1 /* 2 * CDDL HEADER START 3 * 4 * The contents of this file are subject to the terms of the 5 * Common Development and Distribution License (the "License"). 6 * You may not use this file except in compliance with the License. 7 * 8 * You can obtain a copy of the license at usr/src/OPENSOLARIS.LICENSE 9 * or http://www.opensolaris.org/os/licensing. 10 * See the License for the specific language governing permissions 11 * and limitations under the License. 12 * 13 * When distributing Covered Code, include this CDDL HEADER in each 14 * file and include the License file at usr/src/OPENSOLARIS.LICENSE. 15 * If applicable, add the following below this CDDL HEADER, with the 16 * fields enclosed by brackets "[]" replaced with your own identifying 17 * information: Portions Copyright [yyyy] [name of copyright owner] 18 * 19 * CDDL HEADER END 20 */ 21 /* Copyright (c) 1984, 1986, 1987, 1988, 1989 AT&T */ 22 23 /* 24 * Copyright 2007 Sun Microsystems, Inc. All rights reserved. 25 * Use is subject to license terms. 26 */ 27 28 #pragma ident "%Z%%M% %I% %E% SMI" 29 30 /* 31 * The routines defined in this file are supporting routines for FIFOFS 32 * file sytem type. 33 */ 34 #include <sys/types.h> 35 #include <sys/param.h> 36 #include <sys/systm.h> 37 #include <sys/debug.h> 38 #include <sys/errno.h> 39 #include <sys/time.h> 40 #include <sys/kmem.h> 41 #include <sys/inline.h> 42 #include <sys/file.h> 43 #include <sys/proc.h> 44 #include <sys/stat.h> 45 #include <sys/sysmacros.h> 46 #include <sys/var.h> 47 #include <sys/vfs.h> 48 #include <sys/vfs_opreg.h> 49 #include <sys/vnode.h> 50 #include <sys/mode.h> 51 #include <sys/signal.h> 52 #include <sys/user.h> 53 #include <sys/uio.h> 54 #include <sys/flock.h> 55 #include <sys/stream.h> 56 #include <sys/fs/fifonode.h> 57 #include <sys/strsubr.h> 58 #include <sys/stropts.h> 59 #include <sys/cmn_err.h> 60 #include <fs/fs_subr.h> 61 #include <sys/ddi.h> 62 63 64 #if FIFODEBUG 65 int Fifo_fastmode = 1; /* pipes/fifos will be opened in fast mode */ 66 int Fifo_verbose = 0; /* msg when switching out of fast mode */ 67 int Fifohiwat = FIFOHIWAT; /* Modifiable FIFO high water mark */ 68 #endif 69 70 /* 71 * This is the loadable module wrapper. 72 */ 73 #include <sys/modctl.h> 74 75 extern struct qinit fifo_strdata; 76 77 struct vfsops *fifo_vfsops; 78 79 static vfsdef_t vfw = { 80 VFSDEF_VERSION, 81 "fifofs", 82 fifoinit, 83 0, 84 NULL 85 }; 86 87 /* 88 * Module linkage information for the kernel. 89 */ 90 extern struct mod_ops mod_fsops; 91 92 static struct modlfs modlfs = { 93 &mod_fsops, "filesystem for fifo", &vfw 94 }; 95 96 static struct modlinkage modlinkage = { 97 MODREV_1, (void *)&modlfs, NULL 98 }; 99 100 int 101 _init() 102 { 103 return (mod_install(&modlinkage)); 104 } 105 106 int 107 _info(struct modinfo *modinfop) 108 { 109 return (mod_info(&modlinkage, modinfop)); 110 } 111 112 /* 113 * Define data structures within this file. 114 * XXX should the hash size be configurable ? 115 */ 116 #define FIFOSHFT 5 117 #define FIFO_HASHSZ 63 118 119 #if ((FIFO_HASHSZ & (FIFO_HASHSZ - 1)) == 0) 120 #define FIFOHASH(vp) (((uintptr_t)(vp) >> FIFOSHFT) & (FIFO_HASHSZ - 1)) 121 #else 122 #define FIFOHASH(vp) (((uintptr_t)(vp) >> FIFOSHFT) % FIFO_HASHSZ) 123 #endif 124 125 fifonode_t *fifoalloc[FIFO_HASHSZ]; 126 dev_t fifodev; 127 struct vfs *fifovfsp; 128 int fifofstype; 129 130 kmutex_t ftable_lock; 131 static kmutex_t fino_lock; 132 struct kmem_cache *fnode_cache; 133 struct kmem_cache *pipe_cache; 134 135 static void fifoinsert(fifonode_t *); 136 static fifonode_t *fifofind(vnode_t *); 137 static int fifo_connld(struct vnode **, int, cred_t *); 138 static void fifo_fastturnoff(fifonode_t *); 139 140 static void fifo_reinit_vp(vnode_t *); 141 142 /* 143 * Constructor/destructor routines for fifos and pipes. 144 * 145 * In the interest of code sharing, we define a common fifodata structure 146 * which consists of a fifolock and one or two fnodes. A fifo contains 147 * one fnode; a pipe contains two. The fifolock is shared by the fnodes, 148 * each of which points to it: 149 * 150 * --> --> --------- --- --- 151 * | | | lock | | | 152 * | | --------- | | 153 * | | | | fifo | 154 * | --- | fnode | | | 155 * | | | | pipe 156 * | --------- --- | 157 * | | | | 158 * ------- | fnode | | 159 * | | | 160 * --------- --- 161 * 162 * Since the fifolock is at the beginning of the fifodata structure, 163 * the fifolock address is the same as the fifodata address. Thus, 164 * we can determine the fifodata address from any of its member fnodes. 165 * This is essential for fifo_inactive. 166 * 167 * The fnode constructor is designed to handle any fifodata struture, 168 * deducing the number of fnodes from the total size. Thus, the fnode 169 * constructor does most of the work for the pipe constructor. 170 */ 171 /*ARGSUSED1*/ 172 static int 173 fnode_constructor(void *buf, void *cdrarg, int kmflags) 174 { 175 fifodata_t *fdp = buf; 176 fifolock_t *flp = &fdp->fifo_lock; 177 fifonode_t *fnp = &fdp->fifo_fnode[0]; 178 size_t size = (uintptr_t)cdrarg; 179 180 mutex_init(&flp->flk_lock, NULL, MUTEX_DEFAULT, NULL); 181 cv_init(&flp->flk_wait_cv, NULL, CV_DEFAULT, NULL); 182 flp->flk_ocsync = 0; 183 184 while ((char *)fnp < (char *)buf + size) { 185 186 vnode_t *vp; 187 188 vp = vn_alloc(KM_SLEEP); 189 fnp->fn_vnode = vp; 190 191 fnp->fn_lock = flp; 192 fnp->fn_open = 0; 193 fnp->fn_dest = fnp; 194 fnp->fn_mp = NULL; 195 fnp->fn_count = 0; 196 fnp->fn_rsynccnt = 0; 197 fnp->fn_wsynccnt = 0; 198 fnp->fn_wwaitcnt = 0; 199 fnp->fn_insync = 0; 200 fnp->fn_pcredp = NULL; 201 fnp->fn_cpid = -1; 202 /* 203 * 32-bit stat(2) may fail if fn_ino isn't initialized 204 */ 205 fnp->fn_ino = 0; 206 207 cv_init(&fnp->fn_wait_cv, NULL, CV_DEFAULT, NULL); 208 209 vn_setops(vp, fifo_vnodeops); 210 vp->v_stream = NULL; 211 vp->v_type = VFIFO; 212 vp->v_data = (caddr_t)fnp; 213 vp->v_flag = VNOMAP | VNOSWAP; 214 vn_exists(vp); 215 fnp++; 216 } 217 return (0); 218 } 219 220 static void 221 fnode_destructor(void *buf, void *cdrarg) 222 { 223 fifodata_t *fdp = buf; 224 fifolock_t *flp = &fdp->fifo_lock; 225 fifonode_t *fnp = &fdp->fifo_fnode[0]; 226 size_t size = (uintptr_t)cdrarg; 227 228 mutex_destroy(&flp->flk_lock); 229 cv_destroy(&flp->flk_wait_cv); 230 ASSERT(flp->flk_ocsync == 0); 231 232 while ((char *)fnp < (char *)buf + size) { 233 234 vnode_t *vp = FTOV(fnp); 235 236 ASSERT(fnp->fn_mp == NULL); 237 ASSERT(fnp->fn_count == 0); 238 ASSERT(fnp->fn_lock == flp); 239 ASSERT(fnp->fn_open == 0); 240 ASSERT(fnp->fn_insync == 0); 241 ASSERT(fnp->fn_rsynccnt == 0 && fnp->fn_wsynccnt == 0); 242 ASSERT(fnp->fn_wwaitcnt == 0); 243 ASSERT(fnp->fn_pcredp == NULL); 244 ASSERT(vn_matchops(vp, fifo_vnodeops)); 245 ASSERT(vp->v_stream == NULL); 246 ASSERT(vp->v_type == VFIFO); 247 ASSERT(vp->v_data == (caddr_t)fnp); 248 ASSERT((vp->v_flag & (VNOMAP|VNOSWAP)) == (VNOMAP|VNOSWAP)); 249 250 cv_destroy(&fnp->fn_wait_cv); 251 vn_invalid(vp); 252 vn_free(vp); 253 254 fnp++; 255 } 256 } 257 258 static int 259 pipe_constructor(void *buf, void *cdrarg, int kmflags) 260 { 261 fifodata_t *fdp = buf; 262 fifonode_t *fnp1 = &fdp->fifo_fnode[0]; 263 fifonode_t *fnp2 = &fdp->fifo_fnode[1]; 264 vnode_t *vp1; 265 vnode_t *vp2; 266 267 (void) fnode_constructor(buf, cdrarg, kmflags); 268 269 vp1 = FTOV(fnp1); 270 vp2 = FTOV(fnp2); 271 272 vp1->v_vfsp = vp2->v_vfsp = fifovfsp; 273 vp1->v_rdev = vp2->v_rdev = fifodev; 274 fnp1->fn_realvp = fnp2->fn_realvp = NULL; 275 fnp1->fn_dest = fnp2; 276 fnp2->fn_dest = fnp1; 277 278 return (0); 279 } 280 281 static void 282 pipe_destructor(void *buf, void *cdrarg) 283 { 284 #ifdef DEBUG 285 fifodata_t *fdp = buf; 286 fifonode_t *fnp1 = &fdp->fifo_fnode[0]; 287 fifonode_t *fnp2 = &fdp->fifo_fnode[1]; 288 vnode_t *vp1 = FTOV(fnp1); 289 vnode_t *vp2 = FTOV(fnp2); 290 291 ASSERT(vp1->v_vfsp == fifovfsp); 292 ASSERT(vp2->v_vfsp == fifovfsp); 293 ASSERT(vp1->v_rdev == fifodev); 294 ASSERT(vp2->v_rdev == fifodev); 295 #endif 296 fnode_destructor(buf, cdrarg); 297 } 298 299 /* 300 * Reinitialize a FIFO vnode (uses normal vnode reinit, but ensures that 301 * vnode type and flags are reset). 302 */ 303 304 static void fifo_reinit_vp(vnode_t *vp) 305 { 306 vn_reinit(vp); 307 vp->v_type = VFIFO; 308 vp->v_flag &= VROOT; 309 vp->v_flag |= VNOMAP | VNOSWAP; 310 } 311 312 /* 313 * Save file system type/index, initialize vfs operations vector, get 314 * unique device number for FIFOFS and initialize the FIFOFS hash. 315 * Create and initialize a "generic" vfs pointer that will be placed 316 * in the v_vfsp field of each pipe's vnode. 317 */ 318 int 319 fifoinit(int fstype, char *name) 320 { 321 static const fs_operation_def_t fifo_vfsops_template[] = { 322 NULL, NULL 323 }; 324 int error; 325 major_t dev; 326 327 fifofstype = fstype; 328 error = vfs_setfsops(fstype, fifo_vfsops_template, &fifo_vfsops); 329 if (error != 0) { 330 cmn_err(CE_WARN, "fifoinit: bad vfs ops template"); 331 return (error); 332 } 333 334 error = vn_make_ops(name, fifo_vnodeops_template, &fifo_vnodeops); 335 if (error != 0) { 336 (void) vfs_freevfsops_by_type(fstype); 337 cmn_err(CE_WARN, "fifoinit: bad vnode ops template"); 338 return (error); 339 } 340 341 if ((dev = getudev()) == (major_t)-1) { 342 cmn_err(CE_WARN, "fifoinit: can't get unique device number"); 343 dev = 0; 344 } 345 fifodev = makedevice(dev, 0); 346 347 fifovfsp = kmem_zalloc(sizeof (struct vfs), KM_SLEEP); 348 fifovfsp->vfs_next = NULL; 349 vfs_setops(fifovfsp, fifo_vfsops); 350 fifovfsp->vfs_vnodecovered = NULL; 351 fifovfsp->vfs_flag = 0; 352 fifovfsp->vfs_bsize = 1024; 353 fifovfsp->vfs_fstype = fifofstype; 354 vfs_make_fsid(&fifovfsp->vfs_fsid, fifodev, fifofstype); 355 fifovfsp->vfs_data = NULL; 356 fifovfsp->vfs_dev = fifodev; 357 fifovfsp->vfs_bcount = 0; 358 359 mutex_init(&ftable_lock, NULL, MUTEX_DEFAULT, NULL); 360 mutex_init(&fino_lock, NULL, MUTEX_DEFAULT, NULL); 361 362 /* 363 * vnodes are cached aligned 364 */ 365 fnode_cache = kmem_cache_create("fnode_cache", 366 sizeof (fifodata_t) - sizeof (fifonode_t), 32, 367 fnode_constructor, fnode_destructor, NULL, 368 (void *)(sizeof (fifodata_t) - sizeof (fifonode_t)), NULL, 0); 369 370 pipe_cache = kmem_cache_create("pipe_cache", sizeof (fifodata_t), 32, 371 pipe_constructor, pipe_destructor, NULL, 372 (void *)(sizeof (fifodata_t)), NULL, 0); 373 374 #if FIFODEBUG 375 if (Fifohiwat < FIFOHIWAT) 376 Fifohiwat = FIFOHIWAT; 377 #endif /* FIFODEBUG */ 378 fifo_strdata.qi_minfo->mi_hiwat = Fifohiwat; 379 380 return (0); 381 } 382 383 /* 384 * Provide a shadow for a vnode. We create a new shadow before checking for an 385 * existing one, to minimize the amount of time we need to hold ftable_lock. 386 * If a vp already has a shadow in the hash list, return its shadow. If not, 387 * we hash the new vnode and return its pointer to the caller. 388 */ 389 vnode_t * 390 fifovp(vnode_t *vp, cred_t *crp) 391 { 392 fifonode_t *fnp; 393 fifonode_t *spec_fnp; /* Speculative fnode ptr. */ 394 fifodata_t *fdp; 395 vnode_t *newvp; 396 struct vattr va; 397 398 ASSERT(vp != NULL); 399 400 fdp = kmem_cache_alloc(fnode_cache, KM_SLEEP); 401 402 fdp->fifo_lock.flk_ref = 1; 403 fnp = &fdp->fifo_fnode[0]; 404 405 /* 406 * In Trusted Extensions cross-zone named pipes 407 * are supported subject to the MAC policy. Since 408 * cross-zone access is done using lofs mounts, 409 * it is necessary to use the real vnode so that 410 * matching ends of the fifo can find each other. 411 */ 412 if (is_system_labeled()) { 413 vnode_t *rvp; 414 415 if (VOP_REALVP(vp, &rvp) == 0) 416 vp = rvp; 417 } 418 419 fnp->fn_realvp = vp; 420 fnp->fn_wcnt = 0; 421 fnp->fn_rcnt = 0; 422 423 #if FIFODEBUG 424 if (! Fifo_fastmode) { 425 fnp->fn_flag = 0; 426 } else { 427 fnp->fn_flag = FIFOFAST; 428 } 429 #else /* FIFODEBUG */ 430 fnp->fn_flag = FIFOFAST; 431 #endif /* FIFODEBUG */ 432 433 /* 434 * initialize the times from vp. 435 */ 436 va.va_mask = AT_TIMES; 437 if (VOP_GETATTR(vp, &va, 0, crp) == 0) { 438 fnp->fn_atime = va.va_atime.tv_sec; 439 fnp->fn_mtime = va.va_mtime.tv_sec; 440 fnp->fn_ctime = va.va_ctime.tv_sec; 441 } else { 442 fnp->fn_atime = 0; 443 fnp->fn_mtime = 0; 444 fnp->fn_ctime = 0; 445 } 446 447 /* 448 * Grab the VP here to avoid holding locks 449 * whilst trying to acquire others. 450 */ 451 452 VN_HOLD(vp); 453 454 mutex_enter(&ftable_lock); 455 456 if ((spec_fnp = fifofind(vp)) != NULL) { 457 mutex_exit(&ftable_lock); 458 459 /* 460 * Release the vnode and free up our pre-prepared fnode. 461 * Zero the lock reference just to explicitly signal 462 * this is unused. 463 */ 464 VN_RELE(vp); 465 fdp->fifo_lock.flk_ref = 0; 466 kmem_cache_free(fnode_cache, fdp); 467 468 return (FTOV(spec_fnp)); 469 } 470 471 newvp = FTOV(fnp); 472 fifo_reinit_vp(newvp); 473 newvp->v_vfsp = vp->v_vfsp; 474 newvp->v_rdev = vp->v_rdev; 475 newvp->v_flag |= (vp->v_flag & VROOT); 476 477 fifoinsert(fnp); 478 mutex_exit(&ftable_lock); 479 480 return (newvp); 481 } 482 483 /* 484 * Create a pipe end by... 485 * allocating a vnode-fifonode pair and initializing the fifonode. 486 */ 487 void 488 makepipe(vnode_t **vpp1, vnode_t **vpp2) 489 { 490 fifonode_t *fnp1; 491 fifonode_t *fnp2; 492 vnode_t *nvp1; 493 vnode_t *nvp2; 494 fifodata_t *fdp; 495 time_t now; 496 497 fdp = kmem_cache_alloc(pipe_cache, KM_SLEEP); 498 fdp->fifo_lock.flk_ref = 2; 499 fnp1 = &fdp->fifo_fnode[0]; 500 fnp2 = &fdp->fifo_fnode[1]; 501 502 fnp1->fn_wcnt = fnp2->fn_wcnt = 1; 503 fnp1->fn_rcnt = fnp2->fn_rcnt = 1; 504 #if FIFODEBUG 505 if (! Fifo_fastmode) { 506 fnp1->fn_flag = fnp2->fn_flag = ISPIPE; 507 } else { 508 fnp1->fn_flag = fnp2->fn_flag = ISPIPE | FIFOFAST; 509 } 510 #else /* FIFODEBUG */ 511 fnp1->fn_flag = fnp2->fn_flag = ISPIPE | FIFOFAST; 512 #endif /* FIFODEBUG */ 513 now = gethrestime_sec(); 514 fnp1->fn_atime = fnp2->fn_atime = now; 515 fnp1->fn_mtime = fnp2->fn_mtime = now; 516 fnp1->fn_ctime = fnp2->fn_ctime = now; 517 518 *vpp1 = nvp1 = FTOV(fnp1); 519 *vpp2 = nvp2 = FTOV(fnp2); 520 521 fifo_reinit_vp(nvp1); /* Reinitialize vnodes for reuse... */ 522 fifo_reinit_vp(nvp2); 523 nvp1->v_vfsp = fifovfsp; /* Need to re-establish VFS & device */ 524 nvp2->v_vfsp = fifovfsp; /* before we can reuse this vnode. */ 525 nvp1->v_rdev = fifodev; 526 nvp2->v_rdev = fifodev; 527 } 528 529 /* 530 * Attempt to establish a unique pipe id. Only un-named pipes use this 531 * routine. 532 */ 533 ino_t 534 fifogetid(void) 535 { 536 static ino_t fifo_ino = 0; 537 ino_t fino; 538 539 mutex_enter(&fino_lock); 540 fino = fifo_ino++; 541 mutex_exit(&fino_lock); 542 return (fino); 543 } 544 545 546 /* 547 * Stream a pipe/FIFO. 548 * The FIFOCONNLD flag is used when CONNLD has been pushed on the stream. 549 * If the flag is set, a new vnode is created by calling fifo_connld(). 550 * Connld logic was moved to fifo_connld() to speed up the open 551 * operation, simplify the connld/fifo interaction, and remove inherent 552 * race conditions between the connld module and fifos. 553 * This routine is single threaded for two reasons. 554 * 1) connld requests are synchronous; that is, they must block 555 * until the server does an I_RECVFD (oh, well). Single threading is 556 * the simplest way to accomplish this. 557 * 2) fifo_close() must not send M_HANGUP or M_ERROR while we are 558 * in stropen. Stropen() has a tendency to reset things and 559 * we would like streams to remember that a hangup occurred. 560 */ 561 int 562 fifo_stropen(vnode_t **vpp, int flag, cred_t *crp, int dotwist, int lockheld) 563 { 564 int error = 0; 565 vnode_t *oldvp = *vpp; 566 fifonode_t *fnp = VTOF(*vpp); 567 dev_t pdev = 0; 568 int firstopen = 0; 569 fifolock_t *fn_lock; 570 571 fn_lock = fnp->fn_lock; 572 if (!lockheld) 573 mutex_enter(&fn_lock->flk_lock); 574 ASSERT(MUTEX_HELD(&fnp->fn_lock->flk_lock)); 575 576 /* 577 * FIFO is in the process of opening. Wait for it 578 * to complete before starting another open on it 579 * This prevents races associated with connld open 580 */ 581 while (fnp->fn_flag & FIFOOPEN) { 582 if (!cv_wait_sig(&fnp->fn_wait_cv, &fn_lock->flk_lock)) { 583 fifo_cleanup(oldvp, flag); 584 if (!lockheld) 585 mutex_exit(&fn_lock->flk_lock); 586 return (EINTR); 587 } 588 } 589 590 /* 591 * The other end of the pipe is almost closed so 592 * reject any other open on this end of the pipe 593 * This only happens with a pipe mounted under namefs 594 */ 595 if ((fnp->fn_flag & (FIFOCLOSE|ISPIPE)) == (FIFOCLOSE|ISPIPE)) { 596 fifo_cleanup(oldvp, flag); 597 cv_broadcast(&fnp->fn_wait_cv); 598 if (!lockheld) 599 mutex_exit(&fn_lock->flk_lock); 600 return (ENXIO); 601 } 602 603 fnp->fn_flag |= FIFOOPEN; 604 605 /* 606 * can't allow close to happen while we are 607 * in the middle of stropen(). 608 * M_HANGUP and M_ERROR could leave the stream in a strange state 609 */ 610 while (fn_lock->flk_ocsync) 611 cv_wait(&fn_lock->flk_wait_cv, &fn_lock->flk_lock); 612 613 fn_lock->flk_ocsync = 1; 614 615 if (fnp->fn_flag & FIFOCONNLD) { 616 /* 617 * This is a reopen, so we should release the fifo lock 618 * just in case some strange module pushed on connld 619 * has some odd side effect. 620 * Note: this stropen is on the oldvp. It will 621 * have no impact on the connld vp returned and 622 * strclose() will only be called when we release 623 * flk_ocsync 624 */ 625 mutex_exit(&fn_lock->flk_lock); 626 if ((error = stropen(oldvp, &pdev, flag, crp)) != 0) { 627 mutex_enter(&fn_lock->flk_lock); 628 fifo_cleanup(oldvp, flag); 629 fn_lock->flk_ocsync = 0; 630 cv_broadcast(&fn_lock->flk_wait_cv); 631 goto out; 632 } 633 /* 634 * streams open done, allow close on other end if 635 * required. Do this now.. it could 636 * be a very long time before fifo_connld returns. 637 */ 638 mutex_enter(&fn_lock->flk_lock); 639 /* 640 * we need to fake an open here so that if this 641 * end of the pipe closes, we don't loose the 642 * stream head (kind of like single threading 643 * open and close for this end of the pipe) 644 * We'll need to call fifo_close() to do clean 645 * up in case this end of the pipe was closed 646 * down while we were in fifo_connld() 647 */ 648 ASSERT(fnp->fn_open > 0); 649 fnp->fn_open++; 650 fn_lock->flk_ocsync = 0; 651 cv_broadcast(&fn_lock->flk_wait_cv); 652 mutex_exit(&fn_lock->flk_lock); 653 /* 654 * Connld has been pushed onto the pipe 655 * Create new pipe on behalf of connld 656 */ 657 if (error = fifo_connld(vpp, flag, crp)) { 658 (void) fifo_close(oldvp, flag, 1, 0, crp); 659 mutex_enter(&fn_lock->flk_lock); 660 goto out; 661 } 662 /* 663 * undo fake open. We need to call fifo_close 664 * because some other thread could have done 665 * a close and detach of the named pipe while 666 * we were in fifo_connld(), so 667 * we want to make sure the close completes (yuk) 668 */ 669 (void) fifo_close(oldvp, flag, 1, 0, crp); 670 /* 671 * fifo_connld has changed the vp, so we 672 * need to re-initialize locals 673 */ 674 fnp = VTOF(*vpp); 675 fn_lock = fnp->fn_lock; 676 mutex_enter(&fn_lock->flk_lock); 677 } else { 678 /* 679 * release lock in case there are modules pushed that 680 * could have some strange side effect 681 */ 682 683 mutex_exit(&fn_lock->flk_lock); 684 685 /* 686 * If this is the first open of a fifo (dotwist 687 * will be non-zero) we will need to twist the queues. 688 */ 689 if (oldvp->v_stream == NULL) 690 firstopen = 1; 691 692 693 /* 694 * normal open of pipe/fifo 695 */ 696 697 if ((error = stropen(oldvp, &pdev, flag, crp)) != 0) { 698 mutex_enter(&fn_lock->flk_lock); 699 fifo_cleanup(oldvp, flag); 700 ASSERT(fnp->fn_open != 0 || oldvp->v_stream == NULL); 701 fn_lock->flk_ocsync = 0; 702 cv_broadcast(&fn_lock->flk_wait_cv); 703 goto out; 704 } 705 mutex_enter(&fn_lock->flk_lock); 706 707 /* 708 * twist the ends of the fifo together 709 */ 710 if (dotwist && firstopen) 711 strmate(*vpp, *vpp); 712 713 /* 714 * Show that this open has succeeded 715 * and allow closes or other opens to proceed 716 */ 717 fnp->fn_open++; 718 fn_lock->flk_ocsync = 0; 719 cv_broadcast(&fn_lock->flk_wait_cv); 720 } 721 out: 722 fnp->fn_flag &= ~FIFOOPEN; 723 if (error == 0) { 724 fnp->fn_flag |= FIFOISOPEN; 725 /* 726 * If this is a FIFO and has the close flag set 727 * and there are now writers, clear the close flag 728 * Note: close flag only gets set when last writer 729 * on a FIFO goes away. 730 */ 731 if (((fnp->fn_flag & (ISPIPE|FIFOCLOSE)) == FIFOCLOSE) && 732 fnp->fn_wcnt > 0) 733 fnp->fn_flag &= ~FIFOCLOSE; 734 } 735 cv_broadcast(&fnp->fn_wait_cv); 736 if (!lockheld) 737 mutex_exit(&fn_lock->flk_lock); 738 return (error); 739 } 740 741 /* 742 * Clean up the state of a FIFO and/or mounted pipe in the 743 * event that a fifo_open() was interrupted while the 744 * process was blocked. 745 */ 746 void 747 fifo_cleanup(vnode_t *vp, int flag) 748 { 749 fifonode_t *fnp = VTOF(vp); 750 751 ASSERT(MUTEX_HELD(&fnp->fn_lock->flk_lock)); 752 753 cleanlocks(vp, curproc->p_pid, 0); 754 cleanshares(vp, curproc->p_pid); 755 if (flag & FREAD) { 756 fnp->fn_rcnt--; 757 } 758 if (flag & FWRITE) { 759 fnp->fn_wcnt--; 760 } 761 cv_broadcast(&fnp->fn_wait_cv); 762 } 763 764 765 /* 766 * Insert a fifonode-vnode pair onto the fifoalloc hash list. 767 */ 768 static void 769 fifoinsert(fifonode_t *fnp) 770 { 771 int idx = FIFOHASH(fnp->fn_realvp); 772 773 /* 774 * We don't need to hold fn_lock since we're holding ftable_lock and 775 * this routine is only called right after we've allocated an fnode. 776 * FIFO is inserted at head of NULL terminated doubly linked list. 777 */ 778 779 ASSERT(MUTEX_HELD(&ftable_lock)); 780 fnp->fn_backp = NULL; 781 fnp->fn_nextp = fifoalloc[idx]; 782 fifoalloc[idx] = fnp; 783 if (fnp->fn_nextp) 784 fnp->fn_nextp->fn_backp = fnp; 785 } 786 787 /* 788 * Find a fifonode-vnode pair on the fifoalloc hash list. 789 * vp is a vnode to be shadowed. If it's on the hash list, 790 * it already has a shadow, therefore return its corresponding 791 * fifonode. 792 */ 793 static fifonode_t * 794 fifofind(vnode_t *vp) 795 { 796 fifonode_t *fnode; 797 798 ASSERT(MUTEX_HELD(&ftable_lock)); 799 for (fnode = fifoalloc[FIFOHASH(vp)]; fnode; fnode = fnode->fn_nextp) { 800 if (fnode->fn_realvp == vp) { 801 VN_HOLD(FTOV(fnode)); 802 return (fnode); 803 } 804 } 805 return (NULL); 806 } 807 808 /* 809 * Remove a fifonode-vnode pair from the fifoalloc hash list. 810 * This routine is called from the fifo_inactive() routine when a 811 * FIFO is being released. 812 * If the link to be removed is the only link, set fifoalloc to NULL. 813 */ 814 void 815 fiforemove(fifonode_t *fnp) 816 { 817 int idx = FIFOHASH(fnp->fn_realvp); 818 fifonode_t *fnode; 819 820 ASSERT(MUTEX_HELD(&ftable_lock)); 821 fnode = fifoalloc[idx]; 822 /* 823 * fast path... only 1 FIFO in this list entry 824 */ 825 if (fnode != NULL && fnode == fnp && 826 !fnode->fn_nextp && !fnode->fn_backp) { 827 fifoalloc[idx] = NULL; 828 } else { 829 830 for (; fnode; fnode = fnode->fn_nextp) { 831 if (fnode == fnp) { 832 /* 833 * if we are first entry 834 */ 835 if (fnp == fifoalloc[idx]) 836 fifoalloc[idx] = fnp->fn_nextp; 837 if (fnode->fn_nextp) 838 fnode->fn_nextp->fn_backp = 839 fnode->fn_backp; 840 if (fnode->fn_backp) 841 fnode->fn_backp->fn_nextp = 842 fnode->fn_nextp; 843 break; 844 } 845 } 846 } 847 } 848 849 /* 850 * Flush all data from a fifo's message queue 851 */ 852 853 void 854 fifo_fastflush(fifonode_t *fnp) 855 { 856 mblk_t *bp; 857 ASSERT(MUTEX_HELD(&fnp->fn_lock->flk_lock)); 858 859 if ((bp = fnp->fn_mp) != NULL) { 860 fnp->fn_mp = NULL; 861 fnp->fn_count = 0; 862 freemsg(bp); 863 } 864 fifo_wakewriter(fnp->fn_dest, fnp->fn_lock); 865 } 866 867 /* 868 * Note: This routine is single threaded 869 * Protected by FIFOOPEN flag (i.e. flk_lock is not held) 870 * Upon successful completion, the original fifo is unlocked 871 * and FIFOOPEN is cleared for the original vpp. 872 * The new fifo returned has FIFOOPEN set. 873 */ 874 static int 875 fifo_connld(struct vnode **vpp, int flag, cred_t *crp) 876 { 877 struct vnode *vp1; 878 struct vnode *vp2; 879 struct fifonode *oldfnp; 880 struct fifonode *fn_dest; 881 int error; 882 struct file *filep; 883 struct fifolock *fn_lock; 884 cred_t *c; 885 886 /* 887 * Get two vnodes that will represent the pipe ends for the new pipe. 888 */ 889 makepipe(&vp1, &vp2); 890 891 /* 892 * Allocate a file descriptor and file pointer for one of the pipe 893 * ends. The file descriptor will be used to send that pipe end to 894 * the process on the other end of this stream. Note that we get 895 * the file structure only, there is no file list entry allocated. 896 */ 897 if (error = falloc(vp1, FWRITE|FREAD, &filep, NULL)) { 898 VN_RELE(vp1); 899 VN_RELE(vp2); 900 return (error); 901 } 902 mutex_exit(&filep->f_tlock); 903 oldfnp = VTOF(*vpp); 904 fn_lock = oldfnp->fn_lock; 905 fn_dest = oldfnp->fn_dest; 906 907 /* 908 * Create two new stream heads and attach them to the two vnodes for 909 * the new pipe. 910 */ 911 if ((error = fifo_stropen(&vp1, FREAD|FWRITE, filep->f_cred, 0, 0)) != 912 0 || 913 (error = fifo_stropen(&vp2, flag, filep->f_cred, 0, 0)) != 0) { 914 #if DEBUG 915 cmn_err(CE_NOTE, "fifo stropen failed error 0x%x", 916 error); 917 #endif 918 /* 919 * this will call fifo_close and VN_RELE on vp1 920 */ 921 (void) closef(filep); 922 VN_RELE(vp2); 923 return (error); 924 } 925 926 /* 927 * twist the ends of the pipe together 928 */ 929 strmate(vp1, vp2); 930 931 /* 932 * Set our end to busy in open 933 * Note: Don't need lock around this because we're the only 934 * one who knows about it 935 */ 936 VTOF(vp2)->fn_flag |= FIFOOPEN; 937 938 mutex_enter(&fn_lock->flk_lock); 939 940 fn_dest->fn_flag |= FIFOSEND; 941 /* 942 * check to make sure neither end of pipe has gone away 943 */ 944 if (!(fn_dest->fn_flag & FIFOISOPEN)) { 945 error = ENXIO; 946 fn_dest->fn_flag &= ~FIFOSEND; 947 mutex_exit(&fn_lock->flk_lock); 948 /* 949 * this will call fifo_close and VN_RELE on vp1 950 */ 951 goto out; 952 } 953 mutex_exit(&fn_lock->flk_lock); 954 955 /* 956 * Tag the sender's credential on the pipe descriptor. 957 */ 958 crhold(VTOF(vp1)->fn_pcredp = crp); 959 VTOF(vp1)->fn_cpid = curproc->p_pid; 960 961 /* 962 * send the file descriptor to other end of pipe 963 */ 964 if (error = do_sendfp((*vpp)->v_stream, filep, crp)) { 965 mutex_enter(&fn_lock->flk_lock); 966 fn_dest->fn_flag &= ~FIFOSEND; 967 mutex_exit(&fn_lock->flk_lock); 968 /* 969 * this will call fifo_close and VN_RELE on vp1 970 */ 971 goto out; 972 } 973 974 mutex_enter(&fn_lock->flk_lock); 975 /* 976 * Wait for other end to receive file descriptor 977 * FIFOCLOSE indicates that one or both sides of the pipe 978 * have gone away. 979 */ 980 while ((fn_dest->fn_flag & (FIFOCLOSE | FIFOSEND)) == FIFOSEND) { 981 if (!cv_wait_sig(&oldfnp->fn_wait_cv, &fn_lock->flk_lock)) { 982 error = EINTR; 983 fn_dest->fn_flag &= ~FIFOSEND; 984 mutex_exit(&fn_lock->flk_lock); 985 goto out; 986 } 987 } 988 /* 989 * If either end of pipe has gone away and the other end did not 990 * receive pipe, reject the connld open 991 */ 992 if ((fn_dest->fn_flag & FIFOSEND)) { 993 error = ENXIO; 994 fn_dest->fn_flag &= ~FIFOSEND; 995 mutex_exit(&fn_lock->flk_lock); 996 goto out; 997 } 998 999 oldfnp->fn_flag &= ~FIFOOPEN; 1000 cv_broadcast(&oldfnp->fn_wait_cv); 1001 mutex_exit(&fn_lock->flk_lock); 1002 1003 VN_RELE(*vpp); 1004 *vpp = vp2; 1005 (void) closef(filep); 1006 return (0); 1007 out: 1008 c = filep->f_cred; 1009 crhold(c); 1010 (void) closef(filep); 1011 VTOF(vp2)->fn_flag &= ~FIFOOPEN; 1012 (void) fifo_close(vp2, flag, 1, (offset_t)0, c); 1013 crfree(c); 1014 VN_RELE(vp2); 1015 return (error); 1016 } 1017 1018 /* 1019 * Disable fastpath mode. 1020 */ 1021 void 1022 fifo_fastoff(fifonode_t *fnp) 1023 { 1024 ASSERT(MUTEX_HELD(&fnp->fn_lock->flk_lock)); 1025 ASSERT(FTOV(fnp)->v_stream); 1026 1027 /* FIFOSTAYFAST is set => FIFOFAST is set */ 1028 while ((fnp->fn_flag & FIFOSTAYFAST) || ((fnp->fn_flag & ISPIPE) && 1029 (fnp->fn_dest->fn_flag & FIFOSTAYFAST))) { 1030 ASSERT(fnp->fn_flag & FIFOFAST); 1031 /* indicate someone is waiting to turn into stream mode */ 1032 fnp->fn_flag |= FIFOWAITMODE; 1033 cv_wait(&fnp->fn_wait_cv, &fnp->fn_lock->flk_lock); 1034 fnp->fn_flag &= ~FIFOWAITMODE; 1035 } 1036 1037 /* as we may have relased the lock, test the FIFOFAST flag here */ 1038 if (!(fnp->fn_flag & FIFOFAST)) 1039 return; 1040 #if FIFODEBUG 1041 if (Fifo_verbose) 1042 cmn_err(CE_NOTE, "Fifo reverting to streams mode\n"); 1043 #endif 1044 1045 fifo_fastturnoff(fnp); 1046 if (fnp->fn_flag & ISPIPE) { 1047 fifo_fastturnoff(fnp->fn_dest); 1048 } 1049 } 1050 1051 1052 /* 1053 * flk_lock must be held while calling fifo_fastturnoff() to 1054 * preserve data ordering (no reads or writes allowed) 1055 */ 1056 1057 static void 1058 fifo_fastturnoff(fifonode_t *fnp) 1059 { 1060 fifonode_t *fn_dest = fnp->fn_dest; 1061 mblk_t *fn_mp; 1062 int fn_flag; 1063 1064 ASSERT(MUTEX_HELD(&fnp->fn_lock->flk_lock)); 1065 /* 1066 * Note: This end can't be closed if there 1067 * is stuff in fn_mp 1068 */ 1069 if ((fn_mp = fnp->fn_mp) != NULL) { 1070 ASSERT(fnp->fn_flag & FIFOISOPEN); 1071 ASSERT(FTOV(fnp)->v_stream != NULL); 1072 ASSERT(FTOV(fnp)->v_stream->sd_wrq != NULL); 1073 ASSERT(RD(FTOV(fnp)->v_stream->sd_wrq) != NULL); 1074 ASSERT(strvp2wq(FTOV(fnp)) != NULL); 1075 fnp->fn_mp = NULL; 1076 fnp->fn_count = 0; 1077 /* 1078 * Don't need to drop flk_lock across the put() 1079 * since we're just moving the message from the fifo 1080 * node to the STREAM head... 1081 */ 1082 put(RD(strvp2wq(FTOV(fnp))), fn_mp); 1083 } 1084 1085 /* 1086 * Need to re-issue any pending poll requests 1087 * so that the STREAMS framework sees them 1088 * Writers would be waiting on fnp and readers on fn_dest 1089 */ 1090 if ((fnp->fn_flag & (FIFOISOPEN | FIFOPOLLW)) == 1091 (FIFOISOPEN | FIFOPOLLW)) { 1092 strpollwakeup(FTOV(fnp), POLLWRNORM); 1093 } 1094 fn_flag = fn_dest->fn_flag; 1095 if ((fn_flag & FIFOISOPEN) == FIFOISOPEN) { 1096 if ((fn_flag & (FIFOPOLLR | FIFOPOLLRBAND))) { 1097 strpollwakeup(FTOV(fn_dest), POLLIN|POLLRDNORM); 1098 } 1099 } 1100 /* 1101 * wake up any sleeping processes so they can notice we went 1102 * to streams mode 1103 */ 1104 fnp->fn_flag &= ~(FIFOFAST|FIFOWANTW|FIFOWANTR); 1105 cv_broadcast(&fnp->fn_wait_cv); 1106 } 1107 1108 /* 1109 * Alternative version of fifo_fastoff() 1110 * optimized for putmsg/getmsg. 1111 */ 1112 void 1113 fifo_vfastoff(vnode_t *vp) 1114 { 1115 fifonode_t *fnp = VTOF(vp); 1116 1117 mutex_enter(&fnp->fn_lock->flk_lock); 1118 if (!(fnp->fn_flag & FIFOFAST)) { 1119 mutex_exit(&fnp->fn_lock->flk_lock); 1120 return; 1121 } 1122 fifo_fastoff(fnp); 1123 mutex_exit(&fnp->fn_lock->flk_lock); 1124 } 1125 1126 /* 1127 * Wake any sleeping writers, poll and send signals if necessary 1128 * This module is only called when we drop below the hi water mark 1129 * FIFOWANTW indicates that a process is sleeping in fifo_write() 1130 * FIFOHIWATW indicates that we have either attempted a poll or 1131 * non-blocking write and were over the high water mark 1132 * This routine assumes a low water mark of 0. 1133 */ 1134 1135 void 1136 fifo_wakewriter(fifonode_t *fn_dest, fifolock_t *fn_lock) 1137 { 1138 int fn_dflag = fn_dest->fn_flag; 1139 1140 ASSERT(MUTEX_HELD(&fn_lock->flk_lock)); 1141 ASSERT(fn_dest->fn_dest->fn_count < Fifohiwat); 1142 if ((fn_dflag & FIFOWANTW)) { 1143 cv_broadcast(&fn_dest->fn_wait_cv); 1144 } 1145 if ((fn_dflag & (FIFOHIWATW | FIFOISOPEN)) == 1146 (FIFOHIWATW | FIFOISOPEN)) { 1147 if (fn_dflag & FIFOPOLLW) 1148 strpollwakeup(FTOV(fn_dest), POLLWRNORM); 1149 if (fn_dflag & FIFOSETSIG) 1150 str_sendsig(FTOV(fn_dest), S_WRNORM, 0, 0); 1151 } 1152 /* 1153 * FIFOPOLLW can't be set without setting FIFOHIWAT 1154 * This allows us to clear both here. 1155 */ 1156 fn_dest->fn_flag = fn_dflag & ~(FIFOWANTW | FIFOHIWATW | FIFOPOLLW); 1157 } 1158 1159 /* 1160 * wake up any sleeping readers, poll or send signal if needed 1161 * FIFOWANTR indicates that a process is waiting in fifo_read() for data 1162 * FIFOSETSIG indicates that SIGPOLL should be sent to process 1163 * FIFOPOLLR indicates that a poll request for reading on the fifo was made 1164 */ 1165 1166 void 1167 fifo_wakereader(fifonode_t *fn_dest, fifolock_t *fn_lock) 1168 { 1169 int fn_dflag = fn_dest->fn_flag; 1170 1171 ASSERT(MUTEX_HELD(&fn_lock->flk_lock)); 1172 if (fn_dflag & FIFOWANTR) { 1173 cv_broadcast(&fn_dest->fn_wait_cv); 1174 } 1175 if (fn_dflag & FIFOISOPEN) { 1176 if (fn_dflag & FIFOPOLLR) 1177 strpollwakeup(FTOV(fn_dest), POLLIN | POLLRDNORM); 1178 if (fn_dflag & FIFOSETSIG) 1179 str_sendsig(FTOV(fn_dest), S_INPUT | S_RDNORM, 0, 0); 1180 } 1181 fn_dest->fn_flag = fn_dflag & ~(FIFOWANTR | FIFOPOLLR); 1182 } 1183