1 /* $NetBSD: subr_xcall.c,v 1.28 2019/11/11 09:50:11 maxv Exp $ */ 2 3 /*- 4 * Copyright (c) 2007-2010 The NetBSD Foundation, Inc. 5 * All rights reserved. 6 * 7 * This code is derived from software contributed to The NetBSD Foundation 8 * by Andrew Doran and Mindaugas Rasiukevicius. 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 /* 33 * Cross call support 34 * 35 * Background 36 * 37 * Sometimes it is necessary to modify hardware state that is tied 38 * directly to individual CPUs (such as a CPU's local timer), and 39 * these updates can not be done remotely by another CPU. The LWP 40 * requesting the update may be unable to guarantee that it will be 41 * running on the CPU where the update must occur, when the update 42 * occurs. 43 * 44 * Additionally, it's sometimes necessary to modify per-CPU software 45 * state from a remote CPU. Where these update operations are so 46 * rare or the access to the per-CPU data so frequent that the cost 47 * of using locking or atomic operations to provide coherency is 48 * prohibitive, another way must be found. 49 * 50 * Cross calls help to solve these types of problem by allowing 51 * any CPU in the system to request that an arbitrary function be 52 * executed on any other CPU. 53 * 54 * Implementation 55 * 56 * A slow mechanism for making 'low priority' cross calls is 57 * provided. The function to be executed runs on the remote CPU 58 * within a bound kthread. No queueing is provided, and the 59 * implementation uses global state. The function being called may 60 * block briefly on locks, but in doing so must be careful to not 61 * interfere with other cross calls in the system. The function is 62 * called with thread context and not from a soft interrupt, so it 63 * can ensure that it is not interrupting other code running on the 64 * CPU, and so has exclusive access to the CPU. Since this facility 65 * is heavyweight, it's expected that it will not be used often. 66 * 67 * Cross calls must not allocate memory, as the pagedaemon uses 68 * them (and memory allocation may need to wait on the pagedaemon). 69 * 70 * A low-overhead mechanism for high priority calls (XC_HIGHPRI) is 71 * also provided. The function to be executed runs on a software 72 * interrupt context, at IPL_SOFTSERIAL level, and is expected to 73 * be very lightweight, e.g. avoid blocking. 74 */ 75 76 #include <sys/cdefs.h> 77 __KERNEL_RCSID(0, "$NetBSD: subr_xcall.c,v 1.28 2019/11/11 09:50:11 maxv Exp $"); 78 79 #include <sys/types.h> 80 #include <sys/param.h> 81 #include <sys/xcall.h> 82 #include <sys/mutex.h> 83 #include <sys/condvar.h> 84 #include <sys/evcnt.h> 85 #include <sys/kthread.h> 86 #include <sys/cpu.h> 87 88 #ifdef _RUMPKERNEL 89 #include "rump_private.h" 90 #endif 91 92 /* Cross-call state box. */ 93 typedef struct { 94 kmutex_t xc_lock; 95 kcondvar_t xc_busy; 96 xcfunc_t xc_func; 97 void * xc_arg1; 98 void * xc_arg2; 99 uint64_t xc_headp; 100 uint64_t xc_donep; 101 unsigned int xc_ipl; 102 } xc_state_t; 103 104 /* Bit indicating high (1) or low (0) priority. */ 105 #define XC_PRI_BIT (1ULL << 63) 106 107 /* Low priority xcall structures. */ 108 static xc_state_t xc_low_pri __cacheline_aligned; 109 110 /* High priority xcall structures. */ 111 static xc_state_t xc_high_pri __cacheline_aligned; 112 static void * xc_sihs[4] __cacheline_aligned; 113 114 /* Event counters. */ 115 static struct evcnt xc_unicast_ev __cacheline_aligned; 116 static struct evcnt xc_broadcast_ev __cacheline_aligned; 117 118 static void xc_init(void); 119 static void xc_thread(void *); 120 121 static inline uint64_t xc_highpri(xcfunc_t, void *, void *, struct cpu_info *, 122 unsigned int); 123 static inline uint64_t xc_lowpri(xcfunc_t, void *, void *, struct cpu_info *); 124 125 /* The internal form of IPL */ 126 #define XC_IPL_MASK 0xff00 127 /* 128 * Assign 0 to XC_IPL_SOFTSERIAL to treat IPL_SOFTSERIAL as the default value 129 * (just XC_HIGHPRI). 130 */ 131 #define XC_IPL_SOFTSERIAL 0 132 #define XC_IPL_SOFTNET 1 133 #define XC_IPL_SOFTBIO 2 134 #define XC_IPL_SOFTCLOCK 3 135 #define XC_IPL_MAX XC_IPL_SOFTCLOCK 136 137 CTASSERT(XC_IPL_MAX <= __arraycount(xc_sihs)); 138 139 /* 140 * xc_init: 141 * 142 * Initialize low and high priority cross-call structures. 143 */ 144 static void 145 xc_init(void) 146 { 147 xc_state_t *xclo = &xc_low_pri, *xchi = &xc_high_pri; 148 149 memset(xclo, 0, sizeof(xc_state_t)); 150 mutex_init(&xclo->xc_lock, MUTEX_DEFAULT, IPL_NONE); 151 cv_init(&xclo->xc_busy, "xclocv"); 152 153 memset(xchi, 0, sizeof(xc_state_t)); 154 mutex_init(&xchi->xc_lock, MUTEX_DEFAULT, IPL_SOFTSERIAL); 155 cv_init(&xchi->xc_busy, "xchicv"); 156 157 /* Set up a softint for each IPL_SOFT*. */ 158 #define SETUP_SOFTINT(xipl, sipl) do { \ 159 xc_sihs[(xipl)] = softint_establish( (sipl) | SOFTINT_MPSAFE,\ 160 xc__highpri_intr, NULL); \ 161 KASSERT(xc_sihs[(xipl)] != NULL); \ 162 } while (0) 163 164 SETUP_SOFTINT(XC_IPL_SOFTSERIAL, SOFTINT_SERIAL); 165 /* 166 * If a IPL_SOFTXXX have the same value of the previous, we don't use 167 * the IPL (see xc_encode_ipl). So we don't need to allocate a softint 168 * for it. 169 */ 170 #if IPL_SOFTNET != IPL_SOFTSERIAL 171 SETUP_SOFTINT(XC_IPL_SOFTNET, SOFTINT_NET); 172 #endif 173 #if IPL_SOFTBIO != IPL_SOFTNET 174 SETUP_SOFTINT(XC_IPL_SOFTBIO, SOFTINT_BIO); 175 #endif 176 #if IPL_SOFTCLOCK != IPL_SOFTBIO 177 SETUP_SOFTINT(XC_IPL_SOFTCLOCK, SOFTINT_CLOCK); 178 #endif 179 180 #undef SETUP_SOFTINT 181 182 evcnt_attach_dynamic(&xc_unicast_ev, EVCNT_TYPE_MISC, NULL, 183 "crosscall", "unicast"); 184 evcnt_attach_dynamic(&xc_broadcast_ev, EVCNT_TYPE_MISC, NULL, 185 "crosscall", "broadcast"); 186 } 187 188 /* 189 * Encode an IPL to a form that can be embedded into flags of xc_broadcast 190 * or xc_unicast. 191 */ 192 unsigned int 193 xc_encode_ipl(int ipl) 194 { 195 196 switch (ipl) { 197 case IPL_SOFTSERIAL: 198 return __SHIFTIN(XC_IPL_SOFTSERIAL, XC_IPL_MASK); 199 /* IPL_SOFT* can be the same value (e.g., on sparc or mips). */ 200 #if IPL_SOFTNET != IPL_SOFTSERIAL 201 case IPL_SOFTNET: 202 return __SHIFTIN(XC_IPL_SOFTNET, XC_IPL_MASK); 203 #endif 204 #if IPL_SOFTBIO != IPL_SOFTNET 205 case IPL_SOFTBIO: 206 return __SHIFTIN(XC_IPL_SOFTBIO, XC_IPL_MASK); 207 #endif 208 #if IPL_SOFTCLOCK != IPL_SOFTBIO 209 case IPL_SOFTCLOCK: 210 return __SHIFTIN(XC_IPL_SOFTCLOCK, XC_IPL_MASK); 211 #endif 212 } 213 214 panic("Invalid IPL: %d", ipl); 215 } 216 217 /* 218 * Extract an XC_IPL from flags of xc_broadcast or xc_unicast. 219 */ 220 static inline unsigned int 221 xc_extract_ipl(unsigned int flags) 222 { 223 224 return __SHIFTOUT(flags, XC_IPL_MASK); 225 } 226 227 /* 228 * xc_init_cpu: 229 * 230 * Initialize the cross-call subsystem. Called once for each CPU 231 * in the system as they are attached. 232 */ 233 void 234 xc_init_cpu(struct cpu_info *ci) 235 { 236 static bool again = false; 237 int error __diagused; 238 239 if (!again) { 240 /* Autoconfiguration will prevent re-entry. */ 241 xc_init(); 242 again = true; 243 } 244 cv_init(&ci->ci_data.cpu_xcall, "xcall"); 245 error = kthread_create(PRI_XCALL, KTHREAD_MPSAFE, ci, xc_thread, 246 NULL, NULL, "xcall/%u", ci->ci_index); 247 KASSERT(error == 0); 248 } 249 250 /* 251 * xc_broadcast: 252 * 253 * Trigger a call on all CPUs in the system. 254 */ 255 uint64_t 256 xc_broadcast(unsigned int flags, xcfunc_t func, void *arg1, void *arg2) 257 { 258 259 KASSERT(!cpu_intr_p() && !cpu_softintr_p()); 260 ASSERT_SLEEPABLE(); 261 262 if ((flags & XC_HIGHPRI) != 0) { 263 int ipl = xc_extract_ipl(flags); 264 return xc_highpri(func, arg1, arg2, NULL, ipl); 265 } else { 266 return xc_lowpri(func, arg1, arg2, NULL); 267 } 268 } 269 270 271 static void 272 xc_nop(void *arg1, void *arg2) 273 { 274 275 return; 276 } 277 278 279 /* 280 * xc_barrier: 281 * 282 * Broadcast a nop to all CPUs in the system. 283 */ 284 void 285 xc_barrier(unsigned int flags) 286 { 287 uint64_t where; 288 289 where = xc_broadcast(flags, xc_nop, NULL, NULL); 290 xc_wait(where); 291 } 292 293 294 /* 295 * xc_unicast: 296 * 297 * Trigger a call on one CPU. 298 */ 299 uint64_t 300 xc_unicast(unsigned int flags, xcfunc_t func, void *arg1, void *arg2, 301 struct cpu_info *ci) 302 { 303 304 KASSERT(ci != NULL); 305 KASSERT(!cpu_intr_p() && !cpu_softintr_p()); 306 ASSERT_SLEEPABLE(); 307 308 if ((flags & XC_HIGHPRI) != 0) { 309 int ipl = xc_extract_ipl(flags); 310 return xc_highpri(func, arg1, arg2, ci, ipl); 311 } else { 312 return xc_lowpri(func, arg1, arg2, ci); 313 } 314 } 315 316 /* 317 * xc_wait: 318 * 319 * Wait for a cross call to complete. 320 */ 321 void 322 xc_wait(uint64_t where) 323 { 324 xc_state_t *xc; 325 326 KASSERT(!cpu_intr_p() && !cpu_softintr_p()); 327 ASSERT_SLEEPABLE(); 328 329 /* Determine whether it is high or low priority cross-call. */ 330 if ((where & XC_PRI_BIT) != 0) { 331 xc = &xc_high_pri; 332 where &= ~XC_PRI_BIT; 333 } else { 334 xc = &xc_low_pri; 335 } 336 337 /* Block until awoken. */ 338 mutex_enter(&xc->xc_lock); 339 while (xc->xc_donep < where) { 340 cv_wait(&xc->xc_busy, &xc->xc_lock); 341 } 342 mutex_exit(&xc->xc_lock); 343 } 344 345 /* 346 * xc_lowpri: 347 * 348 * Trigger a low priority call on one or more CPUs. 349 */ 350 static inline uint64_t 351 xc_lowpri(xcfunc_t func, void *arg1, void *arg2, struct cpu_info *ci) 352 { 353 xc_state_t *xc = &xc_low_pri; 354 CPU_INFO_ITERATOR cii; 355 uint64_t where; 356 357 mutex_enter(&xc->xc_lock); 358 while (xc->xc_headp != xc->xc_donep) { 359 cv_wait(&xc->xc_busy, &xc->xc_lock); 360 } 361 xc->xc_arg1 = arg1; 362 xc->xc_arg2 = arg2; 363 xc->xc_func = func; 364 if (ci == NULL) { 365 xc_broadcast_ev.ev_count++; 366 for (CPU_INFO_FOREACH(cii, ci)) { 367 if ((ci->ci_schedstate.spc_flags & SPCF_RUNNING) == 0) 368 continue; 369 xc->xc_headp += 1; 370 ci->ci_data.cpu_xcall_pending = true; 371 cv_signal(&ci->ci_data.cpu_xcall); 372 } 373 } else { 374 xc_unicast_ev.ev_count++; 375 xc->xc_headp += 1; 376 ci->ci_data.cpu_xcall_pending = true; 377 cv_signal(&ci->ci_data.cpu_xcall); 378 } 379 KASSERT(xc->xc_donep < xc->xc_headp); 380 where = xc->xc_headp; 381 mutex_exit(&xc->xc_lock); 382 383 /* Return a low priority ticket. */ 384 KASSERT((where & XC_PRI_BIT) == 0); 385 return where; 386 } 387 388 /* 389 * xc_thread: 390 * 391 * One thread per-CPU to dispatch low priority calls. 392 */ 393 static void 394 xc_thread(void *cookie) 395 { 396 struct cpu_info *ci = curcpu(); 397 xc_state_t *xc = &xc_low_pri; 398 void *arg1, *arg2; 399 xcfunc_t func; 400 401 mutex_enter(&xc->xc_lock); 402 for (;;) { 403 while (!ci->ci_data.cpu_xcall_pending) { 404 if (xc->xc_headp == xc->xc_donep) { 405 cv_broadcast(&xc->xc_busy); 406 } 407 cv_wait(&ci->ci_data.cpu_xcall, &xc->xc_lock); 408 KASSERT(ci == curcpu()); 409 } 410 ci->ci_data.cpu_xcall_pending = false; 411 func = xc->xc_func; 412 arg1 = xc->xc_arg1; 413 arg2 = xc->xc_arg2; 414 mutex_exit(&xc->xc_lock); 415 416 KASSERT(func != NULL); 417 (*func)(arg1, arg2); 418 419 mutex_enter(&xc->xc_lock); 420 xc->xc_donep++; 421 } 422 /* NOTREACHED */ 423 } 424 425 /* 426 * xc_ipi_handler: 427 * 428 * Handler of cross-call IPI. 429 */ 430 void 431 xc_ipi_handler(void) 432 { 433 xc_state_t *xc = & xc_high_pri; 434 435 KASSERT(xc->xc_ipl < __arraycount(xc_sihs)); 436 KASSERT(xc_sihs[xc->xc_ipl] != NULL); 437 438 /* Executes xc__highpri_intr() via software interrupt. */ 439 softint_schedule(xc_sihs[xc->xc_ipl]); 440 } 441 442 /* 443 * xc__highpri_intr: 444 * 445 * A software interrupt handler for high priority calls. 446 */ 447 void 448 xc__highpri_intr(void *dummy) 449 { 450 xc_state_t *xc = &xc_high_pri; 451 void *arg1, *arg2; 452 xcfunc_t func; 453 454 KASSERTMSG(!cpu_intr_p(), "high priority xcall for function %p", 455 xc->xc_func); 456 /* 457 * Lock-less fetch of function and its arguments. 458 * Safe since it cannot change at this point. 459 */ 460 func = xc->xc_func; 461 arg1 = xc->xc_arg1; 462 arg2 = xc->xc_arg2; 463 464 KASSERT(func != NULL); 465 (*func)(arg1, arg2); 466 467 /* 468 * Note the request as done, and if we have reached the head, 469 * cross-call has been processed - notify waiters, if any. 470 */ 471 mutex_enter(&xc->xc_lock); 472 KASSERT(xc->xc_donep < xc->xc_headp); 473 if (++xc->xc_donep == xc->xc_headp) { 474 cv_broadcast(&xc->xc_busy); 475 } 476 mutex_exit(&xc->xc_lock); 477 } 478 479 /* 480 * xc_highpri: 481 * 482 * Trigger a high priority call on one or more CPUs. 483 */ 484 static inline uint64_t 485 xc_highpri(xcfunc_t func, void *arg1, void *arg2, struct cpu_info *ci, 486 unsigned int ipl) 487 { 488 xc_state_t *xc = &xc_high_pri; 489 uint64_t where; 490 491 mutex_enter(&xc->xc_lock); 492 while (xc->xc_headp != xc->xc_donep) { 493 cv_wait(&xc->xc_busy, &xc->xc_lock); 494 } 495 xc->xc_func = func; 496 xc->xc_arg1 = arg1; 497 xc->xc_arg2 = arg2; 498 xc->xc_headp += (ci ? 1 : ncpu); 499 xc->xc_ipl = ipl; 500 where = xc->xc_headp; 501 mutex_exit(&xc->xc_lock); 502 503 /* 504 * Send the IPI once lock is released. 505 * Note: it will handle the local CPU case. 506 */ 507 508 #ifdef _RUMPKERNEL 509 rump_xc_highpri(ci); 510 #else 511 #ifdef MULTIPROCESSOR 512 kpreempt_disable(); 513 if (curcpu() == ci) { 514 /* Unicast: local CPU. */ 515 xc_ipi_handler(); 516 } else if (ci) { 517 /* Unicast: remote CPU. */ 518 xc_send_ipi(ci); 519 } else { 520 /* Broadcast: all, including local. */ 521 xc_send_ipi(NULL); 522 xc_ipi_handler(); 523 } 524 kpreempt_enable(); 525 #else 526 KASSERT(ci == NULL || curcpu() == ci); 527 xc_ipi_handler(); 528 #endif 529 #endif 530 531 /* Indicate a high priority ticket. */ 532 return (where | XC_PRI_BIT); 533 } 534