1 /*
2 * Non-physical true random number generator based on timing jitter --
3 * Linux Kernel Crypto API specific code
4 *
5 * Copyright Stephan Mueller <smueller@chronox.de>, 2015 - 2023
6 *
7 * Redistribution and use in source and binary forms, with or without
8 * modification, are permitted provided that the following conditions
9 * are met:
10 * 1. Redistributions of source code must retain the above copyright
11 * notice, and the entire permission notice in its entirety,
12 * including the disclaimer of warranties.
13 * 2. Redistributions in binary form must reproduce the above copyright
14 * notice, this list of conditions and the following disclaimer in the
15 * documentation and/or other materials provided with the distribution.
16 * 3. The name of the author may not be used to endorse or promote
17 * products derived from this software without specific prior
18 * written permission.
19 *
20 * ALTERNATIVELY, this product may be distributed under the terms of
21 * the GNU General Public License, in which case the provisions of the GPL2 are
22 * required INSTEAD OF the above restrictions. (This clause is
23 * necessary due to a potential bad interaction between the GPL and
24 * the restrictions contained in a BSD-style copyright.)
25 *
26 * THIS SOFTWARE IS PROVIDED ``AS IS'' AND ANY EXPRESS OR IMPLIED
27 * WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
28 * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE, ALL OF
29 * WHICH ARE HEREBY DISCLAIMED. IN NO EVENT SHALL THE AUTHOR BE
30 * LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
31 * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT
32 * OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR
33 * BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF
34 * LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
35 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE
36 * USE OF THIS SOFTWARE, EVEN IF NOT ADVISED OF THE POSSIBILITY OF SUCH
37 * DAMAGE.
38 */
39
40 #include <crypto/sha3.h>
41 #include <linux/fips.h>
42 #include <linux/kernel.h>
43 #include <linux/module.h>
44 #include <linux/slab.h>
45 #include <linux/time.h>
46 #include <crypto/internal/rng.h>
47
48 #include "jitterentropy.h"
49
50 /***************************************************************************
51 * Helper function
52 ***************************************************************************/
53
jent_kvzalloc(unsigned int len)54 void *jent_kvzalloc(unsigned int len)
55 {
56 return kvzalloc(len, GFP_KERNEL);
57 }
58
jent_kvzfree(void * ptr,unsigned int len)59 void jent_kvzfree(void *ptr, unsigned int len)
60 {
61 kvfree_sensitive(ptr, len);
62 }
63
jent_zalloc(unsigned int len)64 void *jent_zalloc(unsigned int len)
65 {
66 return kzalloc(len, GFP_KERNEL);
67 }
68
jent_zfree(void * ptr)69 void jent_zfree(void *ptr)
70 {
71 kfree_sensitive(ptr);
72 }
73
74 /*
75 * Obtain a high-resolution time stamp value. The time stamp is used to measure
76 * the execution time of a given code path and its variations. Hence, the time
77 * stamp must have a sufficiently high resolution.
78 *
79 * Note, if the function returns zero because a given architecture does not
80 * implement a high-resolution time stamp, the RNG code's runtime test
81 * will detect it and will not produce output.
82 */
jent_get_nstime(__u64 * out)83 void jent_get_nstime(__u64 *out)
84 {
85 __u64 tmp = 0;
86
87 tmp = random_get_entropy();
88
89 /*
90 * If random_get_entropy does not return a value, i.e. it is not
91 * implemented for a given architecture, use a clock source.
92 * hoping that there are timers we can work with.
93 */
94 if (tmp == 0)
95 tmp = ktime_get_ns();
96
97 *out = tmp;
98 jent_raw_hires_entropy_store(tmp);
99 }
100
jent_hash_time(struct sha3_ctx * hash_state,__u64 time,u8 * addtl,unsigned int addtl_len,__u64 hash_loop_cnt,unsigned int stuck)101 void jent_hash_time(struct sha3_ctx *hash_state, __u64 time, u8 *addtl,
102 unsigned int addtl_len, __u64 hash_loop_cnt,
103 unsigned int stuck)
104 {
105 struct sha3_ctx tmp_state; /* zeroized by sha3_final() */
106 u8 intermediary[SHA3_256_DIGEST_SIZE];
107 __u64 j = 0;
108
109 kmsan_unpoison_memory(intermediary, sizeof(intermediary));
110
111 /*
112 * This loop fills a buffer which is injected into the entropy pool.
113 * The main reason for this loop is to execute something over which we
114 * can perform a timing measurement. The injection of the resulting
115 * data into the pool is performed to ensure the result is used and
116 * the compiler cannot optimize the loop away in case the result is not
117 * used at all. Yet that data is considered "additional information"
118 * considering the terminology from SP800-90A without any entropy.
119 *
120 * Note, it does not matter which or how much data you inject, we are
121 * interested in one Keccack1600 compression operation performed with
122 * the sha3_final.
123 */
124 for (j = 0; j < hash_loop_cnt; j++) {
125 sha3_256_init(&tmp_state);
126 sha3_update(&tmp_state, intermediary, sizeof(intermediary));
127 sha3_update(&tmp_state, addtl, addtl_len);
128 sha3_final(&tmp_state, intermediary);
129 }
130
131 /*
132 * Inject the data from the previous loop into the pool. This data is
133 * not considered to contain any entropy, but it stirs the pool a bit.
134 */
135 sha3_update(hash_state, intermediary, sizeof(intermediary));
136
137 /*
138 * Insert the time stamp into the hash context representing the pool.
139 *
140 * If the time stamp is stuck, do not finally insert the value into the
141 * entropy pool. Although this operation should not do any harm even
142 * when the time stamp has no entropy, SP800-90B requires that any
143 * conditioning operation to have an identical amount of input data
144 * according to section 3.1.5.
145 */
146 if (stuck) {
147 time = 0;
148 }
149
150 sha3_update(hash_state, (u8 *)&time, sizeof(__u64));
151 memzero_explicit(intermediary, sizeof(intermediary));
152 }
153
jent_read_random_block(struct sha3_ctx * hash_state,char * dst,unsigned int dst_len)154 void jent_read_random_block(struct sha3_ctx *hash_state, char *dst,
155 unsigned int dst_len)
156 {
157 u8 jent_block[SHA3_256_DIGEST_SIZE];
158
159 /* Obtain data from entropy pool and re-initialize it */
160 sha3_final(hash_state, jent_block);
161 sha3_256_init(hash_state);
162 sha3_update(hash_state, jent_block, sizeof(jent_block));
163
164 if (dst_len)
165 memcpy(dst, jent_block, dst_len);
166
167 memzero_explicit(jent_block, sizeof(jent_block));
168 }
169
170 /***************************************************************************
171 * Kernel crypto API interface
172 ***************************************************************************/
173
174 struct jitterentropy {
175 spinlock_t jent_lock;
176 struct rand_data *entropy_collector;
177 struct sha3_ctx hash_state;
178 };
179
jent_kcapi_cleanup(struct crypto_tfm * tfm)180 static void jent_kcapi_cleanup(struct crypto_tfm *tfm)
181 {
182 struct jitterentropy *rng = crypto_tfm_ctx(tfm);
183
184 spin_lock(&rng->jent_lock);
185
186 memzero_explicit(&rng->hash_state, sizeof(rng->hash_state));
187
188 if (rng->entropy_collector)
189 jent_entropy_collector_free(rng->entropy_collector);
190 rng->entropy_collector = NULL;
191 spin_unlock(&rng->jent_lock);
192 }
193
jent_kcapi_init(struct crypto_tfm * tfm)194 static int jent_kcapi_init(struct crypto_tfm *tfm)
195 {
196 struct jitterentropy *rng = crypto_tfm_ctx(tfm);
197 int ret = 0;
198
199 spin_lock_init(&rng->jent_lock);
200
201 /* Use SHA3-256 as conditioner */
202 sha3_256_init(&rng->hash_state);
203
204 rng->entropy_collector = jent_entropy_collector_alloc(
205 CONFIG_CRYPTO_JITTERENTROPY_OSR, 0, &rng->hash_state);
206 if (!rng->entropy_collector) {
207 ret = -ENOMEM;
208 goto err;
209 }
210
211 spin_lock_init(&rng->jent_lock);
212 return 0;
213
214 err:
215 jent_kcapi_cleanup(tfm);
216 return ret;
217 }
218
jent_kcapi_random(struct crypto_rng * tfm,const u8 * src,unsigned int slen,u8 * rdata,unsigned int dlen)219 static int jent_kcapi_random(struct crypto_rng *tfm,
220 const u8 *src, unsigned int slen,
221 u8 *rdata, unsigned int dlen)
222 {
223 struct jitterentropy *rng = crypto_rng_ctx(tfm);
224 int ret = 0;
225
226 spin_lock(&rng->jent_lock);
227
228 ret = jent_read_entropy(rng->entropy_collector, rdata, dlen);
229
230 if (ret == -3) {
231 /* Handle permanent health test error */
232 /*
233 * If the kernel was booted with fips=1, it implies that
234 * the entire kernel acts as a FIPS 140 module. In this case
235 * an SP800-90B permanent health test error is treated as
236 * a FIPS module error.
237 */
238 if (fips_enabled)
239 panic("Jitter RNG permanent health test failure\n");
240
241 pr_err("Jitter RNG permanent health test failure\n");
242 ret = -EFAULT;
243 } else if (ret == -2) {
244 /* Handle intermittent health test error */
245 pr_warn_ratelimited("Reset Jitter RNG due to intermittent health test failure\n");
246 ret = -EAGAIN;
247 } else if (ret == -1) {
248 /* Handle other errors */
249 ret = -EINVAL;
250 }
251
252 spin_unlock(&rng->jent_lock);
253
254 return ret;
255 }
256
jent_kcapi_reset(struct crypto_rng * tfm,const u8 * seed,unsigned int slen)257 static int jent_kcapi_reset(struct crypto_rng *tfm,
258 const u8 *seed, unsigned int slen)
259 {
260 return 0;
261 }
262
263 static struct rng_alg jent_alg = {
264 .generate = jent_kcapi_random,
265 .seed = jent_kcapi_reset,
266 .seedsize = 0,
267 .base = {
268 .cra_name = "jitterentropy_rng",
269 .cra_driver_name = "jitterentropy_rng",
270 .cra_priority = 100,
271 .cra_ctxsize = sizeof(struct jitterentropy),
272 .cra_module = THIS_MODULE,
273 .cra_init = jent_kcapi_init,
274 .cra_exit = jent_kcapi_cleanup,
275 }
276 };
277
jent_mod_init(void)278 static int __init jent_mod_init(void)
279 {
280 struct sha3_ctx hash_state;
281 int ret = 0;
282
283 jent_testing_init();
284
285 sha3_256_init(&hash_state);
286
287 ret = jent_entropy_init(CONFIG_CRYPTO_JITTERENTROPY_OSR, 0, &hash_state,
288 NULL);
289 memzero_explicit(&hash_state, sizeof(hash_state));
290 if (ret) {
291 /* Handle permanent health test error */
292 if (fips_enabled)
293 panic("jitterentropy: Initialization failed with host not compliant with requirements: %d\n", ret);
294
295 jent_testing_exit();
296 pr_info("jitterentropy: Initialization failed with host not compliant with requirements: %d\n", ret);
297 return -EFAULT;
298 }
299 return crypto_register_rng(&jent_alg);
300 }
301
jent_mod_exit(void)302 static void __exit jent_mod_exit(void)
303 {
304 jent_testing_exit();
305 crypto_unregister_rng(&jent_alg);
306 }
307
308 module_init(jent_mod_init);
309 module_exit(jent_mod_exit);
310
311 MODULE_LICENSE("Dual BSD/GPL");
312 MODULE_AUTHOR("Stephan Mueller <smueller@chronox.de>");
313 MODULE_DESCRIPTION("Non-physical True Random Number Generator based on CPU Jitter");
314 MODULE_ALIAS_CRYPTO("jitterentropy_rng");
315