1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3 * Copyright (C) 2008 IBM Corporation
4 * Author: Mimi Zohar <zohar@us.ibm.com>
5 *
6 * ima_policy.c
7 * - initialize default measure policy rules
8 */
9
10 #include <linux/init.h>
11 #include <linux/list.h>
12 #include <linux/kernel_read_file.h>
13 #include <linux/fs.h>
14 #include <linux/security.h>
15 #include <linux/magic.h>
16 #include <linux/parser.h>
17 #include <linux/slab.h>
18 #include <linux/rculist.h>
19 #include <linux/seq_file.h>
20 #include <linux/ima.h>
21
22 #include "ima.h"
23
24 /* flags definitions */
25 #define IMA_FUNC 0x0001
26 #define IMA_MASK 0x0002
27 #define IMA_FSMAGIC 0x0004
28 #define IMA_UID 0x0008
29 #define IMA_FOWNER 0x0010
30 #define IMA_FSUUID 0x0020
31 #define IMA_INMASK 0x0040
32 #define IMA_EUID 0x0080
33 #define IMA_PCR 0x0100
34 #define IMA_FSNAME 0x0200
35 #define IMA_KEYRINGS 0x0400
36 #define IMA_LABEL 0x0800
37 #define IMA_VALIDATE_ALGOS 0x1000
38 #define IMA_GID 0x2000
39 #define IMA_EGID 0x4000
40 #define IMA_FGROUP 0x8000
41 #define IMA_FS_SUBTYPE 0x10000
42
43 #define UNKNOWN 0
44 #define MEASURE 0x0001 /* same as IMA_MEASURE */
45 #define DONT_MEASURE 0x0002
46 #define APPRAISE 0x0004 /* same as IMA_APPRAISE */
47 #define DONT_APPRAISE 0x0008
48 #define AUDIT 0x0040
49 #define DONT_AUDIT 0x0080
50 #define HASH 0x0100
51 #define DONT_HASH 0x0200
52
53 #define INVALID_PCR(a) (((a) < 0) || \
54 (a) >= (sizeof_field(struct ima_iint_cache, measured_pcrs) * 8))
55
56 static size_t max_rule_len;
57
58 int ima_policy_flag;
59 static int temp_ima_appraise;
60 static int build_ima_appraise __ro_after_init;
61
62 atomic_t ima_setxattr_allowed_hash_algorithms;
63
64 #define MAX_LSM_RULES 6
65 enum lsm_rule_types { LSM_OBJ_USER, LSM_OBJ_ROLE, LSM_OBJ_TYPE,
66 LSM_SUBJ_USER, LSM_SUBJ_ROLE, LSM_SUBJ_TYPE
67 };
68
69 enum policy_types { ORIGINAL_TCB = 1, DEFAULT_TCB };
70
71 enum policy_rule_list { IMA_DEFAULT_POLICY = 1, IMA_CUSTOM_POLICY };
72
73 struct ima_rule_opt_list {
74 size_t count;
75 char *items[] __counted_by(count);
76 };
77
78 /*
79 * These comparators are needed nowhere outside of ima so just define them here.
80 * This pattern should hopefully never be needed outside of ima.
81 */
vfsuid_gt_kuid(vfsuid_t vfsuid,kuid_t kuid)82 static inline bool vfsuid_gt_kuid(vfsuid_t vfsuid, kuid_t kuid)
83 {
84 return __vfsuid_val(vfsuid) > __kuid_val(kuid);
85 }
86
vfsgid_gt_kgid(vfsgid_t vfsgid,kgid_t kgid)87 static inline bool vfsgid_gt_kgid(vfsgid_t vfsgid, kgid_t kgid)
88 {
89 return __vfsgid_val(vfsgid) > __kgid_val(kgid);
90 }
91
vfsuid_lt_kuid(vfsuid_t vfsuid,kuid_t kuid)92 static inline bool vfsuid_lt_kuid(vfsuid_t vfsuid, kuid_t kuid)
93 {
94 return __vfsuid_val(vfsuid) < __kuid_val(kuid);
95 }
96
vfsgid_lt_kgid(vfsgid_t vfsgid,kgid_t kgid)97 static inline bool vfsgid_lt_kgid(vfsgid_t vfsgid, kgid_t kgid)
98 {
99 return __vfsgid_val(vfsgid) < __kgid_val(kgid);
100 }
101
102 struct ima_rule_entry {
103 struct list_head list;
104 int action;
105 unsigned int flags;
106 enum ima_hooks func;
107 int mask;
108 unsigned long fsmagic;
109 uuid_t fsuuid;
110 kuid_t uid;
111 kgid_t gid;
112 kuid_t fowner;
113 kgid_t fgroup;
114 bool (*uid_op)(kuid_t cred_uid, kuid_t rule_uid); /* Handlers for operators */
115 bool (*gid_op)(kgid_t cred_gid, kgid_t rule_gid);
116 bool (*fowner_op)(vfsuid_t vfsuid, kuid_t rule_uid); /* vfsuid_eq_kuid(), vfsuid_gt_kuid(), vfsuid_lt_kuid() */
117 bool (*fgroup_op)(vfsgid_t vfsgid, kgid_t rule_gid); /* vfsgid_eq_kgid(), vfsgid_gt_kgid(), vfsgid_lt_kgid() */
118 int pcr;
119 unsigned int allowed_algos; /* bitfield of allowed hash algorithms */
120 struct {
121 void *rule; /* LSM file metadata specific */
122 char *args_p; /* audit value */
123 int type; /* audit type */
124 } lsm[MAX_LSM_RULES];
125 char *fsname;
126 char *fs_subtype;
127 struct ima_rule_opt_list *keyrings; /* Measure keys added to these keyrings */
128 struct ima_rule_opt_list *label; /* Measure data grouped under this label */
129 struct ima_template_desc *template;
130 };
131
132 /*
133 * sanity check in case the kernels gains more hash algorithms that can
134 * fit in an unsigned int
135 */
136 static_assert(
137 8 * sizeof(unsigned int) >= HASH_ALGO__LAST,
138 "The bitfield allowed_algos in ima_rule_entry is too small to contain all the supported hash algorithms, consider using a bigger type");
139
140 /*
141 * Without LSM specific knowledge, the default policy can only be
142 * written in terms of .action, .func, .mask, .fsmagic, .uid, .gid,
143 * .fowner, and .fgroup
144 */
145
146 /*
147 * The minimum rule set to allow for full TCB coverage. Measures all files
148 * opened or mmap for exec and everything read by root. Dangerous because
149 * normal users can easily run the machine out of memory simply building
150 * and running executables.
151 */
152 static struct ima_rule_entry dont_measure_rules[] __ro_after_init = {
153 {.action = DONT_MEASURE, .fsmagic = PROC_SUPER_MAGIC, .flags = IMA_FSMAGIC},
154 {.action = DONT_MEASURE, .fsmagic = SYSFS_MAGIC, .flags = IMA_FSMAGIC},
155 {.action = DONT_MEASURE, .fsmagic = DEBUGFS_MAGIC, .flags = IMA_FSMAGIC},
156 {.action = DONT_MEASURE, .fsmagic = TMPFS_MAGIC, .func = FILE_CHECK,
157 .flags = IMA_FSMAGIC | IMA_FUNC},
158 {.action = DONT_MEASURE, .fsmagic = DEVPTS_SUPER_MAGIC, .flags = IMA_FSMAGIC},
159 {.action = DONT_MEASURE, .fsmagic = BINFMTFS_MAGIC, .flags = IMA_FSMAGIC},
160 {.action = DONT_MEASURE, .fsmagic = SECURITYFS_MAGIC, .flags = IMA_FSMAGIC},
161 {.action = DONT_MEASURE, .fsmagic = SELINUX_MAGIC, .flags = IMA_FSMAGIC},
162 {.action = DONT_MEASURE, .fsmagic = SMACK_MAGIC, .flags = IMA_FSMAGIC},
163 {.action = DONT_MEASURE, .fsmagic = CGROUP_SUPER_MAGIC,
164 .flags = IMA_FSMAGIC},
165 {.action = DONT_MEASURE, .fsmagic = CGROUP2_SUPER_MAGIC,
166 .flags = IMA_FSMAGIC},
167 {.action = DONT_MEASURE, .fsmagic = NSFS_MAGIC, .flags = IMA_FSMAGIC},
168 {.action = DONT_MEASURE, .fsmagic = EFIVARFS_MAGIC,
169 .flags = IMA_FSMAGIC},
170 {.action = DONT_MEASURE, .fsmagic = CONFIGFS_MAGIC,
171 .flags = IMA_FSMAGIC}
172 };
173
174 static struct ima_rule_entry original_measurement_rules[] __ro_after_init = {
175 {.action = MEASURE, .func = MMAP_CHECK, .mask = MAY_EXEC,
176 .flags = IMA_FUNC | IMA_MASK},
177 {.action = MEASURE, .func = BPRM_CHECK, .mask = MAY_EXEC,
178 .flags = IMA_FUNC | IMA_MASK},
179 {.action = MEASURE, .func = FILE_CHECK, .mask = MAY_READ,
180 .uid = GLOBAL_ROOT_UID, .uid_op = &uid_eq,
181 .flags = IMA_FUNC | IMA_MASK | IMA_UID},
182 {.action = MEASURE, .func = MODULE_CHECK, .flags = IMA_FUNC},
183 {.action = MEASURE, .func = FIRMWARE_CHECK, .flags = IMA_FUNC},
184 };
185
186 static struct ima_rule_entry default_measurement_rules[] __ro_after_init = {
187 {.action = MEASURE, .func = MMAP_CHECK, .mask = MAY_EXEC,
188 .flags = IMA_FUNC | IMA_MASK},
189 {.action = MEASURE, .func = BPRM_CHECK, .mask = MAY_EXEC,
190 .flags = IMA_FUNC | IMA_MASK},
191 {.action = MEASURE, .func = FILE_CHECK, .mask = MAY_READ,
192 .uid = GLOBAL_ROOT_UID, .uid_op = &uid_eq,
193 .flags = IMA_FUNC | IMA_INMASK | IMA_EUID},
194 {.action = MEASURE, .func = FILE_CHECK, .mask = MAY_READ,
195 .uid = GLOBAL_ROOT_UID, .uid_op = &uid_eq,
196 .flags = IMA_FUNC | IMA_INMASK | IMA_UID},
197 {.action = MEASURE, .func = MODULE_CHECK, .flags = IMA_FUNC},
198 {.action = MEASURE, .func = FIRMWARE_CHECK, .flags = IMA_FUNC},
199 {.action = MEASURE, .func = POLICY_CHECK, .flags = IMA_FUNC},
200 };
201
202 static struct ima_rule_entry default_appraise_rules[] __ro_after_init = {
203 {.action = DONT_APPRAISE, .fsmagic = PROC_SUPER_MAGIC, .flags = IMA_FSMAGIC},
204 {.action = DONT_APPRAISE, .fsmagic = SYSFS_MAGIC, .flags = IMA_FSMAGIC},
205 {.action = DONT_APPRAISE, .fsmagic = DEBUGFS_MAGIC, .flags = IMA_FSMAGIC},
206 {.action = DONT_APPRAISE, .fsmagic = TMPFS_MAGIC, .flags = IMA_FSMAGIC},
207 {.action = DONT_APPRAISE, .fsmagic = RAMFS_MAGIC, .flags = IMA_FSMAGIC},
208 {.action = DONT_APPRAISE, .fsmagic = DEVPTS_SUPER_MAGIC, .flags = IMA_FSMAGIC},
209 {.action = DONT_APPRAISE, .fsmagic = BINFMTFS_MAGIC, .flags = IMA_FSMAGIC},
210 {.action = DONT_APPRAISE, .fsmagic = SECURITYFS_MAGIC, .flags = IMA_FSMAGIC},
211 {.action = DONT_APPRAISE, .fsmagic = SELINUX_MAGIC, .flags = IMA_FSMAGIC},
212 {.action = DONT_APPRAISE, .fsmagic = SMACK_MAGIC, .flags = IMA_FSMAGIC},
213 {.action = DONT_APPRAISE, .fsmagic = NSFS_MAGIC, .flags = IMA_FSMAGIC},
214 {.action = DONT_APPRAISE, .fsmagic = EFIVARFS_MAGIC, .flags = IMA_FSMAGIC},
215 {.action = DONT_APPRAISE, .fsmagic = CGROUP_SUPER_MAGIC, .flags = IMA_FSMAGIC},
216 {.action = DONT_APPRAISE, .fsmagic = CGROUP2_SUPER_MAGIC, .flags = IMA_FSMAGIC},
217 {.action = DONT_APPRAISE, .fsmagic = CONFIGFS_MAGIC,
218 .flags = IMA_FSMAGIC},
219 #ifdef CONFIG_IMA_WRITE_POLICY
220 {.action = APPRAISE, .func = POLICY_CHECK,
221 .flags = IMA_FUNC | IMA_DIGSIG_REQUIRED},
222 #endif
223 #ifndef CONFIG_IMA_APPRAISE_SIGNED_INIT
224 {.action = APPRAISE, .fowner = GLOBAL_ROOT_UID, .fowner_op = &vfsuid_eq_kuid,
225 .flags = IMA_FOWNER},
226 #else
227 /* force signature */
228 {.action = APPRAISE, .fowner = GLOBAL_ROOT_UID, .fowner_op = &vfsuid_eq_kuid,
229 .flags = IMA_FOWNER | IMA_DIGSIG_REQUIRED},
230 #endif
231 };
232
233 static struct ima_rule_entry build_appraise_rules[] __ro_after_init = {
234 #ifdef CONFIG_IMA_APPRAISE_REQUIRE_MODULE_SIGS
235 {.action = APPRAISE, .func = MODULE_CHECK,
236 .flags = IMA_FUNC | IMA_DIGSIG_REQUIRED},
237 #endif
238 #ifdef CONFIG_IMA_APPRAISE_REQUIRE_FIRMWARE_SIGS
239 {.action = APPRAISE, .func = FIRMWARE_CHECK,
240 .flags = IMA_FUNC | IMA_DIGSIG_REQUIRED},
241 #endif
242 #ifdef CONFIG_IMA_APPRAISE_REQUIRE_KEXEC_SIGS
243 {.action = APPRAISE, .func = KEXEC_KERNEL_CHECK,
244 .flags = IMA_FUNC | IMA_DIGSIG_REQUIRED},
245 #endif
246 #ifdef CONFIG_IMA_APPRAISE_REQUIRE_POLICY_SIGS
247 {.action = APPRAISE, .func = POLICY_CHECK,
248 .flags = IMA_FUNC | IMA_DIGSIG_REQUIRED},
249 #endif
250 };
251
252 static struct ima_rule_entry secure_boot_rules[] __ro_after_init = {
253 {.action = APPRAISE, .func = MODULE_CHECK,
254 .flags = IMA_FUNC | IMA_DIGSIG_REQUIRED | IMA_MODSIG_ALLOWED |
255 IMA_CHECK_BLACKLIST},
256 {.action = APPRAISE, .func = FIRMWARE_CHECK,
257 .flags = IMA_FUNC | IMA_DIGSIG_REQUIRED},
258 {.action = APPRAISE, .func = KEXEC_KERNEL_CHECK,
259 .flags = IMA_FUNC | IMA_DIGSIG_REQUIRED},
260 {.action = APPRAISE, .func = POLICY_CHECK,
261 .flags = IMA_FUNC | IMA_DIGSIG_REQUIRED},
262 };
263
264 static struct ima_rule_entry critical_data_rules[] __ro_after_init = {
265 {.action = MEASURE, .func = CRITICAL_DATA, .flags = IMA_FUNC},
266 };
267
268 /* An array of architecture specific rules */
269 static struct ima_rule_entry *arch_policy_entry __ro_after_init;
270
271 static LIST_HEAD(ima_default_rules);
272 static LIST_HEAD(ima_policy_rules);
273 static LIST_HEAD(ima_temp_rules);
274 static struct list_head __rcu *ima_rules = (struct list_head __rcu *)(&ima_default_rules);
275
276 static int ima_policy __initdata;
277
default_measure_policy_setup(char * str)278 static int __init default_measure_policy_setup(char *str)
279 {
280 if (ima_policy)
281 return 1;
282
283 ima_policy = ORIGINAL_TCB;
284 return 1;
285 }
286 __setup("ima_tcb", default_measure_policy_setup);
287
288 static bool ima_use_appraise_tcb __initdata;
289 static bool ima_use_secure_boot __initdata;
290 static bool ima_use_critical_data __initdata;
291 static bool ima_fail_unverifiable_sigs __ro_after_init;
policy_setup(char * str)292 static int __init policy_setup(char *str)
293 {
294 char *p;
295
296 while ((p = strsep(&str, " |\n")) != NULL) {
297 if (*p == ' ')
298 continue;
299 if ((strcmp(p, "tcb") == 0) && !ima_policy)
300 ima_policy = DEFAULT_TCB;
301 else if (strcmp(p, "appraise_tcb") == 0)
302 ima_use_appraise_tcb = true;
303 else if (strcmp(p, "secure_boot") == 0)
304 ima_use_secure_boot = true;
305 else if (strcmp(p, "critical_data") == 0)
306 ima_use_critical_data = true;
307 else if (strcmp(p, "fail_securely") == 0)
308 ima_fail_unverifiable_sigs = true;
309 else
310 pr_err("policy \"%s\" not found", p);
311 }
312
313 return 1;
314 }
315 __setup("ima_policy=", policy_setup);
316
default_appraise_policy_setup(char * str)317 static int __init default_appraise_policy_setup(char *str)
318 {
319 ima_use_appraise_tcb = true;
320 return 1;
321 }
322 __setup("ima_appraise_tcb", default_appraise_policy_setup);
323
ima_alloc_rule_opt_list(const substring_t * src)324 static struct ima_rule_opt_list *ima_alloc_rule_opt_list(const substring_t *src)
325 {
326 struct ima_rule_opt_list *opt_list;
327 size_t count = 0;
328 char *src_copy;
329 char *cur, *next;
330 size_t i;
331
332 src_copy = match_strdup(src);
333 if (!src_copy)
334 return ERR_PTR(-ENOMEM);
335
336 next = src_copy;
337 while ((cur = strsep(&next, "|"))) {
338 /* Don't accept an empty list item */
339 if (!(*cur)) {
340 kfree(src_copy);
341 return ERR_PTR(-EINVAL);
342 }
343 count++;
344 }
345
346 /* Don't accept an empty list */
347 if (!count) {
348 kfree(src_copy);
349 return ERR_PTR(-EINVAL);
350 }
351
352 opt_list = kzalloc_flex(*opt_list, items, count);
353 if (!opt_list) {
354 kfree(src_copy);
355 return ERR_PTR(-ENOMEM);
356 }
357 opt_list->count = count;
358
359 /*
360 * strsep() has already replaced all instances of '|' with '\0',
361 * leaving a byte sequence of NUL-terminated strings. Reference each
362 * string with the array of items.
363 *
364 * IMPORTANT: Ownership of the allocated buffer is transferred from
365 * src_copy to the first element in the items array. To free the
366 * buffer, kfree() must only be called on the first element of the
367 * array.
368 */
369 for (i = 0, cur = src_copy; i < count; i++) {
370 opt_list->items[i] = cur;
371 cur = strchr(cur, '\0') + 1;
372 }
373
374 return opt_list;
375 }
376
ima_free_rule_opt_list(struct ima_rule_opt_list * opt_list)377 static void ima_free_rule_opt_list(struct ima_rule_opt_list *opt_list)
378 {
379 if (!opt_list)
380 return;
381
382 if (opt_list->count) {
383 kfree(opt_list->items[0]);
384 opt_list->count = 0;
385 }
386
387 kfree(opt_list);
388 }
389
ima_lsm_free_rule(struct ima_rule_entry * entry)390 static void ima_lsm_free_rule(struct ima_rule_entry *entry)
391 {
392 int i;
393
394 for (i = 0; i < MAX_LSM_RULES; i++) {
395 ima_filter_rule_free(entry->lsm[i].rule);
396 kfree(entry->lsm[i].args_p);
397 }
398 }
399
ima_free_rule(struct ima_rule_entry * entry)400 static void ima_free_rule(struct ima_rule_entry *entry)
401 {
402 if (!entry)
403 return;
404
405 /*
406 * entry->template->fields may be allocated in ima_parse_rule() but that
407 * reference is owned by the corresponding ima_template_desc element in
408 * the defined_templates list and cannot be freed here
409 */
410 kfree(entry->fsname);
411 kfree(entry->fs_subtype);
412 ima_free_rule_opt_list(entry->keyrings);
413 ima_lsm_free_rule(entry);
414 kfree(entry);
415 }
416
ima_lsm_copy_rule(struct ima_rule_entry * entry,gfp_t gfp)417 static struct ima_rule_entry *ima_lsm_copy_rule(struct ima_rule_entry *entry,
418 gfp_t gfp)
419 {
420 struct ima_rule_entry *nentry;
421 int i;
422
423 /*
424 * Immutable elements are copied over as pointers and data; only
425 * lsm rules can change
426 */
427 nentry = kmemdup(entry, sizeof(*nentry), gfp);
428 if (!nentry)
429 return NULL;
430
431 memset(nentry->lsm, 0, sizeof_field(struct ima_rule_entry, lsm));
432
433 for (i = 0; i < MAX_LSM_RULES; i++) {
434 if (!entry->lsm[i].args_p)
435 continue;
436
437 nentry->lsm[i].type = entry->lsm[i].type;
438 nentry->lsm[i].args_p = entry->lsm[i].args_p;
439
440 ima_filter_rule_init(nentry->lsm[i].type, Audit_equal,
441 nentry->lsm[i].args_p,
442 &nentry->lsm[i].rule,
443 gfp);
444 if (!nentry->lsm[i].rule)
445 pr_warn("rule for LSM \'%s\' is undefined\n",
446 nentry->lsm[i].args_p);
447 }
448 return nentry;
449 }
450
ima_lsm_update_rule(struct ima_rule_entry * entry)451 static int ima_lsm_update_rule(struct ima_rule_entry *entry)
452 {
453 int i;
454 struct ima_rule_entry *nentry;
455
456 nentry = ima_lsm_copy_rule(entry, GFP_KERNEL);
457 if (!nentry)
458 return -ENOMEM;
459
460 list_replace_rcu(&entry->list, &nentry->list);
461 synchronize_rcu();
462 /*
463 * ima_lsm_copy_rule() shallow copied all references, except for the
464 * LSM references, from entry to nentry so we only want to free the LSM
465 * references and the entry itself. All other memory references will now
466 * be owned by nentry.
467 */
468 for (i = 0; i < MAX_LSM_RULES; i++)
469 ima_filter_rule_free(entry->lsm[i].rule);
470 kfree(entry);
471
472 return 0;
473 }
474
ima_rule_contains_lsm_cond(struct ima_rule_entry * entry)475 static bool ima_rule_contains_lsm_cond(struct ima_rule_entry *entry)
476 {
477 int i;
478
479 for (i = 0; i < MAX_LSM_RULES; i++)
480 if (entry->lsm[i].args_p)
481 return true;
482
483 return false;
484 }
485
486 /*
487 * The LSM policy can be reloaded, leaving the IMA LSM based rules referring
488 * to the old, stale LSM policy. Update the IMA LSM based rules to reflect
489 * the reloaded LSM policy.
490 */
ima_lsm_update_rules(void)491 static void ima_lsm_update_rules(void)
492 {
493 struct ima_rule_entry *entry, *e;
494 int result;
495
496 list_for_each_entry_safe(entry, e, &ima_policy_rules, list) {
497 if (!ima_rule_contains_lsm_cond(entry))
498 continue;
499
500 result = ima_lsm_update_rule(entry);
501 if (result) {
502 pr_err("lsm rule update error %d\n", result);
503 return;
504 }
505 }
506 }
507
ima_lsm_policy_change(struct notifier_block * nb,unsigned long event,void * lsm_data)508 int ima_lsm_policy_change(struct notifier_block *nb, unsigned long event,
509 void *lsm_data)
510 {
511 if (event != LSM_POLICY_CHANGE)
512 return NOTIFY_DONE;
513
514 ima_lsm_update_rules();
515 return NOTIFY_OK;
516 }
517
518 /**
519 * ima_match_rule_data - determine whether func_data matches the policy rule
520 * @rule: a pointer to a rule
521 * @func_data: data to match against the measure rule data
522 * @cred: a pointer to a credentials structure for user validation
523 *
524 * Returns true if func_data matches one in the rule, false otherwise.
525 */
ima_match_rule_data(struct ima_rule_entry * rule,const char * func_data,const struct cred * cred)526 static bool ima_match_rule_data(struct ima_rule_entry *rule,
527 const char *func_data,
528 const struct cred *cred)
529 {
530 const struct ima_rule_opt_list *opt_list = NULL;
531 bool matched = false;
532 size_t i;
533
534 if ((rule->flags & IMA_UID) && !rule->uid_op(cred->uid, rule->uid))
535 return false;
536
537 switch (rule->func) {
538 case KEY_CHECK:
539 if (!rule->keyrings)
540 return true;
541
542 opt_list = rule->keyrings;
543 break;
544 case CRITICAL_DATA:
545 if (!rule->label)
546 return true;
547
548 opt_list = rule->label;
549 break;
550 case POLICY_CHECK:
551 return true;
552 default:
553 return false;
554 }
555
556 if (!func_data)
557 return false;
558
559 for (i = 0; i < opt_list->count; i++) {
560 if (!strcmp(opt_list->items[i], func_data)) {
561 matched = true;
562 break;
563 }
564 }
565
566 return matched;
567 }
568
569 /**
570 * ima_match_rules - determine whether an inode matches the policy rule.
571 * @rule: a pointer to a rule
572 * @idmap: idmap of the mount the inode was found from
573 * @inode: a pointer to an inode
574 * @cred: a pointer to a credentials structure for user validation
575 * @prop: LSM properties of the task to be validated
576 * @func: LIM hook identifier
577 * @mask: requested action (MAY_READ | MAY_WRITE | MAY_APPEND | MAY_EXEC)
578 * @func_data: func specific data, may be NULL
579 *
580 * Returns true on rule match, false on failure.
581 */
ima_match_rules(struct ima_rule_entry * rule,struct mnt_idmap * idmap,struct inode * inode,const struct cred * cred,struct lsm_prop * prop,enum ima_hooks func,int mask,const char * func_data)582 static bool ima_match_rules(struct ima_rule_entry *rule,
583 struct mnt_idmap *idmap,
584 struct inode *inode, const struct cred *cred,
585 struct lsm_prop *prop, enum ima_hooks func, int mask,
586 const char *func_data)
587 {
588 int i;
589 bool result = false;
590 struct ima_rule_entry *lsm_rule = rule;
591 bool rule_reinitialized = false;
592
593 if ((rule->flags & IMA_FUNC) &&
594 (rule->func != func && func != POST_SETATTR))
595 return false;
596
597 switch (func) {
598 case POLICY_CHECK:
599 if (inode)
600 break;
601 fallthrough;
602 case KEY_CHECK:
603 case CRITICAL_DATA:
604 return ((rule->func == func) &&
605 ima_match_rule_data(rule, func_data, cred));
606 default:
607 break;
608 }
609
610 if ((rule->flags & IMA_MASK) &&
611 (rule->mask != mask && func != POST_SETATTR))
612 return false;
613 if ((rule->flags & IMA_INMASK) &&
614 (!(rule->mask & mask) && func != POST_SETATTR))
615 return false;
616 if ((rule->flags & IMA_FSMAGIC)
617 && rule->fsmagic != inode->i_sb->s_magic)
618 return false;
619 if ((rule->flags & IMA_FSNAME)
620 && strcmp(rule->fsname, inode->i_sb->s_type->name))
621 return false;
622 if (rule->flags & IMA_FS_SUBTYPE) {
623 if (!inode->i_sb->s_subtype)
624 return false;
625 if (strcmp(rule->fs_subtype, inode->i_sb->s_subtype))
626 return false;
627 }
628 if ((rule->flags & IMA_FSUUID) &&
629 !uuid_equal(&rule->fsuuid, &inode->i_sb->s_uuid))
630 return false;
631 if ((rule->flags & IMA_UID) && !rule->uid_op(cred->uid, rule->uid))
632 return false;
633 if (rule->flags & IMA_EUID) {
634 if (has_capability_noaudit(current, CAP_SETUID)) {
635 if (!rule->uid_op(cred->euid, rule->uid)
636 && !rule->uid_op(cred->suid, rule->uid)
637 && !rule->uid_op(cred->uid, rule->uid))
638 return false;
639 } else if (!rule->uid_op(cred->euid, rule->uid))
640 return false;
641 }
642 if ((rule->flags & IMA_GID) && !rule->gid_op(cred->gid, rule->gid))
643 return false;
644 if (rule->flags & IMA_EGID) {
645 if (has_capability_noaudit(current, CAP_SETGID)) {
646 if (!rule->gid_op(cred->egid, rule->gid)
647 && !rule->gid_op(cred->sgid, rule->gid)
648 && !rule->gid_op(cred->gid, rule->gid))
649 return false;
650 } else if (!rule->gid_op(cred->egid, rule->gid))
651 return false;
652 }
653 if ((rule->flags & IMA_FOWNER) &&
654 !rule->fowner_op(i_uid_into_vfsuid(idmap, inode),
655 rule->fowner))
656 return false;
657 if ((rule->flags & IMA_FGROUP) &&
658 !rule->fgroup_op(i_gid_into_vfsgid(idmap, inode),
659 rule->fgroup))
660 return false;
661 for (i = 0; i < MAX_LSM_RULES; i++) {
662 int rc = 0;
663 struct lsm_prop inode_prop = { };
664
665 if (!lsm_rule->lsm[i].rule) {
666 if (!lsm_rule->lsm[i].args_p)
667 continue;
668 else
669 return false;
670 }
671
672 retry:
673 switch (i) {
674 case LSM_OBJ_USER:
675 case LSM_OBJ_ROLE:
676 case LSM_OBJ_TYPE:
677 security_inode_getlsmprop(inode, &inode_prop);
678 rc = ima_filter_rule_match(&inode_prop,
679 lsm_rule->lsm[i].type,
680 Audit_equal,
681 lsm_rule->lsm[i].rule);
682 break;
683 case LSM_SUBJ_USER:
684 case LSM_SUBJ_ROLE:
685 case LSM_SUBJ_TYPE:
686 rc = ima_filter_rule_match(prop, lsm_rule->lsm[i].type,
687 Audit_equal,
688 lsm_rule->lsm[i].rule);
689 break;
690 default:
691 break;
692 }
693
694 if (rc == -ESTALE && !rule_reinitialized) {
695 lsm_rule = ima_lsm_copy_rule(rule, GFP_ATOMIC);
696 if (lsm_rule) {
697 rule_reinitialized = true;
698 goto retry;
699 }
700 }
701 if (rc <= 0) {
702 result = false;
703 goto out;
704 }
705 }
706 result = true;
707
708 out:
709 if (rule_reinitialized) {
710 for (i = 0; i < MAX_LSM_RULES; i++)
711 ima_filter_rule_free(lsm_rule->lsm[i].rule);
712 kfree(lsm_rule);
713 }
714 return result;
715 }
716
717 /*
718 * In addition to knowing that we need to appraise the file in general,
719 * we need to differentiate between calling hooks, for hook specific rules.
720 */
get_subaction(struct ima_rule_entry * rule,enum ima_hooks func)721 static int get_subaction(struct ima_rule_entry *rule, enum ima_hooks func)
722 {
723 if (!(rule->flags & IMA_FUNC))
724 return IMA_FILE_APPRAISE;
725
726 switch (func) {
727 case MMAP_CHECK:
728 case MMAP_CHECK_REQPROT:
729 return IMA_MMAP_APPRAISE;
730 case BPRM_CHECK:
731 return IMA_BPRM_APPRAISE;
732 case CREDS_CHECK:
733 return IMA_CREDS_APPRAISE;
734 case FILE_CHECK:
735 case POST_SETATTR:
736 return IMA_FILE_APPRAISE;
737 case MODULE_CHECK ... MAX_CHECK - 1:
738 default:
739 return IMA_READ_APPRAISE;
740 }
741 }
742
743 /**
744 * ima_match_policy - decision based on LSM and other conditions
745 * @idmap: idmap of the mount the inode was found from
746 * @inode: pointer to an inode for which the policy decision is being made
747 * @cred: pointer to a credentials structure for which the policy decision is
748 * being made
749 * @prop: LSM properties of the task to be validated
750 * @func: IMA hook identifier
751 * @mask: requested action (MAY_READ | MAY_WRITE | MAY_APPEND | MAY_EXEC)
752 * @flags: IMA actions to consider (e.g. IMA_MEASURE | IMA_APPRAISE)
753 * @pcr: set the pcr to extend
754 * @template_desc: the template that should be used for this rule
755 * @func_data: func specific data, may be NULL
756 * @allowed_algos: allowlist of hash algorithms for the IMA xattr
757 *
758 * Measure decision based on func/mask/fsmagic and LSM(subj/obj/type)
759 * conditions.
760 *
761 * Since the IMA policy may be updated multiple times we need to lock the
762 * list when walking it. Reads are many orders of magnitude more numerous
763 * than writes so ima_match_policy() is classical RCU candidate.
764 */
ima_match_policy(struct mnt_idmap * idmap,struct inode * inode,const struct cred * cred,struct lsm_prop * prop,enum ima_hooks func,int mask,int flags,int * pcr,struct ima_template_desc ** template_desc,const char * func_data,unsigned int * allowed_algos)765 int ima_match_policy(struct mnt_idmap *idmap, struct inode *inode,
766 const struct cred *cred, struct lsm_prop *prop,
767 enum ima_hooks func, int mask, int flags, int *pcr,
768 struct ima_template_desc **template_desc,
769 const char *func_data, unsigned int *allowed_algos)
770 {
771 struct ima_rule_entry *entry;
772 int action = 0, actmask = flags | (flags << 1);
773 struct list_head *ima_rules_tmp;
774
775 if (template_desc && !*template_desc)
776 *template_desc = ima_template_desc_current();
777
778 rcu_read_lock();
779 ima_rules_tmp = rcu_dereference(ima_rules);
780 list_for_each_entry_rcu(entry, ima_rules_tmp, list) {
781
782 if (!(entry->action & actmask))
783 continue;
784
785 if (!ima_match_rules(entry, idmap, inode, cred, prop,
786 func, mask, func_data))
787 continue;
788
789 action |= entry->flags & IMA_NONACTION_FLAGS;
790
791 action |= entry->action & IMA_DO_MASK;
792 if (entry->action & IMA_APPRAISE) {
793 action |= get_subaction(entry, func);
794 action &= ~IMA_HASH;
795 if (ima_fail_unverifiable_sigs)
796 action |= IMA_FAIL_UNVERIFIABLE_SIGS;
797
798 if (allowed_algos &&
799 entry->flags & IMA_VALIDATE_ALGOS)
800 *allowed_algos = entry->allowed_algos;
801 }
802
803 if (entry->action & IMA_DO_MASK)
804 actmask &= ~(entry->action | entry->action << 1);
805 else
806 actmask &= ~(entry->action | entry->action >> 1);
807
808 if ((pcr) && (entry->flags & IMA_PCR))
809 *pcr = entry->pcr;
810
811 if (template_desc && entry->template)
812 *template_desc = entry->template;
813
814 if (!actmask)
815 break;
816 }
817 rcu_read_unlock();
818
819 return action;
820 }
821
822 /**
823 * ima_update_policy_flags() - Update global IMA variables
824 *
825 * Update ima_policy_flag and ima_setxattr_allowed_hash_algorithms
826 * based on the currently loaded policy.
827 *
828 * With ima_policy_flag, the decision to short circuit out of a function
829 * or not call the function in the first place can be made earlier.
830 *
831 * With ima_setxattr_allowed_hash_algorithms, the policy can restrict the
832 * set of hash algorithms accepted when updating the security.ima xattr of
833 * a file.
834 *
835 * Context: called after a policy update and at system initialization.
836 */
ima_update_policy_flags(void)837 void ima_update_policy_flags(void)
838 {
839 struct ima_rule_entry *entry;
840 int new_policy_flag = 0;
841 struct list_head *ima_rules_tmp;
842
843 rcu_read_lock();
844 ima_rules_tmp = rcu_dereference(ima_rules);
845 list_for_each_entry_rcu(entry, ima_rules_tmp, list) {
846 /*
847 * SETXATTR_CHECK rules do not implement a full policy check
848 * because rule checking would probably have an important
849 * performance impact on setxattr(). As a consequence, only one
850 * SETXATTR_CHECK can be active at a given time.
851 * Because we want to preserve that property, we set out to use
852 * atomic_cmpxchg. Either:
853 * - the atomic was non-zero: a setxattr hash policy is
854 * already enforced, we do nothing
855 * - the atomic was zero: no setxattr policy was set, enable
856 * the setxattr hash policy
857 */
858 if (entry->func == SETXATTR_CHECK) {
859 atomic_cmpxchg(&ima_setxattr_allowed_hash_algorithms,
860 0, entry->allowed_algos);
861 /* SETXATTR_CHECK doesn't impact ima_policy_flag */
862 continue;
863 }
864
865 if (entry->action & IMA_DO_MASK)
866 new_policy_flag |= entry->action;
867 }
868 rcu_read_unlock();
869
870 ima_appraise |= (build_ima_appraise | temp_ima_appraise);
871 if (!ima_appraise)
872 new_policy_flag &= ~IMA_APPRAISE;
873
874 ima_policy_flag = new_policy_flag;
875 }
876
ima_appraise_flag(enum ima_hooks func)877 static int ima_appraise_flag(enum ima_hooks func)
878 {
879 if (func == MODULE_CHECK)
880 return IMA_APPRAISE_MODULES;
881 else if (func == FIRMWARE_CHECK)
882 return IMA_APPRAISE_FIRMWARE;
883 else if (func == POLICY_CHECK)
884 return IMA_APPRAISE_POLICY;
885 else if (func == KEXEC_KERNEL_CHECK)
886 return IMA_APPRAISE_KEXEC;
887 return 0;
888 }
889
add_rules(struct ima_rule_entry * entries,int count,enum policy_rule_list policy_rule)890 static void add_rules(struct ima_rule_entry *entries, int count,
891 enum policy_rule_list policy_rule)
892 {
893 int i = 0;
894
895 for (i = 0; i < count; i++) {
896 struct ima_rule_entry *entry;
897
898 if (policy_rule & IMA_DEFAULT_POLICY)
899 list_add_tail(&entries[i].list, &ima_default_rules);
900
901 if (policy_rule & IMA_CUSTOM_POLICY) {
902 entry = kmemdup(&entries[i], sizeof(*entry),
903 GFP_KERNEL);
904 if (!entry)
905 continue;
906
907 list_add_tail(&entry->list, &ima_policy_rules);
908 }
909 if (entries[i].action == APPRAISE) {
910 if (entries != build_appraise_rules)
911 temp_ima_appraise |=
912 ima_appraise_flag(entries[i].func);
913 else
914 build_ima_appraise |=
915 ima_appraise_flag(entries[i].func);
916 }
917 }
918 }
919
920 static int ima_parse_rule(char *rule, struct ima_rule_entry *entry);
921
ima_init_arch_policy(void)922 static int __init ima_init_arch_policy(void)
923 {
924 const char * const *arch_rules;
925 const char * const *rules;
926 int arch_entries = 0;
927 int i = 0;
928
929 arch_rules = arch_get_ima_policy();
930 if (!arch_rules)
931 return arch_entries;
932
933 /* Get number of rules */
934 for (rules = arch_rules; *rules != NULL; rules++)
935 arch_entries++;
936
937 arch_policy_entry = kzalloc_objs(*arch_policy_entry, arch_entries + 1);
938 if (!arch_policy_entry)
939 return 0;
940
941 /* Convert each policy string rules to struct ima_rule_entry format */
942 for (rules = arch_rules, i = 0; *rules != NULL; rules++) {
943 char rule[255];
944 int result;
945
946 result = strscpy(rule, *rules, sizeof(rule));
947
948 INIT_LIST_HEAD(&arch_policy_entry[i].list);
949 result = ima_parse_rule(rule, &arch_policy_entry[i]);
950 if (result) {
951 pr_warn("Skipping unknown architecture policy rule: %s\n",
952 rule);
953 memset(&arch_policy_entry[i], 0,
954 sizeof(*arch_policy_entry));
955 continue;
956 }
957 i++;
958 }
959 return i;
960 }
961
962 /**
963 * ima_init_policy - initialize the default measure rules.
964 *
965 * ima_rules points to either the ima_default_rules or the new ima_policy_rules.
966 */
ima_init_policy(void)967 void __init ima_init_policy(void)
968 {
969 int build_appraise_entries, arch_entries;
970
971 max_rule_len = 255;
972
973 /* if !ima_policy, we load NO default rules */
974 if (ima_policy)
975 add_rules(dont_measure_rules, ARRAY_SIZE(dont_measure_rules),
976 IMA_DEFAULT_POLICY);
977
978 switch (ima_policy) {
979 case ORIGINAL_TCB:
980 add_rules(original_measurement_rules,
981 ARRAY_SIZE(original_measurement_rules),
982 IMA_DEFAULT_POLICY);
983 break;
984 case DEFAULT_TCB:
985 add_rules(default_measurement_rules,
986 ARRAY_SIZE(default_measurement_rules),
987 IMA_DEFAULT_POLICY);
988 break;
989 default:
990 break;
991 }
992
993 /*
994 * Based on runtime secure boot flags, insert arch specific measurement
995 * and appraise rules requiring file signatures for both the initial
996 * and custom policies, prior to other appraise rules.
997 * (Highest priority)
998 */
999 arch_entries = ima_init_arch_policy();
1000 if (!arch_entries)
1001 pr_info("No architecture policies found\n");
1002 else
1003 add_rules(arch_policy_entry, arch_entries,
1004 IMA_DEFAULT_POLICY | IMA_CUSTOM_POLICY);
1005
1006 /*
1007 * Insert the builtin "secure_boot" policy rules requiring file
1008 * signatures, prior to other appraise rules.
1009 */
1010 if (ima_use_secure_boot)
1011 add_rules(secure_boot_rules, ARRAY_SIZE(secure_boot_rules),
1012 IMA_DEFAULT_POLICY);
1013
1014 /*
1015 * Insert the build time appraise rules requiring file signatures
1016 * for both the initial and custom policies, prior to other appraise
1017 * rules. As the secure boot rules includes all of the build time
1018 * rules, include either one or the other set of rules, but not both.
1019 */
1020 build_appraise_entries = ARRAY_SIZE(build_appraise_rules);
1021 if (build_appraise_entries) {
1022 if (ima_use_secure_boot)
1023 add_rules(build_appraise_rules, build_appraise_entries,
1024 IMA_CUSTOM_POLICY);
1025 else
1026 add_rules(build_appraise_rules, build_appraise_entries,
1027 IMA_DEFAULT_POLICY | IMA_CUSTOM_POLICY);
1028 }
1029
1030 if (ima_use_appraise_tcb)
1031 add_rules(default_appraise_rules,
1032 ARRAY_SIZE(default_appraise_rules),
1033 IMA_DEFAULT_POLICY);
1034
1035 if (ima_use_critical_data)
1036 add_rules(critical_data_rules,
1037 ARRAY_SIZE(critical_data_rules),
1038 IMA_DEFAULT_POLICY);
1039
1040 atomic_set(&ima_setxattr_allowed_hash_algorithms, 0);
1041
1042 ima_update_policy_flags();
1043 }
1044
1045 /* Make sure we have a valid policy, at least containing some rules. */
ima_check_policy(void)1046 int ima_check_policy(void)
1047 {
1048 if (list_empty(&ima_temp_rules))
1049 return -EINVAL;
1050 return 0;
1051 }
1052
1053 /**
1054 * ima_update_policy - update default_rules with new measure rules
1055 *
1056 * Called on file .release to update the default rules with a complete new
1057 * policy. What we do here is to splice ima_policy_rules and ima_temp_rules so
1058 * they make a queue. The policy may be updated multiple times and this is the
1059 * RCU updater.
1060 *
1061 * Policy rules are never deleted so ima_policy_flag gets zeroed only once when
1062 * we switch from the default policy to user defined.
1063 */
ima_update_policy(void)1064 void ima_update_policy(void)
1065 {
1066 struct list_head *policy = &ima_policy_rules;
1067
1068 list_splice_tail_init_rcu(&ima_temp_rules, policy, synchronize_rcu);
1069
1070 if (ima_rules != (struct list_head __rcu *)policy) {
1071 ima_policy_flag = 0;
1072
1073 rcu_assign_pointer(ima_rules, policy);
1074 /*
1075 * IMA architecture specific policy rules are specified
1076 * as strings and converted to an array of ima_entry_rules
1077 * on boot. After loading a custom policy, free the
1078 * architecture specific rules stored as an array.
1079 */
1080 kfree(arch_policy_entry);
1081 }
1082 ima_update_policy_flags();
1083
1084 /* Custom IMA policy has been loaded */
1085 ima_process_queued_keys();
1086 }
1087
1088 /* Keep the enumeration in sync with the policy_tokens! */
1089 enum policy_opt {
1090 Opt_measure, Opt_dont_measure,
1091 Opt_appraise, Opt_dont_appraise,
1092 Opt_audit, Opt_dont_audit, Opt_hash, Opt_dont_hash,
1093 Opt_obj_user, Opt_obj_role, Opt_obj_type,
1094 Opt_subj_user, Opt_subj_role, Opt_subj_type,
1095 Opt_func, Opt_mask, Opt_fsmagic, Opt_fsname, Opt_fs_subtype, Opt_fsuuid,
1096 Opt_uid_eq, Opt_euid_eq, Opt_gid_eq, Opt_egid_eq,
1097 Opt_fowner_eq, Opt_fgroup_eq,
1098 Opt_uid_gt, Opt_euid_gt, Opt_gid_gt, Opt_egid_gt,
1099 Opt_fowner_gt, Opt_fgroup_gt,
1100 Opt_uid_lt, Opt_euid_lt, Opt_gid_lt, Opt_egid_lt,
1101 Opt_fowner_lt, Opt_fgroup_lt,
1102 Opt_digest_type,
1103 Opt_appraise_type, Opt_appraise_flag, Opt_appraise_algos,
1104 Opt_permit_directio, Opt_pcr, Opt_template, Opt_keyrings,
1105 Opt_label, Opt_err
1106 };
1107
1108 static const match_table_t policy_tokens = {
1109 {Opt_measure, "measure"},
1110 {Opt_dont_measure, "dont_measure"},
1111 {Opt_appraise, "appraise"},
1112 {Opt_dont_appraise, "dont_appraise"},
1113 {Opt_audit, "audit"},
1114 {Opt_dont_audit, "dont_audit"},
1115 {Opt_hash, "hash"},
1116 {Opt_dont_hash, "dont_hash"},
1117 {Opt_obj_user, "obj_user=%s"},
1118 {Opt_obj_role, "obj_role=%s"},
1119 {Opt_obj_type, "obj_type=%s"},
1120 {Opt_subj_user, "subj_user=%s"},
1121 {Opt_subj_role, "subj_role=%s"},
1122 {Opt_subj_type, "subj_type=%s"},
1123 {Opt_func, "func=%s"},
1124 {Opt_mask, "mask=%s"},
1125 {Opt_fsmagic, "fsmagic=%s"},
1126 {Opt_fsname, "fsname=%s"},
1127 {Opt_fs_subtype, "fs_subtype=%s"},
1128 {Opt_fsuuid, "fsuuid=%s"},
1129 {Opt_uid_eq, "uid=%s"},
1130 {Opt_euid_eq, "euid=%s"},
1131 {Opt_gid_eq, "gid=%s"},
1132 {Opt_egid_eq, "egid=%s"},
1133 {Opt_fowner_eq, "fowner=%s"},
1134 {Opt_fgroup_eq, "fgroup=%s"},
1135 {Opt_uid_gt, "uid>%s"},
1136 {Opt_euid_gt, "euid>%s"},
1137 {Opt_gid_gt, "gid>%s"},
1138 {Opt_egid_gt, "egid>%s"},
1139 {Opt_fowner_gt, "fowner>%s"},
1140 {Opt_fgroup_gt, "fgroup>%s"},
1141 {Opt_uid_lt, "uid<%s"},
1142 {Opt_euid_lt, "euid<%s"},
1143 {Opt_gid_lt, "gid<%s"},
1144 {Opt_egid_lt, "egid<%s"},
1145 {Opt_fowner_lt, "fowner<%s"},
1146 {Opt_fgroup_lt, "fgroup<%s"},
1147 {Opt_digest_type, "digest_type=%s"},
1148 {Opt_appraise_type, "appraise_type=%s"},
1149 {Opt_appraise_flag, "appraise_flag=%s"},
1150 {Opt_appraise_algos, "appraise_algos=%s"},
1151 {Opt_permit_directio, "permit_directio"},
1152 {Opt_pcr, "pcr=%s"},
1153 {Opt_template, "template=%s"},
1154 {Opt_keyrings, "keyrings=%s"},
1155 {Opt_label, "label=%s"},
1156 {Opt_err, NULL}
1157 };
1158
ima_lsm_rule_init(struct ima_rule_entry * entry,substring_t * args,int lsm_rule,int audit_type)1159 static int ima_lsm_rule_init(struct ima_rule_entry *entry,
1160 substring_t *args, int lsm_rule, int audit_type)
1161 {
1162 int result;
1163
1164 if (entry->lsm[lsm_rule].rule)
1165 return -EINVAL;
1166
1167 entry->lsm[lsm_rule].args_p = match_strdup(args);
1168 if (!entry->lsm[lsm_rule].args_p)
1169 return -ENOMEM;
1170
1171 entry->lsm[lsm_rule].type = audit_type;
1172 result = ima_filter_rule_init(entry->lsm[lsm_rule].type, Audit_equal,
1173 entry->lsm[lsm_rule].args_p,
1174 &entry->lsm[lsm_rule].rule,
1175 GFP_KERNEL);
1176 if (!entry->lsm[lsm_rule].rule) {
1177 pr_warn("rule for LSM \'%s\' is undefined\n",
1178 entry->lsm[lsm_rule].args_p);
1179
1180 if (ima_rules == (struct list_head __rcu *)(&ima_default_rules)) {
1181 kfree(entry->lsm[lsm_rule].args_p);
1182 entry->lsm[lsm_rule].args_p = NULL;
1183 result = -EINVAL;
1184 } else
1185 result = 0;
1186 }
1187
1188 return result;
1189 }
1190
ima_log_string_op(struct audit_buffer * ab,char * key,char * value,enum policy_opt rule_operator)1191 static void ima_log_string_op(struct audit_buffer *ab, char *key, char *value,
1192 enum policy_opt rule_operator)
1193 {
1194 if (!ab)
1195 return;
1196
1197 switch (rule_operator) {
1198 case Opt_uid_gt:
1199 case Opt_euid_gt:
1200 case Opt_gid_gt:
1201 case Opt_egid_gt:
1202 case Opt_fowner_gt:
1203 case Opt_fgroup_gt:
1204 audit_log_format(ab, "%s>", key);
1205 break;
1206 case Opt_uid_lt:
1207 case Opt_euid_lt:
1208 case Opt_gid_lt:
1209 case Opt_egid_lt:
1210 case Opt_fowner_lt:
1211 case Opt_fgroup_lt:
1212 audit_log_format(ab, "%s<", key);
1213 break;
1214 default:
1215 audit_log_format(ab, "%s=", key);
1216 }
1217 audit_log_format(ab, "%s ", value);
1218 }
ima_log_string(struct audit_buffer * ab,char * key,char * value)1219 static void ima_log_string(struct audit_buffer *ab, char *key, char *value)
1220 {
1221 ima_log_string_op(ab, key, value, Opt_err);
1222 }
1223
1224 /*
1225 * Validating the appended signature included in the measurement list requires
1226 * the file hash calculated without the appended signature (i.e., the 'd-modsig'
1227 * field). Therefore, notify the user if they have the 'modsig' field but not
1228 * the 'd-modsig' field in the template.
1229 */
check_template_modsig(const struct ima_template_desc * template)1230 static void check_template_modsig(const struct ima_template_desc *template)
1231 {
1232 #define MSG "template with 'modsig' field also needs 'd-modsig' field\n"
1233 bool has_modsig, has_dmodsig;
1234 static bool checked;
1235 int i;
1236
1237 /* We only need to notify the user once. */
1238 if (checked)
1239 return;
1240
1241 has_modsig = has_dmodsig = false;
1242 for (i = 0; i < template->num_fields; i++) {
1243 if (!strcmp(template->fields[i]->field_id, "modsig"))
1244 has_modsig = true;
1245 else if (!strcmp(template->fields[i]->field_id, "d-modsig"))
1246 has_dmodsig = true;
1247 }
1248
1249 if (has_modsig && !has_dmodsig)
1250 pr_notice(MSG);
1251
1252 checked = true;
1253 #undef MSG
1254 }
1255
1256 /*
1257 * Warn if the template does not contain the given field.
1258 */
check_template_field(const struct ima_template_desc * template,const char * field,const char * msg)1259 static void check_template_field(const struct ima_template_desc *template,
1260 const char *field, const char *msg)
1261 {
1262 int i;
1263
1264 for (i = 0; i < template->num_fields; i++)
1265 if (!strcmp(template->fields[i]->field_id, field))
1266 return;
1267
1268 pr_notice_once("%s", msg);
1269 }
1270
ima_validate_rule(struct ima_rule_entry * entry)1271 static bool ima_validate_rule(struct ima_rule_entry *entry)
1272 {
1273 /* Ensure that the action is set and is compatible with the flags */
1274 if (entry->action == UNKNOWN)
1275 return false;
1276
1277 if (entry->action != MEASURE && entry->flags & IMA_PCR)
1278 return false;
1279
1280 if (entry->action != APPRAISE &&
1281 entry->flags & (IMA_DIGSIG_REQUIRED | IMA_MODSIG_ALLOWED |
1282 IMA_CHECK_BLACKLIST | IMA_VALIDATE_ALGOS))
1283 return false;
1284
1285 /*
1286 * The IMA_FUNC bit must be set if and only if there's a valid hook
1287 * function specified, and vice versa. Enforcing this property allows
1288 * for the NONE case below to validate a rule without an explicit hook
1289 * function.
1290 */
1291 if (((entry->flags & IMA_FUNC) && entry->func == NONE) ||
1292 (!(entry->flags & IMA_FUNC) && entry->func != NONE))
1293 return false;
1294
1295 /*
1296 * Ensure that the hook function is compatible with the other
1297 * components of the rule
1298 */
1299 switch (entry->func) {
1300 case NONE:
1301 case FILE_CHECK:
1302 case MMAP_CHECK:
1303 case MMAP_CHECK_REQPROT:
1304 case BPRM_CHECK:
1305 case CREDS_CHECK:
1306 case POST_SETATTR:
1307 case FIRMWARE_CHECK:
1308 case POLICY_CHECK:
1309 if (entry->flags & ~(IMA_FUNC | IMA_MASK | IMA_FSMAGIC |
1310 IMA_UID | IMA_FOWNER | IMA_FSUUID |
1311 IMA_INMASK | IMA_EUID | IMA_PCR |
1312 IMA_FSNAME | IMA_FS_SUBTYPE |
1313 IMA_GID | IMA_EGID |
1314 IMA_FGROUP | IMA_DIGSIG_REQUIRED |
1315 IMA_PERMIT_DIRECTIO | IMA_VALIDATE_ALGOS |
1316 IMA_CHECK_BLACKLIST | IMA_VERITY_REQUIRED |
1317 IMA_SIGV3_REQUIRED))
1318 return false;
1319
1320 break;
1321 case MODULE_CHECK:
1322 case KEXEC_KERNEL_CHECK:
1323 case KEXEC_INITRAMFS_CHECK:
1324 if (entry->flags & ~(IMA_FUNC | IMA_MASK | IMA_FSMAGIC |
1325 IMA_UID | IMA_FOWNER | IMA_FSUUID |
1326 IMA_INMASK | IMA_EUID | IMA_PCR |
1327 IMA_FSNAME | IMA_FS_SUBTYPE |
1328 IMA_GID | IMA_EGID |
1329 IMA_FGROUP | IMA_DIGSIG_REQUIRED |
1330 IMA_PERMIT_DIRECTIO | IMA_MODSIG_ALLOWED |
1331 IMA_CHECK_BLACKLIST | IMA_VALIDATE_ALGOS |
1332 IMA_SIGV3_REQUIRED))
1333 return false;
1334
1335 break;
1336 case KEXEC_CMDLINE:
1337 if (entry->action & ~(MEASURE | DONT_MEASURE))
1338 return false;
1339
1340 if (entry->flags & ~(IMA_FUNC | IMA_FSMAGIC | IMA_UID |
1341 IMA_FOWNER | IMA_FSUUID | IMA_EUID |
1342 IMA_PCR | IMA_FSNAME | IMA_FS_SUBTYPE |
1343 IMA_GID | IMA_EGID |
1344 IMA_FGROUP))
1345 return false;
1346
1347 break;
1348 case KEY_CHECK:
1349 if (entry->action & ~(MEASURE | DONT_MEASURE))
1350 return false;
1351
1352 if (entry->flags & ~(IMA_FUNC | IMA_UID | IMA_GID | IMA_PCR |
1353 IMA_KEYRINGS))
1354 return false;
1355
1356 if (ima_rule_contains_lsm_cond(entry))
1357 return false;
1358
1359 break;
1360 case CRITICAL_DATA:
1361 if (entry->action & ~(MEASURE | DONT_MEASURE))
1362 return false;
1363
1364 if (entry->flags & ~(IMA_FUNC | IMA_UID | IMA_GID | IMA_PCR |
1365 IMA_LABEL))
1366 return false;
1367
1368 if (ima_rule_contains_lsm_cond(entry))
1369 return false;
1370
1371 break;
1372 case SETXATTR_CHECK:
1373 /* any action other than APPRAISE is unsupported */
1374 if (entry->action != APPRAISE)
1375 return false;
1376
1377 /* SETXATTR_CHECK requires an appraise_algos parameter */
1378 if (!(entry->flags & IMA_VALIDATE_ALGOS))
1379 return false;
1380
1381 /*
1382 * full policies are not supported, they would have too
1383 * much of a performance impact
1384 */
1385 if (entry->flags & ~(IMA_FUNC | IMA_VALIDATE_ALGOS))
1386 return false;
1387
1388 break;
1389 default:
1390 return false;
1391 }
1392
1393 /* Ensure that combinations of flags are compatible with each other */
1394 if (entry->flags & IMA_CHECK_BLACKLIST &&
1395 !(entry->flags & IMA_DIGSIG_REQUIRED))
1396 return false;
1397
1398 /*
1399 * Unlike for regular IMA 'appraise' policy rules where security.ima
1400 * xattr may contain either a file hash or signature, the security.ima
1401 * xattr for fsverity must contain a file signature (sigv3). Ensure
1402 * that 'appraise' rules for fsverity require file signatures by
1403 * checking the IMA_DIGSIG_REQUIRED flag is set.
1404 */
1405 if (entry->action == APPRAISE &&
1406 (entry->flags & IMA_VERITY_REQUIRED) &&
1407 !(entry->flags & IMA_DIGSIG_REQUIRED))
1408 return false;
1409
1410 return true;
1411 }
1412
ima_parse_appraise_algos(char * arg)1413 static unsigned int ima_parse_appraise_algos(char *arg)
1414 {
1415 unsigned int res = 0;
1416 int idx;
1417 char *token;
1418
1419 while ((token = strsep(&arg, ",")) != NULL) {
1420 idx = match_string(hash_algo_name, HASH_ALGO__LAST, token);
1421
1422 if (idx < 0) {
1423 pr_err("unknown hash algorithm \"%s\"",
1424 token);
1425 return 0;
1426 }
1427
1428 if (!crypto_has_alg(hash_algo_name[idx], 0, 0)) {
1429 pr_err("unavailable hash algorithm \"%s\", check your kernel configuration",
1430 token);
1431 return 0;
1432 }
1433
1434 /* Add the hash algorithm to the 'allowed' bitfield */
1435 res |= (1U << idx);
1436 }
1437
1438 return res;
1439 }
1440
ima_parse_rule(char * rule,struct ima_rule_entry * entry)1441 static int ima_parse_rule(char *rule, struct ima_rule_entry *entry)
1442 {
1443 struct audit_buffer *ab;
1444 char *from;
1445 char *p;
1446 bool eid_token; /* either euid or egid */
1447 struct ima_template_desc *template_desc;
1448 int result = 0;
1449
1450 ab = integrity_audit_log_start(audit_context(), GFP_KERNEL,
1451 AUDIT_INTEGRITY_POLICY_RULE);
1452
1453 entry->uid = INVALID_UID;
1454 entry->gid = INVALID_GID;
1455 entry->fowner = INVALID_UID;
1456 entry->fgroup = INVALID_GID;
1457 entry->uid_op = &uid_eq;
1458 entry->gid_op = &gid_eq;
1459 entry->fowner_op = &vfsuid_eq_kuid;
1460 entry->fgroup_op = &vfsgid_eq_kgid;
1461 entry->action = UNKNOWN;
1462 while ((p = strsep(&rule, " \t")) != NULL) {
1463 substring_t args[MAX_OPT_ARGS];
1464 int token;
1465 unsigned long lnum;
1466
1467 if (result < 0 || *p == '#') /* ignore suffixed comment */
1468 break;
1469 if ((*p == '\0') || (*p == ' ') || (*p == '\t'))
1470 continue;
1471 token = match_token(p, policy_tokens, args);
1472 switch (token) {
1473 case Opt_measure:
1474 ima_log_string(ab, "action", "measure");
1475
1476 if (entry->action != UNKNOWN)
1477 result = -EINVAL;
1478
1479 entry->action = MEASURE;
1480 break;
1481 case Opt_dont_measure:
1482 ima_log_string(ab, "action", "dont_measure");
1483
1484 if (entry->action != UNKNOWN)
1485 result = -EINVAL;
1486
1487 entry->action = DONT_MEASURE;
1488 break;
1489 case Opt_appraise:
1490 ima_log_string(ab, "action", "appraise");
1491
1492 if (entry->action != UNKNOWN)
1493 result = -EINVAL;
1494
1495 entry->action = APPRAISE;
1496 break;
1497 case Opt_dont_appraise:
1498 ima_log_string(ab, "action", "dont_appraise");
1499
1500 if (entry->action != UNKNOWN)
1501 result = -EINVAL;
1502
1503 entry->action = DONT_APPRAISE;
1504 break;
1505 case Opt_audit:
1506 ima_log_string(ab, "action", "audit");
1507
1508 if (entry->action != UNKNOWN)
1509 result = -EINVAL;
1510
1511 entry->action = AUDIT;
1512 break;
1513 case Opt_dont_audit:
1514 ima_log_string(ab, "action", "dont_audit");
1515
1516 if (entry->action != UNKNOWN)
1517 result = -EINVAL;
1518
1519 entry->action = DONT_AUDIT;
1520 break;
1521 case Opt_hash:
1522 ima_log_string(ab, "action", "hash");
1523
1524 if (entry->action != UNKNOWN)
1525 result = -EINVAL;
1526
1527 entry->action = HASH;
1528 break;
1529 case Opt_dont_hash:
1530 ima_log_string(ab, "action", "dont_hash");
1531
1532 if (entry->action != UNKNOWN)
1533 result = -EINVAL;
1534
1535 entry->action = DONT_HASH;
1536 break;
1537 case Opt_func:
1538 ima_log_string(ab, "func", args[0].from);
1539
1540 if (entry->func)
1541 result = -EINVAL;
1542
1543 if (strcmp(args[0].from, "FILE_CHECK") == 0)
1544 entry->func = FILE_CHECK;
1545 /* PATH_CHECK is for backwards compat */
1546 else if (strcmp(args[0].from, "PATH_CHECK") == 0)
1547 entry->func = FILE_CHECK;
1548 else if (strcmp(args[0].from, "MODULE_CHECK") == 0)
1549 entry->func = MODULE_CHECK;
1550 else if (strcmp(args[0].from, "FIRMWARE_CHECK") == 0)
1551 entry->func = FIRMWARE_CHECK;
1552 else if ((strcmp(args[0].from, "FILE_MMAP") == 0)
1553 || (strcmp(args[0].from, "MMAP_CHECK") == 0))
1554 entry->func = MMAP_CHECK;
1555 else if ((strcmp(args[0].from, "MMAP_CHECK_REQPROT") == 0))
1556 entry->func = MMAP_CHECK_REQPROT;
1557 else if (strcmp(args[0].from, "BPRM_CHECK") == 0)
1558 entry->func = BPRM_CHECK;
1559 else if (strcmp(args[0].from, "CREDS_CHECK") == 0)
1560 entry->func = CREDS_CHECK;
1561 else if (strcmp(args[0].from, "KEXEC_KERNEL_CHECK") ==
1562 0)
1563 entry->func = KEXEC_KERNEL_CHECK;
1564 else if (strcmp(args[0].from, "KEXEC_INITRAMFS_CHECK")
1565 == 0)
1566 entry->func = KEXEC_INITRAMFS_CHECK;
1567 else if (strcmp(args[0].from, "POLICY_CHECK") == 0)
1568 entry->func = POLICY_CHECK;
1569 else if (strcmp(args[0].from, "KEXEC_CMDLINE") == 0)
1570 entry->func = KEXEC_CMDLINE;
1571 else if (IS_ENABLED(CONFIG_IMA_MEASURE_ASYMMETRIC_KEYS) &&
1572 strcmp(args[0].from, "KEY_CHECK") == 0)
1573 entry->func = KEY_CHECK;
1574 else if (strcmp(args[0].from, "CRITICAL_DATA") == 0)
1575 entry->func = CRITICAL_DATA;
1576 else if (strcmp(args[0].from, "SETXATTR_CHECK") == 0)
1577 entry->func = SETXATTR_CHECK;
1578 else
1579 result = -EINVAL;
1580 if (!result)
1581 entry->flags |= IMA_FUNC;
1582 break;
1583 case Opt_mask:
1584 ima_log_string(ab, "mask", args[0].from);
1585
1586 if (entry->mask)
1587 result = -EINVAL;
1588
1589 from = args[0].from;
1590 if (*from == '^')
1591 from++;
1592
1593 if ((strcmp(from, "MAY_EXEC")) == 0)
1594 entry->mask = MAY_EXEC;
1595 else if (strcmp(from, "MAY_WRITE") == 0)
1596 entry->mask = MAY_WRITE;
1597 else if (strcmp(from, "MAY_READ") == 0)
1598 entry->mask = MAY_READ;
1599 else if (strcmp(from, "MAY_APPEND") == 0)
1600 entry->mask = MAY_APPEND;
1601 else
1602 result = -EINVAL;
1603 if (!result)
1604 entry->flags |= (*args[0].from == '^')
1605 ? IMA_INMASK : IMA_MASK;
1606 break;
1607 case Opt_fsmagic:
1608 ima_log_string(ab, "fsmagic", args[0].from);
1609
1610 if (entry->fsmagic) {
1611 result = -EINVAL;
1612 break;
1613 }
1614
1615 result = kstrtoul(args[0].from, 16, &entry->fsmagic);
1616 if (!result)
1617 entry->flags |= IMA_FSMAGIC;
1618 break;
1619 case Opt_fsname:
1620 ima_log_string(ab, "fsname", args[0].from);
1621
1622 entry->fsname = kstrdup(args[0].from, GFP_KERNEL);
1623 if (!entry->fsname) {
1624 result = -ENOMEM;
1625 break;
1626 }
1627 result = 0;
1628 entry->flags |= IMA_FSNAME;
1629 break;
1630 case Opt_fs_subtype:
1631 ima_log_string(ab, "fs_subtype", args[0].from);
1632
1633 if (entry->fs_subtype) {
1634 result = -EINVAL;
1635 break;
1636 }
1637
1638 entry->fs_subtype = kstrdup(args[0].from, GFP_KERNEL);
1639 if (!entry->fs_subtype) {
1640 result = -ENOMEM;
1641 break;
1642 }
1643 result = 0;
1644 entry->flags |= IMA_FS_SUBTYPE;
1645 break;
1646 case Opt_keyrings:
1647 ima_log_string(ab, "keyrings", args[0].from);
1648
1649 if (!IS_ENABLED(CONFIG_IMA_MEASURE_ASYMMETRIC_KEYS) ||
1650 entry->keyrings) {
1651 result = -EINVAL;
1652 break;
1653 }
1654
1655 entry->keyrings = ima_alloc_rule_opt_list(args);
1656 if (IS_ERR(entry->keyrings)) {
1657 result = PTR_ERR(entry->keyrings);
1658 entry->keyrings = NULL;
1659 break;
1660 }
1661
1662 entry->flags |= IMA_KEYRINGS;
1663 break;
1664 case Opt_label:
1665 ima_log_string(ab, "label", args[0].from);
1666
1667 if (entry->label) {
1668 result = -EINVAL;
1669 break;
1670 }
1671
1672 entry->label = ima_alloc_rule_opt_list(args);
1673 if (IS_ERR(entry->label)) {
1674 result = PTR_ERR(entry->label);
1675 entry->label = NULL;
1676 break;
1677 }
1678
1679 entry->flags |= IMA_LABEL;
1680 break;
1681 case Opt_fsuuid:
1682 ima_log_string(ab, "fsuuid", args[0].from);
1683
1684 if (!uuid_is_null(&entry->fsuuid)) {
1685 result = -EINVAL;
1686 break;
1687 }
1688
1689 result = uuid_parse(args[0].from, &entry->fsuuid);
1690 if (!result)
1691 entry->flags |= IMA_FSUUID;
1692 break;
1693 case Opt_uid_gt:
1694 case Opt_euid_gt:
1695 entry->uid_op = &uid_gt;
1696 fallthrough;
1697 case Opt_uid_lt:
1698 case Opt_euid_lt:
1699 if ((token == Opt_uid_lt) || (token == Opt_euid_lt))
1700 entry->uid_op = &uid_lt;
1701 fallthrough;
1702 case Opt_uid_eq:
1703 case Opt_euid_eq:
1704 eid_token = (token == Opt_euid_eq) ||
1705 (token == Opt_euid_gt) ||
1706 (token == Opt_euid_lt);
1707
1708 ima_log_string_op(ab, eid_token ? "euid" : "uid",
1709 args[0].from, token);
1710
1711 if (uid_valid(entry->uid)) {
1712 result = -EINVAL;
1713 break;
1714 }
1715
1716 result = kstrtoul(args[0].from, 10, &lnum);
1717 if (!result) {
1718 entry->uid = make_kuid(current_user_ns(),
1719 (uid_t) lnum);
1720 if (!uid_valid(entry->uid) ||
1721 (uid_t)lnum != lnum)
1722 result = -EINVAL;
1723 else
1724 entry->flags |= eid_token
1725 ? IMA_EUID : IMA_UID;
1726 }
1727 break;
1728 case Opt_gid_gt:
1729 case Opt_egid_gt:
1730 entry->gid_op = &gid_gt;
1731 fallthrough;
1732 case Opt_gid_lt:
1733 case Opt_egid_lt:
1734 if ((token == Opt_gid_lt) || (token == Opt_egid_lt))
1735 entry->gid_op = &gid_lt;
1736 fallthrough;
1737 case Opt_gid_eq:
1738 case Opt_egid_eq:
1739 eid_token = (token == Opt_egid_eq) ||
1740 (token == Opt_egid_gt) ||
1741 (token == Opt_egid_lt);
1742
1743 ima_log_string_op(ab, eid_token ? "egid" : "gid",
1744 args[0].from, token);
1745
1746 if (gid_valid(entry->gid)) {
1747 result = -EINVAL;
1748 break;
1749 }
1750
1751 result = kstrtoul(args[0].from, 10, &lnum);
1752 if (!result) {
1753 entry->gid = make_kgid(current_user_ns(),
1754 (gid_t)lnum);
1755 if (!gid_valid(entry->gid) ||
1756 (((gid_t)lnum) != lnum))
1757 result = -EINVAL;
1758 else
1759 entry->flags |= eid_token
1760 ? IMA_EGID : IMA_GID;
1761 }
1762 break;
1763 case Opt_fowner_gt:
1764 entry->fowner_op = &vfsuid_gt_kuid;
1765 fallthrough;
1766 case Opt_fowner_lt:
1767 if (token == Opt_fowner_lt)
1768 entry->fowner_op = &vfsuid_lt_kuid;
1769 fallthrough;
1770 case Opt_fowner_eq:
1771 ima_log_string_op(ab, "fowner", args[0].from, token);
1772
1773 if (uid_valid(entry->fowner)) {
1774 result = -EINVAL;
1775 break;
1776 }
1777
1778 result = kstrtoul(args[0].from, 10, &lnum);
1779 if (!result) {
1780 entry->fowner = make_kuid(current_user_ns(),
1781 (uid_t)lnum);
1782 if (!uid_valid(entry->fowner) ||
1783 (((uid_t)lnum) != lnum))
1784 result = -EINVAL;
1785 else
1786 entry->flags |= IMA_FOWNER;
1787 }
1788 break;
1789 case Opt_fgroup_gt:
1790 entry->fgroup_op = &vfsgid_gt_kgid;
1791 fallthrough;
1792 case Opt_fgroup_lt:
1793 if (token == Opt_fgroup_lt)
1794 entry->fgroup_op = &vfsgid_lt_kgid;
1795 fallthrough;
1796 case Opt_fgroup_eq:
1797 ima_log_string_op(ab, "fgroup", args[0].from, token);
1798
1799 if (gid_valid(entry->fgroup)) {
1800 result = -EINVAL;
1801 break;
1802 }
1803
1804 result = kstrtoul(args[0].from, 10, &lnum);
1805 if (!result) {
1806 entry->fgroup = make_kgid(current_user_ns(),
1807 (gid_t)lnum);
1808 if (!gid_valid(entry->fgroup) ||
1809 (((gid_t)lnum) != lnum))
1810 result = -EINVAL;
1811 else
1812 entry->flags |= IMA_FGROUP;
1813 }
1814 break;
1815 case Opt_obj_user:
1816 ima_log_string(ab, "obj_user", args[0].from);
1817 result = ima_lsm_rule_init(entry, args,
1818 LSM_OBJ_USER,
1819 AUDIT_OBJ_USER);
1820 break;
1821 case Opt_obj_role:
1822 ima_log_string(ab, "obj_role", args[0].from);
1823 result = ima_lsm_rule_init(entry, args,
1824 LSM_OBJ_ROLE,
1825 AUDIT_OBJ_ROLE);
1826 break;
1827 case Opt_obj_type:
1828 ima_log_string(ab, "obj_type", args[0].from);
1829 result = ima_lsm_rule_init(entry, args,
1830 LSM_OBJ_TYPE,
1831 AUDIT_OBJ_TYPE);
1832 break;
1833 case Opt_subj_user:
1834 ima_log_string(ab, "subj_user", args[0].from);
1835 result = ima_lsm_rule_init(entry, args,
1836 LSM_SUBJ_USER,
1837 AUDIT_SUBJ_USER);
1838 break;
1839 case Opt_subj_role:
1840 ima_log_string(ab, "subj_role", args[0].from);
1841 result = ima_lsm_rule_init(entry, args,
1842 LSM_SUBJ_ROLE,
1843 AUDIT_SUBJ_ROLE);
1844 break;
1845 case Opt_subj_type:
1846 ima_log_string(ab, "subj_type", args[0].from);
1847 result = ima_lsm_rule_init(entry, args,
1848 LSM_SUBJ_TYPE,
1849 AUDIT_SUBJ_TYPE);
1850 break;
1851 case Opt_digest_type:
1852 ima_log_string(ab, "digest_type", args[0].from);
1853 if ((strcmp(args[0].from, "verity")) == 0)
1854 entry->flags |= IMA_VERITY_REQUIRED;
1855 else
1856 result = -EINVAL;
1857 break;
1858 case Opt_appraise_type:
1859 ima_log_string(ab, "appraise_type", args[0].from);
1860
1861 if ((strcmp(args[0].from, "imasig")) == 0) {
1862 if (entry->flags & IMA_VERITY_REQUIRED)
1863 result = -EINVAL;
1864 else
1865 entry->flags |= IMA_DIGSIG_REQUIRED | IMA_CHECK_BLACKLIST;
1866 } else if (strcmp(args[0].from, "sigv3") == 0) {
1867 entry->flags |= IMA_SIGV3_REQUIRED |
1868 IMA_DIGSIG_REQUIRED |
1869 IMA_CHECK_BLACKLIST;
1870 } else if (IS_ENABLED(CONFIG_IMA_APPRAISE_MODSIG) &&
1871 strcmp(args[0].from, "imasig|modsig") == 0) {
1872 if ((entry->flags & IMA_VERITY_REQUIRED) ||
1873 (entry->flags & IMA_SIGV3_REQUIRED))
1874 result = -EINVAL;
1875 else
1876 entry->flags |= IMA_DIGSIG_REQUIRED |
1877 IMA_MODSIG_ALLOWED | IMA_CHECK_BLACKLIST;
1878 } else {
1879 result = -EINVAL;
1880 }
1881 break;
1882 case Opt_appraise_flag:
1883 ima_log_string(ab, "appraise_flag", args[0].from);
1884 break;
1885 case Opt_appraise_algos:
1886 ima_log_string(ab, "appraise_algos", args[0].from);
1887
1888 if (entry->allowed_algos) {
1889 result = -EINVAL;
1890 break;
1891 }
1892
1893 entry->allowed_algos =
1894 ima_parse_appraise_algos(args[0].from);
1895 /* invalid or empty list of algorithms */
1896 if (!entry->allowed_algos) {
1897 result = -EINVAL;
1898 break;
1899 }
1900
1901 entry->flags |= IMA_VALIDATE_ALGOS;
1902
1903 break;
1904 case Opt_permit_directio:
1905 entry->flags |= IMA_PERMIT_DIRECTIO;
1906 break;
1907 case Opt_pcr:
1908 ima_log_string(ab, "pcr", args[0].from);
1909
1910 result = kstrtoint(args[0].from, 10, &entry->pcr);
1911 if (result || INVALID_PCR(entry->pcr))
1912 result = -EINVAL;
1913 else
1914 entry->flags |= IMA_PCR;
1915
1916 break;
1917 case Opt_template:
1918 ima_log_string(ab, "template", args[0].from);
1919 if (entry->action != MEASURE) {
1920 result = -EINVAL;
1921 break;
1922 }
1923 template_desc = lookup_template_desc(args[0].from);
1924 if (!template_desc || entry->template) {
1925 result = -EINVAL;
1926 break;
1927 }
1928
1929 /*
1930 * template_desc_init_fields() does nothing if
1931 * the template is already initialised, so
1932 * it's safe to do this unconditionally
1933 */
1934 template_desc_init_fields(template_desc->fmt,
1935 &(template_desc->fields),
1936 &(template_desc->num_fields));
1937 entry->template = template_desc;
1938 break;
1939 case Opt_err:
1940 ima_log_string(ab, "UNKNOWN", p);
1941 result = -EINVAL;
1942 break;
1943 }
1944 }
1945 if (!result && !ima_validate_rule(entry))
1946 result = -EINVAL;
1947 else if (entry->action == APPRAISE)
1948 temp_ima_appraise |= ima_appraise_flag(entry->func);
1949
1950 if (!result && entry->flags & IMA_MODSIG_ALLOWED) {
1951 template_desc = entry->template ? entry->template :
1952 ima_template_desc_current();
1953 check_template_modsig(template_desc);
1954 }
1955
1956 /* d-ngv2 template field recommended for unsigned fs-verity digests */
1957 if (!result && entry->action == MEASURE &&
1958 (entry->flags & IMA_VERITY_REQUIRED)) {
1959 template_desc = entry->template ? entry->template :
1960 ima_template_desc_current();
1961 check_template_field(template_desc, "d-ngv2",
1962 "verity rules should include d-ngv2");
1963 }
1964
1965 audit_log_format(ab, "res=%d", !result);
1966 audit_log_end(ab);
1967 return result;
1968 }
1969
1970 /**
1971 * ima_parse_add_rule - add a rule to ima_policy_rules
1972 * @rule: ima measurement policy rule
1973 *
1974 * Avoid locking by allowing just one writer at a time in ima_write_policy()
1975 * Returns the length of the rule parsed, an error code on failure
1976 */
ima_parse_add_rule(char * rule)1977 ssize_t ima_parse_add_rule(char *rule)
1978 {
1979 static const char op[] = "update_policy";
1980 char *p;
1981 struct ima_rule_entry *entry;
1982 ssize_t result, len;
1983 int audit_info = 0;
1984
1985 p = strsep(&rule, "\n");
1986 len = strlen(p) + 1;
1987 p += strspn(p, " \t");
1988
1989 if (*p == '#' || *p == '\0')
1990 return len;
1991
1992 entry = kzalloc_obj(*entry);
1993 if (!entry) {
1994 integrity_audit_msg(AUDIT_INTEGRITY_STATUS, NULL,
1995 NULL, op, "-ENOMEM", -ENOMEM, audit_info);
1996 return -ENOMEM;
1997 }
1998
1999 INIT_LIST_HEAD(&entry->list);
2000
2001 result = ima_parse_rule(p, entry);
2002 if (result) {
2003 ima_free_rule(entry);
2004 integrity_audit_msg(AUDIT_INTEGRITY_STATUS, NULL,
2005 NULL, op, "invalid-policy", result,
2006 audit_info);
2007 return result;
2008 }
2009
2010 list_add_tail(&entry->list, &ima_temp_rules);
2011
2012 if (len > max_rule_len)
2013 max_rule_len = len;
2014
2015 return len;
2016 }
2017
2018 /**
2019 * ima_delete_rules() - called to cleanup invalid in-flight policy.
2020 *
2021 * We don't need locking as we operate on the temp list, which is
2022 * different from the active one. There is also only one user of
2023 * ima_delete_rules() at a time.
2024 */
ima_delete_rules(void)2025 void ima_delete_rules(void)
2026 {
2027 struct ima_rule_entry *entry, *tmp;
2028
2029 temp_ima_appraise = 0;
2030 list_for_each_entry_safe(entry, tmp, &ima_temp_rules, list) {
2031 list_del(&entry->list);
2032 ima_free_rule(entry);
2033 }
2034 }
2035
2036 #define __ima_hook_stringify(func, str) (#func),
2037
2038 const char *const func_tokens[] = {
2039 __ima_hooks(__ima_hook_stringify)
2040 };
2041
2042 enum {
2043 mask_exec = 0, mask_write, mask_read, mask_append
2044 };
2045
2046 static const char *const mask_tokens[] = {
2047 "^MAY_EXEC",
2048 "^MAY_WRITE",
2049 "^MAY_READ",
2050 "^MAY_APPEND"
2051 };
2052
ima_policy_start(struct seq_file * m,loff_t * pos)2053 void *ima_policy_start(struct seq_file *m, loff_t *pos)
2054 {
2055 loff_t l = *pos;
2056 struct ima_rule_entry *entry;
2057 struct list_head *ima_rules_tmp;
2058
2059 rcu_read_lock();
2060 ima_rules_tmp = rcu_dereference(ima_rules);
2061 list_for_each_entry_rcu(entry, ima_rules_tmp, list) {
2062 if (!l--) {
2063 rcu_read_unlock();
2064 return entry;
2065 }
2066 }
2067 rcu_read_unlock();
2068 return NULL;
2069 }
2070
ima_policy_next(struct seq_file * m,void * v,loff_t * pos)2071 void *ima_policy_next(struct seq_file *m, void *v, loff_t *pos)
2072 {
2073 struct ima_rule_entry *entry = v;
2074
2075 rcu_read_lock();
2076 entry = list_entry_rcu(entry->list.next, struct ima_rule_entry, list);
2077 rcu_read_unlock();
2078 (*pos)++;
2079
2080 return (&entry->list == &ima_default_rules ||
2081 &entry->list == &ima_policy_rules) ? NULL : entry;
2082 }
2083
ima_policy_stop(struct seq_file * m,void * v)2084 void ima_policy_stop(struct seq_file *m, void *v)
2085 {
2086 }
2087
2088 #define pt(token) policy_tokens[token].pattern
2089 #define mt(token) mask_tokens[token]
2090
2091 /*
2092 * policy_func_show - display the ima_hooks policy rule
2093 */
policy_func_show(struct seq_file * m,enum ima_hooks func)2094 static void policy_func_show(struct seq_file *m, enum ima_hooks func)
2095 {
2096 if (func > 0 && func < MAX_CHECK)
2097 seq_printf(m, "func=%s ", func_tokens[func]);
2098 else
2099 seq_printf(m, "func=%d ", func);
2100 }
2101
ima_show_rule_opt_list(struct seq_file * m,const struct ima_rule_opt_list * opt_list)2102 static void ima_show_rule_opt_list(struct seq_file *m,
2103 const struct ima_rule_opt_list *opt_list)
2104 {
2105 size_t i;
2106
2107 for (i = 0; i < opt_list->count; i++)
2108 seq_printf(m, "%s%s", i ? "|" : "", opt_list->items[i]);
2109 }
2110
ima_policy_show_appraise_algos(struct seq_file * m,unsigned int allowed_hashes)2111 static void ima_policy_show_appraise_algos(struct seq_file *m,
2112 unsigned int allowed_hashes)
2113 {
2114 int idx, list_size = 0;
2115
2116 for (idx = 0; idx < HASH_ALGO__LAST; idx++) {
2117 if (!(allowed_hashes & (1U << idx)))
2118 continue;
2119
2120 /* only add commas if the list contains multiple entries */
2121 if (list_size++)
2122 seq_puts(m, ",");
2123
2124 seq_puts(m, hash_algo_name[idx]);
2125 }
2126 }
2127
ima_policy_show(struct seq_file * m,void * v)2128 int ima_policy_show(struct seq_file *m, void *v)
2129 {
2130 struct ima_rule_entry *entry = v;
2131 int i;
2132 char tbuf[64] = {0,};
2133 int offset = 0;
2134
2135 rcu_read_lock();
2136
2137 /* Do not print rules with inactive LSM labels */
2138 for (i = 0; i < MAX_LSM_RULES; i++) {
2139 if (entry->lsm[i].args_p && !entry->lsm[i].rule) {
2140 rcu_read_unlock();
2141 return 0;
2142 }
2143 }
2144
2145 if (entry->action & MEASURE)
2146 seq_puts(m, pt(Opt_measure));
2147 if (entry->action & DONT_MEASURE)
2148 seq_puts(m, pt(Opt_dont_measure));
2149 if (entry->action & APPRAISE)
2150 seq_puts(m, pt(Opt_appraise));
2151 if (entry->action & DONT_APPRAISE)
2152 seq_puts(m, pt(Opt_dont_appraise));
2153 if (entry->action & AUDIT)
2154 seq_puts(m, pt(Opt_audit));
2155 if (entry->action & DONT_AUDIT)
2156 seq_puts(m, pt(Opt_dont_audit));
2157 if (entry->action & HASH)
2158 seq_puts(m, pt(Opt_hash));
2159 if (entry->action & DONT_HASH)
2160 seq_puts(m, pt(Opt_dont_hash));
2161
2162 seq_puts(m, " ");
2163
2164 if (entry->flags & IMA_FUNC)
2165 policy_func_show(m, entry->func);
2166
2167 if ((entry->flags & IMA_MASK) || (entry->flags & IMA_INMASK)) {
2168 if (entry->flags & IMA_MASK)
2169 offset = 1;
2170 if (entry->mask & MAY_EXEC)
2171 seq_printf(m, pt(Opt_mask), mt(mask_exec) + offset);
2172 if (entry->mask & MAY_WRITE)
2173 seq_printf(m, pt(Opt_mask), mt(mask_write) + offset);
2174 if (entry->mask & MAY_READ)
2175 seq_printf(m, pt(Opt_mask), mt(mask_read) + offset);
2176 if (entry->mask & MAY_APPEND)
2177 seq_printf(m, pt(Opt_mask), mt(mask_append) + offset);
2178 seq_puts(m, " ");
2179 }
2180
2181 if (entry->flags & IMA_FSMAGIC) {
2182 snprintf(tbuf, sizeof(tbuf), "0x%lx", entry->fsmagic);
2183 seq_printf(m, pt(Opt_fsmagic), tbuf);
2184 seq_puts(m, " ");
2185 }
2186
2187 if (entry->flags & IMA_FSNAME) {
2188 snprintf(tbuf, sizeof(tbuf), "%s", entry->fsname);
2189 seq_printf(m, pt(Opt_fsname), tbuf);
2190 seq_puts(m, " ");
2191 }
2192
2193 if (entry->flags & IMA_FS_SUBTYPE) {
2194 snprintf(tbuf, sizeof(tbuf), "%s", entry->fs_subtype);
2195 seq_printf(m, pt(Opt_fs_subtype), tbuf);
2196 seq_puts(m, " ");
2197 }
2198
2199 if (entry->flags & IMA_KEYRINGS) {
2200 seq_puts(m, "keyrings=");
2201 ima_show_rule_opt_list(m, entry->keyrings);
2202 seq_puts(m, " ");
2203 }
2204
2205 if (entry->flags & IMA_LABEL) {
2206 seq_puts(m, "label=");
2207 ima_show_rule_opt_list(m, entry->label);
2208 seq_puts(m, " ");
2209 }
2210
2211 if (entry->flags & IMA_PCR) {
2212 snprintf(tbuf, sizeof(tbuf), "%d", entry->pcr);
2213 seq_printf(m, pt(Opt_pcr), tbuf);
2214 seq_puts(m, " ");
2215 }
2216
2217 if (entry->flags & IMA_FSUUID) {
2218 seq_printf(m, "fsuuid=%pU", &entry->fsuuid);
2219 seq_puts(m, " ");
2220 }
2221
2222 if (entry->flags & IMA_UID) {
2223 snprintf(tbuf, sizeof(tbuf), "%d", __kuid_val(entry->uid));
2224 if (entry->uid_op == &uid_gt)
2225 seq_printf(m, pt(Opt_uid_gt), tbuf);
2226 else if (entry->uid_op == &uid_lt)
2227 seq_printf(m, pt(Opt_uid_lt), tbuf);
2228 else
2229 seq_printf(m, pt(Opt_uid_eq), tbuf);
2230 seq_puts(m, " ");
2231 }
2232
2233 if (entry->flags & IMA_EUID) {
2234 snprintf(tbuf, sizeof(tbuf), "%d", __kuid_val(entry->uid));
2235 if (entry->uid_op == &uid_gt)
2236 seq_printf(m, pt(Opt_euid_gt), tbuf);
2237 else if (entry->uid_op == &uid_lt)
2238 seq_printf(m, pt(Opt_euid_lt), tbuf);
2239 else
2240 seq_printf(m, pt(Opt_euid_eq), tbuf);
2241 seq_puts(m, " ");
2242 }
2243
2244 if (entry->flags & IMA_GID) {
2245 snprintf(tbuf, sizeof(tbuf), "%d", __kgid_val(entry->gid));
2246 if (entry->gid_op == &gid_gt)
2247 seq_printf(m, pt(Opt_gid_gt), tbuf);
2248 else if (entry->gid_op == &gid_lt)
2249 seq_printf(m, pt(Opt_gid_lt), tbuf);
2250 else
2251 seq_printf(m, pt(Opt_gid_eq), tbuf);
2252 seq_puts(m, " ");
2253 }
2254
2255 if (entry->flags & IMA_EGID) {
2256 snprintf(tbuf, sizeof(tbuf), "%d", __kgid_val(entry->gid));
2257 if (entry->gid_op == &gid_gt)
2258 seq_printf(m, pt(Opt_egid_gt), tbuf);
2259 else if (entry->gid_op == &gid_lt)
2260 seq_printf(m, pt(Opt_egid_lt), tbuf);
2261 else
2262 seq_printf(m, pt(Opt_egid_eq), tbuf);
2263 seq_puts(m, " ");
2264 }
2265
2266 if (entry->flags & IMA_FOWNER) {
2267 snprintf(tbuf, sizeof(tbuf), "%d", __kuid_val(entry->fowner));
2268 if (entry->fowner_op == &vfsuid_gt_kuid)
2269 seq_printf(m, pt(Opt_fowner_gt), tbuf);
2270 else if (entry->fowner_op == &vfsuid_lt_kuid)
2271 seq_printf(m, pt(Opt_fowner_lt), tbuf);
2272 else
2273 seq_printf(m, pt(Opt_fowner_eq), tbuf);
2274 seq_puts(m, " ");
2275 }
2276
2277 if (entry->flags & IMA_FGROUP) {
2278 snprintf(tbuf, sizeof(tbuf), "%d", __kgid_val(entry->fgroup));
2279 if (entry->fgroup_op == &vfsgid_gt_kgid)
2280 seq_printf(m, pt(Opt_fgroup_gt), tbuf);
2281 else if (entry->fgroup_op == &vfsgid_lt_kgid)
2282 seq_printf(m, pt(Opt_fgroup_lt), tbuf);
2283 else
2284 seq_printf(m, pt(Opt_fgroup_eq), tbuf);
2285 seq_puts(m, " ");
2286 }
2287
2288 if (entry->flags & IMA_VALIDATE_ALGOS) {
2289 seq_puts(m, "appraise_algos=");
2290 ima_policy_show_appraise_algos(m, entry->allowed_algos);
2291 seq_puts(m, " ");
2292 }
2293
2294 for (i = 0; i < MAX_LSM_RULES; i++) {
2295 if (entry->lsm[i].rule) {
2296 switch (i) {
2297 case LSM_OBJ_USER:
2298 seq_printf(m, pt(Opt_obj_user),
2299 entry->lsm[i].args_p);
2300 break;
2301 case LSM_OBJ_ROLE:
2302 seq_printf(m, pt(Opt_obj_role),
2303 entry->lsm[i].args_p);
2304 break;
2305 case LSM_OBJ_TYPE:
2306 seq_printf(m, pt(Opt_obj_type),
2307 entry->lsm[i].args_p);
2308 break;
2309 case LSM_SUBJ_USER:
2310 seq_printf(m, pt(Opt_subj_user),
2311 entry->lsm[i].args_p);
2312 break;
2313 case LSM_SUBJ_ROLE:
2314 seq_printf(m, pt(Opt_subj_role),
2315 entry->lsm[i].args_p);
2316 break;
2317 case LSM_SUBJ_TYPE:
2318 seq_printf(m, pt(Opt_subj_type),
2319 entry->lsm[i].args_p);
2320 break;
2321 }
2322 seq_puts(m, " ");
2323 }
2324 }
2325 if (entry->template)
2326 seq_printf(m, "template=%s ", entry->template->name);
2327 if (entry->flags & IMA_DIGSIG_REQUIRED) {
2328 if (entry->flags & IMA_SIGV3_REQUIRED)
2329 seq_puts(m, "appraise_type=sigv3 ");
2330 else if (entry->flags & IMA_MODSIG_ALLOWED)
2331 seq_puts(m, "appraise_type=imasig|modsig ");
2332 else
2333 seq_puts(m, "appraise_type=imasig ");
2334 }
2335 if (entry->flags & IMA_VERITY_REQUIRED)
2336 seq_puts(m, "digest_type=verity ");
2337 if (entry->flags & IMA_PERMIT_DIRECTIO)
2338 seq_puts(m, "permit_directio ");
2339 rcu_read_unlock();
2340 seq_puts(m, "\n");
2341 return 0;
2342 }
2343
2344 #if defined(CONFIG_IMA_APPRAISE) && defined(CONFIG_INTEGRITY_TRUSTED_KEYRING)
2345 /*
2346 * ima_appraise_signature: whether IMA will appraise a given function using
2347 * an IMA digital signature. This is restricted to cases where the kernel
2348 * has a set of built-in trusted keys in order to avoid an attacker simply
2349 * loading additional keys.
2350 */
ima_appraise_signature(enum kernel_read_file_id id)2351 bool ima_appraise_signature(enum kernel_read_file_id id)
2352 {
2353 struct ima_rule_entry *entry;
2354 bool found = false;
2355 enum ima_hooks func;
2356 struct list_head *ima_rules_tmp;
2357
2358 if (id >= READING_MAX_ID)
2359 return false;
2360
2361 if (id == READING_KEXEC_IMAGE && !(ima_appraise & IMA_APPRAISE_ENFORCE)
2362 && security_locked_down(LOCKDOWN_KEXEC))
2363 return false;
2364
2365 func = read_idmap[id] ?: FILE_CHECK;
2366
2367 rcu_read_lock();
2368 ima_rules_tmp = rcu_dereference(ima_rules);
2369 list_for_each_entry_rcu(entry, ima_rules_tmp, list) {
2370 if (entry->action != APPRAISE)
2371 continue;
2372
2373 /*
2374 * A generic entry will match, but otherwise require that it
2375 * match the func we're looking for
2376 */
2377 if (entry->func && entry->func != func)
2378 continue;
2379
2380 /*
2381 * We require this to be a digital signature, not a raw IMA
2382 * hash.
2383 */
2384 if (entry->flags & IMA_DIGSIG_REQUIRED)
2385 found = true;
2386
2387 /*
2388 * We've found a rule that matches, so break now even if it
2389 * didn't require a digital signature - a later rule that does
2390 * won't override it, so would be a false positive.
2391 */
2392 break;
2393 }
2394
2395 rcu_read_unlock();
2396 return found;
2397 }
2398 #endif /* CONFIG_IMA_APPRAISE && CONFIG_INTEGRITY_TRUSTED_KEYRING */
2399
2400 /**
2401 * ima_measure_loaded_policy - measure the active IMA policy ruleset
2402 *
2403 * Must be called with ima_write_mutex held, as it performs two
2404 * separate RCU read passes over ima_rules and relies on the mutex
2405 * to prevent concurrent policy updates between them.
2406 */
ima_measure_loaded_policy(void)2407 void ima_measure_loaded_policy(void)
2408 {
2409 const char *event_name = "ima_policy_loaded";
2410 const char *op = "measure_loaded_ima_policy";
2411 size_t rule_len = max_rule_len + 2;
2412 struct ima_rule_entry *rule_entry;
2413 struct list_head *ima_rules_tmp;
2414 struct seq_file file = { 0 };
2415 int result = -ENOMEM;
2416 size_t file_len = 0;
2417 char *rule;
2418
2419 lockdep_assert_held(&ima_write_mutex);
2420
2421 rule = kmalloc(rule_len, GFP_KERNEL);
2422 if (!rule) {
2423 integrity_audit_msg(AUDIT_INTEGRITY_PCR, NULL, event_name,
2424 op, "ENOMEM", result, 0);
2425 return;
2426 }
2427
2428 /* calculate IMA policy rules memory size */
2429 file.buf = rule;
2430 file.read_pos = 0;
2431 file.size = rule_len;
2432 file.count = 0;
2433
2434 rcu_read_lock();
2435 ima_rules_tmp = rcu_dereference(ima_rules);
2436 list_for_each_entry_rcu(rule_entry, ima_rules_tmp, list) {
2437 ima_policy_show(&file, rule_entry);
2438
2439 if (seq_has_overflowed(&file)) {
2440 result = -E2BIG;
2441 integrity_audit_msg(AUDIT_INTEGRITY_PCR, NULL,
2442 event_name, op, "rule_length",
2443 result, 0);
2444 rcu_read_unlock();
2445 goto free_rule;
2446 }
2447
2448 file_len += file.count;
2449 file.count = 0;
2450 }
2451 rcu_read_unlock();
2452
2453 /* copy IMA policy rules to a buffer for measuring */
2454 file.buf = kmalloc(file_len, GFP_KERNEL);
2455 if (!file.buf) {
2456 integrity_audit_msg(AUDIT_INTEGRITY_PCR, NULL, event_name,
2457 op, "ENOMEM", result, 0);
2458 goto free_rule;
2459 }
2460
2461 file.read_pos = 0;
2462 file.size = file_len;
2463 file.count = 0;
2464
2465 rcu_read_lock();
2466 ima_rules_tmp = rcu_dereference(ima_rules);
2467 list_for_each_entry_rcu(rule_entry, ima_rules_tmp, list) {
2468 ima_policy_show(&file, rule_entry);
2469 }
2470 rcu_read_unlock();
2471
2472 ima_measure_critical_data("ima_policy", event_name, file.buf,
2473 file.count, false, NULL, 0);
2474
2475 kfree(file.buf);
2476 free_rule:
2477 kfree(rule);
2478 }
2479