src/os/solaris/vm/perfMemory_solaris.cpp

Wed, 26 Nov 2014 08:57:40 -0800

author
asaha
date
Wed, 26 Nov 2014 08:57:40 -0800
changeset 7495
42f27b59c550
parent 7074
833b0f92429a
parent 7493
d7b6bdd51abe
child 7535
7ae4e26cb1e0
child 7715
f3ffb37f88a6
permissions
-rw-r--r--

Merge

duke@435 1 /*
dcubed@6349 2 * Copyright (c) 2001, 2014, Oracle and/or its affiliates. All rights reserved.
duke@435 3 * DO NOT ALTER OR REMOVE COPYRIGHT NOTICES OR THIS FILE HEADER.
duke@435 4 *
duke@435 5 * This code is free software; you can redistribute it and/or modify it
duke@435 6 * under the terms of the GNU General Public License version 2 only, as
duke@435 7 * published by the Free Software Foundation.
duke@435 8 *
duke@435 9 * This code is distributed in the hope that it will be useful, but WITHOUT
duke@435 10 * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
duke@435 11 * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
duke@435 12 * version 2 for more details (a copy is included in the LICENSE file that
duke@435 13 * accompanied this code).
duke@435 14 *
duke@435 15 * You should have received a copy of the GNU General Public License version
duke@435 16 * 2 along with this work; if not, write to the Free Software Foundation,
duke@435 17 * Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA.
duke@435 18 *
trims@1907 19 * Please contact Oracle, 500 Oracle Parkway, Redwood Shores, CA 94065 USA
trims@1907 20 * or visit www.oracle.com if you need additional information or have any
trims@1907 21 * questions.
duke@435 22 *
duke@435 23 */
duke@435 24
stefank@2314 25 #include "precompiled.hpp"
stefank@2314 26 #include "classfile/vmSymbols.hpp"
stefank@2314 27 #include "memory/allocation.inline.hpp"
stefank@2314 28 #include "memory/resourceArea.hpp"
stefank@2314 29 #include "oops/oop.inline.hpp"
stefank@2314 30 #include "os_solaris.inline.hpp"
stefank@2314 31 #include "runtime/handles.inline.hpp"
stefank@2314 32 #include "runtime/perfMemory.hpp"
zgu@4193 33 #include "services/memTracker.hpp"
stefank@2314 34 #include "utilities/exceptions.hpp"
duke@435 35
duke@435 36 // put OS-includes here
duke@435 37 # include <sys/types.h>
duke@435 38 # include <sys/mman.h>
duke@435 39 # include <errno.h>
duke@435 40 # include <stdio.h>
duke@435 41 # include <unistd.h>
duke@435 42 # include <sys/stat.h>
duke@435 43 # include <signal.h>
duke@435 44 # include <pwd.h>
duke@435 45 # include <procfs.h>
duke@435 46
duke@435 47
duke@435 48 static char* backing_store_file_name = NULL; // name of the backing store
duke@435 49 // file, if successfully created.
duke@435 50
duke@435 51 // Standard Memory Implementation Details
duke@435 52
duke@435 53 // create the PerfData memory region in standard memory.
duke@435 54 //
duke@435 55 static char* create_standard_memory(size_t size) {
duke@435 56
duke@435 57 // allocate an aligned chuck of memory
duke@435 58 char* mapAddress = os::reserve_memory(size);
duke@435 59
duke@435 60 if (mapAddress == NULL) {
duke@435 61 return NULL;
duke@435 62 }
duke@435 63
duke@435 64 // commit memory
dcubed@5255 65 if (!os::commit_memory(mapAddress, size, !ExecMem)) {
duke@435 66 if (PrintMiscellaneous && Verbose) {
duke@435 67 warning("Could not commit PerfData memory\n");
duke@435 68 }
duke@435 69 os::release_memory(mapAddress, size);
duke@435 70 return NULL;
duke@435 71 }
duke@435 72
duke@435 73 return mapAddress;
duke@435 74 }
duke@435 75
duke@435 76 // delete the PerfData memory region
duke@435 77 //
duke@435 78 static void delete_standard_memory(char* addr, size_t size) {
duke@435 79
duke@435 80 // there are no persistent external resources to cleanup for standard
duke@435 81 // memory. since DestroyJavaVM does not support unloading of the JVM,
duke@435 82 // cleanup of the memory resource is not performed. The memory will be
duke@435 83 // reclaimed by the OS upon termination of the process.
duke@435 84 //
duke@435 85 return;
duke@435 86 }
duke@435 87
duke@435 88 // save the specified memory region to the given file
duke@435 89 //
duke@435 90 // Note: this function might be called from signal handler (by os::abort()),
duke@435 91 // don't allocate heap memory.
duke@435 92 //
duke@435 93 static void save_memory_to_file(char* addr, size_t size) {
duke@435 94
duke@435 95 const char* destfile = PerfMemory::get_perfdata_file_path();
duke@435 96 assert(destfile[0] != '\0', "invalid PerfData file path");
duke@435 97
duke@435 98 int result;
duke@435 99
duke@435 100 RESTARTABLE(::open(destfile, O_CREAT|O_WRONLY|O_TRUNC, S_IREAD|S_IWRITE),
duke@435 101 result);;
duke@435 102 if (result == OS_ERR) {
duke@435 103 if (PrintMiscellaneous && Verbose) {
duke@435 104 warning("Could not create Perfdata save file: %s: %s\n",
duke@435 105 destfile, strerror(errno));
duke@435 106 }
duke@435 107 } else {
duke@435 108
duke@435 109 int fd = result;
duke@435 110
duke@435 111 for (size_t remaining = size; remaining > 0;) {
duke@435 112
duke@435 113 RESTARTABLE(::write(fd, addr, remaining), result);
duke@435 114 if (result == OS_ERR) {
duke@435 115 if (PrintMiscellaneous && Verbose) {
duke@435 116 warning("Could not write Perfdata save file: %s: %s\n",
duke@435 117 destfile, strerror(errno));
duke@435 118 }
duke@435 119 break;
duke@435 120 }
duke@435 121 remaining -= (size_t)result;
duke@435 122 addr += result;
duke@435 123 }
duke@435 124
rdurbin@5264 125 result = ::close(fd);
duke@435 126 if (PrintMiscellaneous && Verbose) {
duke@435 127 if (result == OS_ERR) {
duke@435 128 warning("Could not close %s: %s\n", destfile, strerror(errno));
duke@435 129 }
duke@435 130 }
duke@435 131 }
zgu@3900 132 FREE_C_HEAP_ARRAY(char, destfile, mtInternal);
duke@435 133 }
duke@435 134
duke@435 135
duke@435 136 // Shared Memory Implementation Details
duke@435 137
duke@435 138 // Note: the solaris and linux shared memory implementation uses the mmap
duke@435 139 // interface with a backing store file to implement named shared memory.
duke@435 140 // Using the file system as the name space for shared memory allows a
duke@435 141 // common name space to be supported across a variety of platforms. It
duke@435 142 // also provides a name space that Java applications can deal with through
duke@435 143 // simple file apis.
duke@435 144 //
duke@435 145 // The solaris and linux implementations store the backing store file in
duke@435 146 // a user specific temporary directory located in the /tmp file system,
duke@435 147 // which is always a local file system and is sometimes a RAM based file
duke@435 148 // system.
duke@435 149
duke@435 150 // return the user specific temporary directory name.
duke@435 151 //
duke@435 152 // the caller is expected to free the allocated memory.
duke@435 153 //
duke@435 154 static char* get_user_tmp_dir(const char* user) {
duke@435 155
duke@435 156 const char* tmpdir = os::get_temp_directory();
duke@435 157 const char* perfdir = PERFDATA_NAME;
coleenp@1788 158 size_t nbytes = strlen(tmpdir) + strlen(perfdir) + strlen(user) + 3;
zgu@3900 159 char* dirname = NEW_C_HEAP_ARRAY(char, nbytes, mtInternal);
duke@435 160
duke@435 161 // construct the path name to user specific tmp directory
coleenp@1788 162 snprintf(dirname, nbytes, "%s/%s_%s", tmpdir, perfdir, user);
duke@435 163
duke@435 164 return dirname;
duke@435 165 }
duke@435 166
duke@435 167 // convert the given file name into a process id. if the file
duke@435 168 // does not meet the file naming constraints, return 0.
duke@435 169 //
duke@435 170 static pid_t filename_to_pid(const char* filename) {
duke@435 171
duke@435 172 // a filename that doesn't begin with a digit is not a
duke@435 173 // candidate for conversion.
duke@435 174 //
duke@435 175 if (!isdigit(*filename)) {
duke@435 176 return 0;
duke@435 177 }
duke@435 178
duke@435 179 // check if file name can be converted to an integer without
duke@435 180 // any leftover characters.
duke@435 181 //
duke@435 182 char* remainder = NULL;
duke@435 183 errno = 0;
duke@435 184 pid_t pid = (pid_t)strtol(filename, &remainder, 10);
duke@435 185
duke@435 186 if (errno != 0) {
duke@435 187 return 0;
duke@435 188 }
duke@435 189
duke@435 190 // check for left over characters. If any, then the filename is
duke@435 191 // not a candidate for conversion.
duke@435 192 //
duke@435 193 if (remainder != NULL && *remainder != '\0') {
duke@435 194 return 0;
duke@435 195 }
duke@435 196
duke@435 197 // successful conversion, return the pid
duke@435 198 return pid;
duke@435 199 }
duke@435 200
duke@435 201
gthornbr@7493 202 // Check if the given statbuf is considered a secure directory for
gthornbr@7493 203 // the backing store files. Returns true if the directory is considered
gthornbr@7493 204 // a secure location. Returns false if the statbuf is a symbolic link or
gthornbr@7493 205 // if an error occurred.
gthornbr@7493 206 //
gthornbr@7493 207 static bool is_statbuf_secure(struct stat *statp) {
gthornbr@7493 208 if (S_ISLNK(statp->st_mode) || !S_ISDIR(statp->st_mode)) {
gthornbr@7493 209 // The path represents a link or some non-directory file type,
gthornbr@7493 210 // which is not what we expected. Declare it insecure.
gthornbr@7493 211 //
gthornbr@7493 212 return false;
gthornbr@7493 213 }
gthornbr@7493 214 // We have an existing directory, check if the permissions are safe.
gthornbr@7493 215 //
gthornbr@7493 216 if ((statp->st_mode & (S_IWGRP|S_IWOTH)) != 0) {
gthornbr@7493 217 // The directory is open for writing and could be subjected
gthornbr@7493 218 // to a symlink or a hard link attack. Declare it insecure.
gthornbr@7493 219 //
gthornbr@7493 220 return false;
gthornbr@7493 221 }
gthornbr@7493 222 // See if the uid of the directory matches the effective uid of the process.
gthornbr@7493 223 //
gthornbr@7493 224 if (statp->st_uid != geteuid()) {
gthornbr@7493 225 // The directory was not created by this user, declare it insecure.
gthornbr@7493 226 //
gthornbr@7493 227 return false;
gthornbr@7493 228 }
gthornbr@7493 229 return true;
gthornbr@7493 230 }
gthornbr@7493 231
gthornbr@7493 232
gthornbr@7493 233 // Check if the given path is considered a secure directory for
duke@435 234 // the backing store files. Returns true if the directory exists
duke@435 235 // and is considered a secure location. Returns false if the path
twisti@1040 236 // is a symbolic link or if an error occurred.
duke@435 237 //
duke@435 238 static bool is_directory_secure(const char* path) {
duke@435 239 struct stat statbuf;
duke@435 240 int result = 0;
duke@435 241
duke@435 242 RESTARTABLE(::lstat(path, &statbuf), result);
duke@435 243 if (result == OS_ERR) {
duke@435 244 return false;
duke@435 245 }
duke@435 246
gthornbr@7493 247 // The path exists, see if it is secure.
gthornbr@7493 248 return is_statbuf_secure(&statbuf);
gthornbr@7493 249 }
gthornbr@7493 250
gthornbr@7493 251
gthornbr@7493 252 // Check if the given directory file descriptor is considered a secure
gthornbr@7493 253 // directory for the backing store files. Returns true if the directory
gthornbr@7493 254 // exists and is considered a secure location. Returns false if the path
gthornbr@7493 255 // is a symbolic link or if an error occurred.
gthornbr@7493 256 //
gthornbr@7493 257 static bool is_dirfd_secure(int dir_fd) {
gthornbr@7493 258 struct stat statbuf;
gthornbr@7493 259 int result = 0;
gthornbr@7493 260
gthornbr@7493 261 RESTARTABLE(::fstat(dir_fd, &statbuf), result);
gthornbr@7493 262 if (result == OS_ERR) {
duke@435 263 return false;
duke@435 264 }
gthornbr@7493 265
gthornbr@7493 266 // The path exists, now check its mode.
gthornbr@7493 267 return is_statbuf_secure(&statbuf);
gthornbr@7493 268 }
gthornbr@7493 269
gthornbr@7493 270
gthornbr@7493 271 // Check to make sure fd1 and fd2 are referencing the same file system object.
gthornbr@7493 272 //
gthornbr@7493 273 static bool is_same_fsobject(int fd1, int fd2) {
gthornbr@7493 274 struct stat statbuf1;
gthornbr@7493 275 struct stat statbuf2;
gthornbr@7493 276 int result = 0;
gthornbr@7493 277
gthornbr@7493 278 RESTARTABLE(::fstat(fd1, &statbuf1), result);
gthornbr@7493 279 if (result == OS_ERR) {
gthornbr@7493 280 return false;
gthornbr@7493 281 }
gthornbr@7493 282 RESTARTABLE(::fstat(fd2, &statbuf2), result);
gthornbr@7493 283 if (result == OS_ERR) {
gthornbr@7493 284 return false;
gthornbr@7493 285 }
gthornbr@7493 286
gthornbr@7493 287 if ((statbuf1.st_ino == statbuf2.st_ino) &&
gthornbr@7493 288 (statbuf1.st_dev == statbuf2.st_dev)) {
gthornbr@7493 289 return true;
gthornbr@7493 290 } else {
gthornbr@7493 291 return false;
gthornbr@7493 292 }
gthornbr@7493 293 }
gthornbr@7493 294
gthornbr@7493 295
gthornbr@7493 296 // Open the directory of the given path and validate it.
gthornbr@7493 297 // Return a DIR * of the open directory.
gthornbr@7493 298 //
gthornbr@7493 299 static DIR *open_directory_secure(const char* dirname) {
gthornbr@7493 300 // Open the directory using open() so that it can be verified
gthornbr@7493 301 // to be secure by calling is_dirfd_secure(), opendir() and then check
gthornbr@7493 302 // to see if they are the same file system object. This method does not
gthornbr@7493 303 // introduce a window of opportunity for the directory to be attacked that
gthornbr@7493 304 // calling opendir() and is_directory_secure() does.
gthornbr@7493 305 int result;
gthornbr@7493 306 DIR *dirp = NULL;
gthornbr@7493 307 RESTARTABLE(::open(dirname, O_RDONLY|O_NOFOLLOW), result);
gthornbr@7493 308 if (result == OS_ERR) {
gthornbr@7493 309 // Directory doesn't exist or is a symlink, so there is nothing to cleanup.
gthornbr@7493 310 if (PrintMiscellaneous && Verbose) {
gthornbr@7493 311 if (errno == ELOOP) {
gthornbr@7493 312 warning("directory %s is a symlink and is not secure\n", dirname);
gthornbr@7493 313 } else {
gthornbr@7493 314 warning("could not open directory %s: %s\n", dirname, strerror(errno));
gthornbr@7493 315 }
duke@435 316 }
gthornbr@7493 317 return dirp;
gthornbr@7493 318 }
gthornbr@7493 319 int fd = result;
gthornbr@7493 320
gthornbr@7493 321 // Determine if the open directory is secure.
gthornbr@7493 322 if (!is_dirfd_secure(fd)) {
gthornbr@7493 323 // The directory is not a secure directory.
gthornbr@7493 324 os::close(fd);
gthornbr@7493 325 return dirp;
gthornbr@7493 326 }
gthornbr@7493 327
gthornbr@7493 328 // Open the directory.
gthornbr@7493 329 dirp = ::opendir(dirname);
gthornbr@7493 330 if (dirp == NULL) {
gthornbr@7493 331 // The directory doesn't exist, close fd and return.
gthornbr@7493 332 os::close(fd);
gthornbr@7493 333 return dirp;
gthornbr@7493 334 }
gthornbr@7493 335
gthornbr@7493 336 // Check to make sure fd and dirp are referencing the same file system object.
gthornbr@7493 337 if (!is_same_fsobject(fd, dirp->dd_fd)) {
gthornbr@7493 338 // The directory is not secure.
gthornbr@7493 339 os::close(fd);
gthornbr@7493 340 os::closedir(dirp);
gthornbr@7493 341 dirp = NULL;
gthornbr@7493 342 return dirp;
gthornbr@7493 343 }
gthornbr@7493 344
gthornbr@7493 345 // Close initial open now that we know directory is secure
gthornbr@7493 346 os::close(fd);
gthornbr@7493 347
gthornbr@7493 348 return dirp;
gthornbr@7493 349 }
gthornbr@7493 350
gthornbr@7493 351 // NOTE: The code below uses fchdir(), open() and unlink() because
gthornbr@7493 352 // fdopendir(), openat() and unlinkat() are not supported on all
gthornbr@7493 353 // versions. Once the support for fdopendir(), openat() and unlinkat()
gthornbr@7493 354 // is available on all supported versions the code can be changed
gthornbr@7493 355 // to use these functions.
gthornbr@7493 356
gthornbr@7493 357 // Open the directory of the given path, validate it and set the
gthornbr@7493 358 // current working directory to it.
gthornbr@7493 359 // Return a DIR * of the open directory and the saved cwd fd.
gthornbr@7493 360 //
gthornbr@7493 361 static DIR *open_directory_secure_cwd(const char* dirname, int *saved_cwd_fd) {
gthornbr@7493 362
gthornbr@7493 363 // Open the directory.
gthornbr@7493 364 DIR* dirp = open_directory_secure(dirname);
gthornbr@7493 365 if (dirp == NULL) {
gthornbr@7493 366 // Directory doesn't exist or is insecure, so there is nothing to cleanup.
gthornbr@7493 367 return dirp;
gthornbr@7493 368 }
gthornbr@7493 369 int fd = dirp->dd_fd;
gthornbr@7493 370
gthornbr@7493 371 // Open a fd to the cwd and save it off.
gthornbr@7493 372 int result;
gthornbr@7493 373 RESTARTABLE(::open(".", O_RDONLY), result);
gthornbr@7493 374 if (result == OS_ERR) {
gthornbr@7493 375 *saved_cwd_fd = -1;
gthornbr@7493 376 } else {
gthornbr@7493 377 *saved_cwd_fd = result;
gthornbr@7493 378 }
gthornbr@7493 379
gthornbr@7493 380 // Set the current directory to dirname by using the fd of the directory.
gthornbr@7493 381 result = fchdir(fd);
gthornbr@7493 382
gthornbr@7493 383 return dirp;
gthornbr@7493 384 }
gthornbr@7493 385
gthornbr@7493 386 // Close the directory and restore the current working directory.
gthornbr@7493 387 //
gthornbr@7493 388 static void close_directory_secure_cwd(DIR* dirp, int saved_cwd_fd) {
gthornbr@7493 389
gthornbr@7493 390 int result;
gthornbr@7493 391 // If we have a saved cwd change back to it and close the fd.
gthornbr@7493 392 if (saved_cwd_fd != -1) {
gthornbr@7493 393 result = fchdir(saved_cwd_fd);
gthornbr@7493 394 ::close(saved_cwd_fd);
gthornbr@7493 395 }
gthornbr@7493 396
gthornbr@7493 397 // Close the directory.
gthornbr@7493 398 os::closedir(dirp);
gthornbr@7493 399 }
gthornbr@7493 400
gthornbr@7493 401 // Check if the given file descriptor is considered a secure.
gthornbr@7493 402 //
gthornbr@7493 403 static bool is_file_secure(int fd, const char *filename) {
gthornbr@7493 404
gthornbr@7493 405 int result;
gthornbr@7493 406 struct stat statbuf;
gthornbr@7493 407
gthornbr@7493 408 // Determine if the file is secure.
gthornbr@7493 409 RESTARTABLE(::fstat(fd, &statbuf), result);
gthornbr@7493 410 if (result == OS_ERR) {
gthornbr@7493 411 if (PrintMiscellaneous && Verbose) {
gthornbr@7493 412 warning("fstat failed on %s: %s\n", filename, strerror(errno));
gthornbr@7493 413 }
gthornbr@7493 414 return false;
gthornbr@7493 415 }
gthornbr@7493 416 if (statbuf.st_nlink > 1) {
gthornbr@7493 417 // A file with multiple links is not expected.
gthornbr@7493 418 if (PrintMiscellaneous && Verbose) {
gthornbr@7493 419 warning("file %s has multiple links\n", filename);
gthornbr@7493 420 }
gthornbr@7493 421 return false;
duke@435 422 }
duke@435 423 return true;
duke@435 424 }
duke@435 425
duke@435 426 // return the user name for the given user id
duke@435 427 //
duke@435 428 // the caller is expected to free the allocated memory.
duke@435 429 //
duke@435 430 static char* get_user_name(uid_t uid) {
duke@435 431
duke@435 432 struct passwd pwent;
duke@435 433
duke@435 434 // determine the max pwbuf size from sysconf, and hardcode
duke@435 435 // a default if this not available through sysconf.
duke@435 436 //
duke@435 437 long bufsize = sysconf(_SC_GETPW_R_SIZE_MAX);
duke@435 438 if (bufsize == -1)
duke@435 439 bufsize = 1024;
duke@435 440
zgu@3900 441 char* pwbuf = NEW_C_HEAP_ARRAY(char, bufsize, mtInternal);
duke@435 442
duke@435 443 #ifdef _GNU_SOURCE
duke@435 444 struct passwd* p = NULL;
duke@435 445 int result = getpwuid_r(uid, &pwent, pwbuf, (size_t)bufsize, &p);
duke@435 446 #else // _GNU_SOURCE
duke@435 447 struct passwd* p = getpwuid_r(uid, &pwent, pwbuf, (int)bufsize);
duke@435 448 #endif // _GNU_SOURCE
duke@435 449
duke@435 450 if (p == NULL || p->pw_name == NULL || *(p->pw_name) == '\0') {
duke@435 451 if (PrintMiscellaneous && Verbose) {
duke@435 452 if (p == NULL) {
duke@435 453 warning("Could not retrieve passwd entry: %s\n",
duke@435 454 strerror(errno));
duke@435 455 }
duke@435 456 else {
duke@435 457 warning("Could not determine user name: %s\n",
duke@435 458 p->pw_name == NULL ? "pw_name = NULL" :
duke@435 459 "pw_name zero length");
duke@435 460 }
duke@435 461 }
zgu@3900 462 FREE_C_HEAP_ARRAY(char, pwbuf, mtInternal);
duke@435 463 return NULL;
duke@435 464 }
duke@435 465
zgu@3900 466 char* user_name = NEW_C_HEAP_ARRAY(char, strlen(p->pw_name) + 1, mtInternal);
duke@435 467 strcpy(user_name, p->pw_name);
duke@435 468
zgu@3900 469 FREE_C_HEAP_ARRAY(char, pwbuf, mtInternal);
duke@435 470 return user_name;
duke@435 471 }
duke@435 472
duke@435 473 // return the name of the user that owns the process identified by vmid.
duke@435 474 //
duke@435 475 // This method uses a slow directory search algorithm to find the backing
duke@435 476 // store file for the specified vmid and returns the user name, as determined
duke@435 477 // by the user name suffix of the hsperfdata_<username> directory name.
duke@435 478 //
duke@435 479 // the caller is expected to free the allocated memory.
duke@435 480 //
duke@435 481 static char* get_user_name_slow(int vmid, TRAPS) {
duke@435 482
duke@435 483 // short circuit the directory search if the process doesn't even exist.
duke@435 484 if (kill(vmid, 0) == OS_ERR) {
duke@435 485 if (errno == ESRCH) {
duke@435 486 THROW_MSG_0(vmSymbols::java_lang_IllegalArgumentException(),
duke@435 487 "Process not found");
duke@435 488 }
duke@435 489 else /* EPERM */ {
duke@435 490 THROW_MSG_0(vmSymbols::java_io_IOException(), strerror(errno));
duke@435 491 }
duke@435 492 }
duke@435 493
duke@435 494 // directory search
duke@435 495 char* oldest_user = NULL;
duke@435 496 time_t oldest_ctime = 0;
duke@435 497
duke@435 498 const char* tmpdirname = os::get_temp_directory();
duke@435 499
gthornbr@7493 500 // open the temp directory
duke@435 501 DIR* tmpdirp = os::opendir(tmpdirname);
duke@435 502
duke@435 503 if (tmpdirp == NULL) {
gthornbr@7493 504 // Cannot open the directory to get the user name, return.
duke@435 505 return NULL;
duke@435 506 }
duke@435 507
duke@435 508 // for each entry in the directory that matches the pattern hsperfdata_*,
duke@435 509 // open the directory and check if the file for the given vmid exists.
duke@435 510 // The file with the expected name and the latest creation date is used
duke@435 511 // to determine the user name for the process id.
duke@435 512 //
duke@435 513 struct dirent* dentry;
zgu@3900 514 char* tdbuf = NEW_C_HEAP_ARRAY(char, os::readdir_buf_size(tmpdirname), mtInternal);
duke@435 515 errno = 0;
duke@435 516 while ((dentry = os::readdir(tmpdirp, (struct dirent *)tdbuf)) != NULL) {
duke@435 517
duke@435 518 // check if the directory entry is a hsperfdata file
duke@435 519 if (strncmp(dentry->d_name, PERFDATA_NAME, strlen(PERFDATA_NAME)) != 0) {
duke@435 520 continue;
duke@435 521 }
duke@435 522
duke@435 523 char* usrdir_name = NEW_C_HEAP_ARRAY(char,
zgu@3900 524 strlen(tmpdirname) + strlen(dentry->d_name) + 2, mtInternal);
duke@435 525 strcpy(usrdir_name, tmpdirname);
coleenp@1788 526 strcat(usrdir_name, "/");
duke@435 527 strcat(usrdir_name, dentry->d_name);
duke@435 528
gthornbr@7493 529 // open the user directory
gthornbr@7493 530 DIR* subdirp = open_directory_secure(usrdir_name);
duke@435 531
duke@435 532 if (subdirp == NULL) {
zgu@3900 533 FREE_C_HEAP_ARRAY(char, usrdir_name, mtInternal);
duke@435 534 continue;
duke@435 535 }
duke@435 536
duke@435 537 // Since we don't create the backing store files in directories
duke@435 538 // pointed to by symbolic links, we also don't follow them when
duke@435 539 // looking for the files. We check for a symbolic link after the
duke@435 540 // call to opendir in order to eliminate a small window where the
duke@435 541 // symlink can be exploited.
duke@435 542 //
duke@435 543 if (!is_directory_secure(usrdir_name)) {
zgu@3900 544 FREE_C_HEAP_ARRAY(char, usrdir_name, mtInternal);
duke@435 545 os::closedir(subdirp);
duke@435 546 continue;
duke@435 547 }
duke@435 548
duke@435 549 struct dirent* udentry;
zgu@3900 550 char* udbuf = NEW_C_HEAP_ARRAY(char, os::readdir_buf_size(usrdir_name), mtInternal);
duke@435 551 errno = 0;
duke@435 552 while ((udentry = os::readdir(subdirp, (struct dirent *)udbuf)) != NULL) {
duke@435 553
duke@435 554 if (filename_to_pid(udentry->d_name) == vmid) {
duke@435 555 struct stat statbuf;
duke@435 556 int result;
duke@435 557
duke@435 558 char* filename = NEW_C_HEAP_ARRAY(char,
zgu@3900 559 strlen(usrdir_name) + strlen(udentry->d_name) + 2, mtInternal);
duke@435 560
duke@435 561 strcpy(filename, usrdir_name);
duke@435 562 strcat(filename, "/");
duke@435 563 strcat(filename, udentry->d_name);
duke@435 564
duke@435 565 // don't follow symbolic links for the file
duke@435 566 RESTARTABLE(::lstat(filename, &statbuf), result);
duke@435 567 if (result == OS_ERR) {
zgu@3900 568 FREE_C_HEAP_ARRAY(char, filename, mtInternal);
duke@435 569 continue;
duke@435 570 }
duke@435 571
duke@435 572 // skip over files that are not regular files.
duke@435 573 if (!S_ISREG(statbuf.st_mode)) {
zgu@3900 574 FREE_C_HEAP_ARRAY(char, filename, mtInternal);
duke@435 575 continue;
duke@435 576 }
duke@435 577
duke@435 578 // compare and save filename with latest creation time
duke@435 579 if (statbuf.st_size > 0 && statbuf.st_ctime > oldest_ctime) {
duke@435 580
duke@435 581 if (statbuf.st_ctime > oldest_ctime) {
duke@435 582 char* user = strchr(dentry->d_name, '_') + 1;
duke@435 583
zgu@3900 584 if (oldest_user != NULL) FREE_C_HEAP_ARRAY(char, oldest_user, mtInternal);
zgu@3900 585 oldest_user = NEW_C_HEAP_ARRAY(char, strlen(user)+1, mtInternal);
duke@435 586
duke@435 587 strcpy(oldest_user, user);
duke@435 588 oldest_ctime = statbuf.st_ctime;
duke@435 589 }
duke@435 590 }
duke@435 591
zgu@3900 592 FREE_C_HEAP_ARRAY(char, filename, mtInternal);
duke@435 593 }
duke@435 594 }
duke@435 595 os::closedir(subdirp);
zgu@3900 596 FREE_C_HEAP_ARRAY(char, udbuf, mtInternal);
zgu@3900 597 FREE_C_HEAP_ARRAY(char, usrdir_name, mtInternal);
duke@435 598 }
duke@435 599 os::closedir(tmpdirp);
zgu@3900 600 FREE_C_HEAP_ARRAY(char, tdbuf, mtInternal);
duke@435 601
duke@435 602 return(oldest_user);
duke@435 603 }
duke@435 604
duke@435 605 // return the name of the user that owns the JVM indicated by the given vmid.
duke@435 606 //
duke@435 607 static char* get_user_name(int vmid, TRAPS) {
duke@435 608
duke@435 609 char psinfo_name[PATH_MAX];
duke@435 610 int result;
duke@435 611
duke@435 612 snprintf(psinfo_name, PATH_MAX, "/proc/%d/psinfo", vmid);
duke@435 613
duke@435 614 RESTARTABLE(::open(psinfo_name, O_RDONLY), result);
duke@435 615
duke@435 616 if (result != OS_ERR) {
duke@435 617 int fd = result;
duke@435 618
duke@435 619 psinfo_t psinfo;
duke@435 620 char* addr = (char*)&psinfo;
duke@435 621
duke@435 622 for (size_t remaining = sizeof(psinfo_t); remaining > 0;) {
duke@435 623
duke@435 624 RESTARTABLE(::read(fd, addr, remaining), result);
duke@435 625 if (result == OS_ERR) {
dcubed@6349 626 ::close(fd);
duke@435 627 THROW_MSG_0(vmSymbols::java_io_IOException(), "Read error");
dcubed@6349 628 } else {
dcubed@6349 629 remaining-=result;
dcubed@6349 630 addr+=result;
duke@435 631 }
duke@435 632 }
duke@435 633
rdurbin@5264 634 ::close(fd);
duke@435 635
duke@435 636 // get the user name for the effective user id of the process
duke@435 637 char* user_name = get_user_name(psinfo.pr_euid);
duke@435 638
duke@435 639 return user_name;
duke@435 640 }
duke@435 641
duke@435 642 if (result == OS_ERR && errno == EACCES) {
duke@435 643
duke@435 644 // In this case, the psinfo file for the process id existed,
duke@435 645 // but we didn't have permission to access it.
duke@435 646 THROW_MSG_0(vmSymbols::java_lang_IllegalArgumentException(),
duke@435 647 strerror(errno));
duke@435 648 }
duke@435 649
duke@435 650 // at this point, we don't know if the process id itself doesn't
duke@435 651 // exist or if the psinfo file doesn't exit. If the psinfo file
duke@435 652 // doesn't exist, then we are running on Solaris 2.5.1 or earlier.
duke@435 653 // since the structured procfs and old procfs interfaces can't be
duke@435 654 // mixed, we attempt to find the file through a directory search.
duke@435 655
duke@435 656 return get_user_name_slow(vmid, CHECK_NULL);
duke@435 657 }
duke@435 658
duke@435 659 // return the file name of the backing store file for the named
duke@435 660 // shared memory region for the given user name and vmid.
duke@435 661 //
duke@435 662 // the caller is expected to free the allocated memory.
duke@435 663 //
duke@435 664 static char* get_sharedmem_filename(const char* dirname, int vmid) {
duke@435 665
duke@435 666 // add 2 for the file separator and a NULL terminator.
duke@435 667 size_t nbytes = strlen(dirname) + UINT_CHARS + 2;
duke@435 668
zgu@3900 669 char* name = NEW_C_HEAP_ARRAY(char, nbytes, mtInternal);
duke@435 670 snprintf(name, nbytes, "%s/%d", dirname, vmid);
duke@435 671
duke@435 672 return name;
duke@435 673 }
duke@435 674
duke@435 675
duke@435 676 // remove file
duke@435 677 //
duke@435 678 // this method removes the file specified by the given path
duke@435 679 //
duke@435 680 static void remove_file(const char* path) {
duke@435 681
duke@435 682 int result;
duke@435 683
duke@435 684 // if the file is a directory, the following unlink will fail. since
duke@435 685 // we don't expect to find directories in the user temp directory, we
duke@435 686 // won't try to handle this situation. even if accidentially or
duke@435 687 // maliciously planted, the directory's presence won't hurt anything.
duke@435 688 //
duke@435 689 RESTARTABLE(::unlink(path), result);
duke@435 690 if (PrintMiscellaneous && Verbose && result == OS_ERR) {
duke@435 691 if (errno != ENOENT) {
duke@435 692 warning("Could not unlink shared memory backing"
duke@435 693 " store file %s : %s\n", path, strerror(errno));
duke@435 694 }
duke@435 695 }
duke@435 696 }
duke@435 697
duke@435 698
duke@435 699 // cleanup stale shared memory resources
duke@435 700 //
duke@435 701 // This method attempts to remove all stale shared memory files in
duke@435 702 // the named user temporary directory. It scans the named directory
duke@435 703 // for files matching the pattern ^$[0-9]*$. For each file found, the
duke@435 704 // process id is extracted from the file name and a test is run to
duke@435 705 // determine if the process is alive. If the process is not alive,
duke@435 706 // any stale file resources are removed.
duke@435 707 //
duke@435 708 static void cleanup_sharedmem_resources(const char* dirname) {
duke@435 709
gthornbr@7493 710 int saved_cwd_fd;
gthornbr@7493 711 // open the directory
gthornbr@7493 712 DIR* dirp = open_directory_secure_cwd(dirname, &saved_cwd_fd);
duke@435 713 if (dirp == NULL) {
gthornbr@7493 714 // directory doesn't exist or is insecure, so there is nothing to cleanup
duke@435 715 return;
duke@435 716 }
duke@435 717
duke@435 718 // for each entry in the directory that matches the expected file
duke@435 719 // name pattern, determine if the file resources are stale and if
duke@435 720 // so, remove the file resources. Note, instrumented HotSpot processes
duke@435 721 // for this user may start and/or terminate during this search and
duke@435 722 // remove or create new files in this directory. The behavior of this
duke@435 723 // loop under these conditions is dependent upon the implementation of
duke@435 724 // opendir/readdir.
duke@435 725 //
duke@435 726 struct dirent* entry;
zgu@3900 727 char* dbuf = NEW_C_HEAP_ARRAY(char, os::readdir_buf_size(dirname), mtInternal);
gthornbr@7493 728
duke@435 729 errno = 0;
duke@435 730 while ((entry = os::readdir(dirp, (struct dirent *)dbuf)) != NULL) {
duke@435 731
duke@435 732 pid_t pid = filename_to_pid(entry->d_name);
duke@435 733
duke@435 734 if (pid == 0) {
duke@435 735
duke@435 736 if (strcmp(entry->d_name, ".") != 0 && strcmp(entry->d_name, "..") != 0) {
duke@435 737
duke@435 738 // attempt to remove all unexpected files, except "." and ".."
gthornbr@7493 739 unlink(entry->d_name);
duke@435 740 }
duke@435 741
duke@435 742 errno = 0;
duke@435 743 continue;
duke@435 744 }
duke@435 745
duke@435 746 // we now have a file name that converts to a valid integer
duke@435 747 // that could represent a process id . if this process id
duke@435 748 // matches the current process id or the process is not running,
duke@435 749 // then remove the stale file resources.
duke@435 750 //
duke@435 751 // process liveness is detected by sending signal number 0 to
duke@435 752 // the process id (see kill(2)). if kill determines that the
duke@435 753 // process does not exist, then the file resources are removed.
duke@435 754 // if kill determines that that we don't have permission to
duke@435 755 // signal the process, then the file resources are assumed to
duke@435 756 // be stale and are removed because the resources for such a
duke@435 757 // process should be in a different user specific directory.
duke@435 758 //
duke@435 759 if ((pid == os::current_process_id()) ||
duke@435 760 (kill(pid, 0) == OS_ERR && (errno == ESRCH || errno == EPERM))) {
duke@435 761
gthornbr@7493 762 unlink(entry->d_name);
duke@435 763 }
duke@435 764 errno = 0;
duke@435 765 }
gthornbr@7493 766
gthornbr@7493 767 // close the directory and reset the current working directory
gthornbr@7493 768 close_directory_secure_cwd(dirp, saved_cwd_fd);
gthornbr@7493 769
zgu@3900 770 FREE_C_HEAP_ARRAY(char, dbuf, mtInternal);
duke@435 771 }
duke@435 772
duke@435 773 // make the user specific temporary directory. Returns true if
duke@435 774 // the directory exists and is secure upon return. Returns false
duke@435 775 // if the directory exists but is either a symlink, is otherwise
duke@435 776 // insecure, or if an error occurred.
duke@435 777 //
duke@435 778 static bool make_user_tmp_dir(const char* dirname) {
duke@435 779
duke@435 780 // create the directory with 0755 permissions. note that the directory
duke@435 781 // will be owned by euid::egid, which may not be the same as uid::gid.
duke@435 782 //
duke@435 783 if (mkdir(dirname, S_IRWXU|S_IRGRP|S_IXGRP|S_IROTH|S_IXOTH) == OS_ERR) {
duke@435 784 if (errno == EEXIST) {
duke@435 785 // The directory already exists and was probably created by another
duke@435 786 // JVM instance. However, this could also be the result of a
duke@435 787 // deliberate symlink. Verify that the existing directory is safe.
duke@435 788 //
duke@435 789 if (!is_directory_secure(dirname)) {
duke@435 790 // directory is not secure
duke@435 791 if (PrintMiscellaneous && Verbose) {
duke@435 792 warning("%s directory is insecure\n", dirname);
duke@435 793 }
duke@435 794 return false;
duke@435 795 }
duke@435 796 }
duke@435 797 else {
duke@435 798 // we encountered some other failure while attempting
duke@435 799 // to create the directory
duke@435 800 //
duke@435 801 if (PrintMiscellaneous && Verbose) {
duke@435 802 warning("could not create directory %s: %s\n",
duke@435 803 dirname, strerror(errno));
duke@435 804 }
duke@435 805 return false;
duke@435 806 }
duke@435 807 }
duke@435 808 return true;
duke@435 809 }
duke@435 810
duke@435 811 // create the shared memory file resources
duke@435 812 //
duke@435 813 // This method creates the shared memory file with the given size
duke@435 814 // This method also creates the user specific temporary directory, if
duke@435 815 // it does not yet exist.
duke@435 816 //
duke@435 817 static int create_sharedmem_resources(const char* dirname, const char* filename, size_t size) {
duke@435 818
duke@435 819 // make the user temporary directory
duke@435 820 if (!make_user_tmp_dir(dirname)) {
duke@435 821 // could not make/find the directory or the found directory
duke@435 822 // was not secure
duke@435 823 return -1;
duke@435 824 }
duke@435 825
gthornbr@7493 826 int saved_cwd_fd;
gthornbr@7493 827 // open the directory and set the current working directory to it
gthornbr@7493 828 DIR* dirp = open_directory_secure_cwd(dirname, &saved_cwd_fd);
gthornbr@7493 829 if (dirp == NULL) {
gthornbr@7493 830 // Directory doesn't exist or is insecure, so cannot create shared
gthornbr@7493 831 // memory file.
gthornbr@7493 832 return -1;
gthornbr@7493 833 }
gthornbr@7493 834
gthornbr@7493 835 // Open the filename in the current directory.
gthornbr@7493 836 // Cannot use O_TRUNC here; truncation of an existing file has to happen
gthornbr@7493 837 // after the is_file_secure() check below.
duke@435 838 int result;
gthornbr@7493 839 RESTARTABLE(::open(filename, O_RDWR|O_CREAT|O_NOFOLLOW, S_IREAD|S_IWRITE), result);
duke@435 840 if (result == OS_ERR) {
duke@435 841 if (PrintMiscellaneous && Verbose) {
gthornbr@7493 842 if (errno == ELOOP) {
gthornbr@7493 843 warning("file %s is a symlink and is not secure\n", filename);
gthornbr@7493 844 } else {
gthornbr@7493 845 warning("could not create file %s: %s\n", filename, strerror(errno));
gthornbr@7493 846 }
duke@435 847 }
gthornbr@7493 848 // close the directory and reset the current working directory
gthornbr@7493 849 close_directory_secure_cwd(dirp, saved_cwd_fd);
gthornbr@7493 850
duke@435 851 return -1;
duke@435 852 }
gthornbr@7493 853 // close the directory and reset the current working directory
gthornbr@7493 854 close_directory_secure_cwd(dirp, saved_cwd_fd);
duke@435 855
duke@435 856 // save the file descriptor
duke@435 857 int fd = result;
duke@435 858
gthornbr@7493 859 // check to see if the file is secure
gthornbr@7493 860 if (!is_file_secure(fd, filename)) {
gthornbr@7493 861 ::close(fd);
gthornbr@7493 862 return -1;
gthornbr@7493 863 }
gthornbr@7493 864
gthornbr@7493 865 // truncate the file to get rid of any existing data
gthornbr@7493 866 RESTARTABLE(::ftruncate(fd, (off_t)0), result);
gthornbr@7493 867 if (result == OS_ERR) {
gthornbr@7493 868 if (PrintMiscellaneous && Verbose) {
gthornbr@7493 869 warning("could not truncate shared memory file: %s\n", strerror(errno));
gthornbr@7493 870 }
gthornbr@7493 871 ::close(fd);
gthornbr@7493 872 return -1;
gthornbr@7493 873 }
duke@435 874 // set the file size
duke@435 875 RESTARTABLE(::ftruncate(fd, (off_t)size), result);
duke@435 876 if (result == OS_ERR) {
duke@435 877 if (PrintMiscellaneous && Verbose) {
duke@435 878 warning("could not set shared memory file size: %s\n", strerror(errno));
duke@435 879 }
rdurbin@5264 880 ::close(fd);
duke@435 881 return -1;
duke@435 882 }
duke@435 883
duke@435 884 return fd;
duke@435 885 }
duke@435 886
duke@435 887 // open the shared memory file for the given user and vmid. returns
duke@435 888 // the file descriptor for the open file or -1 if the file could not
duke@435 889 // be opened.
duke@435 890 //
duke@435 891 static int open_sharedmem_file(const char* filename, int oflags, TRAPS) {
duke@435 892
duke@435 893 // open the file
duke@435 894 int result;
duke@435 895 RESTARTABLE(::open(filename, oflags), result);
duke@435 896 if (result == OS_ERR) {
duke@435 897 if (errno == ENOENT) {
ccheung@4893 898 THROW_MSG_(vmSymbols::java_lang_IllegalArgumentException(),
ccheung@4893 899 "Process not found", OS_ERR);
duke@435 900 }
duke@435 901 else if (errno == EACCES) {
ccheung@4893 902 THROW_MSG_(vmSymbols::java_lang_IllegalArgumentException(),
ccheung@4893 903 "Permission denied", OS_ERR);
duke@435 904 }
duke@435 905 else {
ccheung@4893 906 THROW_MSG_(vmSymbols::java_io_IOException(), strerror(errno), OS_ERR);
duke@435 907 }
duke@435 908 }
gthornbr@7493 909 int fd = result;
duke@435 910
gthornbr@7493 911 // check to see if the file is secure
gthornbr@7493 912 if (!is_file_secure(fd, filename)) {
gthornbr@7493 913 ::close(fd);
gthornbr@7493 914 return -1;
gthornbr@7493 915 }
gthornbr@7493 916
gthornbr@7493 917 return fd;
duke@435 918 }
duke@435 919
duke@435 920 // create a named shared memory region. returns the address of the
duke@435 921 // memory region on success or NULL on failure. A return value of
duke@435 922 // NULL will ultimately disable the shared memory feature.
duke@435 923 //
duke@435 924 // On Solaris and Linux, the name space for shared memory objects
duke@435 925 // is the file system name space.
duke@435 926 //
duke@435 927 // A monitoring application attaching to a JVM does not need to know
duke@435 928 // the file system name of the shared memory object. However, it may
duke@435 929 // be convenient for applications to discover the existence of newly
duke@435 930 // created and terminating JVMs by watching the file system name space
duke@435 931 // for files being created or removed.
duke@435 932 //
duke@435 933 static char* mmap_create_shared(size_t size) {
duke@435 934
duke@435 935 int result;
duke@435 936 int fd;
duke@435 937 char* mapAddress;
duke@435 938
duke@435 939 int vmid = os::current_process_id();
duke@435 940
duke@435 941 char* user_name = get_user_name(geteuid());
duke@435 942
duke@435 943 if (user_name == NULL)
duke@435 944 return NULL;
duke@435 945
duke@435 946 char* dirname = get_user_tmp_dir(user_name);
duke@435 947 char* filename = get_sharedmem_filename(dirname, vmid);
duke@435 948
gthornbr@7493 949 // get the short filename
gthornbr@7493 950 char* short_filename = strrchr(filename, '/');
gthornbr@7493 951 if (short_filename == NULL) {
gthornbr@7493 952 short_filename = filename;
gthornbr@7493 953 } else {
gthornbr@7493 954 short_filename++;
gthornbr@7493 955 }
gthornbr@7493 956
duke@435 957 // cleanup any stale shared memory files
duke@435 958 cleanup_sharedmem_resources(dirname);
duke@435 959
duke@435 960 assert(((size > 0) && (size % os::vm_page_size() == 0)),
duke@435 961 "unexpected PerfMemory region size");
duke@435 962
gthornbr@7493 963 fd = create_sharedmem_resources(dirname, short_filename, size);
duke@435 964
zgu@3900 965 FREE_C_HEAP_ARRAY(char, user_name, mtInternal);
zgu@3900 966 FREE_C_HEAP_ARRAY(char, dirname, mtInternal);
duke@435 967
duke@435 968 if (fd == -1) {
zgu@3900 969 FREE_C_HEAP_ARRAY(char, filename, mtInternal);
duke@435 970 return NULL;
duke@435 971 }
duke@435 972
duke@435 973 mapAddress = (char*)::mmap((char*)0, size, PROT_READ|PROT_WRITE, MAP_SHARED, fd, 0);
duke@435 974
rdurbin@5264 975 result = ::close(fd);
duke@435 976 assert(result != OS_ERR, "could not close file");
duke@435 977
duke@435 978 if (mapAddress == MAP_FAILED) {
duke@435 979 if (PrintMiscellaneous && Verbose) {
duke@435 980 warning("mmap failed - %s\n", strerror(errno));
duke@435 981 }
duke@435 982 remove_file(filename);
zgu@3900 983 FREE_C_HEAP_ARRAY(char, filename, mtInternal);
duke@435 984 return NULL;
duke@435 985 }
duke@435 986
duke@435 987 // save the file name for use in delete_shared_memory()
duke@435 988 backing_store_file_name = filename;
duke@435 989
duke@435 990 // clear the shared memory region
duke@435 991 (void)::memset((void*) mapAddress, 0, size);
duke@435 992
zgu@4193 993 // it does not go through os api, the operation has to record from here
zgu@7074 994 MemTracker::record_virtual_memory_reserve_and_commit((address)mapAddress,
zgu@7074 995 size, CURRENT_PC, mtInternal);
zgu@4193 996
duke@435 997 return mapAddress;
duke@435 998 }
duke@435 999
duke@435 1000 // release a named shared memory region
duke@435 1001 //
duke@435 1002 static void unmap_shared(char* addr, size_t bytes) {
duke@435 1003 os::release_memory(addr, bytes);
duke@435 1004 }
duke@435 1005
duke@435 1006 // create the PerfData memory region in shared memory.
duke@435 1007 //
duke@435 1008 static char* create_shared_memory(size_t size) {
duke@435 1009
duke@435 1010 // create the shared memory region.
duke@435 1011 return mmap_create_shared(size);
duke@435 1012 }
duke@435 1013
duke@435 1014 // delete the shared PerfData memory region
duke@435 1015 //
duke@435 1016 static void delete_shared_memory(char* addr, size_t size) {
duke@435 1017
duke@435 1018 // cleanup the persistent shared memory resources. since DestroyJavaVM does
duke@435 1019 // not support unloading of the JVM, unmapping of the memory resource is
duke@435 1020 // not performed. The memory will be reclaimed by the OS upon termination of
duke@435 1021 // the process. The backing store file is deleted from the file system.
duke@435 1022
duke@435 1023 assert(!PerfDisableSharedMem, "shouldn't be here");
duke@435 1024
duke@435 1025 if (backing_store_file_name != NULL) {
duke@435 1026 remove_file(backing_store_file_name);
duke@435 1027 // Don't.. Free heap memory could deadlock os::abort() if it is called
duke@435 1028 // from signal handler. OS will reclaim the heap memory.
duke@435 1029 // FREE_C_HEAP_ARRAY(char, backing_store_file_name);
duke@435 1030 backing_store_file_name = NULL;
duke@435 1031 }
duke@435 1032 }
duke@435 1033
duke@435 1034 // return the size of the file for the given file descriptor
duke@435 1035 // or 0 if it is not a valid size for a shared memory file
duke@435 1036 //
duke@435 1037 static size_t sharedmem_filesize(int fd, TRAPS) {
duke@435 1038
duke@435 1039 struct stat statbuf;
duke@435 1040 int result;
duke@435 1041
duke@435 1042 RESTARTABLE(::fstat(fd, &statbuf), result);
duke@435 1043 if (result == OS_ERR) {
duke@435 1044 if (PrintMiscellaneous && Verbose) {
duke@435 1045 warning("fstat failed: %s\n", strerror(errno));
duke@435 1046 }
duke@435 1047 THROW_MSG_0(vmSymbols::java_io_IOException(),
duke@435 1048 "Could not determine PerfMemory size");
duke@435 1049 }
duke@435 1050
duke@435 1051 if ((statbuf.st_size == 0) ||
duke@435 1052 ((size_t)statbuf.st_size % os::vm_page_size() != 0)) {
duke@435 1053 THROW_MSG_0(vmSymbols::java_lang_Exception(),
duke@435 1054 "Invalid PerfMemory size");
duke@435 1055 }
duke@435 1056
duke@435 1057 return (size_t)statbuf.st_size;
duke@435 1058 }
duke@435 1059
duke@435 1060 // attach to a named shared memory region.
duke@435 1061 //
duke@435 1062 static void mmap_attach_shared(const char* user, int vmid, PerfMemory::PerfMemoryMode mode, char** addr, size_t* sizep, TRAPS) {
duke@435 1063
duke@435 1064 char* mapAddress;
duke@435 1065 int result;
duke@435 1066 int fd;
ccheung@4893 1067 size_t size = 0;
duke@435 1068 const char* luser = NULL;
duke@435 1069
duke@435 1070 int mmap_prot;
duke@435 1071 int file_flags;
duke@435 1072
duke@435 1073 ResourceMark rm;
duke@435 1074
duke@435 1075 // map the high level access mode to the appropriate permission
duke@435 1076 // constructs for the file and the shared memory mapping.
duke@435 1077 if (mode == PerfMemory::PERF_MODE_RO) {
duke@435 1078 mmap_prot = PROT_READ;
gthornbr@7493 1079 file_flags = O_RDONLY | O_NOFOLLOW;
duke@435 1080 }
duke@435 1081 else if (mode == PerfMemory::PERF_MODE_RW) {
duke@435 1082 #ifdef LATER
duke@435 1083 mmap_prot = PROT_READ | PROT_WRITE;
gthornbr@7493 1084 file_flags = O_RDWR | O_NOFOLLOW;
duke@435 1085 #else
duke@435 1086 THROW_MSG(vmSymbols::java_lang_IllegalArgumentException(),
duke@435 1087 "Unsupported access mode");
duke@435 1088 #endif
duke@435 1089 }
duke@435 1090 else {
duke@435 1091 THROW_MSG(vmSymbols::java_lang_IllegalArgumentException(),
duke@435 1092 "Illegal access mode");
duke@435 1093 }
duke@435 1094
duke@435 1095 if (user == NULL || strlen(user) == 0) {
duke@435 1096 luser = get_user_name(vmid, CHECK);
duke@435 1097 }
duke@435 1098 else {
duke@435 1099 luser = user;
duke@435 1100 }
duke@435 1101
duke@435 1102 if (luser == NULL) {
duke@435 1103 THROW_MSG(vmSymbols::java_lang_IllegalArgumentException(),
duke@435 1104 "Could not map vmid to user Name");
duke@435 1105 }
duke@435 1106
duke@435 1107 char* dirname = get_user_tmp_dir(luser);
duke@435 1108
duke@435 1109 // since we don't follow symbolic links when creating the backing
duke@435 1110 // store file, we don't follow them when attaching either.
duke@435 1111 //
duke@435 1112 if (!is_directory_secure(dirname)) {
zgu@3900 1113 FREE_C_HEAP_ARRAY(char, dirname, mtInternal);
duke@435 1114 THROW_MSG(vmSymbols::java_lang_IllegalArgumentException(),
duke@435 1115 "Process not found");
duke@435 1116 }
duke@435 1117
duke@435 1118 char* filename = get_sharedmem_filename(dirname, vmid);
duke@435 1119
duke@435 1120 // copy heap memory to resource memory. the open_sharedmem_file
duke@435 1121 // method below need to use the filename, but could throw an
duke@435 1122 // exception. using a resource array prevents the leak that
duke@435 1123 // would otherwise occur.
duke@435 1124 char* rfilename = NEW_RESOURCE_ARRAY(char, strlen(filename) + 1);
duke@435 1125 strcpy(rfilename, filename);
duke@435 1126
duke@435 1127 // free the c heap resources that are no longer needed
zgu@3900 1128 if (luser != user) FREE_C_HEAP_ARRAY(char, luser, mtInternal);
zgu@3900 1129 FREE_C_HEAP_ARRAY(char, dirname, mtInternal);
zgu@3900 1130 FREE_C_HEAP_ARRAY(char, filename, mtInternal);
duke@435 1131
duke@435 1132 // open the shared memory file for the give vmid
dcubed@6349 1133 fd = open_sharedmem_file(rfilename, file_flags, THREAD);
dcubed@6349 1134
dcubed@6349 1135 if (fd == OS_ERR) {
dcubed@6349 1136 return;
dcubed@6349 1137 }
dcubed@6349 1138
dcubed@6349 1139 if (HAS_PENDING_EXCEPTION) {
dcubed@6349 1140 ::close(fd);
dcubed@6349 1141 return;
dcubed@6349 1142 }
duke@435 1143
duke@435 1144 if (*sizep == 0) {
duke@435 1145 size = sharedmem_filesize(fd, CHECK);
ccheung@4893 1146 } else {
ccheung@4893 1147 size = *sizep;
duke@435 1148 }
duke@435 1149
ccheung@4893 1150 assert(size > 0, "unexpected size <= 0");
ccheung@4893 1151
duke@435 1152 mapAddress = (char*)::mmap((char*)0, size, mmap_prot, MAP_SHARED, fd, 0);
duke@435 1153
rdurbin@5264 1154 result = ::close(fd);
duke@435 1155 assert(result != OS_ERR, "could not close file");
duke@435 1156
duke@435 1157 if (mapAddress == MAP_FAILED) {
duke@435 1158 if (PrintMiscellaneous && Verbose) {
duke@435 1159 warning("mmap failed: %s\n", strerror(errno));
duke@435 1160 }
duke@435 1161 THROW_MSG(vmSymbols::java_lang_OutOfMemoryError(),
duke@435 1162 "Could not map PerfMemory");
duke@435 1163 }
duke@435 1164
zgu@4193 1165 // it does not go through os api, the operation has to record from here
zgu@7074 1166 MemTracker::record_virtual_memory_reserve_and_commit((address)mapAddress,
zgu@7074 1167 size, CURRENT_PC, mtInternal);
zgu@4193 1168
duke@435 1169 *addr = mapAddress;
duke@435 1170 *sizep = size;
duke@435 1171
duke@435 1172 if (PerfTraceMemOps) {
duke@435 1173 tty->print("mapped " SIZE_FORMAT " bytes for vmid %d at "
duke@435 1174 INTPTR_FORMAT "\n", size, vmid, (void*)mapAddress);
duke@435 1175 }
duke@435 1176 }
duke@435 1177
duke@435 1178
duke@435 1179
duke@435 1180
duke@435 1181 // create the PerfData memory region
duke@435 1182 //
duke@435 1183 // This method creates the memory region used to store performance
duke@435 1184 // data for the JVM. The memory may be created in standard or
duke@435 1185 // shared memory.
duke@435 1186 //
duke@435 1187 void PerfMemory::create_memory_region(size_t size) {
duke@435 1188
duke@435 1189 if (PerfDisableSharedMem) {
duke@435 1190 // do not share the memory for the performance data.
duke@435 1191 _start = create_standard_memory(size);
duke@435 1192 }
duke@435 1193 else {
duke@435 1194 _start = create_shared_memory(size);
duke@435 1195 if (_start == NULL) {
duke@435 1196
duke@435 1197 // creation of the shared memory region failed, attempt
duke@435 1198 // to create a contiguous, non-shared memory region instead.
duke@435 1199 //
duke@435 1200 if (PrintMiscellaneous && Verbose) {
duke@435 1201 warning("Reverting to non-shared PerfMemory region.\n");
duke@435 1202 }
duke@435 1203 PerfDisableSharedMem = true;
duke@435 1204 _start = create_standard_memory(size);
duke@435 1205 }
duke@435 1206 }
duke@435 1207
duke@435 1208 if (_start != NULL) _capacity = size;
duke@435 1209
duke@435 1210 }
duke@435 1211
duke@435 1212 // delete the PerfData memory region
duke@435 1213 //
duke@435 1214 // This method deletes the memory region used to store performance
duke@435 1215 // data for the JVM. The memory region indicated by the <address, size>
duke@435 1216 // tuple will be inaccessible after a call to this method.
duke@435 1217 //
duke@435 1218 void PerfMemory::delete_memory_region() {
duke@435 1219
duke@435 1220 assert((start() != NULL && capacity() > 0), "verify proper state");
duke@435 1221
duke@435 1222 // If user specifies PerfDataSaveFile, it will save the performance data
duke@435 1223 // to the specified file name no matter whether PerfDataSaveToFile is specified
duke@435 1224 // or not. In other word, -XX:PerfDataSaveFile=.. overrides flag
duke@435 1225 // -XX:+PerfDataSaveToFile.
duke@435 1226 if (PerfDataSaveToFile || PerfDataSaveFile != NULL) {
duke@435 1227 save_memory_to_file(start(), capacity());
duke@435 1228 }
duke@435 1229
duke@435 1230 if (PerfDisableSharedMem) {
duke@435 1231 delete_standard_memory(start(), capacity());
duke@435 1232 }
duke@435 1233 else {
duke@435 1234 delete_shared_memory(start(), capacity());
duke@435 1235 }
duke@435 1236 }
duke@435 1237
duke@435 1238 // attach to the PerfData memory region for another JVM
duke@435 1239 //
duke@435 1240 // This method returns an <address, size> tuple that points to
duke@435 1241 // a memory buffer that is kept reasonably synchronized with
duke@435 1242 // the PerfData memory region for the indicated JVM. This
duke@435 1243 // buffer may be kept in synchronization via shared memory
duke@435 1244 // or some other mechanism that keeps the buffer updated.
duke@435 1245 //
duke@435 1246 // If the JVM chooses not to support the attachability feature,
duke@435 1247 // this method should throw an UnsupportedOperation exception.
duke@435 1248 //
duke@435 1249 // This implementation utilizes named shared memory to map
duke@435 1250 // the indicated process's PerfData memory region into this JVMs
duke@435 1251 // address space.
duke@435 1252 //
duke@435 1253 void PerfMemory::attach(const char* user, int vmid, PerfMemoryMode mode, char** addrp, size_t* sizep, TRAPS) {
duke@435 1254
duke@435 1255 if (vmid == 0 || vmid == os::current_process_id()) {
duke@435 1256 *addrp = start();
duke@435 1257 *sizep = capacity();
duke@435 1258 return;
duke@435 1259 }
duke@435 1260
duke@435 1261 mmap_attach_shared(user, vmid, mode, addrp, sizep, CHECK);
duke@435 1262 }
duke@435 1263
duke@435 1264 // detach from the PerfData memory region of another JVM
duke@435 1265 //
duke@435 1266 // This method detaches the PerfData memory region of another
duke@435 1267 // JVM, specified as an <address, size> tuple of a buffer
duke@435 1268 // in this process's address space. This method may perform
duke@435 1269 // arbitrary actions to accomplish the detachment. The memory
duke@435 1270 // region specified by <address, size> will be inaccessible after
duke@435 1271 // a call to this method.
duke@435 1272 //
duke@435 1273 // If the JVM chooses not to support the attachability feature,
duke@435 1274 // this method should throw an UnsupportedOperation exception.
duke@435 1275 //
duke@435 1276 // This implementation utilizes named shared memory to detach
duke@435 1277 // the indicated process's PerfData memory region from this
duke@435 1278 // process's address space.
duke@435 1279 //
duke@435 1280 void PerfMemory::detach(char* addr, size_t bytes, TRAPS) {
duke@435 1281
duke@435 1282 assert(addr != 0, "address sanity check");
duke@435 1283 assert(bytes > 0, "capacity sanity check");
duke@435 1284
duke@435 1285 if (PerfMemory::contains(addr) || PerfMemory::contains(addr + bytes - 1)) {
duke@435 1286 // prevent accidental detachment of this process's PerfMemory region
duke@435 1287 return;
duke@435 1288 }
duke@435 1289
duke@435 1290 unmap_shared(addr, bytes);
duke@435 1291 }
duke@435 1292
duke@435 1293 char* PerfMemory::backing_store_filename() {
duke@435 1294 return backing_store_file_name;
duke@435 1295 }

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