src/share/vm/runtime/os.cpp

Wed, 07 Nov 2012 17:53:02 -0500

author
bpittore
date
Wed, 07 Nov 2012 17:53:02 -0500
changeset 4261
6cb0d32b828b
parent 4193
716c64bda5ba
child 4280
80e866b1d053
permissions
-rw-r--r--

8001185: parsing of sun.boot.library.path in os::dll_build_name somewhat broken
Summary: dll_dir can contain multiple paths, need to parse them correctly when loading agents
Reviewed-by: dholmes, dlong
Contributed-by: bill.pittore@oracle.com

duke@435 1 /*
coleenp@4037 2 * Copyright (c) 1997, 2012, Oracle and/or its affiliates. All rights reserved.
duke@435 3 * DO NOT ALTER OR REMOVE COPYRIGHT NOTICES OR THIS FILE HEADER.
duke@435 4 *
duke@435 5 * This code is free software; you can redistribute it and/or modify it
duke@435 6 * under the terms of the GNU General Public License version 2 only, as
duke@435 7 * published by the Free Software Foundation.
duke@435 8 *
duke@435 9 * This code is distributed in the hope that it will be useful, but WITHOUT
duke@435 10 * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
duke@435 11 * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
duke@435 12 * version 2 for more details (a copy is included in the LICENSE file that
duke@435 13 * accompanied this code).
duke@435 14 *
duke@435 15 * You should have received a copy of the GNU General Public License version
duke@435 16 * 2 along with this work; if not, write to the Free Software Foundation,
duke@435 17 * Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA.
duke@435 18 *
trims@1907 19 * Please contact Oracle, 500 Oracle Parkway, Redwood Shores, CA 94065 USA
trims@1907 20 * or visit www.oracle.com if you need additional information or have any
trims@1907 21 * questions.
duke@435 22 *
duke@435 23 */
duke@435 24
stefank@2314 25 #include "precompiled.hpp"
stefank@2314 26 #include "classfile/classLoader.hpp"
stefank@2314 27 #include "classfile/javaClasses.hpp"
stefank@2314 28 #include "classfile/systemDictionary.hpp"
stefank@2314 29 #include "classfile/vmSymbols.hpp"
stefank@2314 30 #include "code/icBuffer.hpp"
stefank@2314 31 #include "code/vtableStubs.hpp"
stefank@2314 32 #include "gc_implementation/shared/vmGCOperations.hpp"
stefank@2314 33 #include "interpreter/interpreter.hpp"
stefank@2314 34 #include "memory/allocation.inline.hpp"
stefank@2314 35 #include "oops/oop.inline.hpp"
stefank@2314 36 #include "prims/jvm.h"
stefank@2314 37 #include "prims/jvm_misc.hpp"
stefank@2314 38 #include "prims/privilegedStack.hpp"
stefank@2314 39 #include "runtime/arguments.hpp"
stefank@2314 40 #include "runtime/frame.inline.hpp"
stefank@2314 41 #include "runtime/interfaceSupport.hpp"
stefank@2314 42 #include "runtime/java.hpp"
stefank@2314 43 #include "runtime/javaCalls.hpp"
stefank@2314 44 #include "runtime/mutexLocker.hpp"
stefank@2314 45 #include "runtime/os.hpp"
stefank@2314 46 #include "runtime/stubRoutines.hpp"
stefank@2314 47 #include "services/attachListener.hpp"
zgu@3900 48 #include "services/memTracker.hpp"
stefank@2314 49 #include "services/threadService.hpp"
stefank@2314 50 #include "utilities/defaultStream.hpp"
stefank@2314 51 #include "utilities/events.hpp"
stefank@2314 52 #ifdef TARGET_OS_FAMILY_linux
stefank@2314 53 # include "os_linux.inline.hpp"
stefank@2314 54 # include "thread_linux.inline.hpp"
stefank@2314 55 #endif
stefank@2314 56 #ifdef TARGET_OS_FAMILY_solaris
stefank@2314 57 # include "os_solaris.inline.hpp"
stefank@2314 58 # include "thread_solaris.inline.hpp"
stefank@2314 59 #endif
stefank@2314 60 #ifdef TARGET_OS_FAMILY_windows
stefank@2314 61 # include "os_windows.inline.hpp"
stefank@2314 62 # include "thread_windows.inline.hpp"
stefank@2314 63 #endif
never@3156 64 #ifdef TARGET_OS_FAMILY_bsd
never@3156 65 # include "os_bsd.inline.hpp"
never@3156 66 # include "thread_bsd.inline.hpp"
never@3156 67 #endif
duke@435 68
duke@435 69 # include <signal.h>
duke@435 70
duke@435 71 OSThread* os::_starting_thread = NULL;
duke@435 72 address os::_polling_page = NULL;
duke@435 73 volatile int32_t* os::_mem_serialize_page = NULL;
duke@435 74 uintptr_t os::_serialize_page_mask = 0;
duke@435 75 long os::_rand_seed = 1;
duke@435 76 int os::_processor_count = 0;
duke@435 77 size_t os::_page_sizes[os::page_sizes_max];
duke@435 78
duke@435 79 #ifndef PRODUCT
kvn@2557 80 julong os::num_mallocs = 0; // # of calls to malloc/realloc
kvn@2557 81 julong os::alloc_bytes = 0; // # of bytes allocated
kvn@2557 82 julong os::num_frees = 0; // # of calls to free
kvn@2557 83 julong os::free_bytes = 0; // # of bytes freed
duke@435 84 #endif
duke@435 85
phh@3378 86 void os_init_globals() {
phh@3378 87 // Called from init_globals().
phh@3378 88 // See Threads::create_vm() in thread.cpp, and init.cpp.
phh@3378 89 os::init_globals();
phh@3378 90 }
phh@3378 91
duke@435 92 // Fill in buffer with current local time as an ISO-8601 string.
duke@435 93 // E.g., yyyy-mm-ddThh:mm:ss-zzzz.
duke@435 94 // Returns buffer, or NULL if it failed.
duke@435 95 // This would mostly be a call to
duke@435 96 // strftime(...., "%Y-%m-%d" "T" "%H:%M:%S" "%z", ....)
duke@435 97 // except that on Windows the %z behaves badly, so we do it ourselves.
duke@435 98 // Also, people wanted milliseconds on there,
duke@435 99 // and strftime doesn't do milliseconds.
duke@435 100 char* os::iso8601_time(char* buffer, size_t buffer_length) {
duke@435 101 // Output will be of the form "YYYY-MM-DDThh:mm:ss.mmm+zzzz\0"
duke@435 102 // 1 2
duke@435 103 // 12345678901234567890123456789
duke@435 104 static const char* iso8601_format =
duke@435 105 "%04d-%02d-%02dT%02d:%02d:%02d.%03d%c%02d%02d";
duke@435 106 static const size_t needed_buffer = 29;
duke@435 107
duke@435 108 // Sanity check the arguments
duke@435 109 if (buffer == NULL) {
duke@435 110 assert(false, "NULL buffer");
duke@435 111 return NULL;
duke@435 112 }
duke@435 113 if (buffer_length < needed_buffer) {
duke@435 114 assert(false, "buffer_length too small");
duke@435 115 return NULL;
duke@435 116 }
duke@435 117 // Get the current time
sbohne@496 118 jlong milliseconds_since_19700101 = javaTimeMillis();
duke@435 119 const int milliseconds_per_microsecond = 1000;
duke@435 120 const time_t seconds_since_19700101 =
duke@435 121 milliseconds_since_19700101 / milliseconds_per_microsecond;
duke@435 122 const int milliseconds_after_second =
duke@435 123 milliseconds_since_19700101 % milliseconds_per_microsecond;
duke@435 124 // Convert the time value to a tm and timezone variable
ysr@983 125 struct tm time_struct;
ysr@983 126 if (localtime_pd(&seconds_since_19700101, &time_struct) == NULL) {
ysr@983 127 assert(false, "Failed localtime_pd");
duke@435 128 return NULL;
duke@435 129 }
never@3156 130 #if defined(_ALLBSD_SOURCE)
never@3156 131 const time_t zone = (time_t) time_struct.tm_gmtoff;
never@3156 132 #else
duke@435 133 const time_t zone = timezone;
never@3156 134 #endif
duke@435 135
duke@435 136 // If daylight savings time is in effect,
duke@435 137 // we are 1 hour East of our time zone
duke@435 138 const time_t seconds_per_minute = 60;
duke@435 139 const time_t minutes_per_hour = 60;
duke@435 140 const time_t seconds_per_hour = seconds_per_minute * minutes_per_hour;
duke@435 141 time_t UTC_to_local = zone;
duke@435 142 if (time_struct.tm_isdst > 0) {
duke@435 143 UTC_to_local = UTC_to_local - seconds_per_hour;
duke@435 144 }
duke@435 145 // Compute the time zone offset.
ysr@983 146 // localtime_pd() sets timezone to the difference (in seconds)
duke@435 147 // between UTC and and local time.
duke@435 148 // ISO 8601 says we need the difference between local time and UTC,
ysr@983 149 // we change the sign of the localtime_pd() result.
duke@435 150 const time_t local_to_UTC = -(UTC_to_local);
duke@435 151 // Then we have to figure out if if we are ahead (+) or behind (-) UTC.
duke@435 152 char sign_local_to_UTC = '+';
duke@435 153 time_t abs_local_to_UTC = local_to_UTC;
duke@435 154 if (local_to_UTC < 0) {
duke@435 155 sign_local_to_UTC = '-';
duke@435 156 abs_local_to_UTC = -(abs_local_to_UTC);
duke@435 157 }
duke@435 158 // Convert time zone offset seconds to hours and minutes.
duke@435 159 const time_t zone_hours = (abs_local_to_UTC / seconds_per_hour);
duke@435 160 const time_t zone_min =
duke@435 161 ((abs_local_to_UTC % seconds_per_hour) / seconds_per_minute);
duke@435 162
duke@435 163 // Print an ISO 8601 date and time stamp into the buffer
duke@435 164 const int year = 1900 + time_struct.tm_year;
duke@435 165 const int month = 1 + time_struct.tm_mon;
duke@435 166 const int printed = jio_snprintf(buffer, buffer_length, iso8601_format,
duke@435 167 year,
duke@435 168 month,
duke@435 169 time_struct.tm_mday,
duke@435 170 time_struct.tm_hour,
duke@435 171 time_struct.tm_min,
duke@435 172 time_struct.tm_sec,
duke@435 173 milliseconds_after_second,
duke@435 174 sign_local_to_UTC,
duke@435 175 zone_hours,
duke@435 176 zone_min);
duke@435 177 if (printed == 0) {
duke@435 178 assert(false, "Failed jio_printf");
duke@435 179 return NULL;
duke@435 180 }
duke@435 181 return buffer;
duke@435 182 }
duke@435 183
duke@435 184 OSReturn os::set_priority(Thread* thread, ThreadPriority p) {
duke@435 185 #ifdef ASSERT
duke@435 186 if (!(!thread->is_Java_thread() ||
duke@435 187 Thread::current() == thread ||
duke@435 188 Threads_lock->owned_by_self()
duke@435 189 || thread->is_Compiler_thread()
duke@435 190 )) {
duke@435 191 assert(false, "possibility of dangling Thread pointer");
duke@435 192 }
duke@435 193 #endif
duke@435 194
duke@435 195 if (p >= MinPriority && p <= MaxPriority) {
duke@435 196 int priority = java_to_os_priority[p];
duke@435 197 return set_native_priority(thread, priority);
duke@435 198 } else {
duke@435 199 assert(false, "Should not happen");
duke@435 200 return OS_ERR;
duke@435 201 }
duke@435 202 }
duke@435 203
dholmes@4077 204 // The mapping from OS priority back to Java priority may be inexact because
dholmes@4077 205 // Java priorities can map M:1 with native priorities. If you want the definite
dholmes@4077 206 // Java priority then use JavaThread::java_priority()
duke@435 207 OSReturn os::get_priority(const Thread* const thread, ThreadPriority& priority) {
duke@435 208 int p;
duke@435 209 int os_prio;
duke@435 210 OSReturn ret = get_native_priority(thread, &os_prio);
duke@435 211 if (ret != OS_OK) return ret;
duke@435 212
dholmes@4077 213 if (java_to_os_priority[MaxPriority] > java_to_os_priority[MinPriority]) {
dholmes@4077 214 for (p = MaxPriority; p > MinPriority && java_to_os_priority[p] > os_prio; p--) ;
dholmes@4077 215 } else {
dholmes@4077 216 // niceness values are in reverse order
dholmes@4077 217 for (p = MaxPriority; p > MinPriority && java_to_os_priority[p] < os_prio; p--) ;
dholmes@4077 218 }
duke@435 219 priority = (ThreadPriority)p;
duke@435 220 return OS_OK;
duke@435 221 }
duke@435 222
duke@435 223
duke@435 224 // --------------------- sun.misc.Signal (optional) ---------------------
duke@435 225
duke@435 226
duke@435 227 // SIGBREAK is sent by the keyboard to query the VM state
duke@435 228 #ifndef SIGBREAK
duke@435 229 #define SIGBREAK SIGQUIT
duke@435 230 #endif
duke@435 231
duke@435 232 // sigexitnum_pd is a platform-specific special signal used for terminating the Signal thread.
duke@435 233
duke@435 234
duke@435 235 static void signal_thread_entry(JavaThread* thread, TRAPS) {
duke@435 236 os::set_priority(thread, NearMaxPriority);
duke@435 237 while (true) {
duke@435 238 int sig;
duke@435 239 {
duke@435 240 // FIXME : Currently we have not decieded what should be the status
duke@435 241 // for this java thread blocked here. Once we decide about
duke@435 242 // that we should fix this.
duke@435 243 sig = os::signal_wait();
duke@435 244 }
duke@435 245 if (sig == os::sigexitnum_pd()) {
duke@435 246 // Terminate the signal thread
duke@435 247 return;
duke@435 248 }
duke@435 249
duke@435 250 switch (sig) {
duke@435 251 case SIGBREAK: {
duke@435 252 // Check if the signal is a trigger to start the Attach Listener - in that
duke@435 253 // case don't print stack traces.
duke@435 254 if (!DisableAttachMechanism && AttachListener::is_init_trigger()) {
duke@435 255 continue;
duke@435 256 }
duke@435 257 // Print stack traces
duke@435 258 // Any SIGBREAK operations added here should make sure to flush
duke@435 259 // the output stream (e.g. tty->flush()) after output. See 4803766.
duke@435 260 // Each module also prints an extra carriage return after its output.
duke@435 261 VM_PrintThreads op;
duke@435 262 VMThread::execute(&op);
duke@435 263 VM_PrintJNI jni_op;
duke@435 264 VMThread::execute(&jni_op);
duke@435 265 VM_FindDeadlocks op1(tty);
duke@435 266 VMThread::execute(&op1);
duke@435 267 Universe::print_heap_at_SIGBREAK();
duke@435 268 if (PrintClassHistogram) {
ysr@1050 269 VM_GC_HeapInspection op1(gclog_or_tty, true /* force full GC before heap inspection */,
ysr@1050 270 true /* need_prologue */);
duke@435 271 VMThread::execute(&op1);
duke@435 272 }
duke@435 273 if (JvmtiExport::should_post_data_dump()) {
duke@435 274 JvmtiExport::post_data_dump();
duke@435 275 }
duke@435 276 break;
duke@435 277 }
duke@435 278 default: {
duke@435 279 // Dispatch the signal to java
duke@435 280 HandleMark hm(THREAD);
coleenp@4037 281 Klass* k = SystemDictionary::resolve_or_null(vmSymbols::sun_misc_Signal(), THREAD);
duke@435 282 KlassHandle klass (THREAD, k);
duke@435 283 if (klass.not_null()) {
duke@435 284 JavaValue result(T_VOID);
duke@435 285 JavaCallArguments args;
duke@435 286 args.push_int(sig);
duke@435 287 JavaCalls::call_static(
duke@435 288 &result,
duke@435 289 klass,
coleenp@2497 290 vmSymbols::dispatch_name(),
coleenp@2497 291 vmSymbols::int_void_signature(),
duke@435 292 &args,
duke@435 293 THREAD
duke@435 294 );
duke@435 295 }
duke@435 296 if (HAS_PENDING_EXCEPTION) {
duke@435 297 // tty is initialized early so we don't expect it to be null, but
duke@435 298 // if it is we can't risk doing an initialization that might
duke@435 299 // trigger additional out-of-memory conditions
duke@435 300 if (tty != NULL) {
duke@435 301 char klass_name[256];
duke@435 302 char tmp_sig_name[16];
duke@435 303 const char* sig_name = "UNKNOWN";
coleenp@4037 304 InstanceKlass::cast(PENDING_EXCEPTION->klass())->
duke@435 305 name()->as_klass_external_name(klass_name, 256);
duke@435 306 if (os::exception_name(sig, tmp_sig_name, 16) != NULL)
duke@435 307 sig_name = tmp_sig_name;
duke@435 308 warning("Exception %s occurred dispatching signal %s to handler"
duke@435 309 "- the VM may need to be forcibly terminated",
duke@435 310 klass_name, sig_name );
duke@435 311 }
duke@435 312 CLEAR_PENDING_EXCEPTION;
duke@435 313 }
duke@435 314 }
duke@435 315 }
duke@435 316 }
duke@435 317 }
duke@435 318
duke@435 319
duke@435 320 void os::signal_init() {
duke@435 321 if (!ReduceSignalUsage) {
duke@435 322 // Setup JavaThread for processing signals
duke@435 323 EXCEPTION_MARK;
coleenp@4037 324 Klass* k = SystemDictionary::resolve_or_fail(vmSymbols::java_lang_Thread(), true, CHECK);
duke@435 325 instanceKlassHandle klass (THREAD, k);
duke@435 326 instanceHandle thread_oop = klass->allocate_instance_handle(CHECK);
duke@435 327
duke@435 328 const char thread_name[] = "Signal Dispatcher";
duke@435 329 Handle string = java_lang_String::create_from_str(thread_name, CHECK);
duke@435 330
duke@435 331 // Initialize thread_oop to put it into the system threadGroup
duke@435 332 Handle thread_group (THREAD, Universe::system_thread_group());
duke@435 333 JavaValue result(T_VOID);
duke@435 334 JavaCalls::call_special(&result, thread_oop,
duke@435 335 klass,
coleenp@2497 336 vmSymbols::object_initializer_name(),
coleenp@2497 337 vmSymbols::threadgroup_string_void_signature(),
duke@435 338 thread_group,
duke@435 339 string,
duke@435 340 CHECK);
duke@435 341
never@1577 342 KlassHandle group(THREAD, SystemDictionary::ThreadGroup_klass());
duke@435 343 JavaCalls::call_special(&result,
duke@435 344 thread_group,
duke@435 345 group,
coleenp@2497 346 vmSymbols::add_method_name(),
coleenp@2497 347 vmSymbols::thread_void_signature(),
duke@435 348 thread_oop, // ARG 1
duke@435 349 CHECK);
duke@435 350
duke@435 351 os::signal_init_pd();
duke@435 352
duke@435 353 { MutexLocker mu(Threads_lock);
duke@435 354 JavaThread* signal_thread = new JavaThread(&signal_thread_entry);
duke@435 355
duke@435 356 // At this point it may be possible that no osthread was created for the
duke@435 357 // JavaThread due to lack of memory. We would have to throw an exception
duke@435 358 // in that case. However, since this must work and we do not allow
duke@435 359 // exceptions anyway, check and abort if this fails.
duke@435 360 if (signal_thread == NULL || signal_thread->osthread() == NULL) {
duke@435 361 vm_exit_during_initialization("java.lang.OutOfMemoryError",
duke@435 362 "unable to create new native thread");
duke@435 363 }
duke@435 364
duke@435 365 java_lang_Thread::set_thread(thread_oop(), signal_thread);
duke@435 366 java_lang_Thread::set_priority(thread_oop(), NearMaxPriority);
duke@435 367 java_lang_Thread::set_daemon(thread_oop());
duke@435 368
duke@435 369 signal_thread->set_threadObj(thread_oop());
duke@435 370 Threads::add(signal_thread);
duke@435 371 Thread::start(signal_thread);
duke@435 372 }
duke@435 373 // Handle ^BREAK
duke@435 374 os::signal(SIGBREAK, os::user_handler());
duke@435 375 }
duke@435 376 }
duke@435 377
duke@435 378
duke@435 379 void os::terminate_signal_thread() {
duke@435 380 if (!ReduceSignalUsage)
duke@435 381 signal_notify(sigexitnum_pd());
duke@435 382 }
duke@435 383
duke@435 384
duke@435 385 // --------------------- loading libraries ---------------------
duke@435 386
duke@435 387 typedef jint (JNICALL *JNI_OnLoad_t)(JavaVM *, void *);
duke@435 388 extern struct JavaVM_ main_vm;
duke@435 389
duke@435 390 static void* _native_java_library = NULL;
duke@435 391
duke@435 392 void* os::native_java_library() {
duke@435 393 if (_native_java_library == NULL) {
duke@435 394 char buffer[JVM_MAXPATHLEN];
duke@435 395 char ebuf[1024];
duke@435 396
kamg@677 397 // Try to load verify dll first. In 1.3 java dll depends on it and is not
kamg@677 398 // always able to find it when the loading executable is outside the JDK.
duke@435 399 // In order to keep working with 1.2 we ignore any loading errors.
bpittore@4261 400 if (dll_build_name(buffer, sizeof(buffer), Arguments::get_dll_dir(),
bpittore@4261 401 "verify")) {
bpittore@4261 402 dll_load(buffer, ebuf, sizeof(ebuf));
bpittore@4261 403 }
duke@435 404
duke@435 405 // Load java dll
bpittore@4261 406 if (dll_build_name(buffer, sizeof(buffer), Arguments::get_dll_dir(),
bpittore@4261 407 "java")) {
bpittore@4261 408 _native_java_library = dll_load(buffer, ebuf, sizeof(ebuf));
bpittore@4261 409 }
duke@435 410 if (_native_java_library == NULL) {
duke@435 411 vm_exit_during_initialization("Unable to load native library", ebuf);
duke@435 412 }
never@3156 413
never@3156 414 #if defined(__OpenBSD__)
never@3156 415 // Work-around OpenBSD's lack of $ORIGIN support by pre-loading libnet.so
never@3156 416 // ignore errors
bpittore@4261 417 if (dll_build_name(buffer, sizeof(buffer), Arguments::get_dll_dir(),
bpittore@4261 418 "net")) {
bpittore@4261 419 dll_load(buffer, ebuf, sizeof(ebuf));
bpittore@4261 420 }
never@3156 421 #endif
kamg@677 422 }
kamg@677 423 static jboolean onLoaded = JNI_FALSE;
kamg@677 424 if (onLoaded) {
kamg@677 425 // We may have to wait to fire OnLoad until TLS is initialized.
kamg@677 426 if (ThreadLocalStorage::is_initialized()) {
kamg@677 427 // The JNI_OnLoad handling is normally done by method load in
kamg@677 428 // java.lang.ClassLoader$NativeLibrary, but the VM loads the base library
kamg@677 429 // explicitly so we have to check for JNI_OnLoad as well
kamg@677 430 const char *onLoadSymbols[] = JNI_ONLOAD_SYMBOLS;
kamg@677 431 JNI_OnLoad_t JNI_OnLoad = CAST_TO_FN_PTR(
kamg@677 432 JNI_OnLoad_t, dll_lookup(_native_java_library, onLoadSymbols[0]));
kamg@677 433 if (JNI_OnLoad != NULL) {
kamg@677 434 JavaThread* thread = JavaThread::current();
kamg@677 435 ThreadToNativeFromVM ttn(thread);
kamg@677 436 HandleMark hm(thread);
kamg@677 437 jint ver = (*JNI_OnLoad)(&main_vm, NULL);
kamg@677 438 onLoaded = JNI_TRUE;
kamg@677 439 if (!Threads::is_supported_jni_version_including_1_1(ver)) {
kamg@677 440 vm_exit_during_initialization("Unsupported JNI version");
kamg@677 441 }
duke@435 442 }
duke@435 443 }
duke@435 444 }
duke@435 445 return _native_java_library;
duke@435 446 }
duke@435 447
duke@435 448 // --------------------- heap allocation utilities ---------------------
duke@435 449
zgu@3900 450 char *os::strdup(const char *str, MEMFLAGS flags) {
duke@435 451 size_t size = strlen(str);
zgu@3900 452 char *dup_str = (char *)malloc(size + 1, flags);
duke@435 453 if (dup_str == NULL) return NULL;
duke@435 454 strcpy(dup_str, str);
duke@435 455 return dup_str;
duke@435 456 }
duke@435 457
duke@435 458
duke@435 459
duke@435 460 #ifdef ASSERT
duke@435 461 #define space_before (MallocCushion + sizeof(double))
duke@435 462 #define space_after MallocCushion
duke@435 463 #define size_addr_from_base(p) (size_t*)(p + space_before - sizeof(size_t))
duke@435 464 #define size_addr_from_obj(p) ((size_t*)p - 1)
duke@435 465 // MallocCushion: size of extra cushion allocated around objects with +UseMallocOnly
duke@435 466 // NB: cannot be debug variable, because these aren't set from the command line until
duke@435 467 // *after* the first few allocs already happened
duke@435 468 #define MallocCushion 16
duke@435 469 #else
duke@435 470 #define space_before 0
duke@435 471 #define space_after 0
duke@435 472 #define size_addr_from_base(p) should not use w/o ASSERT
duke@435 473 #define size_addr_from_obj(p) should not use w/o ASSERT
duke@435 474 #define MallocCushion 0
duke@435 475 #endif
duke@435 476 #define paranoid 0 /* only set to 1 if you suspect checking code has bug */
duke@435 477
duke@435 478 #ifdef ASSERT
duke@435 479 inline size_t get_size(void* obj) {
duke@435 480 size_t size = *size_addr_from_obj(obj);
jcoomes@1845 481 if (size < 0) {
jcoomes@1845 482 fatal(err_msg("free: size field of object #" PTR_FORMAT " was overwritten ("
jcoomes@1845 483 SIZE_FORMAT ")", obj, size));
jcoomes@1845 484 }
duke@435 485 return size;
duke@435 486 }
duke@435 487
duke@435 488 u_char* find_cushion_backwards(u_char* start) {
duke@435 489 u_char* p = start;
duke@435 490 while (p[ 0] != badResourceValue || p[-1] != badResourceValue ||
duke@435 491 p[-2] != badResourceValue || p[-3] != badResourceValue) p--;
duke@435 492 // ok, we have four consecutive marker bytes; find start
duke@435 493 u_char* q = p - 4;
duke@435 494 while (*q == badResourceValue) q--;
duke@435 495 return q + 1;
duke@435 496 }
duke@435 497
duke@435 498 u_char* find_cushion_forwards(u_char* start) {
duke@435 499 u_char* p = start;
duke@435 500 while (p[0] != badResourceValue || p[1] != badResourceValue ||
duke@435 501 p[2] != badResourceValue || p[3] != badResourceValue) p++;
duke@435 502 // ok, we have four consecutive marker bytes; find end of cushion
duke@435 503 u_char* q = p + 4;
duke@435 504 while (*q == badResourceValue) q++;
duke@435 505 return q - MallocCushion;
duke@435 506 }
duke@435 507
duke@435 508 void print_neighbor_blocks(void* ptr) {
duke@435 509 // find block allocated before ptr (not entirely crash-proof)
duke@435 510 if (MallocCushion < 4) {
duke@435 511 tty->print_cr("### cannot find previous block (MallocCushion < 4)");
duke@435 512 return;
duke@435 513 }
duke@435 514 u_char* start_of_this_block = (u_char*)ptr - space_before;
duke@435 515 u_char* end_of_prev_block_data = start_of_this_block - space_after -1;
duke@435 516 // look for cushion in front of prev. block
duke@435 517 u_char* start_of_prev_block = find_cushion_backwards(end_of_prev_block_data);
duke@435 518 ptrdiff_t size = *size_addr_from_base(start_of_prev_block);
duke@435 519 u_char* obj = start_of_prev_block + space_before;
duke@435 520 if (size <= 0 ) {
duke@435 521 // start is bad; mayhave been confused by OS data inbetween objects
duke@435 522 // search one more backwards
duke@435 523 start_of_prev_block = find_cushion_backwards(start_of_prev_block);
duke@435 524 size = *size_addr_from_base(start_of_prev_block);
duke@435 525 obj = start_of_prev_block + space_before;
duke@435 526 }
duke@435 527
duke@435 528 if (start_of_prev_block + space_before + size + space_after == start_of_this_block) {
kvn@2557 529 tty->print_cr("### previous object: " PTR_FORMAT " (" SSIZE_FORMAT " bytes)", obj, size);
duke@435 530 } else {
kvn@2557 531 tty->print_cr("### previous object (not sure if correct): " PTR_FORMAT " (" SSIZE_FORMAT " bytes)", obj, size);
duke@435 532 }
duke@435 533
duke@435 534 // now find successor block
duke@435 535 u_char* start_of_next_block = (u_char*)ptr + *size_addr_from_obj(ptr) + space_after;
duke@435 536 start_of_next_block = find_cushion_forwards(start_of_next_block);
duke@435 537 u_char* next_obj = start_of_next_block + space_before;
duke@435 538 ptrdiff_t next_size = *size_addr_from_base(start_of_next_block);
duke@435 539 if (start_of_next_block[0] == badResourceValue &&
duke@435 540 start_of_next_block[1] == badResourceValue &&
duke@435 541 start_of_next_block[2] == badResourceValue &&
duke@435 542 start_of_next_block[3] == badResourceValue) {
kvn@2557 543 tty->print_cr("### next object: " PTR_FORMAT " (" SSIZE_FORMAT " bytes)", next_obj, next_size);
duke@435 544 } else {
kvn@2557 545 tty->print_cr("### next object (not sure if correct): " PTR_FORMAT " (" SSIZE_FORMAT " bytes)", next_obj, next_size);
duke@435 546 }
duke@435 547 }
duke@435 548
duke@435 549
duke@435 550 void report_heap_error(void* memblock, void* bad, const char* where) {
kvn@2557 551 tty->print_cr("## nof_mallocs = " UINT64_FORMAT ", nof_frees = " UINT64_FORMAT, os::num_mallocs, os::num_frees);
kvn@2557 552 tty->print_cr("## memory stomp: byte at " PTR_FORMAT " %s object " PTR_FORMAT, bad, where, memblock);
duke@435 553 print_neighbor_blocks(memblock);
duke@435 554 fatal("memory stomping error");
duke@435 555 }
duke@435 556
duke@435 557 void verify_block(void* memblock) {
duke@435 558 size_t size = get_size(memblock);
duke@435 559 if (MallocCushion) {
duke@435 560 u_char* ptr = (u_char*)memblock - space_before;
duke@435 561 for (int i = 0; i < MallocCushion; i++) {
duke@435 562 if (ptr[i] != badResourceValue) {
duke@435 563 report_heap_error(memblock, ptr+i, "in front of");
duke@435 564 }
duke@435 565 }
duke@435 566 u_char* end = (u_char*)memblock + size + space_after;
duke@435 567 for (int j = -MallocCushion; j < 0; j++) {
duke@435 568 if (end[j] != badResourceValue) {
duke@435 569 report_heap_error(memblock, end+j, "after");
duke@435 570 }
duke@435 571 }
duke@435 572 }
duke@435 573 }
duke@435 574 #endif
duke@435 575
zgu@3900 576 void* os::malloc(size_t size, MEMFLAGS memflags, address caller) {
kvn@2557 577 NOT_PRODUCT(inc_stat_counter(&num_mallocs, 1));
kvn@2557 578 NOT_PRODUCT(inc_stat_counter(&alloc_bytes, size));
duke@435 579
duke@435 580 if (size == 0) {
duke@435 581 // return a valid pointer if size is zero
duke@435 582 // if NULL is returned the calling functions assume out of memory.
duke@435 583 size = 1;
duke@435 584 }
duke@435 585
duke@435 586 NOT_PRODUCT(if (MallocVerifyInterval > 0) check_heap());
duke@435 587 u_char* ptr = (u_char*)::malloc(size + space_before + space_after);
zgu@3900 588
duke@435 589 #ifdef ASSERT
duke@435 590 if (ptr == NULL) return NULL;
duke@435 591 if (MallocCushion) {
duke@435 592 for (u_char* p = ptr; p < ptr + MallocCushion; p++) *p = (u_char)badResourceValue;
duke@435 593 u_char* end = ptr + space_before + size;
duke@435 594 for (u_char* pq = ptr+MallocCushion; pq < end; pq++) *pq = (u_char)uninitBlockPad;
duke@435 595 for (u_char* q = end; q < end + MallocCushion; q++) *q = (u_char)badResourceValue;
duke@435 596 }
duke@435 597 // put size just before data
duke@435 598 *size_addr_from_base(ptr) = size;
duke@435 599 #endif
duke@435 600 u_char* memblock = ptr + space_before;
duke@435 601 if ((intptr_t)memblock == (intptr_t)MallocCatchPtr) {
kvn@2557 602 tty->print_cr("os::malloc caught, " SIZE_FORMAT " bytes --> " PTR_FORMAT, size, memblock);
duke@435 603 breakpoint();
duke@435 604 }
duke@435 605 debug_only(if (paranoid) verify_block(memblock));
kvn@2557 606 if (PrintMalloc && tty != NULL) tty->print_cr("os::malloc " SIZE_FORMAT " bytes --> " PTR_FORMAT, size, memblock);
zgu@3900 607
zgu@3900 608 // we do not track MallocCushion memory
zgu@3900 609 MemTracker::record_malloc((address)memblock, size, memflags, caller == 0 ? CALLER_PC : caller);
zgu@3900 610
duke@435 611 return memblock;
duke@435 612 }
duke@435 613
duke@435 614
zgu@3900 615 void* os::realloc(void *memblock, size_t size, MEMFLAGS memflags, address caller) {
duke@435 616 #ifndef ASSERT
kvn@2557 617 NOT_PRODUCT(inc_stat_counter(&num_mallocs, 1));
kvn@2557 618 NOT_PRODUCT(inc_stat_counter(&alloc_bytes, size));
zgu@3900 619 void* ptr = ::realloc(memblock, size);
zgu@4193 620 if (ptr != NULL) {
zgu@3900 621 MemTracker::record_realloc((address)memblock, (address)ptr, size, memflags,
zgu@3900 622 caller == 0 ? CALLER_PC : caller);
zgu@3900 623 }
zgu@3900 624 return ptr;
duke@435 625 #else
duke@435 626 if (memblock == NULL) {
zgu@3900 627 return malloc(size, memflags, (caller == 0 ? CALLER_PC : caller));
duke@435 628 }
duke@435 629 if ((intptr_t)memblock == (intptr_t)MallocCatchPtr) {
kvn@2557 630 tty->print_cr("os::realloc caught " PTR_FORMAT, memblock);
duke@435 631 breakpoint();
duke@435 632 }
duke@435 633 verify_block(memblock);
duke@435 634 NOT_PRODUCT(if (MallocVerifyInterval > 0) check_heap());
duke@435 635 if (size == 0) return NULL;
duke@435 636 // always move the block
zgu@3900 637 void* ptr = malloc(size, memflags, caller == 0 ? CALLER_PC : caller);
kvn@2557 638 if (PrintMalloc) tty->print_cr("os::remalloc " SIZE_FORMAT " bytes, " PTR_FORMAT " --> " PTR_FORMAT, size, memblock, ptr);
duke@435 639 // Copy to new memory if malloc didn't fail
duke@435 640 if ( ptr != NULL ) {
duke@435 641 memcpy(ptr, memblock, MIN2(size, get_size(memblock)));
duke@435 642 if (paranoid) verify_block(ptr);
duke@435 643 if ((intptr_t)ptr == (intptr_t)MallocCatchPtr) {
kvn@2557 644 tty->print_cr("os::realloc caught, " SIZE_FORMAT " bytes --> " PTR_FORMAT, size, ptr);
duke@435 645 breakpoint();
duke@435 646 }
duke@435 647 free(memblock);
duke@435 648 }
duke@435 649 return ptr;
duke@435 650 #endif
duke@435 651 }
duke@435 652
duke@435 653
zgu@3900 654 void os::free(void *memblock, MEMFLAGS memflags) {
kvn@2557 655 NOT_PRODUCT(inc_stat_counter(&num_frees, 1));
duke@435 656 #ifdef ASSERT
duke@435 657 if (memblock == NULL) return;
duke@435 658 if ((intptr_t)memblock == (intptr_t)MallocCatchPtr) {
kvn@2557 659 if (tty != NULL) tty->print_cr("os::free caught " PTR_FORMAT, memblock);
duke@435 660 breakpoint();
duke@435 661 }
duke@435 662 verify_block(memblock);
duke@435 663 NOT_PRODUCT(if (MallocVerifyInterval > 0) check_heap());
duke@435 664 // Added by detlefs.
duke@435 665 if (MallocCushion) {
duke@435 666 u_char* ptr = (u_char*)memblock - space_before;
duke@435 667 for (u_char* p = ptr; p < ptr + MallocCushion; p++) {
duke@435 668 guarantee(*p == badResourceValue,
duke@435 669 "Thing freed should be malloc result.");
duke@435 670 *p = (u_char)freeBlockPad;
duke@435 671 }
duke@435 672 size_t size = get_size(memblock);
kvn@2557 673 inc_stat_counter(&free_bytes, size);
duke@435 674 u_char* end = ptr + space_before + size;
duke@435 675 for (u_char* q = end; q < end + MallocCushion; q++) {
duke@435 676 guarantee(*q == badResourceValue,
duke@435 677 "Thing freed should be malloc result.");
duke@435 678 *q = (u_char)freeBlockPad;
duke@435 679 }
kvn@2557 680 if (PrintMalloc && tty != NULL)
coleenp@2615 681 fprintf(stderr, "os::free " SIZE_FORMAT " bytes --> " PTR_FORMAT "\n", size, (uintptr_t)memblock);
kvn@2557 682 } else if (PrintMalloc && tty != NULL) {
kvn@2557 683 // tty->print_cr("os::free %p", memblock);
coleenp@2615 684 fprintf(stderr, "os::free " PTR_FORMAT "\n", (uintptr_t)memblock);
duke@435 685 }
duke@435 686 #endif
zgu@3900 687 MemTracker::record_free((address)memblock, memflags);
zgu@3900 688
duke@435 689 ::free((char*)memblock - space_before);
duke@435 690 }
duke@435 691
duke@435 692 void os::init_random(long initval) {
duke@435 693 _rand_seed = initval;
duke@435 694 }
duke@435 695
duke@435 696
duke@435 697 long os::random() {
duke@435 698 /* standard, well-known linear congruential random generator with
duke@435 699 * next_rand = (16807*seed) mod (2**31-1)
duke@435 700 * see
duke@435 701 * (1) "Random Number Generators: Good Ones Are Hard to Find",
duke@435 702 * S.K. Park and K.W. Miller, Communications of the ACM 31:10 (Oct 1988),
duke@435 703 * (2) "Two Fast Implementations of the 'Minimal Standard' Random
duke@435 704 * Number Generator", David G. Carta, Comm. ACM 33, 1 (Jan 1990), pp. 87-88.
duke@435 705 */
duke@435 706 const long a = 16807;
duke@435 707 const unsigned long m = 2147483647;
duke@435 708 const long q = m / a; assert(q == 127773, "weird math");
duke@435 709 const long r = m % a; assert(r == 2836, "weird math");
duke@435 710
duke@435 711 // compute az=2^31p+q
duke@435 712 unsigned long lo = a * (long)(_rand_seed & 0xFFFF);
duke@435 713 unsigned long hi = a * (long)((unsigned long)_rand_seed >> 16);
duke@435 714 lo += (hi & 0x7FFF) << 16;
duke@435 715
duke@435 716 // if q overflowed, ignore the overflow and increment q
duke@435 717 if (lo > m) {
duke@435 718 lo &= m;
duke@435 719 ++lo;
duke@435 720 }
duke@435 721 lo += hi >> 15;
duke@435 722
duke@435 723 // if (p+q) overflowed, ignore the overflow and increment (p+q)
duke@435 724 if (lo > m) {
duke@435 725 lo &= m;
duke@435 726 ++lo;
duke@435 727 }
duke@435 728 return (_rand_seed = lo);
duke@435 729 }
duke@435 730
duke@435 731 // The INITIALIZED state is distinguished from the SUSPENDED state because the
duke@435 732 // conditions in which a thread is first started are different from those in which
duke@435 733 // a suspension is resumed. These differences make it hard for us to apply the
duke@435 734 // tougher checks when starting threads that we want to do when resuming them.
duke@435 735 // However, when start_thread is called as a result of Thread.start, on a Java
duke@435 736 // thread, the operation is synchronized on the Java Thread object. So there
duke@435 737 // cannot be a race to start the thread and hence for the thread to exit while
duke@435 738 // we are working on it. Non-Java threads that start Java threads either have
duke@435 739 // to do so in a context in which races are impossible, or should do appropriate
duke@435 740 // locking.
duke@435 741
duke@435 742 void os::start_thread(Thread* thread) {
duke@435 743 // guard suspend/resume
duke@435 744 MutexLockerEx ml(thread->SR_lock(), Mutex::_no_safepoint_check_flag);
duke@435 745 OSThread* osthread = thread->osthread();
duke@435 746 osthread->set_state(RUNNABLE);
duke@435 747 pd_start_thread(thread);
duke@435 748 }
duke@435 749
duke@435 750 //---------------------------------------------------------------------------
duke@435 751 // Helper functions for fatal error handler
duke@435 752
duke@435 753 void os::print_hex_dump(outputStream* st, address start, address end, int unitsize) {
duke@435 754 assert(unitsize == 1 || unitsize == 2 || unitsize == 4 || unitsize == 8, "just checking");
duke@435 755
duke@435 756 int cols = 0;
duke@435 757 int cols_per_line = 0;
duke@435 758 switch (unitsize) {
duke@435 759 case 1: cols_per_line = 16; break;
duke@435 760 case 2: cols_per_line = 8; break;
duke@435 761 case 4: cols_per_line = 4; break;
duke@435 762 case 8: cols_per_line = 2; break;
duke@435 763 default: return;
duke@435 764 }
duke@435 765
duke@435 766 address p = start;
duke@435 767 st->print(PTR_FORMAT ": ", start);
duke@435 768 while (p < end) {
duke@435 769 switch (unitsize) {
duke@435 770 case 1: st->print("%02x", *(u1*)p); break;
duke@435 771 case 2: st->print("%04x", *(u2*)p); break;
duke@435 772 case 4: st->print("%08x", *(u4*)p); break;
duke@435 773 case 8: st->print("%016" FORMAT64_MODIFIER "x", *(u8*)p); break;
duke@435 774 }
duke@435 775 p += unitsize;
duke@435 776 cols++;
duke@435 777 if (cols >= cols_per_line && p < end) {
duke@435 778 cols = 0;
duke@435 779 st->cr();
duke@435 780 st->print(PTR_FORMAT ": ", p);
duke@435 781 } else {
duke@435 782 st->print(" ");
duke@435 783 }
duke@435 784 }
duke@435 785 st->cr();
duke@435 786 }
duke@435 787
duke@435 788 void os::print_environment_variables(outputStream* st, const char** env_list,
duke@435 789 char* buffer, int len) {
duke@435 790 if (env_list) {
duke@435 791 st->print_cr("Environment Variables:");
duke@435 792
duke@435 793 for (int i = 0; env_list[i] != NULL; i++) {
duke@435 794 if (getenv(env_list[i], buffer, len)) {
duke@435 795 st->print(env_list[i]);
duke@435 796 st->print("=");
duke@435 797 st->print_cr(buffer);
duke@435 798 }
duke@435 799 }
duke@435 800 }
duke@435 801 }
duke@435 802
duke@435 803 void os::print_cpu_info(outputStream* st) {
duke@435 804 // cpu
duke@435 805 st->print("CPU:");
duke@435 806 st->print("total %d", os::processor_count());
duke@435 807 // It's not safe to query number of active processors after crash
duke@435 808 // st->print("(active %d)", os::active_processor_count());
duke@435 809 st->print(" %s", VM_Version::cpu_features());
duke@435 810 st->cr();
jcoomes@2997 811 pd_print_cpu_info(st);
duke@435 812 }
duke@435 813
duke@435 814 void os::print_date_and_time(outputStream *st) {
duke@435 815 time_t tloc;
duke@435 816 (void)time(&tloc);
duke@435 817 st->print("time: %s", ctime(&tloc)); // ctime adds newline.
duke@435 818
duke@435 819 double t = os::elapsedTime();
duke@435 820 // NOTE: It tends to crash after a SEGV if we want to printf("%f",...) in
duke@435 821 // Linux. Must be a bug in glibc ? Workaround is to round "t" to int
duke@435 822 // before printf. We lost some precision, but who cares?
duke@435 823 st->print_cr("elapsed time: %d seconds", (int)t);
duke@435 824 }
duke@435 825
bobv@2036 826 // moved from debug.cpp (used to be find()) but still called from there
never@2262 827 // The verbose parameter is only set by the debug code in one case
never@2262 828 void os::print_location(outputStream* st, intptr_t x, bool verbose) {
bobv@2036 829 address addr = (address)x;
bobv@2036 830 CodeBlob* b = CodeCache::find_blob_unsafe(addr);
bobv@2036 831 if (b != NULL) {
bobv@2036 832 if (b->is_buffer_blob()) {
bobv@2036 833 // the interpreter is generated into a buffer blob
bobv@2036 834 InterpreterCodelet* i = Interpreter::codelet_containing(addr);
bobv@2036 835 if (i != NULL) {
twisti@3969 836 st->print_cr(INTPTR_FORMAT " is at code_begin+%d in an Interpreter codelet", addr, (int)(addr - i->code_begin()));
bobv@2036 837 i->print_on(st);
bobv@2036 838 return;
bobv@2036 839 }
bobv@2036 840 if (Interpreter::contains(addr)) {
bobv@2036 841 st->print_cr(INTPTR_FORMAT " is pointing into interpreter code"
bobv@2036 842 " (not bytecode specific)", addr);
bobv@2036 843 return;
bobv@2036 844 }
bobv@2036 845 //
bobv@2036 846 if (AdapterHandlerLibrary::contains(b)) {
twisti@3969 847 st->print_cr(INTPTR_FORMAT " is at code_begin+%d in an AdapterHandler", addr, (int)(addr - b->code_begin()));
bobv@2036 848 AdapterHandlerLibrary::print_handler_on(st, b);
bobv@2036 849 }
bobv@2036 850 // the stubroutines are generated into a buffer blob
bobv@2036 851 StubCodeDesc* d = StubCodeDesc::desc_for(addr);
bobv@2036 852 if (d != NULL) {
twisti@3969 853 st->print_cr(INTPTR_FORMAT " is at begin+%d in a stub", addr, (int)(addr - d->begin()));
bobv@2036 854 d->print_on(st);
twisti@3969 855 st->cr();
bobv@2036 856 return;
bobv@2036 857 }
bobv@2036 858 if (StubRoutines::contains(addr)) {
bobv@2036 859 st->print_cr(INTPTR_FORMAT " is pointing to an (unnamed) "
bobv@2036 860 "stub routine", addr);
bobv@2036 861 return;
bobv@2036 862 }
bobv@2036 863 // the InlineCacheBuffer is using stubs generated into a buffer blob
bobv@2036 864 if (InlineCacheBuffer::contains(addr)) {
bobv@2036 865 st->print_cr(INTPTR_FORMAT " is pointing into InlineCacheBuffer", addr);
bobv@2036 866 return;
bobv@2036 867 }
bobv@2036 868 VtableStub* v = VtableStubs::stub_containing(addr);
bobv@2036 869 if (v != NULL) {
twisti@3969 870 st->print_cr(INTPTR_FORMAT " is at entry_point+%d in a vtable stub", addr, (int)(addr - v->entry_point()));
bobv@2036 871 v->print_on(st);
twisti@3969 872 st->cr();
bobv@2036 873 return;
bobv@2036 874 }
bobv@2036 875 }
twisti@3969 876 nmethod* nm = b->as_nmethod_or_null();
twisti@3969 877 if (nm != NULL) {
bobv@2036 878 ResourceMark rm;
twisti@3969 879 st->print(INTPTR_FORMAT " is at entry_point+%d in (nmethod*)" INTPTR_FORMAT,
twisti@3969 880 addr, (int)(addr - nm->entry_point()), nm);
twisti@3969 881 if (verbose) {
twisti@3969 882 st->print(" for ");
twisti@3969 883 nm->method()->print_value_on(st);
twisti@3969 884 }
stefank@4127 885 st->cr();
twisti@3969 886 nm->print_nmethod(verbose);
bobv@2036 887 return;
bobv@2036 888 }
twisti@3969 889 st->print_cr(INTPTR_FORMAT " is at code_begin+%d in ", addr, (int)(addr - b->code_begin()));
bobv@2036 890 b->print_on(st);
bobv@2036 891 return;
bobv@2036 892 }
bobv@2036 893
bobv@2036 894 if (Universe::heap()->is_in(addr)) {
bobv@2036 895 HeapWord* p = Universe::heap()->block_start(addr);
bobv@2036 896 bool print = false;
bobv@2036 897 // If we couldn't find it it just may mean that heap wasn't parseable
bobv@2036 898 // See if we were just given an oop directly
bobv@2036 899 if (p != NULL && Universe::heap()->block_is_obj(p)) {
bobv@2036 900 print = true;
bobv@2036 901 } else if (p == NULL && ((oopDesc*)addr)->is_oop()) {
bobv@2036 902 p = (HeapWord*) addr;
bobv@2036 903 print = true;
bobv@2036 904 }
bobv@2036 905 if (print) {
stefank@4125 906 if (p == (HeapWord*) addr) {
stefank@4125 907 st->print_cr(INTPTR_FORMAT " is an oop", addr);
stefank@4125 908 } else {
stefank@4125 909 st->print_cr(INTPTR_FORMAT " is pointing into object: " INTPTR_FORMAT, addr, p);
stefank@4125 910 }
bobv@2036 911 oop(p)->print_on(st);
bobv@2036 912 return;
bobv@2036 913 }
bobv@2036 914 } else {
bobv@2036 915 if (Universe::heap()->is_in_reserved(addr)) {
bobv@2036 916 st->print_cr(INTPTR_FORMAT " is an unallocated location "
bobv@2036 917 "in the heap", addr);
bobv@2036 918 return;
bobv@2036 919 }
bobv@2036 920 }
bobv@2036 921 if (JNIHandles::is_global_handle((jobject) addr)) {
bobv@2036 922 st->print_cr(INTPTR_FORMAT " is a global jni handle", addr);
bobv@2036 923 return;
bobv@2036 924 }
bobv@2036 925 if (JNIHandles::is_weak_global_handle((jobject) addr)) {
bobv@2036 926 st->print_cr(INTPTR_FORMAT " is a weak global jni handle", addr);
bobv@2036 927 return;
bobv@2036 928 }
bobv@2036 929 #ifndef PRODUCT
bobv@2036 930 // we don't keep the block list in product mode
bobv@2036 931 if (JNIHandleBlock::any_contains((jobject) addr)) {
bobv@2036 932 st->print_cr(INTPTR_FORMAT " is a local jni handle", addr);
bobv@2036 933 return;
bobv@2036 934 }
bobv@2036 935 #endif
bobv@2036 936
bobv@2036 937 for(JavaThread *thread = Threads::first(); thread; thread = thread->next()) {
bobv@2036 938 // Check for privilege stack
bobv@2036 939 if (thread->privileged_stack_top() != NULL &&
bobv@2036 940 thread->privileged_stack_top()->contains(addr)) {
bobv@2036 941 st->print_cr(INTPTR_FORMAT " is pointing into the privilege stack "
bobv@2036 942 "for thread: " INTPTR_FORMAT, addr, thread);
never@2262 943 if (verbose) thread->print_on(st);
bobv@2036 944 return;
bobv@2036 945 }
bobv@2036 946 // If the addr is a java thread print information about that.
bobv@2036 947 if (addr == (address)thread) {
never@2262 948 if (verbose) {
never@2262 949 thread->print_on(st);
never@2262 950 } else {
never@2262 951 st->print_cr(INTPTR_FORMAT " is a thread", addr);
never@2262 952 }
bobv@2036 953 return;
bobv@2036 954 }
bobv@2036 955 // If the addr is in the stack region for this thread then report that
bobv@2036 956 // and print thread info
bobv@2036 957 if (thread->stack_base() >= addr &&
bobv@2036 958 addr > (thread->stack_base() - thread->stack_size())) {
bobv@2036 959 st->print_cr(INTPTR_FORMAT " is pointing into the stack for thread: "
bobv@2036 960 INTPTR_FORMAT, addr, thread);
never@2262 961 if (verbose) thread->print_on(st);
bobv@2036 962 return;
bobv@2036 963 }
bobv@2036 964
bobv@2036 965 }
coleenp@4037 966
coleenp@4037 967 #ifndef PRODUCT
coleenp@4037 968 // Check if in metaspace.
coleenp@4037 969 if (ClassLoaderDataGraph::contains((address)addr)) {
coleenp@4037 970 // Use addr->print() from the debugger instead (not here)
coleenp@4037 971 st->print_cr(INTPTR_FORMAT
coleenp@4037 972 " is pointing into metadata", addr);
coleenp@4037 973 return;
coleenp@4037 974 }
coleenp@4037 975 #endif
coleenp@4037 976
bobv@2036 977 // Try an OS specific find
bobv@2036 978 if (os::find(addr, st)) {
bobv@2036 979 return;
bobv@2036 980 }
bobv@2036 981
never@2262 982 st->print_cr(INTPTR_FORMAT " is an unknown value", addr);
bobv@2036 983 }
duke@435 984
duke@435 985 // Looks like all platforms except IA64 can use the same function to check
duke@435 986 // if C stack is walkable beyond current frame. The check for fp() is not
duke@435 987 // necessary on Sparc, but it's harmless.
duke@435 988 bool os::is_first_C_frame(frame* fr) {
duke@435 989 #ifdef IA64
duke@435 990 // In order to walk native frames on Itanium, we need to access the unwind
duke@435 991 // table, which is inside ELF. We don't want to parse ELF after fatal error,
duke@435 992 // so return true for IA64. If we need to support C stack walking on IA64,
duke@435 993 // this function needs to be moved to CPU specific files, as fp() on IA64
duke@435 994 // is register stack, which grows towards higher memory address.
duke@435 995 return true;
duke@435 996 #endif
duke@435 997
duke@435 998 // Load up sp, fp, sender sp and sender fp, check for reasonable values.
duke@435 999 // Check usp first, because if that's bad the other accessors may fault
duke@435 1000 // on some architectures. Ditto ufp second, etc.
duke@435 1001 uintptr_t fp_align_mask = (uintptr_t)(sizeof(address)-1);
duke@435 1002 // sp on amd can be 32 bit aligned.
duke@435 1003 uintptr_t sp_align_mask = (uintptr_t)(sizeof(int)-1);
duke@435 1004
duke@435 1005 uintptr_t usp = (uintptr_t)fr->sp();
duke@435 1006 if ((usp & sp_align_mask) != 0) return true;
duke@435 1007
duke@435 1008 uintptr_t ufp = (uintptr_t)fr->fp();
duke@435 1009 if ((ufp & fp_align_mask) != 0) return true;
duke@435 1010
duke@435 1011 uintptr_t old_sp = (uintptr_t)fr->sender_sp();
duke@435 1012 if ((old_sp & sp_align_mask) != 0) return true;
duke@435 1013 if (old_sp == 0 || old_sp == (uintptr_t)-1) return true;
duke@435 1014
duke@435 1015 uintptr_t old_fp = (uintptr_t)fr->link();
duke@435 1016 if ((old_fp & fp_align_mask) != 0) return true;
duke@435 1017 if (old_fp == 0 || old_fp == (uintptr_t)-1 || old_fp == ufp) return true;
duke@435 1018
duke@435 1019 // stack grows downwards; if old_fp is below current fp or if the stack
duke@435 1020 // frame is too large, either the stack is corrupted or fp is not saved
duke@435 1021 // on stack (i.e. on x86, ebp may be used as general register). The stack
duke@435 1022 // is not walkable beyond current frame.
duke@435 1023 if (old_fp < ufp) return true;
duke@435 1024 if (old_fp - ufp > 64 * K) return true;
duke@435 1025
duke@435 1026 return false;
duke@435 1027 }
duke@435 1028
duke@435 1029 #ifdef ASSERT
duke@435 1030 extern "C" void test_random() {
duke@435 1031 const double m = 2147483647;
duke@435 1032 double mean = 0.0, variance = 0.0, t;
duke@435 1033 long reps = 10000;
duke@435 1034 unsigned long seed = 1;
duke@435 1035
duke@435 1036 tty->print_cr("seed %ld for %ld repeats...", seed, reps);
duke@435 1037 os::init_random(seed);
duke@435 1038 long num;
duke@435 1039 for (int k = 0; k < reps; k++) {
duke@435 1040 num = os::random();
duke@435 1041 double u = (double)num / m;
duke@435 1042 assert(u >= 0.0 && u <= 1.0, "bad random number!");
duke@435 1043
duke@435 1044 // calculate mean and variance of the random sequence
duke@435 1045 mean += u;
duke@435 1046 variance += (u*u);
duke@435 1047 }
duke@435 1048 mean /= reps;
duke@435 1049 variance /= (reps - 1);
duke@435 1050
duke@435 1051 assert(num == 1043618065, "bad seed");
duke@435 1052 tty->print_cr("mean of the 1st 10000 numbers: %f", mean);
duke@435 1053 tty->print_cr("variance of the 1st 10000 numbers: %f", variance);
duke@435 1054 const double eps = 0.0001;
duke@435 1055 t = fabsd(mean - 0.5018);
duke@435 1056 assert(t < eps, "bad mean");
duke@435 1057 t = (variance - 0.3355) < 0.0 ? -(variance - 0.3355) : variance - 0.3355;
duke@435 1058 assert(t < eps, "bad variance");
duke@435 1059 }
duke@435 1060 #endif
duke@435 1061
duke@435 1062
duke@435 1063 // Set up the boot classpath.
duke@435 1064
duke@435 1065 char* os::format_boot_path(const char* format_string,
duke@435 1066 const char* home,
duke@435 1067 int home_len,
duke@435 1068 char fileSep,
duke@435 1069 char pathSep) {
duke@435 1070 assert((fileSep == '/' && pathSep == ':') ||
duke@435 1071 (fileSep == '\\' && pathSep == ';'), "unexpected seperator chars");
duke@435 1072
duke@435 1073 // Scan the format string to determine the length of the actual
duke@435 1074 // boot classpath, and handle platform dependencies as well.
duke@435 1075 int formatted_path_len = 0;
duke@435 1076 const char* p;
duke@435 1077 for (p = format_string; *p != 0; ++p) {
duke@435 1078 if (*p == '%') formatted_path_len += home_len - 1;
duke@435 1079 ++formatted_path_len;
duke@435 1080 }
duke@435 1081
zgu@3900 1082 char* formatted_path = NEW_C_HEAP_ARRAY(char, formatted_path_len + 1, mtInternal);
duke@435 1083 if (formatted_path == NULL) {
duke@435 1084 return NULL;
duke@435 1085 }
duke@435 1086
duke@435 1087 // Create boot classpath from format, substituting separator chars and
duke@435 1088 // java home directory.
duke@435 1089 char* q = formatted_path;
duke@435 1090 for (p = format_string; *p != 0; ++p) {
duke@435 1091 switch (*p) {
duke@435 1092 case '%':
duke@435 1093 strcpy(q, home);
duke@435 1094 q += home_len;
duke@435 1095 break;
duke@435 1096 case '/':
duke@435 1097 *q++ = fileSep;
duke@435 1098 break;
duke@435 1099 case ':':
duke@435 1100 *q++ = pathSep;
duke@435 1101 break;
duke@435 1102 default:
duke@435 1103 *q++ = *p;
duke@435 1104 }
duke@435 1105 }
duke@435 1106 *q = '\0';
duke@435 1107
duke@435 1108 assert((q - formatted_path) == formatted_path_len, "formatted_path size botched");
duke@435 1109 return formatted_path;
duke@435 1110 }
duke@435 1111
duke@435 1112
duke@435 1113 bool os::set_boot_path(char fileSep, char pathSep) {
duke@435 1114 const char* home = Arguments::get_java_home();
duke@435 1115 int home_len = (int)strlen(home);
duke@435 1116
duke@435 1117 static const char* meta_index_dir_format = "%/lib/";
duke@435 1118 static const char* meta_index_format = "%/lib/meta-index";
duke@435 1119 char* meta_index = format_boot_path(meta_index_format, home, home_len, fileSep, pathSep);
duke@435 1120 if (meta_index == NULL) return false;
duke@435 1121 char* meta_index_dir = format_boot_path(meta_index_dir_format, home, home_len, fileSep, pathSep);
duke@435 1122 if (meta_index_dir == NULL) return false;
duke@435 1123 Arguments::set_meta_index_path(meta_index, meta_index_dir);
duke@435 1124
duke@435 1125 // Any modification to the JAR-file list, for the boot classpath must be
duke@435 1126 // aligned with install/install/make/common/Pack.gmk. Note: boot class
duke@435 1127 // path class JARs, are stripped for StackMapTable to reduce download size.
duke@435 1128 static const char classpath_format[] =
duke@435 1129 "%/lib/resources.jar:"
duke@435 1130 "%/lib/rt.jar:"
duke@435 1131 "%/lib/sunrsasign.jar:"
duke@435 1132 "%/lib/jsse.jar:"
duke@435 1133 "%/lib/jce.jar:"
duke@435 1134 "%/lib/charsets.jar:"
phh@3427 1135 "%/lib/jfr.jar:"
dcubed@3202 1136 #ifdef __APPLE__
dcubed@3202 1137 "%/lib/JObjC.jar:"
dcubed@3202 1138 #endif
duke@435 1139 "%/classes";
duke@435 1140 char* sysclasspath = format_boot_path(classpath_format, home, home_len, fileSep, pathSep);
duke@435 1141 if (sysclasspath == NULL) return false;
duke@435 1142 Arguments::set_sysclasspath(sysclasspath);
duke@435 1143
duke@435 1144 return true;
duke@435 1145 }
duke@435 1146
phh@1126 1147 /*
phh@1126 1148 * Splits a path, based on its separator, the number of
phh@1126 1149 * elements is returned back in n.
phh@1126 1150 * It is the callers responsibility to:
phh@1126 1151 * a> check the value of n, and n may be 0.
phh@1126 1152 * b> ignore any empty path elements
phh@1126 1153 * c> free up the data.
phh@1126 1154 */
phh@1126 1155 char** os::split_path(const char* path, int* n) {
phh@1126 1156 *n = 0;
phh@1126 1157 if (path == NULL || strlen(path) == 0) {
phh@1126 1158 return NULL;
phh@1126 1159 }
phh@1126 1160 const char psepchar = *os::path_separator();
zgu@3900 1161 char* inpath = (char*)NEW_C_HEAP_ARRAY(char, strlen(path) + 1, mtInternal);
phh@1126 1162 if (inpath == NULL) {
phh@1126 1163 return NULL;
phh@1126 1164 }
bpittore@4261 1165 strcpy(inpath, path);
phh@1126 1166 int count = 1;
phh@1126 1167 char* p = strchr(inpath, psepchar);
phh@1126 1168 // Get a count of elements to allocate memory
phh@1126 1169 while (p != NULL) {
phh@1126 1170 count++;
phh@1126 1171 p++;
phh@1126 1172 p = strchr(p, psepchar);
phh@1126 1173 }
zgu@3900 1174 char** opath = (char**) NEW_C_HEAP_ARRAY(char*, count, mtInternal);
phh@1126 1175 if (opath == NULL) {
phh@1126 1176 return NULL;
phh@1126 1177 }
phh@1126 1178
phh@1126 1179 // do the actual splitting
phh@1126 1180 p = inpath;
phh@1126 1181 for (int i = 0 ; i < count ; i++) {
phh@1126 1182 size_t len = strcspn(p, os::path_separator());
phh@1126 1183 if (len > JVM_MAXPATHLEN) {
phh@1126 1184 return NULL;
phh@1126 1185 }
phh@1126 1186 // allocate the string and add terminator storage
zgu@3900 1187 char* s = (char*)NEW_C_HEAP_ARRAY(char, len + 1, mtInternal);
phh@1126 1188 if (s == NULL) {
phh@1126 1189 return NULL;
phh@1126 1190 }
phh@1126 1191 strncpy(s, p, len);
phh@1126 1192 s[len] = '\0';
phh@1126 1193 opath[i] = s;
phh@1126 1194 p += len + 1;
phh@1126 1195 }
zgu@3900 1196 FREE_C_HEAP_ARRAY(char, inpath, mtInternal);
phh@1126 1197 *n = count;
phh@1126 1198 return opath;
phh@1126 1199 }
phh@1126 1200
duke@435 1201 void os::set_memory_serialize_page(address page) {
duke@435 1202 int count = log2_intptr(sizeof(class JavaThread)) - log2_intptr(64);
duke@435 1203 _mem_serialize_page = (volatile int32_t *)page;
duke@435 1204 // We initialize the serialization page shift count here
duke@435 1205 // We assume a cache line size of 64 bytes
duke@435 1206 assert(SerializePageShiftCount == count,
duke@435 1207 "thread size changed, fix SerializePageShiftCount constant");
duke@435 1208 set_serialize_page_mask((uintptr_t)(vm_page_size() - sizeof(int32_t)));
duke@435 1209 }
duke@435 1210
xlu@490 1211 static volatile intptr_t SerializePageLock = 0;
xlu@490 1212
duke@435 1213 // This method is called from signal handler when SIGSEGV occurs while the current
duke@435 1214 // thread tries to store to the "read-only" memory serialize page during state
duke@435 1215 // transition.
duke@435 1216 void os::block_on_serialize_page_trap() {
duke@435 1217 if (TraceSafepoint) {
duke@435 1218 tty->print_cr("Block until the serialize page permission restored");
duke@435 1219 }
xlu@490 1220 // When VMThread is holding the SerializePageLock during modifying the
duke@435 1221 // access permission of the memory serialize page, the following call
duke@435 1222 // will block until the permission of that page is restored to rw.
duke@435 1223 // Generally, it is unsafe to manipulate locks in signal handlers, but in
duke@435 1224 // this case, it's OK as the signal is synchronous and we know precisely when
xlu@490 1225 // it can occur.
xlu@490 1226 Thread::muxAcquire(&SerializePageLock, "set_memory_serialize_page");
xlu@490 1227 Thread::muxRelease(&SerializePageLock);
duke@435 1228 }
duke@435 1229
duke@435 1230 // Serialize all thread state variables
duke@435 1231 void os::serialize_thread_states() {
duke@435 1232 // On some platforms such as Solaris & Linux, the time duration of the page
duke@435 1233 // permission restoration is observed to be much longer than expected due to
duke@435 1234 // scheduler starvation problem etc. To avoid the long synchronization
xlu@490 1235 // time and expensive page trap spinning, 'SerializePageLock' is used to block
xlu@490 1236 // the mutator thread if such case is encountered. See bug 6546278 for details.
xlu@490 1237 Thread::muxAcquire(&SerializePageLock, "serialize_thread_states");
coleenp@672 1238 os::protect_memory((char *)os::get_memory_serialize_page(),
coleenp@912 1239 os::vm_page_size(), MEM_PROT_READ);
coleenp@912 1240 os::protect_memory((char *)os::get_memory_serialize_page(),
coleenp@912 1241 os::vm_page_size(), MEM_PROT_RW);
xlu@490 1242 Thread::muxRelease(&SerializePageLock);
duke@435 1243 }
duke@435 1244
duke@435 1245 // Returns true if the current stack pointer is above the stack shadow
duke@435 1246 // pages, false otherwise.
duke@435 1247
duke@435 1248 bool os::stack_shadow_pages_available(Thread *thread, methodHandle method) {
duke@435 1249 assert(StackRedPages > 0 && StackYellowPages > 0,"Sanity check");
duke@435 1250 address sp = current_stack_pointer();
duke@435 1251 // Check if we have StackShadowPages above the yellow zone. This parameter
twisti@1040 1252 // is dependent on the depth of the maximum VM call stack possible from
duke@435 1253 // the handler for stack overflow. 'instanceof' in the stack overflow
duke@435 1254 // handler or a println uses at least 8k stack of VM and native code
duke@435 1255 // respectively.
duke@435 1256 const int framesize_in_bytes =
duke@435 1257 Interpreter::size_top_interpreter_activation(method()) * wordSize;
duke@435 1258 int reserved_area = ((StackShadowPages + StackRedPages + StackYellowPages)
duke@435 1259 * vm_page_size()) + framesize_in_bytes;
duke@435 1260 // The very lower end of the stack
duke@435 1261 address stack_limit = thread->stack_base() - thread->stack_size();
duke@435 1262 return (sp > (stack_limit + reserved_area));
duke@435 1263 }
duke@435 1264
duke@435 1265 size_t os::page_size_for_region(size_t region_min_size, size_t region_max_size,
duke@435 1266 uint min_pages)
duke@435 1267 {
duke@435 1268 assert(min_pages > 0, "sanity");
duke@435 1269 if (UseLargePages) {
duke@435 1270 const size_t max_page_size = region_max_size / min_pages;
duke@435 1271
duke@435 1272 for (unsigned int i = 0; _page_sizes[i] != 0; ++i) {
duke@435 1273 const size_t sz = _page_sizes[i];
duke@435 1274 const size_t mask = sz - 1;
duke@435 1275 if ((region_min_size & mask) == 0 && (region_max_size & mask) == 0) {
duke@435 1276 // The largest page size with no fragmentation.
duke@435 1277 return sz;
duke@435 1278 }
duke@435 1279
duke@435 1280 if (sz <= max_page_size) {
duke@435 1281 // The largest page size that satisfies the min_pages requirement.
duke@435 1282 return sz;
duke@435 1283 }
duke@435 1284 }
duke@435 1285 }
duke@435 1286
duke@435 1287 return vm_page_size();
duke@435 1288 }
duke@435 1289
duke@435 1290 #ifndef PRODUCT
jcoomes@3057 1291 void os::trace_page_sizes(const char* str, const size_t* page_sizes, int count)
jcoomes@3057 1292 {
jcoomes@3057 1293 if (TracePageSizes) {
jcoomes@3057 1294 tty->print("%s: ", str);
jcoomes@3057 1295 for (int i = 0; i < count; ++i) {
jcoomes@3057 1296 tty->print(" " SIZE_FORMAT, page_sizes[i]);
jcoomes@3057 1297 }
jcoomes@3057 1298 tty->cr();
jcoomes@3057 1299 }
jcoomes@3057 1300 }
jcoomes@3057 1301
duke@435 1302 void os::trace_page_sizes(const char* str, const size_t region_min_size,
duke@435 1303 const size_t region_max_size, const size_t page_size,
duke@435 1304 const char* base, const size_t size)
duke@435 1305 {
duke@435 1306 if (TracePageSizes) {
duke@435 1307 tty->print_cr("%s: min=" SIZE_FORMAT " max=" SIZE_FORMAT
duke@435 1308 " pg_sz=" SIZE_FORMAT " base=" PTR_FORMAT
duke@435 1309 " size=" SIZE_FORMAT,
duke@435 1310 str, region_min_size, region_max_size,
duke@435 1311 page_size, base, size);
duke@435 1312 }
duke@435 1313 }
duke@435 1314 #endif // #ifndef PRODUCT
duke@435 1315
duke@435 1316 // This is the working definition of a server class machine:
duke@435 1317 // >= 2 physical CPU's and >=2GB of memory, with some fuzz
duke@435 1318 // because the graphics memory (?) sometimes masks physical memory.
duke@435 1319 // If you want to change the definition of a server class machine
duke@435 1320 // on some OS or platform, e.g., >=4GB on Windohs platforms,
duke@435 1321 // then you'll have to parameterize this method based on that state,
duke@435 1322 // as was done for logical processors here, or replicate and
duke@435 1323 // specialize this method for each platform. (Or fix os to have
duke@435 1324 // some inheritance structure and use subclassing. Sigh.)
duke@435 1325 // If you want some platform to always or never behave as a server
duke@435 1326 // class machine, change the setting of AlwaysActAsServerClassMachine
duke@435 1327 // and NeverActAsServerClassMachine in globals*.hpp.
duke@435 1328 bool os::is_server_class_machine() {
duke@435 1329 // First check for the early returns
duke@435 1330 if (NeverActAsServerClassMachine) {
duke@435 1331 return false;
duke@435 1332 }
duke@435 1333 if (AlwaysActAsServerClassMachine) {
duke@435 1334 return true;
duke@435 1335 }
duke@435 1336 // Then actually look at the machine
duke@435 1337 bool result = false;
duke@435 1338 const unsigned int server_processors = 2;
duke@435 1339 const julong server_memory = 2UL * G;
duke@435 1340 // We seem not to get our full complement of memory.
duke@435 1341 // We allow some part (1/8?) of the memory to be "missing",
duke@435 1342 // based on the sizes of DIMMs, and maybe graphics cards.
duke@435 1343 const julong missing_memory = 256UL * M;
duke@435 1344
duke@435 1345 /* Is this a server class machine? */
duke@435 1346 if ((os::active_processor_count() >= (int)server_processors) &&
duke@435 1347 (os::physical_memory() >= (server_memory - missing_memory))) {
duke@435 1348 const unsigned int logical_processors =
duke@435 1349 VM_Version::logical_processors_per_package();
duke@435 1350 if (logical_processors > 1) {
duke@435 1351 const unsigned int physical_packages =
duke@435 1352 os::active_processor_count() / logical_processors;
duke@435 1353 if (physical_packages > server_processors) {
duke@435 1354 result = true;
duke@435 1355 }
duke@435 1356 } else {
duke@435 1357 result = true;
duke@435 1358 }
duke@435 1359 }
duke@435 1360 return result;
duke@435 1361 }
dsamersoff@2751 1362
dsamersoff@2751 1363 // Read file line by line, if line is longer than bsize,
dsamersoff@2751 1364 // skip rest of line.
dsamersoff@2751 1365 int os::get_line_chars(int fd, char* buf, const size_t bsize){
dsamersoff@2751 1366 size_t sz, i = 0;
dsamersoff@2751 1367
dsamersoff@2751 1368 // read until EOF, EOL or buf is full
dsamersoff@3030 1369 while ((sz = (int) read(fd, &buf[i], 1)) == 1 && i < (bsize-2) && buf[i] != '\n') {
dsamersoff@2751 1370 ++i;
dsamersoff@2751 1371 }
dsamersoff@2751 1372
dsamersoff@2751 1373 if (buf[i] == '\n') {
dsamersoff@2751 1374 // EOL reached so ignore EOL character and return
dsamersoff@2751 1375
dsamersoff@2751 1376 buf[i] = 0;
dsamersoff@2751 1377 return (int) i;
dsamersoff@2751 1378 }
dsamersoff@2751 1379
dsamersoff@2751 1380 buf[i+1] = 0;
dsamersoff@2751 1381
dsamersoff@2751 1382 if (sz != 1) {
dsamersoff@2751 1383 // EOF reached. if we read chars before EOF return them and
dsamersoff@2751 1384 // return EOF on next call otherwise return EOF
dsamersoff@2751 1385
dsamersoff@2751 1386 return (i == 0) ? -1 : (int) i;
dsamersoff@2751 1387 }
dsamersoff@2751 1388
dsamersoff@2751 1389 // line is longer than size of buf, skip to EOL
dsamersoff@3030 1390 char ch;
dsamersoff@2751 1391 while (read(fd, &ch, 1) == 1 && ch != '\n') {
dsamersoff@2751 1392 // Do nothing
dsamersoff@2751 1393 }
dsamersoff@2751 1394
dsamersoff@2751 1395 // return initial part of line that fits in buf.
dsamersoff@2751 1396 // If we reached EOF, it will be returned on next call.
dsamersoff@2751 1397
dsamersoff@2751 1398 return (int) i;
dsamersoff@2751 1399 }
zgu@3900 1400
zgu@3900 1401 bool os::create_stack_guard_pages(char* addr, size_t bytes) {
zgu@3900 1402 return os::pd_create_stack_guard_pages(addr, bytes);
zgu@3900 1403 }
zgu@3900 1404
zgu@3900 1405
zgu@3900 1406 char* os::reserve_memory(size_t bytes, char* addr, size_t alignment_hint) {
zgu@3900 1407 char* result = pd_reserve_memory(bytes, addr, alignment_hint);
zgu@4193 1408 if (result != NULL) {
zgu@3900 1409 MemTracker::record_virtual_memory_reserve((address)result, bytes, CALLER_PC);
zgu@3900 1410 }
zgu@3900 1411
zgu@3900 1412 return result;
zgu@3900 1413 }
zgu@3900 1414 char* os::attempt_reserve_memory_at(size_t bytes, char* addr) {
zgu@3900 1415 char* result = pd_attempt_reserve_memory_at(bytes, addr);
zgu@4193 1416 if (result != NULL) {
zgu@3900 1417 MemTracker::record_virtual_memory_reserve((address)result, bytes, CALLER_PC);
zgu@3900 1418 }
zgu@3900 1419 return result;
zgu@3900 1420 }
zgu@3900 1421
zgu@3900 1422 void os::split_reserved_memory(char *base, size_t size,
zgu@3900 1423 size_t split, bool realloc) {
zgu@3900 1424 pd_split_reserved_memory(base, size, split, realloc);
zgu@3900 1425 }
zgu@3900 1426
zgu@3900 1427 bool os::commit_memory(char* addr, size_t bytes, bool executable) {
zgu@3900 1428 bool res = pd_commit_memory(addr, bytes, executable);
zgu@4193 1429 if (res) {
zgu@3900 1430 MemTracker::record_virtual_memory_commit((address)addr, bytes, CALLER_PC);
zgu@3900 1431 }
zgu@3900 1432 return res;
zgu@3900 1433 }
zgu@3900 1434
zgu@3900 1435 bool os::commit_memory(char* addr, size_t size, size_t alignment_hint,
zgu@3900 1436 bool executable) {
zgu@3900 1437 bool res = os::pd_commit_memory(addr, size, alignment_hint, executable);
zgu@4193 1438 if (res) {
zgu@3900 1439 MemTracker::record_virtual_memory_commit((address)addr, size, CALLER_PC);
zgu@3900 1440 }
zgu@3900 1441 return res;
zgu@3900 1442 }
zgu@3900 1443
zgu@3900 1444 bool os::uncommit_memory(char* addr, size_t bytes) {
zgu@3900 1445 bool res = pd_uncommit_memory(addr, bytes);
zgu@3900 1446 if (res) {
zgu@3900 1447 MemTracker::record_virtual_memory_uncommit((address)addr, bytes);
zgu@3900 1448 }
zgu@3900 1449 return res;
zgu@3900 1450 }
zgu@3900 1451
zgu@3900 1452 bool os::release_memory(char* addr, size_t bytes) {
zgu@3900 1453 bool res = pd_release_memory(addr, bytes);
zgu@3900 1454 if (res) {
zgu@3900 1455 MemTracker::record_virtual_memory_release((address)addr, bytes);
zgu@3900 1456 }
zgu@3900 1457 return res;
zgu@3900 1458 }
zgu@3900 1459
zgu@3900 1460
zgu@3900 1461 char* os::map_memory(int fd, const char* file_name, size_t file_offset,
zgu@3900 1462 char *addr, size_t bytes, bool read_only,
zgu@3900 1463 bool allow_exec) {
zgu@3900 1464 char* result = pd_map_memory(fd, file_name, file_offset, addr, bytes, read_only, allow_exec);
zgu@4193 1465 if (result != NULL) {
zgu@3900 1466 MemTracker::record_virtual_memory_reserve((address)result, bytes, CALLER_PC);
zgu@4193 1467 MemTracker::record_virtual_memory_commit((address)result, bytes, CALLER_PC);
zgu@3900 1468 }
zgu@3900 1469 return result;
zgu@3900 1470 }
zgu@3900 1471
zgu@3900 1472 char* os::remap_memory(int fd, const char* file_name, size_t file_offset,
zgu@3900 1473 char *addr, size_t bytes, bool read_only,
zgu@3900 1474 bool allow_exec) {
zgu@3900 1475 return pd_remap_memory(fd, file_name, file_offset, addr, bytes,
zgu@3900 1476 read_only, allow_exec);
zgu@3900 1477 }
zgu@3900 1478
zgu@3900 1479 bool os::unmap_memory(char *addr, size_t bytes) {
zgu@3900 1480 bool result = pd_unmap_memory(addr, bytes);
zgu@3900 1481 if (result) {
zgu@4193 1482 MemTracker::record_virtual_memory_uncommit((address)addr, bytes);
zgu@3900 1483 MemTracker::record_virtual_memory_release((address)addr, bytes);
zgu@3900 1484 }
zgu@3900 1485 return result;
zgu@3900 1486 }
zgu@3900 1487
zgu@3900 1488 void os::free_memory(char *addr, size_t bytes, size_t alignment_hint) {
zgu@3900 1489 pd_free_memory(addr, bytes, alignment_hint);
zgu@3900 1490 }
zgu@3900 1491
zgu@3900 1492 void os::realign_memory(char *addr, size_t bytes, size_t alignment_hint) {
zgu@3900 1493 pd_realign_memory(addr, bytes, alignment_hint);
zgu@3900 1494 }
zgu@3900 1495

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