1 /*- 2 * Copyright (c) 2017 Oliver Pinter 3 * Copyright (c) 2017 W. Dean Freeman 4 * Copyright (c) 2000-2015 Mark R V Murray 5 * Copyright (c) 2013 Arthur Mesh 6 * Copyright (c) 2004 Robert N. M. Watson 7 * All rights reserved. 8 * 9 * Redistribution and use in source and binary forms, with or without 10 * modification, are permitted provided that the following conditions 11 * are met: 12 * 1. Redistributions of source code must retain the above copyright 13 * notice, this list of conditions and the following disclaimer 14 * in this position and unchanged. 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 AUTHOR ``AS IS'' AND ANY EXPRESS OR 20 * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES 21 * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED. 22 * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT, 23 * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT 24 * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, 25 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY 26 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT 27 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF 28 * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE. 29 * 30 */ 31 32 #include <sys/cdefs.h> 33 __FBSDID("$FreeBSD$"); 34 35 #include <sys/param.h> 36 #include <sys/systm.h> 37 #include <sys/ck.h> 38 #include <sys/conf.h> 39 #include <sys/epoch.h> 40 #include <sys/eventhandler.h> 41 #include <sys/hash.h> 42 #include <sys/kernel.h> 43 #include <sys/kthread.h> 44 #include <sys/linker.h> 45 #include <sys/lock.h> 46 #include <sys/malloc.h> 47 #include <sys/module.h> 48 #include <sys/mutex.h> 49 #include <sys/random.h> 50 #include <sys/sbuf.h> 51 #include <sys/sysctl.h> 52 #include <sys/unistd.h> 53 54 #include <machine/atomic.h> 55 #include <machine/cpu.h> 56 57 #include <crypto/rijndael/rijndael-api-fst.h> 58 #include <crypto/sha2/sha256.h> 59 60 #include <dev/random/hash.h> 61 #include <dev/random/randomdev.h> 62 #include <dev/random/random_harvestq.h> 63 64 #if defined(RANDOM_ENABLE_ETHER) 65 #define _RANDOM_HARVEST_ETHER_OFF 0 66 #else 67 #define _RANDOM_HARVEST_ETHER_OFF (1u << RANDOM_NET_ETHER) 68 #endif 69 #if defined(RANDOM_ENABLE_UMA) 70 #define _RANDOM_HARVEST_UMA_OFF 0 71 #else 72 #define _RANDOM_HARVEST_UMA_OFF (1u << RANDOM_UMA) 73 #endif 74 75 /* 76 * Note that random_sources_feed() will also use this to try and split up 77 * entropy into a subset of pools per iteration with the goal of feeding 78 * HARVESTSIZE into every pool at least once per second. 79 */ 80 #define RANDOM_KTHREAD_HZ 10 81 82 static void random_kthread(void); 83 static void random_sources_feed(void); 84 85 /* 86 * Random must initialize much earlier than epoch, but we can initialize the 87 * epoch code before SMP starts. Prior to SMP, we can safely bypass 88 * concurrency primitives. 89 */ 90 static __read_mostly bool epoch_inited; 91 static __read_mostly epoch_t rs_epoch; 92 93 /* 94 * How many events to queue up. We create this many items in 95 * an 'empty' queue, then transfer them to the 'harvest' queue with 96 * supplied junk. When used, they are transferred back to the 97 * 'empty' queue. 98 */ 99 #define RANDOM_RING_MAX 1024 100 #define RANDOM_ACCUM_MAX 8 101 102 /* 1 to let the kernel thread run, 0 to terminate, -1 to mark completion */ 103 volatile int random_kthread_control; 104 105 106 /* Allow the sysadmin to select the broad category of 107 * entropy types to harvest. 108 */ 109 __read_frequently u_int hc_source_mask; 110 111 struct random_sources { 112 CK_LIST_ENTRY(random_sources) rrs_entries; 113 struct random_source *rrs_source; 114 }; 115 116 static CK_LIST_HEAD(sources_head, random_sources) source_list = 117 CK_LIST_HEAD_INITIALIZER(source_list); 118 119 SYSCTL_NODE(_kern_random, OID_AUTO, harvest, CTLFLAG_RW | CTLFLAG_MPSAFE, 0, 120 "Entropy Device Parameters"); 121 122 /* 123 * Put all the harvest queue context stuff in one place. 124 * this make is a bit easier to lock and protect. 125 */ 126 static struct harvest_context { 127 /* The harvest mutex protects all of harvest_context and 128 * the related data. 129 */ 130 struct mtx hc_mtx; 131 /* Round-robin destination cache. */ 132 u_int hc_destination[ENTROPYSOURCE]; 133 /* The context of the kernel thread processing harvested entropy */ 134 struct proc *hc_kthread_proc; 135 /* 136 * Lockless ring buffer holding entropy events 137 * If ring.in == ring.out, 138 * the buffer is empty. 139 * If ring.in != ring.out, 140 * the buffer contains harvested entropy. 141 * If (ring.in + 1) == ring.out (mod RANDOM_RING_MAX), 142 * the buffer is full. 143 * 144 * NOTE: ring.in points to the last added element, 145 * and ring.out points to the last consumed element. 146 * 147 * The ring.in variable needs locking as there are multiple 148 * sources to the ring. Only the sources may change ring.in, 149 * but the consumer may examine it. 150 * 151 * The ring.out variable does not need locking as there is 152 * only one consumer. Only the consumer may change ring.out, 153 * but the sources may examine it. 154 */ 155 struct entropy_ring { 156 struct harvest_event ring[RANDOM_RING_MAX]; 157 volatile u_int in; 158 volatile u_int out; 159 } hc_entropy_ring; 160 struct fast_entropy_accumulator { 161 volatile u_int pos; 162 uint32_t buf[RANDOM_ACCUM_MAX]; 163 } hc_entropy_fast_accumulator; 164 } harvest_context; 165 166 static struct kproc_desc random_proc_kp = { 167 "rand_harvestq", 168 random_kthread, 169 &harvest_context.hc_kthread_proc, 170 }; 171 172 /* Pass the given event straight through to Fortuna/Whatever. */ 173 static __inline void 174 random_harvestq_fast_process_event(struct harvest_event *event) 175 { 176 p_random_alg_context->ra_event_processor(event); 177 explicit_bzero(event, sizeof(*event)); 178 } 179 180 static void 181 random_kthread(void) 182 { 183 u_int maxloop, ring_out, i; 184 185 /* 186 * Locking is not needed as this is the only place we modify ring.out, and 187 * we only examine ring.in without changing it. Both of these are volatile, 188 * and this is a unique thread. 189 */ 190 for (random_kthread_control = 1; random_kthread_control;) { 191 /* Deal with events, if any. Restrict the number we do in one go. */ 192 maxloop = RANDOM_RING_MAX; 193 while (harvest_context.hc_entropy_ring.out != harvest_context.hc_entropy_ring.in) { 194 ring_out = (harvest_context.hc_entropy_ring.out + 1)%RANDOM_RING_MAX; 195 random_harvestq_fast_process_event(harvest_context.hc_entropy_ring.ring + ring_out); 196 harvest_context.hc_entropy_ring.out = ring_out; 197 if (!--maxloop) 198 break; 199 } 200 random_sources_feed(); 201 /* XXX: FIX!! Increase the high-performance data rate? Need some measurements first. */ 202 for (i = 0; i < RANDOM_ACCUM_MAX; i++) { 203 if (harvest_context.hc_entropy_fast_accumulator.buf[i]) { 204 random_harvest_direct(harvest_context.hc_entropy_fast_accumulator.buf + i, sizeof(harvest_context.hc_entropy_fast_accumulator.buf[0]), RANDOM_UMA); 205 harvest_context.hc_entropy_fast_accumulator.buf[i] = 0; 206 } 207 } 208 /* XXX: FIX!! This is a *great* place to pass hardware/live entropy to random(9) */ 209 tsleep_sbt(&harvest_context.hc_kthread_proc, 0, "-", 210 SBT_1S/RANDOM_KTHREAD_HZ, 0, C_PREL(1)); 211 } 212 random_kthread_control = -1; 213 wakeup(&harvest_context.hc_kthread_proc); 214 kproc_exit(0); 215 /* NOTREACHED */ 216 } 217 /* This happens well after SI_SUB_RANDOM */ 218 SYSINIT(random_device_h_proc, SI_SUB_KICK_SCHEDULER, SI_ORDER_ANY, kproc_start, 219 &random_proc_kp); 220 221 static void 222 rs_epoch_init(void *dummy __unused) 223 { 224 rs_epoch = epoch_alloc("Random Sources", EPOCH_PREEMPT); 225 epoch_inited = true; 226 } 227 SYSINIT(rs_epoch_init, SI_SUB_EPOCH, SI_ORDER_ANY, rs_epoch_init, NULL); 228 229 /* 230 * Run through all fast sources reading entropy for the given 231 * number of rounds, which should be a multiple of the number 232 * of entropy accumulation pools in use; it is 32 for Fortuna. 233 */ 234 static void 235 random_sources_feed(void) 236 { 237 uint32_t entropy[HARVESTSIZE]; 238 struct epoch_tracker et; 239 struct random_sources *rrs; 240 u_int i, n, npools; 241 bool rse_warm; 242 243 rse_warm = epoch_inited; 244 245 /* 246 * Evenly-ish distribute pool population across the second based on how 247 * frequently random_kthread iterates. 248 * 249 * For Fortuna, the math currently works out as such: 250 * 251 * 64 bits * 4 pools = 256 bits per iteration 252 * 256 bits * 10 Hz = 2560 bits per second, 320 B/s 253 * 254 */ 255 npools = howmany(p_random_alg_context->ra_poolcount, RANDOM_KTHREAD_HZ); 256 257 /* 258 * Step over all of live entropy sources, and feed their output 259 * to the system-wide RNG. 260 */ 261 if (rse_warm) 262 epoch_enter_preempt(rs_epoch, &et); 263 CK_LIST_FOREACH(rrs, &source_list, rrs_entries) { 264 for (i = 0; i < npools; i++) { 265 n = rrs->rrs_source->rs_read(entropy, sizeof(entropy)); 266 KASSERT((n <= sizeof(entropy)), ("%s: rs_read returned too much data (%u > %zu)", __func__, n, sizeof(entropy))); 267 /* 268 * Sometimes the HW entropy source doesn't have anything 269 * ready for us. This isn't necessarily untrustworthy. 270 * We don't perform any other verification of an entropy 271 * source (i.e., length is allowed to be anywhere from 1 272 * to sizeof(entropy), quality is unchecked, etc), so 273 * don't balk verbosely at slow random sources either. 274 * There are reports that RDSEED on x86 metal falls 275 * behind the rate at which we query it, for example. 276 * But it's still a better entropy source than RDRAND. 277 */ 278 if (n == 0) 279 continue; 280 random_harvest_direct(entropy, n, rrs->rrs_source->rs_source); 281 } 282 } 283 if (rse_warm) 284 epoch_exit_preempt(rs_epoch, &et); 285 explicit_bzero(entropy, sizeof(entropy)); 286 } 287 288 /* ARGSUSED */ 289 static int 290 random_check_uint_harvestmask(SYSCTL_HANDLER_ARGS) 291 { 292 static const u_int user_immutable_mask = 293 (((1 << ENTROPYSOURCE) - 1) & (-1UL << RANDOM_PURE_START)) | 294 _RANDOM_HARVEST_ETHER_OFF | _RANDOM_HARVEST_UMA_OFF; 295 296 int error; 297 u_int value, orig_value; 298 299 orig_value = value = hc_source_mask; 300 error = sysctl_handle_int(oidp, &value, 0, req); 301 if (error != 0 || req->newptr == NULL) 302 return (error); 303 304 if (flsl(value) > ENTROPYSOURCE) 305 return (EINVAL); 306 307 /* 308 * Disallow userspace modification of pure entropy sources. 309 */ 310 hc_source_mask = (value & ~user_immutable_mask) | 311 (orig_value & user_immutable_mask); 312 return (0); 313 } 314 SYSCTL_PROC(_kern_random_harvest, OID_AUTO, mask, 315 CTLTYPE_UINT | CTLFLAG_RW | CTLFLAG_NEEDGIANT, NULL, 0, 316 random_check_uint_harvestmask, "IU", 317 "Entropy harvesting mask"); 318 319 /* ARGSUSED */ 320 static int 321 random_print_harvestmask(SYSCTL_HANDLER_ARGS) 322 { 323 struct sbuf sbuf; 324 int error, i; 325 326 error = sysctl_wire_old_buffer(req, 0); 327 if (error == 0) { 328 sbuf_new_for_sysctl(&sbuf, NULL, 128, req); 329 for (i = ENTROPYSOURCE - 1; i >= 0; i--) 330 sbuf_cat(&sbuf, (hc_source_mask & (1 << i)) ? "1" : "0"); 331 error = sbuf_finish(&sbuf); 332 sbuf_delete(&sbuf); 333 } 334 return (error); 335 } 336 SYSCTL_PROC(_kern_random_harvest, OID_AUTO, mask_bin, 337 CTLTYPE_STRING | CTLFLAG_RD | CTLFLAG_MPSAFE, NULL, 0, 338 random_print_harvestmask, "A", 339 "Entropy harvesting mask (printable)"); 340 341 static const char *random_source_descr[ENTROPYSOURCE] = { 342 [RANDOM_CACHED] = "CACHED", 343 [RANDOM_ATTACH] = "ATTACH", 344 [RANDOM_KEYBOARD] = "KEYBOARD", 345 [RANDOM_MOUSE] = "MOUSE", 346 [RANDOM_NET_TUN] = "NET_TUN", 347 [RANDOM_NET_ETHER] = "NET_ETHER", 348 [RANDOM_NET_NG] = "NET_NG", 349 [RANDOM_INTERRUPT] = "INTERRUPT", 350 [RANDOM_SWI] = "SWI", 351 [RANDOM_FS_ATIME] = "FS_ATIME", 352 [RANDOM_UMA] = "UMA", 353 [RANDOM_CALLOUT] = "CALLOUT", /* ENVIRONMENTAL_END */ 354 [RANDOM_PURE_OCTEON] = "PURE_OCTEON", /* PURE_START */ 355 [RANDOM_PURE_SAFE] = "PURE_SAFE", 356 [RANDOM_PURE_GLXSB] = "PURE_GLXSB", 357 [RANDOM_PURE_HIFN] = "PURE_HIFN", 358 [RANDOM_PURE_RDRAND] = "PURE_RDRAND", 359 [RANDOM_PURE_NEHEMIAH] = "PURE_NEHEMIAH", 360 [RANDOM_PURE_RNDTEST] = "PURE_RNDTEST", 361 [RANDOM_PURE_VIRTIO] = "PURE_VIRTIO", 362 [RANDOM_PURE_BROADCOM] = "PURE_BROADCOM", 363 [RANDOM_PURE_CCP] = "PURE_CCP", 364 [RANDOM_PURE_DARN] = "PURE_DARN", 365 [RANDOM_PURE_TPM] = "PURE_TPM", 366 [RANDOM_PURE_VMGENID] = "PURE_VMGENID", 367 [RANDOM_PURE_QUALCOMM] = "PURE_QUALCOMM", 368 /* "ENTROPYSOURCE" */ 369 }; 370 371 /* ARGSUSED */ 372 static int 373 random_print_harvestmask_symbolic(SYSCTL_HANDLER_ARGS) 374 { 375 struct sbuf sbuf; 376 int error, i; 377 bool first; 378 379 first = true; 380 error = sysctl_wire_old_buffer(req, 0); 381 if (error == 0) { 382 sbuf_new_for_sysctl(&sbuf, NULL, 128, req); 383 for (i = ENTROPYSOURCE - 1; i >= 0; i--) { 384 if (i >= RANDOM_PURE_START && 385 (hc_source_mask & (1 << i)) == 0) 386 continue; 387 if (!first) 388 sbuf_cat(&sbuf, ","); 389 sbuf_cat(&sbuf, !(hc_source_mask & (1 << i)) ? "[" : ""); 390 sbuf_cat(&sbuf, random_source_descr[i]); 391 sbuf_cat(&sbuf, !(hc_source_mask & (1 << i)) ? "]" : ""); 392 first = false; 393 } 394 error = sbuf_finish(&sbuf); 395 sbuf_delete(&sbuf); 396 } 397 return (error); 398 } 399 SYSCTL_PROC(_kern_random_harvest, OID_AUTO, mask_symbolic, 400 CTLTYPE_STRING | CTLFLAG_RD | CTLFLAG_MPSAFE, NULL, 0, 401 random_print_harvestmask_symbolic, "A", 402 "Entropy harvesting mask (symbolic)"); 403 404 /* ARGSUSED */ 405 static void 406 random_harvestq_init(void *unused __unused) 407 { 408 static const u_int almost_everything_mask = 409 (((1 << (RANDOM_ENVIRONMENTAL_END + 1)) - 1) & 410 ~_RANDOM_HARVEST_ETHER_OFF & ~_RANDOM_HARVEST_UMA_OFF); 411 412 hc_source_mask = almost_everything_mask; 413 RANDOM_HARVEST_INIT_LOCK(); 414 harvest_context.hc_entropy_ring.in = harvest_context.hc_entropy_ring.out = 0; 415 } 416 SYSINIT(random_device_h_init, SI_SUB_RANDOM, SI_ORDER_THIRD, random_harvestq_init, NULL); 417 418 /* 419 * Subroutine to slice up a contiguous chunk of 'entropy' and feed it into the 420 * underlying algorithm. Returns number of bytes actually fed into underlying 421 * algorithm. 422 */ 423 static size_t 424 random_early_prime(char *entropy, size_t len) 425 { 426 struct harvest_event event; 427 size_t i; 428 429 len = rounddown(len, sizeof(event.he_entropy)); 430 if (len == 0) 431 return (0); 432 433 for (i = 0; i < len; i += sizeof(event.he_entropy)) { 434 event.he_somecounter = (uint32_t)get_cyclecount(); 435 event.he_size = sizeof(event.he_entropy); 436 event.he_source = RANDOM_CACHED; 437 event.he_destination = 438 harvest_context.hc_destination[RANDOM_CACHED]++; 439 memcpy(event.he_entropy, entropy + i, sizeof(event.he_entropy)); 440 random_harvestq_fast_process_event(&event); 441 } 442 explicit_bzero(entropy, len); 443 return (len); 444 } 445 446 /* 447 * Subroutine to search for known loader-loaded files in memory and feed them 448 * into the underlying algorithm early in boot. Returns the number of bytes 449 * loaded (zero if none were loaded). 450 */ 451 static size_t 452 random_prime_loader_file(const char *type) 453 { 454 uint8_t *keyfile, *data; 455 size_t size; 456 457 keyfile = preload_search_by_type(type); 458 if (keyfile == NULL) 459 return (0); 460 461 data = preload_fetch_addr(keyfile); 462 size = preload_fetch_size(keyfile); 463 if (data == NULL) 464 return (0); 465 466 return (random_early_prime(data, size)); 467 } 468 469 /* 470 * This is used to prime the RNG by grabbing any early random stuff 471 * known to the kernel, and inserting it directly into the hashing 472 * module, currently Fortuna. 473 */ 474 /* ARGSUSED */ 475 static void 476 random_harvestq_prime(void *unused __unused) 477 { 478 size_t size; 479 480 /* 481 * Get entropy that may have been preloaded by loader(8) 482 * and use it to pre-charge the entropy harvest queue. 483 */ 484 size = random_prime_loader_file(RANDOM_CACHED_BOOT_ENTROPY_MODULE); 485 if (bootverbose) { 486 if (size > 0) 487 printf("random: read %zu bytes from preloaded cache\n", 488 size); 489 else 490 printf("random: no preloaded entropy cache\n"); 491 } 492 size = random_prime_loader_file(RANDOM_PLATFORM_BOOT_ENTROPY_MODULE); 493 if (bootverbose) { 494 if (size > 0) 495 printf("random: read %zu bytes from platform bootloader\n", 496 size); 497 else 498 printf("random: no platform bootloader entropy\n"); 499 } 500 } 501 SYSINIT(random_device_prime, SI_SUB_RANDOM, SI_ORDER_MIDDLE, random_harvestq_prime, NULL); 502 503 /* ARGSUSED */ 504 static void 505 random_harvestq_deinit(void *unused __unused) 506 { 507 508 /* Command the hash/reseed thread to end and wait for it to finish */ 509 random_kthread_control = 0; 510 while (random_kthread_control >= 0) 511 tsleep(&harvest_context.hc_kthread_proc, 0, "harvqterm", hz/5); 512 } 513 SYSUNINIT(random_device_h_init, SI_SUB_RANDOM, SI_ORDER_THIRD, random_harvestq_deinit, NULL); 514 515 /*- 516 * Entropy harvesting queue routine. 517 * 518 * This is supposed to be fast; do not do anything slow in here! 519 * It is also illegal (and morally reprehensible) to insert any 520 * high-rate data here. "High-rate" is defined as a data source 521 * that will usually cause lots of failures of the "Lockless read" 522 * check a few lines below. This includes the "always-on" sources 523 * like the Intel "rdrand" or the VIA Nehamiah "xstore" sources. 524 */ 525 /* XXXRW: get_cyclecount() is cheap on most modern hardware, where cycle 526 * counters are built in, but on older hardware it will do a real time clock 527 * read which can be quite expensive. 528 */ 529 void 530 random_harvest_queue_(const void *entropy, u_int size, enum random_entropy_source origin) 531 { 532 struct harvest_event *event; 533 u_int ring_in; 534 535 KASSERT(origin >= RANDOM_START && origin < ENTROPYSOURCE, ("%s: origin %d invalid\n", __func__, origin)); 536 RANDOM_HARVEST_LOCK(); 537 ring_in = (harvest_context.hc_entropy_ring.in + 1)%RANDOM_RING_MAX; 538 if (ring_in != harvest_context.hc_entropy_ring.out) { 539 /* The ring is not full */ 540 event = harvest_context.hc_entropy_ring.ring + ring_in; 541 event->he_somecounter = (uint32_t)get_cyclecount(); 542 event->he_source = origin; 543 event->he_destination = harvest_context.hc_destination[origin]++; 544 if (size <= sizeof(event->he_entropy)) { 545 event->he_size = size; 546 memcpy(event->he_entropy, entropy, size); 547 } 548 else { 549 /* Big event, so squash it */ 550 event->he_size = sizeof(event->he_entropy[0]); 551 event->he_entropy[0] = jenkins_hash(entropy, size, (uint32_t)(uintptr_t)event); 552 } 553 harvest_context.hc_entropy_ring.in = ring_in; 554 } 555 RANDOM_HARVEST_UNLOCK(); 556 } 557 558 /*- 559 * Entropy harvesting fast routine. 560 * 561 * This is supposed to be very fast; do not do anything slow in here! 562 * This is the right place for high-rate harvested data. 563 */ 564 void 565 random_harvest_fast_(const void *entropy, u_int size) 566 { 567 u_int pos; 568 569 pos = harvest_context.hc_entropy_fast_accumulator.pos; 570 harvest_context.hc_entropy_fast_accumulator.buf[pos] ^= jenkins_hash(entropy, size, (uint32_t)get_cyclecount()); 571 harvest_context.hc_entropy_fast_accumulator.pos = (pos + 1)%RANDOM_ACCUM_MAX; 572 } 573 574 /*- 575 * Entropy harvesting direct routine. 576 * 577 * This is not supposed to be fast, but will only be used during 578 * (e.g.) booting when initial entropy is being gathered. 579 */ 580 void 581 random_harvest_direct_(const void *entropy, u_int size, enum random_entropy_source origin) 582 { 583 struct harvest_event event; 584 585 KASSERT(origin >= RANDOM_START && origin < ENTROPYSOURCE, ("%s: origin %d invalid\n", __func__, origin)); 586 size = MIN(size, sizeof(event.he_entropy)); 587 event.he_somecounter = (uint32_t)get_cyclecount(); 588 event.he_size = size; 589 event.he_source = origin; 590 event.he_destination = harvest_context.hc_destination[origin]++; 591 memcpy(event.he_entropy, entropy, size); 592 random_harvestq_fast_process_event(&event); 593 } 594 595 void 596 random_harvest_register_source(enum random_entropy_source source) 597 { 598 599 hc_source_mask |= (1 << source); 600 } 601 602 void 603 random_harvest_deregister_source(enum random_entropy_source source) 604 { 605 606 hc_source_mask &= ~(1 << source); 607 } 608 609 void 610 random_source_register(struct random_source *rsource) 611 { 612 struct random_sources *rrs; 613 614 KASSERT(rsource != NULL, ("invalid input to %s", __func__)); 615 616 rrs = malloc(sizeof(*rrs), M_ENTROPY, M_WAITOK); 617 rrs->rrs_source = rsource; 618 619 random_harvest_register_source(rsource->rs_source); 620 621 printf("random: registering fast source %s\n", rsource->rs_ident); 622 623 RANDOM_HARVEST_LOCK(); 624 CK_LIST_INSERT_HEAD(&source_list, rrs, rrs_entries); 625 RANDOM_HARVEST_UNLOCK(); 626 } 627 628 void 629 random_source_deregister(struct random_source *rsource) 630 { 631 struct random_sources *rrs = NULL; 632 633 KASSERT(rsource != NULL, ("invalid input to %s", __func__)); 634 635 random_harvest_deregister_source(rsource->rs_source); 636 637 RANDOM_HARVEST_LOCK(); 638 CK_LIST_FOREACH(rrs, &source_list, rrs_entries) 639 if (rrs->rrs_source == rsource) { 640 CK_LIST_REMOVE(rrs, rrs_entries); 641 break; 642 } 643 RANDOM_HARVEST_UNLOCK(); 644 645 if (rrs != NULL && epoch_inited) 646 epoch_wait_preempt(rs_epoch); 647 free(rrs, M_ENTROPY); 648 } 649 650 static int 651 random_source_handler(SYSCTL_HANDLER_ARGS) 652 { 653 struct epoch_tracker et; 654 struct random_sources *rrs; 655 struct sbuf sbuf; 656 int error, count; 657 658 error = sysctl_wire_old_buffer(req, 0); 659 if (error != 0) 660 return (error); 661 662 sbuf_new_for_sysctl(&sbuf, NULL, 64, req); 663 count = 0; 664 epoch_enter_preempt(rs_epoch, &et); 665 CK_LIST_FOREACH(rrs, &source_list, rrs_entries) { 666 sbuf_cat(&sbuf, (count++ ? ",'" : "'")); 667 sbuf_cat(&sbuf, rrs->rrs_source->rs_ident); 668 sbuf_cat(&sbuf, "'"); 669 } 670 epoch_exit_preempt(rs_epoch, &et); 671 error = sbuf_finish(&sbuf); 672 sbuf_delete(&sbuf); 673 return (error); 674 } 675 SYSCTL_PROC(_kern_random, OID_AUTO, random_sources, CTLTYPE_STRING | CTLFLAG_RD | CTLFLAG_MPSAFE, 676 NULL, 0, random_source_handler, "A", 677 "List of active fast entropy sources."); 678 679 MODULE_VERSION(random_harvestq, 1); 680