1 // SPDX-License-Identifier: GPL-2.0-or-later 1 // SPDX-License-Identifier: GPL-2.0-or-later 2 /* Task credentials management - see Documenta 2 /* Task credentials management - see Documentation/security/credentials.rst 3 * 3 * 4 * Copyright (C) 2008 Red Hat, Inc. All Rights 4 * Copyright (C) 2008 Red Hat, Inc. All Rights Reserved. 5 * Written by David Howells (dhowells@redhat.c 5 * Written by David Howells (dhowells@redhat.com) 6 */ 6 */ 7 << 8 #define pr_fmt(fmt) "CRED: " fmt << 9 << 10 #include <linux/export.h> 7 #include <linux/export.h> 11 #include <linux/cred.h> 8 #include <linux/cred.h> 12 #include <linux/slab.h> 9 #include <linux/slab.h> 13 #include <linux/sched.h> 10 #include <linux/sched.h> 14 #include <linux/sched/coredump.h> 11 #include <linux/sched/coredump.h> 15 #include <linux/key.h> 12 #include <linux/key.h> 16 #include <linux/keyctl.h> 13 #include <linux/keyctl.h> 17 #include <linux/init_task.h> 14 #include <linux/init_task.h> 18 #include <linux/security.h> 15 #include <linux/security.h> 19 #include <linux/binfmts.h> 16 #include <linux/binfmts.h> 20 #include <linux/cn_proc.h> 17 #include <linux/cn_proc.h> 21 #include <linux/uidgid.h> 18 #include <linux/uidgid.h> 22 19 23 #if 0 20 #if 0 24 #define kdebug(FMT, ...) 21 #define kdebug(FMT, ...) \ 25 printk("[%-5.5s%5u] " FMT "\n", 22 printk("[%-5.5s%5u] " FMT "\n", \ 26 current->comm, current->pid, ## 23 current->comm, current->pid, ##__VA_ARGS__) 27 #else 24 #else 28 #define kdebug(FMT, ...) 25 #define kdebug(FMT, ...) \ 29 do { 26 do { \ 30 if (0) 27 if (0) \ 31 no_printk("[%-5.5s%5u] " FMT " 28 no_printk("[%-5.5s%5u] " FMT "\n", \ 32 current->comm, curre 29 current->comm, current->pid, ##__VA_ARGS__); \ 33 } while (0) 30 } while (0) 34 #endif 31 #endif 35 32 36 static struct kmem_cache *cred_jar; 33 static struct kmem_cache *cred_jar; 37 34 38 /* init to 2 - one for init_task, one to ensur 35 /* init to 2 - one for init_task, one to ensure it is never freed */ 39 static struct group_info init_groups = { .usag !! 36 struct group_info init_groups = { .usage = ATOMIC_INIT(2) }; 40 37 41 /* 38 /* 42 * The initial credentials for the initial tas 39 * The initial credentials for the initial task 43 */ 40 */ 44 struct cred init_cred = { 41 struct cred init_cred = { 45 .usage = ATOMIC_INIT( 42 .usage = ATOMIC_INIT(4), >> 43 #ifdef CONFIG_DEBUG_CREDENTIALS >> 44 .subscribers = ATOMIC_INIT(2), >> 45 .magic = CRED_MAGIC, >> 46 #endif 46 .uid = GLOBAL_ROOT_ 47 .uid = GLOBAL_ROOT_UID, 47 .gid = GLOBAL_ROOT_ 48 .gid = GLOBAL_ROOT_GID, 48 .suid = GLOBAL_ROOT_ 49 .suid = GLOBAL_ROOT_UID, 49 .sgid = GLOBAL_ROOT_ 50 .sgid = GLOBAL_ROOT_GID, 50 .euid = GLOBAL_ROOT_ 51 .euid = GLOBAL_ROOT_UID, 51 .egid = GLOBAL_ROOT_ 52 .egid = GLOBAL_ROOT_GID, 52 .fsuid = GLOBAL_ROOT_ 53 .fsuid = GLOBAL_ROOT_UID, 53 .fsgid = GLOBAL_ROOT_ 54 .fsgid = GLOBAL_ROOT_GID, 54 .securebits = SECUREBITS_D 55 .securebits = SECUREBITS_DEFAULT, 55 .cap_inheritable = CAP_EMPTY_SE 56 .cap_inheritable = CAP_EMPTY_SET, 56 .cap_permitted = CAP_FULL_SET 57 .cap_permitted = CAP_FULL_SET, 57 .cap_effective = CAP_FULL_SET 58 .cap_effective = CAP_FULL_SET, 58 .cap_bset = CAP_FULL_SET 59 .cap_bset = CAP_FULL_SET, 59 .user = INIT_USER, 60 .user = INIT_USER, 60 .user_ns = &init_user_n 61 .user_ns = &init_user_ns, 61 .group_info = &init_groups 62 .group_info = &init_groups, 62 .ucounts = &init_ucount 63 .ucounts = &init_ucounts, 63 }; 64 }; 64 65 >> 66 static inline void set_cred_subscribers(struct cred *cred, int n) >> 67 { >> 68 #ifdef CONFIG_DEBUG_CREDENTIALS >> 69 atomic_set(&cred->subscribers, n); >> 70 #endif >> 71 } >> 72 >> 73 static inline int read_cred_subscribers(const struct cred *cred) >> 74 { >> 75 #ifdef CONFIG_DEBUG_CREDENTIALS >> 76 return atomic_read(&cred->subscribers); >> 77 #else >> 78 return 0; >> 79 #endif >> 80 } >> 81 >> 82 static inline void alter_cred_subscribers(const struct cred *_cred, int n) >> 83 { >> 84 #ifdef CONFIG_DEBUG_CREDENTIALS >> 85 struct cred *cred = (struct cred *) _cred; >> 86 >> 87 atomic_add(n, &cred->subscribers); >> 88 #endif >> 89 } >> 90 65 /* 91 /* 66 * The RCU callback to actually dispose of a s 92 * The RCU callback to actually dispose of a set of credentials 67 */ 93 */ 68 static void put_cred_rcu(struct rcu_head *rcu) 94 static void put_cred_rcu(struct rcu_head *rcu) 69 { 95 { 70 struct cred *cred = container_of(rcu, 96 struct cred *cred = container_of(rcu, struct cred, rcu); 71 97 72 kdebug("put_cred_rcu(%p)", cred); 98 kdebug("put_cred_rcu(%p)", cred); 73 99 74 if (atomic_long_read(&cred->usage) != !! 100 #ifdef CONFIG_DEBUG_CREDENTIALS 75 panic("CRED: put_cred_rcu() se !! 101 if (cred->magic != CRED_MAGIC_DEAD || 76 cred, atomic_long_read(& !! 102 atomic_read(&cred->usage) != 0 || >> 103 read_cred_subscribers(cred) != 0) >> 104 panic("CRED: put_cred_rcu() sees %p with" >> 105 " mag %x, put %p, usage %d, subscr %d\n", >> 106 cred, cred->magic, cred->put_addr, >> 107 atomic_read(&cred->usage), >> 108 read_cred_subscribers(cred)); >> 109 #else >> 110 if (atomic_read(&cred->usage) != 0) >> 111 panic("CRED: put_cred_rcu() sees %p with usage %d\n", >> 112 cred, atomic_read(&cred->usage)); >> 113 #endif 77 114 78 security_cred_free(cred); 115 security_cred_free(cred); 79 key_put(cred->session_keyring); 116 key_put(cred->session_keyring); 80 key_put(cred->process_keyring); 117 key_put(cred->process_keyring); 81 key_put(cred->thread_keyring); 118 key_put(cred->thread_keyring); 82 key_put(cred->request_key_auth); 119 key_put(cred->request_key_auth); 83 if (cred->group_info) 120 if (cred->group_info) 84 put_group_info(cred->group_inf 121 put_group_info(cred->group_info); 85 free_uid(cred->user); 122 free_uid(cred->user); 86 if (cred->ucounts) 123 if (cred->ucounts) 87 put_ucounts(cred->ucounts); 124 put_ucounts(cred->ucounts); 88 put_user_ns(cred->user_ns); 125 put_user_ns(cred->user_ns); 89 kmem_cache_free(cred_jar, cred); 126 kmem_cache_free(cred_jar, cred); 90 } 127 } 91 128 92 /** 129 /** 93 * __put_cred - Destroy a set of credentials 130 * __put_cred - Destroy a set of credentials 94 * @cred: The record to release 131 * @cred: The record to release 95 * 132 * 96 * Destroy a set of credentials on which no re 133 * Destroy a set of credentials on which no references remain. 97 */ 134 */ 98 void __put_cred(struct cred *cred) 135 void __put_cred(struct cred *cred) 99 { 136 { 100 kdebug("__put_cred(%p{%ld})", cred, !! 137 kdebug("__put_cred(%p{%d,%d})", cred, 101 atomic_long_read(&cred->usage)) !! 138 atomic_read(&cred->usage), 102 !! 139 read_cred_subscribers(cred)); 103 BUG_ON(atomic_long_read(&cred->usage) !! 140 >> 141 BUG_ON(atomic_read(&cred->usage) != 0); >> 142 #ifdef CONFIG_DEBUG_CREDENTIALS >> 143 BUG_ON(read_cred_subscribers(cred) != 0); >> 144 cred->magic = CRED_MAGIC_DEAD; >> 145 cred->put_addr = __builtin_return_address(0); >> 146 #endif 104 BUG_ON(cred == current->cred); 147 BUG_ON(cred == current->cred); 105 BUG_ON(cred == current->real_cred); 148 BUG_ON(cred == current->real_cred); 106 149 107 if (cred->non_rcu) 150 if (cred->non_rcu) 108 put_cred_rcu(&cred->rcu); 151 put_cred_rcu(&cred->rcu); 109 else 152 else 110 call_rcu(&cred->rcu, put_cred_ 153 call_rcu(&cred->rcu, put_cred_rcu); 111 } 154 } 112 EXPORT_SYMBOL(__put_cred); 155 EXPORT_SYMBOL(__put_cred); 113 156 114 /* 157 /* 115 * Clean up a task's credentials when it exits 158 * Clean up a task's credentials when it exits 116 */ 159 */ 117 void exit_creds(struct task_struct *tsk) 160 void exit_creds(struct task_struct *tsk) 118 { 161 { 119 struct cred *real_cred, *cred; !! 162 struct cred *cred; 120 163 121 kdebug("exit_creds(%u,%p,%p,{%ld})", t !! 164 kdebug("exit_creds(%u,%p,%p,{%d,%d})", tsk->pid, tsk->real_cred, tsk->cred, 122 atomic_long_read(&tsk->cred->us !! 165 atomic_read(&tsk->cred->usage), >> 166 read_cred_subscribers(tsk->cred)); 123 167 124 real_cred = (struct cred *) tsk->real_ !! 168 cred = (struct cred *) tsk->real_cred; 125 tsk->real_cred = NULL; 169 tsk->real_cred = NULL; >> 170 validate_creds(cred); >> 171 alter_cred_subscribers(cred, -1); >> 172 put_cred(cred); 126 173 127 cred = (struct cred *) tsk->cred; 174 cred = (struct cred *) tsk->cred; 128 tsk->cred = NULL; 175 tsk->cred = NULL; 129 !! 176 validate_creds(cred); 130 if (real_cred == cred) { !! 177 alter_cred_subscribers(cred, -1); 131 put_cred_many(cred, 2); !! 178 put_cred(cred); 132 } else { << 133 put_cred(real_cred); << 134 put_cred(cred); << 135 } << 136 179 137 #ifdef CONFIG_KEYS_REQUEST_CACHE 180 #ifdef CONFIG_KEYS_REQUEST_CACHE 138 key_put(tsk->cached_requested_key); 181 key_put(tsk->cached_requested_key); 139 tsk->cached_requested_key = NULL; 182 tsk->cached_requested_key = NULL; 140 #endif 183 #endif 141 } 184 } 142 185 143 /** 186 /** 144 * get_task_cred - Get another task's objectiv 187 * get_task_cred - Get another task's objective credentials 145 * @task: The task to query 188 * @task: The task to query 146 * 189 * 147 * Get the objective credentials of a task, pi 190 * Get the objective credentials of a task, pinning them so that they can't go 148 * away. Accessing a task's credentials direc 191 * away. Accessing a task's credentials directly is not permitted. 149 * 192 * 150 * The caller must also make sure task doesn't 193 * The caller must also make sure task doesn't get deleted, either by holding a 151 * ref on task or by holding tasklist_lock to 194 * ref on task or by holding tasklist_lock to prevent it from being unlinked. 152 */ 195 */ 153 const struct cred *get_task_cred(struct task_s 196 const struct cred *get_task_cred(struct task_struct *task) 154 { 197 { 155 const struct cred *cred; 198 const struct cred *cred; 156 199 157 rcu_read_lock(); 200 rcu_read_lock(); 158 201 159 do { 202 do { 160 cred = __task_cred((task)); 203 cred = __task_cred((task)); 161 BUG_ON(!cred); 204 BUG_ON(!cred); 162 } while (!get_cred_rcu(cred)); 205 } while (!get_cred_rcu(cred)); 163 206 164 rcu_read_unlock(); 207 rcu_read_unlock(); 165 return cred; 208 return cred; 166 } 209 } 167 EXPORT_SYMBOL(get_task_cred); 210 EXPORT_SYMBOL(get_task_cred); 168 211 169 /* 212 /* 170 * Allocate blank credentials, such that the c 213 * Allocate blank credentials, such that the credentials can be filled in at a 171 * later date without risk of ENOMEM. 214 * later date without risk of ENOMEM. 172 */ 215 */ 173 struct cred *cred_alloc_blank(void) 216 struct cred *cred_alloc_blank(void) 174 { 217 { 175 struct cred *new; 218 struct cred *new; 176 219 177 new = kmem_cache_zalloc(cred_jar, GFP_ 220 new = kmem_cache_zalloc(cred_jar, GFP_KERNEL); 178 if (!new) 221 if (!new) 179 return NULL; 222 return NULL; 180 223 181 atomic_long_set(&new->usage, 1); !! 224 atomic_set(&new->usage, 1); >> 225 #ifdef CONFIG_DEBUG_CREDENTIALS >> 226 new->magic = CRED_MAGIC; >> 227 #endif >> 228 new->ucounts = get_ucounts(&init_ucounts); >> 229 182 if (security_cred_alloc_blank(new, GFP 230 if (security_cred_alloc_blank(new, GFP_KERNEL_ACCOUNT) < 0) 183 goto error; 231 goto error; 184 232 185 return new; 233 return new; 186 234 187 error: 235 error: 188 abort_creds(new); 236 abort_creds(new); 189 return NULL; 237 return NULL; 190 } 238 } 191 239 192 /** 240 /** 193 * prepare_creds - Prepare a new set of creden 241 * prepare_creds - Prepare a new set of credentials for modification 194 * 242 * 195 * Prepare a new set of task credentials for m 243 * Prepare a new set of task credentials for modification. A task's creds 196 * shouldn't generally be modified directly, t 244 * shouldn't generally be modified directly, therefore this function is used to 197 * prepare a new copy, which the caller then m 245 * prepare a new copy, which the caller then modifies and then commits by 198 * calling commit_creds(). 246 * calling commit_creds(). 199 * 247 * 200 * Preparation involves making a copy of the o 248 * Preparation involves making a copy of the objective creds for modification. 201 * 249 * 202 * Returns a pointer to the new creds-to-be if 250 * Returns a pointer to the new creds-to-be if successful, NULL otherwise. 203 * 251 * 204 * Call commit_creds() or abort_creds() to cle 252 * Call commit_creds() or abort_creds() to clean up. 205 */ 253 */ 206 struct cred *prepare_creds(void) 254 struct cred *prepare_creds(void) 207 { 255 { 208 struct task_struct *task = current; 256 struct task_struct *task = current; 209 const struct cred *old; 257 const struct cred *old; 210 struct cred *new; 258 struct cred *new; 211 259 >> 260 validate_process_creds(); >> 261 212 new = kmem_cache_alloc(cred_jar, GFP_K 262 new = kmem_cache_alloc(cred_jar, GFP_KERNEL); 213 if (!new) 263 if (!new) 214 return NULL; 264 return NULL; 215 265 216 kdebug("prepare_creds() alloc %p", new 266 kdebug("prepare_creds() alloc %p", new); 217 267 218 old = task->cred; 268 old = task->cred; 219 memcpy(new, old, sizeof(struct cred)); 269 memcpy(new, old, sizeof(struct cred)); 220 270 221 new->non_rcu = 0; 271 new->non_rcu = 0; 222 atomic_long_set(&new->usage, 1); !! 272 atomic_set(&new->usage, 1); >> 273 set_cred_subscribers(new, 0); 223 get_group_info(new->group_info); 274 get_group_info(new->group_info); 224 get_uid(new->user); 275 get_uid(new->user); 225 get_user_ns(new->user_ns); 276 get_user_ns(new->user_ns); 226 277 227 #ifdef CONFIG_KEYS 278 #ifdef CONFIG_KEYS 228 key_get(new->session_keyring); 279 key_get(new->session_keyring); 229 key_get(new->process_keyring); 280 key_get(new->process_keyring); 230 key_get(new->thread_keyring); 281 key_get(new->thread_keyring); 231 key_get(new->request_key_auth); 282 key_get(new->request_key_auth); 232 #endif 283 #endif 233 284 234 #ifdef CONFIG_SECURITY 285 #ifdef CONFIG_SECURITY 235 new->security = NULL; 286 new->security = NULL; 236 #endif 287 #endif 237 288 238 new->ucounts = get_ucounts(new->ucount !! 289 if (security_prepare_creds(new, old, GFP_KERNEL_ACCOUNT) < 0) 239 if (!new->ucounts) << 240 goto error; 290 goto error; 241 291 242 if (security_prepare_creds(new, old, G !! 292 new->ucounts = get_ucounts(new->ucounts); >> 293 if (!new->ucounts) 243 goto error; 294 goto error; 244 295 >> 296 validate_creds(new); 245 return new; 297 return new; 246 298 247 error: 299 error: 248 abort_creds(new); 300 abort_creds(new); 249 return NULL; 301 return NULL; 250 } 302 } 251 EXPORT_SYMBOL(prepare_creds); 303 EXPORT_SYMBOL(prepare_creds); 252 304 253 /* 305 /* 254 * Prepare credentials for current to perform 306 * Prepare credentials for current to perform an execve() 255 * - The caller must hold ->cred_guard_mutex 307 * - The caller must hold ->cred_guard_mutex 256 */ 308 */ 257 struct cred *prepare_exec_creds(void) 309 struct cred *prepare_exec_creds(void) 258 { 310 { 259 struct cred *new; 311 struct cred *new; 260 312 261 new = prepare_creds(); 313 new = prepare_creds(); 262 if (!new) 314 if (!new) 263 return new; 315 return new; 264 316 265 #ifdef CONFIG_KEYS 317 #ifdef CONFIG_KEYS 266 /* newly exec'd tasks don't get a thre 318 /* newly exec'd tasks don't get a thread keyring */ 267 key_put(new->thread_keyring); 319 key_put(new->thread_keyring); 268 new->thread_keyring = NULL; 320 new->thread_keyring = NULL; 269 321 270 /* inherit the session keyring; new pr 322 /* inherit the session keyring; new process keyring */ 271 key_put(new->process_keyring); 323 key_put(new->process_keyring); 272 new->process_keyring = NULL; 324 new->process_keyring = NULL; 273 #endif 325 #endif 274 326 275 new->suid = new->fsuid = new->euid; 327 new->suid = new->fsuid = new->euid; 276 new->sgid = new->fsgid = new->egid; 328 new->sgid = new->fsgid = new->egid; 277 329 278 return new; 330 return new; 279 } 331 } 280 332 281 /* 333 /* 282 * Copy credentials for the new process create 334 * Copy credentials for the new process created by fork() 283 * 335 * 284 * We share if we can, but under some circumst 336 * We share if we can, but under some circumstances we have to generate a new 285 * set. 337 * set. 286 * 338 * 287 * The new process gets the current process's 339 * The new process gets the current process's subjective credentials as its 288 * objective and subjective credentials 340 * objective and subjective credentials 289 */ 341 */ 290 int copy_creds(struct task_struct *p, unsigned 342 int copy_creds(struct task_struct *p, unsigned long clone_flags) 291 { 343 { 292 struct cred *new; 344 struct cred *new; 293 int ret; 345 int ret; 294 346 295 #ifdef CONFIG_KEYS_REQUEST_CACHE 347 #ifdef CONFIG_KEYS_REQUEST_CACHE 296 p->cached_requested_key = NULL; 348 p->cached_requested_key = NULL; 297 #endif 349 #endif 298 350 299 if ( 351 if ( 300 #ifdef CONFIG_KEYS 352 #ifdef CONFIG_KEYS 301 !p->cred->thread_keyring && 353 !p->cred->thread_keyring && 302 #endif 354 #endif 303 clone_flags & CLONE_THREAD 355 clone_flags & CLONE_THREAD 304 ) { 356 ) { 305 p->real_cred = get_cred_many(p !! 357 p->real_cred = get_cred(p->cred); 306 kdebug("share_creds(%p{%ld})", !! 358 get_cred(p->cred); 307 p->cred, atomic_long_re !! 359 alter_cred_subscribers(p->cred, 2); 308 inc_rlimit_ucounts(task_ucount !! 360 kdebug("share_creds(%p{%d,%d})", >> 361 p->cred, atomic_read(&p->cred->usage), >> 362 read_cred_subscribers(p->cred)); >> 363 atomic_inc(&p->cred->user->processes); 309 return 0; 364 return 0; 310 } 365 } 311 366 312 new = prepare_creds(); 367 new = prepare_creds(); 313 if (!new) 368 if (!new) 314 return -ENOMEM; 369 return -ENOMEM; 315 370 316 if (clone_flags & CLONE_NEWUSER) { 371 if (clone_flags & CLONE_NEWUSER) { 317 ret = create_user_ns(new); 372 ret = create_user_ns(new); 318 if (ret < 0) 373 if (ret < 0) 319 goto error_put; 374 goto error_put; 320 ret = set_cred_ucounts(new); 375 ret = set_cred_ucounts(new); 321 if (ret < 0) 376 if (ret < 0) 322 goto error_put; 377 goto error_put; 323 } 378 } 324 379 325 #ifdef CONFIG_KEYS 380 #ifdef CONFIG_KEYS 326 /* new threads get their own thread ke 381 /* new threads get their own thread keyrings if their parent already 327 * had one */ 382 * had one */ 328 if (new->thread_keyring) { 383 if (new->thread_keyring) { 329 key_put(new->thread_keyring); 384 key_put(new->thread_keyring); 330 new->thread_keyring = NULL; 385 new->thread_keyring = NULL; 331 if (clone_flags & CLONE_THREAD 386 if (clone_flags & CLONE_THREAD) 332 install_thread_keyring 387 install_thread_keyring_to_cred(new); 333 } 388 } 334 389 335 /* The process keyring is only shared 390 /* The process keyring is only shared between the threads in a process; 336 * anything outside of those threads d 391 * anything outside of those threads doesn't inherit. 337 */ 392 */ 338 if (!(clone_flags & CLONE_THREAD)) { 393 if (!(clone_flags & CLONE_THREAD)) { 339 key_put(new->process_keyring); 394 key_put(new->process_keyring); 340 new->process_keyring = NULL; 395 new->process_keyring = NULL; 341 } 396 } 342 #endif 397 #endif 343 398 >> 399 atomic_inc(&new->user->processes); 344 p->cred = p->real_cred = get_cred(new) 400 p->cred = p->real_cred = get_cred(new); 345 inc_rlimit_ucounts(task_ucounts(p), UC !! 401 alter_cred_subscribers(new, 2); >> 402 validate_creds(new); 346 return 0; 403 return 0; 347 404 348 error_put: 405 error_put: 349 put_cred(new); 406 put_cred(new); 350 return ret; 407 return ret; 351 } 408 } 352 409 353 static bool cred_cap_issubset(const struct cre 410 static bool cred_cap_issubset(const struct cred *set, const struct cred *subset) 354 { 411 { 355 const struct user_namespace *set_ns = 412 const struct user_namespace *set_ns = set->user_ns; 356 const struct user_namespace *subset_ns 413 const struct user_namespace *subset_ns = subset->user_ns; 357 414 358 /* If the two credentials are in the s 415 /* If the two credentials are in the same user namespace see if 359 * the capabilities of subset are a su 416 * the capabilities of subset are a subset of set. 360 */ 417 */ 361 if (set_ns == subset_ns) 418 if (set_ns == subset_ns) 362 return cap_issubset(subset->ca 419 return cap_issubset(subset->cap_permitted, set->cap_permitted); 363 420 364 /* The credentials are in a different 421 /* The credentials are in a different user namespaces 365 * therefore one is a subset of the ot 422 * therefore one is a subset of the other only if a set is an 366 * ancestor of subset and set->euid is 423 * ancestor of subset and set->euid is owner of subset or one 367 * of subsets ancestors. 424 * of subsets ancestors. 368 */ 425 */ 369 for (;subset_ns != &init_user_ns; subs 426 for (;subset_ns != &init_user_ns; subset_ns = subset_ns->parent) { 370 if ((set_ns == subset_ns->pare 427 if ((set_ns == subset_ns->parent) && 371 uid_eq(subset_ns->owner, s 428 uid_eq(subset_ns->owner, set->euid)) 372 return true; 429 return true; 373 } 430 } 374 431 375 return false; 432 return false; 376 } 433 } 377 434 378 /** 435 /** 379 * commit_creds - Install new credentials upon 436 * commit_creds - Install new credentials upon the current task 380 * @new: The credentials to be assigned 437 * @new: The credentials to be assigned 381 * 438 * 382 * Install a new set of credentials to the cur 439 * Install a new set of credentials to the current task, using RCU to replace 383 * the old set. Both the objective and the su 440 * the old set. Both the objective and the subjective credentials pointers are 384 * updated. This function may not be called i 441 * updated. This function may not be called if the subjective credentials are 385 * in an overridden state. 442 * in an overridden state. 386 * 443 * 387 * This function eats the caller's reference t 444 * This function eats the caller's reference to the new credentials. 388 * 445 * 389 * Always returns 0 thus allowing this functio 446 * Always returns 0 thus allowing this function to be tail-called at the end 390 * of, say, sys_setgid(). 447 * of, say, sys_setgid(). 391 */ 448 */ 392 int commit_creds(struct cred *new) 449 int commit_creds(struct cred *new) 393 { 450 { 394 struct task_struct *task = current; 451 struct task_struct *task = current; 395 const struct cred *old = task->real_cr 452 const struct cred *old = task->real_cred; 396 453 397 kdebug("commit_creds(%p{%ld})", new, !! 454 kdebug("commit_creds(%p{%d,%d})", new, 398 atomic_long_read(&new->usage)); !! 455 atomic_read(&new->usage), >> 456 read_cred_subscribers(new)); 399 457 400 BUG_ON(task->cred != old); 458 BUG_ON(task->cred != old); 401 BUG_ON(atomic_long_read(&new->usage) < !! 459 #ifdef CONFIG_DEBUG_CREDENTIALS >> 460 BUG_ON(read_cred_subscribers(old) < 2); >> 461 validate_creds(old); >> 462 validate_creds(new); >> 463 #endif >> 464 BUG_ON(atomic_read(&new->usage) < 1); 402 465 403 get_cred(new); /* we will require a re 466 get_cred(new); /* we will require a ref for the subj creds too */ 404 467 405 /* dumpability changes */ 468 /* dumpability changes */ 406 if (!uid_eq(old->euid, new->euid) || 469 if (!uid_eq(old->euid, new->euid) || 407 !gid_eq(old->egid, new->egid) || 470 !gid_eq(old->egid, new->egid) || 408 !uid_eq(old->fsuid, new->fsuid) || 471 !uid_eq(old->fsuid, new->fsuid) || 409 !gid_eq(old->fsgid, new->fsgid) || 472 !gid_eq(old->fsgid, new->fsgid) || 410 !cred_cap_issubset(old, new)) { 473 !cred_cap_issubset(old, new)) { 411 if (task->mm) 474 if (task->mm) 412 set_dumpable(task->mm, 475 set_dumpable(task->mm, suid_dumpable); 413 task->pdeath_signal = 0; 476 task->pdeath_signal = 0; 414 /* 477 /* 415 * If a task drops privileges 478 * If a task drops privileges and becomes nondumpable, 416 * the dumpability change must 479 * the dumpability change must become visible before 417 * the credential change; othe 480 * the credential change; otherwise, a __ptrace_may_access() 418 * racing with this change may 481 * racing with this change may be able to attach to a task it 419 * shouldn't be able to attach 482 * shouldn't be able to attach to (as if the task had dropped 420 * privileges without becoming 483 * privileges without becoming nondumpable). 421 * Pairs with a read barrier i 484 * Pairs with a read barrier in __ptrace_may_access(). 422 */ 485 */ 423 smp_wmb(); 486 smp_wmb(); 424 } 487 } 425 488 426 /* alter the thread keyring */ 489 /* alter the thread keyring */ 427 if (!uid_eq(new->fsuid, old->fsuid)) 490 if (!uid_eq(new->fsuid, old->fsuid)) 428 key_fsuid_changed(new); 491 key_fsuid_changed(new); 429 if (!gid_eq(new->fsgid, old->fsgid)) 492 if (!gid_eq(new->fsgid, old->fsgid)) 430 key_fsgid_changed(new); 493 key_fsgid_changed(new); 431 494 432 /* do it 495 /* do it 433 * RLIMIT_NPROC limits on user->proces 496 * RLIMIT_NPROC limits on user->processes have already been checked 434 * in set_user(). 497 * in set_user(). 435 */ 498 */ 436 if (new->user != old->user || new->use !! 499 alter_cred_subscribers(new, 2); 437 inc_rlimit_ucounts(new->ucount !! 500 if (new->user != old->user) >> 501 atomic_inc(&new->user->processes); 438 rcu_assign_pointer(task->real_cred, ne 502 rcu_assign_pointer(task->real_cred, new); 439 rcu_assign_pointer(task->cred, new); 503 rcu_assign_pointer(task->cred, new); 440 if (new->user != old->user || new->use !! 504 if (new->user != old->user) 441 dec_rlimit_ucounts(old->ucount !! 505 atomic_dec(&old->user->processes); >> 506 alter_cred_subscribers(old, -2); 442 507 443 /* send notifications */ 508 /* send notifications */ 444 if (!uid_eq(new->uid, old->uid) || 509 if (!uid_eq(new->uid, old->uid) || 445 !uid_eq(new->euid, old->euid) || 510 !uid_eq(new->euid, old->euid) || 446 !uid_eq(new->suid, old->suid) || 511 !uid_eq(new->suid, old->suid) || 447 !uid_eq(new->fsuid, old->fsuid)) 512 !uid_eq(new->fsuid, old->fsuid)) 448 proc_id_connector(task, PROC_E 513 proc_id_connector(task, PROC_EVENT_UID); 449 514 450 if (!gid_eq(new->gid, old->gid) || 515 if (!gid_eq(new->gid, old->gid) || 451 !gid_eq(new->egid, old->egid) || 516 !gid_eq(new->egid, old->egid) || 452 !gid_eq(new->sgid, old->sgid) || 517 !gid_eq(new->sgid, old->sgid) || 453 !gid_eq(new->fsgid, old->fsgid)) 518 !gid_eq(new->fsgid, old->fsgid)) 454 proc_id_connector(task, PROC_E 519 proc_id_connector(task, PROC_EVENT_GID); 455 520 456 /* release the old obj and subj refs b 521 /* release the old obj and subj refs both */ 457 put_cred_many(old, 2); !! 522 put_cred(old); >> 523 put_cred(old); 458 return 0; 524 return 0; 459 } 525 } 460 EXPORT_SYMBOL(commit_creds); 526 EXPORT_SYMBOL(commit_creds); 461 527 462 /** 528 /** 463 * abort_creds - Discard a set of credentials 529 * abort_creds - Discard a set of credentials and unlock the current task 464 * @new: The credentials that were going to be 530 * @new: The credentials that were going to be applied 465 * 531 * 466 * Discard a set of credentials that were unde 532 * Discard a set of credentials that were under construction and unlock the 467 * current task. 533 * current task. 468 */ 534 */ 469 void abort_creds(struct cred *new) 535 void abort_creds(struct cred *new) 470 { 536 { 471 kdebug("abort_creds(%p{%ld})", new, !! 537 kdebug("abort_creds(%p{%d,%d})", new, 472 atomic_long_read(&new->usage)); !! 538 atomic_read(&new->usage), >> 539 read_cred_subscribers(new)); 473 540 474 BUG_ON(atomic_long_read(&new->usage) < !! 541 #ifdef CONFIG_DEBUG_CREDENTIALS >> 542 BUG_ON(read_cred_subscribers(new) != 0); >> 543 #endif >> 544 BUG_ON(atomic_read(&new->usage) < 1); 475 put_cred(new); 545 put_cred(new); 476 } 546 } 477 EXPORT_SYMBOL(abort_creds); 547 EXPORT_SYMBOL(abort_creds); 478 548 479 /** 549 /** 480 * override_creds - Override the current proce 550 * override_creds - Override the current process's subjective credentials 481 * @new: The credentials to be assigned 551 * @new: The credentials to be assigned 482 * 552 * 483 * Install a set of temporary override subject 553 * Install a set of temporary override subjective credentials on the current 484 * process, returning the old set for later re 554 * process, returning the old set for later reversion. 485 */ 555 */ 486 const struct cred *override_creds(const struct 556 const struct cred *override_creds(const struct cred *new) 487 { 557 { 488 const struct cred *old = current->cred 558 const struct cred *old = current->cred; 489 559 490 kdebug("override_creds(%p{%ld})", new, !! 560 kdebug("override_creds(%p{%d,%d})", new, 491 atomic_long_read(&new->usage)); !! 561 atomic_read(&new->usage), >> 562 read_cred_subscribers(new)); >> 563 >> 564 validate_creds(old); >> 565 validate_creds(new); 492 566 493 /* 567 /* 494 * NOTE! This uses 'get_new_cred()' ra 568 * NOTE! This uses 'get_new_cred()' rather than 'get_cred()'. 495 * 569 * 496 * That means that we do not clear the 570 * That means that we do not clear the 'non_rcu' flag, since 497 * we are only installing the cred int 571 * we are only installing the cred into the thread-synchronous 498 * '->cred' pointer, not the '->real_c 572 * '->cred' pointer, not the '->real_cred' pointer that is 499 * visible to other threads under RCU. 573 * visible to other threads under RCU. >> 574 * >> 575 * Also note that we did validate_creds() manually, not depending >> 576 * on the validation in 'get_cred()'. 500 */ 577 */ 501 get_new_cred((struct cred *)new); 578 get_new_cred((struct cred *)new); >> 579 alter_cred_subscribers(new, 1); 502 rcu_assign_pointer(current->cred, new) 580 rcu_assign_pointer(current->cred, new); >> 581 alter_cred_subscribers(old, -1); 503 582 504 kdebug("override_creds() = %p{%ld}", o !! 583 kdebug("override_creds() = %p{%d,%d}", old, 505 atomic_long_read(&old->usage)); !! 584 atomic_read(&old->usage), >> 585 read_cred_subscribers(old)); 506 return old; 586 return old; 507 } 587 } 508 EXPORT_SYMBOL(override_creds); 588 EXPORT_SYMBOL(override_creds); 509 589 510 /** 590 /** 511 * revert_creds - Revert a temporary subjectiv 591 * revert_creds - Revert a temporary subjective credentials override 512 * @old: The credentials to be restored 592 * @old: The credentials to be restored 513 * 593 * 514 * Revert a temporary set of override subjecti 594 * Revert a temporary set of override subjective credentials to an old set, 515 * discarding the override set. 595 * discarding the override set. 516 */ 596 */ 517 void revert_creds(const struct cred *old) 597 void revert_creds(const struct cred *old) 518 { 598 { 519 const struct cred *override = current- 599 const struct cred *override = current->cred; 520 600 521 kdebug("revert_creds(%p{%ld})", old, !! 601 kdebug("revert_creds(%p{%d,%d})", old, 522 atomic_long_read(&old->usage)); !! 602 atomic_read(&old->usage), 523 !! 603 read_cred_subscribers(old)); >> 604 >> 605 validate_creds(old); >> 606 validate_creds(override); >> 607 alter_cred_subscribers(old, 1); 524 rcu_assign_pointer(current->cred, old) 608 rcu_assign_pointer(current->cred, old); >> 609 alter_cred_subscribers(override, -1); 525 put_cred(override); 610 put_cred(override); 526 } 611 } 527 EXPORT_SYMBOL(revert_creds); 612 EXPORT_SYMBOL(revert_creds); 528 613 529 /** 614 /** 530 * cred_fscmp - Compare two credentials with r 615 * cred_fscmp - Compare two credentials with respect to filesystem access. 531 * @a: The first credential 616 * @a: The first credential 532 * @b: The second credential 617 * @b: The second credential 533 * 618 * 534 * cred_cmp() will return zero if both credent 619 * cred_cmp() will return zero if both credentials have the same 535 * fsuid, fsgid, and supplementary groups. Th 620 * fsuid, fsgid, and supplementary groups. That is, if they will both 536 * provide the same access to files based on m 621 * provide the same access to files based on mode/uid/gid. 537 * If the credentials are different, then eith 622 * If the credentials are different, then either -1 or 1 will 538 * be returned depending on whether @a comes b 623 * be returned depending on whether @a comes before or after @b 539 * respectively in an arbitrary, but stable, o 624 * respectively in an arbitrary, but stable, ordering of credentials. 540 * 625 * 541 * Return: -1, 0, or 1 depending on comparison 626 * Return: -1, 0, or 1 depending on comparison 542 */ 627 */ 543 int cred_fscmp(const struct cred *a, const str 628 int cred_fscmp(const struct cred *a, const struct cred *b) 544 { 629 { 545 struct group_info *ga, *gb; 630 struct group_info *ga, *gb; 546 int g; 631 int g; 547 632 548 if (a == b) 633 if (a == b) 549 return 0; 634 return 0; 550 if (uid_lt(a->fsuid, b->fsuid)) 635 if (uid_lt(a->fsuid, b->fsuid)) 551 return -1; 636 return -1; 552 if (uid_gt(a->fsuid, b->fsuid)) 637 if (uid_gt(a->fsuid, b->fsuid)) 553 return 1; 638 return 1; 554 639 555 if (gid_lt(a->fsgid, b->fsgid)) 640 if (gid_lt(a->fsgid, b->fsgid)) 556 return -1; 641 return -1; 557 if (gid_gt(a->fsgid, b->fsgid)) 642 if (gid_gt(a->fsgid, b->fsgid)) 558 return 1; 643 return 1; 559 644 560 ga = a->group_info; 645 ga = a->group_info; 561 gb = b->group_info; 646 gb = b->group_info; 562 if (ga == gb) 647 if (ga == gb) 563 return 0; 648 return 0; 564 if (ga == NULL) 649 if (ga == NULL) 565 return -1; 650 return -1; 566 if (gb == NULL) 651 if (gb == NULL) 567 return 1; 652 return 1; 568 if (ga->ngroups < gb->ngroups) 653 if (ga->ngroups < gb->ngroups) 569 return -1; 654 return -1; 570 if (ga->ngroups > gb->ngroups) 655 if (ga->ngroups > gb->ngroups) 571 return 1; 656 return 1; 572 657 573 for (g = 0; g < ga->ngroups; g++) { 658 for (g = 0; g < ga->ngroups; g++) { 574 if (gid_lt(ga->gid[g], gb->gid 659 if (gid_lt(ga->gid[g], gb->gid[g])) 575 return -1; 660 return -1; 576 if (gid_gt(ga->gid[g], gb->gid 661 if (gid_gt(ga->gid[g], gb->gid[g])) 577 return 1; 662 return 1; 578 } 663 } 579 return 0; 664 return 0; 580 } 665 } 581 EXPORT_SYMBOL(cred_fscmp); 666 EXPORT_SYMBOL(cred_fscmp); 582 667 583 int set_cred_ucounts(struct cred *new) 668 int set_cred_ucounts(struct cred *new) 584 { 669 { 585 struct ucounts *new_ucounts, *old_ucou !! 670 struct task_struct *task = current; >> 671 const struct cred *old = task->real_cred; >> 672 struct ucounts *old_ucounts = new->ucounts; >> 673 >> 674 if (new->user == old->user && new->user_ns == old->user_ns) >> 675 return 0; 586 676 587 /* 677 /* 588 * This optimization is needed because 678 * This optimization is needed because alloc_ucounts() uses locks 589 * for table lookups. 679 * for table lookups. 590 */ 680 */ 591 if (old_ucounts->ns == new->user_ns && !! 681 if (old_ucounts && old_ucounts->ns == new->user_ns && uid_eq(old_ucounts->uid, new->euid)) 592 return 0; 682 return 0; 593 683 594 if (!(new_ucounts = alloc_ucounts(new- !! 684 if (!(new->ucounts = alloc_ucounts(new->user_ns, new->euid))) 595 return -EAGAIN; 685 return -EAGAIN; 596 686 597 new->ucounts = new_ucounts; !! 687 if (old_ucounts) 598 put_ucounts(old_ucounts); !! 688 put_ucounts(old_ucounts); 599 689 600 return 0; 690 return 0; 601 } 691 } 602 692 603 /* 693 /* 604 * initialise the credentials stuff 694 * initialise the credentials stuff 605 */ 695 */ 606 void __init cred_init(void) 696 void __init cred_init(void) 607 { 697 { 608 /* allocate a slab in which we can sto 698 /* allocate a slab in which we can store credentials */ 609 cred_jar = KMEM_CACHE(cred, !! 699 cred_jar = kmem_cache_create("cred_jar", sizeof(struct cred), 0, 610 SLAB_HWCACHE_ALI !! 700 SLAB_HWCACHE_ALIGN|SLAB_PANIC|SLAB_ACCOUNT, NULL); 611 } 701 } 612 702 613 /** 703 /** 614 * prepare_kernel_cred - Prepare a set of cred 704 * prepare_kernel_cred - Prepare a set of credentials for a kernel service 615 * @daemon: A userspace daemon to be used as a 705 * @daemon: A userspace daemon to be used as a reference 616 * 706 * 617 * Prepare a set of credentials for a kernel s 707 * Prepare a set of credentials for a kernel service. This can then be used to 618 * override a task's own credentials so that w 708 * override a task's own credentials so that work can be done on behalf of that 619 * task that requires a different subjective c 709 * task that requires a different subjective context. 620 * 710 * 621 * @daemon is used to provide a base cred, wit !! 711 * @daemon is used to provide a base for the security record, but can be NULL. 622 * that; if this is "&init_task", they'll be s !! 712 * If @daemon is supplied, then the security data will be derived from that; 623 * capabilities, and no keys. !! 713 * otherwise they'll be set to 0 and no groups, full capabilities and no keys. 624 * 714 * 625 * The caller may change these controls afterw 715 * The caller may change these controls afterwards if desired. 626 * 716 * 627 * Returns the new credentials or NULL if out 717 * Returns the new credentials or NULL if out of memory. 628 */ 718 */ 629 struct cred *prepare_kernel_cred(struct task_s 719 struct cred *prepare_kernel_cred(struct task_struct *daemon) 630 { 720 { 631 const struct cred *old; 721 const struct cred *old; 632 struct cred *new; 722 struct cred *new; 633 723 634 if (WARN_ON_ONCE(!daemon)) << 635 return NULL; << 636 << 637 new = kmem_cache_alloc(cred_jar, GFP_K 724 new = kmem_cache_alloc(cred_jar, GFP_KERNEL); 638 if (!new) 725 if (!new) 639 return NULL; 726 return NULL; 640 727 641 kdebug("prepare_kernel_cred() alloc %p 728 kdebug("prepare_kernel_cred() alloc %p", new); 642 729 643 old = get_task_cred(daemon); !! 730 if (daemon) >> 731 old = get_task_cred(daemon); >> 732 else >> 733 old = get_cred(&init_cred); >> 734 >> 735 validate_creds(old); 644 736 645 *new = *old; 737 *new = *old; 646 new->non_rcu = 0; 738 new->non_rcu = 0; 647 atomic_long_set(&new->usage, 1); !! 739 atomic_set(&new->usage, 1); >> 740 set_cred_subscribers(new, 0); 648 get_uid(new->user); 741 get_uid(new->user); 649 get_user_ns(new->user_ns); 742 get_user_ns(new->user_ns); 650 get_group_info(new->group_info); 743 get_group_info(new->group_info); 651 744 652 #ifdef CONFIG_KEYS 745 #ifdef CONFIG_KEYS 653 new->session_keyring = NULL; 746 new->session_keyring = NULL; 654 new->process_keyring = NULL; 747 new->process_keyring = NULL; 655 new->thread_keyring = NULL; 748 new->thread_keyring = NULL; 656 new->request_key_auth = NULL; 749 new->request_key_auth = NULL; 657 new->jit_keyring = KEY_REQKEY_DEFL_THR 750 new->jit_keyring = KEY_REQKEY_DEFL_THREAD_KEYRING; 658 #endif 751 #endif 659 752 660 #ifdef CONFIG_SECURITY 753 #ifdef CONFIG_SECURITY 661 new->security = NULL; 754 new->security = NULL; 662 #endif 755 #endif 663 new->ucounts = get_ucounts(new->ucount !! 756 if (security_prepare_creds(new, old, GFP_KERNEL_ACCOUNT) < 0) 664 if (!new->ucounts) << 665 goto error; 757 goto error; 666 758 667 if (security_prepare_creds(new, old, G !! 759 new->ucounts = get_ucounts(new->ucounts); >> 760 if (!new->ucounts) 668 goto error; 761 goto error; 669 762 670 put_cred(old); 763 put_cred(old); >> 764 validate_creds(new); 671 return new; 765 return new; 672 766 673 error: 767 error: 674 put_cred(new); 768 put_cred(new); 675 put_cred(old); 769 put_cred(old); 676 return NULL; 770 return NULL; 677 } 771 } 678 EXPORT_SYMBOL(prepare_kernel_cred); 772 EXPORT_SYMBOL(prepare_kernel_cred); 679 773 680 /** 774 /** 681 * set_security_override - Set the security ID 775 * set_security_override - Set the security ID in a set of credentials 682 * @new: The credentials to alter 776 * @new: The credentials to alter 683 * @secid: The LSM security ID to set 777 * @secid: The LSM security ID to set 684 * 778 * 685 * Set the LSM security ID in a set of credent 779 * Set the LSM security ID in a set of credentials so that the subjective 686 * security is overridden when an alternative 780 * security is overridden when an alternative set of credentials is used. 687 */ 781 */ 688 int set_security_override(struct cred *new, u3 782 int set_security_override(struct cred *new, u32 secid) 689 { 783 { 690 return security_kernel_act_as(new, sec 784 return security_kernel_act_as(new, secid); 691 } 785 } 692 EXPORT_SYMBOL(set_security_override); 786 EXPORT_SYMBOL(set_security_override); 693 787 694 /** 788 /** 695 * set_security_override_from_ctx - Set the se 789 * set_security_override_from_ctx - Set the security ID in a set of credentials 696 * @new: The credentials to alter 790 * @new: The credentials to alter 697 * @secctx: The LSM security context to genera 791 * @secctx: The LSM security context to generate the security ID from. 698 * 792 * 699 * Set the LSM security ID in a set of credent 793 * Set the LSM security ID in a set of credentials so that the subjective 700 * security is overridden when an alternative 794 * security is overridden when an alternative set of credentials is used. The 701 * security ID is specified in string form as 795 * security ID is specified in string form as a security context to be 702 * interpreted by the LSM. 796 * interpreted by the LSM. 703 */ 797 */ 704 int set_security_override_from_ctx(struct cred 798 int set_security_override_from_ctx(struct cred *new, const char *secctx) 705 { 799 { 706 u32 secid; 800 u32 secid; 707 int ret; 801 int ret; 708 802 709 ret = security_secctx_to_secid(secctx, 803 ret = security_secctx_to_secid(secctx, strlen(secctx), &secid); 710 if (ret < 0) 804 if (ret < 0) 711 return ret; 805 return ret; 712 806 713 return set_security_override(new, seci 807 return set_security_override(new, secid); 714 } 808 } 715 EXPORT_SYMBOL(set_security_override_from_ctx); 809 EXPORT_SYMBOL(set_security_override_from_ctx); 716 810 717 /** 811 /** 718 * set_create_files_as - Set the LSM file crea 812 * set_create_files_as - Set the LSM file create context in a set of credentials 719 * @new: The credentials to alter 813 * @new: The credentials to alter 720 * @inode: The inode to take the context from 814 * @inode: The inode to take the context from 721 * 815 * 722 * Change the LSM file creation context in a s 816 * Change the LSM file creation context in a set of credentials to be the same 723 * as the object context of the specified inod 817 * as the object context of the specified inode, so that the new inodes have 724 * the same MAC context as that inode. 818 * the same MAC context as that inode. 725 */ 819 */ 726 int set_create_files_as(struct cred *new, stru 820 int set_create_files_as(struct cred *new, struct inode *inode) 727 { 821 { 728 if (!uid_valid(inode->i_uid) || !gid_v 822 if (!uid_valid(inode->i_uid) || !gid_valid(inode->i_gid)) 729 return -EINVAL; 823 return -EINVAL; 730 new->fsuid = inode->i_uid; 824 new->fsuid = inode->i_uid; 731 new->fsgid = inode->i_gid; 825 new->fsgid = inode->i_gid; 732 return security_kernel_create_files_as 826 return security_kernel_create_files_as(new, inode); 733 } 827 } 734 EXPORT_SYMBOL(set_create_files_as); 828 EXPORT_SYMBOL(set_create_files_as); >> 829 >> 830 #ifdef CONFIG_DEBUG_CREDENTIALS >> 831 >> 832 bool creds_are_invalid(const struct cred *cred) >> 833 { >> 834 if (cred->magic != CRED_MAGIC) >> 835 return true; >> 836 return false; >> 837 } >> 838 EXPORT_SYMBOL(creds_are_invalid); >> 839 >> 840 /* >> 841 * dump invalid credentials >> 842 */ >> 843 static void dump_invalid_creds(const struct cred *cred, const char *label, >> 844 const struct task_struct *tsk) >> 845 { >> 846 printk(KERN_ERR "CRED: %s credentials: %p %s%s%s\n", >> 847 label, cred, >> 848 cred == &init_cred ? "[init]" : "", >> 849 cred == tsk->real_cred ? "[real]" : "", >> 850 cred == tsk->cred ? "[eff]" : ""); >> 851 printk(KERN_ERR "CRED: ->magic=%x, put_addr=%p\n", >> 852 cred->magic, cred->put_addr); >> 853 printk(KERN_ERR "CRED: ->usage=%d, subscr=%d\n", >> 854 atomic_read(&cred->usage), >> 855 read_cred_subscribers(cred)); >> 856 printk(KERN_ERR "CRED: ->*uid = { %d,%d,%d,%d }\n", >> 857 from_kuid_munged(&init_user_ns, cred->uid), >> 858 from_kuid_munged(&init_user_ns, cred->euid), >> 859 from_kuid_munged(&init_user_ns, cred->suid), >> 860 from_kuid_munged(&init_user_ns, cred->fsuid)); >> 861 printk(KERN_ERR "CRED: ->*gid = { %d,%d,%d,%d }\n", >> 862 from_kgid_munged(&init_user_ns, cred->gid), >> 863 from_kgid_munged(&init_user_ns, cred->egid), >> 864 from_kgid_munged(&init_user_ns, cred->sgid), >> 865 from_kgid_munged(&init_user_ns, cred->fsgid)); >> 866 #ifdef CONFIG_SECURITY >> 867 printk(KERN_ERR "CRED: ->security is %p\n", cred->security); >> 868 if ((unsigned long) cred->security >= PAGE_SIZE && >> 869 (((unsigned long) cred->security & 0xffffff00) != >> 870 (POISON_FREE << 24 | POISON_FREE << 16 | POISON_FREE << 8))) >> 871 printk(KERN_ERR "CRED: ->security {%x, %x}\n", >> 872 ((u32*)cred->security)[0], >> 873 ((u32*)cred->security)[1]); >> 874 #endif >> 875 } >> 876 >> 877 /* >> 878 * report use of invalid credentials >> 879 */ >> 880 void __invalid_creds(const struct cred *cred, const char *file, unsigned line) >> 881 { >> 882 printk(KERN_ERR "CRED: Invalid credentials\n"); >> 883 printk(KERN_ERR "CRED: At %s:%u\n", file, line); >> 884 dump_invalid_creds(cred, "Specified", current); >> 885 BUG(); >> 886 } >> 887 EXPORT_SYMBOL(__invalid_creds); >> 888 >> 889 /* >> 890 * check the credentials on a process >> 891 */ >> 892 void __validate_process_creds(struct task_struct *tsk, >> 893 const char *file, unsigned line) >> 894 { >> 895 if (tsk->cred == tsk->real_cred) { >> 896 if (unlikely(read_cred_subscribers(tsk->cred) < 2 || >> 897 creds_are_invalid(tsk->cred))) >> 898 goto invalid_creds; >> 899 } else { >> 900 if (unlikely(read_cred_subscribers(tsk->real_cred) < 1 || >> 901 read_cred_subscribers(tsk->cred) < 1 || >> 902 creds_are_invalid(tsk->real_cred) || >> 903 creds_are_invalid(tsk->cred))) >> 904 goto invalid_creds; >> 905 } >> 906 return; >> 907 >> 908 invalid_creds: >> 909 printk(KERN_ERR "CRED: Invalid process credentials\n"); >> 910 printk(KERN_ERR "CRED: At %s:%u\n", file, line); >> 911 >> 912 dump_invalid_creds(tsk->real_cred, "Real", tsk); >> 913 if (tsk->cred != tsk->real_cred) >> 914 dump_invalid_creds(tsk->cred, "Effective", tsk); >> 915 else >> 916 printk(KERN_ERR "CRED: Effective creds == Real creds\n"); >> 917 BUG(); >> 918 } >> 919 EXPORT_SYMBOL(__validate_process_creds); >> 920 >> 921 /* >> 922 * check creds for do_exit() >> 923 */ >> 924 void validate_creds_for_do_exit(struct task_struct *tsk) >> 925 { >> 926 kdebug("validate_creds_for_do_exit(%p,%p{%d,%d})", >> 927 tsk->real_cred, tsk->cred, >> 928 atomic_read(&tsk->cred->usage), >> 929 read_cred_subscribers(tsk->cred)); >> 930 >> 931 __validate_process_creds(tsk, __FILE__, __LINE__); >> 932 } >> 933 >> 934 #endif /* CONFIG_DEBUG_CREDENTIALS */ 735 935
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