src/os/bsd/vm/os_bsd.cpp

Thu, 10 Apr 2014 04:07:45 -0700

author
goetz
date
Thu, 10 Apr 2014 04:07:45 -0700
changeset 6556
6048424d3865
parent 6553
21dd1c827123
child 6667
917873d2983d
child 6779
364b73402247
permissions
-rw-r--r--

8038201: Clean up misleading usage of malloc() in init_system_properties_values()
Summary: Remove the misleading malloc macro and cleanup the code
Reviewed-by: dsamersoff, kvn
Contributed-by: goetz.lindenmaier@sap.com

never@3156 1 /*
dcubed@4471 2 * Copyright (c) 1999, 2013, Oracle and/or its affiliates. All rights reserved.
never@3156 3 * DO NOT ALTER OR REMOVE COPYRIGHT NOTICES OR THIS FILE HEADER.
never@3156 4 *
never@3156 5 * This code is free software; you can redistribute it and/or modify it
never@3156 6 * under the terms of the GNU General Public License version 2 only, as
never@3156 7 * published by the Free Software Foundation.
never@3156 8 *
never@3156 9 * This code is distributed in the hope that it will be useful, but WITHOUT
never@3156 10 * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
never@3156 11 * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
never@3156 12 * version 2 for more details (a copy is included in the LICENSE file that
never@3156 13 * accompanied this code).
never@3156 14 *
never@3156 15 * You should have received a copy of the GNU General Public License version
never@3156 16 * 2 along with this work; if not, write to the Free Software Foundation,
never@3156 17 * Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA.
never@3156 18 *
never@3156 19 * Please contact Oracle, 500 Oracle Parkway, Redwood Shores, CA 94065 USA
never@3156 20 * or visit www.oracle.com if you need additional information or have any
never@3156 21 * questions.
never@3156 22 *
never@3156 23 */
never@3156 24
never@3156 25 // no precompiled headers
never@3156 26 #include "classfile/classLoader.hpp"
never@3156 27 #include "classfile/systemDictionary.hpp"
never@3156 28 #include "classfile/vmSymbols.hpp"
never@3156 29 #include "code/icBuffer.hpp"
never@3156 30 #include "code/vtableStubs.hpp"
never@3156 31 #include "compiler/compileBroker.hpp"
twisti@4318 32 #include "compiler/disassembler.hpp"
never@3156 33 #include "interpreter/interpreter.hpp"
never@3156 34 #include "jvm_bsd.h"
never@3156 35 #include "memory/allocation.inline.hpp"
never@3156 36 #include "memory/filemap.hpp"
never@3156 37 #include "mutex_bsd.inline.hpp"
never@3156 38 #include "oops/oop.inline.hpp"
never@3156 39 #include "os_share_bsd.hpp"
never@3156 40 #include "prims/jniFastGetField.hpp"
never@3156 41 #include "prims/jvm.h"
never@3156 42 #include "prims/jvm_misc.hpp"
never@3156 43 #include "runtime/arguments.hpp"
never@3156 44 #include "runtime/extendedPC.hpp"
never@3156 45 #include "runtime/globals.hpp"
never@3156 46 #include "runtime/interfaceSupport.hpp"
never@3156 47 #include "runtime/java.hpp"
never@3156 48 #include "runtime/javaCalls.hpp"
never@3156 49 #include "runtime/mutexLocker.hpp"
never@3156 50 #include "runtime/objectMonitor.hpp"
never@3156 51 #include "runtime/osThread.hpp"
never@3156 52 #include "runtime/perfMemory.hpp"
never@3156 53 #include "runtime/sharedRuntime.hpp"
never@3156 54 #include "runtime/statSampler.hpp"
never@3156 55 #include "runtime/stubRoutines.hpp"
stefank@4299 56 #include "runtime/thread.inline.hpp"
never@3156 57 #include "runtime/threadCritical.hpp"
never@3156 58 #include "runtime/timer.hpp"
never@3156 59 #include "services/attachListener.hpp"
zgu@4711 60 #include "services/memTracker.hpp"
never@3156 61 #include "services/runtimeService.hpp"
never@3156 62 #include "utilities/decoder.hpp"
never@3156 63 #include "utilities/defaultStream.hpp"
never@3156 64 #include "utilities/events.hpp"
never@3156 65 #include "utilities/growableArray.hpp"
never@3156 66 #include "utilities/vmError.hpp"
never@3156 67
never@3156 68 // put OS-includes here
never@3156 69 # include <sys/types.h>
never@3156 70 # include <sys/mman.h>
never@3156 71 # include <sys/stat.h>
never@3156 72 # include <sys/select.h>
never@3156 73 # include <pthread.h>
never@3156 74 # include <signal.h>
never@3156 75 # include <errno.h>
never@3156 76 # include <dlfcn.h>
never@3156 77 # include <stdio.h>
never@3156 78 # include <unistd.h>
never@3156 79 # include <sys/resource.h>
never@3156 80 # include <pthread.h>
never@3156 81 # include <sys/stat.h>
never@3156 82 # include <sys/time.h>
never@3156 83 # include <sys/times.h>
never@3156 84 # include <sys/utsname.h>
never@3156 85 # include <sys/socket.h>
never@3156 86 # include <sys/wait.h>
never@3156 87 # include <time.h>
never@3156 88 # include <pwd.h>
never@3156 89 # include <poll.h>
never@3156 90 # include <semaphore.h>
never@3156 91 # include <fcntl.h>
never@3156 92 # include <string.h>
never@3156 93 # include <sys/param.h>
never@3156 94 # include <sys/sysctl.h>
never@3156 95 # include <sys/ipc.h>
never@3156 96 # include <sys/shm.h>
never@3156 97 #ifndef __APPLE__
never@3156 98 # include <link.h>
never@3156 99 #endif
never@3156 100 # include <stdint.h>
never@3156 101 # include <inttypes.h>
never@3156 102 # include <sys/ioctl.h>
dsamersoff@5830 103 # include <sys/syscall.h>
never@3156 104
never@3156 105 #if defined(__FreeBSD__) || defined(__NetBSD__)
never@3156 106 # include <elf.h>
never@3156 107 #endif
never@3156 108
never@3156 109 #ifdef __APPLE__
dcubed@3202 110 # include <mach/mach.h> // semaphore_* API
dcubed@3202 111 # include <mach-o/dyld.h>
dcubed@3202 112 # include <sys/proc_info.h>
dcubed@3202 113 # include <objc/objc-auto.h>
never@3156 114 #endif
never@3156 115
never@3156 116 #ifndef MAP_ANONYMOUS
never@3156 117 #define MAP_ANONYMOUS MAP_ANON
never@3156 118 #endif
never@3156 119
never@3156 120 #define MAX_PATH (2 * K)
never@3156 121
never@3156 122 // for timer info max values which include all bits
never@3156 123 #define ALL_64_BITS CONST64(0xFFFFFFFFFFFFFFFF)
never@3156 124
never@3156 125 #define LARGEPAGES_BIT (1 << 6)
never@3156 126 ////////////////////////////////////////////////////////////////////////////////
never@3156 127 // global variables
never@3156 128 julong os::Bsd::_physical_memory = 0;
never@3156 129
never@3156 130
never@3156 131 int (*os::Bsd::_clock_gettime)(clockid_t, struct timespec *) = NULL;
never@3156 132 pthread_t os::Bsd::_main_thread;
never@3156 133 int os::Bsd::_page_size = -1;
never@3156 134
never@3156 135 static jlong initial_time_count=0;
never@3156 136
never@3156 137 static int clock_tics_per_sec = 100;
never@3156 138
never@3156 139 // For diagnostics to print a message once. see run_periodic_checks
never@3156 140 static sigset_t check_signal_done;
sla@4229 141 static bool check_signals = true;
never@3156 142
never@3156 143 static pid_t _initial_pid = 0;
never@3156 144
never@3156 145 /* Signal number used to suspend/resume a thread */
never@3156 146
never@3156 147 /* do not use any signal number less than SIGSEGV, see 4355769 */
never@3156 148 static int SR_signum = SIGUSR2;
never@3156 149 sigset_t SR_sigset;
never@3156 150
never@3156 151
never@3156 152 ////////////////////////////////////////////////////////////////////////////////
never@3156 153 // utility functions
never@3156 154
never@3156 155 static int SR_initialize();
dsamersoff@5830 156 static void unpackTime(timespec* absTime, bool isAbsolute, jlong time);
never@3156 157
never@3156 158 julong os::available_memory() {
never@3156 159 return Bsd::available_memory();
never@3156 160 }
never@3156 161
hseigel@5895 162 // available here means free
never@3156 163 julong os::Bsd::available_memory() {
hseigel@5895 164 uint64_t available = physical_memory() >> 2;
hseigel@5895 165 #ifdef __APPLE__
hseigel@5895 166 mach_msg_type_number_t count = HOST_VM_INFO64_COUNT;
hseigel@5895 167 vm_statistics64_data_t vmstat;
hseigel@5895 168 kern_return_t kerr = host_statistics64(mach_host_self(), HOST_VM_INFO64,
hseigel@5895 169 (host_info64_t)&vmstat, &count);
hseigel@5895 170 assert(kerr == KERN_SUCCESS,
hseigel@5895 171 "host_statistics64 failed - check mach_host_self() and count");
hseigel@5895 172 if (kerr == KERN_SUCCESS) {
hseigel@5895 173 available = vmstat.free_count * os::vm_page_size();
hseigel@5895 174 }
hseigel@5895 175 #endif
hseigel@5895 176 return available;
never@3156 177 }
never@3156 178
never@3156 179 julong os::physical_memory() {
never@3156 180 return Bsd::physical_memory();
never@3156 181 }
never@3156 182
never@3156 183 ////////////////////////////////////////////////////////////////////////////////
never@3156 184 // environment support
never@3156 185
never@3156 186 bool os::getenv(const char* name, char* buf, int len) {
never@3156 187 const char* val = ::getenv(name);
never@3156 188 if (val != NULL && strlen(val) < (size_t)len) {
never@3156 189 strcpy(buf, val);
never@3156 190 return true;
never@3156 191 }
never@3156 192 if (len > 0) buf[0] = 0; // return a null string
never@3156 193 return false;
never@3156 194 }
never@3156 195
never@3156 196
never@3156 197 // Return true if user is running as root.
never@3156 198
never@3156 199 bool os::have_special_privileges() {
never@3156 200 static bool init = false;
never@3156 201 static bool privileges = false;
never@3156 202 if (!init) {
never@3156 203 privileges = (getuid() != geteuid()) || (getgid() != getegid());
never@3156 204 init = true;
never@3156 205 }
never@3156 206 return privileges;
never@3156 207 }
never@3156 208
never@3156 209
never@3156 210
never@3156 211 // Cpu architecture string
never@3156 212 #if defined(ZERO)
never@3156 213 static char cpu_arch[] = ZERO_LIBARCH;
never@3156 214 #elif defined(IA64)
never@3156 215 static char cpu_arch[] = "ia64";
never@3156 216 #elif defined(IA32)
never@3156 217 static char cpu_arch[] = "i386";
never@3156 218 #elif defined(AMD64)
never@3156 219 static char cpu_arch[] = "amd64";
never@3156 220 #elif defined(ARM)
never@3156 221 static char cpu_arch[] = "arm";
goetz@6440 222 #elif defined(PPC32)
never@3156 223 static char cpu_arch[] = "ppc";
never@3156 224 #elif defined(SPARC)
never@3156 225 # ifdef _LP64
never@3156 226 static char cpu_arch[] = "sparcv9";
never@3156 227 # else
never@3156 228 static char cpu_arch[] = "sparc";
never@3156 229 # endif
never@3156 230 #else
never@3156 231 #error Add appropriate cpu_arch setting
never@3156 232 #endif
never@3156 233
phh@3473 234 // Compiler variant
phh@3473 235 #ifdef COMPILER2
phh@3473 236 #define COMPILER_VARIANT "server"
phh@3473 237 #else
phh@3473 238 #define COMPILER_VARIANT "client"
phh@3473 239 #endif
never@3156 240
sla@4229 241
never@3156 242 void os::Bsd::initialize_system_info() {
never@3156 243 int mib[2];
never@3156 244 size_t len;
never@3156 245 int cpu_val;
brutisso@4468 246 julong mem_val;
never@3156 247
never@3156 248 /* get processors count via hw.ncpus sysctl */
never@3156 249 mib[0] = CTL_HW;
never@3156 250 mib[1] = HW_NCPU;
never@3156 251 len = sizeof(cpu_val);
never@3156 252 if (sysctl(mib, 2, &cpu_val, &len, NULL, 0) != -1 && cpu_val >= 1) {
brutisso@4468 253 assert(len == sizeof(cpu_val), "unexpected data size");
never@3156 254 set_processor_count(cpu_val);
never@3156 255 }
never@3156 256 else {
never@3156 257 set_processor_count(1); // fallback
never@3156 258 }
never@3156 259
brutisso@4468 260 /* get physical memory via hw.memsize sysctl (hw.memsize is used
brutisso@4468 261 * since it returns a 64 bit value)
never@3156 262 */
never@3156 263 mib[0] = CTL_HW;
dsamersoff@5830 264
dsamersoff@5830 265 #if defined (HW_MEMSIZE) // Apple
brutisso@4468 266 mib[1] = HW_MEMSIZE;
dsamersoff@5830 267 #elif defined(HW_PHYSMEM) // Most of BSD
dsamersoff@5830 268 mib[1] = HW_PHYSMEM;
dsamersoff@5830 269 #elif defined(HW_REALMEM) // Old FreeBSD
dsamersoff@5830 270 mib[1] = HW_REALMEM;
dsamersoff@5830 271 #else
dsamersoff@5830 272 #error No ways to get physmem
dsamersoff@5830 273 #endif
dsamersoff@5830 274
never@3156 275 len = sizeof(mem_val);
brutisso@4468 276 if (sysctl(mib, 2, &mem_val, &len, NULL, 0) != -1) {
brutisso@4468 277 assert(len == sizeof(mem_val), "unexpected data size");
never@3156 278 _physical_memory = mem_val;
brutisso@4468 279 } else {
never@3156 280 _physical_memory = 256*1024*1024; // fallback (XXXBSD?)
brutisso@4468 281 }
never@3156 282
never@3156 283 #ifdef __OpenBSD__
never@3156 284 {
never@3156 285 // limit _physical_memory memory view on OpenBSD since
never@3156 286 // datasize rlimit restricts us anyway.
never@3156 287 struct rlimit limits;
never@3156 288 getrlimit(RLIMIT_DATA, &limits);
never@3156 289 _physical_memory = MIN2(_physical_memory, (julong)limits.rlim_cur);
never@3156 290 }
never@3156 291 #endif
never@3156 292 }
never@3156 293
dcubed@3202 294 #ifdef __APPLE__
dcubed@3202 295 static const char *get_home() {
dcubed@3202 296 const char *home_dir = ::getenv("HOME");
dcubed@3202 297 if ((home_dir == NULL) || (*home_dir == '\0')) {
dcubed@3202 298 struct passwd *passwd_info = getpwuid(geteuid());
dcubed@3202 299 if (passwd_info != NULL) {
dcubed@3202 300 home_dir = passwd_info->pw_dir;
dcubed@3202 301 }
dcubed@3202 302 }
dcubed@3202 303
dcubed@3202 304 return home_dir;
dcubed@3202 305 }
dcubed@3202 306 #endif
dcubed@3202 307
never@3156 308 void os::init_system_properties_values() {
never@3156 309 // The next steps are taken in the product version:
never@3156 310 //
dcubed@4392 311 // Obtain the JAVA_HOME value from the location of libjvm.so.
never@3156 312 // This library should be located at:
dcubed@4392 313 // <JAVA_HOME>/jre/lib/<arch>/{client|server}/libjvm.so.
never@3156 314 //
never@3156 315 // If "/jre/lib/" appears at the right place in the path, then we
dcubed@4392 316 // assume libjvm.so is installed in a JDK and we use this path.
never@3156 317 //
never@3156 318 // Otherwise exit with message: "Could not create the Java virtual machine."
never@3156 319 //
never@3156 320 // The following extra steps are taken in the debugging version:
never@3156 321 //
never@3156 322 // If "/jre/lib/" does NOT appear at the right place in the path
never@3156 323 // instead of exit check for $JAVA_HOME environment variable.
never@3156 324 //
never@3156 325 // If it is defined and we are able to locate $JAVA_HOME/jre/lib/<arch>,
dcubed@4392 326 // then we append a fake suffix "hotspot/libjvm.so" to this path so
dcubed@4392 327 // it looks like libjvm.so is installed there
dcubed@4392 328 // <JAVA_HOME>/jre/lib/<arch>/hotspot/libjvm.so.
never@3156 329 //
never@3156 330 // Otherwise exit.
never@3156 331 //
never@3156 332 // Important note: if the location of libjvm.so changes this
never@3156 333 // code needs to be changed accordingly.
never@3156 334
goetz@6556 335 // See ld(1):
goetz@6556 336 // The linker uses the following search paths to locate required
goetz@6556 337 // shared libraries:
goetz@6556 338 // 1: ...
goetz@6556 339 // ...
goetz@6556 340 // 7: The default directories, normally /lib and /usr/lib.
never@3156 341 #ifndef DEFAULT_LIBPATH
never@3156 342 #define DEFAULT_LIBPATH "/lib:/usr/lib"
never@3156 343 #endif
never@3156 344
goetz@6556 345 // Base path of extensions installed on the system.
goetz@6556 346 #define SYS_EXT_DIR "/usr/java/packages"
never@3156 347 #define EXTENSIONS_DIR "/lib/ext"
never@3156 348 #define ENDORSED_DIR "/lib/endorsed"
goetz@6556 349
goetz@6556 350 #ifndef __APPLE__
goetz@6556 351
goetz@6556 352 // Buffer that fits several sprintfs.
goetz@6556 353 // Note that the space for the colon and the trailing null are provided
goetz@6556 354 // by the nulls included by the sizeof operator.
goetz@6556 355 const size_t bufsize =
goetz@6556 356 MAX3((size_t)MAXPATHLEN, // For dll_dir & friends.
goetz@6556 357 (size_t)MAXPATHLEN + sizeof(EXTENSIONS_DIR) + sizeof(SYS_EXT_DIR) + sizeof(EXTENSIONS_DIR), // extensions dir
goetz@6556 358 (size_t)MAXPATHLEN + sizeof(ENDORSED_DIR)); // endorsed dir
goetz@6556 359 char *buf = (char *)NEW_C_HEAP_ARRAY(char, bufsize, mtInternal);
goetz@6556 360
goetz@6556 361 // sysclasspath, java_home, dll_dir
goetz@6556 362 {
goetz@6556 363 char *pslash;
goetz@6556 364 os::jvm_path(buf, bufsize);
goetz@6556 365
goetz@6556 366 // Found the full path to libjvm.so.
goetz@6556 367 // Now cut the path to <java_home>/jre if we can.
goetz@6556 368 *(strrchr(buf, '/')) = '\0'; // Get rid of /libjvm.so.
goetz@6556 369 pslash = strrchr(buf, '/');
goetz@6556 370 if (pslash != NULL) {
goetz@6556 371 *pslash = '\0'; // Get rid of /{client|server|hotspot}.
goetz@6556 372 }
goetz@6556 373 Arguments::set_dll_dir(buf);
goetz@6556 374
goetz@6556 375 if (pslash != NULL) {
goetz@6556 376 pslash = strrchr(buf, '/');
goetz@6556 377 if (pslash != NULL) {
goetz@6556 378 *pslash = '\0'; // Get rid of /<arch>.
goetz@6556 379 pslash = strrchr(buf, '/');
goetz@6556 380 if (pslash != NULL) {
goetz@6556 381 *pslash = '\0'; // Get rid of /lib.
goetz@6556 382 }
goetz@6556 383 }
goetz@6556 384 }
goetz@6556 385 Arguments::set_java_home(buf);
goetz@6556 386 set_boot_path('/', ':');
goetz@6556 387 }
goetz@6556 388
goetz@6556 389 // Where to look for native libraries.
goetz@6556 390 //
goetz@6556 391 // Note: Due to a legacy implementation, most of the library path
goetz@6556 392 // is set in the launcher. This was to accomodate linking restrictions
goetz@6556 393 // on legacy Bsd implementations (which are no longer supported).
goetz@6556 394 // Eventually, all the library path setting will be done here.
goetz@6556 395 //
goetz@6556 396 // However, to prevent the proliferation of improperly built native
goetz@6556 397 // libraries, the new path component /usr/java/packages is added here.
goetz@6556 398 // Eventually, all the library path setting will be done here.
goetz@6556 399 {
goetz@6556 400 // Get the user setting of LD_LIBRARY_PATH, and prepended it. It
goetz@6556 401 // should always exist (until the legacy problem cited above is
goetz@6556 402 // addressed).
goetz@6556 403 const char *v = ::getenv("LD_LIBRARY_PATH");
goetz@6556 404 const char *v_colon = ":";
goetz@6556 405 if (v == NULL) { v = ""; v_colon = ""; }
goetz@6556 406 // That's +1 for the colon and +1 for the trailing '\0'.
goetz@6556 407 char *ld_library_path = (char *)NEW_C_HEAP_ARRAY(char,
goetz@6556 408 strlen(v) + 1 +
goetz@6556 409 sizeof(SYS_EXT_DIR) + sizeof("/lib/") + strlen(cpu_arch) + sizeof(DEFAULT_LIBPATH) + 1,
goetz@6556 410 mtInternal);
goetz@6556 411 sprintf(ld_library_path, "%s%s" SYS_EXT_DIR "/lib/%s:" DEFAULT_LIBPATH, v, v_colon, cpu_arch);
goetz@6556 412 Arguments::set_library_path(ld_library_path);
goetz@6556 413 FREE_C_HEAP_ARRAY(char, ld_library_path, mtInternal);
goetz@6556 414 }
goetz@6556 415
goetz@6556 416 // Extensions directories.
goetz@6556 417 sprintf(buf, "%s" EXTENSIONS_DIR ":" SYS_EXT_DIR EXTENSIONS_DIR, Arguments::get_java_home());
goetz@6556 418 Arguments::set_ext_dirs(buf);
goetz@6556 419
goetz@6556 420 // Endorsed standards default directory.
goetz@6556 421 sprintf(buf, "%s" ENDORSED_DIR, Arguments::get_java_home());
goetz@6556 422 Arguments::set_endorsed_dirs(buf);
goetz@6556 423
goetz@6556 424 FREE_C_HEAP_ARRAY(char, buf, mtInternal);
goetz@6556 425
goetz@6556 426 #else // __APPLE__
goetz@6556 427
dcubed@3202 428 #define SYS_EXTENSIONS_DIR "/Library/Java/Extensions"
dcubed@3202 429 #define SYS_EXTENSIONS_DIRS SYS_EXTENSIONS_DIR ":/Network" SYS_EXTENSIONS_DIR ":/System" SYS_EXTENSIONS_DIR ":/usr/lib/java"
goetz@6556 430
goetz@6556 431 const char *user_home_dir = get_home();
goetz@6556 432 // The null in SYS_EXTENSIONS_DIRS counts for the size of the colon after user_home_dir.
goetz@6556 433 size_t system_ext_size = strlen(user_home_dir) + sizeof(SYS_EXTENSIONS_DIR) +
goetz@6556 434 sizeof(SYS_EXTENSIONS_DIRS);
goetz@6556 435
goetz@6556 436 // Buffer that fits several sprintfs.
goetz@6556 437 // Note that the space for the colon and the trailing null are provided
goetz@6556 438 // by the nulls included by the sizeof operator.
goetz@6556 439 const size_t bufsize =
goetz@6556 440 MAX3((size_t)MAXPATHLEN, // for dll_dir & friends.
goetz@6556 441 (size_t)MAXPATHLEN + sizeof(EXTENSIONS_DIR) + system_ext_size, // extensions dir
goetz@6556 442 (size_t)MAXPATHLEN + sizeof(ENDORSED_DIR)); // endorsed dir
goetz@6556 443 char *buf = (char *)NEW_C_HEAP_ARRAY(char, bufsize, mtInternal);
goetz@6556 444
goetz@6556 445 // sysclasspath, java_home, dll_dir
never@3156 446 {
goetz@6556 447 char *pslash;
goetz@6556 448 os::jvm_path(buf, bufsize);
goetz@6556 449
goetz@6556 450 // Found the full path to libjvm.so.
goetz@6556 451 // Now cut the path to <java_home>/jre if we can.
goetz@6556 452 *(strrchr(buf, '/')) = '\0'; // Get rid of /libjvm.so.
goetz@6556 453 pslash = strrchr(buf, '/');
goetz@6556 454 if (pslash != NULL) {
goetz@6556 455 *pslash = '\0'; // Get rid of /{client|server|hotspot}.
never@3156 456 }
goetz@6556 457 Arguments::set_dll_dir(buf);
goetz@6556 458
goetz@6556 459 if (pslash != NULL) {
goetz@6556 460 pslash = strrchr(buf, '/');
goetz@6556 461 if (pslash != NULL) {
goetz@6556 462 *pslash = '\0'; // Get rid of /lib.
goetz@6556 463 }
never@3156 464 }
goetz@6556 465 Arguments::set_java_home(buf);
goetz@6556 466 set_boot_path('/', ':');
never@3156 467 }
never@3156 468
goetz@6556 469 // Where to look for native libraries.
goetz@6556 470 //
goetz@6556 471 // Note: Due to a legacy implementation, most of the library path
goetz@6556 472 // is set in the launcher. This was to accomodate linking restrictions
goetz@6556 473 // on legacy Bsd implementations (which are no longer supported).
goetz@6556 474 // Eventually, all the library path setting will be done here.
goetz@6556 475 //
goetz@6556 476 // However, to prevent the proliferation of improperly built native
goetz@6556 477 // libraries, the new path component /usr/java/packages is added here.
goetz@6556 478 // Eventually, all the library path setting will be done here.
goetz@6556 479 {
goetz@6556 480 // Get the user setting of LD_LIBRARY_PATH, and prepended it. It
goetz@6556 481 // should always exist (until the legacy problem cited above is
goetz@6556 482 // addressed).
goetz@6556 483 // Prepend the default path with the JAVA_LIBRARY_PATH so that the app launcher code
goetz@6556 484 // can specify a directory inside an app wrapper
goetz@6556 485 const char *l = ::getenv("JAVA_LIBRARY_PATH");
goetz@6556 486 const char *l_colon = ":";
goetz@6556 487 if (l == NULL) { l = ""; l_colon = ""; }
goetz@6556 488
goetz@6556 489 const char *v = ::getenv("DYLD_LIBRARY_PATH");
goetz@6556 490 const char *v_colon = ":";
goetz@6556 491 if (v == NULL) { v = ""; v_colon = ""; }
goetz@6556 492
goetz@6556 493 // Apple's Java6 has "." at the beginning of java.library.path.
goetz@6556 494 // OpenJDK on Windows has "." at the end of java.library.path.
goetz@6556 495 // OpenJDK on Linux and Solaris don't have "." in java.library.path
goetz@6556 496 // at all. To ease the transition from Apple's Java6 to OpenJDK7,
goetz@6556 497 // "." is appended to the end of java.library.path. Yes, this
goetz@6556 498 // could cause a change in behavior, but Apple's Java6 behavior
goetz@6556 499 // can be achieved by putting "." at the beginning of the
goetz@6556 500 // JAVA_LIBRARY_PATH environment variable.
goetz@6556 501 char *ld_library_path = (char *)NEW_C_HEAP_ARRAY(char,
goetz@6556 502 strlen(v) + 1 + strlen(l) + 1 +
goetz@6556 503 system_ext_size + 3,
goetz@6556 504 mtInternal);
goetz@6556 505 sprintf(ld_library_path, "%s%s%s%s%s" SYS_EXTENSIONS_DIR ":" SYS_EXTENSIONS_DIRS ":.",
goetz@6556 506 v, v_colon, l, l_colon, user_home_dir);
goetz@6556 507 Arguments::set_library_path(ld_library_path);
goetz@6556 508 FREE_C_HEAP_ARRAY(char, ld_library_path, mtInternal);
goetz@6556 509 }
goetz@6556 510
goetz@6556 511 // Extensions directories.
goetz@6556 512 //
goetz@6556 513 // Note that the space for the colon and the trailing null are provided
goetz@6556 514 // by the nulls included by the sizeof operator (so actually one byte more
goetz@6556 515 // than necessary is allocated).
goetz@6556 516 sprintf(buf, "%s" SYS_EXTENSIONS_DIR ":%s" EXTENSIONS_DIR ":" SYS_EXTENSIONS_DIRS,
goetz@6556 517 user_home_dir, Arguments::get_java_home());
goetz@6556 518 Arguments::set_ext_dirs(buf);
goetz@6556 519
goetz@6556 520 // Endorsed standards default directory.
goetz@6556 521 sprintf(buf, "%s" ENDORSED_DIR, Arguments::get_java_home());
goetz@6556 522 Arguments::set_endorsed_dirs(buf);
goetz@6556 523
goetz@6556 524 FREE_C_HEAP_ARRAY(char, buf, mtInternal);
goetz@6556 525
dcubed@3202 526 #undef SYS_EXTENSIONS_DIR
goetz@6556 527 #undef SYS_EXTENSIONS_DIRS
goetz@6556 528
goetz@6556 529 #endif // __APPLE__
goetz@6556 530
goetz@6556 531 #undef SYS_EXT_DIR
never@3156 532 #undef EXTENSIONS_DIR
never@3156 533 #undef ENDORSED_DIR
never@3156 534 }
never@3156 535
never@3156 536 ////////////////////////////////////////////////////////////////////////////////
never@3156 537 // breakpoint support
never@3156 538
never@3156 539 void os::breakpoint() {
never@3156 540 BREAKPOINT;
never@3156 541 }
never@3156 542
never@3156 543 extern "C" void breakpoint() {
never@3156 544 // use debugger to set breakpoint here
never@3156 545 }
never@3156 546
never@3156 547 ////////////////////////////////////////////////////////////////////////////////
never@3156 548 // signal support
never@3156 549
never@3156 550 debug_only(static bool signal_sets_initialized = false);
never@3156 551 static sigset_t unblocked_sigs, vm_sigs, allowdebug_blocked_sigs;
never@3156 552
never@3156 553 bool os::Bsd::is_sig_ignored(int sig) {
never@3156 554 struct sigaction oact;
never@3156 555 sigaction(sig, (struct sigaction*)NULL, &oact);
never@3156 556 void* ohlr = oact.sa_sigaction ? CAST_FROM_FN_PTR(void*, oact.sa_sigaction)
never@3156 557 : CAST_FROM_FN_PTR(void*, oact.sa_handler);
never@3156 558 if (ohlr == CAST_FROM_FN_PTR(void*, SIG_IGN))
never@3156 559 return true;
never@3156 560 else
never@3156 561 return false;
never@3156 562 }
never@3156 563
never@3156 564 void os::Bsd::signal_sets_init() {
never@3156 565 // Should also have an assertion stating we are still single-threaded.
never@3156 566 assert(!signal_sets_initialized, "Already initialized");
never@3156 567 // Fill in signals that are necessarily unblocked for all threads in
never@3156 568 // the VM. Currently, we unblock the following signals:
never@3156 569 // SHUTDOWN{1,2,3}_SIGNAL: for shutdown hooks support (unless over-ridden
never@3156 570 // by -Xrs (=ReduceSignalUsage));
never@3156 571 // BREAK_SIGNAL which is unblocked only by the VM thread and blocked by all
never@3156 572 // other threads. The "ReduceSignalUsage" boolean tells us not to alter
never@3156 573 // the dispositions or masks wrt these signals.
never@3156 574 // Programs embedding the VM that want to use the above signals for their
never@3156 575 // own purposes must, at this time, use the "-Xrs" option to prevent
never@3156 576 // interference with shutdown hooks and BREAK_SIGNAL thread dumping.
never@3156 577 // (See bug 4345157, and other related bugs).
never@3156 578 // In reality, though, unblocking these signals is really a nop, since
never@3156 579 // these signals are not blocked by default.
never@3156 580 sigemptyset(&unblocked_sigs);
never@3156 581 sigemptyset(&allowdebug_blocked_sigs);
never@3156 582 sigaddset(&unblocked_sigs, SIGILL);
never@3156 583 sigaddset(&unblocked_sigs, SIGSEGV);
never@3156 584 sigaddset(&unblocked_sigs, SIGBUS);
never@3156 585 sigaddset(&unblocked_sigs, SIGFPE);
never@3156 586 sigaddset(&unblocked_sigs, SR_signum);
never@3156 587
never@3156 588 if (!ReduceSignalUsage) {
never@3156 589 if (!os::Bsd::is_sig_ignored(SHUTDOWN1_SIGNAL)) {
never@3156 590 sigaddset(&unblocked_sigs, SHUTDOWN1_SIGNAL);
never@3156 591 sigaddset(&allowdebug_blocked_sigs, SHUTDOWN1_SIGNAL);
never@3156 592 }
never@3156 593 if (!os::Bsd::is_sig_ignored(SHUTDOWN2_SIGNAL)) {
never@3156 594 sigaddset(&unblocked_sigs, SHUTDOWN2_SIGNAL);
never@3156 595 sigaddset(&allowdebug_blocked_sigs, SHUTDOWN2_SIGNAL);
never@3156 596 }
never@3156 597 if (!os::Bsd::is_sig_ignored(SHUTDOWN3_SIGNAL)) {
never@3156 598 sigaddset(&unblocked_sigs, SHUTDOWN3_SIGNAL);
never@3156 599 sigaddset(&allowdebug_blocked_sigs, SHUTDOWN3_SIGNAL);
never@3156 600 }
never@3156 601 }
never@3156 602 // Fill in signals that are blocked by all but the VM thread.
never@3156 603 sigemptyset(&vm_sigs);
never@3156 604 if (!ReduceSignalUsage)
never@3156 605 sigaddset(&vm_sigs, BREAK_SIGNAL);
never@3156 606 debug_only(signal_sets_initialized = true);
never@3156 607
never@3156 608 }
never@3156 609
never@3156 610 // These are signals that are unblocked while a thread is running Java.
never@3156 611 // (For some reason, they get blocked by default.)
never@3156 612 sigset_t* os::Bsd::unblocked_signals() {
never@3156 613 assert(signal_sets_initialized, "Not initialized");
never@3156 614 return &unblocked_sigs;
never@3156 615 }
never@3156 616
never@3156 617 // These are the signals that are blocked while a (non-VM) thread is
never@3156 618 // running Java. Only the VM thread handles these signals.
never@3156 619 sigset_t* os::Bsd::vm_signals() {
never@3156 620 assert(signal_sets_initialized, "Not initialized");
never@3156 621 return &vm_sigs;
never@3156 622 }
never@3156 623
never@3156 624 // These are signals that are blocked during cond_wait to allow debugger in
never@3156 625 sigset_t* os::Bsd::allowdebug_blocked_signals() {
never@3156 626 assert(signal_sets_initialized, "Not initialized");
never@3156 627 return &allowdebug_blocked_sigs;
never@3156 628 }
never@3156 629
never@3156 630 void os::Bsd::hotspot_sigmask(Thread* thread) {
never@3156 631
never@3156 632 //Save caller's signal mask before setting VM signal mask
never@3156 633 sigset_t caller_sigmask;
never@3156 634 pthread_sigmask(SIG_BLOCK, NULL, &caller_sigmask);
never@3156 635
never@3156 636 OSThread* osthread = thread->osthread();
never@3156 637 osthread->set_caller_sigmask(caller_sigmask);
never@3156 638
never@3156 639 pthread_sigmask(SIG_UNBLOCK, os::Bsd::unblocked_signals(), NULL);
never@3156 640
never@3156 641 if (!ReduceSignalUsage) {
never@3156 642 if (thread->is_VM_thread()) {
never@3156 643 // Only the VM thread handles BREAK_SIGNAL ...
never@3156 644 pthread_sigmask(SIG_UNBLOCK, vm_signals(), NULL);
never@3156 645 } else {
never@3156 646 // ... all other threads block BREAK_SIGNAL
never@3156 647 pthread_sigmask(SIG_BLOCK, vm_signals(), NULL);
never@3156 648 }
never@3156 649 }
never@3156 650 }
never@3156 651
never@3156 652
never@3156 653 //////////////////////////////////////////////////////////////////////////////
never@3156 654 // create new thread
never@3156 655
never@3156 656 // check if it's safe to start a new thread
never@3156 657 static bool _thread_safety_check(Thread* thread) {
sla@4229 658 return true;
never@3156 659 }
never@3156 660
dcubed@3202 661 #ifdef __APPLE__
dcubed@3202 662 // library handle for calling objc_registerThreadWithCollector()
dcubed@3202 663 // without static linking to the libobjc library
dcubed@3202 664 #define OBJC_LIB "/usr/lib/libobjc.dylib"
dcubed@3202 665 #define OBJC_GCREGISTER "objc_registerThreadWithCollector"
dcubed@3202 666 typedef void (*objc_registerThreadWithCollector_t)();
dcubed@3202 667 extern "C" objc_registerThreadWithCollector_t objc_registerThreadWithCollectorFunction;
dcubed@3202 668 objc_registerThreadWithCollector_t objc_registerThreadWithCollectorFunction = NULL;
dcubed@3202 669 #endif
dcubed@3202 670
sla@4564 671 #ifdef __APPLE__
sla@5563 672 static uint64_t locate_unique_thread_id(mach_port_t mach_thread_port) {
sla@4564 673 // Additional thread_id used to correlate threads in SA
sla@4564 674 thread_identifier_info_data_t m_ident_info;
sla@4564 675 mach_msg_type_number_t count = THREAD_IDENTIFIER_INFO_COUNT;
sla@4564 676
sla@5563 677 thread_info(mach_thread_port, THREAD_IDENTIFIER_INFO,
sla@4564 678 (thread_info_t) &m_ident_info, &count);
sla@5563 679
sla@4564 680 return m_ident_info.thread_id;
sla@4564 681 }
sla@4564 682 #endif
sla@4564 683
never@3156 684 // Thread start routine for all newly created threads
never@3156 685 static void *java_start(Thread *thread) {
never@3156 686 // Try to randomize the cache line index of hot stack frames.
never@3156 687 // This helps when threads of the same stack traces evict each other's
never@3156 688 // cache lines. The threads can be either from the same JVM instance, or
never@3156 689 // from different JVM instances. The benefit is especially true for
never@3156 690 // processors with hyperthreading technology.
never@3156 691 static int counter = 0;
never@3156 692 int pid = os::current_process_id();
never@3156 693 alloca(((pid ^ counter++) & 7) * 128);
never@3156 694
never@3156 695 ThreadLocalStorage::set_thread(thread);
never@3156 696
never@3156 697 OSThread* osthread = thread->osthread();
never@3156 698 Monitor* sync = osthread->startThread_lock();
never@3156 699
never@3156 700 // non floating stack BsdThreads needs extra check, see above
never@3156 701 if (!_thread_safety_check(thread)) {
never@3156 702 // notify parent thread
never@3156 703 MutexLockerEx ml(sync, Mutex::_no_safepoint_check_flag);
never@3156 704 osthread->set_state(ZOMBIE);
never@3156 705 sync->notify_all();
never@3156 706 return NULL;
never@3156 707 }
never@3156 708
dsamersoff@5834 709 osthread->set_thread_id(os::Bsd::gettid());
dsamersoff@5834 710
sla@3587 711 #ifdef __APPLE__
dsamersoff@5834 712 uint64_t unique_thread_id = locate_unique_thread_id(osthread->thread_id());
sla@5563 713 guarantee(unique_thread_id != 0, "unique thread id was not found");
sla@5563 714 osthread->set_unique_thread_id(unique_thread_id);
sla@3587 715 #endif
never@3156 716 // initialize signal mask for this thread
never@3156 717 os::Bsd::hotspot_sigmask(thread);
never@3156 718
never@3156 719 // initialize floating point control register
never@3156 720 os::Bsd::init_thread_fpu_state();
never@3156 721
dcubed@3202 722 #ifdef __APPLE__
dcubed@3202 723 // register thread with objc gc
dcubed@3202 724 if (objc_registerThreadWithCollectorFunction != NULL) {
dcubed@3202 725 objc_registerThreadWithCollectorFunction();
dcubed@3202 726 }
dcubed@3202 727 #endif
dcubed@3202 728
never@3156 729 // handshaking with parent thread
never@3156 730 {
never@3156 731 MutexLockerEx ml(sync, Mutex::_no_safepoint_check_flag);
never@3156 732
never@3156 733 // notify parent thread
never@3156 734 osthread->set_state(INITIALIZED);
never@3156 735 sync->notify_all();
never@3156 736
never@3156 737 // wait until os::start_thread()
never@3156 738 while (osthread->get_state() == INITIALIZED) {
never@3156 739 sync->wait(Mutex::_no_safepoint_check_flag);
never@3156 740 }
never@3156 741 }
never@3156 742
never@3156 743 // call one more level start routine
never@3156 744 thread->run();
never@3156 745
never@3156 746 return 0;
never@3156 747 }
never@3156 748
never@3156 749 bool os::create_thread(Thread* thread, ThreadType thr_type, size_t stack_size) {
never@3156 750 assert(thread->osthread() == NULL, "caller responsible");
never@3156 751
never@3156 752 // Allocate the OSThread object
never@3156 753 OSThread* osthread = new OSThread(NULL, NULL);
never@3156 754 if (osthread == NULL) {
never@3156 755 return false;
never@3156 756 }
never@3156 757
never@3156 758 // set the correct thread state
never@3156 759 osthread->set_thread_type(thr_type);
never@3156 760
never@3156 761 // Initial state is ALLOCATED but not INITIALIZED
never@3156 762 osthread->set_state(ALLOCATED);
never@3156 763
never@3156 764 thread->set_osthread(osthread);
never@3156 765
never@3156 766 // init thread attributes
never@3156 767 pthread_attr_t attr;
never@3156 768 pthread_attr_init(&attr);
never@3156 769 pthread_attr_setdetachstate(&attr, PTHREAD_CREATE_DETACHED);
never@3156 770
never@3156 771 // stack size
never@3156 772 if (os::Bsd::supports_variable_stack_size()) {
never@3156 773 // calculate stack size if it's not specified by caller
never@3156 774 if (stack_size == 0) {
never@3156 775 stack_size = os::Bsd::default_stack_size(thr_type);
never@3156 776
never@3156 777 switch (thr_type) {
never@3156 778 case os::java_thread:
never@3156 779 // Java threads use ThreadStackSize which default value can be
never@3156 780 // changed with the flag -Xss
never@3156 781 assert (JavaThread::stack_size_at_create() > 0, "this should be set");
never@3156 782 stack_size = JavaThread::stack_size_at_create();
never@3156 783 break;
never@3156 784 case os::compiler_thread:
never@3156 785 if (CompilerThreadStackSize > 0) {
never@3156 786 stack_size = (size_t)(CompilerThreadStackSize * K);
never@3156 787 break;
never@3156 788 } // else fall through:
never@3156 789 // use VMThreadStackSize if CompilerThreadStackSize is not defined
never@3156 790 case os::vm_thread:
never@3156 791 case os::pgc_thread:
never@3156 792 case os::cgc_thread:
never@3156 793 case os::watcher_thread:
never@3156 794 if (VMThreadStackSize > 0) stack_size = (size_t)(VMThreadStackSize * K);
never@3156 795 break;
never@3156 796 }
never@3156 797 }
never@3156 798
never@3156 799 stack_size = MAX2(stack_size, os::Bsd::min_stack_allowed);
never@3156 800 pthread_attr_setstacksize(&attr, stack_size);
never@3156 801 } else {
never@3156 802 // let pthread_create() pick the default value.
never@3156 803 }
never@3156 804
never@3156 805 ThreadState state;
never@3156 806
never@3156 807 {
never@3156 808 pthread_t tid;
never@3156 809 int ret = pthread_create(&tid, &attr, (void* (*)(void*)) java_start, thread);
never@3156 810
never@3156 811 pthread_attr_destroy(&attr);
never@3156 812
never@3156 813 if (ret != 0) {
never@3156 814 if (PrintMiscellaneous && (Verbose || WizardMode)) {
never@3156 815 perror("pthread_create()");
never@3156 816 }
never@3156 817 // Need to clean up stuff we've allocated so far
never@3156 818 thread->set_osthread(NULL);
never@3156 819 delete osthread;
never@3156 820 return false;
never@3156 821 }
never@3156 822
never@3156 823 // Store pthread info into the OSThread
never@3156 824 osthread->set_pthread_id(tid);
never@3156 825
never@3156 826 // Wait until child thread is either initialized or aborted
never@3156 827 {
never@3156 828 Monitor* sync_with_child = osthread->startThread_lock();
never@3156 829 MutexLockerEx ml(sync_with_child, Mutex::_no_safepoint_check_flag);
never@3156 830 while ((state = osthread->get_state()) == ALLOCATED) {
never@3156 831 sync_with_child->wait(Mutex::_no_safepoint_check_flag);
never@3156 832 }
never@3156 833 }
never@3156 834
never@3156 835 }
never@3156 836
never@3156 837 // Aborted due to thread limit being reached
never@3156 838 if (state == ZOMBIE) {
never@3156 839 thread->set_osthread(NULL);
never@3156 840 delete osthread;
never@3156 841 return false;
never@3156 842 }
never@3156 843
never@3156 844 // The thread is returned suspended (in state INITIALIZED),
never@3156 845 // and is started higher up in the call chain
never@3156 846 assert(state == INITIALIZED, "race condition");
never@3156 847 return true;
never@3156 848 }
never@3156 849
never@3156 850 /////////////////////////////////////////////////////////////////////////////
never@3156 851 // attach existing thread
never@3156 852
never@3156 853 // bootstrap the main thread
never@3156 854 bool os::create_main_thread(JavaThread* thread) {
never@3156 855 assert(os::Bsd::_main_thread == pthread_self(), "should be called inside main thread");
never@3156 856 return create_attached_thread(thread);
never@3156 857 }
never@3156 858
never@3156 859 bool os::create_attached_thread(JavaThread* thread) {
never@3156 860 #ifdef ASSERT
never@3156 861 thread->verify_not_published();
never@3156 862 #endif
never@3156 863
never@3156 864 // Allocate the OSThread object
never@3156 865 OSThread* osthread = new OSThread(NULL, NULL);
never@3156 866
never@3156 867 if (osthread == NULL) {
never@3156 868 return false;
never@3156 869 }
never@3156 870
dsamersoff@5834 871 osthread->set_thread_id(os::Bsd::gettid());
dsamersoff@5834 872
never@3156 873 // Store pthread info into the OSThread
sla@3587 874 #ifdef __APPLE__
dsamersoff@5834 875 uint64_t unique_thread_id = locate_unique_thread_id(osthread->thread_id());
sla@5563 876 guarantee(unique_thread_id != 0, "just checking");
sla@5563 877 osthread->set_unique_thread_id(unique_thread_id);
sla@3587 878 #endif
never@3156 879 osthread->set_pthread_id(::pthread_self());
never@3156 880
never@3156 881 // initialize floating point control register
never@3156 882 os::Bsd::init_thread_fpu_state();
never@3156 883
never@3156 884 // Initial thread state is RUNNABLE
never@3156 885 osthread->set_state(RUNNABLE);
never@3156 886
never@3156 887 thread->set_osthread(osthread);
never@3156 888
never@3156 889 // initialize signal mask for this thread
never@3156 890 // and save the caller's signal mask
never@3156 891 os::Bsd::hotspot_sigmask(thread);
never@3156 892
never@3156 893 return true;
never@3156 894 }
never@3156 895
never@3156 896 void os::pd_start_thread(Thread* thread) {
never@3156 897 OSThread * osthread = thread->osthread();
never@3156 898 assert(osthread->get_state() != INITIALIZED, "just checking");
never@3156 899 Monitor* sync_with_child = osthread->startThread_lock();
never@3156 900 MutexLockerEx ml(sync_with_child, Mutex::_no_safepoint_check_flag);
never@3156 901 sync_with_child->notify();
never@3156 902 }
never@3156 903
never@3156 904 // Free Bsd resources related to the OSThread
never@3156 905 void os::free_thread(OSThread* osthread) {
never@3156 906 assert(osthread != NULL, "osthread not set");
never@3156 907
never@3156 908 if (Thread::current()->osthread() == osthread) {
never@3156 909 // Restore caller's signal mask
never@3156 910 sigset_t sigmask = osthread->caller_sigmask();
never@3156 911 pthread_sigmask(SIG_SETMASK, &sigmask, NULL);
never@3156 912 }
never@3156 913
never@3156 914 delete osthread;
never@3156 915 }
never@3156 916
never@3156 917 //////////////////////////////////////////////////////////////////////////////
never@3156 918 // thread local storage
never@3156 919
kevinw@6553 920 // Restore the thread pointer if the destructor is called. This is in case
kevinw@6553 921 // someone from JNI code sets up a destructor with pthread_key_create to run
kevinw@6553 922 // detachCurrentThread on thread death. Unless we restore the thread pointer we
kevinw@6553 923 // will hang or crash. When detachCurrentThread is called the key will be set
kevinw@6553 924 // to null and we will not be called again. If detachCurrentThread is never
kevinw@6553 925 // called we could loop forever depending on the pthread implementation.
kevinw@6553 926 static void restore_thread_pointer(void* p) {
kevinw@6553 927 Thread* thread = (Thread*) p;
kevinw@6553 928 os::thread_local_storage_at_put(ThreadLocalStorage::thread_index(), thread);
kevinw@6553 929 }
kevinw@6553 930
never@3156 931 int os::allocate_thread_local_storage() {
never@3156 932 pthread_key_t key;
kevinw@6553 933 int rslt = pthread_key_create(&key, restore_thread_pointer);
never@3156 934 assert(rslt == 0, "cannot allocate thread local storage");
never@3156 935 return (int)key;
never@3156 936 }
never@3156 937
never@3156 938 // Note: This is currently not used by VM, as we don't destroy TLS key
never@3156 939 // on VM exit.
never@3156 940 void os::free_thread_local_storage(int index) {
never@3156 941 int rslt = pthread_key_delete((pthread_key_t)index);
never@3156 942 assert(rslt == 0, "invalid index");
never@3156 943 }
never@3156 944
never@3156 945 void os::thread_local_storage_at_put(int index, void* value) {
never@3156 946 int rslt = pthread_setspecific((pthread_key_t)index, value);
never@3156 947 assert(rslt == 0, "pthread_setspecific failed");
never@3156 948 }
never@3156 949
never@3156 950 extern "C" Thread* get_thread() {
never@3156 951 return ThreadLocalStorage::thread();
never@3156 952 }
never@3156 953
never@3156 954
never@3156 955 ////////////////////////////////////////////////////////////////////////////////
never@3156 956 // time support
never@3156 957
never@3156 958 // Time since start-up in seconds to a fine granularity.
never@3156 959 // Used by VMSelfDestructTimer and the MemProfiler.
never@3156 960 double os::elapsedTime() {
never@3156 961
jbachorik@6026 962 return ((double)os::elapsed_counter()) / os::elapsed_frequency();
never@3156 963 }
never@3156 964
never@3156 965 jlong os::elapsed_counter() {
jbachorik@6026 966 return javaTimeNanos() - initial_time_count;
never@3156 967 }
never@3156 968
never@3156 969 jlong os::elapsed_frequency() {
jbachorik@6026 970 return NANOSECS_PER_SEC; // nanosecond resolution
never@3156 971 }
never@3156 972
tschatzl@5204 973 bool os::supports_vtime() { return true; }
never@3156 974 bool os::enable_vtime() { return false; }
never@3156 975 bool os::vtime_enabled() { return false; }
tschatzl@5204 976
never@3156 977 double os::elapsedVTime() {
never@3156 978 // better than nothing, but not much
never@3156 979 return elapsedTime();
never@3156 980 }
never@3156 981
never@3156 982 jlong os::javaTimeMillis() {
never@3156 983 timeval time;
never@3156 984 int status = gettimeofday(&time, NULL);
never@3156 985 assert(status != -1, "bsd error");
never@3156 986 return jlong(time.tv_sec) * 1000 + jlong(time.tv_usec / 1000);
never@3156 987 }
never@3156 988
never@3156 989 #ifndef CLOCK_MONOTONIC
never@3156 990 #define CLOCK_MONOTONIC (1)
never@3156 991 #endif
never@3156 992
never@3156 993 #ifdef __APPLE__
never@3156 994 void os::Bsd::clock_init() {
never@3156 995 // XXXDARWIN: Investigate replacement monotonic clock
never@3156 996 }
sla@4229 997 #else
never@3156 998 void os::Bsd::clock_init() {
never@3156 999 struct timespec res;
never@3156 1000 struct timespec tp;
never@3156 1001 if (::clock_getres(CLOCK_MONOTONIC, &res) == 0 &&
never@3156 1002 ::clock_gettime(CLOCK_MONOTONIC, &tp) == 0) {
never@3156 1003 // yes, monotonic clock is supported
never@3156 1004 _clock_gettime = ::clock_gettime;
never@3156 1005 }
never@3156 1006 }
never@3156 1007 #endif
never@3156 1008
never@3156 1009
never@3156 1010 jlong os::javaTimeNanos() {
never@3156 1011 if (Bsd::supports_monotonic_clock()) {
never@3156 1012 struct timespec tp;
never@3156 1013 int status = Bsd::clock_gettime(CLOCK_MONOTONIC, &tp);
never@3156 1014 assert(status == 0, "gettime error");
never@3156 1015 jlong result = jlong(tp.tv_sec) * (1000 * 1000 * 1000) + jlong(tp.tv_nsec);
never@3156 1016 return result;
never@3156 1017 } else {
never@3156 1018 timeval time;
never@3156 1019 int status = gettimeofday(&time, NULL);
never@3156 1020 assert(status != -1, "bsd error");
never@3156 1021 jlong usecs = jlong(time.tv_sec) * (1000 * 1000) + jlong(time.tv_usec);
never@3156 1022 return 1000 * usecs;
never@3156 1023 }
never@3156 1024 }
never@3156 1025
never@3156 1026 void os::javaTimeNanos_info(jvmtiTimerInfo *info_ptr) {
never@3156 1027 if (Bsd::supports_monotonic_clock()) {
never@3156 1028 info_ptr->max_value = ALL_64_BITS;
never@3156 1029
never@3156 1030 // CLOCK_MONOTONIC - amount of time since some arbitrary point in the past
never@3156 1031 info_ptr->may_skip_backward = false; // not subject to resetting or drifting
never@3156 1032 info_ptr->may_skip_forward = false; // not subject to resetting or drifting
never@3156 1033 } else {
never@3156 1034 // gettimeofday - based on time in seconds since the Epoch thus does not wrap
never@3156 1035 info_ptr->max_value = ALL_64_BITS;
never@3156 1036
never@3156 1037 // gettimeofday is a real time clock so it skips
never@3156 1038 info_ptr->may_skip_backward = true;
never@3156 1039 info_ptr->may_skip_forward = true;
never@3156 1040 }
never@3156 1041
never@3156 1042 info_ptr->kind = JVMTI_TIMER_ELAPSED; // elapsed not CPU time
never@3156 1043 }
never@3156 1044
never@3156 1045 // Return the real, user, and system times in seconds from an
never@3156 1046 // arbitrary fixed point in the past.
never@3156 1047 bool os::getTimesSecs(double* process_real_time,
never@3156 1048 double* process_user_time,
never@3156 1049 double* process_system_time) {
never@3156 1050 struct tms ticks;
never@3156 1051 clock_t real_ticks = times(&ticks);
never@3156 1052
never@3156 1053 if (real_ticks == (clock_t) (-1)) {
never@3156 1054 return false;
never@3156 1055 } else {
never@3156 1056 double ticks_per_second = (double) clock_tics_per_sec;
never@3156 1057 *process_user_time = ((double) ticks.tms_utime) / ticks_per_second;
never@3156 1058 *process_system_time = ((double) ticks.tms_stime) / ticks_per_second;
never@3156 1059 *process_real_time = ((double) real_ticks) / ticks_per_second;
never@3156 1060
never@3156 1061 return true;
never@3156 1062 }
never@3156 1063 }
never@3156 1064
never@3156 1065
never@3156 1066 char * os::local_time_string(char *buf, size_t buflen) {
never@3156 1067 struct tm t;
never@3156 1068 time_t long_time;
never@3156 1069 time(&long_time);
never@3156 1070 localtime_r(&long_time, &t);
never@3156 1071 jio_snprintf(buf, buflen, "%d-%02d-%02d %02d:%02d:%02d",
never@3156 1072 t.tm_year + 1900, t.tm_mon + 1, t.tm_mday,
never@3156 1073 t.tm_hour, t.tm_min, t.tm_sec);
never@3156 1074 return buf;
never@3156 1075 }
never@3156 1076
never@3156 1077 struct tm* os::localtime_pd(const time_t* clock, struct tm* res) {
never@3156 1078 return localtime_r(clock, res);
never@3156 1079 }
never@3156 1080
never@3156 1081 ////////////////////////////////////////////////////////////////////////////////
never@3156 1082 // runtime exit support
never@3156 1083
never@3156 1084 // Note: os::shutdown() might be called very early during initialization, or
never@3156 1085 // called from signal handler. Before adding something to os::shutdown(), make
never@3156 1086 // sure it is async-safe and can handle partially initialized VM.
never@3156 1087 void os::shutdown() {
never@3156 1088
never@3156 1089 // allow PerfMemory to attempt cleanup of any persistent resources
never@3156 1090 perfMemory_exit();
never@3156 1091
never@3156 1092 // needs to remove object in file system
never@3156 1093 AttachListener::abort();
never@3156 1094
never@3156 1095 // flush buffered output, finish log files
never@3156 1096 ostream_abort();
never@3156 1097
never@3156 1098 // Check for abort hook
never@3156 1099 abort_hook_t abort_hook = Arguments::abort_hook();
never@3156 1100 if (abort_hook != NULL) {
never@3156 1101 abort_hook();
never@3156 1102 }
never@3156 1103
never@3156 1104 }
never@3156 1105
never@3156 1106 // Note: os::abort() might be called very early during initialization, or
never@3156 1107 // called from signal handler. Before adding something to os::abort(), make
never@3156 1108 // sure it is async-safe and can handle partially initialized VM.
never@3156 1109 void os::abort(bool dump_core) {
never@3156 1110 os::shutdown();
never@3156 1111 if (dump_core) {
never@3156 1112 #ifndef PRODUCT
never@3156 1113 fdStream out(defaultStream::output_fd());
never@3156 1114 out.print_raw("Current thread is ");
never@3156 1115 char buf[16];
never@3156 1116 jio_snprintf(buf, sizeof(buf), UINTX_FORMAT, os::current_thread_id());
never@3156 1117 out.print_raw_cr(buf);
never@3156 1118 out.print_raw_cr("Dumping core ...");
never@3156 1119 #endif
never@3156 1120 ::abort(); // dump core
never@3156 1121 }
never@3156 1122
never@3156 1123 ::exit(1);
never@3156 1124 }
never@3156 1125
never@3156 1126 // Die immediately, no exit hook, no abort hook, no cleanup.
never@3156 1127 void os::die() {
never@3156 1128 // _exit() on BsdThreads only kills current thread
never@3156 1129 ::abort();
never@3156 1130 }
never@3156 1131
never@3156 1132 // unused on bsd for now.
never@3156 1133 void os::set_error_file(const char *logfile) {}
never@3156 1134
never@3156 1135
never@3156 1136 // This method is a copy of JDK's sysGetLastErrorString
never@3156 1137 // from src/solaris/hpi/src/system_md.c
never@3156 1138
never@3156 1139 size_t os::lasterror(char *buf, size_t len) {
never@3156 1140
never@3156 1141 if (errno == 0) return 0;
never@3156 1142
never@3156 1143 const char *s = ::strerror(errno);
never@3156 1144 size_t n = ::strlen(s);
never@3156 1145 if (n >= len) {
never@3156 1146 n = len - 1;
never@3156 1147 }
never@3156 1148 ::strncpy(buf, s, n);
never@3156 1149 buf[n] = '\0';
never@3156 1150 return n;
never@3156 1151 }
never@3156 1152
dsamersoff@5834 1153 // Information of current thread in variety of formats
dsamersoff@5834 1154 pid_t os::Bsd::gettid() {
dsamersoff@5834 1155 int retval = -1;
dsamersoff@5834 1156
dsamersoff@5834 1157 #ifdef __APPLE__ //XNU kernel
dsamersoff@5834 1158 // despite the fact mach port is actually not a thread id use it
dsamersoff@5834 1159 // instead of syscall(SYS_thread_selfid) as it certainly fits to u4
dsamersoff@5834 1160 retval = ::pthread_mach_thread_np(::pthread_self());
dsamersoff@5834 1161 guarantee(retval != 0, "just checking");
dsamersoff@5834 1162 return retval;
dsamersoff@5834 1163
dsamersoff@5834 1164 #elif __FreeBSD__
dsamersoff@5834 1165 retval = syscall(SYS_thr_self);
dsamersoff@5834 1166 #elif __OpenBSD__
dsamersoff@5834 1167 retval = syscall(SYS_getthrid);
dsamersoff@5834 1168 #elif __NetBSD__
dsamersoff@5834 1169 retval = (pid_t) syscall(SYS__lwp_self);
dsamersoff@5834 1170 #endif
dsamersoff@5834 1171
dsamersoff@5834 1172 if (retval == -1) {
dsamersoff@5834 1173 return getpid();
dsamersoff@5834 1174 }
dsamersoff@5834 1175 }
dsamersoff@5834 1176
sla@3587 1177 intx os::current_thread_id() {
sla@3587 1178 #ifdef __APPLE__
sla@5563 1179 return (intx)::pthread_mach_thread_np(::pthread_self());
sla@3587 1180 #else
sla@3587 1181 return (intx)::pthread_self();
sla@3587 1182 #endif
sla@3587 1183 }
dsamersoff@5834 1184
never@3156 1185 int os::current_process_id() {
never@3156 1186
never@3156 1187 // Under the old bsd thread library, bsd gives each thread
never@3156 1188 // its own process id. Because of this each thread will return
never@3156 1189 // a different pid if this method were to return the result
never@3156 1190 // of getpid(2). Bsd provides no api that returns the pid
never@3156 1191 // of the launcher thread for the vm. This implementation
never@3156 1192 // returns a unique pid, the pid of the launcher thread
never@3156 1193 // that starts the vm 'process'.
never@3156 1194
never@3156 1195 // Under the NPTL, getpid() returns the same pid as the
never@3156 1196 // launcher thread rather than a unique pid per thread.
never@3156 1197 // Use gettid() if you want the old pre NPTL behaviour.
never@3156 1198
never@3156 1199 // if you are looking for the result of a call to getpid() that
never@3156 1200 // returns a unique pid for the calling thread, then look at the
never@3156 1201 // OSThread::thread_id() method in osThread_bsd.hpp file
never@3156 1202
never@3156 1203 return (int)(_initial_pid ? _initial_pid : getpid());
never@3156 1204 }
never@3156 1205
never@3156 1206 // DLL functions
never@3156 1207
never@3156 1208 #define JNI_LIB_PREFIX "lib"
never@3156 1209 #ifdef __APPLE__
never@3156 1210 #define JNI_LIB_SUFFIX ".dylib"
never@3156 1211 #else
never@3156 1212 #define JNI_LIB_SUFFIX ".so"
never@3156 1213 #endif
never@3156 1214
never@3156 1215 const char* os::dll_file_extension() { return JNI_LIB_SUFFIX; }
never@3156 1216
never@3156 1217 // This must be hard coded because it's the system's temporary
never@3156 1218 // directory not the java application's temp directory, ala java.io.tmpdir.
dcubed@3202 1219 #ifdef __APPLE__
dcubed@3202 1220 // macosx has a secure per-user temporary directory
dcubed@3202 1221 char temp_path_storage[PATH_MAX];
dcubed@3202 1222 const char* os::get_temp_directory() {
dcubed@3202 1223 static char *temp_path = NULL;
dcubed@3202 1224 if (temp_path == NULL) {
dcubed@3202 1225 int pathSize = confstr(_CS_DARWIN_USER_TEMP_DIR, temp_path_storage, PATH_MAX);
dcubed@3202 1226 if (pathSize == 0 || pathSize > PATH_MAX) {
dcubed@3202 1227 strlcpy(temp_path_storage, "/tmp/", sizeof(temp_path_storage));
dcubed@3202 1228 }
dcubed@3202 1229 temp_path = temp_path_storage;
dcubed@3202 1230 }
dcubed@3202 1231 return temp_path;
dcubed@3202 1232 }
dcubed@3202 1233 #else /* __APPLE__ */
never@3156 1234 const char* os::get_temp_directory() { return "/tmp"; }
dcubed@3202 1235 #endif /* __APPLE__ */
never@3156 1236
never@3156 1237 static bool file_exists(const char* filename) {
never@3156 1238 struct stat statbuf;
never@3156 1239 if (filename == NULL || strlen(filename) == 0) {
never@3156 1240 return false;
never@3156 1241 }
never@3156 1242 return os::stat(filename, &statbuf) == 0;
never@3156 1243 }
never@3156 1244
bpittore@4261 1245 bool os::dll_build_name(char* buffer, size_t buflen,
never@3156 1246 const char* pname, const char* fname) {
bpittore@4261 1247 bool retval = false;
never@3156 1248 // Copied from libhpi
never@3156 1249 const size_t pnamelen = pname ? strlen(pname) : 0;
never@3156 1250
bpittore@4261 1251 // Return error on buffer overflow.
never@3156 1252 if (pnamelen + strlen(fname) + strlen(JNI_LIB_PREFIX) + strlen(JNI_LIB_SUFFIX) + 2 > buflen) {
bpittore@4261 1253 return retval;
never@3156 1254 }
never@3156 1255
never@3156 1256 if (pnamelen == 0) {
never@3156 1257 snprintf(buffer, buflen, JNI_LIB_PREFIX "%s" JNI_LIB_SUFFIX, fname);
bpittore@4261 1258 retval = true;
never@3156 1259 } else if (strchr(pname, *os::path_separator()) != NULL) {
never@3156 1260 int n;
never@3156 1261 char** pelements = split_path(pname, &n);
ccheung@4888 1262 if (pelements == NULL) {
dcubed@4891 1263 return false;
ccheung@4888 1264 }
never@3156 1265 for (int i = 0 ; i < n ; i++) {
never@3156 1266 // Really shouldn't be NULL, but check can't hurt
never@3156 1267 if (pelements[i] == NULL || strlen(pelements[i]) == 0) {
never@3156 1268 continue; // skip the empty path values
never@3156 1269 }
never@3156 1270 snprintf(buffer, buflen, "%s/" JNI_LIB_PREFIX "%s" JNI_LIB_SUFFIX,
never@3156 1271 pelements[i], fname);
never@3156 1272 if (file_exists(buffer)) {
bpittore@4261 1273 retval = true;
never@3156 1274 break;
never@3156 1275 }
never@3156 1276 }
never@3156 1277 // release the storage
never@3156 1278 for (int i = 0 ; i < n ; i++) {
never@3156 1279 if (pelements[i] != NULL) {
zgu@3900 1280 FREE_C_HEAP_ARRAY(char, pelements[i], mtInternal);
never@3156 1281 }
never@3156 1282 }
never@3156 1283 if (pelements != NULL) {
zgu@3900 1284 FREE_C_HEAP_ARRAY(char*, pelements, mtInternal);
never@3156 1285 }
never@3156 1286 } else {
never@3156 1287 snprintf(buffer, buflen, "%s/" JNI_LIB_PREFIX "%s" JNI_LIB_SUFFIX, pname, fname);
bpittore@4261 1288 retval = true;
never@3156 1289 }
bpittore@4261 1290 return retval;
never@3156 1291 }
never@3156 1292
dcubed@4392 1293 // check if addr is inside libjvm.so
never@3156 1294 bool os::address_is_in_vm(address addr) {
never@3156 1295 static address libjvm_base_addr;
never@3156 1296 Dl_info dlinfo;
never@3156 1297
never@3156 1298 if (libjvm_base_addr == NULL) {
dcubed@5365 1299 if (dladdr(CAST_FROM_FN_PTR(void *, os::address_is_in_vm), &dlinfo) != 0) {
dcubed@5365 1300 libjvm_base_addr = (address)dlinfo.dli_fbase;
dcubed@5365 1301 }
never@3156 1302 assert(libjvm_base_addr !=NULL, "Cannot obtain base address for libjvm");
never@3156 1303 }
never@3156 1304
dcubed@5365 1305 if (dladdr((void *)addr, &dlinfo) != 0) {
never@3156 1306 if (libjvm_base_addr == (address)dlinfo.dli_fbase) return true;
never@3156 1307 }
never@3156 1308
never@3156 1309 return false;
never@3156 1310 }
never@3156 1311
zgu@3961 1312
zgu@3961 1313 #define MACH_MAXSYMLEN 256
zgu@3961 1314
never@3156 1315 bool os::dll_address_to_function_name(address addr, char *buf,
never@3156 1316 int buflen, int *offset) {
dcubed@5365 1317 // buf is not optional, but offset is optional
dcubed@5365 1318 assert(buf != NULL, "sanity check");
dcubed@5365 1319
never@3156 1320 Dl_info dlinfo;
zgu@3961 1321 char localbuf[MACH_MAXSYMLEN];
zgu@3961 1322
dcubed@5365 1323 if (dladdr((void*)addr, &dlinfo) != 0) {
dcubed@5365 1324 // see if we have a matching symbol
dcubed@5365 1325 if (dlinfo.dli_saddr != NULL && dlinfo.dli_sname != NULL) {
dcubed@5365 1326 if (!Decoder::demangle(dlinfo.dli_sname, buf, buflen)) {
never@3156 1327 jio_snprintf(buf, buflen, "%s", dlinfo.dli_sname);
never@3156 1328 }
dcubed@5365 1329 if (offset != NULL) *offset = addr - (address)dlinfo.dli_saddr;
dcubed@5365 1330 return true;
never@3156 1331 }
dcubed@5365 1332 // no matching symbol so try for just file info
dcubed@5365 1333 if (dlinfo.dli_fname != NULL && dlinfo.dli_fbase != NULL) {
dcubed@5365 1334 if (Decoder::decode((address)(addr - (address)dlinfo.dli_fbase),
dcubed@5365 1335 buf, buflen, offset, dlinfo.dli_fname)) {
dcubed@5365 1336 return true;
dcubed@5365 1337 }
dcubed@5365 1338 }
dcubed@5365 1339
dcubed@5365 1340 // Handle non-dynamic manually:
dcubed@5365 1341 if (dlinfo.dli_fbase != NULL &&
dcubed@5365 1342 Decoder::decode(addr, localbuf, MACH_MAXSYMLEN, offset,
dcubed@5365 1343 dlinfo.dli_fbase)) {
dcubed@5365 1344 if (!Decoder::demangle(localbuf, buf, buflen)) {
dcubed@5365 1345 jio_snprintf(buf, buflen, "%s", localbuf);
dcubed@5365 1346 }
dcubed@5365 1347 return true;
never@3156 1348 }
never@3156 1349 }
dcubed@5365 1350 buf[0] = '\0';
dcubed@5365 1351 if (offset != NULL) *offset = -1;
dcubed@5365 1352 return false;
dcubed@5365 1353 }
dcubed@5365 1354
dcubed@5365 1355 // ported from solaris version
dcubed@5365 1356 bool os::dll_address_to_library_name(address addr, char* buf,
dcubed@5365 1357 int buflen, int* offset) {
dcubed@5365 1358 // buf is not optional, but offset is optional
dcubed@5365 1359 assert(buf != NULL, "sanity check");
dcubed@5365 1360
dcubed@5365 1361 Dl_info dlinfo;
dcubed@5365 1362
dcubed@5365 1363 if (dladdr((void*)addr, &dlinfo) != 0) {
dcubed@5365 1364 if (dlinfo.dli_fname != NULL) {
dcubed@5365 1365 jio_snprintf(buf, buflen, "%s", dlinfo.dli_fname);
dcubed@5365 1366 }
dcubed@5365 1367 if (dlinfo.dli_fbase != NULL && offset != NULL) {
dcubed@5365 1368 *offset = addr - (address)dlinfo.dli_fbase;
zgu@3961 1369 }
zgu@3961 1370 return true;
zgu@3961 1371 }
dcubed@5365 1372
dcubed@5365 1373 buf[0] = '\0';
dcubed@5365 1374 if (offset) *offset = -1;
never@3156 1375 return false;
never@3156 1376 }
never@3156 1377
sla@4229 1378 // Loads .dll/.so and
sla@4229 1379 // in case of error it checks if .dll/.so was built for the
sla@4229 1380 // same architecture as Hotspot is running on
never@3156 1381
never@3156 1382 #ifdef __APPLE__
never@3156 1383 void * os::dll_load(const char *filename, char *ebuf, int ebuflen) {
never@3156 1384 void * result= ::dlopen(filename, RTLD_LAZY);
never@3156 1385 if (result != NULL) {
never@3156 1386 // Successful loading
never@3156 1387 return result;
never@3156 1388 }
never@3156 1389
never@3156 1390 // Read system error message into ebuf
never@3156 1391 ::strncpy(ebuf, ::dlerror(), ebuflen-1);
never@3156 1392 ebuf[ebuflen-1]='\0';
never@3156 1393
never@3156 1394 return NULL;
never@3156 1395 }
never@3156 1396 #else
never@3156 1397 void * os::dll_load(const char *filename, char *ebuf, int ebuflen)
never@3156 1398 {
never@3156 1399 void * result= ::dlopen(filename, RTLD_LAZY);
never@3156 1400 if (result != NULL) {
never@3156 1401 // Successful loading
never@3156 1402 return result;
never@3156 1403 }
never@3156 1404
never@3156 1405 Elf32_Ehdr elf_head;
never@3156 1406
never@3156 1407 // Read system error message into ebuf
never@3156 1408 // It may or may not be overwritten below
never@3156 1409 ::strncpy(ebuf, ::dlerror(), ebuflen-1);
never@3156 1410 ebuf[ebuflen-1]='\0';
never@3156 1411 int diag_msg_max_length=ebuflen-strlen(ebuf);
never@3156 1412 char* diag_msg_buf=ebuf+strlen(ebuf);
never@3156 1413
never@3156 1414 if (diag_msg_max_length==0) {
never@3156 1415 // No more space in ebuf for additional diagnostics message
never@3156 1416 return NULL;
never@3156 1417 }
never@3156 1418
never@3156 1419
never@3156 1420 int file_descriptor= ::open(filename, O_RDONLY | O_NONBLOCK);
never@3156 1421
never@3156 1422 if (file_descriptor < 0) {
never@3156 1423 // Can't open library, report dlerror() message
never@3156 1424 return NULL;
never@3156 1425 }
never@3156 1426
never@3156 1427 bool failed_to_read_elf_head=
never@3156 1428 (sizeof(elf_head)!=
never@3156 1429 (::read(file_descriptor, &elf_head,sizeof(elf_head)))) ;
never@3156 1430
never@3156 1431 ::close(file_descriptor);
never@3156 1432 if (failed_to_read_elf_head) {
never@3156 1433 // file i/o error - report dlerror() msg
never@3156 1434 return NULL;
never@3156 1435 }
never@3156 1436
never@3156 1437 typedef struct {
never@3156 1438 Elf32_Half code; // Actual value as defined in elf.h
never@3156 1439 Elf32_Half compat_class; // Compatibility of archs at VM's sense
never@3156 1440 char elf_class; // 32 or 64 bit
never@3156 1441 char endianess; // MSB or LSB
never@3156 1442 char* name; // String representation
never@3156 1443 } arch_t;
never@3156 1444
never@3156 1445 #ifndef EM_486
never@3156 1446 #define EM_486 6 /* Intel 80486 */
never@3156 1447 #endif
never@3156 1448
never@3156 1449 #ifndef EM_MIPS_RS3_LE
never@3156 1450 #define EM_MIPS_RS3_LE 10 /* MIPS */
never@3156 1451 #endif
never@3156 1452
never@3156 1453 #ifndef EM_PPC64
never@3156 1454 #define EM_PPC64 21 /* PowerPC64 */
never@3156 1455 #endif
never@3156 1456
never@3156 1457 #ifndef EM_S390
never@3156 1458 #define EM_S390 22 /* IBM System/390 */
never@3156 1459 #endif
never@3156 1460
never@3156 1461 #ifndef EM_IA_64
never@3156 1462 #define EM_IA_64 50 /* HP/Intel IA-64 */
never@3156 1463 #endif
never@3156 1464
never@3156 1465 #ifndef EM_X86_64
never@3156 1466 #define EM_X86_64 62 /* AMD x86-64 */
never@3156 1467 #endif
never@3156 1468
never@3156 1469 static const arch_t arch_array[]={
never@3156 1470 {EM_386, EM_386, ELFCLASS32, ELFDATA2LSB, (char*)"IA 32"},
never@3156 1471 {EM_486, EM_386, ELFCLASS32, ELFDATA2LSB, (char*)"IA 32"},
never@3156 1472 {EM_IA_64, EM_IA_64, ELFCLASS64, ELFDATA2LSB, (char*)"IA 64"},
never@3156 1473 {EM_X86_64, EM_X86_64, ELFCLASS64, ELFDATA2LSB, (char*)"AMD 64"},
never@3156 1474 {EM_SPARC, EM_SPARC, ELFCLASS32, ELFDATA2MSB, (char*)"Sparc 32"},
never@3156 1475 {EM_SPARC32PLUS, EM_SPARC, ELFCLASS32, ELFDATA2MSB, (char*)"Sparc 32"},
never@3156 1476 {EM_SPARCV9, EM_SPARCV9, ELFCLASS64, ELFDATA2MSB, (char*)"Sparc v9 64"},
never@3156 1477 {EM_PPC, EM_PPC, ELFCLASS32, ELFDATA2MSB, (char*)"Power PC 32"},
never@3156 1478 {EM_PPC64, EM_PPC64, ELFCLASS64, ELFDATA2MSB, (char*)"Power PC 64"},
never@3156 1479 {EM_ARM, EM_ARM, ELFCLASS32, ELFDATA2LSB, (char*)"ARM"},
never@3156 1480 {EM_S390, EM_S390, ELFCLASSNONE, ELFDATA2MSB, (char*)"IBM System/390"},
never@3156 1481 {EM_ALPHA, EM_ALPHA, ELFCLASS64, ELFDATA2LSB, (char*)"Alpha"},
never@3156 1482 {EM_MIPS_RS3_LE, EM_MIPS_RS3_LE, ELFCLASS32, ELFDATA2LSB, (char*)"MIPSel"},
never@3156 1483 {EM_MIPS, EM_MIPS, ELFCLASS32, ELFDATA2MSB, (char*)"MIPS"},
never@3156 1484 {EM_PARISC, EM_PARISC, ELFCLASS32, ELFDATA2MSB, (char*)"PARISC"},
never@3156 1485 {EM_68K, EM_68K, ELFCLASS32, ELFDATA2MSB, (char*)"M68k"}
never@3156 1486 };
never@3156 1487
never@3156 1488 #if (defined IA32)
never@3156 1489 static Elf32_Half running_arch_code=EM_386;
never@3156 1490 #elif (defined AMD64)
never@3156 1491 static Elf32_Half running_arch_code=EM_X86_64;
never@3156 1492 #elif (defined IA64)
never@3156 1493 static Elf32_Half running_arch_code=EM_IA_64;
never@3156 1494 #elif (defined __sparc) && (defined _LP64)
never@3156 1495 static Elf32_Half running_arch_code=EM_SPARCV9;
never@3156 1496 #elif (defined __sparc) && (!defined _LP64)
never@3156 1497 static Elf32_Half running_arch_code=EM_SPARC;
never@3156 1498 #elif (defined __powerpc64__)
never@3156 1499 static Elf32_Half running_arch_code=EM_PPC64;
never@3156 1500 #elif (defined __powerpc__)
never@3156 1501 static Elf32_Half running_arch_code=EM_PPC;
never@3156 1502 #elif (defined ARM)
never@3156 1503 static Elf32_Half running_arch_code=EM_ARM;
never@3156 1504 #elif (defined S390)
never@3156 1505 static Elf32_Half running_arch_code=EM_S390;
never@3156 1506 #elif (defined ALPHA)
never@3156 1507 static Elf32_Half running_arch_code=EM_ALPHA;
never@3156 1508 #elif (defined MIPSEL)
never@3156 1509 static Elf32_Half running_arch_code=EM_MIPS_RS3_LE;
never@3156 1510 #elif (defined PARISC)
never@3156 1511 static Elf32_Half running_arch_code=EM_PARISC;
never@3156 1512 #elif (defined MIPS)
never@3156 1513 static Elf32_Half running_arch_code=EM_MIPS;
never@3156 1514 #elif (defined M68K)
never@3156 1515 static Elf32_Half running_arch_code=EM_68K;
never@3156 1516 #else
never@3156 1517 #error Method os::dll_load requires that one of following is defined:\
never@3156 1518 IA32, AMD64, IA64, __sparc, __powerpc__, ARM, S390, ALPHA, MIPS, MIPSEL, PARISC, M68K
never@3156 1519 #endif
never@3156 1520
never@3156 1521 // Identify compatability class for VM's architecture and library's architecture
never@3156 1522 // Obtain string descriptions for architectures
never@3156 1523
never@3156 1524 arch_t lib_arch={elf_head.e_machine,0,elf_head.e_ident[EI_CLASS], elf_head.e_ident[EI_DATA], NULL};
never@3156 1525 int running_arch_index=-1;
never@3156 1526
never@3156 1527 for (unsigned int i=0 ; i < ARRAY_SIZE(arch_array) ; i++ ) {
never@3156 1528 if (running_arch_code == arch_array[i].code) {
never@3156 1529 running_arch_index = i;
never@3156 1530 }
never@3156 1531 if (lib_arch.code == arch_array[i].code) {
never@3156 1532 lib_arch.compat_class = arch_array[i].compat_class;
never@3156 1533 lib_arch.name = arch_array[i].name;
never@3156 1534 }
never@3156 1535 }
never@3156 1536
never@3156 1537 assert(running_arch_index != -1,
never@3156 1538 "Didn't find running architecture code (running_arch_code) in arch_array");
never@3156 1539 if (running_arch_index == -1) {
never@3156 1540 // Even though running architecture detection failed
never@3156 1541 // we may still continue with reporting dlerror() message
never@3156 1542 return NULL;
never@3156 1543 }
never@3156 1544
never@3156 1545 if (lib_arch.endianess != arch_array[running_arch_index].endianess) {
never@3156 1546 ::snprintf(diag_msg_buf, diag_msg_max_length-1," (Possible cause: endianness mismatch)");
never@3156 1547 return NULL;
never@3156 1548 }
never@3156 1549
never@3156 1550 #ifndef S390
never@3156 1551 if (lib_arch.elf_class != arch_array[running_arch_index].elf_class) {
never@3156 1552 ::snprintf(diag_msg_buf, diag_msg_max_length-1," (Possible cause: architecture word width mismatch)");
never@3156 1553 return NULL;
never@3156 1554 }
never@3156 1555 #endif // !S390
never@3156 1556
never@3156 1557 if (lib_arch.compat_class != arch_array[running_arch_index].compat_class) {
never@3156 1558 if ( lib_arch.name!=NULL ) {
never@3156 1559 ::snprintf(diag_msg_buf, diag_msg_max_length-1,
never@3156 1560 " (Possible cause: can't load %s-bit .so on a %s-bit platform)",
never@3156 1561 lib_arch.name, arch_array[running_arch_index].name);
never@3156 1562 } else {
never@3156 1563 ::snprintf(diag_msg_buf, diag_msg_max_length-1,
never@3156 1564 " (Possible cause: can't load this .so (machine code=0x%x) on a %s-bit platform)",
never@3156 1565 lib_arch.code,
never@3156 1566 arch_array[running_arch_index].name);
never@3156 1567 }
never@3156 1568 }
never@3156 1569
never@3156 1570 return NULL;
never@3156 1571 }
never@3156 1572 #endif /* !__APPLE__ */
never@3156 1573
sla@6326 1574 void* os::get_default_process_handle() {
sla@6326 1575 #ifdef __APPLE__
sla@6326 1576 // MacOS X needs to use RTLD_FIRST instead of RTLD_LAZY
sla@6326 1577 // to avoid finding unexpected symbols on second (or later)
sla@6326 1578 // loads of a library.
sla@6326 1579 return (void*)::dlopen(NULL, RTLD_FIRST);
sla@6326 1580 #else
sla@6326 1581 return (void*)::dlopen(NULL, RTLD_LAZY);
sla@6326 1582 #endif
sla@6326 1583 }
sla@6326 1584
never@3156 1585 // XXX: Do we need a lock around this as per Linux?
never@3156 1586 void* os::dll_lookup(void* handle, const char* name) {
never@3156 1587 return dlsym(handle, name);
never@3156 1588 }
never@3156 1589
never@3156 1590
never@3156 1591 static bool _print_ascii_file(const char* filename, outputStream* st) {
never@3156 1592 int fd = ::open(filename, O_RDONLY);
never@3156 1593 if (fd == -1) {
never@3156 1594 return false;
never@3156 1595 }
never@3156 1596
never@3156 1597 char buf[32];
never@3156 1598 int bytes;
never@3156 1599 while ((bytes = ::read(fd, buf, sizeof(buf))) > 0) {
never@3156 1600 st->print_raw(buf, bytes);
never@3156 1601 }
never@3156 1602
never@3156 1603 ::close(fd);
never@3156 1604
never@3156 1605 return true;
never@3156 1606 }
never@3156 1607
never@3156 1608 void os::print_dll_info(outputStream *st) {
dcubed@5365 1609 st->print_cr("Dynamic libraries:");
never@3156 1610 #ifdef RTLD_DI_LINKMAP
dcubed@5365 1611 Dl_info dli;
dcubed@5365 1612 void *handle;
dcubed@5365 1613 Link_map *map;
dcubed@5365 1614 Link_map *p;
dcubed@5365 1615
dcubed@5365 1616 if (dladdr(CAST_FROM_FN_PTR(void *, os::print_dll_info), &dli) == 0 ||
dcubed@5365 1617 dli.dli_fname == NULL) {
dcubed@5365 1618 st->print_cr("Error: Cannot print dynamic libraries.");
dcubed@5365 1619 return;
dcubed@5365 1620 }
dcubed@5365 1621 handle = dlopen(dli.dli_fname, RTLD_LAZY);
dcubed@5365 1622 if (handle == NULL) {
dcubed@5365 1623 st->print_cr("Error: Cannot print dynamic libraries.");
dcubed@5365 1624 return;
dcubed@5365 1625 }
dcubed@5365 1626 dlinfo(handle, RTLD_DI_LINKMAP, &map);
dcubed@5365 1627 if (map == NULL) {
dcubed@5365 1628 st->print_cr("Error: Cannot print dynamic libraries.");
dcubed@5365 1629 return;
dcubed@5365 1630 }
dcubed@5365 1631
dcubed@5365 1632 while (map->l_prev != NULL)
dcubed@5365 1633 map = map->l_prev;
dcubed@5365 1634
dcubed@5365 1635 while (map != NULL) {
dcubed@5365 1636 st->print_cr(PTR_FORMAT " \t%s", map->l_addr, map->l_name);
dcubed@5365 1637 map = map->l_next;
dcubed@5365 1638 }
dcubed@5365 1639
dcubed@5365 1640 dlclose(handle);
never@3156 1641 #elif defined(__APPLE__)
dcubed@5365 1642 uint32_t count;
dcubed@5365 1643 uint32_t i;
dcubed@5365 1644
dcubed@5365 1645 count = _dyld_image_count();
dcubed@5365 1646 for (i = 1; i < count; i++) {
dcubed@5365 1647 const char *name = _dyld_get_image_name(i);
dcubed@5365 1648 intptr_t slide = _dyld_get_image_vmaddr_slide(i);
dcubed@5365 1649 st->print_cr(PTR_FORMAT " \t%s", slide, name);
dcubed@5365 1650 }
never@3156 1651 #else
dcubed@5365 1652 st->print_cr("Error: Cannot print dynamic libraries.");
never@3156 1653 #endif
never@3156 1654 }
never@3156 1655
nloodin@3783 1656 void os::print_os_info_brief(outputStream* st) {
nloodin@3783 1657 st->print("Bsd");
nloodin@3783 1658
nloodin@3783 1659 os::Posix::print_uname_info(st);
nloodin@3783 1660 }
never@3156 1661
never@3156 1662 void os::print_os_info(outputStream* st) {
never@3156 1663 st->print("OS:");
nloodin@3783 1664 st->print("Bsd");
nloodin@3783 1665
nloodin@3783 1666 os::Posix::print_uname_info(st);
nloodin@3783 1667
nloodin@3783 1668 os::Posix::print_rlimit_info(st);
nloodin@3783 1669
nloodin@3783 1670 os::Posix::print_load_average(st);
never@3156 1671 }
never@3156 1672
never@3156 1673 void os::pd_print_cpu_info(outputStream* st) {
never@3156 1674 // Nothing to do for now.
never@3156 1675 }
never@3156 1676
never@3156 1677 void os::print_memory_info(outputStream* st) {
never@3156 1678
never@3156 1679 st->print("Memory:");
never@3156 1680 st->print(" %dk page", os::vm_page_size()>>10);
never@3156 1681
never@3156 1682 st->print(", physical " UINT64_FORMAT "k",
never@3156 1683 os::physical_memory() >> 10);
never@3156 1684 st->print("(" UINT64_FORMAT "k free)",
never@3156 1685 os::available_memory() >> 10);
never@3156 1686 st->cr();
never@3156 1687
never@3156 1688 // meminfo
never@3156 1689 st->print("\n/proc/meminfo:\n");
never@3156 1690 _print_ascii_file("/proc/meminfo", st);
never@3156 1691 st->cr();
never@3156 1692 }
never@3156 1693
never@3156 1694 void os::print_siginfo(outputStream* st, void* siginfo) {
goetz@6460 1695 const siginfo_t* si = (const siginfo_t*)siginfo;
goetz@6460 1696
goetz@6460 1697 os::Posix::print_siginfo_brief(st, si);
goetz@6460 1698
goetz@6460 1699 if (si && (si->si_signo == SIGBUS || si->si_signo == SIGSEGV) &&
never@3156 1700 UseSharedSpaces) {
never@3156 1701 FileMapInfo* mapinfo = FileMapInfo::current_info();
never@3156 1702 if (mapinfo->is_in_shared_space(si->si_addr)) {
never@3156 1703 st->print("\n\nError accessing class data sharing archive." \
never@3156 1704 " Mapped file inaccessible during execution, " \
never@3156 1705 " possible disk/network problem.");
never@3156 1706 }
never@3156 1707 }
never@3156 1708 st->cr();
never@3156 1709 }
never@3156 1710
never@3156 1711
never@3156 1712 static void print_signal_handler(outputStream* st, int sig,
never@3156 1713 char* buf, size_t buflen);
never@3156 1714
never@3156 1715 void os::print_signal_handlers(outputStream* st, char* buf, size_t buflen) {
never@3156 1716 st->print_cr("Signal Handlers:");
never@3156 1717 print_signal_handler(st, SIGSEGV, buf, buflen);
never@3156 1718 print_signal_handler(st, SIGBUS , buf, buflen);
never@3156 1719 print_signal_handler(st, SIGFPE , buf, buflen);
never@3156 1720 print_signal_handler(st, SIGPIPE, buf, buflen);
never@3156 1721 print_signal_handler(st, SIGXFSZ, buf, buflen);
never@3156 1722 print_signal_handler(st, SIGILL , buf, buflen);
never@3156 1723 print_signal_handler(st, INTERRUPT_SIGNAL, buf, buflen);
never@3156 1724 print_signal_handler(st, SR_signum, buf, buflen);
never@3156 1725 print_signal_handler(st, SHUTDOWN1_SIGNAL, buf, buflen);
never@3156 1726 print_signal_handler(st, SHUTDOWN2_SIGNAL , buf, buflen);
never@3156 1727 print_signal_handler(st, SHUTDOWN3_SIGNAL , buf, buflen);
never@3156 1728 print_signal_handler(st, BREAK_SIGNAL, buf, buflen);
never@3156 1729 }
never@3156 1730
never@3156 1731 static char saved_jvm_path[MAXPATHLEN] = {0};
never@3156 1732
dcubed@4392 1733 // Find the full path to the current module, libjvm
never@3156 1734 void os::jvm_path(char *buf, jint buflen) {
never@3156 1735 // Error checking.
never@3156 1736 if (buflen < MAXPATHLEN) {
never@3156 1737 assert(false, "must use a large-enough buffer");
never@3156 1738 buf[0] = '\0';
never@3156 1739 return;
never@3156 1740 }
never@3156 1741 // Lazy resolve the path to current module.
never@3156 1742 if (saved_jvm_path[0] != 0) {
never@3156 1743 strcpy(buf, saved_jvm_path);
never@3156 1744 return;
never@3156 1745 }
never@3156 1746
never@3156 1747 char dli_fname[MAXPATHLEN];
never@3156 1748 bool ret = dll_address_to_library_name(
never@3156 1749 CAST_FROM_FN_PTR(address, os::jvm_path),
never@3156 1750 dli_fname, sizeof(dli_fname), NULL);
dcubed@5365 1751 assert(ret, "cannot locate libjvm");
dcubed@5365 1752 char *rp = NULL;
dcubed@5365 1753 if (ret && dli_fname[0] != '\0') {
dcubed@5365 1754 rp = realpath(dli_fname, buf);
dcubed@5365 1755 }
never@3156 1756 if (rp == NULL)
never@3156 1757 return;
never@3156 1758
never@3156 1759 if (Arguments::created_by_gamma_launcher()) {
never@3156 1760 // Support for the gamma launcher. Typical value for buf is
phh@3473 1761 // "<JAVA_HOME>/jre/lib/<arch>/<vmtype>/libjvm". If "/jre/lib/" appears at
never@3156 1762 // the right place in the string, then assume we are installed in a JDK and
phh@3473 1763 // we're done. Otherwise, check for a JAVA_HOME environment variable and
phh@3473 1764 // construct a path to the JVM being overridden.
phh@3473 1765
never@3156 1766 const char *p = buf + strlen(buf) - 1;
never@3156 1767 for (int count = 0; p > buf && count < 5; ++count) {
never@3156 1768 for (--p; p > buf && *p != '/'; --p)
never@3156 1769 /* empty */ ;
never@3156 1770 }
never@3156 1771
never@3156 1772 if (strncmp(p, "/jre/lib/", 9) != 0) {
never@3156 1773 // Look for JAVA_HOME in the environment.
never@3156 1774 char* java_home_var = ::getenv("JAVA_HOME");
never@3156 1775 if (java_home_var != NULL && java_home_var[0] != 0) {
never@3156 1776 char* jrelib_p;
never@3156 1777 int len;
never@3156 1778
dcubed@4392 1779 // Check the current module name "libjvm"
never@3156 1780 p = strrchr(buf, '/');
never@3156 1781 assert(strstr(p, "/libjvm") == p, "invalid library name");
never@3156 1782
never@3156 1783 rp = realpath(java_home_var, buf);
never@3156 1784 if (rp == NULL)
never@3156 1785 return;
never@3156 1786
never@3156 1787 // determine if this is a legacy image or modules image
never@3156 1788 // modules image doesn't have "jre" subdirectory
never@3156 1789 len = strlen(buf);
never@3156 1790 jrelib_p = buf + len;
phh@3473 1791
phh@3473 1792 // Add the appropriate library subdir
phh@3473 1793 snprintf(jrelib_p, buflen-len, "/jre/lib");
never@3156 1794 if (0 != access(buf, F_OK)) {
phh@3473 1795 snprintf(jrelib_p, buflen-len, "/lib");
never@3156 1796 }
never@3156 1797
phh@3473 1798 // Add the appropriate client or server subdir
phh@3473 1799 len = strlen(buf);
phh@3473 1800 jrelib_p = buf + len;
phh@3473 1801 snprintf(jrelib_p, buflen-len, "/%s", COMPILER_VARIANT);
phh@3473 1802 if (0 != access(buf, F_OK)) {
phh@3473 1803 snprintf(jrelib_p, buflen-len, "");
phh@3473 1804 }
phh@3473 1805
phh@3473 1806 // If the path exists within JAVA_HOME, add the JVM library name
phh@3473 1807 // to complete the path to JVM being overridden. Otherwise fallback
phh@3473 1808 // to the path to the current library.
never@3156 1809 if (0 == access(buf, F_OK)) {
dcubed@4392 1810 // Use current module name "libjvm"
never@3156 1811 len = strlen(buf);
dcubed@4392 1812 snprintf(buf + len, buflen-len, "/libjvm%s", JNI_LIB_SUFFIX);
never@3156 1813 } else {
phh@3473 1814 // Fall back to path of current library
never@3156 1815 rp = realpath(dli_fname, buf);
never@3156 1816 if (rp == NULL)
never@3156 1817 return;
never@3156 1818 }
never@3156 1819 }
never@3156 1820 }
never@3156 1821 }
never@3156 1822
never@3156 1823 strcpy(saved_jvm_path, buf);
never@3156 1824 }
never@3156 1825
never@3156 1826 void os::print_jni_name_prefix_on(outputStream* st, int args_size) {
never@3156 1827 // no prefix required, not even "_"
never@3156 1828 }
never@3156 1829
never@3156 1830 void os::print_jni_name_suffix_on(outputStream* st, int args_size) {
never@3156 1831 // no suffix required
never@3156 1832 }
never@3156 1833
never@3156 1834 ////////////////////////////////////////////////////////////////////////////////
never@3156 1835 // sun.misc.Signal support
never@3156 1836
never@3156 1837 static volatile jint sigint_count = 0;
never@3156 1838
never@3156 1839 static void
never@3156 1840 UserHandler(int sig, void *siginfo, void *context) {
never@3156 1841 // 4511530 - sem_post is serialized and handled by the manager thread. When
never@3156 1842 // the program is interrupted by Ctrl-C, SIGINT is sent to every thread. We
never@3156 1843 // don't want to flood the manager thread with sem_post requests.
never@3156 1844 if (sig == SIGINT && Atomic::add(1, &sigint_count) > 1)
never@3156 1845 return;
never@3156 1846
never@3156 1847 // Ctrl-C is pressed during error reporting, likely because the error
never@3156 1848 // handler fails to abort. Let VM die immediately.
never@3156 1849 if (sig == SIGINT && is_error_reported()) {
never@3156 1850 os::die();
never@3156 1851 }
never@3156 1852
never@3156 1853 os::signal_notify(sig);
never@3156 1854 }
never@3156 1855
never@3156 1856 void* os::user_handler() {
never@3156 1857 return CAST_FROM_FN_PTR(void*, UserHandler);
never@3156 1858 }
never@3156 1859
never@3156 1860 extern "C" {
never@3156 1861 typedef void (*sa_handler_t)(int);
never@3156 1862 typedef void (*sa_sigaction_t)(int, siginfo_t *, void *);
never@3156 1863 }
never@3156 1864
never@3156 1865 void* os::signal(int signal_number, void* handler) {
never@3156 1866 struct sigaction sigAct, oldSigAct;
never@3156 1867
never@3156 1868 sigfillset(&(sigAct.sa_mask));
never@3156 1869 sigAct.sa_flags = SA_RESTART|SA_SIGINFO;
never@3156 1870 sigAct.sa_handler = CAST_TO_FN_PTR(sa_handler_t, handler);
never@3156 1871
never@3156 1872 if (sigaction(signal_number, &sigAct, &oldSigAct)) {
never@3156 1873 // -1 means registration failed
never@3156 1874 return (void *)-1;
never@3156 1875 }
never@3156 1876
never@3156 1877 return CAST_FROM_FN_PTR(void*, oldSigAct.sa_handler);
never@3156 1878 }
never@3156 1879
never@3156 1880 void os::signal_raise(int signal_number) {
never@3156 1881 ::raise(signal_number);
never@3156 1882 }
never@3156 1883
never@3156 1884 /*
never@3156 1885 * The following code is moved from os.cpp for making this
never@3156 1886 * code platform specific, which it is by its very nature.
never@3156 1887 */
never@3156 1888
never@3156 1889 // Will be modified when max signal is changed to be dynamic
never@3156 1890 int os::sigexitnum_pd() {
never@3156 1891 return NSIG;
never@3156 1892 }
never@3156 1893
never@3156 1894 // a counter for each possible signal value
never@3156 1895 static volatile jint pending_signals[NSIG+1] = { 0 };
never@3156 1896
never@3156 1897 // Bsd(POSIX) specific hand shaking semaphore.
never@3156 1898 #ifdef __APPLE__
sla@5237 1899 typedef semaphore_t os_semaphore_t;
never@3156 1900 #define SEM_INIT(sem, value) semaphore_create(mach_task_self(), &sem, SYNC_POLICY_FIFO, value)
sla@5237 1901 #define SEM_WAIT(sem) semaphore_wait(sem)
sla@5237 1902 #define SEM_POST(sem) semaphore_signal(sem)
sla@5237 1903 #define SEM_DESTROY(sem) semaphore_destroy(mach_task_self(), sem)
never@3156 1904 #else
sla@5237 1905 typedef sem_t os_semaphore_t;
never@3156 1906 #define SEM_INIT(sem, value) sem_init(&sem, 0, value)
sla@5237 1907 #define SEM_WAIT(sem) sem_wait(&sem)
sla@5237 1908 #define SEM_POST(sem) sem_post(&sem)
sla@5237 1909 #define SEM_DESTROY(sem) sem_destroy(&sem)
never@3156 1910 #endif
never@3156 1911
sla@5237 1912 class Semaphore : public StackObj {
sla@5237 1913 public:
sla@5237 1914 Semaphore();
sla@5237 1915 ~Semaphore();
sla@5237 1916 void signal();
sla@5237 1917 void wait();
sla@5237 1918 bool trywait();
sla@5237 1919 bool timedwait(unsigned int sec, int nsec);
sla@5237 1920 private:
sla@5237 1921 jlong currenttime() const;
dsamersoff@5830 1922 os_semaphore_t _semaphore;
sla@5237 1923 };
sla@5237 1924
sla@5237 1925 Semaphore::Semaphore() : _semaphore(0) {
sla@5237 1926 SEM_INIT(_semaphore, 0);
sla@5237 1927 }
sla@5237 1928
sla@5237 1929 Semaphore::~Semaphore() {
sla@5237 1930 SEM_DESTROY(_semaphore);
sla@5237 1931 }
sla@5237 1932
sla@5237 1933 void Semaphore::signal() {
sla@5237 1934 SEM_POST(_semaphore);
sla@5237 1935 }
sla@5237 1936
sla@5237 1937 void Semaphore::wait() {
sla@5237 1938 SEM_WAIT(_semaphore);
sla@5237 1939 }
sla@5237 1940
sla@5237 1941 jlong Semaphore::currenttime() const {
sla@5237 1942 struct timeval tv;
sla@5237 1943 gettimeofday(&tv, NULL);
sla@5237 1944 return (tv.tv_sec * NANOSECS_PER_SEC) + (tv.tv_usec * 1000);
sla@5237 1945 }
sla@5237 1946
sla@5237 1947 #ifdef __APPLE__
sla@5237 1948 bool Semaphore::trywait() {
sla@5237 1949 return timedwait(0, 0);
sla@5237 1950 }
sla@5237 1951
sla@5237 1952 bool Semaphore::timedwait(unsigned int sec, int nsec) {
sla@5237 1953 kern_return_t kr = KERN_ABORTED;
sla@5237 1954 mach_timespec_t waitspec;
sla@5237 1955 waitspec.tv_sec = sec;
sla@5237 1956 waitspec.tv_nsec = nsec;
sla@5237 1957
sla@5237 1958 jlong starttime = currenttime();
sla@5237 1959
sla@5237 1960 kr = semaphore_timedwait(_semaphore, waitspec);
sla@5237 1961 while (kr == KERN_ABORTED) {
sla@5237 1962 jlong totalwait = (sec * NANOSECS_PER_SEC) + nsec;
sla@5237 1963
sla@5237 1964 jlong current = currenttime();
sla@5237 1965 jlong passedtime = current - starttime;
sla@5237 1966
sla@5237 1967 if (passedtime >= totalwait) {
sla@5237 1968 waitspec.tv_sec = 0;
sla@5237 1969 waitspec.tv_nsec = 0;
sla@5237 1970 } else {
sla@5237 1971 jlong waittime = totalwait - (current - starttime);
sla@5237 1972 waitspec.tv_sec = waittime / NANOSECS_PER_SEC;
sla@5237 1973 waitspec.tv_nsec = waittime % NANOSECS_PER_SEC;
sla@5237 1974 }
sla@5237 1975
sla@5237 1976 kr = semaphore_timedwait(_semaphore, waitspec);
sla@5237 1977 }
sla@5237 1978
sla@5237 1979 return kr == KERN_SUCCESS;
sla@5237 1980 }
sla@5237 1981
sla@5237 1982 #else
sla@5237 1983
sla@5237 1984 bool Semaphore::trywait() {
sla@5237 1985 return sem_trywait(&_semaphore) == 0;
sla@5237 1986 }
sla@5237 1987
sla@5237 1988 bool Semaphore::timedwait(unsigned int sec, int nsec) {
sla@5237 1989 struct timespec ts;
dsamersoff@5830 1990 unpackTime(&ts, false, (sec * NANOSECS_PER_SEC) + nsec);
sla@5237 1991
sla@5237 1992 while (1) {
sla@5237 1993 int result = sem_timedwait(&_semaphore, &ts);
sla@5237 1994 if (result == 0) {
sla@5237 1995 return true;
sla@5237 1996 } else if (errno == EINTR) {
sla@5237 1997 continue;
sla@5237 1998 } else if (errno == ETIMEDOUT) {
sla@5237 1999 return false;
sla@5237 2000 } else {
sla@5237 2001 return false;
sla@5237 2002 }
sla@5237 2003 }
sla@5237 2004 }
sla@5237 2005
sla@5237 2006 #endif // __APPLE__
sla@5237 2007
sla@5237 2008 static os_semaphore_t sig_sem;
sla@5237 2009 static Semaphore sr_semaphore;
sla@5237 2010
never@3156 2011 void os::signal_init_pd() {
never@3156 2012 // Initialize signal structures
never@3156 2013 ::memset((void*)pending_signals, 0, sizeof(pending_signals));
never@3156 2014
never@3156 2015 // Initialize signal semaphore
never@3156 2016 ::SEM_INIT(sig_sem, 0);
never@3156 2017 }
never@3156 2018
never@3156 2019 void os::signal_notify(int sig) {
never@3156 2020 Atomic::inc(&pending_signals[sig]);
never@3156 2021 ::SEM_POST(sig_sem);
never@3156 2022 }
never@3156 2023
never@3156 2024 static int check_pending_signals(bool wait) {
never@3156 2025 Atomic::store(0, &sigint_count);
never@3156 2026 for (;;) {
never@3156 2027 for (int i = 0; i < NSIG + 1; i++) {
never@3156 2028 jint n = pending_signals[i];
never@3156 2029 if (n > 0 && n == Atomic::cmpxchg(n - 1, &pending_signals[i], n)) {
never@3156 2030 return i;
never@3156 2031 }
never@3156 2032 }
never@3156 2033 if (!wait) {
never@3156 2034 return -1;
never@3156 2035 }
never@3156 2036 JavaThread *thread = JavaThread::current();
never@3156 2037 ThreadBlockInVM tbivm(thread);
never@3156 2038
never@3156 2039 bool threadIsSuspended;
never@3156 2040 do {
never@3156 2041 thread->set_suspend_equivalent();
never@3156 2042 // cleared by handle_special_suspend_equivalent_condition() or java_suspend_self()
never@3156 2043 ::SEM_WAIT(sig_sem);
never@3156 2044
never@3156 2045 // were we externally suspended while we were waiting?
never@3156 2046 threadIsSuspended = thread->handle_special_suspend_equivalent_condition();
never@3156 2047 if (threadIsSuspended) {
never@3156 2048 //
never@3156 2049 // The semaphore has been incremented, but while we were waiting
never@3156 2050 // another thread suspended us. We don't want to continue running
never@3156 2051 // while suspended because that would surprise the thread that
never@3156 2052 // suspended us.
never@3156 2053 //
never@3156 2054 ::SEM_POST(sig_sem);
never@3156 2055
never@3156 2056 thread->java_suspend_self();
never@3156 2057 }
never@3156 2058 } while (threadIsSuspended);
never@3156 2059 }
never@3156 2060 }
never@3156 2061
never@3156 2062 int os::signal_lookup() {
never@3156 2063 return check_pending_signals(false);
never@3156 2064 }
never@3156 2065
never@3156 2066 int os::signal_wait() {
never@3156 2067 return check_pending_signals(true);
never@3156 2068 }
never@3156 2069
never@3156 2070 ////////////////////////////////////////////////////////////////////////////////
never@3156 2071 // Virtual Memory
never@3156 2072
never@3156 2073 int os::vm_page_size() {
never@3156 2074 // Seems redundant as all get out
never@3156 2075 assert(os::Bsd::page_size() != -1, "must call os::init");
never@3156 2076 return os::Bsd::page_size();
never@3156 2077 }
never@3156 2078
never@3156 2079 // Solaris allocates memory by pages.
never@3156 2080 int os::vm_allocation_granularity() {
never@3156 2081 assert(os::Bsd::page_size() != -1, "must call os::init");
never@3156 2082 return os::Bsd::page_size();
never@3156 2083 }
never@3156 2084
never@3156 2085 // Rationale behind this function:
never@3156 2086 // current (Mon Apr 25 20:12:18 MSD 2005) oprofile drops samples without executable
never@3156 2087 // mapping for address (see lookup_dcookie() in the kernel module), thus we cannot get
never@3156 2088 // samples for JITted code. Here we create private executable mapping over the code cache
never@3156 2089 // and then we can use standard (well, almost, as mapping can change) way to provide
never@3156 2090 // info for the reporting script by storing timestamp and location of symbol
never@3156 2091 void bsd_wrap_code(char* base, size_t size) {
never@3156 2092 static volatile jint cnt = 0;
never@3156 2093
never@3156 2094 if (!UseOprofile) {
never@3156 2095 return;
never@3156 2096 }
never@3156 2097
never@3156 2098 char buf[PATH_MAX + 1];
never@3156 2099 int num = Atomic::add(1, &cnt);
never@3156 2100
never@3156 2101 snprintf(buf, PATH_MAX + 1, "%s/hs-vm-%d-%d",
never@3156 2102 os::get_temp_directory(), os::current_process_id(), num);
never@3156 2103 unlink(buf);
never@3156 2104
never@3156 2105 int fd = ::open(buf, O_CREAT | O_RDWR, S_IRWXU);
never@3156 2106
never@3156 2107 if (fd != -1) {
never@3156 2108 off_t rv = ::lseek(fd, size-2, SEEK_SET);
never@3156 2109 if (rv != (off_t)-1) {
never@3156 2110 if (::write(fd, "", 1) == 1) {
never@3156 2111 mmap(base, size,
never@3156 2112 PROT_READ|PROT_WRITE|PROT_EXEC,
never@3156 2113 MAP_PRIVATE|MAP_FIXED|MAP_NORESERVE, fd, 0);
never@3156 2114 }
never@3156 2115 }
never@3156 2116 ::close(fd);
never@3156 2117 unlink(buf);
never@3156 2118 }
never@3156 2119 }
never@3156 2120
dcubed@5255 2121 static void warn_fail_commit_memory(char* addr, size_t size, bool exec,
dcubed@5255 2122 int err) {
dcubed@5255 2123 warning("INFO: os::commit_memory(" PTR_FORMAT ", " SIZE_FORMAT
dcubed@5255 2124 ", %d) failed; error='%s' (errno=%d)", addr, size, exec,
dcubed@5255 2125 strerror(err), err);
dcubed@5255 2126 }
dcubed@5255 2127
never@3156 2128 // NOTE: Bsd kernel does not really reserve the pages for us.
never@3156 2129 // All it does is to check if there are enough free pages
never@3156 2130 // left at the time of mmap(). This could be a potential
never@3156 2131 // problem.
zgu@3900 2132 bool os::pd_commit_memory(char* addr, size_t size, bool exec) {
never@3156 2133 int prot = exec ? PROT_READ|PROT_WRITE|PROT_EXEC : PROT_READ|PROT_WRITE;
never@3156 2134 #ifdef __OpenBSD__
never@3156 2135 // XXX: Work-around mmap/MAP_FIXED bug temporarily on OpenBSD
dcubed@5255 2136 if (::mprotect(addr, size, prot) == 0) {
dcubed@5255 2137 return true;
dcubed@5255 2138 }
never@3156 2139 #else
never@3156 2140 uintptr_t res = (uintptr_t) ::mmap(addr, size, prot,
never@3156 2141 MAP_PRIVATE|MAP_FIXED|MAP_ANONYMOUS, -1, 0);
dcubed@5255 2142 if (res != (uintptr_t) MAP_FAILED) {
dcubed@5255 2143 return true;
dcubed@5255 2144 }
never@3156 2145 #endif
dcubed@5255 2146
dcubed@5255 2147 // Warn about any commit errors we see in non-product builds just
dcubed@5255 2148 // in case mmap() doesn't work as described on the man page.
dcubed@5255 2149 NOT_PRODUCT(warn_fail_commit_memory(addr, size, exec, errno);)
dcubed@5255 2150
dcubed@5255 2151 return false;
never@3156 2152 }
never@3156 2153
zgu@3900 2154 bool os::pd_commit_memory(char* addr, size_t size, size_t alignment_hint,
never@3156 2155 bool exec) {
dcubed@5255 2156 // alignment_hint is ignored on this OS
dcubed@5255 2157 return pd_commit_memory(addr, size, exec);
dcubed@5255 2158 }
dcubed@5255 2159
dcubed@5255 2160 void os::pd_commit_memory_or_exit(char* addr, size_t size, bool exec,
dcubed@5255 2161 const char* mesg) {
dcubed@5255 2162 assert(mesg != NULL, "mesg must be specified");
dcubed@5255 2163 if (!pd_commit_memory(addr, size, exec)) {
dcubed@5255 2164 // add extra info in product mode for vm_exit_out_of_memory():
dcubed@5255 2165 PRODUCT_ONLY(warn_fail_commit_memory(addr, size, exec, errno);)
dcubed@5255 2166 vm_exit_out_of_memory(size, OOM_MMAP_ERROR, mesg);
dcubed@5255 2167 }
dcubed@5255 2168 }
dcubed@5255 2169
dcubed@5255 2170 void os::pd_commit_memory_or_exit(char* addr, size_t size,
dcubed@5255 2171 size_t alignment_hint, bool exec,
dcubed@5255 2172 const char* mesg) {
dcubed@5255 2173 // alignment_hint is ignored on this OS
dcubed@5255 2174 pd_commit_memory_or_exit(addr, size, exec, mesg);
never@3156 2175 }
never@3156 2176
zgu@3900 2177 void os::pd_realign_memory(char *addr, size_t bytes, size_t alignment_hint) {
never@3156 2178 }
never@3156 2179
zgu@3900 2180 void os::pd_free_memory(char *addr, size_t bytes, size_t alignment_hint) {
never@3156 2181 ::madvise(addr, bytes, MADV_DONTNEED);
never@3156 2182 }
never@3156 2183
never@3156 2184 void os::numa_make_global(char *addr, size_t bytes) {
never@3156 2185 }
never@3156 2186
never@3156 2187 void os::numa_make_local(char *addr, size_t bytes, int lgrp_hint) {
never@3156 2188 }
never@3156 2189
never@3156 2190 bool os::numa_topology_changed() { return false; }
never@3156 2191
never@3156 2192 size_t os::numa_get_groups_num() {
never@3156 2193 return 1;
never@3156 2194 }
never@3156 2195
never@3156 2196 int os::numa_get_group_id() {
never@3156 2197 return 0;
never@3156 2198 }
never@3156 2199
never@3156 2200 size_t os::numa_get_leaf_groups(int *ids, size_t size) {
never@3156 2201 if (size > 0) {
never@3156 2202 ids[0] = 0;
never@3156 2203 return 1;
never@3156 2204 }
never@3156 2205 return 0;
never@3156 2206 }
never@3156 2207
never@3156 2208 bool os::get_page_info(char *start, page_info* info) {
never@3156 2209 return false;
never@3156 2210 }
never@3156 2211
never@3156 2212 char *os::scan_pages(char *start, char* end, page_info* page_expected, page_info* page_found) {
never@3156 2213 return end;
never@3156 2214 }
never@3156 2215
never@3156 2216
zgu@3900 2217 bool os::pd_uncommit_memory(char* addr, size_t size) {
never@3156 2218 #ifdef __OpenBSD__
never@3156 2219 // XXX: Work-around mmap/MAP_FIXED bug temporarily on OpenBSD
never@3156 2220 return ::mprotect(addr, size, PROT_NONE) == 0;
never@3156 2221 #else
never@3156 2222 uintptr_t res = (uintptr_t) ::mmap(addr, size, PROT_NONE,
never@3156 2223 MAP_PRIVATE|MAP_FIXED|MAP_NORESERVE|MAP_ANONYMOUS, -1, 0);
never@3156 2224 return res != (uintptr_t) MAP_FAILED;
never@3156 2225 #endif
never@3156 2226 }
never@3156 2227
zgu@3900 2228 bool os::pd_create_stack_guard_pages(char* addr, size_t size) {
dcubed@5255 2229 return os::commit_memory(addr, size, !ExecMem);
never@3156 2230 }
never@3156 2231
never@3156 2232 // If this is a growable mapping, remove the guard pages entirely by
never@3156 2233 // munmap()ping them. If not, just call uncommit_memory().
never@3156 2234 bool os::remove_stack_guard_pages(char* addr, size_t size) {
never@3156 2235 return os::uncommit_memory(addr, size);
never@3156 2236 }
never@3156 2237
never@3156 2238 static address _highest_vm_reserved_address = NULL;
never@3156 2239
never@3156 2240 // If 'fixed' is true, anon_mmap() will attempt to reserve anonymous memory
never@3156 2241 // at 'requested_addr'. If there are existing memory mappings at the same
never@3156 2242 // location, however, they will be overwritten. If 'fixed' is false,
never@3156 2243 // 'requested_addr' is only treated as a hint, the return value may or
never@3156 2244 // may not start from the requested address. Unlike Bsd mmap(), this
never@3156 2245 // function returns NULL to indicate failure.
never@3156 2246 static char* anon_mmap(char* requested_addr, size_t bytes, bool fixed) {
never@3156 2247 char * addr;
never@3156 2248 int flags;
never@3156 2249
never@3156 2250 flags = MAP_PRIVATE | MAP_NORESERVE | MAP_ANONYMOUS;
never@3156 2251 if (fixed) {
never@3156 2252 assert((uintptr_t)requested_addr % os::Bsd::page_size() == 0, "unaligned address");
never@3156 2253 flags |= MAP_FIXED;
never@3156 2254 }
never@3156 2255
mikael@4989 2256 // Map reserved/uncommitted pages PROT_NONE so we fail early if we
mikael@4989 2257 // touch an uncommitted page. Otherwise, the read/write might
mikael@4989 2258 // succeed if we have enough swap space to back the physical page.
mikael@4989 2259 addr = (char*)::mmap(requested_addr, bytes, PROT_NONE,
never@3156 2260 flags, -1, 0);
never@3156 2261
never@3156 2262 if (addr != MAP_FAILED) {
never@3156 2263 // anon_mmap() should only get called during VM initialization,
never@3156 2264 // don't need lock (actually we can skip locking even it can be called
never@3156 2265 // from multiple threads, because _highest_vm_reserved_address is just a
never@3156 2266 // hint about the upper limit of non-stack memory regions.)
never@3156 2267 if ((address)addr + bytes > _highest_vm_reserved_address) {
never@3156 2268 _highest_vm_reserved_address = (address)addr + bytes;
never@3156 2269 }
never@3156 2270 }
never@3156 2271
never@3156 2272 return addr == MAP_FAILED ? NULL : addr;
never@3156 2273 }
never@3156 2274
never@3156 2275 // Don't update _highest_vm_reserved_address, because there might be memory
never@3156 2276 // regions above addr + size. If so, releasing a memory region only creates
never@3156 2277 // a hole in the address space, it doesn't help prevent heap-stack collision.
never@3156 2278 //
never@3156 2279 static int anon_munmap(char * addr, size_t size) {
never@3156 2280 return ::munmap(addr, size) == 0;
never@3156 2281 }
never@3156 2282
zgu@3900 2283 char* os::pd_reserve_memory(size_t bytes, char* requested_addr,
never@3156 2284 size_t alignment_hint) {
never@3156 2285 return anon_mmap(requested_addr, bytes, (requested_addr != NULL));
never@3156 2286 }
never@3156 2287
zgu@3900 2288 bool os::pd_release_memory(char* addr, size_t size) {
never@3156 2289 return anon_munmap(addr, size);
never@3156 2290 }
never@3156 2291
never@3156 2292 static bool bsd_mprotect(char* addr, size_t size, int prot) {
never@3156 2293 // Bsd wants the mprotect address argument to be page aligned.
never@3156 2294 char* bottom = (char*)align_size_down((intptr_t)addr, os::Bsd::page_size());
never@3156 2295
never@3156 2296 // According to SUSv3, mprotect() should only be used with mappings
never@3156 2297 // established by mmap(), and mmap() always maps whole pages. Unaligned
never@3156 2298 // 'addr' likely indicates problem in the VM (e.g. trying to change
never@3156 2299 // protection of malloc'ed or statically allocated memory). Check the
never@3156 2300 // caller if you hit this assert.
never@3156 2301 assert(addr == bottom, "sanity check");
never@3156 2302
never@3156 2303 size = align_size_up(pointer_delta(addr, bottom, 1) + size, os::Bsd::page_size());
never@3156 2304 return ::mprotect(bottom, size, prot) == 0;
never@3156 2305 }
never@3156 2306
never@3156 2307 // Set protections specified
never@3156 2308 bool os::protect_memory(char* addr, size_t bytes, ProtType prot,
never@3156 2309 bool is_committed) {
never@3156 2310 unsigned int p = 0;
never@3156 2311 switch (prot) {
never@3156 2312 case MEM_PROT_NONE: p = PROT_NONE; break;
never@3156 2313 case MEM_PROT_READ: p = PROT_READ; break;
never@3156 2314 case MEM_PROT_RW: p = PROT_READ|PROT_WRITE; break;
never@3156 2315 case MEM_PROT_RWX: p = PROT_READ|PROT_WRITE|PROT_EXEC; break;
never@3156 2316 default:
never@3156 2317 ShouldNotReachHere();
never@3156 2318 }
never@3156 2319 // is_committed is unused.
never@3156 2320 return bsd_mprotect(addr, bytes, p);
never@3156 2321 }
never@3156 2322
never@3156 2323 bool os::guard_memory(char* addr, size_t size) {
never@3156 2324 return bsd_mprotect(addr, size, PROT_NONE);
never@3156 2325 }
never@3156 2326
never@3156 2327 bool os::unguard_memory(char* addr, size_t size) {
never@3156 2328 return bsd_mprotect(addr, size, PROT_READ|PROT_WRITE);
never@3156 2329 }
never@3156 2330
never@3156 2331 bool os::Bsd::hugetlbfs_sanity_check(bool warn, size_t page_size) {
sla@4229 2332 return false;
never@3156 2333 }
never@3156 2334
never@3156 2335 // Large page support
never@3156 2336
never@3156 2337 static size_t _large_page_size = 0;
never@3156 2338
never@3156 2339 void os::large_page_init() {
never@3156 2340 }
never@3156 2341
never@3156 2342
stefank@5578 2343 char* os::reserve_memory_special(size_t bytes, size_t alignment, char* req_addr, bool exec) {
stefank@5578 2344 fatal("This code is not used or maintained.");
stefank@5578 2345
never@3156 2346 // "exec" is passed in but not used. Creating the shared image for
never@3156 2347 // the code cache doesn't have an SHM_X executable permission to check.
never@3156 2348 assert(UseLargePages && UseSHM, "only for SHM large pages");
never@3156 2349
never@3156 2350 key_t key = IPC_PRIVATE;
never@3156 2351 char *addr;
never@3156 2352
never@3156 2353 bool warn_on_failure = UseLargePages &&
never@3156 2354 (!FLAG_IS_DEFAULT(UseLargePages) ||
never@3156 2355 !FLAG_IS_DEFAULT(LargePageSizeInBytes)
never@3156 2356 );
never@3156 2357 char msg[128];
never@3156 2358
never@3156 2359 // Create a large shared memory region to attach to based on size.
never@3156 2360 // Currently, size is the total size of the heap
never@3156 2361 int shmid = shmget(key, bytes, IPC_CREAT|SHM_R|SHM_W);
never@3156 2362 if (shmid == -1) {
never@3156 2363 // Possible reasons for shmget failure:
never@3156 2364 // 1. shmmax is too small for Java heap.
never@3156 2365 // > check shmmax value: cat /proc/sys/kernel/shmmax
never@3156 2366 // > increase shmmax value: echo "0xffffffff" > /proc/sys/kernel/shmmax
never@3156 2367 // 2. not enough large page memory.
never@3156 2368 // > check available large pages: cat /proc/meminfo
never@3156 2369 // > increase amount of large pages:
never@3156 2370 // echo new_value > /proc/sys/vm/nr_hugepages
never@3156 2371 // Note 1: different Bsd may use different name for this property,
never@3156 2372 // e.g. on Redhat AS-3 it is "hugetlb_pool".
never@3156 2373 // Note 2: it's possible there's enough physical memory available but
never@3156 2374 // they are so fragmented after a long run that they can't
never@3156 2375 // coalesce into large pages. Try to reserve large pages when
never@3156 2376 // the system is still "fresh".
never@3156 2377 if (warn_on_failure) {
never@3156 2378 jio_snprintf(msg, sizeof(msg), "Failed to reserve shared memory (errno = %d).", errno);
never@3156 2379 warning(msg);
never@3156 2380 }
never@3156 2381 return NULL;
never@3156 2382 }
never@3156 2383
never@3156 2384 // attach to the region
never@3156 2385 addr = (char*)shmat(shmid, req_addr, 0);
never@3156 2386 int err = errno;
never@3156 2387
never@3156 2388 // Remove shmid. If shmat() is successful, the actual shared memory segment
never@3156 2389 // will be deleted when it's detached by shmdt() or when the process
never@3156 2390 // terminates. If shmat() is not successful this will remove the shared
never@3156 2391 // segment immediately.
never@3156 2392 shmctl(shmid, IPC_RMID, NULL);
never@3156 2393
never@3156 2394 if ((intptr_t)addr == -1) {
never@3156 2395 if (warn_on_failure) {
never@3156 2396 jio_snprintf(msg, sizeof(msg), "Failed to attach shared memory (errno = %d).", err);
never@3156 2397 warning(msg);
never@3156 2398 }
never@3156 2399 return NULL;
never@3156 2400 }
never@3156 2401
zgu@4711 2402 // The memory is committed
zgu@5272 2403 MemTracker::record_virtual_memory_reserve_and_commit((address)addr, bytes, mtNone, CALLER_PC);
zgu@4711 2404
never@3156 2405 return addr;
never@3156 2406 }
never@3156 2407
never@3156 2408 bool os::release_memory_special(char* base, size_t bytes) {
zgu@5272 2409 MemTracker::Tracker tkr = MemTracker::get_virtual_memory_release_tracker();
never@3156 2410 // detaching the SHM segment will also delete it, see reserve_memory_special()
never@3156 2411 int rslt = shmdt(base);
zgu@4711 2412 if (rslt == 0) {
zgu@5272 2413 tkr.record((address)base, bytes);
zgu@4711 2414 return true;
zgu@4711 2415 } else {
zgu@5272 2416 tkr.discard();
zgu@4711 2417 return false;
zgu@4711 2418 }
zgu@4711 2419
never@3156 2420 }
never@3156 2421
never@3156 2422 size_t os::large_page_size() {
never@3156 2423 return _large_page_size;
never@3156 2424 }
never@3156 2425
never@3156 2426 // HugeTLBFS allows application to commit large page memory on demand;
never@3156 2427 // with SysV SHM the entire memory region must be allocated as shared
never@3156 2428 // memory.
never@3156 2429 bool os::can_commit_large_page_memory() {
never@3156 2430 return UseHugeTLBFS;
never@3156 2431 }
never@3156 2432
never@3156 2433 bool os::can_execute_large_page_memory() {
never@3156 2434 return UseHugeTLBFS;
never@3156 2435 }
never@3156 2436
never@3156 2437 // Reserve memory at an arbitrary address, only if that area is
never@3156 2438 // available (and not reserved for something else).
never@3156 2439
zgu@3900 2440 char* os::pd_attempt_reserve_memory_at(size_t bytes, char* requested_addr) {
never@3156 2441 const int max_tries = 10;
never@3156 2442 char* base[max_tries];
never@3156 2443 size_t size[max_tries];
never@3156 2444 const size_t gap = 0x000000;
never@3156 2445
never@3156 2446 // Assert only that the size is a multiple of the page size, since
never@3156 2447 // that's all that mmap requires, and since that's all we really know
never@3156 2448 // about at this low abstraction level. If we need higher alignment,
never@3156 2449 // we can either pass an alignment to this method or verify alignment
never@3156 2450 // in one of the methods further up the call chain. See bug 5044738.
never@3156 2451 assert(bytes % os::vm_page_size() == 0, "reserving unexpected size block");
never@3156 2452
never@3156 2453 // Repeatedly allocate blocks until the block is allocated at the
never@3156 2454 // right spot. Give up after max_tries. Note that reserve_memory() will
never@3156 2455 // automatically update _highest_vm_reserved_address if the call is
never@3156 2456 // successful. The variable tracks the highest memory address every reserved
never@3156 2457 // by JVM. It is used to detect heap-stack collision if running with
never@3156 2458 // fixed-stack BsdThreads. Because here we may attempt to reserve more
never@3156 2459 // space than needed, it could confuse the collision detecting code. To
never@3156 2460 // solve the problem, save current _highest_vm_reserved_address and
never@3156 2461 // calculate the correct value before return.
never@3156 2462 address old_highest = _highest_vm_reserved_address;
never@3156 2463
never@3156 2464 // Bsd mmap allows caller to pass an address as hint; give it a try first,
never@3156 2465 // if kernel honors the hint then we can return immediately.
never@3156 2466 char * addr = anon_mmap(requested_addr, bytes, false);
never@3156 2467 if (addr == requested_addr) {
never@3156 2468 return requested_addr;
never@3156 2469 }
never@3156 2470
never@3156 2471 if (addr != NULL) {
never@3156 2472 // mmap() is successful but it fails to reserve at the requested address
never@3156 2473 anon_munmap(addr, bytes);
never@3156 2474 }
never@3156 2475
never@3156 2476 int i;
never@3156 2477 for (i = 0; i < max_tries; ++i) {
never@3156 2478 base[i] = reserve_memory(bytes);
never@3156 2479
never@3156 2480 if (base[i] != NULL) {
never@3156 2481 // Is this the block we wanted?
never@3156 2482 if (base[i] == requested_addr) {
never@3156 2483 size[i] = bytes;
never@3156 2484 break;
never@3156 2485 }
never@3156 2486
never@3156 2487 // Does this overlap the block we wanted? Give back the overlapped
never@3156 2488 // parts and try again.
never@3156 2489
never@3156 2490 size_t top_overlap = requested_addr + (bytes + gap) - base[i];
never@3156 2491 if (top_overlap >= 0 && top_overlap < bytes) {
never@3156 2492 unmap_memory(base[i], top_overlap);
never@3156 2493 base[i] += top_overlap;
never@3156 2494 size[i] = bytes - top_overlap;
never@3156 2495 } else {
never@3156 2496 size_t bottom_overlap = base[i] + bytes - requested_addr;
never@3156 2497 if (bottom_overlap >= 0 && bottom_overlap < bytes) {
never@3156 2498 unmap_memory(requested_addr, bottom_overlap);
never@3156 2499 size[i] = bytes - bottom_overlap;
never@3156 2500 } else {
never@3156 2501 size[i] = bytes;
never@3156 2502 }
never@3156 2503 }
never@3156 2504 }
never@3156 2505 }
never@3156 2506
never@3156 2507 // Give back the unused reserved pieces.
never@3156 2508
never@3156 2509 for (int j = 0; j < i; ++j) {
never@3156 2510 if (base[j] != NULL) {
never@3156 2511 unmap_memory(base[j], size[j]);
never@3156 2512 }
never@3156 2513 }
never@3156 2514
never@3156 2515 if (i < max_tries) {
never@3156 2516 _highest_vm_reserved_address = MAX2(old_highest, (address)requested_addr + bytes);
never@3156 2517 return requested_addr;
never@3156 2518 } else {
never@3156 2519 _highest_vm_reserved_address = old_highest;
never@3156 2520 return NULL;
never@3156 2521 }
never@3156 2522 }
never@3156 2523
never@3156 2524 size_t os::read(int fd, void *buf, unsigned int nBytes) {
never@3156 2525 RESTARTABLE_RETURN_INT(::read(fd, buf, nBytes));
never@3156 2526 }
never@3156 2527
never@3156 2528 // TODO-FIXME: reconcile Solaris' os::sleep with the bsd variation.
never@3156 2529 // Solaris uses poll(), bsd uses park().
never@3156 2530 // Poll() is likely a better choice, assuming that Thread.interrupt()
never@3156 2531 // generates a SIGUSRx signal. Note that SIGUSR1 can interfere with
never@3156 2532 // SIGSEGV, see 4355769.
never@3156 2533
never@3156 2534 int os::sleep(Thread* thread, jlong millis, bool interruptible) {
never@3156 2535 assert(thread == Thread::current(), "thread consistency check");
never@3156 2536
never@3156 2537 ParkEvent * const slp = thread->_SleepEvent ;
never@3156 2538 slp->reset() ;
never@3156 2539 OrderAccess::fence() ;
never@3156 2540
never@3156 2541 if (interruptible) {
never@3156 2542 jlong prevtime = javaTimeNanos();
never@3156 2543
never@3156 2544 for (;;) {
never@3156 2545 if (os::is_interrupted(thread, true)) {
never@3156 2546 return OS_INTRPT;
never@3156 2547 }
never@3156 2548
never@3156 2549 jlong newtime = javaTimeNanos();
never@3156 2550
never@3156 2551 if (newtime - prevtime < 0) {
never@3156 2552 // time moving backwards, should only happen if no monotonic clock
never@3156 2553 // not a guarantee() because JVM should not abort on kernel/glibc bugs
never@3156 2554 assert(!Bsd::supports_monotonic_clock(), "time moving backwards");
never@3156 2555 } else {
johnc@3339 2556 millis -= (newtime - prevtime) / NANOSECS_PER_MILLISEC;
never@3156 2557 }
never@3156 2558
never@3156 2559 if(millis <= 0) {
never@3156 2560 return OS_OK;
never@3156 2561 }
never@3156 2562
never@3156 2563 prevtime = newtime;
never@3156 2564
never@3156 2565 {
never@3156 2566 assert(thread->is_Java_thread(), "sanity check");
never@3156 2567 JavaThread *jt = (JavaThread *) thread;
never@3156 2568 ThreadBlockInVM tbivm(jt);
never@3156 2569 OSThreadWaitState osts(jt->osthread(), false /* not Object.wait() */);
never@3156 2570
never@3156 2571 jt->set_suspend_equivalent();
never@3156 2572 // cleared by handle_special_suspend_equivalent_condition() or
never@3156 2573 // java_suspend_self() via check_and_wait_while_suspended()
never@3156 2574
never@3156 2575 slp->park(millis);
never@3156 2576
never@3156 2577 // were we externally suspended while we were waiting?
never@3156 2578 jt->check_and_wait_while_suspended();
never@3156 2579 }
never@3156 2580 }
never@3156 2581 } else {
never@3156 2582 OSThreadWaitState osts(thread->osthread(), false /* not Object.wait() */);
never@3156 2583 jlong prevtime = javaTimeNanos();
never@3156 2584
never@3156 2585 for (;;) {
never@3156 2586 // It'd be nice to avoid the back-to-back javaTimeNanos() calls on
never@3156 2587 // the 1st iteration ...
never@3156 2588 jlong newtime = javaTimeNanos();
never@3156 2589
never@3156 2590 if (newtime - prevtime < 0) {
never@3156 2591 // time moving backwards, should only happen if no monotonic clock
never@3156 2592 // not a guarantee() because JVM should not abort on kernel/glibc bugs
never@3156 2593 assert(!Bsd::supports_monotonic_clock(), "time moving backwards");
never@3156 2594 } else {
johnc@3339 2595 millis -= (newtime - prevtime) / NANOSECS_PER_MILLISEC;
never@3156 2596 }
never@3156 2597
never@3156 2598 if(millis <= 0) break ;
never@3156 2599
never@3156 2600 prevtime = newtime;
never@3156 2601 slp->park(millis);
never@3156 2602 }
never@3156 2603 return OS_OK ;
never@3156 2604 }
never@3156 2605 }
never@3156 2606
dsimms@6348 2607 void os::naked_short_sleep(jlong ms) {
dsimms@6348 2608 struct timespec req;
dsimms@6348 2609
dsimms@6348 2610 assert(ms < 1000, "Un-interruptable sleep, short time use only");
dsimms@6348 2611 req.tv_sec = 0;
dsimms@6348 2612 if (ms > 0) {
dsimms@6348 2613 req.tv_nsec = (ms % 1000) * 1000000;
dsimms@6348 2614 }
dsimms@6348 2615 else {
dsimms@6348 2616 req.tv_nsec = 1;
dsimms@6348 2617 }
dsimms@6348 2618
dsimms@6348 2619 nanosleep(&req, NULL);
dsimms@6348 2620
dsimms@6348 2621 return;
never@3156 2622 }
never@3156 2623
never@3156 2624 // Sleep forever; naked call to OS-specific sleep; use with CAUTION
never@3156 2625 void os::infinite_sleep() {
never@3156 2626 while (true) { // sleep forever ...
never@3156 2627 ::sleep(100); // ... 100 seconds at a time
never@3156 2628 }
never@3156 2629 }
never@3156 2630
never@3156 2631 // Used to convert frequent JVM_Yield() to nops
never@3156 2632 bool os::dont_yield() {
never@3156 2633 return DontYieldALot;
never@3156 2634 }
never@3156 2635
never@3156 2636 void os::yield() {
never@3156 2637 sched_yield();
never@3156 2638 }
never@3156 2639
never@3156 2640 os::YieldResult os::NakedYield() { sched_yield(); return os::YIELD_UNKNOWN ;}
never@3156 2641
never@3156 2642 void os::yield_all(int attempts) {
never@3156 2643 // Yields to all threads, including threads with lower priorities
never@3156 2644 // Threads on Bsd are all with same priority. The Solaris style
never@3156 2645 // os::yield_all() with nanosleep(1ms) is not necessary.
never@3156 2646 sched_yield();
never@3156 2647 }
never@3156 2648
never@3156 2649 // Called from the tight loops to possibly influence time-sharing heuristics
never@3156 2650 void os::loop_breaker(int attempts) {
never@3156 2651 os::yield_all(attempts);
never@3156 2652 }
never@3156 2653
never@3156 2654 ////////////////////////////////////////////////////////////////////////////////
never@3156 2655 // thread priority support
never@3156 2656
never@3156 2657 // Note: Normal Bsd applications are run with SCHED_OTHER policy. SCHED_OTHER
never@3156 2658 // only supports dynamic priority, static priority must be zero. For real-time
never@3156 2659 // applications, Bsd supports SCHED_RR which allows static priority (1-99).
never@3156 2660 // However, for large multi-threaded applications, SCHED_RR is not only slower
never@3156 2661 // than SCHED_OTHER, but also very unstable (my volano tests hang hard 4 out
never@3156 2662 // of 5 runs - Sep 2005).
never@3156 2663 //
never@3156 2664 // The following code actually changes the niceness of kernel-thread/LWP. It
never@3156 2665 // has an assumption that setpriority() only modifies one kernel-thread/LWP,
never@3156 2666 // not the entire user process, and user level threads are 1:1 mapped to kernel
never@3156 2667 // threads. It has always been the case, but could change in the future. For
never@3156 2668 // this reason, the code should not be used as default (ThreadPriorityPolicy=0).
never@3156 2669 // It is only used when ThreadPriorityPolicy=1 and requires root privilege.
never@3156 2670
sla@4229 2671 #if !defined(__APPLE__)
phh@3481 2672 int os::java_to_os_priority[CriticalPriority + 1] = {
never@3156 2673 19, // 0 Entry should never be used
never@3156 2674
never@3156 2675 0, // 1 MinPriority
never@3156 2676 3, // 2
never@3156 2677 6, // 3
never@3156 2678
phh@3481 2679 10, // 4
phh@3481 2680 15, // 5 NormPriority
phh@3481 2681 18, // 6
phh@3481 2682
phh@3481 2683 21, // 7
phh@3481 2684 25, // 8
phh@3481 2685 28, // 9 NearMaxPriority
phh@3481 2686
phh@3481 2687 31, // 10 MaxPriority
phh@3481 2688
phh@3481 2689 31 // 11 CriticalPriority
never@3156 2690 };
sla@4229 2691 #else
never@3156 2692 /* Using Mach high-level priority assignments */
phh@3481 2693 int os::java_to_os_priority[CriticalPriority + 1] = {
never@3156 2694 0, // 0 Entry should never be used (MINPRI_USER)
never@3156 2695
never@3156 2696 27, // 1 MinPriority
never@3156 2697 28, // 2
never@3156 2698 29, // 3
never@3156 2699
never@3156 2700 30, // 4
never@3156 2701 31, // 5 NormPriority (BASEPRI_DEFAULT)
never@3156 2702 32, // 6
never@3156 2703
never@3156 2704 33, // 7
never@3156 2705 34, // 8
never@3156 2706 35, // 9 NearMaxPriority
never@3156 2707
phh@3481 2708 36, // 10 MaxPriority
phh@3481 2709
phh@3481 2710 36 // 11 CriticalPriority
never@3156 2711 };
never@3156 2712 #endif
never@3156 2713
never@3156 2714 static int prio_init() {
never@3156 2715 if (ThreadPriorityPolicy == 1) {
never@3156 2716 // Only root can raise thread priority. Don't allow ThreadPriorityPolicy=1
never@3156 2717 // if effective uid is not root. Perhaps, a more elegant way of doing
never@3156 2718 // this is to test CAP_SYS_NICE capability, but that will require libcap.so
never@3156 2719 if (geteuid() != 0) {
never@3156 2720 if (!FLAG_IS_DEFAULT(ThreadPriorityPolicy)) {
never@3156 2721 warning("-XX:ThreadPriorityPolicy requires root privilege on Bsd");
never@3156 2722 }
never@3156 2723 ThreadPriorityPolicy = 0;
never@3156 2724 }
never@3156 2725 }
phh@3481 2726 if (UseCriticalJavaThreadPriority) {
phh@3481 2727 os::java_to_os_priority[MaxPriority] = os::java_to_os_priority[CriticalPriority];
phh@3481 2728 }
never@3156 2729 return 0;
never@3156 2730 }
never@3156 2731
never@3156 2732 OSReturn os::set_native_priority(Thread* thread, int newpri) {
never@3156 2733 if ( !UseThreadPriorities || ThreadPriorityPolicy == 0 ) return OS_OK;
never@3156 2734
never@3156 2735 #ifdef __OpenBSD__
never@3156 2736 // OpenBSD pthread_setprio starves low priority threads
never@3156 2737 return OS_OK;
never@3156 2738 #elif defined(__FreeBSD__)
never@3156 2739 int ret = pthread_setprio(thread->osthread()->pthread_id(), newpri);
never@3156 2740 #elif defined(__APPLE__) || defined(__NetBSD__)
never@3156 2741 struct sched_param sp;
never@3156 2742 int policy;
never@3156 2743 pthread_t self = pthread_self();
never@3156 2744
never@3156 2745 if (pthread_getschedparam(self, &policy, &sp) != 0)
never@3156 2746 return OS_ERR;
never@3156 2747
never@3156 2748 sp.sched_priority = newpri;
never@3156 2749 if (pthread_setschedparam(self, policy, &sp) != 0)
never@3156 2750 return OS_ERR;
never@3156 2751
never@3156 2752 return OS_OK;
never@3156 2753 #else
never@3156 2754 int ret = setpriority(PRIO_PROCESS, thread->osthread()->thread_id(), newpri);
never@3156 2755 return (ret == 0) ? OS_OK : OS_ERR;
never@3156 2756 #endif
never@3156 2757 }
never@3156 2758
never@3156 2759 OSReturn os::get_native_priority(const Thread* const thread, int *priority_ptr) {
never@3156 2760 if ( !UseThreadPriorities || ThreadPriorityPolicy == 0 ) {
never@3156 2761 *priority_ptr = java_to_os_priority[NormPriority];
never@3156 2762 return OS_OK;
never@3156 2763 }
never@3156 2764
never@3156 2765 errno = 0;
never@3156 2766 #if defined(__OpenBSD__) || defined(__FreeBSD__)
never@3156 2767 *priority_ptr = pthread_getprio(thread->osthread()->pthread_id());
never@3156 2768 #elif defined(__APPLE__) || defined(__NetBSD__)
never@3156 2769 int policy;
never@3156 2770 struct sched_param sp;
never@3156 2771
never@3156 2772 pthread_getschedparam(pthread_self(), &policy, &sp);
never@3156 2773 *priority_ptr = sp.sched_priority;
never@3156 2774 #else
never@3156 2775 *priority_ptr = getpriority(PRIO_PROCESS, thread->osthread()->thread_id());
never@3156 2776 #endif
never@3156 2777 return (*priority_ptr != -1 || errno == 0 ? OS_OK : OS_ERR);
never@3156 2778 }
never@3156 2779
never@3156 2780 // Hint to the underlying OS that a task switch would not be good.
never@3156 2781 // Void return because it's a hint and can fail.
never@3156 2782 void os::hint_no_preempt() {}
never@3156 2783
never@3156 2784 ////////////////////////////////////////////////////////////////////////////////
never@3156 2785 // suspend/resume support
never@3156 2786
never@3156 2787 // the low-level signal-based suspend/resume support is a remnant from the
never@3156 2788 // old VM-suspension that used to be for java-suspension, safepoints etc,
never@3156 2789 // within hotspot. Now there is a single use-case for this:
never@3156 2790 // - calling get_thread_pc() on the VMThread by the flat-profiler task
never@3156 2791 // that runs in the watcher thread.
never@3156 2792 // The remaining code is greatly simplified from the more general suspension
never@3156 2793 // code that used to be used.
never@3156 2794 //
never@3156 2795 // The protocol is quite simple:
never@3156 2796 // - suspend:
never@3156 2797 // - sends a signal to the target thread
never@3156 2798 // - polls the suspend state of the osthread using a yield loop
never@3156 2799 // - target thread signal handler (SR_handler) sets suspend state
never@3156 2800 // and blocks in sigsuspend until continued
never@3156 2801 // - resume:
never@3156 2802 // - sets target osthread state to continue
never@3156 2803 // - sends signal to end the sigsuspend loop in the SR_handler
never@3156 2804 //
never@3156 2805 // Note that the SR_lock plays no role in this suspend/resume protocol.
never@3156 2806 //
never@3156 2807
never@3156 2808 static void resume_clear_context(OSThread *osthread) {
never@3156 2809 osthread->set_ucontext(NULL);
never@3156 2810 osthread->set_siginfo(NULL);
never@3156 2811 }
never@3156 2812
never@3156 2813 static void suspend_save_context(OSThread *osthread, siginfo_t* siginfo, ucontext_t* context) {
never@3156 2814 osthread->set_ucontext(context);
never@3156 2815 osthread->set_siginfo(siginfo);
never@3156 2816 }
never@3156 2817
never@3156 2818 //
never@3156 2819 // Handler function invoked when a thread's execution is suspended or
never@3156 2820 // resumed. We have to be careful that only async-safe functions are
never@3156 2821 // called here (Note: most pthread functions are not async safe and
never@3156 2822 // should be avoided.)
never@3156 2823 //
never@3156 2824 // Note: sigwait() is a more natural fit than sigsuspend() from an
never@3156 2825 // interface point of view, but sigwait() prevents the signal hander
never@3156 2826 // from being run. libpthread would get very confused by not having
never@3156 2827 // its signal handlers run and prevents sigwait()'s use with the
never@3156 2828 // mutex granting granting signal.
never@3156 2829 //
sla@5237 2830 // Currently only ever called on the VMThread or JavaThread
never@3156 2831 //
never@3156 2832 static void SR_handler(int sig, siginfo_t* siginfo, ucontext_t* context) {
never@3156 2833 // Save and restore errno to avoid confusing native code with EINTR
never@3156 2834 // after sigsuspend.
never@3156 2835 int old_errno = errno;
never@3156 2836
never@3156 2837 Thread* thread = Thread::current();
never@3156 2838 OSThread* osthread = thread->osthread();
sla@5237 2839 assert(thread->is_VM_thread() || thread->is_Java_thread(), "Must be VMThread or JavaThread");
sla@5237 2840
sla@5237 2841 os::SuspendResume::State current = osthread->sr.state();
sla@5237 2842 if (current == os::SuspendResume::SR_SUSPEND_REQUEST) {
never@3156 2843 suspend_save_context(osthread, siginfo, context);
never@3156 2844
sla@5237 2845 // attempt to switch the state, we assume we had a SUSPEND_REQUEST
sla@5237 2846 os::SuspendResume::State state = osthread->sr.suspended();
sla@5237 2847 if (state == os::SuspendResume::SR_SUSPENDED) {
sla@5237 2848 sigset_t suspend_set; // signals for sigsuspend()
sla@5237 2849
sla@5237 2850 // get current set of blocked signals and unblock resume signal
sla@5237 2851 pthread_sigmask(SIG_BLOCK, NULL, &suspend_set);
sla@5237 2852 sigdelset(&suspend_set, SR_signum);
sla@5237 2853
sla@5237 2854 sr_semaphore.signal();
sla@5237 2855 // wait here until we are resumed
sla@5237 2856 while (1) {
sla@5237 2857 sigsuspend(&suspend_set);
sla@5237 2858
sla@5237 2859 os::SuspendResume::State result = osthread->sr.running();
sla@5237 2860 if (result == os::SuspendResume::SR_RUNNING) {
sla@5237 2861 sr_semaphore.signal();
sla@5237 2862 break;
sla@5237 2863 } else if (result != os::SuspendResume::SR_SUSPENDED) {
sla@5237 2864 ShouldNotReachHere();
sla@5237 2865 }
sla@5237 2866 }
sla@5237 2867
sla@5237 2868 } else if (state == os::SuspendResume::SR_RUNNING) {
sla@5237 2869 // request was cancelled, continue
sla@5237 2870 } else {
sla@5237 2871 ShouldNotReachHere();
sla@5237 2872 }
never@3156 2873
never@3156 2874 resume_clear_context(osthread);
sla@5237 2875 } else if (current == os::SuspendResume::SR_RUNNING) {
sla@5237 2876 // request was cancelled, continue
sla@5237 2877 } else if (current == os::SuspendResume::SR_WAKEUP_REQUEST) {
sla@5237 2878 // ignore
never@3156 2879 } else {
sla@5237 2880 // ignore
never@3156 2881 }
never@3156 2882
never@3156 2883 errno = old_errno;
never@3156 2884 }
never@3156 2885
never@3156 2886
never@3156 2887 static int SR_initialize() {
never@3156 2888 struct sigaction act;
never@3156 2889 char *s;
never@3156 2890 /* Get signal number to use for suspend/resume */
never@3156 2891 if ((s = ::getenv("_JAVA_SR_SIGNUM")) != 0) {
never@3156 2892 int sig = ::strtol(s, 0, 10);
never@3156 2893 if (sig > 0 || sig < NSIG) {
never@3156 2894 SR_signum = sig;
never@3156 2895 }
never@3156 2896 }
never@3156 2897
never@3156 2898 assert(SR_signum > SIGSEGV && SR_signum > SIGBUS,
never@3156 2899 "SR_signum must be greater than max(SIGSEGV, SIGBUS), see 4355769");
never@3156 2900
never@3156 2901 sigemptyset(&SR_sigset);
never@3156 2902 sigaddset(&SR_sigset, SR_signum);
never@3156 2903
never@3156 2904 /* Set up signal handler for suspend/resume */
never@3156 2905 act.sa_flags = SA_RESTART|SA_SIGINFO;
never@3156 2906 act.sa_handler = (void (*)(int)) SR_handler;
never@3156 2907
never@3156 2908 // SR_signum is blocked by default.
never@3156 2909 // 4528190 - We also need to block pthread restart signal (32 on all
never@3156 2910 // supported Bsd platforms). Note that BsdThreads need to block
never@3156 2911 // this signal for all threads to work properly. So we don't have
never@3156 2912 // to use hard-coded signal number when setting up the mask.
never@3156 2913 pthread_sigmask(SIG_BLOCK, NULL, &act.sa_mask);
never@3156 2914
never@3156 2915 if (sigaction(SR_signum, &act, 0) == -1) {
never@3156 2916 return -1;
never@3156 2917 }
never@3156 2918
never@3156 2919 // Save signal flag
never@3156 2920 os::Bsd::set_our_sigflags(SR_signum, act.sa_flags);
never@3156 2921 return 0;
never@3156 2922 }
never@3156 2923
sla@5237 2924 static int sr_notify(OSThread* osthread) {
sla@5237 2925 int status = pthread_kill(osthread->pthread_id(), SR_signum);
sla@5237 2926 assert_status(status == 0, status, "pthread_kill");
sla@5237 2927 return status;
sla@5237 2928 }
sla@5237 2929
sla@5237 2930 // "Randomly" selected value for how long we want to spin
sla@5237 2931 // before bailing out on suspending a thread, also how often
sla@5237 2932 // we send a signal to a thread we want to resume
sla@5237 2933 static const int RANDOMLY_LARGE_INTEGER = 1000000;
sla@5237 2934 static const int RANDOMLY_LARGE_INTEGER2 = 100;
never@3156 2935
never@3156 2936 // returns true on success and false on error - really an error is fatal
never@3156 2937 // but this seems the normal response to library errors
never@3156 2938 static bool do_suspend(OSThread* osthread) {
sla@5237 2939 assert(osthread->sr.is_running(), "thread should be running");
sla@5237 2940 assert(!sr_semaphore.trywait(), "semaphore has invalid state");
sla@5237 2941
never@3156 2942 // mark as suspended and send signal
sla@5237 2943 if (osthread->sr.request_suspend() != os::SuspendResume::SR_SUSPEND_REQUEST) {
sla@5237 2944 // failed to switch, state wasn't running?
sla@5237 2945 ShouldNotReachHere();
never@3156 2946 return false;
never@3156 2947 }
sla@5237 2948
sla@5237 2949 if (sr_notify(osthread) != 0) {
sla@5237 2950 ShouldNotReachHere();
sla@5237 2951 }
sla@5237 2952
sla@5237 2953 // managed to send the signal and switch to SUSPEND_REQUEST, now wait for SUSPENDED
sla@5237 2954 while (true) {
sla@5237 2955 if (sr_semaphore.timedwait(0, 2 * NANOSECS_PER_MILLISEC)) {
sla@5237 2956 break;
sla@5237 2957 } else {
sla@5237 2958 // timeout
sla@5237 2959 os::SuspendResume::State cancelled = osthread->sr.cancel_suspend();
sla@5237 2960 if (cancelled == os::SuspendResume::SR_RUNNING) {
sla@5237 2961 return false;
sla@5237 2962 } else if (cancelled == os::SuspendResume::SR_SUSPENDED) {
sla@5237 2963 // make sure that we consume the signal on the semaphore as well
sla@5237 2964 sr_semaphore.wait();
sla@5237 2965 break;
sla@5237 2966 } else {
sla@5237 2967 ShouldNotReachHere();
sla@5237 2968 return false;
sla@5237 2969 }
sla@5237 2970 }
sla@5237 2971 }
sla@5237 2972
sla@5237 2973 guarantee(osthread->sr.is_suspended(), "Must be suspended");
sla@5237 2974 return true;
never@3156 2975 }
never@3156 2976
never@3156 2977 static void do_resume(OSThread* osthread) {
never@3156 2978 assert(osthread->sr.is_suspended(), "thread should be suspended");
sla@5237 2979 assert(!sr_semaphore.trywait(), "invalid semaphore state");
sla@5237 2980
sla@5237 2981 if (osthread->sr.request_wakeup() != os::SuspendResume::SR_WAKEUP_REQUEST) {
sla@5237 2982 // failed to switch to WAKEUP_REQUEST
sla@5237 2983 ShouldNotReachHere();
sla@5237 2984 return;
sla@5237 2985 }
sla@5237 2986
sla@5237 2987 while (true) {
sla@5237 2988 if (sr_notify(osthread) == 0) {
sla@5237 2989 if (sr_semaphore.timedwait(0, 2 * NANOSECS_PER_MILLISEC)) {
sla@5237 2990 if (osthread->sr.is_running()) {
sla@5237 2991 return;
sla@5237 2992 }
sla@5237 2993 }
sla@5237 2994 } else {
sla@5237 2995 ShouldNotReachHere();
never@3156 2996 }
never@3156 2997 }
sla@5237 2998
sla@5237 2999 guarantee(osthread->sr.is_running(), "Must be running!");
never@3156 3000 }
never@3156 3001
never@3156 3002 ////////////////////////////////////////////////////////////////////////////////
never@3156 3003 // interrupt support
never@3156 3004
never@3156 3005 void os::interrupt(Thread* thread) {
never@3156 3006 assert(Thread::current() == thread || Threads_lock->owned_by_self(),
never@3156 3007 "possibility of dangling Thread pointer");
never@3156 3008
never@3156 3009 OSThread* osthread = thread->osthread();
never@3156 3010
never@3156 3011 if (!osthread->interrupted()) {
never@3156 3012 osthread->set_interrupted(true);
never@3156 3013 // More than one thread can get here with the same value of osthread,
never@3156 3014 // resulting in multiple notifications. We do, however, want the store
never@3156 3015 // to interrupted() to be visible to other threads before we execute unpark().
never@3156 3016 OrderAccess::fence();
never@3156 3017 ParkEvent * const slp = thread->_SleepEvent ;
never@3156 3018 if (slp != NULL) slp->unpark() ;
never@3156 3019 }
never@3156 3020
never@3156 3021 // For JSR166. Unpark even if interrupt status already was set
never@3156 3022 if (thread->is_Java_thread())
never@3156 3023 ((JavaThread*)thread)->parker()->unpark();
never@3156 3024
never@3156 3025 ParkEvent * ev = thread->_ParkEvent ;
never@3156 3026 if (ev != NULL) ev->unpark() ;
never@3156 3027
never@3156 3028 }
never@3156 3029
never@3156 3030 bool os::is_interrupted(Thread* thread, bool clear_interrupted) {
never@3156 3031 assert(Thread::current() == thread || Threads_lock->owned_by_self(),
never@3156 3032 "possibility of dangling Thread pointer");
never@3156 3033
never@3156 3034 OSThread* osthread = thread->osthread();
never@3156 3035
never@3156 3036 bool interrupted = osthread->interrupted();
never@3156 3037
never@3156 3038 if (interrupted && clear_interrupted) {
never@3156 3039 osthread->set_interrupted(false);
never@3156 3040 // consider thread->_SleepEvent->reset() ... optional optimization
never@3156 3041 }
never@3156 3042
never@3156 3043 return interrupted;
never@3156 3044 }
never@3156 3045
never@3156 3046 ///////////////////////////////////////////////////////////////////////////////////
never@3156 3047 // signal handling (except suspend/resume)
never@3156 3048
never@3156 3049 // This routine may be used by user applications as a "hook" to catch signals.
never@3156 3050 // The user-defined signal handler must pass unrecognized signals to this
never@3156 3051 // routine, and if it returns true (non-zero), then the signal handler must
never@3156 3052 // return immediately. If the flag "abort_if_unrecognized" is true, then this
never@3156 3053 // routine will never retun false (zero), but instead will execute a VM panic
never@3156 3054 // routine kill the process.
never@3156 3055 //
never@3156 3056 // If this routine returns false, it is OK to call it again. This allows
never@3156 3057 // the user-defined signal handler to perform checks either before or after
never@3156 3058 // the VM performs its own checks. Naturally, the user code would be making
never@3156 3059 // a serious error if it tried to handle an exception (such as a null check
never@3156 3060 // or breakpoint) that the VM was generating for its own correct operation.
never@3156 3061 //
never@3156 3062 // This routine may recognize any of the following kinds of signals:
never@3156 3063 // SIGBUS, SIGSEGV, SIGILL, SIGFPE, SIGQUIT, SIGPIPE, SIGXFSZ, SIGUSR1.
never@3156 3064 // It should be consulted by handlers for any of those signals.
never@3156 3065 //
never@3156 3066 // The caller of this routine must pass in the three arguments supplied
never@3156 3067 // to the function referred to in the "sa_sigaction" (not the "sa_handler")
never@3156 3068 // field of the structure passed to sigaction(). This routine assumes that
never@3156 3069 // the sa_flags field passed to sigaction() includes SA_SIGINFO and SA_RESTART.
never@3156 3070 //
never@3156 3071 // Note that the VM will print warnings if it detects conflicting signal
never@3156 3072 // handlers, unless invoked with the option "-XX:+AllowUserSignalHandlers".
never@3156 3073 //
never@3156 3074 extern "C" JNIEXPORT int
never@3156 3075 JVM_handle_bsd_signal(int signo, siginfo_t* siginfo,
never@3156 3076 void* ucontext, int abort_if_unrecognized);
never@3156 3077
never@3156 3078 void signalHandler(int sig, siginfo_t* info, void* uc) {
never@3156 3079 assert(info != NULL && uc != NULL, "it must be old kernel");
hseigel@4608 3080 int orig_errno = errno; // Preserve errno value over signal handler.
never@3156 3081 JVM_handle_bsd_signal(sig, info, uc, true);
hseigel@4608 3082 errno = orig_errno;
never@3156 3083 }
never@3156 3084
never@3156 3085
never@3156 3086 // This boolean allows users to forward their own non-matching signals
never@3156 3087 // to JVM_handle_bsd_signal, harmlessly.
never@3156 3088 bool os::Bsd::signal_handlers_are_installed = false;
never@3156 3089
never@3156 3090 // For signal-chaining
never@3156 3091 struct sigaction os::Bsd::sigact[MAXSIGNUM];
never@3156 3092 unsigned int os::Bsd::sigs = 0;
never@3156 3093 bool os::Bsd::libjsig_is_loaded = false;
never@3156 3094 typedef struct sigaction *(*get_signal_t)(int);
never@3156 3095 get_signal_t os::Bsd::get_signal_action = NULL;
never@3156 3096
never@3156 3097 struct sigaction* os::Bsd::get_chained_signal_action(int sig) {
never@3156 3098 struct sigaction *actp = NULL;
never@3156 3099
never@3156 3100 if (libjsig_is_loaded) {
never@3156 3101 // Retrieve the old signal handler from libjsig
never@3156 3102 actp = (*get_signal_action)(sig);
never@3156 3103 }
never@3156 3104 if (actp == NULL) {
never@3156 3105 // Retrieve the preinstalled signal handler from jvm
never@3156 3106 actp = get_preinstalled_handler(sig);
never@3156 3107 }
never@3156 3108
never@3156 3109 return actp;
never@3156 3110 }
never@3156 3111
never@3156 3112 static bool call_chained_handler(struct sigaction *actp, int sig,
never@3156 3113 siginfo_t *siginfo, void *context) {
never@3156 3114 // Call the old signal handler
never@3156 3115 if (actp->sa_handler == SIG_DFL) {
never@3156 3116 // It's more reasonable to let jvm treat it as an unexpected exception
never@3156 3117 // instead of taking the default action.
never@3156 3118 return false;
never@3156 3119 } else if (actp->sa_handler != SIG_IGN) {
never@3156 3120 if ((actp->sa_flags & SA_NODEFER) == 0) {
never@3156 3121 // automaticlly block the signal
never@3156 3122 sigaddset(&(actp->sa_mask), sig);
never@3156 3123 }
never@3156 3124
never@3156 3125 sa_handler_t hand;
never@3156 3126 sa_sigaction_t sa;
never@3156 3127 bool siginfo_flag_set = (actp->sa_flags & SA_SIGINFO) != 0;
never@3156 3128 // retrieve the chained handler
never@3156 3129 if (siginfo_flag_set) {
never@3156 3130 sa = actp->sa_sigaction;
never@3156 3131 } else {
never@3156 3132 hand = actp->sa_handler;
never@3156 3133 }
never@3156 3134
never@3156 3135 if ((actp->sa_flags & SA_RESETHAND) != 0) {
never@3156 3136 actp->sa_handler = SIG_DFL;
never@3156 3137 }
never@3156 3138
never@3156 3139 // try to honor the signal mask
never@3156 3140 sigset_t oset;
never@3156 3141 pthread_sigmask(SIG_SETMASK, &(actp->sa_mask), &oset);
never@3156 3142
never@3156 3143 // call into the chained handler
never@3156 3144 if (siginfo_flag_set) {
never@3156 3145 (*sa)(sig, siginfo, context);
never@3156 3146 } else {
never@3156 3147 (*hand)(sig);
never@3156 3148 }
never@3156 3149
never@3156 3150 // restore the signal mask
never@3156 3151 pthread_sigmask(SIG_SETMASK, &oset, 0);
never@3156 3152 }
never@3156 3153 // Tell jvm's signal handler the signal is taken care of.
never@3156 3154 return true;
never@3156 3155 }
never@3156 3156
never@3156 3157 bool os::Bsd::chained_handler(int sig, siginfo_t* siginfo, void* context) {
never@3156 3158 bool chained = false;
never@3156 3159 // signal-chaining
never@3156 3160 if (UseSignalChaining) {
never@3156 3161 struct sigaction *actp = get_chained_signal_action(sig);
never@3156 3162 if (actp != NULL) {
never@3156 3163 chained = call_chained_handler(actp, sig, siginfo, context);
never@3156 3164 }
never@3156 3165 }
never@3156 3166 return chained;
never@3156 3167 }
never@3156 3168
never@3156 3169 struct sigaction* os::Bsd::get_preinstalled_handler(int sig) {
never@3156 3170 if ((( (unsigned int)1 << sig ) & sigs) != 0) {
never@3156 3171 return &sigact[sig];
never@3156 3172 }
never@3156 3173 return NULL;
never@3156 3174 }
never@3156 3175
never@3156 3176 void os::Bsd::save_preinstalled_handler(int sig, struct sigaction& oldAct) {
never@3156 3177 assert(sig > 0 && sig < MAXSIGNUM, "vm signal out of expected range");
never@3156 3178 sigact[sig] = oldAct;
never@3156 3179 sigs |= (unsigned int)1 << sig;
never@3156 3180 }
never@3156 3181
never@3156 3182 // for diagnostic
never@3156 3183 int os::Bsd::sigflags[MAXSIGNUM];
never@3156 3184
never@3156 3185 int os::Bsd::get_our_sigflags(int sig) {
never@3156 3186 assert(sig > 0 && sig < MAXSIGNUM, "vm signal out of expected range");
never@3156 3187 return sigflags[sig];
never@3156 3188 }
never@3156 3189
never@3156 3190 void os::Bsd::set_our_sigflags(int sig, int flags) {
never@3156 3191 assert(sig > 0 && sig < MAXSIGNUM, "vm signal out of expected range");
never@3156 3192 sigflags[sig] = flags;
never@3156 3193 }
never@3156 3194
never@3156 3195 void os::Bsd::set_signal_handler(int sig, bool set_installed) {
never@3156 3196 // Check for overwrite.
never@3156 3197 struct sigaction oldAct;
never@3156 3198 sigaction(sig, (struct sigaction*)NULL, &oldAct);
never@3156 3199
never@3156 3200 void* oldhand = oldAct.sa_sigaction
never@3156 3201 ? CAST_FROM_FN_PTR(void*, oldAct.sa_sigaction)
never@3156 3202 : CAST_FROM_FN_PTR(void*, oldAct.sa_handler);
never@3156 3203 if (oldhand != CAST_FROM_FN_PTR(void*, SIG_DFL) &&
never@3156 3204 oldhand != CAST_FROM_FN_PTR(void*, SIG_IGN) &&
never@3156 3205 oldhand != CAST_FROM_FN_PTR(void*, (sa_sigaction_t)signalHandler)) {
never@3156 3206 if (AllowUserSignalHandlers || !set_installed) {
never@3156 3207 // Do not overwrite; user takes responsibility to forward to us.
never@3156 3208 return;
never@3156 3209 } else if (UseSignalChaining) {
never@3156 3210 // save the old handler in jvm
never@3156 3211 save_preinstalled_handler(sig, oldAct);
never@3156 3212 // libjsig also interposes the sigaction() call below and saves the
never@3156 3213 // old sigaction on it own.
never@3156 3214 } else {
never@3156 3215 fatal(err_msg("Encountered unexpected pre-existing sigaction handler "
never@3156 3216 "%#lx for signal %d.", (long)oldhand, sig));
never@3156 3217 }
never@3156 3218 }
never@3156 3219
never@3156 3220 struct sigaction sigAct;
never@3156 3221 sigfillset(&(sigAct.sa_mask));
never@3156 3222 sigAct.sa_handler = SIG_DFL;
never@3156 3223 if (!set_installed) {
never@3156 3224 sigAct.sa_flags = SA_SIGINFO|SA_RESTART;
never@3156 3225 } else {
never@3156 3226 sigAct.sa_sigaction = signalHandler;
never@3156 3227 sigAct.sa_flags = SA_SIGINFO|SA_RESTART;
never@3156 3228 }
goetz@6556 3229 #ifdef __APPLE__
hseigel@5218 3230 // Needed for main thread as XNU (Mac OS X kernel) will only deliver SIGSEGV
hseigel@5218 3231 // (which starts as SIGBUS) on main thread with faulting address inside "stack+guard pages"
hseigel@5218 3232 // if the signal handler declares it will handle it on alternate stack.
hseigel@5218 3233 // Notice we only declare we will handle it on alt stack, but we are not
hseigel@5218 3234 // actually going to use real alt stack - this is just a workaround.
hseigel@5218 3235 // Please see ux_exception.c, method catch_mach_exception_raise for details
hseigel@5218 3236 // link http://www.opensource.apple.com/source/xnu/xnu-2050.18.24/bsd/uxkern/ux_exception.c
hseigel@5218 3237 if (sig == SIGSEGV) {
hseigel@5218 3238 sigAct.sa_flags |= SA_ONSTACK;
hseigel@5218 3239 }
hseigel@5218 3240 #endif
hseigel@5218 3241
never@3156 3242 // Save flags, which are set by ours
never@3156 3243 assert(sig > 0 && sig < MAXSIGNUM, "vm signal out of expected range");
never@3156 3244 sigflags[sig] = sigAct.sa_flags;
never@3156 3245
never@3156 3246 int ret = sigaction(sig, &sigAct, &oldAct);
never@3156 3247 assert(ret == 0, "check");
never@3156 3248
never@3156 3249 void* oldhand2 = oldAct.sa_sigaction
never@3156 3250 ? CAST_FROM_FN_PTR(void*, oldAct.sa_sigaction)
never@3156 3251 : CAST_FROM_FN_PTR(void*, oldAct.sa_handler);
never@3156 3252 assert(oldhand2 == oldhand, "no concurrent signal handler installation");
never@3156 3253 }
never@3156 3254
never@3156 3255 // install signal handlers for signals that HotSpot needs to
never@3156 3256 // handle in order to support Java-level exception handling.
never@3156 3257
never@3156 3258 void os::Bsd::install_signal_handlers() {
never@3156 3259 if (!signal_handlers_are_installed) {
never@3156 3260 signal_handlers_are_installed = true;
never@3156 3261
never@3156 3262 // signal-chaining
never@3156 3263 typedef void (*signal_setting_t)();
never@3156 3264 signal_setting_t begin_signal_setting = NULL;
never@3156 3265 signal_setting_t end_signal_setting = NULL;
never@3156 3266 begin_signal_setting = CAST_TO_FN_PTR(signal_setting_t,
never@3156 3267 dlsym(RTLD_DEFAULT, "JVM_begin_signal_setting"));
never@3156 3268 if (begin_signal_setting != NULL) {
never@3156 3269 end_signal_setting = CAST_TO_FN_PTR(signal_setting_t,
never@3156 3270 dlsym(RTLD_DEFAULT, "JVM_end_signal_setting"));
never@3156 3271 get_signal_action = CAST_TO_FN_PTR(get_signal_t,
never@3156 3272 dlsym(RTLD_DEFAULT, "JVM_get_signal_action"));
never@3156 3273 libjsig_is_loaded = true;
never@3156 3274 assert(UseSignalChaining, "should enable signal-chaining");
never@3156 3275 }
never@3156 3276 if (libjsig_is_loaded) {
never@3156 3277 // Tell libjsig jvm is setting signal handlers
never@3156 3278 (*begin_signal_setting)();
never@3156 3279 }
never@3156 3280
never@3156 3281 set_signal_handler(SIGSEGV, true);
never@3156 3282 set_signal_handler(SIGPIPE, true);
never@3156 3283 set_signal_handler(SIGBUS, true);
never@3156 3284 set_signal_handler(SIGILL, true);
never@3156 3285 set_signal_handler(SIGFPE, true);
never@3156 3286 set_signal_handler(SIGXFSZ, true);
never@3156 3287
never@3156 3288 #if defined(__APPLE__)
never@3156 3289 // In Mac OS X 10.4, CrashReporter will write a crash log for all 'fatal' signals, including
never@3156 3290 // signals caught and handled by the JVM. To work around this, we reset the mach task
never@3156 3291 // signal handler that's placed on our process by CrashReporter. This disables
never@3156 3292 // CrashReporter-based reporting.
never@3156 3293 //
never@3156 3294 // This work-around is not necessary for 10.5+, as CrashReporter no longer intercedes
never@3156 3295 // on caught fatal signals.
never@3156 3296 //
never@3156 3297 // Additionally, gdb installs both standard BSD signal handlers, and mach exception
never@3156 3298 // handlers. By replacing the existing task exception handler, we disable gdb's mach
never@3156 3299 // exception handling, while leaving the standard BSD signal handlers functional.
never@3156 3300 kern_return_t kr;
never@3156 3301 kr = task_set_exception_ports(mach_task_self(),
never@3156 3302 EXC_MASK_BAD_ACCESS | EXC_MASK_ARITHMETIC,
never@3156 3303 MACH_PORT_NULL,
never@3156 3304 EXCEPTION_STATE_IDENTITY,
never@3156 3305 MACHINE_THREAD_STATE);
never@3156 3306
never@3156 3307 assert(kr == KERN_SUCCESS, "could not set mach task signal handler");
never@3156 3308 #endif
never@3156 3309
never@3156 3310 if (libjsig_is_loaded) {
never@3156 3311 // Tell libjsig jvm finishes setting signal handlers
never@3156 3312 (*end_signal_setting)();
never@3156 3313 }
never@3156 3314
never@3156 3315 // We don't activate signal checker if libjsig is in place, we trust ourselves
never@3156 3316 // and if UserSignalHandler is installed all bets are off
never@3156 3317 if (CheckJNICalls) {
never@3156 3318 if (libjsig_is_loaded) {
hseigel@5564 3319 if (PrintJNIResolving) {
hseigel@5564 3320 tty->print_cr("Info: libjsig is activated, all active signal checking is disabled");
hseigel@5564 3321 }
never@3156 3322 check_signals = false;
never@3156 3323 }
never@3156 3324 if (AllowUserSignalHandlers) {
hseigel@5564 3325 if (PrintJNIResolving) {
hseigel@5564 3326 tty->print_cr("Info: AllowUserSignalHandlers is activated, all active signal checking is disabled");
hseigel@5564 3327 }
never@3156 3328 check_signals = false;
never@3156 3329 }
never@3156 3330 }
never@3156 3331 }
never@3156 3332 }
never@3156 3333
never@3156 3334
never@3156 3335 /////
never@3156 3336 // glibc on Bsd platform uses non-documented flag
never@3156 3337 // to indicate, that some special sort of signal
never@3156 3338 // trampoline is used.
never@3156 3339 // We will never set this flag, and we should
never@3156 3340 // ignore this flag in our diagnostic
never@3156 3341 #ifdef SIGNIFICANT_SIGNAL_MASK
never@3156 3342 #undef SIGNIFICANT_SIGNAL_MASK
never@3156 3343 #endif
never@3156 3344 #define SIGNIFICANT_SIGNAL_MASK (~0x04000000)
never@3156 3345
never@3156 3346 static const char* get_signal_handler_name(address handler,
never@3156 3347 char* buf, int buflen) {
never@3156 3348 int offset;
never@3156 3349 bool found = os::dll_address_to_library_name(handler, buf, buflen, &offset);
never@3156 3350 if (found) {
never@3156 3351 // skip directory names
never@3156 3352 const char *p1, *p2;
never@3156 3353 p1 = buf;
never@3156 3354 size_t len = strlen(os::file_separator());
never@3156 3355 while ((p2 = strstr(p1, os::file_separator())) != NULL) p1 = p2 + len;
never@3156 3356 jio_snprintf(buf, buflen, "%s+0x%x", p1, offset);
never@3156 3357 } else {
never@3156 3358 jio_snprintf(buf, buflen, PTR_FORMAT, handler);
never@3156 3359 }
never@3156 3360 return buf;
never@3156 3361 }
never@3156 3362
never@3156 3363 static void print_signal_handler(outputStream* st, int sig,
never@3156 3364 char* buf, size_t buflen) {
never@3156 3365 struct sigaction sa;
never@3156 3366
never@3156 3367 sigaction(sig, NULL, &sa);
never@3156 3368
never@3156 3369 // See comment for SIGNIFICANT_SIGNAL_MASK define
never@3156 3370 sa.sa_flags &= SIGNIFICANT_SIGNAL_MASK;
never@3156 3371
never@3156 3372 st->print("%s: ", os::exception_name(sig, buf, buflen));
never@3156 3373
never@3156 3374 address handler = (sa.sa_flags & SA_SIGINFO)
never@3156 3375 ? CAST_FROM_FN_PTR(address, sa.sa_sigaction)
never@3156 3376 : CAST_FROM_FN_PTR(address, sa.sa_handler);
never@3156 3377
never@3156 3378 if (handler == CAST_FROM_FN_PTR(address, SIG_DFL)) {
never@3156 3379 st->print("SIG_DFL");
never@3156 3380 } else if (handler == CAST_FROM_FN_PTR(address, SIG_IGN)) {
never@3156 3381 st->print("SIG_IGN");
never@3156 3382 } else {
never@3156 3383 st->print("[%s]", get_signal_handler_name(handler, buf, buflen));
never@3156 3384 }
never@3156 3385
goetz@6460 3386 st->print(", sa_mask[0]=");
goetz@6460 3387 os::Posix::print_signal_set_short(st, &sa.sa_mask);
never@3156 3388
never@3156 3389 address rh = VMError::get_resetted_sighandler(sig);
never@3156 3390 // May be, handler was resetted by VMError?
never@3156 3391 if(rh != NULL) {
never@3156 3392 handler = rh;
never@3156 3393 sa.sa_flags = VMError::get_resetted_sigflags(sig) & SIGNIFICANT_SIGNAL_MASK;
never@3156 3394 }
never@3156 3395
goetz@6460 3396 st->print(", sa_flags=");
goetz@6460 3397 os::Posix::print_sa_flags(st, sa.sa_flags);
never@3156 3398
never@3156 3399 // Check: is it our handler?
never@3156 3400 if(handler == CAST_FROM_FN_PTR(address, (sa_sigaction_t)signalHandler) ||
never@3156 3401 handler == CAST_FROM_FN_PTR(address, (sa_sigaction_t)SR_handler)) {
never@3156 3402 // It is our signal handler
never@3156 3403 // check for flags, reset system-used one!
never@3156 3404 if((int)sa.sa_flags != os::Bsd::get_our_sigflags(sig)) {
never@3156 3405 st->print(
never@3156 3406 ", flags was changed from " PTR32_FORMAT ", consider using jsig library",
never@3156 3407 os::Bsd::get_our_sigflags(sig));
never@3156 3408 }
never@3156 3409 }
never@3156 3410 st->cr();
never@3156 3411 }
never@3156 3412
never@3156 3413
never@3156 3414 #define DO_SIGNAL_CHECK(sig) \
never@3156 3415 if (!sigismember(&check_signal_done, sig)) \
never@3156 3416 os::Bsd::check_signal_handler(sig)
never@3156 3417
never@3156 3418 // This method is a periodic task to check for misbehaving JNI applications
never@3156 3419 // under CheckJNI, we can add any periodic checks here
never@3156 3420
never@3156 3421 void os::run_periodic_checks() {
never@3156 3422
never@3156 3423 if (check_signals == false) return;
never@3156 3424
never@3156 3425 // SEGV and BUS if overridden could potentially prevent
never@3156 3426 // generation of hs*.log in the event of a crash, debugging
never@3156 3427 // such a case can be very challenging, so we absolutely
never@3156 3428 // check the following for a good measure:
never@3156 3429 DO_SIGNAL_CHECK(SIGSEGV);
never@3156 3430 DO_SIGNAL_CHECK(SIGILL);
never@3156 3431 DO_SIGNAL_CHECK(SIGFPE);
never@3156 3432 DO_SIGNAL_CHECK(SIGBUS);
never@3156 3433 DO_SIGNAL_CHECK(SIGPIPE);
never@3156 3434 DO_SIGNAL_CHECK(SIGXFSZ);
never@3156 3435
never@3156 3436
never@3156 3437 // ReduceSignalUsage allows the user to override these handlers
never@3156 3438 // see comments at the very top and jvm_solaris.h
never@3156 3439 if (!ReduceSignalUsage) {
never@3156 3440 DO_SIGNAL_CHECK(SHUTDOWN1_SIGNAL);
never@3156 3441 DO_SIGNAL_CHECK(SHUTDOWN2_SIGNAL);
never@3156 3442 DO_SIGNAL_CHECK(SHUTDOWN3_SIGNAL);
never@3156 3443 DO_SIGNAL_CHECK(BREAK_SIGNAL);
never@3156 3444 }
never@3156 3445
never@3156 3446 DO_SIGNAL_CHECK(SR_signum);
never@3156 3447 DO_SIGNAL_CHECK(INTERRUPT_SIGNAL);
never@3156 3448 }
never@3156 3449
never@3156 3450 typedef int (*os_sigaction_t)(int, const struct sigaction *, struct sigaction *);
never@3156 3451
never@3156 3452 static os_sigaction_t os_sigaction = NULL;
never@3156 3453
never@3156 3454 void os::Bsd::check_signal_handler(int sig) {
never@3156 3455 char buf[O_BUFLEN];
never@3156 3456 address jvmHandler = NULL;
never@3156 3457
never@3156 3458
never@3156 3459 struct sigaction act;
never@3156 3460 if (os_sigaction == NULL) {
never@3156 3461 // only trust the default sigaction, in case it has been interposed
never@3156 3462 os_sigaction = (os_sigaction_t)dlsym(RTLD_DEFAULT, "sigaction");
never@3156 3463 if (os_sigaction == NULL) return;
never@3156 3464 }
never@3156 3465
never@3156 3466 os_sigaction(sig, (struct sigaction*)NULL, &act);
never@3156 3467
never@3156 3468
never@3156 3469 act.sa_flags &= SIGNIFICANT_SIGNAL_MASK;
never@3156 3470
never@3156 3471 address thisHandler = (act.sa_flags & SA_SIGINFO)
never@3156 3472 ? CAST_FROM_FN_PTR(address, act.sa_sigaction)
never@3156 3473 : CAST_FROM_FN_PTR(address, act.sa_handler) ;
never@3156 3474
never@3156 3475
never@3156 3476 switch(sig) {
never@3156 3477 case SIGSEGV:
never@3156 3478 case SIGBUS:
never@3156 3479 case SIGFPE:
never@3156 3480 case SIGPIPE:
never@3156 3481 case SIGILL:
never@3156 3482 case SIGXFSZ:
never@3156 3483 jvmHandler = CAST_FROM_FN_PTR(address, (sa_sigaction_t)signalHandler);
never@3156 3484 break;
never@3156 3485
never@3156 3486 case SHUTDOWN1_SIGNAL:
never@3156 3487 case SHUTDOWN2_SIGNAL:
never@3156 3488 case SHUTDOWN3_SIGNAL:
never@3156 3489 case BREAK_SIGNAL:
never@3156 3490 jvmHandler = (address)user_handler();
never@3156 3491 break;
never@3156 3492
never@3156 3493 case INTERRUPT_SIGNAL:
never@3156 3494 jvmHandler = CAST_FROM_FN_PTR(address, SIG_DFL);
never@3156 3495 break;
never@3156 3496
never@3156 3497 default:
never@3156 3498 if (sig == SR_signum) {
never@3156 3499 jvmHandler = CAST_FROM_FN_PTR(address, (sa_sigaction_t)SR_handler);
never@3156 3500 } else {
never@3156 3501 return;
never@3156 3502 }
never@3156 3503 break;
never@3156 3504 }
never@3156 3505
never@3156 3506 if (thisHandler != jvmHandler) {
never@3156 3507 tty->print("Warning: %s handler ", exception_name(sig, buf, O_BUFLEN));
never@3156 3508 tty->print("expected:%s", get_signal_handler_name(jvmHandler, buf, O_BUFLEN));
never@3156 3509 tty->print_cr(" found:%s", get_signal_handler_name(thisHandler, buf, O_BUFLEN));
never@3156 3510 // No need to check this sig any longer
never@3156 3511 sigaddset(&check_signal_done, sig);
never@3156 3512 } else if(os::Bsd::get_our_sigflags(sig) != 0 && (int)act.sa_flags != os::Bsd::get_our_sigflags(sig)) {
never@3156 3513 tty->print("Warning: %s handler flags ", exception_name(sig, buf, O_BUFLEN));
never@3156 3514 tty->print("expected:" PTR32_FORMAT, os::Bsd::get_our_sigflags(sig));
never@3156 3515 tty->print_cr(" found:" PTR32_FORMAT, act.sa_flags);
never@3156 3516 // No need to check this sig any longer
never@3156 3517 sigaddset(&check_signal_done, sig);
never@3156 3518 }
never@3156 3519
never@3156 3520 // Dump all the signal
never@3156 3521 if (sigismember(&check_signal_done, sig)) {
never@3156 3522 print_signal_handlers(tty, buf, O_BUFLEN);
never@3156 3523 }
never@3156 3524 }
never@3156 3525
never@3156 3526 extern void report_error(char* file_name, int line_no, char* title, char* format, ...);
never@3156 3527
never@3156 3528 extern bool signal_name(int signo, char* buf, size_t len);
never@3156 3529
never@3156 3530 const char* os::exception_name(int exception_code, char* buf, size_t size) {
never@3156 3531 if (0 < exception_code && exception_code <= SIGRTMAX) {
never@3156 3532 // signal
never@3156 3533 if (!signal_name(exception_code, buf, size)) {
never@3156 3534 jio_snprintf(buf, size, "SIG%d", exception_code);
never@3156 3535 }
never@3156 3536 return buf;
never@3156 3537 } else {
never@3156 3538 return NULL;
never@3156 3539 }
never@3156 3540 }
never@3156 3541
never@3156 3542 // this is called _before_ the most of global arguments have been parsed
never@3156 3543 void os::init(void) {
never@3156 3544 char dummy; /* used to get a guess on initial stack address */
never@3156 3545 // first_hrtime = gethrtime();
never@3156 3546
never@3156 3547 // With BsdThreads the JavaMain thread pid (primordial thread)
never@3156 3548 // is different than the pid of the java launcher thread.
never@3156 3549 // So, on Bsd, the launcher thread pid is passed to the VM
never@3156 3550 // via the sun.java.launcher.pid property.
never@3156 3551 // Use this property instead of getpid() if it was correctly passed.
never@3156 3552 // See bug 6351349.
never@3156 3553 pid_t java_launcher_pid = (pid_t) Arguments::sun_java_launcher_pid();
never@3156 3554
never@3156 3555 _initial_pid = (java_launcher_pid > 0) ? java_launcher_pid : getpid();
never@3156 3556
never@3156 3557 clock_tics_per_sec = CLK_TCK;
never@3156 3558
never@3156 3559 init_random(1234567);
never@3156 3560
never@3156 3561 ThreadCritical::initialize();
never@3156 3562
never@3156 3563 Bsd::set_page_size(getpagesize());
never@3156 3564 if (Bsd::page_size() == -1) {
never@3156 3565 fatal(err_msg("os_bsd.cpp: os::init: sysconf failed (%s)",
never@3156 3566 strerror(errno)));
never@3156 3567 }
never@3156 3568 init_page_sizes((size_t) Bsd::page_size());
never@3156 3569
never@3156 3570 Bsd::initialize_system_info();
never@3156 3571
never@3156 3572 // main_thread points to the aboriginal thread
never@3156 3573 Bsd::_main_thread = pthread_self();
never@3156 3574
never@3156 3575 Bsd::clock_init();
jbachorik@6026 3576 initial_time_count = javaTimeNanos();
never@3156 3577
never@3156 3578 #ifdef __APPLE__
never@3156 3579 // XXXDARWIN
never@3156 3580 // Work around the unaligned VM callbacks in hotspot's
never@3156 3581 // sharedRuntime. The callbacks don't use SSE2 instructions, and work on
never@3156 3582 // Linux, Solaris, and FreeBSD. On Mac OS X, dyld (rightly so) enforces
never@3156 3583 // alignment when doing symbol lookup. To work around this, we force early
never@3156 3584 // binding of all symbols now, thus binding when alignment is known-good.
never@3156 3585 _dyld_bind_fully_image_containing_address((const void *) &os::init);
never@3156 3586 #endif
never@3156 3587 }
never@3156 3588
never@3156 3589 // To install functions for atexit system call
never@3156 3590 extern "C" {
never@3156 3591 static void perfMemory_exit_helper() {
never@3156 3592 perfMemory_exit();
never@3156 3593 }
never@3156 3594 }
never@3156 3595
never@3156 3596 // this is called _after_ the global arguments have been parsed
never@3156 3597 jint os::init_2(void)
never@3156 3598 {
never@3156 3599 // Allocate a single page and mark it as readable for safepoint polling
never@3156 3600 address polling_page = (address) ::mmap(NULL, Bsd::page_size(), PROT_READ, MAP_PRIVATE|MAP_ANONYMOUS, -1, 0);
never@3156 3601 guarantee( polling_page != MAP_FAILED, "os::init_2: failed to allocate polling page" );
never@3156 3602
never@3156 3603 os::set_polling_page( polling_page );
never@3156 3604
never@3156 3605 #ifndef PRODUCT
never@3156 3606 if(Verbose && PrintMiscellaneous)
never@3156 3607 tty->print("[SafePoint Polling address: " INTPTR_FORMAT "]\n", (intptr_t)polling_page);
never@3156 3608 #endif
never@3156 3609
never@3156 3610 if (!UseMembar) {
never@3156 3611 address mem_serialize_page = (address) ::mmap(NULL, Bsd::page_size(), PROT_READ | PROT_WRITE, MAP_PRIVATE|MAP_ANONYMOUS, -1, 0);
dcubed@5255 3612 guarantee( mem_serialize_page != MAP_FAILED, "mmap Failed for memory serialize page");
never@3156 3613 os::set_memory_serialize_page( mem_serialize_page );
never@3156 3614
never@3156 3615 #ifndef PRODUCT
never@3156 3616 if(Verbose && PrintMiscellaneous)
never@3156 3617 tty->print("[Memory Serialize Page address: " INTPTR_FORMAT "]\n", (intptr_t)mem_serialize_page);
never@3156 3618 #endif
never@3156 3619 }
never@3156 3620
never@3156 3621 // initialize suspend/resume support - must do this before signal_sets_init()
never@3156 3622 if (SR_initialize() != 0) {
never@3156 3623 perror("SR_initialize failed");
never@3156 3624 return JNI_ERR;
never@3156 3625 }
never@3156 3626
never@3156 3627 Bsd::signal_sets_init();
never@3156 3628 Bsd::install_signal_handlers();
never@3156 3629
never@3156 3630 // Check minimum allowable stack size for thread creation and to initialize
never@3156 3631 // the java system classes, including StackOverflowError - depends on page
never@3156 3632 // size. Add a page for compiler2 recursion in main thread.
never@3156 3633 // Add in 2*BytesPerWord times page size to account for VM stack during
never@3156 3634 // class initialization depending on 32 or 64 bit VM.
never@3156 3635 os::Bsd::min_stack_allowed = MAX2(os::Bsd::min_stack_allowed,
never@3156 3636 (size_t)(StackYellowPages+StackRedPages+StackShadowPages+
never@3156 3637 2*BytesPerWord COMPILER2_PRESENT(+1)) * Bsd::page_size());
never@3156 3638
never@3156 3639 size_t threadStackSizeInBytes = ThreadStackSize * K;
never@3156 3640 if (threadStackSizeInBytes != 0 &&
never@3156 3641 threadStackSizeInBytes < os::Bsd::min_stack_allowed) {
never@3156 3642 tty->print_cr("\nThe stack size specified is too small, "
never@3156 3643 "Specify at least %dk",
never@3156 3644 os::Bsd::min_stack_allowed/ K);
never@3156 3645 return JNI_ERR;
never@3156 3646 }
never@3156 3647
never@3156 3648 // Make the stack size a multiple of the page size so that
never@3156 3649 // the yellow/red zones can be guarded.
never@3156 3650 JavaThread::set_stack_size_at_create(round_to(threadStackSizeInBytes,
never@3156 3651 vm_page_size()));
never@3156 3652
never@3156 3653 if (MaxFDLimit) {
never@3156 3654 // set the number of file descriptors to max. print out error
never@3156 3655 // if getrlimit/setrlimit fails but continue regardless.
never@3156 3656 struct rlimit nbr_files;
never@3156 3657 int status = getrlimit(RLIMIT_NOFILE, &nbr_files);
never@3156 3658 if (status != 0) {
never@3156 3659 if (PrintMiscellaneous && (Verbose || WizardMode))
never@3156 3660 perror("os::init_2 getrlimit failed");
never@3156 3661 } else {
never@3156 3662 nbr_files.rlim_cur = nbr_files.rlim_max;
never@3156 3663
never@3156 3664 #ifdef __APPLE__
never@3156 3665 // Darwin returns RLIM_INFINITY for rlim_max, but fails with EINVAL if
never@3156 3666 // you attempt to use RLIM_INFINITY. As per setrlimit(2), OPEN_MAX must
never@3156 3667 // be used instead
never@3156 3668 nbr_files.rlim_cur = MIN(OPEN_MAX, nbr_files.rlim_cur);
never@3156 3669 #endif
never@3156 3670
never@3156 3671 status = setrlimit(RLIMIT_NOFILE, &nbr_files);
never@3156 3672 if (status != 0) {
never@3156 3673 if (PrintMiscellaneous && (Verbose || WizardMode))
never@3156 3674 perror("os::init_2 setrlimit failed");
never@3156 3675 }
never@3156 3676 }
never@3156 3677 }
never@3156 3678
never@3156 3679 // at-exit methods are called in the reverse order of their registration.
never@3156 3680 // atexit functions are called on return from main or as a result of a
never@3156 3681 // call to exit(3C). There can be only 32 of these functions registered
never@3156 3682 // and atexit() does not set errno.
never@3156 3683
never@3156 3684 if (PerfAllowAtExitRegistration) {
never@3156 3685 // only register atexit functions if PerfAllowAtExitRegistration is set.
never@3156 3686 // atexit functions can be delayed until process exit time, which
never@3156 3687 // can be problematic for embedded VM situations. Embedded VMs should
never@3156 3688 // call DestroyJavaVM() to assure that VM resources are released.
never@3156 3689
never@3156 3690 // note: perfMemory_exit_helper atexit function may be removed in
never@3156 3691 // the future if the appropriate cleanup code can be added to the
never@3156 3692 // VM_Exit VMOperation's doit method.
never@3156 3693 if (atexit(perfMemory_exit_helper) != 0) {
never@3156 3694 warning("os::init2 atexit(perfMemory_exit_helper) failed");
never@3156 3695 }
never@3156 3696 }
never@3156 3697
never@3156 3698 // initialize thread priority policy
never@3156 3699 prio_init();
never@3156 3700
dcubed@3202 3701 #ifdef __APPLE__
dcubed@3202 3702 // dynamically link to objective c gc registration
dcubed@3202 3703 void *handleLibObjc = dlopen(OBJC_LIB, RTLD_LAZY);
dcubed@3202 3704 if (handleLibObjc != NULL) {
dcubed@3202 3705 objc_registerThreadWithCollectorFunction = (objc_registerThreadWithCollector_t) dlsym(handleLibObjc, OBJC_GCREGISTER);
dcubed@3202 3706 }
dcubed@3202 3707 #endif
dcubed@3202 3708
never@3156 3709 return JNI_OK;
never@3156 3710 }
never@3156 3711
never@3156 3712 // this is called at the end of vm_initialization
never@3156 3713 void os::init_3(void) { }
never@3156 3714
never@3156 3715 // Mark the polling page as unreadable
never@3156 3716 void os::make_polling_page_unreadable(void) {
never@3156 3717 if( !guard_memory((char*)_polling_page, Bsd::page_size()) )
never@3156 3718 fatal("Could not disable polling page");
never@3156 3719 };
never@3156 3720
never@3156 3721 // Mark the polling page as readable
never@3156 3722 void os::make_polling_page_readable(void) {
never@3156 3723 if( !bsd_mprotect((char *)_polling_page, Bsd::page_size(), PROT_READ)) {
never@3156 3724 fatal("Could not enable polling page");
never@3156 3725 }
never@3156 3726 };
never@3156 3727
never@3156 3728 int os::active_processor_count() {
never@3156 3729 return _processor_count;
never@3156 3730 }
never@3156 3731
dcubed@3202 3732 void os::set_native_thread_name(const char *name) {
dcubed@3202 3733 #if defined(__APPLE__) && MAC_OS_X_VERSION_MIN_REQUIRED > MAC_OS_X_VERSION_10_5
dcubed@3202 3734 // This is only supported in Snow Leopard and beyond
dcubed@3202 3735 if (name != NULL) {
dcubed@3202 3736 // Add a "Java: " prefix to the name
dcubed@3202 3737 char buf[MAXTHREADNAMESIZE];
dcubed@3202 3738 snprintf(buf, sizeof(buf), "Java: %s", name);
dcubed@3202 3739 pthread_setname_np(buf);
dcubed@3202 3740 }
dcubed@3202 3741 #endif
dcubed@3202 3742 }
dcubed@3202 3743
never@3156 3744 bool os::distribute_processes(uint length, uint* distribution) {
never@3156 3745 // Not yet implemented.
never@3156 3746 return false;
never@3156 3747 }
never@3156 3748
never@3156 3749 bool os::bind_to_processor(uint processor_id) {
never@3156 3750 // Not yet implemented.
never@3156 3751 return false;
never@3156 3752 }
never@3156 3753
sla@5237 3754 void os::SuspendedThreadTask::internal_do_task() {
sla@5237 3755 if (do_suspend(_thread->osthread())) {
sla@5237 3756 SuspendedThreadTaskContext context(_thread, _thread->osthread()->ucontext());
sla@5237 3757 do_task(context);
sla@5237 3758 do_resume(_thread->osthread());
sla@5237 3759 }
sla@5237 3760 }
sla@5237 3761
never@3156 3762 ///
sla@5237 3763 class PcFetcher : public os::SuspendedThreadTask {
sla@5237 3764 public:
sla@5237 3765 PcFetcher(Thread* thread) : os::SuspendedThreadTask(thread) {}
sla@5237 3766 ExtendedPC result();
sla@5237 3767 protected:
sla@5237 3768 void do_task(const os::SuspendedThreadTaskContext& context);
sla@5237 3769 private:
sla@5237 3770 ExtendedPC _epc;
sla@5237 3771 };
sla@5237 3772
sla@5237 3773 ExtendedPC PcFetcher::result() {
sla@5237 3774 guarantee(is_done(), "task is not done yet.");
sla@5237 3775 return _epc;
sla@5237 3776 }
sla@5237 3777
sla@5237 3778 void PcFetcher::do_task(const os::SuspendedThreadTaskContext& context) {
sla@5237 3779 Thread* thread = context.thread();
sla@5237 3780 OSThread* osthread = thread->osthread();
sla@5237 3781 if (osthread->ucontext() != NULL) {
sla@5237 3782 _epc = os::Bsd::ucontext_get_pc((ucontext_t *) context.ucontext());
sla@5237 3783 } else {
sla@5237 3784 // NULL context is unexpected, double-check this is the VMThread
sla@5237 3785 guarantee(thread->is_VM_thread(), "can only be called for VMThread");
sla@5237 3786 }
sla@5237 3787 }
never@3156 3788
never@3156 3789 // Suspends the target using the signal mechanism and then grabs the PC before
never@3156 3790 // resuming the target. Used by the flat-profiler only
never@3156 3791 ExtendedPC os::get_thread_pc(Thread* thread) {
never@3156 3792 // Make sure that it is called by the watcher for the VMThread
never@3156 3793 assert(Thread::current()->is_Watcher_thread(), "Must be watcher");
never@3156 3794 assert(thread->is_VM_thread(), "Can only be called for VMThread");
never@3156 3795
sla@5237 3796 PcFetcher fetcher(thread);
sla@5237 3797 fetcher.run();
sla@5237 3798 return fetcher.result();
never@3156 3799 }
never@3156 3800
never@3156 3801 int os::Bsd::safe_cond_timedwait(pthread_cond_t *_cond, pthread_mutex_t *_mutex, const struct timespec *_abstime)
never@3156 3802 {
never@3156 3803 return pthread_cond_timedwait(_cond, _mutex, _abstime);
never@3156 3804 }
never@3156 3805
never@3156 3806 ////////////////////////////////////////////////////////////////////////////////
never@3156 3807 // debug support
never@3156 3808
never@3156 3809 bool os::find(address addr, outputStream* st) {
never@3156 3810 Dl_info dlinfo;
never@3156 3811 memset(&dlinfo, 0, sizeof(dlinfo));
dcubed@5365 3812 if (dladdr(addr, &dlinfo) != 0) {
never@3156 3813 st->print(PTR_FORMAT ": ", addr);
dcubed@5365 3814 if (dlinfo.dli_sname != NULL && dlinfo.dli_saddr != NULL) {
never@3156 3815 st->print("%s+%#x", dlinfo.dli_sname,
never@3156 3816 addr - (intptr_t)dlinfo.dli_saddr);
dcubed@5365 3817 } else if (dlinfo.dli_fbase != NULL) {
never@3156 3818 st->print("<offset %#x>", addr - (intptr_t)dlinfo.dli_fbase);
never@3156 3819 } else {
never@3156 3820 st->print("<absolute address>");
never@3156 3821 }
dcubed@5365 3822 if (dlinfo.dli_fname != NULL) {
never@3156 3823 st->print(" in %s", dlinfo.dli_fname);
never@3156 3824 }
dcubed@5365 3825 if (dlinfo.dli_fbase != NULL) {
never@3156 3826 st->print(" at " PTR_FORMAT, dlinfo.dli_fbase);
never@3156 3827 }
never@3156 3828 st->cr();
never@3156 3829
never@3156 3830 if (Verbose) {
never@3156 3831 // decode some bytes around the PC
mikael@4889 3832 address begin = clamp_address_in_page(addr-40, addr, os::vm_page_size());
mikael@4889 3833 address end = clamp_address_in_page(addr+40, addr, os::vm_page_size());
never@3156 3834 address lowest = (address) dlinfo.dli_sname;
never@3156 3835 if (!lowest) lowest = (address) dlinfo.dli_fbase;
never@3156 3836 if (begin < lowest) begin = lowest;
never@3156 3837 Dl_info dlinfo2;
dcubed@5365 3838 if (dladdr(end, &dlinfo2) != 0 && dlinfo2.dli_saddr != dlinfo.dli_saddr
never@3156 3839 && end > dlinfo2.dli_saddr && dlinfo2.dli_saddr > begin)
never@3156 3840 end = (address) dlinfo2.dli_saddr;
never@3156 3841 Disassembler::decode(begin, end, st);
never@3156 3842 }
never@3156 3843 return true;
never@3156 3844 }
never@3156 3845 return false;
never@3156 3846 }
never@3156 3847
never@3156 3848 ////////////////////////////////////////////////////////////////////////////////
never@3156 3849 // misc
never@3156 3850
never@3156 3851 // This does not do anything on Bsd. This is basically a hook for being
never@3156 3852 // able to use structured exception handling (thread-local exception filters)
never@3156 3853 // on, e.g., Win32.
never@3156 3854 void
never@3156 3855 os::os_exception_wrapper(java_call_t f, JavaValue* value, methodHandle* method,
never@3156 3856 JavaCallArguments* args, Thread* thread) {
never@3156 3857 f(value, method, args, thread);
never@3156 3858 }
never@3156 3859
never@3156 3860 void os::print_statistics() {
never@3156 3861 }
never@3156 3862
never@3156 3863 int os::message_box(const char* title, const char* message) {
never@3156 3864 int i;
never@3156 3865 fdStream err(defaultStream::error_fd());
never@3156 3866 for (i = 0; i < 78; i++) err.print_raw("=");
never@3156 3867 err.cr();
never@3156 3868 err.print_raw_cr(title);
never@3156 3869 for (i = 0; i < 78; i++) err.print_raw("-");
never@3156 3870 err.cr();
never@3156 3871 err.print_raw_cr(message);
never@3156 3872 for (i = 0; i < 78; i++) err.print_raw("=");
never@3156 3873 err.cr();
never@3156 3874
never@3156 3875 char buf[16];
never@3156 3876 // Prevent process from exiting upon "read error" without consuming all CPU
never@3156 3877 while (::read(0, buf, sizeof(buf)) <= 0) { ::sleep(100); }
never@3156 3878
never@3156 3879 return buf[0] == 'y' || buf[0] == 'Y';
never@3156 3880 }
never@3156 3881
never@3156 3882 int os::stat(const char *path, struct stat *sbuf) {
never@3156 3883 char pathbuf[MAX_PATH];
never@3156 3884 if (strlen(path) > MAX_PATH - 1) {
never@3156 3885 errno = ENAMETOOLONG;
never@3156 3886 return -1;
never@3156 3887 }
never@3156 3888 os::native_path(strcpy(pathbuf, path));
never@3156 3889 return ::stat(pathbuf, sbuf);
never@3156 3890 }
never@3156 3891
never@3156 3892 bool os::check_heap(bool force) {
never@3156 3893 return true;
never@3156 3894 }
never@3156 3895
never@3156 3896 int local_vsnprintf(char* buf, size_t count, const char* format, va_list args) {
never@3156 3897 return ::vsnprintf(buf, count, format, args);
never@3156 3898 }
never@3156 3899
never@3156 3900 // Is a (classpath) directory empty?
never@3156 3901 bool os::dir_is_empty(const char* path) {
never@3156 3902 DIR *dir = NULL;
never@3156 3903 struct dirent *ptr;
never@3156 3904
never@3156 3905 dir = opendir(path);
never@3156 3906 if (dir == NULL) return true;
never@3156 3907
never@3156 3908 /* Scan the directory */
never@3156 3909 bool result = true;
never@3156 3910 char buf[sizeof(struct dirent) + MAX_PATH];
never@3156 3911 while (result && (ptr = ::readdir(dir)) != NULL) {
never@3156 3912 if (strcmp(ptr->d_name, ".") != 0 && strcmp(ptr->d_name, "..") != 0) {
never@3156 3913 result = false;
never@3156 3914 }
never@3156 3915 }
never@3156 3916 closedir(dir);
never@3156 3917 return result;
never@3156 3918 }
never@3156 3919
never@3156 3920 // This code originates from JDK's sysOpen and open64_w
never@3156 3921 // from src/solaris/hpi/src/system_md.c
never@3156 3922
never@3156 3923 #ifndef O_DELETE
never@3156 3924 #define O_DELETE 0x10000
never@3156 3925 #endif
never@3156 3926
never@3156 3927 // Open a file. Unlink the file immediately after open returns
never@3156 3928 // if the specified oflag has the O_DELETE flag set.
never@3156 3929 // O_DELETE is used only in j2se/src/share/native/java/util/zip/ZipFile.c
never@3156 3930
never@3156 3931 int os::open(const char *path, int oflag, int mode) {
never@3156 3932
never@3156 3933 if (strlen(path) > MAX_PATH - 1) {
never@3156 3934 errno = ENAMETOOLONG;
never@3156 3935 return -1;
never@3156 3936 }
never@3156 3937 int fd;
never@3156 3938 int o_delete = (oflag & O_DELETE);
never@3156 3939 oflag = oflag & ~O_DELETE;
never@3156 3940
never@3156 3941 fd = ::open(path, oflag, mode);
never@3156 3942 if (fd == -1) return -1;
never@3156 3943
never@3156 3944 //If the open succeeded, the file might still be a directory
never@3156 3945 {
never@3156 3946 struct stat buf;
never@3156 3947 int ret = ::fstat(fd, &buf);
never@3156 3948 int st_mode = buf.st_mode;
never@3156 3949
never@3156 3950 if (ret != -1) {
never@3156 3951 if ((st_mode & S_IFMT) == S_IFDIR) {
never@3156 3952 errno = EISDIR;
never@3156 3953 ::close(fd);
never@3156 3954 return -1;
never@3156 3955 }
never@3156 3956 } else {
never@3156 3957 ::close(fd);
never@3156 3958 return -1;
never@3156 3959 }
never@3156 3960 }
never@3156 3961
never@3156 3962 /*
never@3156 3963 * All file descriptors that are opened in the JVM and not
never@3156 3964 * specifically destined for a subprocess should have the
never@3156 3965 * close-on-exec flag set. If we don't set it, then careless 3rd
never@3156 3966 * party native code might fork and exec without closing all
never@3156 3967 * appropriate file descriptors (e.g. as we do in closeDescriptors in
never@3156 3968 * UNIXProcess.c), and this in turn might:
never@3156 3969 *
never@3156 3970 * - cause end-of-file to fail to be detected on some file
never@3156 3971 * descriptors, resulting in mysterious hangs, or
never@3156 3972 *
never@3156 3973 * - might cause an fopen in the subprocess to fail on a system
never@3156 3974 * suffering from bug 1085341.
never@3156 3975 *
never@3156 3976 * (Yes, the default setting of the close-on-exec flag is a Unix
never@3156 3977 * design flaw)
never@3156 3978 *
never@3156 3979 * See:
never@3156 3980 * 1085341: 32-bit stdio routines should support file descriptors >255
never@3156 3981 * 4843136: (process) pipe file descriptor from Runtime.exec not being closed
never@3156 3982 * 6339493: (process) Runtime.exec does not close all file descriptors on Solaris 9
never@3156 3983 */
never@3156 3984 #ifdef FD_CLOEXEC
never@3156 3985 {
never@3156 3986 int flags = ::fcntl(fd, F_GETFD);
never@3156 3987 if (flags != -1)
never@3156 3988 ::fcntl(fd, F_SETFD, flags | FD_CLOEXEC);
never@3156 3989 }
never@3156 3990 #endif
never@3156 3991
never@3156 3992 if (o_delete != 0) {
never@3156 3993 ::unlink(path);
never@3156 3994 }
never@3156 3995 return fd;
never@3156 3996 }
never@3156 3997
never@3156 3998
never@3156 3999 // create binary file, rewriting existing file if required
never@3156 4000 int os::create_binary_file(const char* path, bool rewrite_existing) {
never@3156 4001 int oflags = O_WRONLY | O_CREAT;
never@3156 4002 if (!rewrite_existing) {
never@3156 4003 oflags |= O_EXCL;
never@3156 4004 }
never@3156 4005 return ::open(path, oflags, S_IREAD | S_IWRITE);
never@3156 4006 }
never@3156 4007
never@3156 4008 // return current position of file pointer
never@3156 4009 jlong os::current_file_offset(int fd) {
never@3156 4010 return (jlong)::lseek(fd, (off_t)0, SEEK_CUR);
never@3156 4011 }
never@3156 4012
never@3156 4013 // move file pointer to the specified offset
never@3156 4014 jlong os::seek_to_file_offset(int fd, jlong offset) {
never@3156 4015 return (jlong)::lseek(fd, (off_t)offset, SEEK_SET);
never@3156 4016 }
never@3156 4017
never@3156 4018 // This code originates from JDK's sysAvailable
never@3156 4019 // from src/solaris/hpi/src/native_threads/src/sys_api_td.c
never@3156 4020
never@3156 4021 int os::available(int fd, jlong *bytes) {
never@3156 4022 jlong cur, end;
never@3156 4023 int mode;
never@3156 4024 struct stat buf;
never@3156 4025
never@3156 4026 if (::fstat(fd, &buf) >= 0) {
never@3156 4027 mode = buf.st_mode;
never@3156 4028 if (S_ISCHR(mode) || S_ISFIFO(mode) || S_ISSOCK(mode)) {
never@3156 4029 /*
never@3156 4030 * XXX: is the following call interruptible? If so, this might
never@3156 4031 * need to go through the INTERRUPT_IO() wrapper as for other
never@3156 4032 * blocking, interruptible calls in this file.
never@3156 4033 */
never@3156 4034 int n;
never@3156 4035 if (::ioctl(fd, FIONREAD, &n) >= 0) {
never@3156 4036 *bytes = n;
never@3156 4037 return 1;
never@3156 4038 }
never@3156 4039 }
never@3156 4040 }
never@3156 4041 if ((cur = ::lseek(fd, 0L, SEEK_CUR)) == -1) {
never@3156 4042 return 0;
never@3156 4043 } else if ((end = ::lseek(fd, 0L, SEEK_END)) == -1) {
never@3156 4044 return 0;
never@3156 4045 } else if (::lseek(fd, cur, SEEK_SET) == -1) {
never@3156 4046 return 0;
never@3156 4047 }
never@3156 4048 *bytes = end - cur;
never@3156 4049 return 1;
never@3156 4050 }
never@3156 4051
never@3156 4052 int os::socket_available(int fd, jint *pbytes) {
never@3156 4053 if (fd < 0)
never@3156 4054 return OS_OK;
never@3156 4055
never@3156 4056 int ret;
never@3156 4057
never@3156 4058 RESTARTABLE(::ioctl(fd, FIONREAD, pbytes), ret);
never@3156 4059
never@3156 4060 //%% note ioctl can return 0 when successful, JVM_SocketAvailable
never@3156 4061 // is expected to return 0 on failure and 1 on success to the jdk.
never@3156 4062
never@3156 4063 return (ret == OS_ERR) ? 0 : 1;
never@3156 4064 }
never@3156 4065
never@3156 4066 // Map a block of memory.
zgu@3900 4067 char* os::pd_map_memory(int fd, const char* file_name, size_t file_offset,
never@3156 4068 char *addr, size_t bytes, bool read_only,
never@3156 4069 bool allow_exec) {
never@3156 4070 int prot;
never@3156 4071 int flags;
never@3156 4072
never@3156 4073 if (read_only) {
never@3156 4074 prot = PROT_READ;
never@3156 4075 flags = MAP_SHARED;
never@3156 4076 } else {
never@3156 4077 prot = PROT_READ | PROT_WRITE;
never@3156 4078 flags = MAP_PRIVATE;
never@3156 4079 }
never@3156 4080
never@3156 4081 if (allow_exec) {
never@3156 4082 prot |= PROT_EXEC;
never@3156 4083 }
never@3156 4084
never@3156 4085 if (addr != NULL) {
never@3156 4086 flags |= MAP_FIXED;
never@3156 4087 }
never@3156 4088
never@3156 4089 char* mapped_address = (char*)mmap(addr, (size_t)bytes, prot, flags,
never@3156 4090 fd, file_offset);
never@3156 4091 if (mapped_address == MAP_FAILED) {
never@3156 4092 return NULL;
never@3156 4093 }
never@3156 4094 return mapped_address;
never@3156 4095 }
never@3156 4096
never@3156 4097
never@3156 4098 // Remap a block of memory.
zgu@3900 4099 char* os::pd_remap_memory(int fd, const char* file_name, size_t file_offset,
never@3156 4100 char *addr, size_t bytes, bool read_only,
never@3156 4101 bool allow_exec) {
never@3156 4102 // same as map_memory() on this OS
never@3156 4103 return os::map_memory(fd, file_name, file_offset, addr, bytes, read_only,
never@3156 4104 allow_exec);
never@3156 4105 }
never@3156 4106
never@3156 4107
never@3156 4108 // Unmap a block of memory.
zgu@3900 4109 bool os::pd_unmap_memory(char* addr, size_t bytes) {
never@3156 4110 return munmap(addr, bytes) == 0;
never@3156 4111 }
never@3156 4112
never@3156 4113 // current_thread_cpu_time(bool) and thread_cpu_time(Thread*, bool)
never@3156 4114 // are used by JVM M&M and JVMTI to get user+sys or user CPU time
never@3156 4115 // of a thread.
never@3156 4116 //
never@3156 4117 // current_thread_cpu_time() and thread_cpu_time(Thread*) returns
never@3156 4118 // the fast estimate available on the platform.
never@3156 4119
never@3156 4120 jlong os::current_thread_cpu_time() {
never@3156 4121 #ifdef __APPLE__
never@3156 4122 return os::thread_cpu_time(Thread::current(), true /* user + sys */);
morris@4689 4123 #else
morris@4689 4124 Unimplemented();
morris@4689 4125 return 0;
never@3156 4126 #endif
never@3156 4127 }
never@3156 4128
never@3156 4129 jlong os::thread_cpu_time(Thread* thread) {
morris@4689 4130 #ifdef __APPLE__
morris@4689 4131 return os::thread_cpu_time(thread, true /* user + sys */);
morris@4689 4132 #else
morris@4689 4133 Unimplemented();
morris@4689 4134 return 0;
morris@4689 4135 #endif
never@3156 4136 }
never@3156 4137
never@3156 4138 jlong os::current_thread_cpu_time(bool user_sys_cpu_time) {
never@3156 4139 #ifdef __APPLE__
never@3156 4140 return os::thread_cpu_time(Thread::current(), user_sys_cpu_time);
morris@4689 4141 #else
morris@4689 4142 Unimplemented();
morris@4689 4143 return 0;
never@3156 4144 #endif
never@3156 4145 }
never@3156 4146
never@3156 4147 jlong os::thread_cpu_time(Thread *thread, bool user_sys_cpu_time) {
never@3156 4148 #ifdef __APPLE__
never@3156 4149 struct thread_basic_info tinfo;
never@3156 4150 mach_msg_type_number_t tcount = THREAD_INFO_MAX;
never@3156 4151 kern_return_t kr;
sla@3587 4152 thread_t mach_thread;
sla@3587 4153
sla@3587 4154 mach_thread = thread->osthread()->thread_id();
never@3156 4155 kr = thread_info(mach_thread, THREAD_BASIC_INFO, (thread_info_t)&tinfo, &tcount);
never@3156 4156 if (kr != KERN_SUCCESS)
never@3156 4157 return -1;
never@3156 4158
never@3156 4159 if (user_sys_cpu_time) {
never@3156 4160 jlong nanos;
never@3156 4161 nanos = ((jlong) tinfo.system_time.seconds + tinfo.user_time.seconds) * (jlong)1000000000;
never@3156 4162 nanos += ((jlong) tinfo.system_time.microseconds + (jlong) tinfo.user_time.microseconds) * (jlong)1000;
never@3156 4163 return nanos;
never@3156 4164 } else {
never@3156 4165 return ((jlong)tinfo.user_time.seconds * 1000000000) + ((jlong)tinfo.user_time.microseconds * (jlong)1000);
never@3156 4166 }
morris@4689 4167 #else
morris@4689 4168 Unimplemented();
morris@4689 4169 return 0;
never@3156 4170 #endif
never@3156 4171 }
never@3156 4172
never@3156 4173
never@3156 4174 void os::current_thread_cpu_time_info(jvmtiTimerInfo *info_ptr) {
never@3156 4175 info_ptr->max_value = ALL_64_BITS; // will not wrap in less than 64 bits
never@3156 4176 info_ptr->may_skip_backward = false; // elapsed time not wall time
never@3156 4177 info_ptr->may_skip_forward = false; // elapsed time not wall time
never@3156 4178 info_ptr->kind = JVMTI_TIMER_TOTAL_CPU; // user+system time is returned
never@3156 4179 }
never@3156 4180
never@3156 4181 void os::thread_cpu_time_info(jvmtiTimerInfo *info_ptr) {
never@3156 4182 info_ptr->max_value = ALL_64_BITS; // will not wrap in less than 64 bits
never@3156 4183 info_ptr->may_skip_backward = false; // elapsed time not wall time
never@3156 4184 info_ptr->may_skip_forward = false; // elapsed time not wall time
never@3156 4185 info_ptr->kind = JVMTI_TIMER_TOTAL_CPU; // user+system time is returned
never@3156 4186 }
never@3156 4187
never@3156 4188 bool os::is_thread_cpu_time_supported() {
never@3156 4189 #ifdef __APPLE__
never@3156 4190 return true;
sla@4229 4191 #else
never@3156 4192 return false;
never@3156 4193 #endif
never@3156 4194 }
never@3156 4195
never@3156 4196 // System loadavg support. Returns -1 if load average cannot be obtained.
never@3156 4197 // Bsd doesn't yet have a (official) notion of processor sets,
never@3156 4198 // so just return the system wide load average.
never@3156 4199 int os::loadavg(double loadavg[], int nelem) {
never@3156 4200 return ::getloadavg(loadavg, nelem);
never@3156 4201 }
never@3156 4202
never@3156 4203 void os::pause() {
never@3156 4204 char filename[MAX_PATH];
never@3156 4205 if (PauseAtStartupFile && PauseAtStartupFile[0]) {
never@3156 4206 jio_snprintf(filename, MAX_PATH, PauseAtStartupFile);
never@3156 4207 } else {
never@3156 4208 jio_snprintf(filename, MAX_PATH, "./vm.paused.%d", current_process_id());
never@3156 4209 }
never@3156 4210
never@3156 4211 int fd = ::open(filename, O_WRONLY | O_CREAT | O_TRUNC, 0666);
never@3156 4212 if (fd != -1) {
never@3156 4213 struct stat buf;
never@3156 4214 ::close(fd);
never@3156 4215 while (::stat(filename, &buf) == 0) {
never@3156 4216 (void)::poll(NULL, 0, 100);
never@3156 4217 }
never@3156 4218 } else {
never@3156 4219 jio_fprintf(stderr,
never@3156 4220 "Could not open pause file '%s', continuing immediately.\n", filename);
never@3156 4221 }
never@3156 4222 }
never@3156 4223
never@3156 4224
never@3156 4225 // Refer to the comments in os_solaris.cpp park-unpark.
never@3156 4226 //
never@3156 4227 // Beware -- Some versions of NPTL embody a flaw where pthread_cond_timedwait() can
never@3156 4228 // hang indefinitely. For instance NPTL 0.60 on 2.4.21-4ELsmp is vulnerable.
never@3156 4229 // For specifics regarding the bug see GLIBC BUGID 261237 :
never@3156 4230 // http://www.mail-archive.com/debian-glibc@lists.debian.org/msg10837.html.
never@3156 4231 // Briefly, pthread_cond_timedwait() calls with an expiry time that's not in the future
never@3156 4232 // will either hang or corrupt the condvar, resulting in subsequent hangs if the condvar
never@3156 4233 // is used. (The simple C test-case provided in the GLIBC bug report manifests the
never@3156 4234 // hang). The JVM is vulernable via sleep(), Object.wait(timo), LockSupport.parkNanos()
never@3156 4235 // and monitorenter when we're using 1-0 locking. All those operations may result in
never@3156 4236 // calls to pthread_cond_timedwait(). Using LD_ASSUME_KERNEL to use an older version
never@3156 4237 // of libpthread avoids the problem, but isn't practical.
never@3156 4238 //
never@3156 4239 // Possible remedies:
never@3156 4240 //
never@3156 4241 // 1. Establish a minimum relative wait time. 50 to 100 msecs seems to work.
never@3156 4242 // This is palliative and probabilistic, however. If the thread is preempted
never@3156 4243 // between the call to compute_abstime() and pthread_cond_timedwait(), more
never@3156 4244 // than the minimum period may have passed, and the abstime may be stale (in the
never@3156 4245 // past) resultin in a hang. Using this technique reduces the odds of a hang
never@3156 4246 // but the JVM is still vulnerable, particularly on heavily loaded systems.
never@3156 4247 //
never@3156 4248 // 2. Modify park-unpark to use per-thread (per ParkEvent) pipe-pairs instead
never@3156 4249 // of the usual flag-condvar-mutex idiom. The write side of the pipe is set
never@3156 4250 // NDELAY. unpark() reduces to write(), park() reduces to read() and park(timo)
never@3156 4251 // reduces to poll()+read(). This works well, but consumes 2 FDs per extant
never@3156 4252 // thread.
never@3156 4253 //
never@3156 4254 // 3. Embargo pthread_cond_timedwait() and implement a native "chron" thread
never@3156 4255 // that manages timeouts. We'd emulate pthread_cond_timedwait() by enqueuing
never@3156 4256 // a timeout request to the chron thread and then blocking via pthread_cond_wait().
never@3156 4257 // This also works well. In fact it avoids kernel-level scalability impediments
never@3156 4258 // on certain platforms that don't handle lots of active pthread_cond_timedwait()
never@3156 4259 // timers in a graceful fashion.
never@3156 4260 //
never@3156 4261 // 4. When the abstime value is in the past it appears that control returns
never@3156 4262 // correctly from pthread_cond_timedwait(), but the condvar is left corrupt.
never@3156 4263 // Subsequent timedwait/wait calls may hang indefinitely. Given that, we
never@3156 4264 // can avoid the problem by reinitializing the condvar -- by cond_destroy()
never@3156 4265 // followed by cond_init() -- after all calls to pthread_cond_timedwait().
never@3156 4266 // It may be possible to avoid reinitialization by checking the return
never@3156 4267 // value from pthread_cond_timedwait(). In addition to reinitializing the
never@3156 4268 // condvar we must establish the invariant that cond_signal() is only called
never@3156 4269 // within critical sections protected by the adjunct mutex. This prevents
never@3156 4270 // cond_signal() from "seeing" a condvar that's in the midst of being
never@3156 4271 // reinitialized or that is corrupt. Sadly, this invariant obviates the
never@3156 4272 // desirable signal-after-unlock optimization that avoids futile context switching.
never@3156 4273 //
never@3156 4274 // I'm also concerned that some versions of NTPL might allocate an auxilliary
never@3156 4275 // structure when a condvar is used or initialized. cond_destroy() would
never@3156 4276 // release the helper structure. Our reinitialize-after-timedwait fix
never@3156 4277 // put excessive stress on malloc/free and locks protecting the c-heap.
never@3156 4278 //
never@3156 4279 // We currently use (4). See the WorkAroundNTPLTimedWaitHang flag.
never@3156 4280 // It may be possible to refine (4) by checking the kernel and NTPL verisons
never@3156 4281 // and only enabling the work-around for vulnerable environments.
never@3156 4282
never@3156 4283 // utility to compute the abstime argument to timedwait:
never@3156 4284 // millis is the relative timeout time
never@3156 4285 // abstime will be the absolute timeout time
never@3156 4286 // TODO: replace compute_abstime() with unpackTime()
never@3156 4287
never@3156 4288 static struct timespec* compute_abstime(struct timespec* abstime, jlong millis) {
never@3156 4289 if (millis < 0) millis = 0;
never@3156 4290 struct timeval now;
never@3156 4291 int status = gettimeofday(&now, NULL);
never@3156 4292 assert(status == 0, "gettimeofday");
never@3156 4293 jlong seconds = millis / 1000;
never@3156 4294 millis %= 1000;
never@3156 4295 if (seconds > 50000000) { // see man cond_timedwait(3T)
never@3156 4296 seconds = 50000000;
never@3156 4297 }
never@3156 4298 abstime->tv_sec = now.tv_sec + seconds;
never@3156 4299 long usec = now.tv_usec + millis * 1000;
never@3156 4300 if (usec >= 1000000) {
never@3156 4301 abstime->tv_sec += 1;
never@3156 4302 usec -= 1000000;
never@3156 4303 }
never@3156 4304 abstime->tv_nsec = usec * 1000;
never@3156 4305 return abstime;
never@3156 4306 }
never@3156 4307
never@3156 4308
never@3156 4309 // Test-and-clear _Event, always leaves _Event set to 0, returns immediately.
never@3156 4310 // Conceptually TryPark() should be equivalent to park(0).
never@3156 4311
never@3156 4312 int os::PlatformEvent::TryPark() {
never@3156 4313 for (;;) {
never@3156 4314 const int v = _Event ;
never@3156 4315 guarantee ((v == 0) || (v == 1), "invariant") ;
never@3156 4316 if (Atomic::cmpxchg (0, &_Event, v) == v) return v ;
never@3156 4317 }
never@3156 4318 }
never@3156 4319
never@3156 4320 void os::PlatformEvent::park() { // AKA "down()"
never@3156 4321 // Invariant: Only the thread associated with the Event/PlatformEvent
never@3156 4322 // may call park().
never@3156 4323 // TODO: assert that _Assoc != NULL or _Assoc == Self
never@3156 4324 int v ;
never@3156 4325 for (;;) {
never@3156 4326 v = _Event ;
never@3156 4327 if (Atomic::cmpxchg (v-1, &_Event, v) == v) break ;
never@3156 4328 }
never@3156 4329 guarantee (v >= 0, "invariant") ;
never@3156 4330 if (v == 0) {
never@3156 4331 // Do this the hard way by blocking ...
never@3156 4332 int status = pthread_mutex_lock(_mutex);
never@3156 4333 assert_status(status == 0, status, "mutex_lock");
never@3156 4334 guarantee (_nParked == 0, "invariant") ;
never@3156 4335 ++ _nParked ;
never@3156 4336 while (_Event < 0) {
never@3156 4337 status = pthread_cond_wait(_cond, _mutex);
never@3156 4338 // for some reason, under 2.7 lwp_cond_wait() may return ETIME ...
never@3156 4339 // Treat this the same as if the wait was interrupted
never@3156 4340 if (status == ETIMEDOUT) { status = EINTR; }
never@3156 4341 assert_status(status == 0 || status == EINTR, status, "cond_wait");
never@3156 4342 }
never@3156 4343 -- _nParked ;
never@3156 4344
never@3156 4345 _Event = 0 ;
never@3156 4346 status = pthread_mutex_unlock(_mutex);
never@3156 4347 assert_status(status == 0, status, "mutex_unlock");
dcubed@4471 4348 // Paranoia to ensure our locked and lock-free paths interact
dcubed@4471 4349 // correctly with each other.
dcubed@4471 4350 OrderAccess::fence();
never@3156 4351 }
never@3156 4352 guarantee (_Event >= 0, "invariant") ;
never@3156 4353 }
never@3156 4354
never@3156 4355 int os::PlatformEvent::park(jlong millis) {
never@3156 4356 guarantee (_nParked == 0, "invariant") ;
never@3156 4357
never@3156 4358 int v ;
never@3156 4359 for (;;) {
never@3156 4360 v = _Event ;
never@3156 4361 if (Atomic::cmpxchg (v-1, &_Event, v) == v) break ;
never@3156 4362 }
never@3156 4363 guarantee (v >= 0, "invariant") ;
never@3156 4364 if (v != 0) return OS_OK ;
never@3156 4365
never@3156 4366 // We do this the hard way, by blocking the thread.
never@3156 4367 // Consider enforcing a minimum timeout value.
never@3156 4368 struct timespec abst;
never@3156 4369 compute_abstime(&abst, millis);
never@3156 4370
never@3156 4371 int ret = OS_TIMEOUT;
never@3156 4372 int status = pthread_mutex_lock(_mutex);
never@3156 4373 assert_status(status == 0, status, "mutex_lock");
never@3156 4374 guarantee (_nParked == 0, "invariant") ;
never@3156 4375 ++_nParked ;
never@3156 4376
never@3156 4377 // Object.wait(timo) will return because of
never@3156 4378 // (a) notification
never@3156 4379 // (b) timeout
never@3156 4380 // (c) thread.interrupt
never@3156 4381 //
never@3156 4382 // Thread.interrupt and object.notify{All} both call Event::set.
never@3156 4383 // That is, we treat thread.interrupt as a special case of notification.
never@3156 4384 // The underlying Solaris implementation, cond_timedwait, admits
never@3156 4385 // spurious/premature wakeups, but the JLS/JVM spec prevents the
never@3156 4386 // JVM from making those visible to Java code. As such, we must
never@3156 4387 // filter out spurious wakeups. We assume all ETIME returns are valid.
never@3156 4388 //
never@3156 4389 // TODO: properly differentiate simultaneous notify+interrupt.
never@3156 4390 // In that case, we should propagate the notify to another waiter.
never@3156 4391
never@3156 4392 while (_Event < 0) {
never@3156 4393 status = os::Bsd::safe_cond_timedwait(_cond, _mutex, &abst);
never@3156 4394 if (status != 0 && WorkAroundNPTLTimedWaitHang) {
never@3156 4395 pthread_cond_destroy (_cond);
never@3156 4396 pthread_cond_init (_cond, NULL) ;
never@3156 4397 }
never@3156 4398 assert_status(status == 0 || status == EINTR ||
never@3156 4399 status == ETIMEDOUT,
never@3156 4400 status, "cond_timedwait");
never@3156 4401 if (!FilterSpuriousWakeups) break ; // previous semantics
never@3156 4402 if (status == ETIMEDOUT) break ;
never@3156 4403 // We consume and ignore EINTR and spurious wakeups.
never@3156 4404 }
never@3156 4405 --_nParked ;
never@3156 4406 if (_Event >= 0) {
never@3156 4407 ret = OS_OK;
never@3156 4408 }
never@3156 4409 _Event = 0 ;
never@3156 4410 status = pthread_mutex_unlock(_mutex);
never@3156 4411 assert_status(status == 0, status, "mutex_unlock");
never@3156 4412 assert (_nParked == 0, "invariant") ;
dcubed@4471 4413 // Paranoia to ensure our locked and lock-free paths interact
dcubed@4471 4414 // correctly with each other.
dcubed@4471 4415 OrderAccess::fence();
never@3156 4416 return ret;
never@3156 4417 }
never@3156 4418
never@3156 4419 void os::PlatformEvent::unpark() {
dcubed@4471 4420 // Transitions for _Event:
dcubed@4471 4421 // 0 :=> 1
dcubed@4471 4422 // 1 :=> 1
dcubed@4471 4423 // -1 :=> either 0 or 1; must signal target thread
dcubed@4471 4424 // That is, we can safely transition _Event from -1 to either
dcubed@4471 4425 // 0 or 1. Forcing 1 is slightly more efficient for back-to-back
dcubed@4471 4426 // unpark() calls.
dcubed@4471 4427 // See also: "Semaphores in Plan 9" by Mullender & Cox
dcubed@4471 4428 //
dcubed@4471 4429 // Note: Forcing a transition from "-1" to "1" on an unpark() means
dcubed@4471 4430 // that it will take two back-to-back park() calls for the owning
dcubed@4471 4431 // thread to block. This has the benefit of forcing a spurious return
dcubed@4471 4432 // from the first park() call after an unpark() call which will help
dcubed@4471 4433 // shake out uses of park() and unpark() without condition variables.
dcubed@4471 4434
dcubed@4471 4435 if (Atomic::xchg(1, &_Event) >= 0) return;
dcubed@4471 4436
dcubed@4471 4437 // Wait for the thread associated with the event to vacate
dcubed@4471 4438 int status = pthread_mutex_lock(_mutex);
dcubed@4471 4439 assert_status(status == 0, status, "mutex_lock");
dcubed@4471 4440 int AnyWaiters = _nParked;
dcubed@4471 4441 assert(AnyWaiters == 0 || AnyWaiters == 1, "invariant");
dcubed@4471 4442 if (AnyWaiters != 0 && WorkAroundNPTLTimedWaitHang) {
dcubed@4471 4443 AnyWaiters = 0;
dcubed@4471 4444 pthread_cond_signal(_cond);
never@3156 4445 }
dcubed@4471 4446 status = pthread_mutex_unlock(_mutex);
dcubed@4471 4447 assert_status(status == 0, status, "mutex_unlock");
dcubed@4471 4448 if (AnyWaiters != 0) {
dcubed@4471 4449 status = pthread_cond_signal(_cond);
dcubed@4471 4450 assert_status(status == 0, status, "cond_signal");
never@3156 4451 }
never@3156 4452
never@3156 4453 // Note that we signal() _after dropping the lock for "immortal" Events.
never@3156 4454 // This is safe and avoids a common class of futile wakeups. In rare
never@3156 4455 // circumstances this can cause a thread to return prematurely from
never@3156 4456 // cond_{timed}wait() but the spurious wakeup is benign and the victim will
never@3156 4457 // simply re-test the condition and re-park itself.
never@3156 4458 }
never@3156 4459
never@3156 4460
never@3156 4461 // JSR166
never@3156 4462 // -------------------------------------------------------
never@3156 4463
never@3156 4464 /*
never@3156 4465 * The solaris and bsd implementations of park/unpark are fairly
never@3156 4466 * conservative for now, but can be improved. They currently use a
never@3156 4467 * mutex/condvar pair, plus a a count.
never@3156 4468 * Park decrements count if > 0, else does a condvar wait. Unpark
never@3156 4469 * sets count to 1 and signals condvar. Only one thread ever waits
never@3156 4470 * on the condvar. Contention seen when trying to park implies that someone
never@3156 4471 * is unparking you, so don't wait. And spurious returns are fine, so there
never@3156 4472 * is no need to track notifications.
never@3156 4473 */
never@3156 4474
never@3156 4475 #define MAX_SECS 100000000
never@3156 4476 /*
never@3156 4477 * This code is common to bsd and solaris and will be moved to a
never@3156 4478 * common place in dolphin.
never@3156 4479 *
never@3156 4480 * The passed in time value is either a relative time in nanoseconds
never@3156 4481 * or an absolute time in milliseconds. Either way it has to be unpacked
never@3156 4482 * into suitable seconds and nanoseconds components and stored in the
never@3156 4483 * given timespec structure.
never@3156 4484 * Given time is a 64-bit value and the time_t used in the timespec is only
never@3156 4485 * a signed-32-bit value (except on 64-bit Bsd) we have to watch for
never@3156 4486 * overflow if times way in the future are given. Further on Solaris versions
never@3156 4487 * prior to 10 there is a restriction (see cond_timedwait) that the specified
never@3156 4488 * number of seconds, in abstime, is less than current_time + 100,000,000.
never@3156 4489 * As it will be 28 years before "now + 100000000" will overflow we can
never@3156 4490 * ignore overflow and just impose a hard-limit on seconds using the value
never@3156 4491 * of "now + 100,000,000". This places a limit on the timeout of about 3.17
never@3156 4492 * years from "now".
never@3156 4493 */
never@3156 4494
never@3156 4495 static void unpackTime(struct timespec* absTime, bool isAbsolute, jlong time) {
never@3156 4496 assert (time > 0, "convertTime");
never@3156 4497
never@3156 4498 struct timeval now;
never@3156 4499 int status = gettimeofday(&now, NULL);
never@3156 4500 assert(status == 0, "gettimeofday");
never@3156 4501
never@3156 4502 time_t max_secs = now.tv_sec + MAX_SECS;
never@3156 4503
never@3156 4504 if (isAbsolute) {
never@3156 4505 jlong secs = time / 1000;
never@3156 4506 if (secs > max_secs) {
never@3156 4507 absTime->tv_sec = max_secs;
never@3156 4508 }
never@3156 4509 else {
never@3156 4510 absTime->tv_sec = secs;
never@3156 4511 }
never@3156 4512 absTime->tv_nsec = (time % 1000) * NANOSECS_PER_MILLISEC;
never@3156 4513 }
never@3156 4514 else {
never@3156 4515 jlong secs = time / NANOSECS_PER_SEC;
never@3156 4516 if (secs >= MAX_SECS) {
never@3156 4517 absTime->tv_sec = max_secs;
never@3156 4518 absTime->tv_nsec = 0;
never@3156 4519 }
never@3156 4520 else {
never@3156 4521 absTime->tv_sec = now.tv_sec + secs;
never@3156 4522 absTime->tv_nsec = (time % NANOSECS_PER_SEC) + now.tv_usec*1000;
never@3156 4523 if (absTime->tv_nsec >= NANOSECS_PER_SEC) {
never@3156 4524 absTime->tv_nsec -= NANOSECS_PER_SEC;
never@3156 4525 ++absTime->tv_sec; // note: this must be <= max_secs
never@3156 4526 }
never@3156 4527 }
never@3156 4528 }
never@3156 4529 assert(absTime->tv_sec >= 0, "tv_sec < 0");
never@3156 4530 assert(absTime->tv_sec <= max_secs, "tv_sec > max_secs");
never@3156 4531 assert(absTime->tv_nsec >= 0, "tv_nsec < 0");
never@3156 4532 assert(absTime->tv_nsec < NANOSECS_PER_SEC, "tv_nsec >= nanos_per_sec");
never@3156 4533 }
never@3156 4534
never@3156 4535 void Parker::park(bool isAbsolute, jlong time) {
dcubed@4471 4536 // Ideally we'd do something useful while spinning, such
dcubed@4471 4537 // as calling unpackTime().
dcubed@4471 4538
never@3156 4539 // Optional fast-path check:
never@3156 4540 // Return immediately if a permit is available.
dcubed@4471 4541 // We depend on Atomic::xchg() having full barrier semantics
dcubed@4471 4542 // since we are doing a lock-free update to _counter.
dcubed@4471 4543 if (Atomic::xchg(0, &_counter) > 0) return;
never@3156 4544
never@3156 4545 Thread* thread = Thread::current();
never@3156 4546 assert(thread->is_Java_thread(), "Must be JavaThread");
never@3156 4547 JavaThread *jt = (JavaThread *)thread;
never@3156 4548
never@3156 4549 // Optional optimization -- avoid state transitions if there's an interrupt pending.
never@3156 4550 // Check interrupt before trying to wait
never@3156 4551 if (Thread::is_interrupted(thread, false)) {
never@3156 4552 return;
never@3156 4553 }
never@3156 4554
never@3156 4555 // Next, demultiplex/decode time arguments
never@3156 4556 struct timespec absTime;
never@3156 4557 if (time < 0 || (isAbsolute && time == 0) ) { // don't wait at all
never@3156 4558 return;
never@3156 4559 }
never@3156 4560 if (time > 0) {
never@3156 4561 unpackTime(&absTime, isAbsolute, time);
never@3156 4562 }
never@3156 4563
never@3156 4564
never@3156 4565 // Enter safepoint region
never@3156 4566 // Beware of deadlocks such as 6317397.
never@3156 4567 // The per-thread Parker:: mutex is a classic leaf-lock.
never@3156 4568 // In particular a thread must never block on the Threads_lock while
never@3156 4569 // holding the Parker:: mutex. If safepoints are pending both the
never@3156 4570 // the ThreadBlockInVM() CTOR and DTOR may grab Threads_lock.
never@3156 4571 ThreadBlockInVM tbivm(jt);
never@3156 4572
never@3156 4573 // Don't wait if cannot get lock since interference arises from
never@3156 4574 // unblocking. Also. check interrupt before trying wait
never@3156 4575 if (Thread::is_interrupted(thread, false) || pthread_mutex_trylock(_mutex) != 0) {
never@3156 4576 return;
never@3156 4577 }
never@3156 4578
never@3156 4579 int status ;
never@3156 4580 if (_counter > 0) { // no wait needed
never@3156 4581 _counter = 0;
never@3156 4582 status = pthread_mutex_unlock(_mutex);
never@3156 4583 assert (status == 0, "invariant") ;
dcubed@4471 4584 // Paranoia to ensure our locked and lock-free paths interact
dcubed@4471 4585 // correctly with each other and Java-level accesses.
never@3156 4586 OrderAccess::fence();
never@3156 4587 return;
never@3156 4588 }
never@3156 4589
never@3156 4590 #ifdef ASSERT
never@3156 4591 // Don't catch signals while blocked; let the running threads have the signals.
never@3156 4592 // (This allows a debugger to break into the running thread.)
never@3156 4593 sigset_t oldsigs;
never@3156 4594 sigset_t* allowdebug_blocked = os::Bsd::allowdebug_blocked_signals();
never@3156 4595 pthread_sigmask(SIG_BLOCK, allowdebug_blocked, &oldsigs);
never@3156 4596 #endif
never@3156 4597
never@3156 4598 OSThreadWaitState osts(thread->osthread(), false /* not Object.wait() */);
never@3156 4599 jt->set_suspend_equivalent();
never@3156 4600 // cleared by handle_special_suspend_equivalent_condition() or java_suspend_self()
never@3156 4601
never@3156 4602 if (time == 0) {
never@3156 4603 status = pthread_cond_wait (_cond, _mutex) ;
never@3156 4604 } else {
never@3156 4605 status = os::Bsd::safe_cond_timedwait (_cond, _mutex, &absTime) ;
never@3156 4606 if (status != 0 && WorkAroundNPTLTimedWaitHang) {
never@3156 4607 pthread_cond_destroy (_cond) ;
never@3156 4608 pthread_cond_init (_cond, NULL);
never@3156 4609 }
never@3156 4610 }
never@3156 4611 assert_status(status == 0 || status == EINTR ||
never@3156 4612 status == ETIMEDOUT,
never@3156 4613 status, "cond_timedwait");
never@3156 4614
never@3156 4615 #ifdef ASSERT
never@3156 4616 pthread_sigmask(SIG_SETMASK, &oldsigs, NULL);
never@3156 4617 #endif
never@3156 4618
never@3156 4619 _counter = 0 ;
never@3156 4620 status = pthread_mutex_unlock(_mutex) ;
never@3156 4621 assert_status(status == 0, status, "invariant") ;
dcubed@4471 4622 // Paranoia to ensure our locked and lock-free paths interact
dcubed@4471 4623 // correctly with each other and Java-level accesses.
dcubed@4471 4624 OrderAccess::fence();
dcubed@4471 4625
never@3156 4626 // If externally suspended while waiting, re-suspend
never@3156 4627 if (jt->handle_special_suspend_equivalent_condition()) {
never@3156 4628 jt->java_suspend_self();
never@3156 4629 }
never@3156 4630 }
never@3156 4631
never@3156 4632 void Parker::unpark() {
never@3156 4633 int s, status ;
never@3156 4634 status = pthread_mutex_lock(_mutex);
never@3156 4635 assert (status == 0, "invariant") ;
never@3156 4636 s = _counter;
never@3156 4637 _counter = 1;
never@3156 4638 if (s < 1) {
never@3156 4639 if (WorkAroundNPTLTimedWaitHang) {
never@3156 4640 status = pthread_cond_signal (_cond) ;
never@3156 4641 assert (status == 0, "invariant") ;
never@3156 4642 status = pthread_mutex_unlock(_mutex);
never@3156 4643 assert (status == 0, "invariant") ;
never@3156 4644 } else {
never@3156 4645 status = pthread_mutex_unlock(_mutex);
never@3156 4646 assert (status == 0, "invariant") ;
never@3156 4647 status = pthread_cond_signal (_cond) ;
never@3156 4648 assert (status == 0, "invariant") ;
never@3156 4649 }
never@3156 4650 } else {
never@3156 4651 pthread_mutex_unlock(_mutex);
never@3156 4652 assert (status == 0, "invariant") ;
never@3156 4653 }
never@3156 4654 }
never@3156 4655
never@3156 4656
never@3156 4657 /* Darwin has no "environ" in a dynamic library. */
never@3156 4658 #ifdef __APPLE__
never@3156 4659 #include <crt_externs.h>
never@3156 4660 #define environ (*_NSGetEnviron())
never@3156 4661 #else
never@3156 4662 extern char** environ;
never@3156 4663 #endif
never@3156 4664
never@3156 4665 // Run the specified command in a separate process. Return its exit value,
never@3156 4666 // or -1 on failure (e.g. can't fork a new process).
never@3156 4667 // Unlike system(), this function can be called from signal handler. It
never@3156 4668 // doesn't block SIGINT et al.
never@3156 4669 int os::fork_and_exec(char* cmd) {
never@3156 4670 const char * argv[4] = {"sh", "-c", cmd, NULL};
never@3156 4671
never@3156 4672 // fork() in BsdThreads/NPTL is not async-safe. It needs to run
never@3156 4673 // pthread_atfork handlers and reset pthread library. All we need is a
never@3156 4674 // separate process to execve. Make a direct syscall to fork process.
never@3156 4675 // On IA64 there's no fork syscall, we have to use fork() and hope for
never@3156 4676 // the best...
never@3156 4677 pid_t pid = fork();
never@3156 4678
never@3156 4679 if (pid < 0) {
never@3156 4680 // fork failed
never@3156 4681 return -1;
never@3156 4682
never@3156 4683 } else if (pid == 0) {
never@3156 4684 // child process
never@3156 4685
never@3156 4686 // execve() in BsdThreads will call pthread_kill_other_threads_np()
never@3156 4687 // first to kill every thread on the thread list. Because this list is
never@3156 4688 // not reset by fork() (see notes above), execve() will instead kill
never@3156 4689 // every thread in the parent process. We know this is the only thread
never@3156 4690 // in the new process, so make a system call directly.
never@3156 4691 // IA64 should use normal execve() from glibc to match the glibc fork()
never@3156 4692 // above.
never@3156 4693 execve("/bin/sh", (char* const*)argv, environ);
never@3156 4694
never@3156 4695 // execve failed
never@3156 4696 _exit(-1);
never@3156 4697
never@3156 4698 } else {
never@3156 4699 // copied from J2SE ..._waitForProcessExit() in UNIXProcess_md.c; we don't
never@3156 4700 // care about the actual exit code, for now.
never@3156 4701
never@3156 4702 int status;
never@3156 4703
never@3156 4704 // Wait for the child process to exit. This returns immediately if
never@3156 4705 // the child has already exited. */
never@3156 4706 while (waitpid(pid, &status, 0) < 0) {
never@3156 4707 switch (errno) {
never@3156 4708 case ECHILD: return 0;
never@3156 4709 case EINTR: break;
never@3156 4710 default: return -1;
never@3156 4711 }
never@3156 4712 }
never@3156 4713
never@3156 4714 if (WIFEXITED(status)) {
never@3156 4715 // The child exited normally; get its exit code.
never@3156 4716 return WEXITSTATUS(status);
never@3156 4717 } else if (WIFSIGNALED(status)) {
never@3156 4718 // The child exited because of a signal
never@3156 4719 // The best value to return is 0x80 + signal number,
never@3156 4720 // because that is what all Unix shells do, and because
never@3156 4721 // it allows callers to distinguish between process exit and
never@3156 4722 // process death by signal.
never@3156 4723 return 0x80 + WTERMSIG(status);
never@3156 4724 } else {
never@3156 4725 // Unknown exit code; pass it through
never@3156 4726 return status;
never@3156 4727 }
never@3156 4728 }
never@3156 4729 }
never@3156 4730
never@3156 4731 // is_headless_jre()
never@3156 4732 //
dholmes@3281 4733 // Test for the existence of xawt/libmawt.so or libawt_xawt.so
never@3156 4734 // in order to report if we are running in a headless jre
never@3156 4735 //
dholmes@3281 4736 // Since JDK8 xawt/libmawt.so was moved into the same directory
dholmes@3281 4737 // as libawt.so, and renamed libawt_xawt.so
dholmes@3281 4738 //
never@3156 4739 bool os::is_headless_jre() {
dholmes@6015 4740 #ifdef __APPLE__
dholmes@6015 4741 // We no longer build headless-only on Mac OS X
dholmes@6015 4742 return false;
dholmes@6015 4743 #else
never@3156 4744 struct stat statbuf;
never@3156 4745 char buf[MAXPATHLEN];
never@3156 4746 char libmawtpath[MAXPATHLEN];
dcubed@3202 4747 const char *xawtstr = "/xawt/libmawt" JNI_LIB_SUFFIX;
dcubed@3625 4748 const char *new_xawtstr = "/libawt_xawt" JNI_LIB_SUFFIX;
never@3156 4749 char *p;
never@3156 4750
never@3156 4751 // Get path to libjvm.so
never@3156 4752 os::jvm_path(buf, sizeof(buf));
never@3156 4753
never@3156 4754 // Get rid of libjvm.so
never@3156 4755 p = strrchr(buf, '/');
never@3156 4756 if (p == NULL) return false;
never@3156 4757 else *p = '\0';
never@3156 4758
never@3156 4759 // Get rid of client or server
never@3156 4760 p = strrchr(buf, '/');
never@3156 4761 if (p == NULL) return false;
never@3156 4762 else *p = '\0';
never@3156 4763
never@3156 4764 // check xawt/libmawt.so
never@3156 4765 strcpy(libmawtpath, buf);
never@3156 4766 strcat(libmawtpath, xawtstr);
never@3156 4767 if (::stat(libmawtpath, &statbuf) == 0) return false;
never@3156 4768
dholmes@3281 4769 // check libawt_xawt.so
never@3156 4770 strcpy(libmawtpath, buf);
dholmes@3281 4771 strcat(libmawtpath, new_xawtstr);
never@3156 4772 if (::stat(libmawtpath, &statbuf) == 0) return false;
never@3156 4773
never@3156 4774 return true;
dholmes@6015 4775 #endif
never@3156 4776 }
mikael@3903 4777
mikael@3903 4778 // Get the default path to the core file
mikael@3903 4779 // Returns the length of the string
mikael@3903 4780 int os::get_core_path(char* buffer, size_t bufferSize) {
mikael@3903 4781 int n = jio_snprintf(buffer, bufferSize, "/cores");
mikael@3903 4782
mikael@3903 4783 // Truncate if theoretical string was longer than bufferSize
mikael@3903 4784 n = MIN2(n, (int)bufferSize);
mikael@3903 4785
mikael@3903 4786 return n;
mikael@3903 4787 }
sla@5237 4788
stefank@5578 4789 #ifndef PRODUCT
stefank@5578 4790 void TestReserveMemorySpecial_test() {
stefank@5578 4791 // No tests available for this platform
stefank@5578 4792 }
stefank@5578 4793 #endif

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