crypto.c revision 1.2 1 1.2 jonathan /* $NetBSD: crypto.c,v 1.2 2003/07/30 18:45:31 jonathan Exp $ */
2 1.1 jonathan /* $FreeBSD: src/sys/opencrypto/crypto.c,v 1.4.2.5 2003/02/26 00:14:05 sam Exp $ */
3 1.1 jonathan /* $OpenBSD: crypto.c,v 1.41 2002/07/17 23:52:38 art Exp $ */
4 1.1 jonathan
5 1.1 jonathan /*
6 1.1 jonathan * The author of this code is Angelos D. Keromytis (angelos (at) cis.upenn.edu)
7 1.1 jonathan *
8 1.1 jonathan * This code was written by Angelos D. Keromytis in Athens, Greece, in
9 1.1 jonathan * February 2000. Network Security Technologies Inc. (NSTI) kindly
10 1.1 jonathan * supported the development of this code.
11 1.1 jonathan *
12 1.1 jonathan * Copyright (c) 2000, 2001 Angelos D. Keromytis
13 1.1 jonathan *
14 1.1 jonathan * Permission to use, copy, and modify this software with or without fee
15 1.1 jonathan * is hereby granted, provided that this entire notice is included in
16 1.1 jonathan * all source code copies of any software which is or includes a copy or
17 1.1 jonathan * modification of this software.
18 1.1 jonathan *
19 1.1 jonathan * THIS SOFTWARE IS BEING PROVIDED "AS IS", WITHOUT ANY EXPRESS OR
20 1.1 jonathan * IMPLIED WARRANTY. IN PARTICULAR, NONE OF THE AUTHORS MAKES ANY
21 1.1 jonathan * REPRESENTATION OR WARRANTY OF ANY KIND CONCERNING THE
22 1.1 jonathan * MERCHANTABILITY OF THIS SOFTWARE OR ITS FITNESS FOR ANY PARTICULAR
23 1.1 jonathan * PURPOSE.
24 1.1 jonathan */
25 1.1 jonathan
26 1.1 jonathan #include <sys/cdefs.h>
27 1.2 jonathan __KERNEL_RCSID(0, "$NetBSD: crypto.c,v 1.2 2003/07/30 18:45:31 jonathan Exp $");
28 1.1 jonathan
29 1.1 jonathan /* XXX FIXME: should be defopt'ed */
30 1.1 jonathan #define CRYPTO_TIMING /* enable cryptop timing stuff */
31 1.1 jonathan
32 1.1 jonathan #include <sys/param.h>
33 1.1 jonathan #include <sys/reboot.h>
34 1.1 jonathan #include <sys/systm.h>
35 1.1 jonathan #include <sys/malloc.h>
36 1.1 jonathan #include <sys/proc.h>
37 1.1 jonathan #include <sys/pool.h>
38 1.2 jonathan #include <opencrypto/crypto.h>
39 1.1 jonathan #include <opencrypto/cryptodev.h>
40 1.1 jonathan #include <opencrypto/cryptosoft.h> /* swcr_init() */
41 1.1 jonathan #include <sys/kthread.h>
42 1.1 jonathan
43 1.1 jonathan #include <opencrypto/xform.h> /* XXX for M_XDATA */
44 1.1 jonathan
45 1.1 jonathan
46 1.1 jonathan #ifdef __NetBSD__
47 1.1 jonathan #define splcrypto splnet
48 1.1 jonathan /* below is kludges to check whats still missing */
49 1.1 jonathan #define SWI_CRYPTO 17
50 1.1 jonathan #define register_swi(lvl, fn) \
51 1.1 jonathan softintr_establish(IPL_SOFTNET, (void (*)(void*))fn, NULL)
52 1.1 jonathan #define unregister_swi(lvl, fn) softintr_disestablish(softintr_cookie)
53 1.1 jonathan #define setsoftcrypto(x) softintr_schedule(x)
54 1.1 jonathan #define nanouptime(tp) microtime((struct timeval*)(tp))
55 1.1 jonathan #endif
56 1.1 jonathan
57 1.1 jonathan #define SESID2HID(sid) (((sid) >> 32) & 0xffffffff)
58 1.1 jonathan
59 1.1 jonathan /*
60 1.1 jonathan * Crypto drivers register themselves by allocating a slot in the
61 1.1 jonathan * crypto_drivers table with crypto_get_driverid() and then registering
62 1.1 jonathan * each algorithm they support with crypto_register() and crypto_kregister().
63 1.1 jonathan */
64 1.1 jonathan static struct cryptocap *crypto_drivers = NULL;
65 1.1 jonathan static int crypto_drivers_num = 0;
66 1.1 jonathan static void* softintr_cookie;
67 1.1 jonathan
68 1.1 jonathan /*
69 1.1 jonathan * There are two queues for crypto requests; one for symmetric (e.g.
70 1.1 jonathan * cipher) operations and one for asymmetric (e.g. MOD) operations.
71 1.1 jonathan * See below for how synchronization is handled.
72 1.1 jonathan */
73 1.1 jonathan static TAILQ_HEAD(,cryptop) crp_q; /* request queues */
74 1.1 jonathan static TAILQ_HEAD(,cryptkop) crp_kq;
75 1.1 jonathan
76 1.1 jonathan /*
77 1.1 jonathan * There are two queues for processing completed crypto requests; one
78 1.1 jonathan * for the symmetric and one for the asymmetric ops. We only need one
79 1.1 jonathan * but have two to avoid type futzing (cryptop vs. cryptkop). See below
80 1.1 jonathan * for how synchronization is handled.
81 1.1 jonathan */
82 1.1 jonathan static TAILQ_HEAD(,cryptop) crp_ret_q; /* callback queues */
83 1.1 jonathan static TAILQ_HEAD(,cryptkop) crp_ret_kq;
84 1.1 jonathan
85 1.1 jonathan /*
86 1.1 jonathan * Crypto op and desciptor data structures are allocated
87 1.1 jonathan * from separate private zones(FreeBSD)/pools(netBSD/OpenBSD) .
88 1.1 jonathan */
89 1.1 jonathan struct pool cryptop_pool;
90 1.1 jonathan struct pool cryptodesc_pool;
91 1.1 jonathan int crypto_pool_initialized = 0;
92 1.1 jonathan
93 1.1 jonathan #ifdef __NetBSD__
94 1.2 jonathan void opencryptoattach(int);
95 1.1 jonathan static void deferred_crypto_thread(void *arg);
96 1.1 jonathan #endif
97 1.1 jonathan
98 1.1 jonathan int crypto_usercrypto = 1; /* userland may open /dev/crypto */
99 1.1 jonathan int crypto_userasymcrypto = 1; /* userland may do asym crypto reqs */
100 1.1 jonathan int crypto_devallowsoft = 0; /* only use hardware crypto for asym */
101 1.1 jonathan #ifdef __FreeBSD__
102 1.1 jonathan SYSCTL_INT(_kern, OID_AUTO, usercrypto, CTLFLAG_RW,
103 1.1 jonathan &crypto_usercrypto, 0,
104 1.1 jonathan "Enable/disable user-mode access to crypto support");
105 1.1 jonathan SYSCTL_INT(_kern, OID_AUTO, userasymcrypto, CTLFLAG_RW,
106 1.1 jonathan &crypto_userasymcrypto, 0,
107 1.1 jonathan "Enable/disable user-mode access to asymmetric crypto support");
108 1.1 jonathan SYSCTL_INT(_kern, OID_AUTO, cryptodevallowsoft, CTLFLAG_RW,
109 1.1 jonathan &crypto_devallowsoft, 0,
110 1.1 jonathan "Enable/disable use of software asym crypto support");
111 1.1 jonathan #endif
112 1.1 jonathan
113 1.1 jonathan MALLOC_DEFINE(M_CRYPTO_DATA, "crypto", "crypto session records");
114 1.1 jonathan
115 1.1 jonathan /*
116 1.1 jonathan * Synchronization: read carefully, this is non-trivial.
117 1.1 jonathan *
118 1.1 jonathan * Crypto requests are submitted via crypto_dispatch. Typically
119 1.1 jonathan * these come in from network protocols at spl0 (output path) or
120 1.1 jonathan * spl[,soft]net (input path).
121 1.1 jonathan *
122 1.1 jonathan * Requests are typically passed on the driver directly, but they
123 1.1 jonathan * may also be queued for processing by a software interrupt thread,
124 1.1 jonathan * cryptointr, that runs at splsoftcrypto. This thread dispatches
125 1.1 jonathan * the requests to crypto drivers (h/w or s/w) who call crypto_done
126 1.1 jonathan * when a request is complete. Hardware crypto drivers are assumed
127 1.1 jonathan * to register their IRQ's as network devices so their interrupt handlers
128 1.1 jonathan * and subsequent "done callbacks" happen at spl[imp,net].
129 1.1 jonathan *
130 1.1 jonathan * Completed crypto ops are queued for a separate kernel thread that
131 1.1 jonathan * handles the callbacks at spl0. This decoupling insures the crypto
132 1.1 jonathan * driver interrupt service routine is not delayed while the callback
133 1.1 jonathan * takes place and that callbacks are delivered after a context switch
134 1.1 jonathan * (as opposed to a software interrupt that clients must block).
135 1.1 jonathan *
136 1.1 jonathan * This scheme is not intended for SMP machines.
137 1.1 jonathan */
138 1.1 jonathan static void cryptointr(void); /* swi thread to dispatch ops */
139 1.1 jonathan static void cryptoret(void); /* kernel thread for callbacks*/
140 1.1 jonathan static struct proc *cryptoproc;
141 1.1 jonathan static void crypto_destroy(void);
142 1.1 jonathan static int crypto_invoke(struct cryptop *crp, int hint);
143 1.1 jonathan static int crypto_kinvoke(struct cryptkop *krp, int hint);
144 1.1 jonathan
145 1.1 jonathan static struct cryptostats cryptostats;
146 1.1 jonathan static int crypto_timing = 0;
147 1.1 jonathan
148 1.1 jonathan #ifdef __FreeBSD__
149 1.1 jonathan SYSCTL_STRUCT(_kern, OID_AUTO, crypto_stats, CTLFLAG_RW, &cryptostats,
150 1.1 jonathan cryptostats, "Crypto system statistics");
151 1.1 jonathan
152 1.1 jonathan SYSCTL_INT(_debug, OID_AUTO, crypto_timing, CTLFLAG_RW,
153 1.1 jonathan &crypto_timing, 0, "Enable/disable crypto timing support");
154 1.1 jonathan SYSCTL_STRUCT(_kern, OID_AUTO, crypto_stats, CTLFLAG_RW, &cryptostats,
155 1.1 jonathan cryptostats, "Crypto system statistics");
156 1.1 jonathan #endif __FreeBSD__
157 1.1 jonathan
158 1.2 jonathan int
159 1.1 jonathan crypto_init(void)
160 1.1 jonathan {
161 1.1 jonathan int error;
162 1.1 jonathan
163 1.1 jonathan #ifdef __FreeBSD__
164 1.1 jonathan
165 1.1 jonathan cryptop_zone = zinit("cryptop", sizeof (struct cryptop), 0, 0, 1);
166 1.1 jonathan cryptodesc_zone = zinit("cryptodesc", sizeof (struct cryptodesc),
167 1.1 jonathan 0, 0, 1);
168 1.1 jonathan if (cryptodesc_zone == NULL || cryptop_zone == NULL) {
169 1.1 jonathan printf("crypto_init: cannot setup crypto zones\n");
170 1.1 jonathan return ENOMEM;
171 1.1 jonathan }
172 1.1 jonathan #endif
173 1.1 jonathan
174 1.1 jonathan crypto_drivers_num = CRYPTO_DRIVERS_INITIAL;
175 1.1 jonathan crypto_drivers = malloc(crypto_drivers_num *
176 1.1 jonathan sizeof(struct cryptocap), M_CRYPTO_DATA, M_NOWAIT | M_ZERO);
177 1.1 jonathan if (crypto_drivers == NULL) {
178 1.1 jonathan printf("crypto_init: cannot malloc driver table\n");
179 1.1 jonathan return ENOMEM;
180 1.1 jonathan }
181 1.1 jonathan
182 1.1 jonathan TAILQ_INIT(&crp_q);
183 1.1 jonathan TAILQ_INIT(&crp_kq);
184 1.1 jonathan
185 1.1 jonathan TAILQ_INIT(&crp_ret_q);
186 1.1 jonathan TAILQ_INIT(&crp_ret_kq);
187 1.1 jonathan
188 1.1 jonathan softintr_cookie = register_swi(SWI_CRYPTO, cryptointr);
189 1.1 jonathan #ifdef __FreeBSD__
190 1.1 jonathan error = kthread_create((void (*)(void *)) cryptoret, NULL,
191 1.1 jonathan &cryptoproc, "cryptoret");
192 1.1 jonathan if (error) {
193 1.1 jonathan printf("crypto_init: cannot start cryptoret thread; error %d",
194 1.1 jonathan error);
195 1.1 jonathan crypto_destroy();
196 1.1 jonathan }
197 1.1 jonathan #else
198 1.1 jonathan /* defer thread creation until after boot */
199 1.1 jonathan kthread_create( deferred_crypto_thread, NULL);
200 1.1 jonathan #endif
201 1.1 jonathan return error;
202 1.1 jonathan }
203 1.1 jonathan
204 1.1 jonathan static void
205 1.1 jonathan crypto_destroy(void)
206 1.1 jonathan {
207 1.1 jonathan /* XXX no wait to reclaim zones */
208 1.1 jonathan if (crypto_drivers != NULL)
209 1.1 jonathan free(crypto_drivers, M_CRYPTO_DATA);
210 1.1 jonathan unregister_swi(SWI_CRYPTO, cryptointr);
211 1.1 jonathan }
212 1.1 jonathan
213 1.1 jonathan /*
214 1.1 jonathan * Create a new session.
215 1.1 jonathan */
216 1.1 jonathan int
217 1.1 jonathan crypto_newsession(u_int64_t *sid, struct cryptoini *cri, int hard)
218 1.1 jonathan {
219 1.1 jonathan struct cryptoini *cr;
220 1.1 jonathan u_int32_t hid, lid;
221 1.1 jonathan int err = EINVAL;
222 1.1 jonathan int s;
223 1.1 jonathan
224 1.1 jonathan s = splcrypto();
225 1.1 jonathan
226 1.1 jonathan if (crypto_drivers == NULL)
227 1.1 jonathan goto done;
228 1.1 jonathan
229 1.1 jonathan /*
230 1.1 jonathan * The algorithm we use here is pretty stupid; just use the
231 1.1 jonathan * first driver that supports all the algorithms we need.
232 1.1 jonathan *
233 1.1 jonathan * XXX We need more smarts here (in real life too, but that's
234 1.1 jonathan * XXX another story altogether).
235 1.1 jonathan */
236 1.1 jonathan
237 1.1 jonathan for (hid = 0; hid < crypto_drivers_num; hid++) {
238 1.1 jonathan /*
239 1.1 jonathan * If it's not initialized or has remaining sessions
240 1.1 jonathan * referencing it, skip.
241 1.1 jonathan */
242 1.1 jonathan if (crypto_drivers[hid].cc_newsession == NULL ||
243 1.1 jonathan (crypto_drivers[hid].cc_flags & CRYPTOCAP_F_CLEANUP))
244 1.1 jonathan continue;
245 1.1 jonathan
246 1.1 jonathan /* Hardware required -- ignore software drivers. */
247 1.1 jonathan if (hard > 0 &&
248 1.1 jonathan (crypto_drivers[hid].cc_flags & CRYPTOCAP_F_SOFTWARE))
249 1.1 jonathan continue;
250 1.1 jonathan /* Software required -- ignore hardware drivers. */
251 1.1 jonathan if (hard < 0 &&
252 1.1 jonathan (crypto_drivers[hid].cc_flags & CRYPTOCAP_F_SOFTWARE) == 0)
253 1.1 jonathan continue;
254 1.1 jonathan
255 1.1 jonathan /* See if all the algorithms are supported. */
256 1.1 jonathan for (cr = cri; cr; cr = cr->cri_next)
257 1.1 jonathan if (crypto_drivers[hid].cc_alg[cr->cri_alg] == 0)
258 1.1 jonathan break;
259 1.1 jonathan
260 1.1 jonathan if (cr == NULL) {
261 1.1 jonathan /* Ok, all algorithms are supported. */
262 1.1 jonathan
263 1.1 jonathan /*
264 1.1 jonathan * Can't do everything in one session.
265 1.1 jonathan *
266 1.1 jonathan * XXX Fix this. We need to inject a "virtual" session layer right
267 1.1 jonathan * XXX about here.
268 1.1 jonathan */
269 1.1 jonathan
270 1.1 jonathan /* Call the driver initialization routine. */
271 1.1 jonathan lid = hid; /* Pass the driver ID. */
272 1.1 jonathan err = crypto_drivers[hid].cc_newsession(
273 1.1 jonathan crypto_drivers[hid].cc_arg, &lid, cri);
274 1.1 jonathan if (err == 0) {
275 1.1 jonathan (*sid) = hid;
276 1.1 jonathan (*sid) <<= 32;
277 1.1 jonathan (*sid) |= (lid & 0xffffffff);
278 1.1 jonathan crypto_drivers[hid].cc_sessions++;
279 1.1 jonathan }
280 1.1 jonathan goto done;
281 1.1 jonathan /*break;*/
282 1.1 jonathan }
283 1.1 jonathan }
284 1.1 jonathan done:
285 1.1 jonathan splx(s);
286 1.1 jonathan return err;
287 1.1 jonathan }
288 1.1 jonathan
289 1.1 jonathan /*
290 1.1 jonathan * Delete an existing session (or a reserved session on an unregistered
291 1.1 jonathan * driver).
292 1.1 jonathan */
293 1.1 jonathan int
294 1.1 jonathan crypto_freesession(u_int64_t sid)
295 1.1 jonathan {
296 1.1 jonathan u_int32_t hid;
297 1.1 jonathan int err = 0;
298 1.1 jonathan int s;
299 1.1 jonathan
300 1.1 jonathan s = splcrypto();
301 1.1 jonathan
302 1.1 jonathan if (crypto_drivers == NULL) {
303 1.1 jonathan err = EINVAL;
304 1.1 jonathan goto done;
305 1.1 jonathan }
306 1.1 jonathan
307 1.1 jonathan /* Determine two IDs. */
308 1.1 jonathan hid = SESID2HID(sid);
309 1.1 jonathan
310 1.1 jonathan if (hid >= crypto_drivers_num) {
311 1.1 jonathan err = ENOENT;
312 1.1 jonathan goto done;
313 1.1 jonathan }
314 1.1 jonathan
315 1.1 jonathan if (crypto_drivers[hid].cc_sessions)
316 1.1 jonathan crypto_drivers[hid].cc_sessions--;
317 1.1 jonathan
318 1.1 jonathan /* Call the driver cleanup routine, if available. */
319 1.1 jonathan if (crypto_drivers[hid].cc_freesession)
320 1.1 jonathan err = crypto_drivers[hid].cc_freesession(
321 1.1 jonathan crypto_drivers[hid].cc_arg, sid);
322 1.1 jonathan else
323 1.1 jonathan err = 0;
324 1.1 jonathan
325 1.1 jonathan /*
326 1.1 jonathan * If this was the last session of a driver marked as invalid,
327 1.1 jonathan * make the entry available for reuse.
328 1.1 jonathan */
329 1.1 jonathan if ((crypto_drivers[hid].cc_flags & CRYPTOCAP_F_CLEANUP) &&
330 1.1 jonathan crypto_drivers[hid].cc_sessions == 0)
331 1.1 jonathan bzero(&crypto_drivers[hid], sizeof(struct cryptocap));
332 1.1 jonathan
333 1.1 jonathan done:
334 1.1 jonathan splx(s);
335 1.1 jonathan return err;
336 1.1 jonathan }
337 1.1 jonathan
338 1.1 jonathan /*
339 1.1 jonathan * Return an unused driver id. Used by drivers prior to registering
340 1.1 jonathan * support for the algorithms they handle.
341 1.1 jonathan */
342 1.1 jonathan int32_t
343 1.1 jonathan crypto_get_driverid(u_int32_t flags)
344 1.1 jonathan {
345 1.1 jonathan struct cryptocap *newdrv;
346 1.1 jonathan int i, s;
347 1.1 jonathan
348 1.1 jonathan s = splcrypto();
349 1.1 jonathan for (i = 0; i < crypto_drivers_num; i++)
350 1.1 jonathan if (crypto_drivers[i].cc_process == NULL &&
351 1.1 jonathan (crypto_drivers[i].cc_flags & CRYPTOCAP_F_CLEANUP) == 0 &&
352 1.1 jonathan crypto_drivers[i].cc_sessions == 0)
353 1.1 jonathan break;
354 1.1 jonathan
355 1.1 jonathan /* Out of entries, allocate some more. */
356 1.1 jonathan if (i == crypto_drivers_num) {
357 1.1 jonathan /* Be careful about wrap-around. */
358 1.1 jonathan if (2 * crypto_drivers_num <= crypto_drivers_num) {
359 1.1 jonathan splx(s);
360 1.1 jonathan printf("crypto: driver count wraparound!\n");
361 1.1 jonathan return -1;
362 1.1 jonathan }
363 1.1 jonathan
364 1.1 jonathan newdrv = malloc(2 * crypto_drivers_num *
365 1.1 jonathan sizeof(struct cryptocap), M_CRYPTO_DATA, M_NOWAIT|M_ZERO);
366 1.1 jonathan if (newdrv == NULL) {
367 1.1 jonathan splx(s);
368 1.1 jonathan printf("crypto: no space to expand driver table!\n");
369 1.1 jonathan return -1;
370 1.1 jonathan }
371 1.1 jonathan
372 1.1 jonathan bcopy(crypto_drivers, newdrv,
373 1.1 jonathan crypto_drivers_num * sizeof(struct cryptocap));
374 1.1 jonathan
375 1.1 jonathan crypto_drivers_num *= 2;
376 1.1 jonathan
377 1.1 jonathan free(crypto_drivers, M_CRYPTO_DATA);
378 1.1 jonathan crypto_drivers = newdrv;
379 1.1 jonathan }
380 1.1 jonathan
381 1.1 jonathan /* NB: state is zero'd on free */
382 1.1 jonathan crypto_drivers[i].cc_sessions = 1; /* Mark */
383 1.1 jonathan crypto_drivers[i].cc_flags = flags;
384 1.1 jonathan
385 1.1 jonathan if (bootverbose)
386 1.1 jonathan printf("crypto: assign driver %u, flags %u\n", i, flags);
387 1.1 jonathan
388 1.1 jonathan splx(s);
389 1.1 jonathan
390 1.1 jonathan return i;
391 1.1 jonathan }
392 1.1 jonathan
393 1.1 jonathan static struct cryptocap *
394 1.1 jonathan crypto_checkdriver(u_int32_t hid)
395 1.1 jonathan {
396 1.1 jonathan if (crypto_drivers == NULL)
397 1.1 jonathan return NULL;
398 1.1 jonathan return (hid >= crypto_drivers_num ? NULL : &crypto_drivers[hid]);
399 1.1 jonathan }
400 1.1 jonathan
401 1.1 jonathan /*
402 1.1 jonathan * Register support for a key-related algorithm. This routine
403 1.1 jonathan * is called once for each algorithm supported a driver.
404 1.1 jonathan */
405 1.1 jonathan int
406 1.1 jonathan crypto_kregister(u_int32_t driverid, int kalg, u_int32_t flags,
407 1.1 jonathan int (*kprocess)(void*, struct cryptkop *, int),
408 1.1 jonathan void *karg)
409 1.1 jonathan {
410 1.1 jonathan int s;
411 1.1 jonathan struct cryptocap *cap;
412 1.1 jonathan int err;
413 1.1 jonathan
414 1.1 jonathan s = splcrypto();
415 1.1 jonathan
416 1.1 jonathan cap = crypto_checkdriver(driverid);
417 1.1 jonathan if (cap != NULL &&
418 1.1 jonathan (CRK_ALGORITM_MIN <= kalg && kalg <= CRK_ALGORITHM_MAX)) {
419 1.1 jonathan /*
420 1.1 jonathan * XXX Do some performance testing to determine placing.
421 1.1 jonathan * XXX We probably need an auxiliary data structure that
422 1.1 jonathan * XXX describes relative performances.
423 1.1 jonathan */
424 1.1 jonathan
425 1.1 jonathan cap->cc_kalg[kalg] = flags | CRYPTO_ALG_FLAG_SUPPORTED;
426 1.1 jonathan if (bootverbose)
427 1.1 jonathan printf("crypto: driver %u registers key alg %u flags %u\n"
428 1.1 jonathan , driverid
429 1.1 jonathan , kalg
430 1.1 jonathan , flags
431 1.1 jonathan );
432 1.1 jonathan
433 1.1 jonathan if (cap->cc_kprocess == NULL) {
434 1.1 jonathan cap->cc_karg = karg;
435 1.1 jonathan cap->cc_kprocess = kprocess;
436 1.1 jonathan }
437 1.1 jonathan err = 0;
438 1.1 jonathan } else
439 1.1 jonathan err = EINVAL;
440 1.1 jonathan
441 1.1 jonathan splx(s);
442 1.1 jonathan return err;
443 1.1 jonathan }
444 1.1 jonathan
445 1.1 jonathan /*
446 1.1 jonathan * Register support for a non-key-related algorithm. This routine
447 1.1 jonathan * is called once for each such algorithm supported by a driver.
448 1.1 jonathan */
449 1.1 jonathan int
450 1.1 jonathan crypto_register(u_int32_t driverid, int alg, u_int16_t maxoplen,
451 1.1 jonathan u_int32_t flags,
452 1.1 jonathan int (*newses)(void*, u_int32_t*, struct cryptoini*),
453 1.1 jonathan int (*freeses)(void*, u_int64_t),
454 1.1 jonathan int (*process)(void*, struct cryptop *, int),
455 1.1 jonathan void *arg)
456 1.1 jonathan {
457 1.1 jonathan struct cryptocap *cap;
458 1.1 jonathan int s, err;
459 1.1 jonathan
460 1.1 jonathan s = splcrypto();
461 1.1 jonathan
462 1.1 jonathan cap = crypto_checkdriver(driverid);
463 1.1 jonathan /* NB: algorithms are in the range [1..max] */
464 1.1 jonathan if (cap != NULL &&
465 1.1 jonathan (CRYPTO_ALGORITHM_MIN <= alg && alg <= CRYPTO_ALGORITHM_MAX)) {
466 1.1 jonathan /*
467 1.1 jonathan * XXX Do some performance testing to determine placing.
468 1.1 jonathan * XXX We probably need an auxiliary data structure that
469 1.1 jonathan * XXX describes relative performances.
470 1.1 jonathan */
471 1.1 jonathan
472 1.1 jonathan cap->cc_alg[alg] = flags | CRYPTO_ALG_FLAG_SUPPORTED;
473 1.1 jonathan cap->cc_max_op_len[alg] = maxoplen;
474 1.1 jonathan if (bootverbose)
475 1.1 jonathan printf("crypto: driver %u registers alg %u flags %u maxoplen %u\n"
476 1.1 jonathan , driverid
477 1.1 jonathan , alg
478 1.1 jonathan , flags
479 1.1 jonathan , maxoplen
480 1.1 jonathan );
481 1.1 jonathan
482 1.1 jonathan if (cap->cc_process == NULL) {
483 1.1 jonathan cap->cc_arg = arg;
484 1.1 jonathan cap->cc_newsession = newses;
485 1.1 jonathan cap->cc_process = process;
486 1.1 jonathan cap->cc_freesession = freeses;
487 1.1 jonathan cap->cc_sessions = 0; /* Unmark */
488 1.1 jonathan }
489 1.1 jonathan err = 0;
490 1.1 jonathan } else
491 1.1 jonathan err = EINVAL;
492 1.1 jonathan
493 1.1 jonathan splx(s);
494 1.1 jonathan return err;
495 1.1 jonathan }
496 1.1 jonathan
497 1.1 jonathan /*
498 1.1 jonathan * Unregister a crypto driver. If there are pending sessions using it,
499 1.1 jonathan * leave enough information around so that subsequent calls using those
500 1.1 jonathan * sessions will correctly detect the driver has been unregistered and
501 1.1 jonathan * reroute requests.
502 1.1 jonathan */
503 1.1 jonathan int
504 1.1 jonathan crypto_unregister(u_int32_t driverid, int alg)
505 1.1 jonathan {
506 1.1 jonathan int i, err, s;
507 1.1 jonathan u_int32_t ses;
508 1.1 jonathan struct cryptocap *cap;
509 1.1 jonathan
510 1.1 jonathan s = splcrypto();
511 1.1 jonathan
512 1.1 jonathan cap = crypto_checkdriver(driverid);
513 1.1 jonathan if (cap != NULL &&
514 1.1 jonathan (CRYPTO_ALGORITHM_MIN <= alg && alg <= CRYPTO_ALGORITHM_MAX) &&
515 1.1 jonathan cap->cc_alg[alg] != 0) {
516 1.1 jonathan cap->cc_alg[alg] = 0;
517 1.1 jonathan cap->cc_max_op_len[alg] = 0;
518 1.1 jonathan
519 1.1 jonathan /* Was this the last algorithm ? */
520 1.1 jonathan for (i = 1; i <= CRYPTO_ALGORITHM_MAX; i++)
521 1.1 jonathan if (cap->cc_alg[i] != 0)
522 1.1 jonathan break;
523 1.1 jonathan
524 1.1 jonathan if (i == CRYPTO_ALGORITHM_MAX + 1) {
525 1.1 jonathan ses = cap->cc_sessions;
526 1.1 jonathan bzero(cap, sizeof(struct cryptocap));
527 1.1 jonathan if (ses != 0) {
528 1.1 jonathan /*
529 1.1 jonathan * If there are pending sessions, just mark as invalid.
530 1.1 jonathan */
531 1.1 jonathan cap->cc_flags |= CRYPTOCAP_F_CLEANUP;
532 1.1 jonathan cap->cc_sessions = ses;
533 1.1 jonathan }
534 1.1 jonathan }
535 1.1 jonathan err = 0;
536 1.1 jonathan } else
537 1.1 jonathan err = EINVAL;
538 1.1 jonathan
539 1.1 jonathan splx(s);
540 1.1 jonathan return err;
541 1.1 jonathan }
542 1.1 jonathan
543 1.1 jonathan /*
544 1.1 jonathan * Unregister all algorithms associated with a crypto driver.
545 1.1 jonathan * If there are pending sessions using it, leave enough information
546 1.1 jonathan * around so that subsequent calls using those sessions will
547 1.1 jonathan * correctly detect the driver has been unregistered and reroute
548 1.1 jonathan * requests.
549 1.1 jonathan */
550 1.1 jonathan int
551 1.1 jonathan crypto_unregister_all(u_int32_t driverid)
552 1.1 jonathan {
553 1.1 jonathan int i, err, s = splcrypto();
554 1.1 jonathan u_int32_t ses;
555 1.1 jonathan struct cryptocap *cap;
556 1.1 jonathan
557 1.1 jonathan cap = crypto_checkdriver(driverid);
558 1.1 jonathan if (cap != NULL) {
559 1.1 jonathan for (i = CRYPTO_ALGORITHM_MIN; i <= CRYPTO_ALGORITHM_MAX; i++) {
560 1.1 jonathan cap->cc_alg[i] = 0;
561 1.1 jonathan cap->cc_max_op_len[i] = 0;
562 1.1 jonathan }
563 1.1 jonathan ses = cap->cc_sessions;
564 1.1 jonathan bzero(cap, sizeof(struct cryptocap));
565 1.1 jonathan if (ses != 0) {
566 1.1 jonathan /*
567 1.1 jonathan * If there are pending sessions, just mark as invalid.
568 1.1 jonathan */
569 1.1 jonathan cap->cc_flags |= CRYPTOCAP_F_CLEANUP;
570 1.1 jonathan cap->cc_sessions = ses;
571 1.1 jonathan }
572 1.1 jonathan err = 0;
573 1.1 jonathan } else
574 1.1 jonathan err = EINVAL;
575 1.1 jonathan
576 1.1 jonathan splx(s);
577 1.1 jonathan return err;
578 1.1 jonathan }
579 1.1 jonathan
580 1.1 jonathan /*
581 1.1 jonathan * Clear blockage on a driver. The what parameter indicates whether
582 1.1 jonathan * the driver is now ready for cryptop's and/or cryptokop's.
583 1.1 jonathan */
584 1.1 jonathan int
585 1.1 jonathan crypto_unblock(u_int32_t driverid, int what)
586 1.1 jonathan {
587 1.1 jonathan struct cryptocap *cap;
588 1.1 jonathan int needwakeup, err, s;
589 1.1 jonathan
590 1.1 jonathan s = splcrypto();
591 1.1 jonathan cap = crypto_checkdriver(driverid);
592 1.1 jonathan if (cap != NULL) {
593 1.1 jonathan needwakeup = 0;
594 1.1 jonathan if (what & CRYPTO_SYMQ) {
595 1.1 jonathan needwakeup |= cap->cc_qblocked;
596 1.1 jonathan cap->cc_qblocked = 0;
597 1.1 jonathan }
598 1.1 jonathan if (what & CRYPTO_ASYMQ) {
599 1.1 jonathan needwakeup |= cap->cc_kqblocked;
600 1.1 jonathan cap->cc_kqblocked = 0;
601 1.1 jonathan }
602 1.1 jonathan if (needwakeup) {
603 1.1 jonathan setsoftcrypto(softintr_cookie);
604 1.1 jonathan }
605 1.1 jonathan err = 0;
606 1.1 jonathan } else
607 1.1 jonathan err = EINVAL;
608 1.1 jonathan splx(s);
609 1.1 jonathan
610 1.1 jonathan return err;
611 1.1 jonathan }
612 1.1 jonathan
613 1.1 jonathan /*
614 1.1 jonathan * Dispatch a crypto request to a driver or queue
615 1.1 jonathan * it, to be processed by the kernel thread.
616 1.1 jonathan */
617 1.1 jonathan int
618 1.1 jonathan crypto_dispatch(struct cryptop *crp)
619 1.1 jonathan {
620 1.1 jonathan u_int32_t hid = SESID2HID(crp->crp_sid);
621 1.1 jonathan int s, result;
622 1.1 jonathan
623 1.1 jonathan s = splcrypto();
624 1.1 jonathan
625 1.1 jonathan cryptostats.cs_ops++;
626 1.1 jonathan
627 1.1 jonathan #ifdef CRYPTO_TIMING
628 1.1 jonathan if (crypto_timing)
629 1.1 jonathan nanouptime(&crp->crp_tstamp);
630 1.1 jonathan #endif
631 1.1 jonathan if ((crp->crp_flags & CRYPTO_F_BATCH) == 0) {
632 1.1 jonathan struct cryptocap *cap;
633 1.1 jonathan /*
634 1.1 jonathan * Caller marked the request to be processed
635 1.1 jonathan * immediately; dispatch it directly to the
636 1.1 jonathan * driver unless the driver is currently blocked.
637 1.1 jonathan */
638 1.1 jonathan cap = crypto_checkdriver(hid);
639 1.1 jonathan if (cap && !cap->cc_qblocked) {
640 1.1 jonathan result = crypto_invoke(crp, 0);
641 1.1 jonathan if (result == ERESTART) {
642 1.1 jonathan /*
643 1.1 jonathan * The driver ran out of resources, mark the
644 1.1 jonathan * driver ``blocked'' for cryptop's and put
645 1.1 jonathan * the op on the queue.
646 1.1 jonathan */
647 1.1 jonathan crypto_drivers[hid].cc_qblocked = 1;
648 1.1 jonathan TAILQ_INSERT_HEAD(&crp_q, crp, crp_next);
649 1.1 jonathan cryptostats.cs_blocks++;
650 1.1 jonathan }
651 1.1 jonathan } else {
652 1.1 jonathan /*
653 1.1 jonathan * The driver is blocked, just queue the op until
654 1.1 jonathan * it unblocks and the swi thread gets kicked.
655 1.1 jonathan */
656 1.1 jonathan TAILQ_INSERT_TAIL(&crp_q, crp, crp_next);
657 1.1 jonathan result = 0;
658 1.1 jonathan }
659 1.1 jonathan } else {
660 1.1 jonathan int wasempty = TAILQ_EMPTY(&crp_q);
661 1.1 jonathan /*
662 1.1 jonathan * Caller marked the request as ``ok to delay'';
663 1.1 jonathan * queue it for the swi thread. This is desirable
664 1.1 jonathan * when the operation is low priority and/or suitable
665 1.1 jonathan * for batching.
666 1.1 jonathan */
667 1.1 jonathan TAILQ_INSERT_TAIL(&crp_q, crp, crp_next);
668 1.1 jonathan if (wasempty) {
669 1.1 jonathan setsoftcrypto(softintr_cookie);
670 1.1 jonathan }
671 1.1 jonathan
672 1.1 jonathan result = 0;
673 1.1 jonathan }
674 1.1 jonathan splx(s);
675 1.1 jonathan
676 1.1 jonathan return result;
677 1.1 jonathan }
678 1.1 jonathan
679 1.1 jonathan /*
680 1.1 jonathan * Add an asymetric crypto request to a queue,
681 1.1 jonathan * to be processed by the kernel thread.
682 1.1 jonathan */
683 1.1 jonathan int
684 1.1 jonathan crypto_kdispatch(struct cryptkop *krp)
685 1.1 jonathan {
686 1.1 jonathan struct cryptocap *cap;
687 1.1 jonathan int s, result;
688 1.1 jonathan
689 1.1 jonathan s = splcrypto();
690 1.1 jonathan cryptostats.cs_kops++;
691 1.1 jonathan
692 1.1 jonathan cap = crypto_checkdriver(krp->krp_hid);
693 1.1 jonathan if (cap && !cap->cc_kqblocked) {
694 1.1 jonathan result = crypto_kinvoke(krp, 0);
695 1.1 jonathan if (result == ERESTART) {
696 1.1 jonathan /*
697 1.1 jonathan * The driver ran out of resources, mark the
698 1.1 jonathan * driver ``blocked'' for cryptop's and put
699 1.1 jonathan * the op on the queue.
700 1.1 jonathan */
701 1.1 jonathan crypto_drivers[krp->krp_hid].cc_kqblocked = 1;
702 1.1 jonathan TAILQ_INSERT_HEAD(&crp_kq, krp, krp_next);
703 1.1 jonathan cryptostats.cs_kblocks++;
704 1.1 jonathan }
705 1.1 jonathan } else {
706 1.1 jonathan /*
707 1.1 jonathan * The driver is blocked, just queue the op until
708 1.1 jonathan * it unblocks and the swi thread gets kicked.
709 1.1 jonathan */
710 1.1 jonathan TAILQ_INSERT_TAIL(&crp_kq, krp, krp_next);
711 1.1 jonathan result = 0;
712 1.1 jonathan }
713 1.1 jonathan splx(s);
714 1.1 jonathan
715 1.1 jonathan return result;
716 1.1 jonathan }
717 1.1 jonathan
718 1.1 jonathan /*
719 1.1 jonathan * Dispatch an assymetric crypto request to the appropriate crypto devices.
720 1.1 jonathan */
721 1.1 jonathan static int
722 1.1 jonathan crypto_kinvoke(struct cryptkop *krp, int hint)
723 1.1 jonathan {
724 1.1 jonathan u_int32_t hid;
725 1.1 jonathan int error;
726 1.1 jonathan
727 1.1 jonathan /* Sanity checks. */
728 1.1 jonathan if (krp == NULL)
729 1.1 jonathan return EINVAL;
730 1.1 jonathan if (krp->krp_callback == NULL) {
731 1.1 jonathan free(krp, M_XDATA); /* XXX allocated in cryptodev */
732 1.1 jonathan return EINVAL;
733 1.1 jonathan }
734 1.1 jonathan
735 1.1 jonathan for (hid = 0; hid < crypto_drivers_num; hid++) {
736 1.1 jonathan if ((crypto_drivers[hid].cc_flags & CRYPTOCAP_F_SOFTWARE) &&
737 1.1 jonathan crypto_devallowsoft == 0)
738 1.1 jonathan continue;
739 1.1 jonathan if (crypto_drivers[hid].cc_kprocess == NULL)
740 1.1 jonathan continue;
741 1.1 jonathan if ((crypto_drivers[hid].cc_kalg[krp->krp_op] &
742 1.1 jonathan CRYPTO_ALG_FLAG_SUPPORTED) == 0)
743 1.1 jonathan continue;
744 1.1 jonathan break;
745 1.1 jonathan }
746 1.1 jonathan if (hid < crypto_drivers_num) {
747 1.1 jonathan krp->krp_hid = hid;
748 1.1 jonathan error = crypto_drivers[hid].cc_kprocess(
749 1.1 jonathan crypto_drivers[hid].cc_karg, krp, hint);
750 1.1 jonathan } else {
751 1.1 jonathan error = ENODEV;
752 1.1 jonathan }
753 1.1 jonathan
754 1.1 jonathan if (error) {
755 1.1 jonathan krp->krp_status = error;
756 1.1 jonathan crypto_kdone(krp);
757 1.1 jonathan }
758 1.1 jonathan return 0;
759 1.1 jonathan }
760 1.1 jonathan
761 1.1 jonathan #ifdef CRYPTO_TIMING
762 1.1 jonathan static void
763 1.1 jonathan crypto_tstat(struct cryptotstat *ts, struct timespec *tv)
764 1.1 jonathan {
765 1.1 jonathan struct timespec now, t;
766 1.1 jonathan
767 1.1 jonathan nanouptime(&now);
768 1.1 jonathan t.tv_sec = now.tv_sec - tv->tv_sec;
769 1.1 jonathan t.tv_nsec = now.tv_nsec - tv->tv_nsec;
770 1.1 jonathan if (t.tv_nsec < 0) {
771 1.1 jonathan t.tv_sec--;
772 1.1 jonathan t.tv_nsec += 1000000000;
773 1.1 jonathan }
774 1.1 jonathan timespecadd(&ts->acc, &t, &t);
775 1.1 jonathan if (timespeccmp(&t, &ts->min, <))
776 1.1 jonathan ts->min = t;
777 1.1 jonathan if (timespeccmp(&t, &ts->max, >))
778 1.1 jonathan ts->max = t;
779 1.1 jonathan ts->count++;
780 1.1 jonathan
781 1.1 jonathan *tv = now;
782 1.1 jonathan }
783 1.1 jonathan #endif
784 1.1 jonathan
785 1.1 jonathan /*
786 1.1 jonathan * Dispatch a crypto request to the appropriate crypto devices.
787 1.1 jonathan */
788 1.1 jonathan static int
789 1.1 jonathan crypto_invoke(struct cryptop *crp, int hint)
790 1.1 jonathan {
791 1.1 jonathan u_int32_t hid;
792 1.1 jonathan int (*process)(void*, struct cryptop *, int);
793 1.1 jonathan
794 1.1 jonathan #ifdef CRYPTO_TIMING
795 1.1 jonathan if (crypto_timing)
796 1.1 jonathan crypto_tstat(&cryptostats.cs_invoke, &crp->crp_tstamp);
797 1.1 jonathan #endif
798 1.1 jonathan /* Sanity checks. */
799 1.1 jonathan if (crp == NULL)
800 1.1 jonathan return EINVAL;
801 1.1 jonathan if (crp->crp_callback == NULL) {
802 1.1 jonathan crypto_freereq(crp);
803 1.1 jonathan return EINVAL;
804 1.1 jonathan }
805 1.1 jonathan if (crp->crp_desc == NULL) {
806 1.1 jonathan crp->crp_etype = EINVAL;
807 1.1 jonathan crypto_done(crp);
808 1.1 jonathan return 0;
809 1.1 jonathan }
810 1.1 jonathan
811 1.1 jonathan hid = SESID2HID(crp->crp_sid);
812 1.1 jonathan if (hid < crypto_drivers_num) {
813 1.1 jonathan if (crypto_drivers[hid].cc_flags & CRYPTOCAP_F_CLEANUP)
814 1.1 jonathan crypto_freesession(crp->crp_sid);
815 1.1 jonathan process = crypto_drivers[hid].cc_process;
816 1.1 jonathan } else {
817 1.1 jonathan process = NULL;
818 1.1 jonathan }
819 1.1 jonathan
820 1.1 jonathan if (process == NULL) {
821 1.1 jonathan struct cryptodesc *crd;
822 1.1 jonathan u_int64_t nid;
823 1.1 jonathan
824 1.1 jonathan /*
825 1.1 jonathan * Driver has unregistered; migrate the session and return
826 1.1 jonathan * an error to the caller so they'll resubmit the op.
827 1.1 jonathan */
828 1.1 jonathan for (crd = crp->crp_desc; crd->crd_next; crd = crd->crd_next)
829 1.1 jonathan crd->CRD_INI.cri_next = &(crd->crd_next->CRD_INI);
830 1.1 jonathan
831 1.1 jonathan if (crypto_newsession(&nid, &(crp->crp_desc->CRD_INI), 0) == 0)
832 1.1 jonathan crp->crp_sid = nid;
833 1.1 jonathan
834 1.1 jonathan crp->crp_etype = EAGAIN;
835 1.1 jonathan crypto_done(crp);
836 1.1 jonathan return 0;
837 1.1 jonathan } else {
838 1.1 jonathan /*
839 1.1 jonathan * Invoke the driver to process the request.
840 1.1 jonathan */
841 1.1 jonathan return (*process)(crypto_drivers[hid].cc_arg, crp, hint);
842 1.1 jonathan }
843 1.1 jonathan }
844 1.1 jonathan
845 1.1 jonathan /*
846 1.1 jonathan * Release a set of crypto descriptors.
847 1.1 jonathan */
848 1.1 jonathan void
849 1.1 jonathan crypto_freereq(struct cryptop *crp)
850 1.1 jonathan {
851 1.1 jonathan struct cryptodesc *crd;
852 1.1 jonathan int s;
853 1.1 jonathan
854 1.1 jonathan if (crp == NULL)
855 1.1 jonathan return;
856 1.1 jonathan
857 1.1 jonathan s = splcrypto();
858 1.1 jonathan
859 1.1 jonathan while ((crd = crp->crp_desc) != NULL) {
860 1.1 jonathan crp->crp_desc = crd->crd_next;
861 1.1 jonathan pool_put(&cryptodesc_pool, crd);
862 1.1 jonathan }
863 1.1 jonathan
864 1.1 jonathan pool_put(&cryptop_pool, crp);
865 1.1 jonathan splx(s);
866 1.1 jonathan }
867 1.1 jonathan
868 1.1 jonathan /*
869 1.1 jonathan * Acquire a set of crypto descriptors.
870 1.1 jonathan */
871 1.1 jonathan struct cryptop *
872 1.1 jonathan crypto_getreq(int num)
873 1.1 jonathan {
874 1.1 jonathan struct cryptodesc *crd;
875 1.1 jonathan struct cryptop *crp;
876 1.1 jonathan int s;
877 1.1 jonathan
878 1.1 jonathan s = splcrypto();
879 1.1 jonathan
880 1.1 jonathan if (crypto_pool_initialized == 0) {
881 1.1 jonathan pool_init(&cryptop_pool, sizeof(struct cryptop), 0, 0,
882 1.1 jonathan 0, "cryptop", NULL);
883 1.1 jonathan pool_init(&cryptodesc_pool, sizeof(struct cryptodesc), 0, 0,
884 1.1 jonathan 0, "cryptodesc", NULL);
885 1.1 jonathan crypto_pool_initialized = 1;
886 1.1 jonathan }
887 1.1 jonathan
888 1.1 jonathan crp = pool_get(&cryptop_pool, 0);
889 1.1 jonathan if (crp == NULL) {
890 1.1 jonathan splx(s);
891 1.1 jonathan return NULL;
892 1.1 jonathan }
893 1.1 jonathan bzero(crp, sizeof(struct cryptop));
894 1.1 jonathan
895 1.1 jonathan while (num--) {
896 1.1 jonathan crd = pool_get(&cryptodesc_pool, 0);
897 1.1 jonathan if (crd == NULL) {
898 1.1 jonathan splx(s);
899 1.1 jonathan crypto_freereq(crp);
900 1.1 jonathan return NULL;
901 1.1 jonathan }
902 1.1 jonathan
903 1.1 jonathan bzero(crd, sizeof(struct cryptodesc));
904 1.1 jonathan crd->crd_next = crp->crp_desc;
905 1.1 jonathan crp->crp_desc = crd;
906 1.1 jonathan }
907 1.1 jonathan
908 1.1 jonathan splx(s);
909 1.1 jonathan return crp;
910 1.1 jonathan }
911 1.1 jonathan
912 1.1 jonathan /*
913 1.1 jonathan * Invoke the callback on behalf of the driver.
914 1.1 jonathan */
915 1.1 jonathan void
916 1.1 jonathan crypto_done(struct cryptop *crp)
917 1.1 jonathan {
918 1.1 jonathan if (crp->crp_etype != 0)
919 1.1 jonathan cryptostats.cs_errs++;
920 1.1 jonathan #ifdef CRYPTO_TIMING
921 1.1 jonathan if (crypto_timing)
922 1.1 jonathan crypto_tstat(&cryptostats.cs_done, &crp->crp_tstamp);
923 1.1 jonathan #endif
924 1.1 jonathan /*
925 1.1 jonathan * On netbsd 1.6O, CBIMM does its wake_one() before the requestor
926 1.1 jonathan * has done its tsleep().
927 1.1 jonathan */
928 1.1 jonathan #ifndef __NetBSD__
929 1.1 jonathan if (crp->crp_flags & CRYPTO_F_CBIMM) {
930 1.1 jonathan /*
931 1.1 jonathan * Do the callback directly. This is ok when the
932 1.1 jonathan * callback routine does very little (e.g. the
933 1.1 jonathan * /dev/crypto callback method just does a wakeup).
934 1.1 jonathan */
935 1.1 jonathan #ifdef CRYPTO_TIMING
936 1.1 jonathan if (crypto_timing) {
937 1.1 jonathan /*
938 1.1 jonathan * NB: We must copy the timestamp before
939 1.1 jonathan * doing the callback as the cryptop is
940 1.1 jonathan * likely to be reclaimed.
941 1.1 jonathan */
942 1.1 jonathan struct timespec t = crp->crp_tstamp;
943 1.1 jonathan crypto_tstat(&cryptostats.cs_cb, &t);
944 1.1 jonathan crp->crp_callback(crp);
945 1.1 jonathan crypto_tstat(&cryptostats.cs_finis, &t);
946 1.1 jonathan } else
947 1.1 jonathan #endif
948 1.1 jonathan crp->crp_callback(crp);
949 1.1 jonathan } else
950 1.1 jonathan #endif /* __NetBSD__ */
951 1.1 jonathan {
952 1.1 jonathan int s, wasempty;
953 1.1 jonathan /*
954 1.1 jonathan * Normal case; queue the callback for the thread.
955 1.1 jonathan *
956 1.1 jonathan * The return queue is manipulated by the swi thread
957 1.1 jonathan * and, potentially, by crypto device drivers calling
958 1.1 jonathan * back to mark operations completed. Thus we need
959 1.1 jonathan * to mask both while manipulating the return queue.
960 1.1 jonathan */
961 1.1 jonathan s = splcrypto();
962 1.1 jonathan wasempty = TAILQ_EMPTY(&crp_ret_q);
963 1.1 jonathan TAILQ_INSERT_TAIL(&crp_ret_q, crp, crp_next);
964 1.1 jonathan if (wasempty)
965 1.1 jonathan wakeup_one(&crp_ret_q);
966 1.1 jonathan splx(s);
967 1.1 jonathan }
968 1.1 jonathan }
969 1.1 jonathan
970 1.1 jonathan /*
971 1.1 jonathan * Invoke the callback on behalf of the driver.
972 1.1 jonathan */
973 1.1 jonathan void
974 1.1 jonathan crypto_kdone(struct cryptkop *krp)
975 1.1 jonathan {
976 1.1 jonathan int s, wasempty;
977 1.1 jonathan
978 1.1 jonathan if (krp->krp_status != 0)
979 1.1 jonathan cryptostats.cs_kerrs++;
980 1.1 jonathan /*
981 1.1 jonathan * The return queue is manipulated by the swi thread
982 1.1 jonathan * and, potentially, by crypto device drivers calling
983 1.1 jonathan * back to mark operations completed. Thus we need
984 1.1 jonathan * to mask both while manipulating the return queue.
985 1.1 jonathan */
986 1.1 jonathan s = splcrypto();
987 1.1 jonathan wasempty = TAILQ_EMPTY(&crp_ret_kq);
988 1.1 jonathan TAILQ_INSERT_TAIL(&crp_ret_kq, krp, krp_next);
989 1.1 jonathan if (wasempty)
990 1.1 jonathan wakeup_one(&crp_ret_q);
991 1.1 jonathan splx(s);
992 1.1 jonathan }
993 1.1 jonathan
994 1.1 jonathan int
995 1.1 jonathan crypto_getfeat(int *featp)
996 1.1 jonathan {
997 1.1 jonathan int hid, kalg, feat = 0;
998 1.1 jonathan int s;
999 1.1 jonathan
1000 1.1 jonathan s = splcrypto();
1001 1.1 jonathan
1002 1.1 jonathan if (crypto_userasymcrypto == 0)
1003 1.1 jonathan goto out;
1004 1.1 jonathan
1005 1.1 jonathan for (hid = 0; hid < crypto_drivers_num; hid++) {
1006 1.1 jonathan if ((crypto_drivers[hid].cc_flags & CRYPTOCAP_F_SOFTWARE) &&
1007 1.1 jonathan !crypto_devallowsoft) {
1008 1.1 jonathan continue;
1009 1.1 jonathan }
1010 1.1 jonathan if (crypto_drivers[hid].cc_kprocess == NULL)
1011 1.1 jonathan continue;
1012 1.1 jonathan for (kalg = 0; kalg < CRK_ALGORITHM_MAX; kalg++)
1013 1.1 jonathan if ((crypto_drivers[hid].cc_kalg[kalg] &
1014 1.1 jonathan CRYPTO_ALG_FLAG_SUPPORTED) != 0)
1015 1.1 jonathan feat |= 1 << kalg;
1016 1.1 jonathan }
1017 1.1 jonathan out:
1018 1.1 jonathan splx(s);
1019 1.1 jonathan *featp = feat;
1020 1.1 jonathan return (0);
1021 1.1 jonathan }
1022 1.1 jonathan
1023 1.1 jonathan /*
1024 1.1 jonathan * Software interrupt thread to dispatch crypto requests.
1025 1.1 jonathan */
1026 1.1 jonathan static void
1027 1.1 jonathan cryptointr(void)
1028 1.1 jonathan {
1029 1.1 jonathan struct cryptop *crp, *submit;
1030 1.1 jonathan struct cryptkop *krp;
1031 1.1 jonathan struct cryptocap *cap;
1032 1.1 jonathan int result, hint, s;
1033 1.1 jonathan
1034 1.1 jonathan printf("crypto softint\n");
1035 1.1 jonathan cryptostats.cs_intrs++;
1036 1.1 jonathan s = splcrypto();
1037 1.1 jonathan do {
1038 1.1 jonathan /*
1039 1.1 jonathan * Find the first element in the queue that can be
1040 1.1 jonathan * processed and look-ahead to see if multiple ops
1041 1.1 jonathan * are ready for the same driver.
1042 1.1 jonathan */
1043 1.1 jonathan submit = NULL;
1044 1.1 jonathan hint = 0;
1045 1.1 jonathan TAILQ_FOREACH(crp, &crp_q, crp_next) {
1046 1.1 jonathan u_int32_t hid = SESID2HID(crp->crp_sid);
1047 1.1 jonathan cap = crypto_checkdriver(hid);
1048 1.1 jonathan if (cap == NULL || cap->cc_process == NULL) {
1049 1.1 jonathan /* Op needs to be migrated, process it. */
1050 1.1 jonathan if (submit == NULL)
1051 1.1 jonathan submit = crp;
1052 1.1 jonathan break;
1053 1.1 jonathan }
1054 1.1 jonathan if (!cap->cc_qblocked) {
1055 1.1 jonathan if (submit != NULL) {
1056 1.1 jonathan /*
1057 1.1 jonathan * We stop on finding another op,
1058 1.1 jonathan * regardless whether its for the same
1059 1.1 jonathan * driver or not. We could keep
1060 1.1 jonathan * searching the queue but it might be
1061 1.1 jonathan * better to just use a per-driver
1062 1.1 jonathan * queue instead.
1063 1.1 jonathan */
1064 1.1 jonathan if (SESID2HID(submit->crp_sid) == hid)
1065 1.1 jonathan hint = CRYPTO_HINT_MORE;
1066 1.1 jonathan break;
1067 1.1 jonathan } else {
1068 1.1 jonathan submit = crp;
1069 1.1 jonathan if ((submit->crp_flags & CRYPTO_F_BATCH) == 0)
1070 1.1 jonathan break;
1071 1.1 jonathan /* keep scanning for more are q'd */
1072 1.1 jonathan }
1073 1.1 jonathan }
1074 1.1 jonathan }
1075 1.1 jonathan if (submit != NULL) {
1076 1.1 jonathan TAILQ_REMOVE(&crp_q, submit, crp_next);
1077 1.1 jonathan result = crypto_invoke(submit, hint);
1078 1.1 jonathan if (result == ERESTART) {
1079 1.1 jonathan /*
1080 1.1 jonathan * The driver ran out of resources, mark the
1081 1.1 jonathan * driver ``blocked'' for cryptop's and put
1082 1.1 jonathan * the request back in the queue. It would
1083 1.1 jonathan * best to put the request back where we got
1084 1.1 jonathan * it but that's hard so for now we put it
1085 1.1 jonathan * at the front. This should be ok; putting
1086 1.1 jonathan * it at the end does not work.
1087 1.1 jonathan */
1088 1.1 jonathan /* XXX validate sid again? */
1089 1.1 jonathan crypto_drivers[SESID2HID(submit->crp_sid)].cc_qblocked = 1;
1090 1.1 jonathan TAILQ_INSERT_HEAD(&crp_q, submit, crp_next);
1091 1.1 jonathan cryptostats.cs_blocks++;
1092 1.1 jonathan }
1093 1.1 jonathan }
1094 1.1 jonathan
1095 1.1 jonathan /* As above, but for key ops */
1096 1.1 jonathan TAILQ_FOREACH(krp, &crp_kq, krp_next) {
1097 1.1 jonathan cap = crypto_checkdriver(krp->krp_hid);
1098 1.1 jonathan if (cap == NULL || cap->cc_kprocess == NULL) {
1099 1.1 jonathan /* Op needs to be migrated, process it. */
1100 1.1 jonathan break;
1101 1.1 jonathan }
1102 1.1 jonathan if (!cap->cc_kqblocked)
1103 1.1 jonathan break;
1104 1.1 jonathan }
1105 1.1 jonathan if (krp != NULL) {
1106 1.1 jonathan TAILQ_REMOVE(&crp_kq, krp, krp_next);
1107 1.1 jonathan result = crypto_kinvoke(krp, 0);
1108 1.1 jonathan if (result == ERESTART) {
1109 1.1 jonathan /*
1110 1.1 jonathan * The driver ran out of resources, mark the
1111 1.1 jonathan * driver ``blocked'' for cryptkop's and put
1112 1.1 jonathan * the request back in the queue. It would
1113 1.1 jonathan * best to put the request back where we got
1114 1.1 jonathan * it but that's hard so for now we put it
1115 1.1 jonathan * at the front. This should be ok; putting
1116 1.1 jonathan * it at the end does not work.
1117 1.1 jonathan */
1118 1.1 jonathan /* XXX validate sid again? */
1119 1.1 jonathan crypto_drivers[krp->krp_hid].cc_kqblocked = 1;
1120 1.1 jonathan TAILQ_INSERT_HEAD(&crp_kq, krp, krp_next);
1121 1.1 jonathan cryptostats.cs_kblocks++;
1122 1.1 jonathan }
1123 1.1 jonathan }
1124 1.1 jonathan } while (submit != NULL || krp != NULL);
1125 1.1 jonathan splx(s);
1126 1.1 jonathan }
1127 1.1 jonathan
1128 1.1 jonathan /*
1129 1.1 jonathan * Kernel thread to do callbacks.
1130 1.1 jonathan */
1131 1.1 jonathan static void
1132 1.1 jonathan cryptoret(void)
1133 1.1 jonathan {
1134 1.1 jonathan struct cryptop *crp;
1135 1.1 jonathan struct cryptkop *krp;
1136 1.1 jonathan int s;
1137 1.1 jonathan
1138 1.1 jonathan s = splcrypto();
1139 1.1 jonathan for (;;) {
1140 1.1 jonathan crp = TAILQ_FIRST(&crp_ret_q);
1141 1.1 jonathan if (crp != NULL)
1142 1.1 jonathan TAILQ_REMOVE(&crp_ret_q, crp, crp_next);
1143 1.1 jonathan krp = TAILQ_FIRST(&crp_ret_kq);
1144 1.1 jonathan if (krp != NULL)
1145 1.1 jonathan TAILQ_REMOVE(&crp_ret_kq, krp, krp_next);
1146 1.1 jonathan
1147 1.1 jonathan if (crp != NULL || krp != NULL) {
1148 1.1 jonathan splx(s); /* lower ipl for callbacks */
1149 1.1 jonathan if (crp != NULL) {
1150 1.1 jonathan #ifdef CRYPTO_TIMING
1151 1.1 jonathan if (crypto_timing) {
1152 1.1 jonathan /*
1153 1.1 jonathan * NB: We must copy the timestamp before
1154 1.1 jonathan * doing the callback as the cryptop is
1155 1.1 jonathan * likely to be reclaimed.
1156 1.1 jonathan */
1157 1.1 jonathan struct timespec t = crp->crp_tstamp;
1158 1.1 jonathan crypto_tstat(&cryptostats.cs_cb, &t);
1159 1.1 jonathan crp->crp_callback(crp);
1160 1.1 jonathan crypto_tstat(&cryptostats.cs_finis, &t);
1161 1.1 jonathan } else
1162 1.1 jonathan #endif
1163 1.1 jonathan crp->crp_callback(crp);
1164 1.1 jonathan }
1165 1.1 jonathan if (krp != NULL)
1166 1.1 jonathan krp->krp_callback(krp);
1167 1.1 jonathan s = splcrypto();
1168 1.1 jonathan } else {
1169 1.1 jonathan (void) tsleep(&crp_ret_q, PLOCK, "crypto_wait", 0);
1170 1.1 jonathan cryptostats.cs_rets++;
1171 1.1 jonathan }
1172 1.1 jonathan }
1173 1.1 jonathan }
1174 1.1 jonathan
1175 1.1 jonathan static void
1177 1.1 jonathan deferred_crypto_thread(void *arg)
1178 1.1 jonathan {
1179 1.1 jonathan int error;
1180 1.1 jonathan
1181 1.1 jonathan error = kthread_create1((void (*)(void*)) cryptoret, NULL,
1182 1.1 jonathan &cryptoproc, "cryptoret");
1183 1.1 jonathan if (error) {
1184 1.1 jonathan printf("crypto_init: cannot start cryptoret thread; error %d",
1185 1.1 jonathan error);
1186 1.1 jonathan crypto_destroy();
1187 1.1 jonathan }
1188 1.1 jonathan
1189 1.1 jonathan }
1190 1.1 jonathan
1191 1.1 jonathan void
1192 1.1 jonathan opencryptoattach(int n)
1193 1.1 jonathan {
1194 1.1 jonathan /* XXX in absence of FreeBSD mod_init(), call init hooks here */
1195 1.1 jonathan swcr_init();
1196 1.1 jonathan }
1197 1.1 jonathan
1198 1.1 jonathan #ifdef __FreeBSD__
1199 1.1 jonathan /*
1200 1.1 jonathan * Initialization code, both for static and dynamic loading.
1201 1.1 jonathan */
1202 1.1 jonathan static int
1203 1.1 jonathan crypto_modevent(module_t mod, int type, void *unused)
1204 1.1 jonathan {
1205 1.1 jonathan int error = EINVAL;
1206 1.1 jonathan
1207 1.1 jonathan switch (type) {
1208 1.1 jonathan case MOD_LOAD:
1209 1.1 jonathan error = crypto_init();
1210 1.1 jonathan if (error == 0 && bootverbose)
1211 1.1 jonathan printf("crypto: <crypto core>\n");
1212 1.1 jonathan break;
1213 1.1 jonathan case MOD_UNLOAD:
1214 1.1 jonathan /*XXX disallow if active sessions */
1215 1.1 jonathan error = 0;
1216 1.1 jonathan crypto_destroy();
1217 1.1 jonathan break;
1218 1.1 jonathan }
1219 1.1 jonathan return error;
1220 1.1 jonathan }
1221 1.1 jonathan static moduledata_t crypto_mod = {
1222 1.1 jonathan "crypto",
1223 1.1 jonathan crypto_modevent,
1224 1.1 jonathan 0
1225 1.1 jonathan };
1226 1.1 jonathan
1227 1.1 jonathan MODULE_VERSION(crypto, 1);
1228 1.1 jonathan DECLARE_MODULE(crypto, crypto_mod, SI_SUB_DRIVERS, SI_ORDER_FIRST);
1229 1.1 jonathan #endif __FreeBSD__
1230 1.1 jonathan
1231
1232