src/os/windows/vm/os_windows.cpp

Tue, 14 May 2013 09:41:12 -0700

author
minqi
date
Tue, 14 May 2013 09:41:12 -0700
changeset 5103
f9be75d21404
parent 5034
0b55a78c6be5
child 5182
a213d425d87a
permissions
-rw-r--r--

8012902: remove use of global operator new - take 2
Summary: The fix of 8010992, disable use of global operator new and new[] which caused failure on some tests. This takes two of the bugs also add ALLOW_OPERATOR_NEW_USAGE to prevent crash for third party code calling operator new of jvm on certain platforms.
Reviewed-by: coleenp, dholmes, zgu
Contributed-by: yumin.qi@oracle.com

duke@435 1 /*
hseigel@4465 2 * Copyright (c) 1997, 2013, Oracle and/or its affiliates. All rights reserved.
duke@435 3 * DO NOT ALTER OR REMOVE COPYRIGHT NOTICES OR THIS FILE HEADER.
duke@435 4 *
duke@435 5 * This code is free software; you can redistribute it and/or modify it
duke@435 6 * under the terms of the GNU General Public License version 2 only, as
duke@435 7 * published by the Free Software Foundation.
duke@435 8 *
duke@435 9 * This code is distributed in the hope that it will be useful, but WITHOUT
duke@435 10 * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
duke@435 11 * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
duke@435 12 * version 2 for more details (a copy is included in the LICENSE file that
duke@435 13 * accompanied this code).
duke@435 14 *
duke@435 15 * You should have received a copy of the GNU General Public License version
duke@435 16 * 2 along with this work; if not, write to the Free Software Foundation,
duke@435 17 * Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA.
duke@435 18 *
trims@1907 19 * Please contact Oracle, 500 Oracle Parkway, Redwood Shores, CA 94065 USA
trims@1907 20 * or visit www.oracle.com if you need additional information or have any
trims@1907 21 * questions.
duke@435 22 *
duke@435 23 */
duke@435 24
coleenp@4227 25 // Must be at least Windows 2000 or XP to use IsDebuggerPresent
duke@435 26 #define _WIN32_WINNT 0x500
duke@435 27
stefank@2314 28 // no precompiled headers
stefank@2314 29 #include "classfile/classLoader.hpp"
stefank@2314 30 #include "classfile/systemDictionary.hpp"
stefank@2314 31 #include "classfile/vmSymbols.hpp"
stefank@2314 32 #include "code/icBuffer.hpp"
stefank@2314 33 #include "code/vtableStubs.hpp"
stefank@2314 34 #include "compiler/compileBroker.hpp"
twisti@4318 35 #include "compiler/disassembler.hpp"
stefank@2314 36 #include "interpreter/interpreter.hpp"
stefank@2314 37 #include "jvm_windows.h"
stefank@2314 38 #include "memory/allocation.inline.hpp"
stefank@2314 39 #include "memory/filemap.hpp"
stefank@2314 40 #include "mutex_windows.inline.hpp"
stefank@2314 41 #include "oops/oop.inline.hpp"
stefank@2314 42 #include "os_share_windows.hpp"
stefank@2314 43 #include "prims/jniFastGetField.hpp"
stefank@2314 44 #include "prims/jvm.h"
stefank@2314 45 #include "prims/jvm_misc.hpp"
stefank@2314 46 #include "runtime/arguments.hpp"
stefank@2314 47 #include "runtime/extendedPC.hpp"
stefank@2314 48 #include "runtime/globals.hpp"
stefank@2314 49 #include "runtime/interfaceSupport.hpp"
stefank@2314 50 #include "runtime/java.hpp"
stefank@2314 51 #include "runtime/javaCalls.hpp"
stefank@2314 52 #include "runtime/mutexLocker.hpp"
stefank@2314 53 #include "runtime/objectMonitor.hpp"
stefank@2314 54 #include "runtime/osThread.hpp"
stefank@2314 55 #include "runtime/perfMemory.hpp"
stefank@2314 56 #include "runtime/sharedRuntime.hpp"
stefank@2314 57 #include "runtime/statSampler.hpp"
stefank@2314 58 #include "runtime/stubRoutines.hpp"
stefank@4299 59 #include "runtime/thread.inline.hpp"
stefank@2314 60 #include "runtime/threadCritical.hpp"
stefank@2314 61 #include "runtime/timer.hpp"
stefank@2314 62 #include "services/attachListener.hpp"
zgu@4711 63 #include "services/memTracker.hpp"
stefank@2314 64 #include "services/runtimeService.hpp"
zgu@2364 65 #include "utilities/decoder.hpp"
stefank@2314 66 #include "utilities/defaultStream.hpp"
stefank@2314 67 #include "utilities/events.hpp"
stefank@2314 68 #include "utilities/growableArray.hpp"
stefank@2314 69 #include "utilities/vmError.hpp"
duke@435 70
duke@435 71 #ifdef _DEBUG
duke@435 72 #include <crtdbg.h>
duke@435 73 #endif
duke@435 74
duke@435 75
duke@435 76 #include <windows.h>
duke@435 77 #include <sys/types.h>
duke@435 78 #include <sys/stat.h>
duke@435 79 #include <sys/timeb.h>
duke@435 80 #include <objidl.h>
duke@435 81 #include <shlobj.h>
duke@435 82
duke@435 83 #include <malloc.h>
duke@435 84 #include <signal.h>
duke@435 85 #include <direct.h>
duke@435 86 #include <errno.h>
duke@435 87 #include <fcntl.h>
duke@435 88 #include <io.h>
duke@435 89 #include <process.h> // For _beginthreadex(), _endthreadex()
duke@435 90 #include <imagehlp.h> // For os::dll_address_to_function_name
duke@435 91 /* for enumerating dll libraries */
duke@435 92 #include <vdmdbg.h>
duke@435 93
duke@435 94 // for timer info max values which include all bits
duke@435 95 #define ALL_64_BITS CONST64(0xFFFFFFFFFFFFFFFF)
duke@435 96
duke@435 97 // For DLL loading/load error detection
duke@435 98 // Values of PE COFF
duke@435 99 #define IMAGE_FILE_PTR_TO_SIGNATURE 0x3c
duke@435 100 #define IMAGE_FILE_SIGNATURE_LENGTH 4
duke@435 101
duke@435 102 static HANDLE main_process;
duke@435 103 static HANDLE main_thread;
duke@435 104 static int main_thread_id;
duke@435 105
duke@435 106 static FILETIME process_creation_time;
duke@435 107 static FILETIME process_exit_time;
duke@435 108 static FILETIME process_user_time;
duke@435 109 static FILETIME process_kernel_time;
duke@435 110
duke@435 111 #ifdef _M_IA64
duke@435 112 #define __CPU__ ia64
duke@435 113 #elif _M_AMD64
duke@435 114 #define __CPU__ amd64
duke@435 115 #else
duke@435 116 #define __CPU__ i486
duke@435 117 #endif
duke@435 118
duke@435 119 // save DLL module handle, used by GetModuleFileName
duke@435 120
duke@435 121 HINSTANCE vm_lib_handle;
duke@435 122
duke@435 123 BOOL WINAPI DllMain(HINSTANCE hinst, DWORD reason, LPVOID reserved) {
duke@435 124 switch (reason) {
duke@435 125 case DLL_PROCESS_ATTACH:
duke@435 126 vm_lib_handle = hinst;
duke@435 127 if(ForceTimeHighResolution)
duke@435 128 timeBeginPeriod(1L);
duke@435 129 break;
duke@435 130 case DLL_PROCESS_DETACH:
duke@435 131 if(ForceTimeHighResolution)
duke@435 132 timeEndPeriod(1L);
duke@435 133 break;
duke@435 134 default:
duke@435 135 break;
duke@435 136 }
duke@435 137 return true;
duke@435 138 }
duke@435 139
duke@435 140 static inline double fileTimeAsDouble(FILETIME* time) {
duke@435 141 const double high = (double) ((unsigned int) ~0);
duke@435 142 const double split = 10000000.0;
duke@435 143 double result = (time->dwLowDateTime / split) +
duke@435 144 time->dwHighDateTime * (high/split);
duke@435 145 return result;
duke@435 146 }
duke@435 147
duke@435 148 // Implementation of os
duke@435 149
duke@435 150 bool os::getenv(const char* name, char* buffer, int len) {
duke@435 151 int result = GetEnvironmentVariable(name, buffer, len);
duke@435 152 return result > 0 && result < len;
duke@435 153 }
duke@435 154
duke@435 155
duke@435 156 // No setuid programs under Windows.
duke@435 157 bool os::have_special_privileges() {
duke@435 158 return false;
duke@435 159 }
duke@435 160
duke@435 161
duke@435 162 // This method is a periodic task to check for misbehaving JNI applications
duke@435 163 // under CheckJNI, we can add any periodic checks here.
duke@435 164 // For Windows at the moment does nothing
duke@435 165 void os::run_periodic_checks() {
duke@435 166 return;
duke@435 167 }
duke@435 168
duke@435 169 #ifndef _WIN64
dcubed@1649 170 // previous UnhandledExceptionFilter, if there is one
dcubed@1649 171 static LPTOP_LEVEL_EXCEPTION_FILTER prev_uef_handler = NULL;
dcubed@1649 172
duke@435 173 LONG WINAPI Handle_FLT_Exception(struct _EXCEPTION_POINTERS* exceptionInfo);
duke@435 174 #endif
duke@435 175 void os::init_system_properties_values() {
duke@435 176 /* sysclasspath, java_home, dll_dir */
duke@435 177 {
duke@435 178 char *home_path;
duke@435 179 char *dll_path;
duke@435 180 char *pslash;
duke@435 181 char *bin = "\\bin";
duke@435 182 char home_dir[MAX_PATH];
duke@435 183
duke@435 184 if (!getenv("_ALT_JAVA_HOME_DIR", home_dir, MAX_PATH)) {
duke@435 185 os::jvm_path(home_dir, sizeof(home_dir));
dcubed@4392 186 // Found the full path to jvm.dll.
duke@435 187 // Now cut the path to <java_home>/jre if we can.
duke@435 188 *(strrchr(home_dir, '\\')) = '\0'; /* get rid of \jvm.dll */
duke@435 189 pslash = strrchr(home_dir, '\\');
duke@435 190 if (pslash != NULL) {
duke@435 191 *pslash = '\0'; /* get rid of \{client|server} */
duke@435 192 pslash = strrchr(home_dir, '\\');
duke@435 193 if (pslash != NULL)
duke@435 194 *pslash = '\0'; /* get rid of \bin */
duke@435 195 }
duke@435 196 }
duke@435 197
zgu@3900 198 home_path = NEW_C_HEAP_ARRAY(char, strlen(home_dir) + 1, mtInternal);
duke@435 199 if (home_path == NULL)
duke@435 200 return;
duke@435 201 strcpy(home_path, home_dir);
duke@435 202 Arguments::set_java_home(home_path);
duke@435 203
zgu@3900 204 dll_path = NEW_C_HEAP_ARRAY(char, strlen(home_dir) + strlen(bin) + 1, mtInternal);
duke@435 205 if (dll_path == NULL)
duke@435 206 return;
duke@435 207 strcpy(dll_path, home_dir);
duke@435 208 strcat(dll_path, bin);
duke@435 209 Arguments::set_dll_dir(dll_path);
duke@435 210
duke@435 211 if (!set_boot_path('\\', ';'))
duke@435 212 return;
duke@435 213 }
duke@435 214
duke@435 215 /* library_path */
duke@435 216 #define EXT_DIR "\\lib\\ext"
duke@435 217 #define BIN_DIR "\\bin"
duke@435 218 #define PACKAGE_DIR "\\Sun\\Java"
duke@435 219 {
duke@435 220 /* Win32 library search order (See the documentation for LoadLibrary):
duke@435 221 *
duke@435 222 * 1. The directory from which application is loaded.
zgu@3031 223 * 2. The system wide Java Extensions directory (Java only)
zgu@3031 224 * 3. System directory (GetSystemDirectory)
zgu@3031 225 * 4. Windows directory (GetWindowsDirectory)
zgu@3031 226 * 5. The PATH environment variable
zgu@3031 227 * 6. The current directory
duke@435 228 */
duke@435 229
duke@435 230 char *library_path;
duke@435 231 char tmp[MAX_PATH];
duke@435 232 char *path_str = ::getenv("PATH");
duke@435 233
duke@435 234 library_path = NEW_C_HEAP_ARRAY(char, MAX_PATH * 5 + sizeof(PACKAGE_DIR) +
zgu@3900 235 sizeof(BIN_DIR) + (path_str ? strlen(path_str) : 0) + 10, mtInternal);
duke@435 236
duke@435 237 library_path[0] = '\0';
duke@435 238
duke@435 239 GetModuleFileName(NULL, tmp, sizeof(tmp));
duke@435 240 *(strrchr(tmp, '\\')) = '\0';
duke@435 241 strcat(library_path, tmp);
duke@435 242
duke@435 243 GetWindowsDirectory(tmp, sizeof(tmp));
duke@435 244 strcat(library_path, ";");
duke@435 245 strcat(library_path, tmp);
duke@435 246 strcat(library_path, PACKAGE_DIR BIN_DIR);
duke@435 247
duke@435 248 GetSystemDirectory(tmp, sizeof(tmp));
duke@435 249 strcat(library_path, ";");
duke@435 250 strcat(library_path, tmp);
duke@435 251
duke@435 252 GetWindowsDirectory(tmp, sizeof(tmp));
duke@435 253 strcat(library_path, ";");
duke@435 254 strcat(library_path, tmp);
duke@435 255
duke@435 256 if (path_str) {
duke@435 257 strcat(library_path, ";");
duke@435 258 strcat(library_path, path_str);
duke@435 259 }
duke@435 260
zgu@3031 261 strcat(library_path, ";.");
zgu@3031 262
duke@435 263 Arguments::set_library_path(library_path);
zgu@3900 264 FREE_C_HEAP_ARRAY(char, library_path, mtInternal);
duke@435 265 }
duke@435 266
duke@435 267 /* Default extensions directory */
duke@435 268 {
duke@435 269 char path[MAX_PATH];
duke@435 270 char buf[2 * MAX_PATH + 2 * sizeof(EXT_DIR) + sizeof(PACKAGE_DIR) + 1];
duke@435 271 GetWindowsDirectory(path, MAX_PATH);
duke@435 272 sprintf(buf, "%s%s;%s%s%s", Arguments::get_java_home(), EXT_DIR,
duke@435 273 path, PACKAGE_DIR, EXT_DIR);
duke@435 274 Arguments::set_ext_dirs(buf);
duke@435 275 }
duke@435 276 #undef EXT_DIR
duke@435 277 #undef BIN_DIR
duke@435 278 #undef PACKAGE_DIR
duke@435 279
duke@435 280 /* Default endorsed standards directory. */
duke@435 281 {
duke@435 282 #define ENDORSED_DIR "\\lib\\endorsed"
duke@435 283 size_t len = strlen(Arguments::get_java_home()) + sizeof(ENDORSED_DIR);
zgu@3900 284 char * buf = NEW_C_HEAP_ARRAY(char, len, mtInternal);
duke@435 285 sprintf(buf, "%s%s", Arguments::get_java_home(), ENDORSED_DIR);
duke@435 286 Arguments::set_endorsed_dirs(buf);
duke@435 287 #undef ENDORSED_DIR
duke@435 288 }
duke@435 289
duke@435 290 #ifndef _WIN64
dcubed@1649 291 // set our UnhandledExceptionFilter and save any previous one
dcubed@1649 292 prev_uef_handler = SetUnhandledExceptionFilter(Handle_FLT_Exception);
duke@435 293 #endif
duke@435 294
duke@435 295 // Done
duke@435 296 return;
duke@435 297 }
duke@435 298
duke@435 299 void os::breakpoint() {
duke@435 300 DebugBreak();
duke@435 301 }
duke@435 302
duke@435 303 // Invoked from the BREAKPOINT Macro
duke@435 304 extern "C" void breakpoint() {
duke@435 305 os::breakpoint();
duke@435 306 }
duke@435 307
zgu@3900 308 /*
zgu@3900 309 * RtlCaptureStackBackTrace Windows API may not exist prior to Windows XP.
zgu@3900 310 * So far, this method is only used by Native Memory Tracking, which is
zgu@3900 311 * only supported on Windows XP or later.
zgu@3900 312 */
zgu@3900 313 address os::get_caller_pc(int n) {
zgu@3900 314 #ifdef _NMT_NOINLINE_
zgu@3900 315 n ++;
zgu@3900 316 #endif
zgu@3900 317 address pc;
zgu@3900 318 if (os::Kernel32Dll::RtlCaptureStackBackTrace(n + 1, 1, (PVOID*)&pc, NULL) == 1) {
zgu@3900 319 return pc;
zgu@3900 320 }
zgu@3900 321 return NULL;
zgu@3900 322 }
zgu@3900 323
zgu@3900 324
duke@435 325 // os::current_stack_base()
duke@435 326 //
duke@435 327 // Returns the base of the stack, which is the stack's
duke@435 328 // starting address. This function must be called
duke@435 329 // while running on the stack of the thread being queried.
duke@435 330
duke@435 331 address os::current_stack_base() {
duke@435 332 MEMORY_BASIC_INFORMATION minfo;
duke@435 333 address stack_bottom;
duke@435 334 size_t stack_size;
duke@435 335
duke@435 336 VirtualQuery(&minfo, &minfo, sizeof(minfo));
duke@435 337 stack_bottom = (address)minfo.AllocationBase;
duke@435 338 stack_size = minfo.RegionSize;
duke@435 339
duke@435 340 // Add up the sizes of all the regions with the same
duke@435 341 // AllocationBase.
duke@435 342 while( 1 )
duke@435 343 {
duke@435 344 VirtualQuery(stack_bottom+stack_size, &minfo, sizeof(minfo));
duke@435 345 if ( stack_bottom == (address)minfo.AllocationBase )
duke@435 346 stack_size += minfo.RegionSize;
duke@435 347 else
duke@435 348 break;
duke@435 349 }
duke@435 350
duke@435 351 #ifdef _M_IA64
duke@435 352 // IA64 has memory and register stacks
morris@4535 353 //
morris@4535 354 // This is the stack layout you get on NT/IA64 if you specify 1MB stack limit
morris@4535 355 // at thread creation (1MB backing store growing upwards, 1MB memory stack
morris@4535 356 // growing downwards, 2MB summed up)
morris@4535 357 //
morris@4535 358 // ...
morris@4535 359 // ------- top of stack (high address) -----
morris@4535 360 // |
morris@4535 361 // | 1MB
morris@4535 362 // | Backing Store (Register Stack)
morris@4535 363 // |
morris@4535 364 // | / \
morris@4535 365 // | |
morris@4535 366 // | |
morris@4535 367 // | |
morris@4535 368 // ------------------------ stack base -----
morris@4535 369 // | 1MB
morris@4535 370 // | Memory Stack
morris@4535 371 // |
morris@4535 372 // | |
morris@4535 373 // | |
morris@4535 374 // | |
morris@4535 375 // | \ /
morris@4535 376 // |
morris@4535 377 // ----- bottom of stack (low address) -----
morris@4535 378 // ...
morris@4535 379
duke@435 380 stack_size = stack_size / 2;
duke@435 381 #endif
duke@435 382 return stack_bottom + stack_size;
duke@435 383 }
duke@435 384
duke@435 385 size_t os::current_stack_size() {
duke@435 386 size_t sz;
duke@435 387 MEMORY_BASIC_INFORMATION minfo;
duke@435 388 VirtualQuery(&minfo, &minfo, sizeof(minfo));
duke@435 389 sz = (size_t)os::current_stack_base() - (size_t)minfo.AllocationBase;
duke@435 390 return sz;
duke@435 391 }
duke@435 392
ysr@983 393 struct tm* os::localtime_pd(const time_t* clock, struct tm* res) {
ysr@983 394 const struct tm* time_struct_ptr = localtime(clock);
ysr@983 395 if (time_struct_ptr != NULL) {
ysr@983 396 *res = *time_struct_ptr;
ysr@983 397 return res;
ysr@983 398 }
ysr@983 399 return NULL;
ysr@983 400 }
duke@435 401
duke@435 402 LONG WINAPI topLevelExceptionFilter(struct _EXCEPTION_POINTERS* exceptionInfo);
duke@435 403
duke@435 404 // Thread start routine for all new Java threads
duke@435 405 static unsigned __stdcall java_start(Thread* thread) {
duke@435 406 // Try to randomize the cache line index of hot stack frames.
duke@435 407 // This helps when threads of the same stack traces evict each other's
duke@435 408 // cache lines. The threads can be either from the same JVM instance, or
duke@435 409 // from different JVM instances. The benefit is especially true for
duke@435 410 // processors with hyperthreading technology.
duke@435 411 static int counter = 0;
duke@435 412 int pid = os::current_process_id();
duke@435 413 _alloca(((pid ^ counter++) & 7) * 128);
duke@435 414
duke@435 415 OSThread* osthr = thread->osthread();
duke@435 416 assert(osthr->get_state() == RUNNABLE, "invalid os thread state");
duke@435 417
duke@435 418 if (UseNUMA) {
duke@435 419 int lgrp_id = os::numa_get_group_id();
duke@435 420 if (lgrp_id != -1) {
duke@435 421 thread->set_lgrp_id(lgrp_id);
duke@435 422 }
duke@435 423 }
duke@435 424
duke@435 425
coleenp@4227 426 // Install a win32 structured exception handler around every thread created
coleenp@4227 427 // by VM, so VM can genrate error dump when an exception occurred in non-
coleenp@4227 428 // Java thread (e.g. VM thread).
coleenp@4227 429 __try {
coleenp@4227 430 thread->run();
coleenp@4227 431 } __except(topLevelExceptionFilter(
coleenp@4227 432 (_EXCEPTION_POINTERS*)_exception_info())) {
coleenp@4227 433 // Nothing to do.
duke@435 434 }
duke@435 435
duke@435 436 // One less thread is executing
duke@435 437 // When the VMThread gets here, the main thread may have already exited
duke@435 438 // which frees the CodeHeap containing the Atomic::add code
duke@435 439 if (thread != VMThread::vm_thread() && VMThread::vm_thread() != NULL) {
duke@435 440 Atomic::dec_ptr((intptr_t*)&os::win32::_os_thread_count);
duke@435 441 }
duke@435 442
duke@435 443 return 0;
duke@435 444 }
duke@435 445
duke@435 446 static OSThread* create_os_thread(Thread* thread, HANDLE thread_handle, int thread_id) {
duke@435 447 // Allocate the OSThread object
duke@435 448 OSThread* osthread = new OSThread(NULL, NULL);
duke@435 449 if (osthread == NULL) return NULL;
duke@435 450
duke@435 451 // Initialize support for Java interrupts
duke@435 452 HANDLE interrupt_event = CreateEvent(NULL, true, false, NULL);
duke@435 453 if (interrupt_event == NULL) {
duke@435 454 delete osthread;
duke@435 455 return NULL;
duke@435 456 }
duke@435 457 osthread->set_interrupt_event(interrupt_event);
duke@435 458
duke@435 459 // Store info on the Win32 thread into the OSThread
duke@435 460 osthread->set_thread_handle(thread_handle);
duke@435 461 osthread->set_thread_id(thread_id);
duke@435 462
duke@435 463 if (UseNUMA) {
duke@435 464 int lgrp_id = os::numa_get_group_id();
duke@435 465 if (lgrp_id != -1) {
duke@435 466 thread->set_lgrp_id(lgrp_id);
duke@435 467 }
duke@435 468 }
duke@435 469
duke@435 470 // Initial thread state is INITIALIZED, not SUSPENDED
duke@435 471 osthread->set_state(INITIALIZED);
duke@435 472
duke@435 473 return osthread;
duke@435 474 }
duke@435 475
duke@435 476
duke@435 477 bool os::create_attached_thread(JavaThread* thread) {
duke@435 478 #ifdef ASSERT
duke@435 479 thread->verify_not_published();
duke@435 480 #endif
duke@435 481 HANDLE thread_h;
duke@435 482 if (!DuplicateHandle(main_process, GetCurrentThread(), GetCurrentProcess(),
duke@435 483 &thread_h, THREAD_ALL_ACCESS, false, 0)) {
duke@435 484 fatal("DuplicateHandle failed\n");
duke@435 485 }
duke@435 486 OSThread* osthread = create_os_thread(thread, thread_h,
duke@435 487 (int)current_thread_id());
duke@435 488 if (osthread == NULL) {
duke@435 489 return false;
duke@435 490 }
duke@435 491
duke@435 492 // Initial thread state is RUNNABLE
duke@435 493 osthread->set_state(RUNNABLE);
duke@435 494
duke@435 495 thread->set_osthread(osthread);
duke@435 496 return true;
duke@435 497 }
duke@435 498
duke@435 499 bool os::create_main_thread(JavaThread* thread) {
duke@435 500 #ifdef ASSERT
duke@435 501 thread->verify_not_published();
duke@435 502 #endif
duke@435 503 if (_starting_thread == NULL) {
duke@435 504 _starting_thread = create_os_thread(thread, main_thread, main_thread_id);
duke@435 505 if (_starting_thread == NULL) {
duke@435 506 return false;
duke@435 507 }
duke@435 508 }
duke@435 509
duke@435 510 // The primordial thread is runnable from the start)
duke@435 511 _starting_thread->set_state(RUNNABLE);
duke@435 512
duke@435 513 thread->set_osthread(_starting_thread);
duke@435 514 return true;
duke@435 515 }
duke@435 516
duke@435 517 // Allocate and initialize a new OSThread
duke@435 518 bool os::create_thread(Thread* thread, ThreadType thr_type, size_t stack_size) {
duke@435 519 unsigned thread_id;
duke@435 520
duke@435 521 // Allocate the OSThread object
duke@435 522 OSThread* osthread = new OSThread(NULL, NULL);
duke@435 523 if (osthread == NULL) {
duke@435 524 return false;
duke@435 525 }
duke@435 526
duke@435 527 // Initialize support for Java interrupts
duke@435 528 HANDLE interrupt_event = CreateEvent(NULL, true, false, NULL);
duke@435 529 if (interrupt_event == NULL) {
duke@435 530 delete osthread;
duke@435 531 return NULL;
duke@435 532 }
duke@435 533 osthread->set_interrupt_event(interrupt_event);
duke@435 534 osthread->set_interrupted(false);
duke@435 535
duke@435 536 thread->set_osthread(osthread);
duke@435 537
duke@435 538 if (stack_size == 0) {
duke@435 539 switch (thr_type) {
duke@435 540 case os::java_thread:
duke@435 541 // Java threads use ThreadStackSize which default value can be changed with the flag -Xss
duke@435 542 if (JavaThread::stack_size_at_create() > 0)
duke@435 543 stack_size = JavaThread::stack_size_at_create();
duke@435 544 break;
duke@435 545 case os::compiler_thread:
duke@435 546 if (CompilerThreadStackSize > 0) {
duke@435 547 stack_size = (size_t)(CompilerThreadStackSize * K);
duke@435 548 break;
duke@435 549 } // else fall through:
duke@435 550 // use VMThreadStackSize if CompilerThreadStackSize is not defined
duke@435 551 case os::vm_thread:
duke@435 552 case os::pgc_thread:
duke@435 553 case os::cgc_thread:
duke@435 554 case os::watcher_thread:
duke@435 555 if (VMThreadStackSize > 0) stack_size = (size_t)(VMThreadStackSize * K);
duke@435 556 break;
duke@435 557 }
duke@435 558 }
duke@435 559
duke@435 560 // Create the Win32 thread
duke@435 561 //
duke@435 562 // Contrary to what MSDN document says, "stack_size" in _beginthreadex()
duke@435 563 // does not specify stack size. Instead, it specifies the size of
duke@435 564 // initially committed space. The stack size is determined by
duke@435 565 // PE header in the executable. If the committed "stack_size" is larger
duke@435 566 // than default value in the PE header, the stack is rounded up to the
duke@435 567 // nearest multiple of 1MB. For example if the launcher has default
duke@435 568 // stack size of 320k, specifying any size less than 320k does not
duke@435 569 // affect the actual stack size at all, it only affects the initial
duke@435 570 // commitment. On the other hand, specifying 'stack_size' larger than
duke@435 571 // default value may cause significant increase in memory usage, because
duke@435 572 // not only the stack space will be rounded up to MB, but also the
duke@435 573 // entire space is committed upfront.
duke@435 574 //
duke@435 575 // Finally Windows XP added a new flag 'STACK_SIZE_PARAM_IS_A_RESERVATION'
duke@435 576 // for CreateThread() that can treat 'stack_size' as stack size. However we
duke@435 577 // are not supposed to call CreateThread() directly according to MSDN
duke@435 578 // document because JVM uses C runtime library. The good news is that the
duke@435 579 // flag appears to work with _beginthredex() as well.
duke@435 580
duke@435 581 #ifndef STACK_SIZE_PARAM_IS_A_RESERVATION
duke@435 582 #define STACK_SIZE_PARAM_IS_A_RESERVATION (0x10000)
duke@435 583 #endif
duke@435 584
duke@435 585 HANDLE thread_handle =
duke@435 586 (HANDLE)_beginthreadex(NULL,
duke@435 587 (unsigned)stack_size,
duke@435 588 (unsigned (__stdcall *)(void*)) java_start,
duke@435 589 thread,
duke@435 590 CREATE_SUSPENDED | STACK_SIZE_PARAM_IS_A_RESERVATION,
duke@435 591 &thread_id);
duke@435 592 if (thread_handle == NULL) {
duke@435 593 // perhaps STACK_SIZE_PARAM_IS_A_RESERVATION is not supported, try again
duke@435 594 // without the flag.
duke@435 595 thread_handle =
duke@435 596 (HANDLE)_beginthreadex(NULL,
duke@435 597 (unsigned)stack_size,
duke@435 598 (unsigned (__stdcall *)(void*)) java_start,
duke@435 599 thread,
duke@435 600 CREATE_SUSPENDED,
duke@435 601 &thread_id);
duke@435 602 }
duke@435 603 if (thread_handle == NULL) {
duke@435 604 // Need to clean up stuff we've allocated so far
duke@435 605 CloseHandle(osthread->interrupt_event());
duke@435 606 thread->set_osthread(NULL);
duke@435 607 delete osthread;
duke@435 608 return NULL;
duke@435 609 }
duke@435 610
duke@435 611 Atomic::inc_ptr((intptr_t*)&os::win32::_os_thread_count);
duke@435 612
duke@435 613 // Store info on the Win32 thread into the OSThread
duke@435 614 osthread->set_thread_handle(thread_handle);
duke@435 615 osthread->set_thread_id(thread_id);
duke@435 616
duke@435 617 // Initial thread state is INITIALIZED, not SUSPENDED
duke@435 618 osthread->set_state(INITIALIZED);
duke@435 619
duke@435 620 // The thread is returned suspended (in state INITIALIZED), and is started higher up in the call chain
duke@435 621 return true;
duke@435 622 }
duke@435 623
duke@435 624
duke@435 625 // Free Win32 resources related to the OSThread
duke@435 626 void os::free_thread(OSThread* osthread) {
duke@435 627 assert(osthread != NULL, "osthread not set");
duke@435 628 CloseHandle(osthread->thread_handle());
duke@435 629 CloseHandle(osthread->interrupt_event());
duke@435 630 delete osthread;
duke@435 631 }
duke@435 632
duke@435 633
duke@435 634 static int has_performance_count = 0;
duke@435 635 static jlong first_filetime;
duke@435 636 static jlong initial_performance_count;
duke@435 637 static jlong performance_frequency;
duke@435 638
duke@435 639
duke@435 640 jlong as_long(LARGE_INTEGER x) {
duke@435 641 jlong result = 0; // initialization to avoid warning
duke@435 642 set_high(&result, x.HighPart);
duke@435 643 set_low(&result, x.LowPart);
duke@435 644 return result;
duke@435 645 }
duke@435 646
duke@435 647
duke@435 648 jlong os::elapsed_counter() {
duke@435 649 LARGE_INTEGER count;
duke@435 650 if (has_performance_count) {
duke@435 651 QueryPerformanceCounter(&count);
duke@435 652 return as_long(count) - initial_performance_count;
duke@435 653 } else {
duke@435 654 FILETIME wt;
duke@435 655 GetSystemTimeAsFileTime(&wt);
duke@435 656 return (jlong_from(wt.dwHighDateTime, wt.dwLowDateTime) - first_filetime);
duke@435 657 }
duke@435 658 }
duke@435 659
duke@435 660
duke@435 661 jlong os::elapsed_frequency() {
duke@435 662 if (has_performance_count) {
duke@435 663 return performance_frequency;
duke@435 664 } else {
duke@435 665 // the FILETIME time is the number of 100-nanosecond intervals since January 1,1601.
duke@435 666 return 10000000;
duke@435 667 }
duke@435 668 }
duke@435 669
duke@435 670
duke@435 671 julong os::available_memory() {
duke@435 672 return win32::available_memory();
duke@435 673 }
duke@435 674
duke@435 675 julong os::win32::available_memory() {
poonam@1312 676 // Use GlobalMemoryStatusEx() because GlobalMemoryStatus() may return incorrect
poonam@1312 677 // value if total memory is larger than 4GB
poonam@1312 678 MEMORYSTATUSEX ms;
poonam@1312 679 ms.dwLength = sizeof(ms);
poonam@1312 680 GlobalMemoryStatusEx(&ms);
poonam@1312 681
poonam@1312 682 return (julong)ms.ullAvailPhys;
duke@435 683 }
duke@435 684
duke@435 685 julong os::physical_memory() {
duke@435 686 return win32::physical_memory();
duke@435 687 }
duke@435 688
tschatzl@4854 689 bool os::has_allocatable_memory_limit(julong* limit) {
tschatzl@4854 690 MEMORYSTATUSEX ms;
tschatzl@4854 691 ms.dwLength = sizeof(ms);
tschatzl@4854 692 GlobalMemoryStatusEx(&ms);
phh@455 693 #ifdef _LP64
tschatzl@4854 694 *limit = (julong)ms.ullAvailVirtual;
tschatzl@4854 695 return true;
phh@455 696 #else
phh@455 697 // Limit to 1400m because of the 2gb address space wall
tschatzl@4854 698 *limit = MIN2((julong)1400*M, (julong)ms.ullAvailVirtual);
tschatzl@4854 699 return true;
phh@455 700 #endif
duke@435 701 }
duke@435 702
duke@435 703 // VC6 lacks DWORD_PTR
duke@435 704 #if _MSC_VER < 1300
duke@435 705 typedef UINT_PTR DWORD_PTR;
duke@435 706 #endif
duke@435 707
duke@435 708 int os::active_processor_count() {
duke@435 709 DWORD_PTR lpProcessAffinityMask = 0;
duke@435 710 DWORD_PTR lpSystemAffinityMask = 0;
duke@435 711 int proc_count = processor_count();
duke@435 712 if (proc_count <= sizeof(UINT_PTR) * BitsPerByte &&
duke@435 713 GetProcessAffinityMask(GetCurrentProcess(), &lpProcessAffinityMask, &lpSystemAffinityMask)) {
duke@435 714 // Nof active processors is number of bits in process affinity mask
duke@435 715 int bitcount = 0;
duke@435 716 while (lpProcessAffinityMask != 0) {
duke@435 717 lpProcessAffinityMask = lpProcessAffinityMask & (lpProcessAffinityMask-1);
duke@435 718 bitcount++;
duke@435 719 }
duke@435 720 return bitcount;
duke@435 721 } else {
duke@435 722 return proc_count;
duke@435 723 }
duke@435 724 }
duke@435 725
dcubed@3202 726 void os::set_native_thread_name(const char *name) {
dcubed@3202 727 // Not yet implemented.
dcubed@3202 728 return;
dcubed@3202 729 }
dcubed@3202 730
duke@435 731 bool os::distribute_processes(uint length, uint* distribution) {
duke@435 732 // Not yet implemented.
duke@435 733 return false;
duke@435 734 }
duke@435 735
duke@435 736 bool os::bind_to_processor(uint processor_id) {
duke@435 737 // Not yet implemented.
duke@435 738 return false;
duke@435 739 }
duke@435 740
duke@435 741 static void initialize_performance_counter() {
duke@435 742 LARGE_INTEGER count;
duke@435 743 if (QueryPerformanceFrequency(&count)) {
duke@435 744 has_performance_count = 1;
duke@435 745 performance_frequency = as_long(count);
duke@435 746 QueryPerformanceCounter(&count);
duke@435 747 initial_performance_count = as_long(count);
duke@435 748 } else {
duke@435 749 has_performance_count = 0;
duke@435 750 FILETIME wt;
duke@435 751 GetSystemTimeAsFileTime(&wt);
duke@435 752 first_filetime = jlong_from(wt.dwHighDateTime, wt.dwLowDateTime);
duke@435 753 }
duke@435 754 }
duke@435 755
duke@435 756
duke@435 757 double os::elapsedTime() {
duke@435 758 return (double) elapsed_counter() / (double) elapsed_frequency();
duke@435 759 }
duke@435 760
duke@435 761
duke@435 762 // Windows format:
duke@435 763 // The FILETIME structure is a 64-bit value representing the number of 100-nanosecond intervals since January 1, 1601.
duke@435 764 // Java format:
duke@435 765 // Java standards require the number of milliseconds since 1/1/1970
duke@435 766
duke@435 767 // Constant offset - calculated using offset()
duke@435 768 static jlong _offset = 116444736000000000;
duke@435 769 // Fake time counter for reproducible results when debugging
duke@435 770 static jlong fake_time = 0;
duke@435 771
duke@435 772 #ifdef ASSERT
duke@435 773 // Just to be safe, recalculate the offset in debug mode
duke@435 774 static jlong _calculated_offset = 0;
duke@435 775 static int _has_calculated_offset = 0;
duke@435 776
duke@435 777 jlong offset() {
duke@435 778 if (_has_calculated_offset) return _calculated_offset;
duke@435 779 SYSTEMTIME java_origin;
duke@435 780 java_origin.wYear = 1970;
duke@435 781 java_origin.wMonth = 1;
duke@435 782 java_origin.wDayOfWeek = 0; // ignored
duke@435 783 java_origin.wDay = 1;
duke@435 784 java_origin.wHour = 0;
duke@435 785 java_origin.wMinute = 0;
duke@435 786 java_origin.wSecond = 0;
duke@435 787 java_origin.wMilliseconds = 0;
duke@435 788 FILETIME jot;
duke@435 789 if (!SystemTimeToFileTime(&java_origin, &jot)) {
jcoomes@1845 790 fatal(err_msg("Error = %d\nWindows error", GetLastError()));
duke@435 791 }
duke@435 792 _calculated_offset = jlong_from(jot.dwHighDateTime, jot.dwLowDateTime);
duke@435 793 _has_calculated_offset = 1;
duke@435 794 assert(_calculated_offset == _offset, "Calculated and constant time offsets must be equal");
duke@435 795 return _calculated_offset;
duke@435 796 }
duke@435 797 #else
duke@435 798 jlong offset() {
duke@435 799 return _offset;
duke@435 800 }
duke@435 801 #endif
duke@435 802
duke@435 803 jlong windows_to_java_time(FILETIME wt) {
duke@435 804 jlong a = jlong_from(wt.dwHighDateTime, wt.dwLowDateTime);
duke@435 805 return (a - offset()) / 10000;
duke@435 806 }
duke@435 807
duke@435 808 FILETIME java_to_windows_time(jlong l) {
duke@435 809 jlong a = (l * 10000) + offset();
duke@435 810 FILETIME result;
duke@435 811 result.dwHighDateTime = high(a);
duke@435 812 result.dwLowDateTime = low(a);
duke@435 813 return result;
duke@435 814 }
duke@435 815
ysr@777 816 // For now, we say that Windows does not support vtime. I have no idea
ysr@777 817 // whether it can actually be made to (DLD, 9/13/05).
ysr@777 818
ysr@777 819 bool os::supports_vtime() { return false; }
ysr@777 820 bool os::enable_vtime() { return false; }
ysr@777 821 bool os::vtime_enabled() { return false; }
ysr@777 822 double os::elapsedVTime() {
ysr@777 823 // better than nothing, but not much
ysr@777 824 return elapsedTime();
ysr@777 825 }
ysr@777 826
duke@435 827 jlong os::javaTimeMillis() {
duke@435 828 if (UseFakeTimers) {
duke@435 829 return fake_time++;
duke@435 830 } else {
sbohne@496 831 FILETIME wt;
sbohne@496 832 GetSystemTimeAsFileTime(&wt);
sbohne@496 833 return windows_to_java_time(wt);
duke@435 834 }
duke@435 835 }
duke@435 836
duke@435 837 jlong os::javaTimeNanos() {
duke@435 838 if (!has_performance_count) {
johnc@3339 839 return javaTimeMillis() * NANOSECS_PER_MILLISEC; // the best we can do.
duke@435 840 } else {
duke@435 841 LARGE_INTEGER current_count;
duke@435 842 QueryPerformanceCounter(&current_count);
duke@435 843 double current = as_long(current_count);
duke@435 844 double freq = performance_frequency;
johnc@3339 845 jlong time = (jlong)((current/freq) * NANOSECS_PER_SEC);
duke@435 846 return time;
duke@435 847 }
duke@435 848 }
duke@435 849
duke@435 850 void os::javaTimeNanos_info(jvmtiTimerInfo *info_ptr) {
duke@435 851 if (!has_performance_count) {
duke@435 852 // javaTimeMillis() doesn't have much percision,
duke@435 853 // but it is not going to wrap -- so all 64 bits
duke@435 854 info_ptr->max_value = ALL_64_BITS;
duke@435 855
duke@435 856 // this is a wall clock timer, so may skip
duke@435 857 info_ptr->may_skip_backward = true;
duke@435 858 info_ptr->may_skip_forward = true;
duke@435 859 } else {
duke@435 860 jlong freq = performance_frequency;
johnc@3339 861 if (freq < NANOSECS_PER_SEC) {
duke@435 862 // the performance counter is 64 bits and we will
duke@435 863 // be multiplying it -- so no wrap in 64 bits
duke@435 864 info_ptr->max_value = ALL_64_BITS;
johnc@3339 865 } else if (freq > NANOSECS_PER_SEC) {
duke@435 866 // use the max value the counter can reach to
duke@435 867 // determine the max value which could be returned
duke@435 868 julong max_counter = (julong)ALL_64_BITS;
johnc@3339 869 info_ptr->max_value = (jlong)(max_counter / (freq / NANOSECS_PER_SEC));
duke@435 870 } else {
duke@435 871 // the performance counter is 64 bits and we will
duke@435 872 // be using it directly -- so no wrap in 64 bits
duke@435 873 info_ptr->max_value = ALL_64_BITS;
duke@435 874 }
duke@435 875
duke@435 876 // using a counter, so no skipping
duke@435 877 info_ptr->may_skip_backward = false;
duke@435 878 info_ptr->may_skip_forward = false;
duke@435 879 }
duke@435 880 info_ptr->kind = JVMTI_TIMER_ELAPSED; // elapsed not CPU time
duke@435 881 }
duke@435 882
duke@435 883 char* os::local_time_string(char *buf, size_t buflen) {
duke@435 884 SYSTEMTIME st;
duke@435 885 GetLocalTime(&st);
duke@435 886 jio_snprintf(buf, buflen, "%d-%02d-%02d %02d:%02d:%02d",
duke@435 887 st.wYear, st.wMonth, st.wDay, st.wHour, st.wMinute, st.wSecond);
duke@435 888 return buf;
duke@435 889 }
duke@435 890
duke@435 891 bool os::getTimesSecs(double* process_real_time,
duke@435 892 double* process_user_time,
duke@435 893 double* process_system_time) {
duke@435 894 HANDLE h_process = GetCurrentProcess();
duke@435 895 FILETIME create_time, exit_time, kernel_time, user_time;
duke@435 896 BOOL result = GetProcessTimes(h_process,
duke@435 897 &create_time,
duke@435 898 &exit_time,
duke@435 899 &kernel_time,
duke@435 900 &user_time);
duke@435 901 if (result != 0) {
duke@435 902 FILETIME wt;
duke@435 903 GetSystemTimeAsFileTime(&wt);
duke@435 904 jlong rtc_millis = windows_to_java_time(wt);
duke@435 905 jlong user_millis = windows_to_java_time(user_time);
duke@435 906 jlong system_millis = windows_to_java_time(kernel_time);
duke@435 907 *process_real_time = ((double) rtc_millis) / ((double) MILLIUNITS);
duke@435 908 *process_user_time = ((double) user_millis) / ((double) MILLIUNITS);
duke@435 909 *process_system_time = ((double) system_millis) / ((double) MILLIUNITS);
duke@435 910 return true;
duke@435 911 } else {
duke@435 912 return false;
duke@435 913 }
duke@435 914 }
duke@435 915
duke@435 916 void os::shutdown() {
duke@435 917
duke@435 918 // allow PerfMemory to attempt cleanup of any persistent resources
duke@435 919 perfMemory_exit();
duke@435 920
duke@435 921 // flush buffered output, finish log files
duke@435 922 ostream_abort();
duke@435 923
duke@435 924 // Check for abort hook
duke@435 925 abort_hook_t abort_hook = Arguments::abort_hook();
duke@435 926 if (abort_hook != NULL) {
duke@435 927 abort_hook();
duke@435 928 }
duke@435 929 }
duke@435 930
ctornqvi@2520 931
ctornqvi@2520 932 static BOOL (WINAPI *_MiniDumpWriteDump) ( HANDLE, DWORD, HANDLE, MINIDUMP_TYPE, PMINIDUMP_EXCEPTION_INFORMATION,
ctornqvi@2520 933 PMINIDUMP_USER_STREAM_INFORMATION, PMINIDUMP_CALLBACK_INFORMATION);
ctornqvi@2520 934
ctornqvi@2520 935 void os::check_or_create_dump(void* exceptionRecord, void* contextRecord, char* buffer, size_t bufferSize) {
ctornqvi@2520 936 HINSTANCE dbghelp;
ctornqvi@2520 937 EXCEPTION_POINTERS ep;
ctornqvi@2520 938 MINIDUMP_EXCEPTION_INFORMATION mei;
zgu@2772 939 MINIDUMP_EXCEPTION_INFORMATION* pmei;
zgu@2772 940
ctornqvi@2520 941 HANDLE hProcess = GetCurrentProcess();
ctornqvi@2520 942 DWORD processId = GetCurrentProcessId();
ctornqvi@2520 943 HANDLE dumpFile;
ctornqvi@2520 944 MINIDUMP_TYPE dumpType;
ctornqvi@2520 945 static const char* cwd;
ctornqvi@2520 946
ctornqvi@2520 947 // If running on a client version of Windows and user has not explicitly enabled dumping
ctornqvi@2520 948 if (!os::win32::is_windows_server() && !CreateMinidumpOnCrash) {
ctornqvi@2520 949 VMError::report_coredump_status("Minidumps are not enabled by default on client versions of Windows", false);
ctornqvi@2520 950 return;
ctornqvi@2520 951 // If running on a server version of Windows and user has explictly disabled dumping
ctornqvi@2520 952 } else if (os::win32::is_windows_server() && !FLAG_IS_DEFAULT(CreateMinidumpOnCrash) && !CreateMinidumpOnCrash) {
ctornqvi@2520 953 VMError::report_coredump_status("Minidump has been disabled from the command line", false);
ctornqvi@2520 954 return;
ctornqvi@2520 955 }
ctornqvi@2520 956
zgu@3031 957 dbghelp = os::win32::load_Windows_dll("DBGHELP.DLL", NULL, 0);
ctornqvi@2520 958
ctornqvi@2520 959 if (dbghelp == NULL) {
ctornqvi@2520 960 VMError::report_coredump_status("Failed to load dbghelp.dll", false);
ctornqvi@2520 961 return;
ctornqvi@2520 962 }
ctornqvi@2520 963
ctornqvi@2520 964 _MiniDumpWriteDump = CAST_TO_FN_PTR(
ctornqvi@2520 965 BOOL(WINAPI *)( HANDLE, DWORD, HANDLE, MINIDUMP_TYPE, PMINIDUMP_EXCEPTION_INFORMATION,
ctornqvi@2520 966 PMINIDUMP_USER_STREAM_INFORMATION, PMINIDUMP_CALLBACK_INFORMATION),
ctornqvi@2520 967 GetProcAddress(dbghelp, "MiniDumpWriteDump"));
ctornqvi@2520 968
ctornqvi@2520 969 if (_MiniDumpWriteDump == NULL) {
ctornqvi@2520 970 VMError::report_coredump_status("Failed to find MiniDumpWriteDump() in module dbghelp.dll", false);
ctornqvi@2520 971 return;
ctornqvi@2520 972 }
ctornqvi@2520 973
ctornqvi@2521 974 dumpType = (MINIDUMP_TYPE)(MiniDumpWithFullMemory | MiniDumpWithHandleData);
ctornqvi@2521 975
ctornqvi@2521 976 // Older versions of dbghelp.h doesn't contain all the dumptypes we want, dbghelp.h with
ctornqvi@2521 977 // API_VERSION_NUMBER 11 or higher contains the ones we want though
ctornqvi@2521 978 #if API_VERSION_NUMBER >= 11
ctornqvi@2521 979 dumpType = (MINIDUMP_TYPE)(dumpType | MiniDumpWithFullMemoryInfo | MiniDumpWithThreadInfo |
ctornqvi@2521 980 MiniDumpWithUnloadedModules);
ctornqvi@2521 981 #endif
ctornqvi@2520 982
ctornqvi@2520 983 cwd = get_current_directory(NULL, 0);
ctornqvi@2520 984 jio_snprintf(buffer, bufferSize, "%s\\hs_err_pid%u.mdmp",cwd, current_process_id());
ctornqvi@2520 985 dumpFile = CreateFile(buffer, GENERIC_WRITE, 0, NULL, CREATE_ALWAYS, FILE_ATTRIBUTE_NORMAL, NULL);
ctornqvi@2520 986
ctornqvi@2520 987 if (dumpFile == INVALID_HANDLE_VALUE) {
ctornqvi@2520 988 VMError::report_coredump_status("Failed to create file for dumping", false);
ctornqvi@2520 989 return;
ctornqvi@2520 990 }
zgu@2772 991 if (exceptionRecord != NULL && contextRecord != NULL) {
zgu@2772 992 ep.ContextRecord = (PCONTEXT) contextRecord;
zgu@2772 993 ep.ExceptionRecord = (PEXCEPTION_RECORD) exceptionRecord;
zgu@2772 994
zgu@2772 995 mei.ThreadId = GetCurrentThreadId();
zgu@2772 996 mei.ExceptionPointers = &ep;
zgu@2772 997 pmei = &mei;
zgu@2772 998 } else {
zgu@2772 999 pmei = NULL;
zgu@2772 1000 }
zgu@2772 1001
ctornqvi@2520 1002
ctornqvi@2520 1003 // Older versions of dbghelp.dll (the one shipped with Win2003 for example) may not support all
ctornqvi@2520 1004 // the dump types we really want. If first call fails, lets fall back to just use MiniDumpWithFullMemory then.
zgu@2772 1005 if (_MiniDumpWriteDump(hProcess, processId, dumpFile, dumpType, pmei, NULL, NULL) == false &&
zgu@2772 1006 _MiniDumpWriteDump(hProcess, processId, dumpFile, (MINIDUMP_TYPE)MiniDumpWithFullMemory, pmei, NULL, NULL) == false) {
ctornqvi@2520 1007 VMError::report_coredump_status("Call to MiniDumpWriteDump() failed", false);
ctornqvi@2520 1008 } else {
ctornqvi@2520 1009 VMError::report_coredump_status(buffer, true);
ctornqvi@2520 1010 }
ctornqvi@2520 1011
ctornqvi@2520 1012 CloseHandle(dumpFile);
ctornqvi@2520 1013 }
ctornqvi@2520 1014
ctornqvi@2520 1015
ctornqvi@2520 1016
duke@435 1017 void os::abort(bool dump_core)
duke@435 1018 {
duke@435 1019 os::shutdown();
duke@435 1020 // no core dump on Windows
duke@435 1021 ::exit(1);
duke@435 1022 }
duke@435 1023
duke@435 1024 // Die immediately, no exit hook, no abort hook, no cleanup.
duke@435 1025 void os::die() {
duke@435 1026 _exit(-1);
duke@435 1027 }
duke@435 1028
duke@435 1029 // Directory routines copied from src/win32/native/java/io/dirent_md.c
duke@435 1030 // * dirent_md.c 1.15 00/02/02
duke@435 1031 //
duke@435 1032 // The declarations for DIR and struct dirent are in jvm_win32.h.
duke@435 1033
duke@435 1034 /* Caller must have already run dirname through JVM_NativePath, which removes
duke@435 1035 duplicate slashes and converts all instances of '/' into '\\'. */
duke@435 1036
duke@435 1037 DIR *
duke@435 1038 os::opendir(const char *dirname)
duke@435 1039 {
duke@435 1040 assert(dirname != NULL, "just checking"); // hotspot change
zgu@3900 1041 DIR *dirp = (DIR *)malloc(sizeof(DIR), mtInternal);
duke@435 1042 DWORD fattr; // hotspot change
duke@435 1043 char alt_dirname[4] = { 0, 0, 0, 0 };
duke@435 1044
duke@435 1045 if (dirp == 0) {
duke@435 1046 errno = ENOMEM;
duke@435 1047 return 0;
duke@435 1048 }
duke@435 1049
duke@435 1050 /*
duke@435 1051 * Win32 accepts "\" in its POSIX stat(), but refuses to treat it
duke@435 1052 * as a directory in FindFirstFile(). We detect this case here and
duke@435 1053 * prepend the current drive name.
duke@435 1054 */
duke@435 1055 if (dirname[1] == '\0' && dirname[0] == '\\') {
duke@435 1056 alt_dirname[0] = _getdrive() + 'A' - 1;
duke@435 1057 alt_dirname[1] = ':';
duke@435 1058 alt_dirname[2] = '\\';
duke@435 1059 alt_dirname[3] = '\0';
duke@435 1060 dirname = alt_dirname;
duke@435 1061 }
duke@435 1062
zgu@3900 1063 dirp->path = (char *)malloc(strlen(dirname) + 5, mtInternal);
duke@435 1064 if (dirp->path == 0) {
zgu@3900 1065 free(dirp, mtInternal);
duke@435 1066 errno = ENOMEM;
duke@435 1067 return 0;
duke@435 1068 }
duke@435 1069 strcpy(dirp->path, dirname);
duke@435 1070
duke@435 1071 fattr = GetFileAttributes(dirp->path);
duke@435 1072 if (fattr == 0xffffffff) {
zgu@3900 1073 free(dirp->path, mtInternal);
zgu@3900 1074 free(dirp, mtInternal);
duke@435 1075 errno = ENOENT;
duke@435 1076 return 0;
duke@435 1077 } else if ((fattr & FILE_ATTRIBUTE_DIRECTORY) == 0) {
zgu@3900 1078 free(dirp->path, mtInternal);
zgu@3900 1079 free(dirp, mtInternal);
duke@435 1080 errno = ENOTDIR;
duke@435 1081 return 0;
duke@435 1082 }
duke@435 1083
duke@435 1084 /* Append "*.*", or possibly "\\*.*", to path */
duke@435 1085 if (dirp->path[1] == ':'
duke@435 1086 && (dirp->path[2] == '\0'
duke@435 1087 || (dirp->path[2] == '\\' && dirp->path[3] == '\0'))) {
duke@435 1088 /* No '\\' needed for cases like "Z:" or "Z:\" */
duke@435 1089 strcat(dirp->path, "*.*");
duke@435 1090 } else {
duke@435 1091 strcat(dirp->path, "\\*.*");
duke@435 1092 }
duke@435 1093
duke@435 1094 dirp->handle = FindFirstFile(dirp->path, &dirp->find_data);
duke@435 1095 if (dirp->handle == INVALID_HANDLE_VALUE) {
duke@435 1096 if (GetLastError() != ERROR_FILE_NOT_FOUND) {
zgu@3900 1097 free(dirp->path, mtInternal);
zgu@3900 1098 free(dirp, mtInternal);
duke@435 1099 errno = EACCES;
duke@435 1100 return 0;
duke@435 1101 }
duke@435 1102 }
duke@435 1103 return dirp;
duke@435 1104 }
duke@435 1105
duke@435 1106 /* parameter dbuf unused on Windows */
duke@435 1107
duke@435 1108 struct dirent *
duke@435 1109 os::readdir(DIR *dirp, dirent *dbuf)
duke@435 1110 {
duke@435 1111 assert(dirp != NULL, "just checking"); // hotspot change
duke@435 1112 if (dirp->handle == INVALID_HANDLE_VALUE) {
duke@435 1113 return 0;
duke@435 1114 }
duke@435 1115
duke@435 1116 strcpy(dirp->dirent.d_name, dirp->find_data.cFileName);
duke@435 1117
duke@435 1118 if (!FindNextFile(dirp->handle, &dirp->find_data)) {
duke@435 1119 if (GetLastError() == ERROR_INVALID_HANDLE) {
duke@435 1120 errno = EBADF;
duke@435 1121 return 0;
duke@435 1122 }
duke@435 1123 FindClose(dirp->handle);
duke@435 1124 dirp->handle = INVALID_HANDLE_VALUE;
duke@435 1125 }
duke@435 1126
duke@435 1127 return &dirp->dirent;
duke@435 1128 }
duke@435 1129
duke@435 1130 int
duke@435 1131 os::closedir(DIR *dirp)
duke@435 1132 {
duke@435 1133 assert(dirp != NULL, "just checking"); // hotspot change
duke@435 1134 if (dirp->handle != INVALID_HANDLE_VALUE) {
duke@435 1135 if (!FindClose(dirp->handle)) {
duke@435 1136 errno = EBADF;
duke@435 1137 return -1;
duke@435 1138 }
duke@435 1139 dirp->handle = INVALID_HANDLE_VALUE;
duke@435 1140 }
zgu@3900 1141 free(dirp->path, mtInternal);
zgu@3900 1142 free(dirp, mtInternal);
duke@435 1143 return 0;
duke@435 1144 }
duke@435 1145
coleenp@2450 1146 // This must be hard coded because it's the system's temporary
coleenp@2450 1147 // directory not the java application's temp directory, ala java.io.tmpdir.
coleenp@1788 1148 const char* os::get_temp_directory() {
coleenp@1788 1149 static char path_buf[MAX_PATH];
coleenp@1788 1150 if (GetTempPath(MAX_PATH, path_buf)>0)
coleenp@1788 1151 return path_buf;
coleenp@1788 1152 else{
coleenp@1788 1153 path_buf[0]='\0';
coleenp@1788 1154 return path_buf;
coleenp@1788 1155 }
duke@435 1156 }
duke@435 1157
phh@1126 1158 static bool file_exists(const char* filename) {
phh@1126 1159 if (filename == NULL || strlen(filename) == 0) {
phh@1126 1160 return false;
phh@1126 1161 }
phh@1126 1162 return GetFileAttributes(filename) != INVALID_FILE_ATTRIBUTES;
phh@1126 1163 }
phh@1126 1164
bpittore@4261 1165 bool os::dll_build_name(char *buffer, size_t buflen,
phh@1126 1166 const char* pname, const char* fname) {
bpittore@4261 1167 bool retval = false;
phh@1126 1168 const size_t pnamelen = pname ? strlen(pname) : 0;
phh@1126 1169 const char c = (pnamelen > 0) ? pname[pnamelen-1] : 0;
phh@1126 1170
bpittore@4261 1171 // Return error on buffer overflow.
phh@1126 1172 if (pnamelen + strlen(fname) + 10 > buflen) {
bpittore@4261 1173 return retval;
phh@1126 1174 }
phh@1126 1175
phh@1126 1176 if (pnamelen == 0) {
phh@1126 1177 jio_snprintf(buffer, buflen, "%s.dll", fname);
bpittore@4261 1178 retval = true;
phh@1126 1179 } else if (c == ':' || c == '\\') {
phh@1126 1180 jio_snprintf(buffer, buflen, "%s%s.dll", pname, fname);
bpittore@4261 1181 retval = true;
phh@1126 1182 } else if (strchr(pname, *os::path_separator()) != NULL) {
phh@1126 1183 int n;
phh@1126 1184 char** pelements = split_path(pname, &n);
ccheung@4888 1185 if (pelements == NULL) {
dcubed@4891 1186 return false;
ccheung@4888 1187 }
phh@1126 1188 for (int i = 0 ; i < n ; i++) {
phh@1126 1189 char* path = pelements[i];
phh@1126 1190 // Really shouldn't be NULL, but check can't hurt
phh@1126 1191 size_t plen = (path == NULL) ? 0 : strlen(path);
phh@1126 1192 if (plen == 0) {
phh@1126 1193 continue; // skip the empty path values
phh@1126 1194 }
phh@1126 1195 const char lastchar = path[plen - 1];
phh@1126 1196 if (lastchar == ':' || lastchar == '\\') {
phh@1126 1197 jio_snprintf(buffer, buflen, "%s%s.dll", path, fname);
phh@1126 1198 } else {
phh@1126 1199 jio_snprintf(buffer, buflen, "%s\\%s.dll", path, fname);
phh@1126 1200 }
phh@1126 1201 if (file_exists(buffer)) {
bpittore@4261 1202 retval = true;
phh@1126 1203 break;
phh@1126 1204 }
kamg@677 1205 }
phh@1126 1206 // release the storage
phh@1126 1207 for (int i = 0 ; i < n ; i++) {
phh@1126 1208 if (pelements[i] != NULL) {
zgu@3900 1209 FREE_C_HEAP_ARRAY(char, pelements[i], mtInternal);
phh@1126 1210 }
kamg@677 1211 }
phh@1126 1212 if (pelements != NULL) {
zgu@3900 1213 FREE_C_HEAP_ARRAY(char*, pelements, mtInternal);
phh@1126 1214 }
phh@1126 1215 } else {
phh@1126 1216 jio_snprintf(buffer, buflen, "%s\\%s.dll", pname, fname);
bpittore@4261 1217 retval = true;
bpittore@4261 1218 }
bpittore@4261 1219 return retval;
kamg@677 1220 }
kamg@677 1221
duke@435 1222 // Needs to be in os specific directory because windows requires another
duke@435 1223 // header file <direct.h>
vlivanov@5027 1224 const char* os::get_current_directory(char *buf, size_t buflen) {
vlivanov@5027 1225 int n = static_cast<int>(buflen);
vlivanov@5027 1226 if (buflen > INT_MAX) n = INT_MAX;
vlivanov@5027 1227 return _getcwd(buf, n);
duke@435 1228 }
duke@435 1229
duke@435 1230 //-----------------------------------------------------------
duke@435 1231 // Helper functions for fatal error handler
duke@435 1232 #ifdef _WIN64
duke@435 1233 // Helper routine which returns true if address in
duke@435 1234 // within the NTDLL address space.
duke@435 1235 //
duke@435 1236 static bool _addr_in_ntdll( address addr )
duke@435 1237 {
duke@435 1238 HMODULE hmod;
duke@435 1239 MODULEINFO minfo;
duke@435 1240
duke@435 1241 hmod = GetModuleHandle("NTDLL.DLL");
duke@435 1242 if ( hmod == NULL ) return false;
zgu@3031 1243 if ( !os::PSApiDll::GetModuleInformation( GetCurrentProcess(), hmod,
duke@435 1244 &minfo, sizeof(MODULEINFO)) )
duke@435 1245 return false;
duke@435 1246
duke@435 1247 if ( (addr >= minfo.lpBaseOfDll) &&
duke@435 1248 (addr < (address)((uintptr_t)minfo.lpBaseOfDll + (uintptr_t)minfo.SizeOfImage)))
duke@435 1249 return true;
duke@435 1250 else
duke@435 1251 return false;
duke@435 1252 }
duke@435 1253 #endif
duke@435 1254
duke@435 1255
duke@435 1256 // Enumerate all modules for a given process ID
duke@435 1257 //
duke@435 1258 // Notice that Windows 95/98/Me and Windows NT/2000/XP have
duke@435 1259 // different API for doing this. We use PSAPI.DLL on NT based
duke@435 1260 // Windows and ToolHelp on 95/98/Me.
duke@435 1261
duke@435 1262 // Callback function that is called by enumerate_modules() on
duke@435 1263 // every DLL module.
duke@435 1264 // Input parameters:
duke@435 1265 // int pid,
duke@435 1266 // char* module_file_name,
duke@435 1267 // address module_base_addr,
duke@435 1268 // unsigned module_size,
duke@435 1269 // void* param
duke@435 1270 typedef int (*EnumModulesCallbackFunc)(int, char *, address, unsigned, void *);
duke@435 1271
duke@435 1272 // enumerate_modules for Windows NT, using PSAPI
duke@435 1273 static int _enumerate_modules_winnt( int pid, EnumModulesCallbackFunc func, void * param)
duke@435 1274 {
duke@435 1275 HANDLE hProcess ;
duke@435 1276
duke@435 1277 # define MAX_NUM_MODULES 128
duke@435 1278 HMODULE modules[MAX_NUM_MODULES];
duke@435 1279 static char filename[ MAX_PATH ];
duke@435 1280 int result = 0;
duke@435 1281
zgu@3031 1282 if (!os::PSApiDll::PSApiAvailable()) {
zgu@3031 1283 return 0;
zgu@3031 1284 }
duke@435 1285
duke@435 1286 hProcess = OpenProcess(PROCESS_QUERY_INFORMATION | PROCESS_VM_READ,
duke@435 1287 FALSE, pid ) ;
duke@435 1288 if (hProcess == NULL) return 0;
duke@435 1289
duke@435 1290 DWORD size_needed;
zgu@3031 1291 if (!os::PSApiDll::EnumProcessModules(hProcess, modules,
duke@435 1292 sizeof(modules), &size_needed)) {
duke@435 1293 CloseHandle( hProcess );
duke@435 1294 return 0;
duke@435 1295 }
duke@435 1296
duke@435 1297 // number of modules that are currently loaded
duke@435 1298 int num_modules = size_needed / sizeof(HMODULE);
duke@435 1299
duke@435 1300 for (int i = 0; i < MIN2(num_modules, MAX_NUM_MODULES); i++) {
duke@435 1301 // Get Full pathname:
zgu@3031 1302 if(!os::PSApiDll::GetModuleFileNameEx(hProcess, modules[i],
duke@435 1303 filename, sizeof(filename))) {
duke@435 1304 filename[0] = '\0';
duke@435 1305 }
duke@435 1306
duke@435 1307 MODULEINFO modinfo;
zgu@3031 1308 if (!os::PSApiDll::GetModuleInformation(hProcess, modules[i],
duke@435 1309 &modinfo, sizeof(modinfo))) {
duke@435 1310 modinfo.lpBaseOfDll = NULL;
duke@435 1311 modinfo.SizeOfImage = 0;
duke@435 1312 }
duke@435 1313
duke@435 1314 // Invoke callback function
duke@435 1315 result = func(pid, filename, (address)modinfo.lpBaseOfDll,
duke@435 1316 modinfo.SizeOfImage, param);
duke@435 1317 if (result) break;
duke@435 1318 }
duke@435 1319
duke@435 1320 CloseHandle( hProcess ) ;
duke@435 1321 return result;
duke@435 1322 }
duke@435 1323
duke@435 1324
duke@435 1325 // enumerate_modules for Windows 95/98/ME, using TOOLHELP
duke@435 1326 static int _enumerate_modules_windows( int pid, EnumModulesCallbackFunc func, void *param)
duke@435 1327 {
duke@435 1328 HANDLE hSnapShot ;
duke@435 1329 static MODULEENTRY32 modentry ;
duke@435 1330 int result = 0;
duke@435 1331
zgu@3031 1332 if (!os::Kernel32Dll::HelpToolsAvailable()) {
zgu@3031 1333 return 0;
zgu@3031 1334 }
duke@435 1335
duke@435 1336 // Get a handle to a Toolhelp snapshot of the system
zgu@3031 1337 hSnapShot = os::Kernel32Dll::CreateToolhelp32Snapshot(TH32CS_SNAPMODULE, pid ) ;
duke@435 1338 if( hSnapShot == INVALID_HANDLE_VALUE ) {
duke@435 1339 return FALSE ;
duke@435 1340 }
duke@435 1341
duke@435 1342 // iterate through all modules
duke@435 1343 modentry.dwSize = sizeof(MODULEENTRY32) ;
zgu@3031 1344 bool not_done = os::Kernel32Dll::Module32First( hSnapShot, &modentry ) != 0;
duke@435 1345
duke@435 1346 while( not_done ) {
duke@435 1347 // invoke the callback
duke@435 1348 result=func(pid, modentry.szExePath, (address)modentry.modBaseAddr,
duke@435 1349 modentry.modBaseSize, param);
duke@435 1350 if (result) break;
duke@435 1351
duke@435 1352 modentry.dwSize = sizeof(MODULEENTRY32) ;
zgu@3031 1353 not_done = os::Kernel32Dll::Module32Next( hSnapShot, &modentry ) != 0;
duke@435 1354 }
duke@435 1355
duke@435 1356 CloseHandle(hSnapShot);
duke@435 1357 return result;
duke@435 1358 }
duke@435 1359
duke@435 1360 int enumerate_modules( int pid, EnumModulesCallbackFunc func, void * param )
duke@435 1361 {
duke@435 1362 // Get current process ID if caller doesn't provide it.
duke@435 1363 if (!pid) pid = os::current_process_id();
duke@435 1364
duke@435 1365 if (os::win32::is_nt()) return _enumerate_modules_winnt (pid, func, param);
duke@435 1366 else return _enumerate_modules_windows(pid, func, param);
duke@435 1367 }
duke@435 1368
duke@435 1369 struct _modinfo {
duke@435 1370 address addr;
duke@435 1371 char* full_path; // point to a char buffer
duke@435 1372 int buflen; // size of the buffer
duke@435 1373 address base_addr;
duke@435 1374 };
duke@435 1375
duke@435 1376 static int _locate_module_by_addr(int pid, char * mod_fname, address base_addr,
duke@435 1377 unsigned size, void * param) {
duke@435 1378 struct _modinfo *pmod = (struct _modinfo *)param;
duke@435 1379 if (!pmod) return -1;
duke@435 1380
duke@435 1381 if (base_addr <= pmod->addr &&
duke@435 1382 base_addr+size > pmod->addr) {
duke@435 1383 // if a buffer is provided, copy path name to the buffer
duke@435 1384 if (pmod->full_path) {
duke@435 1385 jio_snprintf(pmod->full_path, pmod->buflen, "%s", mod_fname);
duke@435 1386 }
duke@435 1387 pmod->base_addr = base_addr;
duke@435 1388 return 1;
duke@435 1389 }
duke@435 1390 return 0;
duke@435 1391 }
duke@435 1392
duke@435 1393 bool os::dll_address_to_library_name(address addr, char* buf,
duke@435 1394 int buflen, int* offset) {
duke@435 1395 // NOTE: the reason we don't use SymGetModuleInfo() is it doesn't always
duke@435 1396 // return the full path to the DLL file, sometimes it returns path
duke@435 1397 // to the corresponding PDB file (debug info); sometimes it only
duke@435 1398 // returns partial path, which makes life painful.
duke@435 1399
duke@435 1400 struct _modinfo mi;
duke@435 1401 mi.addr = addr;
duke@435 1402 mi.full_path = buf;
duke@435 1403 mi.buflen = buflen;
duke@435 1404 int pid = os::current_process_id();
duke@435 1405 if (enumerate_modules(pid, _locate_module_by_addr, (void *)&mi)) {
duke@435 1406 // buf already contains path name
duke@435 1407 if (offset) *offset = addr - mi.base_addr;
duke@435 1408 return true;
duke@435 1409 } else {
duke@435 1410 if (buf) buf[0] = '\0';
duke@435 1411 if (offset) *offset = -1;
duke@435 1412 return false;
duke@435 1413 }
duke@435 1414 }
duke@435 1415
duke@435 1416 bool os::dll_address_to_function_name(address addr, char *buf,
duke@435 1417 int buflen, int *offset) {
zgu@3430 1418 if (Decoder::decode(addr, buf, buflen, offset)) {
zgu@2364 1419 return true;
zgu@2364 1420 }
zgu@2364 1421 if (offset != NULL) *offset = -1;
zgu@2364 1422 if (buf != NULL) buf[0] = '\0';
duke@435 1423 return false;
duke@435 1424 }
duke@435 1425
duke@435 1426 // save the start and end address of jvm.dll into param[0] and param[1]
duke@435 1427 static int _locate_jvm_dll(int pid, char* mod_fname, address base_addr,
duke@435 1428 unsigned size, void * param) {
duke@435 1429 if (!param) return -1;
duke@435 1430
duke@435 1431 if (base_addr <= (address)_locate_jvm_dll &&
duke@435 1432 base_addr+size > (address)_locate_jvm_dll) {
duke@435 1433 ((address*)param)[0] = base_addr;
duke@435 1434 ((address*)param)[1] = base_addr + size;
duke@435 1435 return 1;
duke@435 1436 }
duke@435 1437 return 0;
duke@435 1438 }
duke@435 1439
duke@435 1440 address vm_lib_location[2]; // start and end address of jvm.dll
duke@435 1441
duke@435 1442 // check if addr is inside jvm.dll
duke@435 1443 bool os::address_is_in_vm(address addr) {
duke@435 1444 if (!vm_lib_location[0] || !vm_lib_location[1]) {
duke@435 1445 int pid = os::current_process_id();
duke@435 1446 if (!enumerate_modules(pid, _locate_jvm_dll, (void *)vm_lib_location)) {
duke@435 1447 assert(false, "Can't find jvm module.");
duke@435 1448 return false;
duke@435 1449 }
duke@435 1450 }
duke@435 1451
duke@435 1452 return (vm_lib_location[0] <= addr) && (addr < vm_lib_location[1]);
duke@435 1453 }
duke@435 1454
duke@435 1455 // print module info; param is outputStream*
duke@435 1456 static int _print_module(int pid, char* fname, address base,
duke@435 1457 unsigned size, void* param) {
duke@435 1458 if (!param) return -1;
duke@435 1459
duke@435 1460 outputStream* st = (outputStream*)param;
duke@435 1461
duke@435 1462 address end_addr = base + size;
duke@435 1463 st->print(PTR_FORMAT " - " PTR_FORMAT " \t%s\n", base, end_addr, fname);
duke@435 1464 return 0;
duke@435 1465 }
duke@435 1466
duke@435 1467 // Loads .dll/.so and
duke@435 1468 // in case of error it checks if .dll/.so was built for the
duke@435 1469 // same architecture as Hotspot is running on
duke@435 1470 void * os::dll_load(const char *name, char *ebuf, int ebuflen)
duke@435 1471 {
duke@435 1472 void * result = LoadLibrary(name);
duke@435 1473 if (result != NULL)
duke@435 1474 {
duke@435 1475 return result;
duke@435 1476 }
duke@435 1477
phh@3379 1478 DWORD errcode = GetLastError();
duke@435 1479 if (errcode == ERROR_MOD_NOT_FOUND) {
duke@435 1480 strncpy(ebuf, "Can't find dependent libraries", ebuflen-1);
duke@435 1481 ebuf[ebuflen-1]='\0';
duke@435 1482 return NULL;
duke@435 1483 }
duke@435 1484
duke@435 1485 // Parsing dll below
duke@435 1486 // If we can read dll-info and find that dll was built
duke@435 1487 // for an architecture other than Hotspot is running in
duke@435 1488 // - then print to buffer "DLL was built for a different architecture"
phh@3379 1489 // else call os::lasterror to obtain system error message
duke@435 1490
duke@435 1491 // Read system error message into ebuf
duke@435 1492 // It may or may not be overwritten below (in the for loop and just above)
phh@3379 1493 lasterror(ebuf, (size_t) ebuflen);
duke@435 1494 ebuf[ebuflen-1]='\0';
duke@435 1495 int file_descriptor=::open(name, O_RDONLY | O_BINARY, 0);
duke@435 1496 if (file_descriptor<0)
duke@435 1497 {
duke@435 1498 return NULL;
duke@435 1499 }
duke@435 1500
duke@435 1501 uint32_t signature_offset;
duke@435 1502 uint16_t lib_arch=0;
duke@435 1503 bool failed_to_get_lib_arch=
duke@435 1504 (
duke@435 1505 //Go to position 3c in the dll
duke@435 1506 (os::seek_to_file_offset(file_descriptor,IMAGE_FILE_PTR_TO_SIGNATURE)<0)
duke@435 1507 ||
duke@435 1508 // Read loacation of signature
duke@435 1509 (sizeof(signature_offset)!=
duke@435 1510 (os::read(file_descriptor, (void*)&signature_offset,sizeof(signature_offset))))
duke@435 1511 ||
duke@435 1512 //Go to COFF File Header in dll
duke@435 1513 //that is located after"signature" (4 bytes long)
duke@435 1514 (os::seek_to_file_offset(file_descriptor,
duke@435 1515 signature_offset+IMAGE_FILE_SIGNATURE_LENGTH)<0)
duke@435 1516 ||
duke@435 1517 //Read field that contains code of architecture
duke@435 1518 // that dll was build for
duke@435 1519 (sizeof(lib_arch)!=
duke@435 1520 (os::read(file_descriptor, (void*)&lib_arch,sizeof(lib_arch))))
duke@435 1521 );
duke@435 1522
duke@435 1523 ::close(file_descriptor);
duke@435 1524 if (failed_to_get_lib_arch)
duke@435 1525 {
phh@3379 1526 // file i/o error - report os::lasterror(...) msg
duke@435 1527 return NULL;
duke@435 1528 }
duke@435 1529
duke@435 1530 typedef struct
duke@435 1531 {
duke@435 1532 uint16_t arch_code;
duke@435 1533 char* arch_name;
duke@435 1534 } arch_t;
duke@435 1535
duke@435 1536 static const arch_t arch_array[]={
duke@435 1537 {IMAGE_FILE_MACHINE_I386, (char*)"IA 32"},
duke@435 1538 {IMAGE_FILE_MACHINE_AMD64, (char*)"AMD 64"},
duke@435 1539 {IMAGE_FILE_MACHINE_IA64, (char*)"IA 64"}
duke@435 1540 };
duke@435 1541 #if (defined _M_IA64)
duke@435 1542 static const uint16_t running_arch=IMAGE_FILE_MACHINE_IA64;
duke@435 1543 #elif (defined _M_AMD64)
duke@435 1544 static const uint16_t running_arch=IMAGE_FILE_MACHINE_AMD64;
duke@435 1545 #elif (defined _M_IX86)
duke@435 1546 static const uint16_t running_arch=IMAGE_FILE_MACHINE_I386;
duke@435 1547 #else
duke@435 1548 #error Method os::dll_load requires that one of following \
duke@435 1549 is defined :_M_IA64,_M_AMD64 or _M_IX86
duke@435 1550 #endif
duke@435 1551
duke@435 1552
duke@435 1553 // Obtain a string for printf operation
duke@435 1554 // lib_arch_str shall contain string what platform this .dll was built for
duke@435 1555 // running_arch_str shall string contain what platform Hotspot was built for
duke@435 1556 char *running_arch_str=NULL,*lib_arch_str=NULL;
duke@435 1557 for (unsigned int i=0;i<ARRAY_SIZE(arch_array);i++)
duke@435 1558 {
duke@435 1559 if (lib_arch==arch_array[i].arch_code)
duke@435 1560 lib_arch_str=arch_array[i].arch_name;
duke@435 1561 if (running_arch==arch_array[i].arch_code)
duke@435 1562 running_arch_str=arch_array[i].arch_name;
duke@435 1563 }
duke@435 1564
duke@435 1565 assert(running_arch_str,
duke@435 1566 "Didn't find runing architecture code in arch_array");
duke@435 1567
duke@435 1568 // If the architure is right
phh@3379 1569 // but some other error took place - report os::lasterror(...) msg
duke@435 1570 if (lib_arch == running_arch)
duke@435 1571 {
duke@435 1572 return NULL;
duke@435 1573 }
duke@435 1574
duke@435 1575 if (lib_arch_str!=NULL)
duke@435 1576 {
duke@435 1577 ::_snprintf(ebuf, ebuflen-1,
duke@435 1578 "Can't load %s-bit .dll on a %s-bit platform",
duke@435 1579 lib_arch_str,running_arch_str);
duke@435 1580 }
duke@435 1581 else
duke@435 1582 {
duke@435 1583 // don't know what architecture this dll was build for
duke@435 1584 ::_snprintf(ebuf, ebuflen-1,
duke@435 1585 "Can't load this .dll (machine code=0x%x) on a %s-bit platform",
duke@435 1586 lib_arch,running_arch_str);
duke@435 1587 }
duke@435 1588
duke@435 1589 return NULL;
duke@435 1590 }
duke@435 1591
duke@435 1592
duke@435 1593 void os::print_dll_info(outputStream *st) {
duke@435 1594 int pid = os::current_process_id();
duke@435 1595 st->print_cr("Dynamic libraries:");
duke@435 1596 enumerate_modules(pid, _print_module, (void *)st);
duke@435 1597 }
duke@435 1598
nloodin@3783 1599 void os::print_os_info_brief(outputStream* st) {
nloodin@3783 1600 os::print_os_info(st);
nloodin@3783 1601 }
nloodin@3783 1602
duke@435 1603 void os::print_os_info(outputStream* st) {
xlu@708 1604 st->print("OS:");
xlu@708 1605
nloodin@3783 1606 os::win32::print_windows_version(st);
nloodin@3783 1607 }
nloodin@3783 1608
nloodin@3783 1609 void os::win32::print_windows_version(outputStream* st) {
xlu@708 1610 OSVERSIONINFOEX osvi;
xlu@708 1611 ZeroMemory(&osvi, sizeof(OSVERSIONINFOEX));
xlu@708 1612 osvi.dwOSVersionInfoSize = sizeof(OSVERSIONINFOEX);
xlu@708 1613
xlu@708 1614 if (!GetVersionEx((OSVERSIONINFO *)&osvi)) {
xlu@708 1615 st->print_cr("N/A");
xlu@708 1616 return;
xlu@708 1617 }
xlu@708 1618
xlu@708 1619 int os_vers = osvi.dwMajorVersion * 1000 + osvi.dwMinorVersion;
xlu@708 1620 if (osvi.dwPlatformId == VER_PLATFORM_WIN32_NT) {
xlu@708 1621 switch (os_vers) {
xlu@708 1622 case 3051: st->print(" Windows NT 3.51"); break;
xlu@708 1623 case 4000: st->print(" Windows NT 4.0"); break;
xlu@708 1624 case 5000: st->print(" Windows 2000"); break;
xlu@708 1625 case 5001: st->print(" Windows XP"); break;
xlu@708 1626 case 5002:
asaha@1397 1627 case 6000:
mikael@3829 1628 case 6001:
mikael@3829 1629 case 6002: {
xlu@708 1630 // Retrieve SYSTEM_INFO from GetNativeSystemInfo call so that we could
xlu@708 1631 // find out whether we are running on 64 bit processor or not.
xlu@708 1632 SYSTEM_INFO si;
xlu@708 1633 ZeroMemory(&si, sizeof(SYSTEM_INFO));
zgu@3031 1634 if (!os::Kernel32Dll::GetNativeSystemInfoAvailable()){
xlu@708 1635 GetSystemInfo(&si);
xlu@708 1636 } else {
zgu@3031 1637 os::Kernel32Dll::GetNativeSystemInfo(&si);
xlu@708 1638 }
xlu@708 1639 if (os_vers == 5002) {
xlu@708 1640 if (osvi.wProductType == VER_NT_WORKSTATION &&
xlu@708 1641 si.wProcessorArchitecture == PROCESSOR_ARCHITECTURE_AMD64)
xlu@708 1642 st->print(" Windows XP x64 Edition");
xlu@708 1643 else
xlu@708 1644 st->print(" Windows Server 2003 family");
asaha@1397 1645 } else if (os_vers == 6000) {
xlu@708 1646 if (osvi.wProductType == VER_NT_WORKSTATION)
xlu@708 1647 st->print(" Windows Vista");
xlu@708 1648 else
xlu@708 1649 st->print(" Windows Server 2008");
xlu@708 1650 if (si.wProcessorArchitecture == PROCESSOR_ARCHITECTURE_AMD64)
xlu@708 1651 st->print(" , 64 bit");
asaha@1397 1652 } else if (os_vers == 6001) {
asaha@1397 1653 if (osvi.wProductType == VER_NT_WORKSTATION) {
asaha@1397 1654 st->print(" Windows 7");
asaha@1397 1655 } else {
asaha@1397 1656 // Unrecognized windows, print out its major and minor versions
asaha@1397 1657 st->print(" Windows NT %d.%d", osvi.dwMajorVersion, osvi.dwMinorVersion);
asaha@1397 1658 }
asaha@1397 1659 if (si.wProcessorArchitecture == PROCESSOR_ARCHITECTURE_AMD64)
asaha@1397 1660 st->print(" , 64 bit");
mikael@3829 1661 } else if (os_vers == 6002) {
mikael@3829 1662 if (osvi.wProductType == VER_NT_WORKSTATION) {
mikael@3829 1663 st->print(" Windows 8");
mikael@3829 1664 } else {
mikael@3829 1665 st->print(" Windows Server 2012");
mikael@3829 1666 }
mikael@3829 1667 if (si.wProcessorArchitecture == PROCESSOR_ARCHITECTURE_AMD64)
mikael@3829 1668 st->print(" , 64 bit");
asaha@1397 1669 } else { // future os
asaha@1397 1670 // Unrecognized windows, print out its major and minor versions
asaha@1397 1671 st->print(" Windows NT %d.%d", osvi.dwMajorVersion, osvi.dwMinorVersion);
asaha@1397 1672 if (si.wProcessorArchitecture == PROCESSOR_ARCHITECTURE_AMD64)
asaha@1397 1673 st->print(" , 64 bit");
xlu@708 1674 }
xlu@708 1675 break;
xlu@708 1676 }
xlu@708 1677 default: // future windows, print out its major and minor versions
xlu@708 1678 st->print(" Windows NT %d.%d", osvi.dwMajorVersion, osvi.dwMinorVersion);
xlu@708 1679 }
xlu@708 1680 } else {
xlu@708 1681 switch (os_vers) {
xlu@708 1682 case 4000: st->print(" Windows 95"); break;
xlu@708 1683 case 4010: st->print(" Windows 98"); break;
xlu@708 1684 case 4090: st->print(" Windows Me"); break;
xlu@708 1685 default: // future windows, print out its major and minor versions
xlu@708 1686 st->print(" Windows %d.%d", osvi.dwMajorVersion, osvi.dwMinorVersion);
xlu@708 1687 }
xlu@708 1688 }
xlu@708 1689 st->print(" Build %d", osvi.dwBuildNumber);
xlu@708 1690 st->print(" %s", osvi.szCSDVersion); // service pack
xlu@708 1691 st->cr();
duke@435 1692 }
duke@435 1693
jcoomes@2997 1694 void os::pd_print_cpu_info(outputStream* st) {
jcoomes@2997 1695 // Nothing to do for now.
jcoomes@2997 1696 }
jcoomes@2997 1697
duke@435 1698 void os::print_memory_info(outputStream* st) {
duke@435 1699 st->print("Memory:");
duke@435 1700 st->print(" %dk page", os::vm_page_size()>>10);
duke@435 1701
poonam@1312 1702 // Use GlobalMemoryStatusEx() because GlobalMemoryStatus() may return incorrect
poonam@1312 1703 // value if total memory is larger than 4GB
poonam@1312 1704 MEMORYSTATUSEX ms;
poonam@1312 1705 ms.dwLength = sizeof(ms);
poonam@1312 1706 GlobalMemoryStatusEx(&ms);
duke@435 1707
duke@435 1708 st->print(", physical %uk", os::physical_memory() >> 10);
duke@435 1709 st->print("(%uk free)", os::available_memory() >> 10);
duke@435 1710
poonam@1312 1711 st->print(", swap %uk", ms.ullTotalPageFile >> 10);
poonam@1312 1712 st->print("(%uk free)", ms.ullAvailPageFile >> 10);
duke@435 1713 st->cr();
duke@435 1714 }
duke@435 1715
duke@435 1716 void os::print_siginfo(outputStream *st, void *siginfo) {
duke@435 1717 EXCEPTION_RECORD* er = (EXCEPTION_RECORD*)siginfo;
duke@435 1718 st->print("siginfo:");
duke@435 1719 st->print(" ExceptionCode=0x%x", er->ExceptionCode);
duke@435 1720
duke@435 1721 if (er->ExceptionCode == EXCEPTION_ACCESS_VIOLATION &&
duke@435 1722 er->NumberParameters >= 2) {
duke@435 1723 switch (er->ExceptionInformation[0]) {
duke@435 1724 case 0: st->print(", reading address"); break;
duke@435 1725 case 1: st->print(", writing address"); break;
duke@435 1726 default: st->print(", ExceptionInformation=" INTPTR_FORMAT,
duke@435 1727 er->ExceptionInformation[0]);
duke@435 1728 }
duke@435 1729 st->print(" " INTPTR_FORMAT, er->ExceptionInformation[1]);
duke@435 1730 } else if (er->ExceptionCode == EXCEPTION_IN_PAGE_ERROR &&
duke@435 1731 er->NumberParameters >= 2 && UseSharedSpaces) {
duke@435 1732 FileMapInfo* mapinfo = FileMapInfo::current_info();
duke@435 1733 if (mapinfo->is_in_shared_space((void*)er->ExceptionInformation[1])) {
duke@435 1734 st->print("\n\nError accessing class data sharing archive." \
duke@435 1735 " Mapped file inaccessible during execution, " \
duke@435 1736 " possible disk/network problem.");
duke@435 1737 }
duke@435 1738 } else {
duke@435 1739 int num = er->NumberParameters;
duke@435 1740 if (num > 0) {
duke@435 1741 st->print(", ExceptionInformation=");
duke@435 1742 for (int i = 0; i < num; i++) {
duke@435 1743 st->print(INTPTR_FORMAT " ", er->ExceptionInformation[i]);
duke@435 1744 }
duke@435 1745 }
duke@435 1746 }
duke@435 1747 st->cr();
duke@435 1748 }
duke@435 1749
duke@435 1750 void os::print_signal_handlers(outputStream* st, char* buf, size_t buflen) {
duke@435 1751 // do nothing
duke@435 1752 }
duke@435 1753
duke@435 1754 static char saved_jvm_path[MAX_PATH] = {0};
duke@435 1755
dcubed@4392 1756 // Find the full path to the current module, jvm.dll
duke@435 1757 void os::jvm_path(char *buf, jint buflen) {
duke@435 1758 // Error checking.
duke@435 1759 if (buflen < MAX_PATH) {
duke@435 1760 assert(false, "must use a large-enough buffer");
duke@435 1761 buf[0] = '\0';
duke@435 1762 return;
duke@435 1763 }
duke@435 1764 // Lazy resolve the path to current module.
duke@435 1765 if (saved_jvm_path[0] != 0) {
duke@435 1766 strcpy(buf, saved_jvm_path);
duke@435 1767 return;
duke@435 1768 }
duke@435 1769
sla@2327 1770 buf[0] = '\0';
sla@2584 1771 if (Arguments::created_by_gamma_launcher()) {
sla@2327 1772 // Support for the gamma launcher. Check for an
sla@2369 1773 // JAVA_HOME environment variable
sla@2327 1774 // and fix up the path so it looks like
sla@2327 1775 // libjvm.so is installed there (append a fake suffix
sla@2327 1776 // hotspot/libjvm.so).
sla@2369 1777 char* java_home_var = ::getenv("JAVA_HOME");
sla@2327 1778 if (java_home_var != NULL && java_home_var[0] != 0) {
sla@2327 1779
sla@2327 1780 strncpy(buf, java_home_var, buflen);
sla@2327 1781
sla@2327 1782 // determine if this is a legacy image or modules image
sla@2327 1783 // modules image doesn't have "jre" subdirectory
sla@2327 1784 size_t len = strlen(buf);
sla@2327 1785 char* jrebin_p = buf + len;
sla@2327 1786 jio_snprintf(jrebin_p, buflen-len, "\\jre\\bin\\");
sla@2327 1787 if (0 != _access(buf, 0)) {
sla@2327 1788 jio_snprintf(jrebin_p, buflen-len, "\\bin\\");
sla@2327 1789 }
sla@2327 1790 len = strlen(buf);
sla@2327 1791 jio_snprintf(buf + len, buflen-len, "hotspot\\jvm.dll");
sla@2327 1792 }
sla@2327 1793 }
sla@2327 1794
sla@2327 1795 if(buf[0] == '\0') {
duke@435 1796 GetModuleFileName(vm_lib_handle, buf, buflen);
sla@2327 1797 }
duke@435 1798 strcpy(saved_jvm_path, buf);
duke@435 1799 }
duke@435 1800
duke@435 1801
duke@435 1802 void os::print_jni_name_prefix_on(outputStream* st, int args_size) {
duke@435 1803 #ifndef _WIN64
duke@435 1804 st->print("_");
duke@435 1805 #endif
duke@435 1806 }
duke@435 1807
duke@435 1808
duke@435 1809 void os::print_jni_name_suffix_on(outputStream* st, int args_size) {
duke@435 1810 #ifndef _WIN64
duke@435 1811 st->print("@%d", args_size * sizeof(int));
duke@435 1812 #endif
duke@435 1813 }
duke@435 1814
ikrylov@2322 1815 // This method is a copy of JDK's sysGetLastErrorString
ikrylov@2322 1816 // from src/windows/hpi/src/system_md.c
ikrylov@2322 1817
phh@3379 1818 size_t os::lasterror(char* buf, size_t len) {
phh@3379 1819 DWORD errval;
ikrylov@2322 1820
ikrylov@2322 1821 if ((errval = GetLastError()) != 0) {
phh@3379 1822 // DOS error
phh@3379 1823 size_t n = (size_t)FormatMessage(
ikrylov@2322 1824 FORMAT_MESSAGE_FROM_SYSTEM|FORMAT_MESSAGE_IGNORE_INSERTS,
ikrylov@2322 1825 NULL,
ikrylov@2322 1826 errval,
ikrylov@2322 1827 0,
ikrylov@2322 1828 buf,
ikrylov@2322 1829 (DWORD)len,
ikrylov@2322 1830 NULL);
ikrylov@2322 1831 if (n > 3) {
phh@3379 1832 // Drop final '.', CR, LF
ikrylov@2322 1833 if (buf[n - 1] == '\n') n--;
ikrylov@2322 1834 if (buf[n - 1] == '\r') n--;
ikrylov@2322 1835 if (buf[n - 1] == '.') n--;
ikrylov@2322 1836 buf[n] = '\0';
ikrylov@2322 1837 }
ikrylov@2322 1838 return n;
ikrylov@2322 1839 }
ikrylov@2322 1840
ikrylov@2322 1841 if (errno != 0) {
phh@3379 1842 // C runtime error that has no corresponding DOS error code
phh@3379 1843 const char* s = strerror(errno);
ikrylov@2322 1844 size_t n = strlen(s);
ikrylov@2322 1845 if (n >= len) n = len - 1;
ikrylov@2322 1846 strncpy(buf, s, n);
ikrylov@2322 1847 buf[n] = '\0';
ikrylov@2322 1848 return n;
ikrylov@2322 1849 }
phh@3379 1850
ikrylov@2322 1851 return 0;
ikrylov@2322 1852 }
ikrylov@2322 1853
phh@3379 1854 int os::get_last_error() {
phh@3379 1855 DWORD error = GetLastError();
phh@3379 1856 if (error == 0)
phh@3379 1857 error = errno;
phh@3379 1858 return (int)error;
phh@3379 1859 }
phh@3379 1860
duke@435 1861 // sun.misc.Signal
duke@435 1862 // NOTE that this is a workaround for an apparent kernel bug where if
duke@435 1863 // a signal handler for SIGBREAK is installed then that signal handler
duke@435 1864 // takes priority over the console control handler for CTRL_CLOSE_EVENT.
duke@435 1865 // See bug 4416763.
duke@435 1866 static void (*sigbreakHandler)(int) = NULL;
duke@435 1867
duke@435 1868 static void UserHandler(int sig, void *siginfo, void *context) {
duke@435 1869 os::signal_notify(sig);
duke@435 1870 // We need to reinstate the signal handler each time...
duke@435 1871 os::signal(sig, (void*)UserHandler);
duke@435 1872 }
duke@435 1873
duke@435 1874 void* os::user_handler() {
duke@435 1875 return (void*) UserHandler;
duke@435 1876 }
duke@435 1877
duke@435 1878 void* os::signal(int signal_number, void* handler) {
duke@435 1879 if ((signal_number == SIGBREAK) && (!ReduceSignalUsage)) {
duke@435 1880 void (*oldHandler)(int) = sigbreakHandler;
duke@435 1881 sigbreakHandler = (void (*)(int)) handler;
duke@435 1882 return (void*) oldHandler;
duke@435 1883 } else {
duke@435 1884 return (void*)::signal(signal_number, (void (*)(int))handler);
duke@435 1885 }
duke@435 1886 }
duke@435 1887
duke@435 1888 void os::signal_raise(int signal_number) {
duke@435 1889 raise(signal_number);
duke@435 1890 }
duke@435 1891
duke@435 1892 // The Win32 C runtime library maps all console control events other than ^C
duke@435 1893 // into SIGBREAK, which makes it impossible to distinguish ^BREAK from close,
duke@435 1894 // logoff, and shutdown events. We therefore install our own console handler
duke@435 1895 // that raises SIGTERM for the latter cases.
duke@435 1896 //
duke@435 1897 static BOOL WINAPI consoleHandler(DWORD event) {
duke@435 1898 switch(event) {
duke@435 1899 case CTRL_C_EVENT:
duke@435 1900 if (is_error_reported()) {
duke@435 1901 // Ctrl-C is pressed during error reporting, likely because the error
duke@435 1902 // handler fails to abort. Let VM die immediately.
duke@435 1903 os::die();
duke@435 1904 }
duke@435 1905
duke@435 1906 os::signal_raise(SIGINT);
duke@435 1907 return TRUE;
duke@435 1908 break;
duke@435 1909 case CTRL_BREAK_EVENT:
duke@435 1910 if (sigbreakHandler != NULL) {
duke@435 1911 (*sigbreakHandler)(SIGBREAK);
duke@435 1912 }
duke@435 1913 return TRUE;
duke@435 1914 break;
zgu@4473 1915 case CTRL_LOGOFF_EVENT: {
zgu@4473 1916 // Don't terminate JVM if it is running in a non-interactive session,
zgu@4473 1917 // such as a service process.
zgu@4473 1918 USEROBJECTFLAGS flags;
zgu@4473 1919 HANDLE handle = GetProcessWindowStation();
zgu@4473 1920 if (handle != NULL &&
zgu@4473 1921 GetUserObjectInformation(handle, UOI_FLAGS, &flags,
zgu@4473 1922 sizeof( USEROBJECTFLAGS), NULL)) {
zgu@4473 1923 // If it is a non-interactive session, let next handler to deal
zgu@4473 1924 // with it.
zgu@4473 1925 if ((flags.dwFlags & WSF_VISIBLE) == 0) {
zgu@4473 1926 return FALSE;
zgu@4473 1927 }
zgu@4473 1928 }
zgu@4473 1929 }
duke@435 1930 case CTRL_CLOSE_EVENT:
duke@435 1931 case CTRL_SHUTDOWN_EVENT:
duke@435 1932 os::signal_raise(SIGTERM);
duke@435 1933 return TRUE;
duke@435 1934 break;
duke@435 1935 default:
duke@435 1936 break;
duke@435 1937 }
duke@435 1938 return FALSE;
duke@435 1939 }
duke@435 1940
duke@435 1941 /*
duke@435 1942 * The following code is moved from os.cpp for making this
duke@435 1943 * code platform specific, which it is by its very nature.
duke@435 1944 */
duke@435 1945
duke@435 1946 // Return maximum OS signal used + 1 for internal use only
duke@435 1947 // Used as exit signal for signal_thread
duke@435 1948 int os::sigexitnum_pd(){
duke@435 1949 return NSIG;
duke@435 1950 }
duke@435 1951
duke@435 1952 // a counter for each possible signal value, including signal_thread exit signal
duke@435 1953 static volatile jint pending_signals[NSIG+1] = { 0 };
mgronlun@4598 1954 static HANDLE sig_sem = NULL;
duke@435 1955
duke@435 1956 void os::signal_init_pd() {
duke@435 1957 // Initialize signal structures
duke@435 1958 memset((void*)pending_signals, 0, sizeof(pending_signals));
duke@435 1959
duke@435 1960 sig_sem = ::CreateSemaphore(NULL, 0, NSIG+1, NULL);
duke@435 1961
duke@435 1962 // Programs embedding the VM do not want it to attempt to receive
duke@435 1963 // events like CTRL_LOGOFF_EVENT, which are used to implement the
duke@435 1964 // shutdown hooks mechanism introduced in 1.3. For example, when
duke@435 1965 // the VM is run as part of a Windows NT service (i.e., a servlet
duke@435 1966 // engine in a web server), the correct behavior is for any console
duke@435 1967 // control handler to return FALSE, not TRUE, because the OS's
duke@435 1968 // "final" handler for such events allows the process to continue if
duke@435 1969 // it is a service (while terminating it if it is not a service).
duke@435 1970 // To make this behavior uniform and the mechanism simpler, we
duke@435 1971 // completely disable the VM's usage of these console events if -Xrs
duke@435 1972 // (=ReduceSignalUsage) is specified. This means, for example, that
duke@435 1973 // the CTRL-BREAK thread dump mechanism is also disabled in this
duke@435 1974 // case. See bugs 4323062, 4345157, and related bugs.
duke@435 1975
duke@435 1976 if (!ReduceSignalUsage) {
duke@435 1977 // Add a CTRL-C handler
duke@435 1978 SetConsoleCtrlHandler(consoleHandler, TRUE);
duke@435 1979 }
duke@435 1980 }
duke@435 1981
duke@435 1982 void os::signal_notify(int signal_number) {
duke@435 1983 BOOL ret;
mgronlun@4598 1984 if (sig_sem != NULL) {
mgronlun@4598 1985 Atomic::inc(&pending_signals[signal_number]);
mgronlun@4598 1986 ret = ::ReleaseSemaphore(sig_sem, 1, NULL);
mgronlun@4598 1987 assert(ret != 0, "ReleaseSemaphore() failed");
mgronlun@4598 1988 }
duke@435 1989 }
duke@435 1990
duke@435 1991 static int check_pending_signals(bool wait_for_signal) {
duke@435 1992 DWORD ret;
duke@435 1993 while (true) {
duke@435 1994 for (int i = 0; i < NSIG + 1; i++) {
duke@435 1995 jint n = pending_signals[i];
duke@435 1996 if (n > 0 && n == Atomic::cmpxchg(n - 1, &pending_signals[i], n)) {
duke@435 1997 return i;
duke@435 1998 }
duke@435 1999 }
duke@435 2000 if (!wait_for_signal) {
duke@435 2001 return -1;
duke@435 2002 }
duke@435 2003
duke@435 2004 JavaThread *thread = JavaThread::current();
duke@435 2005
duke@435 2006 ThreadBlockInVM tbivm(thread);
duke@435 2007
duke@435 2008 bool threadIsSuspended;
duke@435 2009 do {
duke@435 2010 thread->set_suspend_equivalent();
duke@435 2011 // cleared by handle_special_suspend_equivalent_condition() or java_suspend_self()
duke@435 2012 ret = ::WaitForSingleObject(sig_sem, INFINITE);
duke@435 2013 assert(ret == WAIT_OBJECT_0, "WaitForSingleObject() failed");
duke@435 2014
duke@435 2015 // were we externally suspended while we were waiting?
duke@435 2016 threadIsSuspended = thread->handle_special_suspend_equivalent_condition();
duke@435 2017 if (threadIsSuspended) {
duke@435 2018 //
duke@435 2019 // The semaphore has been incremented, but while we were waiting
duke@435 2020 // another thread suspended us. We don't want to continue running
duke@435 2021 // while suspended because that would surprise the thread that
duke@435 2022 // suspended us.
duke@435 2023 //
duke@435 2024 ret = ::ReleaseSemaphore(sig_sem, 1, NULL);
duke@435 2025 assert(ret != 0, "ReleaseSemaphore() failed");
duke@435 2026
duke@435 2027 thread->java_suspend_self();
duke@435 2028 }
duke@435 2029 } while (threadIsSuspended);
duke@435 2030 }
duke@435 2031 }
duke@435 2032
duke@435 2033 int os::signal_lookup() {
duke@435 2034 return check_pending_signals(false);
duke@435 2035 }
duke@435 2036
duke@435 2037 int os::signal_wait() {
duke@435 2038 return check_pending_signals(true);
duke@435 2039 }
duke@435 2040
duke@435 2041 // Implicit OS exception handling
duke@435 2042
duke@435 2043 LONG Handle_Exception(struct _EXCEPTION_POINTERS* exceptionInfo, address handler) {
duke@435 2044 JavaThread* thread = JavaThread::current();
duke@435 2045 // Save pc in thread
duke@435 2046 #ifdef _M_IA64
morris@4535 2047 // Do not blow up if no thread info available.
morris@4535 2048 if (thread) {
morris@4535 2049 // Saving PRECISE pc (with slot information) in thread.
morris@4535 2050 uint64_t precise_pc = (uint64_t) exceptionInfo->ExceptionRecord->ExceptionAddress;
morris@4535 2051 // Convert precise PC into "Unix" format
morris@4535 2052 precise_pc = (precise_pc & 0xFFFFFFFFFFFFFFF0) | ((precise_pc & 0xF) >> 2);
morris@4535 2053 thread->set_saved_exception_pc((address)precise_pc);
morris@4535 2054 }
duke@435 2055 // Set pc to handler
duke@435 2056 exceptionInfo->ContextRecord->StIIP = (DWORD64)handler;
morris@4535 2057 // Clear out psr.ri (= Restart Instruction) in order to continue
morris@4535 2058 // at the beginning of the target bundle.
morris@4535 2059 exceptionInfo->ContextRecord->StIPSR &= 0xFFFFF9FFFFFFFFFF;
morris@4535 2060 assert(((DWORD64)handler & 0xF) == 0, "Target address must point to the beginning of a bundle!");
duke@435 2061 #elif _M_AMD64
morris@4535 2062 // Do not blow up if no thread info available.
morris@4535 2063 if (thread) {
morris@4535 2064 thread->set_saved_exception_pc((address)(DWORD_PTR)exceptionInfo->ContextRecord->Rip);
morris@4535 2065 }
duke@435 2066 // Set pc to handler
duke@435 2067 exceptionInfo->ContextRecord->Rip = (DWORD64)handler;
duke@435 2068 #else
morris@4535 2069 // Do not blow up if no thread info available.
morris@4535 2070 if (thread) {
morris@4535 2071 thread->set_saved_exception_pc((address)(DWORD_PTR)exceptionInfo->ContextRecord->Eip);
morris@4535 2072 }
duke@435 2073 // Set pc to handler
morris@4535 2074 exceptionInfo->ContextRecord->Eip = (DWORD)(DWORD_PTR)handler;
duke@435 2075 #endif
duke@435 2076
duke@435 2077 // Continue the execution
duke@435 2078 return EXCEPTION_CONTINUE_EXECUTION;
duke@435 2079 }
duke@435 2080
duke@435 2081
duke@435 2082 // Used for PostMortemDump
duke@435 2083 extern "C" void safepoints();
duke@435 2084 extern "C" void find(int x);
duke@435 2085 extern "C" void events();
duke@435 2086
duke@435 2087 // According to Windows API documentation, an illegal instruction sequence should generate
duke@435 2088 // the 0xC000001C exception code. However, real world experience shows that occasionnaly
duke@435 2089 // the execution of an illegal instruction can generate the exception code 0xC000001E. This
duke@435 2090 // seems to be an undocumented feature of Win NT 4.0 (and probably other Windows systems).
duke@435 2091
duke@435 2092 #define EXCEPTION_ILLEGAL_INSTRUCTION_2 0xC000001E
duke@435 2093
duke@435 2094 // From "Execution Protection in the Windows Operating System" draft 0.35
duke@435 2095 // Once a system header becomes available, the "real" define should be
duke@435 2096 // included or copied here.
duke@435 2097 #define EXCEPTION_INFO_EXEC_VIOLATION 0x08
duke@435 2098
morris@4535 2099 // Handle NAT Bit consumption on IA64.
morris@4535 2100 #ifdef _M_IA64
morris@4535 2101 #define EXCEPTION_REG_NAT_CONSUMPTION STATUS_REG_NAT_CONSUMPTION
morris@4535 2102 #endif
morris@4535 2103
morris@4535 2104 // Windows Vista/2008 heap corruption check
morris@4535 2105 #define EXCEPTION_HEAP_CORRUPTION 0xC0000374
morris@4535 2106
duke@435 2107 #define def_excpt(val) #val, val
duke@435 2108
duke@435 2109 struct siglabel {
duke@435 2110 char *name;
duke@435 2111 int number;
duke@435 2112 };
duke@435 2113
zgu@2391 2114 // All Visual C++ exceptions thrown from code generated by the Microsoft Visual
zgu@2391 2115 // C++ compiler contain this error code. Because this is a compiler-generated
zgu@2391 2116 // error, the code is not listed in the Win32 API header files.
zgu@2391 2117 // The code is actually a cryptic mnemonic device, with the initial "E"
zgu@2391 2118 // standing for "exception" and the final 3 bytes (0x6D7363) representing the
zgu@2391 2119 // ASCII values of "msc".
zgu@2391 2120
zgu@2391 2121 #define EXCEPTION_UNCAUGHT_CXX_EXCEPTION 0xE06D7363
zgu@2391 2122
zgu@2391 2123
duke@435 2124 struct siglabel exceptlabels[] = {
duke@435 2125 def_excpt(EXCEPTION_ACCESS_VIOLATION),
duke@435 2126 def_excpt(EXCEPTION_DATATYPE_MISALIGNMENT),
duke@435 2127 def_excpt(EXCEPTION_BREAKPOINT),
duke@435 2128 def_excpt(EXCEPTION_SINGLE_STEP),
duke@435 2129 def_excpt(EXCEPTION_ARRAY_BOUNDS_EXCEEDED),
duke@435 2130 def_excpt(EXCEPTION_FLT_DENORMAL_OPERAND),
duke@435 2131 def_excpt(EXCEPTION_FLT_DIVIDE_BY_ZERO),
duke@435 2132 def_excpt(EXCEPTION_FLT_INEXACT_RESULT),
duke@435 2133 def_excpt(EXCEPTION_FLT_INVALID_OPERATION),
duke@435 2134 def_excpt(EXCEPTION_FLT_OVERFLOW),
duke@435 2135 def_excpt(EXCEPTION_FLT_STACK_CHECK),
duke@435 2136 def_excpt(EXCEPTION_FLT_UNDERFLOW),
duke@435 2137 def_excpt(EXCEPTION_INT_DIVIDE_BY_ZERO),
duke@435 2138 def_excpt(EXCEPTION_INT_OVERFLOW),
duke@435 2139 def_excpt(EXCEPTION_PRIV_INSTRUCTION),
duke@435 2140 def_excpt(EXCEPTION_IN_PAGE_ERROR),
duke@435 2141 def_excpt(EXCEPTION_ILLEGAL_INSTRUCTION),
duke@435 2142 def_excpt(EXCEPTION_ILLEGAL_INSTRUCTION_2),
duke@435 2143 def_excpt(EXCEPTION_NONCONTINUABLE_EXCEPTION),
duke@435 2144 def_excpt(EXCEPTION_STACK_OVERFLOW),
duke@435 2145 def_excpt(EXCEPTION_INVALID_DISPOSITION),
duke@435 2146 def_excpt(EXCEPTION_GUARD_PAGE),
duke@435 2147 def_excpt(EXCEPTION_INVALID_HANDLE),
zgu@2391 2148 def_excpt(EXCEPTION_UNCAUGHT_CXX_EXCEPTION),
morris@4535 2149 def_excpt(EXCEPTION_HEAP_CORRUPTION),
morris@4535 2150 #ifdef _M_IA64
morris@4535 2151 def_excpt(EXCEPTION_REG_NAT_CONSUMPTION),
morris@4535 2152 #endif
duke@435 2153 NULL, 0
duke@435 2154 };
duke@435 2155
duke@435 2156 const char* os::exception_name(int exception_code, char *buf, size_t size) {
duke@435 2157 for (int i = 0; exceptlabels[i].name != NULL; i++) {
duke@435 2158 if (exceptlabels[i].number == exception_code) {
duke@435 2159 jio_snprintf(buf, size, "%s", exceptlabels[i].name);
duke@435 2160 return buf;
duke@435 2161 }
duke@435 2162 }
duke@435 2163
duke@435 2164 return NULL;
duke@435 2165 }
duke@435 2166
duke@435 2167 //-----------------------------------------------------------------------------
duke@435 2168 LONG Handle_IDiv_Exception(struct _EXCEPTION_POINTERS* exceptionInfo) {
duke@435 2169 // handle exception caused by idiv; should only happen for -MinInt/-1
duke@435 2170 // (division by zero is handled explicitly)
duke@435 2171 #ifdef _M_IA64
duke@435 2172 assert(0, "Fix Handle_IDiv_Exception");
duke@435 2173 #elif _M_AMD64
duke@435 2174 PCONTEXT ctx = exceptionInfo->ContextRecord;
duke@435 2175 address pc = (address)ctx->Rip;
duke@435 2176 assert(pc[0] == 0xF7, "not an idiv opcode");
duke@435 2177 assert((pc[1] & ~0x7) == 0xF8, "cannot handle non-register operands");
duke@435 2178 assert(ctx->Rax == min_jint, "unexpected idiv exception");
duke@435 2179 // set correct result values and continue after idiv instruction
duke@435 2180 ctx->Rip = (DWORD)pc + 2; // idiv reg, reg is 2 bytes
duke@435 2181 ctx->Rax = (DWORD)min_jint; // result
duke@435 2182 ctx->Rdx = (DWORD)0; // remainder
duke@435 2183 // Continue the execution
duke@435 2184 #else
duke@435 2185 PCONTEXT ctx = exceptionInfo->ContextRecord;
duke@435 2186 address pc = (address)ctx->Eip;
duke@435 2187 assert(pc[0] == 0xF7, "not an idiv opcode");
duke@435 2188 assert((pc[1] & ~0x7) == 0xF8, "cannot handle non-register operands");
duke@435 2189 assert(ctx->Eax == min_jint, "unexpected idiv exception");
duke@435 2190 // set correct result values and continue after idiv instruction
duke@435 2191 ctx->Eip = (DWORD)pc + 2; // idiv reg, reg is 2 bytes
duke@435 2192 ctx->Eax = (DWORD)min_jint; // result
duke@435 2193 ctx->Edx = (DWORD)0; // remainder
duke@435 2194 // Continue the execution
duke@435 2195 #endif
duke@435 2196 return EXCEPTION_CONTINUE_EXECUTION;
duke@435 2197 }
duke@435 2198
duke@435 2199 #ifndef _WIN64
duke@435 2200 //-----------------------------------------------------------------------------
duke@435 2201 LONG WINAPI Handle_FLT_Exception(struct _EXCEPTION_POINTERS* exceptionInfo) {
dcubed@1649 2202 // handle exception caused by native method modifying control word
duke@435 2203 PCONTEXT ctx = exceptionInfo->ContextRecord;
duke@435 2204 DWORD exception_code = exceptionInfo->ExceptionRecord->ExceptionCode;
duke@435 2205
duke@435 2206 switch (exception_code) {
duke@435 2207 case EXCEPTION_FLT_DENORMAL_OPERAND:
duke@435 2208 case EXCEPTION_FLT_DIVIDE_BY_ZERO:
duke@435 2209 case EXCEPTION_FLT_INEXACT_RESULT:
duke@435 2210 case EXCEPTION_FLT_INVALID_OPERATION:
duke@435 2211 case EXCEPTION_FLT_OVERFLOW:
duke@435 2212 case EXCEPTION_FLT_STACK_CHECK:
duke@435 2213 case EXCEPTION_FLT_UNDERFLOW:
duke@435 2214 jint fp_control_word = (* (jint*) StubRoutines::addr_fpu_cntrl_wrd_std());
duke@435 2215 if (fp_control_word != ctx->FloatSave.ControlWord) {
duke@435 2216 // Restore FPCW and mask out FLT exceptions
duke@435 2217 ctx->FloatSave.ControlWord = fp_control_word | 0xffffffc0;
duke@435 2218 // Mask out pending FLT exceptions
duke@435 2219 ctx->FloatSave.StatusWord &= 0xffffff00;
duke@435 2220 return EXCEPTION_CONTINUE_EXECUTION;
duke@435 2221 }
duke@435 2222 }
dcubed@1649 2223
dcubed@1649 2224 if (prev_uef_handler != NULL) {
dcubed@1649 2225 // We didn't handle this exception so pass it to the previous
dcubed@1649 2226 // UnhandledExceptionFilter.
dcubed@1649 2227 return (prev_uef_handler)(exceptionInfo);
dcubed@1649 2228 }
dcubed@1649 2229
duke@435 2230 return EXCEPTION_CONTINUE_SEARCH;
duke@435 2231 }
duke@435 2232 #else //_WIN64
duke@435 2233 /*
duke@435 2234 On Windows, the mxcsr control bits are non-volatile across calls
duke@435 2235 See also CR 6192333
duke@435 2236 If EXCEPTION_FLT_* happened after some native method modified
duke@435 2237 mxcsr - it is not a jvm fault.
duke@435 2238 However should we decide to restore of mxcsr after a faulty
duke@435 2239 native method we can uncomment following code
duke@435 2240 jint MxCsr = INITIAL_MXCSR;
duke@435 2241 // we can't use StubRoutines::addr_mxcsr_std()
duke@435 2242 // because in Win64 mxcsr is not saved there
duke@435 2243 if (MxCsr != ctx->MxCsr) {
duke@435 2244 ctx->MxCsr = MxCsr;
duke@435 2245 return EXCEPTION_CONTINUE_EXECUTION;
duke@435 2246 }
duke@435 2247
duke@435 2248 */
duke@435 2249 #endif //_WIN64
duke@435 2250
duke@435 2251
duke@435 2252 // Fatal error reporting is single threaded so we can make this a
duke@435 2253 // static and preallocated. If it's more than MAX_PATH silently ignore
duke@435 2254 // it.
duke@435 2255 static char saved_error_file[MAX_PATH] = {0};
duke@435 2256
duke@435 2257 void os::set_error_file(const char *logfile) {
duke@435 2258 if (strlen(logfile) <= MAX_PATH) {
duke@435 2259 strncpy(saved_error_file, logfile, MAX_PATH);
duke@435 2260 }
duke@435 2261 }
duke@435 2262
duke@435 2263 static inline void report_error(Thread* t, DWORD exception_code,
duke@435 2264 address addr, void* siginfo, void* context) {
duke@435 2265 VMError err(t, exception_code, addr, siginfo, context);
duke@435 2266 err.report_and_die();
duke@435 2267
duke@435 2268 // If UseOsErrorReporting, this will return here and save the error file
duke@435 2269 // somewhere where we can find it in the minidump.
duke@435 2270 }
duke@435 2271
duke@435 2272 //-----------------------------------------------------------------------------
duke@435 2273 LONG WINAPI topLevelExceptionFilter(struct _EXCEPTION_POINTERS* exceptionInfo) {
duke@435 2274 if (InterceptOSException) return EXCEPTION_CONTINUE_SEARCH;
duke@435 2275 DWORD exception_code = exceptionInfo->ExceptionRecord->ExceptionCode;
duke@435 2276 #ifdef _M_IA64
morris@4535 2277 // On Itanium, we need the "precise pc", which has the slot number coded
morris@4535 2278 // into the least 4 bits: 0000=slot0, 0100=slot1, 1000=slot2 (Windows format).
morris@4535 2279 address pc = (address) exceptionInfo->ExceptionRecord->ExceptionAddress;
morris@4535 2280 // Convert the pc to "Unix format", which has the slot number coded
morris@4535 2281 // into the least 2 bits: 0000=slot0, 0001=slot1, 0010=slot2
morris@4535 2282 // This is needed for IA64 because "relocation" / "implicit null check" / "poll instruction"
morris@4535 2283 // information is saved in the Unix format.
morris@4535 2284 address pc_unix_format = (address) ((((uint64_t)pc) & 0xFFFFFFFFFFFFFFF0) | ((((uint64_t)pc) & 0xF) >> 2));
duke@435 2285 #elif _M_AMD64
duke@435 2286 address pc = (address) exceptionInfo->ContextRecord->Rip;
duke@435 2287 #else
duke@435 2288 address pc = (address) exceptionInfo->ContextRecord->Eip;
duke@435 2289 #endif
duke@435 2290 Thread* t = ThreadLocalStorage::get_thread_slow(); // slow & steady
duke@435 2291
duke@435 2292 #ifndef _WIN64
duke@435 2293 // Execution protection violation - win32 running on AMD64 only
duke@435 2294 // Handled first to avoid misdiagnosis as a "normal" access violation;
duke@435 2295 // This is safe to do because we have a new/unique ExceptionInformation
duke@435 2296 // code for this condition.
duke@435 2297 if (exception_code == EXCEPTION_ACCESS_VIOLATION) {
duke@435 2298 PEXCEPTION_RECORD exceptionRecord = exceptionInfo->ExceptionRecord;
duke@435 2299 int exception_subcode = (int) exceptionRecord->ExceptionInformation[0];
duke@435 2300 address addr = (address) exceptionRecord->ExceptionInformation[1];
duke@435 2301
duke@435 2302 if (exception_subcode == EXCEPTION_INFO_EXEC_VIOLATION) {
duke@435 2303 int page_size = os::vm_page_size();
duke@435 2304
duke@435 2305 // Make sure the pc and the faulting address are sane.
duke@435 2306 //
duke@435 2307 // If an instruction spans a page boundary, and the page containing
duke@435 2308 // the beginning of the instruction is executable but the following
duke@435 2309 // page is not, the pc and the faulting address might be slightly
duke@435 2310 // different - we still want to unguard the 2nd page in this case.
duke@435 2311 //
duke@435 2312 // 15 bytes seems to be a (very) safe value for max instruction size.
duke@435 2313 bool pc_is_near_addr =
duke@435 2314 (pointer_delta((void*) addr, (void*) pc, sizeof(char)) < 15);
duke@435 2315 bool instr_spans_page_boundary =
duke@435 2316 (align_size_down((intptr_t) pc ^ (intptr_t) addr,
duke@435 2317 (intptr_t) page_size) > 0);
duke@435 2318
duke@435 2319 if (pc == addr || (pc_is_near_addr && instr_spans_page_boundary)) {
duke@435 2320 static volatile address last_addr =
duke@435 2321 (address) os::non_memory_address_word();
duke@435 2322
duke@435 2323 // In conservative mode, don't unguard unless the address is in the VM
duke@435 2324 if (UnguardOnExecutionViolation > 0 && addr != last_addr &&
duke@435 2325 (UnguardOnExecutionViolation > 1 || os::address_is_in_vm(addr))) {
duke@435 2326
coleenp@912 2327 // Set memory to RWX and retry
duke@435 2328 address page_start =
duke@435 2329 (address) align_size_down((intptr_t) addr, (intptr_t) page_size);
coleenp@912 2330 bool res = os::protect_memory((char*) page_start, page_size,
coleenp@912 2331 os::MEM_PROT_RWX);
duke@435 2332
duke@435 2333 if (PrintMiscellaneous && Verbose) {
duke@435 2334 char buf[256];
duke@435 2335 jio_snprintf(buf, sizeof(buf), "Execution protection violation "
duke@435 2336 "at " INTPTR_FORMAT
duke@435 2337 ", unguarding " INTPTR_FORMAT ": %s", addr,
duke@435 2338 page_start, (res ? "success" : strerror(errno)));
duke@435 2339 tty->print_raw_cr(buf);
duke@435 2340 }
duke@435 2341
duke@435 2342 // Set last_addr so if we fault again at the same address, we don't
duke@435 2343 // end up in an endless loop.
duke@435 2344 //
duke@435 2345 // There are two potential complications here. Two threads trapping
duke@435 2346 // at the same address at the same time could cause one of the
duke@435 2347 // threads to think it already unguarded, and abort the VM. Likely
duke@435 2348 // very rare.
duke@435 2349 //
duke@435 2350 // The other race involves two threads alternately trapping at
duke@435 2351 // different addresses and failing to unguard the page, resulting in
duke@435 2352 // an endless loop. This condition is probably even more unlikely
duke@435 2353 // than the first.
duke@435 2354 //
duke@435 2355 // Although both cases could be avoided by using locks or thread
duke@435 2356 // local last_addr, these solutions are unnecessary complication:
duke@435 2357 // this handler is a best-effort safety net, not a complete solution.
duke@435 2358 // It is disabled by default and should only be used as a workaround
duke@435 2359 // in case we missed any no-execute-unsafe VM code.
duke@435 2360
duke@435 2361 last_addr = addr;
duke@435 2362
duke@435 2363 return EXCEPTION_CONTINUE_EXECUTION;
duke@435 2364 }
duke@435 2365 }
duke@435 2366
duke@435 2367 // Last unguard failed or not unguarding
duke@435 2368 tty->print_raw_cr("Execution protection violation");
duke@435 2369 report_error(t, exception_code, addr, exceptionInfo->ExceptionRecord,
duke@435 2370 exceptionInfo->ContextRecord);
duke@435 2371 return EXCEPTION_CONTINUE_SEARCH;
duke@435 2372 }
duke@435 2373 }
duke@435 2374 #endif // _WIN64
duke@435 2375
duke@435 2376 // Check to see if we caught the safepoint code in the
duke@435 2377 // process of write protecting the memory serialization page.
duke@435 2378 // It write enables the page immediately after protecting it
duke@435 2379 // so just return.
duke@435 2380 if ( exception_code == EXCEPTION_ACCESS_VIOLATION ) {
duke@435 2381 JavaThread* thread = (JavaThread*) t;
duke@435 2382 PEXCEPTION_RECORD exceptionRecord = exceptionInfo->ExceptionRecord;
duke@435 2383 address addr = (address) exceptionRecord->ExceptionInformation[1];
duke@435 2384 if ( os::is_memory_serialize_page(thread, addr) ) {
duke@435 2385 // Block current thread until the memory serialize page permission restored.
duke@435 2386 os::block_on_serialize_page_trap();
duke@435 2387 return EXCEPTION_CONTINUE_EXECUTION;
duke@435 2388 }
duke@435 2389 }
duke@435 2390
duke@435 2391 if (t != NULL && t->is_Java_thread()) {
duke@435 2392 JavaThread* thread = (JavaThread*) t;
duke@435 2393 bool in_java = thread->thread_state() == _thread_in_Java;
duke@435 2394
duke@435 2395 // Handle potential stack overflows up front.
duke@435 2396 if (exception_code == EXCEPTION_STACK_OVERFLOW) {
duke@435 2397 if (os::uses_stack_guard_pages()) {
duke@435 2398 #ifdef _M_IA64
morris@4535 2399 // Use guard page for register stack.
duke@435 2400 PEXCEPTION_RECORD exceptionRecord = exceptionInfo->ExceptionRecord;
duke@435 2401 address addr = (address) exceptionRecord->ExceptionInformation[1];
morris@4535 2402 // Check for a register stack overflow on Itanium
morris@4535 2403 if (thread->addr_inside_register_stack_red_zone(addr)) {
morris@4535 2404 // Fatal red zone violation happens if the Java program
morris@4535 2405 // catches a StackOverflow error and does so much processing
morris@4535 2406 // that it runs beyond the unprotected yellow guard zone. As
morris@4535 2407 // a result, we are out of here.
morris@4535 2408 fatal("ERROR: Unrecoverable stack overflow happened. JVM will exit.");
morris@4535 2409 } else if(thread->addr_inside_register_stack(addr)) {
morris@4535 2410 // Disable the yellow zone which sets the state that
morris@4535 2411 // we've got a stack overflow problem.
morris@4535 2412 if (thread->stack_yellow_zone_enabled()) {
morris@4535 2413 thread->disable_stack_yellow_zone();
morris@4535 2414 }
morris@4535 2415 // Give us some room to process the exception.
morris@4535 2416 thread->disable_register_stack_guard();
morris@4535 2417 // Tracing with +Verbose.
morris@4535 2418 if (Verbose) {
morris@4535 2419 tty->print_cr("SOF Compiled Register Stack overflow at " INTPTR_FORMAT " (SIGSEGV)", pc);
morris@4535 2420 tty->print_cr("Register Stack access at " INTPTR_FORMAT, addr);
morris@4535 2421 tty->print_cr("Register Stack base " INTPTR_FORMAT, thread->register_stack_base());
morris@4535 2422 tty->print_cr("Register Stack [" INTPTR_FORMAT "," INTPTR_FORMAT "]",
morris@4535 2423 thread->register_stack_base(),
morris@4535 2424 thread->register_stack_base() + thread->stack_size());
morris@4535 2425 }
morris@4535 2426
morris@4535 2427 // Reguard the permanent register stack red zone just to be sure.
morris@4535 2428 // We saw Windows silently disabling this without telling us.
morris@4535 2429 thread->enable_register_stack_red_zone();
morris@4535 2430
morris@4535 2431 return Handle_Exception(exceptionInfo,
morris@4535 2432 SharedRuntime::continuation_for_implicit_exception(thread, pc, SharedRuntime::STACK_OVERFLOW));
duke@435 2433 }
duke@435 2434 #endif
duke@435 2435 if (thread->stack_yellow_zone_enabled()) {
duke@435 2436 // Yellow zone violation. The o/s has unprotected the first yellow
duke@435 2437 // zone page for us. Note: must call disable_stack_yellow_zone to
duke@435 2438 // update the enabled status, even if the zone contains only one page.
duke@435 2439 thread->disable_stack_yellow_zone();
duke@435 2440 // If not in java code, return and hope for the best.
duke@435 2441 return in_java ? Handle_Exception(exceptionInfo,
duke@435 2442 SharedRuntime::continuation_for_implicit_exception(thread, pc, SharedRuntime::STACK_OVERFLOW))
duke@435 2443 : EXCEPTION_CONTINUE_EXECUTION;
duke@435 2444 } else {
duke@435 2445 // Fatal red zone violation.
duke@435 2446 thread->disable_stack_red_zone();
duke@435 2447 tty->print_raw_cr("An unrecoverable stack overflow has occurred.");
duke@435 2448 report_error(t, exception_code, pc, exceptionInfo->ExceptionRecord,
duke@435 2449 exceptionInfo->ContextRecord);
duke@435 2450 return EXCEPTION_CONTINUE_SEARCH;
duke@435 2451 }
duke@435 2452 } else if (in_java) {
duke@435 2453 // JVM-managed guard pages cannot be used on win95/98. The o/s provides
duke@435 2454 // a one-time-only guard page, which it has released to us. The next
duke@435 2455 // stack overflow on this thread will result in an ACCESS_VIOLATION.
duke@435 2456 return Handle_Exception(exceptionInfo,
duke@435 2457 SharedRuntime::continuation_for_implicit_exception(thread, pc, SharedRuntime::STACK_OVERFLOW));
duke@435 2458 } else {
duke@435 2459 // Can only return and hope for the best. Further stack growth will
duke@435 2460 // result in an ACCESS_VIOLATION.
duke@435 2461 return EXCEPTION_CONTINUE_EXECUTION;
duke@435 2462 }
duke@435 2463 } else if (exception_code == EXCEPTION_ACCESS_VIOLATION) {
duke@435 2464 // Either stack overflow or null pointer exception.
duke@435 2465 if (in_java) {
duke@435 2466 PEXCEPTION_RECORD exceptionRecord = exceptionInfo->ExceptionRecord;
duke@435 2467 address addr = (address) exceptionRecord->ExceptionInformation[1];
duke@435 2468 address stack_end = thread->stack_base() - thread->stack_size();
duke@435 2469 if (addr < stack_end && addr >= stack_end - os::vm_page_size()) {
duke@435 2470 // Stack overflow.
duke@435 2471 assert(!os::uses_stack_guard_pages(),
duke@435 2472 "should be caught by red zone code above.");
duke@435 2473 return Handle_Exception(exceptionInfo,
duke@435 2474 SharedRuntime::continuation_for_implicit_exception(thread, pc, SharedRuntime::STACK_OVERFLOW));
duke@435 2475 }
duke@435 2476 //
duke@435 2477 // Check for safepoint polling and implicit null
duke@435 2478 // We only expect null pointers in the stubs (vtable)
duke@435 2479 // the rest are checked explicitly now.
duke@435 2480 //
duke@435 2481 CodeBlob* cb = CodeCache::find_blob(pc);
duke@435 2482 if (cb != NULL) {
duke@435 2483 if (os::is_poll_address(addr)) {
duke@435 2484 address stub = SharedRuntime::get_poll_stub(pc);
duke@435 2485 return Handle_Exception(exceptionInfo, stub);
duke@435 2486 }
duke@435 2487 }
duke@435 2488 {
duke@435 2489 #ifdef _WIN64
duke@435 2490 //
duke@435 2491 // If it's a legal stack address map the entire region in
duke@435 2492 //
duke@435 2493 PEXCEPTION_RECORD exceptionRecord = exceptionInfo->ExceptionRecord;
duke@435 2494 address addr = (address) exceptionRecord->ExceptionInformation[1];
duke@435 2495 if (addr > thread->stack_yellow_zone_base() && addr < thread->stack_base() ) {
duke@435 2496 addr = (address)((uintptr_t)addr &
duke@435 2497 (~((uintptr_t)os::vm_page_size() - (uintptr_t)1)));
coleenp@1091 2498 os::commit_memory((char *)addr, thread->stack_base() - addr,
coleenp@1091 2499 false );
duke@435 2500 return EXCEPTION_CONTINUE_EXECUTION;
duke@435 2501 }
duke@435 2502 else
duke@435 2503 #endif
duke@435 2504 {
duke@435 2505 // Null pointer exception.
duke@435 2506 #ifdef _M_IA64
morris@4535 2507 // Process implicit null checks in compiled code. Note: Implicit null checks
morris@4535 2508 // can happen even if "ImplicitNullChecks" is disabled, e.g. in vtable stubs.
morris@4535 2509 if (CodeCache::contains((void*) pc_unix_format) && !MacroAssembler::needs_explicit_null_check((intptr_t) addr)) {
morris@4535 2510 CodeBlob *cb = CodeCache::find_blob_unsafe(pc_unix_format);
morris@4535 2511 // Handle implicit null check in UEP method entry
morris@4535 2512 if (cb && (cb->is_frame_complete_at(pc) ||
morris@4535 2513 (cb->is_nmethod() && ((nmethod *)cb)->inlinecache_check_contains(pc)))) {
morris@4535 2514 if (Verbose) {
morris@4535 2515 intptr_t *bundle_start = (intptr_t*) ((intptr_t) pc_unix_format & 0xFFFFFFFFFFFFFFF0);
morris@4535 2516 tty->print_cr("trap: null_check at " INTPTR_FORMAT " (SIGSEGV)", pc_unix_format);
morris@4535 2517 tty->print_cr(" to addr " INTPTR_FORMAT, addr);
morris@4535 2518 tty->print_cr(" bundle is " INTPTR_FORMAT " (high), " INTPTR_FORMAT " (low)",
morris@4535 2519 *(bundle_start + 1), *bundle_start);
duke@435 2520 }
duke@435 2521 return Handle_Exception(exceptionInfo,
morris@4535 2522 SharedRuntime::continuation_for_implicit_exception(thread, pc_unix_format, SharedRuntime::IMPLICIT_NULL));
duke@435 2523 }
morris@4535 2524 }
morris@4535 2525
morris@4535 2526 // Implicit null checks were processed above. Hence, we should not reach
morris@4535 2527 // here in the usual case => die!
morris@4535 2528 if (Verbose) tty->print_raw_cr("Access violation, possible null pointer exception");
duke@435 2529 report_error(t, exception_code, pc, exceptionInfo->ExceptionRecord,
duke@435 2530 exceptionInfo->ContextRecord);
duke@435 2531 return EXCEPTION_CONTINUE_SEARCH;
morris@4535 2532
morris@4535 2533 #else // !IA64
duke@435 2534
duke@435 2535 // Windows 98 reports faulting addresses incorrectly
duke@435 2536 if (!MacroAssembler::needs_explicit_null_check((intptr_t)addr) ||
duke@435 2537 !os::win32::is_nt()) {
poonam@900 2538 address stub = SharedRuntime::continuation_for_implicit_exception(thread, pc, SharedRuntime::IMPLICIT_NULL);
poonam@900 2539 if (stub != NULL) return Handle_Exception(exceptionInfo, stub);
duke@435 2540 }
duke@435 2541 report_error(t, exception_code, pc, exceptionInfo->ExceptionRecord,
duke@435 2542 exceptionInfo->ContextRecord);
duke@435 2543 return EXCEPTION_CONTINUE_SEARCH;
duke@435 2544 #endif
duke@435 2545 }
duke@435 2546 }
duke@435 2547 }
duke@435 2548
duke@435 2549 #ifdef _WIN64
duke@435 2550 // Special care for fast JNI field accessors.
duke@435 2551 // jni_fast_Get<Primitive>Field can trap at certain pc's if a GC kicks
duke@435 2552 // in and the heap gets shrunk before the field access.
duke@435 2553 if (exception_code == EXCEPTION_ACCESS_VIOLATION) {
duke@435 2554 address addr = JNI_FastGetField::find_slowcase_pc(pc);
duke@435 2555 if (addr != (address)-1) {
duke@435 2556 return Handle_Exception(exceptionInfo, addr);
duke@435 2557 }
duke@435 2558 }
duke@435 2559 #endif
duke@435 2560
duke@435 2561 // Stack overflow or null pointer exception in native code.
duke@435 2562 report_error(t, exception_code, pc, exceptionInfo->ExceptionRecord,
duke@435 2563 exceptionInfo->ContextRecord);
duke@435 2564 return EXCEPTION_CONTINUE_SEARCH;
morris@4535 2565 } // /EXCEPTION_ACCESS_VIOLATION
morris@4535 2566 // - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - -
morris@4535 2567 #if defined _M_IA64
morris@4535 2568 else if ((exception_code == EXCEPTION_ILLEGAL_INSTRUCTION ||
morris@4535 2569 exception_code == EXCEPTION_ILLEGAL_INSTRUCTION_2)) {
morris@4535 2570 M37 handle_wrong_method_break(0, NativeJump::HANDLE_WRONG_METHOD, PR0);
morris@4535 2571
morris@4535 2572 // Compiled method patched to be non entrant? Following conditions must apply:
morris@4535 2573 // 1. must be first instruction in bundle
morris@4535 2574 // 2. must be a break instruction with appropriate code
morris@4535 2575 if((((uint64_t) pc & 0x0F) == 0) &&
morris@4535 2576 (((IPF_Bundle*) pc)->get_slot0() == handle_wrong_method_break.bits())) {
morris@4535 2577 return Handle_Exception(exceptionInfo,
morris@4535 2578 (address)SharedRuntime::get_handle_wrong_method_stub());
morris@4535 2579 }
morris@4535 2580 } // /EXCEPTION_ILLEGAL_INSTRUCTION
morris@4535 2581 #endif
morris@4535 2582
duke@435 2583
duke@435 2584 if (in_java) {
duke@435 2585 switch (exception_code) {
duke@435 2586 case EXCEPTION_INT_DIVIDE_BY_ZERO:
duke@435 2587 return Handle_Exception(exceptionInfo, SharedRuntime::continuation_for_implicit_exception(thread, pc, SharedRuntime::IMPLICIT_DIVIDE_BY_ZERO));
duke@435 2588
duke@435 2589 case EXCEPTION_INT_OVERFLOW:
duke@435 2590 return Handle_IDiv_Exception(exceptionInfo);
duke@435 2591
duke@435 2592 } // switch
duke@435 2593 }
duke@435 2594 #ifndef _WIN64
zgu@2391 2595 if (((thread->thread_state() == _thread_in_Java) ||
zgu@2391 2596 (thread->thread_state() == _thread_in_native)) &&
zgu@2391 2597 exception_code != EXCEPTION_UNCAUGHT_CXX_EXCEPTION)
duke@435 2598 {
duke@435 2599 LONG result=Handle_FLT_Exception(exceptionInfo);
duke@435 2600 if (result==EXCEPTION_CONTINUE_EXECUTION) return result;
duke@435 2601 }
duke@435 2602 #endif //_WIN64
duke@435 2603 }
duke@435 2604
duke@435 2605 if (exception_code != EXCEPTION_BREAKPOINT) {
duke@435 2606 report_error(t, exception_code, pc, exceptionInfo->ExceptionRecord,
duke@435 2607 exceptionInfo->ContextRecord);
duke@435 2608 }
duke@435 2609 return EXCEPTION_CONTINUE_SEARCH;
duke@435 2610 }
duke@435 2611
duke@435 2612 #ifndef _WIN64
duke@435 2613 // Special care for fast JNI accessors.
duke@435 2614 // jni_fast_Get<Primitive>Field can trap at certain pc's if a GC kicks in and
duke@435 2615 // the heap gets shrunk before the field access.
duke@435 2616 // Need to install our own structured exception handler since native code may
duke@435 2617 // install its own.
duke@435 2618 LONG WINAPI fastJNIAccessorExceptionFilter(struct _EXCEPTION_POINTERS* exceptionInfo) {
duke@435 2619 DWORD exception_code = exceptionInfo->ExceptionRecord->ExceptionCode;
duke@435 2620 if (exception_code == EXCEPTION_ACCESS_VIOLATION) {
duke@435 2621 address pc = (address) exceptionInfo->ContextRecord->Eip;
duke@435 2622 address addr = JNI_FastGetField::find_slowcase_pc(pc);
duke@435 2623 if (addr != (address)-1) {
duke@435 2624 return Handle_Exception(exceptionInfo, addr);
duke@435 2625 }
duke@435 2626 }
duke@435 2627 return EXCEPTION_CONTINUE_SEARCH;
duke@435 2628 }
duke@435 2629
duke@435 2630 #define DEFINE_FAST_GETFIELD(Return,Fieldname,Result) \
duke@435 2631 Return JNICALL jni_fast_Get##Result##Field_wrapper(JNIEnv *env, jobject obj, jfieldID fieldID) { \
duke@435 2632 __try { \
duke@435 2633 return (*JNI_FastGetField::jni_fast_Get##Result##Field_fp)(env, obj, fieldID); \
duke@435 2634 } __except(fastJNIAccessorExceptionFilter((_EXCEPTION_POINTERS*)_exception_info())) { \
duke@435 2635 } \
duke@435 2636 return 0; \
duke@435 2637 }
duke@435 2638
duke@435 2639 DEFINE_FAST_GETFIELD(jboolean, bool, Boolean)
duke@435 2640 DEFINE_FAST_GETFIELD(jbyte, byte, Byte)
duke@435 2641 DEFINE_FAST_GETFIELD(jchar, char, Char)
duke@435 2642 DEFINE_FAST_GETFIELD(jshort, short, Short)
duke@435 2643 DEFINE_FAST_GETFIELD(jint, int, Int)
duke@435 2644 DEFINE_FAST_GETFIELD(jlong, long, Long)
duke@435 2645 DEFINE_FAST_GETFIELD(jfloat, float, Float)
duke@435 2646 DEFINE_FAST_GETFIELD(jdouble, double, Double)
duke@435 2647
duke@435 2648 address os::win32::fast_jni_accessor_wrapper(BasicType type) {
duke@435 2649 switch (type) {
duke@435 2650 case T_BOOLEAN: return (address)jni_fast_GetBooleanField_wrapper;
duke@435 2651 case T_BYTE: return (address)jni_fast_GetByteField_wrapper;
duke@435 2652 case T_CHAR: return (address)jni_fast_GetCharField_wrapper;
duke@435 2653 case T_SHORT: return (address)jni_fast_GetShortField_wrapper;
duke@435 2654 case T_INT: return (address)jni_fast_GetIntField_wrapper;
duke@435 2655 case T_LONG: return (address)jni_fast_GetLongField_wrapper;
duke@435 2656 case T_FLOAT: return (address)jni_fast_GetFloatField_wrapper;
duke@435 2657 case T_DOUBLE: return (address)jni_fast_GetDoubleField_wrapper;
duke@435 2658 default: ShouldNotReachHere();
duke@435 2659 }
duke@435 2660 return (address)-1;
duke@435 2661 }
duke@435 2662 #endif
duke@435 2663
duke@435 2664 // Virtual Memory
duke@435 2665
duke@435 2666 int os::vm_page_size() { return os::win32::vm_page_size(); }
duke@435 2667 int os::vm_allocation_granularity() {
duke@435 2668 return os::win32::vm_allocation_granularity();
duke@435 2669 }
duke@435 2670
duke@435 2671 // Windows large page support is available on Windows 2003. In order to use
duke@435 2672 // large page memory, the administrator must first assign additional privilege
duke@435 2673 // to the user:
duke@435 2674 // + select Control Panel -> Administrative Tools -> Local Security Policy
duke@435 2675 // + select Local Policies -> User Rights Assignment
duke@435 2676 // + double click "Lock pages in memory", add users and/or groups
duke@435 2677 // + reboot
duke@435 2678 // Note the above steps are needed for administrator as well, as administrators
duke@435 2679 // by default do not have the privilege to lock pages in memory.
duke@435 2680 //
duke@435 2681 // Note about Windows 2003: although the API supports committing large page
duke@435 2682 // memory on a page-by-page basis and VirtualAlloc() returns success under this
duke@435 2683 // scenario, I found through experiment it only uses large page if the entire
duke@435 2684 // memory region is reserved and committed in a single VirtualAlloc() call.
duke@435 2685 // This makes Windows large page support more or less like Solaris ISM, in
duke@435 2686 // that the entire heap must be committed upfront. This probably will change
duke@435 2687 // in the future, if so the code below needs to be revisited.
duke@435 2688
duke@435 2689 #ifndef MEM_LARGE_PAGES
duke@435 2690 #define MEM_LARGE_PAGES 0x20000000
duke@435 2691 #endif
duke@435 2692
duke@435 2693 static HANDLE _hProcess;
duke@435 2694 static HANDLE _hToken;
duke@435 2695
iveresov@3085 2696 // Container for NUMA node list info
iveresov@3085 2697 class NUMANodeListHolder {
iveresov@3085 2698 private:
iveresov@3085 2699 int *_numa_used_node_list; // allocated below
iveresov@3085 2700 int _numa_used_node_count;
iveresov@3085 2701
iveresov@3085 2702 void free_node_list() {
iveresov@3085 2703 if (_numa_used_node_list != NULL) {
zgu@3900 2704 FREE_C_HEAP_ARRAY(int, _numa_used_node_list, mtInternal);
iveresov@3085 2705 }
iveresov@3085 2706 }
iveresov@3085 2707
iveresov@3085 2708 public:
iveresov@3085 2709 NUMANodeListHolder() {
iveresov@3085 2710 _numa_used_node_count = 0;
iveresov@3085 2711 _numa_used_node_list = NULL;
iveresov@3085 2712 // do rest of initialization in build routine (after function pointers are set up)
iveresov@3085 2713 }
iveresov@3085 2714
iveresov@3085 2715 ~NUMANodeListHolder() {
iveresov@3085 2716 free_node_list();
iveresov@3085 2717 }
iveresov@3085 2718
iveresov@3085 2719 bool build() {
iveresov@3085 2720 DWORD_PTR proc_aff_mask;
iveresov@3085 2721 DWORD_PTR sys_aff_mask;
iveresov@3085 2722 if (!GetProcessAffinityMask(GetCurrentProcess(), &proc_aff_mask, &sys_aff_mask)) return false;
iveresov@3085 2723 ULONG highest_node_number;
iveresov@3085 2724 if (!os::Kernel32Dll::GetNumaHighestNodeNumber(&highest_node_number)) return false;
iveresov@3085 2725 free_node_list();
zgu@3900 2726 _numa_used_node_list = NEW_C_HEAP_ARRAY(int, highest_node_number + 1, mtInternal);
iveresov@3085 2727 for (unsigned int i = 0; i <= highest_node_number; i++) {
iveresov@3085 2728 ULONGLONG proc_mask_numa_node;
iveresov@3085 2729 if (!os::Kernel32Dll::GetNumaNodeProcessorMask(i, &proc_mask_numa_node)) return false;
iveresov@3085 2730 if ((proc_aff_mask & proc_mask_numa_node)!=0) {
iveresov@3085 2731 _numa_used_node_list[_numa_used_node_count++] = i;
iveresov@3085 2732 }
iveresov@3085 2733 }
iveresov@3085 2734 return (_numa_used_node_count > 1);
iveresov@3085 2735 }
iveresov@3085 2736
iveresov@3085 2737 int get_count() {return _numa_used_node_count;}
iveresov@3085 2738 int get_node_list_entry(int n) {
iveresov@3085 2739 // for indexes out of range, returns -1
iveresov@3085 2740 return (n < _numa_used_node_count ? _numa_used_node_list[n] : -1);
iveresov@3085 2741 }
iveresov@3085 2742
iveresov@3085 2743 } numa_node_list_holder;
iveresov@3085 2744
iveresov@3085 2745
iveresov@3085 2746
duke@435 2747 static size_t _large_page_size = 0;
duke@435 2748
duke@435 2749 static bool resolve_functions_for_large_page_init() {
zgu@3031 2750 return os::Kernel32Dll::GetLargePageMinimumAvailable() &&
zgu@3031 2751 os::Advapi32Dll::AdvapiAvailable();
duke@435 2752 }
duke@435 2753
duke@435 2754 static bool request_lock_memory_privilege() {
duke@435 2755 _hProcess = OpenProcess(PROCESS_QUERY_INFORMATION, FALSE,
duke@435 2756 os::current_process_id());
duke@435 2757
duke@435 2758 LUID luid;
duke@435 2759 if (_hProcess != NULL &&
zgu@3031 2760 os::Advapi32Dll::OpenProcessToken(_hProcess, TOKEN_ADJUST_PRIVILEGES, &_hToken) &&
zgu@3031 2761 os::Advapi32Dll::LookupPrivilegeValue(NULL, "SeLockMemoryPrivilege", &luid)) {
duke@435 2762
duke@435 2763 TOKEN_PRIVILEGES tp;
duke@435 2764 tp.PrivilegeCount = 1;
duke@435 2765 tp.Privileges[0].Luid = luid;
duke@435 2766 tp.Privileges[0].Attributes = SE_PRIVILEGE_ENABLED;
duke@435 2767
duke@435 2768 // AdjustTokenPrivileges() may return TRUE even when it couldn't change the
duke@435 2769 // privilege. Check GetLastError() too. See MSDN document.
zgu@3031 2770 if (os::Advapi32Dll::AdjustTokenPrivileges(_hToken, false, &tp, sizeof(tp), NULL, NULL) &&
duke@435 2771 (GetLastError() == ERROR_SUCCESS)) {
duke@435 2772 return true;
duke@435 2773 }
duke@435 2774 }
duke@435 2775
duke@435 2776 return false;
duke@435 2777 }
duke@435 2778
duke@435 2779 static void cleanup_after_large_page_init() {
duke@435 2780 if (_hProcess) CloseHandle(_hProcess);
duke@435 2781 _hProcess = NULL;
duke@435 2782 if (_hToken) CloseHandle(_hToken);
duke@435 2783 _hToken = NULL;
duke@435 2784 }
duke@435 2785
iveresov@3085 2786 static bool numa_interleaving_init() {
iveresov@3085 2787 bool success = false;
iveresov@3085 2788 bool use_numa_interleaving_specified = !FLAG_IS_DEFAULT(UseNUMAInterleaving);
iveresov@3085 2789
iveresov@3118 2790 // print a warning if UseNUMAInterleaving flag is specified on command line
iveresov@3118 2791 bool warn_on_failure = use_numa_interleaving_specified;
iveresov@3085 2792 # define WARN(msg) if (warn_on_failure) { warning(msg); }
iveresov@3085 2793
iveresov@3085 2794 // NUMAInterleaveGranularity cannot be less than vm_allocation_granularity (or _large_page_size if using large pages)
iveresov@3085 2795 size_t min_interleave_granularity = UseLargePages ? _large_page_size : os::vm_allocation_granularity();
iveresov@3085 2796 NUMAInterleaveGranularity = align_size_up(NUMAInterleaveGranularity, min_interleave_granularity);
iveresov@3085 2797
iveresov@3085 2798 if (os::Kernel32Dll::NumaCallsAvailable()) {
iveresov@3085 2799 if (numa_node_list_holder.build()) {
iveresov@3085 2800 if (PrintMiscellaneous && Verbose) {
iveresov@3118 2801 tty->print("NUMA UsedNodeCount=%d, namely ", numa_node_list_holder.get_count());
iveresov@3085 2802 for (int i = 0; i < numa_node_list_holder.get_count(); i++) {
iveresov@3085 2803 tty->print("%d ", numa_node_list_holder.get_node_list_entry(i));
iveresov@3085 2804 }
iveresov@3085 2805 tty->print("\n");
iveresov@3085 2806 }
iveresov@3085 2807 success = true;
iveresov@3085 2808 } else {
iveresov@3085 2809 WARN("Process does not cover multiple NUMA nodes.");
iveresov@3085 2810 }
iveresov@3085 2811 } else {
iveresov@3085 2812 WARN("NUMA Interleaving is not supported by the operating system.");
iveresov@3085 2813 }
iveresov@3085 2814 if (!success) {
iveresov@3085 2815 if (use_numa_interleaving_specified) WARN("...Ignoring UseNUMAInterleaving flag.");
iveresov@3085 2816 }
iveresov@3085 2817 return success;
iveresov@3085 2818 #undef WARN
iveresov@3085 2819 }
iveresov@3085 2820
iveresov@3085 2821 // this routine is used whenever we need to reserve a contiguous VA range
iveresov@3085 2822 // but we need to make separate VirtualAlloc calls for each piece of the range
iveresov@3085 2823 // Reasons for doing this:
iveresov@3085 2824 // * UseLargePagesIndividualAllocation was set (normally only needed on WS2003 but possible to be set otherwise)
iveresov@3085 2825 // * UseNUMAInterleaving requires a separate node for each piece
iveresov@3085 2826 static char* allocate_pages_individually(size_t bytes, char* addr, DWORD flags, DWORD prot,
iveresov@3085 2827 bool should_inject_error=false) {
iveresov@3085 2828 char * p_buf;
iveresov@3085 2829 // note: at setup time we guaranteed that NUMAInterleaveGranularity was aligned up to a page size
iveresov@3085 2830 size_t page_size = UseLargePages ? _large_page_size : os::vm_allocation_granularity();
iveresov@3085 2831 size_t chunk_size = UseNUMAInterleaving ? NUMAInterleaveGranularity : page_size;
iveresov@3085 2832
iveresov@3085 2833 // first reserve enough address space in advance since we want to be
iveresov@3085 2834 // able to break a single contiguous virtual address range into multiple
iveresov@3085 2835 // large page commits but WS2003 does not allow reserving large page space
iveresov@3085 2836 // so we just use 4K pages for reserve, this gives us a legal contiguous
iveresov@3085 2837 // address space. then we will deallocate that reservation, and re alloc
iveresov@3085 2838 // using large pages
iveresov@3085 2839 const size_t size_of_reserve = bytes + chunk_size;
iveresov@3085 2840 if (bytes > size_of_reserve) {
iveresov@3085 2841 // Overflowed.
iveresov@3085 2842 return NULL;
iveresov@3085 2843 }
iveresov@3085 2844 p_buf = (char *) VirtualAlloc(addr,
iveresov@3085 2845 size_of_reserve, // size of Reserve
iveresov@3085 2846 MEM_RESERVE,
iveresov@3085 2847 PAGE_READWRITE);
iveresov@3085 2848 // If reservation failed, return NULL
iveresov@3085 2849 if (p_buf == NULL) return NULL;
zgu@4711 2850 MemTracker::record_virtual_memory_reserve((address)p_buf, size_of_reserve, CALLER_PC);
iveresov@3085 2851 os::release_memory(p_buf, bytes + chunk_size);
iveresov@3085 2852
iveresov@3085 2853 // we still need to round up to a page boundary (in case we are using large pages)
iveresov@3085 2854 // but not to a chunk boundary (in case InterleavingGranularity doesn't align with page size)
iveresov@3085 2855 // instead we handle this in the bytes_to_rq computation below
iveresov@3085 2856 p_buf = (char *) align_size_up((size_t)p_buf, page_size);
iveresov@3085 2857
iveresov@3085 2858 // now go through and allocate one chunk at a time until all bytes are
iveresov@3085 2859 // allocated
iveresov@3085 2860 size_t bytes_remaining = bytes;
iveresov@3085 2861 // An overflow of align_size_up() would have been caught above
iveresov@3085 2862 // in the calculation of size_of_reserve.
iveresov@3085 2863 char * next_alloc_addr = p_buf;
iveresov@3085 2864 HANDLE hProc = GetCurrentProcess();
iveresov@3085 2865
iveresov@3085 2866 #ifdef ASSERT
iveresov@3085 2867 // Variable for the failure injection
iveresov@3085 2868 long ran_num = os::random();
iveresov@3085 2869 size_t fail_after = ran_num % bytes;
iveresov@3085 2870 #endif
iveresov@3085 2871
iveresov@3085 2872 int count=0;
iveresov@3085 2873 while (bytes_remaining) {
iveresov@3085 2874 // select bytes_to_rq to get to the next chunk_size boundary
iveresov@3085 2875
iveresov@3085 2876 size_t bytes_to_rq = MIN2(bytes_remaining, chunk_size - ((size_t)next_alloc_addr % chunk_size));
iveresov@3085 2877 // Note allocate and commit
iveresov@3085 2878 char * p_new;
iveresov@3085 2879
iveresov@3085 2880 #ifdef ASSERT
iveresov@3085 2881 bool inject_error_now = should_inject_error && (bytes_remaining <= fail_after);
iveresov@3085 2882 #else
iveresov@3085 2883 const bool inject_error_now = false;
iveresov@3085 2884 #endif
iveresov@3085 2885
iveresov@3085 2886 if (inject_error_now) {
iveresov@3085 2887 p_new = NULL;
iveresov@3085 2888 } else {
iveresov@3085 2889 if (!UseNUMAInterleaving) {
iveresov@3085 2890 p_new = (char *) VirtualAlloc(next_alloc_addr,
iveresov@3085 2891 bytes_to_rq,
iveresov@3085 2892 flags,
iveresov@3085 2893 prot);
iveresov@3085 2894 } else {
iveresov@3085 2895 // get the next node to use from the used_node_list
iveresov@3118 2896 assert(numa_node_list_holder.get_count() > 0, "Multiple NUMA nodes expected");
iveresov@3118 2897 DWORD node = numa_node_list_holder.get_node_list_entry(count % numa_node_list_holder.get_count());
iveresov@3085 2898 p_new = (char *)os::Kernel32Dll::VirtualAllocExNuma(hProc,
iveresov@3085 2899 next_alloc_addr,
iveresov@3085 2900 bytes_to_rq,
iveresov@3085 2901 flags,
iveresov@3085 2902 prot,
iveresov@3085 2903 node);
iveresov@3085 2904 }
iveresov@3085 2905 }
iveresov@3085 2906
iveresov@3085 2907 if (p_new == NULL) {
iveresov@3085 2908 // Free any allocated pages
iveresov@3085 2909 if (next_alloc_addr > p_buf) {
iveresov@3085 2910 // Some memory was committed so release it.
iveresov@3085 2911 size_t bytes_to_release = bytes - bytes_remaining;
zgu@4711 2912 // NMT has yet to record any individual blocks, so it
zgu@4711 2913 // need to create a dummy 'reserve' record to match
zgu@4711 2914 // the release.
zgu@4711 2915 MemTracker::record_virtual_memory_reserve((address)p_buf,
zgu@4711 2916 bytes_to_release, CALLER_PC);
iveresov@3085 2917 os::release_memory(p_buf, bytes_to_release);
iveresov@3085 2918 }
iveresov@3085 2919 #ifdef ASSERT
iveresov@3085 2920 if (should_inject_error) {
iveresov@3085 2921 if (TracePageSizes && Verbose) {
iveresov@3085 2922 tty->print_cr("Reserving pages individually failed.");
iveresov@3085 2923 }
iveresov@3085 2924 }
iveresov@3085 2925 #endif
iveresov@3085 2926 return NULL;
iveresov@3085 2927 }
zgu@4711 2928
iveresov@3085 2929 bytes_remaining -= bytes_to_rq;
iveresov@3085 2930 next_alloc_addr += bytes_to_rq;
iveresov@3085 2931 count++;
iveresov@3085 2932 }
zgu@4711 2933 // Although the memory is allocated individually, it is returned as one.
zgu@4711 2934 // NMT records it as one block.
zgu@4711 2935 address pc = CALLER_PC;
zgu@4711 2936 MemTracker::record_virtual_memory_reserve((address)p_buf, bytes, pc);
zgu@4711 2937 if ((flags & MEM_COMMIT) != 0) {
zgu@4711 2938 MemTracker::record_virtual_memory_commit((address)p_buf, bytes, pc);
zgu@4711 2939 }
zgu@4711 2940
iveresov@3085 2941 // made it this far, success
iveresov@3085 2942 return p_buf;
iveresov@3085 2943 }
iveresov@3085 2944
iveresov@3085 2945
iveresov@3085 2946
iveresov@2850 2947 void os::large_page_init() {
iveresov@2850 2948 if (!UseLargePages) return;
duke@435 2949
duke@435 2950 // print a warning if any large page related flag is specified on command line
duke@435 2951 bool warn_on_failure = !FLAG_IS_DEFAULT(UseLargePages) ||
duke@435 2952 !FLAG_IS_DEFAULT(LargePageSizeInBytes);
duke@435 2953 bool success = false;
duke@435 2954
duke@435 2955 # define WARN(msg) if (warn_on_failure) { warning(msg); }
duke@435 2956 if (resolve_functions_for_large_page_init()) {
duke@435 2957 if (request_lock_memory_privilege()) {
zgu@3031 2958 size_t s = os::Kernel32Dll::GetLargePageMinimum();
duke@435 2959 if (s) {
duke@435 2960 #if defined(IA32) || defined(AMD64)
duke@435 2961 if (s > 4*M || LargePageSizeInBytes > 4*M) {
duke@435 2962 WARN("JVM cannot use large pages bigger than 4mb.");
duke@435 2963 } else {
duke@435 2964 #endif
duke@435 2965 if (LargePageSizeInBytes && LargePageSizeInBytes % s == 0) {
duke@435 2966 _large_page_size = LargePageSizeInBytes;
duke@435 2967 } else {
duke@435 2968 _large_page_size = s;
duke@435 2969 }
duke@435 2970 success = true;
duke@435 2971 #if defined(IA32) || defined(AMD64)
duke@435 2972 }
duke@435 2973 #endif
duke@435 2974 } else {
duke@435 2975 WARN("Large page is not supported by the processor.");
duke@435 2976 }
duke@435 2977 } else {
duke@435 2978 WARN("JVM cannot use large page memory because it does not have enough privilege to lock pages in memory.");
duke@435 2979 }
duke@435 2980 } else {
duke@435 2981 WARN("Large page is not supported by the operating system.");
duke@435 2982 }
duke@435 2983 #undef WARN
duke@435 2984
duke@435 2985 const size_t default_page_size = (size_t) vm_page_size();
duke@435 2986 if (success && _large_page_size > default_page_size) {
duke@435 2987 _page_sizes[0] = _large_page_size;
duke@435 2988 _page_sizes[1] = default_page_size;
duke@435 2989 _page_sizes[2] = 0;
duke@435 2990 }
duke@435 2991
duke@435 2992 cleanup_after_large_page_init();
iveresov@2850 2993 UseLargePages = success;
duke@435 2994 }
duke@435 2995
duke@435 2996 // On win32, one cannot release just a part of reserved memory, it's an
duke@435 2997 // all or nothing deal. When we split a reservation, we must break the
duke@435 2998 // reservation into two reservations.
zgu@3900 2999 void os::pd_split_reserved_memory(char *base, size_t size, size_t split,
duke@435 3000 bool realloc) {
duke@435 3001 if (size > 0) {
duke@435 3002 release_memory(base, size);
duke@435 3003 if (realloc) {
duke@435 3004 reserve_memory(split, base);
duke@435 3005 }
duke@435 3006 if (size != split) {
duke@435 3007 reserve_memory(size - split, base + split);
duke@435 3008 }
duke@435 3009 }
duke@435 3010 }
duke@435 3011
brutisso@4369 3012 // Multiple threads can race in this code but it's not possible to unmap small sections of
brutisso@4369 3013 // virtual space to get requested alignment, like posix-like os's.
brutisso@4369 3014 // Windows prevents multiple thread from remapping over each other so this loop is thread-safe.
brutisso@4369 3015 char* os::reserve_memory_aligned(size_t size, size_t alignment) {
brutisso@4369 3016 assert((alignment & (os::vm_allocation_granularity() - 1)) == 0,
brutisso@4369 3017 "Alignment must be a multiple of allocation granularity (page size)");
brutisso@4369 3018 assert((size & (alignment -1)) == 0, "size must be 'alignment' aligned");
brutisso@4369 3019
brutisso@4369 3020 size_t extra_size = size + alignment;
brutisso@4369 3021 assert(extra_size >= size, "overflow, size is too large to allow alignment");
brutisso@4369 3022
brutisso@4369 3023 char* aligned_base = NULL;
brutisso@4369 3024
brutisso@4369 3025 do {
brutisso@4369 3026 char* extra_base = os::reserve_memory(extra_size, NULL, alignment);
brutisso@4369 3027 if (extra_base == NULL) {
brutisso@4369 3028 return NULL;
brutisso@4369 3029 }
brutisso@4369 3030 // Do manual alignment
brutisso@4369 3031 aligned_base = (char*) align_size_up((uintptr_t) extra_base, alignment);
brutisso@4369 3032
brutisso@4369 3033 os::release_memory(extra_base, extra_size);
brutisso@4369 3034
brutisso@4369 3035 aligned_base = os::reserve_memory(size, aligned_base);
brutisso@4369 3036
brutisso@4369 3037 } while (aligned_base == NULL);
brutisso@4369 3038
brutisso@4369 3039 return aligned_base;
brutisso@4369 3040 }
brutisso@4369 3041
zgu@3900 3042 char* os::pd_reserve_memory(size_t bytes, char* addr, size_t alignment_hint) {
duke@435 3043 assert((size_t)addr % os::vm_allocation_granularity() == 0,
duke@435 3044 "reserve alignment");
duke@435 3045 assert(bytes % os::vm_allocation_granularity() == 0, "reserve block size");
iveresov@3085 3046 char* res;
iveresov@3085 3047 // note that if UseLargePages is on, all the areas that require interleaving
iveresov@3085 3048 // will go thru reserve_memory_special rather than thru here.
iveresov@3085 3049 bool use_individual = (UseNUMAInterleaving && !UseLargePages);
iveresov@3085 3050 if (!use_individual) {
iveresov@3085 3051 res = (char*)VirtualAlloc(addr, bytes, MEM_RESERVE, PAGE_READWRITE);
iveresov@3085 3052 } else {
iveresov@3085 3053 elapsedTimer reserveTimer;
iveresov@3085 3054 if( Verbose && PrintMiscellaneous ) reserveTimer.start();
iveresov@3085 3055 // in numa interleaving, we have to allocate pages individually
iveresov@3085 3056 // (well really chunks of NUMAInterleaveGranularity size)
iveresov@3085 3057 res = allocate_pages_individually(bytes, addr, MEM_RESERVE, PAGE_READWRITE);
iveresov@3085 3058 if (res == NULL) {
iveresov@3085 3059 warning("NUMA page allocation failed");
iveresov@3085 3060 }
iveresov@3085 3061 if( Verbose && PrintMiscellaneous ) {
iveresov@3085 3062 reserveTimer.stop();
hseigel@4465 3063 tty->print_cr("reserve_memory of %Ix bytes took " JLONG_FORMAT " ms (" JLONG_FORMAT " ticks)", bytes,
iveresov@3085 3064 reserveTimer.milliseconds(), reserveTimer.ticks());
iveresov@3085 3065 }
iveresov@3085 3066 }
duke@435 3067 assert(res == NULL || addr == NULL || addr == res,
duke@435 3068 "Unexpected address from reserve.");
iveresov@3085 3069
duke@435 3070 return res;
duke@435 3071 }
duke@435 3072
duke@435 3073 // Reserve memory at an arbitrary address, only if that area is
duke@435 3074 // available (and not reserved for something else).
zgu@3900 3075 char* os::pd_attempt_reserve_memory_at(size_t bytes, char* requested_addr) {
duke@435 3076 // Windows os::reserve_memory() fails of the requested address range is
duke@435 3077 // not avilable.
duke@435 3078 return reserve_memory(bytes, requested_addr);
duke@435 3079 }
duke@435 3080
duke@435 3081 size_t os::large_page_size() {
duke@435 3082 return _large_page_size;
duke@435 3083 }
duke@435 3084
duke@435 3085 bool os::can_commit_large_page_memory() {
duke@435 3086 // Windows only uses large page memory when the entire region is reserved
duke@435 3087 // and committed in a single VirtualAlloc() call. This may change in the
duke@435 3088 // future, but with Windows 2003 it's not possible to commit on demand.
duke@435 3089 return false;
duke@435 3090 }
duke@435 3091
jcoomes@514 3092 bool os::can_execute_large_page_memory() {
jcoomes@514 3093 return true;
jcoomes@514 3094 }
jcoomes@514 3095
coleenp@1091 3096 char* os::reserve_memory_special(size_t bytes, char* addr, bool exec) {
coleenp@912 3097
coleenp@1152 3098 const DWORD prot = exec ? PAGE_EXECUTE_READWRITE : PAGE_READWRITE;
iveresov@3085 3099 const DWORD flags = MEM_RESERVE | MEM_COMMIT | MEM_LARGE_PAGES;
iveresov@3085 3100
iveresov@3085 3101 // with large pages, there are two cases where we need to use Individual Allocation
iveresov@3085 3102 // 1) the UseLargePagesIndividualAllocation flag is set (set by default on WS2003)
iveresov@3085 3103 // 2) NUMA Interleaving is enabled, in which case we use a different node for each page
iveresov@3085 3104 if (UseLargePagesIndividualAllocation || UseNUMAInterleaving) {
jmasa@824 3105 if (TracePageSizes && Verbose) {
jmasa@824 3106 tty->print_cr("Reserving large pages individually.");
jmasa@824 3107 }
iveresov@3085 3108 char * p_buf = allocate_pages_individually(bytes, addr, flags, prot, LargePagesIndividualAllocationInjectError);
iveresov@3085 3109 if (p_buf == NULL) {
iveresov@3085 3110 // give an appropriate warning message
iveresov@3085 3111 if (UseNUMAInterleaving) {
iveresov@3085 3112 warning("NUMA large page allocation failed, UseLargePages flag ignored");
iveresov@3085 3113 }
iveresov@3085 3114 if (UseLargePagesIndividualAllocation) {
iveresov@3085 3115 warning("Individually allocated large pages failed, "
iveresov@3085 3116 "use -XX:-UseLargePagesIndividualAllocation to turn off");
iveresov@3085 3117 }
jmasa@824 3118 return NULL;
jmasa@824 3119 }
jmasa@824 3120
jmasa@824 3121 return p_buf;
jmasa@824 3122
jmasa@824 3123 } else {
jmasa@824 3124 // normal policy just allocate it all at once
jmasa@824 3125 DWORD flag = MEM_RESERVE | MEM_COMMIT | MEM_LARGE_PAGES;
coleenp@1152 3126 char * res = (char *)VirtualAlloc(NULL, bytes, flag, prot);
zgu@4711 3127 if (res != NULL) {
zgu@4711 3128 address pc = CALLER_PC;
zgu@4711 3129 MemTracker::record_virtual_memory_reserve((address)res, bytes, pc);
zgu@4711 3130 MemTracker::record_virtual_memory_commit((address)res, bytes, pc);
zgu@4711 3131 }
zgu@4711 3132
jmasa@824 3133 return res;
jmasa@824 3134 }
duke@435 3135 }
duke@435 3136
duke@435 3137 bool os::release_memory_special(char* base, size_t bytes) {
zgu@4711 3138 assert(base != NULL, "Sanity check");
zgu@4711 3139 // Memory allocated via reserve_memory_special() is committed
zgu@4711 3140 MemTracker::record_virtual_memory_uncommit((address)base, bytes);
duke@435 3141 return release_memory(base, bytes);
duke@435 3142 }
duke@435 3143
duke@435 3144 void os::print_statistics() {
duke@435 3145 }
duke@435 3146
zgu@3900 3147 bool os::pd_commit_memory(char* addr, size_t bytes, bool exec) {
duke@435 3148 if (bytes == 0) {
duke@435 3149 // Don't bother the OS with noops.
duke@435 3150 return true;
duke@435 3151 }
duke@435 3152 assert((size_t) addr % os::vm_page_size() == 0, "commit on page boundaries");
duke@435 3153 assert(bytes % os::vm_page_size() == 0, "commit in page-sized chunks");
duke@435 3154 // Don't attempt to print anything if the OS call fails. We're
duke@435 3155 // probably low on resources, so the print itself may cause crashes.
iveresov@3085 3156
iveresov@3085 3157 // unless we have NUMAInterleaving enabled, the range of a commit
iveresov@3085 3158 // is always within a reserve covered by a single VirtualAlloc
iveresov@3085 3159 // in that case we can just do a single commit for the requested size
iveresov@3085 3160 if (!UseNUMAInterleaving) {
iveresov@3085 3161 if (VirtualAlloc(addr, bytes, MEM_COMMIT, PAGE_READWRITE) == NULL) return false;
iveresov@3085 3162 if (exec) {
iveresov@3085 3163 DWORD oldprot;
iveresov@3085 3164 // Windows doc says to use VirtualProtect to get execute permissions
iveresov@3085 3165 if (!VirtualProtect(addr, bytes, PAGE_EXECUTE_READWRITE, &oldprot)) return false;
iveresov@3085 3166 }
iveresov@3085 3167 return true;
coleenp@1091 3168 } else {
iveresov@3085 3169
iveresov@3085 3170 // when NUMAInterleaving is enabled, the commit might cover a range that
iveresov@3085 3171 // came from multiple VirtualAlloc reserves (using allocate_pages_individually).
iveresov@3085 3172 // VirtualQuery can help us determine that. The RegionSize that VirtualQuery
iveresov@3085 3173 // returns represents the number of bytes that can be committed in one step.
iveresov@3085 3174 size_t bytes_remaining = bytes;
iveresov@3085 3175 char * next_alloc_addr = addr;
iveresov@3085 3176 while (bytes_remaining > 0) {
iveresov@3085 3177 MEMORY_BASIC_INFORMATION alloc_info;
iveresov@3085 3178 VirtualQuery(next_alloc_addr, &alloc_info, sizeof(alloc_info));
iveresov@3085 3179 size_t bytes_to_rq = MIN2(bytes_remaining, (size_t)alloc_info.RegionSize);
iveresov@3085 3180 if (VirtualAlloc(next_alloc_addr, bytes_to_rq, MEM_COMMIT, PAGE_READWRITE) == NULL)
iveresov@3085 3181 return false;
iveresov@3085 3182 if (exec) {
iveresov@3085 3183 DWORD oldprot;
iveresov@3085 3184 if (!VirtualProtect(next_alloc_addr, bytes_to_rq, PAGE_EXECUTE_READWRITE, &oldprot))
iveresov@3085 3185 return false;
iveresov@3085 3186 }
iveresov@3085 3187 bytes_remaining -= bytes_to_rq;
iveresov@3085 3188 next_alloc_addr += bytes_to_rq;
iveresov@3085 3189 }
iveresov@3085 3190 }
iveresov@3085 3191 // if we made it this far, return true
iveresov@3085 3192 return true;
duke@435 3193 }
duke@435 3194
zgu@3900 3195 bool os::pd_commit_memory(char* addr, size_t size, size_t alignment_hint,
coleenp@1091 3196 bool exec) {
coleenp@1091 3197 return commit_memory(addr, size, exec);
duke@435 3198 }
duke@435 3199
zgu@3900 3200 bool os::pd_uncommit_memory(char* addr, size_t bytes) {
duke@435 3201 if (bytes == 0) {
duke@435 3202 // Don't bother the OS with noops.
duke@435 3203 return true;
duke@435 3204 }
duke@435 3205 assert((size_t) addr % os::vm_page_size() == 0, "uncommit on page boundaries");
duke@435 3206 assert(bytes % os::vm_page_size() == 0, "uncommit in page-sized chunks");
zgu@3900 3207 return (VirtualFree(addr, bytes, MEM_DECOMMIT) != 0);
zgu@3900 3208 }
zgu@3900 3209
zgu@3900 3210 bool os::pd_release_memory(char* addr, size_t bytes) {
duke@435 3211 return VirtualFree(addr, 0, MEM_RELEASE) != 0;
duke@435 3212 }
duke@435 3213
zgu@3900 3214 bool os::pd_create_stack_guard_pages(char* addr, size_t size) {
coleenp@1755 3215 return os::commit_memory(addr, size);
coleenp@1755 3216 }
coleenp@1755 3217
coleenp@1755 3218 bool os::remove_stack_guard_pages(char* addr, size_t size) {
coleenp@1755 3219 return os::uncommit_memory(addr, size);
coleenp@1755 3220 }
coleenp@1755 3221
coleenp@672 3222 // Set protections specified
coleenp@672 3223 bool os::protect_memory(char* addr, size_t bytes, ProtType prot,
coleenp@672 3224 bool is_committed) {
coleenp@672 3225 unsigned int p = 0;
coleenp@672 3226 switch (prot) {
coleenp@672 3227 case MEM_PROT_NONE: p = PAGE_NOACCESS; break;
coleenp@672 3228 case MEM_PROT_READ: p = PAGE_READONLY; break;
coleenp@672 3229 case MEM_PROT_RW: p = PAGE_READWRITE; break;
coleenp@672 3230 case MEM_PROT_RWX: p = PAGE_EXECUTE_READWRITE; break;
coleenp@672 3231 default:
coleenp@672 3232 ShouldNotReachHere();
coleenp@672 3233 }
coleenp@672 3234
duke@435 3235 DWORD old_status;
coleenp@672 3236
coleenp@672 3237 // Strange enough, but on Win32 one can change protection only for committed
coleenp@672 3238 // memory, not a big deal anyway, as bytes less or equal than 64K
coleenp@1091 3239 if (!is_committed && !commit_memory(addr, bytes, prot == MEM_PROT_RWX)) {
coleenp@672 3240 fatal("cannot commit protection page");
coleenp@672 3241 }
coleenp@672 3242 // One cannot use os::guard_memory() here, as on Win32 guard page
coleenp@672 3243 // have different (one-shot) semantics, from MSDN on PAGE_GUARD:
coleenp@672 3244 //
coleenp@672 3245 // Pages in the region become guard pages. Any attempt to access a guard page
coleenp@672 3246 // causes the system to raise a STATUS_GUARD_PAGE exception and turn off
coleenp@672 3247 // the guard page status. Guard pages thus act as a one-time access alarm.
coleenp@672 3248 return VirtualProtect(addr, bytes, p, &old_status) != 0;
duke@435 3249 }
duke@435 3250
duke@435 3251 bool os::guard_memory(char* addr, size_t bytes) {
duke@435 3252 DWORD old_status;
coleenp@912 3253 return VirtualProtect(addr, bytes, PAGE_READWRITE | PAGE_GUARD, &old_status) != 0;
duke@435 3254 }
duke@435 3255
duke@435 3256 bool os::unguard_memory(char* addr, size_t bytes) {
duke@435 3257 DWORD old_status;
coleenp@912 3258 return VirtualProtect(addr, bytes, PAGE_READWRITE, &old_status) != 0;
duke@435 3259 }
duke@435 3260
zgu@3900 3261 void os::pd_realign_memory(char *addr, size_t bytes, size_t alignment_hint) { }
zgu@3900 3262 void os::pd_free_memory(char *addr, size_t bytes, size_t alignment_hint) { }
duke@435 3263 void os::numa_make_global(char *addr, size_t bytes) { }
iveresov@576 3264 void os::numa_make_local(char *addr, size_t bytes, int lgrp_hint) { }
duke@435 3265 bool os::numa_topology_changed() { return false; }
iveresov@3118 3266 size_t os::numa_get_groups_num() { return MAX2(numa_node_list_holder.get_count(), 1); }
duke@435 3267 int os::numa_get_group_id() { return 0; }
duke@435 3268 size_t os::numa_get_leaf_groups(int *ids, size_t size) {
iveresov@3118 3269 if (numa_node_list_holder.get_count() == 0 && size > 0) {
iveresov@3118 3270 // Provide an answer for UMA systems
iveresov@3118 3271 ids[0] = 0;
iveresov@3118 3272 return 1;
iveresov@3118 3273 } else {
iveresov@3118 3274 // check for size bigger than actual groups_num
iveresov@3118 3275 size = MIN2(size, numa_get_groups_num());
iveresov@3118 3276 for (int i = 0; i < (int)size; i++) {
iveresov@3118 3277 ids[i] = numa_node_list_holder.get_node_list_entry(i);
iveresov@3118 3278 }
iveresov@3118 3279 return size;
iveresov@3118 3280 }
duke@435 3281 }
duke@435 3282
duke@435 3283 bool os::get_page_info(char *start, page_info* info) {
duke@435 3284 return false;
duke@435 3285 }
duke@435 3286
duke@435 3287 char *os::scan_pages(char *start, char* end, page_info* page_expected, page_info* page_found) {
duke@435 3288 return end;
duke@435 3289 }
duke@435 3290
duke@435 3291 char* os::non_memory_address_word() {
duke@435 3292 // Must never look like an address returned by reserve_memory,
duke@435 3293 // even in its subfields (as defined by the CPU immediate fields,
duke@435 3294 // if the CPU splits constants across multiple instructions).
duke@435 3295 return (char*)-1;
duke@435 3296 }
duke@435 3297
duke@435 3298 #define MAX_ERROR_COUNT 100
duke@435 3299 #define SYS_THREAD_ERROR 0xffffffffUL
duke@435 3300
duke@435 3301 void os::pd_start_thread(Thread* thread) {
duke@435 3302 DWORD ret = ResumeThread(thread->osthread()->thread_handle());
duke@435 3303 // Returns previous suspend state:
duke@435 3304 // 0: Thread was not suspended
duke@435 3305 // 1: Thread is running now
duke@435 3306 // >1: Thread is still suspended.
duke@435 3307 assert(ret != SYS_THREAD_ERROR, "StartThread failed"); // should propagate back
duke@435 3308 }
duke@435 3309
minqi@5103 3310 class HighResolutionInterval : public CHeapObj<mtThread> {
duke@435 3311 // The default timer resolution seems to be 10 milliseconds.
duke@435 3312 // (Where is this written down?)
duke@435 3313 // If someone wants to sleep for only a fraction of the default,
duke@435 3314 // then we set the timer resolution down to 1 millisecond for
duke@435 3315 // the duration of their interval.
duke@435 3316 // We carefully set the resolution back, since otherwise we
duke@435 3317 // seem to incur an overhead (3%?) that we don't need.
duke@435 3318 // CONSIDER: if ms is small, say 3, then we should run with a high resolution time.
duke@435 3319 // Buf if ms is large, say 500, or 503, we should avoid the call to timeBeginPeriod().
duke@435 3320 // Alternatively, we could compute the relative error (503/500 = .6%) and only use
duke@435 3321 // timeBeginPeriod() if the relative error exceeded some threshold.
duke@435 3322 // timeBeginPeriod() has been linked to problems with clock drift on win32 systems and
duke@435 3323 // to decreased efficiency related to increased timer "tick" rates. We want to minimize
duke@435 3324 // (a) calls to timeBeginPeriod() and timeEndPeriod() and (b) time spent with high
duke@435 3325 // resolution timers running.
duke@435 3326 private:
duke@435 3327 jlong resolution;
duke@435 3328 public:
duke@435 3329 HighResolutionInterval(jlong ms) {
duke@435 3330 resolution = ms % 10L;
duke@435 3331 if (resolution != 0) {
duke@435 3332 MMRESULT result = timeBeginPeriod(1L);
duke@435 3333 }
duke@435 3334 }
duke@435 3335 ~HighResolutionInterval() {
duke@435 3336 if (resolution != 0) {
duke@435 3337 MMRESULT result = timeEndPeriod(1L);
duke@435 3338 }
duke@435 3339 resolution = 0L;
duke@435 3340 }
duke@435 3341 };
duke@435 3342
duke@435 3343 int os::sleep(Thread* thread, jlong ms, bool interruptable) {
duke@435 3344 jlong limit = (jlong) MAXDWORD;
duke@435 3345
duke@435 3346 while(ms > limit) {
duke@435 3347 int res;
duke@435 3348 if ((res = sleep(thread, limit, interruptable)) != OS_TIMEOUT)
duke@435 3349 return res;
duke@435 3350 ms -= limit;
duke@435 3351 }
duke@435 3352
duke@435 3353 assert(thread == Thread::current(), "thread consistency check");
duke@435 3354 OSThread* osthread = thread->osthread();
duke@435 3355 OSThreadWaitState osts(osthread, false /* not Object.wait() */);
duke@435 3356 int result;
duke@435 3357 if (interruptable) {
duke@435 3358 assert(thread->is_Java_thread(), "must be java thread");
duke@435 3359 JavaThread *jt = (JavaThread *) thread;
duke@435 3360 ThreadBlockInVM tbivm(jt);
duke@435 3361
duke@435 3362 jt->set_suspend_equivalent();
duke@435 3363 // cleared by handle_special_suspend_equivalent_condition() or
duke@435 3364 // java_suspend_self() via check_and_wait_while_suspended()
duke@435 3365
duke@435 3366 HANDLE events[1];
duke@435 3367 events[0] = osthread->interrupt_event();
duke@435 3368 HighResolutionInterval *phri=NULL;
duke@435 3369 if(!ForceTimeHighResolution)
duke@435 3370 phri = new HighResolutionInterval( ms );
duke@435 3371 if (WaitForMultipleObjects(1, events, FALSE, (DWORD)ms) == WAIT_TIMEOUT) {
duke@435 3372 result = OS_TIMEOUT;
duke@435 3373 } else {
duke@435 3374 ResetEvent(osthread->interrupt_event());
duke@435 3375 osthread->set_interrupted(false);
duke@435 3376 result = OS_INTRPT;
duke@435 3377 }
duke@435 3378 delete phri; //if it is NULL, harmless
duke@435 3379
duke@435 3380 // were we externally suspended while we were waiting?
duke@435 3381 jt->check_and_wait_while_suspended();
duke@435 3382 } else {
duke@435 3383 assert(!thread->is_Java_thread(), "must not be java thread");
duke@435 3384 Sleep((long) ms);
duke@435 3385 result = OS_TIMEOUT;
duke@435 3386 }
duke@435 3387 return result;
duke@435 3388 }
duke@435 3389
duke@435 3390 // Sleep forever; naked call to OS-specific sleep; use with CAUTION
duke@435 3391 void os::infinite_sleep() {
duke@435 3392 while (true) { // sleep forever ...
duke@435 3393 Sleep(100000); // ... 100 seconds at a time
duke@435 3394 }
duke@435 3395 }
duke@435 3396
duke@435 3397 typedef BOOL (WINAPI * STTSignature)(void) ;
duke@435 3398
duke@435 3399 os::YieldResult os::NakedYield() {
duke@435 3400 // Use either SwitchToThread() or Sleep(0)
duke@435 3401 // Consider passing back the return value from SwitchToThread().
zgu@3031 3402 if (os::Kernel32Dll::SwitchToThreadAvailable()) {
zgu@3031 3403 return SwitchToThread() ? os::YIELD_SWITCHED : os::YIELD_NONEREADY ;
duke@435 3404 } else {
zgu@3031 3405 Sleep(0);
duke@435 3406 }
duke@435 3407 return os::YIELD_UNKNOWN ;
duke@435 3408 }
duke@435 3409
duke@435 3410 void os::yield() { os::NakedYield(); }
duke@435 3411
duke@435 3412 void os::yield_all(int attempts) {
duke@435 3413 // Yields to all threads, including threads with lower priorities
duke@435 3414 Sleep(1);
duke@435 3415 }
duke@435 3416
duke@435 3417 // Win32 only gives you access to seven real priorities at a time,
duke@435 3418 // so we compress Java's ten down to seven. It would be better
duke@435 3419 // if we dynamically adjusted relative priorities.
duke@435 3420
phh@3481 3421 int os::java_to_os_priority[CriticalPriority + 1] = {
duke@435 3422 THREAD_PRIORITY_IDLE, // 0 Entry should never be used
duke@435 3423 THREAD_PRIORITY_LOWEST, // 1 MinPriority
duke@435 3424 THREAD_PRIORITY_LOWEST, // 2
duke@435 3425 THREAD_PRIORITY_BELOW_NORMAL, // 3
duke@435 3426 THREAD_PRIORITY_BELOW_NORMAL, // 4
duke@435 3427 THREAD_PRIORITY_NORMAL, // 5 NormPriority
duke@435 3428 THREAD_PRIORITY_NORMAL, // 6
duke@435 3429 THREAD_PRIORITY_ABOVE_NORMAL, // 7
duke@435 3430 THREAD_PRIORITY_ABOVE_NORMAL, // 8
duke@435 3431 THREAD_PRIORITY_HIGHEST, // 9 NearMaxPriority
phh@3481 3432 THREAD_PRIORITY_HIGHEST, // 10 MaxPriority
phh@3481 3433 THREAD_PRIORITY_HIGHEST // 11 CriticalPriority
duke@435 3434 };
duke@435 3435
phh@3481 3436 int prio_policy1[CriticalPriority + 1] = {
duke@435 3437 THREAD_PRIORITY_IDLE, // 0 Entry should never be used
duke@435 3438 THREAD_PRIORITY_LOWEST, // 1 MinPriority
duke@435 3439 THREAD_PRIORITY_LOWEST, // 2
duke@435 3440 THREAD_PRIORITY_BELOW_NORMAL, // 3
duke@435 3441 THREAD_PRIORITY_BELOW_NORMAL, // 4
duke@435 3442 THREAD_PRIORITY_NORMAL, // 5 NormPriority
duke@435 3443 THREAD_PRIORITY_ABOVE_NORMAL, // 6
duke@435 3444 THREAD_PRIORITY_ABOVE_NORMAL, // 7
duke@435 3445 THREAD_PRIORITY_HIGHEST, // 8
duke@435 3446 THREAD_PRIORITY_HIGHEST, // 9 NearMaxPriority
phh@3481 3447 THREAD_PRIORITY_TIME_CRITICAL, // 10 MaxPriority
phh@3481 3448 THREAD_PRIORITY_TIME_CRITICAL // 11 CriticalPriority
duke@435 3449 };
duke@435 3450
duke@435 3451 static int prio_init() {
duke@435 3452 // If ThreadPriorityPolicy is 1, switch tables
duke@435 3453 if (ThreadPriorityPolicy == 1) {
duke@435 3454 int i;
phh@3481 3455 for (i = 0; i < CriticalPriority + 1; i++) {
duke@435 3456 os::java_to_os_priority[i] = prio_policy1[i];
duke@435 3457 }
duke@435 3458 }
phh@3481 3459 if (UseCriticalJavaThreadPriority) {
phh@3481 3460 os::java_to_os_priority[MaxPriority] = os::java_to_os_priority[CriticalPriority] ;
phh@3481 3461 }
duke@435 3462 return 0;
duke@435 3463 }
duke@435 3464
duke@435 3465 OSReturn os::set_native_priority(Thread* thread, int priority) {
duke@435 3466 if (!UseThreadPriorities) return OS_OK;
duke@435 3467 bool ret = SetThreadPriority(thread->osthread()->thread_handle(), priority) != 0;
duke@435 3468 return ret ? OS_OK : OS_ERR;
duke@435 3469 }
duke@435 3470
duke@435 3471 OSReturn os::get_native_priority(const Thread* const thread, int* priority_ptr) {
duke@435 3472 if ( !UseThreadPriorities ) {
duke@435 3473 *priority_ptr = java_to_os_priority[NormPriority];
duke@435 3474 return OS_OK;
duke@435 3475 }
duke@435 3476 int os_prio = GetThreadPriority(thread->osthread()->thread_handle());
duke@435 3477 if (os_prio == THREAD_PRIORITY_ERROR_RETURN) {
duke@435 3478 assert(false, "GetThreadPriority failed");
duke@435 3479 return OS_ERR;
duke@435 3480 }
duke@435 3481 *priority_ptr = os_prio;
duke@435 3482 return OS_OK;
duke@435 3483 }
duke@435 3484
duke@435 3485
duke@435 3486 // Hint to the underlying OS that a task switch would not be good.
duke@435 3487 // Void return because it's a hint and can fail.
duke@435 3488 void os::hint_no_preempt() {}
duke@435 3489
duke@435 3490 void os::interrupt(Thread* thread) {
duke@435 3491 assert(!thread->is_Java_thread() || Thread::current() == thread || Threads_lock->owned_by_self(),
duke@435 3492 "possibility of dangling Thread pointer");
duke@435 3493
duke@435 3494 OSThread* osthread = thread->osthread();
duke@435 3495 osthread->set_interrupted(true);
duke@435 3496 // More than one thread can get here with the same value of osthread,
duke@435 3497 // resulting in multiple notifications. We do, however, want the store
duke@435 3498 // to interrupted() to be visible to other threads before we post
duke@435 3499 // the interrupt event.
duke@435 3500 OrderAccess::release();
duke@435 3501 SetEvent(osthread->interrupt_event());
duke@435 3502 // For JSR166: unpark after setting status
duke@435 3503 if (thread->is_Java_thread())
duke@435 3504 ((JavaThread*)thread)->parker()->unpark();
duke@435 3505
duke@435 3506 ParkEvent * ev = thread->_ParkEvent ;
duke@435 3507 if (ev != NULL) ev->unpark() ;
duke@435 3508
duke@435 3509 }
duke@435 3510
duke@435 3511
duke@435 3512 bool os::is_interrupted(Thread* thread, bool clear_interrupted) {
duke@435 3513 assert(!thread->is_Java_thread() || Thread::current() == thread || Threads_lock->owned_by_self(),
duke@435 3514 "possibility of dangling Thread pointer");
duke@435 3515
duke@435 3516 OSThread* osthread = thread->osthread();
dholmes@2668 3517 bool interrupted = osthread->interrupted();
dholmes@2668 3518 // There is no synchronization between the setting of the interrupt
dholmes@2668 3519 // and it being cleared here. It is critical - see 6535709 - that
dholmes@2668 3520 // we only clear the interrupt state, and reset the interrupt event,
dholmes@2668 3521 // if we are going to report that we were indeed interrupted - else
dholmes@2668 3522 // an interrupt can be "lost", leading to spurious wakeups or lost wakeups
dholmes@2668 3523 // depending on the timing
dholmes@2668 3524 if (interrupted && clear_interrupted) {
duke@435 3525 osthread->set_interrupted(false);
duke@435 3526 ResetEvent(osthread->interrupt_event());
duke@435 3527 } // Otherwise leave the interrupted state alone
duke@435 3528
duke@435 3529 return interrupted;
duke@435 3530 }
duke@435 3531
duke@435 3532 // Get's a pc (hint) for a running thread. Currently used only for profiling.
duke@435 3533 ExtendedPC os::get_thread_pc(Thread* thread) {
duke@435 3534 CONTEXT context;
duke@435 3535 context.ContextFlags = CONTEXT_CONTROL;
duke@435 3536 HANDLE handle = thread->osthread()->thread_handle();
duke@435 3537 #ifdef _M_IA64
duke@435 3538 assert(0, "Fix get_thread_pc");
duke@435 3539 return ExtendedPC(NULL);
duke@435 3540 #else
duke@435 3541 if (GetThreadContext(handle, &context)) {
duke@435 3542 #ifdef _M_AMD64
duke@435 3543 return ExtendedPC((address) context.Rip);
duke@435 3544 #else
duke@435 3545 return ExtendedPC((address) context.Eip);
duke@435 3546 #endif
duke@435 3547 } else {
duke@435 3548 return ExtendedPC(NULL);
duke@435 3549 }
duke@435 3550 #endif
duke@435 3551 }
duke@435 3552
duke@435 3553 // GetCurrentThreadId() returns DWORD
duke@435 3554 intx os::current_thread_id() { return GetCurrentThreadId(); }
duke@435 3555
duke@435 3556 static int _initial_pid = 0;
duke@435 3557
duke@435 3558 int os::current_process_id()
duke@435 3559 {
duke@435 3560 return (_initial_pid ? _initial_pid : _getpid());
duke@435 3561 }
duke@435 3562
duke@435 3563 int os::win32::_vm_page_size = 0;
duke@435 3564 int os::win32::_vm_allocation_granularity = 0;
duke@435 3565 int os::win32::_processor_type = 0;
duke@435 3566 // Processor level is not available on non-NT systems, use vm_version instead
duke@435 3567 int os::win32::_processor_level = 0;
duke@435 3568 julong os::win32::_physical_memory = 0;
duke@435 3569 size_t os::win32::_default_stack_size = 0;
duke@435 3570
duke@435 3571 intx os::win32::_os_thread_limit = 0;
duke@435 3572 volatile intx os::win32::_os_thread_count = 0;
duke@435 3573
duke@435 3574 bool os::win32::_is_nt = false;
jmasa@824 3575 bool os::win32::_is_windows_2003 = false;
ctornqvi@2520 3576 bool os::win32::_is_windows_server = false;
duke@435 3577
duke@435 3578 void os::win32::initialize_system_info() {
duke@435 3579 SYSTEM_INFO si;
duke@435 3580 GetSystemInfo(&si);
duke@435 3581 _vm_page_size = si.dwPageSize;
duke@435 3582 _vm_allocation_granularity = si.dwAllocationGranularity;
duke@435 3583 _processor_type = si.dwProcessorType;
duke@435 3584 _processor_level = si.wProcessorLevel;
phh@1558 3585 set_processor_count(si.dwNumberOfProcessors);
coleenp@912 3586
poonam@1312 3587 MEMORYSTATUSEX ms;
poonam@1312 3588 ms.dwLength = sizeof(ms);
poonam@1312 3589
duke@435 3590 // also returns dwAvailPhys (free physical memory bytes), dwTotalVirtual, dwAvailVirtual,
duke@435 3591 // dwMemoryLoad (% of memory in use)
poonam@1312 3592 GlobalMemoryStatusEx(&ms);
poonam@1312 3593 _physical_memory = ms.ullTotalPhys;
duke@435 3594
ctornqvi@2520 3595 OSVERSIONINFOEX oi;
ctornqvi@2520 3596 oi.dwOSVersionInfoSize = sizeof(OSVERSIONINFOEX);
ctornqvi@2520 3597 GetVersionEx((OSVERSIONINFO*)&oi);
duke@435 3598 switch(oi.dwPlatformId) {
duke@435 3599 case VER_PLATFORM_WIN32_WINDOWS: _is_nt = false; break;
jmasa@824 3600 case VER_PLATFORM_WIN32_NT:
jmasa@824 3601 _is_nt = true;
jmasa@824 3602 {
jmasa@824 3603 int os_vers = oi.dwMajorVersion * 1000 + oi.dwMinorVersion;
jmasa@824 3604 if (os_vers == 5002) {
jmasa@824 3605 _is_windows_2003 = true;
jmasa@824 3606 }
ctornqvi@2520 3607 if (oi.wProductType == VER_NT_DOMAIN_CONTROLLER ||
ctornqvi@2520 3608 oi.wProductType == VER_NT_SERVER) {
ctornqvi@2520 3609 _is_windows_server = true;
ctornqvi@2520 3610 }
jmasa@824 3611 }
jmasa@824 3612 break;
duke@435 3613 default: fatal("Unknown platform");
duke@435 3614 }
duke@435 3615
duke@435 3616 _default_stack_size = os::current_stack_size();
duke@435 3617 assert(_default_stack_size > (size_t) _vm_page_size, "invalid stack size");
duke@435 3618 assert((_default_stack_size & (_vm_page_size - 1)) == 0,
duke@435 3619 "stack size not a multiple of page size");
duke@435 3620
duke@435 3621 initialize_performance_counter();
duke@435 3622
duke@435 3623 // Win95/Win98 scheduler bug work-around. The Win95/98 scheduler is
duke@435 3624 // known to deadlock the system, if the VM issues to thread operations with
duke@435 3625 // a too high frequency, e.g., such as changing the priorities.
duke@435 3626 // The 6000 seems to work well - no deadlocks has been notices on the test
duke@435 3627 // programs that we have seen experience this problem.
duke@435 3628 if (!os::win32::is_nt()) {
duke@435 3629 StarvationMonitorInterval = 6000;
duke@435 3630 }
duke@435 3631 }
duke@435 3632
duke@435 3633
zgu@3031 3634 HINSTANCE os::win32::load_Windows_dll(const char* name, char *ebuf, int ebuflen) {
zgu@3031 3635 char path[MAX_PATH];
zgu@3031 3636 DWORD size;
zgu@3031 3637 DWORD pathLen = (DWORD)sizeof(path);
zgu@3031 3638 HINSTANCE result = NULL;
zgu@3031 3639
zgu@3031 3640 // only allow library name without path component
zgu@3031 3641 assert(strchr(name, '\\') == NULL, "path not allowed");
zgu@3031 3642 assert(strchr(name, ':') == NULL, "path not allowed");
zgu@3031 3643 if (strchr(name, '\\') != NULL || strchr(name, ':') != NULL) {
zgu@3031 3644 jio_snprintf(ebuf, ebuflen,
zgu@3031 3645 "Invalid parameter while calling os::win32::load_windows_dll(): cannot take path: %s", name);
zgu@3031 3646 return NULL;
zgu@3031 3647 }
zgu@3031 3648
zgu@3031 3649 // search system directory
zgu@3031 3650 if ((size = GetSystemDirectory(path, pathLen)) > 0) {
zgu@3031 3651 strcat(path, "\\");
zgu@3031 3652 strcat(path, name);
zgu@3031 3653 if ((result = (HINSTANCE)os::dll_load(path, ebuf, ebuflen)) != NULL) {
zgu@3031 3654 return result;
zgu@3031 3655 }
zgu@3031 3656 }
zgu@3031 3657
zgu@3031 3658 // try Windows directory
zgu@3031 3659 if ((size = GetWindowsDirectory(path, pathLen)) > 0) {
zgu@3031 3660 strcat(path, "\\");
zgu@3031 3661 strcat(path, name);
zgu@3031 3662 if ((result = (HINSTANCE)os::dll_load(path, ebuf, ebuflen)) != NULL) {
zgu@3031 3663 return result;
zgu@3031 3664 }
zgu@3031 3665 }
zgu@3031 3666
zgu@3031 3667 jio_snprintf(ebuf, ebuflen,
zgu@3031 3668 "os::win32::load_windows_dll() cannot load %s from system directories.", name);
zgu@3031 3669 return NULL;
zgu@3031 3670 }
zgu@3031 3671
duke@435 3672 void os::win32::setmode_streams() {
duke@435 3673 _setmode(_fileno(stdin), _O_BINARY);
duke@435 3674 _setmode(_fileno(stdout), _O_BINARY);
duke@435 3675 _setmode(_fileno(stderr), _O_BINARY);
duke@435 3676 }
duke@435 3677
duke@435 3678
sla@2584 3679 bool os::is_debugger_attached() {
sla@2584 3680 return IsDebuggerPresent() ? true : false;
sla@2584 3681 }
sla@2584 3682
sla@2584 3683
sla@2584 3684 void os::wait_for_keypress_at_exit(void) {
sla@2584 3685 if (PauseAtExit) {
sla@2584 3686 fprintf(stderr, "Press any key to continue...\n");
sla@2584 3687 fgetc(stdin);
sla@2584 3688 }
sla@2584 3689 }
sla@2584 3690
sla@2584 3691
duke@435 3692 int os::message_box(const char* title, const char* message) {
duke@435 3693 int result = MessageBox(NULL, message, title,
duke@435 3694 MB_YESNO | MB_ICONERROR | MB_SYSTEMMODAL | MB_DEFAULT_DESKTOP_ONLY);
duke@435 3695 return result == IDYES;
duke@435 3696 }
duke@435 3697
duke@435 3698 int os::allocate_thread_local_storage() {
duke@435 3699 return TlsAlloc();
duke@435 3700 }
duke@435 3701
duke@435 3702
duke@435 3703 void os::free_thread_local_storage(int index) {
duke@435 3704 TlsFree(index);
duke@435 3705 }
duke@435 3706
duke@435 3707
duke@435 3708 void os::thread_local_storage_at_put(int index, void* value) {
duke@435 3709 TlsSetValue(index, value);
duke@435 3710 assert(thread_local_storage_at(index) == value, "Just checking");
duke@435 3711 }
duke@435 3712
duke@435 3713
duke@435 3714 void* os::thread_local_storage_at(int index) {
duke@435 3715 return TlsGetValue(index);
duke@435 3716 }
duke@435 3717
duke@435 3718
duke@435 3719 #ifndef PRODUCT
duke@435 3720 #ifndef _WIN64
duke@435 3721 // Helpers to check whether NX protection is enabled
duke@435 3722 int nx_exception_filter(_EXCEPTION_POINTERS *pex) {
duke@435 3723 if (pex->ExceptionRecord->ExceptionCode == EXCEPTION_ACCESS_VIOLATION &&
duke@435 3724 pex->ExceptionRecord->NumberParameters > 0 &&
duke@435 3725 pex->ExceptionRecord->ExceptionInformation[0] ==
duke@435 3726 EXCEPTION_INFO_EXEC_VIOLATION) {
duke@435 3727 return EXCEPTION_EXECUTE_HANDLER;
duke@435 3728 }
duke@435 3729 return EXCEPTION_CONTINUE_SEARCH;
duke@435 3730 }
duke@435 3731
duke@435 3732 void nx_check_protection() {
duke@435 3733 // If NX is enabled we'll get an exception calling into code on the stack
duke@435 3734 char code[] = { (char)0xC3 }; // ret
duke@435 3735 void *code_ptr = (void *)code;
duke@435 3736 __try {
duke@435 3737 __asm call code_ptr
duke@435 3738 } __except(nx_exception_filter((_EXCEPTION_POINTERS*)_exception_info())) {
duke@435 3739 tty->print_raw_cr("NX protection detected.");
duke@435 3740 }
duke@435 3741 }
duke@435 3742 #endif // _WIN64
duke@435 3743 #endif // PRODUCT
duke@435 3744
duke@435 3745 // this is called _before_ the global arguments have been parsed
duke@435 3746 void os::init(void) {
duke@435 3747 _initial_pid = _getpid();
duke@435 3748
duke@435 3749 init_random(1234567);
duke@435 3750
duke@435 3751 win32::initialize_system_info();
duke@435 3752 win32::setmode_streams();
duke@435 3753 init_page_sizes((size_t) win32::vm_page_size());
duke@435 3754
duke@435 3755 // For better scalability on MP systems (must be called after initialize_system_info)
duke@435 3756 #ifndef PRODUCT
duke@435 3757 if (is_MP()) {
duke@435 3758 NoYieldsInMicrolock = true;
duke@435 3759 }
duke@435 3760 #endif
jmasa@824 3761 // This may be overridden later when argument processing is done.
jmasa@824 3762 FLAG_SET_ERGO(bool, UseLargePagesIndividualAllocation,
jmasa@824 3763 os::win32::is_windows_2003());
jmasa@824 3764
duke@435 3765 // Initialize main_process and main_thread
duke@435 3766 main_process = GetCurrentProcess(); // Remember main_process is a pseudo handle
jmasa@824 3767 if (!DuplicateHandle(main_process, GetCurrentThread(), main_process,
duke@435 3768 &main_thread, THREAD_ALL_ACCESS, false, 0)) {
duke@435 3769 fatal("DuplicateHandle failed\n");
duke@435 3770 }
duke@435 3771 main_thread_id = (int) GetCurrentThreadId();
duke@435 3772 }
duke@435 3773
duke@435 3774 // To install functions for atexit processing
duke@435 3775 extern "C" {
duke@435 3776 static void perfMemory_exit_helper() {
duke@435 3777 perfMemory_exit();
duke@435 3778 }
duke@435 3779 }
duke@435 3780
neliasso@4872 3781 static jint initSock();
neliasso@4872 3782
duke@435 3783 // this is called _after_ the global arguments have been parsed
duke@435 3784 jint os::init_2(void) {
duke@435 3785 // Allocate a single page and mark it as readable for safepoint polling
duke@435 3786 address polling_page = (address)VirtualAlloc(NULL, os::vm_page_size(), MEM_RESERVE, PAGE_READONLY);
duke@435 3787 guarantee( polling_page != NULL, "Reserve Failed for polling page");
duke@435 3788
duke@435 3789 address return_page = (address)VirtualAlloc(polling_page, os::vm_page_size(), MEM_COMMIT, PAGE_READONLY);
duke@435 3790 guarantee( return_page != NULL, "Commit Failed for polling page");
duke@435 3791
duke@435 3792 os::set_polling_page( polling_page );
duke@435 3793
duke@435 3794 #ifndef PRODUCT
duke@435 3795 if( Verbose && PrintMiscellaneous )
duke@435 3796 tty->print("[SafePoint Polling address: " INTPTR_FORMAT "]\n", (intptr_t)polling_page);
duke@435 3797 #endif
duke@435 3798
duke@435 3799 if (!UseMembar) {
coleenp@1091 3800 address mem_serialize_page = (address)VirtualAlloc(NULL, os::vm_page_size(), MEM_RESERVE, PAGE_READWRITE);
duke@435 3801 guarantee( mem_serialize_page != NULL, "Reserve Failed for memory serialize page");
duke@435 3802
coleenp@1091 3803 return_page = (address)VirtualAlloc(mem_serialize_page, os::vm_page_size(), MEM_COMMIT, PAGE_READWRITE);
duke@435 3804 guarantee( return_page != NULL, "Commit Failed for memory serialize page");
duke@435 3805
duke@435 3806 os::set_memory_serialize_page( mem_serialize_page );
duke@435 3807
duke@435 3808 #ifndef PRODUCT
duke@435 3809 if(Verbose && PrintMiscellaneous)
duke@435 3810 tty->print("[Memory Serialize Page address: " INTPTR_FORMAT "]\n", (intptr_t)mem_serialize_page);
duke@435 3811 #endif
iveresov@3085 3812 }
duke@435 3813
iveresov@2850 3814 os::large_page_init();
duke@435 3815
duke@435 3816 // Setup Windows Exceptions
duke@435 3817
duke@435 3818 // for debugging float code generation bugs
duke@435 3819 if (ForceFloatExceptions) {
duke@435 3820 #ifndef _WIN64
duke@435 3821 static long fp_control_word = 0;
duke@435 3822 __asm { fstcw fp_control_word }
duke@435 3823 // see Intel PPro Manual, Vol. 2, p 7-16
duke@435 3824 const long precision = 0x20;
duke@435 3825 const long underflow = 0x10;
duke@435 3826 const long overflow = 0x08;
duke@435 3827 const long zero_div = 0x04;
duke@435 3828 const long denorm = 0x02;
duke@435 3829 const long invalid = 0x01;
duke@435 3830 fp_control_word |= invalid;
duke@435 3831 __asm { fldcw fp_control_word }
duke@435 3832 #endif
duke@435 3833 }
duke@435 3834
duke@435 3835 // If stack_commit_size is 0, windows will reserve the default size,
duke@435 3836 // but only commit a small portion of it.
duke@435 3837 size_t stack_commit_size = round_to(ThreadStackSize*K, os::vm_page_size());
duke@435 3838 size_t default_reserve_size = os::win32::default_stack_size();
duke@435 3839 size_t actual_reserve_size = stack_commit_size;
duke@435 3840 if (stack_commit_size < default_reserve_size) {
duke@435 3841 // If stack_commit_size == 0, we want this too
duke@435 3842 actual_reserve_size = default_reserve_size;
duke@435 3843 }
duke@435 3844
coleenp@2222 3845 // Check minimum allowable stack size for thread creation and to initialize
coleenp@2222 3846 // the java system classes, including StackOverflowError - depends on page
coleenp@2222 3847 // size. Add a page for compiler2 recursion in main thread.
coleenp@2222 3848 // Add in 2*BytesPerWord times page size to account for VM stack during
coleenp@2222 3849 // class initialization depending on 32 or 64 bit VM.
coleenp@2222 3850 size_t min_stack_allowed =
coleenp@2222 3851 (size_t)(StackYellowPages+StackRedPages+StackShadowPages+
coleenp@2222 3852 2*BytesPerWord COMPILER2_PRESENT(+1)) * os::vm_page_size();
coleenp@2222 3853 if (actual_reserve_size < min_stack_allowed) {
coleenp@2222 3854 tty->print_cr("\nThe stack size specified is too small, "
coleenp@2222 3855 "Specify at least %dk",
coleenp@2222 3856 min_stack_allowed / K);
coleenp@2222 3857 return JNI_ERR;
coleenp@2222 3858 }
coleenp@2222 3859
duke@435 3860 JavaThread::set_stack_size_at_create(stack_commit_size);
duke@435 3861
duke@435 3862 // Calculate theoretical max. size of Threads to guard gainst artifical
duke@435 3863 // out-of-memory situations, where all available address-space has been
duke@435 3864 // reserved by thread stacks.
duke@435 3865 assert(actual_reserve_size != 0, "Must have a stack");
duke@435 3866
duke@435 3867 // Calculate the thread limit when we should start doing Virtual Memory
duke@435 3868 // banging. Currently when the threads will have used all but 200Mb of space.
duke@435 3869 //
duke@435 3870 // TODO: consider performing a similar calculation for commit size instead
duke@435 3871 // as reserve size, since on a 64-bit platform we'll run into that more
duke@435 3872 // often than running out of virtual memory space. We can use the
duke@435 3873 // lower value of the two calculations as the os_thread_limit.
coleenp@548 3874 size_t max_address_space = ((size_t)1 << (BitsPerWord - 1)) - (200 * K * K);
duke@435 3875 win32::_os_thread_limit = (intx)(max_address_space / actual_reserve_size);
duke@435 3876
duke@435 3877 // at exit methods are called in the reverse order of their registration.
duke@435 3878 // there is no limit to the number of functions registered. atexit does
duke@435 3879 // not set errno.
duke@435 3880
duke@435 3881 if (PerfAllowAtExitRegistration) {
duke@435 3882 // only register atexit functions if PerfAllowAtExitRegistration is set.
duke@435 3883 // atexit functions can be delayed until process exit time, which
duke@435 3884 // can be problematic for embedded VM situations. Embedded VMs should
duke@435 3885 // call DestroyJavaVM() to assure that VM resources are released.
duke@435 3886
duke@435 3887 // note: perfMemory_exit_helper atexit function may be removed in
duke@435 3888 // the future if the appropriate cleanup code can be added to the
duke@435 3889 // VM_Exit VMOperation's doit method.
duke@435 3890 if (atexit(perfMemory_exit_helper) != 0) {
duke@435 3891 warning("os::init_2 atexit(perfMemory_exit_helper) failed");
duke@435 3892 }
duke@435 3893 }
duke@435 3894
duke@435 3895 #ifndef _WIN64
duke@435 3896 // Print something if NX is enabled (win32 on AMD64)
duke@435 3897 NOT_PRODUCT(if (PrintMiscellaneous && Verbose) nx_check_protection());
duke@435 3898 #endif
duke@435 3899
duke@435 3900 // initialize thread priority policy
duke@435 3901 prio_init();
duke@435 3902
iveresov@3118 3903 if (UseNUMA && !ForceNUMA) {
iveresov@3118 3904 UseNUMA = false; // We don't fully support this yet
iveresov@3118 3905 }
iveresov@3118 3906
iveresov@3085 3907 if (UseNUMAInterleaving) {
iveresov@3085 3908 // first check whether this Windows OS supports VirtualAllocExNuma, if not ignore this flag
iveresov@3085 3909 bool success = numa_interleaving_init();
iveresov@3085 3910 if (!success) UseNUMAInterleaving = false;
iveresov@897 3911 }
iveresov@897 3912
neliasso@4872 3913 if (initSock() != JNI_OK) {
neliasso@4872 3914 return JNI_ERR;
neliasso@4872 3915 }
neliasso@4872 3916
duke@435 3917 return JNI_OK;
duke@435 3918 }
duke@435 3919
bobv@2036 3920 void os::init_3(void) {
bobv@2036 3921 return;
bobv@2036 3922 }
duke@435 3923
duke@435 3924 // Mark the polling page as unreadable
duke@435 3925 void os::make_polling_page_unreadable(void) {
duke@435 3926 DWORD old_status;
duke@435 3927 if( !VirtualProtect((char *)_polling_page, os::vm_page_size(), PAGE_NOACCESS, &old_status) )
duke@435 3928 fatal("Could not disable polling page");
duke@435 3929 };
duke@435 3930
duke@435 3931 // Mark the polling page as readable
duke@435 3932 void os::make_polling_page_readable(void) {
duke@435 3933 DWORD old_status;
duke@435 3934 if( !VirtualProtect((char *)_polling_page, os::vm_page_size(), PAGE_READONLY, &old_status) )
duke@435 3935 fatal("Could not enable polling page");
duke@435 3936 };
duke@435 3937
duke@435 3938
duke@435 3939 int os::stat(const char *path, struct stat *sbuf) {
duke@435 3940 char pathbuf[MAX_PATH];
duke@435 3941 if (strlen(path) > MAX_PATH - 1) {
duke@435 3942 errno = ENAMETOOLONG;
duke@435 3943 return -1;
duke@435 3944 }
ikrylov@2322 3945 os::native_path(strcpy(pathbuf, path));
duke@435 3946 int ret = ::stat(pathbuf, sbuf);
duke@435 3947 if (sbuf != NULL && UseUTCFileTimestamp) {
duke@435 3948 // Fix for 6539723. st_mtime returned from stat() is dependent on
duke@435 3949 // the system timezone and so can return different values for the
duke@435 3950 // same file if/when daylight savings time changes. This adjustment
duke@435 3951 // makes sure the same timestamp is returned regardless of the TZ.
duke@435 3952 //
duke@435 3953 // See:
duke@435 3954 // http://msdn.microsoft.com/library/
duke@435 3955 // default.asp?url=/library/en-us/sysinfo/base/
duke@435 3956 // time_zone_information_str.asp
duke@435 3957 // and
duke@435 3958 // http://msdn.microsoft.com/library/default.asp?url=
duke@435 3959 // /library/en-us/sysinfo/base/settimezoneinformation.asp
duke@435 3960 //
duke@435 3961 // NOTE: there is a insidious bug here: If the timezone is changed
duke@435 3962 // after the call to stat() but before 'GetTimeZoneInformation()', then
duke@435 3963 // the adjustment we do here will be wrong and we'll return the wrong
duke@435 3964 // value (which will likely end up creating an invalid class data
duke@435 3965 // archive). Absent a better API for this, or some time zone locking
duke@435 3966 // mechanism, we'll have to live with this risk.
duke@435 3967 TIME_ZONE_INFORMATION tz;
duke@435 3968 DWORD tzid = GetTimeZoneInformation(&tz);
duke@435 3969 int daylightBias =
duke@435 3970 (tzid == TIME_ZONE_ID_DAYLIGHT) ? tz.DaylightBias : tz.StandardBias;
duke@435 3971 sbuf->st_mtime += (tz.Bias + daylightBias) * 60;
duke@435 3972 }
duke@435 3973 return ret;
duke@435 3974 }
duke@435 3975
duke@435 3976
duke@435 3977 #define FT2INT64(ft) \
duke@435 3978 ((jlong)((jlong)(ft).dwHighDateTime << 32 | (julong)(ft).dwLowDateTime))
duke@435 3979
duke@435 3980
duke@435 3981 // current_thread_cpu_time(bool) and thread_cpu_time(Thread*, bool)
duke@435 3982 // are used by JVM M&M and JVMTI to get user+sys or user CPU time
duke@435 3983 // of a thread.
duke@435 3984 //
duke@435 3985 // current_thread_cpu_time() and thread_cpu_time(Thread*) returns
duke@435 3986 // the fast estimate available on the platform.
duke@435 3987
duke@435 3988 // current_thread_cpu_time() is not optimized for Windows yet
duke@435 3989 jlong os::current_thread_cpu_time() {
duke@435 3990 // return user + sys since the cost is the same
duke@435 3991 return os::thread_cpu_time(Thread::current(), true /* user+sys */);
duke@435 3992 }
duke@435 3993
duke@435 3994 jlong os::thread_cpu_time(Thread* thread) {
duke@435 3995 // consistent with what current_thread_cpu_time() returns.
duke@435 3996 return os::thread_cpu_time(thread, true /* user+sys */);
duke@435 3997 }
duke@435 3998
duke@435 3999 jlong os::current_thread_cpu_time(bool user_sys_cpu_time) {
duke@435 4000 return os::thread_cpu_time(Thread::current(), user_sys_cpu_time);
duke@435 4001 }
duke@435 4002
duke@435 4003 jlong os::thread_cpu_time(Thread* thread, bool user_sys_cpu_time) {
duke@435 4004 // This code is copy from clasic VM -> hpi::sysThreadCPUTime
duke@435 4005 // If this function changes, os::is_thread_cpu_time_supported() should too
duke@435 4006 if (os::win32::is_nt()) {
duke@435 4007 FILETIME CreationTime;
duke@435 4008 FILETIME ExitTime;
duke@435 4009 FILETIME KernelTime;
duke@435 4010 FILETIME UserTime;
duke@435 4011
duke@435 4012 if ( GetThreadTimes(thread->osthread()->thread_handle(),
duke@435 4013 &CreationTime, &ExitTime, &KernelTime, &UserTime) == 0)
duke@435 4014 return -1;
duke@435 4015 else
duke@435 4016 if (user_sys_cpu_time) {
duke@435 4017 return (FT2INT64(UserTime) + FT2INT64(KernelTime)) * 100;
duke@435 4018 } else {
duke@435 4019 return FT2INT64(UserTime) * 100;
duke@435 4020 }
duke@435 4021 } else {
duke@435 4022 return (jlong) timeGetTime() * 1000000;
duke@435 4023 }
duke@435 4024 }
duke@435 4025
duke@435 4026 void os::current_thread_cpu_time_info(jvmtiTimerInfo *info_ptr) {
duke@435 4027 info_ptr->max_value = ALL_64_BITS; // the max value -- all 64 bits
duke@435 4028 info_ptr->may_skip_backward = false; // GetThreadTimes returns absolute time
duke@435 4029 info_ptr->may_skip_forward = false; // GetThreadTimes returns absolute time
duke@435 4030 info_ptr->kind = JVMTI_TIMER_TOTAL_CPU; // user+system time is returned
duke@435 4031 }
duke@435 4032
duke@435 4033 void os::thread_cpu_time_info(jvmtiTimerInfo *info_ptr) {
duke@435 4034 info_ptr->max_value = ALL_64_BITS; // the max value -- all 64 bits
duke@435 4035 info_ptr->may_skip_backward = false; // GetThreadTimes returns absolute time
duke@435 4036 info_ptr->may_skip_forward = false; // GetThreadTimes returns absolute time
duke@435 4037 info_ptr->kind = JVMTI_TIMER_TOTAL_CPU; // user+system time is returned
duke@435 4038 }
duke@435 4039
duke@435 4040 bool os::is_thread_cpu_time_supported() {
duke@435 4041 // see os::thread_cpu_time
duke@435 4042 if (os::win32::is_nt()) {
duke@435 4043 FILETIME CreationTime;
duke@435 4044 FILETIME ExitTime;
duke@435 4045 FILETIME KernelTime;
duke@435 4046 FILETIME UserTime;
duke@435 4047
duke@435 4048 if ( GetThreadTimes(GetCurrentThread(),
duke@435 4049 &CreationTime, &ExitTime, &KernelTime, &UserTime) == 0)
duke@435 4050 return false;
duke@435 4051 else
duke@435 4052 return true;
duke@435 4053 } else {
duke@435 4054 return false;
duke@435 4055 }
duke@435 4056 }
duke@435 4057
duke@435 4058 // Windows does't provide a loadavg primitive so this is stubbed out for now.
duke@435 4059 // It does have primitives (PDH API) to get CPU usage and run queue length.
duke@435 4060 // "\\Processor(_Total)\\% Processor Time", "\\System\\Processor Queue Length"
duke@435 4061 // If we wanted to implement loadavg on Windows, we have a few options:
duke@435 4062 //
duke@435 4063 // a) Query CPU usage and run queue length and "fake" an answer by
duke@435 4064 // returning the CPU usage if it's under 100%, and the run queue
duke@435 4065 // length otherwise. It turns out that querying is pretty slow
duke@435 4066 // on Windows, on the order of 200 microseconds on a fast machine.
duke@435 4067 // Note that on the Windows the CPU usage value is the % usage
duke@435 4068 // since the last time the API was called (and the first call
duke@435 4069 // returns 100%), so we'd have to deal with that as well.
duke@435 4070 //
duke@435 4071 // b) Sample the "fake" answer using a sampling thread and store
duke@435 4072 // the answer in a global variable. The call to loadavg would
duke@435 4073 // just return the value of the global, avoiding the slow query.
duke@435 4074 //
duke@435 4075 // c) Sample a better answer using exponential decay to smooth the
duke@435 4076 // value. This is basically the algorithm used by UNIX kernels.
duke@435 4077 //
duke@435 4078 // Note that sampling thread starvation could affect both (b) and (c).
duke@435 4079 int os::loadavg(double loadavg[], int nelem) {
duke@435 4080 return -1;
duke@435 4081 }
duke@435 4082
duke@435 4083
duke@435 4084 // DontYieldALot=false by default: dutifully perform all yields as requested by JVM_Yield()
duke@435 4085 bool os::dont_yield() {
duke@435 4086 return DontYieldALot;
duke@435 4087 }
duke@435 4088
ikrylov@2322 4089 // This method is a slightly reworked copy of JDK's sysOpen
ikrylov@2322 4090 // from src/windows/hpi/src/sys_api_md.c
ikrylov@2322 4091
ikrylov@2322 4092 int os::open(const char *path, int oflag, int mode) {
ikrylov@2322 4093 char pathbuf[MAX_PATH];
ikrylov@2322 4094
ikrylov@2322 4095 if (strlen(path) > MAX_PATH - 1) {
ikrylov@2322 4096 errno = ENAMETOOLONG;
ikrylov@2322 4097 return -1;
ikrylov@2322 4098 }
ikrylov@2322 4099 os::native_path(strcpy(pathbuf, path));
ikrylov@2322 4100 return ::open(pathbuf, oflag | O_BINARY | O_NOINHERIT, mode);
ikrylov@2322 4101 }
ikrylov@2322 4102
vlivanov@5027 4103 FILE* os::open(int fd, const char* mode) {
vlivanov@5027 4104 return ::_fdopen(fd, mode);
vlivanov@5027 4105 }
vlivanov@5027 4106
duke@435 4107 // Is a (classpath) directory empty?
duke@435 4108 bool os::dir_is_empty(const char* path) {
duke@435 4109 WIN32_FIND_DATA fd;
duke@435 4110 HANDLE f = FindFirstFile(path, &fd);
duke@435 4111 if (f == INVALID_HANDLE_VALUE) {
duke@435 4112 return true;
duke@435 4113 }
duke@435 4114 FindClose(f);
duke@435 4115 return false;
duke@435 4116 }
duke@435 4117
duke@435 4118 // create binary file, rewriting existing file if required
duke@435 4119 int os::create_binary_file(const char* path, bool rewrite_existing) {
duke@435 4120 int oflags = _O_CREAT | _O_WRONLY | _O_BINARY;
duke@435 4121 if (!rewrite_existing) {
duke@435 4122 oflags |= _O_EXCL;
duke@435 4123 }
duke@435 4124 return ::open(path, oflags, _S_IREAD | _S_IWRITE);
duke@435 4125 }
duke@435 4126
duke@435 4127 // return current position of file pointer
duke@435 4128 jlong os::current_file_offset(int fd) {
duke@435 4129 return (jlong)::_lseeki64(fd, (__int64)0L, SEEK_CUR);
duke@435 4130 }
duke@435 4131
duke@435 4132 // move file pointer to the specified offset
duke@435 4133 jlong os::seek_to_file_offset(int fd, jlong offset) {
duke@435 4134 return (jlong)::_lseeki64(fd, (__int64)offset, SEEK_SET);
duke@435 4135 }
duke@435 4136
duke@435 4137
ikrylov@2322 4138 jlong os::lseek(int fd, jlong offset, int whence) {
ikrylov@2322 4139 return (jlong) ::_lseeki64(fd, offset, whence);
ikrylov@2322 4140 }
ikrylov@2322 4141
ikrylov@2322 4142 // This method is a slightly reworked copy of JDK's sysNativePath
ikrylov@2322 4143 // from src/windows/hpi/src/path_md.c
ikrylov@2322 4144
ikrylov@2322 4145 /* Convert a pathname to native format. On win32, this involves forcing all
ikrylov@2322 4146 separators to be '\\' rather than '/' (both are legal inputs, but Win95
ikrylov@2322 4147 sometimes rejects '/') and removing redundant separators. The input path is
ikrylov@2322 4148 assumed to have been converted into the character encoding used by the local
ikrylov@2322 4149 system. Because this might be a double-byte encoding, care is taken to
ikrylov@2322 4150 treat double-byte lead characters correctly.
ikrylov@2322 4151
ikrylov@2322 4152 This procedure modifies the given path in place, as the result is never
ikrylov@2322 4153 longer than the original. There is no error return; this operation always
ikrylov@2322 4154 succeeds. */
ikrylov@2322 4155 char * os::native_path(char *path) {
ikrylov@2322 4156 char *src = path, *dst = path, *end = path;
ikrylov@2322 4157 char *colon = NULL; /* If a drive specifier is found, this will
ikrylov@2322 4158 point to the colon following the drive
ikrylov@2322 4159 letter */
ikrylov@2322 4160
ikrylov@2322 4161 /* Assumption: '/', '\\', ':', and drive letters are never lead bytes */
ikrylov@2322 4162 assert(((!::IsDBCSLeadByte('/'))
ikrylov@2322 4163 && (!::IsDBCSLeadByte('\\'))
ikrylov@2322 4164 && (!::IsDBCSLeadByte(':'))),
ikrylov@2322 4165 "Illegal lead byte");
ikrylov@2322 4166
ikrylov@2322 4167 /* Check for leading separators */
ikrylov@2322 4168 #define isfilesep(c) ((c) == '/' || (c) == '\\')
ikrylov@2322 4169 while (isfilesep(*src)) {
ikrylov@2322 4170 src++;
ikrylov@2322 4171 }
ikrylov@2322 4172
ikrylov@2322 4173 if (::isalpha(*src) && !::IsDBCSLeadByte(*src) && src[1] == ':') {
ikrylov@2322 4174 /* Remove leading separators if followed by drive specifier. This
ikrylov@2322 4175 hack is necessary to support file URLs containing drive
ikrylov@2322 4176 specifiers (e.g., "file://c:/path"). As a side effect,
ikrylov@2322 4177 "/c:/path" can be used as an alternative to "c:/path". */
ikrylov@2322 4178 *dst++ = *src++;
ikrylov@2322 4179 colon = dst;
ikrylov@2322 4180 *dst++ = ':';
ikrylov@2322 4181 src++;
ikrylov@2322 4182 } else {
ikrylov@2322 4183 src = path;
ikrylov@2322 4184 if (isfilesep(src[0]) && isfilesep(src[1])) {
ikrylov@2322 4185 /* UNC pathname: Retain first separator; leave src pointed at
ikrylov@2322 4186 second separator so that further separators will be collapsed
ikrylov@2322 4187 into the second separator. The result will be a pathname
ikrylov@2322 4188 beginning with "\\\\" followed (most likely) by a host name. */
ikrylov@2322 4189 src = dst = path + 1;
ikrylov@2322 4190 path[0] = '\\'; /* Force first separator to '\\' */
ikrylov@2322 4191 }
ikrylov@2322 4192 }
ikrylov@2322 4193
ikrylov@2322 4194 end = dst;
ikrylov@2322 4195
ikrylov@2322 4196 /* Remove redundant separators from remainder of path, forcing all
ikrylov@2322 4197 separators to be '\\' rather than '/'. Also, single byte space
ikrylov@2322 4198 characters are removed from the end of the path because those
ikrylov@2322 4199 are not legal ending characters on this operating system.
ikrylov@2322 4200 */
ikrylov@2322 4201 while (*src != '\0') {
ikrylov@2322 4202 if (isfilesep(*src)) {
ikrylov@2322 4203 *dst++ = '\\'; src++;
ikrylov@2322 4204 while (isfilesep(*src)) src++;
ikrylov@2322 4205 if (*src == '\0') {
ikrylov@2322 4206 /* Check for trailing separator */
ikrylov@2322 4207 end = dst;
ikrylov@2322 4208 if (colon == dst - 2) break; /* "z:\\" */
ikrylov@2322 4209 if (dst == path + 1) break; /* "\\" */
ikrylov@2322 4210 if (dst == path + 2 && isfilesep(path[0])) {
ikrylov@2322 4211 /* "\\\\" is not collapsed to "\\" because "\\\\" marks the
ikrylov@2322 4212 beginning of a UNC pathname. Even though it is not, by
ikrylov@2322 4213 itself, a valid UNC pathname, we leave it as is in order
ikrylov@2322 4214 to be consistent with the path canonicalizer as well
ikrylov@2322 4215 as the win32 APIs, which treat this case as an invalid
ikrylov@2322 4216 UNC pathname rather than as an alias for the root
ikrylov@2322 4217 directory of the current drive. */
ikrylov@2322 4218 break;
ikrylov@2322 4219 }
ikrylov@2322 4220 end = --dst; /* Path does not denote a root directory, so
ikrylov@2322 4221 remove trailing separator */
ikrylov@2322 4222 break;
ikrylov@2322 4223 }
ikrylov@2322 4224 end = dst;
ikrylov@2322 4225 } else {
ikrylov@2322 4226 if (::IsDBCSLeadByte(*src)) { /* Copy a double-byte character */
ikrylov@2322 4227 *dst++ = *src++;
ikrylov@2322 4228 if (*src) *dst++ = *src++;
ikrylov@2322 4229 end = dst;
ikrylov@2322 4230 } else { /* Copy a single-byte character */
ikrylov@2322 4231 char c = *src++;
ikrylov@2322 4232 *dst++ = c;
ikrylov@2322 4233 /* Space is not a legal ending character */
ikrylov@2322 4234 if (c != ' ') end = dst;
ikrylov@2322 4235 }
ikrylov@2322 4236 }
ikrylov@2322 4237 }
ikrylov@2322 4238
ikrylov@2322 4239 *end = '\0';
ikrylov@2322 4240
ikrylov@2322 4241 /* For "z:", add "." to work around a bug in the C runtime library */
ikrylov@2322 4242 if (colon == dst - 1) {
ikrylov@2322 4243 path[2] = '.';
ikrylov@2322 4244 path[3] = '\0';
ikrylov@2322 4245 }
ikrylov@2322 4246
ikrylov@2322 4247 return path;
ikrylov@2322 4248 }
ikrylov@2322 4249
ikrylov@2322 4250 // This code is a copy of JDK's sysSetLength
ikrylov@2322 4251 // from src/windows/hpi/src/sys_api_md.c
ikrylov@2322 4252
ikrylov@2322 4253 int os::ftruncate(int fd, jlong length) {
ikrylov@2322 4254 HANDLE h = (HANDLE)::_get_osfhandle(fd);
ikrylov@2322 4255 long high = (long)(length >> 32);
ikrylov@2322 4256 DWORD ret;
ikrylov@2322 4257
ikrylov@2322 4258 if (h == (HANDLE)(-1)) {
ikrylov@2322 4259 return -1;
ikrylov@2322 4260 }
ikrylov@2322 4261
ikrylov@2322 4262 ret = ::SetFilePointer(h, (long)(length), &high, FILE_BEGIN);
ikrylov@2322 4263 if ((ret == 0xFFFFFFFF) && (::GetLastError() != NO_ERROR)) {
ikrylov@2322 4264 return -1;
ikrylov@2322 4265 }
ikrylov@2322 4266
ikrylov@2322 4267 if (::SetEndOfFile(h) == FALSE) {
ikrylov@2322 4268 return -1;
ikrylov@2322 4269 }
ikrylov@2322 4270
ikrylov@2322 4271 return 0;
ikrylov@2322 4272 }
ikrylov@2322 4273
ikrylov@2322 4274
ikrylov@2322 4275 // This code is a copy of JDK's sysSync
ikrylov@2322 4276 // from src/windows/hpi/src/sys_api_md.c
ikrylov@2322 4277 // except for the legacy workaround for a bug in Win 98
ikrylov@2322 4278
ikrylov@2322 4279 int os::fsync(int fd) {
ikrylov@2322 4280 HANDLE handle = (HANDLE)::_get_osfhandle(fd);
ikrylov@2322 4281
ikrylov@2322 4282 if ( (!::FlushFileBuffers(handle)) &&
ikrylov@2322 4283 (GetLastError() != ERROR_ACCESS_DENIED) ) {
ikrylov@2322 4284 /* from winerror.h */
ikrylov@2322 4285 return -1;
ikrylov@2322 4286 }
ikrylov@2322 4287 return 0;
ikrylov@2322 4288 }
ikrylov@2322 4289
ikrylov@2322 4290 static int nonSeekAvailable(int, long *);
ikrylov@2322 4291 static int stdinAvailable(int, long *);
ikrylov@2322 4292
ikrylov@2322 4293 #define S_ISCHR(mode) (((mode) & _S_IFCHR) == _S_IFCHR)
ikrylov@2322 4294 #define S_ISFIFO(mode) (((mode) & _S_IFIFO) == _S_IFIFO)
ikrylov@2322 4295
ikrylov@2322 4296 // This code is a copy of JDK's sysAvailable
ikrylov@2322 4297 // from src/windows/hpi/src/sys_api_md.c
ikrylov@2322 4298
ikrylov@2322 4299 int os::available(int fd, jlong *bytes) {
ikrylov@2322 4300 jlong cur, end;
ikrylov@2322 4301 struct _stati64 stbuf64;
ikrylov@2322 4302
ikrylov@2322 4303 if (::_fstati64(fd, &stbuf64) >= 0) {
ikrylov@2322 4304 int mode = stbuf64.st_mode;
ikrylov@2322 4305 if (S_ISCHR(mode) || S_ISFIFO(mode)) {
ikrylov@2322 4306 int ret;
ikrylov@2322 4307 long lpbytes;
ikrylov@2322 4308 if (fd == 0) {
ikrylov@2322 4309 ret = stdinAvailable(fd, &lpbytes);
ikrylov@2322 4310 } else {
ikrylov@2322 4311 ret = nonSeekAvailable(fd, &lpbytes);
ikrylov@2322 4312 }
ikrylov@2322 4313 (*bytes) = (jlong)(lpbytes);
ikrylov@2322 4314 return ret;
ikrylov@2322 4315 }
ikrylov@2322 4316 if ((cur = ::_lseeki64(fd, 0L, SEEK_CUR)) == -1) {
ikrylov@2322 4317 return FALSE;
ikrylov@2322 4318 } else if ((end = ::_lseeki64(fd, 0L, SEEK_END)) == -1) {
ikrylov@2322 4319 return FALSE;
ikrylov@2322 4320 } else if (::_lseeki64(fd, cur, SEEK_SET) == -1) {
ikrylov@2322 4321 return FALSE;
ikrylov@2322 4322 }
ikrylov@2322 4323 *bytes = end - cur;
ikrylov@2322 4324 return TRUE;
ikrylov@2322 4325 } else {
ikrylov@2322 4326 return FALSE;
ikrylov@2322 4327 }
ikrylov@2322 4328 }
ikrylov@2322 4329
ikrylov@2322 4330 // This code is a copy of JDK's nonSeekAvailable
ikrylov@2322 4331 // from src/windows/hpi/src/sys_api_md.c
ikrylov@2322 4332
ikrylov@2322 4333 static int nonSeekAvailable(int fd, long *pbytes) {
ikrylov@2322 4334 /* This is used for available on non-seekable devices
ikrylov@2322 4335 * (like both named and anonymous pipes, such as pipes
ikrylov@2322 4336 * connected to an exec'd process).
ikrylov@2322 4337 * Standard Input is a special case.
ikrylov@2322 4338 *
ikrylov@2322 4339 */
ikrylov@2322 4340 HANDLE han;
ikrylov@2322 4341
ikrylov@2322 4342 if ((han = (HANDLE) ::_get_osfhandle(fd)) == (HANDLE)(-1)) {
ikrylov@2322 4343 return FALSE;
ikrylov@2322 4344 }
ikrylov@2322 4345
ikrylov@2322 4346 if (! ::PeekNamedPipe(han, NULL, 0, NULL, (LPDWORD)pbytes, NULL)) {
ikrylov@2322 4347 /* PeekNamedPipe fails when at EOF. In that case we
ikrylov@2322 4348 * simply make *pbytes = 0 which is consistent with the
ikrylov@2322 4349 * behavior we get on Solaris when an fd is at EOF.
ikrylov@2322 4350 * The only alternative is to raise an Exception,
ikrylov@2322 4351 * which isn't really warranted.
ikrylov@2322 4352 */
ikrylov@2322 4353 if (::GetLastError() != ERROR_BROKEN_PIPE) {
ikrylov@2322 4354 return FALSE;
ikrylov@2322 4355 }
ikrylov@2322 4356 *pbytes = 0;
ikrylov@2322 4357 }
ikrylov@2322 4358 return TRUE;
ikrylov@2322 4359 }
ikrylov@2322 4360
ikrylov@2322 4361 #define MAX_INPUT_EVENTS 2000
ikrylov@2322 4362
ikrylov@2322 4363 // This code is a copy of JDK's stdinAvailable
ikrylov@2322 4364 // from src/windows/hpi/src/sys_api_md.c
ikrylov@2322 4365
ikrylov@2322 4366 static int stdinAvailable(int fd, long *pbytes) {
ikrylov@2322 4367 HANDLE han;
ikrylov@2322 4368 DWORD numEventsRead = 0; /* Number of events read from buffer */
ikrylov@2322 4369 DWORD numEvents = 0; /* Number of events in buffer */
ikrylov@2322 4370 DWORD i = 0; /* Loop index */
ikrylov@2322 4371 DWORD curLength = 0; /* Position marker */
ikrylov@2322 4372 DWORD actualLength = 0; /* Number of bytes readable */
ikrylov@2322 4373 BOOL error = FALSE; /* Error holder */
ikrylov@2322 4374 INPUT_RECORD *lpBuffer; /* Pointer to records of input events */
ikrylov@2322 4375
ikrylov@2322 4376 if ((han = ::GetStdHandle(STD_INPUT_HANDLE)) == INVALID_HANDLE_VALUE) {
ikrylov@2322 4377 return FALSE;
ikrylov@2322 4378 }
ikrylov@2322 4379
ikrylov@2322 4380 /* Construct an array of input records in the console buffer */
ikrylov@2322 4381 error = ::GetNumberOfConsoleInputEvents(han, &numEvents);
ikrylov@2322 4382 if (error == 0) {
ikrylov@2322 4383 return nonSeekAvailable(fd, pbytes);
ikrylov@2322 4384 }
ikrylov@2322 4385
ikrylov@2322 4386 /* lpBuffer must fit into 64K or else PeekConsoleInput fails */
ikrylov@2322 4387 if (numEvents > MAX_INPUT_EVENTS) {
ikrylov@2322 4388 numEvents = MAX_INPUT_EVENTS;
ikrylov@2322 4389 }
ikrylov@2322 4390
zgu@3900 4391 lpBuffer = (INPUT_RECORD *)os::malloc(numEvents * sizeof(INPUT_RECORD), mtInternal);
ikrylov@2322 4392 if (lpBuffer == NULL) {
ikrylov@2322 4393 return FALSE;
ikrylov@2322 4394 }
ikrylov@2322 4395
ikrylov@2322 4396 error = ::PeekConsoleInput(han, lpBuffer, numEvents, &numEventsRead);
ikrylov@2322 4397 if (error == 0) {
zgu@3900 4398 os::free(lpBuffer, mtInternal);
ikrylov@2322 4399 return FALSE;
ikrylov@2322 4400 }
ikrylov@2322 4401
ikrylov@2322 4402 /* Examine input records for the number of bytes available */
ikrylov@2322 4403 for(i=0; i<numEvents; i++) {
ikrylov@2322 4404 if (lpBuffer[i].EventType == KEY_EVENT) {
ikrylov@2322 4405
ikrylov@2322 4406 KEY_EVENT_RECORD *keyRecord = (KEY_EVENT_RECORD *)
ikrylov@2322 4407 &(lpBuffer[i].Event);
ikrylov@2322 4408 if (keyRecord->bKeyDown == TRUE) {
ikrylov@2322 4409 CHAR *keyPressed = (CHAR *) &(keyRecord->uChar);
ikrylov@2322 4410 curLength++;
ikrylov@2322 4411 if (*keyPressed == '\r') {
ikrylov@2322 4412 actualLength = curLength;
ikrylov@2322 4413 }
ikrylov@2322 4414 }
ikrylov@2322 4415 }
ikrylov@2322 4416 }
ikrylov@2322 4417
ikrylov@2322 4418 if(lpBuffer != NULL) {
zgu@3900 4419 os::free(lpBuffer, mtInternal);
ikrylov@2322 4420 }
ikrylov@2322 4421
ikrylov@2322 4422 *pbytes = (long) actualLength;
ikrylov@2322 4423 return TRUE;
ikrylov@2322 4424 }
ikrylov@2322 4425
duke@435 4426 // Map a block of memory.
zgu@3900 4427 char* os::pd_map_memory(int fd, const char* file_name, size_t file_offset,
duke@435 4428 char *addr, size_t bytes, bool read_only,
duke@435 4429 bool allow_exec) {
duke@435 4430 HANDLE hFile;
duke@435 4431 char* base;
duke@435 4432
duke@435 4433 hFile = CreateFile(file_name, GENERIC_READ, FILE_SHARE_READ, NULL,
duke@435 4434 OPEN_EXISTING, FILE_ATTRIBUTE_NORMAL, NULL);
duke@435 4435 if (hFile == NULL) {
duke@435 4436 if (PrintMiscellaneous && Verbose) {
duke@435 4437 DWORD err = GetLastError();
hseigel@4465 4438 tty->print_cr("CreateFile() failed: GetLastError->%ld.", err);
duke@435 4439 }
duke@435 4440 return NULL;
duke@435 4441 }
duke@435 4442
duke@435 4443 if (allow_exec) {
duke@435 4444 // CreateFileMapping/MapViewOfFileEx can't map executable memory
duke@435 4445 // unless it comes from a PE image (which the shared archive is not.)
duke@435 4446 // Even VirtualProtect refuses to give execute access to mapped memory
duke@435 4447 // that was not previously executable.
duke@435 4448 //
duke@435 4449 // Instead, stick the executable region in anonymous memory. Yuck.
duke@435 4450 // Penalty is that ~4 pages will not be shareable - in the future
duke@435 4451 // we might consider DLLizing the shared archive with a proper PE
duke@435 4452 // header so that mapping executable + sharing is possible.
duke@435 4453
duke@435 4454 base = (char*) VirtualAlloc(addr, bytes, MEM_COMMIT | MEM_RESERVE,
duke@435 4455 PAGE_READWRITE);
duke@435 4456 if (base == NULL) {
duke@435 4457 if (PrintMiscellaneous && Verbose) {
duke@435 4458 DWORD err = GetLastError();
duke@435 4459 tty->print_cr("VirtualAlloc() failed: GetLastError->%ld.", err);
duke@435 4460 }
duke@435 4461 CloseHandle(hFile);
duke@435 4462 return NULL;
duke@435 4463 }
duke@435 4464
duke@435 4465 DWORD bytes_read;
duke@435 4466 OVERLAPPED overlapped;
duke@435 4467 overlapped.Offset = (DWORD)file_offset;
duke@435 4468 overlapped.OffsetHigh = 0;
duke@435 4469 overlapped.hEvent = NULL;
duke@435 4470 // ReadFile guarantees that if the return value is true, the requested
duke@435 4471 // number of bytes were read before returning.
duke@435 4472 bool res = ReadFile(hFile, base, (DWORD)bytes, &bytes_read, &overlapped) != 0;
duke@435 4473 if (!res) {
duke@435 4474 if (PrintMiscellaneous && Verbose) {
duke@435 4475 DWORD err = GetLastError();
duke@435 4476 tty->print_cr("ReadFile() failed: GetLastError->%ld.", err);
duke@435 4477 }
duke@435 4478 release_memory(base, bytes);
duke@435 4479 CloseHandle(hFile);
duke@435 4480 return NULL;
duke@435 4481 }
duke@435 4482 } else {
duke@435 4483 HANDLE hMap = CreateFileMapping(hFile, NULL, PAGE_WRITECOPY, 0, 0,
duke@435 4484 NULL /*file_name*/);
duke@435 4485 if (hMap == NULL) {
duke@435 4486 if (PrintMiscellaneous && Verbose) {
duke@435 4487 DWORD err = GetLastError();
hseigel@4465 4488 tty->print_cr("CreateFileMapping() failed: GetLastError->%ld.", err);
duke@435 4489 }
duke@435 4490 CloseHandle(hFile);
duke@435 4491 return NULL;
duke@435 4492 }
duke@435 4493
duke@435 4494 DWORD access = read_only ? FILE_MAP_READ : FILE_MAP_COPY;
duke@435 4495 base = (char*)MapViewOfFileEx(hMap, access, 0, (DWORD)file_offset,
duke@435 4496 (DWORD)bytes, addr);
duke@435 4497 if (base == NULL) {
duke@435 4498 if (PrintMiscellaneous && Verbose) {
duke@435 4499 DWORD err = GetLastError();
duke@435 4500 tty->print_cr("MapViewOfFileEx() failed: GetLastError->%ld.", err);
duke@435 4501 }
duke@435 4502 CloseHandle(hMap);
duke@435 4503 CloseHandle(hFile);
duke@435 4504 return NULL;
duke@435 4505 }
duke@435 4506
duke@435 4507 if (CloseHandle(hMap) == 0) {
duke@435 4508 if (PrintMiscellaneous && Verbose) {
duke@435 4509 DWORD err = GetLastError();
duke@435 4510 tty->print_cr("CloseHandle(hMap) failed: GetLastError->%ld.", err);
duke@435 4511 }
duke@435 4512 CloseHandle(hFile);
duke@435 4513 return base;
duke@435 4514 }
duke@435 4515 }
duke@435 4516
duke@435 4517 if (allow_exec) {
duke@435 4518 DWORD old_protect;
duke@435 4519 DWORD exec_access = read_only ? PAGE_EXECUTE_READ : PAGE_EXECUTE_READWRITE;
duke@435 4520 bool res = VirtualProtect(base, bytes, exec_access, &old_protect) != 0;
duke@435 4521
duke@435 4522 if (!res) {
duke@435 4523 if (PrintMiscellaneous && Verbose) {
duke@435 4524 DWORD err = GetLastError();
duke@435 4525 tty->print_cr("VirtualProtect() failed: GetLastError->%ld.", err);
duke@435 4526 }
duke@435 4527 // Don't consider this a hard error, on IA32 even if the
duke@435 4528 // VirtualProtect fails, we should still be able to execute
duke@435 4529 CloseHandle(hFile);
duke@435 4530 return base;
duke@435 4531 }
duke@435 4532 }
duke@435 4533
duke@435 4534 if (CloseHandle(hFile) == 0) {
duke@435 4535 if (PrintMiscellaneous && Verbose) {
duke@435 4536 DWORD err = GetLastError();
duke@435 4537 tty->print_cr("CloseHandle(hFile) failed: GetLastError->%ld.", err);
duke@435 4538 }
duke@435 4539 return base;
duke@435 4540 }
duke@435 4541
duke@435 4542 return base;
duke@435 4543 }
duke@435 4544
duke@435 4545
duke@435 4546 // Remap a block of memory.
zgu@3900 4547 char* os::pd_remap_memory(int fd, const char* file_name, size_t file_offset,
duke@435 4548 char *addr, size_t bytes, bool read_only,
duke@435 4549 bool allow_exec) {
duke@435 4550 // This OS does not allow existing memory maps to be remapped so we
duke@435 4551 // have to unmap the memory before we remap it.
duke@435 4552 if (!os::unmap_memory(addr, bytes)) {
duke@435 4553 return NULL;
duke@435 4554 }
duke@435 4555
duke@435 4556 // There is a very small theoretical window between the unmap_memory()
duke@435 4557 // call above and the map_memory() call below where a thread in native
duke@435 4558 // code may be able to access an address that is no longer mapped.
duke@435 4559
zgu@3900 4560 return os::map_memory(fd, file_name, file_offset, addr, bytes,
zgu@3900 4561 read_only, allow_exec);
duke@435 4562 }
duke@435 4563
duke@435 4564
duke@435 4565 // Unmap a block of memory.
duke@435 4566 // Returns true=success, otherwise false.
duke@435 4567
zgu@3900 4568 bool os::pd_unmap_memory(char* addr, size_t bytes) {
duke@435 4569 BOOL result = UnmapViewOfFile(addr);
duke@435 4570 if (result == 0) {
duke@435 4571 if (PrintMiscellaneous && Verbose) {
duke@435 4572 DWORD err = GetLastError();
duke@435 4573 tty->print_cr("UnmapViewOfFile() failed: GetLastError->%ld.", err);
duke@435 4574 }
duke@435 4575 return false;
duke@435 4576 }
duke@435 4577 return true;
duke@435 4578 }
duke@435 4579
duke@435 4580 void os::pause() {
duke@435 4581 char filename[MAX_PATH];
duke@435 4582 if (PauseAtStartupFile && PauseAtStartupFile[0]) {
duke@435 4583 jio_snprintf(filename, MAX_PATH, PauseAtStartupFile);
duke@435 4584 } else {
duke@435 4585 jio_snprintf(filename, MAX_PATH, "./vm.paused.%d", current_process_id());
duke@435 4586 }
duke@435 4587
duke@435 4588 int fd = ::open(filename, O_WRONLY | O_CREAT | O_TRUNC, 0666);
duke@435 4589 if (fd != -1) {
duke@435 4590 struct stat buf;
ikrylov@2322 4591 ::close(fd);
duke@435 4592 while (::stat(filename, &buf) == 0) {
duke@435 4593 Sleep(100);
duke@435 4594 }
duke@435 4595 } else {
duke@435 4596 jio_fprintf(stderr,
duke@435 4597 "Could not open pause file '%s', continuing immediately.\n", filename);
duke@435 4598 }
duke@435 4599 }
duke@435 4600
duke@435 4601 // An Event wraps a win32 "CreateEvent" kernel handle.
duke@435 4602 //
duke@435 4603 // We have a number of choices regarding "CreateEvent" win32 handle leakage:
duke@435 4604 //
duke@435 4605 // 1: When a thread dies return the Event to the EventFreeList, clear the ParkHandle
duke@435 4606 // field, and call CloseHandle() on the win32 event handle. Unpark() would
duke@435 4607 // need to be modified to tolerate finding a NULL (invalid) win32 event handle.
duke@435 4608 // In addition, an unpark() operation might fetch the handle field, but the
duke@435 4609 // event could recycle between the fetch and the SetEvent() operation.
duke@435 4610 // SetEvent() would either fail because the handle was invalid, or inadvertently work,
duke@435 4611 // as the win32 handle value had been recycled. In an ideal world calling SetEvent()
duke@435 4612 // on an stale but recycled handle would be harmless, but in practice this might
duke@435 4613 // confuse other non-Sun code, so it's not a viable approach.
duke@435 4614 //
duke@435 4615 // 2: Once a win32 event handle is associated with an Event, it remains associated
duke@435 4616 // with the Event. The event handle is never closed. This could be construed
duke@435 4617 // as handle leakage, but only up to the maximum # of threads that have been extant
duke@435 4618 // at any one time. This shouldn't be an issue, as windows platforms typically
duke@435 4619 // permit a process to have hundreds of thousands of open handles.
duke@435 4620 //
duke@435 4621 // 3: Same as (1), but periodically, at stop-the-world time, rundown the EventFreeList
duke@435 4622 // and release unused handles.
duke@435 4623 //
duke@435 4624 // 4: Add a CRITICAL_SECTION to the Event to protect LD+SetEvent from LD;ST(null);CloseHandle.
duke@435 4625 // It's not clear, however, that we wouldn't be trading one type of leak for another.
duke@435 4626 //
duke@435 4627 // 5. Use an RCU-like mechanism (Read-Copy Update).
duke@435 4628 // Or perhaps something similar to Maged Michael's "Hazard pointers".
duke@435 4629 //
duke@435 4630 // We use (2).
duke@435 4631 //
duke@435 4632 // TODO-FIXME:
duke@435 4633 // 1. Reconcile Doug's JSR166 j.u.c park-unpark with the objectmonitor implementation.
duke@435 4634 // 2. Consider wrapping the WaitForSingleObject(Ex) calls in SEH try/finally blocks
duke@435 4635 // to recover from (or at least detect) the dreaded Windows 841176 bug.
duke@435 4636 // 3. Collapse the interrupt_event, the JSR166 parker event, and the objectmonitor ParkEvent
duke@435 4637 // into a single win32 CreateEvent() handle.
duke@435 4638 //
duke@435 4639 // _Event transitions in park()
duke@435 4640 // -1 => -1 : illegal
duke@435 4641 // 1 => 0 : pass - return immediately
duke@435 4642 // 0 => -1 : block
duke@435 4643 //
duke@435 4644 // _Event serves as a restricted-range semaphore :
duke@435 4645 // -1 : thread is blocked
duke@435 4646 // 0 : neutral - thread is running or ready
duke@435 4647 // 1 : signaled - thread is running or ready
duke@435 4648 //
duke@435 4649 // Another possible encoding of _Event would be
duke@435 4650 // with explicit "PARKED" and "SIGNALED" bits.
duke@435 4651
duke@435 4652 int os::PlatformEvent::park (jlong Millis) {
duke@435 4653 guarantee (_ParkHandle != NULL , "Invariant") ;
duke@435 4654 guarantee (Millis > 0 , "Invariant") ;
duke@435 4655 int v ;
duke@435 4656
duke@435 4657 // CONSIDER: defer assigning a CreateEvent() handle to the Event until
duke@435 4658 // the initial park() operation.
duke@435 4659
duke@435 4660 for (;;) {
duke@435 4661 v = _Event ;
duke@435 4662 if (Atomic::cmpxchg (v-1, &_Event, v) == v) break ;
duke@435 4663 }
duke@435 4664 guarantee ((v == 0) || (v == 1), "invariant") ;
duke@435 4665 if (v != 0) return OS_OK ;
duke@435 4666
duke@435 4667 // Do this the hard way by blocking ...
duke@435 4668 // TODO: consider a brief spin here, gated on the success of recent
duke@435 4669 // spin attempts by this thread.
duke@435 4670 //
duke@435 4671 // We decompose long timeouts into series of shorter timed waits.
duke@435 4672 // Evidently large timo values passed in WaitForSingleObject() are problematic on some
duke@435 4673 // versions of Windows. See EventWait() for details. This may be superstition. Or not.
duke@435 4674 // We trust the WAIT_TIMEOUT indication and don't track the elapsed wait time
duke@435 4675 // with os::javaTimeNanos(). Furthermore, we assume that spurious returns from
duke@435 4676 // ::WaitForSingleObject() caused by latent ::setEvent() operations will tend
duke@435 4677 // to happen early in the wait interval. Specifically, after a spurious wakeup (rv ==
duke@435 4678 // WAIT_OBJECT_0 but _Event is still < 0) we don't bother to recompute Millis to compensate
duke@435 4679 // for the already waited time. This policy does not admit any new outcomes.
duke@435 4680 // In the future, however, we might want to track the accumulated wait time and
duke@435 4681 // adjust Millis accordingly if we encounter a spurious wakeup.
duke@435 4682
duke@435 4683 const int MAXTIMEOUT = 0x10000000 ;
duke@435 4684 DWORD rv = WAIT_TIMEOUT ;
duke@435 4685 while (_Event < 0 && Millis > 0) {
duke@435 4686 DWORD prd = Millis ; // set prd = MAX (Millis, MAXTIMEOUT)
duke@435 4687 if (Millis > MAXTIMEOUT) {
duke@435 4688 prd = MAXTIMEOUT ;
duke@435 4689 }
duke@435 4690 rv = ::WaitForSingleObject (_ParkHandle, prd) ;
duke@435 4691 assert (rv == WAIT_OBJECT_0 || rv == WAIT_TIMEOUT, "WaitForSingleObject failed") ;
duke@435 4692 if (rv == WAIT_TIMEOUT) {
duke@435 4693 Millis -= prd ;
duke@435 4694 }
duke@435 4695 }
duke@435 4696 v = _Event ;
duke@435 4697 _Event = 0 ;
dcubed@4471 4698 // see comment at end of os::PlatformEvent::park() below:
duke@435 4699 OrderAccess::fence() ;
duke@435 4700 // If we encounter a nearly simultanous timeout expiry and unpark()
duke@435 4701 // we return OS_OK indicating we awoke via unpark().
duke@435 4702 // Implementor's license -- returning OS_TIMEOUT would be equally valid, however.
duke@435 4703 return (v >= 0) ? OS_OK : OS_TIMEOUT ;
duke@435 4704 }
duke@435 4705
duke@435 4706 void os::PlatformEvent::park () {
duke@435 4707 guarantee (_ParkHandle != NULL, "Invariant") ;
duke@435 4708 // Invariant: Only the thread associated with the Event/PlatformEvent
duke@435 4709 // may call park().
duke@435 4710 int v ;
duke@435 4711 for (;;) {
duke@435 4712 v = _Event ;
duke@435 4713 if (Atomic::cmpxchg (v-1, &_Event, v) == v) break ;
duke@435 4714 }
duke@435 4715 guarantee ((v == 0) || (v == 1), "invariant") ;
duke@435 4716 if (v != 0) return ;
duke@435 4717
duke@435 4718 // Do this the hard way by blocking ...
duke@435 4719 // TODO: consider a brief spin here, gated on the success of recent
duke@435 4720 // spin attempts by this thread.
duke@435 4721 while (_Event < 0) {
duke@435 4722 DWORD rv = ::WaitForSingleObject (_ParkHandle, INFINITE) ;
duke@435 4723 assert (rv == WAIT_OBJECT_0, "WaitForSingleObject failed") ;
duke@435 4724 }
duke@435 4725
duke@435 4726 // Usually we'll find _Event == 0 at this point, but as
duke@435 4727 // an optional optimization we clear it, just in case can
duke@435 4728 // multiple unpark() operations drove _Event up to 1.
duke@435 4729 _Event = 0 ;
duke@435 4730 OrderAccess::fence() ;
duke@435 4731 guarantee (_Event >= 0, "invariant") ;
duke@435 4732 }
duke@435 4733
duke@435 4734 void os::PlatformEvent::unpark() {
duke@435 4735 guarantee (_ParkHandle != NULL, "Invariant") ;
dcubed@4471 4736
dcubed@4471 4737 // Transitions for _Event:
dcubed@4471 4738 // 0 :=> 1
dcubed@4471 4739 // 1 :=> 1
dcubed@4471 4740 // -1 :=> either 0 or 1; must signal target thread
dcubed@4471 4741 // That is, we can safely transition _Event from -1 to either
dcubed@4471 4742 // 0 or 1. Forcing 1 is slightly more efficient for back-to-back
dcubed@4471 4743 // unpark() calls.
dcubed@4471 4744 // See also: "Semaphores in Plan 9" by Mullender & Cox
dcubed@4471 4745 //
dcubed@4471 4746 // Note: Forcing a transition from "-1" to "1" on an unpark() means
dcubed@4471 4747 // that it will take two back-to-back park() calls for the owning
dcubed@4471 4748 // thread to block. This has the benefit of forcing a spurious return
dcubed@4471 4749 // from the first park() call after an unpark() call which will help
dcubed@4471 4750 // shake out uses of park() and unpark() without condition variables.
dcubed@4471 4751
dcubed@4471 4752 if (Atomic::xchg(1, &_Event) >= 0) return;
dcubed@4471 4753
dcubed@4471 4754 ::SetEvent(_ParkHandle);
duke@435 4755 }
duke@435 4756
duke@435 4757
duke@435 4758 // JSR166
duke@435 4759 // -------------------------------------------------------
duke@435 4760
duke@435 4761 /*
duke@435 4762 * The Windows implementation of Park is very straightforward: Basic
duke@435 4763 * operations on Win32 Events turn out to have the right semantics to
duke@435 4764 * use them directly. We opportunistically resuse the event inherited
duke@435 4765 * from Monitor.
duke@435 4766 */
duke@435 4767
duke@435 4768
duke@435 4769 void Parker::park(bool isAbsolute, jlong time) {
duke@435 4770 guarantee (_ParkEvent != NULL, "invariant") ;
duke@435 4771 // First, demultiplex/decode time arguments
duke@435 4772 if (time < 0) { // don't wait
duke@435 4773 return;
duke@435 4774 }
acorn@2220 4775 else if (time == 0 && !isAbsolute) {
duke@435 4776 time = INFINITE;
duke@435 4777 }
duke@435 4778 else if (isAbsolute) {
duke@435 4779 time -= os::javaTimeMillis(); // convert to relative time
duke@435 4780 if (time <= 0) // already elapsed
duke@435 4781 return;
duke@435 4782 }
duke@435 4783 else { // relative
duke@435 4784 time /= 1000000; // Must coarsen from nanos to millis
duke@435 4785 if (time == 0) // Wait for the minimal time unit if zero
duke@435 4786 time = 1;
duke@435 4787 }
duke@435 4788
duke@435 4789 JavaThread* thread = (JavaThread*)(Thread::current());
duke@435 4790 assert(thread->is_Java_thread(), "Must be JavaThread");
duke@435 4791 JavaThread *jt = (JavaThread *)thread;
duke@435 4792
duke@435 4793 // Don't wait if interrupted or already triggered
duke@435 4794 if (Thread::is_interrupted(thread, false) ||
duke@435 4795 WaitForSingleObject(_ParkEvent, 0) == WAIT_OBJECT_0) {
duke@435 4796 ResetEvent(_ParkEvent);
duke@435 4797 return;
duke@435 4798 }
duke@435 4799 else {
duke@435 4800 ThreadBlockInVM tbivm(jt);
duke@435 4801 OSThreadWaitState osts(thread->osthread(), false /* not Object.wait() */);
duke@435 4802 jt->set_suspend_equivalent();
duke@435 4803
duke@435 4804 WaitForSingleObject(_ParkEvent, time);
duke@435 4805 ResetEvent(_ParkEvent);
duke@435 4806
duke@435 4807 // If externally suspended while waiting, re-suspend
duke@435 4808 if (jt->handle_special_suspend_equivalent_condition()) {
duke@435 4809 jt->java_suspend_self();
duke@435 4810 }
duke@435 4811 }
duke@435 4812 }
duke@435 4813
duke@435 4814 void Parker::unpark() {
duke@435 4815 guarantee (_ParkEvent != NULL, "invariant") ;
duke@435 4816 SetEvent(_ParkEvent);
duke@435 4817 }
duke@435 4818
duke@435 4819 // Run the specified command in a separate process. Return its exit value,
duke@435 4820 // or -1 on failure (e.g. can't create a new process).
duke@435 4821 int os::fork_and_exec(char* cmd) {
duke@435 4822 STARTUPINFO si;
duke@435 4823 PROCESS_INFORMATION pi;
duke@435 4824
duke@435 4825 memset(&si, 0, sizeof(si));
duke@435 4826 si.cb = sizeof(si);
duke@435 4827 memset(&pi, 0, sizeof(pi));
duke@435 4828 BOOL rslt = CreateProcess(NULL, // executable name - use command line
duke@435 4829 cmd, // command line
duke@435 4830 NULL, // process security attribute
duke@435 4831 NULL, // thread security attribute
duke@435 4832 TRUE, // inherits system handles
duke@435 4833 0, // no creation flags
duke@435 4834 NULL, // use parent's environment block
duke@435 4835 NULL, // use parent's starting directory
duke@435 4836 &si, // (in) startup information
duke@435 4837 &pi); // (out) process information
duke@435 4838
duke@435 4839 if (rslt) {
duke@435 4840 // Wait until child process exits.
duke@435 4841 WaitForSingleObject(pi.hProcess, INFINITE);
duke@435 4842
duke@435 4843 DWORD exit_code;
duke@435 4844 GetExitCodeProcess(pi.hProcess, &exit_code);
duke@435 4845
duke@435 4846 // Close process and thread handles.
duke@435 4847 CloseHandle(pi.hProcess);
duke@435 4848 CloseHandle(pi.hThread);
duke@435 4849
duke@435 4850 return (int)exit_code;
duke@435 4851 } else {
duke@435 4852 return -1;
duke@435 4853 }
duke@435 4854 }
duke@435 4855
duke@435 4856 //--------------------------------------------------------------------------------------------------
duke@435 4857 // Non-product code
duke@435 4858
duke@435 4859 static int mallocDebugIntervalCounter = 0;
duke@435 4860 static int mallocDebugCounter = 0;
duke@435 4861 bool os::check_heap(bool force) {
duke@435 4862 if (++mallocDebugCounter < MallocVerifyStart && !force) return true;
duke@435 4863 if (++mallocDebugIntervalCounter >= MallocVerifyInterval || force) {
duke@435 4864 // Note: HeapValidate executes two hardware breakpoints when it finds something
duke@435 4865 // wrong; at these points, eax contains the address of the offending block (I think).
duke@435 4866 // To get to the exlicit error message(s) below, just continue twice.
duke@435 4867 HANDLE heap = GetProcessHeap();
duke@435 4868 { HeapLock(heap);
duke@435 4869 PROCESS_HEAP_ENTRY phe;
duke@435 4870 phe.lpData = NULL;
duke@435 4871 while (HeapWalk(heap, &phe) != 0) {
duke@435 4872 if ((phe.wFlags & PROCESS_HEAP_ENTRY_BUSY) &&
duke@435 4873 !HeapValidate(heap, 0, phe.lpData)) {
duke@435 4874 tty->print_cr("C heap has been corrupted (time: %d allocations)", mallocDebugCounter);
duke@435 4875 tty->print_cr("corrupted block near address %#x, length %d", phe.lpData, phe.cbData);
duke@435 4876 fatal("corrupted C heap");
duke@435 4877 }
duke@435 4878 }
phh@3379 4879 DWORD err = GetLastError();
duke@435 4880 if (err != ERROR_NO_MORE_ITEMS && err != ERROR_CALL_NOT_IMPLEMENTED) {
jcoomes@1845 4881 fatal(err_msg("heap walk aborted with error %d", err));
duke@435 4882 }
duke@435 4883 HeapUnlock(heap);
duke@435 4884 }
duke@435 4885 mallocDebugIntervalCounter = 0;
duke@435 4886 }
duke@435 4887 return true;
duke@435 4888 }
duke@435 4889
duke@435 4890
bobv@2036 4891 bool os::find(address addr, outputStream* st) {
duke@435 4892 // Nothing yet
duke@435 4893 return false;
duke@435 4894 }
duke@435 4895
duke@435 4896 LONG WINAPI os::win32::serialize_fault_filter(struct _EXCEPTION_POINTERS* e) {
duke@435 4897 DWORD exception_code = e->ExceptionRecord->ExceptionCode;
duke@435 4898
duke@435 4899 if ( exception_code == EXCEPTION_ACCESS_VIOLATION ) {
duke@435 4900 JavaThread* thread = (JavaThread*)ThreadLocalStorage::get_thread_slow();
duke@435 4901 PEXCEPTION_RECORD exceptionRecord = e->ExceptionRecord;
duke@435 4902 address addr = (address) exceptionRecord->ExceptionInformation[1];
duke@435 4903
duke@435 4904 if (os::is_memory_serialize_page(thread, addr))
duke@435 4905 return EXCEPTION_CONTINUE_EXECUTION;
duke@435 4906 }
duke@435 4907
duke@435 4908 return EXCEPTION_CONTINUE_SEARCH;
duke@435 4909 }
duke@435 4910
bobv@2036 4911 // We don't build a headless jre for Windows
bobv@2036 4912 bool os::is_headless_jre() { return false; }
bobv@2036 4913
neliasso@4872 4914 static jint initSock() {
ikrylov@2322 4915 WSADATA wsadata;
ikrylov@2322 4916
zgu@3031 4917 if (!os::WinSock2Dll::WinSock2Available()) {
neliasso@4872 4918 jio_fprintf(stderr, "Could not load Winsock (error: %d)\n",
zgu@3031 4919 ::GetLastError());
neliasso@4872 4920 return JNI_ERR;
neliasso@4872 4921 }
neliasso@4872 4922
neliasso@4872 4923 if (os::WinSock2Dll::WSAStartup(MAKEWORD(2,2), &wsadata) != 0) {
neliasso@4872 4924 jio_fprintf(stderr, "Could not initialize Winsock (error: %d)\n",
neliasso@4872 4925 ::GetLastError());
neliasso@4872 4926 return JNI_ERR;
neliasso@4872 4927 }
neliasso@4872 4928 return JNI_OK;
ikrylov@2322 4929 }
ikrylov@2322 4930
phh@3344 4931 struct hostent* os::get_host_by_name(char* name) {
zgu@3031 4932 return (struct hostent*)os::WinSock2Dll::gethostbyname(name);
ikrylov@2322 4933 }
ikrylov@2322 4934
ikrylov@2322 4935 int os::socket_close(int fd) {
twisti@3747 4936 return ::closesocket(fd);
ikrylov@2322 4937 }
ikrylov@2322 4938
ikrylov@2322 4939 int os::socket_available(int fd, jint *pbytes) {
twisti@3747 4940 int ret = ::ioctlsocket(fd, FIONREAD, (u_long*)pbytes);
twisti@3747 4941 return (ret < 0) ? 0 : 1;
ikrylov@2322 4942 }
ikrylov@2322 4943
ikrylov@2322 4944 int os::socket(int domain, int type, int protocol) {
twisti@3747 4945 return ::socket(domain, type, protocol);
ikrylov@2322 4946 }
ikrylov@2322 4947
ikrylov@2322 4948 int os::listen(int fd, int count) {
twisti@3747 4949 return ::listen(fd, count);
ikrylov@2322 4950 }
ikrylov@2322 4951
phh@3344 4952 int os::connect(int fd, struct sockaddr* him, socklen_t len) {
twisti@3747 4953 return ::connect(fd, him, len);
ikrylov@2322 4954 }
ikrylov@2322 4955
phh@3344 4956 int os::accept(int fd, struct sockaddr* him, socklen_t* len) {
twisti@3747 4957 return ::accept(fd, him, len);
ikrylov@2322 4958 }
ikrylov@2322 4959
phh@3344 4960 int os::sendto(int fd, char* buf, size_t len, uint flags,
phh@3344 4961 struct sockaddr* to, socklen_t tolen) {
twisti@3747 4962
twisti@3747 4963 return ::sendto(fd, buf, (int)len, flags, to, tolen);
ikrylov@2322 4964 }
ikrylov@2322 4965
phh@3344 4966 int os::recvfrom(int fd, char *buf, size_t nBytes, uint flags,
phh@3344 4967 sockaddr* from, socklen_t* fromlen) {
twisti@3747 4968
twisti@3747 4969 return ::recvfrom(fd, buf, (int)nBytes, flags, from, fromlen);
ikrylov@2322 4970 }
ikrylov@2322 4971
phh@3344 4972 int os::recv(int fd, char* buf, size_t nBytes, uint flags) {
twisti@3747 4973 return ::recv(fd, buf, (int)nBytes, flags);
ikrylov@2322 4974 }
ikrylov@2322 4975
phh@3344 4976 int os::send(int fd, char* buf, size_t nBytes, uint flags) {
twisti@3747 4977 return ::send(fd, buf, (int)nBytes, flags);
ikrylov@2322 4978 }
ikrylov@2322 4979
phh@3344 4980 int os::raw_send(int fd, char* buf, size_t nBytes, uint flags) {
twisti@3747 4981 return ::send(fd, buf, (int)nBytes, flags);
ikrylov@2322 4982 }
ikrylov@2322 4983
ikrylov@2322 4984 int os::timeout(int fd, long timeout) {
twisti@3747 4985 fd_set tbl;
twisti@3747 4986 struct timeval t;
twisti@3747 4987
twisti@3747 4988 t.tv_sec = timeout / 1000;
twisti@3747 4989 t.tv_usec = (timeout % 1000) * 1000;
twisti@3747 4990
twisti@3747 4991 tbl.fd_count = 1;
twisti@3747 4992 tbl.fd_array[0] = fd;
twisti@3747 4993
twisti@3747 4994 return ::select(1, &tbl, 0, 0, &t);
ikrylov@2322 4995 }
ikrylov@2322 4996
ikrylov@2322 4997 int os::get_host_name(char* name, int namelen) {
twisti@3747 4998 return ::gethostname(name, namelen);
ikrylov@2322 4999 }
ikrylov@2322 5000
ikrylov@2322 5001 int os::socket_shutdown(int fd, int howto) {
twisti@3747 5002 return ::shutdown(fd, howto);
ikrylov@2322 5003 }
ikrylov@2322 5004
phh@3344 5005 int os::bind(int fd, struct sockaddr* him, socklen_t len) {
twisti@3747 5006 return ::bind(fd, him, len);
ikrylov@2322 5007 }
ikrylov@2322 5008
phh@3344 5009 int os::get_sock_name(int fd, struct sockaddr* him, socklen_t* len) {
twisti@3747 5010 return ::getsockname(fd, him, len);
ikrylov@2322 5011 }
ikrylov@2322 5012
ikrylov@2322 5013 int os::get_sock_opt(int fd, int level, int optname,
phh@3344 5014 char* optval, socklen_t* optlen) {
twisti@3747 5015 return ::getsockopt(fd, level, optname, optval, optlen);
ikrylov@2322 5016 }
ikrylov@2322 5017
ikrylov@2322 5018 int os::set_sock_opt(int fd, int level, int optname,
phh@3344 5019 const char* optval, socklen_t optlen) {
twisti@3747 5020 return ::setsockopt(fd, level, optname, optval, optlen);
ikrylov@2322 5021 }
zgu@3031 5022
zgu@3031 5023
zgu@3031 5024 // Kernel32 API
zgu@3031 5025 typedef SIZE_T (WINAPI* GetLargePageMinimum_Fn)(void);
iveresov@3085 5026 typedef LPVOID (WINAPI *VirtualAllocExNuma_Fn) (HANDLE, LPVOID, SIZE_T, DWORD, DWORD, DWORD);
iveresov@3085 5027 typedef BOOL (WINAPI *GetNumaHighestNodeNumber_Fn) (PULONG);
iveresov@3085 5028 typedef BOOL (WINAPI *GetNumaNodeProcessorMask_Fn) (UCHAR, PULONGLONG);
zgu@3900 5029 typedef USHORT (WINAPI* RtlCaptureStackBackTrace_Fn)(ULONG, ULONG, PVOID*, PULONG);
iveresov@3085 5030
zgu@3031 5031 GetLargePageMinimum_Fn os::Kernel32Dll::_GetLargePageMinimum = NULL;
iveresov@3085 5032 VirtualAllocExNuma_Fn os::Kernel32Dll::_VirtualAllocExNuma = NULL;
iveresov@3085 5033 GetNumaHighestNodeNumber_Fn os::Kernel32Dll::_GetNumaHighestNodeNumber = NULL;
iveresov@3085 5034 GetNumaNodeProcessorMask_Fn os::Kernel32Dll::_GetNumaNodeProcessorMask = NULL;
zgu@3900 5035 RtlCaptureStackBackTrace_Fn os::Kernel32Dll::_RtlCaptureStackBackTrace = NULL;
zgu@3900 5036
zgu@3900 5037
zgu@3031 5038 BOOL os::Kernel32Dll::initialized = FALSE;
zgu@3031 5039 SIZE_T os::Kernel32Dll::GetLargePageMinimum() {
zgu@3031 5040 assert(initialized && _GetLargePageMinimum != NULL,
zgu@3031 5041 "GetLargePageMinimumAvailable() not yet called");
zgu@3031 5042 return _GetLargePageMinimum();
zgu@3031 5043 }
zgu@3031 5044
zgu@3031 5045 BOOL os::Kernel32Dll::GetLargePageMinimumAvailable() {
zgu@3031 5046 if (!initialized) {
zgu@3031 5047 initialize();
zgu@3031 5048 }
zgu@3031 5049 return _GetLargePageMinimum != NULL;
zgu@3031 5050 }
zgu@3031 5051
iveresov@3085 5052 BOOL os::Kernel32Dll::NumaCallsAvailable() {
iveresov@3085 5053 if (!initialized) {
iveresov@3085 5054 initialize();
iveresov@3085 5055 }
iveresov@3085 5056 return _VirtualAllocExNuma != NULL;
iveresov@3085 5057 }
iveresov@3085 5058
iveresov@3085 5059 LPVOID os::Kernel32Dll::VirtualAllocExNuma(HANDLE hProc, LPVOID addr, SIZE_T bytes, DWORD flags, DWORD prot, DWORD node) {
iveresov@3085 5060 assert(initialized && _VirtualAllocExNuma != NULL,
iveresov@3085 5061 "NUMACallsAvailable() not yet called");
iveresov@3085 5062
iveresov@3085 5063 return _VirtualAllocExNuma(hProc, addr, bytes, flags, prot, node);
iveresov@3085 5064 }
iveresov@3085 5065
iveresov@3085 5066 BOOL os::Kernel32Dll::GetNumaHighestNodeNumber(PULONG ptr_highest_node_number) {
iveresov@3085 5067 assert(initialized && _GetNumaHighestNodeNumber != NULL,
iveresov@3085 5068 "NUMACallsAvailable() not yet called");
iveresov@3085 5069
iveresov@3085 5070 return _GetNumaHighestNodeNumber(ptr_highest_node_number);
iveresov@3085 5071 }
iveresov@3085 5072
iveresov@3085 5073 BOOL os::Kernel32Dll::GetNumaNodeProcessorMask(UCHAR node, PULONGLONG proc_mask) {
iveresov@3085 5074 assert(initialized && _GetNumaNodeProcessorMask != NULL,
iveresov@3085 5075 "NUMACallsAvailable() not yet called");
iveresov@3085 5076
iveresov@3085 5077 return _GetNumaNodeProcessorMask(node, proc_mask);
iveresov@3085 5078 }
iveresov@3085 5079
zgu@3900 5080 USHORT os::Kernel32Dll::RtlCaptureStackBackTrace(ULONG FrameToSkip,
zgu@3900 5081 ULONG FrameToCapture, PVOID* BackTrace, PULONG BackTraceHash) {
zgu@3900 5082 if (!initialized) {
zgu@3900 5083 initialize();
zgu@3900 5084 }
zgu@3900 5085
zgu@3900 5086 if (_RtlCaptureStackBackTrace != NULL) {
zgu@3900 5087 return _RtlCaptureStackBackTrace(FrameToSkip, FrameToCapture,
zgu@3900 5088 BackTrace, BackTraceHash);
zgu@3900 5089 } else {
zgu@3900 5090 return 0;
zgu@3900 5091 }
zgu@3900 5092 }
iveresov@3085 5093
iveresov@3085 5094 void os::Kernel32Dll::initializeCommon() {
zgu@3031 5095 if (!initialized) {
zgu@3031 5096 HMODULE handle = ::GetModuleHandle("Kernel32.dll");
zgu@3031 5097 assert(handle != NULL, "Just check");
zgu@3031 5098 _GetLargePageMinimum = (GetLargePageMinimum_Fn)::GetProcAddress(handle, "GetLargePageMinimum");
iveresov@3085 5099 _VirtualAllocExNuma = (VirtualAllocExNuma_Fn)::GetProcAddress(handle, "VirtualAllocExNuma");
iveresov@3085 5100 _GetNumaHighestNodeNumber = (GetNumaHighestNodeNumber_Fn)::GetProcAddress(handle, "GetNumaHighestNodeNumber");
iveresov@3085 5101 _GetNumaNodeProcessorMask = (GetNumaNodeProcessorMask_Fn)::GetProcAddress(handle, "GetNumaNodeProcessorMask");
zgu@3900 5102 _RtlCaptureStackBackTrace = (RtlCaptureStackBackTrace_Fn)::GetProcAddress(handle, "RtlCaptureStackBackTrace");
zgu@3031 5103 initialized = TRUE;
zgu@3031 5104 }
zgu@3031 5105 }
zgu@3031 5106
zgu@3031 5107
iveresov@3085 5108
iveresov@3085 5109 #ifndef JDK6_OR_EARLIER
iveresov@3085 5110
iveresov@3085 5111 void os::Kernel32Dll::initialize() {
iveresov@3085 5112 initializeCommon();
iveresov@3085 5113 }
iveresov@3085 5114
iveresov@3085 5115
zgu@3031 5116 // Kernel32 API
zgu@3031 5117 inline BOOL os::Kernel32Dll::SwitchToThread() {
zgu@3031 5118 return ::SwitchToThread();
zgu@3031 5119 }
zgu@3031 5120
zgu@3031 5121 inline BOOL os::Kernel32Dll::SwitchToThreadAvailable() {
zgu@3031 5122 return true;
zgu@3031 5123 }
zgu@3031 5124
zgu@3031 5125 // Help tools
zgu@3031 5126 inline BOOL os::Kernel32Dll::HelpToolsAvailable() {
zgu@3031 5127 return true;
zgu@3031 5128 }
zgu@3031 5129
zgu@3031 5130 inline HANDLE os::Kernel32Dll::CreateToolhelp32Snapshot(DWORD dwFlags,DWORD th32ProcessId) {
zgu@3031 5131 return ::CreateToolhelp32Snapshot(dwFlags, th32ProcessId);
zgu@3031 5132 }
zgu@3031 5133
zgu@3031 5134 inline BOOL os::Kernel32Dll::Module32First(HANDLE hSnapshot,LPMODULEENTRY32 lpme) {
zgu@3031 5135 return ::Module32First(hSnapshot, lpme);
zgu@3031 5136 }
zgu@3031 5137
zgu@3031 5138 inline BOOL os::Kernel32Dll::Module32Next(HANDLE hSnapshot,LPMODULEENTRY32 lpme) {
zgu@3031 5139 return ::Module32Next(hSnapshot, lpme);
zgu@3031 5140 }
zgu@3031 5141
zgu@3031 5142
zgu@3031 5143 inline BOOL os::Kernel32Dll::GetNativeSystemInfoAvailable() {
zgu@3031 5144 return true;
zgu@3031 5145 }
zgu@3031 5146
zgu@3031 5147 inline void os::Kernel32Dll::GetNativeSystemInfo(LPSYSTEM_INFO lpSystemInfo) {
zgu@3031 5148 ::GetNativeSystemInfo(lpSystemInfo);
zgu@3031 5149 }
zgu@3031 5150
zgu@3031 5151 // PSAPI API
zgu@3031 5152 inline BOOL os::PSApiDll::EnumProcessModules(HANDLE hProcess, HMODULE *lpModule, DWORD cb, LPDWORD lpcbNeeded) {
zgu@3031 5153 return ::EnumProcessModules(hProcess, lpModule, cb, lpcbNeeded);
zgu@3031 5154 }
zgu@3031 5155
zgu@3031 5156 inline DWORD os::PSApiDll::GetModuleFileNameEx(HANDLE hProcess, HMODULE hModule, LPTSTR lpFilename, DWORD nSize) {
zgu@3031 5157 return ::GetModuleFileNameEx(hProcess, hModule, lpFilename, nSize);
zgu@3031 5158 }
zgu@3031 5159
zgu@3031 5160 inline BOOL os::PSApiDll::GetModuleInformation(HANDLE hProcess, HMODULE hModule, LPMODULEINFO lpmodinfo, DWORD cb) {
zgu@3031 5161 return ::GetModuleInformation(hProcess, hModule, lpmodinfo, cb);
zgu@3031 5162 }
zgu@3031 5163
zgu@3031 5164 inline BOOL os::PSApiDll::PSApiAvailable() {
zgu@3031 5165 return true;
zgu@3031 5166 }
zgu@3031 5167
zgu@3031 5168
zgu@3031 5169 // WinSock2 API
zgu@3031 5170 inline BOOL os::WinSock2Dll::WSAStartup(WORD wVersionRequested, LPWSADATA lpWSAData) {
zgu@3031 5171 return ::WSAStartup(wVersionRequested, lpWSAData);
zgu@3031 5172 }
zgu@3031 5173
zgu@3031 5174 inline struct hostent* os::WinSock2Dll::gethostbyname(const char *name) {
zgu@3031 5175 return ::gethostbyname(name);
zgu@3031 5176 }
zgu@3031 5177
zgu@3031 5178 inline BOOL os::WinSock2Dll::WinSock2Available() {
zgu@3031 5179 return true;
zgu@3031 5180 }
zgu@3031 5181
zgu@3031 5182 // Advapi API
zgu@3031 5183 inline BOOL os::Advapi32Dll::AdjustTokenPrivileges(HANDLE TokenHandle,
zgu@3031 5184 BOOL DisableAllPrivileges, PTOKEN_PRIVILEGES NewState, DWORD BufferLength,
zgu@3031 5185 PTOKEN_PRIVILEGES PreviousState, PDWORD ReturnLength) {
zgu@3031 5186 return ::AdjustTokenPrivileges(TokenHandle, DisableAllPrivileges, NewState,
zgu@3031 5187 BufferLength, PreviousState, ReturnLength);
zgu@3031 5188 }
zgu@3031 5189
zgu@3031 5190 inline BOOL os::Advapi32Dll::OpenProcessToken(HANDLE ProcessHandle, DWORD DesiredAccess,
zgu@3031 5191 PHANDLE TokenHandle) {
zgu@3031 5192 return ::OpenProcessToken(ProcessHandle, DesiredAccess, TokenHandle);
zgu@3031 5193 }
zgu@3031 5194
zgu@3031 5195 inline BOOL os::Advapi32Dll::LookupPrivilegeValue(LPCTSTR lpSystemName, LPCTSTR lpName, PLUID lpLuid) {
zgu@3031 5196 return ::LookupPrivilegeValue(lpSystemName, lpName, lpLuid);
zgu@3031 5197 }
zgu@3031 5198
zgu@3031 5199 inline BOOL os::Advapi32Dll::AdvapiAvailable() {
zgu@3031 5200 return true;
zgu@3031 5201 }
zgu@3031 5202
zgu@3031 5203 #else
zgu@3031 5204 // Kernel32 API
zgu@3031 5205 typedef BOOL (WINAPI* SwitchToThread_Fn)(void);
zgu@3031 5206 typedef HANDLE (WINAPI* CreateToolhelp32Snapshot_Fn)(DWORD,DWORD);
zgu@3031 5207 typedef BOOL (WINAPI* Module32First_Fn)(HANDLE,LPMODULEENTRY32);
zgu@3031 5208 typedef BOOL (WINAPI* Module32Next_Fn)(HANDLE,LPMODULEENTRY32);
zgu@3031 5209 typedef void (WINAPI* GetNativeSystemInfo_Fn)(LPSYSTEM_INFO);
zgu@3031 5210
zgu@3031 5211 SwitchToThread_Fn os::Kernel32Dll::_SwitchToThread = NULL;
zgu@3031 5212 CreateToolhelp32Snapshot_Fn os::Kernel32Dll::_CreateToolhelp32Snapshot = NULL;
zgu@3031 5213 Module32First_Fn os::Kernel32Dll::_Module32First = NULL;
zgu@3031 5214 Module32Next_Fn os::Kernel32Dll::_Module32Next = NULL;
zgu@3031 5215 GetNativeSystemInfo_Fn os::Kernel32Dll::_GetNativeSystemInfo = NULL;
zgu@3031 5216
zgu@3031 5217 void os::Kernel32Dll::initialize() {
zgu@3031 5218 if (!initialized) {
zgu@3031 5219 HMODULE handle = ::GetModuleHandle("Kernel32.dll");
zgu@3031 5220 assert(handle != NULL, "Just check");
zgu@3031 5221
zgu@3031 5222 _SwitchToThread = (SwitchToThread_Fn)::GetProcAddress(handle, "SwitchToThread");
zgu@3031 5223 _CreateToolhelp32Snapshot = (CreateToolhelp32Snapshot_Fn)
zgu@3031 5224 ::GetProcAddress(handle, "CreateToolhelp32Snapshot");
zgu@3031 5225 _Module32First = (Module32First_Fn)::GetProcAddress(handle, "Module32First");
zgu@3031 5226 _Module32Next = (Module32Next_Fn)::GetProcAddress(handle, "Module32Next");
zgu@3031 5227 _GetNativeSystemInfo = (GetNativeSystemInfo_Fn)::GetProcAddress(handle, "GetNativeSystemInfo");
iveresov@3085 5228 initializeCommon(); // resolve the functions that always need resolving
zgu@3031 5229
zgu@3031 5230 initialized = TRUE;
zgu@3031 5231 }
zgu@3031 5232 }
zgu@3031 5233
zgu@3031 5234 BOOL os::Kernel32Dll::SwitchToThread() {
zgu@3031 5235 assert(initialized && _SwitchToThread != NULL,
zgu@3031 5236 "SwitchToThreadAvailable() not yet called");
zgu@3031 5237 return _SwitchToThread();
zgu@3031 5238 }
zgu@3031 5239
zgu@3031 5240
zgu@3031 5241 BOOL os::Kernel32Dll::SwitchToThreadAvailable() {
zgu@3031 5242 if (!initialized) {
zgu@3031 5243 initialize();
zgu@3031 5244 }
zgu@3031 5245 return _SwitchToThread != NULL;
zgu@3031 5246 }
zgu@3031 5247
zgu@3031 5248 // Help tools
zgu@3031 5249 BOOL os::Kernel32Dll::HelpToolsAvailable() {
zgu@3031 5250 if (!initialized) {
zgu@3031 5251 initialize();
zgu@3031 5252 }
zgu@3031 5253 return _CreateToolhelp32Snapshot != NULL &&
zgu@3031 5254 _Module32First != NULL &&
zgu@3031 5255 _Module32Next != NULL;
zgu@3031 5256 }
zgu@3031 5257
zgu@3031 5258 HANDLE os::Kernel32Dll::CreateToolhelp32Snapshot(DWORD dwFlags,DWORD th32ProcessId) {
zgu@3031 5259 assert(initialized && _CreateToolhelp32Snapshot != NULL,
zgu@3031 5260 "HelpToolsAvailable() not yet called");
zgu@3031 5261
zgu@3031 5262 return _CreateToolhelp32Snapshot(dwFlags, th32ProcessId);
zgu@3031 5263 }
zgu@3031 5264
zgu@3031 5265 BOOL os::Kernel32Dll::Module32First(HANDLE hSnapshot,LPMODULEENTRY32 lpme) {
zgu@3031 5266 assert(initialized && _Module32First != NULL,
zgu@3031 5267 "HelpToolsAvailable() not yet called");
zgu@3031 5268
zgu@3031 5269 return _Module32First(hSnapshot, lpme);
zgu@3031 5270 }
zgu@3031 5271
zgu@3031 5272 inline BOOL os::Kernel32Dll::Module32Next(HANDLE hSnapshot,LPMODULEENTRY32 lpme) {
zgu@3031 5273 assert(initialized && _Module32Next != NULL,
zgu@3031 5274 "HelpToolsAvailable() not yet called");
zgu@3031 5275
zgu@3031 5276 return _Module32Next(hSnapshot, lpme);
zgu@3031 5277 }
zgu@3031 5278
zgu@3031 5279
zgu@3031 5280 BOOL os::Kernel32Dll::GetNativeSystemInfoAvailable() {
zgu@3031 5281 if (!initialized) {
zgu@3031 5282 initialize();
zgu@3031 5283 }
zgu@3031 5284 return _GetNativeSystemInfo != NULL;
zgu@3031 5285 }
zgu@3031 5286
zgu@3031 5287 void os::Kernel32Dll::GetNativeSystemInfo(LPSYSTEM_INFO lpSystemInfo) {
zgu@3031 5288 assert(initialized && _GetNativeSystemInfo != NULL,
zgu@3031 5289 "GetNativeSystemInfoAvailable() not yet called");
zgu@3031 5290
zgu@3031 5291 _GetNativeSystemInfo(lpSystemInfo);
zgu@3031 5292 }
zgu@3031 5293
zgu@3031 5294 // PSAPI API
zgu@3031 5295
zgu@3031 5296
zgu@3031 5297 typedef BOOL (WINAPI *EnumProcessModules_Fn)(HANDLE, HMODULE *, DWORD, LPDWORD);
zgu@3031 5298 typedef BOOL (WINAPI *GetModuleFileNameEx_Fn)(HANDLE, HMODULE, LPTSTR, DWORD);;
zgu@3031 5299 typedef BOOL (WINAPI *GetModuleInformation_Fn)(HANDLE, HMODULE, LPMODULEINFO, DWORD);
zgu@3031 5300
zgu@3031 5301 EnumProcessModules_Fn os::PSApiDll::_EnumProcessModules = NULL;
zgu@3031 5302 GetModuleFileNameEx_Fn os::PSApiDll::_GetModuleFileNameEx = NULL;
zgu@3031 5303 GetModuleInformation_Fn os::PSApiDll::_GetModuleInformation = NULL;
zgu@3031 5304 BOOL os::PSApiDll::initialized = FALSE;
zgu@3031 5305
zgu@3031 5306 void os::PSApiDll::initialize() {
zgu@3031 5307 if (!initialized) {
zgu@3031 5308 HMODULE handle = os::win32::load_Windows_dll("PSAPI.DLL", NULL, 0);
zgu@3031 5309 if (handle != NULL) {
zgu@3031 5310 _EnumProcessModules = (EnumProcessModules_Fn)::GetProcAddress(handle,
zgu@3031 5311 "EnumProcessModules");
zgu@3031 5312 _GetModuleFileNameEx = (GetModuleFileNameEx_Fn)::GetProcAddress(handle,
zgu@3031 5313 "GetModuleFileNameExA");
zgu@3031 5314 _GetModuleInformation = (GetModuleInformation_Fn)::GetProcAddress(handle,
zgu@3031 5315 "GetModuleInformation");
zgu@3031 5316 }
zgu@3031 5317 initialized = TRUE;
zgu@3031 5318 }
zgu@3031 5319 }
zgu@3031 5320
zgu@3031 5321
zgu@3031 5322
zgu@3031 5323 BOOL os::PSApiDll::EnumProcessModules(HANDLE hProcess, HMODULE *lpModule, DWORD cb, LPDWORD lpcbNeeded) {
zgu@3031 5324 assert(initialized && _EnumProcessModules != NULL,
zgu@3031 5325 "PSApiAvailable() not yet called");
zgu@3031 5326 return _EnumProcessModules(hProcess, lpModule, cb, lpcbNeeded);
zgu@3031 5327 }
zgu@3031 5328
zgu@3031 5329 DWORD os::PSApiDll::GetModuleFileNameEx(HANDLE hProcess, HMODULE hModule, LPTSTR lpFilename, DWORD nSize) {
zgu@3031 5330 assert(initialized && _GetModuleFileNameEx != NULL,
zgu@3031 5331 "PSApiAvailable() not yet called");
zgu@3031 5332 return _GetModuleFileNameEx(hProcess, hModule, lpFilename, nSize);
zgu@3031 5333 }
zgu@3031 5334
zgu@3031 5335 BOOL os::PSApiDll::GetModuleInformation(HANDLE hProcess, HMODULE hModule, LPMODULEINFO lpmodinfo, DWORD cb) {
zgu@3031 5336 assert(initialized && _GetModuleInformation != NULL,
zgu@3031 5337 "PSApiAvailable() not yet called");
zgu@3031 5338 return _GetModuleInformation(hProcess, hModule, lpmodinfo, cb);
zgu@3031 5339 }
zgu@3031 5340
zgu@3031 5341 BOOL os::PSApiDll::PSApiAvailable() {
zgu@3031 5342 if (!initialized) {
zgu@3031 5343 initialize();
zgu@3031 5344 }
zgu@3031 5345 return _EnumProcessModules != NULL &&
zgu@3031 5346 _GetModuleFileNameEx != NULL &&
zgu@3031 5347 _GetModuleInformation != NULL;
zgu@3031 5348 }
zgu@3031 5349
zgu@3031 5350
zgu@3031 5351 // WinSock2 API
zgu@3031 5352 typedef int (PASCAL FAR* WSAStartup_Fn)(WORD, LPWSADATA);
zgu@3031 5353 typedef struct hostent *(PASCAL FAR *gethostbyname_Fn)(...);
zgu@3031 5354
zgu@3031 5355 WSAStartup_Fn os::WinSock2Dll::_WSAStartup = NULL;
zgu@3031 5356 gethostbyname_Fn os::WinSock2Dll::_gethostbyname = NULL;
zgu@3031 5357 BOOL os::WinSock2Dll::initialized = FALSE;
zgu@3031 5358
zgu@3031 5359 void os::WinSock2Dll::initialize() {
zgu@3031 5360 if (!initialized) {
zgu@3031 5361 HMODULE handle = os::win32::load_Windows_dll("ws2_32.dll", NULL, 0);
zgu@3031 5362 if (handle != NULL) {
zgu@3031 5363 _WSAStartup = (WSAStartup_Fn)::GetProcAddress(handle, "WSAStartup");
zgu@3031 5364 _gethostbyname = (gethostbyname_Fn)::GetProcAddress(handle, "gethostbyname");
zgu@3031 5365 }
zgu@3031 5366 initialized = TRUE;
zgu@3031 5367 }
zgu@3031 5368 }
zgu@3031 5369
zgu@3031 5370
zgu@3031 5371 BOOL os::WinSock2Dll::WSAStartup(WORD wVersionRequested, LPWSADATA lpWSAData) {
zgu@3031 5372 assert(initialized && _WSAStartup != NULL,
zgu@3031 5373 "WinSock2Available() not yet called");
zgu@3031 5374 return _WSAStartup(wVersionRequested, lpWSAData);
zgu@3031 5375 }
zgu@3031 5376
zgu@3031 5377 struct hostent* os::WinSock2Dll::gethostbyname(const char *name) {
zgu@3031 5378 assert(initialized && _gethostbyname != NULL,
zgu@3031 5379 "WinSock2Available() not yet called");
zgu@3031 5380 return _gethostbyname(name);
zgu@3031 5381 }
zgu@3031 5382
zgu@3031 5383 BOOL os::WinSock2Dll::WinSock2Available() {
zgu@3031 5384 if (!initialized) {
zgu@3031 5385 initialize();
zgu@3031 5386 }
zgu@3031 5387 return _WSAStartup != NULL &&
zgu@3031 5388 _gethostbyname != NULL;
zgu@3031 5389 }
zgu@3031 5390
zgu@3031 5391 typedef BOOL (WINAPI *AdjustTokenPrivileges_Fn)(HANDLE, BOOL, PTOKEN_PRIVILEGES, DWORD, PTOKEN_PRIVILEGES, PDWORD);
zgu@3031 5392 typedef BOOL (WINAPI *OpenProcessToken_Fn)(HANDLE, DWORD, PHANDLE);
zgu@3031 5393 typedef BOOL (WINAPI *LookupPrivilegeValue_Fn)(LPCTSTR, LPCTSTR, PLUID);
zgu@3031 5394
zgu@3031 5395 AdjustTokenPrivileges_Fn os::Advapi32Dll::_AdjustTokenPrivileges = NULL;
zgu@3031 5396 OpenProcessToken_Fn os::Advapi32Dll::_OpenProcessToken = NULL;
zgu@3031 5397 LookupPrivilegeValue_Fn os::Advapi32Dll::_LookupPrivilegeValue = NULL;
zgu@3031 5398 BOOL os::Advapi32Dll::initialized = FALSE;
zgu@3031 5399
zgu@3031 5400 void os::Advapi32Dll::initialize() {
zgu@3031 5401 if (!initialized) {
zgu@3031 5402 HMODULE handle = os::win32::load_Windows_dll("advapi32.dll", NULL, 0);
zgu@3031 5403 if (handle != NULL) {
zgu@3031 5404 _AdjustTokenPrivileges = (AdjustTokenPrivileges_Fn)::GetProcAddress(handle,
zgu@3031 5405 "AdjustTokenPrivileges");
zgu@3031 5406 _OpenProcessToken = (OpenProcessToken_Fn)::GetProcAddress(handle,
zgu@3031 5407 "OpenProcessToken");
zgu@3031 5408 _LookupPrivilegeValue = (LookupPrivilegeValue_Fn)::GetProcAddress(handle,
zgu@3032 5409 "LookupPrivilegeValueA");
zgu@3031 5410 }
zgu@3031 5411 initialized = TRUE;
zgu@3031 5412 }
zgu@3031 5413 }
zgu@3031 5414
zgu@3031 5415 BOOL os::Advapi32Dll::AdjustTokenPrivileges(HANDLE TokenHandle,
zgu@3031 5416 BOOL DisableAllPrivileges, PTOKEN_PRIVILEGES NewState, DWORD BufferLength,
zgu@3031 5417 PTOKEN_PRIVILEGES PreviousState, PDWORD ReturnLength) {
zgu@3031 5418 assert(initialized && _AdjustTokenPrivileges != NULL,
zgu@3031 5419 "AdvapiAvailable() not yet called");
zgu@3031 5420 return _AdjustTokenPrivileges(TokenHandle, DisableAllPrivileges, NewState,
zgu@3031 5421 BufferLength, PreviousState, ReturnLength);
zgu@3031 5422 }
zgu@3031 5423
zgu@3031 5424 BOOL os::Advapi32Dll::OpenProcessToken(HANDLE ProcessHandle, DWORD DesiredAccess,
zgu@3031 5425 PHANDLE TokenHandle) {
zgu@3031 5426 assert(initialized && _OpenProcessToken != NULL,
zgu@3031 5427 "AdvapiAvailable() not yet called");
zgu@3031 5428 return _OpenProcessToken(ProcessHandle, DesiredAccess, TokenHandle);
zgu@3031 5429 }
zgu@3031 5430
zgu@3031 5431 BOOL os::Advapi32Dll::LookupPrivilegeValue(LPCTSTR lpSystemName, LPCTSTR lpName, PLUID lpLuid) {
zgu@3031 5432 assert(initialized && _LookupPrivilegeValue != NULL,
zgu@3031 5433 "AdvapiAvailable() not yet called");
zgu@3031 5434 return _LookupPrivilegeValue(lpSystemName, lpName, lpLuid);
zgu@3031 5435 }
zgu@3031 5436
zgu@3031 5437 BOOL os::Advapi32Dll::AdvapiAvailable() {
zgu@3031 5438 if (!initialized) {
zgu@3031 5439 initialize();
zgu@3031 5440 }
zgu@3031 5441 return _AdjustTokenPrivileges != NULL &&
zgu@3031 5442 _OpenProcessToken != NULL &&
zgu@3031 5443 _LookupPrivilegeValue != NULL;
zgu@3031 5444 }
zgu@3031 5445
zgu@3031 5446 #endif

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