1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3  * Integrity Measurement Architecture
4  *
5  * Copyright (C) 2005,2006,2007,2008 IBM Corporation
6  *
7  * Authors:
8  * Reiner Sailer <sailer@watson.ibm.com>
9  * Serge Hallyn <serue@us.ibm.com>
10  * Kylene Hall <kylene@us.ibm.com>
11  * Mimi Zohar <zohar@us.ibm.com>
12  *
13  * File: ima_main.c
14  *	implements the IMA hooks: ima_bprm_check, ima_file_mmap,
15  *	and ima_file_check.
16  */
17 
18 #include <linux/module.h>
19 #include <linux/file.h>
20 #include <linux/binfmts.h>
21 #include <linux/kernel_read_file.h>
22 #include <linux/mount.h>
23 #include <linux/mman.h>
24 #include <linux/slab.h>
25 #include <linux/xattr.h>
26 #include <linux/ima.h>
27 #include <linux/iversion.h>
28 #include <linux/fs.h>
29 
30 #include "ima.h"
31 
32 #ifdef CONFIG_IMA_APPRAISE
33 int ima_appraise = IMA_APPRAISE_ENFORCE;
34 #else
35 int ima_appraise;
36 #endif
37 
38 int __ro_after_init ima_hash_algo = HASH_ALGO_SHA1;
39 static int hash_setup_done;
40 
41 static struct notifier_block ima_lsm_policy_notifier = {
42 	.notifier_call = ima_lsm_policy_change,
43 };
44 
45 static int __init hash_setup(char *str)
46 {
47 	struct ima_template_desc *template_desc = ima_template_desc_current();
48 	int i;
49 
50 	if (hash_setup_done)
51 		return 1;
52 
53 	if (strcmp(template_desc->name, IMA_TEMPLATE_IMA_NAME) == 0) {
54 		if (strncmp(str, "sha1", 4) == 0) {
55 			ima_hash_algo = HASH_ALGO_SHA1;
56 		} else if (strncmp(str, "md5", 3) == 0) {
57 			ima_hash_algo = HASH_ALGO_MD5;
58 		} else {
59 			pr_err("invalid hash algorithm \"%s\" for template \"%s\"",
60 				str, IMA_TEMPLATE_IMA_NAME);
61 			return 1;
62 		}
63 		goto out;
64 	}
65 
66 	i = match_string(hash_algo_name, HASH_ALGO__LAST, str);
67 	if (i < 0) {
68 		pr_err("invalid hash algorithm \"%s\"", str);
69 		return 1;
70 	}
71 
72 	ima_hash_algo = i;
73 out:
74 	hash_setup_done = 1;
75 	return 1;
76 }
77 __setup("ima_hash=", hash_setup);
78 
79 enum hash_algo ima_get_current_hash_algo(void)
80 {
81 	return ima_hash_algo;
82 }
83 
84 /* Prevent mmap'ing a file execute that is already mmap'ed write */
85 static int mmap_violation_check(enum ima_hooks func, struct file *file,
86 				char **pathbuf, const char **pathname,
87 				char *filename)
88 {
89 	struct inode *inode;
90 	int rc = 0;
91 
92 	if ((func == MMAP_CHECK) && mapping_writably_mapped(file->f_mapping)) {
93 		rc = -ETXTBSY;
94 		inode = file_inode(file);
95 
96 		if (!*pathbuf)	/* ima_rdwr_violation possibly pre-fetched */
97 			*pathname = ima_d_path(&file->f_path, pathbuf,
98 					       filename);
99 		integrity_audit_msg(AUDIT_INTEGRITY_DATA, inode, *pathname,
100 				    "mmap_file", "mmapped_writers", rc, 0);
101 	}
102 	return rc;
103 }
104 
105 /*
106  * ima_rdwr_violation_check
107  *
108  * Only invalidate the PCR for measured files:
109  *	- Opening a file for write when already open for read,
110  *	  results in a time of measure, time of use (ToMToU) error.
111  *	- Opening a file for read when already open for write,
112  *	  could result in a file measurement error.
113  *
114  */
115 static void ima_rdwr_violation_check(struct file *file,
116 				     struct integrity_iint_cache *iint,
117 				     int must_measure,
118 				     char **pathbuf,
119 				     const char **pathname,
120 				     char *filename)
121 {
122 	struct inode *inode = file_inode(file);
123 	fmode_t mode = file->f_mode;
124 	bool send_tomtou = false, send_writers = false;
125 
126 	if (mode & FMODE_WRITE) {
127 		if (atomic_read(&inode->i_readcount) && IS_IMA(inode)) {
128 			if (!iint)
129 				iint = integrity_iint_find(inode);
130 			/* IMA_MEASURE is set from reader side */
131 			if (iint && test_bit(IMA_MUST_MEASURE,
132 						&iint->atomic_flags))
133 				send_tomtou = true;
134 		}
135 	} else {
136 		if (must_measure)
137 			set_bit(IMA_MUST_MEASURE, &iint->atomic_flags);
138 		if (inode_is_open_for_write(inode) && must_measure)
139 			send_writers = true;
140 	}
141 
142 	if (!send_tomtou && !send_writers)
143 		return;
144 
145 	*pathname = ima_d_path(&file->f_path, pathbuf, filename);
146 
147 	if (send_tomtou)
148 		ima_add_violation(file, *pathname, iint,
149 				  "invalid_pcr", "ToMToU");
150 	if (send_writers)
151 		ima_add_violation(file, *pathname, iint,
152 				  "invalid_pcr", "open_writers");
153 }
154 
155 static void ima_check_last_writer(struct integrity_iint_cache *iint,
156 				  struct inode *inode, struct file *file)
157 {
158 	fmode_t mode = file->f_mode;
159 	bool update;
160 
161 	if (!(mode & FMODE_WRITE))
162 		return;
163 
164 	mutex_lock(&iint->mutex);
165 	if (atomic_read(&inode->i_writecount) == 1) {
166 		update = test_and_clear_bit(IMA_UPDATE_XATTR,
167 					    &iint->atomic_flags);
168 		if (!IS_I_VERSION(inode) ||
169 		    !inode_eq_iversion(inode, iint->version) ||
170 		    (iint->flags & IMA_NEW_FILE)) {
171 			iint->flags &= ~(IMA_DONE_MASK | IMA_NEW_FILE);
172 			iint->measured_pcrs = 0;
173 			if (update)
174 				ima_update_xattr(iint, file);
175 		}
176 	}
177 	mutex_unlock(&iint->mutex);
178 }
179 
180 /**
181  * ima_file_free - called on __fput()
182  * @file: pointer to file structure being freed
183  *
184  * Flag files that changed, based on i_version
185  */
186 void ima_file_free(struct file *file)
187 {
188 	struct inode *inode = file_inode(file);
189 	struct integrity_iint_cache *iint;
190 
191 	if (!ima_policy_flag || !S_ISREG(inode->i_mode))
192 		return;
193 
194 	iint = integrity_iint_find(inode);
195 	if (!iint)
196 		return;
197 
198 	ima_check_last_writer(iint, inode, file);
199 }
200 
201 static int process_measurement(struct file *file, const struct cred *cred,
202 			       u32 secid, char *buf, loff_t size, int mask,
203 			       enum ima_hooks func)
204 {
205 	struct inode *inode = file_inode(file);
206 	struct integrity_iint_cache *iint = NULL;
207 	struct ima_template_desc *template_desc = NULL;
208 	char *pathbuf = NULL;
209 	char filename[NAME_MAX];
210 	const char *pathname = NULL;
211 	int rc = 0, action, must_appraise = 0;
212 	int pcr = CONFIG_IMA_MEASURE_PCR_IDX;
213 	struct evm_ima_xattr_data *xattr_value = NULL;
214 	struct modsig *modsig = NULL;
215 	int xattr_len = 0;
216 	bool violation_check;
217 	enum hash_algo hash_algo;
218 	unsigned int allowed_algos = 0;
219 
220 	if (!ima_policy_flag || !S_ISREG(inode->i_mode))
221 		return 0;
222 
223 	/* Return an IMA_MEASURE, IMA_APPRAISE, IMA_AUDIT action
224 	 * bitmask based on the appraise/audit/measurement policy.
225 	 * Included is the appraise submask.
226 	 */
227 	action = ima_get_action(file_mnt_user_ns(file), inode, cred, secid,
228 				mask, func, &pcr, &template_desc, NULL,
229 				&allowed_algos);
230 	violation_check = ((func == FILE_CHECK || func == MMAP_CHECK) &&
231 			   (ima_policy_flag & IMA_MEASURE));
232 	if (!action && !violation_check)
233 		return 0;
234 
235 	must_appraise = action & IMA_APPRAISE;
236 
237 	/*  Is the appraise rule hook specific?  */
238 	if (action & IMA_FILE_APPRAISE)
239 		func = FILE_CHECK;
240 
241 	inode_lock(inode);
242 
243 	if (action) {
244 		iint = integrity_inode_get(inode);
245 		if (!iint)
246 			rc = -ENOMEM;
247 	}
248 
249 	if (!rc && violation_check)
250 		ima_rdwr_violation_check(file, iint, action & IMA_MEASURE,
251 					 &pathbuf, &pathname, filename);
252 
253 	inode_unlock(inode);
254 
255 	if (rc)
256 		goto out;
257 	if (!action)
258 		goto out;
259 
260 	mutex_lock(&iint->mutex);
261 
262 	if (test_and_clear_bit(IMA_CHANGE_ATTR, &iint->atomic_flags))
263 		/* reset appraisal flags if ima_inode_post_setattr was called */
264 		iint->flags &= ~(IMA_APPRAISE | IMA_APPRAISED |
265 				 IMA_APPRAISE_SUBMASK | IMA_APPRAISED_SUBMASK |
266 				 IMA_NONACTION_FLAGS);
267 
268 	/*
269 	 * Re-evaulate the file if either the xattr has changed or the
270 	 * kernel has no way of detecting file change on the filesystem.
271 	 * (Limited to privileged mounted filesystems.)
272 	 */
273 	if (test_and_clear_bit(IMA_CHANGE_XATTR, &iint->atomic_flags) ||
274 	    ((inode->i_sb->s_iflags & SB_I_IMA_UNVERIFIABLE_SIGNATURE) &&
275 	     !(inode->i_sb->s_iflags & SB_I_UNTRUSTED_MOUNTER) &&
276 	     !(action & IMA_FAIL_UNVERIFIABLE_SIGS))) {
277 		iint->flags &= ~IMA_DONE_MASK;
278 		iint->measured_pcrs = 0;
279 	}
280 
281 	/* Determine if already appraised/measured based on bitmask
282 	 * (IMA_MEASURE, IMA_MEASURED, IMA_XXXX_APPRAISE, IMA_XXXX_APPRAISED,
283 	 *  IMA_AUDIT, IMA_AUDITED)
284 	 */
285 	iint->flags |= action;
286 	action &= IMA_DO_MASK;
287 	action &= ~((iint->flags & (IMA_DONE_MASK ^ IMA_MEASURED)) >> 1);
288 
289 	/* If target pcr is already measured, unset IMA_MEASURE action */
290 	if ((action & IMA_MEASURE) && (iint->measured_pcrs & (0x1 << pcr)))
291 		action ^= IMA_MEASURE;
292 
293 	/* HASH sets the digital signature and update flags, nothing else */
294 	if ((action & IMA_HASH) &&
295 	    !(test_bit(IMA_DIGSIG, &iint->atomic_flags))) {
296 		xattr_len = ima_read_xattr(file_dentry(file),
297 					   &xattr_value, xattr_len);
298 		if ((xattr_value && xattr_len > 2) &&
299 		    (xattr_value->type == EVM_IMA_XATTR_DIGSIG))
300 			set_bit(IMA_DIGSIG, &iint->atomic_flags);
301 		iint->flags |= IMA_HASHED;
302 		action ^= IMA_HASH;
303 		set_bit(IMA_UPDATE_XATTR, &iint->atomic_flags);
304 	}
305 
306 	/* Nothing to do, just return existing appraised status */
307 	if (!action) {
308 		if (must_appraise) {
309 			rc = mmap_violation_check(func, file, &pathbuf,
310 						  &pathname, filename);
311 			if (!rc)
312 				rc = ima_get_cache_status(iint, func);
313 		}
314 		goto out_locked;
315 	}
316 
317 	if ((action & IMA_APPRAISE_SUBMASK) ||
318 	    strcmp(template_desc->name, IMA_TEMPLATE_IMA_NAME) != 0) {
319 		/* read 'security.ima' */
320 		xattr_len = ima_read_xattr(file_dentry(file),
321 					   &xattr_value, xattr_len);
322 
323 		/*
324 		 * Read the appended modsig if allowed by the policy, and allow
325 		 * an additional measurement list entry, if needed, based on the
326 		 * template format and whether the file was already measured.
327 		 */
328 		if (iint->flags & IMA_MODSIG_ALLOWED) {
329 			rc = ima_read_modsig(func, buf, size, &modsig);
330 
331 			if (!rc && ima_template_has_modsig(template_desc) &&
332 			    iint->flags & IMA_MEASURED)
333 				action |= IMA_MEASURE;
334 		}
335 	}
336 
337 	hash_algo = ima_get_hash_algo(xattr_value, xattr_len);
338 
339 	rc = ima_collect_measurement(iint, file, buf, size, hash_algo, modsig);
340 	if (rc == -ENOMEM)
341 		goto out_locked;
342 
343 	if (!pathbuf)	/* ima_rdwr_violation possibly pre-fetched */
344 		pathname = ima_d_path(&file->f_path, &pathbuf, filename);
345 
346 	if (action & IMA_MEASURE)
347 		ima_store_measurement(iint, file, pathname,
348 				      xattr_value, xattr_len, modsig, pcr,
349 				      template_desc);
350 	if (rc == 0 && (action & IMA_APPRAISE_SUBMASK)) {
351 		rc = ima_check_blacklist(iint, modsig, pcr);
352 		if (rc != -EPERM) {
353 			inode_lock(inode);
354 			rc = ima_appraise_measurement(func, iint, file,
355 						      pathname, xattr_value,
356 						      xattr_len, modsig);
357 			inode_unlock(inode);
358 		}
359 		if (!rc)
360 			rc = mmap_violation_check(func, file, &pathbuf,
361 						  &pathname, filename);
362 	}
363 	if (action & IMA_AUDIT)
364 		ima_audit_measurement(iint, pathname);
365 
366 	if ((file->f_flags & O_DIRECT) && (iint->flags & IMA_PERMIT_DIRECTIO))
367 		rc = 0;
368 
369 	/* Ensure the digest was generated using an allowed algorithm */
370 	if (rc == 0 && must_appraise && allowed_algos != 0 &&
371 	    (allowed_algos & (1U << hash_algo)) == 0) {
372 		rc = -EACCES;
373 
374 		integrity_audit_msg(AUDIT_INTEGRITY_DATA, file_inode(file),
375 				    pathname, "collect_data",
376 				    "denied-hash-algorithm", rc, 0);
377 	}
378 out_locked:
379 	if ((mask & MAY_WRITE) && test_bit(IMA_DIGSIG, &iint->atomic_flags) &&
380 	     !(iint->flags & IMA_NEW_FILE))
381 		rc = -EACCES;
382 	mutex_unlock(&iint->mutex);
383 	kfree(xattr_value);
384 	ima_free_modsig(modsig);
385 out:
386 	if (pathbuf)
387 		__putname(pathbuf);
388 	if (must_appraise) {
389 		if (rc && (ima_appraise & IMA_APPRAISE_ENFORCE))
390 			return -EACCES;
391 		if (file->f_mode & FMODE_WRITE)
392 			set_bit(IMA_UPDATE_XATTR, &iint->atomic_flags);
393 	}
394 	return 0;
395 }
396 
397 /**
398  * ima_file_mmap - based on policy, collect/store measurement.
399  * @file: pointer to the file to be measured (May be NULL)
400  * @prot: contains the protection that will be applied by the kernel.
401  *
402  * Measure files being mmapped executable based on the ima_must_measure()
403  * policy decision.
404  *
405  * On success return 0.  On integrity appraisal error, assuming the file
406  * is in policy and IMA-appraisal is in enforcing mode, return -EACCES.
407  */
408 int ima_file_mmap(struct file *file, unsigned long prot)
409 {
410 	u32 secid;
411 
412 	if (file && (prot & PROT_EXEC)) {
413 		security_current_getsecid_subj(&secid);
414 		return process_measurement(file, current_cred(), secid, NULL,
415 					   0, MAY_EXEC, MMAP_CHECK);
416 	}
417 
418 	return 0;
419 }
420 
421 /**
422  * ima_file_mprotect - based on policy, limit mprotect change
423  * @vma: vm_area_struct protection is set to
424  * @prot: contains the protection that will be applied by the kernel.
425  *
426  * Files can be mmap'ed read/write and later changed to execute to circumvent
427  * IMA's mmap appraisal policy rules.  Due to locking issues (mmap semaphore
428  * would be taken before i_mutex), files can not be measured or appraised at
429  * this point.  Eliminate this integrity gap by denying the mprotect
430  * PROT_EXECUTE change, if an mmap appraise policy rule exists.
431  *
432  * On mprotect change success, return 0.  On failure, return -EACESS.
433  */
434 int ima_file_mprotect(struct vm_area_struct *vma, unsigned long prot)
435 {
436 	struct ima_template_desc *template = NULL;
437 	struct file *file;
438 	char filename[NAME_MAX];
439 	char *pathbuf = NULL;
440 	const char *pathname = NULL;
441 	struct inode *inode;
442 	int result = 0;
443 	int action;
444 	u32 secid;
445 	int pcr;
446 
447 	/* Is mprotect making an mmap'ed file executable? */
448 	if (!(ima_policy_flag & IMA_APPRAISE) || !vma->vm_file ||
449 	    !(prot & PROT_EXEC) || (vma->vm_flags & VM_EXEC))
450 		return 0;
451 
452 	security_current_getsecid_subj(&secid);
453 	inode = file_inode(vma->vm_file);
454 	action = ima_get_action(file_mnt_user_ns(vma->vm_file), inode,
455 				current_cred(), secid, MAY_EXEC, MMAP_CHECK,
456 				&pcr, &template, NULL, NULL);
457 
458 	/* Is the mmap'ed file in policy? */
459 	if (!(action & (IMA_MEASURE | IMA_APPRAISE_SUBMASK)))
460 		return 0;
461 
462 	if (action & IMA_APPRAISE_SUBMASK)
463 		result = -EPERM;
464 
465 	file = vma->vm_file;
466 	pathname = ima_d_path(&file->f_path, &pathbuf, filename);
467 	integrity_audit_msg(AUDIT_INTEGRITY_DATA, inode, pathname,
468 			    "collect_data", "failed-mprotect", result, 0);
469 	if (pathbuf)
470 		__putname(pathbuf);
471 
472 	return result;
473 }
474 
475 /**
476  * ima_bprm_check - based on policy, collect/store measurement.
477  * @bprm: contains the linux_binprm structure
478  *
479  * The OS protects against an executable file, already open for write,
480  * from being executed in deny_write_access() and an executable file,
481  * already open for execute, from being modified in get_write_access().
482  * So we can be certain that what we verify and measure here is actually
483  * what is being executed.
484  *
485  * On success return 0.  On integrity appraisal error, assuming the file
486  * is in policy and IMA-appraisal is in enforcing mode, return -EACCES.
487  */
488 int ima_bprm_check(struct linux_binprm *bprm)
489 {
490 	int ret;
491 	u32 secid;
492 
493 	security_current_getsecid_subj(&secid);
494 	ret = process_measurement(bprm->file, current_cred(), secid, NULL, 0,
495 				  MAY_EXEC, BPRM_CHECK);
496 	if (ret)
497 		return ret;
498 
499 	security_cred_getsecid(bprm->cred, &secid);
500 	return process_measurement(bprm->file, bprm->cred, secid, NULL, 0,
501 				   MAY_EXEC, CREDS_CHECK);
502 }
503 
504 /**
505  * ima_file_check - based on policy, collect/store measurement.
506  * @file: pointer to the file to be measured
507  * @mask: contains MAY_READ, MAY_WRITE, MAY_EXEC or MAY_APPEND
508  *
509  * Measure files based on the ima_must_measure() policy decision.
510  *
511  * On success return 0.  On integrity appraisal error, assuming the file
512  * is in policy and IMA-appraisal is in enforcing mode, return -EACCES.
513  */
514 int ima_file_check(struct file *file, int mask)
515 {
516 	u32 secid;
517 
518 	security_current_getsecid_subj(&secid);
519 	return process_measurement(file, current_cred(), secid, NULL, 0,
520 				   mask & (MAY_READ | MAY_WRITE | MAY_EXEC |
521 					   MAY_APPEND), FILE_CHECK);
522 }
523 EXPORT_SYMBOL_GPL(ima_file_check);
524 
525 static int __ima_inode_hash(struct inode *inode, struct file *file, char *buf,
526 			    size_t buf_size)
527 {
528 	struct integrity_iint_cache *iint = NULL, tmp_iint;
529 	int rc, hash_algo;
530 
531 	if (ima_policy_flag) {
532 		iint = integrity_iint_find(inode);
533 		if (iint)
534 			mutex_lock(&iint->mutex);
535 	}
536 
537 	if ((!iint || !(iint->flags & IMA_COLLECTED)) && file) {
538 		if (iint)
539 			mutex_unlock(&iint->mutex);
540 
541 		memset(&tmp_iint, 0, sizeof(tmp_iint));
542 		tmp_iint.inode = inode;
543 		mutex_init(&tmp_iint.mutex);
544 
545 		rc = ima_collect_measurement(&tmp_iint, file, NULL, 0,
546 					     ima_hash_algo, NULL);
547 		if (rc < 0) {
548 			/* ima_hash could be allocated in case of failure. */
549 			if (rc != -ENOMEM)
550 				kfree(tmp_iint.ima_hash);
551 
552 			return -EOPNOTSUPP;
553 		}
554 
555 		iint = &tmp_iint;
556 		mutex_lock(&iint->mutex);
557 	}
558 
559 	if (!iint)
560 		return -EOPNOTSUPP;
561 
562 	/*
563 	 * ima_file_hash can be called when ima_collect_measurement has still
564 	 * not been called, we might not always have a hash.
565 	 */
566 	if (!iint->ima_hash) {
567 		mutex_unlock(&iint->mutex);
568 		return -EOPNOTSUPP;
569 	}
570 
571 	if (buf) {
572 		size_t copied_size;
573 
574 		copied_size = min_t(size_t, iint->ima_hash->length, buf_size);
575 		memcpy(buf, iint->ima_hash->digest, copied_size);
576 	}
577 	hash_algo = iint->ima_hash->algo;
578 	mutex_unlock(&iint->mutex);
579 
580 	if (iint == &tmp_iint)
581 		kfree(iint->ima_hash);
582 
583 	return hash_algo;
584 }
585 
586 /**
587  * ima_file_hash - return a measurement of the file
588  * @file: pointer to the file
589  * @buf: buffer in which to store the hash
590  * @buf_size: length of the buffer
591  *
592  * On success, return the hash algorithm (as defined in the enum hash_algo).
593  * If buf is not NULL, this function also outputs the hash into buf.
594  * If the hash is larger than buf_size, then only buf_size bytes will be copied.
595  * It generally just makes sense to pass a buffer capable of holding the largest
596  * possible hash: IMA_MAX_DIGEST_SIZE.
597  * The file hash returned is based on the entire file, including the appended
598  * signature.
599  *
600  * If the measurement cannot be performed, return -EOPNOTSUPP.
601  * If the parameters are incorrect, return -EINVAL.
602  */
603 int ima_file_hash(struct file *file, char *buf, size_t buf_size)
604 {
605 	if (!file)
606 		return -EINVAL;
607 
608 	return __ima_inode_hash(file_inode(file), file, buf, buf_size);
609 }
610 EXPORT_SYMBOL_GPL(ima_file_hash);
611 
612 /**
613  * ima_inode_hash - return the stored measurement if the inode has been hashed
614  * and is in the iint cache.
615  * @inode: pointer to the inode
616  * @buf: buffer in which to store the hash
617  * @buf_size: length of the buffer
618  *
619  * On success, return the hash algorithm (as defined in the enum hash_algo).
620  * If buf is not NULL, this function also outputs the hash into buf.
621  * If the hash is larger than buf_size, then only buf_size bytes will be copied.
622  * It generally just makes sense to pass a buffer capable of holding the largest
623  * possible hash: IMA_MAX_DIGEST_SIZE.
624  * The hash returned is based on the entire contents, including the appended
625  * signature.
626  *
627  * If IMA is disabled or if no measurement is available, return -EOPNOTSUPP.
628  * If the parameters are incorrect, return -EINVAL.
629  */
630 int ima_inode_hash(struct inode *inode, char *buf, size_t buf_size)
631 {
632 	if (!inode)
633 		return -EINVAL;
634 
635 	return __ima_inode_hash(inode, NULL, buf, buf_size);
636 }
637 EXPORT_SYMBOL_GPL(ima_inode_hash);
638 
639 /**
640  * ima_post_create_tmpfile - mark newly created tmpfile as new
641  * @mnt_userns: user namespace of the mount the inode was found from
642  * @inode: inode of the newly created tmpfile
643  *
644  * No measuring, appraising or auditing of newly created tmpfiles is needed.
645  * Skip calling process_measurement(), but indicate which newly, created
646  * tmpfiles are in policy.
647  */
648 void ima_post_create_tmpfile(struct user_namespace *mnt_userns,
649 			     struct inode *inode)
650 {
651 	struct integrity_iint_cache *iint;
652 	int must_appraise;
653 
654 	if (!ima_policy_flag || !S_ISREG(inode->i_mode))
655 		return;
656 
657 	must_appraise = ima_must_appraise(mnt_userns, inode, MAY_ACCESS,
658 					  FILE_CHECK);
659 	if (!must_appraise)
660 		return;
661 
662 	/* Nothing to do if we can't allocate memory */
663 	iint = integrity_inode_get(inode);
664 	if (!iint)
665 		return;
666 
667 	/* needed for writing the security xattrs */
668 	set_bit(IMA_UPDATE_XATTR, &iint->atomic_flags);
669 	iint->ima_file_status = INTEGRITY_PASS;
670 }
671 
672 /**
673  * ima_post_path_mknod - mark as a new inode
674  * @mnt_userns: user namespace of the mount the inode was found from
675  * @dentry: newly created dentry
676  *
677  * Mark files created via the mknodat syscall as new, so that the
678  * file data can be written later.
679  */
680 void ima_post_path_mknod(struct user_namespace *mnt_userns,
681 			 struct dentry *dentry)
682 {
683 	struct integrity_iint_cache *iint;
684 	struct inode *inode = dentry->d_inode;
685 	int must_appraise;
686 
687 	if (!ima_policy_flag || !S_ISREG(inode->i_mode))
688 		return;
689 
690 	must_appraise = ima_must_appraise(mnt_userns, inode, MAY_ACCESS,
691 					  FILE_CHECK);
692 	if (!must_appraise)
693 		return;
694 
695 	/* Nothing to do if we can't allocate memory */
696 	iint = integrity_inode_get(inode);
697 	if (!iint)
698 		return;
699 
700 	/* needed for re-opening empty files */
701 	iint->flags |= IMA_NEW_FILE;
702 }
703 
704 /**
705  * ima_read_file - pre-measure/appraise hook decision based on policy
706  * @file: pointer to the file to be measured/appraised/audit
707  * @read_id: caller identifier
708  * @contents: whether a subsequent call will be made to ima_post_read_file()
709  *
710  * Permit reading a file based on policy. The policy rules are written
711  * in terms of the policy identifier.  Appraising the integrity of
712  * a file requires a file descriptor.
713  *
714  * For permission return 0, otherwise return -EACCES.
715  */
716 int ima_read_file(struct file *file, enum kernel_read_file_id read_id,
717 		  bool contents)
718 {
719 	enum ima_hooks func;
720 	u32 secid;
721 
722 	/*
723 	 * Do devices using pre-allocated memory run the risk of the
724 	 * firmware being accessible to the device prior to the completion
725 	 * of IMA's signature verification any more than when using two
726 	 * buffers? It may be desirable to include the buffer address
727 	 * in this API and walk all the dma_map_single() mappings to check.
728 	 */
729 
730 	/*
731 	 * There will be a call made to ima_post_read_file() with
732 	 * a filled buffer, so we don't need to perform an extra
733 	 * read early here.
734 	 */
735 	if (contents)
736 		return 0;
737 
738 	/* Read entire file for all partial reads. */
739 	func = read_idmap[read_id] ?: FILE_CHECK;
740 	security_current_getsecid_subj(&secid);
741 	return process_measurement(file, current_cred(), secid, NULL,
742 				   0, MAY_READ, func);
743 }
744 
745 const int read_idmap[READING_MAX_ID] = {
746 	[READING_FIRMWARE] = FIRMWARE_CHECK,
747 	[READING_MODULE] = MODULE_CHECK,
748 	[READING_KEXEC_IMAGE] = KEXEC_KERNEL_CHECK,
749 	[READING_KEXEC_INITRAMFS] = KEXEC_INITRAMFS_CHECK,
750 	[READING_POLICY] = POLICY_CHECK
751 };
752 
753 /**
754  * ima_post_read_file - in memory collect/appraise/audit measurement
755  * @file: pointer to the file to be measured/appraised/audit
756  * @buf: pointer to in memory file contents
757  * @size: size of in memory file contents
758  * @read_id: caller identifier
759  *
760  * Measure/appraise/audit in memory file based on policy.  Policy rules
761  * are written in terms of a policy identifier.
762  *
763  * On success return 0.  On integrity appraisal error, assuming the file
764  * is in policy and IMA-appraisal is in enforcing mode, return -EACCES.
765  */
766 int ima_post_read_file(struct file *file, void *buf, loff_t size,
767 		       enum kernel_read_file_id read_id)
768 {
769 	enum ima_hooks func;
770 	u32 secid;
771 
772 	/* permit signed certs */
773 	if (!file && read_id == READING_X509_CERTIFICATE)
774 		return 0;
775 
776 	if (!file || !buf || size == 0) { /* should never happen */
777 		if (ima_appraise & IMA_APPRAISE_ENFORCE)
778 			return -EACCES;
779 		return 0;
780 	}
781 
782 	func = read_idmap[read_id] ?: FILE_CHECK;
783 	security_current_getsecid_subj(&secid);
784 	return process_measurement(file, current_cred(), secid, buf, size,
785 				   MAY_READ, func);
786 }
787 
788 /**
789  * ima_load_data - appraise decision based on policy
790  * @id: kernel load data caller identifier
791  * @contents: whether the full contents will be available in a later
792  *	      call to ima_post_load_data().
793  *
794  * Callers of this LSM hook can not measure, appraise, or audit the
795  * data provided by userspace.  Enforce policy rules requiring a file
796  * signature (eg. kexec'ed kernel image).
797  *
798  * For permission return 0, otherwise return -EACCES.
799  */
800 int ima_load_data(enum kernel_load_data_id id, bool contents)
801 {
802 	bool ima_enforce, sig_enforce;
803 
804 	ima_enforce =
805 		(ima_appraise & IMA_APPRAISE_ENFORCE) == IMA_APPRAISE_ENFORCE;
806 
807 	switch (id) {
808 	case LOADING_KEXEC_IMAGE:
809 		if (IS_ENABLED(CONFIG_KEXEC_SIG)
810 		    && arch_ima_get_secureboot()) {
811 			pr_err("impossible to appraise a kernel image without a file descriptor; try using kexec_file_load syscall.\n");
812 			return -EACCES;
813 		}
814 
815 		if (ima_enforce && (ima_appraise & IMA_APPRAISE_KEXEC)) {
816 			pr_err("impossible to appraise a kernel image without a file descriptor; try using kexec_file_load syscall.\n");
817 			return -EACCES;	/* INTEGRITY_UNKNOWN */
818 		}
819 		break;
820 	case LOADING_FIRMWARE:
821 		if (ima_enforce && (ima_appraise & IMA_APPRAISE_FIRMWARE) && !contents) {
822 			pr_err("Prevent firmware sysfs fallback loading.\n");
823 			return -EACCES;	/* INTEGRITY_UNKNOWN */
824 		}
825 		break;
826 	case LOADING_MODULE:
827 		sig_enforce = is_module_sig_enforced();
828 
829 		if (ima_enforce && (!sig_enforce
830 				    && (ima_appraise & IMA_APPRAISE_MODULES))) {
831 			pr_err("impossible to appraise a module without a file descriptor. sig_enforce kernel parameter might help\n");
832 			return -EACCES;	/* INTEGRITY_UNKNOWN */
833 		}
834 		break;
835 	default:
836 		break;
837 	}
838 	return 0;
839 }
840 
841 /**
842  * ima_post_load_data - appraise decision based on policy
843  * @buf: pointer to in memory file contents
844  * @size: size of in memory file contents
845  * @load_id: kernel load data caller identifier
846  * @description: @load_id-specific description of contents
847  *
848  * Measure/appraise/audit in memory buffer based on policy.  Policy rules
849  * are written in terms of a policy identifier.
850  *
851  * On success return 0.  On integrity appraisal error, assuming the file
852  * is in policy and IMA-appraisal is in enforcing mode, return -EACCES.
853  */
854 int ima_post_load_data(char *buf, loff_t size,
855 		       enum kernel_load_data_id load_id,
856 		       char *description)
857 {
858 	if (load_id == LOADING_FIRMWARE) {
859 		if ((ima_appraise & IMA_APPRAISE_FIRMWARE) &&
860 		    (ima_appraise & IMA_APPRAISE_ENFORCE)) {
861 			pr_err("Prevent firmware loading_store.\n");
862 			return -EACCES; /* INTEGRITY_UNKNOWN */
863 		}
864 		return 0;
865 	}
866 
867 	return 0;
868 }
869 
870 /**
871  * process_buffer_measurement - Measure the buffer or the buffer data hash
872  * @mnt_userns:	user namespace of the mount the inode was found from
873  * @inode: inode associated with the object being measured (NULL for KEY_CHECK)
874  * @buf: pointer to the buffer that needs to be added to the log.
875  * @size: size of buffer(in bytes).
876  * @eventname: event name to be used for the buffer entry.
877  * @func: IMA hook
878  * @pcr: pcr to extend the measurement
879  * @func_data: func specific data, may be NULL
880  * @buf_hash: measure buffer data hash
881  * @digest: buffer digest will be written to
882  * @digest_len: buffer length
883  *
884  * Based on policy, either the buffer data or buffer data hash is measured
885  *
886  * Return: 0 if the buffer has been successfully measured, 1 if the digest
887  * has been written to the passed location but not added to a measurement entry,
888  * a negative value otherwise.
889  */
890 int process_buffer_measurement(struct user_namespace *mnt_userns,
891 			       struct inode *inode, const void *buf, int size,
892 			       const char *eventname, enum ima_hooks func,
893 			       int pcr, const char *func_data,
894 			       bool buf_hash, u8 *digest, size_t digest_len)
895 {
896 	int ret = 0;
897 	const char *audit_cause = "ENOMEM";
898 	struct ima_template_entry *entry = NULL;
899 	struct integrity_iint_cache iint = {};
900 	struct ima_event_data event_data = {.iint = &iint,
901 					    .filename = eventname,
902 					    .buf = buf,
903 					    .buf_len = size};
904 	struct ima_template_desc *template;
905 	struct ima_max_digest_data hash;
906 	char digest_hash[IMA_MAX_DIGEST_SIZE];
907 	int digest_hash_len = hash_digest_size[ima_hash_algo];
908 	int violation = 0;
909 	int action = 0;
910 	u32 secid;
911 
912 	if (digest && digest_len < digest_hash_len)
913 		return -EINVAL;
914 
915 	if (!ima_policy_flag && !digest)
916 		return -ENOENT;
917 
918 	template = ima_template_desc_buf();
919 	if (!template) {
920 		ret = -EINVAL;
921 		audit_cause = "ima_template_desc_buf";
922 		goto out;
923 	}
924 
925 	/*
926 	 * Both LSM hooks and auxilary based buffer measurements are
927 	 * based on policy.  To avoid code duplication, differentiate
928 	 * between the LSM hooks and auxilary buffer measurements,
929 	 * retrieving the policy rule information only for the LSM hook
930 	 * buffer measurements.
931 	 */
932 	if (func) {
933 		security_current_getsecid_subj(&secid);
934 		action = ima_get_action(mnt_userns, inode, current_cred(),
935 					secid, 0, func, &pcr, &template,
936 					func_data, NULL);
937 		if (!(action & IMA_MEASURE) && !digest)
938 			return -ENOENT;
939 	}
940 
941 	if (!pcr)
942 		pcr = CONFIG_IMA_MEASURE_PCR_IDX;
943 
944 	iint.ima_hash = &hash.hdr;
945 	iint.ima_hash->algo = ima_hash_algo;
946 	iint.ima_hash->length = hash_digest_size[ima_hash_algo];
947 
948 	ret = ima_calc_buffer_hash(buf, size, iint.ima_hash);
949 	if (ret < 0) {
950 		audit_cause = "hashing_error";
951 		goto out;
952 	}
953 
954 	if (buf_hash) {
955 		memcpy(digest_hash, hash.hdr.digest, digest_hash_len);
956 
957 		ret = ima_calc_buffer_hash(digest_hash, digest_hash_len,
958 					   iint.ima_hash);
959 		if (ret < 0) {
960 			audit_cause = "hashing_error";
961 			goto out;
962 		}
963 
964 		event_data.buf = digest_hash;
965 		event_data.buf_len = digest_hash_len;
966 	}
967 
968 	if (digest)
969 		memcpy(digest, iint.ima_hash->digest, digest_hash_len);
970 
971 	if (!ima_policy_flag || (func && !(action & IMA_MEASURE)))
972 		return 1;
973 
974 	ret = ima_alloc_init_template(&event_data, &entry, template);
975 	if (ret < 0) {
976 		audit_cause = "alloc_entry";
977 		goto out;
978 	}
979 
980 	ret = ima_store_template(entry, violation, NULL, event_data.buf, pcr);
981 	if (ret < 0) {
982 		audit_cause = "store_entry";
983 		ima_free_template_entry(entry);
984 	}
985 
986 out:
987 	if (ret < 0)
988 		integrity_audit_message(AUDIT_INTEGRITY_PCR, NULL, eventname,
989 					func_measure_str(func),
990 					audit_cause, ret, 0, ret);
991 
992 	return ret;
993 }
994 
995 /**
996  * ima_kexec_cmdline - measure kexec cmdline boot args
997  * @kernel_fd: file descriptor of the kexec kernel being loaded
998  * @buf: pointer to buffer
999  * @size: size of buffer
1000  *
1001  * Buffers can only be measured, not appraised.
1002  */
1003 void ima_kexec_cmdline(int kernel_fd, const void *buf, int size)
1004 {
1005 	struct fd f;
1006 
1007 	if (!buf || !size)
1008 		return;
1009 
1010 	f = fdget(kernel_fd);
1011 	if (!f.file)
1012 		return;
1013 
1014 	process_buffer_measurement(file_mnt_user_ns(f.file), file_inode(f.file),
1015 				   buf, size, "kexec-cmdline", KEXEC_CMDLINE, 0,
1016 				   NULL, false, NULL, 0);
1017 	fdput(f);
1018 }
1019 
1020 /**
1021  * ima_measure_critical_data - measure kernel integrity critical data
1022  * @event_label: unique event label for grouping and limiting critical data
1023  * @event_name: event name for the record in the IMA measurement list
1024  * @buf: pointer to buffer data
1025  * @buf_len: length of buffer data (in bytes)
1026  * @hash: measure buffer data hash
1027  * @digest: buffer digest will be written to
1028  * @digest_len: buffer length
1029  *
1030  * Measure data critical to the integrity of the kernel into the IMA log
1031  * and extend the pcr.  Examples of critical data could be various data
1032  * structures, policies, and states stored in kernel memory that can
1033  * impact the integrity of the system.
1034  *
1035  * Return: 0 if the buffer has been successfully measured, 1 if the digest
1036  * has been written to the passed location but not added to a measurement entry,
1037  * a negative value otherwise.
1038  */
1039 int ima_measure_critical_data(const char *event_label,
1040 			      const char *event_name,
1041 			      const void *buf, size_t buf_len,
1042 			      bool hash, u8 *digest, size_t digest_len)
1043 {
1044 	if (!event_name || !event_label || !buf || !buf_len)
1045 		return -ENOPARAM;
1046 
1047 	return process_buffer_measurement(&init_user_ns, NULL, buf, buf_len,
1048 					  event_name, CRITICAL_DATA, 0,
1049 					  event_label, hash, digest,
1050 					  digest_len);
1051 }
1052 EXPORT_SYMBOL_GPL(ima_measure_critical_data);
1053 
1054 static int __init init_ima(void)
1055 {
1056 	int error;
1057 
1058 	ima_appraise_parse_cmdline();
1059 	ima_init_template_list();
1060 	hash_setup(CONFIG_IMA_DEFAULT_HASH);
1061 	error = ima_init();
1062 
1063 	if (error && strcmp(hash_algo_name[ima_hash_algo],
1064 			    CONFIG_IMA_DEFAULT_HASH) != 0) {
1065 		pr_info("Allocating %s failed, going to use default hash algorithm %s\n",
1066 			hash_algo_name[ima_hash_algo], CONFIG_IMA_DEFAULT_HASH);
1067 		hash_setup_done = 0;
1068 		hash_setup(CONFIG_IMA_DEFAULT_HASH);
1069 		error = ima_init();
1070 	}
1071 
1072 	if (error)
1073 		return error;
1074 
1075 	error = register_blocking_lsm_notifier(&ima_lsm_policy_notifier);
1076 	if (error)
1077 		pr_warn("Couldn't register LSM notifier, error %d\n", error);
1078 
1079 	if (!error)
1080 		ima_update_policy_flags();
1081 
1082 	return error;
1083 }
1084 
1085 late_initcall(init_ima);	/* Start IMA after the TPM is available */
1086