xref: /netbsd-src/sys/kern/subr_cprng.c (revision 796c32c94f6e154afc9de0f63da35c91bb739b45)
1 /*	$NetBSD: subr_cprng.c,v 1.28 2017/10/25 08:12:39 maya Exp $ */
2 
3 /*-
4  * Copyright (c) 2011-2013 The NetBSD Foundation, Inc.
5  * All rights reserved.
6  *
7  * This code is derived from software contributed to The NetBSD Foundation
8  * by Thor Lancelot Simon and Taylor R. Campbell.
9  *
10  * Redistribution and use in source and binary forms, with or without
11  * modification, are permitted provided that the following conditions
12  * are met:
13  * 1. Redistributions of source code must retain the above copyright
14  *    notice, this list of conditions and the following disclaimer.
15  * 2. Redistributions in binary form must reproduce the above copyright
16  *    notice, this list of conditions and the following disclaimer in the
17  *    documentation and/or other materials provided with the distribution.
18  *
19  * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
20  * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
21  * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
22  * PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
23  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
24  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
25  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
26  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
27  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
28  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
29  * POSSIBILITY OF SUCH DAMAGE.
30  */
31 
32 #include <sys/cdefs.h>
33 __KERNEL_RCSID(0, "$NetBSD: subr_cprng.c,v 1.28 2017/10/25 08:12:39 maya Exp $");
34 
35 #include <sys/param.h>
36 #include <sys/types.h>
37 #include <sys/condvar.h>
38 #include <sys/cprng.h>
39 #include <sys/errno.h>
40 #include <sys/event.h>		/* XXX struct knote */
41 #include <sys/fcntl.h>		/* XXX FNONBLOCK */
42 #include <sys/kernel.h>
43 #include <sys/kmem.h>
44 #include <sys/lwp.h>
45 #include <sys/once.h>
46 #include <sys/percpu.h>
47 #include <sys/poll.h>		/* XXX POLLIN/POLLOUT/&c. */
48 #include <sys/select.h>
49 #include <sys/systm.h>
50 #include <sys/sysctl.h>
51 #include <sys/rndsink.h>
52 #if DIAGNOSTIC
53 #include <sys/rngtest.h>
54 #endif
55 
56 #include <crypto/nist_ctr_drbg/nist_ctr_drbg.h>
57 
58 #if defined(__HAVE_CPU_COUNTER)
59 #include <machine/cpu_counter.h>
60 #endif
61 
62 static int sysctl_kern_urnd(SYSCTLFN_PROTO);
63 static int sysctl_kern_arnd(SYSCTLFN_PROTO);
64 
65 static void	cprng_strong_generate(struct cprng_strong *, void *, size_t);
66 static void	cprng_strong_reseed(struct cprng_strong *);
67 static void	cprng_strong_reseed_from(struct cprng_strong *, const void *,
68 		    size_t, bool);
69 #if DIAGNOSTIC
70 static void	cprng_strong_rngtest(struct cprng_strong *);
71 #endif
72 
73 static rndsink_callback_t	cprng_strong_rndsink_callback;
74 
75 void
76 cprng_init(void)
77 {
78 	static struct sysctllog *random_sysctllog;
79 
80 	nist_ctr_initialize();
81 
82 	sysctl_createv(&random_sysctllog, 0, NULL, NULL,
83 		       CTLFLAG_PERMANENT,
84 		       CTLTYPE_INT, "urandom",
85 		       SYSCTL_DESCR("Random integer value"),
86 		       sysctl_kern_urnd, 0, NULL, 0,
87 		       CTL_KERN, KERN_URND, CTL_EOL);
88 	sysctl_createv(&random_sysctllog, 0, NULL, NULL,
89 		       CTLFLAG_PERMANENT,
90 		       CTLTYPE_INT, "arandom",
91 		       SYSCTL_DESCR("n bytes of random data"),
92 		       sysctl_kern_arnd, 0, NULL, 0,
93 		       CTL_KERN, KERN_ARND, CTL_EOL);
94 }
95 
96 static inline uint32_t
97 cprng_counter(void)
98 {
99 	struct timeval tv;
100 
101 #if defined(__HAVE_CPU_COUNTER)
102 	if (cpu_hascounter())
103 		return cpu_counter32();
104 #endif
105 	if (__predict_false(cold)) {
106 		static int ctr;
107 		/* microtime unsafe if clock not running yet */
108 		return ctr++;
109 	}
110 	getmicrotime(&tv);
111 	return (tv.tv_sec * 1000000 + tv.tv_usec);
112 }
113 
114 struct cprng_strong {
115 	char		cs_name[16];
116 	int		cs_flags;
117 	kmutex_t	cs_lock;
118 	percpu_t	*cs_percpu;
119 	kcondvar_t	cs_cv;
120 	struct selinfo	cs_selq;
121 	struct rndsink	*cs_rndsink;
122 	bool		cs_ready;
123 	NIST_CTR_DRBG	cs_drbg;
124 
125 	/* XXX Kludge for /dev/random `information-theoretic' properties.   */
126 	unsigned int	cs_remaining;
127 };
128 
129 struct cprng_strong *
130 cprng_strong_create(const char *name, int ipl, int flags)
131 {
132 	const uint32_t cc = cprng_counter();
133 	struct cprng_strong *const cprng = kmem_alloc(sizeof(*cprng),
134 	    KM_SLEEP);
135 
136 	/*
137 	 * rndsink_request takes a spin lock at IPL_VM, so we can be no
138 	 * higher than that.
139 	 */
140 	KASSERT(ipl != IPL_SCHED && ipl != IPL_HIGH);
141 
142 	/* Initialize the easy fields.  */
143 	(void)strlcpy(cprng->cs_name, name, sizeof(cprng->cs_name));
144 	cprng->cs_flags = flags;
145 	mutex_init(&cprng->cs_lock, MUTEX_DEFAULT, ipl);
146 	cv_init(&cprng->cs_cv, cprng->cs_name);
147 	selinit(&cprng->cs_selq);
148 	cprng->cs_rndsink = rndsink_create(NIST_BLOCK_KEYLEN_BYTES,
149 	    &cprng_strong_rndsink_callback, cprng);
150 
151 	/* Get some initial entropy.  Record whether it is full entropy.  */
152 	uint8_t seed[NIST_BLOCK_KEYLEN_BYTES];
153 	mutex_enter(&cprng->cs_lock);
154 	cprng->cs_ready = rndsink_request(cprng->cs_rndsink, seed,
155 	    sizeof(seed));
156 	if (nist_ctr_drbg_instantiate(&cprng->cs_drbg, seed, sizeof(seed),
157 		&cc, sizeof(cc), cprng->cs_name, sizeof(cprng->cs_name)))
158 		/* XXX Fix nist_ctr_drbg API so this can't happen.  */
159 		panic("cprng %s: NIST CTR_DRBG instantiation failed",
160 		    cprng->cs_name);
161 	explicit_memset(seed, 0, sizeof(seed));
162 
163 	if (ISSET(flags, CPRNG_HARD))
164 		cprng->cs_remaining = NIST_BLOCK_KEYLEN_BYTES;
165 	else
166 		cprng->cs_remaining = 0;
167 
168 	if (!cprng->cs_ready && !ISSET(flags, CPRNG_INIT_ANY))
169 		printf("cprng %s: creating with partial entropy\n",
170 		    cprng->cs_name);
171 	mutex_exit(&cprng->cs_lock);
172 
173 	return cprng;
174 }
175 
176 void
177 cprng_strong_destroy(struct cprng_strong *cprng)
178 {
179 
180 	/*
181 	 * Destroy the rndsink first to prevent calls to the callback.
182 	 */
183 	rndsink_destroy(cprng->cs_rndsink);
184 
185 	KASSERT(!cv_has_waiters(&cprng->cs_cv));
186 #if 0
187 	KASSERT(!select_has_waiters(&cprng->cs_selq)) /* XXX ? */
188 #endif
189 
190 	nist_ctr_drbg_destroy(&cprng->cs_drbg);
191 	seldestroy(&cprng->cs_selq);
192 	cv_destroy(&cprng->cs_cv);
193 	mutex_destroy(&cprng->cs_lock);
194 
195 	explicit_memset(cprng, 0, sizeof(*cprng)); /* paranoia */
196 	kmem_free(cprng, sizeof(*cprng));
197 }
198 
199 /*
200  * Generate some data from cprng.  Block or return zero bytes,
201  * depending on flags & FNONBLOCK, if cprng was created without
202  * CPRNG_REKEY_ANY.
203  */
204 size_t
205 cprng_strong(struct cprng_strong *cprng, void *buffer, size_t bytes, int flags)
206 {
207 	size_t result;
208 
209 	/* Caller must loop for more than CPRNG_MAX_LEN bytes.  */
210 	bytes = MIN(bytes, CPRNG_MAX_LEN);
211 
212 	mutex_enter(&cprng->cs_lock);
213 
214 	if (ISSET(cprng->cs_flags, CPRNG_REKEY_ANY)) {
215 		if (!cprng->cs_ready)
216 			cprng_strong_reseed(cprng);
217 	} else {
218 		while (!cprng->cs_ready) {
219 			if (ISSET(flags, FNONBLOCK) ||
220 			    !ISSET(cprng->cs_flags, CPRNG_USE_CV) ||
221 			    cv_wait_sig(&cprng->cs_cv, &cprng->cs_lock)) {
222 				result = 0;
223 				goto out;
224 			}
225 		}
226 	}
227 
228 	/*
229 	 * Debit the entropy if requested.
230 	 *
231 	 * XXX Kludge for /dev/random `information-theoretic' properties.
232 	 */
233 	if (__predict_false(ISSET(cprng->cs_flags, CPRNG_HARD))) {
234 		KASSERT(0 < cprng->cs_remaining);
235 		KASSERT(cprng->cs_remaining <= NIST_BLOCK_KEYLEN_BYTES);
236 		if (bytes < cprng->cs_remaining) {
237 			cprng->cs_remaining -= bytes;
238 		} else {
239 			bytes = cprng->cs_remaining;
240 			cprng->cs_remaining = NIST_BLOCK_KEYLEN_BYTES;
241 			cprng->cs_ready = false;
242 			rndsink_schedule(cprng->cs_rndsink);
243 		}
244 		KASSERT(bytes <= NIST_BLOCK_KEYLEN_BYTES);
245 		KASSERT(0 < cprng->cs_remaining);
246 		KASSERT(cprng->cs_remaining <= NIST_BLOCK_KEYLEN_BYTES);
247 	}
248 
249 	cprng_strong_generate(cprng, buffer, bytes);
250 	result = bytes;
251 
252 out:	mutex_exit(&cprng->cs_lock);
253 	return result;
254 }
255 
256 static void	filt_cprng_detach(struct knote *);
257 static int	filt_cprng_event(struct knote *, long);
258 
259 static const struct filterops cprng_filtops = {
260 	.f_isfd = 1,
261 	.f_attach = NULL,
262 	.f_detach = filt_cprng_detach,
263 	.f_event = filt_cprng_event,
264 };
265 
266 int
267 cprng_strong_kqfilter(struct cprng_strong *cprng, struct knote *kn)
268 {
269 
270 	switch (kn->kn_filter) {
271 	case EVFILT_READ:
272 		kn->kn_fop = &cprng_filtops;
273 		kn->kn_hook = cprng;
274 		mutex_enter(&cprng->cs_lock);
275 		SLIST_INSERT_HEAD(&cprng->cs_selq.sel_klist, kn, kn_selnext);
276 		mutex_exit(&cprng->cs_lock);
277 		return 0;
278 
279 	case EVFILT_WRITE:
280 	default:
281 		return EINVAL;
282 	}
283 }
284 
285 static void
286 filt_cprng_detach(struct knote *kn)
287 {
288 	struct cprng_strong *const cprng = kn->kn_hook;
289 
290 	mutex_enter(&cprng->cs_lock);
291 	SLIST_REMOVE(&cprng->cs_selq.sel_klist, kn, knote, kn_selnext);
292 	mutex_exit(&cprng->cs_lock);
293 }
294 
295 static int
296 filt_cprng_event(struct knote *kn, long hint)
297 {
298 	struct cprng_strong *const cprng = kn->kn_hook;
299 	int ret;
300 
301 	if (hint == NOTE_SUBMIT)
302 		KASSERT(mutex_owned(&cprng->cs_lock));
303 	else
304 		mutex_enter(&cprng->cs_lock);
305 	if (cprng->cs_ready) {
306 		kn->kn_data = CPRNG_MAX_LEN; /* XXX Too large?  */
307 		ret = 1;
308 	} else {
309 		ret = 0;
310 	}
311 	if (hint == NOTE_SUBMIT)
312 		KASSERT(mutex_owned(&cprng->cs_lock));
313 	else
314 		mutex_exit(&cprng->cs_lock);
315 
316 	return ret;
317 }
318 
319 int
320 cprng_strong_poll(struct cprng_strong *cprng, int events)
321 {
322 	int revents;
323 
324 	if (!ISSET(events, (POLLIN | POLLRDNORM)))
325 		return 0;
326 
327 	mutex_enter(&cprng->cs_lock);
328 	if (cprng->cs_ready) {
329 		revents = (events & (POLLIN | POLLRDNORM));
330 	} else {
331 		selrecord(curlwp, &cprng->cs_selq);
332 		revents = 0;
333 	}
334 	mutex_exit(&cprng->cs_lock);
335 
336 	return revents;
337 }
338 
339 /*
340  * XXX Move nist_ctr_drbg_reseed_advised_p and
341  * nist_ctr_drbg_reseed_needed_p into the nist_ctr_drbg API and make
342  * the NIST_CTR_DRBG structure opaque.
343  */
344 static bool
345 nist_ctr_drbg_reseed_advised_p(NIST_CTR_DRBG *drbg)
346 {
347 
348 	return (drbg->reseed_counter > (NIST_CTR_DRBG_RESEED_INTERVAL / 2));
349 }
350 
351 static bool
352 nist_ctr_drbg_reseed_needed_p(NIST_CTR_DRBG *drbg)
353 {
354 
355 	return (drbg->reseed_counter >= NIST_CTR_DRBG_RESEED_INTERVAL);
356 }
357 
358 /*
359  * Generate some data from the underlying generator.
360  */
361 static void
362 cprng_strong_generate(struct cprng_strong *cprng, void *buffer, size_t bytes)
363 {
364 	const uint32_t cc = cprng_counter();
365 
366 	KASSERT(bytes <= CPRNG_MAX_LEN);
367 	KASSERT(mutex_owned(&cprng->cs_lock));
368 
369 	/*
370 	 * Generate some data from the NIST CTR_DRBG.  Caller
371 	 * guarantees reseed if we're not ready, and if we exhaust the
372 	 * generator, we mark ourselves not ready.  Consequently, this
373 	 * call to the CTR_DRBG should not fail.
374 	 */
375 	if (__predict_false(nist_ctr_drbg_generate(&cprng->cs_drbg, buffer,
376 		    bytes, &cc, sizeof(cc))))
377 		panic("cprng %s: NIST CTR_DRBG failed", cprng->cs_name);
378 
379 	/*
380 	 * If we've been seeing a lot of use, ask for some fresh
381 	 * entropy soon.
382 	 */
383 	if (__predict_false(nist_ctr_drbg_reseed_advised_p(&cprng->cs_drbg)))
384 		rndsink_schedule(cprng->cs_rndsink);
385 
386 	/*
387 	 * If we just exhausted the generator, inform the next user
388 	 * that we need a reseed.
389 	 */
390 	if (__predict_false(nist_ctr_drbg_reseed_needed_p(&cprng->cs_drbg))) {
391 		cprng->cs_ready = false;
392 		rndsink_schedule(cprng->cs_rndsink); /* paranoia */
393 	}
394 }
395 
396 /*
397  * Reseed with whatever we can get from the system entropy pool right now.
398  */
399 static void
400 cprng_strong_reseed(struct cprng_strong *cprng)
401 {
402 	uint8_t seed[NIST_BLOCK_KEYLEN_BYTES];
403 
404 	KASSERT(mutex_owned(&cprng->cs_lock));
405 
406 	const bool full_entropy = rndsink_request(cprng->cs_rndsink, seed,
407 	    sizeof(seed));
408 	cprng_strong_reseed_from(cprng, seed, sizeof(seed), full_entropy);
409 	explicit_memset(seed, 0, sizeof(seed));
410 }
411 
412 /*
413  * Reseed with the given seed.  If we now have full entropy, notify waiters.
414  */
415 static void
416 cprng_strong_reseed_from(struct cprng_strong *cprng,
417     const void *seed, size_t bytes, bool full_entropy)
418 {
419 	const uint32_t cc = cprng_counter();
420 
421 	KASSERT(bytes == NIST_BLOCK_KEYLEN_BYTES);
422 	KASSERT(mutex_owned(&cprng->cs_lock));
423 
424 	/*
425 	 * Notify anyone interested in the partiality of entropy in our
426 	 * seed -- anyone waiting for full entropy, or any system
427 	 * operators interested in knowing when the entropy pool is
428 	 * running on fumes.
429 	 */
430 	if (full_entropy) {
431 		if (!cprng->cs_ready) {
432 			cprng->cs_ready = true;
433 			cv_broadcast(&cprng->cs_cv);
434 			selnotify(&cprng->cs_selq, (POLLIN | POLLRDNORM),
435 			    NOTE_SUBMIT);
436 		}
437 	} else {
438 		/*
439 		 * XXX Is there is any harm in reseeding with partial
440 		 * entropy when we had full entropy before?  If so,
441 		 * remove the conditional on this message.
442 		 */
443 		if (!cprng->cs_ready &&
444 		    !ISSET(cprng->cs_flags, CPRNG_REKEY_ANY))
445 			printf("cprng %s: reseeding with partial entropy\n",
446 			    cprng->cs_name);
447 	}
448 
449 	if (nist_ctr_drbg_reseed(&cprng->cs_drbg, seed, bytes, &cc, sizeof(cc)))
450 		/* XXX Fix nist_ctr_drbg API so this can't happen.  */
451 		panic("cprng %s: NIST CTR_DRBG reseed failed", cprng->cs_name);
452 
453 #if DIAGNOSTIC
454 	cprng_strong_rngtest(cprng);
455 #endif
456 }
457 
458 #if DIAGNOSTIC
459 /*
460  * Generate some output and apply a statistical RNG test to it.
461  */
462 static void
463 cprng_strong_rngtest(struct cprng_strong *cprng)
464 {
465 
466 	KASSERT(mutex_owned(&cprng->cs_lock));
467 
468 	/* XXX Switch to a pool cache instead?  */
469 	rngtest_t *const rt = kmem_intr_alloc(sizeof(*rt), KM_NOSLEEP);
470 	if (rt == NULL)
471 		/* XXX Warn?  */
472 		return;
473 
474 	(void)strlcpy(rt->rt_name, cprng->cs_name, sizeof(rt->rt_name));
475 
476 	if (nist_ctr_drbg_generate(&cprng->cs_drbg, rt->rt_b, sizeof(rt->rt_b),
477 		NULL, 0))
478 		panic("cprng %s: NIST CTR_DRBG failed after reseed",
479 		    cprng->cs_name);
480 
481 	if (rngtest(rt)) {
482 		printf("cprng %s: failed statistical RNG test\n",
483 		    cprng->cs_name);
484 		/* XXX Not clear that this does any good...  */
485 		cprng->cs_ready = false;
486 		rndsink_schedule(cprng->cs_rndsink);
487 	}
488 
489 	explicit_memset(rt, 0, sizeof(*rt)); /* paranoia */
490 	kmem_intr_free(rt, sizeof(*rt));
491 }
492 #endif
493 
494 /*
495  * Feed entropy from an rndsink request into the CPRNG for which the
496  * request was issued.
497  */
498 static void
499 cprng_strong_rndsink_callback(void *context, const void *seed, size_t bytes)
500 {
501 	struct cprng_strong *const cprng = context;
502 
503 	mutex_enter(&cprng->cs_lock);
504 	/* Assume that rndsinks provide only full-entropy output.  */
505 	cprng_strong_reseed_from(cprng, seed, bytes, true);
506 	mutex_exit(&cprng->cs_lock);
507 }
508 
509 static cprng_strong_t *sysctl_prng;
510 
511 static int
512 makeprng(void)
513 {
514 
515 	/* can't create in cprng_init(), too early */
516 	sysctl_prng = cprng_strong_create("sysctl", IPL_NONE,
517 					  CPRNG_INIT_ANY|CPRNG_REKEY_ANY);
518 	return 0;
519 }
520 
521 /*
522  * sysctl helper routine for kern.urandom node. Picks a random number
523  * for you.
524  */
525 static int
526 sysctl_kern_urnd(SYSCTLFN_ARGS)
527 {
528 	static ONCE_DECL(control);
529 	int v, rv;
530 
531 	RUN_ONCE(&control, makeprng);
532 	rv = cprng_strong(sysctl_prng, &v, sizeof(v), 0);
533 	if (rv == sizeof(v)) {
534 		struct sysctlnode node = *rnode;
535 		node.sysctl_data = &v;
536 		return (sysctl_lookup(SYSCTLFN_CALL(&node)));
537 	}
538 	else
539 		return (EIO);	/*XXX*/
540 }
541 
542 /*
543  * sysctl helper routine for kern.arandom node.  Fills the supplied
544  * structure with random data for you.
545  *
546  * This node was originally declared as type "int" but its implementation
547  * in OpenBSD, whence it came, would happily return up to 8K of data if
548  * requested.  Evidently this was used to key RC4 in userspace.
549  *
550  * In NetBSD, the libc stack-smash-protection code reads 64 bytes
551  * from here at every program startup.  So though it would be nice
552  * to make this node return only 32 or 64 bits, we can't.  Too bad!
553  */
554 static int
555 sysctl_kern_arnd(SYSCTLFN_ARGS)
556 {
557 	int error;
558 	void *v;
559 	struct sysctlnode node = *rnode;
560 
561 	switch (*oldlenp) {
562 	    case 0:
563 		return 0;
564 	    default:
565 		if (*oldlenp > 256) {
566 			return E2BIG;
567 		}
568 		v = kmem_alloc(*oldlenp, KM_SLEEP);
569 		cprng_fast(v, *oldlenp);
570 		node.sysctl_data = v;
571 		node.sysctl_size = *oldlenp;
572 		error = sysctl_lookup(SYSCTLFN_CALL(&node));
573 		kmem_free(v, *oldlenp);
574 		return error;
575 	}
576 }
577