1 1.142 mlelstv /* $NetBSD: sysv_shm.c,v 1.142 2024/03/02 08:59:47 mlelstv Exp $ */ 2 1.52 thorpej 3 1.52 thorpej /*- 4 1.96 ad * Copyright (c) 1999, 2007 The NetBSD Foundation, Inc. 5 1.52 thorpej * All rights reserved. 6 1.52 thorpej * 7 1.52 thorpej * This code is derived from software contributed to The NetBSD Foundation 8 1.52 thorpej * by Jason R. Thorpe of the Numerical Aerospace Simulation Facility, 9 1.102 ad * NASA Ames Research Center, and by Mindaugas Rasiukevicius. 10 1.52 thorpej * 11 1.52 thorpej * Redistribution and use in source and binary forms, with or without 12 1.52 thorpej * modification, are permitted provided that the following conditions 13 1.52 thorpej * are met: 14 1.52 thorpej * 1. Redistributions of source code must retain the above copyright 15 1.52 thorpej * notice, this list of conditions and the following disclaimer. 16 1.52 thorpej * 2. Redistributions in binary form must reproduce the above copyright 17 1.52 thorpej * notice, this list of conditions and the following disclaimer in the 18 1.52 thorpej * documentation and/or other materials provided with the distribution. 19 1.52 thorpej * 20 1.52 thorpej * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS 21 1.52 thorpej * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED 22 1.52 thorpej * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR 23 1.52 thorpej * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS 24 1.52 thorpej * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR 25 1.52 thorpej * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF 26 1.52 thorpej * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS 27 1.52 thorpej * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN 28 1.52 thorpej * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) 29 1.52 thorpej * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE 30 1.52 thorpej * POSSIBILITY OF SUCH DAMAGE. 31 1.52 thorpej */ 32 1.22 cgd 33 1.11 hpeyerl /* 34 1.48 mycroft * Copyright (c) 1994 Adam Glass and Charles M. Hannum. All rights reserved. 35 1.11 hpeyerl * 36 1.11 hpeyerl * Redistribution and use in source and binary forms, with or without 37 1.11 hpeyerl * modification, are permitted provided that the following conditions 38 1.11 hpeyerl * are met: 39 1.11 hpeyerl * 1. Redistributions of source code must retain the above copyright 40 1.11 hpeyerl * notice, this list of conditions and the following disclaimer. 41 1.17 mycroft * 2. Redistributions in binary form must reproduce the above copyright 42 1.17 mycroft * notice, this list of conditions and the following disclaimer in the 43 1.17 mycroft * documentation and/or other materials provided with the distribution. 44 1.17 mycroft * 3. All advertising materials mentioning features or use of this software 45 1.17 mycroft * must display the following acknowledgement: 46 1.48 mycroft * This product includes software developed by Adam Glass and Charles M. 47 1.17 mycroft * Hannum. 48 1.17 mycroft * 4. The names of the authors may not be used to endorse or promote products 49 1.11 hpeyerl * derived from this software without specific prior written permission. 50 1.11 hpeyerl * 51 1.17 mycroft * THIS SOFTWARE IS PROVIDED BY THE AUTHORS ``AS IS'' AND ANY EXPRESS OR 52 1.17 mycroft * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES 53 1.17 mycroft * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED. 54 1.17 mycroft * IN NO EVENT SHALL THE AUTHORS BE LIABLE FOR ANY DIRECT, INDIRECT, 55 1.17 mycroft * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT 56 1.17 mycroft * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, 57 1.17 mycroft * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY 58 1.17 mycroft * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT 59 1.17 mycroft * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF 60 1.17 mycroft * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE. 61 1.11 hpeyerl */ 62 1.62 lukem 63 1.62 lukem #include <sys/cdefs.h> 64 1.142 mlelstv __KERNEL_RCSID(0, "$NetBSD: sysv_shm.c,v 1.142 2024/03/02 08:59:47 mlelstv Exp $"); 65 1.43 mrg 66 1.126 pgoyette #ifdef _KERNEL_OPT 67 1.126 pgoyette #include "opt_sysv.h" 68 1.126 pgoyette #endif 69 1.11 hpeyerl 70 1.11 hpeyerl #include <sys/param.h> 71 1.11 hpeyerl #include <sys/kernel.h> 72 1.102 ad #include <sys/kmem.h> 73 1.11 hpeyerl #include <sys/shm.h> 74 1.96 ad #include <sys/mutex.h> 75 1.11 hpeyerl #include <sys/mman.h> 76 1.12 mycroft #include <sys/stat.h> 77 1.56 simonb #include <sys/sysctl.h> 78 1.56 simonb #include <sys/mount.h> /* XXX for <sys/syscallargs.h> */ 79 1.56 simonb #include <sys/syscallargs.h> 80 1.69 drochner #include <sys/queue.h> 81 1.87 elad #include <sys/kauth.h> 82 1.35 christos 83 1.60 thorpej #include <uvm/uvm_extern.h> 84 1.75 christos #include <uvm/uvm_object.h> 85 1.60 thorpej 86 1.69 drochner struct shmmap_entry { 87 1.69 drochner SLIST_ENTRY(shmmap_entry) next; 88 1.47 eeh vaddr_t va; 89 1.11 hpeyerl int shmid; 90 1.11 hpeyerl }; 91 1.11 hpeyerl 92 1.119 rmind int shm_nused __cacheline_aligned; 93 1.119 rmind struct shmid_ds * shmsegs __read_mostly; 94 1.119 rmind 95 1.119 rmind static kmutex_t shm_lock __cacheline_aligned; 96 1.119 rmind static kcondvar_t * shm_cv __cacheline_aligned; 97 1.119 rmind static int shm_last_free __cacheline_aligned; 98 1.119 rmind static size_t shm_committed __cacheline_aligned; 99 1.119 rmind static int shm_use_phys __read_mostly; 100 1.102 ad 101 1.102 ad static kcondvar_t shm_realloc_cv; 102 1.102 ad static bool shm_realloc_state; 103 1.102 ad static u_int shm_realloc_disable; 104 1.69 drochner 105 1.69 drochner struct shmmap_state { 106 1.69 drochner unsigned int nitems; 107 1.69 drochner unsigned int nrefs; 108 1.69 drochner SLIST_HEAD(, shmmap_entry) entries; 109 1.69 drochner }; 110 1.69 drochner 111 1.127 pgoyette extern int kern_has_sysvshm; 112 1.127 pgoyette 113 1.130 pgoyette SYSCTL_SETUP_PROTO(sysctl_ipc_shm_setup); 114 1.130 pgoyette 115 1.102 ad #ifdef SHMDEBUG 116 1.102 ad #define SHMPRINTF(a) printf a 117 1.102 ad #else 118 1.102 ad #define SHMPRINTF(a) 119 1.102 ad #endif 120 1.102 ad 121 1.92 christos static int shmrealloc(int); 122 1.11 hpeyerl 123 1.102 ad /* 124 1.138 maxv * Find the shared memory segment permission by the index. Only used by 125 1.138 maxv * compat_linux to implement SHM_STAT. 126 1.138 maxv */ 127 1.138 maxv int 128 1.138 maxv shm_find_segment_perm_by_index(int index, struct ipc_perm *perm) 129 1.138 maxv { 130 1.138 maxv struct shmid_ds *shmseg; 131 1.138 maxv 132 1.138 maxv mutex_enter(&shm_lock); 133 1.138 maxv if (index < 0 || index >= shminfo.shmmni) { 134 1.138 maxv mutex_exit(&shm_lock); 135 1.138 maxv return EINVAL; 136 1.138 maxv } 137 1.138 maxv shmseg = &shmsegs[index]; 138 1.138 maxv memcpy(perm, &shmseg->shm_perm, sizeof(*perm)); 139 1.138 maxv mutex_exit(&shm_lock); 140 1.138 maxv return 0; 141 1.138 maxv } 142 1.138 maxv 143 1.138 maxv /* 144 1.102 ad * Find the shared memory segment by the identifier. 145 1.102 ad * => must be called with shm_lock held; 146 1.102 ad */ 147 1.86 thorpej static struct shmid_ds * 148 1.86 thorpej shm_find_segment_by_shmid(int shmid) 149 1.11 hpeyerl { 150 1.11 hpeyerl int segnum; 151 1.11 hpeyerl struct shmid_ds *shmseg; 152 1.11 hpeyerl 153 1.102 ad KASSERT(mutex_owned(&shm_lock)); 154 1.102 ad 155 1.11 hpeyerl segnum = IPCID_TO_IX(shmid); 156 1.12 mycroft if (segnum < 0 || segnum >= shminfo.shmmni) 157 1.11 hpeyerl return NULL; 158 1.11 hpeyerl shmseg = &shmsegs[segnum]; 159 1.64 fvdl if ((shmseg->shm_perm.mode & SHMSEG_ALLOCATED) == 0) 160 1.64 fvdl return NULL; 161 1.102 ad if ((shmseg->shm_perm.mode & 162 1.102 ad (SHMSEG_REMOVED|SHMSEG_RMLINGER)) == SHMSEG_REMOVED) 163 1.64 fvdl return NULL; 164 1.64 fvdl if (shmseg->shm_perm._seq != IPCID_TO_SEQ(shmid)) 165 1.11 hpeyerl return NULL; 166 1.102 ad 167 1.11 hpeyerl return shmseg; 168 1.11 hpeyerl } 169 1.11 hpeyerl 170 1.102 ad /* 171 1.102 ad * Free memory segment. 172 1.102 ad * => must be called with shm_lock held; 173 1.102 ad */ 174 1.12 mycroft static void 175 1.102 ad shm_free_segment(int segnum) 176 1.12 mycroft { 177 1.102 ad struct shmid_ds *shmseg; 178 1.102 ad size_t size; 179 1.102 ad bool wanted; 180 1.102 ad 181 1.102 ad KASSERT(mutex_owned(&shm_lock)); 182 1.12 mycroft 183 1.102 ad shmseg = &shmsegs[segnum]; 184 1.102 ad SHMPRINTF(("shm freeing key 0x%lx seq 0x%x\n", 185 1.102 ad shmseg->shm_perm._key, shmseg->shm_perm._seq)); 186 1.102 ad 187 1.102 ad size = (shmseg->shm_segsz + PGOFSET) & ~PGOFSET; 188 1.102 ad wanted = (shmseg->shm_perm.mode & SHMSEG_WANTED); 189 1.85 christos 190 1.52 thorpej shmseg->_shm_internal = NULL; 191 1.14 mycroft shm_committed -= btoc(size); 192 1.102 ad shm_nused--; 193 1.12 mycroft shmseg->shm_perm.mode = SHMSEG_FREE; 194 1.102 ad shm_last_free = segnum; 195 1.102 ad if (wanted == true) 196 1.102 ad cv_broadcast(&shm_cv[segnum]); 197 1.12 mycroft } 198 1.12 mycroft 199 1.102 ad /* 200 1.102 ad * Delete entry from the shm map. 201 1.102 ad * => must be called with shm_lock held; 202 1.102 ad */ 203 1.102 ad static struct uvm_object * 204 1.102 ad shm_delete_mapping(struct shmmap_state *shmmap_s, 205 1.86 thorpej struct shmmap_entry *shmmap_se) 206 1.11 hpeyerl { 207 1.102 ad struct uvm_object *uobj = NULL; 208 1.12 mycroft struct shmid_ds *shmseg; 209 1.61 chs int segnum; 210 1.102 ad 211 1.102 ad KASSERT(mutex_owned(&shm_lock)); 212 1.76 junyoung 213 1.69 drochner segnum = IPCID_TO_IX(shmmap_se->shmid); 214 1.12 mycroft shmseg = &shmsegs[segnum]; 215 1.69 drochner SLIST_REMOVE(&shmmap_s->entries, shmmap_se, shmmap_entry, next); 216 1.69 drochner shmmap_s->nitems--; 217 1.88 kardel shmseg->shm_dtime = time_second; 218 1.12 mycroft if ((--shmseg->shm_nattch <= 0) && 219 1.11 hpeyerl (shmseg->shm_perm.mode & SHMSEG_REMOVED)) { 220 1.102 ad uobj = shmseg->_shm_internal; 221 1.102 ad shm_free_segment(segnum); 222 1.11 hpeyerl } 223 1.102 ad 224 1.102 ad return uobj; 225 1.11 hpeyerl } 226 1.11 hpeyerl 227 1.69 drochner /* 228 1.102 ad * Get a non-shared shm map for that vmspace. Note, that memory 229 1.102 ad * allocation might be performed with lock held. 230 1.69 drochner */ 231 1.69 drochner static struct shmmap_state * 232 1.69 drochner shmmap_getprivate(struct proc *p) 233 1.69 drochner { 234 1.69 drochner struct shmmap_state *oshmmap_s, *shmmap_s; 235 1.69 drochner struct shmmap_entry *oshmmap_se, *shmmap_se; 236 1.69 drochner 237 1.102 ad KASSERT(mutex_owned(&shm_lock)); 238 1.102 ad 239 1.102 ad /* 1. A shm map with refcnt = 1, used by ourselves, thus return */ 240 1.69 drochner oshmmap_s = (struct shmmap_state *)p->p_vmspace->vm_shm; 241 1.69 drochner if (oshmmap_s && oshmmap_s->nrefs == 1) 242 1.102 ad return oshmmap_s; 243 1.69 drochner 244 1.102 ad /* 2. No shm map preset - create a fresh one */ 245 1.102 ad shmmap_s = kmem_zalloc(sizeof(struct shmmap_state), KM_SLEEP); 246 1.69 drochner shmmap_s->nrefs = 1; 247 1.69 drochner SLIST_INIT(&shmmap_s->entries); 248 1.98 christos p->p_vmspace->vm_shm = (void *)shmmap_s; 249 1.69 drochner 250 1.102 ad if (oshmmap_s == NULL) 251 1.102 ad return shmmap_s; 252 1.102 ad 253 1.102 ad SHMPRINTF(("shmmap_getprivate: vm %p split (%d entries), was used by %d\n", 254 1.102 ad p->p_vmspace, oshmmap_s->nitems, oshmmap_s->nrefs)); 255 1.69 drochner 256 1.102 ad /* 3. A shared shm map, copy to a fresh one and adjust refcounts */ 257 1.69 drochner SLIST_FOREACH(oshmmap_se, &oshmmap_s->entries, next) { 258 1.119 rmind shmmap_se = kmem_alloc(sizeof(struct shmmap_entry), KM_SLEEP); 259 1.69 drochner shmmap_se->va = oshmmap_se->va; 260 1.69 drochner shmmap_se->shmid = oshmmap_se->shmid; 261 1.69 drochner SLIST_INSERT_HEAD(&shmmap_s->entries, shmmap_se, next); 262 1.69 drochner } 263 1.69 drochner shmmap_s->nitems = oshmmap_s->nitems; 264 1.69 drochner oshmmap_s->nrefs--; 265 1.102 ad 266 1.102 ad return shmmap_s; 267 1.69 drochner } 268 1.69 drochner 269 1.102 ad /* 270 1.102 ad * Lock/unlock the memory. 271 1.102 ad * => must be called with shm_lock held; 272 1.102 ad */ 273 1.135 chs static int 274 1.135 chs shm_memlock(struct shmid_ds *shmseg, int shmid, int cmd) 275 1.70 drochner { 276 1.102 ad size_t size; 277 1.102 ad int error; 278 1.102 ad 279 1.102 ad KASSERT(mutex_owned(&shm_lock)); 280 1.102 ad 281 1.135 chs size = round_page(shmseg->shm_segsz); 282 1.135 chs 283 1.135 chs if (cmd == SHM_LOCK && (shmseg->shm_perm.mode & SHMSEG_WIRED) == 0) { 284 1.135 chs /* Wire the object and map, then tag it */ 285 1.135 chs error = uvm_obj_wirepages(shmseg->_shm_internal, 286 1.135 chs 0, size, NULL); 287 1.135 chs if (error) 288 1.135 chs return EIO; 289 1.135 chs shmseg->shm_perm.mode |= SHMSEG_WIRED; 290 1.135 chs 291 1.135 chs } else if (cmd == SHM_UNLOCK && 292 1.135 chs (shmseg->shm_perm.mode & SHMSEG_WIRED) != 0) { 293 1.135 chs /* Unwire the object, then untag it */ 294 1.135 chs uvm_obj_unwirepages(shmseg->_shm_internal, 0, size); 295 1.135 chs shmseg->shm_perm.mode &= ~SHMSEG_WIRED; 296 1.70 drochner } 297 1.102 ad 298 1.70 drochner return 0; 299 1.70 drochner } 300 1.70 drochner 301 1.102 ad /* 302 1.102 ad * Unmap shared memory. 303 1.102 ad */ 304 1.12 mycroft int 305 1.101 dsl sys_shmdt(struct lwp *l, const struct sys_shmdt_args *uap, register_t *retval) 306 1.32 thorpej { 307 1.101 dsl /* { 308 1.44 kleink syscallarg(const void *) shmaddr; 309 1.101 dsl } */ 310 1.65 thorpej struct proc *p = l->l_proc; 311 1.102 ad struct shmmap_state *shmmap_s1, *shmmap_s; 312 1.69 drochner struct shmmap_entry *shmmap_se; 313 1.102 ad struct uvm_object *uobj; 314 1.102 ad struct shmid_ds *shmseg; 315 1.102 ad size_t size; 316 1.11 hpeyerl 317 1.102 ad mutex_enter(&shm_lock); 318 1.102 ad /* In case of reallocation, we will wait for completion */ 319 1.102 ad while (__predict_false(shm_realloc_state)) 320 1.102 ad cv_wait(&shm_realloc_cv, &shm_lock); 321 1.102 ad 322 1.102 ad shmmap_s1 = (struct shmmap_state *)p->p_vmspace->vm_shm; 323 1.102 ad if (shmmap_s1 == NULL) { 324 1.102 ad mutex_exit(&shm_lock); 325 1.38 christos return EINVAL; 326 1.102 ad } 327 1.38 christos 328 1.102 ad /* Find the map entry */ 329 1.102 ad SLIST_FOREACH(shmmap_se, &shmmap_s1->entries, next) 330 1.102 ad if (shmmap_se->va == (vaddr_t)SCARG(uap, shmaddr)) 331 1.102 ad break; 332 1.102 ad if (shmmap_se == NULL) { 333 1.102 ad mutex_exit(&shm_lock); 334 1.70 drochner return EINVAL; 335 1.102 ad } 336 1.70 drochner 337 1.102 ad shmmap_s = shmmap_getprivate(p); 338 1.102 ad if (shmmap_s != shmmap_s1) { 339 1.102 ad /* Map has been copied, lookup entry in new map */ 340 1.102 ad SLIST_FOREACH(shmmap_se, &shmmap_s->entries, next) 341 1.102 ad if (shmmap_se->va == (vaddr_t)SCARG(uap, shmaddr)) 342 1.102 ad break; 343 1.102 ad if (shmmap_se == NULL) { 344 1.102 ad mutex_exit(&shm_lock); 345 1.102 ad return EINVAL; 346 1.102 ad } 347 1.70 drochner } 348 1.102 ad 349 1.102 ad SHMPRINTF(("shmdt: vm %p: remove %d @%lx\n", 350 1.102 ad p->p_vmspace, shmmap_se->shmid, shmmap_se->va)); 351 1.102 ad 352 1.102 ad /* Delete the entry from shm map */ 353 1.102 ad uobj = shm_delete_mapping(shmmap_s, shmmap_se); 354 1.140 chs shmseg = &shmsegs[IPCID_TO_IX(shmmap_se->shmid)]; 355 1.102 ad size = (shmseg->shm_segsz + PGOFSET) & ~PGOFSET; 356 1.102 ad mutex_exit(&shm_lock); 357 1.102 ad 358 1.102 ad uvm_deallocate(&p->p_vmspace->vm_map, shmmap_se->va, size); 359 1.119 rmind if (uobj != NULL) { 360 1.102 ad uao_detach(uobj); 361 1.119 rmind } 362 1.119 rmind kmem_free(shmmap_se, sizeof(struct shmmap_entry)); 363 1.102 ad 364 1.70 drochner return 0; 365 1.11 hpeyerl } 366 1.11 hpeyerl 367 1.102 ad /* 368 1.102 ad * Map shared memory. 369 1.102 ad */ 370 1.12 mycroft int 371 1.101 dsl sys_shmat(struct lwp *l, const struct sys_shmat_args *uap, register_t *retval) 372 1.32 thorpej { 373 1.101 dsl /* { 374 1.26 cgd syscallarg(int) shmid; 375 1.44 kleink syscallarg(const void *) shmaddr; 376 1.35 christos syscallarg(int) shmflg; 377 1.101 dsl } */ 378 1.94 rmind int error, flags = 0; 379 1.65 thorpej struct proc *p = l->l_proc; 380 1.89 ad kauth_cred_t cred = l->l_cred; 381 1.11 hpeyerl struct shmid_ds *shmseg; 382 1.69 drochner struct shmmap_state *shmmap_s; 383 1.102 ad struct shmmap_entry *shmmap_se; 384 1.74 christos struct uvm_object *uobj; 385 1.102 ad struct vmspace *vm; 386 1.47 eeh vaddr_t attach_va; 387 1.11 hpeyerl vm_prot_t prot; 388 1.47 eeh vsize_t size; 389 1.102 ad 390 1.102 ad /* Allocate a new map entry and set it */ 391 1.119 rmind shmmap_se = kmem_alloc(sizeof(struct shmmap_entry), KM_SLEEP); 392 1.114 rmind shmmap_se->shmid = SCARG(uap, shmid); 393 1.102 ad 394 1.102 ad mutex_enter(&shm_lock); 395 1.102 ad /* In case of reallocation, we will wait for completion */ 396 1.102 ad while (__predict_false(shm_realloc_state)) 397 1.102 ad cv_wait(&shm_realloc_cv, &shm_lock); 398 1.11 hpeyerl 399 1.78 jdolecek shmseg = shm_find_segment_by_shmid(SCARG(uap, shmid)); 400 1.102 ad if (shmseg == NULL) { 401 1.102 ad error = EINVAL; 402 1.102 ad goto err; 403 1.102 ad } 404 1.35 christos error = ipcperm(cred, &shmseg->shm_perm, 405 1.102 ad (SCARG(uap, shmflg) & SHM_RDONLY) ? IPC_R : IPC_R|IPC_W); 406 1.35 christos if (error) 407 1.102 ad goto err; 408 1.69 drochner 409 1.102 ad vm = p->p_vmspace; 410 1.102 ad shmmap_s = (struct shmmap_state *)vm->vm_shm; 411 1.102 ad if (shmmap_s && shmmap_s->nitems >= shminfo.shmseg) { 412 1.102 ad error = EMFILE; 413 1.102 ad goto err; 414 1.102 ad } 415 1.69 drochner 416 1.53 ragge size = (shmseg->shm_segsz + PGOFSET) & ~PGOFSET; 417 1.12 mycroft prot = VM_PROT_READ; 418 1.78 jdolecek if ((SCARG(uap, shmflg) & SHM_RDONLY) == 0) 419 1.12 mycroft prot |= VM_PROT_WRITE; 420 1.78 jdolecek if (SCARG(uap, shmaddr)) { 421 1.94 rmind flags |= UVM_FLAG_FIXED; 422 1.78 jdolecek if (SCARG(uap, shmflg) & SHM_RND) 423 1.26 cgd attach_va = 424 1.78 jdolecek (vaddr_t)SCARG(uap, shmaddr) & ~(SHMLBA-1); 425 1.78 jdolecek else if (((vaddr_t)SCARG(uap, shmaddr) & (SHMLBA-1)) == 0) 426 1.78 jdolecek attach_va = (vaddr_t)SCARG(uap, shmaddr); 427 1.102 ad else { 428 1.102 ad error = EINVAL; 429 1.102 ad goto err; 430 1.102 ad } 431 1.12 mycroft } else { 432 1.108 rmind /* This is just a hint to uvm_map() about where to put it. */ 433 1.83 fvdl attach_va = p->p_emul->e_vm_default_addr(p, 434 1.131 martin (vaddr_t)vm->vm_daddr, size, 435 1.131 martin p->p_vmspace->vm_map.flags & VM_MAP_TOPDOWN); 436 1.11 hpeyerl } 437 1.102 ad 438 1.102 ad /* 439 1.102 ad * Create a map entry, add it to the list and increase the counters. 440 1.102 ad */ 441 1.102 ad shmmap_s = shmmap_getprivate(p); 442 1.102 ad SLIST_INSERT_HEAD(&shmmap_s->entries, shmmap_se, next); 443 1.102 ad shmmap_s->nitems++; 444 1.102 ad shmseg->shm_lpid = p->p_pid; 445 1.102 ad shmseg->shm_nattch++; 446 1.102 ad 447 1.102 ad /* 448 1.141 chs * Map the segment into the address space. 449 1.102 ad */ 450 1.80 jdolecek uobj = shmseg->_shm_internal; 451 1.102 ad uao_reference(uobj); 452 1.102 ad error = uvm_map(&vm->vm_map, &attach_va, size, uobj, 0, 0, 453 1.94 rmind UVM_MAPFLAG(prot, prot, UVM_INH_SHARE, UVM_ADV_RANDOM, flags)); 454 1.92 christos if (error) 455 1.102 ad goto err_detach; 456 1.92 christos 457 1.102 ad /* Set the new address, and update the time */ 458 1.69 drochner shmmap_se->va = attach_va; 459 1.88 kardel shmseg->shm_atime = time_second; 460 1.102 ad retval[0] = attach_va; 461 1.102 ad SHMPRINTF(("shmat: vm %p: add %d @%lx\n", 462 1.102 ad p->p_vmspace, shmmap_se->shmid, attach_va)); 463 1.102 ad err: 464 1.102 ad mutex_exit(&shm_lock); 465 1.119 rmind if (error && shmmap_se) { 466 1.119 rmind kmem_free(shmmap_se, sizeof(struct shmmap_entry)); 467 1.119 rmind } 468 1.102 ad return error; 469 1.78 jdolecek 470 1.102 ad err_detach: 471 1.102 ad uao_detach(uobj); 472 1.102 ad uobj = shm_delete_mapping(shmmap_s, shmmap_se); 473 1.102 ad mutex_exit(&shm_lock); 474 1.119 rmind if (uobj != NULL) { 475 1.102 ad uao_detach(uobj); 476 1.119 rmind } 477 1.119 rmind kmem_free(shmmap_se, sizeof(struct shmmap_entry)); 478 1.92 christos return error; 479 1.11 hpeyerl } 480 1.11 hpeyerl 481 1.102 ad /* 482 1.102 ad * Shared memory control operations. 483 1.102 ad */ 484 1.12 mycroft int 485 1.115 christos sys___shmctl50(struct lwp *l, const struct sys___shmctl50_args *uap, 486 1.115 christos register_t *retval) 487 1.32 thorpej { 488 1.101 dsl /* { 489 1.26 cgd syscallarg(int) shmid; 490 1.26 cgd syscallarg(int) cmd; 491 1.26 cgd syscallarg(struct shmid_ds *) buf; 492 1.101 dsl } */ 493 1.52 thorpej struct shmid_ds shmbuf; 494 1.52 thorpej int cmd, error; 495 1.52 thorpej 496 1.52 thorpej cmd = SCARG(uap, cmd); 497 1.52 thorpej if (cmd == IPC_SET) { 498 1.52 thorpej error = copyin(SCARG(uap, buf), &shmbuf, sizeof(shmbuf)); 499 1.52 thorpej if (error) 500 1.102 ad return error; 501 1.52 thorpej } 502 1.52 thorpej 503 1.89 ad error = shmctl1(l, SCARG(uap, shmid), cmd, 504 1.52 thorpej (cmd == IPC_SET || cmd == IPC_STAT) ? &shmbuf : NULL); 505 1.52 thorpej 506 1.52 thorpej if (error == 0 && cmd == IPC_STAT) 507 1.52 thorpej error = copyout(&shmbuf, SCARG(uap, buf), sizeof(shmbuf)); 508 1.52 thorpej 509 1.102 ad return error; 510 1.52 thorpej } 511 1.52 thorpej 512 1.52 thorpej int 513 1.89 ad shmctl1(struct lwp *l, int shmid, int cmd, struct shmid_ds *shmbuf) 514 1.52 thorpej { 515 1.102 ad struct uvm_object *uobj = NULL; 516 1.89 ad kauth_cred_t cred = l->l_cred; 517 1.11 hpeyerl struct shmid_ds *shmseg; 518 1.52 thorpej int error = 0; 519 1.102 ad 520 1.102 ad mutex_enter(&shm_lock); 521 1.102 ad /* In case of reallocation, we will wait for completion */ 522 1.102 ad while (__predict_false(shm_realloc_state)) 523 1.102 ad cv_wait(&shm_realloc_cv, &shm_lock); 524 1.11 hpeyerl 525 1.78 jdolecek shmseg = shm_find_segment_by_shmid(shmid); 526 1.102 ad if (shmseg == NULL) { 527 1.102 ad mutex_exit(&shm_lock); 528 1.11 hpeyerl return EINVAL; 529 1.102 ad } 530 1.92 christos 531 1.52 thorpej switch (cmd) { 532 1.11 hpeyerl case IPC_STAT: 533 1.35 christos if ((error = ipcperm(cred, &shmseg->shm_perm, IPC_R)) != 0) 534 1.102 ad break; 535 1.133 mrg memset(shmbuf, 0, sizeof *shmbuf); 536 1.133 mrg shmbuf->shm_perm = shmseg->shm_perm; 537 1.133 mrg shmbuf->shm_perm.mode &= 0777; 538 1.133 mrg shmbuf->shm_segsz = shmseg->shm_segsz; 539 1.133 mrg shmbuf->shm_lpid = shmseg->shm_lpid; 540 1.133 mrg shmbuf->shm_cpid = shmseg->shm_cpid; 541 1.133 mrg shmbuf->shm_nattch = shmseg->shm_nattch; 542 1.133 mrg shmbuf->shm_atime = shmseg->shm_atime; 543 1.133 mrg shmbuf->shm_dtime = shmseg->shm_dtime; 544 1.133 mrg shmbuf->shm_ctime = shmseg->shm_ctime; 545 1.11 hpeyerl break; 546 1.11 hpeyerl case IPC_SET: 547 1.35 christos if ((error = ipcperm(cred, &shmseg->shm_perm, IPC_M)) != 0) 548 1.102 ad break; 549 1.52 thorpej shmseg->shm_perm.uid = shmbuf->shm_perm.uid; 550 1.52 thorpej shmseg->shm_perm.gid = shmbuf->shm_perm.gid; 551 1.12 mycroft shmseg->shm_perm.mode = 552 1.12 mycroft (shmseg->shm_perm.mode & ~ACCESSPERMS) | 553 1.52 thorpej (shmbuf->shm_perm.mode & ACCESSPERMS); 554 1.88 kardel shmseg->shm_ctime = time_second; 555 1.11 hpeyerl break; 556 1.11 hpeyerl case IPC_RMID: 557 1.35 christos if ((error = ipcperm(cred, &shmseg->shm_perm, IPC_M)) != 0) 558 1.102 ad break; 559 1.52 thorpej shmseg->shm_perm._key = IPC_PRIVATE; 560 1.12 mycroft shmseg->shm_perm.mode |= SHMSEG_REMOVED; 561 1.12 mycroft if (shmseg->shm_nattch <= 0) { 562 1.102 ad uobj = shmseg->_shm_internal; 563 1.102 ad shm_free_segment(IPCID_TO_IX(shmid)); 564 1.11 hpeyerl } 565 1.11 hpeyerl break; 566 1.11 hpeyerl case SHM_LOCK: 567 1.11 hpeyerl case SHM_UNLOCK: 568 1.123 elad if ((error = kauth_authorize_system(cred, 569 1.123 elad KAUTH_SYSTEM_SYSVIPC, 570 1.123 elad (cmd == SHM_LOCK) ? KAUTH_REQ_SYSTEM_SYSVIPC_SHM_LOCK : 571 1.123 elad KAUTH_REQ_SYSTEM_SYSVIPC_SHM_UNLOCK, NULL, NULL, NULL)) != 0) 572 1.102 ad break; 573 1.135 chs error = shm_memlock(shmseg, shmid, cmd); 574 1.92 christos break; 575 1.11 hpeyerl default: 576 1.102 ad error = EINVAL; 577 1.11 hpeyerl } 578 1.102 ad 579 1.102 ad mutex_exit(&shm_lock); 580 1.102 ad if (uobj != NULL) 581 1.102 ad uao_detach(uobj); 582 1.102 ad return error; 583 1.11 hpeyerl } 584 1.11 hpeyerl 585 1.102 ad /* 586 1.102 ad * Try to take an already existing segment. 587 1.102 ad * => must be called with shm_lock held; 588 1.102 ad * => called from one place, thus, inline; 589 1.102 ad */ 590 1.102 ad static inline int 591 1.101 dsl shmget_existing(struct lwp *l, const struct sys_shmget_args *uap, int mode, 592 1.102 ad register_t *retval) 593 1.11 hpeyerl { 594 1.12 mycroft struct shmid_ds *shmseg; 595 1.89 ad kauth_cred_t cred = l->l_cred; 596 1.102 ad int segnum, error; 597 1.102 ad again: 598 1.102 ad KASSERT(mutex_owned(&shm_lock)); 599 1.102 ad 600 1.102 ad /* Find segment by key */ 601 1.102 ad for (segnum = 0; segnum < shminfo.shmmni; segnum++) 602 1.102 ad if ((shmsegs[segnum].shm_perm.mode & SHMSEG_ALLOCATED) && 603 1.102 ad shmsegs[segnum].shm_perm._key == SCARG(uap, key)) 604 1.102 ad break; 605 1.102 ad if (segnum == shminfo.shmmni) { 606 1.102 ad /* Not found */ 607 1.102 ad return -1; 608 1.102 ad } 609 1.11 hpeyerl 610 1.11 hpeyerl shmseg = &shmsegs[segnum]; 611 1.16 mycroft if (shmseg->shm_perm.mode & SHMSEG_REMOVED) { 612 1.16 mycroft /* 613 1.16 mycroft * This segment is in the process of being allocated. Wait 614 1.16 mycroft * until it's done, and look the key up again (in case the 615 1.16 mycroft * allocation failed or it was freed). 616 1.16 mycroft */ 617 1.16 mycroft shmseg->shm_perm.mode |= SHMSEG_WANTED; 618 1.102 ad error = cv_wait_sig(&shm_cv[segnum], &shm_lock); 619 1.35 christos if (error) 620 1.16 mycroft return error; 621 1.102 ad goto again; 622 1.16 mycroft } 623 1.102 ad 624 1.113 erh /* 625 1.113 erh * First check the flags, to generate a useful error when a 626 1.113 erh * segment already exists. 627 1.113 erh */ 628 1.113 erh if ((SCARG(uap, shmflg) & (IPC_CREAT | IPC_EXCL)) == 629 1.113 erh (IPC_CREAT | IPC_EXCL)) 630 1.113 erh return EEXIST; 631 1.113 erh 632 1.113 erh /* Check the permission and segment size. */ 633 1.102 ad error = ipcperm(cred, &shmseg->shm_perm, mode); 634 1.102 ad if (error) 635 1.11 hpeyerl return error; 636 1.26 cgd if (SCARG(uap, size) && SCARG(uap, size) > shmseg->shm_segsz) 637 1.11 hpeyerl return EINVAL; 638 1.102 ad 639 1.11 hpeyerl *retval = IXSEQ_TO_IPCID(segnum, shmseg->shm_perm); 640 1.11 hpeyerl return 0; 641 1.11 hpeyerl } 642 1.11 hpeyerl 643 1.102 ad int 644 1.102 ad sys_shmget(struct lwp *l, const struct sys_shmget_args *uap, register_t *retval) 645 1.14 mycroft { 646 1.102 ad /* { 647 1.102 ad syscallarg(key_t) key; 648 1.104 rmind syscallarg(size_t) size; 649 1.102 ad syscallarg(int) shmflg; 650 1.102 ad } */ 651 1.102 ad struct shmid_ds *shmseg; 652 1.89 ad kauth_cred_t cred = l->l_cred; 653 1.102 ad key_t key = SCARG(uap, key); 654 1.104 rmind size_t size; 655 1.104 rmind int error, mode, segnum; 656 1.102 ad bool lockmem; 657 1.102 ad 658 1.102 ad mode = SCARG(uap, shmflg) & ACCESSPERMS; 659 1.102 ad if (SCARG(uap, shmflg) & _SHM_RMLINGER) 660 1.102 ad mode |= SHMSEG_RMLINGER; 661 1.102 ad 662 1.118 jakllsch SHMPRINTF(("shmget: key 0x%lx size 0x%zx shmflg 0x%x mode 0x%x\n", 663 1.102 ad SCARG(uap, key), SCARG(uap, size), SCARG(uap, shmflg), mode)); 664 1.102 ad 665 1.102 ad mutex_enter(&shm_lock); 666 1.102 ad /* In case of reallocation, we will wait for completion */ 667 1.102 ad while (__predict_false(shm_realloc_state)) 668 1.102 ad cv_wait(&shm_realloc_cv, &shm_lock); 669 1.102 ad 670 1.102 ad if (key != IPC_PRIVATE) { 671 1.102 ad error = shmget_existing(l, uap, mode, retval); 672 1.102 ad if (error != -1) { 673 1.102 ad mutex_exit(&shm_lock); 674 1.102 ad return error; 675 1.102 ad } 676 1.102 ad if ((SCARG(uap, shmflg) & IPC_CREAT) == 0) { 677 1.102 ad mutex_exit(&shm_lock); 678 1.102 ad return ENOENT; 679 1.102 ad } 680 1.102 ad } 681 1.102 ad error = 0; 682 1.76 junyoung 683 1.102 ad /* 684 1.102 ad * Check the for the limits. 685 1.102 ad */ 686 1.102 ad size = SCARG(uap, size); 687 1.102 ad if (size < shminfo.shmmin || size > shminfo.shmmax) { 688 1.102 ad mutex_exit(&shm_lock); 689 1.14 mycroft return EINVAL; 690 1.102 ad } 691 1.102 ad if (shm_nused >= shminfo.shmmni) { 692 1.102 ad mutex_exit(&shm_lock); 693 1.14 mycroft return ENOSPC; 694 1.102 ad } 695 1.135 chs size = round_page(size); 696 1.102 ad if (shm_committed + btoc(size) > shminfo.shmall) { 697 1.102 ad mutex_exit(&shm_lock); 698 1.14 mycroft return ENOMEM; 699 1.102 ad } 700 1.102 ad 701 1.102 ad /* Find the first available segment */ 702 1.14 mycroft if (shm_last_free < 0) { 703 1.102 ad for (segnum = 0; segnum < shminfo.shmmni; segnum++) 704 1.102 ad if (shmsegs[segnum].shm_perm.mode & SHMSEG_FREE) 705 1.14 mycroft break; 706 1.102 ad KASSERT(segnum < shminfo.shmmni); 707 1.102 ad } else { 708 1.14 mycroft segnum = shm_last_free; 709 1.14 mycroft shm_last_free = -1; 710 1.14 mycroft } 711 1.102 ad 712 1.102 ad /* 713 1.102 ad * Initialize the segment. 714 1.102 ad * We will drop the lock while allocating the memory, thus mark the 715 1.102 ad * segment present, but removed, that no other thread could take it. 716 1.102 ad * Also, disable reallocation, while lock is dropped. 717 1.102 ad */ 718 1.14 mycroft shmseg = &shmsegs[segnum]; 719 1.102 ad shmseg->shm_perm.mode = SHMSEG_ALLOCATED | SHMSEG_REMOVED; 720 1.102 ad shm_committed += btoc(size); 721 1.102 ad shm_nused++; 722 1.102 ad lockmem = shm_use_phys; 723 1.102 ad shm_realloc_disable++; 724 1.102 ad mutex_exit(&shm_lock); 725 1.102 ad 726 1.102 ad /* Allocate the memory object and lock it if needed */ 727 1.102 ad shmseg->_shm_internal = uao_create(size, 0); 728 1.102 ad if (lockmem) { 729 1.102 ad /* Wire the pages and tag it */ 730 1.122 christos error = uvm_obj_wirepages(shmseg->_shm_internal, 0, size, NULL); 731 1.102 ad if (error) { 732 1.108 rmind uao_detach(shmseg->_shm_internal); 733 1.102 ad mutex_enter(&shm_lock); 734 1.102 ad shm_free_segment(segnum); 735 1.102 ad shm_realloc_disable--; 736 1.102 ad mutex_exit(&shm_lock); 737 1.102 ad return error; 738 1.102 ad } 739 1.102 ad } 740 1.102 ad 741 1.14 mycroft /* 742 1.102 ad * Please note, while segment is marked, there are no need to hold the 743 1.102 ad * lock, while setting it (except shm_perm.mode). 744 1.14 mycroft */ 745 1.52 thorpej shmseg->shm_perm._key = SCARG(uap, key); 746 1.52 thorpej shmseg->shm_perm._seq = (shmseg->shm_perm._seq + 1) & 0x7fff; 747 1.102 ad *retval = IXSEQ_TO_IPCID(segnum, shmseg->shm_perm); 748 1.42 mrg 749 1.87 elad shmseg->shm_perm.cuid = shmseg->shm_perm.uid = kauth_cred_geteuid(cred); 750 1.87 elad shmseg->shm_perm.cgid = shmseg->shm_perm.gid = kauth_cred_getegid(cred); 751 1.26 cgd shmseg->shm_segsz = SCARG(uap, size); 752 1.89 ad shmseg->shm_cpid = l->l_proc->p_pid; 753 1.14 mycroft shmseg->shm_lpid = shmseg->shm_nattch = 0; 754 1.14 mycroft shmseg->shm_atime = shmseg->shm_dtime = 0; 755 1.88 kardel shmseg->shm_ctime = time_second; 756 1.40 drochner 757 1.102 ad /* 758 1.102 ad * Segment is initialized. 759 1.102 ad * Enter the lock, mark as allocated, and notify waiters (if any). 760 1.102 ad * Also, unmark the state of reallocation. 761 1.102 ad */ 762 1.102 ad mutex_enter(&shm_lock); 763 1.102 ad shmseg->shm_perm.mode = (shmseg->shm_perm.mode & SHMSEG_WANTED) | 764 1.102 ad (mode & (ACCESSPERMS | SHMSEG_RMLINGER)) | 765 1.102 ad SHMSEG_ALLOCATED | (lockmem ? SHMSEG_WIRED : 0); 766 1.16 mycroft if (shmseg->shm_perm.mode & SHMSEG_WANTED) { 767 1.16 mycroft shmseg->shm_perm.mode &= ~SHMSEG_WANTED; 768 1.102 ad cv_broadcast(&shm_cv[segnum]); 769 1.92 christos } 770 1.102 ad shm_realloc_disable--; 771 1.102 ad cv_broadcast(&shm_realloc_cv); 772 1.102 ad mutex_exit(&shm_lock); 773 1.92 christos 774 1.40 drochner return error; 775 1.14 mycroft } 776 1.14 mycroft 777 1.12 mycroft void 778 1.86 thorpej shmfork(struct vmspace *vm1, struct vmspace *vm2) 779 1.11 hpeyerl { 780 1.11 hpeyerl struct shmmap_state *shmmap_s; 781 1.69 drochner struct shmmap_entry *shmmap_se; 782 1.69 drochner 783 1.102 ad SHMPRINTF(("shmfork %p->%p\n", vm1, vm2)); 784 1.102 ad mutex_enter(&shm_lock); 785 1.69 drochner vm2->vm_shm = vm1->vm_shm; 786 1.102 ad if (vm1->vm_shm) { 787 1.102 ad shmmap_s = (struct shmmap_state *)vm1->vm_shm; 788 1.102 ad SLIST_FOREACH(shmmap_se, &shmmap_s->entries, next) 789 1.102 ad shmsegs[IPCID_TO_IX(shmmap_se->shmid)].shm_nattch++; 790 1.102 ad shmmap_s->nrefs++; 791 1.102 ad } 792 1.102 ad mutex_exit(&shm_lock); 793 1.11 hpeyerl } 794 1.11 hpeyerl 795 1.12 mycroft void 796 1.86 thorpej shmexit(struct vmspace *vm) 797 1.11 hpeyerl { 798 1.12 mycroft struct shmmap_state *shmmap_s; 799 1.69 drochner struct shmmap_entry *shmmap_se; 800 1.102 ad 801 1.102 ad mutex_enter(&shm_lock); 802 1.41 thorpej shmmap_s = (struct shmmap_state *)vm->vm_shm; 803 1.102 ad if (shmmap_s == NULL) { 804 1.102 ad mutex_exit(&shm_lock); 805 1.38 christos return; 806 1.102 ad } 807 1.41 thorpej vm->vm_shm = NULL; 808 1.69 drochner 809 1.69 drochner if (--shmmap_s->nrefs > 0) { 810 1.102 ad SHMPRINTF(("shmexit: vm %p drop ref (%d entries), refs = %d\n", 811 1.102 ad vm, shmmap_s->nitems, shmmap_s->nrefs)); 812 1.117 rmind SLIST_FOREACH(shmmap_se, &shmmap_s->entries, next) { 813 1.69 drochner shmsegs[IPCID_TO_IX(shmmap_se->shmid)].shm_nattch--; 814 1.117 rmind } 815 1.102 ad mutex_exit(&shm_lock); 816 1.102 ad return; 817 1.102 ad } 818 1.102 ad 819 1.117 rmind SHMPRINTF(("shmexit: vm %p cleanup (%d entries)\n", vm, shmmap_s->nitems)); 820 1.117 rmind if (shmmap_s->nitems == 0) { 821 1.117 rmind mutex_exit(&shm_lock); 822 1.102 ad kmem_free(shmmap_s, sizeof(struct shmmap_state)); 823 1.69 drochner return; 824 1.69 drochner } 825 1.69 drochner 826 1.117 rmind /* 827 1.117 rmind * Delete the entry from shm map. 828 1.117 rmind */ 829 1.117 rmind for (;;) { 830 1.102 ad struct shmid_ds *shmseg; 831 1.117 rmind struct uvm_object *uobj; 832 1.117 rmind size_t sz; 833 1.102 ad 834 1.69 drochner shmmap_se = SLIST_FIRST(&shmmap_s->entries); 835 1.117 rmind KASSERT(shmmap_se != NULL); 836 1.117 rmind 837 1.102 ad shmseg = &shmsegs[IPCID_TO_IX(shmmap_se->shmid)]; 838 1.117 rmind sz = (shmseg->shm_segsz + PGOFSET) & ~PGOFSET; 839 1.117 rmind /* shm_delete_mapping() removes from the list. */ 840 1.117 rmind uobj = shm_delete_mapping(shmmap_s, shmmap_se); 841 1.117 rmind mutex_exit(&shm_lock); 842 1.102 ad 843 1.117 rmind uvm_deallocate(&vm->vm_map, shmmap_se->va, sz); 844 1.117 rmind if (uobj != NULL) { 845 1.117 rmind uao_detach(uobj); 846 1.117 rmind } 847 1.119 rmind kmem_free(shmmap_se, sizeof(struct shmmap_entry)); 848 1.117 rmind 849 1.117 rmind if (SLIST_EMPTY(&shmmap_s->entries)) { 850 1.117 rmind break; 851 1.117 rmind } 852 1.117 rmind mutex_enter(&shm_lock); 853 1.117 rmind KASSERT(!SLIST_EMPTY(&shmmap_s->entries)); 854 1.102 ad } 855 1.102 ad kmem_free(shmmap_s, sizeof(struct shmmap_state)); 856 1.11 hpeyerl } 857 1.11 hpeyerl 858 1.92 christos static int 859 1.92 christos shmrealloc(int newshmni) 860 1.92 christos { 861 1.92 christos vaddr_t v; 862 1.102 ad struct shmid_ds *oldshmsegs, *newshmsegs; 863 1.110 ad kcondvar_t *newshm_cv, *oldshm_cv; 864 1.104 rmind size_t sz; 865 1.110 ad int i, lsegid, oldshmni; 866 1.92 christos 867 1.92 christos if (newshmni < 1) 868 1.92 christos return EINVAL; 869 1.92 christos 870 1.92 christos /* Allocate new memory area */ 871 1.102 ad sz = ALIGN(newshmni * sizeof(struct shmid_ds)) + 872 1.104 rmind ALIGN(newshmni * sizeof(kcondvar_t)); 873 1.121 uebayasi sz = round_page(sz); 874 1.121 uebayasi v = uvm_km_alloc(kernel_map, sz, 0, UVM_KMF_WIRED|UVM_KMF_ZERO); 875 1.92 christos if (v == 0) 876 1.92 christos return ENOMEM; 877 1.92 christos 878 1.102 ad mutex_enter(&shm_lock); 879 1.102 ad while (shm_realloc_state || shm_realloc_disable) 880 1.102 ad cv_wait(&shm_realloc_cv, &shm_lock); 881 1.102 ad 882 1.102 ad /* 883 1.102 ad * Get the number of last segment. Fail we are trying to 884 1.102 ad * reallocate less memory than we use. 885 1.104 rmind */ 886 1.102 ad lsegid = 0; 887 1.102 ad for (i = 0; i < shminfo.shmmni; i++) 888 1.102 ad if ((shmsegs[i].shm_perm.mode & SHMSEG_FREE) == 0) 889 1.102 ad lsegid = i; 890 1.102 ad if (lsegid >= newshmni) { 891 1.102 ad mutex_exit(&shm_lock); 892 1.102 ad uvm_km_free(kernel_map, v, sz, UVM_KMF_WIRED); 893 1.102 ad return EBUSY; 894 1.102 ad } 895 1.102 ad shm_realloc_state = true; 896 1.102 ad 897 1.92 christos newshmsegs = (void *)v; 898 1.111 rmind newshm_cv = (void *)((uintptr_t)newshmsegs + 899 1.111 rmind ALIGN(newshmni * sizeof(struct shmid_ds))); 900 1.92 christos 901 1.92 christos /* Copy all memory to the new area */ 902 1.125 njoly for (i = 0; i < shm_nused; i++) { 903 1.125 njoly cv_init(&newshm_cv[i], "shmwait"); 904 1.92 christos (void)memcpy(&newshmsegs[i], &shmsegs[i], 905 1.92 christos sizeof(newshmsegs[0])); 906 1.125 njoly } 907 1.92 christos 908 1.92 christos /* Mark as free all new segments, if there is any */ 909 1.92 christos for (; i < newshmni; i++) { 910 1.102 ad cv_init(&newshm_cv[i], "shmwait"); 911 1.92 christos newshmsegs[i].shm_perm.mode = SHMSEG_FREE; 912 1.92 christos newshmsegs[i].shm_perm._seq = 0; 913 1.92 christos } 914 1.92 christos 915 1.102 ad oldshmsegs = shmsegs; 916 1.110 ad oldshmni = shminfo.shmmni; 917 1.102 ad shminfo.shmmni = newshmni; 918 1.92 christos shmsegs = newshmsegs; 919 1.102 ad shm_cv = newshm_cv; 920 1.102 ad 921 1.102 ad /* Reallocation completed - notify all waiters, if any */ 922 1.102 ad shm_realloc_state = false; 923 1.102 ad cv_broadcast(&shm_realloc_cv); 924 1.102 ad mutex_exit(&shm_lock); 925 1.92 christos 926 1.110 ad /* Release now unused resources. */ 927 1.111 rmind oldshm_cv = (void *)((uintptr_t)oldshmsegs + 928 1.111 rmind ALIGN(oldshmni * sizeof(struct shmid_ds))); 929 1.110 ad for (i = 0; i < oldshmni; i++) 930 1.110 ad cv_destroy(&oldshm_cv[i]); 931 1.110 ad 932 1.110 ad sz = ALIGN(oldshmni * sizeof(struct shmid_ds)) + 933 1.110 ad ALIGN(oldshmni * sizeof(kcondvar_t)); 934 1.121 uebayasi sz = round_page(sz); 935 1.102 ad uvm_km_free(kernel_map, (vaddr_t)oldshmsegs, sz, UVM_KMF_WIRED); 936 1.110 ad 937 1.92 christos return 0; 938 1.92 christos } 939 1.92 christos 940 1.134 pgoyette int 941 1.137 pgoyette shminit(void) 942 1.11 hpeyerl { 943 1.71 jdolecek vaddr_t v; 944 1.104 rmind size_t sz; 945 1.104 rmind int i; 946 1.71 jdolecek 947 1.96 ad mutex_init(&shm_lock, MUTEX_DEFAULT, IPL_NONE); 948 1.102 ad cv_init(&shm_realloc_cv, "shmrealc"); 949 1.102 ad 950 1.102 ad /* Allocate the wired memory for our structures */ 951 1.102 ad sz = ALIGN(shminfo.shmmni * sizeof(struct shmid_ds)) + 952 1.102 ad ALIGN(shminfo.shmmni * sizeof(kcondvar_t)); 953 1.121 uebayasi sz = round_page(sz); 954 1.121 uebayasi v = uvm_km_alloc(kernel_map, sz, 0, UVM_KMF_WIRED|UVM_KMF_ZERO); 955 1.134 pgoyette if (v == 0) { 956 1.134 pgoyette printf("sysv_shm: cannot allocate memory"); 957 1.134 pgoyette return ENOMEM; 958 1.134 pgoyette } 959 1.71 jdolecek shmsegs = (void *)v; 960 1.111 rmind shm_cv = (void *)((uintptr_t)shmsegs + 961 1.111 rmind ALIGN(shminfo.shmmni * sizeof(struct shmid_ds))); 962 1.24 deraadt 963 1.116 joerg if (shminfo.shmmax == 0) 964 1.142 mlelstv shminfo.shmall = uimax(physmem / 4, 1024); 965 1.116 joerg else 966 1.142 mlelstv shminfo.shmall = shminfo.shmmax / PAGE_SIZE; 967 1.142 mlelstv shminfo.shmmax = (uint64_t)shminfo.shmall * PAGE_SIZE; 968 1.11 hpeyerl 969 1.11 hpeyerl for (i = 0; i < shminfo.shmmni; i++) { 970 1.102 ad cv_init(&shm_cv[i], "shmwait"); 971 1.11 hpeyerl shmsegs[i].shm_perm.mode = SHMSEG_FREE; 972 1.52 thorpej shmsegs[i].shm_perm._seq = 0; 973 1.11 hpeyerl } 974 1.11 hpeyerl shm_last_free = 0; 975 1.11 hpeyerl shm_nused = 0; 976 1.11 hpeyerl shm_committed = 0; 977 1.102 ad shm_realloc_disable = 0; 978 1.102 ad shm_realloc_state = false; 979 1.123 elad 980 1.127 pgoyette kern_has_sysvshm = 1; 981 1.127 pgoyette 982 1.129 pgoyette /* Load the callback function pointers for the uvm subsystem */ 983 1.129 pgoyette uvm_shmexit = shmexit; 984 1.129 pgoyette uvm_shmfork = shmfork; 985 1.129 pgoyette 986 1.134 pgoyette return 0; 987 1.11 hpeyerl } 988 1.92 christos 989 1.128 pgoyette int 990 1.128 pgoyette shmfini(void) 991 1.128 pgoyette { 992 1.128 pgoyette size_t sz; 993 1.128 pgoyette int i; 994 1.128 pgoyette vaddr_t v = (vaddr_t)shmsegs; 995 1.128 pgoyette 996 1.128 pgoyette mutex_enter(&shm_lock); 997 1.128 pgoyette if (shm_nused) { 998 1.128 pgoyette mutex_exit(&shm_lock); 999 1.128 pgoyette return 1; 1000 1.128 pgoyette } 1001 1.128 pgoyette 1002 1.129 pgoyette /* Clear the callback function pointers for the uvm subsystem */ 1003 1.129 pgoyette uvm_shmexit = NULL; 1004 1.129 pgoyette uvm_shmfork = NULL; 1005 1.129 pgoyette 1006 1.128 pgoyette /* Destroy all condvars */ 1007 1.128 pgoyette for (i = 0; i < shminfo.shmmni; i++) 1008 1.128 pgoyette cv_destroy(&shm_cv[i]); 1009 1.128 pgoyette cv_destroy(&shm_realloc_cv); 1010 1.128 pgoyette 1011 1.128 pgoyette /* Free the allocated/wired memory */ 1012 1.128 pgoyette sz = ALIGN(shminfo.shmmni * sizeof(struct shmid_ds)) + 1013 1.128 pgoyette ALIGN(shminfo.shmmni * sizeof(kcondvar_t)); 1014 1.128 pgoyette sz = round_page(sz); 1015 1.128 pgoyette uvm_km_free(kernel_map, v, sz, UVM_KMF_WIRED); 1016 1.128 pgoyette 1017 1.128 pgoyette /* Release and destroy our mutex */ 1018 1.128 pgoyette mutex_exit(&shm_lock); 1019 1.128 pgoyette mutex_destroy(&shm_lock); 1020 1.128 pgoyette 1021 1.128 pgoyette kern_has_sysvshm = 0; 1022 1.128 pgoyette 1023 1.128 pgoyette return 0; 1024 1.128 pgoyette } 1025 1.128 pgoyette 1026 1.92 christos static int 1027 1.92 christos sysctl_ipc_shmmni(SYSCTLFN_ARGS) 1028 1.92 christos { 1029 1.92 christos int newsize, error; 1030 1.92 christos struct sysctlnode node; 1031 1.92 christos node = *rnode; 1032 1.92 christos node.sysctl_data = &newsize; 1033 1.92 christos 1034 1.92 christos newsize = shminfo.shmmni; 1035 1.92 christos error = sysctl_lookup(SYSCTLFN_CALL(&node)); 1036 1.92 christos if (error || newp == NULL) 1037 1.92 christos return error; 1038 1.92 christos 1039 1.103 ad sysctl_unlock(); 1040 1.103 ad error = shmrealloc(newsize); 1041 1.103 ad sysctl_relock(); 1042 1.103 ad return error; 1043 1.92 christos } 1044 1.92 christos 1045 1.92 christos static int 1046 1.92 christos sysctl_ipc_shmmaxpgs(SYSCTLFN_ARGS) 1047 1.92 christos { 1048 1.112 rmind uint32_t newsize; 1049 1.112 rmind int error; 1050 1.92 christos struct sysctlnode node; 1051 1.92 christos node = *rnode; 1052 1.92 christos node.sysctl_data = &newsize; 1053 1.102 ad 1054 1.92 christos newsize = shminfo.shmall; 1055 1.92 christos error = sysctl_lookup(SYSCTLFN_CALL(&node)); 1056 1.92 christos if (error || newp == NULL) 1057 1.92 christos return error; 1058 1.92 christos 1059 1.92 christos if (newsize < 1) 1060 1.92 christos return EINVAL; 1061 1.92 christos 1062 1.92 christos shminfo.shmall = newsize; 1063 1.112 rmind shminfo.shmmax = (uint64_t)shminfo.shmall * PAGE_SIZE; 1064 1.112 rmind 1065 1.112 rmind return 0; 1066 1.112 rmind } 1067 1.112 rmind 1068 1.112 rmind static int 1069 1.112 rmind sysctl_ipc_shmmax(SYSCTLFN_ARGS) 1070 1.112 rmind { 1071 1.112 rmind uint64_t newsize; 1072 1.112 rmind int error; 1073 1.112 rmind struct sysctlnode node; 1074 1.112 rmind node = *rnode; 1075 1.112 rmind node.sysctl_data = &newsize; 1076 1.112 rmind 1077 1.112 rmind newsize = shminfo.shmmax; 1078 1.112 rmind error = sysctl_lookup(SYSCTLFN_CALL(&node)); 1079 1.112 rmind if (error || newp == NULL) 1080 1.112 rmind return error; 1081 1.112 rmind 1082 1.112 rmind if (newsize < PAGE_SIZE) 1083 1.112 rmind return EINVAL; 1084 1.112 rmind 1085 1.112 rmind shminfo.shmmax = round_page(newsize); 1086 1.142 mlelstv shminfo.shmall = shminfo.shmmax / PAGE_SIZE; 1087 1.92 christos 1088 1.92 christos return 0; 1089 1.92 christos } 1090 1.92 christos 1091 1.92 christos SYSCTL_SETUP(sysctl_ipc_shm_setup, "sysctl kern.ipc subtree setup") 1092 1.92 christos { 1093 1.102 ad 1094 1.92 christos sysctl_createv(clog, 0, NULL, NULL, 1095 1.92 christos CTLFLAG_PERMANENT, 1096 1.92 christos CTLTYPE_NODE, "ipc", 1097 1.92 christos SYSCTL_DESCR("SysV IPC options"), 1098 1.92 christos NULL, 0, NULL, 0, 1099 1.92 christos CTL_KERN, KERN_SYSVIPC, CTL_EOL); 1100 1.92 christos sysctl_createv(clog, 0, NULL, NULL, 1101 1.112 rmind CTLFLAG_PERMANENT | CTLFLAG_READWRITE, 1102 1.112 rmind CTLTYPE_QUAD, "shmmax", 1103 1.92 christos SYSCTL_DESCR("Max shared memory segment size in bytes"), 1104 1.112 rmind sysctl_ipc_shmmax, 0, &shminfo.shmmax, 0, 1105 1.92 christos CTL_KERN, KERN_SYSVIPC, KERN_SYSVIPC_SHMMAX, CTL_EOL); 1106 1.92 christos sysctl_createv(clog, 0, NULL, NULL, 1107 1.92 christos CTLFLAG_PERMANENT | CTLFLAG_READWRITE, 1108 1.92 christos CTLTYPE_INT, "shmmni", 1109 1.92 christos SYSCTL_DESCR("Max number of shared memory identifiers"), 1110 1.92 christos sysctl_ipc_shmmni, 0, &shminfo.shmmni, 0, 1111 1.92 christos CTL_KERN, KERN_SYSVIPC, KERN_SYSVIPC_SHMMNI, CTL_EOL); 1112 1.92 christos sysctl_createv(clog, 0, NULL, NULL, 1113 1.92 christos CTLFLAG_PERMANENT | CTLFLAG_READWRITE, 1114 1.92 christos CTLTYPE_INT, "shmseg", 1115 1.92 christos SYSCTL_DESCR("Max shared memory segments per process"), 1116 1.92 christos NULL, 0, &shminfo.shmseg, 0, 1117 1.92 christos CTL_KERN, KERN_SYSVIPC, KERN_SYSVIPC_SHMSEG, CTL_EOL); 1118 1.92 christos sysctl_createv(clog, 0, NULL, NULL, 1119 1.92 christos CTLFLAG_PERMANENT | CTLFLAG_READWRITE, 1120 1.92 christos CTLTYPE_INT, "shmmaxpgs", 1121 1.92 christos SYSCTL_DESCR("Max amount of shared memory in pages"), 1122 1.92 christos sysctl_ipc_shmmaxpgs, 0, &shminfo.shmall, 0, 1123 1.92 christos CTL_KERN, KERN_SYSVIPC, KERN_SYSVIPC_SHMMAXPGS, CTL_EOL); 1124 1.92 christos sysctl_createv(clog, 0, NULL, NULL, 1125 1.92 christos CTLFLAG_PERMANENT | CTLFLAG_READWRITE, 1126 1.92 christos CTLTYPE_INT, "shm_use_phys", 1127 1.92 christos SYSCTL_DESCR("Enable/disable locking of shared memory in " 1128 1.92 christos "physical memory"), NULL, 0, &shm_use_phys, 0, 1129 1.92 christos CTL_KERN, KERN_SYSVIPC, KERN_SYSVIPC_SHMUSEPHYS, CTL_EOL); 1130 1.92 christos } 1131