1 // SPDX-License-Identifier: CDDL-1.0 2 /* 3 * CDDL HEADER START 4 * 5 * This file and its contents are supplied under the terms of the 6 * Common Development and Distribution License ("CDDL"), version 1.0. 7 * You may only use this file in accordance with the terms of version 8 * 1.0 of the CDDL. 9 * 10 * A full copy of the text of the CDDL should have accompanied this 11 * source. A copy of the CDDL is also available via the Internet at 12 * http://www.illumos.org/license/CDDL. 13 * 14 * CDDL HEADER END 15 */ 16 17 /* 18 * Copyright (c) 2016, 2018 by Delphix. All rights reserved. 19 */ 20 21 /* 22 * ZFS Channel Programs (ZCP) 23 * 24 * The ZCP interface allows various ZFS commands and operations ZFS 25 * administrative operations (e.g. creating and destroying snapshots, typically 26 * performed via an ioctl to /dev/zfs by the zfs(8) command and 27 * libzfs/libzfs_core) to be run * programmatically as a Lua script. A ZCP 28 * script is run as a dsl_sync_task and fully executed during one transaction 29 * group sync. This ensures that no other changes can be written concurrently 30 * with a running Lua script. Combining multiple calls to the exposed ZFS 31 * functions into one script gives a number of benefits: 32 * 33 * 1. Atomicity. For some compound or iterative operations, it's useful to be 34 * able to guarantee that the state of a pool has not changed between calls to 35 * ZFS. 36 * 37 * 2. Performance. If a large number of changes need to be made (e.g. deleting 38 * many filesystems), there can be a significant performance penalty as a 39 * result of the need to wait for a transaction group sync to pass for every 40 * single operation. When expressed as a single ZCP script, all these changes 41 * can be performed at once in one txg sync. 42 * 43 * A modified version of the Lua 5.2 interpreter is used to run channel program 44 * scripts. The Lua 5.2 manual can be found at: 45 * 46 * http://www.lua.org/manual/5.2/ 47 * 48 * If being run by a user (via an ioctl syscall), executing a ZCP script 49 * requires root privileges in the global zone. 50 * 51 * Scripts are passed to zcp_eval() as a string, then run in a synctask by 52 * zcp_eval_sync(). Arguments can be passed into the Lua script as an nvlist, 53 * which will be converted to a Lua table. Similarly, values returned from 54 * a ZCP script will be converted to an nvlist. See zcp_lua_to_nvlist_impl() 55 * for details on exact allowed types and conversion. 56 * 57 * ZFS functionality is exposed to a ZCP script as a library of function calls. 58 * These calls are sorted into submodules, such as zfs.list and zfs.sync, for 59 * iterators and synctasks, respectively. Each of these submodules resides in 60 * its own source file, with a zcp_*_info structure describing each library 61 * call in the submodule. 62 * 63 * Error handling in ZCP scripts is handled by a number of different methods 64 * based on severity: 65 * 66 * 1. Memory and time limits are in place to prevent a channel program from 67 * consuming excessive system or running forever. If one of these limits is 68 * hit, the channel program will be stopped immediately and return from 69 * zcp_eval() with an error code. No attempt will be made to roll back or undo 70 * any changes made by the channel program before the error occurred. 71 * Consumers invoking zcp_eval() from elsewhere in the kernel may pass a time 72 * limit of 0, disabling the time limit. 73 * 74 * 2. Internal Lua errors can occur as a result of a syntax error, calling a 75 * library function with incorrect arguments, invoking the error() function, 76 * failing an assert(), or other runtime errors. In these cases the channel 77 * program will stop executing and return from zcp_eval() with an error code. 78 * In place of a return value, an error message will also be returned in the 79 * 'result' nvlist containing information about the error. No attempt will be 80 * made to roll back or undo any changes made by the channel program before the 81 * error occurred. 82 * 83 * 3. If an error occurs inside a ZFS library call which returns an error code, 84 * the error is returned to the Lua script to be handled as desired. 85 * 86 * In the first two cases, Lua's error-throwing mechanism is used, which 87 * longjumps out of the script execution with luaL_error() and returns with the 88 * error. 89 * 90 * See zfs-program(8) for more information on high level usage. 91 */ 92 93 #include <sys/lua/lua.h> 94 #include <sys/lua/lualib.h> 95 #include <sys/lua/lauxlib.h> 96 97 #include <sys/dsl_prop.h> 98 #include <sys/dsl_synctask.h> 99 #include <sys/dsl_dataset.h> 100 #include <sys/zcp.h> 101 #include <sys/zcp_iter.h> 102 #include <sys/zcp_prop.h> 103 #include <sys/zcp_global.h> 104 #include <sys/zvol.h> 105 106 #ifndef KM_NORMALPRI 107 #define KM_NORMALPRI 0 108 #endif 109 110 #define ZCP_NVLIST_MAX_DEPTH 20 111 112 static const uint64_t zfs_lua_check_instrlimit_interval = 100; 113 uint64_t zfs_lua_max_instrlimit = ZCP_MAX_INSTRLIMIT; 114 uint64_t zfs_lua_max_memlimit = ZCP_MAX_MEMLIMIT; 115 116 /* 117 * Forward declarations for mutually recursive functions 118 */ 119 static int zcp_nvpair_value_to_lua(lua_State *, nvpair_t *, char *, int); 120 static int zcp_lua_to_nvlist_impl(lua_State *, int, nvlist_t *, const char *, 121 int); 122 123 /* 124 * The outer-most error callback handler for use with lua_pcall(). On 125 * error Lua will call this callback with a single argument that 126 * represents the error value. In most cases this will be a string 127 * containing an error message, but channel programs can use Lua's 128 * error() function to return arbitrary objects as errors. This callback 129 * returns (on the Lua stack) the original error object along with a traceback. 130 * 131 * Fatal Lua errors can occur while resources are held, so we also call any 132 * registered cleanup function here. 133 */ 134 static int 135 zcp_error_handler(lua_State *state) 136 { 137 const char *msg; 138 139 zcp_cleanup(state); 140 141 VERIFY3U(1, ==, lua_gettop(state)); 142 msg = lua_tostring(state, 1); 143 luaL_traceback(state, state, msg, 1); 144 return (1); 145 } 146 147 int 148 zcp_argerror(lua_State *state, int narg, const char *msg, ...) 149 { 150 va_list alist; 151 152 va_start(alist, msg); 153 const char *buf = lua_pushvfstring(state, msg, alist); 154 va_end(alist); 155 156 return (luaL_argerror(state, narg, buf)); 157 } 158 159 /* 160 * Install a new cleanup function, which will be invoked with the given 161 * opaque argument if a fatal error causes the Lua interpreter to longjump out 162 * of a function call. 163 * 164 * If an error occurs, the cleanup function will be invoked exactly once and 165 * then unregistered. 166 * 167 * Returns the registered cleanup handler so the caller can deregister it 168 * if no error occurs. 169 */ 170 zcp_cleanup_handler_t * 171 zcp_register_cleanup(lua_State *state, zcp_cleanup_t cleanfunc, void *cleanarg) 172 { 173 zcp_run_info_t *ri = zcp_run_info(state); 174 175 zcp_cleanup_handler_t *zch = kmem_alloc(sizeof (*zch), KM_SLEEP); 176 zch->zch_cleanup_func = cleanfunc; 177 zch->zch_cleanup_arg = cleanarg; 178 list_insert_head(&ri->zri_cleanup_handlers, zch); 179 180 return (zch); 181 } 182 183 void 184 zcp_deregister_cleanup(lua_State *state, zcp_cleanup_handler_t *zch) 185 { 186 zcp_run_info_t *ri = zcp_run_info(state); 187 list_remove(&ri->zri_cleanup_handlers, zch); 188 kmem_free(zch, sizeof (*zch)); 189 } 190 191 /* 192 * Execute the currently registered cleanup handlers then free them and 193 * destroy the handler list. 194 */ 195 void 196 zcp_cleanup(lua_State *state) 197 { 198 zcp_run_info_t *ri = zcp_run_info(state); 199 200 for (zcp_cleanup_handler_t *zch = 201 list_remove_head(&ri->zri_cleanup_handlers); zch != NULL; 202 zch = list_remove_head(&ri->zri_cleanup_handlers)) { 203 zch->zch_cleanup_func(zch->zch_cleanup_arg); 204 kmem_free(zch, sizeof (*zch)); 205 } 206 } 207 208 /* 209 * Convert the lua table at the given index on the Lua stack to an nvlist 210 * and return it. 211 * 212 * If the table can not be converted for any reason, NULL is returned and 213 * an error message is pushed onto the Lua stack. 214 */ 215 static nvlist_t * 216 zcp_table_to_nvlist(lua_State *state, int index, int depth) 217 { 218 nvlist_t *nvl; 219 /* 220 * Converting a Lua table to an nvlist with key uniqueness checking is 221 * O(n^2) in the number of keys in the nvlist, which can take a long 222 * time when we return a large table from a channel program. 223 * Furthermore, Lua's table interface *almost* guarantees unique keys 224 * on its own (details below). Therefore, we don't use fnvlist_alloc() 225 * here to avoid the built-in uniqueness checking. 226 * 227 * The *almost* is because it's possible to have key collisions between 228 * e.g. the string "1" and the number 1, or the string "true" and the 229 * boolean true, so we explicitly check that when we're looking at a 230 * key which is an integer / boolean or a string that can be parsed as 231 * one of those types. In the worst case this could still devolve into 232 * O(n^2), so we only start doing these checks on boolean/integer keys 233 * once we've seen a string key which fits this weird usage pattern. 234 * 235 * Ultimately, we still want callers to know that the keys in this 236 * nvlist are unique, so before we return this we set the nvlist's 237 * flags to reflect that. 238 */ 239 VERIFY0(nvlist_alloc(&nvl, 0, KM_SLEEP)); 240 241 /* 242 * Push an empty stack slot where lua_next() will store each 243 * table key. 244 */ 245 lua_pushnil(state); 246 boolean_t saw_str_could_collide = B_FALSE; 247 while (lua_next(state, index) != 0) { 248 /* 249 * The next key-value pair from the table at index is 250 * now on the stack, with the key at stack slot -2 and 251 * the value at slot -1. 252 */ 253 int err = 0; 254 char buf[32]; 255 const char *key = NULL; 256 boolean_t key_could_collide = B_FALSE; 257 258 switch (lua_type(state, -2)) { 259 case LUA_TSTRING: 260 key = lua_tostring(state, -2); 261 262 /* check if this could collide with a number or bool */ 263 long long tmp; 264 int parselen; 265 if ((sscanf(key, "%lld%n", &tmp, &parselen) > 0 && 266 parselen == strlen(key)) || 267 strcmp(key, "true") == 0 || 268 strcmp(key, "false") == 0) { 269 key_could_collide = B_TRUE; 270 saw_str_could_collide = B_TRUE; 271 } 272 break; 273 case LUA_TBOOLEAN: 274 key = (lua_toboolean(state, -2) == B_TRUE ? 275 "true" : "false"); 276 if (saw_str_could_collide) { 277 key_could_collide = B_TRUE; 278 } 279 break; 280 case LUA_TNUMBER: 281 (void) snprintf(buf, sizeof (buf), "%lld", 282 (longlong_t)lua_tonumber(state, -2)); 283 284 key = buf; 285 if (saw_str_could_collide) { 286 key_could_collide = B_TRUE; 287 } 288 break; 289 default: 290 fnvlist_free(nvl); 291 (void) lua_pushfstring(state, "Invalid key " 292 "type '%s' in table", 293 lua_typename(state, lua_type(state, -2))); 294 return (NULL); 295 } 296 /* 297 * Check for type-mismatched key collisions, and throw an error. 298 */ 299 if (key_could_collide && nvlist_exists(nvl, key)) { 300 fnvlist_free(nvl); 301 (void) lua_pushfstring(state, "Collision of " 302 "key '%s' in table", key); 303 return (NULL); 304 } 305 /* 306 * Recursively convert the table value and insert into 307 * the new nvlist with the parsed key. To prevent 308 * stack overflow on circular or heavily nested tables, 309 * we track the current nvlist depth. 310 */ 311 if (depth >= ZCP_NVLIST_MAX_DEPTH) { 312 fnvlist_free(nvl); 313 (void) lua_pushfstring(state, "Maximum table " 314 "depth (%d) exceeded for table", 315 ZCP_NVLIST_MAX_DEPTH); 316 return (NULL); 317 } 318 err = zcp_lua_to_nvlist_impl(state, -1, nvl, key, 319 depth + 1); 320 if (err != 0) { 321 fnvlist_free(nvl); 322 /* 323 * Error message has been pushed to the lua 324 * stack by the recursive call. 325 */ 326 return (NULL); 327 } 328 /* 329 * Pop the value pushed by lua_next(). 330 */ 331 lua_pop(state, 1); 332 } 333 334 /* 335 * Mark the nvlist as having unique keys. This is a little ugly, but we 336 * ensured above that there are no duplicate keys in the nvlist. 337 */ 338 nvl->nvl_nvflag |= NV_UNIQUE_NAME; 339 340 return (nvl); 341 } 342 343 /* 344 * Convert a value from the given index into the lua stack to an nvpair, adding 345 * it to an nvlist with the given key. 346 * 347 * Values are converted as follows: 348 * 349 * string -> string 350 * number -> int64 351 * boolean -> boolean 352 * nil -> boolean (no value) 353 * 354 * Lua tables are converted to nvlists and then inserted. The table's keys 355 * are converted to strings then used as keys in the nvlist to store each table 356 * element. Keys are converted as follows: 357 * 358 * string -> no change 359 * number -> "%lld" 360 * boolean -> "true" | "false" 361 * nil -> error 362 * 363 * In the case of a key collision, an error is thrown. 364 * 365 * If an error is encountered, a nonzero error code is returned, and an error 366 * string will be pushed onto the Lua stack. 367 */ 368 static int 369 zcp_lua_to_nvlist_impl(lua_State *state, int index, nvlist_t *nvl, 370 const char *key, int depth) 371 { 372 /* 373 * Verify that we have enough remaining space in the lua stack to parse 374 * a key-value pair and push an error. 375 */ 376 if (!lua_checkstack(state, 3)) { 377 (void) lua_pushstring(state, "Lua stack overflow"); 378 return (1); 379 } 380 381 index = lua_absindex(state, index); 382 383 switch (lua_type(state, index)) { 384 case LUA_TNIL: 385 fnvlist_add_boolean(nvl, key); 386 break; 387 case LUA_TBOOLEAN: 388 fnvlist_add_boolean_value(nvl, key, 389 lua_toboolean(state, index)); 390 break; 391 case LUA_TNUMBER: 392 fnvlist_add_int64(nvl, key, lua_tonumber(state, index)); 393 break; 394 case LUA_TSTRING: 395 fnvlist_add_string(nvl, key, lua_tostring(state, index)); 396 break; 397 case LUA_TTABLE: { 398 nvlist_t *value_nvl = zcp_table_to_nvlist(state, index, depth); 399 if (value_nvl == NULL) 400 return (SET_ERROR(EINVAL)); 401 402 fnvlist_add_nvlist(nvl, key, value_nvl); 403 fnvlist_free(value_nvl); 404 break; 405 } 406 default: 407 (void) lua_pushfstring(state, 408 "Invalid value type '%s' for key '%s'", 409 lua_typename(state, lua_type(state, index)), key); 410 return (SET_ERROR(EINVAL)); 411 } 412 413 return (0); 414 } 415 416 /* 417 * Convert a lua value to an nvpair, adding it to an nvlist with the given key. 418 */ 419 static void 420 zcp_lua_to_nvlist(lua_State *state, int index, nvlist_t *nvl, const char *key) 421 { 422 /* 423 * On error, zcp_lua_to_nvlist_impl pushes an error string onto the Lua 424 * stack before returning with a nonzero error code. If an error is 425 * returned, throw a fatal lua error with the given string. 426 */ 427 if (zcp_lua_to_nvlist_impl(state, index, nvl, key, 0) != 0) 428 (void) lua_error(state); 429 } 430 431 static int 432 zcp_lua_to_nvlist_helper(lua_State *state) 433 { 434 nvlist_t *nv = (nvlist_t *)lua_touserdata(state, 2); 435 const char *key = (const char *)lua_touserdata(state, 1); 436 zcp_lua_to_nvlist(state, 3, nv, key); 437 return (0); 438 } 439 440 static void 441 zcp_convert_return_values(lua_State *state, nvlist_t *nvl, 442 const char *key, int *result) 443 { 444 int err; 445 VERIFY3U(1, ==, lua_gettop(state)); 446 lua_pushcfunction(state, zcp_lua_to_nvlist_helper); 447 lua_pushlightuserdata(state, (char *)key); 448 lua_pushlightuserdata(state, nvl); 449 lua_pushvalue(state, 1); 450 lua_remove(state, 1); 451 err = lua_pcall(state, 3, 0, 0); /* zcp_lua_to_nvlist_helper */ 452 if (err != 0) { 453 zcp_lua_to_nvlist(state, 1, nvl, ZCP_RET_ERROR); 454 *result = SET_ERROR(ECHRNG); 455 } 456 } 457 458 /* 459 * Push a Lua table representing nvl onto the stack. If it can't be 460 * converted, return EINVAL, fill in errbuf, and push nothing. errbuf may 461 * be specified as NULL, in which case no error string will be output. 462 * 463 * Most nvlists are converted as simple key->value Lua tables, but we make 464 * an exception for the case where all nvlist entries are BOOLEANs (a string 465 * key without a value). In Lua, a table key pointing to a value of Nil 466 * (no value) is equivalent to the key not existing, so a BOOLEAN nvlist 467 * entry can't be directly converted to a Lua table entry. Nvlists of entirely 468 * BOOLEAN entries are frequently used to pass around lists of datasets, so for 469 * convenience we check for this case, and convert it to a simple Lua array of 470 * strings. 471 */ 472 int 473 zcp_nvlist_to_lua(lua_State *state, nvlist_t *nvl, 474 char *errbuf, int errbuf_len) 475 { 476 nvpair_t *pair; 477 lua_newtable(state); 478 boolean_t has_values = B_FALSE; 479 /* 480 * If the list doesn't have any values, just convert it to a string 481 * array. 482 */ 483 for (pair = nvlist_next_nvpair(nvl, NULL); 484 pair != NULL; pair = nvlist_next_nvpair(nvl, pair)) { 485 if (nvpair_type(pair) != DATA_TYPE_BOOLEAN) { 486 has_values = B_TRUE; 487 break; 488 } 489 } 490 if (!has_values) { 491 int i = 1; 492 for (pair = nvlist_next_nvpair(nvl, NULL); 493 pair != NULL; pair = nvlist_next_nvpair(nvl, pair)) { 494 (void) lua_pushinteger(state, i); 495 (void) lua_pushstring(state, nvpair_name(pair)); 496 (void) lua_settable(state, -3); 497 i++; 498 } 499 } else { 500 for (pair = nvlist_next_nvpair(nvl, NULL); 501 pair != NULL; pair = nvlist_next_nvpair(nvl, pair)) { 502 int err = zcp_nvpair_value_to_lua(state, pair, 503 errbuf, errbuf_len); 504 if (err != 0) { 505 lua_pop(state, 1); 506 return (err); 507 } 508 (void) lua_setfield(state, -2, nvpair_name(pair)); 509 } 510 } 511 return (0); 512 } 513 514 /* 515 * Push a Lua object representing the value of "pair" onto the stack. 516 * 517 * Only understands boolean_value, string, int64, nvlist, 518 * string_array, and int64_array type values. For other 519 * types, returns EINVAL, fills in errbuf, and pushes nothing. 520 */ 521 static int 522 zcp_nvpair_value_to_lua(lua_State *state, nvpair_t *pair, 523 char *errbuf, int errbuf_len) 524 { 525 int err = 0; 526 527 if (pair == NULL) { 528 lua_pushnil(state); 529 return (0); 530 } 531 532 switch (nvpair_type(pair)) { 533 case DATA_TYPE_BOOLEAN_VALUE: 534 (void) lua_pushboolean(state, 535 fnvpair_value_boolean_value(pair)); 536 break; 537 case DATA_TYPE_STRING: 538 (void) lua_pushstring(state, fnvpair_value_string(pair)); 539 break; 540 case DATA_TYPE_INT64: 541 (void) lua_pushinteger(state, fnvpair_value_int64(pair)); 542 break; 543 case DATA_TYPE_NVLIST: 544 err = zcp_nvlist_to_lua(state, 545 fnvpair_value_nvlist(pair), errbuf, errbuf_len); 546 break; 547 case DATA_TYPE_STRING_ARRAY: { 548 const char **strarr; 549 uint_t nelem; 550 (void) nvpair_value_string_array(pair, &strarr, &nelem); 551 lua_newtable(state); 552 for (int i = 0; i < nelem; i++) { 553 (void) lua_pushinteger(state, i + 1); 554 (void) lua_pushstring(state, strarr[i]); 555 (void) lua_settable(state, -3); 556 } 557 break; 558 } 559 case DATA_TYPE_UINT64_ARRAY: { 560 uint64_t *intarr; 561 uint_t nelem; 562 (void) nvpair_value_uint64_array(pair, &intarr, &nelem); 563 lua_newtable(state); 564 for (int i = 0; i < nelem; i++) { 565 (void) lua_pushinteger(state, i + 1); 566 (void) lua_pushinteger(state, intarr[i]); 567 (void) lua_settable(state, -3); 568 } 569 break; 570 } 571 case DATA_TYPE_INT64_ARRAY: { 572 int64_t *intarr; 573 uint_t nelem; 574 (void) nvpair_value_int64_array(pair, &intarr, &nelem); 575 lua_newtable(state); 576 for (int i = 0; i < nelem; i++) { 577 (void) lua_pushinteger(state, i + 1); 578 (void) lua_pushinteger(state, intarr[i]); 579 (void) lua_settable(state, -3); 580 } 581 break; 582 } 583 default: { 584 if (errbuf != NULL) { 585 (void) snprintf(errbuf, errbuf_len, 586 "Unhandled nvpair type %d for key '%s'", 587 nvpair_type(pair), nvpair_name(pair)); 588 } 589 return (SET_ERROR(EINVAL)); 590 } 591 } 592 return (err); 593 } 594 595 int 596 zcp_dataset_hold_error(lua_State *state, dsl_pool_t *dp, const char *dsname, 597 int error) 598 { 599 if (error == ENOENT) { 600 (void) zcp_argerror(state, 1, "no such dataset '%s'", dsname); 601 return (0); /* not reached; zcp_argerror will longjmp */ 602 } else if (error == EXDEV) { 603 (void) zcp_argerror(state, 1, 604 "dataset '%s' is not in the target pool '%s'", 605 dsname, spa_name(dp->dp_spa)); 606 return (0); /* not reached; zcp_argerror will longjmp */ 607 } else if (error == EIO) { 608 (void) luaL_error(state, 609 "I/O error while accessing dataset '%s'", dsname); 610 return (0); /* not reached; luaL_error will longjmp */ 611 } else if (error != 0) { 612 (void) luaL_error(state, 613 "unexpected error %d while accessing dataset '%s'", 614 error, dsname); 615 return (0); /* not reached; luaL_error will longjmp */ 616 } 617 return (0); 618 } 619 620 /* 621 * Note: will longjmp (via lua_error()) on error. 622 * Assumes that the dsname is argument #1 (for error reporting purposes). 623 */ 624 dsl_dataset_t * 625 zcp_dataset_hold(lua_State *state, dsl_pool_t *dp, const char *dsname, 626 const void *tag) 627 { 628 dsl_dataset_t *ds; 629 int error = dsl_dataset_hold(dp, dsname, tag, &ds); 630 (void) zcp_dataset_hold_error(state, dp, dsname, error); 631 return (ds); 632 } 633 634 static int zcp_debug(lua_State *); 635 static const zcp_lib_info_t zcp_debug_info = { 636 .name = "debug", 637 .func = zcp_debug, 638 .pargs = { 639 { .za_name = "debug string", .za_lua_type = LUA_TSTRING }, 640 {NULL, 0} 641 }, 642 .kwargs = { 643 {NULL, 0} 644 } 645 }; 646 647 static int 648 zcp_debug(lua_State *state) 649 { 650 const char *dbgstring; 651 zcp_run_info_t *ri = zcp_run_info(state); 652 const zcp_lib_info_t *libinfo = &zcp_debug_info; 653 654 zcp_parse_args(state, libinfo->name, libinfo->pargs, libinfo->kwargs); 655 656 dbgstring = lua_tostring(state, 1); 657 658 zfs_dbgmsg("txg %lld ZCP: %s", (longlong_t)ri->zri_tx->tx_txg, 659 dbgstring); 660 661 return (0); 662 } 663 664 static int zcp_exists(lua_State *); 665 static const zcp_lib_info_t zcp_exists_info = { 666 .name = "exists", 667 .func = zcp_exists, 668 .pargs = { 669 { .za_name = "dataset", .za_lua_type = LUA_TSTRING }, 670 {NULL, 0} 671 }, 672 .kwargs = { 673 {NULL, 0} 674 } 675 }; 676 677 static int 678 zcp_exists(lua_State *state) 679 { 680 zcp_run_info_t *ri = zcp_run_info(state); 681 dsl_pool_t *dp = ri->zri_pool; 682 const zcp_lib_info_t *libinfo = &zcp_exists_info; 683 684 zcp_parse_args(state, libinfo->name, libinfo->pargs, libinfo->kwargs); 685 686 const char *dsname = lua_tostring(state, 1); 687 688 dsl_dataset_t *ds; 689 int error = dsl_dataset_hold(dp, dsname, FTAG, &ds); 690 if (error == 0) { 691 dsl_dataset_rele(ds, FTAG); 692 lua_pushboolean(state, B_TRUE); 693 } else if (error == ENOENT) { 694 lua_pushboolean(state, B_FALSE); 695 } else if (error == EXDEV) { 696 return (luaL_error(state, "dataset '%s' is not in the " 697 "target pool", dsname)); 698 } else if (error == EIO) { 699 return (luaL_error(state, "I/O error opening dataset '%s'", 700 dsname)); 701 } else if (error != 0) { 702 return (luaL_error(state, "unexpected error %d", error)); 703 } 704 705 return (1); 706 } 707 708 /* 709 * Allocate/realloc/free a buffer for the lua interpreter. 710 * 711 * When nsize is 0, behaves as free() and returns NULL. 712 * 713 * If ptr is NULL, behaves as malloc() and returns an allocated buffer of size 714 * at least nsize. 715 * 716 * Otherwise, behaves as realloc(), changing the allocation from osize to nsize. 717 * Shrinking the buffer size never fails. 718 * 719 * The original allocated buffer size is stored as a uint64 at the beginning of 720 * the buffer to avoid actually reallocating when shrinking a buffer, since lua 721 * requires that this operation never fail. 722 */ 723 static void * 724 zcp_lua_alloc(void *ud, void *ptr, size_t osize, size_t nsize) 725 { 726 zcp_alloc_arg_t *allocargs = ud; 727 728 if (nsize == 0) { 729 if (ptr != NULL) { 730 int64_t *allocbuf = (int64_t *)ptr - 1; 731 int64_t allocsize = *allocbuf; 732 ASSERT3S(allocsize, >, 0); 733 ASSERT3S(allocargs->aa_alloc_remaining + allocsize, <=, 734 allocargs->aa_alloc_limit); 735 allocargs->aa_alloc_remaining += allocsize; 736 vmem_free(allocbuf, allocsize); 737 } 738 return (NULL); 739 } else if (ptr == NULL) { 740 int64_t *allocbuf; 741 int64_t allocsize = nsize + sizeof (int64_t); 742 743 if (!allocargs->aa_must_succeed && 744 (allocsize <= 0 || 745 allocsize > allocargs->aa_alloc_remaining)) { 746 return (NULL); 747 } 748 749 allocbuf = vmem_alloc(allocsize, KM_SLEEP); 750 allocargs->aa_alloc_remaining -= allocsize; 751 752 *allocbuf = allocsize; 753 return (allocbuf + 1); 754 } else if (nsize <= osize) { 755 /* 756 * If shrinking the buffer, lua requires that the reallocation 757 * never fail. 758 */ 759 return (ptr); 760 } else { 761 ASSERT3U(nsize, >, osize); 762 763 uint64_t *luabuf = zcp_lua_alloc(ud, NULL, 0, nsize); 764 if (luabuf == NULL) { 765 return (NULL); 766 } 767 (void) memcpy(luabuf, ptr, osize); 768 VERIFY3P(zcp_lua_alloc(ud, ptr, osize, 0), ==, NULL); 769 return (luabuf); 770 } 771 } 772 773 static void 774 zcp_lua_counthook(lua_State *state, lua_Debug *ar) 775 { 776 (void) ar; 777 lua_getfield(state, LUA_REGISTRYINDEX, ZCP_RUN_INFO_KEY); 778 zcp_run_info_t *ri = lua_touserdata(state, -1); 779 780 /* 781 * Check if we were canceled while waiting for the 782 * txg to sync or from our open context thread 783 */ 784 if (ri->zri_canceled || (!ri->zri_sync && issig())) { 785 ri->zri_canceled = B_TRUE; 786 (void) lua_pushstring(state, "Channel program was canceled."); 787 (void) lua_error(state); 788 /* Unreachable */ 789 } 790 791 /* 792 * Check how many instructions the channel program has 793 * executed so far, and compare against the limit. 794 */ 795 ri->zri_curinstrs += zfs_lua_check_instrlimit_interval; 796 if (ri->zri_maxinstrs != 0 && ri->zri_curinstrs > ri->zri_maxinstrs) { 797 ri->zri_timed_out = B_TRUE; 798 (void) lua_pushstring(state, 799 "Channel program timed out."); 800 (void) lua_error(state); 801 /* Unreachable */ 802 } 803 } 804 805 static int 806 zcp_panic_cb(lua_State *state) 807 { 808 panic("unprotected error in call to Lua API (%s)\n", 809 lua_tostring(state, -1)); 810 return (0); 811 } 812 813 static void 814 zcp_eval_impl(dmu_tx_t *tx, zcp_run_info_t *ri) 815 { 816 int err; 817 lua_State *state = ri->zri_state; 818 819 VERIFY3U(3, ==, lua_gettop(state)); 820 821 /* finish initializing our runtime state */ 822 ri->zri_pool = dmu_tx_pool(tx); 823 ri->zri_tx = tx; 824 list_create(&ri->zri_cleanup_handlers, sizeof (zcp_cleanup_handler_t), 825 offsetof(zcp_cleanup_handler_t, zch_node)); 826 827 /* 828 * Store the zcp_run_info_t struct for this run in the Lua registry. 829 * Registry entries are not directly accessible by the Lua scripts but 830 * can be accessed by our callbacks. 831 */ 832 lua_pushlightuserdata(state, ri); 833 lua_setfield(state, LUA_REGISTRYINDEX, ZCP_RUN_INFO_KEY); 834 VERIFY3U(3, ==, lua_gettop(state)); 835 836 /* 837 * Tell the Lua interpreter to call our handler every count 838 * instructions. Channel programs that execute too many instructions 839 * should die with ETIME. 840 */ 841 (void) lua_sethook(state, zcp_lua_counthook, LUA_MASKCOUNT, 842 zfs_lua_check_instrlimit_interval); 843 844 /* 845 * Tell the Lua memory allocator to stop using KM_SLEEP before handing 846 * off control to the channel program. Channel programs that use too 847 * much memory should die with ENOSPC. 848 */ 849 ri->zri_allocargs->aa_must_succeed = B_FALSE; 850 851 /* 852 * Call the Lua function that open-context passed us. This pops the 853 * function and its input from the stack and pushes any return 854 * or error values. 855 */ 856 err = lua_pcall(state, 1, LUA_MULTRET, 1); 857 858 /* 859 * Let Lua use KM_SLEEP while we interpret the return values. 860 */ 861 ri->zri_allocargs->aa_must_succeed = B_TRUE; 862 863 /* 864 * Remove the error handler callback from the stack. At this point, 865 * there shouldn't be any cleanup handler registered in the handler 866 * list (zri_cleanup_handlers), regardless of whether it ran or not. 867 */ 868 list_destroy(&ri->zri_cleanup_handlers); 869 lua_remove(state, 1); 870 871 switch (err) { 872 case LUA_OK: { 873 /* 874 * Lua supports returning multiple values in a single return 875 * statement. Return values will have been pushed onto the 876 * stack: 877 * 1: Return value 1 878 * 2: Return value 2 879 * 3: etc... 880 * To simplify the process of retrieving a return value from a 881 * channel program, we disallow returning more than one value 882 * to ZFS from the Lua script, yielding a singleton return 883 * nvlist of the form { "return": Return value 1 }. 884 */ 885 int return_count = lua_gettop(state); 886 887 if (return_count == 1) { 888 ri->zri_result = 0; 889 zcp_convert_return_values(state, ri->zri_outnvl, 890 ZCP_RET_RETURN, &ri->zri_result); 891 } else if (return_count > 1) { 892 ri->zri_result = SET_ERROR(ECHRNG); 893 lua_settop(state, 0); 894 (void) lua_pushfstring(state, "Multiple return " 895 "values not supported"); 896 zcp_convert_return_values(state, ri->zri_outnvl, 897 ZCP_RET_ERROR, &ri->zri_result); 898 } 899 break; 900 } 901 case LUA_ERRRUN: 902 case LUA_ERRGCMM: { 903 /* 904 * The channel program encountered a fatal error within the 905 * script, such as failing an assertion, or calling a function 906 * with incompatible arguments. The error value and the 907 * traceback generated by zcp_error_handler() should be on the 908 * stack. 909 */ 910 VERIFY3U(1, ==, lua_gettop(state)); 911 if (ri->zri_timed_out) { 912 ri->zri_result = SET_ERROR(ETIME); 913 } else if (ri->zri_canceled) { 914 ri->zri_result = SET_ERROR(EINTR); 915 } else { 916 ri->zri_result = SET_ERROR(ECHRNG); 917 } 918 919 zcp_convert_return_values(state, ri->zri_outnvl, 920 ZCP_RET_ERROR, &ri->zri_result); 921 922 if (ri->zri_result == ETIME && ri->zri_outnvl != NULL) { 923 (void) nvlist_add_uint64(ri->zri_outnvl, 924 ZCP_ARG_INSTRLIMIT, ri->zri_curinstrs); 925 } 926 break; 927 } 928 case LUA_ERRERR: { 929 /* 930 * The channel program encountered a fatal error within the 931 * script, and we encountered another error while trying to 932 * compute the traceback in zcp_error_handler(). We can only 933 * return the error message. 934 */ 935 VERIFY3U(1, ==, lua_gettop(state)); 936 if (ri->zri_timed_out) { 937 ri->zri_result = SET_ERROR(ETIME); 938 } else if (ri->zri_canceled) { 939 ri->zri_result = SET_ERROR(EINTR); 940 } else { 941 ri->zri_result = SET_ERROR(ECHRNG); 942 } 943 944 zcp_convert_return_values(state, ri->zri_outnvl, 945 ZCP_RET_ERROR, &ri->zri_result); 946 break; 947 } 948 case LUA_ERRMEM: 949 /* 950 * Lua ran out of memory while running the channel program. 951 * There's not much we can do. 952 */ 953 ri->zri_result = SET_ERROR(ENOSPC); 954 break; 955 default: 956 VERIFY0(err); 957 } 958 } 959 960 static void 961 zcp_pool_error(zcp_run_info_t *ri, const char *poolname, int error) 962 { 963 ri->zri_result = SET_ERROR(ECHRNG); 964 lua_settop(ri->zri_state, 0); 965 (void) lua_pushfstring(ri->zri_state, "Could not open pool: %s " 966 "errno: %d", poolname, error); 967 zcp_convert_return_values(ri->zri_state, ri->zri_outnvl, 968 ZCP_RET_ERROR, &ri->zri_result); 969 970 } 971 972 /* 973 * This callback is called when txg_wait_synced_flags encountered a signal. 974 * The txg_wait_synced_flags will continue to wait for the txg to complete 975 * after calling this callback. 976 */ 977 static void 978 zcp_eval_sig(void *arg, dmu_tx_t *tx) 979 { 980 (void) tx; 981 zcp_run_info_t *ri = arg; 982 983 ri->zri_canceled = B_TRUE; 984 } 985 986 static void 987 zcp_eval_sync(void *arg, dmu_tx_t *tx) 988 { 989 zcp_run_info_t *ri = arg; 990 991 /* 992 * Open context should have setup the stack to contain: 993 * 1: Error handler callback 994 * 2: Script to run (converted to a Lua function) 995 * 3: nvlist input to function (converted to Lua table or nil) 996 */ 997 VERIFY3U(3, ==, lua_gettop(ri->zri_state)); 998 999 zcp_eval_impl(tx, ri); 1000 } 1001 1002 static void 1003 zcp_eval_open(zcp_run_info_t *ri, const char *poolname) 1004 { 1005 int error; 1006 dsl_pool_t *dp; 1007 dmu_tx_t *tx; 1008 1009 /* 1010 * See comment from the same assertion in zcp_eval_sync(). 1011 */ 1012 VERIFY3U(3, ==, lua_gettop(ri->zri_state)); 1013 1014 error = dsl_pool_hold(poolname, FTAG, &dp); 1015 if (error != 0) { 1016 zcp_pool_error(ri, poolname, error); 1017 return; 1018 } 1019 1020 /* 1021 * As we are running in open-context, we have no transaction associated 1022 * with the channel program. At the same time, functions from the 1023 * zfs.check submodule need to be associated with a transaction as 1024 * they are basically dry-runs of their counterparts in the zfs.sync 1025 * submodule. These functions should be able to run in open-context. 1026 * Therefore we create a new transaction that we later abort once 1027 * the channel program has been evaluated. 1028 */ 1029 tx = dmu_tx_create_dd(dp->dp_mos_dir); 1030 1031 zcp_eval_impl(tx, ri); 1032 1033 dmu_tx_abort(tx); 1034 1035 dsl_pool_rele(dp, FTAG); 1036 } 1037 1038 int 1039 zcp_eval(const char *poolname, const char *program, boolean_t sync, 1040 uint64_t instrlimit, uint64_t memlimit, nvpair_t *nvarg, nvlist_t *outnvl) 1041 { 1042 int err; 1043 lua_State *state; 1044 zcp_run_info_t runinfo; 1045 1046 if (instrlimit > zfs_lua_max_instrlimit) 1047 return (SET_ERROR(EINVAL)); 1048 if (memlimit == 0 || memlimit > zfs_lua_max_memlimit) 1049 return (SET_ERROR(EINVAL)); 1050 1051 zcp_alloc_arg_t allocargs = { 1052 .aa_must_succeed = B_TRUE, 1053 .aa_alloc_remaining = (int64_t)memlimit, 1054 .aa_alloc_limit = (int64_t)memlimit, 1055 }; 1056 1057 /* 1058 * Creates a Lua state with a memory allocator that uses KM_SLEEP. 1059 * This should never fail. 1060 */ 1061 state = lua_newstate(zcp_lua_alloc, &allocargs); 1062 VERIFY(state != NULL); 1063 (void) lua_atpanic(state, zcp_panic_cb); 1064 1065 /* 1066 * Load core Lua libraries we want access to. 1067 */ 1068 VERIFY3U(1, ==, luaopen_base(state)); 1069 lua_pop(state, 1); 1070 VERIFY3U(1, ==, luaopen_coroutine(state)); 1071 lua_setglobal(state, LUA_COLIBNAME); 1072 VERIFY0(lua_gettop(state)); 1073 VERIFY3U(1, ==, luaopen_string(state)); 1074 lua_setglobal(state, LUA_STRLIBNAME); 1075 VERIFY0(lua_gettop(state)); 1076 VERIFY3U(1, ==, luaopen_table(state)); 1077 lua_setglobal(state, LUA_TABLIBNAME); 1078 VERIFY0(lua_gettop(state)); 1079 1080 /* 1081 * Load globally visible variables such as errno aliases. 1082 */ 1083 zcp_load_globals(state); 1084 VERIFY0(lua_gettop(state)); 1085 1086 /* 1087 * Load ZFS-specific modules. 1088 */ 1089 lua_newtable(state); 1090 VERIFY3U(1, ==, zcp_load_list_lib(state)); 1091 lua_setfield(state, -2, "list"); 1092 VERIFY3U(1, ==, zcp_load_synctask_lib(state, B_FALSE)); 1093 lua_setfield(state, -2, "check"); 1094 VERIFY3U(1, ==, zcp_load_synctask_lib(state, B_TRUE)); 1095 lua_setfield(state, -2, "sync"); 1096 VERIFY3U(1, ==, zcp_load_get_lib(state)); 1097 lua_pushcclosure(state, zcp_debug_info.func, 0); 1098 lua_setfield(state, -2, zcp_debug_info.name); 1099 lua_pushcclosure(state, zcp_exists_info.func, 0); 1100 lua_setfield(state, -2, zcp_exists_info.name); 1101 lua_setglobal(state, "zfs"); 1102 VERIFY0(lua_gettop(state)); 1103 1104 /* 1105 * Push the error-callback that calculates Lua stack traces on 1106 * unexpected failures. 1107 */ 1108 lua_pushcfunction(state, zcp_error_handler); 1109 VERIFY3U(1, ==, lua_gettop(state)); 1110 1111 /* 1112 * Load the actual script as a function onto the stack as text ("t"). 1113 * The only valid error condition is a syntax error in the script. 1114 * ERRMEM should not be possible because our allocator is using 1115 * KM_SLEEP. ERRGCMM should not be possible because we have not added 1116 * any objects with __gc metamethods to the interpreter that could 1117 * fail. 1118 */ 1119 err = luaL_loadbufferx(state, program, strlen(program), 1120 "channel program", "t"); 1121 if (err == LUA_ERRSYNTAX) { 1122 fnvlist_add_string(outnvl, ZCP_RET_ERROR, 1123 lua_tostring(state, -1)); 1124 lua_close(state); 1125 return (SET_ERROR(EINVAL)); 1126 } 1127 VERIFY0(err); 1128 VERIFY3U(2, ==, lua_gettop(state)); 1129 1130 /* 1131 * Convert the input nvlist to a Lua object and put it on top of the 1132 * stack. 1133 */ 1134 char errmsg[128]; 1135 err = zcp_nvpair_value_to_lua(state, nvarg, 1136 errmsg, sizeof (errmsg)); 1137 if (err != 0) { 1138 fnvlist_add_string(outnvl, ZCP_RET_ERROR, errmsg); 1139 lua_close(state); 1140 return (SET_ERROR(EINVAL)); 1141 } 1142 VERIFY3U(3, ==, lua_gettop(state)); 1143 1144 cred_t *cr = CRED(); 1145 crhold(cr); 1146 1147 runinfo.zri_state = state; 1148 runinfo.zri_allocargs = &allocargs; 1149 runinfo.zri_outnvl = outnvl; 1150 runinfo.zri_result = 0; 1151 runinfo.zri_cred = cr; 1152 runinfo.zri_timed_out = B_FALSE; 1153 runinfo.zri_canceled = B_FALSE; 1154 runinfo.zri_sync = sync; 1155 runinfo.zri_space_used = 0; 1156 runinfo.zri_curinstrs = 0; 1157 runinfo.zri_maxinstrs = instrlimit; 1158 runinfo.zri_new_zvols = fnvlist_alloc(); 1159 1160 if (sync) { 1161 err = dsl_sync_task_sig(poolname, NULL, zcp_eval_sync, 1162 zcp_eval_sig, &runinfo, 0, ZFS_SPACE_CHECK_ZCP_EVAL); 1163 if (err != 0) 1164 zcp_pool_error(&runinfo, poolname, err); 1165 } else { 1166 zcp_eval_open(&runinfo, poolname); 1167 } 1168 lua_close(state); 1169 1170 crfree(cr); 1171 1172 /* 1173 * Create device minor nodes for any new zvols. 1174 */ 1175 for (nvpair_t *pair = nvlist_next_nvpair(runinfo.zri_new_zvols, NULL); 1176 pair != NULL; 1177 pair = nvlist_next_nvpair(runinfo.zri_new_zvols, pair)) { 1178 zvol_create_minor(nvpair_name(pair)); 1179 } 1180 fnvlist_free(runinfo.zri_new_zvols); 1181 1182 return (runinfo.zri_result); 1183 } 1184 1185 /* 1186 * Retrieve metadata about the currently running channel program. 1187 */ 1188 zcp_run_info_t * 1189 zcp_run_info(lua_State *state) 1190 { 1191 zcp_run_info_t *ri; 1192 1193 lua_getfield(state, LUA_REGISTRYINDEX, ZCP_RUN_INFO_KEY); 1194 ri = lua_touserdata(state, -1); 1195 lua_pop(state, 1); 1196 return (ri); 1197 } 1198 1199 /* 1200 * Argument Parsing 1201 * ================ 1202 * 1203 * The Lua language allows methods to be called with any number 1204 * of arguments of any type. When calling back into ZFS we need to sanitize 1205 * arguments from channel programs to make sure unexpected arguments or 1206 * arguments of the wrong type result in clear error messages. To do this 1207 * in a uniform way all callbacks from channel programs should use the 1208 * zcp_parse_args() function to interpret inputs. 1209 * 1210 * Positional vs Keyword Arguments 1211 * =============================== 1212 * 1213 * Every callback function takes a fixed set of required positional arguments 1214 * and optional keyword arguments. For example, the destroy function takes 1215 * a single positional string argument (the name of the dataset to destroy) 1216 * and an optional "defer" keyword boolean argument. When calling lua functions 1217 * with parentheses, only positional arguments can be used: 1218 * 1219 * zfs.sync.snapshot("rpool@snap") 1220 * 1221 * To use keyword arguments functions should be called with a single argument 1222 * that is a lua table containing mappings of integer -> positional arguments 1223 * and string -> keyword arguments: 1224 * 1225 * zfs.sync.snapshot({1="rpool@snap", defer=true}) 1226 * 1227 * The lua language allows curly braces to be used in place of parenthesis as 1228 * syntactic sugar for this calling convention: 1229 * 1230 * zfs.sync.snapshot{"rpool@snap", defer=true} 1231 */ 1232 1233 /* 1234 * Throw an error and print the given arguments. If there are too many 1235 * arguments to fit in the output buffer, only the error format string is 1236 * output. 1237 */ 1238 static void 1239 zcp_args_error(lua_State *state, const char *fname, const zcp_arg_t *pargs, 1240 const zcp_arg_t *kwargs, const char *fmt, ...) 1241 { 1242 int i; 1243 char errmsg[512]; 1244 size_t len = sizeof (errmsg); 1245 size_t msglen = 0; 1246 va_list argp; 1247 1248 va_start(argp, fmt); 1249 VERIFY3U(len, >, vsnprintf(errmsg, len, fmt, argp)); 1250 va_end(argp); 1251 1252 /* 1253 * Calculate the total length of the final string, including extra 1254 * formatting characters. If the argument dump would be too large, 1255 * only print the error string. 1256 */ 1257 msglen = strlen(errmsg); 1258 msglen += strlen(fname) + 4; /* : + {} + null terminator */ 1259 for (i = 0; pargs[i].za_name != NULL; i++) { 1260 msglen += strlen(pargs[i].za_name); 1261 msglen += strlen(lua_typename(state, pargs[i].za_lua_type)); 1262 if (pargs[i + 1].za_name != NULL || kwargs[0].za_name != NULL) 1263 msglen += 5; /* < + ( + )> + , */ 1264 else 1265 msglen += 4; /* < + ( + )> */ 1266 } 1267 for (i = 0; kwargs[i].za_name != NULL; i++) { 1268 msglen += strlen(kwargs[i].za_name); 1269 msglen += strlen(lua_typename(state, kwargs[i].za_lua_type)); 1270 if (kwargs[i + 1].za_name != NULL) 1271 msglen += 4; /* =( + ) + , */ 1272 else 1273 msglen += 3; /* =( + ) */ 1274 } 1275 1276 if (msglen >= len) 1277 (void) luaL_error(state, errmsg); 1278 1279 VERIFY3U(len, >, strlcat(errmsg, ": ", len)); 1280 VERIFY3U(len, >, strlcat(errmsg, fname, len)); 1281 VERIFY3U(len, >, strlcat(errmsg, "{", len)); 1282 for (i = 0; pargs[i].za_name != NULL; i++) { 1283 VERIFY3U(len, >, strlcat(errmsg, "<", len)); 1284 VERIFY3U(len, >, strlcat(errmsg, pargs[i].za_name, len)); 1285 VERIFY3U(len, >, strlcat(errmsg, "(", len)); 1286 VERIFY3U(len, >, strlcat(errmsg, 1287 lua_typename(state, pargs[i].za_lua_type), len)); 1288 VERIFY3U(len, >, strlcat(errmsg, ")>", len)); 1289 if (pargs[i + 1].za_name != NULL || kwargs[0].za_name != NULL) { 1290 VERIFY3U(len, >, strlcat(errmsg, ", ", len)); 1291 } 1292 } 1293 for (i = 0; kwargs[i].za_name != NULL; i++) { 1294 VERIFY3U(len, >, strlcat(errmsg, kwargs[i].za_name, len)); 1295 VERIFY3U(len, >, strlcat(errmsg, "=(", len)); 1296 VERIFY3U(len, >, strlcat(errmsg, 1297 lua_typename(state, kwargs[i].za_lua_type), len)); 1298 VERIFY3U(len, >, strlcat(errmsg, ")", len)); 1299 if (kwargs[i + 1].za_name != NULL) { 1300 VERIFY3U(len, >, strlcat(errmsg, ", ", len)); 1301 } 1302 } 1303 VERIFY3U(len, >, strlcat(errmsg, "}", len)); 1304 1305 (void) luaL_error(state, errmsg); 1306 panic("unreachable code"); 1307 } 1308 1309 static void 1310 zcp_parse_table_args(lua_State *state, const char *fname, 1311 const zcp_arg_t *pargs, const zcp_arg_t *kwargs) 1312 { 1313 int i; 1314 int type; 1315 1316 for (i = 0; pargs[i].za_name != NULL; i++) { 1317 /* 1318 * Check the table for this positional argument, leaving it 1319 * on the top of the stack once we finish validating it. 1320 */ 1321 lua_pushinteger(state, i + 1); 1322 lua_gettable(state, 1); 1323 1324 type = lua_type(state, -1); 1325 if (type == LUA_TNIL) { 1326 zcp_args_error(state, fname, pargs, kwargs, 1327 "too few arguments"); 1328 panic("unreachable code"); 1329 } else if (type != pargs[i].za_lua_type) { 1330 zcp_args_error(state, fname, pargs, kwargs, 1331 "arg %d wrong type (is '%s', expected '%s')", 1332 i + 1, lua_typename(state, type), 1333 lua_typename(state, pargs[i].za_lua_type)); 1334 panic("unreachable code"); 1335 } 1336 1337 /* 1338 * Remove the positional argument from the table. 1339 */ 1340 lua_pushinteger(state, i + 1); 1341 lua_pushnil(state); 1342 lua_settable(state, 1); 1343 } 1344 1345 for (i = 0; kwargs[i].za_name != NULL; i++) { 1346 /* 1347 * Check the table for this keyword argument, which may be 1348 * nil if it was omitted. Leave the value on the top of 1349 * the stack after validating it. 1350 */ 1351 lua_getfield(state, 1, kwargs[i].za_name); 1352 1353 type = lua_type(state, -1); 1354 if (type != LUA_TNIL && type != kwargs[i].za_lua_type) { 1355 zcp_args_error(state, fname, pargs, kwargs, 1356 "kwarg '%s' wrong type (is '%s', expected '%s')", 1357 kwargs[i].za_name, lua_typename(state, type), 1358 lua_typename(state, kwargs[i].za_lua_type)); 1359 panic("unreachable code"); 1360 } 1361 1362 /* 1363 * Remove the keyword argument from the table. 1364 */ 1365 lua_pushnil(state); 1366 lua_setfield(state, 1, kwargs[i].za_name); 1367 } 1368 1369 /* 1370 * Any entries remaining in the table are invalid inputs, print 1371 * an error message based on what the entry is. 1372 */ 1373 lua_pushnil(state); 1374 if (lua_next(state, 1)) { 1375 if (lua_isnumber(state, -2) && lua_tointeger(state, -2) > 0) { 1376 zcp_args_error(state, fname, pargs, kwargs, 1377 "too many positional arguments"); 1378 } else if (lua_isstring(state, -2)) { 1379 zcp_args_error(state, fname, pargs, kwargs, 1380 "invalid kwarg '%s'", lua_tostring(state, -2)); 1381 } else { 1382 zcp_args_error(state, fname, pargs, kwargs, 1383 "kwarg keys must be strings"); 1384 } 1385 panic("unreachable code"); 1386 } 1387 1388 lua_remove(state, 1); 1389 } 1390 1391 static void 1392 zcp_parse_pos_args(lua_State *state, const char *fname, const zcp_arg_t *pargs, 1393 const zcp_arg_t *kwargs) 1394 { 1395 int i; 1396 int type; 1397 1398 for (i = 0; pargs[i].za_name != NULL; i++) { 1399 type = lua_type(state, i + 1); 1400 if (type == LUA_TNONE) { 1401 zcp_args_error(state, fname, pargs, kwargs, 1402 "too few arguments"); 1403 panic("unreachable code"); 1404 } else if (type != pargs[i].za_lua_type) { 1405 zcp_args_error(state, fname, pargs, kwargs, 1406 "arg %d wrong type (is '%s', expected '%s')", 1407 i + 1, lua_typename(state, type), 1408 lua_typename(state, pargs[i].za_lua_type)); 1409 panic("unreachable code"); 1410 } 1411 } 1412 if (lua_gettop(state) != i) { 1413 zcp_args_error(state, fname, pargs, kwargs, 1414 "too many positional arguments"); 1415 panic("unreachable code"); 1416 } 1417 1418 for (i = 0; kwargs[i].za_name != NULL; i++) { 1419 lua_pushnil(state); 1420 } 1421 } 1422 1423 /* 1424 * Checks the current Lua stack against an expected set of positional and 1425 * keyword arguments. If the stack does not match the expected arguments 1426 * aborts the current channel program with a useful error message, otherwise 1427 * it re-arranges the stack so that it contains the positional arguments 1428 * followed by the keyword argument values in declaration order. Any missing 1429 * keyword argument will be represented by a nil value on the stack. 1430 * 1431 * If the stack contains exactly one argument of type LUA_TTABLE the curly 1432 * braces calling convention is assumed, otherwise the stack is parsed for 1433 * positional arguments only. 1434 * 1435 * This function should be used by every function callback. It should be called 1436 * before the callback manipulates the Lua stack as it assumes the stack 1437 * represents the function arguments. 1438 */ 1439 void 1440 zcp_parse_args(lua_State *state, const char *fname, const zcp_arg_t *pargs, 1441 const zcp_arg_t *kwargs) 1442 { 1443 if (lua_gettop(state) == 1 && lua_istable(state, 1)) { 1444 zcp_parse_table_args(state, fname, pargs, kwargs); 1445 } else { 1446 zcp_parse_pos_args(state, fname, pargs, kwargs); 1447 } 1448 } 1449 1450 ZFS_MODULE_PARAM(zfs_lua, zfs_lua_, max_instrlimit, U64, ZMOD_RW, 1451 "Max instruction limit that can be specified for a channel program"); 1452 1453 ZFS_MODULE_PARAM(zfs_lua, zfs_lua_, max_memlimit, U64, ZMOD_RW, 1454 "Max memory limit that can be specified for a channel program"); 1455