src/share/vm/runtime/thread.cpp

Sun, 25 Sep 2011 16:03:29 -0700

author
never
date
Sun, 25 Sep 2011 16:03:29 -0700
changeset 3156
f08d439fab8c
parent 3137
e6b1331a51d2
child 3183
fd65bc7c09b6
child 3202
436b4a3231bf
permissions
-rw-r--r--

7089790: integrate bsd-port changes
Reviewed-by: kvn, twisti, jrose
Contributed-by: Kurt Miller <kurt@intricatesoftware.com>, Greg Lewis <glewis@eyesbeyond.com>, Jung-uk Kim <jkim@freebsd.org>, Christos Zoulas <christos@zoulas.com>, Landon Fuller <landonf@plausible.coop>, The FreeBSD Foundation <board@freebsdfoundation.org>, Michael Franz <mvfranz@gmail.com>, Roger Hoover <rhoover@apple.com>, Alexander Strange <astrange@apple.com>

duke@435 1 /*
phh@2423 2 * Copyright (c) 1997, 2011, Oracle and/or its affiliates. All rights reserved.
duke@435 3 * DO NOT ALTER OR REMOVE COPYRIGHT NOTICES OR THIS FILE HEADER.
duke@435 4 *
duke@435 5 * This code is free software; you can redistribute it and/or modify it
duke@435 6 * under the terms of the GNU General Public License version 2 only, as
duke@435 7 * published by the Free Software Foundation.
duke@435 8 *
duke@435 9 * This code is distributed in the hope that it will be useful, but WITHOUT
duke@435 10 * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
duke@435 11 * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
duke@435 12 * version 2 for more details (a copy is included in the LICENSE file that
duke@435 13 * accompanied this code).
duke@435 14 *
duke@435 15 * You should have received a copy of the GNU General Public License version
duke@435 16 * 2 along with this work; if not, write to the Free Software Foundation,
duke@435 17 * Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA.
duke@435 18 *
trims@1907 19 * Please contact Oracle, 500 Oracle Parkway, Redwood Shores, CA 94065 USA
trims@1907 20 * or visit www.oracle.com if you need additional information or have any
trims@1907 21 * questions.
duke@435 22 *
duke@435 23 */
duke@435 24
stefank@2314 25 #include "precompiled.hpp"
stefank@2314 26 #include "classfile/classLoader.hpp"
stefank@2314 27 #include "classfile/javaClasses.hpp"
stefank@2314 28 #include "classfile/systemDictionary.hpp"
stefank@2314 29 #include "classfile/vmSymbols.hpp"
stefank@2314 30 #include "code/scopeDesc.hpp"
stefank@2314 31 #include "compiler/compileBroker.hpp"
stefank@2314 32 #include "interpreter/interpreter.hpp"
stefank@2314 33 #include "interpreter/linkResolver.hpp"
never@2868 34 #include "interpreter/oopMapCache.hpp"
kamg@2446 35 #include "jvmtifiles/jvmtiEnv.hpp"
stefank@2314 36 #include "memory/oopFactory.hpp"
stefank@2314 37 #include "memory/universe.inline.hpp"
stefank@2314 38 #include "oops/instanceKlass.hpp"
stefank@2314 39 #include "oops/objArrayOop.hpp"
stefank@2314 40 #include "oops/oop.inline.hpp"
coleenp@2497 41 #include "oops/symbol.hpp"
stefank@2314 42 #include "prims/jvm_misc.hpp"
stefank@2314 43 #include "prims/jvmtiExport.hpp"
stefank@2314 44 #include "prims/jvmtiThreadState.hpp"
stefank@2314 45 #include "prims/privilegedStack.hpp"
stefank@2314 46 #include "runtime/aprofiler.hpp"
stefank@2314 47 #include "runtime/arguments.hpp"
stefank@2314 48 #include "runtime/biasedLocking.hpp"
stefank@2314 49 #include "runtime/deoptimization.hpp"
stefank@2314 50 #include "runtime/fprofiler.hpp"
stefank@2314 51 #include "runtime/frame.inline.hpp"
stefank@2314 52 #include "runtime/init.hpp"
stefank@2314 53 #include "runtime/interfaceSupport.hpp"
stefank@2314 54 #include "runtime/java.hpp"
stefank@2314 55 #include "runtime/javaCalls.hpp"
stefank@2314 56 #include "runtime/jniPeriodicChecker.hpp"
stefank@2314 57 #include "runtime/memprofiler.hpp"
stefank@2314 58 #include "runtime/mutexLocker.hpp"
stefank@2314 59 #include "runtime/objectMonitor.hpp"
stefank@2314 60 #include "runtime/osThread.hpp"
stefank@2314 61 #include "runtime/safepoint.hpp"
stefank@2314 62 #include "runtime/sharedRuntime.hpp"
stefank@2314 63 #include "runtime/statSampler.hpp"
stefank@2314 64 #include "runtime/stubRoutines.hpp"
stefank@2314 65 #include "runtime/task.hpp"
stefank@2314 66 #include "runtime/threadCritical.hpp"
stefank@2314 67 #include "runtime/threadLocalStorage.hpp"
stefank@2314 68 #include "runtime/vframe.hpp"
stefank@2314 69 #include "runtime/vframeArray.hpp"
stefank@2314 70 #include "runtime/vframe_hp.hpp"
stefank@2314 71 #include "runtime/vmThread.hpp"
stefank@2314 72 #include "runtime/vm_operations.hpp"
stefank@2314 73 #include "services/attachListener.hpp"
stefank@2314 74 #include "services/management.hpp"
stefank@2314 75 #include "services/threadService.hpp"
stefank@2314 76 #include "utilities/defaultStream.hpp"
stefank@2314 77 #include "utilities/dtrace.hpp"
stefank@2314 78 #include "utilities/events.hpp"
stefank@2314 79 #include "utilities/preserveException.hpp"
stefank@2314 80 #ifdef TARGET_OS_FAMILY_linux
stefank@2314 81 # include "os_linux.inline.hpp"
stefank@2314 82 # include "thread_linux.inline.hpp"
stefank@2314 83 #endif
stefank@2314 84 #ifdef TARGET_OS_FAMILY_solaris
stefank@2314 85 # include "os_solaris.inline.hpp"
stefank@2314 86 # include "thread_solaris.inline.hpp"
stefank@2314 87 #endif
stefank@2314 88 #ifdef TARGET_OS_FAMILY_windows
stefank@2314 89 # include "os_windows.inline.hpp"
stefank@2314 90 # include "thread_windows.inline.hpp"
stefank@2314 91 #endif
never@3156 92 #ifdef TARGET_OS_FAMILY_bsd
never@3156 93 # include "os_bsd.inline.hpp"
never@3156 94 # include "thread_bsd.inline.hpp"
never@3156 95 #endif
stefank@2314 96 #ifndef SERIALGC
stefank@2314 97 #include "gc_implementation/concurrentMarkSweep/concurrentMarkSweepThread.hpp"
stefank@2314 98 #include "gc_implementation/g1/concurrentMarkThread.inline.hpp"
stefank@2314 99 #include "gc_implementation/parallelScavenge/pcTasks.hpp"
stefank@2314 100 #endif
stefank@2314 101 #ifdef COMPILER1
stefank@2314 102 #include "c1/c1_Compiler.hpp"
stefank@2314 103 #endif
stefank@2314 104 #ifdef COMPILER2
stefank@2314 105 #include "opto/c2compiler.hpp"
stefank@2314 106 #include "opto/idealGraphPrinter.hpp"
stefank@2314 107 #endif
duke@435 108
duke@435 109 #ifdef DTRACE_ENABLED
duke@435 110
duke@435 111 // Only bother with this argument setup if dtrace is available
duke@435 112
duke@435 113 HS_DTRACE_PROBE_DECL(hotspot, vm__init__begin);
duke@435 114 HS_DTRACE_PROBE_DECL(hotspot, vm__init__end);
duke@435 115 HS_DTRACE_PROBE_DECL5(hotspot, thread__start, char*, intptr_t,
duke@435 116 intptr_t, intptr_t, bool);
duke@435 117 HS_DTRACE_PROBE_DECL5(hotspot, thread__stop, char*, intptr_t,
duke@435 118 intptr_t, intptr_t, bool);
duke@435 119
duke@435 120 #define DTRACE_THREAD_PROBE(probe, javathread) \
duke@435 121 { \
duke@435 122 ResourceMark rm(this); \
duke@435 123 int len = 0; \
duke@435 124 const char* name = (javathread)->get_thread_name(); \
duke@435 125 len = strlen(name); \
duke@435 126 HS_DTRACE_PROBE5(hotspot, thread__##probe, \
duke@435 127 name, len, \
duke@435 128 java_lang_Thread::thread_id((javathread)->threadObj()), \
duke@435 129 (javathread)->osthread()->thread_id(), \
duke@435 130 java_lang_Thread::is_daemon((javathread)->threadObj())); \
duke@435 131 }
duke@435 132
duke@435 133 #else // ndef DTRACE_ENABLED
duke@435 134
duke@435 135 #define DTRACE_THREAD_PROBE(probe, javathread)
duke@435 136
duke@435 137 #endif // ndef DTRACE_ENABLED
duke@435 138
duke@435 139 // Class hierarchy
duke@435 140 // - Thread
duke@435 141 // - VMThread
duke@435 142 // - WatcherThread
duke@435 143 // - ConcurrentMarkSweepThread
duke@435 144 // - JavaThread
duke@435 145 // - CompilerThread
duke@435 146
duke@435 147 // ======= Thread ========
duke@435 148
duke@435 149 // Support for forcing alignment of thread objects for biased locking
duke@435 150 void* Thread::operator new(size_t size) {
duke@435 151 if (UseBiasedLocking) {
duke@435 152 const int alignment = markOopDesc::biased_lock_alignment;
duke@435 153 size_t aligned_size = size + (alignment - sizeof(intptr_t));
duke@435 154 void* real_malloc_addr = CHeapObj::operator new(aligned_size);
duke@435 155 void* aligned_addr = (void*) align_size_up((intptr_t) real_malloc_addr, alignment);
duke@435 156 assert(((uintptr_t) aligned_addr + (uintptr_t) size) <=
duke@435 157 ((uintptr_t) real_malloc_addr + (uintptr_t) aligned_size),
duke@435 158 "JavaThread alignment code overflowed allocated storage");
duke@435 159 if (TraceBiasedLocking) {
duke@435 160 if (aligned_addr != real_malloc_addr)
duke@435 161 tty->print_cr("Aligned thread " INTPTR_FORMAT " to " INTPTR_FORMAT,
duke@435 162 real_malloc_addr, aligned_addr);
duke@435 163 }
duke@435 164 ((Thread*) aligned_addr)->_real_malloc_address = real_malloc_addr;
duke@435 165 return aligned_addr;
duke@435 166 } else {
duke@435 167 return CHeapObj::operator new(size);
duke@435 168 }
duke@435 169 }
duke@435 170
duke@435 171 void Thread::operator delete(void* p) {
duke@435 172 if (UseBiasedLocking) {
duke@435 173 void* real_malloc_addr = ((Thread*) p)->_real_malloc_address;
duke@435 174 CHeapObj::operator delete(real_malloc_addr);
duke@435 175 } else {
duke@435 176 CHeapObj::operator delete(p);
duke@435 177 }
duke@435 178 }
duke@435 179
duke@435 180
duke@435 181 // Base class for all threads: VMThread, WatcherThread, ConcurrentMarkSweepThread,
duke@435 182 // JavaThread
duke@435 183
duke@435 184
duke@435 185 Thread::Thread() {
phh@2423 186 // stack and get_thread
phh@2423 187 set_stack_base(NULL);
phh@2423 188 set_stack_size(0);
phh@2423 189 set_self_raw_id(0);
phh@2423 190 set_lgrp_id(-1);
duke@435 191
duke@435 192 // allocated data structures
phh@2423 193 set_osthread(NULL);
duke@435 194 set_resource_area(new ResourceArea());
duke@435 195 set_handle_area(new HandleArea(NULL));
duke@435 196 set_active_handles(NULL);
duke@435 197 set_free_handle_block(NULL);
duke@435 198 set_last_handle_mark(NULL);
duke@435 199
duke@435 200 // This initial value ==> never claimed.
duke@435 201 _oops_do_parity = 0;
duke@435 202
duke@435 203 // the handle mark links itself to last_handle_mark
duke@435 204 new HandleMark(this);
duke@435 205
duke@435 206 // plain initialization
duke@435 207 debug_only(_owned_locks = NULL;)
duke@435 208 debug_only(_allow_allocation_count = 0;)
duke@435 209 NOT_PRODUCT(_allow_safepoint_count = 0;)
ysr@1241 210 NOT_PRODUCT(_skip_gcalot = false;)
duke@435 211 CHECK_UNHANDLED_OOPS_ONLY(_gc_locked_out_count = 0;)
duke@435 212 _jvmti_env_iteration_count = 0;
phh@2423 213 set_allocated_bytes(0);
duke@435 214 _vm_operation_started_count = 0;
duke@435 215 _vm_operation_completed_count = 0;
duke@435 216 _current_pending_monitor = NULL;
duke@435 217 _current_pending_monitor_is_from_java = true;
duke@435 218 _current_waiting_monitor = NULL;
duke@435 219 _num_nested_signal = 0;
duke@435 220 omFreeList = NULL ;
duke@435 221 omFreeCount = 0 ;
duke@435 222 omFreeProvision = 32 ;
acorn@1942 223 omInUseList = NULL ;
acorn@1942 224 omInUseCount = 0 ;
duke@435 225
duke@435 226 _SR_lock = new Monitor(Mutex::suspend_resume, "SR_lock", true);
duke@435 227 _suspend_flags = 0;
duke@435 228
duke@435 229 // thread-specific hashCode stream generator state - Marsaglia shift-xor form
duke@435 230 _hashStateX = os::random() ;
duke@435 231 _hashStateY = 842502087 ;
duke@435 232 _hashStateZ = 0x8767 ; // (int)(3579807591LL & 0xffff) ;
duke@435 233 _hashStateW = 273326509 ;
duke@435 234
duke@435 235 _OnTrap = 0 ;
duke@435 236 _schedctl = NULL ;
duke@435 237 _Stalled = 0 ;
duke@435 238 _TypeTag = 0x2BAD ;
duke@435 239
duke@435 240 // Many of the following fields are effectively final - immutable
duke@435 241 // Note that nascent threads can't use the Native Monitor-Mutex
duke@435 242 // construct until the _MutexEvent is initialized ...
duke@435 243 // CONSIDER: instead of using a fixed set of purpose-dedicated ParkEvents
duke@435 244 // we might instead use a stack of ParkEvents that we could provision on-demand.
duke@435 245 // The stack would act as a cache to avoid calls to ParkEvent::Allocate()
duke@435 246 // and ::Release()
duke@435 247 _ParkEvent = ParkEvent::Allocate (this) ;
duke@435 248 _SleepEvent = ParkEvent::Allocate (this) ;
duke@435 249 _MutexEvent = ParkEvent::Allocate (this) ;
duke@435 250 _MuxEvent = ParkEvent::Allocate (this) ;
duke@435 251
duke@435 252 #ifdef CHECK_UNHANDLED_OOPS
duke@435 253 if (CheckUnhandledOops) {
duke@435 254 _unhandled_oops = new UnhandledOops(this);
duke@435 255 }
duke@435 256 #endif // CHECK_UNHANDLED_OOPS
duke@435 257 #ifdef ASSERT
duke@435 258 if (UseBiasedLocking) {
duke@435 259 assert((((uintptr_t) this) & (markOopDesc::biased_lock_alignment - 1)) == 0, "forced alignment of thread object failed");
duke@435 260 assert(this == _real_malloc_address ||
duke@435 261 this == (void*) align_size_up((intptr_t) _real_malloc_address, markOopDesc::biased_lock_alignment),
duke@435 262 "bug in forced alignment of thread objects");
duke@435 263 }
duke@435 264 #endif /* ASSERT */
duke@435 265 }
duke@435 266
duke@435 267 void Thread::initialize_thread_local_storage() {
duke@435 268 // Note: Make sure this method only calls
duke@435 269 // non-blocking operations. Otherwise, it might not work
duke@435 270 // with the thread-startup/safepoint interaction.
duke@435 271
duke@435 272 // During Java thread startup, safepoint code should allow this
duke@435 273 // method to complete because it may need to allocate memory to
duke@435 274 // store information for the new thread.
duke@435 275
duke@435 276 // initialize structure dependent on thread local storage
duke@435 277 ThreadLocalStorage::set_thread(this);
duke@435 278
duke@435 279 // set up any platform-specific state.
duke@435 280 os::initialize_thread();
duke@435 281
duke@435 282 }
duke@435 283
duke@435 284 void Thread::record_stack_base_and_size() {
duke@435 285 set_stack_base(os::current_stack_base());
duke@435 286 set_stack_size(os::current_stack_size());
duke@435 287 }
duke@435 288
duke@435 289
duke@435 290 Thread::~Thread() {
duke@435 291 // Reclaim the objectmonitors from the omFreeList of the moribund thread.
duke@435 292 ObjectSynchronizer::omFlush (this) ;
duke@435 293
duke@435 294 // deallocate data structures
duke@435 295 delete resource_area();
duke@435 296 // since the handle marks are using the handle area, we have to deallocated the root
duke@435 297 // handle mark before deallocating the thread's handle area,
duke@435 298 assert(last_handle_mark() != NULL, "check we have an element");
duke@435 299 delete last_handle_mark();
duke@435 300 assert(last_handle_mark() == NULL, "check we have reached the end");
duke@435 301
duke@435 302 // It's possible we can encounter a null _ParkEvent, etc., in stillborn threads.
duke@435 303 // We NULL out the fields for good hygiene.
duke@435 304 ParkEvent::Release (_ParkEvent) ; _ParkEvent = NULL ;
duke@435 305 ParkEvent::Release (_SleepEvent) ; _SleepEvent = NULL ;
duke@435 306 ParkEvent::Release (_MutexEvent) ; _MutexEvent = NULL ;
duke@435 307 ParkEvent::Release (_MuxEvent) ; _MuxEvent = NULL ;
duke@435 308
duke@435 309 delete handle_area();
duke@435 310
duke@435 311 // osthread() can be NULL, if creation of thread failed.
duke@435 312 if (osthread() != NULL) os::free_thread(osthread());
duke@435 313
duke@435 314 delete _SR_lock;
duke@435 315
duke@435 316 // clear thread local storage if the Thread is deleting itself
duke@435 317 if (this == Thread::current()) {
duke@435 318 ThreadLocalStorage::set_thread(NULL);
duke@435 319 } else {
duke@435 320 // In the case where we're not the current thread, invalidate all the
duke@435 321 // caches in case some code tries to get the current thread or the
duke@435 322 // thread that was destroyed, and gets stale information.
duke@435 323 ThreadLocalStorage::invalidate_all();
duke@435 324 }
duke@435 325 CHECK_UNHANDLED_OOPS_ONLY(if (CheckUnhandledOops) delete unhandled_oops();)
duke@435 326 }
duke@435 327
duke@435 328 // NOTE: dummy function for assertion purpose.
duke@435 329 void Thread::run() {
duke@435 330 ShouldNotReachHere();
duke@435 331 }
duke@435 332
duke@435 333 #ifdef ASSERT
duke@435 334 // Private method to check for dangling thread pointer
duke@435 335 void check_for_dangling_thread_pointer(Thread *thread) {
duke@435 336 assert(!thread->is_Java_thread() || Thread::current() == thread || Threads_lock->owned_by_self(),
duke@435 337 "possibility of dangling Thread pointer");
duke@435 338 }
duke@435 339 #endif
duke@435 340
duke@435 341
duke@435 342 #ifndef PRODUCT
duke@435 343 // Tracing method for basic thread operations
duke@435 344 void Thread::trace(const char* msg, const Thread* const thread) {
duke@435 345 if (!TraceThreadEvents) return;
duke@435 346 ResourceMark rm;
duke@435 347 ThreadCritical tc;
duke@435 348 const char *name = "non-Java thread";
duke@435 349 int prio = -1;
duke@435 350 if (thread->is_Java_thread()
duke@435 351 && !thread->is_Compiler_thread()) {
duke@435 352 // The Threads_lock must be held to get information about
duke@435 353 // this thread but may not be in some situations when
duke@435 354 // tracing thread events.
duke@435 355 bool release_Threads_lock = false;
duke@435 356 if (!Threads_lock->owned_by_self()) {
duke@435 357 Threads_lock->lock();
duke@435 358 release_Threads_lock = true;
duke@435 359 }
duke@435 360 JavaThread* jt = (JavaThread *)thread;
duke@435 361 name = (char *)jt->get_thread_name();
duke@435 362 oop thread_oop = jt->threadObj();
duke@435 363 if (thread_oop != NULL) {
duke@435 364 prio = java_lang_Thread::priority(thread_oop);
duke@435 365 }
duke@435 366 if (release_Threads_lock) {
duke@435 367 Threads_lock->unlock();
duke@435 368 }
duke@435 369 }
duke@435 370 tty->print_cr("Thread::%s " INTPTR_FORMAT " [%lx] %s (prio: %d)", msg, thread, thread->osthread()->thread_id(), name, prio);
duke@435 371 }
duke@435 372 #endif
duke@435 373
duke@435 374
duke@435 375 ThreadPriority Thread::get_priority(const Thread* const thread) {
duke@435 376 trace("get priority", thread);
duke@435 377 ThreadPriority priority;
duke@435 378 // Can return an error!
duke@435 379 (void)os::get_priority(thread, priority);
duke@435 380 assert(MinPriority <= priority && priority <= MaxPriority, "non-Java priority found");
duke@435 381 return priority;
duke@435 382 }
duke@435 383
duke@435 384 void Thread::set_priority(Thread* thread, ThreadPriority priority) {
duke@435 385 trace("set priority", thread);
duke@435 386 debug_only(check_for_dangling_thread_pointer(thread);)
duke@435 387 // Can return an error!
duke@435 388 (void)os::set_priority(thread, priority);
duke@435 389 }
duke@435 390
duke@435 391
duke@435 392 void Thread::start(Thread* thread) {
duke@435 393 trace("start", thread);
duke@435 394 // Start is different from resume in that its safety is guaranteed by context or
duke@435 395 // being called from a Java method synchronized on the Thread object.
duke@435 396 if (!DisableStartThread) {
duke@435 397 if (thread->is_Java_thread()) {
duke@435 398 // Initialize the thread state to RUNNABLE before starting this thread.
duke@435 399 // Can not set it after the thread started because we do not know the
duke@435 400 // exact thread state at that time. It could be in MONITOR_WAIT or
duke@435 401 // in SLEEPING or some other state.
duke@435 402 java_lang_Thread::set_thread_status(((JavaThread*)thread)->threadObj(),
duke@435 403 java_lang_Thread::RUNNABLE);
duke@435 404 }
duke@435 405 os::start_thread(thread);
duke@435 406 }
duke@435 407 }
duke@435 408
duke@435 409 // Enqueue a VM_Operation to do the job for us - sometime later
duke@435 410 void Thread::send_async_exception(oop java_thread, oop java_throwable) {
duke@435 411 VM_ThreadStop* vm_stop = new VM_ThreadStop(java_thread, java_throwable);
duke@435 412 VMThread::execute(vm_stop);
duke@435 413 }
duke@435 414
duke@435 415
duke@435 416 //
duke@435 417 // Check if an external suspend request has completed (or has been
duke@435 418 // cancelled). Returns true if the thread is externally suspended and
duke@435 419 // false otherwise.
duke@435 420 //
duke@435 421 // The bits parameter returns information about the code path through
duke@435 422 // the routine. Useful for debugging:
duke@435 423 //
duke@435 424 // set in is_ext_suspend_completed():
duke@435 425 // 0x00000001 - routine was entered
duke@435 426 // 0x00000010 - routine return false at end
duke@435 427 // 0x00000100 - thread exited (return false)
duke@435 428 // 0x00000200 - suspend request cancelled (return false)
duke@435 429 // 0x00000400 - thread suspended (return true)
duke@435 430 // 0x00001000 - thread is in a suspend equivalent state (return true)
duke@435 431 // 0x00002000 - thread is native and walkable (return true)
duke@435 432 // 0x00004000 - thread is native_trans and walkable (needed retry)
duke@435 433 //
duke@435 434 // set in wait_for_ext_suspend_completion():
duke@435 435 // 0x00010000 - routine was entered
duke@435 436 // 0x00020000 - suspend request cancelled before loop (return false)
duke@435 437 // 0x00040000 - thread suspended before loop (return true)
duke@435 438 // 0x00080000 - suspend request cancelled in loop (return false)
duke@435 439 // 0x00100000 - thread suspended in loop (return true)
duke@435 440 // 0x00200000 - suspend not completed during retry loop (return false)
duke@435 441 //
duke@435 442
duke@435 443 // Helper class for tracing suspend wait debug bits.
duke@435 444 //
duke@435 445 // 0x00000100 indicates that the target thread exited before it could
duke@435 446 // self-suspend which is not a wait failure. 0x00000200, 0x00020000 and
duke@435 447 // 0x00080000 each indicate a cancelled suspend request so they don't
duke@435 448 // count as wait failures either.
duke@435 449 #define DEBUG_FALSE_BITS (0x00000010 | 0x00200000)
duke@435 450
duke@435 451 class TraceSuspendDebugBits : public StackObj {
duke@435 452 private:
duke@435 453 JavaThread * jt;
duke@435 454 bool is_wait;
duke@435 455 bool called_by_wait; // meaningful when !is_wait
duke@435 456 uint32_t * bits;
duke@435 457
duke@435 458 public:
duke@435 459 TraceSuspendDebugBits(JavaThread *_jt, bool _is_wait, bool _called_by_wait,
duke@435 460 uint32_t *_bits) {
duke@435 461 jt = _jt;
duke@435 462 is_wait = _is_wait;
duke@435 463 called_by_wait = _called_by_wait;
duke@435 464 bits = _bits;
duke@435 465 }
duke@435 466
duke@435 467 ~TraceSuspendDebugBits() {
duke@435 468 if (!is_wait) {
duke@435 469 #if 1
duke@435 470 // By default, don't trace bits for is_ext_suspend_completed() calls.
duke@435 471 // That trace is very chatty.
duke@435 472 return;
duke@435 473 #else
duke@435 474 if (!called_by_wait) {
duke@435 475 // If tracing for is_ext_suspend_completed() is enabled, then only
duke@435 476 // trace calls to it from wait_for_ext_suspend_completion()
duke@435 477 return;
duke@435 478 }
duke@435 479 #endif
duke@435 480 }
duke@435 481
duke@435 482 if (AssertOnSuspendWaitFailure || TraceSuspendWaitFailures) {
duke@435 483 if (bits != NULL && (*bits & DEBUG_FALSE_BITS) != 0) {
duke@435 484 MutexLocker ml(Threads_lock); // needed for get_thread_name()
duke@435 485 ResourceMark rm;
duke@435 486
duke@435 487 tty->print_cr(
duke@435 488 "Failed wait_for_ext_suspend_completion(thread=%s, debug_bits=%x)",
duke@435 489 jt->get_thread_name(), *bits);
duke@435 490
duke@435 491 guarantee(!AssertOnSuspendWaitFailure, "external suspend wait failed");
duke@435 492 }
duke@435 493 }
duke@435 494 }
duke@435 495 };
duke@435 496 #undef DEBUG_FALSE_BITS
duke@435 497
duke@435 498
duke@435 499 bool JavaThread::is_ext_suspend_completed(bool called_by_wait, int delay, uint32_t *bits) {
duke@435 500 TraceSuspendDebugBits tsdb(this, false /* !is_wait */, called_by_wait, bits);
duke@435 501
duke@435 502 bool did_trans_retry = false; // only do thread_in_native_trans retry once
duke@435 503 bool do_trans_retry; // flag to force the retry
duke@435 504
duke@435 505 *bits |= 0x00000001;
duke@435 506
duke@435 507 do {
duke@435 508 do_trans_retry = false;
duke@435 509
duke@435 510 if (is_exiting()) {
duke@435 511 // Thread is in the process of exiting. This is always checked
duke@435 512 // first to reduce the risk of dereferencing a freed JavaThread.
duke@435 513 *bits |= 0x00000100;
duke@435 514 return false;
duke@435 515 }
duke@435 516
duke@435 517 if (!is_external_suspend()) {
duke@435 518 // Suspend request is cancelled. This is always checked before
duke@435 519 // is_ext_suspended() to reduce the risk of a rogue resume
duke@435 520 // confusing the thread that made the suspend request.
duke@435 521 *bits |= 0x00000200;
duke@435 522 return false;
duke@435 523 }
duke@435 524
duke@435 525 if (is_ext_suspended()) {
duke@435 526 // thread is suspended
duke@435 527 *bits |= 0x00000400;
duke@435 528 return true;
duke@435 529 }
duke@435 530
duke@435 531 // Now that we no longer do hard suspends of threads running
duke@435 532 // native code, the target thread can be changing thread state
duke@435 533 // while we are in this routine:
duke@435 534 //
duke@435 535 // _thread_in_native -> _thread_in_native_trans -> _thread_blocked
duke@435 536 //
duke@435 537 // We save a copy of the thread state as observed at this moment
duke@435 538 // and make our decision about suspend completeness based on the
duke@435 539 // copy. This closes the race where the thread state is seen as
duke@435 540 // _thread_in_native_trans in the if-thread_blocked check, but is
duke@435 541 // seen as _thread_blocked in if-thread_in_native_trans check.
duke@435 542 JavaThreadState save_state = thread_state();
duke@435 543
duke@435 544 if (save_state == _thread_blocked && is_suspend_equivalent()) {
duke@435 545 // If the thread's state is _thread_blocked and this blocking
duke@435 546 // condition is known to be equivalent to a suspend, then we can
duke@435 547 // consider the thread to be externally suspended. This means that
duke@435 548 // the code that sets _thread_blocked has been modified to do
duke@435 549 // self-suspension if the blocking condition releases. We also
duke@435 550 // used to check for CONDVAR_WAIT here, but that is now covered by
duke@435 551 // the _thread_blocked with self-suspension check.
duke@435 552 //
duke@435 553 // Return true since we wouldn't be here unless there was still an
duke@435 554 // external suspend request.
duke@435 555 *bits |= 0x00001000;
duke@435 556 return true;
duke@435 557 } else if (save_state == _thread_in_native && frame_anchor()->walkable()) {
duke@435 558 // Threads running native code will self-suspend on native==>VM/Java
duke@435 559 // transitions. If its stack is walkable (should always be the case
duke@435 560 // unless this function is called before the actual java_suspend()
duke@435 561 // call), then the wait is done.
duke@435 562 *bits |= 0x00002000;
duke@435 563 return true;
duke@435 564 } else if (!called_by_wait && !did_trans_retry &&
duke@435 565 save_state == _thread_in_native_trans &&
duke@435 566 frame_anchor()->walkable()) {
duke@435 567 // The thread is transitioning from thread_in_native to another
duke@435 568 // thread state. check_safepoint_and_suspend_for_native_trans()
duke@435 569 // will force the thread to self-suspend. If it hasn't gotten
duke@435 570 // there yet we may have caught the thread in-between the native
duke@435 571 // code check above and the self-suspend. Lucky us. If we were
duke@435 572 // called by wait_for_ext_suspend_completion(), then it
duke@435 573 // will be doing the retries so we don't have to.
duke@435 574 //
duke@435 575 // Since we use the saved thread state in the if-statement above,
duke@435 576 // there is a chance that the thread has already transitioned to
duke@435 577 // _thread_blocked by the time we get here. In that case, we will
duke@435 578 // make a single unnecessary pass through the logic below. This
duke@435 579 // doesn't hurt anything since we still do the trans retry.
duke@435 580
duke@435 581 *bits |= 0x00004000;
duke@435 582
duke@435 583 // Once the thread leaves thread_in_native_trans for another
duke@435 584 // thread state, we break out of this retry loop. We shouldn't
duke@435 585 // need this flag to prevent us from getting back here, but
duke@435 586 // sometimes paranoia is good.
duke@435 587 did_trans_retry = true;
duke@435 588
duke@435 589 // We wait for the thread to transition to a more usable state.
duke@435 590 for (int i = 1; i <= SuspendRetryCount; i++) {
duke@435 591 // We used to do an "os::yield_all(i)" call here with the intention
duke@435 592 // that yielding would increase on each retry. However, the parameter
duke@435 593 // is ignored on Linux which means the yield didn't scale up. Waiting
duke@435 594 // on the SR_lock below provides a much more predictable scale up for
duke@435 595 // the delay. It also provides a simple/direct point to check for any
duke@435 596 // safepoint requests from the VMThread
duke@435 597
duke@435 598 // temporarily drops SR_lock while doing wait with safepoint check
duke@435 599 // (if we're a JavaThread - the WatcherThread can also call this)
duke@435 600 // and increase delay with each retry
duke@435 601 SR_lock()->wait(!Thread::current()->is_Java_thread(), i * delay);
duke@435 602
duke@435 603 // check the actual thread state instead of what we saved above
duke@435 604 if (thread_state() != _thread_in_native_trans) {
duke@435 605 // the thread has transitioned to another thread state so
duke@435 606 // try all the checks (except this one) one more time.
duke@435 607 do_trans_retry = true;
duke@435 608 break;
duke@435 609 }
duke@435 610 } // end retry loop
duke@435 611
duke@435 612
duke@435 613 }
duke@435 614 } while (do_trans_retry);
duke@435 615
duke@435 616 *bits |= 0x00000010;
duke@435 617 return false;
duke@435 618 }
duke@435 619
duke@435 620 //
duke@435 621 // Wait for an external suspend request to complete (or be cancelled).
duke@435 622 // Returns true if the thread is externally suspended and false otherwise.
duke@435 623 //
duke@435 624 bool JavaThread::wait_for_ext_suspend_completion(int retries, int delay,
duke@435 625 uint32_t *bits) {
duke@435 626 TraceSuspendDebugBits tsdb(this, true /* is_wait */,
duke@435 627 false /* !called_by_wait */, bits);
duke@435 628
duke@435 629 // local flag copies to minimize SR_lock hold time
duke@435 630 bool is_suspended;
duke@435 631 bool pending;
duke@435 632 uint32_t reset_bits;
duke@435 633
duke@435 634 // set a marker so is_ext_suspend_completed() knows we are the caller
duke@435 635 *bits |= 0x00010000;
duke@435 636
duke@435 637 // We use reset_bits to reinitialize the bits value at the top of
duke@435 638 // each retry loop. This allows the caller to make use of any
duke@435 639 // unused bits for their own marking purposes.
duke@435 640 reset_bits = *bits;
duke@435 641
duke@435 642 {
duke@435 643 MutexLockerEx ml(SR_lock(), Mutex::_no_safepoint_check_flag);
duke@435 644 is_suspended = is_ext_suspend_completed(true /* called_by_wait */,
duke@435 645 delay, bits);
duke@435 646 pending = is_external_suspend();
duke@435 647 }
duke@435 648 // must release SR_lock to allow suspension to complete
duke@435 649
duke@435 650 if (!pending) {
duke@435 651 // A cancelled suspend request is the only false return from
duke@435 652 // is_ext_suspend_completed() that keeps us from entering the
duke@435 653 // retry loop.
duke@435 654 *bits |= 0x00020000;
duke@435 655 return false;
duke@435 656 }
duke@435 657
duke@435 658 if (is_suspended) {
duke@435 659 *bits |= 0x00040000;
duke@435 660 return true;
duke@435 661 }
duke@435 662
duke@435 663 for (int i = 1; i <= retries; i++) {
duke@435 664 *bits = reset_bits; // reinit to only track last retry
duke@435 665
duke@435 666 // We used to do an "os::yield_all(i)" call here with the intention
duke@435 667 // that yielding would increase on each retry. However, the parameter
duke@435 668 // is ignored on Linux which means the yield didn't scale up. Waiting
duke@435 669 // on the SR_lock below provides a much more predictable scale up for
duke@435 670 // the delay. It also provides a simple/direct point to check for any
duke@435 671 // safepoint requests from the VMThread
duke@435 672
duke@435 673 {
duke@435 674 MutexLocker ml(SR_lock());
duke@435 675 // wait with safepoint check (if we're a JavaThread - the WatcherThread
duke@435 676 // can also call this) and increase delay with each retry
duke@435 677 SR_lock()->wait(!Thread::current()->is_Java_thread(), i * delay);
duke@435 678
duke@435 679 is_suspended = is_ext_suspend_completed(true /* called_by_wait */,
duke@435 680 delay, bits);
duke@435 681
duke@435 682 // It is possible for the external suspend request to be cancelled
duke@435 683 // (by a resume) before the actual suspend operation is completed.
duke@435 684 // Refresh our local copy to see if we still need to wait.
duke@435 685 pending = is_external_suspend();
duke@435 686 }
duke@435 687
duke@435 688 if (!pending) {
duke@435 689 // A cancelled suspend request is the only false return from
duke@435 690 // is_ext_suspend_completed() that keeps us from staying in the
duke@435 691 // retry loop.
duke@435 692 *bits |= 0x00080000;
duke@435 693 return false;
duke@435 694 }
duke@435 695
duke@435 696 if (is_suspended) {
duke@435 697 *bits |= 0x00100000;
duke@435 698 return true;
duke@435 699 }
duke@435 700 } // end retry loop
duke@435 701
duke@435 702 // thread did not suspend after all our retries
duke@435 703 *bits |= 0x00200000;
duke@435 704 return false;
duke@435 705 }
duke@435 706
duke@435 707 #ifndef PRODUCT
duke@435 708 void JavaThread::record_jump(address target, address instr, const char* file, int line) {
duke@435 709
duke@435 710 // This should not need to be atomic as the only way for simultaneous
duke@435 711 // updates is via interrupts. Even then this should be rare or non-existant
duke@435 712 // and we don't care that much anyway.
duke@435 713
duke@435 714 int index = _jmp_ring_index;
duke@435 715 _jmp_ring_index = (index + 1 ) & (jump_ring_buffer_size - 1);
duke@435 716 _jmp_ring[index]._target = (intptr_t) target;
duke@435 717 _jmp_ring[index]._instruction = (intptr_t) instr;
duke@435 718 _jmp_ring[index]._file = file;
duke@435 719 _jmp_ring[index]._line = line;
duke@435 720 }
duke@435 721 #endif /* PRODUCT */
duke@435 722
duke@435 723 // Called by flat profiler
duke@435 724 // Callers have already called wait_for_ext_suspend_completion
duke@435 725 // The assertion for that is currently too complex to put here:
duke@435 726 bool JavaThread::profile_last_Java_frame(frame* _fr) {
duke@435 727 bool gotframe = false;
duke@435 728 // self suspension saves needed state.
duke@435 729 if (has_last_Java_frame() && _anchor.walkable()) {
duke@435 730 *_fr = pd_last_frame();
duke@435 731 gotframe = true;
duke@435 732 }
duke@435 733 return gotframe;
duke@435 734 }
duke@435 735
duke@435 736 void Thread::interrupt(Thread* thread) {
duke@435 737 trace("interrupt", thread);
duke@435 738 debug_only(check_for_dangling_thread_pointer(thread);)
duke@435 739 os::interrupt(thread);
duke@435 740 }
duke@435 741
duke@435 742 bool Thread::is_interrupted(Thread* thread, bool clear_interrupted) {
duke@435 743 trace("is_interrupted", thread);
duke@435 744 debug_only(check_for_dangling_thread_pointer(thread);)
duke@435 745 // Note: If clear_interrupted==false, this simply fetches and
duke@435 746 // returns the value of the field osthread()->interrupted().
duke@435 747 return os::is_interrupted(thread, clear_interrupted);
duke@435 748 }
duke@435 749
duke@435 750
duke@435 751 // GC Support
duke@435 752 bool Thread::claim_oops_do_par_case(int strong_roots_parity) {
duke@435 753 jint thread_parity = _oops_do_parity;
duke@435 754 if (thread_parity != strong_roots_parity) {
duke@435 755 jint res = Atomic::cmpxchg(strong_roots_parity, &_oops_do_parity, thread_parity);
duke@435 756 if (res == thread_parity) return true;
duke@435 757 else {
duke@435 758 guarantee(res == strong_roots_parity, "Or else what?");
duke@435 759 assert(SharedHeap::heap()->n_par_threads() > 0,
duke@435 760 "Should only fail when parallel.");
duke@435 761 return false;
duke@435 762 }
duke@435 763 }
duke@435 764 assert(SharedHeap::heap()->n_par_threads() > 0,
duke@435 765 "Should only fail when parallel.");
duke@435 766 return false;
duke@435 767 }
duke@435 768
jrose@1424 769 void Thread::oops_do(OopClosure* f, CodeBlobClosure* cf) {
duke@435 770 active_handles()->oops_do(f);
duke@435 771 // Do oop for ThreadShadow
duke@435 772 f->do_oop((oop*)&_pending_exception);
duke@435 773 handle_area()->oops_do(f);
duke@435 774 }
duke@435 775
jrose@1424 776 void Thread::nmethods_do(CodeBlobClosure* cf) {
jrose@1424 777 // no nmethods in a generic thread...
duke@435 778 }
duke@435 779
duke@435 780 void Thread::print_on(outputStream* st) const {
duke@435 781 // get_priority assumes osthread initialized
duke@435 782 if (osthread() != NULL) {
duke@435 783 st->print("prio=%d tid=" INTPTR_FORMAT " ", get_priority(this), this);
duke@435 784 osthread()->print_on(st);
duke@435 785 }
duke@435 786 debug_only(if (WizardMode) print_owned_locks_on(st);)
duke@435 787 }
duke@435 788
duke@435 789 // Thread::print_on_error() is called by fatal error handler. Don't use
duke@435 790 // any lock or allocate memory.
duke@435 791 void Thread::print_on_error(outputStream* st, char* buf, int buflen) const {
duke@435 792 if (is_VM_thread()) st->print("VMThread");
duke@435 793 else if (is_Compiler_thread()) st->print("CompilerThread");
duke@435 794 else if (is_Java_thread()) st->print("JavaThread");
duke@435 795 else if (is_GC_task_thread()) st->print("GCTaskThread");
duke@435 796 else if (is_Watcher_thread()) st->print("WatcherThread");
duke@435 797 else if (is_ConcurrentGC_thread()) st->print("ConcurrentGCThread");
duke@435 798 else st->print("Thread");
duke@435 799
duke@435 800 st->print(" [stack: " PTR_FORMAT "," PTR_FORMAT "]",
duke@435 801 _stack_base - _stack_size, _stack_base);
duke@435 802
duke@435 803 if (osthread()) {
duke@435 804 st->print(" [id=%d]", osthread()->thread_id());
duke@435 805 }
duke@435 806 }
duke@435 807
duke@435 808 #ifdef ASSERT
duke@435 809 void Thread::print_owned_locks_on(outputStream* st) const {
duke@435 810 Monitor *cur = _owned_locks;
duke@435 811 if (cur == NULL) {
duke@435 812 st->print(" (no locks) ");
duke@435 813 } else {
duke@435 814 st->print_cr(" Locks owned:");
duke@435 815 while(cur) {
duke@435 816 cur->print_on(st);
duke@435 817 cur = cur->next();
duke@435 818 }
duke@435 819 }
duke@435 820 }
duke@435 821
duke@435 822 static int ref_use_count = 0;
duke@435 823
duke@435 824 bool Thread::owns_locks_but_compiled_lock() const {
duke@435 825 for(Monitor *cur = _owned_locks; cur; cur = cur->next()) {
duke@435 826 if (cur != Compile_lock) return true;
duke@435 827 }
duke@435 828 return false;
duke@435 829 }
duke@435 830
duke@435 831
duke@435 832 #endif
duke@435 833
duke@435 834 #ifndef PRODUCT
duke@435 835
duke@435 836 // The flag: potential_vm_operation notifies if this particular safepoint state could potential
duke@435 837 // invoke the vm-thread (i.e., and oop allocation). In that case, we also have to make sure that
duke@435 838 // no threads which allow_vm_block's are held
duke@435 839 void Thread::check_for_valid_safepoint_state(bool potential_vm_operation) {
duke@435 840 // Check if current thread is allowed to block at a safepoint
duke@435 841 if (!(_allow_safepoint_count == 0))
duke@435 842 fatal("Possible safepoint reached by thread that does not allow it");
duke@435 843 if (is_Java_thread() && ((JavaThread*)this)->thread_state() != _thread_in_vm) {
duke@435 844 fatal("LEAF method calling lock?");
duke@435 845 }
duke@435 846
duke@435 847 #ifdef ASSERT
duke@435 848 if (potential_vm_operation && is_Java_thread()
duke@435 849 && !Universe::is_bootstrapping()) {
duke@435 850 // Make sure we do not hold any locks that the VM thread also uses.
duke@435 851 // This could potentially lead to deadlocks
duke@435 852 for(Monitor *cur = _owned_locks; cur; cur = cur->next()) {
duke@435 853 // Threads_lock is special, since the safepoint synchronization will not start before this is
duke@435 854 // acquired. Hence, a JavaThread cannot be holding it at a safepoint. So is VMOperationRequest_lock,
duke@435 855 // since it is used to transfer control between JavaThreads and the VMThread
duke@435 856 // Do not *exclude* any locks unless you are absolutly sure it is correct. Ask someone else first!
duke@435 857 if ( (cur->allow_vm_block() &&
duke@435 858 cur != Threads_lock &&
duke@435 859 cur != Compile_lock && // Temporary: should not be necessary when we get spearate compilation
duke@435 860 cur != VMOperationRequest_lock &&
duke@435 861 cur != VMOperationQueue_lock) ||
duke@435 862 cur->rank() == Mutex::special) {
duke@435 863 warning("Thread holding lock at safepoint that vm can block on: %s", cur->name());
duke@435 864 }
duke@435 865 }
duke@435 866 }
duke@435 867
duke@435 868 if (GCALotAtAllSafepoints) {
duke@435 869 // We could enter a safepoint here and thus have a gc
duke@435 870 InterfaceSupport::check_gc_alot();
duke@435 871 }
duke@435 872 #endif
duke@435 873 }
duke@435 874 #endif
duke@435 875
duke@435 876 bool Thread::is_in_stack(address adr) const {
duke@435 877 assert(Thread::current() == this, "is_in_stack can only be called from current thread");
duke@435 878 address end = os::current_stack_pointer();
duke@435 879 if (stack_base() >= adr && adr >= end) return true;
duke@435 880
duke@435 881 return false;
duke@435 882 }
duke@435 883
duke@435 884
duke@435 885 // We had to move these methods here, because vm threads get into ObjectSynchronizer::enter
duke@435 886 // However, there is a note in JavaThread::is_lock_owned() about the VM threads not being
duke@435 887 // used for compilation in the future. If that change is made, the need for these methods
duke@435 888 // should be revisited, and they should be removed if possible.
duke@435 889
duke@435 890 bool Thread::is_lock_owned(address adr) const {
kvn@2043 891 return on_local_stack(adr);
duke@435 892 }
duke@435 893
duke@435 894 bool Thread::set_as_starting_thread() {
duke@435 895 // NOTE: this must be called inside the main thread.
duke@435 896 return os::create_main_thread((JavaThread*)this);
duke@435 897 }
duke@435 898
coleenp@2497 899 static void initialize_class(Symbol* class_name, TRAPS) {
duke@435 900 klassOop klass = SystemDictionary::resolve_or_fail(class_name, true, CHECK);
duke@435 901 instanceKlass::cast(klass)->initialize(CHECK);
duke@435 902 }
duke@435 903
duke@435 904
duke@435 905 // Creates the initial ThreadGroup
duke@435 906 static Handle create_initial_thread_group(TRAPS) {
coleenp@2497 907 klassOop k = SystemDictionary::resolve_or_fail(vmSymbols::java_lang_ThreadGroup(), true, CHECK_NH);
duke@435 908 instanceKlassHandle klass (THREAD, k);
duke@435 909
duke@435 910 Handle system_instance = klass->allocate_instance_handle(CHECK_NH);
duke@435 911 {
duke@435 912 JavaValue result(T_VOID);
duke@435 913 JavaCalls::call_special(&result,
duke@435 914 system_instance,
duke@435 915 klass,
coleenp@2497 916 vmSymbols::object_initializer_name(),
coleenp@2497 917 vmSymbols::void_method_signature(),
duke@435 918 CHECK_NH);
duke@435 919 }
duke@435 920 Universe::set_system_thread_group(system_instance());
duke@435 921
duke@435 922 Handle main_instance = klass->allocate_instance_handle(CHECK_NH);
duke@435 923 {
duke@435 924 JavaValue result(T_VOID);
duke@435 925 Handle string = java_lang_String::create_from_str("main", CHECK_NH);
duke@435 926 JavaCalls::call_special(&result,
duke@435 927 main_instance,
duke@435 928 klass,
coleenp@2497 929 vmSymbols::object_initializer_name(),
coleenp@2497 930 vmSymbols::threadgroup_string_void_signature(),
duke@435 931 system_instance,
duke@435 932 string,
duke@435 933 CHECK_NH);
duke@435 934 }
duke@435 935 return main_instance;
duke@435 936 }
duke@435 937
duke@435 938 // Creates the initial Thread
duke@435 939 static oop create_initial_thread(Handle thread_group, JavaThread* thread, TRAPS) {
coleenp@2497 940 klassOop k = SystemDictionary::resolve_or_fail(vmSymbols::java_lang_Thread(), true, CHECK_NULL);
duke@435 941 instanceKlassHandle klass (THREAD, k);
duke@435 942 instanceHandle thread_oop = klass->allocate_instance_handle(CHECK_NULL);
duke@435 943
duke@435 944 java_lang_Thread::set_thread(thread_oop(), thread);
duke@435 945 java_lang_Thread::set_priority(thread_oop(), NormPriority);
duke@435 946 thread->set_threadObj(thread_oop());
duke@435 947
duke@435 948 Handle string = java_lang_String::create_from_str("main", CHECK_NULL);
duke@435 949
duke@435 950 JavaValue result(T_VOID);
duke@435 951 JavaCalls::call_special(&result, thread_oop,
duke@435 952 klass,
coleenp@2497 953 vmSymbols::object_initializer_name(),
coleenp@2497 954 vmSymbols::threadgroup_string_void_signature(),
duke@435 955 thread_group,
duke@435 956 string,
duke@435 957 CHECK_NULL);
duke@435 958 return thread_oop();
duke@435 959 }
duke@435 960
duke@435 961 static void call_initializeSystemClass(TRAPS) {
coleenp@2497 962 klassOop k = SystemDictionary::resolve_or_fail(vmSymbols::java_lang_System(), true, CHECK);
duke@435 963 instanceKlassHandle klass (THREAD, k);
duke@435 964
duke@435 965 JavaValue result(T_VOID);
coleenp@2497 966 JavaCalls::call_static(&result, klass, vmSymbols::initializeSystemClass_name(),
coleenp@2497 967 vmSymbols::void_method_signature(), CHECK);
duke@435 968 }
duke@435 969
kevinw@2449 970 // General purpose hook into Java code, run once when the VM is initialized.
kevinw@2449 971 // The Java library method itself may be changed independently from the VM.
kevinw@2449 972 static void call_postVMInitHook(TRAPS) {
never@3137 973 klassOop k = SystemDictionary::PostVMInitHook_klass();
kevinw@2449 974 instanceKlassHandle klass (THREAD, k);
kevinw@2449 975 if (klass.not_null()) {
kevinw@2449 976 JavaValue result(T_VOID);
coleenp@2497 977 JavaCalls::call_static(&result, klass, vmSymbols::run_method_name(),
coleenp@2497 978 vmSymbols::void_method_signature(),
kevinw@2449 979 CHECK);
kevinw@2449 980 }
kevinw@2449 981 }
kevinw@2449 982
duke@435 983 static void reset_vm_info_property(TRAPS) {
duke@435 984 // the vm info string
duke@435 985 ResourceMark rm(THREAD);
duke@435 986 const char *vm_info = VM_Version::vm_info_string();
duke@435 987
duke@435 988 // java.lang.System class
coleenp@2497 989 klassOop k = SystemDictionary::resolve_or_fail(vmSymbols::java_lang_System(), true, CHECK);
duke@435 990 instanceKlassHandle klass (THREAD, k);
duke@435 991
duke@435 992 // setProperty arguments
duke@435 993 Handle key_str = java_lang_String::create_from_str("java.vm.info", CHECK);
duke@435 994 Handle value_str = java_lang_String::create_from_str(vm_info, CHECK);
duke@435 995
duke@435 996 // return value
duke@435 997 JavaValue r(T_OBJECT);
duke@435 998
duke@435 999 // public static String setProperty(String key, String value);
duke@435 1000 JavaCalls::call_static(&r,
duke@435 1001 klass,
coleenp@2497 1002 vmSymbols::setProperty_name(),
coleenp@2497 1003 vmSymbols::string_string_string_signature(),
duke@435 1004 key_str,
duke@435 1005 value_str,
duke@435 1006 CHECK);
duke@435 1007 }
duke@435 1008
duke@435 1009
duke@435 1010 void JavaThread::allocate_threadObj(Handle thread_group, char* thread_name, bool daemon, TRAPS) {
duke@435 1011 assert(thread_group.not_null(), "thread group should be specified");
duke@435 1012 assert(threadObj() == NULL, "should only create Java thread object once");
duke@435 1013
coleenp@2497 1014 klassOop k = SystemDictionary::resolve_or_fail(vmSymbols::java_lang_Thread(), true, CHECK);
duke@435 1015 instanceKlassHandle klass (THREAD, k);
duke@435 1016 instanceHandle thread_oop = klass->allocate_instance_handle(CHECK);
duke@435 1017
duke@435 1018 java_lang_Thread::set_thread(thread_oop(), this);
duke@435 1019 java_lang_Thread::set_priority(thread_oop(), NormPriority);
duke@435 1020 set_threadObj(thread_oop());
duke@435 1021
duke@435 1022 JavaValue result(T_VOID);
duke@435 1023 if (thread_name != NULL) {
duke@435 1024 Handle name = java_lang_String::create_from_str(thread_name, CHECK);
duke@435 1025 // Thread gets assigned specified name and null target
duke@435 1026 JavaCalls::call_special(&result,
duke@435 1027 thread_oop,
duke@435 1028 klass,
coleenp@2497 1029 vmSymbols::object_initializer_name(),
coleenp@2497 1030 vmSymbols::threadgroup_string_void_signature(),
duke@435 1031 thread_group, // Argument 1
duke@435 1032 name, // Argument 2
duke@435 1033 THREAD);
duke@435 1034 } else {
duke@435 1035 // Thread gets assigned name "Thread-nnn" and null target
duke@435 1036 // (java.lang.Thread doesn't have a constructor taking only a ThreadGroup argument)
duke@435 1037 JavaCalls::call_special(&result,
duke@435 1038 thread_oop,
duke@435 1039 klass,
coleenp@2497 1040 vmSymbols::object_initializer_name(),
coleenp@2497 1041 vmSymbols::threadgroup_runnable_void_signature(),
duke@435 1042 thread_group, // Argument 1
duke@435 1043 Handle(), // Argument 2
duke@435 1044 THREAD);
duke@435 1045 }
duke@435 1046
duke@435 1047
duke@435 1048 if (daemon) {
duke@435 1049 java_lang_Thread::set_daemon(thread_oop());
duke@435 1050 }
duke@435 1051
duke@435 1052 if (HAS_PENDING_EXCEPTION) {
duke@435 1053 return;
duke@435 1054 }
duke@435 1055
never@1577 1056 KlassHandle group(this, SystemDictionary::ThreadGroup_klass());
duke@435 1057 Handle threadObj(this, this->threadObj());
duke@435 1058
duke@435 1059 JavaCalls::call_special(&result,
duke@435 1060 thread_group,
duke@435 1061 group,
coleenp@2497 1062 vmSymbols::add_method_name(),
coleenp@2497 1063 vmSymbols::thread_void_signature(),
duke@435 1064 threadObj, // Arg 1
duke@435 1065 THREAD);
duke@435 1066
duke@435 1067
duke@435 1068 }
duke@435 1069
duke@435 1070 // NamedThread -- non-JavaThread subclasses with multiple
duke@435 1071 // uniquely named instances should derive from this.
duke@435 1072 NamedThread::NamedThread() : Thread() {
duke@435 1073 _name = NULL;
minqi@1554 1074 _processed_thread = NULL;
duke@435 1075 }
duke@435 1076
duke@435 1077 NamedThread::~NamedThread() {
duke@435 1078 if (_name != NULL) {
duke@435 1079 FREE_C_HEAP_ARRAY(char, _name);
duke@435 1080 _name = NULL;
duke@435 1081 }
duke@435 1082 }
duke@435 1083
duke@435 1084 void NamedThread::set_name(const char* format, ...) {
duke@435 1085 guarantee(_name == NULL, "Only get to set name once.");
duke@435 1086 _name = NEW_C_HEAP_ARRAY(char, max_name_len);
duke@435 1087 guarantee(_name != NULL, "alloc failure");
duke@435 1088 va_list ap;
duke@435 1089 va_start(ap, format);
duke@435 1090 jio_vsnprintf(_name, max_name_len, format, ap);
duke@435 1091 va_end(ap);
duke@435 1092 }
duke@435 1093
duke@435 1094 // ======= WatcherThread ========
duke@435 1095
duke@435 1096 // The watcher thread exists to simulate timer interrupts. It should
duke@435 1097 // be replaced by an abstraction over whatever native support for
duke@435 1098 // timer interrupts exists on the platform.
duke@435 1099
duke@435 1100 WatcherThread* WatcherThread::_watcher_thread = NULL;
bobv@2036 1101 volatile bool WatcherThread::_should_terminate = false;
duke@435 1102
duke@435 1103 WatcherThread::WatcherThread() : Thread() {
duke@435 1104 assert(watcher_thread() == NULL, "we can only allocate one WatcherThread");
duke@435 1105 if (os::create_thread(this, os::watcher_thread)) {
duke@435 1106 _watcher_thread = this;
duke@435 1107
duke@435 1108 // Set the watcher thread to the highest OS priority which should not be
duke@435 1109 // used, unless a Java thread with priority java.lang.Thread.MAX_PRIORITY
duke@435 1110 // is created. The only normal thread using this priority is the reference
duke@435 1111 // handler thread, which runs for very short intervals only.
duke@435 1112 // If the VMThread's priority is not lower than the WatcherThread profiling
duke@435 1113 // will be inaccurate.
duke@435 1114 os::set_priority(this, MaxPriority);
duke@435 1115 if (!DisableStartThread) {
duke@435 1116 os::start_thread(this);
duke@435 1117 }
duke@435 1118 }
duke@435 1119 }
duke@435 1120
duke@435 1121 void WatcherThread::run() {
duke@435 1122 assert(this == watcher_thread(), "just checking");
duke@435 1123
duke@435 1124 this->record_stack_base_and_size();
duke@435 1125 this->initialize_thread_local_storage();
duke@435 1126 this->set_active_handles(JNIHandleBlock::allocate_block());
duke@435 1127 while(!_should_terminate) {
duke@435 1128 assert(watcher_thread() == Thread::current(), "thread consistency check");
duke@435 1129 assert(watcher_thread() == this, "thread consistency check");
duke@435 1130
duke@435 1131 // Calculate how long it'll be until the next PeriodicTask work
duke@435 1132 // should be done, and sleep that amount of time.
bobv@2036 1133 size_t time_to_wait = PeriodicTask::time_to_wait();
bobv@2036 1134
bobv@2036 1135 // we expect this to timeout - we only ever get unparked when
bobv@2036 1136 // we should terminate
bobv@2036 1137 {
bobv@2036 1138 OSThreadWaitState osts(this->osthread(), false /* not Object.wait() */);
bobv@2036 1139
bobv@2036 1140 jlong prev_time = os::javaTimeNanos();
bobv@2036 1141 for (;;) {
bobv@2036 1142 int res= _SleepEvent->park(time_to_wait);
bobv@2036 1143 if (res == OS_TIMEOUT || _should_terminate)
bobv@2036 1144 break;
bobv@2036 1145 // spurious wakeup of some kind
bobv@2036 1146 jlong now = os::javaTimeNanos();
bobv@2036 1147 time_to_wait -= (now - prev_time) / 1000000;
bobv@2036 1148 if (time_to_wait <= 0)
bobv@2036 1149 break;
bobv@2036 1150 prev_time = now;
bobv@2036 1151 }
bobv@2036 1152 }
duke@435 1153
duke@435 1154 if (is_error_reported()) {
duke@435 1155 // A fatal error has happened, the error handler(VMError::report_and_die)
duke@435 1156 // should abort JVM after creating an error log file. However in some
duke@435 1157 // rare cases, the error handler itself might deadlock. Here we try to
duke@435 1158 // kill JVM if the fatal error handler fails to abort in 2 minutes.
duke@435 1159 //
duke@435 1160 // This code is in WatcherThread because WatcherThread wakes up
duke@435 1161 // periodically so the fatal error handler doesn't need to do anything;
duke@435 1162 // also because the WatcherThread is less likely to crash than other
duke@435 1163 // threads.
duke@435 1164
duke@435 1165 for (;;) {
duke@435 1166 if (!ShowMessageBoxOnError
duke@435 1167 && (OnError == NULL || OnError[0] == '\0')
duke@435 1168 && Arguments::abort_hook() == NULL) {
duke@435 1169 os::sleep(this, 2 * 60 * 1000, false);
duke@435 1170 fdStream err(defaultStream::output_fd());
duke@435 1171 err.print_raw_cr("# [ timer expired, abort... ]");
duke@435 1172 // skip atexit/vm_exit/vm_abort hooks
duke@435 1173 os::die();
duke@435 1174 }
duke@435 1175
duke@435 1176 // Wake up 5 seconds later, the fatal handler may reset OnError or
duke@435 1177 // ShowMessageBoxOnError when it is ready to abort.
duke@435 1178 os::sleep(this, 5 * 1000, false);
duke@435 1179 }
duke@435 1180 }
duke@435 1181
duke@435 1182 PeriodicTask::real_time_tick(time_to_wait);
duke@435 1183
duke@435 1184 // If we have no more tasks left due to dynamic disenrollment,
duke@435 1185 // shut down the thread since we don't currently support dynamic enrollment
duke@435 1186 if (PeriodicTask::num_tasks() == 0) {
duke@435 1187 _should_terminate = true;
duke@435 1188 }
duke@435 1189 }
duke@435 1190
duke@435 1191 // Signal that it is terminated
duke@435 1192 {
duke@435 1193 MutexLockerEx mu(Terminator_lock, Mutex::_no_safepoint_check_flag);
duke@435 1194 _watcher_thread = NULL;
duke@435 1195 Terminator_lock->notify();
duke@435 1196 }
duke@435 1197
duke@435 1198 // Thread destructor usually does this..
duke@435 1199 ThreadLocalStorage::set_thread(NULL);
duke@435 1200 }
duke@435 1201
duke@435 1202 void WatcherThread::start() {
duke@435 1203 if (watcher_thread() == NULL) {
duke@435 1204 _should_terminate = false;
duke@435 1205 // Create the single instance of WatcherThread
duke@435 1206 new WatcherThread();
duke@435 1207 }
duke@435 1208 }
duke@435 1209
duke@435 1210 void WatcherThread::stop() {
duke@435 1211 // it is ok to take late safepoints here, if needed
duke@435 1212 MutexLocker mu(Terminator_lock);
duke@435 1213 _should_terminate = true;
bobv@2036 1214 OrderAccess::fence(); // ensure WatcherThread sees update in main loop
bobv@2036 1215
bobv@2036 1216 Thread* watcher = watcher_thread();
bobv@2036 1217 if (watcher != NULL)
bobv@2036 1218 watcher->_SleepEvent->unpark();
bobv@2036 1219
duke@435 1220 while(watcher_thread() != NULL) {
duke@435 1221 // This wait should make safepoint checks, wait without a timeout,
duke@435 1222 // and wait as a suspend-equivalent condition.
duke@435 1223 //
duke@435 1224 // Note: If the FlatProfiler is running, then this thread is waiting
duke@435 1225 // for the WatcherThread to terminate and the WatcherThread, via the
duke@435 1226 // FlatProfiler task, is waiting for the external suspend request on
duke@435 1227 // this thread to complete. wait_for_ext_suspend_completion() will
duke@435 1228 // eventually timeout, but that takes time. Making this wait a
duke@435 1229 // suspend-equivalent condition solves that timeout problem.
duke@435 1230 //
duke@435 1231 Terminator_lock->wait(!Mutex::_no_safepoint_check_flag, 0,
duke@435 1232 Mutex::_as_suspend_equivalent_flag);
duke@435 1233 }
duke@435 1234 }
duke@435 1235
duke@435 1236 void WatcherThread::print_on(outputStream* st) const {
duke@435 1237 st->print("\"%s\" ", name());
duke@435 1238 Thread::print_on(st);
duke@435 1239 st->cr();
duke@435 1240 }
duke@435 1241
duke@435 1242 // ======= JavaThread ========
duke@435 1243
duke@435 1244 // A JavaThread is a normal Java thread
duke@435 1245
duke@435 1246 void JavaThread::initialize() {
duke@435 1247 // Initialize fields
ysr@777 1248
ysr@777 1249 // Set the claimed par_id to -1 (ie not claiming any par_ids)
ysr@777 1250 set_claimed_par_id(-1);
ysr@777 1251
duke@435 1252 set_saved_exception_pc(NULL);
duke@435 1253 set_threadObj(NULL);
duke@435 1254 _anchor.clear();
duke@435 1255 set_entry_point(NULL);
duke@435 1256 set_jni_functions(jni_functions());
duke@435 1257 set_callee_target(NULL);
duke@435 1258 set_vm_result(NULL);
duke@435 1259 set_vm_result_2(NULL);
duke@435 1260 set_vframe_array_head(NULL);
duke@435 1261 set_vframe_array_last(NULL);
duke@435 1262 set_deferred_locals(NULL);
duke@435 1263 set_deopt_mark(NULL);
iveresov@2169 1264 set_deopt_nmethod(NULL);
duke@435 1265 clear_must_deopt_id();
duke@435 1266 set_monitor_chunks(NULL);
duke@435 1267 set_next(NULL);
duke@435 1268 set_thread_state(_thread_new);
duke@435 1269 _terminated = _not_terminated;
duke@435 1270 _privileged_stack_top = NULL;
duke@435 1271 _array_for_gc = NULL;
duke@435 1272 _suspend_equivalent = false;
duke@435 1273 _in_deopt_handler = 0;
duke@435 1274 _doing_unsafe_access = false;
duke@435 1275 _stack_guard_state = stack_guard_unused;
duke@435 1276 _exception_oop = NULL;
duke@435 1277 _exception_pc = 0;
duke@435 1278 _exception_handler_pc = 0;
twisti@2258 1279 _is_method_handle_return = 0;
duke@435 1280 _jvmti_thread_state= NULL;
dcubed@1648 1281 _should_post_on_exceptions_flag = JNI_FALSE;
duke@435 1282 _jvmti_get_loaded_classes_closure = NULL;
duke@435 1283 _interp_only_mode = 0;
duke@435 1284 _special_runtime_exit_condition = _no_async_condition;
duke@435 1285 _pending_async_exception = NULL;
duke@435 1286 _is_compiling = false;
duke@435 1287 _thread_stat = NULL;
duke@435 1288 _thread_stat = new ThreadStatistics();
duke@435 1289 _blocked_on_compilation = false;
duke@435 1290 _jni_active_critical = 0;
duke@435 1291 _do_not_unlock_if_synchronized = false;
duke@435 1292 _cached_monitor_info = NULL;
duke@435 1293 _parker = Parker::Allocate(this) ;
duke@435 1294
duke@435 1295 #ifndef PRODUCT
duke@435 1296 _jmp_ring_index = 0;
duke@435 1297 for (int ji = 0 ; ji < jump_ring_buffer_size ; ji++ ) {
duke@435 1298 record_jump(NULL, NULL, NULL, 0);
duke@435 1299 }
duke@435 1300 #endif /* PRODUCT */
duke@435 1301
duke@435 1302 set_thread_profiler(NULL);
duke@435 1303 if (FlatProfiler::is_active()) {
duke@435 1304 // This is where we would decide to either give each thread it's own profiler
duke@435 1305 // or use one global one from FlatProfiler,
duke@435 1306 // or up to some count of the number of profiled threads, etc.
duke@435 1307 ThreadProfiler* pp = new ThreadProfiler();
duke@435 1308 pp->engage();
duke@435 1309 set_thread_profiler(pp);
duke@435 1310 }
duke@435 1311
duke@435 1312 // Setup safepoint state info for this thread
duke@435 1313 ThreadSafepointState::create(this);
duke@435 1314
duke@435 1315 debug_only(_java_call_counter = 0);
duke@435 1316
duke@435 1317 // JVMTI PopFrame support
duke@435 1318 _popframe_condition = popframe_inactive;
duke@435 1319 _popframe_preserved_args = NULL;
duke@435 1320 _popframe_preserved_args_size = 0;
duke@435 1321
duke@435 1322 pd_initialize();
duke@435 1323 }
duke@435 1324
ysr@777 1325 #ifndef SERIALGC
ysr@777 1326 SATBMarkQueueSet JavaThread::_satb_mark_queue_set;
ysr@777 1327 DirtyCardQueueSet JavaThread::_dirty_card_queue_set;
ysr@777 1328 #endif // !SERIALGC
ysr@777 1329
ysr@777 1330 JavaThread::JavaThread(bool is_attaching) :
ysr@777 1331 Thread()
ysr@777 1332 #ifndef SERIALGC
ysr@777 1333 , _satb_mark_queue(&_satb_mark_queue_set),
ysr@777 1334 _dirty_card_queue(&_dirty_card_queue_set)
ysr@777 1335 #endif // !SERIALGC
ysr@777 1336 {
duke@435 1337 initialize();
duke@435 1338 _is_attaching = is_attaching;
ysr@1462 1339 assert(_deferred_card_mark.is_empty(), "Default MemRegion ctor");
duke@435 1340 }
duke@435 1341
duke@435 1342 bool JavaThread::reguard_stack(address cur_sp) {
duke@435 1343 if (_stack_guard_state != stack_guard_yellow_disabled) {
duke@435 1344 return true; // Stack already guarded or guard pages not needed.
duke@435 1345 }
duke@435 1346
duke@435 1347 if (register_stack_overflow()) {
duke@435 1348 // For those architectures which have separate register and
duke@435 1349 // memory stacks, we must check the register stack to see if
duke@435 1350 // it has overflowed.
duke@435 1351 return false;
duke@435 1352 }
duke@435 1353
duke@435 1354 // Java code never executes within the yellow zone: the latter is only
duke@435 1355 // there to provoke an exception during stack banging. If java code
duke@435 1356 // is executing there, either StackShadowPages should be larger, or
duke@435 1357 // some exception code in c1, c2 or the interpreter isn't unwinding
duke@435 1358 // when it should.
duke@435 1359 guarantee(cur_sp > stack_yellow_zone_base(), "not enough space to reguard - increase StackShadowPages");
duke@435 1360
duke@435 1361 enable_stack_yellow_zone();
duke@435 1362 return true;
duke@435 1363 }
duke@435 1364
duke@435 1365 bool JavaThread::reguard_stack(void) {
duke@435 1366 return reguard_stack(os::current_stack_pointer());
duke@435 1367 }
duke@435 1368
duke@435 1369
duke@435 1370 void JavaThread::block_if_vm_exited() {
duke@435 1371 if (_terminated == _vm_exited) {
duke@435 1372 // _vm_exited is set at safepoint, and Threads_lock is never released
duke@435 1373 // we will block here forever
duke@435 1374 Threads_lock->lock_without_safepoint_check();
duke@435 1375 ShouldNotReachHere();
duke@435 1376 }
duke@435 1377 }
duke@435 1378
duke@435 1379
duke@435 1380 // Remove this ifdef when C1 is ported to the compiler interface.
duke@435 1381 static void compiler_thread_entry(JavaThread* thread, TRAPS);
duke@435 1382
ysr@777 1383 JavaThread::JavaThread(ThreadFunction entry_point, size_t stack_sz) :
ysr@777 1384 Thread()
ysr@777 1385 #ifndef SERIALGC
ysr@777 1386 , _satb_mark_queue(&_satb_mark_queue_set),
ysr@777 1387 _dirty_card_queue(&_dirty_card_queue_set)
ysr@777 1388 #endif // !SERIALGC
ysr@777 1389 {
duke@435 1390 if (TraceThreadEvents) {
duke@435 1391 tty->print_cr("creating thread %p", this);
duke@435 1392 }
duke@435 1393 initialize();
duke@435 1394 _is_attaching = false;
duke@435 1395 set_entry_point(entry_point);
duke@435 1396 // Create the native thread itself.
duke@435 1397 // %note runtime_23
duke@435 1398 os::ThreadType thr_type = os::java_thread;
duke@435 1399 thr_type = entry_point == &compiler_thread_entry ? os::compiler_thread :
duke@435 1400 os::java_thread;
duke@435 1401 os::create_thread(this, thr_type, stack_sz);
duke@435 1402
duke@435 1403 // The _osthread may be NULL here because we ran out of memory (too many threads active).
duke@435 1404 // We need to throw and OutOfMemoryError - however we cannot do this here because the caller
duke@435 1405 // may hold a lock and all locks must be unlocked before throwing the exception (throwing
duke@435 1406 // the exception consists of creating the exception object & initializing it, initialization
duke@435 1407 // will leave the VM via a JavaCall and then all locks must be unlocked).
duke@435 1408 //
duke@435 1409 // The thread is still suspended when we reach here. Thread must be explicit started
duke@435 1410 // by creator! Furthermore, the thread must also explicitly be added to the Threads list
duke@435 1411 // by calling Threads:add. The reason why this is not done here, is because the thread
duke@435 1412 // object must be fully initialized (take a look at JVM_Start)
duke@435 1413 }
duke@435 1414
duke@435 1415 JavaThread::~JavaThread() {
duke@435 1416 if (TraceThreadEvents) {
duke@435 1417 tty->print_cr("terminate thread %p", this);
duke@435 1418 }
duke@435 1419
duke@435 1420 // JSR166 -- return the parker to the free list
duke@435 1421 Parker::Release(_parker);
duke@435 1422 _parker = NULL ;
duke@435 1423
duke@435 1424 // Free any remaining previous UnrollBlock
duke@435 1425 vframeArray* old_array = vframe_array_last();
duke@435 1426
duke@435 1427 if (old_array != NULL) {
duke@435 1428 Deoptimization::UnrollBlock* old_info = old_array->unroll_block();
duke@435 1429 old_array->set_unroll_block(NULL);
duke@435 1430 delete old_info;
duke@435 1431 delete old_array;
duke@435 1432 }
duke@435 1433
duke@435 1434 GrowableArray<jvmtiDeferredLocalVariableSet*>* deferred = deferred_locals();
duke@435 1435 if (deferred != NULL) {
duke@435 1436 // This can only happen if thread is destroyed before deoptimization occurs.
duke@435 1437 assert(deferred->length() != 0, "empty array!");
duke@435 1438 do {
duke@435 1439 jvmtiDeferredLocalVariableSet* dlv = deferred->at(0);
duke@435 1440 deferred->remove_at(0);
duke@435 1441 // individual jvmtiDeferredLocalVariableSet are CHeapObj's
duke@435 1442 delete dlv;
duke@435 1443 } while (deferred->length() != 0);
duke@435 1444 delete deferred;
duke@435 1445 }
duke@435 1446
duke@435 1447 // All Java related clean up happens in exit
duke@435 1448 ThreadSafepointState::destroy(this);
duke@435 1449 if (_thread_profiler != NULL) delete _thread_profiler;
duke@435 1450 if (_thread_stat != NULL) delete _thread_stat;
duke@435 1451 }
duke@435 1452
duke@435 1453
duke@435 1454 // The first routine called by a new Java thread
duke@435 1455 void JavaThread::run() {
duke@435 1456 // initialize thread-local alloc buffer related fields
duke@435 1457 this->initialize_tlab();
duke@435 1458
duke@435 1459 // used to test validitity of stack trace backs
duke@435 1460 this->record_base_of_stack_pointer();
duke@435 1461
duke@435 1462 // Record real stack base and size.
duke@435 1463 this->record_stack_base_and_size();
duke@435 1464
duke@435 1465 // Initialize thread local storage; set before calling MutexLocker
duke@435 1466 this->initialize_thread_local_storage();
duke@435 1467
duke@435 1468 this->create_stack_guard_pages();
duke@435 1469
bobv@2036 1470 this->cache_global_variables();
bobv@2036 1471
duke@435 1472 // Thread is now sufficient initialized to be handled by the safepoint code as being
duke@435 1473 // in the VM. Change thread state from _thread_new to _thread_in_vm
duke@435 1474 ThreadStateTransition::transition_and_fence(this, _thread_new, _thread_in_vm);
duke@435 1475
duke@435 1476 assert(JavaThread::current() == this, "sanity check");
duke@435 1477 assert(!Thread::current()->owns_locks(), "sanity check");
duke@435 1478
duke@435 1479 DTRACE_THREAD_PROBE(start, this);
duke@435 1480
duke@435 1481 // This operation might block. We call that after all safepoint checks for a new thread has
duke@435 1482 // been completed.
duke@435 1483 this->set_active_handles(JNIHandleBlock::allocate_block());
duke@435 1484
duke@435 1485 if (JvmtiExport::should_post_thread_life()) {
duke@435 1486 JvmtiExport::post_thread_start(this);
duke@435 1487 }
duke@435 1488
duke@435 1489 // We call another function to do the rest so we are sure that the stack addresses used
duke@435 1490 // from there will be lower than the stack base just computed
duke@435 1491 thread_main_inner();
duke@435 1492
duke@435 1493 // Note, thread is no longer valid at this point!
duke@435 1494 }
duke@435 1495
duke@435 1496
duke@435 1497 void JavaThread::thread_main_inner() {
duke@435 1498 assert(JavaThread::current() == this, "sanity check");
duke@435 1499 assert(this->threadObj() != NULL, "just checking");
duke@435 1500
dholmes@2482 1501 // Execute thread entry point unless this thread has a pending exception
dholmes@2482 1502 // or has been stopped before starting.
duke@435 1503 // Note: Due to JVM_StopThread we can have pending exceptions already!
dholmes@2482 1504 if (!this->has_pending_exception() &&
dholmes@2482 1505 !java_lang_Thread::is_stillborn(this->threadObj())) {
duke@435 1506 HandleMark hm(this);
duke@435 1507 this->entry_point()(this, this);
duke@435 1508 }
duke@435 1509
duke@435 1510 DTRACE_THREAD_PROBE(stop, this);
duke@435 1511
duke@435 1512 this->exit(false);
duke@435 1513 delete this;
duke@435 1514 }
duke@435 1515
duke@435 1516
duke@435 1517 static void ensure_join(JavaThread* thread) {
duke@435 1518 // We do not need to grap the Threads_lock, since we are operating on ourself.
duke@435 1519 Handle threadObj(thread, thread->threadObj());
duke@435 1520 assert(threadObj.not_null(), "java thread object must exist");
duke@435 1521 ObjectLocker lock(threadObj, thread);
duke@435 1522 // Ignore pending exception (ThreadDeath), since we are exiting anyway
duke@435 1523 thread->clear_pending_exception();
duke@435 1524 // Thread is exiting. So set thread_status field in java.lang.Thread class to TERMINATED.
duke@435 1525 java_lang_Thread::set_thread_status(threadObj(), java_lang_Thread::TERMINATED);
dholmes@2482 1526 // Clear the native thread instance - this makes isAlive return false and allows the join()
dholmes@2482 1527 // to complete once we've done the notify_all below
duke@435 1528 java_lang_Thread::set_thread(threadObj(), NULL);
duke@435 1529 lock.notify_all(thread);
duke@435 1530 // Ignore pending exception (ThreadDeath), since we are exiting anyway
duke@435 1531 thread->clear_pending_exception();
duke@435 1532 }
duke@435 1533
iveresov@876 1534
duke@435 1535 // For any new cleanup additions, please check to see if they need to be applied to
duke@435 1536 // cleanup_failed_attach_current_thread as well.
duke@435 1537 void JavaThread::exit(bool destroy_vm, ExitType exit_type) {
duke@435 1538 assert(this == JavaThread::current(), "thread consistency check");
duke@435 1539 if (!InitializeJavaLangSystem) return;
duke@435 1540
duke@435 1541 HandleMark hm(this);
duke@435 1542 Handle uncaught_exception(this, this->pending_exception());
duke@435 1543 this->clear_pending_exception();
duke@435 1544 Handle threadObj(this, this->threadObj());
duke@435 1545 assert(threadObj.not_null(), "Java thread object should be created");
duke@435 1546
duke@435 1547 if (get_thread_profiler() != NULL) {
duke@435 1548 get_thread_profiler()->disengage();
duke@435 1549 ResourceMark rm;
duke@435 1550 get_thread_profiler()->print(get_thread_name());
duke@435 1551 }
duke@435 1552
duke@435 1553
duke@435 1554 // FIXIT: This code should be moved into else part, when reliable 1.2/1.3 check is in place
duke@435 1555 {
duke@435 1556 EXCEPTION_MARK;
duke@435 1557
duke@435 1558 CLEAR_PENDING_EXCEPTION;
duke@435 1559 }
duke@435 1560 // FIXIT: The is_null check is only so it works better on JDK1.2 VM's. This
duke@435 1561 // has to be fixed by a runtime query method
duke@435 1562 if (!destroy_vm || JDK_Version::is_jdk12x_version()) {
duke@435 1563 // JSR-166: change call from from ThreadGroup.uncaughtException to
duke@435 1564 // java.lang.Thread.dispatchUncaughtException
duke@435 1565 if (uncaught_exception.not_null()) {
duke@435 1566 Handle group(this, java_lang_Thread::threadGroup(threadObj()));
duke@435 1567 Events::log("uncaught exception INTPTR_FORMAT " " INTPTR_FORMAT " " INTPTR_FORMAT",
duke@435 1568 (address)uncaught_exception(), (address)threadObj(), (address)group());
duke@435 1569 {
duke@435 1570 EXCEPTION_MARK;
duke@435 1571 // Check if the method Thread.dispatchUncaughtException() exists. If so
duke@435 1572 // call it. Otherwise we have an older library without the JSR-166 changes,
duke@435 1573 // so call ThreadGroup.uncaughtException()
duke@435 1574 KlassHandle recvrKlass(THREAD, threadObj->klass());
duke@435 1575 CallInfo callinfo;
never@1577 1576 KlassHandle thread_klass(THREAD, SystemDictionary::Thread_klass());
duke@435 1577 LinkResolver::resolve_virtual_call(callinfo, threadObj, recvrKlass, thread_klass,
coleenp@2497 1578 vmSymbols::dispatchUncaughtException_name(),
coleenp@2497 1579 vmSymbols::throwable_void_signature(),
duke@435 1580 KlassHandle(), false, false, THREAD);
duke@435 1581 CLEAR_PENDING_EXCEPTION;
duke@435 1582 methodHandle method = callinfo.selected_method();
duke@435 1583 if (method.not_null()) {
duke@435 1584 JavaValue result(T_VOID);
duke@435 1585 JavaCalls::call_virtual(&result,
duke@435 1586 threadObj, thread_klass,
coleenp@2497 1587 vmSymbols::dispatchUncaughtException_name(),
coleenp@2497 1588 vmSymbols::throwable_void_signature(),
duke@435 1589 uncaught_exception,
duke@435 1590 THREAD);
duke@435 1591 } else {
never@1577 1592 KlassHandle thread_group(THREAD, SystemDictionary::ThreadGroup_klass());
duke@435 1593 JavaValue result(T_VOID);
duke@435 1594 JavaCalls::call_virtual(&result,
duke@435 1595 group, thread_group,
coleenp@2497 1596 vmSymbols::uncaughtException_name(),
coleenp@2497 1597 vmSymbols::thread_throwable_void_signature(),
duke@435 1598 threadObj, // Arg 1
duke@435 1599 uncaught_exception, // Arg 2
duke@435 1600 THREAD);
duke@435 1601 }
coleenp@2516 1602 if (HAS_PENDING_EXCEPTION) {
coleenp@2516 1603 ResourceMark rm(this);
coleenp@2516 1604 jio_fprintf(defaultStream::error_stream(),
coleenp@2516 1605 "\nException: %s thrown from the UncaughtExceptionHandler"
coleenp@2516 1606 " in thread \"%s\"\n",
coleenp@2516 1607 Klass::cast(pending_exception()->klass())->external_name(),
coleenp@2516 1608 get_thread_name());
coleenp@2516 1609 CLEAR_PENDING_EXCEPTION;
coleenp@2516 1610 }
duke@435 1611 }
duke@435 1612 }
duke@435 1613
duke@435 1614 // Call Thread.exit(). We try 3 times in case we got another Thread.stop during
duke@435 1615 // the execution of the method. If that is not enough, then we don't really care. Thread.stop
duke@435 1616 // is deprecated anyhow.
duke@435 1617 { int count = 3;
duke@435 1618 while (java_lang_Thread::threadGroup(threadObj()) != NULL && (count-- > 0)) {
duke@435 1619 EXCEPTION_MARK;
duke@435 1620 JavaValue result(T_VOID);
never@1577 1621 KlassHandle thread_klass(THREAD, SystemDictionary::Thread_klass());
duke@435 1622 JavaCalls::call_virtual(&result,
duke@435 1623 threadObj, thread_klass,
coleenp@2497 1624 vmSymbols::exit_method_name(),
coleenp@2497 1625 vmSymbols::void_method_signature(),
duke@435 1626 THREAD);
duke@435 1627 CLEAR_PENDING_EXCEPTION;
duke@435 1628 }
duke@435 1629 }
duke@435 1630
duke@435 1631 // notify JVMTI
duke@435 1632 if (JvmtiExport::should_post_thread_life()) {
duke@435 1633 JvmtiExport::post_thread_end(this);
duke@435 1634 }
duke@435 1635
duke@435 1636 // We have notified the agents that we are exiting, before we go on,
duke@435 1637 // we must check for a pending external suspend request and honor it
duke@435 1638 // in order to not surprise the thread that made the suspend request.
duke@435 1639 while (true) {
duke@435 1640 {
duke@435 1641 MutexLockerEx ml(SR_lock(), Mutex::_no_safepoint_check_flag);
duke@435 1642 if (!is_external_suspend()) {
duke@435 1643 set_terminated(_thread_exiting);
duke@435 1644 ThreadService::current_thread_exiting(this);
duke@435 1645 break;
duke@435 1646 }
duke@435 1647 // Implied else:
duke@435 1648 // Things get a little tricky here. We have a pending external
duke@435 1649 // suspend request, but we are holding the SR_lock so we
duke@435 1650 // can't just self-suspend. So we temporarily drop the lock
duke@435 1651 // and then self-suspend.
duke@435 1652 }
duke@435 1653
duke@435 1654 ThreadBlockInVM tbivm(this);
duke@435 1655 java_suspend_self();
duke@435 1656
duke@435 1657 // We're done with this suspend request, but we have to loop around
duke@435 1658 // and check again. Eventually we will get SR_lock without a pending
duke@435 1659 // external suspend request and will be able to mark ourselves as
duke@435 1660 // exiting.
duke@435 1661 }
duke@435 1662 // no more external suspends are allowed at this point
duke@435 1663 } else {
duke@435 1664 // before_exit() has already posted JVMTI THREAD_END events
duke@435 1665 }
duke@435 1666
duke@435 1667 // Notify waiters on thread object. This has to be done after exit() is called
duke@435 1668 // on the thread (if the thread is the last thread in a daemon ThreadGroup the
duke@435 1669 // group should have the destroyed bit set before waiters are notified).
duke@435 1670 ensure_join(this);
duke@435 1671 assert(!this->has_pending_exception(), "ensure_join should have cleared");
duke@435 1672
duke@435 1673 // 6282335 JNI DetachCurrentThread spec states that all Java monitors
duke@435 1674 // held by this thread must be released. A detach operation must only
duke@435 1675 // get here if there are no Java frames on the stack. Therefore, any
duke@435 1676 // owned monitors at this point MUST be JNI-acquired monitors which are
duke@435 1677 // pre-inflated and in the monitor cache.
duke@435 1678 //
duke@435 1679 // ensure_join() ignores IllegalThreadStateExceptions, and so does this.
duke@435 1680 if (exit_type == jni_detach && JNIDetachReleasesMonitors) {
duke@435 1681 assert(!this->has_last_Java_frame(), "detaching with Java frames?");
duke@435 1682 ObjectSynchronizer::release_monitors_owned_by_thread(this);
duke@435 1683 assert(!this->has_pending_exception(), "release_monitors should have cleared");
duke@435 1684 }
duke@435 1685
duke@435 1686 // These things needs to be done while we are still a Java Thread. Make sure that thread
duke@435 1687 // is in a consistent state, in case GC happens
duke@435 1688 assert(_privileged_stack_top == NULL, "must be NULL when we get here");
duke@435 1689
duke@435 1690 if (active_handles() != NULL) {
duke@435 1691 JNIHandleBlock* block = active_handles();
duke@435 1692 set_active_handles(NULL);
duke@435 1693 JNIHandleBlock::release_block(block);
duke@435 1694 }
duke@435 1695
duke@435 1696 if (free_handle_block() != NULL) {
duke@435 1697 JNIHandleBlock* block = free_handle_block();
duke@435 1698 set_free_handle_block(NULL);
duke@435 1699 JNIHandleBlock::release_block(block);
duke@435 1700 }
duke@435 1701
duke@435 1702 // These have to be removed while this is still a valid thread.
duke@435 1703 remove_stack_guard_pages();
duke@435 1704
duke@435 1705 if (UseTLAB) {
duke@435 1706 tlab().make_parsable(true); // retire TLAB
duke@435 1707 }
duke@435 1708
kamg@2446 1709 if (JvmtiEnv::environments_might_exist()) {
dcubed@484 1710 JvmtiExport::cleanup_thread(this);
dcubed@484 1711 }
dcubed@484 1712
iveresov@876 1713 #ifndef SERIALGC
iveresov@876 1714 // We must flush G1-related buffers before removing a thread from
iveresov@876 1715 // the list of active threads.
iveresov@876 1716 if (UseG1GC) {
iveresov@876 1717 flush_barrier_queues();
iveresov@876 1718 }
iveresov@876 1719 #endif
iveresov@876 1720
duke@435 1721 // Remove from list of active threads list, and notify VM thread if we are the last non-daemon thread
duke@435 1722 Threads::remove(this);
duke@435 1723 }
duke@435 1724
iveresov@876 1725 #ifndef SERIALGC
iveresov@876 1726 // Flush G1-related queues.
iveresov@876 1727 void JavaThread::flush_barrier_queues() {
iveresov@876 1728 satb_mark_queue().flush();
iveresov@876 1729 dirty_card_queue().flush();
iveresov@876 1730 }
tonyp@2197 1731
tonyp@2197 1732 void JavaThread::initialize_queues() {
tonyp@2197 1733 assert(!SafepointSynchronize::is_at_safepoint(),
tonyp@2197 1734 "we should not be at a safepoint");
tonyp@2197 1735
tonyp@2197 1736 ObjPtrQueue& satb_queue = satb_mark_queue();
tonyp@2197 1737 SATBMarkQueueSet& satb_queue_set = satb_mark_queue_set();
tonyp@2197 1738 // The SATB queue should have been constructed with its active
tonyp@2197 1739 // field set to false.
tonyp@2197 1740 assert(!satb_queue.is_active(), "SATB queue should not be active");
tonyp@2197 1741 assert(satb_queue.is_empty(), "SATB queue should be empty");
tonyp@2197 1742 // If we are creating the thread during a marking cycle, we should
tonyp@2197 1743 // set the active field of the SATB queue to true.
tonyp@2197 1744 if (satb_queue_set.is_active()) {
tonyp@2197 1745 satb_queue.set_active(true);
tonyp@2197 1746 }
tonyp@2197 1747
tonyp@2197 1748 DirtyCardQueue& dirty_queue = dirty_card_queue();
tonyp@2197 1749 // The dirty card queue should have been constructed with its
tonyp@2197 1750 // active field set to true.
tonyp@2197 1751 assert(dirty_queue.is_active(), "dirty card queue should be active");
tonyp@2197 1752 }
tonyp@2197 1753 #endif // !SERIALGC
iveresov@876 1754
duke@435 1755 void JavaThread::cleanup_failed_attach_current_thread() {
iveresov@876 1756 if (get_thread_profiler() != NULL) {
iveresov@876 1757 get_thread_profiler()->disengage();
iveresov@876 1758 ResourceMark rm;
iveresov@876 1759 get_thread_profiler()->print(get_thread_name());
iveresov@876 1760 }
iveresov@876 1761
iveresov@876 1762 if (active_handles() != NULL) {
iveresov@876 1763 JNIHandleBlock* block = active_handles();
iveresov@876 1764 set_active_handles(NULL);
iveresov@876 1765 JNIHandleBlock::release_block(block);
iveresov@876 1766 }
iveresov@876 1767
iveresov@876 1768 if (free_handle_block() != NULL) {
iveresov@876 1769 JNIHandleBlock* block = free_handle_block();
iveresov@876 1770 set_free_handle_block(NULL);
iveresov@876 1771 JNIHandleBlock::release_block(block);
iveresov@876 1772 }
iveresov@876 1773
coleenp@1725 1774 // These have to be removed while this is still a valid thread.
coleenp@1725 1775 remove_stack_guard_pages();
coleenp@1725 1776
iveresov@876 1777 if (UseTLAB) {
iveresov@876 1778 tlab().make_parsable(true); // retire TLAB, if any
iveresov@876 1779 }
iveresov@876 1780
iveresov@876 1781 #ifndef SERIALGC
iveresov@876 1782 if (UseG1GC) {
iveresov@876 1783 flush_barrier_queues();
iveresov@876 1784 }
iveresov@876 1785 #endif
iveresov@876 1786
iveresov@876 1787 Threads::remove(this);
iveresov@876 1788 delete this;
duke@435 1789 }
duke@435 1790
duke@435 1791
iveresov@876 1792
iveresov@876 1793
duke@435 1794 JavaThread* JavaThread::active() {
duke@435 1795 Thread* thread = ThreadLocalStorage::thread();
duke@435 1796 assert(thread != NULL, "just checking");
duke@435 1797 if (thread->is_Java_thread()) {
duke@435 1798 return (JavaThread*) thread;
duke@435 1799 } else {
duke@435 1800 assert(thread->is_VM_thread(), "this must be a vm thread");
duke@435 1801 VM_Operation* op = ((VMThread*) thread)->vm_operation();
duke@435 1802 JavaThread *ret=op == NULL ? NULL : (JavaThread *)op->calling_thread();
duke@435 1803 assert(ret->is_Java_thread(), "must be a Java thread");
duke@435 1804 return ret;
duke@435 1805 }
duke@435 1806 }
duke@435 1807
duke@435 1808 bool JavaThread::is_lock_owned(address adr) const {
xlu@1137 1809 if (Thread::is_lock_owned(adr)) return true;
duke@435 1810
duke@435 1811 for (MonitorChunk* chunk = monitor_chunks(); chunk != NULL; chunk = chunk->next()) {
duke@435 1812 if (chunk->contains(adr)) return true;
duke@435 1813 }
duke@435 1814
duke@435 1815 return false;
duke@435 1816 }
duke@435 1817
duke@435 1818
duke@435 1819 void JavaThread::add_monitor_chunk(MonitorChunk* chunk) {
duke@435 1820 chunk->set_next(monitor_chunks());
duke@435 1821 set_monitor_chunks(chunk);
duke@435 1822 }
duke@435 1823
duke@435 1824 void JavaThread::remove_monitor_chunk(MonitorChunk* chunk) {
duke@435 1825 guarantee(monitor_chunks() != NULL, "must be non empty");
duke@435 1826 if (monitor_chunks() == chunk) {
duke@435 1827 set_monitor_chunks(chunk->next());
duke@435 1828 } else {
duke@435 1829 MonitorChunk* prev = monitor_chunks();
duke@435 1830 while (prev->next() != chunk) prev = prev->next();
duke@435 1831 prev->set_next(chunk->next());
duke@435 1832 }
duke@435 1833 }
duke@435 1834
duke@435 1835 // JVM support.
duke@435 1836
duke@435 1837 // Note: this function shouldn't block if it's called in
duke@435 1838 // _thread_in_native_trans state (such as from
duke@435 1839 // check_special_condition_for_native_trans()).
duke@435 1840 void JavaThread::check_and_handle_async_exceptions(bool check_unsafe_error) {
duke@435 1841
duke@435 1842 if (has_last_Java_frame() && has_async_condition()) {
duke@435 1843 // If we are at a polling page safepoint (not a poll return)
duke@435 1844 // then we must defer async exception because live registers
duke@435 1845 // will be clobbered by the exception path. Poll return is
duke@435 1846 // ok because the call we a returning from already collides
duke@435 1847 // with exception handling registers and so there is no issue.
duke@435 1848 // (The exception handling path kills call result registers but
duke@435 1849 // this is ok since the exception kills the result anyway).
duke@435 1850
duke@435 1851 if (is_at_poll_safepoint()) {
duke@435 1852 // if the code we are returning to has deoptimized we must defer
duke@435 1853 // the exception otherwise live registers get clobbered on the
duke@435 1854 // exception path before deoptimization is able to retrieve them.
duke@435 1855 //
duke@435 1856 RegisterMap map(this, false);
duke@435 1857 frame caller_fr = last_frame().sender(&map);
duke@435 1858 assert(caller_fr.is_compiled_frame(), "what?");
duke@435 1859 if (caller_fr.is_deoptimized_frame()) {
duke@435 1860 if (TraceExceptions) {
duke@435 1861 ResourceMark rm;
duke@435 1862 tty->print_cr("deferred async exception at compiled safepoint");
duke@435 1863 }
duke@435 1864 return;
duke@435 1865 }
duke@435 1866 }
duke@435 1867 }
duke@435 1868
duke@435 1869 JavaThread::AsyncRequests condition = clear_special_runtime_exit_condition();
duke@435 1870 if (condition == _no_async_condition) {
duke@435 1871 // Conditions have changed since has_special_runtime_exit_condition()
duke@435 1872 // was called:
duke@435 1873 // - if we were here only because of an external suspend request,
duke@435 1874 // then that was taken care of above (or cancelled) so we are done
duke@435 1875 // - if we were here because of another async request, then it has
duke@435 1876 // been cleared between the has_special_runtime_exit_condition()
duke@435 1877 // and now so again we are done
duke@435 1878 return;
duke@435 1879 }
duke@435 1880
duke@435 1881 // Check for pending async. exception
duke@435 1882 if (_pending_async_exception != NULL) {
duke@435 1883 // Only overwrite an already pending exception, if it is not a threadDeath.
never@1577 1884 if (!has_pending_exception() || !pending_exception()->is_a(SystemDictionary::ThreadDeath_klass())) {
duke@435 1885
duke@435 1886 // We cannot call Exceptions::_throw(...) here because we cannot block
duke@435 1887 set_pending_exception(_pending_async_exception, __FILE__, __LINE__);
duke@435 1888
duke@435 1889 if (TraceExceptions) {
duke@435 1890 ResourceMark rm;
duke@435 1891 tty->print("Async. exception installed at runtime exit (" INTPTR_FORMAT ")", this);
duke@435 1892 if (has_last_Java_frame() ) {
duke@435 1893 frame f = last_frame();
duke@435 1894 tty->print(" (pc: " INTPTR_FORMAT " sp: " INTPTR_FORMAT " )", f.pc(), f.sp());
duke@435 1895 }
duke@435 1896 tty->print_cr(" of type: %s", instanceKlass::cast(_pending_async_exception->klass())->external_name());
duke@435 1897 }
duke@435 1898 _pending_async_exception = NULL;
duke@435 1899 clear_has_async_exception();
duke@435 1900 }
duke@435 1901 }
duke@435 1902
duke@435 1903 if (check_unsafe_error &&
duke@435 1904 condition == _async_unsafe_access_error && !has_pending_exception()) {
duke@435 1905 condition = _no_async_condition; // done
duke@435 1906 switch (thread_state()) {
duke@435 1907 case _thread_in_vm:
duke@435 1908 {
duke@435 1909 JavaThread* THREAD = this;
duke@435 1910 THROW_MSG(vmSymbols::java_lang_InternalError(), "a fault occurred in an unsafe memory access operation");
duke@435 1911 }
duke@435 1912 case _thread_in_native:
duke@435 1913 {
duke@435 1914 ThreadInVMfromNative tiv(this);
duke@435 1915 JavaThread* THREAD = this;
duke@435 1916 THROW_MSG(vmSymbols::java_lang_InternalError(), "a fault occurred in an unsafe memory access operation");
duke@435 1917 }
duke@435 1918 case _thread_in_Java:
duke@435 1919 {
duke@435 1920 ThreadInVMfromJava tiv(this);
duke@435 1921 JavaThread* THREAD = this;
duke@435 1922 THROW_MSG(vmSymbols::java_lang_InternalError(), "a fault occurred in a recent unsafe memory access operation in compiled Java code");
duke@435 1923 }
duke@435 1924 default:
duke@435 1925 ShouldNotReachHere();
duke@435 1926 }
duke@435 1927 }
duke@435 1928
duke@435 1929 assert(condition == _no_async_condition || has_pending_exception() ||
duke@435 1930 (!check_unsafe_error && condition == _async_unsafe_access_error),
duke@435 1931 "must have handled the async condition, if no exception");
duke@435 1932 }
duke@435 1933
duke@435 1934 void JavaThread::handle_special_runtime_exit_condition(bool check_asyncs) {
duke@435 1935 //
duke@435 1936 // Check for pending external suspend. Internal suspend requests do
duke@435 1937 // not use handle_special_runtime_exit_condition().
duke@435 1938 // If JNIEnv proxies are allowed, don't self-suspend if the target
duke@435 1939 // thread is not the current thread. In older versions of jdbx, jdbx
duke@435 1940 // threads could call into the VM with another thread's JNIEnv so we
duke@435 1941 // can be here operating on behalf of a suspended thread (4432884).
duke@435 1942 bool do_self_suspend = is_external_suspend_with_lock();
duke@435 1943 if (do_self_suspend && (!AllowJNIEnvProxy || this == JavaThread::current())) {
duke@435 1944 //
duke@435 1945 // Because thread is external suspended the safepoint code will count
duke@435 1946 // thread as at a safepoint. This can be odd because we can be here
duke@435 1947 // as _thread_in_Java which would normally transition to _thread_blocked
duke@435 1948 // at a safepoint. We would like to mark the thread as _thread_blocked
duke@435 1949 // before calling java_suspend_self like all other callers of it but
duke@435 1950 // we must then observe proper safepoint protocol. (We can't leave
duke@435 1951 // _thread_blocked with a safepoint in progress). However we can be
duke@435 1952 // here as _thread_in_native_trans so we can't use a normal transition
duke@435 1953 // constructor/destructor pair because they assert on that type of
duke@435 1954 // transition. We could do something like:
duke@435 1955 //
duke@435 1956 // JavaThreadState state = thread_state();
duke@435 1957 // set_thread_state(_thread_in_vm);
duke@435 1958 // {
duke@435 1959 // ThreadBlockInVM tbivm(this);
duke@435 1960 // java_suspend_self()
duke@435 1961 // }
duke@435 1962 // set_thread_state(_thread_in_vm_trans);
duke@435 1963 // if (safepoint) block;
duke@435 1964 // set_thread_state(state);
duke@435 1965 //
duke@435 1966 // but that is pretty messy. Instead we just go with the way the
duke@435 1967 // code has worked before and note that this is the only path to
duke@435 1968 // java_suspend_self that doesn't put the thread in _thread_blocked
duke@435 1969 // mode.
duke@435 1970
duke@435 1971 frame_anchor()->make_walkable(this);
duke@435 1972 java_suspend_self();
duke@435 1973
duke@435 1974 // We might be here for reasons in addition to the self-suspend request
duke@435 1975 // so check for other async requests.
duke@435 1976 }
duke@435 1977
duke@435 1978 if (check_asyncs) {
duke@435 1979 check_and_handle_async_exceptions();
duke@435 1980 }
duke@435 1981 }
duke@435 1982
duke@435 1983 void JavaThread::send_thread_stop(oop java_throwable) {
duke@435 1984 assert(Thread::current()->is_VM_thread(), "should be in the vm thread");
duke@435 1985 assert(Threads_lock->is_locked(), "Threads_lock should be locked by safepoint code");
duke@435 1986 assert(SafepointSynchronize::is_at_safepoint(), "all threads are stopped");
duke@435 1987
duke@435 1988 // Do not throw asynchronous exceptions against the compiler thread
duke@435 1989 // (the compiler thread should not be a Java thread -- fix in 1.4.2)
duke@435 1990 if (is_Compiler_thread()) return;
duke@435 1991
duke@435 1992 {
duke@435 1993 // Actually throw the Throwable against the target Thread - however
duke@435 1994 // only if there is no thread death exception installed already.
never@1577 1995 if (_pending_async_exception == NULL || !_pending_async_exception->is_a(SystemDictionary::ThreadDeath_klass())) {
duke@435 1996 // If the topmost frame is a runtime stub, then we are calling into
duke@435 1997 // OptoRuntime from compiled code. Some runtime stubs (new, monitor_exit..)
duke@435 1998 // must deoptimize the caller before continuing, as the compiled exception handler table
duke@435 1999 // may not be valid
duke@435 2000 if (has_last_Java_frame()) {
duke@435 2001 frame f = last_frame();
duke@435 2002 if (f.is_runtime_frame() || f.is_safepoint_blob_frame()) {
duke@435 2003 // BiasedLocking needs an updated RegisterMap for the revoke monitors pass
duke@435 2004 RegisterMap reg_map(this, UseBiasedLocking);
duke@435 2005 frame compiled_frame = f.sender(&reg_map);
duke@435 2006 if (compiled_frame.can_be_deoptimized()) {
duke@435 2007 Deoptimization::deoptimize(this, compiled_frame, &reg_map);
duke@435 2008 }
duke@435 2009 }
duke@435 2010 }
duke@435 2011
duke@435 2012 // Set async. pending exception in thread.
duke@435 2013 set_pending_async_exception(java_throwable);
duke@435 2014
duke@435 2015 if (TraceExceptions) {
duke@435 2016 ResourceMark rm;
duke@435 2017 tty->print_cr("Pending Async. exception installed of type: %s", instanceKlass::cast(_pending_async_exception->klass())->external_name());
duke@435 2018 }
duke@435 2019 // for AbortVMOnException flag
duke@435 2020 NOT_PRODUCT(Exceptions::debug_check_abort(instanceKlass::cast(_pending_async_exception->klass())->external_name()));
duke@435 2021 }
duke@435 2022 }
duke@435 2023
duke@435 2024
duke@435 2025 // Interrupt thread so it will wake up from a potential wait()
duke@435 2026 Thread::interrupt(this);
duke@435 2027 }
duke@435 2028
duke@435 2029 // External suspension mechanism.
duke@435 2030 //
duke@435 2031 // Tell the VM to suspend a thread when ever it knows that it does not hold on
duke@435 2032 // to any VM_locks and it is at a transition
duke@435 2033 // Self-suspension will happen on the transition out of the vm.
duke@435 2034 // Catch "this" coming in from JNIEnv pointers when the thread has been freed
duke@435 2035 //
duke@435 2036 // Guarantees on return:
duke@435 2037 // + Target thread will not execute any new bytecode (that's why we need to
duke@435 2038 // force a safepoint)
duke@435 2039 // + Target thread will not enter any new monitors
duke@435 2040 //
duke@435 2041 void JavaThread::java_suspend() {
duke@435 2042 { MutexLocker mu(Threads_lock);
duke@435 2043 if (!Threads::includes(this) || is_exiting() || this->threadObj() == NULL) {
duke@435 2044 return;
duke@435 2045 }
duke@435 2046 }
duke@435 2047
duke@435 2048 { MutexLockerEx ml(SR_lock(), Mutex::_no_safepoint_check_flag);
duke@435 2049 if (!is_external_suspend()) {
duke@435 2050 // a racing resume has cancelled us; bail out now
duke@435 2051 return;
duke@435 2052 }
duke@435 2053
duke@435 2054 // suspend is done
duke@435 2055 uint32_t debug_bits = 0;
duke@435 2056 // Warning: is_ext_suspend_completed() may temporarily drop the
duke@435 2057 // SR_lock to allow the thread to reach a stable thread state if
duke@435 2058 // it is currently in a transient thread state.
duke@435 2059 if (is_ext_suspend_completed(false /* !called_by_wait */,
duke@435 2060 SuspendRetryDelay, &debug_bits) ) {
duke@435 2061 return;
duke@435 2062 }
duke@435 2063 }
duke@435 2064
duke@435 2065 VM_ForceSafepoint vm_suspend;
duke@435 2066 VMThread::execute(&vm_suspend);
duke@435 2067 }
duke@435 2068
duke@435 2069 // Part II of external suspension.
duke@435 2070 // A JavaThread self suspends when it detects a pending external suspend
duke@435 2071 // request. This is usually on transitions. It is also done in places
duke@435 2072 // where continuing to the next transition would surprise the caller,
duke@435 2073 // e.g., monitor entry.
duke@435 2074 //
duke@435 2075 // Returns the number of times that the thread self-suspended.
duke@435 2076 //
duke@435 2077 // Note: DO NOT call java_suspend_self() when you just want to block current
duke@435 2078 // thread. java_suspend_self() is the second stage of cooperative
duke@435 2079 // suspension for external suspend requests and should only be used
duke@435 2080 // to complete an external suspend request.
duke@435 2081 //
duke@435 2082 int JavaThread::java_suspend_self() {
duke@435 2083 int ret = 0;
duke@435 2084
duke@435 2085 // we are in the process of exiting so don't suspend
duke@435 2086 if (is_exiting()) {
duke@435 2087 clear_external_suspend();
duke@435 2088 return ret;
duke@435 2089 }
duke@435 2090
duke@435 2091 assert(_anchor.walkable() ||
duke@435 2092 (is_Java_thread() && !((JavaThread*)this)->has_last_Java_frame()),
duke@435 2093 "must have walkable stack");
duke@435 2094
duke@435 2095 MutexLockerEx ml(SR_lock(), Mutex::_no_safepoint_check_flag);
duke@435 2096
dcubed@1414 2097 assert(!this->is_ext_suspended(),
duke@435 2098 "a thread trying to self-suspend should not already be suspended");
duke@435 2099
duke@435 2100 if (this->is_suspend_equivalent()) {
duke@435 2101 // If we are self-suspending as a result of the lifting of a
duke@435 2102 // suspend equivalent condition, then the suspend_equivalent
duke@435 2103 // flag is not cleared until we set the ext_suspended flag so
duke@435 2104 // that wait_for_ext_suspend_completion() returns consistent
duke@435 2105 // results.
duke@435 2106 this->clear_suspend_equivalent();
duke@435 2107 }
duke@435 2108
duke@435 2109 // A racing resume may have cancelled us before we grabbed SR_lock
duke@435 2110 // above. Or another external suspend request could be waiting for us
duke@435 2111 // by the time we return from SR_lock()->wait(). The thread
duke@435 2112 // that requested the suspension may already be trying to walk our
duke@435 2113 // stack and if we return now, we can change the stack out from under
duke@435 2114 // it. This would be a "bad thing (TM)" and cause the stack walker
duke@435 2115 // to crash. We stay self-suspended until there are no more pending
duke@435 2116 // external suspend requests.
duke@435 2117 while (is_external_suspend()) {
duke@435 2118 ret++;
duke@435 2119 this->set_ext_suspended();
duke@435 2120
duke@435 2121 // _ext_suspended flag is cleared by java_resume()
duke@435 2122 while (is_ext_suspended()) {
duke@435 2123 this->SR_lock()->wait(Mutex::_no_safepoint_check_flag);
duke@435 2124 }
duke@435 2125 }
duke@435 2126
duke@435 2127 return ret;
duke@435 2128 }
duke@435 2129
duke@435 2130 #ifdef ASSERT
duke@435 2131 // verify the JavaThread has not yet been published in the Threads::list, and
duke@435 2132 // hence doesn't need protection from concurrent access at this stage
duke@435 2133 void JavaThread::verify_not_published() {
duke@435 2134 if (!Threads_lock->owned_by_self()) {
duke@435 2135 MutexLockerEx ml(Threads_lock, Mutex::_no_safepoint_check_flag);
duke@435 2136 assert( !Threads::includes(this),
duke@435 2137 "java thread shouldn't have been published yet!");
duke@435 2138 }
duke@435 2139 else {
duke@435 2140 assert( !Threads::includes(this),
duke@435 2141 "java thread shouldn't have been published yet!");
duke@435 2142 }
duke@435 2143 }
duke@435 2144 #endif
duke@435 2145
duke@435 2146 // Slow path when the native==>VM/Java barriers detect a safepoint is in
duke@435 2147 // progress or when _suspend_flags is non-zero.
duke@435 2148 // Current thread needs to self-suspend if there is a suspend request and/or
duke@435 2149 // block if a safepoint is in progress.
duke@435 2150 // Async exception ISN'T checked.
duke@435 2151 // Note only the ThreadInVMfromNative transition can call this function
duke@435 2152 // directly and when thread state is _thread_in_native_trans
duke@435 2153 void JavaThread::check_safepoint_and_suspend_for_native_trans(JavaThread *thread) {
duke@435 2154 assert(thread->thread_state() == _thread_in_native_trans, "wrong state");
duke@435 2155
duke@435 2156 JavaThread *curJT = JavaThread::current();
duke@435 2157 bool do_self_suspend = thread->is_external_suspend();
duke@435 2158
duke@435 2159 assert(!curJT->has_last_Java_frame() || curJT->frame_anchor()->walkable(), "Unwalkable stack in native->vm transition");
duke@435 2160
duke@435 2161 // If JNIEnv proxies are allowed, don't self-suspend if the target
duke@435 2162 // thread is not the current thread. In older versions of jdbx, jdbx
duke@435 2163 // threads could call into the VM with another thread's JNIEnv so we
duke@435 2164 // can be here operating on behalf of a suspended thread (4432884).
duke@435 2165 if (do_self_suspend && (!AllowJNIEnvProxy || curJT == thread)) {
duke@435 2166 JavaThreadState state = thread->thread_state();
duke@435 2167
duke@435 2168 // We mark this thread_blocked state as a suspend-equivalent so
duke@435 2169 // that a caller to is_ext_suspend_completed() won't be confused.
duke@435 2170 // The suspend-equivalent state is cleared by java_suspend_self().
duke@435 2171 thread->set_suspend_equivalent();
duke@435 2172
duke@435 2173 // If the safepoint code sees the _thread_in_native_trans state, it will
duke@435 2174 // wait until the thread changes to other thread state. There is no
duke@435 2175 // guarantee on how soon we can obtain the SR_lock and complete the
duke@435 2176 // self-suspend request. It would be a bad idea to let safepoint wait for
duke@435 2177 // too long. Temporarily change the state to _thread_blocked to
duke@435 2178 // let the VM thread know that this thread is ready for GC. The problem
duke@435 2179 // of changing thread state is that safepoint could happen just after
duke@435 2180 // java_suspend_self() returns after being resumed, and VM thread will
duke@435 2181 // see the _thread_blocked state. We must check for safepoint
duke@435 2182 // after restoring the state and make sure we won't leave while a safepoint
duke@435 2183 // is in progress.
duke@435 2184 thread->set_thread_state(_thread_blocked);
duke@435 2185 thread->java_suspend_self();
duke@435 2186 thread->set_thread_state(state);
duke@435 2187 // Make sure new state is seen by VM thread
duke@435 2188 if (os::is_MP()) {
duke@435 2189 if (UseMembar) {
duke@435 2190 // Force a fence between the write above and read below
duke@435 2191 OrderAccess::fence();
duke@435 2192 } else {
duke@435 2193 // Must use this rather than serialization page in particular on Windows
duke@435 2194 InterfaceSupport::serialize_memory(thread);
duke@435 2195 }
duke@435 2196 }
duke@435 2197 }
duke@435 2198
duke@435 2199 if (SafepointSynchronize::do_call_back()) {
duke@435 2200 // If we are safepointing, then block the caller which may not be
duke@435 2201 // the same as the target thread (see above).
duke@435 2202 SafepointSynchronize::block(curJT);
duke@435 2203 }
duke@435 2204
duke@435 2205 if (thread->is_deopt_suspend()) {
duke@435 2206 thread->clear_deopt_suspend();
duke@435 2207 RegisterMap map(thread, false);
duke@435 2208 frame f = thread->last_frame();
duke@435 2209 while ( f.id() != thread->must_deopt_id() && ! f.is_first_frame()) {
duke@435 2210 f = f.sender(&map);
duke@435 2211 }
duke@435 2212 if (f.id() == thread->must_deopt_id()) {
duke@435 2213 thread->clear_must_deopt_id();
never@2082 2214 f.deoptimize(thread);
duke@435 2215 } else {
duke@435 2216 fatal("missed deoptimization!");
duke@435 2217 }
duke@435 2218 }
duke@435 2219 }
duke@435 2220
duke@435 2221 // Slow path when the native==>VM/Java barriers detect a safepoint is in
duke@435 2222 // progress or when _suspend_flags is non-zero.
duke@435 2223 // Current thread needs to self-suspend if there is a suspend request and/or
duke@435 2224 // block if a safepoint is in progress.
duke@435 2225 // Also check for pending async exception (not including unsafe access error).
duke@435 2226 // Note only the native==>VM/Java barriers can call this function and when
duke@435 2227 // thread state is _thread_in_native_trans.
duke@435 2228 void JavaThread::check_special_condition_for_native_trans(JavaThread *thread) {
duke@435 2229 check_safepoint_and_suspend_for_native_trans(thread);
duke@435 2230
duke@435 2231 if (thread->has_async_exception()) {
duke@435 2232 // We are in _thread_in_native_trans state, don't handle unsafe
duke@435 2233 // access error since that may block.
duke@435 2234 thread->check_and_handle_async_exceptions(false);
duke@435 2235 }
duke@435 2236 }
duke@435 2237
duke@435 2238 // We need to guarantee the Threads_lock here, since resumes are not
duke@435 2239 // allowed during safepoint synchronization
duke@435 2240 // Can only resume from an external suspension
duke@435 2241 void JavaThread::java_resume() {
duke@435 2242 assert_locked_or_safepoint(Threads_lock);
duke@435 2243
duke@435 2244 // Sanity check: thread is gone, has started exiting or the thread
duke@435 2245 // was not externally suspended.
duke@435 2246 if (!Threads::includes(this) || is_exiting() || !is_external_suspend()) {
duke@435 2247 return;
duke@435 2248 }
duke@435 2249
duke@435 2250 MutexLockerEx ml(SR_lock(), Mutex::_no_safepoint_check_flag);
duke@435 2251
duke@435 2252 clear_external_suspend();
duke@435 2253
duke@435 2254 if (is_ext_suspended()) {
duke@435 2255 clear_ext_suspended();
duke@435 2256 SR_lock()->notify_all();
duke@435 2257 }
duke@435 2258 }
duke@435 2259
duke@435 2260 void JavaThread::create_stack_guard_pages() {
duke@435 2261 if (! os::uses_stack_guard_pages() || _stack_guard_state != stack_guard_unused) return;
duke@435 2262 address low_addr = stack_base() - stack_size();
duke@435 2263 size_t len = (StackYellowPages + StackRedPages) * os::vm_page_size();
duke@435 2264
duke@435 2265 int allocate = os::allocate_stack_guard_pages();
duke@435 2266 // warning("Guarding at " PTR_FORMAT " for len " SIZE_FORMAT "\n", low_addr, len);
duke@435 2267
coleenp@1755 2268 if (allocate && !os::create_stack_guard_pages((char *) low_addr, len)) {
duke@435 2269 warning("Attempt to allocate stack guard pages failed.");
duke@435 2270 return;
duke@435 2271 }
duke@435 2272
duke@435 2273 if (os::guard_memory((char *) low_addr, len)) {
duke@435 2274 _stack_guard_state = stack_guard_enabled;
duke@435 2275 } else {
duke@435 2276 warning("Attempt to protect stack guard pages failed.");
duke@435 2277 if (os::uncommit_memory((char *) low_addr, len)) {
duke@435 2278 warning("Attempt to deallocate stack guard pages failed.");
duke@435 2279 }
duke@435 2280 }
duke@435 2281 }
duke@435 2282
duke@435 2283 void JavaThread::remove_stack_guard_pages() {
duke@435 2284 if (_stack_guard_state == stack_guard_unused) return;
duke@435 2285 address low_addr = stack_base() - stack_size();
duke@435 2286 size_t len = (StackYellowPages + StackRedPages) * os::vm_page_size();
duke@435 2287
duke@435 2288 if (os::allocate_stack_guard_pages()) {
coleenp@1755 2289 if (os::remove_stack_guard_pages((char *) low_addr, len)) {
duke@435 2290 _stack_guard_state = stack_guard_unused;
duke@435 2291 } else {
duke@435 2292 warning("Attempt to deallocate stack guard pages failed.");
duke@435 2293 }
duke@435 2294 } else {
duke@435 2295 if (_stack_guard_state == stack_guard_unused) return;
duke@435 2296 if (os::unguard_memory((char *) low_addr, len)) {
duke@435 2297 _stack_guard_state = stack_guard_unused;
duke@435 2298 } else {
duke@435 2299 warning("Attempt to unprotect stack guard pages failed.");
duke@435 2300 }
duke@435 2301 }
duke@435 2302 }
duke@435 2303
duke@435 2304 void JavaThread::enable_stack_yellow_zone() {
duke@435 2305 assert(_stack_guard_state != stack_guard_unused, "must be using guard pages.");
duke@435 2306 assert(_stack_guard_state != stack_guard_enabled, "already enabled");
duke@435 2307
duke@435 2308 // The base notation is from the stacks point of view, growing downward.
duke@435 2309 // We need to adjust it to work correctly with guard_memory()
duke@435 2310 address base = stack_yellow_zone_base() - stack_yellow_zone_size();
duke@435 2311
duke@435 2312 guarantee(base < stack_base(),"Error calculating stack yellow zone");
duke@435 2313 guarantee(base < os::current_stack_pointer(),"Error calculating stack yellow zone");
duke@435 2314
duke@435 2315 if (os::guard_memory((char *) base, stack_yellow_zone_size())) {
duke@435 2316 _stack_guard_state = stack_guard_enabled;
duke@435 2317 } else {
duke@435 2318 warning("Attempt to guard stack yellow zone failed.");
duke@435 2319 }
duke@435 2320 enable_register_stack_guard();
duke@435 2321 }
duke@435 2322
duke@435 2323 void JavaThread::disable_stack_yellow_zone() {
duke@435 2324 assert(_stack_guard_state != stack_guard_unused, "must be using guard pages.");
duke@435 2325 assert(_stack_guard_state != stack_guard_yellow_disabled, "already disabled");
duke@435 2326
duke@435 2327 // Simply return if called for a thread that does not use guard pages.
duke@435 2328 if (_stack_guard_state == stack_guard_unused) return;
duke@435 2329
duke@435 2330 // The base notation is from the stacks point of view, growing downward.
duke@435 2331 // We need to adjust it to work correctly with guard_memory()
duke@435 2332 address base = stack_yellow_zone_base() - stack_yellow_zone_size();
duke@435 2333
duke@435 2334 if (os::unguard_memory((char *)base, stack_yellow_zone_size())) {
duke@435 2335 _stack_guard_state = stack_guard_yellow_disabled;
duke@435 2336 } else {
duke@435 2337 warning("Attempt to unguard stack yellow zone failed.");
duke@435 2338 }
duke@435 2339 disable_register_stack_guard();
duke@435 2340 }
duke@435 2341
duke@435 2342 void JavaThread::enable_stack_red_zone() {
duke@435 2343 // The base notation is from the stacks point of view, growing downward.
duke@435 2344 // We need to adjust it to work correctly with guard_memory()
duke@435 2345 assert(_stack_guard_state != stack_guard_unused, "must be using guard pages.");
duke@435 2346 address base = stack_red_zone_base() - stack_red_zone_size();
duke@435 2347
duke@435 2348 guarantee(base < stack_base(),"Error calculating stack red zone");
duke@435 2349 guarantee(base < os::current_stack_pointer(),"Error calculating stack red zone");
duke@435 2350
duke@435 2351 if(!os::guard_memory((char *) base, stack_red_zone_size())) {
duke@435 2352 warning("Attempt to guard stack red zone failed.");
duke@435 2353 }
duke@435 2354 }
duke@435 2355
duke@435 2356 void JavaThread::disable_stack_red_zone() {
duke@435 2357 // The base notation is from the stacks point of view, growing downward.
duke@435 2358 // We need to adjust it to work correctly with guard_memory()
duke@435 2359 assert(_stack_guard_state != stack_guard_unused, "must be using guard pages.");
duke@435 2360 address base = stack_red_zone_base() - stack_red_zone_size();
duke@435 2361 if (!os::unguard_memory((char *)base, stack_red_zone_size())) {
duke@435 2362 warning("Attempt to unguard stack red zone failed.");
duke@435 2363 }
duke@435 2364 }
duke@435 2365
duke@435 2366 void JavaThread::frames_do(void f(frame*, const RegisterMap* map)) {
duke@435 2367 // ignore is there is no stack
duke@435 2368 if (!has_last_Java_frame()) return;
duke@435 2369 // traverse the stack frames. Starts from top frame.
duke@435 2370 for(StackFrameStream fst(this); !fst.is_done(); fst.next()) {
duke@435 2371 frame* fr = fst.current();
duke@435 2372 f(fr, fst.register_map());
duke@435 2373 }
duke@435 2374 }
duke@435 2375
duke@435 2376
duke@435 2377 #ifndef PRODUCT
duke@435 2378 // Deoptimization
duke@435 2379 // Function for testing deoptimization
duke@435 2380 void JavaThread::deoptimize() {
duke@435 2381 // BiasedLocking needs an updated RegisterMap for the revoke monitors pass
duke@435 2382 StackFrameStream fst(this, UseBiasedLocking);
duke@435 2383 bool deopt = false; // Dump stack only if a deopt actually happens.
duke@435 2384 bool only_at = strlen(DeoptimizeOnlyAt) > 0;
duke@435 2385 // Iterate over all frames in the thread and deoptimize
duke@435 2386 for(; !fst.is_done(); fst.next()) {
duke@435 2387 if(fst.current()->can_be_deoptimized()) {
duke@435 2388
duke@435 2389 if (only_at) {
duke@435 2390 // Deoptimize only at particular bcis. DeoptimizeOnlyAt
duke@435 2391 // consists of comma or carriage return separated numbers so
duke@435 2392 // search for the current bci in that string.
duke@435 2393 address pc = fst.current()->pc();
duke@435 2394 nmethod* nm = (nmethod*) fst.current()->cb();
duke@435 2395 ScopeDesc* sd = nm->scope_desc_at( pc);
duke@435 2396 char buffer[8];
duke@435 2397 jio_snprintf(buffer, sizeof(buffer), "%d", sd->bci());
duke@435 2398 size_t len = strlen(buffer);
duke@435 2399 const char * found = strstr(DeoptimizeOnlyAt, buffer);
duke@435 2400 while (found != NULL) {
duke@435 2401 if ((found[len] == ',' || found[len] == '\n' || found[len] == '\0') &&
duke@435 2402 (found == DeoptimizeOnlyAt || found[-1] == ',' || found[-1] == '\n')) {
duke@435 2403 // Check that the bci found is bracketed by terminators.
duke@435 2404 break;
duke@435 2405 }
duke@435 2406 found = strstr(found + 1, buffer);
duke@435 2407 }
duke@435 2408 if (!found) {
duke@435 2409 continue;
duke@435 2410 }
duke@435 2411 }
duke@435 2412
duke@435 2413 if (DebugDeoptimization && !deopt) {
duke@435 2414 deopt = true; // One-time only print before deopt
duke@435 2415 tty->print_cr("[BEFORE Deoptimization]");
duke@435 2416 trace_frames();
duke@435 2417 trace_stack();
duke@435 2418 }
duke@435 2419 Deoptimization::deoptimize(this, *fst.current(), fst.register_map());
duke@435 2420 }
duke@435 2421 }
duke@435 2422
duke@435 2423 if (DebugDeoptimization && deopt) {
duke@435 2424 tty->print_cr("[AFTER Deoptimization]");
duke@435 2425 trace_frames();
duke@435 2426 }
duke@435 2427 }
duke@435 2428
duke@435 2429
duke@435 2430 // Make zombies
duke@435 2431 void JavaThread::make_zombies() {
duke@435 2432 for(StackFrameStream fst(this); !fst.is_done(); fst.next()) {
duke@435 2433 if (fst.current()->can_be_deoptimized()) {
duke@435 2434 // it is a Java nmethod
duke@435 2435 nmethod* nm = CodeCache::find_nmethod(fst.current()->pc());
duke@435 2436 nm->make_not_entrant();
duke@435 2437 }
duke@435 2438 }
duke@435 2439 }
duke@435 2440 #endif // PRODUCT
duke@435 2441
duke@435 2442
duke@435 2443 void JavaThread::deoptimized_wrt_marked_nmethods() {
duke@435 2444 if (!has_last_Java_frame()) return;
duke@435 2445 // BiasedLocking needs an updated RegisterMap for the revoke monitors pass
duke@435 2446 StackFrameStream fst(this, UseBiasedLocking);
duke@435 2447 for(; !fst.is_done(); fst.next()) {
duke@435 2448 if (fst.current()->should_be_deoptimized()) {
duke@435 2449 Deoptimization::deoptimize(this, *fst.current(), fst.register_map());
duke@435 2450 }
duke@435 2451 }
duke@435 2452 }
duke@435 2453
duke@435 2454
duke@435 2455 // GC support
duke@435 2456 static void frame_gc_epilogue(frame* f, const RegisterMap* map) { f->gc_epilogue(); }
duke@435 2457
duke@435 2458 void JavaThread::gc_epilogue() {
duke@435 2459 frames_do(frame_gc_epilogue);
duke@435 2460 }
duke@435 2461
duke@435 2462
duke@435 2463 static void frame_gc_prologue(frame* f, const RegisterMap* map) { f->gc_prologue(); }
duke@435 2464
duke@435 2465 void JavaThread::gc_prologue() {
duke@435 2466 frames_do(frame_gc_prologue);
duke@435 2467 }
duke@435 2468
minqi@1554 2469 // If the caller is a NamedThread, then remember, in the current scope,
minqi@1554 2470 // the given JavaThread in its _processed_thread field.
minqi@1554 2471 class RememberProcessedThread: public StackObj {
minqi@1554 2472 NamedThread* _cur_thr;
minqi@1554 2473 public:
minqi@1554 2474 RememberProcessedThread(JavaThread* jthr) {
minqi@1554 2475 Thread* thread = Thread::current();
minqi@1554 2476 if (thread->is_Named_thread()) {
minqi@1554 2477 _cur_thr = (NamedThread *)thread;
minqi@1554 2478 _cur_thr->set_processed_thread(jthr);
minqi@1554 2479 } else {
minqi@1554 2480 _cur_thr = NULL;
minqi@1554 2481 }
minqi@1554 2482 }
minqi@1554 2483
minqi@1554 2484 ~RememberProcessedThread() {
minqi@1554 2485 if (_cur_thr) {
minqi@1554 2486 _cur_thr->set_processed_thread(NULL);
minqi@1554 2487 }
minqi@1554 2488 }
minqi@1554 2489 };
duke@435 2490
jrose@1424 2491 void JavaThread::oops_do(OopClosure* f, CodeBlobClosure* cf) {
ysr@1601 2492 // Verify that the deferred card marks have been flushed.
ysr@1601 2493 assert(deferred_card_mark().is_empty(), "Should be empty during GC");
ysr@1462 2494
duke@435 2495 // The ThreadProfiler oops_do is done from FlatProfiler::oops_do
duke@435 2496 // since there may be more than one thread using each ThreadProfiler.
duke@435 2497
duke@435 2498 // Traverse the GCHandles
jrose@1424 2499 Thread::oops_do(f, cf);
duke@435 2500
duke@435 2501 assert( (!has_last_Java_frame() && java_call_counter() == 0) ||
duke@435 2502 (has_last_Java_frame() && java_call_counter() > 0), "wrong java_sp info!");
duke@435 2503
duke@435 2504 if (has_last_Java_frame()) {
minqi@1554 2505 // Record JavaThread to GC thread
minqi@1554 2506 RememberProcessedThread rpt(this);
duke@435 2507
duke@435 2508 // Traverse the privileged stack
duke@435 2509 if (_privileged_stack_top != NULL) {
duke@435 2510 _privileged_stack_top->oops_do(f);
duke@435 2511 }
duke@435 2512
duke@435 2513 // traverse the registered growable array
duke@435 2514 if (_array_for_gc != NULL) {
duke@435 2515 for (int index = 0; index < _array_for_gc->length(); index++) {
duke@435 2516 f->do_oop(_array_for_gc->adr_at(index));
duke@435 2517 }
duke@435 2518 }
duke@435 2519
duke@435 2520 // Traverse the monitor chunks
duke@435 2521 for (MonitorChunk* chunk = monitor_chunks(); chunk != NULL; chunk = chunk->next()) {
duke@435 2522 chunk->oops_do(f);
duke@435 2523 }
duke@435 2524
duke@435 2525 // Traverse the execution stack
duke@435 2526 for(StackFrameStream fst(this); !fst.is_done(); fst.next()) {
jrose@1424 2527 fst.current()->oops_do(f, cf, fst.register_map());
duke@435 2528 }
duke@435 2529 }
duke@435 2530
duke@435 2531 // callee_target is never live across a gc point so NULL it here should
duke@435 2532 // it still contain a methdOop.
duke@435 2533
duke@435 2534 set_callee_target(NULL);
duke@435 2535
duke@435 2536 assert(vframe_array_head() == NULL, "deopt in progress at a safepoint!");
duke@435 2537 // If we have deferred set_locals there might be oops waiting to be
duke@435 2538 // written
duke@435 2539 GrowableArray<jvmtiDeferredLocalVariableSet*>* list = deferred_locals();
duke@435 2540 if (list != NULL) {
duke@435 2541 for (int i = 0; i < list->length(); i++) {
duke@435 2542 list->at(i)->oops_do(f);
duke@435 2543 }
duke@435 2544 }
duke@435 2545
duke@435 2546 // Traverse instance variables at the end since the GC may be moving things
duke@435 2547 // around using this function
duke@435 2548 f->do_oop((oop*) &_threadObj);
duke@435 2549 f->do_oop((oop*) &_vm_result);
duke@435 2550 f->do_oop((oop*) &_vm_result_2);
duke@435 2551 f->do_oop((oop*) &_exception_oop);
duke@435 2552 f->do_oop((oop*) &_pending_async_exception);
duke@435 2553
duke@435 2554 if (jvmti_thread_state() != NULL) {
duke@435 2555 jvmti_thread_state()->oops_do(f);
duke@435 2556 }
duke@435 2557 }
duke@435 2558
jrose@1424 2559 void JavaThread::nmethods_do(CodeBlobClosure* cf) {
jrose@1424 2560 Thread::nmethods_do(cf); // (super method is a no-op)
duke@435 2561
duke@435 2562 assert( (!has_last_Java_frame() && java_call_counter() == 0) ||
duke@435 2563 (has_last_Java_frame() && java_call_counter() > 0), "wrong java_sp info!");
duke@435 2564
duke@435 2565 if (has_last_Java_frame()) {
duke@435 2566 // Traverse the execution stack
duke@435 2567 for(StackFrameStream fst(this); !fst.is_done(); fst.next()) {
jrose@1424 2568 fst.current()->nmethods_do(cf);
duke@435 2569 }
duke@435 2570 }
duke@435 2571 }
duke@435 2572
duke@435 2573 // Printing
duke@435 2574 const char* _get_thread_state_name(JavaThreadState _thread_state) {
duke@435 2575 switch (_thread_state) {
duke@435 2576 case _thread_uninitialized: return "_thread_uninitialized";
duke@435 2577 case _thread_new: return "_thread_new";
duke@435 2578 case _thread_new_trans: return "_thread_new_trans";
duke@435 2579 case _thread_in_native: return "_thread_in_native";
duke@435 2580 case _thread_in_native_trans: return "_thread_in_native_trans";
duke@435 2581 case _thread_in_vm: return "_thread_in_vm";
duke@435 2582 case _thread_in_vm_trans: return "_thread_in_vm_trans";
duke@435 2583 case _thread_in_Java: return "_thread_in_Java";
duke@435 2584 case _thread_in_Java_trans: return "_thread_in_Java_trans";
duke@435 2585 case _thread_blocked: return "_thread_blocked";
duke@435 2586 case _thread_blocked_trans: return "_thread_blocked_trans";
duke@435 2587 default: return "unknown thread state";
duke@435 2588 }
duke@435 2589 }
duke@435 2590
duke@435 2591 #ifndef PRODUCT
duke@435 2592 void JavaThread::print_thread_state_on(outputStream *st) const {
duke@435 2593 st->print_cr(" JavaThread state: %s", _get_thread_state_name(_thread_state));
duke@435 2594 };
duke@435 2595 void JavaThread::print_thread_state() const {
duke@435 2596 print_thread_state_on(tty);
duke@435 2597 };
duke@435 2598 #endif // PRODUCT
duke@435 2599
duke@435 2600 // Called by Threads::print() for VM_PrintThreads operation
duke@435 2601 void JavaThread::print_on(outputStream *st) const {
duke@435 2602 st->print("\"%s\" ", get_thread_name());
duke@435 2603 oop thread_oop = threadObj();
duke@435 2604 if (thread_oop != NULL && java_lang_Thread::is_daemon(thread_oop)) st->print("daemon ");
duke@435 2605 Thread::print_on(st);
duke@435 2606 // print guess for valid stack memory region (assume 4K pages); helps lock debugging
xlu@1137 2607 st->print_cr("[" INTPTR_FORMAT "]", (intptr_t)last_Java_sp() & ~right_n_bits(12));
duke@435 2608 if (thread_oop != NULL && JDK_Version::is_gte_jdk15x_version()) {
duke@435 2609 st->print_cr(" java.lang.Thread.State: %s", java_lang_Thread::thread_status_name(thread_oop));
duke@435 2610 }
duke@435 2611 #ifndef PRODUCT
duke@435 2612 print_thread_state_on(st);
duke@435 2613 _safepoint_state->print_on(st);
duke@435 2614 #endif // PRODUCT
duke@435 2615 }
duke@435 2616
duke@435 2617 // Called by fatal error handler. The difference between this and
duke@435 2618 // JavaThread::print() is that we can't grab lock or allocate memory.
duke@435 2619 void JavaThread::print_on_error(outputStream* st, char *buf, int buflen) const {
duke@435 2620 st->print("JavaThread \"%s\"", get_thread_name_string(buf, buflen));
duke@435 2621 oop thread_obj = threadObj();
duke@435 2622 if (thread_obj != NULL) {
duke@435 2623 if (java_lang_Thread::is_daemon(thread_obj)) st->print(" daemon");
duke@435 2624 }
duke@435 2625 st->print(" [");
duke@435 2626 st->print("%s", _get_thread_state_name(_thread_state));
duke@435 2627 if (osthread()) {
duke@435 2628 st->print(", id=%d", osthread()->thread_id());
duke@435 2629 }
duke@435 2630 st->print(", stack(" PTR_FORMAT "," PTR_FORMAT ")",
duke@435 2631 _stack_base - _stack_size, _stack_base);
duke@435 2632 st->print("]");
duke@435 2633 return;
duke@435 2634 }
duke@435 2635
duke@435 2636 // Verification
duke@435 2637
duke@435 2638 static void frame_verify(frame* f, const RegisterMap *map) { f->verify(map); }
duke@435 2639
duke@435 2640 void JavaThread::verify() {
duke@435 2641 // Verify oops in the thread.
jrose@1424 2642 oops_do(&VerifyOopClosure::verify_oop, NULL);
duke@435 2643
duke@435 2644 // Verify the stack frames.
duke@435 2645 frames_do(frame_verify);
duke@435 2646 }
duke@435 2647
duke@435 2648 // CR 6300358 (sub-CR 2137150)
duke@435 2649 // Most callers of this method assume that it can't return NULL but a
duke@435 2650 // thread may not have a name whilst it is in the process of attaching to
duke@435 2651 // the VM - see CR 6412693, and there are places where a JavaThread can be
duke@435 2652 // seen prior to having it's threadObj set (eg JNI attaching threads and
duke@435 2653 // if vm exit occurs during initialization). These cases can all be accounted
duke@435 2654 // for such that this method never returns NULL.
duke@435 2655 const char* JavaThread::get_thread_name() const {
duke@435 2656 #ifdef ASSERT
duke@435 2657 // early safepoints can hit while current thread does not yet have TLS
duke@435 2658 if (!SafepointSynchronize::is_at_safepoint()) {
duke@435 2659 Thread *cur = Thread::current();
duke@435 2660 if (!(cur->is_Java_thread() && cur == this)) {
duke@435 2661 // Current JavaThreads are allowed to get their own name without
duke@435 2662 // the Threads_lock.
duke@435 2663 assert_locked_or_safepoint(Threads_lock);
duke@435 2664 }
duke@435 2665 }
duke@435 2666 #endif // ASSERT
duke@435 2667 return get_thread_name_string();
duke@435 2668 }
duke@435 2669
duke@435 2670 // Returns a non-NULL representation of this thread's name, or a suitable
duke@435 2671 // descriptive string if there is no set name
duke@435 2672 const char* JavaThread::get_thread_name_string(char* buf, int buflen) const {
duke@435 2673 const char* name_str;
duke@435 2674 oop thread_obj = threadObj();
duke@435 2675 if (thread_obj != NULL) {
duke@435 2676 typeArrayOop name = java_lang_Thread::name(thread_obj);
duke@435 2677 if (name != NULL) {
duke@435 2678 if (buf == NULL) {
duke@435 2679 name_str = UNICODE::as_utf8((jchar*) name->base(T_CHAR), name->length());
duke@435 2680 }
duke@435 2681 else {
duke@435 2682 name_str = UNICODE::as_utf8((jchar*) name->base(T_CHAR), name->length(), buf, buflen);
duke@435 2683 }
duke@435 2684 }
duke@435 2685 else if (is_attaching()) { // workaround for 6412693 - see 6404306
duke@435 2686 name_str = "<no-name - thread is attaching>";
duke@435 2687 }
duke@435 2688 else {
duke@435 2689 name_str = Thread::name();
duke@435 2690 }
duke@435 2691 }
duke@435 2692 else {
duke@435 2693 name_str = Thread::name();
duke@435 2694 }
duke@435 2695 assert(name_str != NULL, "unexpected NULL thread name");
duke@435 2696 return name_str;
duke@435 2697 }
duke@435 2698
duke@435 2699
duke@435 2700 const char* JavaThread::get_threadgroup_name() const {
duke@435 2701 debug_only(if (JavaThread::current() != this) assert_locked_or_safepoint(Threads_lock);)
duke@435 2702 oop thread_obj = threadObj();
duke@435 2703 if (thread_obj != NULL) {
duke@435 2704 oop thread_group = java_lang_Thread::threadGroup(thread_obj);
duke@435 2705 if (thread_group != NULL) {
duke@435 2706 typeArrayOop name = java_lang_ThreadGroup::name(thread_group);
duke@435 2707 // ThreadGroup.name can be null
duke@435 2708 if (name != NULL) {
duke@435 2709 const char* str = UNICODE::as_utf8((jchar*) name->base(T_CHAR), name->length());
duke@435 2710 return str;
duke@435 2711 }
duke@435 2712 }
duke@435 2713 }
duke@435 2714 return NULL;
duke@435 2715 }
duke@435 2716
duke@435 2717 const char* JavaThread::get_parent_name() const {
duke@435 2718 debug_only(if (JavaThread::current() != this) assert_locked_or_safepoint(Threads_lock);)
duke@435 2719 oop thread_obj = threadObj();
duke@435 2720 if (thread_obj != NULL) {
duke@435 2721 oop thread_group = java_lang_Thread::threadGroup(thread_obj);
duke@435 2722 if (thread_group != NULL) {
duke@435 2723 oop parent = java_lang_ThreadGroup::parent(thread_group);
duke@435 2724 if (parent != NULL) {
duke@435 2725 typeArrayOop name = java_lang_ThreadGroup::name(parent);
duke@435 2726 // ThreadGroup.name can be null
duke@435 2727 if (name != NULL) {
duke@435 2728 const char* str = UNICODE::as_utf8((jchar*) name->base(T_CHAR), name->length());
duke@435 2729 return str;
duke@435 2730 }
duke@435 2731 }
duke@435 2732 }
duke@435 2733 }
duke@435 2734 return NULL;
duke@435 2735 }
duke@435 2736
duke@435 2737 ThreadPriority JavaThread::java_priority() const {
duke@435 2738 oop thr_oop = threadObj();
duke@435 2739 if (thr_oop == NULL) return NormPriority; // Bootstrapping
duke@435 2740 ThreadPriority priority = java_lang_Thread::priority(thr_oop);
duke@435 2741 assert(MinPriority <= priority && priority <= MaxPriority, "sanity check");
duke@435 2742 return priority;
duke@435 2743 }
duke@435 2744
duke@435 2745 void JavaThread::prepare(jobject jni_thread, ThreadPriority prio) {
duke@435 2746
duke@435 2747 assert(Threads_lock->owner() == Thread::current(), "must have threads lock");
duke@435 2748 // Link Java Thread object <-> C++ Thread
duke@435 2749
duke@435 2750 // Get the C++ thread object (an oop) from the JNI handle (a jthread)
duke@435 2751 // and put it into a new Handle. The Handle "thread_oop" can then
duke@435 2752 // be used to pass the C++ thread object to other methods.
duke@435 2753
duke@435 2754 // Set the Java level thread object (jthread) field of the
duke@435 2755 // new thread (a JavaThread *) to C++ thread object using the
duke@435 2756 // "thread_oop" handle.
duke@435 2757
duke@435 2758 // Set the thread field (a JavaThread *) of the
duke@435 2759 // oop representing the java_lang_Thread to the new thread (a JavaThread *).
duke@435 2760
duke@435 2761 Handle thread_oop(Thread::current(),
duke@435 2762 JNIHandles::resolve_non_null(jni_thread));
duke@435 2763 assert(instanceKlass::cast(thread_oop->klass())->is_linked(),
duke@435 2764 "must be initialized");
duke@435 2765 set_threadObj(thread_oop());
duke@435 2766 java_lang_Thread::set_thread(thread_oop(), this);
duke@435 2767
duke@435 2768 if (prio == NoPriority) {
duke@435 2769 prio = java_lang_Thread::priority(thread_oop());
duke@435 2770 assert(prio != NoPriority, "A valid priority should be present");
duke@435 2771 }
duke@435 2772
duke@435 2773 // Push the Java priority down to the native thread; needs Threads_lock
duke@435 2774 Thread::set_priority(this, prio);
duke@435 2775
duke@435 2776 // Add the new thread to the Threads list and set it in motion.
duke@435 2777 // We must have threads lock in order to call Threads::add.
duke@435 2778 // It is crucial that we do not block before the thread is
duke@435 2779 // added to the Threads list for if a GC happens, then the java_thread oop
duke@435 2780 // will not be visited by GC.
duke@435 2781 Threads::add(this);
duke@435 2782 }
duke@435 2783
duke@435 2784 oop JavaThread::current_park_blocker() {
duke@435 2785 // Support for JSR-166 locks
duke@435 2786 oop thread_oop = threadObj();
kamg@677 2787 if (thread_oop != NULL &&
kamg@677 2788 JDK_Version::current().supports_thread_park_blocker()) {
duke@435 2789 return java_lang_Thread::park_blocker(thread_oop);
duke@435 2790 }
duke@435 2791 return NULL;
duke@435 2792 }
duke@435 2793
duke@435 2794
duke@435 2795 void JavaThread::print_stack_on(outputStream* st) {
duke@435 2796 if (!has_last_Java_frame()) return;
duke@435 2797 ResourceMark rm;
duke@435 2798 HandleMark hm;
duke@435 2799
duke@435 2800 RegisterMap reg_map(this);
duke@435 2801 vframe* start_vf = last_java_vframe(&reg_map);
duke@435 2802 int count = 0;
duke@435 2803 for (vframe* f = start_vf; f; f = f->sender() ) {
duke@435 2804 if (f->is_java_frame()) {
duke@435 2805 javaVFrame* jvf = javaVFrame::cast(f);
duke@435 2806 java_lang_Throwable::print_stack_element(st, jvf->method(), jvf->bci());
duke@435 2807
duke@435 2808 // Print out lock information
duke@435 2809 if (JavaMonitorsInStackTrace) {
duke@435 2810 jvf->print_lock_info_on(st, count);
duke@435 2811 }
duke@435 2812 } else {
duke@435 2813 // Ignore non-Java frames
duke@435 2814 }
duke@435 2815
duke@435 2816 // Bail-out case for too deep stacks
duke@435 2817 count++;
duke@435 2818 if (MaxJavaStackTraceDepth == count) return;
duke@435 2819 }
duke@435 2820 }
duke@435 2821
duke@435 2822
duke@435 2823 // JVMTI PopFrame support
duke@435 2824 void JavaThread::popframe_preserve_args(ByteSize size_in_bytes, void* start) {
duke@435 2825 assert(_popframe_preserved_args == NULL, "should not wipe out old PopFrame preserved arguments");
duke@435 2826 if (in_bytes(size_in_bytes) != 0) {
duke@435 2827 _popframe_preserved_args = NEW_C_HEAP_ARRAY(char, in_bytes(size_in_bytes));
duke@435 2828 _popframe_preserved_args_size = in_bytes(size_in_bytes);
kvn@1958 2829 Copy::conjoint_jbytes(start, _popframe_preserved_args, _popframe_preserved_args_size);
duke@435 2830 }
duke@435 2831 }
duke@435 2832
duke@435 2833 void* JavaThread::popframe_preserved_args() {
duke@435 2834 return _popframe_preserved_args;
duke@435 2835 }
duke@435 2836
duke@435 2837 ByteSize JavaThread::popframe_preserved_args_size() {
duke@435 2838 return in_ByteSize(_popframe_preserved_args_size);
duke@435 2839 }
duke@435 2840
duke@435 2841 WordSize JavaThread::popframe_preserved_args_size_in_words() {
duke@435 2842 int sz = in_bytes(popframe_preserved_args_size());
duke@435 2843 assert(sz % wordSize == 0, "argument size must be multiple of wordSize");
duke@435 2844 return in_WordSize(sz / wordSize);
duke@435 2845 }
duke@435 2846
duke@435 2847 void JavaThread::popframe_free_preserved_args() {
duke@435 2848 assert(_popframe_preserved_args != NULL, "should not free PopFrame preserved arguments twice");
duke@435 2849 FREE_C_HEAP_ARRAY(char, (char*) _popframe_preserved_args);
duke@435 2850 _popframe_preserved_args = NULL;
duke@435 2851 _popframe_preserved_args_size = 0;
duke@435 2852 }
duke@435 2853
duke@435 2854 #ifndef PRODUCT
duke@435 2855
duke@435 2856 void JavaThread::trace_frames() {
duke@435 2857 tty->print_cr("[Describe stack]");
duke@435 2858 int frame_no = 1;
duke@435 2859 for(StackFrameStream fst(this); !fst.is_done(); fst.next()) {
duke@435 2860 tty->print(" %d. ", frame_no++);
duke@435 2861 fst.current()->print_value_on(tty,this);
duke@435 2862 tty->cr();
duke@435 2863 }
duke@435 2864 }
duke@435 2865
never@3108 2866 class PrintAndVerifyOopClosure: public OopClosure {
never@3108 2867 protected:
never@3108 2868 template <class T> inline void do_oop_work(T* p) {
never@3108 2869 oop obj = oopDesc::load_decode_heap_oop(p);
never@3108 2870 if (obj == NULL) return;
never@3108 2871 tty->print(INTPTR_FORMAT ": ", p);
never@3108 2872 if (obj->is_oop_or_null()) {
never@3108 2873 if (obj->is_objArray()) {
never@3108 2874 tty->print_cr("valid objArray: " INTPTR_FORMAT, (oopDesc*) obj);
never@3108 2875 } else {
never@3108 2876 obj->print();
never@3108 2877 }
never@3108 2878 } else {
never@3108 2879 tty->print_cr("invalid oop: " INTPTR_FORMAT, (oopDesc*) obj);
never@3108 2880 }
never@3108 2881 tty->cr();
never@3108 2882 }
never@3108 2883 public:
never@3108 2884 virtual void do_oop(oop* p) { do_oop_work(p); }
never@3108 2885 virtual void do_oop(narrowOop* p) { do_oop_work(p); }
never@3108 2886 };
never@3108 2887
never@3108 2888
never@3108 2889 static void oops_print(frame* f, const RegisterMap *map) {
never@3108 2890 PrintAndVerifyOopClosure print;
never@3108 2891 f->print_value();
never@3108 2892 f->oops_do(&print, NULL, (RegisterMap*)map);
never@3108 2893 }
never@3108 2894
never@3108 2895 // Print our all the locations that contain oops and whether they are
never@3108 2896 // valid or not. This useful when trying to find the oldest frame
never@3108 2897 // where an oop has gone bad since the frame walk is from youngest to
never@3108 2898 // oldest.
never@3108 2899 void JavaThread::trace_oops() {
never@3108 2900 tty->print_cr("[Trace oops]");
never@3108 2901 frames_do(oops_print);
never@3108 2902 }
never@3108 2903
duke@435 2904
never@2920 2905 #ifdef ASSERT
never@2868 2906 // Print or validate the layout of stack frames
never@2868 2907 void JavaThread::print_frame_layout(int depth, bool validate_only) {
never@2868 2908 ResourceMark rm;
never@2868 2909 PRESERVE_EXCEPTION_MARK;
never@2868 2910 FrameValues values;
never@2868 2911 int frame_no = 0;
never@2868 2912 for(StackFrameStream fst(this, false); !fst.is_done(); fst.next()) {
never@2868 2913 fst.current()->describe(values, ++frame_no);
never@2868 2914 if (depth == frame_no) break;
never@2868 2915 }
never@2868 2916 if (validate_only) {
never@2868 2917 values.validate();
never@2868 2918 } else {
never@2868 2919 tty->print_cr("[Describe stack layout]");
never@2868 2920 values.print();
never@2868 2921 }
never@2868 2922 }
never@2920 2923 #endif
never@2868 2924
duke@435 2925 void JavaThread::trace_stack_from(vframe* start_vf) {
duke@435 2926 ResourceMark rm;
duke@435 2927 int vframe_no = 1;
duke@435 2928 for (vframe* f = start_vf; f; f = f->sender() ) {
duke@435 2929 if (f->is_java_frame()) {
duke@435 2930 javaVFrame::cast(f)->print_activation(vframe_no++);
duke@435 2931 } else {
duke@435 2932 f->print();
duke@435 2933 }
duke@435 2934 if (vframe_no > StackPrintLimit) {
duke@435 2935 tty->print_cr("...<more frames>...");
duke@435 2936 return;
duke@435 2937 }
duke@435 2938 }
duke@435 2939 }
duke@435 2940
duke@435 2941
duke@435 2942 void JavaThread::trace_stack() {
duke@435 2943 if (!has_last_Java_frame()) return;
duke@435 2944 ResourceMark rm;
duke@435 2945 HandleMark hm;
duke@435 2946 RegisterMap reg_map(this);
duke@435 2947 trace_stack_from(last_java_vframe(&reg_map));
duke@435 2948 }
duke@435 2949
duke@435 2950
duke@435 2951 #endif // PRODUCT
duke@435 2952
duke@435 2953
duke@435 2954 javaVFrame* JavaThread::last_java_vframe(RegisterMap *reg_map) {
duke@435 2955 assert(reg_map != NULL, "a map must be given");
duke@435 2956 frame f = last_frame();
duke@435 2957 for (vframe* vf = vframe::new_vframe(&f, reg_map, this); vf; vf = vf->sender() ) {
duke@435 2958 if (vf->is_java_frame()) return javaVFrame::cast(vf);
duke@435 2959 }
duke@435 2960 return NULL;
duke@435 2961 }
duke@435 2962
duke@435 2963
duke@435 2964 klassOop JavaThread::security_get_caller_class(int depth) {
duke@435 2965 vframeStream vfst(this);
duke@435 2966 vfst.security_get_caller_frame(depth);
duke@435 2967 if (!vfst.at_end()) {
duke@435 2968 return vfst.method()->method_holder();
duke@435 2969 }
duke@435 2970 return NULL;
duke@435 2971 }
duke@435 2972
duke@435 2973 static void compiler_thread_entry(JavaThread* thread, TRAPS) {
duke@435 2974 assert(thread->is_Compiler_thread(), "must be compiler thread");
duke@435 2975 CompileBroker::compiler_thread_loop();
duke@435 2976 }
duke@435 2977
duke@435 2978 // Create a CompilerThread
duke@435 2979 CompilerThread::CompilerThread(CompileQueue* queue, CompilerCounters* counters)
duke@435 2980 : JavaThread(&compiler_thread_entry) {
duke@435 2981 _env = NULL;
duke@435 2982 _log = NULL;
duke@435 2983 _task = NULL;
duke@435 2984 _queue = queue;
duke@435 2985 _counters = counters;
iveresov@1939 2986 _buffer_blob = NULL;
never@2916 2987 _scanned_nmethod = NULL;
duke@435 2988
duke@435 2989 #ifndef PRODUCT
duke@435 2990 _ideal_graph_printer = NULL;
duke@435 2991 #endif
duke@435 2992 }
duke@435 2993
never@2916 2994 void CompilerThread::oops_do(OopClosure* f, CodeBlobClosure* cf) {
never@2916 2995 JavaThread::oops_do(f, cf);
never@2916 2996 if (_scanned_nmethod != NULL && cf != NULL) {
never@2916 2997 // Safepoints can occur when the sweeper is scanning an nmethod so
never@2916 2998 // process it here to make sure it isn't unloaded in the middle of
never@2916 2999 // a scan.
never@2916 3000 cf->do_code_blob(_scanned_nmethod);
never@2916 3001 }
never@2916 3002 }
duke@435 3003
duke@435 3004 // ======= Threads ========
duke@435 3005
duke@435 3006 // The Threads class links together all active threads, and provides
duke@435 3007 // operations over all threads. It is protected by its own Mutex
duke@435 3008 // lock, which is also used in other contexts to protect thread
duke@435 3009 // operations from having the thread being operated on from exiting
duke@435 3010 // and going away unexpectedly (e.g., safepoint synchronization)
duke@435 3011
duke@435 3012 JavaThread* Threads::_thread_list = NULL;
duke@435 3013 int Threads::_number_of_threads = 0;
duke@435 3014 int Threads::_number_of_non_daemon_threads = 0;
duke@435 3015 int Threads::_return_code = 0;
duke@435 3016 size_t JavaThread::_stack_size_at_create = 0;
duke@435 3017
duke@435 3018 // All JavaThreads
duke@435 3019 #define ALL_JAVA_THREADS(X) for (JavaThread* X = _thread_list; X; X = X->next())
duke@435 3020
duke@435 3021 void os_stream();
duke@435 3022
duke@435 3023 // All JavaThreads + all non-JavaThreads (i.e., every thread in the system)
duke@435 3024 void Threads::threads_do(ThreadClosure* tc) {
duke@435 3025 assert_locked_or_safepoint(Threads_lock);
duke@435 3026 // ALL_JAVA_THREADS iterates through all JavaThreads
duke@435 3027 ALL_JAVA_THREADS(p) {
duke@435 3028 tc->do_thread(p);
duke@435 3029 }
duke@435 3030 // Someday we could have a table or list of all non-JavaThreads.
duke@435 3031 // For now, just manually iterate through them.
duke@435 3032 tc->do_thread(VMThread::vm_thread());
duke@435 3033 Universe::heap()->gc_threads_do(tc);
xlu@758 3034 WatcherThread *wt = WatcherThread::watcher_thread();
xlu@758 3035 // Strictly speaking, the following NULL check isn't sufficient to make sure
xlu@758 3036 // the data for WatcherThread is still valid upon being examined. However,
xlu@758 3037 // considering that WatchThread terminates when the VM is on the way to
xlu@758 3038 // exit at safepoint, the chance of the above is extremely small. The right
xlu@758 3039 // way to prevent termination of WatcherThread would be to acquire
xlu@758 3040 // Terminator_lock, but we can't do that without violating the lock rank
xlu@758 3041 // checking in some cases.
xlu@758 3042 if (wt != NULL)
xlu@758 3043 tc->do_thread(wt);
xlu@758 3044
duke@435 3045 // If CompilerThreads ever become non-JavaThreads, add them here
duke@435 3046 }
duke@435 3047
duke@435 3048 jint Threads::create_vm(JavaVMInitArgs* args, bool* canTryAgain) {
duke@435 3049
kamg@677 3050 extern void JDK_Version_init();
kamg@677 3051
duke@435 3052 // Check version
duke@435 3053 if (!is_supported_jni_version(args->version)) return JNI_EVERSION;
duke@435 3054
duke@435 3055 // Initialize the output stream module
duke@435 3056 ostream_init();
duke@435 3057
duke@435 3058 // Process java launcher properties.
duke@435 3059 Arguments::process_sun_java_launcher_properties(args);
duke@435 3060
duke@435 3061 // Initialize the os module before using TLS
duke@435 3062 os::init();
duke@435 3063
duke@435 3064 // Initialize system properties.
duke@435 3065 Arguments::init_system_properties();
duke@435 3066
kamg@677 3067 // So that JDK version can be used as a discrimintor when parsing arguments
kamg@677 3068 JDK_Version_init();
kamg@677 3069
zgu@2219 3070 // Update/Initialize System properties after JDK version number is known
zgu@2219 3071 Arguments::init_version_specific_system_properties();
zgu@2219 3072
duke@435 3073 // Parse arguments
duke@435 3074 jint parse_result = Arguments::parse(args);
duke@435 3075 if (parse_result != JNI_OK) return parse_result;
duke@435 3076
duke@435 3077 if (PauseAtStartup) {
duke@435 3078 os::pause();
duke@435 3079 }
duke@435 3080
duke@435 3081 HS_DTRACE_PROBE(hotspot, vm__init__begin);
duke@435 3082
duke@435 3083 // Record VM creation timing statistics
duke@435 3084 TraceVmCreationTime create_vm_timer;
duke@435 3085 create_vm_timer.start();
duke@435 3086
duke@435 3087 // Timing (must come after argument parsing)
duke@435 3088 TraceTime timer("Create VM", TraceStartupTime);
duke@435 3089
duke@435 3090 // Initialize the os module after parsing the args
duke@435 3091 jint os_init_2_result = os::init_2();
duke@435 3092 if (os_init_2_result != JNI_OK) return os_init_2_result;
duke@435 3093
duke@435 3094 // Initialize output stream logging
duke@435 3095 ostream_init_log();
duke@435 3096
duke@435 3097 // Convert -Xrun to -agentlib: if there is no JVM_OnLoad
duke@435 3098 // Must be before create_vm_init_agents()
duke@435 3099 if (Arguments::init_libraries_at_startup()) {
duke@435 3100 convert_vm_init_libraries_to_agents();
duke@435 3101 }
duke@435 3102
duke@435 3103 // Launch -agentlib/-agentpath and converted -Xrun agents
duke@435 3104 if (Arguments::init_agents_at_startup()) {
duke@435 3105 create_vm_init_agents();
duke@435 3106 }
duke@435 3107
duke@435 3108 // Initialize Threads state
duke@435 3109 _thread_list = NULL;
duke@435 3110 _number_of_threads = 0;
duke@435 3111 _number_of_non_daemon_threads = 0;
duke@435 3112
duke@435 3113 // Initialize TLS
duke@435 3114 ThreadLocalStorage::init();
duke@435 3115
duke@435 3116 // Initialize global data structures and create system classes in heap
duke@435 3117 vm_init_globals();
duke@435 3118
duke@435 3119 // Attach the main thread to this os thread
duke@435 3120 JavaThread* main_thread = new JavaThread();
duke@435 3121 main_thread->set_thread_state(_thread_in_vm);
duke@435 3122 // must do this before set_active_handles and initialize_thread_local_storage
duke@435 3123 // Note: on solaris initialize_thread_local_storage() will (indirectly)
duke@435 3124 // change the stack size recorded here to one based on the java thread
duke@435 3125 // stacksize. This adjusted size is what is used to figure the placement
duke@435 3126 // of the guard pages.
duke@435 3127 main_thread->record_stack_base_and_size();
duke@435 3128 main_thread->initialize_thread_local_storage();
duke@435 3129
duke@435 3130 main_thread->set_active_handles(JNIHandleBlock::allocate_block());
duke@435 3131
duke@435 3132 if (!main_thread->set_as_starting_thread()) {
duke@435 3133 vm_shutdown_during_initialization(
duke@435 3134 "Failed necessary internal allocation. Out of swap space");
duke@435 3135 delete main_thread;
duke@435 3136 *canTryAgain = false; // don't let caller call JNI_CreateJavaVM again
duke@435 3137 return JNI_ENOMEM;
duke@435 3138 }
duke@435 3139
duke@435 3140 // Enable guard page *after* os::create_main_thread(), otherwise it would
duke@435 3141 // crash Linux VM, see notes in os_linux.cpp.
duke@435 3142 main_thread->create_stack_guard_pages();
duke@435 3143
acorn@2233 3144 // Initialize Java-Level synchronization subsystem
acorn@2233 3145 ObjectMonitor::Initialize() ;
duke@435 3146
duke@435 3147 // Initialize global modules
duke@435 3148 jint status = init_globals();
duke@435 3149 if (status != JNI_OK) {
duke@435 3150 delete main_thread;
duke@435 3151 *canTryAgain = false; // don't let caller call JNI_CreateJavaVM again
duke@435 3152 return status;
duke@435 3153 }
duke@435 3154
bobv@2036 3155 // Should be done after the heap is fully created
bobv@2036 3156 main_thread->cache_global_variables();
bobv@2036 3157
duke@435 3158 HandleMark hm;
duke@435 3159
duke@435 3160 { MutexLocker mu(Threads_lock);
duke@435 3161 Threads::add(main_thread);
duke@435 3162 }
duke@435 3163
duke@435 3164 // Any JVMTI raw monitors entered in onload will transition into
duke@435 3165 // real raw monitor. VM is setup enough here for raw monitor enter.
duke@435 3166 JvmtiExport::transition_pending_onload_raw_monitors();
duke@435 3167
duke@435 3168 if (VerifyBeforeGC &&
duke@435 3169 Universe::heap()->total_collections() >= VerifyGCStartAt) {
duke@435 3170 Universe::heap()->prepare_for_verify();
duke@435 3171 Universe::verify(); // make sure we're starting with a clean slate
duke@435 3172 }
duke@435 3173
duke@435 3174 // Create the VMThread
duke@435 3175 { TraceTime timer("Start VMThread", TraceStartupTime);
duke@435 3176 VMThread::create();
duke@435 3177 Thread* vmthread = VMThread::vm_thread();
duke@435 3178
duke@435 3179 if (!os::create_thread(vmthread, os::vm_thread))
duke@435 3180 vm_exit_during_initialization("Cannot create VM thread. Out of system resources.");
duke@435 3181
duke@435 3182 // Wait for the VM thread to become ready, and VMThread::run to initialize
duke@435 3183 // Monitors can have spurious returns, must always check another state flag
duke@435 3184 {
duke@435 3185 MutexLocker ml(Notify_lock);
duke@435 3186 os::start_thread(vmthread);
duke@435 3187 while (vmthread->active_handles() == NULL) {
duke@435 3188 Notify_lock->wait();
duke@435 3189 }
duke@435 3190 }
duke@435 3191 }
duke@435 3192
duke@435 3193 assert (Universe::is_fully_initialized(), "not initialized");
duke@435 3194 EXCEPTION_MARK;
duke@435 3195
duke@435 3196 // At this point, the Universe is initialized, but we have not executed
duke@435 3197 // any byte code. Now is a good time (the only time) to dump out the
duke@435 3198 // internal state of the JVM for sharing.
duke@435 3199
duke@435 3200 if (DumpSharedSpaces) {
duke@435 3201 Universe::heap()->preload_and_dump(CHECK_0);
duke@435 3202 ShouldNotReachHere();
duke@435 3203 }
duke@435 3204
duke@435 3205 // Always call even when there are not JVMTI environments yet, since environments
duke@435 3206 // may be attached late and JVMTI must track phases of VM execution
duke@435 3207 JvmtiExport::enter_start_phase();
duke@435 3208
duke@435 3209 // Notify JVMTI agents that VM has started (JNI is up) - nop if no agents.
duke@435 3210 JvmtiExport::post_vm_start();
duke@435 3211
duke@435 3212 {
duke@435 3213 TraceTime timer("Initialize java.lang classes", TraceStartupTime);
duke@435 3214
duke@435 3215 if (EagerXrunInit && Arguments::init_libraries_at_startup()) {
duke@435 3216 create_vm_init_libraries();
duke@435 3217 }
duke@435 3218
duke@435 3219 if (InitializeJavaLangString) {
coleenp@2497 3220 initialize_class(vmSymbols::java_lang_String(), CHECK_0);
duke@435 3221 } else {
duke@435 3222 warning("java.lang.String not initialized");
duke@435 3223 }
duke@435 3224
phh@453 3225 if (AggressiveOpts) {
kvn@627 3226 {
kvn@627 3227 // Forcibly initialize java/util/HashMap and mutate the private
kvn@627 3228 // static final "frontCacheEnabled" field before we start creating instances
phh@453 3229 #ifdef ASSERT
coleenp@2497 3230 klassOop tmp_k = SystemDictionary::find(vmSymbols::java_util_HashMap(), Handle(), Handle(), CHECK_0);
kvn@627 3231 assert(tmp_k == NULL, "java/util/HashMap should not be loaded yet");
phh@453 3232 #endif
coleenp@2497 3233 klassOop k_o = SystemDictionary::resolve_or_null(vmSymbols::java_util_HashMap(), Handle(), Handle(), CHECK_0);
kvn@627 3234 KlassHandle k = KlassHandle(THREAD, k_o);
kvn@627 3235 guarantee(k.not_null(), "Must find java/util/HashMap");
kvn@627 3236 instanceKlassHandle ik = instanceKlassHandle(THREAD, k());
kvn@627 3237 ik->initialize(CHECK_0);
kvn@627 3238 fieldDescriptor fd;
kvn@627 3239 // Possible we might not find this field; if so, don't break
kvn@627 3240 if (ik->find_local_field(vmSymbols::frontCacheEnabled_name(), vmSymbols::bool_signature(), &fd)) {
never@2658 3241 k()->java_mirror()->bool_field_put(fd.offset(), true);
kvn@627 3242 }
kvn@627 3243 }
kvn@627 3244
kvn@627 3245 if (UseStringCache) {
phh@1104 3246 // Forcibly initialize java/lang/StringValue and mutate the private
kvn@627 3247 // static final "stringCacheEnabled" field before we start creating instances
coleenp@2497 3248 klassOop k_o = SystemDictionary::resolve_or_null(vmSymbols::java_lang_StringValue(), Handle(), Handle(), CHECK_0);
phh@1104 3249 // Possible that StringValue isn't present: if so, silently don't break
phh@1104 3250 if (k_o != NULL) {
phh@1104 3251 KlassHandle k = KlassHandle(THREAD, k_o);
phh@1104 3252 instanceKlassHandle ik = instanceKlassHandle(THREAD, k());
phh@1104 3253 ik->initialize(CHECK_0);
phh@1104 3254 fieldDescriptor fd;
phh@1104 3255 // Possible we might not find this field: if so, silently don't break
phh@1104 3256 if (ik->find_local_field(vmSymbols::stringCacheEnabled_name(), vmSymbols::bool_signature(), &fd)) {
never@2658 3257 k()->java_mirror()->bool_field_put(fd.offset(), true);
phh@1104 3258 }
kvn@627 3259 }
phh@453 3260 }
phh@453 3261 }
phh@453 3262
duke@435 3263 // Initialize java_lang.System (needed before creating the thread)
duke@435 3264 if (InitializeJavaLangSystem) {
coleenp@2497 3265 initialize_class(vmSymbols::java_lang_System(), CHECK_0);
coleenp@2497 3266 initialize_class(vmSymbols::java_lang_ThreadGroup(), CHECK_0);
duke@435 3267 Handle thread_group = create_initial_thread_group(CHECK_0);
duke@435 3268 Universe::set_main_thread_group(thread_group());
coleenp@2497 3269 initialize_class(vmSymbols::java_lang_Thread(), CHECK_0);
duke@435 3270 oop thread_object = create_initial_thread(thread_group, main_thread, CHECK_0);
duke@435 3271 main_thread->set_threadObj(thread_object);
duke@435 3272 // Set thread status to running since main thread has
duke@435 3273 // been started and running.
duke@435 3274 java_lang_Thread::set_thread_status(thread_object,
duke@435 3275 java_lang_Thread::RUNNABLE);
duke@435 3276
duke@435 3277 // The VM preresolve methods to these classes. Make sure that get initialized
coleenp@2497 3278 initialize_class(vmSymbols::java_lang_reflect_Method(), CHECK_0);
coleenp@2497 3279 initialize_class(vmSymbols::java_lang_ref_Finalizer(), CHECK_0);
duke@435 3280 // The VM creates & returns objects of this class. Make sure it's initialized.
coleenp@2497 3281 initialize_class(vmSymbols::java_lang_Class(), CHECK_0);
duke@435 3282 call_initializeSystemClass(CHECK_0);
duke@435 3283 } else {
duke@435 3284 warning("java.lang.System not initialized");
duke@435 3285 }
duke@435 3286
duke@435 3287 // an instance of OutOfMemory exception has been allocated earlier
duke@435 3288 if (InitializeJavaLangExceptionsErrors) {
coleenp@2497 3289 initialize_class(vmSymbols::java_lang_OutOfMemoryError(), CHECK_0);
coleenp@2497 3290 initialize_class(vmSymbols::java_lang_NullPointerException(), CHECK_0);
coleenp@2497 3291 initialize_class(vmSymbols::java_lang_ClassCastException(), CHECK_0);
coleenp@2497 3292 initialize_class(vmSymbols::java_lang_ArrayStoreException(), CHECK_0);
coleenp@2497 3293 initialize_class(vmSymbols::java_lang_ArithmeticException(), CHECK_0);
coleenp@2497 3294 initialize_class(vmSymbols::java_lang_StackOverflowError(), CHECK_0);
coleenp@2497 3295 initialize_class(vmSymbols::java_lang_IllegalMonitorStateException(), CHECK_0);
duke@435 3296 } else {
duke@435 3297 warning("java.lang.OutOfMemoryError has not been initialized");
duke@435 3298 warning("java.lang.NullPointerException has not been initialized");
duke@435 3299 warning("java.lang.ClassCastException has not been initialized");
duke@435 3300 warning("java.lang.ArrayStoreException has not been initialized");
duke@435 3301 warning("java.lang.ArithmeticException has not been initialized");
duke@435 3302 warning("java.lang.StackOverflowError has not been initialized");
duke@435 3303 }
twisti@2698 3304 }
duke@435 3305
duke@435 3306 // See : bugid 4211085.
duke@435 3307 // Background : the static initializer of java.lang.Compiler tries to read
duke@435 3308 // property"java.compiler" and read & write property "java.vm.info".
duke@435 3309 // When a security manager is installed through the command line
duke@435 3310 // option "-Djava.security.manager", the above properties are not
duke@435 3311 // readable and the static initializer for java.lang.Compiler fails
duke@435 3312 // resulting in a NoClassDefFoundError. This can happen in any
duke@435 3313 // user code which calls methods in java.lang.Compiler.
duke@435 3314 // Hack : the hack is to pre-load and initialize this class, so that only
duke@435 3315 // system domains are on the stack when the properties are read.
duke@435 3316 // Currently even the AWT code has calls to methods in java.lang.Compiler.
duke@435 3317 // On the classic VM, java.lang.Compiler is loaded very early to load the JIT.
duke@435 3318 // Future Fix : the best fix is to grant everyone permissions to read "java.compiler" and
duke@435 3319 // read and write"java.vm.info" in the default policy file. See bugid 4211383
duke@435 3320 // Once that is done, we should remove this hack.
coleenp@2497 3321 initialize_class(vmSymbols::java_lang_Compiler(), CHECK_0);
duke@435 3322
duke@435 3323 // More hackery - the static initializer of java.lang.Compiler adds the string "nojit" to
duke@435 3324 // the java.vm.info property if no jit gets loaded through java.lang.Compiler (the hotspot
duke@435 3325 // compiler does not get loaded through java.lang.Compiler). "java -version" with the
duke@435 3326 // hotspot vm says "nojit" all the time which is confusing. So, we reset it here.
duke@435 3327 // This should also be taken out as soon as 4211383 gets fixed.
duke@435 3328 reset_vm_info_property(CHECK_0);
duke@435 3329
duke@435 3330 quicken_jni_functions();
duke@435 3331
duke@435 3332 // Set flag that basic initialization has completed. Used by exceptions and various
duke@435 3333 // debug stuff, that does not work until all basic classes have been initialized.
duke@435 3334 set_init_completed();
duke@435 3335
duke@435 3336 HS_DTRACE_PROBE(hotspot, vm__init__end);
duke@435 3337
duke@435 3338 // record VM initialization completion time
duke@435 3339 Management::record_vm_init_completed();
duke@435 3340
duke@435 3341 // Compute system loader. Note that this has to occur after set_init_completed, since
duke@435 3342 // valid exceptions may be thrown in the process.
duke@435 3343 // Note that we do not use CHECK_0 here since we are inside an EXCEPTION_MARK and
duke@435 3344 // set_init_completed has just been called, causing exceptions not to be shortcut
duke@435 3345 // anymore. We call vm_exit_during_initialization directly instead.
duke@435 3346 SystemDictionary::compute_java_system_loader(THREAD);
duke@435 3347 if (HAS_PENDING_EXCEPTION) {
duke@435 3348 vm_exit_during_initialization(Handle(THREAD, PENDING_EXCEPTION));
duke@435 3349 }
duke@435 3350
duke@435 3351 #ifndef SERIALGC
duke@435 3352 // Support for ConcurrentMarkSweep. This should be cleaned up
ysr@777 3353 // and better encapsulated. The ugly nested if test would go away
ysr@777 3354 // once things are properly refactored. XXX YSR
ysr@777 3355 if (UseConcMarkSweepGC || UseG1GC) {
ysr@777 3356 if (UseConcMarkSweepGC) {
ysr@777 3357 ConcurrentMarkSweepThread::makeSurrogateLockerThread(THREAD);
ysr@777 3358 } else {
ysr@777 3359 ConcurrentMarkThread::makeSurrogateLockerThread(THREAD);
ysr@777 3360 }
duke@435 3361 if (HAS_PENDING_EXCEPTION) {
duke@435 3362 vm_exit_during_initialization(Handle(THREAD, PENDING_EXCEPTION));
duke@435 3363 }
duke@435 3364 }
duke@435 3365 #endif // SERIALGC
duke@435 3366
duke@435 3367 // Always call even when there are not JVMTI environments yet, since environments
duke@435 3368 // may be attached late and JVMTI must track phases of VM execution
duke@435 3369 JvmtiExport::enter_live_phase();
duke@435 3370
duke@435 3371 // Signal Dispatcher needs to be started before VMInit event is posted
duke@435 3372 os::signal_init();
duke@435 3373
duke@435 3374 // Start Attach Listener if +StartAttachListener or it can't be started lazily
duke@435 3375 if (!DisableAttachMechanism) {
duke@435 3376 if (StartAttachListener || AttachListener::init_at_startup()) {
duke@435 3377 AttachListener::init();
duke@435 3378 }
duke@435 3379 }
duke@435 3380
duke@435 3381 // Launch -Xrun agents
duke@435 3382 // Must be done in the JVMTI live phase so that for backward compatibility the JDWP
duke@435 3383 // back-end can launch with -Xdebug -Xrunjdwp.
duke@435 3384 if (!EagerXrunInit && Arguments::init_libraries_at_startup()) {
duke@435 3385 create_vm_init_libraries();
duke@435 3386 }
duke@435 3387
duke@435 3388 // Notify JVMTI agents that VM initialization is complete - nop if no agents.
duke@435 3389 JvmtiExport::post_vm_initialized();
duke@435 3390
jcoomes@2996 3391 if (CleanChunkPoolAsync) {
jcoomes@2996 3392 Chunk::start_chunk_pool_cleaner_task();
jcoomes@2996 3393 }
duke@435 3394
duke@435 3395 // initialize compiler(s)
duke@435 3396 CompileBroker::compilation_init();
duke@435 3397
duke@435 3398 Management::initialize(THREAD);
duke@435 3399 if (HAS_PENDING_EXCEPTION) {
duke@435 3400 // management agent fails to start possibly due to
duke@435 3401 // configuration problem and is responsible for printing
duke@435 3402 // stack trace if appropriate. Simply exit VM.
duke@435 3403 vm_exit(1);
duke@435 3404 }
duke@435 3405
duke@435 3406 if (Arguments::has_profile()) FlatProfiler::engage(main_thread, true);
duke@435 3407 if (Arguments::has_alloc_profile()) AllocationProfiler::engage();
duke@435 3408 if (MemProfiling) MemProfiler::engage();
duke@435 3409 StatSampler::engage();
duke@435 3410 if (CheckJNICalls) JniPeriodicChecker::engage();
duke@435 3411
duke@435 3412 BiasedLocking::init();
duke@435 3413
kevinw@2449 3414 if (JDK_Version::current().post_vm_init_hook_enabled()) {
kevinw@2449 3415 call_postVMInitHook(THREAD);
kevinw@2449 3416 // The Java side of PostVMInitHook.run must deal with all
kevinw@2449 3417 // exceptions and provide means of diagnosis.
kevinw@2449 3418 if (HAS_PENDING_EXCEPTION) {
kevinw@2449 3419 CLEAR_PENDING_EXCEPTION;
kevinw@2449 3420 }
kevinw@2449 3421 }
duke@435 3422
duke@435 3423 // Start up the WatcherThread if there are any periodic tasks
duke@435 3424 // NOTE: All PeriodicTasks should be registered by now. If they
duke@435 3425 // aren't, late joiners might appear to start slowly (we might
duke@435 3426 // take a while to process their first tick).
duke@435 3427 if (PeriodicTask::num_tasks() > 0) {
duke@435 3428 WatcherThread::start();
duke@435 3429 }
duke@435 3430
bobv@2036 3431 // Give os specific code one last chance to start
bobv@2036 3432 os::init_3();
bobv@2036 3433
duke@435 3434 create_vm_timer.end();
duke@435 3435 return JNI_OK;
duke@435 3436 }
duke@435 3437
duke@435 3438 // type for the Agent_OnLoad and JVM_OnLoad entry points
duke@435 3439 extern "C" {
duke@435 3440 typedef jint (JNICALL *OnLoadEntry_t)(JavaVM *, char *, void *);
duke@435 3441 }
duke@435 3442 // Find a command line agent library and return its entry point for
duke@435 3443 // -agentlib: -agentpath: -Xrun
duke@435 3444 // num_symbol_entries must be passed-in since only the caller knows the number of symbols in the array.
duke@435 3445 static OnLoadEntry_t lookup_on_load(AgentLibrary* agent, const char *on_load_symbols[], size_t num_symbol_entries) {
duke@435 3446 OnLoadEntry_t on_load_entry = NULL;
duke@435 3447 void *library = agent->os_lib(); // check if we have looked it up before
duke@435 3448
duke@435 3449 if (library == NULL) {
duke@435 3450 char buffer[JVM_MAXPATHLEN];
duke@435 3451 char ebuf[1024];
duke@435 3452 const char *name = agent->name();
rasbold@2049 3453 const char *msg = "Could not find agent library ";
duke@435 3454
duke@435 3455 if (agent->is_absolute_path()) {
ikrylov@2322 3456 library = os::dll_load(name, ebuf, sizeof ebuf);
duke@435 3457 if (library == NULL) {
rasbold@2049 3458 const char *sub_msg = " in absolute path, with error: ";
rasbold@2049 3459 size_t len = strlen(msg) + strlen(name) + strlen(sub_msg) + strlen(ebuf) + 1;
rasbold@2049 3460 char *buf = NEW_C_HEAP_ARRAY(char, len);
rasbold@2049 3461 jio_snprintf(buf, len, "%s%s%s%s", msg, name, sub_msg, ebuf);
duke@435 3462 // If we can't find the agent, exit.
rasbold@2049 3463 vm_exit_during_initialization(buf, NULL);
rasbold@2049 3464 FREE_C_HEAP_ARRAY(char, buf);
duke@435 3465 }
duke@435 3466 } else {
duke@435 3467 // Try to load the agent from the standard dll directory
ikrylov@2322 3468 os::dll_build_name(buffer, sizeof(buffer), Arguments::get_dll_dir(), name);
ikrylov@2322 3469 library = os::dll_load(buffer, ebuf, sizeof ebuf);
duke@435 3470 #ifdef KERNEL
duke@435 3471 // Download instrument dll
duke@435 3472 if (library == NULL && strcmp(name, "instrument") == 0) {
duke@435 3473 char *props = Arguments::get_kernel_properties();
duke@435 3474 char *home = Arguments::get_java_home();
duke@435 3475 const char *fmt = "%s/bin/java %s -Dkernel.background.download=false"
duke@435 3476 " sun.jkernel.DownloadManager -download client_jvm";
rasbold@2049 3477 size_t length = strlen(props) + strlen(home) + strlen(fmt) + 1;
rasbold@2049 3478 char *cmd = NEW_C_HEAP_ARRAY(char, length);
duke@435 3479 jio_snprintf(cmd, length, fmt, home, props);
duke@435 3480 int status = os::fork_and_exec(cmd);
duke@435 3481 FreeHeap(props);
duke@435 3482 if (status == -1) {
duke@435 3483 warning(cmd);
duke@435 3484 vm_exit_during_initialization("fork_and_exec failed: %s",
duke@435 3485 strerror(errno));
duke@435 3486 }
rasbold@2049 3487 FREE_C_HEAP_ARRAY(char, cmd);
duke@435 3488 // when this comes back the instrument.dll should be where it belongs.
ikrylov@2322 3489 library = os::dll_load(buffer, ebuf, sizeof ebuf);
duke@435 3490 }
duke@435 3491 #endif // KERNEL
duke@435 3492 if (library == NULL) { // Try the local directory
duke@435 3493 char ns[1] = {0};
ikrylov@2322 3494 os::dll_build_name(buffer, sizeof(buffer), ns, name);
ikrylov@2322 3495 library = os::dll_load(buffer, ebuf, sizeof ebuf);
duke@435 3496 if (library == NULL) {
rasbold@2049 3497 const char *sub_msg = " on the library path, with error: ";
rasbold@2049 3498 size_t len = strlen(msg) + strlen(name) + strlen(sub_msg) + strlen(ebuf) + 1;
rasbold@2049 3499 char *buf = NEW_C_HEAP_ARRAY(char, len);
rasbold@2049 3500 jio_snprintf(buf, len, "%s%s%s%s", msg, name, sub_msg, ebuf);
duke@435 3501 // If we can't find the agent, exit.
rasbold@2049 3502 vm_exit_during_initialization(buf, NULL);
rasbold@2049 3503 FREE_C_HEAP_ARRAY(char, buf);
duke@435 3504 }
duke@435 3505 }
duke@435 3506 }
duke@435 3507 agent->set_os_lib(library);
duke@435 3508 }
duke@435 3509
duke@435 3510 // Find the OnLoad function.
duke@435 3511 for (size_t symbol_index = 0; symbol_index < num_symbol_entries; symbol_index++) {
ikrylov@2322 3512 on_load_entry = CAST_TO_FN_PTR(OnLoadEntry_t, os::dll_lookup(library, on_load_symbols[symbol_index]));
duke@435 3513 if (on_load_entry != NULL) break;
duke@435 3514 }
duke@435 3515 return on_load_entry;
duke@435 3516 }
duke@435 3517
duke@435 3518 // Find the JVM_OnLoad entry point
duke@435 3519 static OnLoadEntry_t lookup_jvm_on_load(AgentLibrary* agent) {
duke@435 3520 const char *on_load_symbols[] = JVM_ONLOAD_SYMBOLS;
duke@435 3521 return lookup_on_load(agent, on_load_symbols, sizeof(on_load_symbols) / sizeof(char*));
duke@435 3522 }
duke@435 3523
duke@435 3524 // Find the Agent_OnLoad entry point
duke@435 3525 static OnLoadEntry_t lookup_agent_on_load(AgentLibrary* agent) {
duke@435 3526 const char *on_load_symbols[] = AGENT_ONLOAD_SYMBOLS;
duke@435 3527 return lookup_on_load(agent, on_load_symbols, sizeof(on_load_symbols) / sizeof(char*));
duke@435 3528 }
duke@435 3529
duke@435 3530 // For backwards compatibility with -Xrun
duke@435 3531 // Convert libraries with no JVM_OnLoad, but which have Agent_OnLoad to be
duke@435 3532 // treated like -agentpath:
duke@435 3533 // Must be called before agent libraries are created
duke@435 3534 void Threads::convert_vm_init_libraries_to_agents() {
duke@435 3535 AgentLibrary* agent;
duke@435 3536 AgentLibrary* next;
duke@435 3537
duke@435 3538 for (agent = Arguments::libraries(); agent != NULL; agent = next) {
duke@435 3539 next = agent->next(); // cache the next agent now as this agent may get moved off this list
duke@435 3540 OnLoadEntry_t on_load_entry = lookup_jvm_on_load(agent);
duke@435 3541
duke@435 3542 // If there is an JVM_OnLoad function it will get called later,
duke@435 3543 // otherwise see if there is an Agent_OnLoad
duke@435 3544 if (on_load_entry == NULL) {
duke@435 3545 on_load_entry = lookup_agent_on_load(agent);
duke@435 3546 if (on_load_entry != NULL) {
duke@435 3547 // switch it to the agent list -- so that Agent_OnLoad will be called,
duke@435 3548 // JVM_OnLoad won't be attempted and Agent_OnUnload will
duke@435 3549 Arguments::convert_library_to_agent(agent);
duke@435 3550 } else {
duke@435 3551 vm_exit_during_initialization("Could not find JVM_OnLoad or Agent_OnLoad function in the library", agent->name());
duke@435 3552 }
duke@435 3553 }
duke@435 3554 }
duke@435 3555 }
duke@435 3556
duke@435 3557 // Create agents for -agentlib: -agentpath: and converted -Xrun
duke@435 3558 // Invokes Agent_OnLoad
duke@435 3559 // Called very early -- before JavaThreads exist
duke@435 3560 void Threads::create_vm_init_agents() {
duke@435 3561 extern struct JavaVM_ main_vm;
duke@435 3562 AgentLibrary* agent;
duke@435 3563
duke@435 3564 JvmtiExport::enter_onload_phase();
duke@435 3565 for (agent = Arguments::agents(); agent != NULL; agent = agent->next()) {
duke@435 3566 OnLoadEntry_t on_load_entry = lookup_agent_on_load(agent);
duke@435 3567
duke@435 3568 if (on_load_entry != NULL) {
duke@435 3569 // Invoke the Agent_OnLoad function
duke@435 3570 jint err = (*on_load_entry)(&main_vm, agent->options(), NULL);
duke@435 3571 if (err != JNI_OK) {
duke@435 3572 vm_exit_during_initialization("agent library failed to init", agent->name());
duke@435 3573 }
duke@435 3574 } else {
duke@435 3575 vm_exit_during_initialization("Could not find Agent_OnLoad function in the agent library", agent->name());
duke@435 3576 }
duke@435 3577 }
duke@435 3578 JvmtiExport::enter_primordial_phase();
duke@435 3579 }
duke@435 3580
duke@435 3581 extern "C" {
duke@435 3582 typedef void (JNICALL *Agent_OnUnload_t)(JavaVM *);
duke@435 3583 }
duke@435 3584
duke@435 3585 void Threads::shutdown_vm_agents() {
duke@435 3586 // Send any Agent_OnUnload notifications
duke@435 3587 const char *on_unload_symbols[] = AGENT_ONUNLOAD_SYMBOLS;
duke@435 3588 extern struct JavaVM_ main_vm;
duke@435 3589 for (AgentLibrary* agent = Arguments::agents(); agent != NULL; agent = agent->next()) {
duke@435 3590
duke@435 3591 // Find the Agent_OnUnload function.
duke@435 3592 for (uint symbol_index = 0; symbol_index < ARRAY_SIZE(on_unload_symbols); symbol_index++) {
duke@435 3593 Agent_OnUnload_t unload_entry = CAST_TO_FN_PTR(Agent_OnUnload_t,
ikrylov@2322 3594 os::dll_lookup(agent->os_lib(), on_unload_symbols[symbol_index]));
duke@435 3595
duke@435 3596 // Invoke the Agent_OnUnload function
duke@435 3597 if (unload_entry != NULL) {
duke@435 3598 JavaThread* thread = JavaThread::current();
duke@435 3599 ThreadToNativeFromVM ttn(thread);
duke@435 3600 HandleMark hm(thread);
duke@435 3601 (*unload_entry)(&main_vm);
duke@435 3602 break;
duke@435 3603 }
duke@435 3604 }
duke@435 3605 }
duke@435 3606 }
duke@435 3607
duke@435 3608 // Called for after the VM is initialized for -Xrun libraries which have not been converted to agent libraries
duke@435 3609 // Invokes JVM_OnLoad
duke@435 3610 void Threads::create_vm_init_libraries() {
duke@435 3611 extern struct JavaVM_ main_vm;
duke@435 3612 AgentLibrary* agent;
duke@435 3613
duke@435 3614 for (agent = Arguments::libraries(); agent != NULL; agent = agent->next()) {
duke@435 3615 OnLoadEntry_t on_load_entry = lookup_jvm_on_load(agent);
duke@435 3616
duke@435 3617 if (on_load_entry != NULL) {
duke@435 3618 // Invoke the JVM_OnLoad function
duke@435 3619 JavaThread* thread = JavaThread::current();
duke@435 3620 ThreadToNativeFromVM ttn(thread);
duke@435 3621 HandleMark hm(thread);
duke@435 3622 jint err = (*on_load_entry)(&main_vm, agent->options(), NULL);
duke@435 3623 if (err != JNI_OK) {
duke@435 3624 vm_exit_during_initialization("-Xrun library failed to init", agent->name());
duke@435 3625 }
duke@435 3626 } else {
duke@435 3627 vm_exit_during_initialization("Could not find JVM_OnLoad function in -Xrun library", agent->name());
duke@435 3628 }
duke@435 3629 }
duke@435 3630 }
duke@435 3631
duke@435 3632 // Last thread running calls java.lang.Shutdown.shutdown()
duke@435 3633 void JavaThread::invoke_shutdown_hooks() {
duke@435 3634 HandleMark hm(this);
duke@435 3635
duke@435 3636 // We could get here with a pending exception, if so clear it now.
duke@435 3637 if (this->has_pending_exception()) {
duke@435 3638 this->clear_pending_exception();
duke@435 3639 }
duke@435 3640
duke@435 3641 EXCEPTION_MARK;
duke@435 3642 klassOop k =
coleenp@2497 3643 SystemDictionary::resolve_or_null(vmSymbols::java_lang_Shutdown(),
duke@435 3644 THREAD);
duke@435 3645 if (k != NULL) {
duke@435 3646 // SystemDictionary::resolve_or_null will return null if there was
duke@435 3647 // an exception. If we cannot load the Shutdown class, just don't
duke@435 3648 // call Shutdown.shutdown() at all. This will mean the shutdown hooks
duke@435 3649 // and finalizers (if runFinalizersOnExit is set) won't be run.
duke@435 3650 // Note that if a shutdown hook was registered or runFinalizersOnExit
duke@435 3651 // was called, the Shutdown class would have already been loaded
duke@435 3652 // (Runtime.addShutdownHook and runFinalizersOnExit will load it).
duke@435 3653 instanceKlassHandle shutdown_klass (THREAD, k);
duke@435 3654 JavaValue result(T_VOID);
duke@435 3655 JavaCalls::call_static(&result,
duke@435 3656 shutdown_klass,
coleenp@2497 3657 vmSymbols::shutdown_method_name(),
coleenp@2497 3658 vmSymbols::void_method_signature(),
duke@435 3659 THREAD);
duke@435 3660 }
duke@435 3661 CLEAR_PENDING_EXCEPTION;
duke@435 3662 }
duke@435 3663
duke@435 3664 // Threads::destroy_vm() is normally called from jni_DestroyJavaVM() when
duke@435 3665 // the program falls off the end of main(). Another VM exit path is through
duke@435 3666 // vm_exit() when the program calls System.exit() to return a value or when
duke@435 3667 // there is a serious error in VM. The two shutdown paths are not exactly
duke@435 3668 // the same, but they share Shutdown.shutdown() at Java level and before_exit()
duke@435 3669 // and VM_Exit op at VM level.
duke@435 3670 //
duke@435 3671 // Shutdown sequence:
duke@435 3672 // + Wait until we are the last non-daemon thread to execute
duke@435 3673 // <-- every thing is still working at this moment -->
duke@435 3674 // + Call java.lang.Shutdown.shutdown(), which will invoke Java level
duke@435 3675 // shutdown hooks, run finalizers if finalization-on-exit
duke@435 3676 // + Call before_exit(), prepare for VM exit
duke@435 3677 // > run VM level shutdown hooks (they are registered through JVM_OnExit(),
duke@435 3678 // currently the only user of this mechanism is File.deleteOnExit())
duke@435 3679 // > stop flat profiler, StatSampler, watcher thread, CMS threads,
duke@435 3680 // post thread end and vm death events to JVMTI,
duke@435 3681 // stop signal thread
duke@435 3682 // + Call JavaThread::exit(), it will:
duke@435 3683 // > release JNI handle blocks, remove stack guard pages
duke@435 3684 // > remove this thread from Threads list
duke@435 3685 // <-- no more Java code from this thread after this point -->
duke@435 3686 // + Stop VM thread, it will bring the remaining VM to a safepoint and stop
duke@435 3687 // the compiler threads at safepoint
duke@435 3688 // <-- do not use anything that could get blocked by Safepoint -->
duke@435 3689 // + Disable tracing at JNI/JVM barriers
duke@435 3690 // + Set _vm_exited flag for threads that are still running native code
duke@435 3691 // + Delete this thread
duke@435 3692 // + Call exit_globals()
duke@435 3693 // > deletes tty
duke@435 3694 // > deletes PerfMemory resources
duke@435 3695 // + Return to caller
duke@435 3696
duke@435 3697 bool Threads::destroy_vm() {
duke@435 3698 JavaThread* thread = JavaThread::current();
duke@435 3699
duke@435 3700 // Wait until we are the last non-daemon thread to execute
duke@435 3701 { MutexLocker nu(Threads_lock);
duke@435 3702 while (Threads::number_of_non_daemon_threads() > 1 )
duke@435 3703 // This wait should make safepoint checks, wait without a timeout,
duke@435 3704 // and wait as a suspend-equivalent condition.
duke@435 3705 //
duke@435 3706 // Note: If the FlatProfiler is running and this thread is waiting
duke@435 3707 // for another non-daemon thread to finish, then the FlatProfiler
duke@435 3708 // is waiting for the external suspend request on this thread to
duke@435 3709 // complete. wait_for_ext_suspend_completion() will eventually
duke@435 3710 // timeout, but that takes time. Making this wait a suspend-
duke@435 3711 // equivalent condition solves that timeout problem.
duke@435 3712 //
duke@435 3713 Threads_lock->wait(!Mutex::_no_safepoint_check_flag, 0,
duke@435 3714 Mutex::_as_suspend_equivalent_flag);
duke@435 3715 }
duke@435 3716
duke@435 3717 // Hang forever on exit if we are reporting an error.
duke@435 3718 if (ShowMessageBoxOnError && is_error_reported()) {
duke@435 3719 os::infinite_sleep();
duke@435 3720 }
sla@2584 3721 os::wait_for_keypress_at_exit();
duke@435 3722
duke@435 3723 if (JDK_Version::is_jdk12x_version()) {
duke@435 3724 // We are the last thread running, so check if finalizers should be run.
duke@435 3725 // For 1.3 or later this is done in thread->invoke_shutdown_hooks()
duke@435 3726 HandleMark rm(thread);
duke@435 3727 Universe::run_finalizers_on_exit();
duke@435 3728 } else {
duke@435 3729 // run Java level shutdown hooks
duke@435 3730 thread->invoke_shutdown_hooks();
duke@435 3731 }
duke@435 3732
duke@435 3733 before_exit(thread);
duke@435 3734
duke@435 3735 thread->exit(true);
duke@435 3736
duke@435 3737 // Stop VM thread.
duke@435 3738 {
duke@435 3739 // 4945125 The vm thread comes to a safepoint during exit.
duke@435 3740 // GC vm_operations can get caught at the safepoint, and the
duke@435 3741 // heap is unparseable if they are caught. Grab the Heap_lock
duke@435 3742 // to prevent this. The GC vm_operations will not be able to
duke@435 3743 // queue until after the vm thread is dead.
ysr@2966 3744 // After this point, we'll never emerge out of the safepoint before
ysr@2966 3745 // the VM exits, so concurrent GC threads do not need to be explicitly
ysr@2966 3746 // stopped; they remain inactive until the process exits.
ysr@2966 3747 // Note: some concurrent G1 threads may be running during a safepoint,
ysr@2966 3748 // but these will not be accessing the heap, just some G1-specific side
ysr@2966 3749 // data structures that are not accessed by any other threads but them
ysr@2966 3750 // after this point in a terminal safepoint.
ysr@2966 3751
duke@435 3752 MutexLocker ml(Heap_lock);
duke@435 3753
duke@435 3754 VMThread::wait_for_vm_thread_exit();
duke@435 3755 assert(SafepointSynchronize::is_at_safepoint(), "VM thread should exit at Safepoint");
duke@435 3756 VMThread::destroy();
duke@435 3757 }
duke@435 3758
duke@435 3759 // clean up ideal graph printers
duke@435 3760 #if defined(COMPILER2) && !defined(PRODUCT)
duke@435 3761 IdealGraphPrinter::clean_up();
duke@435 3762 #endif
duke@435 3763
duke@435 3764 // Now, all Java threads are gone except daemon threads. Daemon threads
duke@435 3765 // running Java code or in VM are stopped by the Safepoint. However,
duke@435 3766 // daemon threads executing native code are still running. But they
duke@435 3767 // will be stopped at native=>Java/VM barriers. Note that we can't
duke@435 3768 // simply kill or suspend them, as it is inherently deadlock-prone.
duke@435 3769
duke@435 3770 #ifndef PRODUCT
duke@435 3771 // disable function tracing at JNI/JVM barriers
duke@435 3772 TraceJNICalls = false;
duke@435 3773 TraceJVMCalls = false;
duke@435 3774 TraceRuntimeCalls = false;
duke@435 3775 #endif
duke@435 3776
duke@435 3777 VM_Exit::set_vm_exited();
duke@435 3778
duke@435 3779 notify_vm_shutdown();
duke@435 3780
duke@435 3781 delete thread;
duke@435 3782
duke@435 3783 // exit_globals() will delete tty
duke@435 3784 exit_globals();
duke@435 3785
duke@435 3786 return true;
duke@435 3787 }
duke@435 3788
duke@435 3789
duke@435 3790 jboolean Threads::is_supported_jni_version_including_1_1(jint version) {
duke@435 3791 if (version == JNI_VERSION_1_1) return JNI_TRUE;
duke@435 3792 return is_supported_jni_version(version);
duke@435 3793 }
duke@435 3794
duke@435 3795
duke@435 3796 jboolean Threads::is_supported_jni_version(jint version) {
duke@435 3797 if (version == JNI_VERSION_1_2) return JNI_TRUE;
duke@435 3798 if (version == JNI_VERSION_1_4) return JNI_TRUE;
duke@435 3799 if (version == JNI_VERSION_1_6) return JNI_TRUE;
duke@435 3800 return JNI_FALSE;
duke@435 3801 }
duke@435 3802
duke@435 3803
duke@435 3804 void Threads::add(JavaThread* p, bool force_daemon) {
duke@435 3805 // The threads lock must be owned at this point
duke@435 3806 assert_locked_or_safepoint(Threads_lock);
tonyp@2197 3807
tonyp@2197 3808 // See the comment for this method in thread.hpp for its purpose and
tonyp@2197 3809 // why it is called here.
tonyp@2197 3810 p->initialize_queues();
duke@435 3811 p->set_next(_thread_list);
duke@435 3812 _thread_list = p;
duke@435 3813 _number_of_threads++;
duke@435 3814 oop threadObj = p->threadObj();
duke@435 3815 bool daemon = true;
duke@435 3816 // Bootstrapping problem: threadObj can be null for initial
duke@435 3817 // JavaThread (or for threads attached via JNI)
duke@435 3818 if ((!force_daemon) && (threadObj == NULL || !java_lang_Thread::is_daemon(threadObj))) {
duke@435 3819 _number_of_non_daemon_threads++;
duke@435 3820 daemon = false;
duke@435 3821 }
duke@435 3822
duke@435 3823 ThreadService::add_thread(p, daemon);
duke@435 3824
duke@435 3825 // Possible GC point.
duke@435 3826 Events::log("Thread added: " INTPTR_FORMAT, p);
duke@435 3827 }
duke@435 3828
duke@435 3829 void Threads::remove(JavaThread* p) {
duke@435 3830 // Extra scope needed for Thread_lock, so we can check
duke@435 3831 // that we do not remove thread without safepoint code notice
duke@435 3832 { MutexLocker ml(Threads_lock);
duke@435 3833
duke@435 3834 assert(includes(p), "p must be present");
duke@435 3835
duke@435 3836 JavaThread* current = _thread_list;
duke@435 3837 JavaThread* prev = NULL;
duke@435 3838
duke@435 3839 while (current != p) {
duke@435 3840 prev = current;
duke@435 3841 current = current->next();
duke@435 3842 }
duke@435 3843
duke@435 3844 if (prev) {
duke@435 3845 prev->set_next(current->next());
duke@435 3846 } else {
duke@435 3847 _thread_list = p->next();
duke@435 3848 }
duke@435 3849 _number_of_threads--;
duke@435 3850 oop threadObj = p->threadObj();
duke@435 3851 bool daemon = true;
duke@435 3852 if (threadObj == NULL || !java_lang_Thread::is_daemon(threadObj)) {
duke@435 3853 _number_of_non_daemon_threads--;
duke@435 3854 daemon = false;
duke@435 3855
duke@435 3856 // Only one thread left, do a notify on the Threads_lock so a thread waiting
duke@435 3857 // on destroy_vm will wake up.
duke@435 3858 if (number_of_non_daemon_threads() == 1)
duke@435 3859 Threads_lock->notify_all();
duke@435 3860 }
duke@435 3861 ThreadService::remove_thread(p, daemon);
duke@435 3862
duke@435 3863 // Make sure that safepoint code disregard this thread. This is needed since
duke@435 3864 // the thread might mess around with locks after this point. This can cause it
duke@435 3865 // to do callbacks into the safepoint code. However, the safepoint code is not aware
duke@435 3866 // of this thread since it is removed from the queue.
duke@435 3867 p->set_terminated_value();
duke@435 3868 } // unlock Threads_lock
duke@435 3869
duke@435 3870 // Since Events::log uses a lock, we grab it outside the Threads_lock
duke@435 3871 Events::log("Thread exited: " INTPTR_FORMAT, p);
duke@435 3872 }
duke@435 3873
duke@435 3874 // Threads_lock must be held when this is called (or must be called during a safepoint)
duke@435 3875 bool Threads::includes(JavaThread* p) {
duke@435 3876 assert(Threads_lock->is_locked(), "sanity check");
duke@435 3877 ALL_JAVA_THREADS(q) {
duke@435 3878 if (q == p ) {
duke@435 3879 return true;
duke@435 3880 }
duke@435 3881 }
duke@435 3882 return false;
duke@435 3883 }
duke@435 3884
duke@435 3885 // Operations on the Threads list for GC. These are not explicitly locked,
duke@435 3886 // but the garbage collector must provide a safe context for them to run.
duke@435 3887 // In particular, these things should never be called when the Threads_lock
duke@435 3888 // is held by some other thread. (Note: the Safepoint abstraction also
duke@435 3889 // uses the Threads_lock to gurantee this property. It also makes sure that
duke@435 3890 // all threads gets blocked when exiting or starting).
duke@435 3891
jrose@1424 3892 void Threads::oops_do(OopClosure* f, CodeBlobClosure* cf) {
duke@435 3893 ALL_JAVA_THREADS(p) {
jrose@1424 3894 p->oops_do(f, cf);
duke@435 3895 }
jrose@1424 3896 VMThread::vm_thread()->oops_do(f, cf);
duke@435 3897 }
duke@435 3898
jrose@1424 3899 void Threads::possibly_parallel_oops_do(OopClosure* f, CodeBlobClosure* cf) {
duke@435 3900 // Introduce a mechanism allowing parallel threads to claim threads as
duke@435 3901 // root groups. Overhead should be small enough to use all the time,
duke@435 3902 // even in sequential code.
duke@435 3903 SharedHeap* sh = SharedHeap::heap();
duke@435 3904 bool is_par = (sh->n_par_threads() > 0);
duke@435 3905 int cp = SharedHeap::heap()->strong_roots_parity();
duke@435 3906 ALL_JAVA_THREADS(p) {
duke@435 3907 if (p->claim_oops_do(is_par, cp)) {
jrose@1424 3908 p->oops_do(f, cf);
duke@435 3909 }
duke@435 3910 }
duke@435 3911 VMThread* vmt = VMThread::vm_thread();
duke@435 3912 if (vmt->claim_oops_do(is_par, cp))
jrose@1424 3913 vmt->oops_do(f, cf);
duke@435 3914 }
duke@435 3915
duke@435 3916 #ifndef SERIALGC
duke@435 3917 // Used by ParallelScavenge
duke@435 3918 void Threads::create_thread_roots_tasks(GCTaskQueue* q) {
duke@435 3919 ALL_JAVA_THREADS(p) {
duke@435 3920 q->enqueue(new ThreadRootsTask(p));
duke@435 3921 }
duke@435 3922 q->enqueue(new ThreadRootsTask(VMThread::vm_thread()));
duke@435 3923 }
duke@435 3924
duke@435 3925 // Used by Parallel Old
duke@435 3926 void Threads::create_thread_roots_marking_tasks(GCTaskQueue* q) {
duke@435 3927 ALL_JAVA_THREADS(p) {
duke@435 3928 q->enqueue(new ThreadRootsMarkingTask(p));
duke@435 3929 }
duke@435 3930 q->enqueue(new ThreadRootsMarkingTask(VMThread::vm_thread()));
duke@435 3931 }
duke@435 3932 #endif // SERIALGC
duke@435 3933
jrose@1424 3934 void Threads::nmethods_do(CodeBlobClosure* cf) {
duke@435 3935 ALL_JAVA_THREADS(p) {
jrose@1424 3936 p->nmethods_do(cf);
duke@435 3937 }
jrose@1424 3938 VMThread::vm_thread()->nmethods_do(cf);
duke@435 3939 }
duke@435 3940
duke@435 3941 void Threads::gc_epilogue() {
duke@435 3942 ALL_JAVA_THREADS(p) {
duke@435 3943 p->gc_epilogue();
duke@435 3944 }
duke@435 3945 }
duke@435 3946
duke@435 3947 void Threads::gc_prologue() {
duke@435 3948 ALL_JAVA_THREADS(p) {
duke@435 3949 p->gc_prologue();
duke@435 3950 }
duke@435 3951 }
duke@435 3952
duke@435 3953 void Threads::deoptimized_wrt_marked_nmethods() {
duke@435 3954 ALL_JAVA_THREADS(p) {
duke@435 3955 p->deoptimized_wrt_marked_nmethods();
duke@435 3956 }
duke@435 3957 }
duke@435 3958
duke@435 3959
duke@435 3960 // Get count Java threads that are waiting to enter the specified monitor.
duke@435 3961 GrowableArray<JavaThread*>* Threads::get_pending_threads(int count,
duke@435 3962 address monitor, bool doLock) {
duke@435 3963 assert(doLock || SafepointSynchronize::is_at_safepoint(),
duke@435 3964 "must grab Threads_lock or be at safepoint");
duke@435 3965 GrowableArray<JavaThread*>* result = new GrowableArray<JavaThread*>(count);
duke@435 3966
duke@435 3967 int i = 0;
duke@435 3968 {
duke@435 3969 MutexLockerEx ml(doLock ? Threads_lock : NULL);
duke@435 3970 ALL_JAVA_THREADS(p) {
duke@435 3971 if (p->is_Compiler_thread()) continue;
duke@435 3972
duke@435 3973 address pending = (address)p->current_pending_monitor();
duke@435 3974 if (pending == monitor) { // found a match
duke@435 3975 if (i < count) result->append(p); // save the first count matches
duke@435 3976 i++;
duke@435 3977 }
duke@435 3978 }
duke@435 3979 }
duke@435 3980 return result;
duke@435 3981 }
duke@435 3982
duke@435 3983
duke@435 3984 JavaThread *Threads::owning_thread_from_monitor_owner(address owner, bool doLock) {
duke@435 3985 assert(doLock ||
duke@435 3986 Threads_lock->owned_by_self() ||
duke@435 3987 SafepointSynchronize::is_at_safepoint(),
duke@435 3988 "must grab Threads_lock or be at safepoint");
duke@435 3989
duke@435 3990 // NULL owner means not locked so we can skip the search
duke@435 3991 if (owner == NULL) return NULL;
duke@435 3992
duke@435 3993 {
duke@435 3994 MutexLockerEx ml(doLock ? Threads_lock : NULL);
duke@435 3995 ALL_JAVA_THREADS(p) {
duke@435 3996 // first, see if owner is the address of a Java thread
duke@435 3997 if (owner == (address)p) return p;
duke@435 3998 }
duke@435 3999 }
duke@435 4000 assert(UseHeavyMonitors == false, "Did not find owning Java thread with UseHeavyMonitors enabled");
duke@435 4001 if (UseHeavyMonitors) return NULL;
duke@435 4002
duke@435 4003 //
duke@435 4004 // If we didn't find a matching Java thread and we didn't force use of
duke@435 4005 // heavyweight monitors, then the owner is the stack address of the
duke@435 4006 // Lock Word in the owning Java thread's stack.
duke@435 4007 //
duke@435 4008 JavaThread* the_owner = NULL;
duke@435 4009 {
duke@435 4010 MutexLockerEx ml(doLock ? Threads_lock : NULL);
duke@435 4011 ALL_JAVA_THREADS(q) {
xlu@1137 4012 if (q->is_lock_owned(owner)) {
duke@435 4013 the_owner = q;
xlu@1137 4014 break;
duke@435 4015 }
duke@435 4016 }
duke@435 4017 }
duke@435 4018 assert(the_owner != NULL, "Did not find owning Java thread for lock word address");
duke@435 4019 return the_owner;
duke@435 4020 }
duke@435 4021
duke@435 4022 // Threads::print_on() is called at safepoint by VM_PrintThreads operation.
duke@435 4023 void Threads::print_on(outputStream* st, bool print_stacks, bool internal_format, bool print_concurrent_locks) {
duke@435 4024 char buf[32];
duke@435 4025 st->print_cr(os::local_time_string(buf, sizeof(buf)));
duke@435 4026
duke@435 4027 st->print_cr("Full thread dump %s (%s %s):",
duke@435 4028 Abstract_VM_Version::vm_name(),
duke@435 4029 Abstract_VM_Version::vm_release(),
duke@435 4030 Abstract_VM_Version::vm_info_string()
duke@435 4031 );
duke@435 4032 st->cr();
duke@435 4033
duke@435 4034 #ifndef SERIALGC
duke@435 4035 // Dump concurrent locks
duke@435 4036 ConcurrentLocksDump concurrent_locks;
duke@435 4037 if (print_concurrent_locks) {
duke@435 4038 concurrent_locks.dump_at_safepoint();
duke@435 4039 }
duke@435 4040 #endif // SERIALGC
duke@435 4041
duke@435 4042 ALL_JAVA_THREADS(p) {
duke@435 4043 ResourceMark rm;
duke@435 4044 p->print_on(st);
duke@435 4045 if (print_stacks) {
duke@435 4046 if (internal_format) {
duke@435 4047 p->trace_stack();
duke@435 4048 } else {
duke@435 4049 p->print_stack_on(st);
duke@435 4050 }
duke@435 4051 }
duke@435 4052 st->cr();
duke@435 4053 #ifndef SERIALGC
duke@435 4054 if (print_concurrent_locks) {
duke@435 4055 concurrent_locks.print_locks_on(p, st);
duke@435 4056 }
duke@435 4057 #endif // SERIALGC
duke@435 4058 }
duke@435 4059
duke@435 4060 VMThread::vm_thread()->print_on(st);
duke@435 4061 st->cr();
duke@435 4062 Universe::heap()->print_gc_threads_on(st);
duke@435 4063 WatcherThread* wt = WatcherThread::watcher_thread();
duke@435 4064 if (wt != NULL) wt->print_on(st);
duke@435 4065 st->cr();
duke@435 4066 CompileBroker::print_compiler_threads_on(st);
duke@435 4067 st->flush();
duke@435 4068 }
duke@435 4069
duke@435 4070 // Threads::print_on_error() is called by fatal error handler. It's possible
duke@435 4071 // that VM is not at safepoint and/or current thread is inside signal handler.
duke@435 4072 // Don't print stack trace, as the stack may not be walkable. Don't allocate
duke@435 4073 // memory (even in resource area), it might deadlock the error handler.
duke@435 4074 void Threads::print_on_error(outputStream* st, Thread* current, char* buf, int buflen) {
duke@435 4075 bool found_current = false;
duke@435 4076 st->print_cr("Java Threads: ( => current thread )");
duke@435 4077 ALL_JAVA_THREADS(thread) {
duke@435 4078 bool is_current = (current == thread);
duke@435 4079 found_current = found_current || is_current;
duke@435 4080
duke@435 4081 st->print("%s", is_current ? "=>" : " ");
duke@435 4082
duke@435 4083 st->print(PTR_FORMAT, thread);
duke@435 4084 st->print(" ");
duke@435 4085 thread->print_on_error(st, buf, buflen);
duke@435 4086 st->cr();
duke@435 4087 }
duke@435 4088 st->cr();
duke@435 4089
duke@435 4090 st->print_cr("Other Threads:");
duke@435 4091 if (VMThread::vm_thread()) {
duke@435 4092 bool is_current = (current == VMThread::vm_thread());
duke@435 4093 found_current = found_current || is_current;
duke@435 4094 st->print("%s", current == VMThread::vm_thread() ? "=>" : " ");
duke@435 4095
duke@435 4096 st->print(PTR_FORMAT, VMThread::vm_thread());
duke@435 4097 st->print(" ");
duke@435 4098 VMThread::vm_thread()->print_on_error(st, buf, buflen);
duke@435 4099 st->cr();
duke@435 4100 }
duke@435 4101 WatcherThread* wt = WatcherThread::watcher_thread();
duke@435 4102 if (wt != NULL) {
duke@435 4103 bool is_current = (current == wt);
duke@435 4104 found_current = found_current || is_current;
duke@435 4105 st->print("%s", is_current ? "=>" : " ");
duke@435 4106
duke@435 4107 st->print(PTR_FORMAT, wt);
duke@435 4108 st->print(" ");
duke@435 4109 wt->print_on_error(st, buf, buflen);
duke@435 4110 st->cr();
duke@435 4111 }
duke@435 4112 if (!found_current) {
duke@435 4113 st->cr();
duke@435 4114 st->print("=>" PTR_FORMAT " (exited) ", current);
duke@435 4115 current->print_on_error(st, buf, buflen);
duke@435 4116 st->cr();
duke@435 4117 }
duke@435 4118 }
duke@435 4119
acorn@2233 4120 // Internal SpinLock and Mutex
acorn@2233 4121 // Based on ParkEvent
acorn@2233 4122
acorn@2233 4123 // Ad-hoc mutual exclusion primitives: SpinLock and Mux
duke@435 4124 //
acorn@2233 4125 // We employ SpinLocks _only for low-contention, fixed-length
acorn@2233 4126 // short-duration critical sections where we're concerned
acorn@2233 4127 // about native mutex_t or HotSpot Mutex:: latency.
acorn@2233 4128 // The mux construct provides a spin-then-block mutual exclusion
acorn@2233 4129 // mechanism.
duke@435 4130 //
acorn@2233 4131 // Testing has shown that contention on the ListLock guarding gFreeList
acorn@2233 4132 // is common. If we implement ListLock as a simple SpinLock it's common
acorn@2233 4133 // for the JVM to devolve to yielding with little progress. This is true
acorn@2233 4134 // despite the fact that the critical sections protected by ListLock are
acorn@2233 4135 // extremely short.
duke@435 4136 //
acorn@2233 4137 // TODO-FIXME: ListLock should be of type SpinLock.
acorn@2233 4138 // We should make this a 1st-class type, integrated into the lock
acorn@2233 4139 // hierarchy as leaf-locks. Critically, the SpinLock structure
acorn@2233 4140 // should have sufficient padding to avoid false-sharing and excessive
acorn@2233 4141 // cache-coherency traffic.
acorn@2233 4142
acorn@2233 4143
acorn@2233 4144 typedef volatile int SpinLockT ;
acorn@2233 4145
acorn@2233 4146 void Thread::SpinAcquire (volatile int * adr, const char * LockName) {
acorn@2233 4147 if (Atomic::cmpxchg (1, adr, 0) == 0) {
acorn@2233 4148 return ; // normal fast-path return
acorn@2233 4149 }
acorn@2233 4150
acorn@2233 4151 // Slow-path : We've encountered contention -- Spin/Yield/Block strategy.
acorn@2233 4152 TEVENT (SpinAcquire - ctx) ;
acorn@2233 4153 int ctr = 0 ;
acorn@2233 4154 int Yields = 0 ;
duke@435 4155 for (;;) {
acorn@2233 4156 while (*adr != 0) {
acorn@2233 4157 ++ctr ;
acorn@2233 4158 if ((ctr & 0xFFF) == 0 || !os::is_MP()) {
acorn@2233 4159 if (Yields > 5) {
acorn@2233 4160 // Consider using a simple NakedSleep() instead.
acorn@2233 4161 // Then SpinAcquire could be called by non-JVM threads
acorn@2233 4162 Thread::current()->_ParkEvent->park(1) ;
acorn@2233 4163 } else {
acorn@2233 4164 os::NakedYield() ;
acorn@2233 4165 ++Yields ;
acorn@2233 4166 }
acorn@2233 4167 } else {
acorn@2233 4168 SpinPause() ;
duke@435 4169 }
acorn@2233 4170 }
acorn@2233 4171 if (Atomic::cmpxchg (1, adr, 0) == 0) return ;
duke@435 4172 }
duke@435 4173 }
duke@435 4174
acorn@2233 4175 void Thread::SpinRelease (volatile int * adr) {
acorn@2233 4176 assert (*adr != 0, "invariant") ;
acorn@2233 4177 OrderAccess::fence() ; // guarantee at least release consistency.
acorn@2233 4178 // Roach-motel semantics.
acorn@2233 4179 // It's safe if subsequent LDs and STs float "up" into the critical section,
acorn@2233 4180 // but prior LDs and STs within the critical section can't be allowed
acorn@2233 4181 // to reorder or float past the ST that releases the lock.
acorn@2233 4182 *adr = 0 ;
duke@435 4183 }
duke@435 4184
acorn@2233 4185 // muxAcquire and muxRelease:
acorn@2233 4186 //
acorn@2233 4187 // * muxAcquire and muxRelease support a single-word lock-word construct.
acorn@2233 4188 // The LSB of the word is set IFF the lock is held.
acorn@2233 4189 // The remainder of the word points to the head of a singly-linked list
acorn@2233 4190 // of threads blocked on the lock.
acorn@2233 4191 //
acorn@2233 4192 // * The current implementation of muxAcquire-muxRelease uses its own
acorn@2233 4193 // dedicated Thread._MuxEvent instance. If we're interested in
acorn@2233 4194 // minimizing the peak number of extant ParkEvent instances then
acorn@2233 4195 // we could eliminate _MuxEvent and "borrow" _ParkEvent as long
acorn@2233 4196 // as certain invariants were satisfied. Specifically, care would need
acorn@2233 4197 // to be taken with regards to consuming unpark() "permits".
acorn@2233 4198 // A safe rule of thumb is that a thread would never call muxAcquire()
acorn@2233 4199 // if it's enqueued (cxq, EntryList, WaitList, etc) and will subsequently
acorn@2233 4200 // park(). Otherwise the _ParkEvent park() operation in muxAcquire() could
acorn@2233 4201 // consume an unpark() permit intended for monitorenter, for instance.
acorn@2233 4202 // One way around this would be to widen the restricted-range semaphore
acorn@2233 4203 // implemented in park(). Another alternative would be to provide
acorn@2233 4204 // multiple instances of the PlatformEvent() for each thread. One
acorn@2233 4205 // instance would be dedicated to muxAcquire-muxRelease, for instance.
acorn@2233 4206 //
acorn@2233 4207 // * Usage:
acorn@2233 4208 // -- Only as leaf locks
acorn@2233 4209 // -- for short-term locking only as muxAcquire does not perform
acorn@2233 4210 // thread state transitions.
acorn@2233 4211 //
acorn@2233 4212 // Alternatives:
acorn@2233 4213 // * We could implement muxAcquire and muxRelease with MCS or CLH locks
acorn@2233 4214 // but with parking or spin-then-park instead of pure spinning.
acorn@2233 4215 // * Use Taura-Oyama-Yonenzawa locks.
acorn@2233 4216 // * It's possible to construct a 1-0 lock if we encode the lockword as
acorn@2233 4217 // (List,LockByte). Acquire will CAS the full lockword while Release
acorn@2233 4218 // will STB 0 into the LockByte. The 1-0 scheme admits stranding, so
acorn@2233 4219 // acquiring threads use timers (ParkTimed) to detect and recover from
acorn@2233 4220 // the stranding window. Thread/Node structures must be aligned on 256-byte
acorn@2233 4221 // boundaries by using placement-new.
acorn@2233 4222 // * Augment MCS with advisory back-link fields maintained with CAS().
acorn@2233 4223 // Pictorially: LockWord -> T1 <-> T2 <-> T3 <-> ... <-> Tn <-> Owner.
acorn@2233 4224 // The validity of the backlinks must be ratified before we trust the value.
acorn@2233 4225 // If the backlinks are invalid the exiting thread must back-track through the
acorn@2233 4226 // the forward links, which are always trustworthy.
acorn@2233 4227 // * Add a successor indication. The LockWord is currently encoded as
acorn@2233 4228 // (List, LOCKBIT:1). We could also add a SUCCBIT or an explicit _succ variable
acorn@2233 4229 // to provide the usual futile-wakeup optimization.
acorn@2233 4230 // See RTStt for details.
acorn@2233 4231 // * Consider schedctl.sc_nopreempt to cover the critical section.
acorn@2233 4232 //
acorn@2233 4233
acorn@2233 4234
acorn@2233 4235 typedef volatile intptr_t MutexT ; // Mux Lock-word
acorn@2233 4236 enum MuxBits { LOCKBIT = 1 } ;
acorn@2233 4237
acorn@2233 4238 void Thread::muxAcquire (volatile intptr_t * Lock, const char * LockName) {
acorn@2233 4239 intptr_t w = Atomic::cmpxchg_ptr (LOCKBIT, Lock, 0) ;
acorn@2233 4240 if (w == 0) return ;
acorn@2233 4241 if ((w & LOCKBIT) == 0 && Atomic::cmpxchg_ptr (w|LOCKBIT, Lock, w) == w) {
acorn@2233 4242 return ;
acorn@2233 4243 }
acorn@2233 4244
acorn@2233 4245 TEVENT (muxAcquire - Contention) ;
acorn@2233 4246 ParkEvent * const Self = Thread::current()->_MuxEvent ;
acorn@2233 4247 assert ((intptr_t(Self) & LOCKBIT) == 0, "invariant") ;
duke@435 4248 for (;;) {
acorn@2233 4249 int its = (os::is_MP() ? 100 : 0) + 1 ;
acorn@2233 4250
acorn@2233 4251 // Optional spin phase: spin-then-park strategy
acorn@2233 4252 while (--its >= 0) {
acorn@2233 4253 w = *Lock ;
acorn@2233 4254 if ((w & LOCKBIT) == 0 && Atomic::cmpxchg_ptr (w|LOCKBIT, Lock, w) == w) {
acorn@2233 4255 return ;
acorn@2233 4256 }
acorn@2233 4257 }
acorn@2233 4258
acorn@2233 4259 Self->reset() ;
acorn@2233 4260 Self->OnList = intptr_t(Lock) ;
acorn@2233 4261 // The following fence() isn't _strictly necessary as the subsequent
acorn@2233 4262 // CAS() both serializes execution and ratifies the fetched *Lock value.
acorn@2233 4263 OrderAccess::fence();
acorn@2233 4264 for (;;) {
acorn@2233 4265 w = *Lock ;
acorn@2233 4266 if ((w & LOCKBIT) == 0) {
acorn@2233 4267 if (Atomic::cmpxchg_ptr (w|LOCKBIT, Lock, w) == w) {
acorn@2233 4268 Self->OnList = 0 ; // hygiene - allows stronger asserts
acorn@2233 4269 return ;
acorn@2233 4270 }
acorn@2233 4271 continue ; // Interference -- *Lock changed -- Just retry
duke@435 4272 }
acorn@2233 4273 assert (w & LOCKBIT, "invariant") ;
acorn@2233 4274 Self->ListNext = (ParkEvent *) (w & ~LOCKBIT );
acorn@2233 4275 if (Atomic::cmpxchg_ptr (intptr_t(Self)|LOCKBIT, Lock, w) == w) break ;
acorn@2233 4276 }
acorn@2233 4277
acorn@2233 4278 while (Self->OnList != 0) {
acorn@2233 4279 Self->park() ;
acorn@2233 4280 }
duke@435 4281 }
duke@435 4282 }
duke@435 4283
acorn@2233 4284 void Thread::muxAcquireW (volatile intptr_t * Lock, ParkEvent * ev) {
acorn@2233 4285 intptr_t w = Atomic::cmpxchg_ptr (LOCKBIT, Lock, 0) ;
acorn@2233 4286 if (w == 0) return ;
acorn@2233 4287 if ((w & LOCKBIT) == 0 && Atomic::cmpxchg_ptr (w|LOCKBIT, Lock, w) == w) {
acorn@2233 4288 return ;
acorn@2233 4289 }
acorn@2233 4290
acorn@2233 4291 TEVENT (muxAcquire - Contention) ;
acorn@2233 4292 ParkEvent * ReleaseAfter = NULL ;
acorn@2233 4293 if (ev == NULL) {
acorn@2233 4294 ev = ReleaseAfter = ParkEvent::Allocate (NULL) ;
acorn@2233 4295 }
acorn@2233 4296 assert ((intptr_t(ev) & LOCKBIT) == 0, "invariant") ;
acorn@2233 4297 for (;;) {
acorn@2233 4298 guarantee (ev->OnList == 0, "invariant") ;
acorn@2233 4299 int its = (os::is_MP() ? 100 : 0) + 1 ;
acorn@2233 4300
acorn@2233 4301 // Optional spin phase: spin-then-park strategy
acorn@2233 4302 while (--its >= 0) {
acorn@2233 4303 w = *Lock ;
acorn@2233 4304 if ((w & LOCKBIT) == 0 && Atomic::cmpxchg_ptr (w|LOCKBIT, Lock, w) == w) {
acorn@2233 4305 if (ReleaseAfter != NULL) {
acorn@2233 4306 ParkEvent::Release (ReleaseAfter) ;
acorn@2233 4307 }
acorn@2233 4308 return ;
acorn@2233 4309 }
acorn@2233 4310 }
acorn@2233 4311
acorn@2233 4312 ev->reset() ;
acorn@2233 4313 ev->OnList = intptr_t(Lock) ;
acorn@2233 4314 // The following fence() isn't _strictly necessary as the subsequent
acorn@2233 4315 // CAS() both serializes execution and ratifies the fetched *Lock value.
acorn@2233 4316 OrderAccess::fence();
acorn@2233 4317 for (;;) {
acorn@2233 4318 w = *Lock ;
acorn@2233 4319 if ((w & LOCKBIT) == 0) {
acorn@2233 4320 if (Atomic::cmpxchg_ptr (w|LOCKBIT, Lock, w) == w) {
acorn@2233 4321 ev->OnList = 0 ;
acorn@2233 4322 // We call ::Release while holding the outer lock, thus
acorn@2233 4323 // artificially lengthening the critical section.
acorn@2233 4324 // Consider deferring the ::Release() until the subsequent unlock(),
acorn@2233 4325 // after we've dropped the outer lock.
acorn@2233 4326 if (ReleaseAfter != NULL) {
acorn@2233 4327 ParkEvent::Release (ReleaseAfter) ;
acorn@2233 4328 }
acorn@2233 4329 return ;
acorn@2233 4330 }
acorn@2233 4331 continue ; // Interference -- *Lock changed -- Just retry
acorn@2233 4332 }
acorn@2233 4333 assert (w & LOCKBIT, "invariant") ;
acorn@2233 4334 ev->ListNext = (ParkEvent *) (w & ~LOCKBIT );
acorn@2233 4335 if (Atomic::cmpxchg_ptr (intptr_t(ev)|LOCKBIT, Lock, w) == w) break ;
acorn@2233 4336 }
acorn@2233 4337
acorn@2233 4338 while (ev->OnList != 0) {
acorn@2233 4339 ev->park() ;
acorn@2233 4340 }
acorn@2233 4341 }
acorn@2233 4342 }
acorn@2233 4343
acorn@2233 4344 // Release() must extract a successor from the list and then wake that thread.
acorn@2233 4345 // It can "pop" the front of the list or use a detach-modify-reattach (DMR) scheme
acorn@2233 4346 // similar to that used by ParkEvent::Allocate() and ::Release(). DMR-based
acorn@2233 4347 // Release() would :
acorn@2233 4348 // (A) CAS() or swap() null to *Lock, releasing the lock and detaching the list.
acorn@2233 4349 // (B) Extract a successor from the private list "in-hand"
acorn@2233 4350 // (C) attempt to CAS() the residual back into *Lock over null.
acorn@2233 4351 // If there were any newly arrived threads and the CAS() would fail.
acorn@2233 4352 // In that case Release() would detach the RATs, re-merge the list in-hand
acorn@2233 4353 // with the RATs and repeat as needed. Alternately, Release() might
acorn@2233 4354 // detach and extract a successor, but then pass the residual list to the wakee.
acorn@2233 4355 // The wakee would be responsible for reattaching and remerging before it
acorn@2233 4356 // competed for the lock.
acorn@2233 4357 //
acorn@2233 4358 // Both "pop" and DMR are immune from ABA corruption -- there can be
acorn@2233 4359 // multiple concurrent pushers, but only one popper or detacher.
acorn@2233 4360 // This implementation pops from the head of the list. This is unfair,
acorn@2233 4361 // but tends to provide excellent throughput as hot threads remain hot.
acorn@2233 4362 // (We wake recently run threads first).
acorn@2233 4363
acorn@2233 4364 void Thread::muxRelease (volatile intptr_t * Lock) {
acorn@2233 4365 for (;;) {
acorn@2233 4366 const intptr_t w = Atomic::cmpxchg_ptr (0, Lock, LOCKBIT) ;
acorn@2233 4367 assert (w & LOCKBIT, "invariant") ;
acorn@2233 4368 if (w == LOCKBIT) return ;
acorn@2233 4369 ParkEvent * List = (ParkEvent *) (w & ~LOCKBIT) ;
acorn@2233 4370 assert (List != NULL, "invariant") ;
acorn@2233 4371 assert (List->OnList == intptr_t(Lock), "invariant") ;
acorn@2233 4372 ParkEvent * nxt = List->ListNext ;
acorn@2233 4373
acorn@2233 4374 // The following CAS() releases the lock and pops the head element.
acorn@2233 4375 if (Atomic::cmpxchg_ptr (intptr_t(nxt), Lock, w) != w) {
acorn@2233 4376 continue ;
acorn@2233 4377 }
acorn@2233 4378 List->OnList = 0 ;
acorn@2233 4379 OrderAccess::fence() ;
acorn@2233 4380 List->unpark () ;
acorn@2233 4381 return ;
acorn@2233 4382 }
acorn@2233 4383 }
acorn@2233 4384
acorn@2233 4385
duke@435 4386 void Threads::verify() {
duke@435 4387 ALL_JAVA_THREADS(p) {
duke@435 4388 p->verify();
duke@435 4389 }
duke@435 4390 VMThread* thread = VMThread::vm_thread();
duke@435 4391 if (thread != NULL) thread->verify();
duke@435 4392 }

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