1 /* 2 * QTest 3 * 4 * Copyright IBM, Corp. 2012 5 * Copyright Red Hat, Inc. 2012 6 * Copyright SUSE LINUX Products GmbH 2013 7 * 8 * Authors: 9 * Anthony Liguori <aliguori@us.ibm.com> 10 * Paolo Bonzini <pbonzini@redhat.com> 11 * Andreas Färber <afaerber@suse.de> 12 * 13 * This work is licensed under the terms of the GNU GPL, version 2 or later. 14 * See the COPYING file in the top-level directory. 15 */ 16 17 #include "qemu/osdep.h" 18 19 #ifndef _WIN32 20 #include <sys/socket.h> 21 #include <sys/wait.h> 22 #include <sys/un.h> 23 #endif /* _WIN32 */ 24 #ifdef __linux__ 25 #include <sys/prctl.h> 26 #endif /* __linux__ */ 27 #ifdef __FreeBSD__ 28 #include <sys/procctl.h> 29 #endif /* __FreeBSD__ */ 30 31 #include "libqtest.h" 32 #include "libqmp.h" 33 #include "qemu/accel.h" 34 #include "qemu/ctype.h" 35 #include "qemu/cutils.h" 36 #include "qemu/sockets.h" 37 #include "qobject/qdict.h" 38 #include "qobject/qjson.h" 39 #include "qobject/qlist.h" 40 #include "qobject/qstring.h" 41 #include "qobject/qbool.h" 42 43 #define MAX_IRQ 256 44 45 #ifndef _WIN32 46 # define SOCKET_TIMEOUT 50 47 # define CMD_EXEC "exec " 48 # define DEV_STDERR "/dev/fd/2" 49 # define DEV_NULL "/dev/null" 50 #else 51 # define SOCKET_TIMEOUT 50000 52 # define CMD_EXEC "" 53 # define DEV_STDERR "2" 54 # define DEV_NULL "nul" 55 #endif 56 57 #define WAITPID_TIMEOUT 30 58 59 typedef void (*QTestSendFn)(QTestState *s, const char *buf); 60 typedef void (*ExternalSendFn)(void *s, const char *buf); 61 typedef GString* (*QTestRecvFn)(QTestState *); 62 63 typedef struct QTestClientTransportOps { 64 QTestSendFn send; /* for sending qtest commands */ 65 66 /* 67 * use external_send to send qtest command strings through functions which 68 * do not accept a QTestState as the first parameter. 69 */ 70 ExternalSendFn external_send; 71 72 QTestRecvFn recv_line; /* for receiving qtest command responses */ 73 } QTestTransportOps; 74 75 struct QTestState 76 { 77 int fd; 78 int qmp_fd; 79 int sock; 80 int qmpsock; 81 pid_t qemu_pid; /* our child QEMU process */ 82 int wstatus; 83 #ifdef _WIN32 84 DWORD exit_code; 85 #endif 86 int expected_status; 87 bool big_endian; 88 bool irq_level[MAX_IRQ]; 89 GString *rx; 90 QTestTransportOps ops; 91 GList *pending_events; 92 QTestQMPEventCallback eventCB; 93 void *eventData; 94 }; 95 96 static GHookList abrt_hooks; 97 static void (*sighandler_old)(int); 98 static bool silence_spawn_log; 99 100 static int qtest_query_target_endianness(QTestState *s); 101 102 static void qtest_client_socket_send(QTestState*, const char *buf); 103 static void socket_send(int fd, const char *buf, size_t size); 104 105 static GString *qtest_client_socket_recv_line(QTestState *); 106 107 static void qtest_client_set_tx_handler(QTestState *s, QTestSendFn send); 108 static void qtest_client_set_rx_handler(QTestState *s, QTestRecvFn recv); 109 110 static int init_socket(const char *socket_path) 111 { 112 int sock = qtest_socket_server(socket_path); 113 qemu_set_cloexec(sock); 114 return sock; 115 } 116 117 static int socket_accept(int sock) 118 { 119 struct sockaddr_un addr; 120 socklen_t addrlen; 121 int ret; 122 /* 123 * timeout unit of blocking receive calls is different among platforms. 124 * It's in seconds on non-Windows platforms but milliseconds on Windows. 125 */ 126 #ifndef _WIN32 127 struct timeval timeout = { .tv_sec = SOCKET_TIMEOUT, 128 .tv_usec = 0 }; 129 #else 130 DWORD timeout = SOCKET_TIMEOUT; 131 #endif 132 133 if (setsockopt(sock, SOL_SOCKET, SO_RCVTIMEO, 134 (void *)&timeout, sizeof(timeout))) { 135 fprintf(stderr, "%s failed to set SO_RCVTIMEO: %s\n", 136 __func__, strerror(errno)); 137 close(sock); 138 return -1; 139 } 140 141 do { 142 addrlen = sizeof(addr); 143 ret = accept(sock, (struct sockaddr *)&addr, &addrlen); 144 } while (ret == -1 && errno == EINTR); 145 if (ret == -1) { 146 fprintf(stderr, "%s failed: %s\n", __func__, strerror(errno)); 147 } 148 close(sock); 149 150 return ret; 151 } 152 153 pid_t qtest_pid(QTestState *s) 154 { 155 return s->qemu_pid; 156 } 157 158 bool qtest_probe_child(QTestState *s) 159 { 160 pid_t pid = s->qemu_pid; 161 162 if (pid != -1) { 163 #ifndef _WIN32 164 pid = waitpid(pid, &s->wstatus, WNOHANG); 165 if (pid == 0) { 166 return true; 167 } 168 #else 169 GetExitCodeProcess((HANDLE)pid, &s->exit_code); 170 if (s->exit_code == STILL_ACTIVE) { 171 return true; 172 } 173 CloseHandle((HANDLE)pid); 174 #endif 175 s->qemu_pid = -1; 176 qtest_remove_abrt_handler(s); 177 } 178 return false; 179 } 180 181 void qtest_set_expected_status(QTestState *s, int status) 182 { 183 s->expected_status = status; 184 } 185 186 static void qtest_check_status(QTestState *s) 187 { 188 assert(s->qemu_pid == -1); 189 190 /* 191 * Check whether qemu exited with expected exit status; anything else is 192 * fishy and should be logged with as much detail as possible. 193 */ 194 #ifndef _WIN32 195 int wstatus = s->wstatus; 196 if (WIFEXITED(wstatus) && WEXITSTATUS(wstatus) != s->expected_status) { 197 fprintf(stderr, "%s:%d: kill_qemu() tried to terminate QEMU " 198 "process but encountered exit status %d (expected %d)\n", 199 __FILE__, __LINE__, WEXITSTATUS(wstatus), s->expected_status); 200 abort(); 201 } else if (WIFSIGNALED(wstatus)) { 202 int sig = WTERMSIG(wstatus); 203 const char *signame = strsignal(sig) ?: "unknown ???"; 204 const char *dump = WCOREDUMP(wstatus) ? " (core dumped)" : ""; 205 206 fprintf(stderr, "%s:%d: kill_qemu() detected QEMU death " 207 "from signal %d (%s)%s\n", 208 __FILE__, __LINE__, sig, signame, dump); 209 abort(); 210 } 211 #else 212 if (s->exit_code != s->expected_status) { 213 fprintf(stderr, "%s:%d: kill_qemu() tried to terminate QEMU " 214 "process but encountered exit status %ld (expected %d)\n", 215 __FILE__, __LINE__, s->exit_code, s->expected_status); 216 abort(); 217 } 218 #endif 219 } 220 221 void qtest_system_reset_nowait(QTestState *s) 222 { 223 /* Request the system reset, but do not wait for it to complete */ 224 qtest_qmp_assert_success(s, "{'execute': 'system_reset' }"); 225 } 226 227 void qtest_system_reset(QTestState *s) 228 { 229 qtest_system_reset_nowait(s); 230 /* 231 * Wait for the RESET event, which is sent once the system reset 232 * has actually completed. 233 */ 234 qtest_qmp_eventwait(s, "RESET"); 235 } 236 237 void qtest_wait_qemu(QTestState *s) 238 { 239 if (s->qemu_pid != -1) { 240 #ifndef _WIN32 241 pid_t pid; 242 uint64_t end; 243 244 /* poll for a while until sending SIGKILL */ 245 end = g_get_monotonic_time() + WAITPID_TIMEOUT * G_TIME_SPAN_SECOND; 246 247 do { 248 pid = waitpid(s->qemu_pid, &s->wstatus, WNOHANG); 249 if (pid != 0) { 250 break; 251 } 252 g_usleep(100 * 1000); 253 } while (g_get_monotonic_time() < end); 254 255 if (pid == 0) { 256 kill(s->qemu_pid, SIGKILL); 257 pid = RETRY_ON_EINTR(waitpid(s->qemu_pid, &s->wstatus, 0)); 258 } 259 260 assert(pid == s->qemu_pid); 261 #else 262 DWORD ret; 263 264 ret = WaitForSingleObject((HANDLE)s->qemu_pid, INFINITE); 265 assert(ret == WAIT_OBJECT_0); 266 GetExitCodeProcess((HANDLE)s->qemu_pid, &s->exit_code); 267 CloseHandle((HANDLE)s->qemu_pid); 268 #endif 269 270 s->qemu_pid = -1; 271 qtest_remove_abrt_handler(s); 272 } 273 qtest_check_status(s); 274 } 275 276 void qtest_kill_qemu(QTestState *s) 277 { 278 /* Skip wait if qtest_probe_child() already reaped */ 279 if (s->qemu_pid != -1) { 280 #ifndef _WIN32 281 kill(s->qemu_pid, SIGTERM); 282 #else 283 TerminateProcess((HANDLE)s->qemu_pid, s->expected_status); 284 #endif 285 qtest_wait_qemu(s); 286 return; 287 } 288 289 qtest_check_status(s); 290 } 291 292 static void kill_qemu_hook_func(void *s) 293 { 294 qtest_kill_qemu(s); 295 } 296 297 static void sigabrt_handler(int signo) 298 { 299 g_hook_list_invoke(&abrt_hooks, FALSE); 300 } 301 302 static void setup_sigabrt_handler(void) 303 { 304 sighandler_old = signal(SIGABRT, sigabrt_handler); 305 } 306 307 static void cleanup_sigabrt_handler(void) 308 { 309 signal(SIGABRT, sighandler_old); 310 } 311 312 static bool hook_list_is_empty(GHookList *hook_list) 313 { 314 GHook *hook = g_hook_first_valid(hook_list, TRUE); 315 316 if (!hook) { 317 return true; 318 } 319 320 g_hook_unref(hook_list, hook); 321 return false; 322 } 323 324 void qtest_add_abrt_handler(GHookFunc fn, const void *data) 325 { 326 GHook *hook; 327 328 if (!abrt_hooks.is_setup) { 329 g_hook_list_init(&abrt_hooks, sizeof(GHook)); 330 } 331 332 /* Only install SIGABRT handler once */ 333 if (hook_list_is_empty(&abrt_hooks)) { 334 setup_sigabrt_handler(); 335 } 336 337 hook = g_hook_alloc(&abrt_hooks); 338 hook->func = fn; 339 hook->data = (void *)data; 340 341 g_hook_prepend(&abrt_hooks, hook); 342 } 343 344 void qtest_remove_abrt_handler(void *data) 345 { 346 GHook *hook = g_hook_find_data(&abrt_hooks, TRUE, data); 347 348 if (!hook) { 349 return; 350 } 351 352 g_hook_destroy_link(&abrt_hooks, hook); 353 354 /* Uninstall SIGABRT handler on last instance */ 355 if (hook_list_is_empty(&abrt_hooks)) { 356 cleanup_sigabrt_handler(); 357 } 358 } 359 360 static const char *qtest_qemu_binary(const char *var) 361 { 362 const char *qemu_bin; 363 364 if (var) { 365 qemu_bin = getenv(var); 366 if (qemu_bin) { 367 return qemu_bin; 368 } 369 } 370 371 qemu_bin = getenv("QTEST_QEMU_BINARY"); 372 if (!qemu_bin) { 373 fprintf(stderr, "Environment variable QTEST_QEMU_BINARY required\n"); 374 exit(1); 375 } 376 377 return qemu_bin; 378 } 379 380 #ifdef _WIN32 381 static pid_t qtest_create_process(char *cmd) 382 { 383 STARTUPINFO si; 384 PROCESS_INFORMATION pi; 385 BOOL ret; 386 387 ZeroMemory(&si, sizeof(si)); 388 si.cb = sizeof(si); 389 ZeroMemory(&pi, sizeof(pi)); 390 391 ret = CreateProcess(NULL, /* module name */ 392 cmd, /* command line */ 393 NULL, /* process handle not inheritable */ 394 NULL, /* thread handle not inheritable */ 395 FALSE, /* set handle inheritance to FALSE */ 396 0, /* No creation flags */ 397 NULL, /* use parent's environment block */ 398 NULL, /* use parent's starting directory */ 399 &si, /* pointer to STARTUPINFO structure */ 400 &pi /* pointer to PROCESS_INFORMATION structure */ 401 ); 402 if (ret == 0) { 403 fprintf(stderr, "%s:%d: unable to create a new process (%s)\n", 404 __FILE__, __LINE__, strerror(GetLastError())); 405 abort(); 406 } 407 408 return (pid_t)pi.hProcess; 409 } 410 #endif /* _WIN32 */ 411 412 static QTestState *G_GNUC_PRINTF(2, 3) qtest_spawn_qemu(const char *qemu_bin, 413 const char *fmt, ...) 414 { 415 va_list ap; 416 QTestState *s = g_new0(QTestState, 1); 417 const char *trace = g_getenv("QTEST_TRACE"); 418 g_autofree char *tracearg = trace ? 419 g_strdup_printf("-trace %s ", trace) : g_strdup(""); 420 g_autoptr(GString) command = g_string_new(""); 421 422 va_start(ap, fmt); 423 g_string_append_printf(command, CMD_EXEC "%s %s", qemu_bin, tracearg); 424 g_string_append_vprintf(command, fmt, ap); 425 va_end(ap); 426 427 qtest_add_abrt_handler(kill_qemu_hook_func, s); 428 429 if (!silence_spawn_log) { 430 g_test_message("starting QEMU: %s", command->str); 431 } 432 433 #ifndef _WIN32 434 s->qemu_pid = fork(); 435 if (s->qemu_pid == 0) { 436 #ifdef __linux__ 437 /* 438 * Although we register a ABRT handler to kill off QEMU 439 * when g_assert() triggers, we want an extra safety 440 * net. The QEMU process might be non-functional and 441 * thus not have responded to SIGTERM. The test script 442 * might also have crashed with SEGV, in which case the 443 * cleanup handlers won't ever run. 444 * 445 * This PR_SET_PDEATHSIG setup will ensure any remaining 446 * QEMU will get terminated with SIGKILL in these cases. 447 */ 448 prctl(PR_SET_PDEATHSIG, SIGKILL, 0, 0, 0); 449 #endif /* __linux__ */ 450 #ifdef __FreeBSD__ 451 int sig = SIGKILL; 452 procctl(P_PID, getpid(), PROC_PDEATHSIG_CTL, &sig); 453 #endif /* __FreeBSD__ */ 454 execlp("/bin/sh", "sh", "-c", command->str, NULL); 455 exit(1); 456 } 457 #else 458 s->qemu_pid = qtest_create_process(command->str); 459 #endif /* _WIN32 */ 460 461 return s; 462 } 463 464 static char *qtest_socket_path(const char *suffix) 465 { 466 return g_strdup_printf("%s/qtest-%d.%s", g_get_tmp_dir(), getpid(), suffix); 467 } 468 469 static QTestState *qtest_init_internal(const char *qemu_bin, 470 const char *extra_args, 471 bool do_connect) 472 { 473 QTestState *s; 474 int sock, qmpsock, i; 475 g_autofree gchar *socket_path = qtest_socket_path("sock"); 476 g_autofree gchar *qmp_socket_path = qtest_socket_path("qmp"); 477 478 /* 479 * It's possible that if an earlier test run crashed it might 480 * have left a stale unix socket lying around. Delete any 481 * stale old socket to avoid spurious test failures with 482 * tests/libqtest.c:70:init_socket: assertion failed (ret != -1): (-1 != -1) 483 */ 484 unlink(socket_path); 485 unlink(qmp_socket_path); 486 487 socket_init(); 488 sock = init_socket(socket_path); 489 qmpsock = init_socket(qmp_socket_path); 490 491 s = qtest_spawn_qemu(qemu_bin, 492 "-qtest unix:%s " 493 "-qtest-log %s " 494 "-chardev socket,path=%s,id=char0 " 495 "-mon chardev=char0,mode=control " 496 "-display none " 497 "-audio none " 498 "%s" 499 " -accel qtest", 500 socket_path, 501 getenv("QTEST_LOG") ? DEV_STDERR : DEV_NULL, 502 qmp_socket_path, 503 extra_args ?: ""); 504 505 qtest_client_set_rx_handler(s, qtest_client_socket_recv_line); 506 qtest_client_set_tx_handler(s, qtest_client_socket_send); 507 508 s->rx = g_string_new(""); 509 for (i = 0; i < MAX_IRQ; i++) { 510 s->irq_level[i] = false; 511 } 512 513 s->fd = -1; 514 s->qmp_fd = -1; 515 s->sock = sock; 516 s->qmpsock = qmpsock; 517 if (do_connect) { 518 qtest_connect(s); 519 } 520 521 /* 522 * Stopping QEMU for debugging is not supported on Windows. 523 * 524 * Using DebugActiveProcess() API can suspend the QEMU process, 525 * but gdb cannot attach to the process. Using the undocumented 526 * NtSuspendProcess() can suspend the QEMU process and gdb can 527 * attach to the process, but gdb cannot resume it. 528 */ 529 #ifndef _WIN32 530 if (getenv("QTEST_STOP")) { 531 kill(s->qemu_pid, SIGSTOP); 532 } 533 #endif 534 535 return s; 536 } 537 538 void qtest_connect(QTestState *s) 539 { 540 g_autofree gchar *socket_path = qtest_socket_path("sock"); 541 g_autofree gchar *qmp_socket_path = qtest_socket_path("qmp"); 542 543 g_assert(s->sock >= 0 && s->qmpsock >= 0); 544 s->fd = socket_accept(s->sock); 545 if (s->fd >= 0) { 546 s->qmp_fd = socket_accept(s->qmpsock); 547 } 548 unlink(socket_path); 549 unlink(qmp_socket_path); 550 g_assert(s->fd >= 0 && s->qmp_fd >= 0); 551 s->sock = s->qmpsock = -1; 552 /* ask endianness of the target */ 553 s->big_endian = qtest_query_target_endianness(s); 554 } 555 556 QTestState *qtest_init_without_qmp_handshake(const char *extra_args) 557 { 558 return qtest_init_internal(qtest_qemu_binary(NULL), extra_args, true); 559 } 560 561 void qtest_qmp_handshake(QTestState *s, QList *capabilities) 562 { 563 /* Read the QMP greeting and then do the handshake */ 564 QDict *greeting = qtest_qmp_receive(s); 565 qobject_unref(greeting); 566 567 if (capabilities) { 568 qtest_qmp_assert_success(s, 569 "{ 'execute': 'qmp_capabilities', " 570 "'arguments': { 'enable': %p } }", 571 qobject_ref(capabilities)); 572 } else { 573 qtest_qmp_assert_success(s, "{ 'execute': 'qmp_capabilities' }"); 574 } 575 } 576 577 QTestState *qtest_init_ext(const char *var, const char *extra_args, 578 QList *capabilities, bool do_connect) 579 { 580 QTestState *s = qtest_init_internal(qtest_qemu_binary(var), extra_args, 581 do_connect); 582 583 if (do_connect) { 584 qtest_qmp_handshake(s, capabilities); 585 } else { 586 /* 587 * If the connection is delayed, the capabilities must be set 588 * at that moment. 589 */ 590 assert(!capabilities); 591 } 592 return s; 593 } 594 595 QTestState *qtest_init(const char *extra_args) 596 { 597 return qtest_init_ext(NULL, extra_args, NULL, true); 598 } 599 600 QTestState *qtest_vinitf(const char *fmt, va_list ap) 601 { 602 char *args = g_strdup_vprintf(fmt, ap); 603 QTestState *s; 604 605 s = qtest_init(args); 606 g_free(args); 607 return s; 608 } 609 610 QTestState *qtest_initf(const char *fmt, ...) 611 { 612 va_list ap; 613 QTestState *s; 614 615 va_start(ap, fmt); 616 s = qtest_vinitf(fmt, ap); 617 va_end(ap); 618 return s; 619 } 620 621 QTestState *qtest_init_with_serial(const char *extra_args, int *sock_fd) 622 { 623 int sock_fd_init; 624 g_autofree char *sock_dir = NULL; 625 char *sock_path; 626 QTestState *qts; 627 628 sock_dir = g_dir_make_tmp("qtest-serial-XXXXXX", NULL); 629 g_assert_true(sock_dir != NULL); 630 sock_path = g_strdup_printf("%s/sock", sock_dir); 631 632 socket_init(); 633 sock_fd_init = init_socket(sock_path); 634 635 qts = qtest_initf("-chardev socket,id=s0,path=%s -serial chardev:s0 %s", 636 sock_path, extra_args); 637 638 *sock_fd = socket_accept(sock_fd_init); 639 640 unlink(sock_path); 641 g_free(sock_path); 642 rmdir(sock_dir); 643 644 g_assert_true(*sock_fd >= 0); 645 646 return qts; 647 } 648 649 void qtest_quit(QTestState *s) 650 { 651 qtest_remove_abrt_handler(s); 652 653 qtest_kill_qemu(s); 654 close(s->fd); 655 close(s->qmp_fd); 656 g_string_free(s->rx, true); 657 658 for (GList *it = s->pending_events; it != NULL; it = it->next) { 659 qobject_unref((QDict *)it->data); 660 } 661 662 g_list_free(s->pending_events); 663 664 g_free(s); 665 } 666 667 static void socket_send(int fd, const char *buf, size_t size) 668 { 669 ssize_t res = qemu_send_full(fd, buf, size); 670 671 assert(res == size); 672 } 673 674 static void qtest_client_socket_send(QTestState *s, const char *buf) 675 { 676 socket_send(s->fd, buf, strlen(buf)); 677 } 678 679 static void G_GNUC_PRINTF(2, 3) qtest_sendf(QTestState *s, const char *fmt, ...) 680 { 681 va_list ap; 682 683 va_start(ap, fmt); 684 gchar *str = g_strdup_vprintf(fmt, ap); 685 va_end(ap); 686 687 s->ops.send(s, str); 688 g_free(str); 689 } 690 691 static GString *qtest_client_socket_recv_line(QTestState *s) 692 { 693 GString *line; 694 size_t offset; 695 char *eol; 696 697 while ((eol = strchr(s->rx->str, '\n')) == NULL) { 698 ssize_t len; 699 char buffer[1024]; 700 701 len = recv(s->fd, buffer, sizeof(buffer), 0); 702 if (len == -1 && errno == EINTR) { 703 continue; 704 } 705 706 if (len == -1 || len == 0) { 707 fprintf(stderr, "Broken pipe\n"); 708 abort(); 709 } 710 711 g_string_append_len(s->rx, buffer, len); 712 } 713 714 offset = eol - s->rx->str; 715 line = g_string_new_len(s->rx->str, offset); 716 g_string_erase(s->rx, 0, offset + 1); 717 718 return line; 719 } 720 721 static gchar **qtest_rsp_args(QTestState *s, int expected_args) 722 { 723 GString *line; 724 gchar **words; 725 int i; 726 727 redo: 728 line = s->ops.recv_line(s); 729 words = g_strsplit(line->str, " ", 0); 730 g_string_free(line, TRUE); 731 732 if (strcmp(words[0], "IRQ") == 0) { 733 long irq; 734 int ret; 735 736 g_assert(words[1] != NULL); 737 g_assert(words[2] != NULL); 738 739 ret = qemu_strtol(words[2], NULL, 0, &irq); 740 g_assert(!ret); 741 g_assert_cmpint(irq, >=, 0); 742 g_assert_cmpint(irq, <, MAX_IRQ); 743 744 if (strcmp(words[1], "raise") == 0) { 745 s->irq_level[irq] = true; 746 } else { 747 s->irq_level[irq] = false; 748 } 749 750 g_strfreev(words); 751 goto redo; 752 } 753 754 g_assert(words[0] != NULL); 755 g_assert_cmpstr(words[0], ==, "OK"); 756 757 for (i = 0; i < expected_args; i++) { 758 g_assert(words[i] != NULL); 759 } 760 761 return words; 762 } 763 764 static void qtest_rsp(QTestState *s) 765 { 766 gchar **words = qtest_rsp_args(s, 0); 767 768 g_strfreev(words); 769 } 770 771 static int qtest_query_target_endianness(QTestState *s) 772 { 773 gchar **args; 774 int big_endian; 775 776 qtest_sendf(s, "endianness\n"); 777 args = qtest_rsp_args(s, 1); 778 g_assert(strcmp(args[1], "big") == 0 || strcmp(args[1], "little") == 0); 779 big_endian = strcmp(args[1], "big") == 0; 780 g_strfreev(args); 781 782 return big_endian; 783 } 784 785 QDict *qtest_qmp_receive(QTestState *s) 786 { 787 while (true) { 788 QDict *response = qtest_qmp_receive_dict(s); 789 790 if (!qdict_get_try_str(response, "event")) { 791 return response; 792 } 793 794 if (!s->eventCB || 795 !s->eventCB(s, qdict_get_str(response, "event"), 796 response, s->eventData)) { 797 /* Stash the event for a later consumption */ 798 s->pending_events = g_list_append(s->pending_events, response); 799 } else { 800 qobject_unref(response); 801 } 802 } 803 } 804 805 QDict *qtest_qmp_receive_dict(QTestState *s) 806 { 807 g_assert(s->qmp_fd >= 0); 808 return qmp_fd_receive(s->qmp_fd); 809 } 810 811 int qtest_socket_server(const char *socket_path) 812 { 813 struct sockaddr_un addr; 814 int sock; 815 int ret; 816 817 sock = socket(PF_UNIX, SOCK_STREAM, 0); 818 g_assert_cmpint(sock, !=, -1); 819 820 addr.sun_family = AF_UNIX; 821 snprintf(addr.sun_path, sizeof(addr.sun_path), "%s", socket_path); 822 823 ret = RETRY_ON_EINTR(bind(sock, (struct sockaddr *)&addr, sizeof(addr))); 824 g_assert_cmpint(ret, !=, -1); 825 ret = listen(sock, 1); 826 g_assert_cmpint(ret, !=, -1); 827 828 return sock; 829 } 830 831 #ifndef _WIN32 832 void qtest_qmp_vsend_fds(QTestState *s, int *fds, size_t fds_num, 833 const char *fmt, va_list ap) 834 { 835 g_assert(s->qmp_fd >= 0); 836 qmp_fd_vsend_fds(s->qmp_fd, fds, fds_num, fmt, ap); 837 } 838 #endif 839 840 void qtest_qmp_vsend(QTestState *s, const char *fmt, va_list ap) 841 { 842 g_assert(s->qmp_fd >= 0); 843 qmp_fd_vsend(s->qmp_fd, fmt, ap); 844 } 845 846 #ifndef _WIN32 847 QDict *qtest_vqmp_fds(QTestState *s, int *fds, size_t fds_num, 848 const char *fmt, va_list ap) 849 { 850 qtest_qmp_vsend_fds(s, fds, fds_num, fmt, ap); 851 852 /* Receive reply */ 853 return qtest_qmp_receive(s); 854 } 855 #endif 856 857 QDict *qtest_vqmp(QTestState *s, const char *fmt, va_list ap) 858 { 859 qtest_qmp_vsend(s, fmt, ap); 860 861 /* Receive reply */ 862 return qtest_qmp_receive(s); 863 } 864 865 #ifndef _WIN32 866 QDict *qtest_qmp_fds(QTestState *s, int *fds, size_t fds_num, 867 const char *fmt, ...) 868 { 869 va_list ap; 870 QDict *response; 871 872 va_start(ap, fmt); 873 response = qtest_vqmp_fds(s, fds, fds_num, fmt, ap); 874 va_end(ap); 875 return response; 876 } 877 #endif 878 879 QDict *qtest_qmp(QTestState *s, const char *fmt, ...) 880 { 881 va_list ap; 882 QDict *response; 883 884 va_start(ap, fmt); 885 response = qtest_vqmp(s, fmt, ap); 886 va_end(ap); 887 return response; 888 } 889 890 void qtest_qmp_send(QTestState *s, const char *fmt, ...) 891 { 892 va_list ap; 893 894 va_start(ap, fmt); 895 qtest_qmp_vsend(s, fmt, ap); 896 va_end(ap); 897 } 898 899 void qtest_qmp_send_raw(QTestState *s, const char *fmt, ...) 900 { 901 va_list ap; 902 903 g_assert(s->qmp_fd >= 0); 904 va_start(ap, fmt); 905 qmp_fd_vsend_raw(s->qmp_fd, fmt, ap); 906 va_end(ap); 907 } 908 909 void qtest_qmp_set_event_callback(QTestState *s, 910 QTestQMPEventCallback cb, void *opaque) 911 { 912 s->eventCB = cb; 913 s->eventData = opaque; 914 } 915 916 QDict *qtest_qmp_event_ref(QTestState *s, const char *event) 917 { 918 while (s->pending_events) { 919 920 GList *first = s->pending_events; 921 QDict *response = (QDict *)first->data; 922 923 s->pending_events = g_list_delete_link(s->pending_events, first); 924 925 if (!strcmp(qdict_get_str(response, "event"), event)) { 926 return response; 927 } 928 qobject_unref(response); 929 } 930 return NULL; 931 } 932 933 QDict *qtest_qmp_eventwait_ref(QTestState *s, const char *event) 934 { 935 QDict *response = qtest_qmp_event_ref(s, event); 936 937 if (response) { 938 return response; 939 } 940 941 for (;;) { 942 response = qtest_qmp_receive_dict(s); 943 if ((qdict_haskey(response, "event")) && 944 (strcmp(qdict_get_str(response, "event"), event) == 0)) { 945 return response; 946 } 947 qobject_unref(response); 948 } 949 } 950 951 void qtest_qmp_eventwait(QTestState *s, const char *event) 952 { 953 QDict *response; 954 955 response = qtest_qmp_eventwait_ref(s, event); 956 qobject_unref(response); 957 } 958 959 char *qtest_vhmp(QTestState *s, const char *fmt, va_list ap) 960 { 961 char *cmd; 962 QDict *resp; 963 char *ret; 964 965 cmd = g_strdup_vprintf(fmt, ap); 966 resp = qtest_qmp(s, "{'execute': 'human-monitor-command'," 967 " 'arguments': {'command-line': %s}}", 968 cmd); 969 ret = g_strdup(qdict_get_try_str(resp, "return")); 970 g_assert(ret); 971 qobject_unref(resp); 972 g_free(cmd); 973 return ret; 974 } 975 976 char *qtest_hmp(QTestState *s, const char *fmt, ...) 977 { 978 va_list ap; 979 char *ret; 980 981 va_start(ap, fmt); 982 ret = qtest_vhmp(s, fmt, ap); 983 va_end(ap); 984 return ret; 985 } 986 987 const char *qtest_get_arch(void) 988 { 989 const char *qemu = qtest_qemu_binary(NULL); 990 const char *end = strrchr(qemu, '-'); 991 992 if (!end) { 993 fprintf(stderr, "Can't determine architecture from binary name.\n"); 994 exit(1); 995 } 996 997 if (!strstr(qemu, "-system-")) { 998 fprintf(stderr, "QTEST_QEMU_BINARY must end with *-system-<arch> " 999 "where 'arch' is the target\narchitecture (x86_64, aarch64, " 1000 "etc).\n"); 1001 exit(1); 1002 } 1003 1004 return end + 1; 1005 } 1006 1007 static bool qtest_qom_has_concrete_type(const char *parent_typename, 1008 const char *child_typename, 1009 QList **cached_list) 1010 { 1011 QList *list = cached_list ? *cached_list : NULL; 1012 const QListEntry *p; 1013 QObject *qobj; 1014 QString *qstr; 1015 QDict *devinfo; 1016 int idx; 1017 1018 if (!list) { 1019 QDict *resp; 1020 QDict *args; 1021 QTestState *qts = qtest_init("-machine none"); 1022 1023 args = qdict_new(); 1024 qdict_put_bool(args, "abstract", false); 1025 qdict_put_str(args, "implements", parent_typename); 1026 1027 resp = qtest_qmp(qts, "{'execute': 'qom-list-types', 'arguments': %p }", 1028 args); 1029 g_assert(qdict_haskey(resp, "return")); 1030 list = qdict_get_qlist(resp, "return"); 1031 qobject_ref(list); 1032 qobject_unref(resp); 1033 1034 qtest_quit(qts); 1035 1036 if (cached_list) { 1037 *cached_list = list; 1038 } 1039 } 1040 1041 for (p = qlist_first(list), idx = 0; p; p = qlist_next(p), idx++) { 1042 devinfo = qobject_to(QDict, qlist_entry_obj(p)); 1043 g_assert(devinfo); 1044 1045 qobj = qdict_get(devinfo, "name"); 1046 g_assert(qobj); 1047 qstr = qobject_to(QString, qobj); 1048 g_assert(qstr); 1049 if (g_str_equal(qstring_get_str(qstr), child_typename)) { 1050 return true; 1051 } 1052 } 1053 1054 return false; 1055 } 1056 1057 bool qtest_has_accel(const char *accel_name) 1058 { 1059 static QList *list; 1060 g_autofree char *accel_type = NULL; 1061 1062 if (g_str_equal(accel_name, "kvm")) { 1063 int i; 1064 const char *arch = qtest_get_arch(); 1065 const char *targets[] = { CONFIG_KVM_TARGETS }; 1066 1067 for (i = 0; i < ARRAY_SIZE(targets); i++) { 1068 if (!strncmp(targets[i], arch, strlen(arch))) { 1069 if (!access("/dev/kvm", R_OK | W_OK)) { 1070 return true; 1071 } 1072 } 1073 } 1074 return false; 1075 } 1076 1077 accel_type = g_strconcat(accel_name, ACCEL_CLASS_SUFFIX, NULL); 1078 1079 return qtest_qom_has_concrete_type("accel", accel_type, &list); 1080 } 1081 1082 bool qtest_get_irq(QTestState *s, int num) 1083 { 1084 /* dummy operation in order to make sure irq is up to date */ 1085 qtest_inb(s, 0); 1086 1087 return s->irq_level[num]; 1088 } 1089 1090 void qtest_module_load(QTestState *s, const char *prefix, const char *libname) 1091 { 1092 qtest_sendf(s, "module_load %s %s\n", prefix, libname); 1093 qtest_rsp(s); 1094 } 1095 1096 static int64_t qtest_clock_rsp(QTestState *s) 1097 { 1098 gchar **words; 1099 int64_t clock; 1100 words = qtest_rsp_args(s, 2); 1101 clock = g_ascii_strtoll(words[1], NULL, 0); 1102 g_strfreev(words); 1103 return clock; 1104 } 1105 1106 int64_t qtest_clock_step_next(QTestState *s) 1107 { 1108 qtest_sendf(s, "clock_step\n"); 1109 return qtest_clock_rsp(s); 1110 } 1111 1112 int64_t qtest_clock_step(QTestState *s, int64_t step) 1113 { 1114 qtest_sendf(s, "clock_step %"PRIi64"\n", step); 1115 return qtest_clock_rsp(s); 1116 } 1117 1118 int64_t qtest_clock_set(QTestState *s, int64_t val) 1119 { 1120 qtest_sendf(s, "clock_set %"PRIi64"\n", val); 1121 return qtest_clock_rsp(s); 1122 } 1123 1124 void qtest_irq_intercept_out(QTestState *s, const char *qom_path) 1125 { 1126 qtest_sendf(s, "irq_intercept_out %s\n", qom_path); 1127 qtest_rsp(s); 1128 } 1129 1130 void qtest_irq_intercept_out_named(QTestState *s, const char *qom_path, const char *name) 1131 { 1132 qtest_sendf(s, "irq_intercept_out %s %s\n", qom_path, name); 1133 qtest_rsp(s); 1134 } 1135 1136 void qtest_irq_intercept_in(QTestState *s, const char *qom_path) 1137 { 1138 qtest_sendf(s, "irq_intercept_in %s\n", qom_path); 1139 qtest_rsp(s); 1140 } 1141 1142 void qtest_set_irq_in(QTestState *s, const char *qom_path, const char *name, 1143 int num, int level) 1144 { 1145 if (!name) { 1146 name = "unnamed-gpio-in"; 1147 } 1148 qtest_sendf(s, "set_irq_in %s %s %d %d\n", qom_path, name, num, level); 1149 qtest_rsp(s); 1150 } 1151 1152 static void qtest_out(QTestState *s, const char *cmd, uint16_t addr, uint32_t value) 1153 { 1154 qtest_sendf(s, "%s 0x%x 0x%x\n", cmd, addr, value); 1155 qtest_rsp(s); 1156 } 1157 1158 void qtest_outb(QTestState *s, uint16_t addr, uint8_t value) 1159 { 1160 qtest_out(s, "outb", addr, value); 1161 } 1162 1163 void qtest_outw(QTestState *s, uint16_t addr, uint16_t value) 1164 { 1165 qtest_out(s, "outw", addr, value); 1166 } 1167 1168 void qtest_outl(QTestState *s, uint16_t addr, uint32_t value) 1169 { 1170 qtest_out(s, "outl", addr, value); 1171 } 1172 1173 static uint32_t qtest_in(QTestState *s, const char *cmd, uint16_t addr) 1174 { 1175 gchar **args; 1176 int ret; 1177 unsigned long value; 1178 1179 qtest_sendf(s, "%s 0x%x\n", cmd, addr); 1180 args = qtest_rsp_args(s, 2); 1181 ret = qemu_strtoul(args[1], NULL, 0, &value); 1182 g_assert(!ret && value <= UINT32_MAX); 1183 g_strfreev(args); 1184 1185 return value; 1186 } 1187 1188 uint8_t qtest_inb(QTestState *s, uint16_t addr) 1189 { 1190 return qtest_in(s, "inb", addr); 1191 } 1192 1193 uint16_t qtest_inw(QTestState *s, uint16_t addr) 1194 { 1195 return qtest_in(s, "inw", addr); 1196 } 1197 1198 uint32_t qtest_inl(QTestState *s, uint16_t addr) 1199 { 1200 return qtest_in(s, "inl", addr); 1201 } 1202 1203 static void qtest_write(QTestState *s, const char *cmd, uint64_t addr, 1204 uint64_t value) 1205 { 1206 qtest_sendf(s, "%s 0x%" PRIx64 " 0x%" PRIx64 "\n", cmd, addr, value); 1207 qtest_rsp(s); 1208 } 1209 1210 void qtest_writeb(QTestState *s, uint64_t addr, uint8_t value) 1211 { 1212 qtest_write(s, "writeb", addr, value); 1213 } 1214 1215 void qtest_writew(QTestState *s, uint64_t addr, uint16_t value) 1216 { 1217 qtest_write(s, "writew", addr, value); 1218 } 1219 1220 void qtest_writel(QTestState *s, uint64_t addr, uint32_t value) 1221 { 1222 qtest_write(s, "writel", addr, value); 1223 } 1224 1225 void qtest_writeq(QTestState *s, uint64_t addr, uint64_t value) 1226 { 1227 qtest_write(s, "writeq", addr, value); 1228 } 1229 1230 static uint64_t qtest_read(QTestState *s, const char *cmd, uint64_t addr) 1231 { 1232 gchar **args; 1233 int ret; 1234 uint64_t value; 1235 1236 qtest_sendf(s, "%s 0x%" PRIx64 "\n", cmd, addr); 1237 args = qtest_rsp_args(s, 2); 1238 ret = qemu_strtou64(args[1], NULL, 0, &value); 1239 g_assert(!ret); 1240 g_strfreev(args); 1241 1242 return value; 1243 } 1244 1245 uint8_t qtest_readb(QTestState *s, uint64_t addr) 1246 { 1247 return qtest_read(s, "readb", addr); 1248 } 1249 1250 uint16_t qtest_readw(QTestState *s, uint64_t addr) 1251 { 1252 return qtest_read(s, "readw", addr); 1253 } 1254 1255 uint32_t qtest_readl(QTestState *s, uint64_t addr) 1256 { 1257 return qtest_read(s, "readl", addr); 1258 } 1259 1260 uint64_t qtest_readq(QTestState *s, uint64_t addr) 1261 { 1262 return qtest_read(s, "readq", addr); 1263 } 1264 1265 static int hex2nib(char ch) 1266 { 1267 if (ch >= '0' && ch <= '9') { 1268 return ch - '0'; 1269 } else if (ch >= 'a' && ch <= 'f') { 1270 return 10 + (ch - 'a'); 1271 } else if (ch >= 'A' && ch <= 'F') { 1272 return 10 + (ch - 'a'); 1273 } else { 1274 return -1; 1275 } 1276 } 1277 1278 void qtest_memread(QTestState *s, uint64_t addr, void *data, size_t size) 1279 { 1280 uint8_t *ptr = data; 1281 gchar **args; 1282 size_t i; 1283 1284 if (!size) { 1285 return; 1286 } 1287 1288 qtest_sendf(s, "read 0x%" PRIx64 " 0x%zx\n", addr, size); 1289 args = qtest_rsp_args(s, 2); 1290 1291 for (i = 0; i < size; i++) { 1292 ptr[i] = hex2nib(args[1][2 + (i * 2)]) << 4; 1293 ptr[i] |= hex2nib(args[1][2 + (i * 2) + 1]); 1294 } 1295 1296 g_strfreev(args); 1297 } 1298 1299 uint64_t qtest_rtas_call(QTestState *s, const char *name, 1300 uint32_t nargs, uint64_t args, 1301 uint32_t nret, uint64_t ret) 1302 { 1303 qtest_sendf(s, "rtas %s %u 0x%"PRIx64" %u 0x%"PRIx64"\n", 1304 name, nargs, args, nret, ret); 1305 qtest_rsp(s); 1306 return 0; 1307 } 1308 1309 static void qtest_rsp_csr(QTestState *s, uint64_t *val) 1310 { 1311 gchar **args; 1312 uint64_t ret; 1313 int rc; 1314 1315 args = qtest_rsp_args(s, 3); 1316 1317 rc = qemu_strtou64(args[1], NULL, 16, &ret); 1318 g_assert(rc == 0); 1319 rc = qemu_strtou64(args[2], NULL, 16, val); 1320 g_assert(rc == 0); 1321 1322 g_strfreev(args); 1323 } 1324 1325 uint64_t qtest_csr_call(QTestState *s, const char *name, 1326 uint64_t cpu, int csr, 1327 uint64_t *val) 1328 { 1329 qtest_sendf(s, "csr %s 0x%"PRIx64" %d 0x%"PRIx64"\n", 1330 name, cpu, csr, *val); 1331 1332 qtest_rsp_csr(s, val); 1333 return 0; 1334 } 1335 1336 void qtest_add_func(const char *str, void (*fn)(void)) 1337 { 1338 gchar *path = g_strdup_printf("/%s/%s", qtest_get_arch(), str); 1339 g_test_add_func(path, fn); 1340 g_free(path); 1341 } 1342 1343 void qtest_add_data_func_full(const char *str, void *data, 1344 void (*fn)(const void *), 1345 GDestroyNotify data_free_func) 1346 { 1347 gchar *path = g_strdup_printf("/%s/%s", qtest_get_arch(), str); 1348 g_test_add_data_func_full(path, data, fn, data_free_func); 1349 g_free(path); 1350 } 1351 1352 void qtest_add_data_func(const char *str, const void *data, 1353 void (*fn)(const void *)) 1354 { 1355 gchar *path = g_strdup_printf("/%s/%s", qtest_get_arch(), str); 1356 g_test_add_data_func(path, data, fn); 1357 g_free(path); 1358 } 1359 1360 void qtest_bufwrite(QTestState *s, uint64_t addr, const void *data, size_t size) 1361 { 1362 gchar *bdata; 1363 1364 bdata = g_base64_encode(data, size); 1365 qtest_sendf(s, "b64write 0x%" PRIx64 " 0x%zx ", addr, size); 1366 s->ops.send(s, bdata); 1367 s->ops.send(s, "\n"); 1368 qtest_rsp(s); 1369 g_free(bdata); 1370 } 1371 1372 void qtest_bufread(QTestState *s, uint64_t addr, void *data, size_t size) 1373 { 1374 gchar **args; 1375 size_t len; 1376 1377 qtest_sendf(s, "b64read 0x%" PRIx64 " 0x%zx\n", addr, size); 1378 args = qtest_rsp_args(s, 2); 1379 1380 g_base64_decode_inplace(args[1], &len); 1381 if (size != len) { 1382 fprintf(stderr, "bufread: asked for %zu bytes but decoded %zu\n", 1383 size, len); 1384 len = MIN(len, size); 1385 } 1386 1387 memcpy(data, args[1], len); 1388 g_strfreev(args); 1389 } 1390 1391 void qtest_memwrite(QTestState *s, uint64_t addr, const void *data, size_t size) 1392 { 1393 const uint8_t *ptr = data; 1394 size_t i; 1395 char *enc; 1396 1397 if (!size) { 1398 return; 1399 } 1400 1401 enc = g_malloc(2 * size + 1); 1402 1403 for (i = 0; i < size; i++) { 1404 sprintf(&enc[i * 2], "%02x", ptr[i]); 1405 } 1406 1407 qtest_sendf(s, "write 0x%" PRIx64 " 0x%zx 0x%s\n", addr, size, enc); 1408 qtest_rsp(s); 1409 g_free(enc); 1410 } 1411 1412 void qtest_memset(QTestState *s, uint64_t addr, uint8_t pattern, size_t size) 1413 { 1414 qtest_sendf(s, "memset 0x%" PRIx64 " 0x%zx 0x%02x\n", addr, size, pattern); 1415 qtest_rsp(s); 1416 } 1417 1418 QDict *qtest_vqmp_assert_failure_ref(QTestState *qts, 1419 const char *fmt, va_list args) 1420 { 1421 QDict *response; 1422 QDict *ret; 1423 1424 response = qtest_vqmp(qts, fmt, args); 1425 1426 g_assert(response); 1427 if (!qdict_haskey(response, "error")) { 1428 g_autoptr(GString) s = qobject_to_json_pretty(QOBJECT(response), true); 1429 g_test_message("%s", s->str); 1430 } 1431 g_assert(qdict_haskey(response, "error")); 1432 g_assert(!qdict_haskey(response, "return")); 1433 ret = qdict_get_qdict(response, "error"); 1434 qobject_ref(ret); 1435 qobject_unref(response); 1436 1437 return ret; 1438 } 1439 1440 QDict *qtest_vqmp_assert_success_ref(QTestState *qts, 1441 const char *fmt, va_list args) 1442 { 1443 QDict *response; 1444 QDict *ret; 1445 1446 response = qtest_vqmp(qts, fmt, args); 1447 1448 g_assert(response); 1449 if (!qdict_haskey(response, "return")) { 1450 g_autoptr(GString) s = qobject_to_json_pretty(QOBJECT(response), true); 1451 g_test_message("%s", s->str); 1452 } 1453 g_assert(qdict_haskey(response, "return")); 1454 ret = qdict_get_qdict(response, "return"); 1455 qobject_ref(ret); 1456 qobject_unref(response); 1457 1458 return ret; 1459 } 1460 1461 void qtest_vqmp_assert_success(QTestState *qts, 1462 const char *fmt, va_list args) 1463 { 1464 QDict *response; 1465 1466 response = qtest_vqmp_assert_success_ref(qts, fmt, args); 1467 1468 qobject_unref(response); 1469 } 1470 1471 #ifndef _WIN32 1472 QDict *qtest_vqmp_fds_assert_success_ref(QTestState *qts, int *fds, size_t nfds, 1473 const char *fmt, va_list args) 1474 { 1475 QDict *response; 1476 QDict *ret; 1477 1478 response = qtest_vqmp_fds(qts, fds, nfds, fmt, args); 1479 1480 g_assert(response); 1481 if (!qdict_haskey(response, "return")) { 1482 g_autoptr(GString) s = qobject_to_json_pretty(QOBJECT(response), true); 1483 g_test_message("%s", s->str); 1484 } 1485 g_assert(qdict_haskey(response, "return")); 1486 ret = qdict_get_qdict(response, "return"); 1487 qobject_ref(ret); 1488 qobject_unref(response); 1489 1490 return ret; 1491 } 1492 1493 void qtest_vqmp_fds_assert_success(QTestState *qts, int *fds, size_t nfds, 1494 const char *fmt, va_list args) 1495 { 1496 QDict *response; 1497 response = qtest_vqmp_fds_assert_success_ref(qts, fds, nfds, fmt, args); 1498 qobject_unref(response); 1499 } 1500 #endif /* !_WIN32 */ 1501 1502 QDict *qtest_qmp_assert_failure_ref(QTestState *qts, const char *fmt, ...) 1503 { 1504 QDict *response; 1505 va_list ap; 1506 1507 va_start(ap, fmt); 1508 response = qtest_vqmp_assert_failure_ref(qts, fmt, ap); 1509 va_end(ap); 1510 return response; 1511 } 1512 1513 QDict *qtest_qmp_assert_success_ref(QTestState *qts, const char *fmt, ...) 1514 { 1515 QDict *response; 1516 va_list ap; 1517 va_start(ap, fmt); 1518 response = qtest_vqmp_assert_success_ref(qts, fmt, ap); 1519 va_end(ap); 1520 return response; 1521 } 1522 1523 void qtest_qmp_assert_success(QTestState *qts, const char *fmt, ...) 1524 { 1525 va_list ap; 1526 va_start(ap, fmt); 1527 qtest_vqmp_assert_success(qts, fmt, ap); 1528 va_end(ap); 1529 } 1530 1531 #ifndef _WIN32 1532 QDict *qtest_qmp_fds_assert_success_ref(QTestState *qts, int *fds, size_t nfds, 1533 const char *fmt, ...) 1534 { 1535 QDict *response; 1536 va_list ap; 1537 va_start(ap, fmt); 1538 response = qtest_vqmp_fds_assert_success_ref(qts, fds, nfds, fmt, ap); 1539 va_end(ap); 1540 return response; 1541 } 1542 1543 void qtest_qmp_fds_assert_success(QTestState *qts, int *fds, size_t nfds, 1544 const char *fmt, ...) 1545 { 1546 va_list ap; 1547 va_start(ap, fmt); 1548 qtest_vqmp_fds_assert_success(qts, fds, nfds, fmt, ap); 1549 va_end(ap); 1550 } 1551 #endif /* !_WIN32 */ 1552 1553 bool qtest_big_endian(QTestState *s) 1554 { 1555 return s->big_endian; 1556 } 1557 1558 static bool qtest_check_machine_version(const char *mname, const char *basename, 1559 int major, int minor) 1560 { 1561 char *newname; 1562 bool is_equal; 1563 1564 newname = g_strdup_printf("%s-%i.%i", basename, major, minor); 1565 is_equal = g_str_equal(mname, newname); 1566 g_free(newname); 1567 1568 return is_equal; 1569 } 1570 1571 static bool qtest_is_old_versioned_machine(const char *mname) 1572 { 1573 const char *dash = strrchr(mname, '-'); 1574 const char *dot = strrchr(mname, '.'); 1575 const char *chr; 1576 char *bname; 1577 const int major = QEMU_VERSION_MAJOR; 1578 const int minor = QEMU_VERSION_MINOR; 1579 bool res = false; 1580 1581 if (dash && dot && dot > dash) { 1582 for (chr = dash + 1; *chr; chr++) { 1583 if (!qemu_isdigit(*chr) && *chr != '.') { 1584 return false; 1585 } 1586 } 1587 /* 1588 * Now check if it is one of the latest versions. Check major + 1 1589 * and minor + 1 versions as well, since they might already exist 1590 * in the development branch. 1591 */ 1592 bname = g_strdup(mname); 1593 bname[dash - mname] = 0; 1594 res = !qtest_check_machine_version(mname, bname, major + 1, 0) && 1595 !qtest_check_machine_version(mname, bname, major, minor + 1) && 1596 !qtest_check_machine_version(mname, bname, major, minor); 1597 g_free(bname); 1598 } 1599 1600 return res; 1601 } 1602 1603 struct MachInfo { 1604 char *name; 1605 char *alias; 1606 }; 1607 1608 struct CpuModel { 1609 char *name; 1610 char *alias_of; 1611 bool deprecated; 1612 }; 1613 1614 static void qtest_free_machine_list(struct MachInfo *machines) 1615 { 1616 if (machines) { 1617 for (int i = 0; machines[i].name != NULL; i++) { 1618 g_free(machines[i].name); 1619 g_free(machines[i].alias); 1620 } 1621 1622 g_free(machines); 1623 } 1624 } 1625 1626 /* 1627 * Returns an array with pointers to the available machine names. 1628 * The terminating entry has the name set to NULL. 1629 */ 1630 static struct MachInfo *qtest_get_machines(const char *var) 1631 { 1632 static struct MachInfo *machines; 1633 static char *qemu_var; 1634 QDict *response, *minfo; 1635 QList *list; 1636 const QListEntry *p; 1637 QObject *qobj; 1638 QString *qstr; 1639 QTestState *qts; 1640 int idx; 1641 1642 if (g_strcmp0(qemu_var, var)) { 1643 g_free(qemu_var); 1644 qemu_var = g_strdup(var); 1645 1646 /* new qemu, clear the cache */ 1647 qtest_free_machine_list(machines); 1648 machines = NULL; 1649 } 1650 1651 if (machines) { 1652 return machines; 1653 } 1654 1655 silence_spawn_log = !g_test_verbose(); 1656 1657 qts = qtest_init_ext(qemu_var, "-machine none", NULL, true); 1658 response = qtest_qmp(qts, "{ 'execute': 'query-machines' }"); 1659 g_assert(response); 1660 list = qdict_get_qlist(response, "return"); 1661 g_assert(list); 1662 1663 machines = g_new(struct MachInfo, qlist_size(list) + 1); 1664 1665 for (p = qlist_first(list), idx = 0; p; p = qlist_next(p), idx++) { 1666 minfo = qobject_to(QDict, qlist_entry_obj(p)); 1667 g_assert(minfo); 1668 1669 qobj = qdict_get(minfo, "name"); 1670 g_assert(qobj); 1671 qstr = qobject_to(QString, qobj); 1672 g_assert(qstr); 1673 machines[idx].name = g_strdup(qstring_get_str(qstr)); 1674 1675 qobj = qdict_get(minfo, "alias"); 1676 if (qobj) { /* The alias is optional */ 1677 qstr = qobject_to(QString, qobj); 1678 g_assert(qstr); 1679 machines[idx].alias = g_strdup(qstring_get_str(qstr)); 1680 } else { 1681 machines[idx].alias = NULL; 1682 } 1683 } 1684 1685 qtest_quit(qts); 1686 qobject_unref(response); 1687 1688 silence_spawn_log = false; 1689 1690 memset(&machines[idx], 0, sizeof(struct MachInfo)); /* Terminating entry */ 1691 return machines; 1692 } 1693 1694 static struct CpuModel *qtest_get_cpu_models(void) 1695 { 1696 static struct CpuModel *cpus; 1697 QDict *response, *minfo; 1698 QList *list; 1699 const QListEntry *p; 1700 QObject *qobj; 1701 QString *qstr; 1702 QBool *qbool; 1703 QTestState *qts; 1704 int idx; 1705 1706 if (cpus) { 1707 return cpus; 1708 } 1709 1710 silence_spawn_log = !g_test_verbose(); 1711 1712 qts = qtest_init_ext(NULL, "-machine none", NULL, true); 1713 response = qtest_qmp(qts, "{ 'execute': 'query-cpu-definitions' }"); 1714 g_assert(response); 1715 list = qdict_get_qlist(response, "return"); 1716 g_assert(list); 1717 1718 cpus = g_new0(struct CpuModel, qlist_size(list) + 1); 1719 1720 for (p = qlist_first(list), idx = 0; p; p = qlist_next(p), idx++) { 1721 minfo = qobject_to(QDict, qlist_entry_obj(p)); 1722 g_assert(minfo); 1723 1724 qobj = qdict_get(minfo, "name"); 1725 g_assert(qobj); 1726 qstr = qobject_to(QString, qobj); 1727 g_assert(qstr); 1728 cpus[idx].name = g_strdup(qstring_get_str(qstr)); 1729 1730 qobj = qdict_get(minfo, "alias_of"); 1731 if (qobj) { /* old machines do not report aliases */ 1732 qstr = qobject_to(QString, qobj); 1733 g_assert(qstr); 1734 cpus[idx].alias_of = g_strdup(qstring_get_str(qstr)); 1735 } else { 1736 cpus[idx].alias_of = NULL; 1737 } 1738 1739 qobj = qdict_get(minfo, "deprecated"); 1740 qbool = qobject_to(QBool, qobj); 1741 g_assert(qbool); 1742 cpus[idx].deprecated = qbool_get_bool(qbool); 1743 } 1744 1745 qtest_quit(qts); 1746 qobject_unref(response); 1747 1748 silence_spawn_log = false; 1749 1750 return cpus; 1751 } 1752 1753 bool qtest_has_cpu_model(const char *cpu) 1754 { 1755 struct CpuModel *cpus; 1756 int i; 1757 1758 cpus = qtest_get_cpu_models(); 1759 1760 for (i = 0; cpus[i].name != NULL; i++) { 1761 if (g_str_equal(cpu, cpus[i].name) || 1762 (cpus[i].alias_of && g_str_equal(cpu, cpus[i].alias_of))) { 1763 return true; 1764 } 1765 } 1766 1767 return false; 1768 } 1769 1770 void qtest_cb_for_every_machine(void (*cb)(const char *machine), 1771 bool skip_old_versioned) 1772 { 1773 struct MachInfo *machines; 1774 int i; 1775 1776 machines = qtest_get_machines(NULL); 1777 1778 for (i = 0; machines[i].name != NULL; i++) { 1779 /* Ignore machines that cannot be used for qtests */ 1780 if (!strncmp("xenfv", machines[i].name, 5) || 1781 g_str_equal("xenpv", machines[i].name) || 1782 g_str_equal("xenpvh", machines[i].name) || 1783 g_str_equal("vmapple", machines[i].name) || 1784 g_str_equal("nitro-enclave", machines[i].name)) { 1785 continue; 1786 } 1787 if (!skip_old_versioned || 1788 !qtest_is_old_versioned_machine(machines[i].name)) { 1789 cb(machines[i].name); 1790 } 1791 } 1792 } 1793 1794 char *qtest_resolve_machine_alias(const char *var, const char *alias) 1795 { 1796 struct MachInfo *machines; 1797 int i; 1798 1799 machines = qtest_get_machines(var); 1800 1801 for (i = 0; machines[i].name != NULL; i++) { 1802 if (machines[i].alias && g_str_equal(alias, machines[i].alias)) { 1803 return g_strdup(machines[i].name); 1804 } 1805 } 1806 1807 return NULL; 1808 } 1809 1810 bool qtest_has_machine_with_env(const char *var, const char *machine) 1811 { 1812 struct MachInfo *machines; 1813 int i; 1814 1815 machines = qtest_get_machines(var); 1816 1817 for (i = 0; machines[i].name != NULL; i++) { 1818 if (g_str_equal(machine, machines[i].name) || 1819 (machines[i].alias && g_str_equal(machine, machines[i].alias))) { 1820 return true; 1821 } 1822 } 1823 1824 return false; 1825 } 1826 1827 bool qtest_has_machine(const char *machine) 1828 { 1829 return qtest_has_machine_with_env(NULL, machine); 1830 } 1831 1832 bool qtest_has_device(const char *device) 1833 { 1834 static QList *list; 1835 1836 return qtest_qom_has_concrete_type("device", device, &list); 1837 } 1838 1839 /* 1840 * Generic hot-plugging test via the device_add QMP commands. 1841 */ 1842 void qtest_qmp_device_add_qdict(QTestState *qts, const char *drv, 1843 const QDict *arguments) 1844 { 1845 QDict *resp; 1846 QDict *args = arguments ? qdict_clone_shallow(arguments) : qdict_new(); 1847 1848 g_assert(!qdict_haskey(args, "driver")); 1849 qdict_put_str(args, "driver", drv); 1850 resp = qtest_qmp(qts, "{'execute': 'device_add', 'arguments': %p}", args); 1851 g_assert(resp); 1852 g_assert(!qdict_haskey(resp, "event")); /* We don't expect any events */ 1853 if (qdict_haskey(resp, "error")) { 1854 fprintf(stderr, "error: %s\n", 1855 qdict_get_str(qdict_get_qdict(resp, "error"), "desc")); 1856 } 1857 g_assert(!qdict_haskey(resp, "error")); 1858 qobject_unref(resp); 1859 } 1860 1861 void qtest_qmp_device_add(QTestState *qts, const char *driver, const char *id, 1862 const char *fmt, ...) 1863 { 1864 QDict *args; 1865 va_list ap; 1866 1867 va_start(ap, fmt); 1868 args = qdict_from_vjsonf_nofail(fmt, ap); 1869 va_end(ap); 1870 1871 g_assert(!qdict_haskey(args, "id")); 1872 qdict_put_str(args, "id", id); 1873 1874 qtest_qmp_device_add_qdict(qts, driver, args); 1875 qobject_unref(args); 1876 } 1877 1878 void qtest_qmp_add_client(QTestState *qts, const char *protocol, int fd) 1879 { 1880 QDict *resp; 1881 1882 #ifdef WIN32 1883 WSAPROTOCOL_INFOW info; 1884 g_autofree char *info64 = NULL; 1885 SOCKET s; 1886 1887 assert(fd_is_socket(fd)); 1888 s = _get_osfhandle(fd); 1889 if (WSADuplicateSocketW(s, GetProcessId((HANDLE)qts->qemu_pid), &info) == SOCKET_ERROR) { 1890 g_autofree char *emsg = g_win32_error_message(WSAGetLastError()); 1891 g_error("WSADuplicateSocketW failed: %s", emsg); 1892 } 1893 info64 = g_base64_encode((guchar *)&info, sizeof(info)); 1894 resp = qtest_qmp(qts, "{'execute': 'get-win32-socket'," 1895 "'arguments': {'fdname': 'fdname', 'info': %s}}", info64); 1896 #else 1897 resp = qtest_qmp_fds(qts, &fd, 1, "{'execute': 'getfd'," 1898 "'arguments': {'fdname': 'fdname'}}"); 1899 #endif 1900 g_assert(resp); 1901 g_assert(!qdict_haskey(resp, "event")); /* We don't expect any events */ 1902 g_assert(!qdict_haskey(resp, "error")); 1903 qobject_unref(resp); 1904 1905 resp = qtest_qmp( 1906 qts, "{'execute': 'add_client'," 1907 "'arguments': {'protocol': %s, 'fdname': 'fdname'}}", protocol); 1908 g_assert(resp); 1909 g_assert(!qdict_haskey(resp, "event")); /* We don't expect any events */ 1910 g_assert(!qdict_haskey(resp, "error")); 1911 qobject_unref(resp); 1912 } 1913 1914 /* 1915 * Generic hot-unplugging test via the device_del QMP command. 1916 * Device deletion will get one response and one event. For example: 1917 * 1918 * {'execute': 'device_del','arguments': { 'id': 'scsi-hd'}} 1919 * 1920 * will get this one: 1921 * 1922 * {"timestamp": {"seconds": 1505289667, "microseconds": 569862}, 1923 * "event": "DEVICE_DELETED", "data": {"device": "scsi-hd", 1924 * "path": "/machine/peripheral/scsi-hd"}} 1925 * 1926 * and this one: 1927 * 1928 * {"return": {}} 1929 */ 1930 void qtest_qmp_device_del_send(QTestState *qts, const char *id) 1931 { 1932 QDict *rsp = qtest_qmp(qts, "{'execute': 'device_del', " 1933 "'arguments': {'id': %s}}", id); 1934 g_assert(rsp); 1935 g_assert(qdict_haskey(rsp, "return")); 1936 g_assert(!qdict_haskey(rsp, "error")); 1937 qobject_unref(rsp); 1938 } 1939 1940 void qtest_qmp_device_del(QTestState *qts, const char *id) 1941 { 1942 qtest_qmp_device_del_send(qts, id); 1943 qtest_qmp_eventwait(qts, "DEVICE_DELETED"); 1944 } 1945 1946 static void qtest_client_set_tx_handler(QTestState *s, 1947 QTestSendFn send) 1948 { 1949 s->ops.send = send; 1950 } 1951 static void qtest_client_set_rx_handler(QTestState *s, QTestRecvFn recv) 1952 { 1953 s->ops.recv_line = recv; 1954 } 1955 /* A type-safe wrapper for s->send() */ 1956 static void send_wrapper(QTestState *s, const char *buf) 1957 { 1958 s->ops.external_send(s, buf); 1959 } 1960 1961 static GString *qtest_client_inproc_recv_line(QTestState *s) 1962 { 1963 GString *line; 1964 size_t offset; 1965 char *eol; 1966 1967 eol = strchr(s->rx->str, '\n'); 1968 offset = eol - s->rx->str; 1969 line = g_string_new_len(s->rx->str, offset); 1970 g_string_erase(s->rx, 0, offset + 1); 1971 return line; 1972 } 1973 1974 QTestState *qtest_inproc_init(QTestState **s, bool log, const char* arch, 1975 void (*send)(void*, const char*)) 1976 { 1977 QTestState *qts; 1978 qts = g_new0(QTestState, 1); 1979 qts->pending_events = NULL; 1980 *s = qts; /* Expose qts early on, since the query endianness relies on it */ 1981 qts->wstatus = 0; 1982 for (int i = 0; i < MAX_IRQ; i++) { 1983 qts->irq_level[i] = false; 1984 } 1985 1986 qtest_client_set_rx_handler(qts, qtest_client_inproc_recv_line); 1987 1988 /* send() may not have a matching prototype, so use a type-safe wrapper */ 1989 qts->ops.external_send = send; 1990 qtest_client_set_tx_handler(qts, send_wrapper); 1991 1992 qts->big_endian = qtest_query_target_endianness(qts); 1993 1994 /* 1995 * Set a dummy path for QTEST_QEMU_BINARY. Doesn't need to exist, but this 1996 * way, qtest_get_arch works for inproc qtest. 1997 */ 1998 gchar *bin_path = g_strconcat("/qemu-system-", arch, NULL); 1999 if (!g_setenv("QTEST_QEMU_BINARY", bin_path, 0)) { 2000 fprintf(stderr, 2001 "Could not set environment variable QTEST_QEMU_BINARY\n"); 2002 exit(1); 2003 } 2004 g_free(bin_path); 2005 2006 return qts; 2007 } 2008 2009 void qtest_client_inproc_recv(void *opaque, const char *str) 2010 { 2011 QTestState *qts = *(QTestState **)opaque; 2012 2013 if (!qts->rx) { 2014 qts->rx = g_string_new(NULL); 2015 } 2016 g_string_append(qts->rx, str); 2017 } 2018 2019 void qtest_qom_set_bool(QTestState *s, const char *path, const char *property, 2020 bool value) 2021 { 2022 QDict *r; 2023 2024 r = qtest_qmp(s, "{ 'execute': 'qom-set', 'arguments': " 2025 "{ 'path': %s, 'property': %s, 'value': %i } }", 2026 path, property, value); 2027 qobject_unref(r); 2028 } 2029 2030 bool qtest_qom_get_bool(QTestState *s, const char *path, const char *property) 2031 { 2032 QDict *r; 2033 bool b; 2034 2035 r = qtest_qmp(s, "{ 'execute': 'qom-get', 'arguments': " 2036 "{ 'path': %s, 'property': %s } }", path, property); 2037 b = qdict_get_bool(r, "return"); 2038 qobject_unref(r); 2039 2040 return b; 2041 } 2042 2043 bool have_qemu_img(void) 2044 { 2045 char *rpath; 2046 const char *path = getenv("QTEST_QEMU_IMG"); 2047 if (!path) { 2048 return false; 2049 } 2050 2051 rpath = realpath(path, NULL); 2052 if (!rpath) { 2053 return false; 2054 } else { 2055 free(rpath); 2056 return true; 2057 } 2058 } 2059 2060 bool mkimg(const char *file, const char *fmt, unsigned size_mb) 2061 { 2062 gchar *cli; 2063 bool ret; 2064 int rc; 2065 GError *err = NULL; 2066 char *qemu_img_path; 2067 gchar *out, *out2; 2068 char *qemu_img_abs_path; 2069 2070 qemu_img_path = getenv("QTEST_QEMU_IMG"); 2071 if (!qemu_img_path) { 2072 return false; 2073 } 2074 qemu_img_abs_path = realpath(qemu_img_path, NULL); 2075 if (!qemu_img_abs_path) { 2076 return false; 2077 } 2078 2079 cli = g_strdup_printf("%s create -f %s %s %uM", qemu_img_abs_path, 2080 fmt, file, size_mb); 2081 ret = g_spawn_command_line_sync(cli, &out, &out2, &rc, &err); 2082 if (err || !g_spawn_check_exit_status(rc, &err)) { 2083 fprintf(stderr, "%s\n", err->message); 2084 g_error_free(err); 2085 } 2086 2087 g_free(out); 2088 g_free(out2); 2089 g_free(cli); 2090 free(qemu_img_abs_path); 2091 2092 return ret && !err; 2093 } 2094