T_CHAR, jchar, "%d", STACK_INT, 0);
duke@435 1645 CASE(_sastore):
duke@435 1646 ARRAY_STOREFROM32(T_SHORT, jshort, "%d", STACK_INT, 0);
duke@435 1647 CASE(_lastore):
duke@435 1648 ARRAY_STOREFROM64(T_LONG, jlong, STACK_LONG, 0);
duke@435 1649 CASE(_dastore):
duke@435 1650 ARRAY_STOREFROM64(T_DOUBLE, jdouble, STACK_DOUBLE, 0);
duke@435 1651
duke@435 1652 CASE(_arraylength):
duke@435 1653 {
duke@435 1654 arrayOop ary = (arrayOop) STACK_OBJECT(-1);
duke@435 1655 CHECK_NULL(ary);
duke@435 1656 SET_STACK_INT(ary->length(), -1);
duke@435 1657 UPDATE_PC_AND_CONTINUE(1);
duke@435 1658 }
duke@435 1659
duke@435 1660 /* monitorenter and monitorexit for locking/unlocking an object */
duke@435 1661
duke@435 1662 CASE(_monitorenter): {
duke@435 1663 oop lockee = STACK_OBJECT(-1);
duke@435 1664 // derefing's lockee ought to provoke implicit null check
duke@435 1665 CHECK_NULL(lockee);
duke@435 1666 // find a free monitor or one already allocated for this object
duke@435 1667 // if we find a matching object then we need a new monitor
duke@435 1668 // since this is recursive enter
duke@435 1669 BasicObjectLock* limit = istate->monitor_base();
duke@435 1670 BasicObjectLock* most_recent = (BasicObjectLock*) istate->stack_base();
duke@435 1671 BasicObjectLock* entry = NULL;
duke@435 1672 while (most_recent != limit ) {
duke@435 1673 if (most_recent->obj() == NULL) entry = most_recent;
duke@435 1674 else if (most_recent->obj() == lockee) break;
duke@435 1675 most_recent++;
duke@435 1676 }
duke@435 1677 if (entry != NULL) {
duke@435 1678 entry->set_obj(lockee);
duke@435 1679 markOop displaced = lockee->mark()->set_unlocked();
duke@435 1680 entry->lock()->set_displaced_header(displaced);
duke@435 1681 if (Atomic::cmpxchg_ptr(entry, lockee->mark_addr(), displaced) != displaced) {
duke@435 1682 // Is it simple recursive case?
duke@435 1683 if (THREAD->is_lock_owned((address) displaced->clear_lock_bits())) {
duke@435 1684 entry->lock()->set_displaced_header(NULL);
duke@435 1685 } else {
duke@435 1686 CALL_VM(InterpreterRuntime::monitorenter(THREAD, entry), handle_exception);
duke@435 1687 }
duke@435 1688 }
duke@435 1689 UPDATE_PC_AND_TOS_AND_CONTINUE(1, -1);
duke@435 1690 } else {
duke@435 1691 istate->set_msg(more_monitors);
duke@435 1692 UPDATE_PC_AND_RETURN(0); // Re-execute
duke@435 1693 }
duke@435 1694 }
duke@435 1695
duke@435 1696 CASE(_monitorexit): {
duke@435 1697 oop lockee = STACK_OBJECT(-1);
duke@435 1698 CHECK_NULL(lockee);
duke@435 1699 // derefing's lockee ought to provoke implicit null check
duke@435 1700 // find our monitor slot
duke@435 1701 BasicObjectLock* limit = istate->monitor_base();
duke@435 1702 BasicObjectLock* most_recent = (BasicObjectLock*) istate->stack_base();
duke@435 1703 while (most_recent != limit ) {
duke@435 1704 if ((most_recent)->obj() == lockee) {
duke@435 1705 BasicLock* lock = most_recent->lock();
duke@435 1706 markOop header = lock->displaced_header();
duke@435 1707 most_recent->set_obj(NULL);
duke@435 1708 // If it isn't recursive we either must swap old header or call the runtime
duke@435 1709 if (header != NULL) {
duke@435 1710 if (Atomic::cmpxchg_ptr(header, lockee->mark_addr(), lock) != lock) {
duke@435 1711 // restore object for the slow case
duke@435 1712 most_recent->set_obj(lockee);
duke@435 1713 CALL_VM(InterpreterRuntime::monitorexit(THREAD, most_recent), handle_exception);
duke@435 1714 }
duke@435 1715 }
duke@435 1716 UPDATE_PC_AND_TOS_AND_CONTINUE(1, -1);
duke@435 1717 }
duke@435 1718 most_recent++;
duke@435 1719 }
duke@435 1720 // Need to throw illegal monitor state exception
duke@435 1721 CALL_VM(InterpreterRuntime::throw_illegal_monitor_state_exception(THREAD), handle_exception);
twisti@2762 1722 ShouldNotReachHere();
duke@435 1723 }
duke@435 1724
duke@435 1725 /* All of the non-quick opcodes. */
duke@435 1726
duke@435 1727 /* -Set clobbersCpIndex true if the quickened opcode clobbers the
duke@435 1728 * constant pool index in the instruction.
duke@435 1729 */
duke@435 1730 CASE(_getfield):
duke@435 1731 CASE(_getstatic):
duke@435 1732 {
duke@435 1733 u2 index;
duke@435 1734 ConstantPoolCacheEntry* cache;
duke@435 1735 index = Bytes::get_native_u2(pc+1);
duke@435 1736
duke@435 1737 // QQQ Need to make this as inlined as possible. Probably need to
duke@435 1738 // split all the bytecode cases out so c++ compiler has a chance
duke@435 1739 // for constant prop to fold everything possible away.
duke@435 1740
duke@435 1741 cache = cp->entry_at(index);
duke@435 1742 if (!cache->is_resolved((Bytecodes::Code)opcode)) {
duke@435 1743 CALL_VM(InterpreterRuntime::resolve_get_put(THREAD, (Bytecodes::Code)opcode),
duke@435 1744 handle_exception);
duke@435 1745 cache = cp->entry_at(index);
duke@435 1746 }
duke@435 1747
duke@435 1748 #ifdef VM_JVMTI
duke@435 1749 if (_jvmti_interp_events) {
duke@435 1750 int *count_addr;
duke@435 1751 oop obj;
duke@435 1752 // Check to see if a field modification watch has been set
duke@435 1753 // before we take the time to call into the VM.
duke@435 1754 count_addr = (int *)JvmtiExport::get_field_access_count_addr();
duke@435 1755 if ( *count_addr > 0 ) {
duke@435 1756 if ((Bytecodes::Code)opcode == Bytecodes::_getstatic) {
duke@435 1757 obj = (oop)NULL;
duke@435 1758 } else {
duke@435 1759 obj = (oop) STACK_OBJECT(-1);
bobv@2036 1760 VERIFY_OOP(obj);
duke@435 1761 }
duke@435 1762 CALL_VM(InterpreterRuntime::post_field_access(THREAD,
duke@435 1763 obj,
duke@435 1764 cache),
duke@435 1765 handle_exception);
duke@435 1766 }
duke@435 1767 }
duke@435 1768 #endif /* VM_JVMTI */
duke@435 1769
duke@435 1770 oop obj;
duke@435 1771 if ((Bytecodes::Code)opcode == Bytecodes::_getstatic) {
twisti@4237 1772 Klass* k = cache->f1_as_klass();
coleenp@4037 1773 obj = k->java_mirror();
duke@435 1774 MORE_STACK(1); // Assume single slot push
duke@435 1775 } else {
duke@435 1776 obj = (oop) STACK_OBJECT(-1);
duke@435 1777 CHECK_NULL(obj);
duke@435 1778 }
duke@435 1779
duke@435 1780 //
duke@435 1781 // Now store the result on the stack
duke@435 1782 //
duke@435 1783 TosState tos_type = cache->flag_state();
twisti@3969 1784 int field_offset = cache->f2_as_index();
duke@435 1785 if (cache->is_volatile()) {
duke@435 1786 if (tos_type == atos) {
bobv@2036 1787 VERIFY_OOP(obj->obj_field_acquire(field_offset));
duke@435 1788 SET_STACK_OBJECT(obj->obj_field_acquire(field_offset), -1);
duke@435 1789 } else if (tos_type == itos) {
duke@435 1790 SET_STACK_INT(obj->int_field_acquire(field_offset), -1);
duke@435 1791 } else if (tos_type == ltos) {
duke@435 1792 SET_STACK_LONG(obj->long_field_acquire(field_offset), 0);
duke@435 1793 MORE_STACK(1);
duke@435 1794 } else if (tos_type == btos) {
duke@435 1795 SET_STACK_INT(obj->byte_field_acquire(field_offset), -1);
duke@435 1796 } else if (tos_type == ctos) {
duke@435 1797 SET_STACK_INT(obj->char_field_acquire(field_offset), -1);
duke@435 1798 } else if (tos_type == stos) {
duke@435 1799 SET_STACK_INT(obj->short_field_acquire(field_offset), -1);
duke@435 1800 } else if (tos_type == ftos) {
duke@435 1801 SET_STACK_FLOAT(obj->float_field_acquire(field_offset), -1);
duke@435 1802 } else {
duke@435 1803 SET_STACK_DOUBLE(obj->double_field_acquire(field_offset), 0);
duke@435 1804 MORE_STACK(1);
duke@435 1805 }
duke@435 1806 } else {
duke@435 1807 if (tos_type == atos) {
bobv@2036 1808 VERIFY_OOP(obj->obj_field(field_offset));
duke@435 1809 SET_STACK_OBJECT(obj->obj_field(field_offset), -1);
duke@435 1810 } else if (tos_type == itos) {
duke@435 1811 SET_STACK_INT(obj->int_field(field_offset), -1);
duke@435 1812 } else if (tos_type == ltos) {
duke@435 1813 SET_STACK_LONG(obj->long_field(field_offset), 0);
duke@435 1814 MORE_STACK(1);
duke@435 1815 } else if (tos_type == btos) {
duke@435 1816 SET_STACK_INT(obj->byte_field(field_offset), -1);
duke@435 1817 } else if (tos_type == ctos) {
duke@435 1818 SET_STACK_INT(obj->char_field(field_offset), -1);
duke@435 1819 } else if (tos_type == stos) {
duke@435 1820 SET_STACK_INT(obj->short_field(field_offset), -1);
duke@435 1821 } else if (tos_type == ftos) {
duke@435 1822 SET_STACK_FLOAT(obj->float_field(field_offset), -1);
duke@435 1823 } else {
duke@435 1824 SET_STACK_DOUBLE(obj->double_field(field_offset), 0);
duke@435 1825 MORE_STACK(1);
duke@435 1826 }
duke@435 1827 }
duke@435 1828
duke@435 1829 UPDATE_PC_AND_CONTINUE(3);
duke@435 1830 }
duke@435 1831
duke@435 1832 CASE(_putfield):
duke@435 1833 CASE(_putstatic):
duke@435 1834 {
duke@435 1835 u2 index = Bytes::get_native_u2(pc+1);
duke@435 1836 ConstantPoolCacheEntry* cache = cp->entry_at(index);
duke@435 1837 if (!cache->is_resolved((Bytecodes::Code)opcode)) {
duke@435 1838 CALL_VM(InterpreterRuntime::resolve_get_put(THREAD, (Bytecodes::Code)opcode),
duke@435 1839 handle_exception);
duke@435 1840 cache = cp->entry_at(index);
duke@435 1841 }
duke@435 1842
duke@435 1843 #ifdef VM_JVMTI
duke@435 1844 if (_jvmti_interp_events) {
duke@435 1845 int *count_addr;
duke@435 1846 oop obj;
duke@435 1847 // Check to see if a field modification watch has been set
duke@435 1848 // before we take the time to call into the VM.
duke@435 1849 count_addr = (int *)JvmtiExport::get_field_modification_count_addr();
duke@435 1850 if ( *count_addr > 0 ) {
duke@435 1851 if ((Bytecodes::Code)opcode == Bytecodes::_putstatic) {
duke@435 1852 obj = (oop)NULL;
duke@435 1853 }
duke@435 1854 else {
duke@435 1855 if (cache->is_long() || cache->is_double()) {
duke@435 1856 obj = (oop) STACK_OBJECT(-3);
duke@435 1857 } else {
duke@435 1858 obj = (oop) STACK_OBJECT(-2);
duke@435 1859 }
bobv@2036 1860 VERIFY_OOP(obj);
duke@435 1861 }
duke@435 1862
duke@435 1863 CALL_VM(InterpreterRuntime::post_field_modification(THREAD,
duke@435 1864 obj,
duke@435 1865 cache,
duke@435 1866 (jvalue *)STACK_SLOT(-1)),
duke@435 1867 handle_exception);
duke@435 1868 }
duke@435 1869 }
duke@435 1870 #endif /* VM_JVMTI */
duke@435 1871
duke@435 1872 // QQQ Need to make this as inlined as possible. Probably need to split all the bytecode cases
duke@435 1873 // out so c++ compiler has a chance for constant prop to fold everything possible away.
duke@435 1874
duke@435 1875 oop obj;
duke@435 1876 int count;
duke@435 1877 TosState tos_type = cache->flag_state();
duke@435 1878
duke@435 1879 count = -1;
duke@435 1880 if (tos_type == ltos || tos_type == dtos) {
duke@435 1881 --count;
duke@435 1882 }
duke@435 1883 if ((Bytecodes::Code)opcode == Bytecodes::_putstatic) {
twisti@4237 1884 Klass* k = cache->f1_as_klass();
coleenp@4037 1885 obj = k->java_mirror();
duke@435 1886 } else {
duke@435 1887 --count;
duke@435 1888 obj = (oop) STACK_OBJECT(count);
duke@435 1889 CHECK_NULL(obj);
duke@435 1890 }
duke@435 1891
duke@435 1892 //
duke@435 1893 // Now store the result
duke@435 1894 //
twisti@3969 1895 int field_offset = cache->f2_as_index();
duke@435 1896 if (cache->is_volatile()) {
duke@435 1897 if (tos_type == itos) {
duke@435 1898 obj->release_int_field_put(field_offset, STACK_INT(-1));
duke@435 1899 } else if (tos_type == atos) {
bobv@2036 1900 VERIFY_OOP(STACK_OBJECT(-1));
duke@435 1901 obj->release_obj_field_put(field_offset, STACK_OBJECT(-1));
duke@435 1902 OrderAccess::release_store(&BYTE_MAP_BASE[(uintptr_t)obj >> CardTableModRefBS::card_shift], 0);
duke@435 1903 } else if (tos_type == btos) {
duke@435 1904 obj->release_byte_field_put(field_offset, STACK_INT(-1));
duke@435 1905 } else if (tos_type == ltos) {
duke@435 1906 obj->release_long_field_put(field_offset, STACK_LONG(-1));
duke@435 1907 } else if (tos_type == ctos) {
duke@435 1908 obj->release_char_field_put(field_offset, STACK_INT(-1));
duke@435 1909 } else if (tos_type == stos) {
duke@435 1910 obj->release_short_field_put(field_offset, STACK_INT(-1));
duke@435 1911 } else if (tos_type == ftos) {
duke@435 1912 obj->release_float_field_put(field_offset, STACK_FLOAT(-1));
duke@435 1913 } else {
duke@435 1914 obj->release_double_field_put(field_offset, STACK_DOUBLE(-1));
duke@435 1915 }
duke@435 1916 OrderAccess::storeload();
duke@435 1917 } else {
duke@435 1918 if (tos_type == itos) {
duke@435 1919 obj->int_field_put(field_offset, STACK_INT(-1));
duke@435 1920 } else if (tos_type == atos) {
bobv@2036 1921 VERIFY_OOP(STACK_OBJECT(-1));
duke@435 1922 obj->obj_field_put(field_offset, STACK_OBJECT(-1));
duke@435 1923 OrderAccess::release_store(&BYTE_MAP_BASE[(uintptr_t)obj >> CardTableModRefBS::card_shift], 0);
duke@435 1924 } else if (tos_type == btos) {
duke@435 1925 obj->byte_field_put(field_offset, STACK_INT(-1));
duke@435 1926 } else if (tos_type == ltos) {
duke@435 1927 obj->long_field_put(field_offset, STACK_LONG(-1));
duke@435 1928 } else if (tos_type == ctos) {
duke@435 1929 obj->char_field_put(field_offset, STACK_INT(-1));
duke@435 1930 } else if (tos_type == stos) {
duke@435 1931 obj->short_field_put(field_offset, STACK_INT(-1));
duke@435 1932 } else if (tos_type == ftos) {
duke@435 1933 obj->float_field_put(field_offset, STACK_FLOAT(-1));
duke@435 1934 } else {
duke@435 1935 obj->double_field_put(field_offset, STACK_DOUBLE(-1));
duke@435 1936 }
duke@435 1937 }
duke@435 1938
duke@435 1939 UPDATE_PC_AND_TOS_AND_CONTINUE(3, count);
duke@435 1940 }
duke@435 1941
duke@435 1942 CASE(_new): {
duke@435 1943 u2 index = Bytes::get_Java_u2(pc+1);
coleenp@4037 1944 ConstantPool* constants = istate->method()->constants();
duke@435 1945 if (!constants->tag_at(index).is_unresolved_klass()) {
duke@435 1946 // Make sure klass is initialized and doesn't have a finalizer
coleenp@4037 1947 Klass* entry = constants->slot_at(index).get_klass();
duke@435 1948 assert(entry->is_klass(), "Should be resolved klass");
coleenp@4037 1949 Klass* k_entry = (Klass*) entry;
coleenp@4037 1950 assert(k_entry->oop_is_instance(), "Should be InstanceKlass");
coleenp@4037 1951 InstanceKlass* ik = (InstanceKlass*) k_entry;
duke@435 1952 if ( ik->is_initialized() && ik->can_be_fastpath_allocated() ) {
duke@435 1953 size_t obj_size = ik->size_helper();
duke@435 1954 oop result = NULL;
duke@435 1955 // If the TLAB isn't pre-zeroed then we'll have to do it
duke@435 1956 bool need_zero = !ZeroTLAB;
duke@435 1957 if (UseTLAB) {
duke@435 1958 result = (oop) THREAD->tlab().allocate(obj_size);
duke@435 1959 }
duke@435 1960 if (result == NULL) {
duke@435 1961 need_zero = true;
duke@435 1962 // Try allocate in shared eden
duke@435 1963 retry:
duke@435 1964 HeapWord* compare_to = *Universe::heap()->top_addr();
duke@435 1965 HeapWord* new_top = compare_to + obj_size;
duke@435 1966 if (new_top <= *Universe::heap()->end_addr()) {
duke@435 1967 if (Atomic::cmpxchg_ptr(new_top, Universe::heap()->top_addr(), compare_to) != compare_to) {
duke@435 1968 goto retry;
duke@435 1969 }
duke@435 1970 result = (oop) compare_to;
duke@435 1971 }
duke@435 1972 }
duke@435 1973 if (result != NULL) {
duke@435 1974 // Initialize object (if nonzero size and need) and then the header
duke@435 1975 if (need_zero ) {
duke@435 1976 HeapWord* to_zero = (HeapWord*) result + sizeof(oopDesc) / oopSize;
duke@435 1977 obj_size -= sizeof(oopDesc) / oopSize;
duke@435 1978 if (obj_size > 0 ) {
duke@435 1979 memset(to_zero, 0, obj_size * HeapWordSize);
duke@435 1980 }
duke@435 1981 }
duke@435 1982 if (UseBiasedLocking) {
duke@435 1983 result->set_mark(ik->prototype_header());
duke@435 1984 } else {
duke@435 1985 result->set_mark(markOopDesc::prototype());
duke@435 1986 }
coleenp@602 1987 result->set_klass_gap(0);
duke@435 1988 result->set_klass(k_entry);
duke@435 1989 SET_STACK_OBJECT(result, 0);
duke@435 1990 UPDATE_PC_AND_TOS_AND_CONTINUE(3, 1);
duke@435 1991 }
duke@435 1992 }
duke@435 1993 }
duke@435 1994 // Slow case allocation
duke@435 1995 CALL_VM(InterpreterRuntime::_new(THREAD, METHOD->constants(), index),
duke@435 1996 handle_exception);
duke@435 1997 SET_STACK_OBJECT(THREAD->vm_result(), 0);
duke@435 1998 THREAD->set_vm_result(NULL);
duke@435 1999 UPDATE_PC_AND_TOS_AND_CONTINUE(3, 1);
duke@435 2000 }
duke@435 2001 CASE(_anewarray): {
duke@435 2002 u2 index = Bytes::get_Java_u2(pc+1);
duke@435 2003 jint size = STACK_INT(-1);
duke@435 2004 CALL_VM(InterpreterRuntime::anewarray(THREAD, METHOD->constants(), index, size),
duke@435 2005 handle_exception);
duke@435 2006 SET_STACK_OBJECT(THREAD->vm_result(), -1);
duke@435 2007 THREAD->set_vm_result(NULL);
duke@435 2008 UPDATE_PC_AND_CONTINUE(3);
duke@435 2009 }
duke@435 2010 CASE(_multianewarray): {
duke@435 2011 jint dims = *(pc+3);
duke@435 2012 jint size = STACK_INT(-1);
duke@435 2013 // stack grows down, dimensions are up!
duke@435 2014 jint *dimarray =
twisti@1864 2015 (jint*)&topOfStack[dims * Interpreter::stackElementWords+
twisti@1864 2016 Interpreter::stackElementWords-1];
duke@435 2017 //adjust pointer to start of stack element
duke@435 2018 CALL_VM(InterpreterRuntime::multianewarray(THREAD, dimarray),
duke@435 2019 handle_exception);
duke@435 2020 SET_STACK_OBJECT(THREAD->vm_result(), -dims);
duke@435 2021 THREAD->set_vm_result(NULL);
duke@435 2022 UPDATE_PC_AND_TOS_AND_CONTINUE(4, -(dims-1));
duke@435 2023 }
duke@435 2024 CASE(_checkcast):
duke@435 2025 if (STACK_OBJECT(-1) != NULL) {
bobv@2036 2026 VERIFY_OOP(STACK_OBJECT(-1));
duke@435 2027 u2 index = Bytes::get_Java_u2(pc+1);
duke@435 2028 if (ProfileInterpreter) {
duke@435 2029 // needs Profile_checkcast QQQ
duke@435 2030 ShouldNotReachHere();
duke@435 2031 }
duke@435 2032 // Constant pool may have actual klass or unresolved klass. If it is
duke@435 2033 // unresolved we must resolve it
duke@435 2034 if (METHOD->constants()->tag_at(index).is_unresolved_klass()) {
duke@435 2035 CALL_VM(InterpreterRuntime::quicken_io_cc(THREAD), handle_exception);
duke@435 2036 }
coleenp@4037 2037 Klass* klassOf = (Klass*) METHOD->constants()->slot_at(index).get_klass();
coleenp@4037 2038 Klass* objKlassOop = STACK_OBJECT(-1)->klass(); //ebx
duke@435 2039 //
duke@435 2040 // Check for compatibilty. This check must not GC!!
duke@435 2041 // Seems way more expensive now that we must dispatch
duke@435 2042 //
duke@435 2043 if (objKlassOop != klassOf &&
coleenp@4037 2044 !objKlassOop->is_subtype_of(klassOf)) {
duke@435 2045 ResourceMark rm(THREAD);
duke@435 2046 const char* objName = Klass::cast(objKlassOop)->external_name();
duke@435 2047 const char* klassName = Klass::cast(klassOf)->external_name();
duke@435 2048 char* message = SharedRuntime::generate_class_cast_message(
duke@435 2049 objName, klassName);
duke@435 2050 VM_JAVA_ERROR(vmSymbols::java_lang_ClassCastException(), message);
duke@435 2051 }
duke@435 2052 } else {
duke@435 2053 if (UncommonNullCast) {
duke@435 2054 // istate->method()->set_null_cast_seen();
duke@435 2055 // [RGV] Not sure what to do here!
duke@435 2056
duke@435 2057 }
duke@435 2058 }
duke@435 2059 UPDATE_PC_AND_CONTINUE(3);
duke@435 2060
duke@435 2061 CASE(_instanceof):
duke@435 2062 if (STACK_OBJECT(-1) == NULL) {
duke@435 2063 SET_STACK_INT(0, -1);
duke@435 2064 } else {
bobv@2036 2065 VERIFY_OOP(STACK_OBJECT(-1));
duke@435 2066 u2 index = Bytes::get_Java_u2(pc+1);
duke@435 2067 // Constant pool may have actual klass or unresolved klass. If it is
duke@435 2068 // unresolved we must resolve it
duke@435 2069 if (METHOD->constants()->tag_at(index).is_unresolved_klass()) {
duke@435 2070 CALL_VM(InterpreterRuntime::quicken_io_cc(THREAD), handle_exception);
duke@435 2071 }
coleenp@4037 2072 Klass* klassOf = (Klass*) METHOD->constants()->slot_at(index).get_klass();
coleenp@4037 2073 Klass* objKlassOop = STACK_OBJECT(-1)->klass();
duke@435 2074 //
duke@435 2075 // Check for compatibilty. This check must not GC!!
duke@435 2076 // Seems way more expensive now that we must dispatch
duke@435 2077 //
coleenp@4037 2078 if ( objKlassOop == klassOf || objKlassOop->is_subtype_of(klassOf)) {
duke@435 2079 SET_STACK_INT(1, -1);
duke@435 2080 } else {
duke@435 2081 SET_STACK_INT(0, -1);
duke@435 2082 }
duke@435 2083 }
duke@435 2084 UPDATE_PC_AND_CONTINUE(3);
duke@435 2085
duke@435 2086 CASE(_ldc_w):
duke@435 2087 CASE(_ldc):
duke@435 2088 {
duke@435 2089 u2 index;
duke@435 2090 bool wide = false;
duke@435 2091 int incr = 2; // frequent case
duke@435 2092 if (opcode == Bytecodes::_ldc) {
duke@435 2093 index = pc[1];
duke@435 2094 } else {
duke@435 2095 index = Bytes::get_Java_u2(pc+1);
duke@435 2096 incr = 3;
duke@435 2097 wide = true;
duke@435 2098 }
duke@435 2099
coleenp@4037 2100 ConstantPool* constants = METHOD->constants();
duke@435 2101 switch (constants->tag_at(index).value()) {
duke@435 2102 case JVM_CONSTANT_Integer:
duke@435 2103 SET_STACK_INT(constants->int_at(index), 0);
duke@435 2104 break;
duke@435 2105
duke@435 2106 case JVM_CONSTANT_Float:
duke@435 2107 SET_STACK_FLOAT(constants->float_at(index), 0);
duke@435 2108 break;
duke@435 2109
duke@435 2110 case JVM_CONSTANT_String:
coleenp@4037 2111 {
coleenp@4037 2112 oop result = constants->resolved_references()->obj_at(index);
coleenp@4037 2113 if (result == NULL) {
coleenp@4037 2114 CALL_VM(InterpreterRuntime::resolve_ldc(THREAD, (Bytecodes::Code) opcode), handle_exception);
coleenp@4037 2115 SET_STACK_OBJECT(THREAD->vm_result(), 0);
coleenp@4037 2116 THREAD->set_vm_result(NULL);
coleenp@4037 2117 } else {
coleenp@4037 2118 VERIFY_OOP(result);
coleenp@4037 2119 SET_STACK_OBJECT(result, 0);
coleenp@4037 2120 }
duke@435 2121 break;
coleenp@4037 2122 }
duke@435 2123
duke@435 2124 case JVM_CONSTANT_Class:
never@2658 2125 VERIFY_OOP(constants->resolved_klass_at(index)->java_mirror());
never@2658 2126 SET_STACK_OBJECT(constants->resolved_klass_at(index)->java_mirror(), 0);
duke@435 2127 break;
duke@435 2128
duke@435 2129 case JVM_CONSTANT_UnresolvedClass:
duke@435 2130 case JVM_CONSTANT_UnresolvedClassInError:
duke@435 2131 CALL_VM(InterpreterRuntime::ldc(THREAD, wide), handle_exception);
duke@435 2132 SET_STACK_OBJECT(THREAD->vm_result(), 0);
duke@435 2133 THREAD->set_vm_result(NULL);
duke@435 2134 break;
duke@435 2135
duke@435 2136 default: ShouldNotReachHere();
duke@435 2137 }
duke@435 2138 UPDATE_PC_AND_TOS_AND_CONTINUE(incr, 1);
duke@435 2139 }
duke@435 2140
duke@435 2141 CASE(_ldc2_w):
duke@435 2142 {
duke@435 2143 u2 index = Bytes::get_Java_u2(pc+1);
duke@435 2144
coleenp@4037 2145 ConstantPool* constants = METHOD->constants();
duke@435 2146 switch (constants->tag_at(index).value()) {
duke@435 2147
duke@435 2148 case JVM_CONSTANT_Long:
duke@435 2149 SET_STACK_LONG(constants->long_at(index), 1);
duke@435 2150 break;
duke@435 2151
duke@435 2152 case JVM_CONSTANT_Double:
duke@435 2153 SET_STACK_DOUBLE(constants->double_at(index), 1);
duke@435 2154 break;
duke@435 2155 default: ShouldNotReachHere();
duke@435 2156 }
duke@435 2157 UPDATE_PC_AND_TOS_AND_CONTINUE(3, 2);
duke@435 2158 }
duke@435 2159
twisti@2762 2160 CASE(_fast_aldc_w):
twisti@2762 2161 CASE(_fast_aldc): {
twisti@2762 2162 u2 index;
twisti@2762 2163 int incr;
twisti@2762 2164 if (opcode == Bytecodes::_fast_aldc) {
twisti@2762 2165 index = pc[1];
twisti@2762 2166 incr = 2;
twisti@2762 2167 } else {
twisti@2762 2168 index = Bytes::get_native_u2(pc+1);
twisti@2762 2169 incr = 3;
twisti@2762 2170 }
twisti@2762 2171
twisti@2762 2172 // We are resolved if the f1 field contains a non-null object (CallSite, etc.)
twisti@2762 2173 // This kind of CP cache entry does not need to match the flags byte, because
twisti@2762 2174 // there is a 1-1 relation between bytecode type and CP entry type.
coleenp@4037 2175 ConstantPool* constants = METHOD->constants();
coleenp@4037 2176 oop result = constants->resolved_references()->obj_at(index);
twisti@3969 2177 if (result == NULL) {
twisti@2762 2178 CALL_VM(InterpreterRuntime::resolve_ldc(THREAD, (Bytecodes::Code) opcode),
twisti@2762 2179 handle_exception);
coleenp@4037 2180 result = THREAD->vm_result();
twisti@2762 2181 }
twisti@2762 2182
twisti@3969 2183 VERIFY_OOP(result);
twisti@3969 2184 SET_STACK_OBJECT(result, 0);
twisti@2762 2185 UPDATE_PC_AND_TOS_AND_CONTINUE(incr, 1);
twisti@2762 2186 }
twisti@2762 2187
twisti@2762 2188 CASE(_invokedynamic): {
twisti@4237 2189
twisti@2762 2190 if (!EnableInvokeDynamic) {
twisti@2762 2191 // We should not encounter this bytecode if !EnableInvokeDynamic.
twisti@2762 2192 // The verifier will stop it. However, if we get past the verifier,
twisti@2762 2193 // this will stop the thread in a reasonable way, without crashing the JVM.
twisti@2762 2194 CALL_VM(InterpreterRuntime::throw_IncompatibleClassChangeError(THREAD),
twisti@2762 2195 handle_exception);
twisti@2762 2196 ShouldNotReachHere();
twisti@2762 2197 }
twisti@2762 2198
twisti@4237 2199 u4 index = Bytes::get_native_u4(pc+1);
twisti@4237 2200 ConstantPoolCacheEntry* cache = cp->constant_pool()->invokedynamic_cp_cache_entry_at(index);
twisti@2762 2201
coleenp@4037 2202 // We are resolved if the resolved_references field contains a non-null object (CallSite, etc.)
twisti@2762 2203 // This kind of CP cache entry does not need to match the flags byte, because
twisti@2762 2204 // there is a 1-1 relation between bytecode type and CP entry type.
twisti@4237 2205 if (! cache->is_resolved((Bytecodes::Code) opcode)) {
twisti@2762 2206 CALL_VM(InterpreterRuntime::resolve_invokedynamic(THREAD),
twisti@2762 2207 handle_exception);
twisti@4237 2208 cache = cp->constant_pool()->invokedynamic_cp_cache_entry_at(index);
twisti@2762 2209 }
twisti@2762 2210
twisti@4237 2211 Method* method = cache->f1_as_method();
twisti@4237 2212 VERIFY_OOP(method);
twisti@4237 2213
twisti@4237 2214 if (cache->has_appendix()) {
twisti@4237 2215 ConstantPool* constants = METHOD->constants();
twisti@4237 2216 SET_STACK_OBJECT(cache->appendix_if_resolved(constants), 0);
twisti@4237 2217 MORE_STACK(1);
twisti@4237 2218 }
twisti@4237 2219
twisti@4237 2220 istate->set_msg(call_method);
twisti@4237 2221 istate->set_callee(method);
twisti@4237 2222 istate->set_callee_entry_point(method->from_interpreted_entry());
twisti@2762 2223 istate->set_bcp_advance(5);
twisti@2762 2224
twisti@2762 2225 UPDATE_PC_AND_RETURN(0); // I'll be back...
twisti@2762 2226 }
twisti@2762 2227
twisti@4237 2228 CASE(_invokehandle): {
twisti@4237 2229
twisti@4237 2230 if (!EnableInvokeDynamic) {
twisti@4237 2231 ShouldNotReachHere();
twisti@4237 2232 }
twisti@4237 2233
twisti@4237 2234 u2 index = Bytes::get_native_u2(pc+1);
twisti@4237 2235 ConstantPoolCacheEntry* cache = cp->entry_at(index);
twisti@4237 2236
twisti@4237 2237 if (! cache->is_resolved((Bytecodes::Code) opcode)) {
twisti@4237 2238 CALL_VM(InterpreterRuntime::resolve_invokehandle(THREAD),
twisti@4237 2239 handle_exception);
twisti@4237 2240 cache = cp->entry_at(index);
twisti@4237 2241 }
twisti@4237 2242
twisti@4237 2243 Method* method = cache->f1_as_method();
twisti@4237 2244
twisti@4237 2245 VERIFY_OOP(method);
twisti@4237 2246
twisti@4237 2247 if (cache->has_appendix()) {
twisti@4237 2248 ConstantPool* constants = METHOD->constants();
twisti@4237 2249 SET_STACK_OBJECT(cache->appendix_if_resolved(constants), 0);
twisti@4237 2250 MORE_STACK(1);
twisti@4237 2251 }
twisti@4237 2252
twisti@4237 2253 istate->set_msg(call_method);
twisti@4237 2254 istate->set_callee(method);
twisti@4237 2255 istate->set_callee_entry_point(method->from_interpreted_entry());
twisti@4237 2256 istate->set_bcp_advance(3);
twisti@4237 2257
twisti@4237 2258 UPDATE_PC_AND_RETURN(0); // I'll be back...
twisti@4237 2259 }
twisti@4237 2260
duke@435 2261 CASE(_invokeinterface): {
duke@435 2262 u2 index = Bytes::get_native_u2(pc+1);
duke@435 2263
duke@435 2264 // QQQ Need to make this as inlined as possible. Probably need to split all the bytecode cases
duke@435 2265 // out so c++ compiler has a chance for constant prop to fold everything possible away.
duke@435 2266
duke@435 2267 ConstantPoolCacheEntry* cache = cp->entry_at(index);
duke@435 2268 if (!cache->is_resolved((Bytecodes::Code)opcode)) {
duke@435 2269 CALL_VM(InterpreterRuntime::resolve_invoke(THREAD, (Bytecodes::Code)opcode),
duke@435 2270 handle_exception);
duke@435 2271 cache = cp->entry_at(index);
duke@435 2272 }
duke@435 2273
duke@435 2274 istate->set_msg(call_method);
duke@435 2275
duke@435 2276 // Special case of invokeinterface called for virtual method of
duke@435 2277 // java.lang.Object. See cpCacheOop.cpp for details.
duke@435 2278 // This code isn't produced by javac, but could be produced by
duke@435 2279 // another compliant java compiler.
twisti@3969 2280 if (cache->is_forced_virtual()) {
coleenp@4037 2281 Method* callee;
duke@435 2282 CHECK_NULL(STACK_OBJECT(-(cache->parameter_size())));
duke@435 2283 if (cache->is_vfinal()) {
twisti@3969 2284 callee = cache->f2_as_vfinal_method();
duke@435 2285 } else {
duke@435 2286 // get receiver
duke@435 2287 int parms = cache->parameter_size();
duke@435 2288 // Same comments as invokevirtual apply here
bobv@2036 2289 VERIFY_OOP(STACK_OBJECT(-parms));
coleenp@4037 2290 InstanceKlass* rcvrKlass = (InstanceKlass*)
coleenp@4037 2291 STACK_OBJECT(-parms)->klass();
coleenp@4037 2292 callee = (Method*) rcvrKlass->start_of_vtable()[ cache->f2_as_index()];
duke@435 2293 }
duke@435 2294 istate->set_callee(callee);
duke@435 2295 istate->set_callee_entry_point(callee->from_interpreted_entry());
duke@435 2296 #ifdef VM_JVMTI
duke@435 2297 if (JvmtiExport::can_post_interpreter_events() && THREAD->is_interp_only_mode()) {
duke@435 2298 istate->set_callee_entry_point(callee->interpreter_entry());
duke@435 2299 }
duke@435 2300 #endif /* VM_JVMTI */
duke@435 2301 istate->set_bcp_advance(5);
duke@435 2302 UPDATE_PC_AND_RETURN(0); // I'll be back...
duke@435 2303 }
duke@435 2304
duke@435 2305 // this could definitely be cleaned up QQQ
coleenp@4037 2306 Method* callee;
coleenp@4037 2307 Klass* iclass = cache->f1_as_klass();
coleenp@4037 2308 // InstanceKlass* interface = (InstanceKlass*) iclass;
duke@435 2309 // get receiver
duke@435 2310 int parms = cache->parameter_size();
duke@435 2311 oop rcvr = STACK_OBJECT(-parms);
duke@435 2312 CHECK_NULL(rcvr);
coleenp@4037 2313 InstanceKlass* int2 = (InstanceKlass*) rcvr->klass();
duke@435 2314 itableOffsetEntry* ki = (itableOffsetEntry*) int2->start_of_itable();
duke@435 2315 int i;
duke@435 2316 for ( i = 0 ; i < int2->itable_length() ; i++, ki++ ) {
duke@435 2317 if (ki->interface_klass() == iclass) break;
duke@435 2318 }
duke@435 2319 // If the interface isn't found, this class doesn't implement this
duke@435 2320 // interface. The link resolver checks this but only for the first
duke@435 2321 // time this interface is called.
duke@435 2322 if (i == int2->itable_length()) {
duke@435 2323 VM_JAVA_ERROR(vmSymbols::java_lang_IncompatibleClassChangeError(), "");
duke@435 2324 }
twisti@3969 2325 int mindex = cache->f2_as_index();
duke@435 2326 itableMethodEntry* im = ki->first_method_entry(rcvr->klass());
duke@435 2327 callee = im[mindex].method();
duke@435 2328 if (callee == NULL) {
duke@435 2329 VM_JAVA_ERROR(vmSymbols::java_lang_AbstractMethodError(), "");
duke@435 2330 }
duke@435 2331
duke@435 2332 istate->set_callee(callee);
duke@435 2333 istate->set_callee_entry_point(callee->from_interpreted_entry());
duke@435 2334 #ifdef VM_JVMTI
duke@435 2335 if (JvmtiExport::can_post_interpreter_events() && THREAD->is_interp_only_mode()) {
duke@435 2336 istate->set_callee_entry_point(callee->interpreter_entry());
duke@435 2337 }
duke@435 2338 #endif /* VM_JVMTI */
duke@435 2339 istate->set_bcp_advance(5);
duke@435 2340 UPDATE_PC_AND_RETURN(0); // I'll be back...
duke@435 2341 }
duke@435 2342
duke@435 2343 CASE(_invokevirtual):
duke@435 2344 CASE(_invokespecial):
duke@435 2345 CASE(_invokestatic): {
duke@435 2346 u2 index = Bytes::get_native_u2(pc+1);
duke@435 2347
duke@435 2348 ConstantPoolCacheEntry* cache = cp->entry_at(index);
duke@435 2349 // QQQ Need to make this as inlined as possible. Probably need to split all the bytecode cases
duke@435 2350 // out so c++ compiler has a chance for constant prop to fold everything possible away.
duke@435 2351
duke@435 2352 if (!cache->is_resolved((Bytecodes::Code)opcode)) {
duke@435 2353 CALL_VM(InterpreterRuntime::resolve_invoke(THREAD, (Bytecodes::Code)opcode),
duke@435 2354 handle_exception);
duke@435 2355 cache = cp->entry_at(index);
duke@435 2356 }
duke@435 2357
duke@435 2358 istate->set_msg(call_method);
duke@435 2359 {
coleenp@4037 2360 Method* callee;
duke@435 2361 if ((Bytecodes::Code)opcode == Bytecodes::_invokevirtual) {
duke@435 2362 CHECK_NULL(STACK_OBJECT(-(cache->parameter_size())));
twisti@3969 2363 if (cache->is_vfinal()) callee = cache->f2_as_vfinal_method();
duke@435 2364 else {
duke@435 2365 // get receiver
duke@435 2366 int parms = cache->parameter_size();
duke@435 2367 // this works but needs a resourcemark and seems to create a vtable on every call:
coleenp@4037 2368 // Method* callee = rcvr->klass()->vtable()->method_at(cache->f2_as_index());
duke@435 2369 //
duke@435 2370 // this fails with an assert
coleenp@4037 2371 // InstanceKlass* rcvrKlass = InstanceKlass::cast(STACK_OBJECT(-parms)->klass());
duke@435 2372 // but this works
bobv@2036 2373 VERIFY_OOP(STACK_OBJECT(-parms));
coleenp@4037 2374 InstanceKlass* rcvrKlass = (InstanceKlass*) STACK_OBJECT(-parms)->klass();
duke@435 2375 /*
duke@435 2376 Executing this code in java.lang.String:
duke@435 2377 public String(char value[]) {
duke@435 2378 this.count = value.length;
duke@435 2379 this.value = (char[])value.clone();
duke@435 2380 }
duke@435 2381
coleenp@4037 2382 a find on rcvr->klass() reports:
duke@435 2383 {type array char}{type array class}
duke@435 2384 - klass: {other class}
duke@435 2385
coleenp@4037 2386 but using InstanceKlass::cast(STACK_OBJECT(-parms)->klass()) causes in assertion failure
coleenp@4037 2387 because rcvr->klass()->oop_is_instance() == 0
duke@435 2388 However it seems to have a vtable in the right location. Huh?
duke@435 2389
duke@435 2390 */
coleenp@4037 2391 callee = (Method*) rcvrKlass->start_of_vtable()[ cache->f2_as_index()];
duke@435 2392 }
duke@435 2393 } else {
duke@435 2394 if ((Bytecodes::Code)opcode == Bytecodes::_invokespecial) {
duke@435 2395 CHECK_NULL(STACK_OBJECT(-(cache->parameter_size())));
duke@435 2396 }
twisti@3969 2397 callee = cache->f1_as_method();
duke@435 2398 }
duke@435 2399
duke@435 2400 istate->set_callee(callee);
duke@435 2401 istate->set_callee_entry_point(callee->from_interpreted_entry());
duke@435 2402 #ifdef VM_JVMTI
duke@435 2403 if (JvmtiExport::can_post_interpreter_events() && THREAD->is_interp_only_mode()) {
duke@435 2404 istate->set_callee_entry_point(callee->interpreter_entry());
duke@435 2405 }
duke@435 2406 #endif /* VM_JVMTI */
duke@435 2407 istate->set_bcp_advance(3);
duke@435 2408 UPDATE_PC_AND_RETURN(0); // I'll be back...
duke@435 2409 }
duke@435 2410 }
duke@435 2411
duke@435 2412 /* Allocate memory for a new java object. */
duke@435 2413
duke@435 2414 CASE(_newarray): {
duke@435 2415 BasicType atype = (BasicType) *(pc+1);
duke@435 2416 jint size = STACK_INT(-1);
duke@435 2417 CALL_VM(InterpreterRuntime::newarray(THREAD, atype, size),
duke@435 2418 handle_exception);
duke@435 2419 SET_STACK_OBJECT(THREAD->vm_result(), -1);
duke@435 2420 THREAD->set_vm_result(NULL);
duke@435 2421
duke@435 2422 UPDATE_PC_AND_CONTINUE(2);
duke@435 2423 }
duke@435 2424
duke@435 2425 /* Throw an exception. */
duke@435 2426
duke@435 2427 CASE(_athrow): {
duke@435 2428 oop except_oop = STACK_OBJECT(-1);
duke@435 2429 CHECK_NULL(except_oop);
duke@435 2430 // set pending_exception so we use common code
duke@435 2431 THREAD->set_pending_exception(except_oop, NULL, 0);
duke@435 2432 goto handle_exception;
duke@435 2433 }
duke@435 2434
duke@435 2435 /* goto and jsr. They are exactly the same except jsr pushes
duke@435 2436 * the address of the next instruction first.
duke@435 2437 */
duke@435 2438
duke@435 2439 CASE(_jsr): {
duke@435 2440 /* push bytecode index on stack */
duke@435 2441 SET_STACK_ADDR(((address)pc - (intptr_t)(istate->method()->code_base()) + 3), 0);
duke@435 2442 MORE_STACK(1);
duke@435 2443 /* FALL THROUGH */
duke@435 2444 }
duke@435 2445
duke@435 2446 CASE(_goto):
duke@435 2447 {
duke@435 2448 int16_t offset = (int16_t)Bytes::get_Java_u2(pc + 1);
duke@435 2449 address branch_pc = pc;
duke@435 2450 UPDATE_PC(offset);
duke@435 2451 DO_BACKEDGE_CHECKS(offset, branch_pc);
duke@435 2452 CONTINUE;
duke@435 2453 }
duke@435 2454
duke@435 2455 CASE(_jsr_w): {
duke@435 2456 /* push return address on the stack */
duke@435 2457 SET_STACK_ADDR(((address)pc - (intptr_t)(istate->method()->code_base()) + 5), 0);
duke@435 2458 MORE_STACK(1);
duke@435 2459 /* FALL THROUGH */
duke@435 2460 }
duke@435 2461
duke@435 2462 CASE(_goto_w):
duke@435 2463 {
duke@435 2464 int32_t offset = Bytes::get_Java_u4(pc + 1);
duke@435 2465 address branch_pc = pc;
duke@435 2466 UPDATE_PC(offset);
duke@435 2467 DO_BACKEDGE_CHECKS(offset, branch_pc);
duke@435 2468 CONTINUE;
duke@435 2469 }
duke@435 2470
duke@435 2471 /* return from a jsr or jsr_w */
duke@435 2472
duke@435 2473 CASE(_ret): {
duke@435 2474 pc = istate->method()->code_base() + (intptr_t)(LOCALS_ADDR(pc[1]));
duke@435 2475 UPDATE_PC_AND_CONTINUE(0);
duke@435 2476 }
duke@435 2477
duke@435 2478 /* debugger breakpoint */
duke@435 2479
duke@435 2480 CASE(_breakpoint): {
duke@435 2481 Bytecodes::Code original_bytecode;
duke@435 2482 DECACHE_STATE();
duke@435 2483 SET_LAST_JAVA_FRAME();
duke@435 2484 original_bytecode = InterpreterRuntime::get_original_bytecode_at(THREAD,
duke@435 2485 METHOD, pc);
duke@435 2486 RESET_LAST_JAVA_FRAME();
duke@435 2487 CACHE_STATE();
duke@435 2488 if (THREAD->has_pending_exception()) goto handle_exception;
duke@435 2489 CALL_VM(InterpreterRuntime::_breakpoint(THREAD, METHOD, pc),
duke@435 2490 handle_exception);
duke@435 2491
duke@435 2492 opcode = (jubyte)original_bytecode;
duke@435 2493 goto opcode_switch;
duke@435 2494 }
duke@435 2495
duke@435 2496 DEFAULT:
jcoomes@1845 2497 fatal(err_msg("Unimplemented opcode %d = %s", opcode,
jcoomes@1845 2498 Bytecodes::name((Bytecodes::Code)opcode)));
duke@435 2499 goto finish;
duke@435 2500
duke@435 2501 } /* switch(opc) */
duke@435 2502
duke@435 2503
duke@435 2504 #ifdef USELABELS
duke@435 2505 check_for_exception:
duke@435 2506 #endif
duke@435 2507 {
duke@435 2508 if (!THREAD->has_pending_exception()) {
duke@435 2509 CONTINUE;
duke@435 2510 }
duke@435 2511 /* We will be gcsafe soon, so flush our state. */
duke@435 2512 DECACHE_PC();
duke@435 2513 goto handle_exception;
duke@435 2514 }
duke@435 2515 do_continue: ;
duke@435 2516
duke@435 2517 } /* while (1) interpreter loop */
duke@435 2518
duke@435 2519
duke@435 2520 // An exception exists in the thread state see whether this activation can handle it
duke@435 2521 handle_exception: {
duke@435 2522
duke@435 2523 HandleMarkCleaner __hmc(THREAD);
duke@435 2524 Handle except_oop(THREAD, THREAD->pending_exception());
duke@435 2525 // Prevent any subsequent HandleMarkCleaner in the VM
duke@435 2526 // from freeing the except_oop handle.
duke@435 2527 HandleMark __hm(THREAD);
duke@435 2528
duke@435 2529 THREAD->clear_pending_exception();
duke@435 2530 assert(except_oop(), "No exception to process");
duke@435 2531 intptr_t continuation_bci;
duke@435 2532 // expression stack is emptied
twisti@1864 2533 topOfStack = istate->stack_base() - Interpreter::stackElementWords;
duke@435 2534 CALL_VM(continuation_bci = (intptr_t)InterpreterRuntime::exception_handler_for_exception(THREAD, except_oop()),
duke@435 2535 handle_exception);
duke@435 2536
coleenp@4037 2537 except_oop = THREAD->vm_result();
duke@435 2538 THREAD->set_vm_result(NULL);
duke@435 2539 if (continuation_bci >= 0) {
duke@435 2540 // Place exception on top of stack
duke@435 2541 SET_STACK_OBJECT(except_oop(), 0);
duke@435 2542 MORE_STACK(1);
duke@435 2543 pc = METHOD->code_base() + continuation_bci;
duke@435 2544 if (TraceExceptions) {
duke@435 2545 ttyLocker ttyl;
duke@435 2546 ResourceMark rm;
duke@435 2547 tty->print_cr("Exception <%s> (" INTPTR_FORMAT ")", except_oop->print_value_string(), except_oop());
duke@435 2548 tty->print_cr(" thrown in interpreter method <%s>", METHOD->print_value_string());
duke@435 2549 tty->print_cr(" at bci %d, continuing at %d for thread " INTPTR_FORMAT,
duke@435 2550 pc - (intptr_t)METHOD->code_base(),
duke@435 2551 continuation_bci, THREAD);
duke@435 2552 }
duke@435 2553 // for AbortVMOnException flag
duke@435 2554 NOT_PRODUCT(Exceptions::debug_check_abort(except_oop));
duke@435 2555 goto run;
duke@435 2556 }
duke@435 2557 if (TraceExceptions) {
duke@435 2558 ttyLocker ttyl;
duke@435 2559 ResourceMark rm;
duke@435 2560 tty->print_cr("Exception <%s> (" INTPTR_FORMAT ")", except_oop->print_value_string(), except_oop());
duke@435 2561 tty->print_cr(" thrown in interpreter method <%s>", METHOD->print_value_string());
duke@435 2562 tty->print_cr(" at bci %d, unwinding for thread " INTPTR_FORMAT,
duke@435 2563 pc - (intptr_t) METHOD->code_base(),
duke@435 2564 THREAD);
duke@435 2565 }
duke@435 2566 // for AbortVMOnException flag
duke@435 2567 NOT_PRODUCT(Exceptions::debug_check_abort(except_oop));
duke@435 2568 // No handler in this activation, unwind and try again
duke@435 2569 THREAD->set_pending_exception(except_oop(), NULL, 0);
duke@435 2570 goto handle_return;
duke@435 2571 } /* handle_exception: */
duke@435 2572
duke@435 2573
duke@435 2574
duke@435 2575 // Return from an interpreter invocation with the result of the interpretation
duke@435 2576 // on the top of the Java Stack (or a pending exception)
duke@435 2577
duke@435 2578 handle_Pop_Frame:
duke@435 2579
duke@435 2580 // We don't really do anything special here except we must be aware
duke@435 2581 // that we can get here without ever locking the method (if sync).
duke@435 2582 // Also we skip the notification of the exit.
duke@435 2583
duke@435 2584 istate->set_msg(popping_frame);
duke@435 2585 // Clear pending so while the pop is in process
duke@435 2586 // we don't start another one if a call_vm is done.
duke@435 2587 THREAD->clr_pop_frame_pending();
duke@435 2588 // Let interpreter (only) see the we're in the process of popping a frame
duke@435 2589 THREAD->set_pop_frame_in_process();
duke@435 2590
duke@435 2591 handle_return:
duke@435 2592 {
duke@435 2593 DECACHE_STATE();
duke@435 2594
duke@435 2595 bool suppress_error = istate->msg() == popping_frame;
duke@435 2596 bool suppress_exit_event = THREAD->has_pending_exception() || suppress_error;
duke@435 2597 Handle original_exception(THREAD, THREAD->pending_exception());
duke@435 2598 Handle illegal_state_oop(THREAD, NULL);
duke@435 2599
duke@435 2600 // We'd like a HandleMark here to prevent any subsequent HandleMarkCleaner
duke@435 2601 // in any following VM entries from freeing our live handles, but illegal_state_oop
duke@435 2602 // isn't really allocated yet and so doesn't become live until later and
duke@435 2603 // in unpredicatable places. Instead we must protect the places where we enter the
duke@435 2604 // VM. It would be much simpler (and safer) if we could allocate a real handle with
duke@435 2605 // a NULL oop in it and then overwrite the oop later as needed. This isn't
duke@435 2606 // unfortunately isn't possible.
duke@435 2607
duke@435 2608 THREAD->clear_pending_exception();
duke@435 2609
duke@435 2610 //
duke@435 2611 // As far as we are concerned we have returned. If we have a pending exception
duke@435 2612 // that will be returned as this invocation's result. However if we get any
duke@435 2613 // exception(s) while checking monitor state one of those IllegalMonitorStateExceptions
duke@435 2614 // will be our final result (i.e. monitor exception trumps a pending exception).
duke@435 2615 //
duke@435 2616
duke@435 2617 // If we never locked the method (or really passed the point where we would have),
duke@435 2618 // there is no need to unlock it (or look for other monitors), since that
duke@435 2619 // could not have happened.
duke@435 2620
duke@435 2621 if (THREAD->do_not_unlock()) {
duke@435 2622
duke@435 2623 // Never locked, reset the flag now because obviously any caller must
duke@435 2624 // have passed their point of locking for us to have gotten here.
duke@435 2625
duke@435 2626 THREAD->clr_do_not_unlock();
duke@435 2627 } else {
duke@435 2628 // At this point we consider that we have returned. We now check that the
duke@435 2629 // locks were properly block structured. If we find that they were not
duke@435 2630 // used properly we will return with an illegal monitor exception.
duke@435 2631 // The exception is checked by the caller not the callee since this
duke@435 2632 // checking is considered to be part of the invocation and therefore
duke@435 2633 // in the callers scope (JVM spec 8.13).
duke@435 2634 //
duke@435 2635 // Another weird thing to watch for is if the method was locked
duke@435 2636 // recursively and then not exited properly. This means we must
duke@435 2637 // examine all the entries in reverse time(and stack) order and
duke@435 2638 // unlock as we find them. If we find the method monitor before
duke@435 2639 // we are at the initial entry then we should throw an exception.
duke@435 2640 // It is not clear the template based interpreter does this
duke@435 2641 // correctly
duke@435 2642
duke@435 2643 BasicObjectLock* base = istate->monitor_base();
duke@435 2644 BasicObjectLock* end = (BasicObjectLock*) istate->stack_base();
duke@435 2645 bool method_unlock_needed = METHOD->is_synchronized();
duke@435 2646 // We know the initial monitor was used for the method don't check that
duke@435 2647 // slot in the loop
duke@435 2648 if (method_unlock_needed) base--;
duke@435 2649
duke@435 2650 // Check all the monitors to see they are unlocked. Install exception if found to be locked.
duke@435 2651 while (end < base) {
duke@435 2652 oop lockee = end->obj();
duke@435 2653 if (lockee != NULL) {
duke@435 2654 BasicLock* lock = end->lock();
duke@435 2655 markOop header = lock->displaced_header();
duke@435 2656 end->set_obj(NULL);
duke@435 2657 // If it isn't recursive we either must swap old header or call the runtime
duke@435 2658 if (header != NULL) {
duke@435 2659 if (Atomic::cmpxchg_ptr(header, lockee->mark_addr(), lock) != lock) {
duke@435 2660 // restore object for the slow case
duke@435 2661 end->set_obj(lockee);
duke@435 2662 {
duke@435 2663 // Prevent any HandleMarkCleaner from freeing our live handles
duke@435 2664 HandleMark __hm(THREAD);
duke@435 2665 CALL_VM_NOCHECK(InterpreterRuntime::monitorexit(THREAD, end));
duke@435 2666 }
duke@435 2667 }
duke@435 2668 }
duke@435 2669 // One error is plenty
duke@435 2670 if (illegal_state_oop() == NULL && !suppress_error) {
duke@435 2671 {
duke@435 2672 // Prevent any HandleMarkCleaner from freeing our live handles
duke@435 2673 HandleMark __hm(THREAD);
duke@435 2674 CALL_VM_NOCHECK(InterpreterRuntime::throw_illegal_monitor_state_exception(THREAD));
duke@435 2675 }
duke@435 2676 assert(THREAD->has_pending_exception(), "Lost our exception!");
duke@435 2677 illegal_state_oop = THREAD->pending_exception();
duke@435 2678 THREAD->clear_pending_exception();
duke@435 2679 }
duke@435 2680 }
duke@435 2681 end++;
duke@435 2682 }
duke@435 2683 // Unlock the method if needed
duke@435 2684 if (method_unlock_needed) {
duke@435 2685 if (base->obj() == NULL) {
duke@435 2686 // The method is already unlocked this is not good.
duke@435 2687 if (illegal_state_oop() == NULL && !suppress_error) {
duke@435 2688 {
duke@435 2689 // Prevent any HandleMarkCleaner from freeing our live handles
duke@435 2690 HandleMark __hm(THREAD);
duke@435 2691 CALL_VM_NOCHECK(InterpreterRuntime::throw_illegal_monitor_state_exception(THREAD));
duke@435 2692 }
duke@435 2693 assert(THREAD->has_pending_exception(), "Lost our exception!");
duke@435 2694 illegal_state_oop = THREAD->pending_exception();
duke@435 2695 THREAD->clear_pending_exception();
duke@435 2696 }
duke@435 2697 } else {
duke@435 2698 //
duke@435 2699 // The initial monitor is always used for the method
duke@435 2700 // However if that slot is no longer the oop for the method it was unlocked
duke@435 2701 // and reused by something that wasn't unlocked!
duke@435 2702 //
duke@435 2703 // deopt can come in with rcvr dead because c2 knows
duke@435 2704 // its value is preserved in the monitor. So we can't use locals[0] at all
duke@435 2705 // and must use first monitor slot.
duke@435 2706 //
duke@435 2707 oop rcvr = base->obj();
duke@435 2708 if (rcvr == NULL) {
duke@435 2709 if (!suppress_error) {
duke@435 2710 VM_JAVA_ERROR_NO_JUMP(vmSymbols::java_lang_NullPointerException(), "");
duke@435 2711 illegal_state_oop = THREAD->pending_exception();
duke@435 2712 THREAD->clear_pending_exception();
duke@435 2713 }
duke@435 2714 } else {
duke@435 2715 BasicLock* lock = base->lock();
duke@435 2716 markOop header = lock->displaced_header();
duke@435 2717 base->set_obj(NULL);
duke@435 2718 // If it isn't recursive we either must swap old header or call the runtime
duke@435 2719 if (header != NULL) {
duke@435 2720 if (Atomic::cmpxchg_ptr(header, rcvr->mark_addr(), lock) != lock) {
duke@435 2721 // restore object for the slow case
duke@435 2722 base->set_obj(rcvr);
duke@435 2723 {
duke@435 2724 // Prevent any HandleMarkCleaner from freeing our live handles
duke@435 2725 HandleMark __hm(THREAD);
duke@435 2726 CALL_VM_NOCHECK(InterpreterRuntime::monitorexit(THREAD, base));
duke@435 2727 }
duke@435 2728 if (THREAD->has_pending_exception()) {
duke@435 2729 if (!suppress_error) illegal_state_oop = THREAD->pending_exception();
duke@435 2730 THREAD->clear_pending_exception();
duke@435 2731 }
duke@435 2732 }
duke@435 2733 }
duke@435 2734 }
duke@435 2735 }
duke@435 2736 }
duke@435 2737 }
duke@435 2738
duke@435 2739 //
duke@435 2740 // Notify jvmti/jvmdi
duke@435 2741 //
duke@435 2742 // NOTE: we do not notify a method_exit if we have a pending exception,
duke@435 2743 // including an exception we generate for unlocking checks. In the former
duke@435 2744 // case, JVMDI has already been notified by our call for the exception handler
duke@435 2745 // and in both cases as far as JVMDI is concerned we have already returned.
duke@435 2746 // If we notify it again JVMDI will be all confused about how many frames
duke@435 2747 // are still on the stack (4340444).
duke@435 2748 //
duke@435 2749 // NOTE Further! It turns out the the JVMTI spec in fact expects to see
duke@435 2750 // method_exit events whenever we leave an activation unless it was done
duke@435 2751 // for popframe. This is nothing like jvmdi. However we are passing the
duke@435 2752 // tests at the moment (apparently because they are jvmdi based) so rather
duke@435 2753 // than change this code and possibly fail tests we will leave it alone
duke@435 2754 // (with this note) in anticipation of changing the vm and the tests
duke@435 2755 // simultaneously.
duke@435 2756
duke@435 2757
duke@435 2758 //
duke@435 2759 suppress_exit_event = suppress_exit_event || illegal_state_oop() != NULL;
duke@435 2760
duke@435 2761
duke@435 2762
duke@435 2763 #ifdef VM_JVMTI
duke@435 2764 if (_jvmti_interp_events) {
duke@435 2765 // Whenever JVMTI puts a thread in interp_only_mode, method
duke@435 2766 // entry/exit events are sent for that thread to track stack depth.
duke@435 2767 if ( !suppress_exit_event && THREAD->is_interp_only_mode() ) {
duke@435 2768 {
duke@435 2769 // Prevent any HandleMarkCleaner from freeing our live handles
duke@435 2770 HandleMark __hm(THREAD);
duke@435 2771 CALL_VM_NOCHECK(InterpreterRuntime::post_method_exit(THREAD));
duke@435 2772 }
duke@435 2773 }
duke@435 2774 }
duke@435 2775 #endif /* VM_JVMTI */
duke@435 2776
duke@435 2777 //
duke@435 2778 // See if we are returning any exception
duke@435 2779 // A pending exception that was pending prior to a possible popping frame
duke@435 2780 // overrides the popping frame.
duke@435 2781 //
duke@435 2782 assert(!suppress_error || suppress_error && illegal_state_oop() == NULL, "Error was not suppressed");
duke@435 2783 if (illegal_state_oop() != NULL || original_exception() != NULL) {
duke@435 2784 // inform the frame manager we have no result
duke@435 2785 istate->set_msg(throwing_exception);
duke@435 2786 if (illegal_state_oop() != NULL)
duke@435 2787 THREAD->set_pending_exception(illegal_state_oop(), NULL, 0);
duke@435 2788 else
duke@435 2789 THREAD->set_pending_exception(original_exception(), NULL, 0);
duke@435 2790 istate->set_return_kind((Bytecodes::Code)opcode);
duke@435 2791 UPDATE_PC_AND_RETURN(0);
duke@435 2792 }
duke@435 2793
duke@435 2794 if (istate->msg() == popping_frame) {
duke@435 2795 // Make it simpler on the assembly code and set the message for the frame pop.
duke@435 2796 // returns
duke@435 2797 if (istate->prev() == NULL) {
duke@435 2798 // We must be returning to a deoptimized frame (because popframe only happens between
duke@435 2799 // two interpreted frames). We need to save the current arguments in C heap so that
duke@435 2800 // the deoptimized frame when it restarts can copy the arguments to its expression
duke@435 2801 // stack and re-execute the call. We also have to notify deoptimization that this
twisti@1040 2802 // has occurred and to pick the preserved args copy them to the deoptimized frame's
duke@435 2803 // java expression stack. Yuck.
duke@435 2804 //
duke@435 2805 THREAD->popframe_preserve_args(in_ByteSize(METHOD->size_of_parameters() * wordSize),
duke@435 2806 LOCALS_SLOT(METHOD->size_of_parameters() - 1));
duke@435 2807 THREAD->set_popframe_condition_bit(JavaThread::popframe_force_deopt_reexecution_bit);
duke@435 2808 }
bobv@2036 2809 THREAD->clr_pop_frame_in_process();
duke@435 2810 }
bobv@2036 2811
bobv@2036 2812 // Normal return
bobv@2036 2813 // Advance the pc and return to frame manager
bobv@2036 2814 istate->set_msg(return_from_method);
bobv@2036 2815 istate->set_return_kind((Bytecodes::Code)opcode);
bobv@2036 2816 UPDATE_PC_AND_RETURN(1);
duke@435 2817 } /* handle_return: */
duke@435 2818
duke@435 2819 // This is really a fatal error return
duke@435 2820
duke@435 2821 finish:
duke@435 2822 DECACHE_TOS();
duke@435 2823 DECACHE_PC();
duke@435 2824
duke@435 2825 return;
duke@435 2826 }
duke@435 2827
duke@435 2828 /*
duke@435 2829 * All the code following this point is only produced once and is not present
duke@435 2830 * in the JVMTI version of the interpreter
duke@435 2831 */
duke@435 2832
duke@435 2833 #ifndef VM_JVMTI
duke@435 2834
duke@435 2835 // This constructor should only be used to contruct the object to signal
duke@435 2836 // interpreter initialization. All other instances should be created by
duke@435 2837 // the frame manager.
duke@435 2838 BytecodeInterpreter::BytecodeInterpreter(messages msg) {
duke@435 2839 if (msg != initialize) ShouldNotReachHere();
duke@435 2840 _msg = msg;
duke@435 2841 _self_link = this;
duke@435 2842 _prev_link = NULL;
duke@435 2843 }
duke@435 2844
duke@435 2845 // Inline static functions for Java Stack and Local manipulation
duke@435 2846
duke@435 2847 // The implementations are platform dependent. We have to worry about alignment
duke@435 2848 // issues on some machines which can change on the same platform depending on
duke@435 2849 // whether it is an LP64 machine also.
duke@435 2850 address BytecodeInterpreter::stack_slot(intptr_t *tos, int offset) {
duke@435 2851 return (address) tos[Interpreter::expr_index_at(-offset)];
duke@435 2852 }
duke@435 2853
duke@435 2854 jint BytecodeInterpreter::stack_int(intptr_t *tos, int offset) {
duke@435 2855 return *((jint*) &tos[Interpreter::expr_index_at(-offset)]);
duke@435 2856 }
duke@435 2857
duke@435 2858 jfloat BytecodeInterpreter::stack_float(intptr_t *tos, int offset) {
duke@435 2859 return *((jfloat *) &tos[Interpreter::expr_index_at(-offset)]);
duke@435 2860 }
duke@435 2861
duke@435 2862 oop BytecodeInterpreter::stack_object(intptr_t *tos, int offset) {
duke@435 2863 return (oop)tos [Interpreter::expr_index_at(-offset)];
duke@435 2864 }
duke@435 2865
duke@435 2866 jdouble BytecodeInterpreter::stack_double(intptr_t *tos, int offset) {
duke@435 2867 return ((VMJavaVal64*) &tos[Interpreter::expr_index_at(-offset)])->d;
duke@435 2868 }
duke@435 2869
duke@435 2870 jlong BytecodeInterpreter::stack_long(intptr_t *tos, int offset) {
duke@435 2871 return ((VMJavaVal64 *) &tos[Interpreter::expr_index_at(-offset)])->l;
duke@435 2872 }
duke@435 2873
duke@435 2874 // only used for value types
duke@435 2875 void BytecodeInterpreter::set_stack_slot(intptr_t *tos, address value,
duke@435 2876 int offset) {
duke@435 2877 *((address *)&tos[Interpreter::expr_index_at(-offset)]) = value;
duke@435 2878 }
duke@435 2879
duke@435 2880 void BytecodeInterpreter::set_stack_int(intptr_t *tos, int value,
duke@435 2881 int offset) {
duke@435 2882 *((jint *)&tos[Interpreter::expr_index_at(-offset)]) = value;
duke@435 2883 }
duke@435 2884
duke@435 2885 void BytecodeInterpreter::set_stack_float(intptr_t *tos, jfloat value,
duke@435 2886 int offset) {
duke@435 2887 *((jfloat *)&tos[Interpreter::expr_index_at(-offset)]) = value;
duke@435 2888 }
duke@435 2889
duke@435 2890 void BytecodeInterpreter::set_stack_object(intptr_t *tos, oop value,
duke@435 2891 int offset) {
duke@435 2892 *((oop *)&tos[Interpreter::expr_index_at(-offset)]) = value;
duke@435 2893 }
duke@435 2894
duke@435 2895 // needs to be platform dep for the 32 bit platforms.
duke@435 2896 void BytecodeInterpreter::set_stack_double(intptr_t *tos, jdouble value,
duke@435 2897 int offset) {
duke@435 2898 ((VMJavaVal64*)&tos[Interpreter::expr_index_at(-offset)])->d = value;
duke@435 2899 }
duke@435 2900
duke@435 2901 void BytecodeInterpreter::set_stack_double_from_addr(intptr_t *tos,
duke@435 2902 address addr, int offset) {
duke@435 2903 (((VMJavaVal64*)&tos[Interpreter::expr_index_at(-offset)])->d =
duke@435 2904 ((VMJavaVal64*)addr)->d);
duke@435 2905 }
duke@435 2906
duke@435 2907 void BytecodeInterpreter::set_stack_long(intptr_t *tos, jlong value,
duke@435 2908 int offset) {
duke@435 2909 ((VMJavaVal64*)&tos[Interpreter::expr_index_at(-offset+1)])->l = 0xdeedbeeb;
duke@435 2910 ((VMJavaVal64*)&tos[Interpreter::expr_index_at(-offset)])->l = value;
duke@435 2911 }
duke@435 2912
duke@435 2913 void BytecodeInterpreter::set_stack_long_from_addr(intptr_t *tos,
duke@435 2914 address addr, int offset) {
duke@435 2915 ((VMJavaVal64*)&tos[Interpreter::expr_index_at(-offset+1)])->l = 0xdeedbeeb;
duke@435 2916 ((VMJavaVal64*)&tos[Interpreter::expr_index_at(-offset)])->l =
duke@435 2917 ((VMJavaVal64*)addr)->l;
duke@435 2918 }
duke@435 2919
duke@435 2920 // Locals
duke@435 2921
duke@435 2922 address BytecodeInterpreter::locals_slot(intptr_t* locals, int offset) {
duke@435 2923 return (address)locals[Interpreter::local_index_at(-offset)];
duke@435 2924 }
duke@435 2925 jint BytecodeInterpreter::locals_int(intptr_t* locals, int offset) {
duke@435 2926 return (jint)locals[Interpreter::local_index_at(-offset)];
duke@435 2927 }
duke@435 2928 jfloat BytecodeInterpreter::locals_float(intptr_t* locals, int offset) {
duke@435 2929 return (jfloat)locals[Interpreter::local_index_at(-offset)];
duke@435 2930 }
duke@435 2931 oop BytecodeInterpreter::locals_object(intptr_t* locals, int offset) {
duke@435 2932 return (oop)locals[Interpreter::local_index_at(-offset)];
duke@435 2933 }
duke@435 2934 jdouble BytecodeInterpreter::locals_double(intptr_t* locals, int offset) {
duke@435 2935 return ((VMJavaVal64*)&locals[Interpreter::local_index_at(-(offset+1))])->d;
duke@435 2936 }
duke@435 2937 jlong BytecodeInterpreter::locals_long(intptr_t* locals, int offset) {
duke@435 2938 return ((VMJavaVal64*)&locals[Interpreter::local_index_at(-(offset+1))])->l;
duke@435 2939 }
duke@435 2940
duke@435 2941 // Returns the address of locals value.
duke@435 2942 address BytecodeInterpreter::locals_long_at(intptr_t* locals, int offset) {
duke@435 2943 return ((address)&locals[Interpreter::local_index_at(-(offset+1))]);
duke@435 2944 }
duke@435 2945 address BytecodeInterpreter::locals_double_at(intptr_t* locals, int offset) {
duke@435 2946 return ((address)&locals[Interpreter::local_index_at(-(offset+1))]);
duke@435 2947 }
duke@435 2948
duke@435 2949 // Used for local value or returnAddress
duke@435 2950 void BytecodeInterpreter::set_locals_slot(intptr_t *locals,
duke@435 2951 address value, int offset) {
duke@435 2952 *((address*)&locals[Interpreter::local_index_at(-offset)]) = value;
duke@435 2953 }
duke@435 2954 void BytecodeInterpreter::set_locals_int(intptr_t *locals,
duke@435 2955 jint value, int offset) {
duke@435 2956 *((jint *)&locals[Interpreter::local_index_at(-offset)]) = value;
duke@435 2957 }
duke@435 2958 void BytecodeInterpreter::set_locals_float(intptr_t *locals,
duke@435 2959 jfloat value, int offset) {
duke@435 2960 *((jfloat *)&locals[Interpreter::local_index_at(-offset)]) = value;
duke@435 2961 }
duke@435 2962 void BytecodeInterpreter::set_locals_object(intptr_t *locals,
duke@435 2963 oop value, int offset) {
duke@435 2964 *((oop *)&locals[Interpreter::local_index_at(-offset)]) = value;
duke@435 2965 }
duke@435 2966 void BytecodeInterpreter::set_locals_double(intptr_t *locals,
duke@435 2967 jdouble value, int offset) {
duke@435 2968 ((VMJavaVal64*)&locals[Interpreter::local_index_at(-(offset+1))])->d = value;
duke@435 2969 }
duke@435 2970 void BytecodeInterpreter::set_locals_long(intptr_t *locals,
duke@435 2971 jlong value, int offset) {
duke@435 2972 ((VMJavaVal64*)&locals[Interpreter::local_index_at(-(offset+1))])->l = value;
duke@435 2973 }
duke@435 2974 void BytecodeInterpreter::set_locals_double_from_addr(intptr_t *locals,
duke@435 2975 address addr, int offset) {
duke@435 2976 ((VMJavaVal64*)&locals[Interpreter::local_index_at(-(offset+1))])->d = ((VMJavaVal64*)addr)->d;
duke@435 2977 }
duke@435 2978 void BytecodeInterpreter::set_locals_long_from_addr(intptr_t *locals,
duke@435 2979 address addr, int offset) {
duke@435 2980 ((VMJavaVal64*)&locals[Interpreter::local_index_at(-(offset+1))])->l = ((VMJavaVal64*)addr)->l;
duke@435 2981 }
duke@435 2982
duke@435 2983 void BytecodeInterpreter::astore(intptr_t* tos, int stack_offset,
duke@435 2984 intptr_t* locals, int locals_offset) {
duke@435 2985 intptr_t value = tos[Interpreter::expr_index_at(-stack_offset)];
duke@435 2986 locals[Interpreter::local_index_at(-locals_offset)] = value;
duke@435 2987 }
duke@435 2988
duke@435 2989
duke@435 2990 void BytecodeInterpreter::copy_stack_slot(intptr_t *tos, int from_offset,
duke@435 2991 int to_offset) {
duke@435 2992 tos[Interpreter::expr_index_at(-to_offset)] =
duke@435 2993 (intptr_t)tos[Interpreter::expr_index_at(-from_offset)];
duke@435 2994 }
duke@435 2995
duke@435 2996 void BytecodeInterpreter::dup(intptr_t *tos) {
duke@435 2997 copy_stack_slot(tos, -1, 0);
duke@435 2998 }
duke@435 2999 void BytecodeInterpreter::dup2(intptr_t *tos) {
duke@435 3000 copy_stack_slot(tos, -2, 0);
duke@435 3001 copy_stack_slot(tos, -1, 1);
duke@435 3002 }
duke@435 3003
duke@435 3004 void BytecodeInterpreter::dup_x1(intptr_t *tos) {
duke@435 3005 /* insert top word two down */
duke@435 3006 copy_stack_slot(tos, -1, 0);
duke@435 3007 copy_stack_slot(tos, -2, -1);
duke@435 3008 copy_stack_slot(tos, 0, -2);
duke@435 3009 }
duke@435 3010
duke@435 3011 void BytecodeInterpreter::dup_x2(intptr_t *tos) {
duke@435 3012 /* insert top word three down */
duke@435 3013 copy_stack_slot(tos, -1, 0);
duke@435 3014 copy_stack_slot(tos, -2, -1);
duke@435 3015 copy_stack_slot(tos, -3, -2);
duke@435 3016 copy_stack_slot(tos, 0, -3);
duke@435 3017 }
duke@435 3018 void BytecodeInterpreter::dup2_x1(intptr_t *tos) {
duke@435 3019 /* insert top 2 slots three down */
duke@435 3020 copy_stack_slot(tos, -1, 1);
duke@435 3021 copy_stack_slot(tos, -2, 0);
duke@435 3022 copy_stack_slot(tos, -3, -1);
duke@435 3023 copy_stack_slot(tos, 1, -2);
duke@435 3024 copy_stack_slot(tos, 0, -3);
duke@435 3025 }
duke@435 3026 void BytecodeInterpreter::dup2_x2(intptr_t *tos) {
duke@435 3027 /* insert top 2 slots four down */
duke@435 3028 copy_stack_slot(tos, -1, 1);
duke@435 3029 copy_stack_slot(tos, -2, 0);
duke@435 3030 copy_stack_slot(tos, -3, -1);
duke@435 3031 copy_stack_slot(tos, -4, -2);
duke@435 3032 copy_stack_slot(tos, 1, -3);
duke@435 3033 copy_stack_slot(tos, 0, -4);
duke@435 3034 }
duke@435 3035
duke@435 3036
duke@435 3037 void BytecodeInterpreter::swap(intptr_t *tos) {
duke@435 3038 // swap top two elements
duke@435 3039 intptr_t val = tos[Interpreter::expr_index_at(1)];
duke@435 3040 // Copy -2 entry to -1
duke@435 3041 copy_stack_slot(tos, -2, -1);
duke@435 3042 // Store saved -1 entry into -2
duke@435 3043 tos[Interpreter::expr_index_at(2)] = val;
duke@435 3044 }
duke@435 3045 // --------------------------------------------------------------------------------
duke@435 3046 // Non-product code
duke@435 3047 #ifndef PRODUCT
duke@435 3048
duke@435 3049 const char* BytecodeInterpreter::C_msg(BytecodeInterpreter::messages msg) {
duke@435 3050 switch (msg) {
duke@435 3051 case BytecodeInterpreter::no_request: return("no_request");
duke@435 3052 case BytecodeInterpreter::initialize: return("initialize");
duke@435 3053 // status message to C++ interpreter
duke@435 3054 case BytecodeInterpreter::method_entry: return("method_entry");
duke@435 3055 case BytecodeInterpreter::method_resume: return("method_resume");
duke@435 3056 case BytecodeInterpreter::got_monitors: return("got_monitors");
duke@435 3057 case BytecodeInterpreter::rethrow_exception: return("rethrow_exception");
duke@435 3058 // requests to frame manager from C++ interpreter
duke@435 3059 case BytecodeInterpreter::call_method: return("call_method");
duke@435 3060 case BytecodeInterpreter::return_from_method: return("return_from_method");
duke@435 3061 case BytecodeInterpreter::more_monitors: return("more_monitors");
duke@435 3062 case BytecodeInterpreter::throwing_exception: return("throwing_exception");
duke@435 3063 case BytecodeInterpreter::popping_frame: return("popping_frame");
duke@435 3064 case BytecodeInterpreter::do_osr: return("do_osr");
duke@435 3065 // deopt
duke@435 3066 case BytecodeInterpreter::deopt_resume: return("deopt_resume");
duke@435 3067 case BytecodeInterpreter::deopt_resume2: return("deopt_resume2");
duke@435 3068 default: return("BAD MSG");
duke@435 3069 }
duke@435 3070 }
duke@435 3071 void
duke@435 3072 BytecodeInterpreter::print() {
duke@435 3073 tty->print_cr("thread: " INTPTR_FORMAT, (uintptr_t) this->_thread);
duke@435 3074 tty->print_cr("bcp: " INTPTR_FORMAT, (uintptr_t) this->_bcp);
duke@435 3075 tty->print_cr("locals: " INTPTR_FORMAT, (uintptr_t) this->_locals);
duke@435 3076 tty->print_cr("constants: " INTPTR_FORMAT, (uintptr_t) this->_constants);
duke@435 3077 {
duke@435 3078 ResourceMark rm;
duke@435 3079 char *method_name = _method->name_and_sig_as_C_string();
duke@435 3080 tty->print_cr("method: " INTPTR_FORMAT "[ %s ]", (uintptr_t) this->_method, method_name);
duke@435 3081 }
duke@435 3082 tty->print_cr("mdx: " INTPTR_FORMAT, (uintptr_t) this->_mdx);
duke@435 3083 tty->print_cr("stack: " INTPTR_FORMAT, (uintptr_t) this->_stack);
duke@435 3084 tty->print_cr("msg: %s", C_msg(this->_msg));
duke@435 3085 tty->print_cr("result_to_call._callee: " INTPTR_FORMAT, (uintptr_t) this->_result._to_call._callee);
duke@435 3086 tty->print_cr("result_to_call._callee_entry_point: " INTPTR_FORMAT, (uintptr_t) this->_result._to_call._callee_entry_point);
duke@435 3087 tty->print_cr("result_to_call._bcp_advance: %d ", this->_result._to_call._bcp_advance);
duke@435 3088 tty->print_cr("osr._osr_buf: " INTPTR_FORMAT, (uintptr_t) this->_result._osr._osr_buf);
duke@435 3089 tty->print_cr("osr._osr_entry: " INTPTR_FORMAT, (uintptr_t) this->_result._osr._osr_entry);
duke@435 3090 tty->print_cr("result_return_kind 0x%x ", (int) this->_result._return_kind);
duke@435 3091 tty->print_cr("prev_link: " INTPTR_FORMAT, (uintptr_t) this->_prev_link);
duke@435 3092 tty->print_cr("native_mirror: " INTPTR_FORMAT, (uintptr_t) this->_oop_temp);
duke@435 3093 tty->print_cr("stack_base: " INTPTR_FORMAT, (uintptr_t) this->_stack_base);
duke@435 3094 tty->print_cr("stack_limit: " INTPTR_FORMAT, (uintptr_t) this->_stack_limit);
duke@435 3095 tty->print_cr("monitor_base: " INTPTR_FORMAT, (uintptr_t) this->_monitor_base);
duke@435 3096 #ifdef SPARC
duke@435 3097 tty->print_cr("last_Java_pc: " INTPTR_FORMAT, (uintptr_t) this->_last_Java_pc);
duke@435 3098 tty->print_cr("frame_bottom: " INTPTR_FORMAT, (uintptr_t) this->_frame_bottom);
duke@435 3099 tty->print_cr("&native_fresult: " INTPTR_FORMAT, (uintptr_t) &this->_native_fresult);
duke@435 3100 tty->print_cr("native_lresult: " INTPTR_FORMAT, (uintptr_t) this->_native_lresult);
duke@435 3101 #endif
never@1445 3102 #if defined(IA64) && !defined(ZERO)
duke@435 3103 tty->print_cr("last_Java_fp: " INTPTR_FORMAT, (uintptr_t) this->_last_Java_fp);
never@1445 3104 #endif // IA64 && !ZERO
duke@435 3105 tty->print_cr("self_link: " INTPTR_FORMAT, (uintptr_t) this->_self_link);
duke@435 3106 }
duke@435 3107
duke@435 3108 extern "C" {
duke@435 3109 void PI(uintptr_t arg) {
duke@435 3110 ((BytecodeInterpreter*)arg)->print();
duke@435 3111 }
duke@435 3112 }
duke@435 3113 #endif // PRODUCT
duke@435 3114
duke@435 3115 #endif // JVMTI
duke@435 3116 #endif // CC_INTERP

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