1 /*- 2 * SPDX-License-Identifier: BSD-2-Clause 3 * 4 * Copyright (C) 2012-2014 Matteo Landi 5 * Copyright (C) 2012-2016 Luigi Rizzo 6 * Copyright (C) 2012-2016 Giuseppe Lettieri 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 * 2. Redistributions in binary form must reproduce the above copyright 15 * notice, this list of conditions and the following disclaimer in the 16 * documentation and/or other materials provided with the distribution. 17 * 18 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND 19 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE 20 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE 21 * ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE 22 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL 23 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS 24 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) 25 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT 26 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY 27 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF 28 * SUCH DAMAGE. 29 */ 30 31 #ifdef linux 32 #include "bsd_glue.h" 33 #endif /* linux */ 34 35 #ifdef __APPLE__ 36 #include "osx_glue.h" 37 #endif /* __APPLE__ */ 38 39 #ifdef __FreeBSD__ 40 #include <sys/types.h> 41 #include <sys/ckdint.h> 42 #include <sys/domainset.h> 43 #include <sys/limits.h> 44 #include <sys/malloc.h> 45 #include <sys/kernel.h> /* MALLOC_DEFINE */ 46 #include <sys/proc.h> 47 #include <vm/vm.h> /* vtophys */ 48 #include <vm/pmap.h> /* vtophys */ 49 #include <sys/socket.h> /* sockaddrs */ 50 #include <sys/selinfo.h> 51 #include <sys/sysctl.h> 52 #include <net/if.h> 53 #include <net/if_var.h> 54 #include <net/vnet.h> 55 #include <machine/bus.h> /* bus_dmamap_* */ 56 57 /* M_NETMAP only used in here */ 58 MALLOC_DECLARE(M_NETMAP); 59 MALLOC_DEFINE(M_NETMAP, "netmap", "Network memory map"); 60 61 #endif /* __FreeBSD__ */ 62 63 #ifdef _WIN32 64 #include <win_glue.h> 65 #endif 66 67 #include <net/netmap.h> 68 #include <dev/netmap/netmap_kern.h> 69 #include <net/netmap_virt.h> 70 #include "netmap_mem2.h" 71 72 #ifdef _WIN32_USE_SMALL_GENERIC_DEVICES_MEMORY 73 #define NETMAP_BUF_MAX_NUM 8*4096 /* if too big takes too much time to allocate */ 74 #else 75 #define NETMAP_BUF_MAX_NUM 20*4096*2 /* large machine */ 76 #endif 77 78 #define NETMAP_POOL_MAX_NAMSZ 32 79 80 81 enum { 82 NETMAP_IF_POOL = 0, 83 NETMAP_RING_POOL, 84 NETMAP_BUF_POOL, 85 NETMAP_POOLS_NR 86 }; 87 88 89 struct netmap_obj_params { 90 u_int size; 91 u_int num; 92 93 u_int last_size; 94 u_int last_num; 95 }; 96 97 struct netmap_obj_pool { 98 char name[NETMAP_POOL_MAX_NAMSZ]; /* name of the allocator */ 99 100 /* ---------------------------------------------------*/ 101 /* these are only meaningful if the pool is finalized */ 102 /* (see 'finalized' field in netmap_mem_d) */ 103 size_t memtotal; /* actual total memory space */ 104 105 struct lut_entry *lut; /* virt,phys addresses, objtotal entries */ 106 uint32_t *bitmap; /* one bit per buffer, 1 means free */ 107 uint32_t *invalid_bitmap;/* one bit per buffer, 1 means invalid */ 108 uint32_t bitmap_slots; /* number of uint32 entries in bitmap */ 109 110 u_int objtotal; /* actual total number of objects. */ 111 u_int numclusters; /* actual number of clusters */ 112 u_int objfree; /* number of free objects. */ 113 114 int alloc_done; /* we have allocated the memory */ 115 /* ---------------------------------------------------*/ 116 117 /* limits */ 118 u_int objminsize; /* minimum object size */ 119 u_int objmaxsize; /* maximum object size */ 120 u_int nummin; /* minimum number of objects */ 121 u_int nummax; /* maximum number of objects */ 122 123 /* these are changed only by config */ 124 u_int _objtotal; /* total number of objects */ 125 u_int _objsize; /* object size */ 126 u_int _clustsize; /* cluster size */ 127 u_int _clustentries; /* objects per cluster */ 128 u_int _numclusters; /* number of clusters */ 129 130 /* requested values */ 131 u_int r_objtotal; 132 u_int r_objsize; 133 }; 134 135 #define NMA_LOCK_T NM_MTX_T 136 #define NMA_LOCK_INIT(n) NM_MTX_INIT((n)->nm_mtx) 137 #define NMA_LOCK_DESTROY(n) NM_MTX_DESTROY((n)->nm_mtx) 138 #define NMA_LOCK(n) NM_MTX_LOCK((n)->nm_mtx) 139 #define NMA_SPINLOCK(n) NM_MTX_SPINLOCK((n)->nm_mtx) 140 #define NMA_UNLOCK(n) NM_MTX_UNLOCK((n)->nm_mtx) 141 142 struct netmap_mem_ops { 143 int (*nmd_get_lut)(struct netmap_mem_d *, struct netmap_lut*); 144 int (*nmd_get_info)(struct netmap_mem_d *, uint64_t *size, 145 u_int *memflags, uint16_t *id); 146 147 vm_paddr_t (*nmd_ofstophys)(struct netmap_mem_d *, vm_ooffset_t); 148 int (*nmd_config)(struct netmap_mem_d *); 149 int (*nmd_finalize)(struct netmap_mem_d *, struct netmap_adapter *); 150 void (*nmd_deref)(struct netmap_mem_d *, struct netmap_adapter *); 151 ssize_t (*nmd_if_offset)(struct netmap_mem_d *, const void *vaddr); 152 void (*nmd_delete)(struct netmap_mem_d *); 153 154 struct netmap_if * (*nmd_if_new)(struct netmap_mem_d *, 155 struct netmap_adapter *, struct netmap_priv_d *); 156 void (*nmd_if_delete)(struct netmap_mem_d *, 157 struct netmap_adapter *, struct netmap_if *); 158 int (*nmd_rings_create)(struct netmap_mem_d *, 159 struct netmap_adapter *); 160 void (*nmd_rings_delete)(struct netmap_mem_d *, 161 struct netmap_adapter *); 162 }; 163 164 struct netmap_mem_d { 165 NMA_LOCK_T nm_mtx; /* protect the allocator */ 166 size_t nm_totalsize; /* shorthand */ 167 168 u_int flags; 169 #define NETMAP_MEM_FINALIZED 0x1 /* preallocation done */ 170 #define NETMAP_MEM_HIDDEN 0x8 /* being prepared */ 171 #define NETMAP_MEM_NOMAP 0x10 /* do not map/unmap pdevs */ 172 int lasterr; /* last error for curr config */ 173 int active; /* active users */ 174 int refcount; 175 /* the three allocators */ 176 struct netmap_obj_pool pools[NETMAP_POOLS_NR]; 177 178 nm_memid_t nm_id; /* allocator identifier */ 179 int nm_grp; /* iommu group id */ 180 int nm_numa_domain; /* local NUMA domain */ 181 182 /* list of all existing allocators, sorted by nm_id */ 183 struct netmap_mem_d *prev, *next; 184 185 const struct netmap_mem_ops *ops; 186 187 struct netmap_obj_params params[NETMAP_POOLS_NR]; 188 189 #define NM_MEM_NAMESZ 16 190 char name[NM_MEM_NAMESZ]; 191 }; 192 193 int 194 netmap_mem_get_lut(struct netmap_mem_d *nmd, struct netmap_lut *lut) 195 { 196 int rv; 197 198 NMA_LOCK(nmd); 199 rv = nmd->ops->nmd_get_lut(nmd, lut); 200 NMA_UNLOCK(nmd); 201 202 return rv; 203 } 204 205 int 206 netmap_mem_get_info(struct netmap_mem_d *nmd, uint64_t *size, 207 u_int *memflags, nm_memid_t *memid) 208 { 209 int rv; 210 211 NMA_LOCK(nmd); 212 rv = nmd->ops->nmd_get_info(nmd, size, memflags, memid); 213 NMA_UNLOCK(nmd); 214 215 return rv; 216 } 217 218 vm_paddr_t 219 netmap_mem_ofstophys(struct netmap_mem_d *nmd, vm_ooffset_t off) 220 { 221 vm_paddr_t pa; 222 223 #if defined(__FreeBSD__) 224 /* This function is called by netmap_dev_pager_fault(), which holds a 225 * non-sleepable lock since FreeBSD 12. Since we cannot sleep, we 226 * spin on the trylock. */ 227 NMA_SPINLOCK(nmd); 228 #else 229 NMA_LOCK(nmd); 230 #endif 231 pa = nmd->ops->nmd_ofstophys(nmd, off); 232 NMA_UNLOCK(nmd); 233 234 return pa; 235 } 236 237 static int 238 netmap_mem_config(struct netmap_mem_d *nmd) 239 { 240 if (nmd->active) { 241 /* already in use. Not fatal, but we 242 * cannot change the configuration 243 */ 244 return 0; 245 } 246 247 return nmd->ops->nmd_config(nmd); 248 } 249 250 ssize_t 251 netmap_mem_if_offset(struct netmap_mem_d *nmd, const void *off) 252 { 253 ssize_t rv; 254 255 NMA_LOCK(nmd); 256 rv = nmd->ops->nmd_if_offset(nmd, off); 257 NMA_UNLOCK(nmd); 258 259 return rv; 260 } 261 262 static void 263 netmap_mem_delete(struct netmap_mem_d *nmd) 264 { 265 nmd->ops->nmd_delete(nmd); 266 } 267 268 struct netmap_if * 269 netmap_mem_if_new(struct netmap_adapter *na, struct netmap_priv_d *priv) 270 { 271 struct netmap_if *nifp; 272 struct netmap_mem_d *nmd = na->nm_mem; 273 274 NMA_LOCK(nmd); 275 nifp = nmd->ops->nmd_if_new(nmd, na, priv); 276 NMA_UNLOCK(nmd); 277 278 return nifp; 279 } 280 281 void 282 netmap_mem_if_delete(struct netmap_adapter *na, struct netmap_if *nif) 283 { 284 struct netmap_mem_d *nmd = na->nm_mem; 285 286 NMA_LOCK(nmd); 287 nmd->ops->nmd_if_delete(nmd, na, nif); 288 NMA_UNLOCK(nmd); 289 } 290 291 int 292 netmap_mem_rings_create(struct netmap_adapter *na) 293 { 294 int rv; 295 struct netmap_mem_d *nmd = na->nm_mem; 296 297 NMA_LOCK(nmd); 298 rv = nmd->ops->nmd_rings_create(nmd, na); 299 NMA_UNLOCK(nmd); 300 301 return rv; 302 } 303 304 void 305 netmap_mem_rings_delete(struct netmap_adapter *na) 306 { 307 struct netmap_mem_d *nmd = na->nm_mem; 308 309 NMA_LOCK(nmd); 310 nmd->ops->nmd_rings_delete(nmd, na); 311 NMA_UNLOCK(nmd); 312 } 313 314 static int netmap_mem_map(struct netmap_obj_pool *, struct netmap_adapter *); 315 static int netmap_mem_unmap(struct netmap_obj_pool *, struct netmap_adapter *); 316 static int nm_mem_check_group(struct netmap_mem_d *, void *); 317 static void nm_mem_release_id(struct netmap_mem_d *); 318 319 nm_memid_t 320 netmap_mem_get_id(struct netmap_mem_d *nmd) 321 { 322 return nmd->nm_id; 323 } 324 325 #ifdef NM_DEBUG_MEM_PUTGET 326 #define NM_DBG_REFC(nmd, func, line) \ 327 nm_prinf("%s:%d mem[%d:%d] -> %d", func, line, (nmd)->nm_id, (nmd)->nm_grp, (nmd)->refcount); 328 #else 329 #define NM_DBG_REFC(nmd, func, line) 330 #endif 331 332 /* circular list of all existing allocators */ 333 static struct netmap_mem_d *netmap_last_mem_d = &nm_mem; 334 static NM_MTX_T nm_mem_list_lock; 335 336 struct netmap_mem_d * 337 __netmap_mem_get(struct netmap_mem_d *nmd, const char *func, int line) 338 { 339 NM_MTX_LOCK(nm_mem_list_lock); 340 nmd->refcount++; 341 NM_DBG_REFC(nmd, func, line); 342 NM_MTX_UNLOCK(nm_mem_list_lock); 343 return nmd; 344 } 345 346 void 347 __netmap_mem_put(struct netmap_mem_d *nmd, const char *func, int line) 348 { 349 int last; 350 NM_MTX_LOCK(nm_mem_list_lock); 351 last = (--nmd->refcount == 0); 352 if (last) 353 nm_mem_release_id(nmd); 354 NM_DBG_REFC(nmd, func, line); 355 NM_MTX_UNLOCK(nm_mem_list_lock); 356 if (last) 357 netmap_mem_delete(nmd); 358 } 359 360 int 361 netmap_mem_finalize(struct netmap_mem_d *nmd, struct netmap_adapter *na) 362 { 363 int lasterr = 0; 364 if (nm_mem_check_group(nmd, na->pdev) < 0) { 365 return ENOMEM; 366 } 367 368 NMA_LOCK(nmd); 369 370 if (netmap_mem_config(nmd)) 371 goto out; 372 373 nmd->active++; 374 375 nmd->lasterr = nmd->ops->nmd_finalize(nmd, na); 376 377 if (!nmd->lasterr && !(nmd->flags & NETMAP_MEM_NOMAP)) { 378 nmd->lasterr = netmap_mem_map(&nmd->pools[NETMAP_BUF_POOL], na); 379 } 380 381 out: 382 lasterr = nmd->lasterr; 383 NMA_UNLOCK(nmd); 384 385 if (lasterr) 386 netmap_mem_deref(nmd, na); 387 388 return lasterr; 389 } 390 391 static int 392 nm_isset(uint32_t *bitmap, u_int i) 393 { 394 return bitmap[ (i>>5) ] & ( 1U << (i & 31U) ); 395 } 396 397 398 static int 399 netmap_init_obj_allocator_bitmap(struct netmap_obj_pool *p) 400 { 401 u_int n, j; 402 403 if (p->bitmap == NULL) { 404 /* Allocate the bitmap */ 405 n = (p->objtotal + 31) / 32; 406 p->bitmap = nm_os_malloc(sizeof(p->bitmap[0]) * n); 407 if (p->bitmap == NULL) { 408 nm_prerr("Unable to create bitmap (%d entries) for allocator '%s'", (int)n, 409 p->name); 410 return ENOMEM; 411 } 412 p->bitmap_slots = n; 413 } else { 414 memset(p->bitmap, 0, p->bitmap_slots * sizeof(p->bitmap[0])); 415 } 416 417 p->objfree = 0; 418 /* 419 * Set all the bits in the bitmap that have 420 * corresponding buffers to 1 to indicate they are 421 * free. 422 */ 423 for (j = 0; j < p->objtotal; j++) { 424 if (p->invalid_bitmap && nm_isset(p->invalid_bitmap, j)) { 425 if (netmap_debug & NM_DEBUG_MEM) 426 nm_prinf("skipping %s %d", p->name, j); 427 continue; 428 } 429 p->bitmap[ (j>>5) ] |= ( 1U << (j & 31U) ); 430 p->objfree++; 431 } 432 433 if (netmap_verbose) 434 nm_prinf("%s free %u", p->name, p->objfree); 435 if (p->objfree == 0) { 436 if (netmap_verbose) 437 nm_prerr("%s: no objects available", p->name); 438 return ENOMEM; 439 } 440 441 return 0; 442 } 443 444 static int 445 netmap_mem_init_bitmaps(struct netmap_mem_d *nmd) 446 { 447 int i, error = 0; 448 449 for (i = 0; i < NETMAP_POOLS_NR; i++) { 450 struct netmap_obj_pool *p = &nmd->pools[i]; 451 452 error = netmap_init_obj_allocator_bitmap(p); 453 if (error) 454 return error; 455 } 456 457 /* 458 * buffers 0 and 1 are reserved 459 */ 460 if (nmd->pools[NETMAP_BUF_POOL].objfree < 2) { 461 nm_prerr("%s: not enough buffers", nmd->pools[NETMAP_BUF_POOL].name); 462 return ENOMEM; 463 } 464 465 nmd->pools[NETMAP_BUF_POOL].objfree -= 2; 466 if (nmd->pools[NETMAP_BUF_POOL].bitmap) { 467 /* XXX This check is a workaround that prevents a 468 * NULL pointer crash which currently happens only 469 * with ptnetmap guests. 470 * Removed shared-info --> is the bug still there? */ 471 nmd->pools[NETMAP_BUF_POOL].bitmap[0] = ~3U; 472 } 473 return 0; 474 } 475 476 int 477 netmap_mem_deref(struct netmap_mem_d *nmd, struct netmap_adapter *na) 478 { 479 int last_user = 0; 480 NMA_LOCK(nmd); 481 if (na->active_fds <= 0 && !(nmd->flags & NETMAP_MEM_NOMAP)) 482 netmap_mem_unmap(&nmd->pools[NETMAP_BUF_POOL], na); 483 if (nmd->active == 1) { 484 last_user = 1; 485 /* 486 * Reset the allocator when it falls out of use so that any 487 * pool resources leaked by unclean application exits are 488 * reclaimed. 489 */ 490 netmap_mem_init_bitmaps(nmd); 491 } 492 nmd->ops->nmd_deref(nmd, na); 493 494 nmd->active--; 495 if (last_user) { 496 nmd->lasterr = 0; 497 } 498 499 NMA_UNLOCK(nmd); 500 return last_user; 501 } 502 503 504 /* accessor functions */ 505 static int 506 netmap_mem2_get_lut(struct netmap_mem_d *nmd, struct netmap_lut *lut) 507 { 508 lut->lut = nmd->pools[NETMAP_BUF_POOL].lut; 509 #ifdef __FreeBSD__ 510 lut->plut = lut->lut; 511 #endif 512 lut->objtotal = nmd->pools[NETMAP_BUF_POOL].objtotal; 513 lut->objsize = nmd->pools[NETMAP_BUF_POOL]._objsize; 514 515 return 0; 516 } 517 518 static struct netmap_obj_params netmap_min_priv_params[NETMAP_POOLS_NR] = { 519 [NETMAP_IF_POOL] = { 520 .size = 1024, 521 .num = 2, 522 }, 523 [NETMAP_RING_POOL] = { 524 .size = 5*PAGE_SIZE, 525 .num = 4, 526 }, 527 [NETMAP_BUF_POOL] = { 528 .size = 2048, 529 .num = 4098, 530 }, 531 }; 532 533 534 /* 535 * nm_mem is the memory allocator used for all physical interfaces 536 * running in netmap mode. 537 * Virtual (VALE) ports will have each its own allocator. 538 */ 539 extern const struct netmap_mem_ops netmap_mem_global_ops; /* forward */ 540 struct netmap_mem_d nm_mem = { /* Our memory allocator. */ 541 .pools = { 542 [NETMAP_IF_POOL] = { 543 .name = "netmap_if", 544 .objminsize = sizeof(struct netmap_if), 545 .objmaxsize = 4096, 546 .nummin = 10, /* don't be stingy */ 547 .nummax = 10000, /* XXX very large */ 548 }, 549 [NETMAP_RING_POOL] = { 550 .name = "netmap_ring", 551 .objminsize = sizeof(struct netmap_ring), 552 .objmaxsize = 32*PAGE_SIZE, 553 .nummin = 2, 554 .nummax = 1024, 555 }, 556 [NETMAP_BUF_POOL] = { 557 .name = "netmap_buf", 558 .objminsize = 64, 559 .objmaxsize = 65536, 560 .nummin = 4, 561 .nummax = 1000000, /* one million! */ 562 }, 563 }, 564 565 .params = { 566 [NETMAP_IF_POOL] = { 567 .size = 1024, 568 .num = 100, 569 }, 570 [NETMAP_RING_POOL] = { 571 .size = 9*PAGE_SIZE, 572 .num = 200, 573 }, 574 [NETMAP_BUF_POOL] = { 575 .size = 2048, 576 .num = NETMAP_BUF_MAX_NUM, 577 }, 578 }, 579 580 .nm_id = 1, 581 .nm_grp = -1, 582 .nm_numa_domain = -1, 583 584 .prev = &nm_mem, 585 .next = &nm_mem, 586 587 .ops = &netmap_mem_global_ops, 588 589 .name = "1" 590 }; 591 592 static struct netmap_mem_d nm_mem_blueprint; 593 594 /* blueprint for the private memory allocators */ 595 /* XXX clang is not happy about using name as a print format */ 596 static const struct netmap_mem_d nm_blueprint = { 597 .pools = { 598 [NETMAP_IF_POOL] = { 599 .name = "%s_if", 600 .objminsize = sizeof(struct netmap_if), 601 .objmaxsize = 4096, 602 .nummin = 1, 603 .nummax = 100, 604 }, 605 [NETMAP_RING_POOL] = { 606 .name = "%s_ring", 607 .objminsize = sizeof(struct netmap_ring), 608 .objmaxsize = 32*PAGE_SIZE, 609 .nummin = 2, 610 .nummax = 1024, 611 }, 612 [NETMAP_BUF_POOL] = { 613 .name = "%s_buf", 614 .objminsize = 64, 615 .objmaxsize = 65536, 616 .nummin = 4, 617 .nummax = 1000000, /* one million! */ 618 }, 619 }, 620 621 .nm_grp = -1, 622 .nm_numa_domain = -1, 623 624 .flags = NETMAP_MEM_PRIVATE, 625 626 .ops = &netmap_mem_global_ops, 627 }; 628 629 /* memory allocator related sysctls */ 630 631 #define STRINGIFY(x) #x 632 633 #define DECLARE_SYSCTLS(id, name) \ 634 SYSBEGIN(mem2_ ## name); \ 635 SYSCTL_INT(_dev_netmap, OID_AUTO, name##_size, \ 636 CTLFLAG_RWTUN, &nm_mem.params[id].size, 0, \ 637 "Requested size of netmap " STRINGIFY(name) "s"); \ 638 SYSCTL_INT(_dev_netmap, OID_AUTO, name##_curr_size, \ 639 CTLFLAG_RD, &nm_mem.pools[id]._objsize, 0, \ 640 "Current size of netmap " STRINGIFY(name) "s"); \ 641 SYSCTL_INT(_dev_netmap, OID_AUTO, name##_num, \ 642 CTLFLAG_RWTUN, &nm_mem.params[id].num, 0, \ 643 "Requested number of netmap " STRINGIFY(name) "s"); \ 644 SYSCTL_INT(_dev_netmap, OID_AUTO, name##_curr_num, \ 645 CTLFLAG_RD, &nm_mem.pools[id].objtotal, 0, \ 646 "Current number of netmap " STRINGIFY(name) "s"); \ 647 SYSCTL_INT(_dev_netmap, OID_AUTO, priv_##name##_size, \ 648 CTLFLAG_RWTUN, &netmap_min_priv_params[id].size, 0, \ 649 "Default size of private netmap " STRINGIFY(name) "s"); \ 650 SYSCTL_INT(_dev_netmap, OID_AUTO, priv_##name##_num, \ 651 CTLFLAG_RWTUN, &netmap_min_priv_params[id].num, 0, \ 652 "Default number of private netmap " STRINGIFY(name) "s"); \ 653 SYSEND 654 655 SYSCTL_DECL(_dev_netmap); 656 DECLARE_SYSCTLS(NETMAP_IF_POOL, if); 657 DECLARE_SYSCTLS(NETMAP_RING_POOL, ring); 658 DECLARE_SYSCTLS(NETMAP_BUF_POOL, buf); 659 660 int netmap_port_numa_affinity = 0; 661 SYSCTL_INT(_dev_netmap, OID_AUTO, port_numa_affinity, 662 CTLFLAG_RDTUN, &netmap_port_numa_affinity, 0, 663 "Use NUMA-local memory for memory pools when possible"); 664 665 /* call with nm_mem_list_lock held */ 666 static int 667 nm_mem_assign_id_locked(struct netmap_mem_d *nmd, int grp_id, int domain) 668 { 669 nm_memid_t id; 670 struct netmap_mem_d *scan = netmap_last_mem_d; 671 int error = ENOMEM; 672 673 do { 674 /* we rely on unsigned wrap around */ 675 id = scan->nm_id + 1; 676 if (id == 0) /* reserve 0 as error value */ 677 id = 1; 678 scan = scan->next; 679 if (id != scan->nm_id) { 680 nmd->nm_id = id; 681 nmd->nm_grp = grp_id; 682 nmd->nm_numa_domain = domain; 683 nmd->prev = scan->prev; 684 nmd->next = scan; 685 scan->prev->next = nmd; 686 scan->prev = nmd; 687 netmap_last_mem_d = nmd; 688 nmd->refcount = 1; 689 NM_DBG_REFC(nmd, __FUNCTION__, __LINE__); 690 error = 0; 691 break; 692 } 693 } while (scan != netmap_last_mem_d); 694 695 return error; 696 } 697 698 /* call with nm_mem_list_lock *not* held */ 699 static int 700 nm_mem_assign_id(struct netmap_mem_d *nmd, int grp_id) 701 { 702 int ret; 703 704 NM_MTX_LOCK(nm_mem_list_lock); 705 ret = nm_mem_assign_id_locked(nmd, grp_id, -1); 706 NM_MTX_UNLOCK(nm_mem_list_lock); 707 708 return ret; 709 } 710 711 /* call with nm_mem_list_lock held */ 712 static void 713 nm_mem_release_id(struct netmap_mem_d *nmd) 714 { 715 nmd->prev->next = nmd->next; 716 nmd->next->prev = nmd->prev; 717 718 if (netmap_last_mem_d == nmd) 719 netmap_last_mem_d = nmd->prev; 720 721 nmd->prev = nmd->next = NULL; 722 } 723 724 struct netmap_mem_d * 725 netmap_mem_find(nm_memid_t id) 726 { 727 struct netmap_mem_d *nmd; 728 729 NM_MTX_LOCK(nm_mem_list_lock); 730 nmd = netmap_last_mem_d; 731 do { 732 if (!(nmd->flags & NETMAP_MEM_HIDDEN) && nmd->nm_id == id) { 733 nmd->refcount++; 734 NM_DBG_REFC(nmd, __FUNCTION__, __LINE__); 735 NM_MTX_UNLOCK(nm_mem_list_lock); 736 return nmd; 737 } 738 nmd = nmd->next; 739 } while (nmd != netmap_last_mem_d); 740 NM_MTX_UNLOCK(nm_mem_list_lock); 741 return NULL; 742 } 743 744 static int 745 nm_mem_check_group(struct netmap_mem_d *nmd, void *dev) 746 { 747 int err = 0, id; 748 749 /* Skip not hw adapters. 750 * Vale port can use particular allocator through vale-ctl -m option 751 */ 752 if (!dev) 753 return 0; 754 id = nm_iommu_group_id(dev); 755 if (netmap_debug & NM_DEBUG_MEM) 756 nm_prinf("iommu_group %d", id); 757 758 NMA_LOCK(nmd); 759 760 if (nmd->nm_grp != id) { 761 if (netmap_verbose) 762 nm_prerr("iommu group mismatch: %d vs %d", 763 nmd->nm_grp, id); 764 nmd->lasterr = err = ENOMEM; 765 } 766 767 NMA_UNLOCK(nmd); 768 return err; 769 } 770 771 static struct lut_entry * 772 nm_alloc_lut(u_int nobj) 773 { 774 size_t n = sizeof(struct lut_entry) * nobj; 775 struct lut_entry *lut; 776 #ifdef linux 777 lut = vmalloc(n); 778 #else 779 lut = nm_os_malloc(n); 780 #endif 781 return lut; 782 } 783 784 static void 785 nm_free_lut(struct lut_entry *lut, u_int objtotal) 786 { 787 bzero(lut, sizeof(struct lut_entry) * objtotal); 788 #ifdef linux 789 vfree(lut); 790 #else 791 nm_os_free(lut); 792 #endif 793 } 794 795 #if defined(linux) || defined(_WIN32) 796 static struct plut_entry * 797 nm_alloc_plut(u_int nobj) 798 { 799 size_t n = sizeof(struct plut_entry) * nobj; 800 struct plut_entry *lut; 801 lut = vmalloc(n); 802 return lut; 803 } 804 805 static void 806 nm_free_plut(struct plut_entry * lut) 807 { 808 vfree(lut); 809 } 810 #endif /* linux or _WIN32 */ 811 812 813 /* 814 * First, find the allocator that contains the requested offset, 815 * then locate the cluster through a lookup table. 816 */ 817 static vm_paddr_t 818 netmap_mem2_ofstophys(struct netmap_mem_d* nmd, vm_ooffset_t offset) 819 { 820 int i; 821 vm_ooffset_t o = offset; 822 vm_paddr_t pa; 823 struct netmap_obj_pool *p; 824 825 p = nmd->pools; 826 827 for (i = 0; i < NETMAP_POOLS_NR; offset -= p[i].memtotal, i++) { 828 if (offset >= p[i].memtotal) 829 continue; 830 // now lookup the cluster's address 831 #ifndef _WIN32 832 pa = vtophys(p[i].lut[offset / p[i]._objsize].vaddr) + 833 offset % p[i]._objsize; 834 #else 835 pa = vtophys(p[i].lut[offset / p[i]._objsize].vaddr); 836 pa.QuadPart += offset % p[i]._objsize; 837 #endif 838 return pa; 839 } 840 /* this is only in case of errors */ 841 nm_prerr("invalid ofs 0x%x out of 0x%zx 0x%zx 0x%zx", (u_int)o, 842 p[NETMAP_IF_POOL].memtotal, 843 p[NETMAP_IF_POOL].memtotal 844 + p[NETMAP_RING_POOL].memtotal, 845 p[NETMAP_IF_POOL].memtotal 846 + p[NETMAP_RING_POOL].memtotal 847 + p[NETMAP_BUF_POOL].memtotal); 848 #ifndef _WIN32 849 return 0; /* bad address */ 850 #else 851 vm_paddr_t res; 852 res.QuadPart = 0; 853 return res; 854 #endif 855 } 856 857 #ifdef _WIN32 858 859 /* 860 * win32_build_virtual_memory_for_userspace 861 * 862 * This function get all the object making part of the pools and maps 863 * a contiguous virtual memory space for the userspace 864 * It works this way 865 * 1 - allocate a Memory Descriptor List wide as the sum 866 * of the memory needed for the pools 867 * 2 - cycle all the objects in every pool and for every object do 868 * 869 * 2a - cycle all the objects in every pool, get the list 870 * of the physical address descriptors 871 * 2b - calculate the offset in the array of pages descriptor in the 872 * main MDL 873 * 2c - copy the descriptors of the object in the main MDL 874 * 875 * 3 - return the resulting MDL that needs to be mapped in userland 876 * 877 * In this way we will have an MDL that describes all the memory for the 878 * objects in a single object 879 */ 880 881 PMDL 882 win32_build_user_vm_map(struct netmap_mem_d* nmd) 883 { 884 u_int memflags, ofs = 0; 885 PMDL mainMdl, tempMdl; 886 uint64_t memsize; 887 int i, j; 888 889 if (netmap_mem_get_info(nmd, &memsize, &memflags, NULL)) { 890 nm_prerr("memory not finalised yet"); 891 return NULL; 892 } 893 894 mainMdl = IoAllocateMdl(NULL, memsize, FALSE, FALSE, NULL); 895 if (mainMdl == NULL) { 896 nm_prerr("failed to allocate mdl"); 897 return NULL; 898 } 899 900 NMA_LOCK(nmd); 901 for (i = 0; i < NETMAP_POOLS_NR; i++) { 902 struct netmap_obj_pool *p = &nmd->pools[i]; 903 int clsz = p->_clustsize; 904 int clobjs = p->_clustentries; /* objects per cluster */ 905 int mdl_len = sizeof(PFN_NUMBER) * BYTES_TO_PAGES(clsz); 906 PPFN_NUMBER pSrc, pDst; 907 908 /* each pool has a different cluster size so we need to reallocate */ 909 tempMdl = IoAllocateMdl(p->lut[0].vaddr, clsz, FALSE, FALSE, NULL); 910 if (tempMdl == NULL) { 911 NMA_UNLOCK(nmd); 912 nm_prerr("fail to allocate tempMdl"); 913 IoFreeMdl(mainMdl); 914 return NULL; 915 } 916 pSrc = MmGetMdlPfnArray(tempMdl); 917 /* create one entry per cluster, the lut[] has one entry per object */ 918 for (j = 0; j < p->numclusters; j++, ofs += clsz) { 919 pDst = &MmGetMdlPfnArray(mainMdl)[BYTES_TO_PAGES(ofs)]; 920 MmInitializeMdl(tempMdl, p->lut[j*clobjs].vaddr, clsz); 921 MmBuildMdlForNonPagedPool(tempMdl); /* compute physical page addresses */ 922 RtlCopyMemory(pDst, pSrc, mdl_len); /* copy the page descriptors */ 923 mainMdl->MdlFlags = tempMdl->MdlFlags; /* XXX what is in here ? */ 924 } 925 IoFreeMdl(tempMdl); 926 } 927 NMA_UNLOCK(nmd); 928 return mainMdl; 929 } 930 931 #endif /* _WIN32 */ 932 933 /* 934 * helper function for OS-specific mmap routines (currently only windows). 935 * Given an nmd and a pool index, returns the cluster size and number of clusters. 936 * Returns 0 if memory is finalised and the pool is valid, otherwise 1. 937 * It should be called under NMA_LOCK(nmd) otherwise the underlying info can change. 938 */ 939 940 int 941 netmap_mem2_get_pool_info(struct netmap_mem_d* nmd, u_int pool, u_int *clustsize, u_int *numclusters) 942 { 943 if (!nmd || !clustsize || !numclusters || pool >= NETMAP_POOLS_NR) 944 return 1; /* invalid arguments */ 945 // NMA_LOCK_ASSERT(nmd); 946 if (!(nmd->flags & NETMAP_MEM_FINALIZED)) { 947 *clustsize = *numclusters = 0; 948 return 1; /* not ready yet */ 949 } 950 *clustsize = nmd->pools[pool]._clustsize; 951 *numclusters = nmd->pools[pool].numclusters; 952 return 0; /* success */ 953 } 954 955 static int 956 netmap_mem2_get_info(struct netmap_mem_d* nmd, uint64_t* size, 957 u_int *memflags, nm_memid_t *id) 958 { 959 int error = 0; 960 error = netmap_mem_config(nmd); 961 if (error) 962 goto out; 963 if (size) { 964 if (nmd->flags & NETMAP_MEM_FINALIZED) { 965 *size = nmd->nm_totalsize; 966 } else { 967 int i; 968 *size = 0; 969 for (i = 0; i < NETMAP_POOLS_NR; i++) { 970 struct netmap_obj_pool *p = nmd->pools + i; 971 *size += ((size_t)p->_numclusters * (size_t)p->_clustsize); 972 } 973 } 974 } 975 if (memflags) 976 *memflags = nmd->flags; 977 if (id) 978 *id = nmd->nm_id; 979 out: 980 return error; 981 } 982 983 /* 984 * we store objects by kernel address, need to find the offset 985 * within the pool to export the value to userspace. 986 * Algorithm: scan until we find the cluster, then add the 987 * actual offset in the cluster 988 */ 989 static ssize_t 990 netmap_obj_offset(struct netmap_obj_pool *p, const void *vaddr) 991 { 992 int i, k = p->_clustentries, n = p->objtotal; 993 ssize_t ofs = 0; 994 995 for (i = 0; i < n; i += k, ofs += p->_clustsize) { 996 const char *base = p->lut[i].vaddr; 997 ssize_t relofs = (const char *) vaddr - base; 998 999 if (relofs < 0 || relofs >= p->_clustsize) 1000 continue; 1001 1002 ofs = ofs + relofs; 1003 nm_prdis("%s: return offset %d (cluster %d) for pointer %p", 1004 p->name, ofs, i, vaddr); 1005 return ofs; 1006 } 1007 nm_prerr("address %p is not contained inside any cluster (%s)", 1008 vaddr, p->name); 1009 return 0; /* An error occurred */ 1010 } 1011 1012 /* Helper functions which convert virtual addresses to offsets */ 1013 #define netmap_if_offset(n, v) \ 1014 netmap_obj_offset(&(n)->pools[NETMAP_IF_POOL], (v)) 1015 1016 #define netmap_ring_offset(n, v) \ 1017 ((n)->pools[NETMAP_IF_POOL].memtotal + \ 1018 netmap_obj_offset(&(n)->pools[NETMAP_RING_POOL], (v))) 1019 1020 static ssize_t 1021 netmap_mem2_if_offset(struct netmap_mem_d *nmd, const void *addr) 1022 { 1023 return netmap_if_offset(nmd, addr); 1024 } 1025 1026 /* 1027 * report the index, and use start position as a hint, 1028 * otherwise buffer allocation becomes terribly expensive. 1029 */ 1030 static void * 1031 netmap_obj_malloc(struct netmap_obj_pool *p, u_int len, uint32_t *start, uint32_t *index) 1032 { 1033 uint32_t i = 0; /* index in the bitmap */ 1034 uint32_t mask, j = 0; /* slot counter */ 1035 void *vaddr = NULL; 1036 1037 if (len > p->_objsize) { 1038 nm_prerr("%s request size %d too large", p->name, len); 1039 return NULL; 1040 } 1041 1042 if (p->objfree == 0) { 1043 nm_prerr("no more %s objects", p->name); 1044 return NULL; 1045 } 1046 if (start) 1047 i = *start; 1048 1049 /* termination is guaranteed by p->free, but better check bounds on i */ 1050 while (vaddr == NULL && i < p->bitmap_slots) { 1051 uint32_t cur = p->bitmap[i]; 1052 if (cur == 0) { /* bitmask is fully used */ 1053 i++; 1054 continue; 1055 } 1056 /* locate a slot */ 1057 for (j = 0, mask = 1; (cur & mask) == 0; j++, mask <<= 1) 1058 ; 1059 1060 p->bitmap[i] &= ~mask; /* mark object as in use */ 1061 p->objfree--; 1062 1063 vaddr = p->lut[i * 32 + j].vaddr; 1064 if (index) 1065 *index = i * 32 + j; 1066 } 1067 nm_prdis("%s allocator: allocated object @ [%d][%d]: vaddr %p",p->name, i, j, vaddr); 1068 1069 if (start) 1070 *start = i; 1071 return vaddr; 1072 } 1073 1074 1075 /* 1076 * free by index, not by address. 1077 * XXX should we also cleanup the content ? 1078 */ 1079 static int 1080 netmap_obj_free(struct netmap_obj_pool *p, uint32_t j) 1081 { 1082 uint32_t *ptr, mask; 1083 1084 if (j >= p->objtotal) { 1085 nm_prerr("invalid index %u, max %u", j, p->objtotal); 1086 return 1; 1087 } 1088 ptr = &p->bitmap[j / 32]; 1089 mask = (1 << (j % 32)); 1090 if (*ptr & mask) { 1091 nm_prerr("ouch, double free on buffer %d", j); 1092 return 1; 1093 } else { 1094 *ptr |= mask; 1095 p->objfree++; 1096 return 0; 1097 } 1098 } 1099 1100 /* 1101 * free by address. This is slow but is only used for a few 1102 * objects (rings, nifp) 1103 */ 1104 static void 1105 netmap_obj_free_va(struct netmap_obj_pool *p, void *vaddr) 1106 { 1107 u_int i, j, n = p->numclusters; 1108 1109 for (i = 0, j = 0; i < n; i++, j += p->_clustentries) { 1110 void *base = p->lut[i * p->_clustentries].vaddr; 1111 ssize_t relofs = (ssize_t) vaddr - (ssize_t) base; 1112 1113 /* Given address, is out of the scope of the current cluster.*/ 1114 if (base == NULL || vaddr < base || relofs >= p->_clustsize) 1115 continue; 1116 1117 j = j + relofs / p->_objsize; 1118 /* KASSERT(j != 0, ("Cannot free object 0")); */ 1119 netmap_obj_free(p, j); 1120 return; 1121 } 1122 nm_prerr("address %p is not contained inside any cluster (%s)", 1123 vaddr, p->name); 1124 } 1125 1126 unsigned 1127 netmap_mem_bufsize(struct netmap_mem_d *nmd) 1128 { 1129 return nmd->pools[NETMAP_BUF_POOL]._objsize; 1130 } 1131 1132 #define netmap_if_malloc(n, len) netmap_obj_malloc(&(n)->pools[NETMAP_IF_POOL], len, NULL, NULL) 1133 #define netmap_if_free(n, v) netmap_obj_free_va(&(n)->pools[NETMAP_IF_POOL], (v)) 1134 #define netmap_ring_malloc(n, len) netmap_obj_malloc(&(n)->pools[NETMAP_RING_POOL], len, NULL, NULL) 1135 #define netmap_ring_free(n, v) netmap_obj_free_va(&(n)->pools[NETMAP_RING_POOL], (v)) 1136 #define netmap_buf_malloc(n, _pos, _index) \ 1137 netmap_obj_malloc(&(n)->pools[NETMAP_BUF_POOL], netmap_mem_bufsize(n), _pos, _index) 1138 1139 1140 #if 0 /* currently unused */ 1141 /* Return the index associated to the given packet buffer */ 1142 #define netmap_buf_index(n, v) \ 1143 (netmap_obj_offset(&(n)->pools[NETMAP_BUF_POOL], (v)) / NETMAP_BDG_BUF_SIZE(n)) 1144 #endif 1145 1146 /* 1147 * allocate extra buffers in a linked list. 1148 * returns the actual number. 1149 */ 1150 uint32_t 1151 netmap_extra_alloc(struct netmap_adapter *na, uint32_t *head, uint32_t n) 1152 { 1153 struct netmap_mem_d *nmd = na->nm_mem; 1154 uint32_t i, pos = 0; /* opaque, scan position in the bitmap */ 1155 1156 NMA_LOCK(nmd); 1157 1158 *head = 0; /* default, 'null' index ie empty list */ 1159 for (i = 0 ; i < n; i++) { 1160 uint32_t cur = *head; /* save current head */ 1161 uint32_t *p = netmap_buf_malloc(nmd, &pos, head); 1162 if (p == NULL) { 1163 nm_prerr("no more buffers after %d of %d", i, n); 1164 *head = cur; /* restore */ 1165 break; 1166 } 1167 nm_prdis(5, "allocate buffer %d -> %d", *head, cur); 1168 *p = cur; /* link to previous head */ 1169 } 1170 1171 NMA_UNLOCK(nmd); 1172 1173 return i; 1174 } 1175 1176 static void 1177 netmap_extra_free(struct netmap_adapter *na, uint32_t head) 1178 { 1179 struct lut_entry *lut = na->na_lut.lut; 1180 struct netmap_mem_d *nmd = na->nm_mem; 1181 struct netmap_obj_pool *p = &nmd->pools[NETMAP_BUF_POOL]; 1182 uint32_t i, cur, *buf; 1183 1184 nm_prdis("freeing the extra list"); 1185 for (i = 0; head >=2 && head < p->objtotal; i++) { 1186 cur = head; 1187 buf = lut[head].vaddr; 1188 head = *buf; 1189 *buf = 0; 1190 if (netmap_obj_free(p, cur)) 1191 break; 1192 } 1193 if (head != 0) 1194 nm_prerr("breaking with head %d", head); 1195 if (netmap_debug & NM_DEBUG_MEM) 1196 nm_prinf("freed %d buffers", i); 1197 } 1198 1199 1200 /* Return nonzero on error */ 1201 static int 1202 netmap_new_bufs(struct netmap_mem_d *nmd, struct netmap_slot *slot, u_int n) 1203 { 1204 struct netmap_obj_pool *p = &nmd->pools[NETMAP_BUF_POOL]; 1205 u_int i = 0; /* slot counter */ 1206 uint32_t pos = 0; /* slot in p->bitmap */ 1207 uint32_t index = 0; /* buffer index */ 1208 1209 for (i = 0; i < n; i++) { 1210 void *vaddr = netmap_buf_malloc(nmd, &pos, &index); 1211 if (vaddr == NULL) { 1212 nm_prerr("no more buffers after %d of %d", i, n); 1213 goto cleanup; 1214 } 1215 slot[i].buf_idx = index; 1216 slot[i].len = p->_objsize; 1217 slot[i].flags = 0; 1218 slot[i].ptr = 0; 1219 } 1220 1221 nm_prdis("%s: allocated %d buffers, %d available, first at %d", p->name, n, p->objfree, pos); 1222 return (0); 1223 1224 cleanup: 1225 while (i > 0) { 1226 i--; 1227 netmap_obj_free(p, slot[i].buf_idx); 1228 } 1229 bzero(slot, n * sizeof(slot[0])); 1230 return (ENOMEM); 1231 } 1232 1233 static void 1234 netmap_mem_set_ring(struct netmap_mem_d *nmd, struct netmap_slot *slot, u_int n, uint32_t index) 1235 { 1236 struct netmap_obj_pool *p = &nmd->pools[NETMAP_BUF_POOL]; 1237 u_int i; 1238 1239 for (i = 0; i < n; i++) { 1240 slot[i].buf_idx = index; 1241 slot[i].len = p->_objsize; 1242 slot[i].flags = 0; 1243 } 1244 } 1245 1246 1247 static void 1248 netmap_free_buf(struct netmap_mem_d *nmd, uint32_t i) 1249 { 1250 struct netmap_obj_pool *p = &nmd->pools[NETMAP_BUF_POOL]; 1251 1252 if (i < 2 || i >= p->objtotal) { 1253 nm_prerr("Cannot free buf#%d: should be in [2, %d[", i, p->objtotal); 1254 return; 1255 } 1256 netmap_obj_free(p, i); 1257 } 1258 1259 1260 static void 1261 netmap_free_bufs(struct netmap_mem_d *nmd, struct netmap_slot *slot, u_int n) 1262 { 1263 u_int i; 1264 1265 for (i = 0; i < n; i++) { 1266 if (slot[i].buf_idx > 1) 1267 netmap_free_buf(nmd, slot[i].buf_idx); 1268 } 1269 nm_prdis("%s: released some buffers, available: %u", 1270 p->name, p->objfree); 1271 } 1272 1273 static void 1274 netmap_reset_obj_allocator(struct netmap_obj_pool *p) 1275 { 1276 1277 if (p == NULL) 1278 return; 1279 if (p->bitmap) 1280 nm_os_free(p->bitmap); 1281 p->bitmap = NULL; 1282 if (p->invalid_bitmap) 1283 nm_os_free(p->invalid_bitmap); 1284 p->invalid_bitmap = NULL; 1285 if (!p->alloc_done) { 1286 /* allocation was done by somebody else. 1287 * Let them clean up after themselves. 1288 */ 1289 return; 1290 } 1291 if (p->lut) { 1292 u_int i; 1293 1294 /* 1295 * Free each cluster allocated in 1296 * netmap_finalize_obj_allocator(). The cluster start 1297 * addresses are stored at multiples of p->_clusterentries 1298 * in the lut. 1299 */ 1300 for (i = 0; i < p->objtotal; i += p->_clustentries) { 1301 free(p->lut[i].vaddr, M_NETMAP); 1302 } 1303 nm_free_lut(p->lut, p->objtotal); 1304 } 1305 p->lut = NULL; 1306 p->objtotal = 0; 1307 p->memtotal = 0; 1308 p->numclusters = 0; 1309 p->objfree = 0; 1310 p->alloc_done = 0; 1311 } 1312 1313 /* 1314 * Free all resources related to an allocator. 1315 */ 1316 static void 1317 netmap_destroy_obj_allocator(struct netmap_obj_pool *p) 1318 { 1319 if (p == NULL) 1320 return; 1321 netmap_reset_obj_allocator(p); 1322 } 1323 1324 /* 1325 * We receive a request for objtotal objects, of size objsize each. 1326 * Internally we may round up both numbers, as we allocate objects 1327 * in small clusters multiple of the page size. 1328 * We need to keep track of objtotal and clustentries, 1329 * as they are needed when freeing memory. 1330 * 1331 * XXX note -- userspace needs the buffers to be contiguous, 1332 * so we cannot afford gaps at the end of a cluster. 1333 */ 1334 1335 1336 /* call with NMA_LOCK held */ 1337 static int 1338 netmap_config_obj_allocator(struct netmap_obj_pool *p, u_int objtotal, u_int objsize) 1339 { 1340 int i; 1341 u_int clustsize; /* the cluster size, multiple of page size */ 1342 u_int clustentries; /* how many objects per entry */ 1343 1344 /* we store the current request, so we can 1345 * detect configuration changes later */ 1346 p->r_objtotal = objtotal; 1347 p->r_objsize = objsize; 1348 1349 #define MAX_CLUSTSIZE (1<<22) // 4 MB 1350 #define LINE_ROUND NM_BUF_ALIGN // 64 1351 if (objsize >= MAX_CLUSTSIZE) { 1352 /* we could do it but there is no point */ 1353 nm_prerr("unsupported allocation for %d bytes", objsize); 1354 return EINVAL; 1355 } 1356 /* make sure objsize is a multiple of LINE_ROUND */ 1357 i = (objsize & (LINE_ROUND - 1)); 1358 if (i) { 1359 nm_prinf("aligning object by %d bytes", LINE_ROUND - i); 1360 objsize += LINE_ROUND - i; 1361 } 1362 if (objsize < p->objminsize || objsize > p->objmaxsize) { 1363 nm_prerr("requested objsize %d out of range [%d, %d]", 1364 objsize, p->objminsize, p->objmaxsize); 1365 return EINVAL; 1366 } 1367 if (objtotal < p->nummin || objtotal > p->nummax) { 1368 nm_prerr("requested objtotal %d out of range [%d, %d]", 1369 objtotal, p->nummin, p->nummax); 1370 return EINVAL; 1371 } 1372 /* 1373 * Compute number of objects using a brute-force approach: 1374 * given a max cluster size, 1375 * we try to fill it with objects keeping track of the 1376 * wasted space to the next page boundary. 1377 */ 1378 for (clustentries = 0, i = 1;; i++) { 1379 u_int delta, used = i * objsize; 1380 if (used > MAX_CLUSTSIZE) 1381 break; 1382 delta = used % PAGE_SIZE; 1383 if (delta == 0) { // exact solution 1384 clustentries = i; 1385 break; 1386 } 1387 } 1388 /* exact solution not found */ 1389 if (clustentries == 0) { 1390 nm_prerr("unsupported allocation for %d bytes", objsize); 1391 return EINVAL; 1392 } 1393 /* compute clustsize */ 1394 clustsize = clustentries * objsize; 1395 if (netmap_debug & NM_DEBUG_MEM) 1396 nm_prinf("objsize %d clustsize %d objects %d", 1397 objsize, clustsize, clustentries); 1398 1399 /* 1400 * The number of clusters is n = ceil(objtotal/clustentries) 1401 * objtotal' = n * clustentries 1402 */ 1403 p->_clustentries = clustentries; 1404 p->_clustsize = clustsize; 1405 p->_numclusters = (objtotal + clustentries - 1) / clustentries; 1406 1407 /* actual values (may be larger than requested) */ 1408 p->_objsize = objsize; 1409 p->_objtotal = p->_numclusters * clustentries; 1410 1411 return 0; 1412 } 1413 1414 /* call with NMA_LOCK held */ 1415 static int 1416 netmap_finalize_obj_allocator(struct netmap_mem_d *nmd, struct netmap_obj_pool *p) 1417 { 1418 int i; /* must be signed */ 1419 1420 if (p->lut) { 1421 /* if the lut is already there we assume that also all the 1422 * clusters have already been allocated, possibly by somebody 1423 * else (e.g., extmem). In the latter case, the alloc_done flag 1424 * will remain at zero, so that we will not attempt to 1425 * deallocate the clusters by ourselves in 1426 * netmap_reset_obj_allocator. 1427 */ 1428 return 0; 1429 } 1430 1431 /* optimistically assume we have enough memory */ 1432 p->numclusters = p->_numclusters; 1433 p->objtotal = p->_objtotal; 1434 p->alloc_done = 1; 1435 1436 p->lut = nm_alloc_lut(p->objtotal); 1437 if (p->lut == NULL) { 1438 nm_prerr("Unable to create lookup table for '%s'", p->name); 1439 goto clean; 1440 } 1441 1442 /* 1443 * Allocate clusters, init pointers 1444 */ 1445 1446 for (i = 0; i < (int)p->objtotal;) { 1447 int lim = i + p->_clustentries; 1448 char *clust; 1449 1450 /* 1451 * XXX Note, we only need contigmalloc() for buffers attached 1452 * to native interfaces. In all other cases (nifp, netmap rings 1453 * and even buffers for VALE ports or emulated interfaces) we 1454 * can live with standard malloc, because the hardware will not 1455 * access the pages directly. 1456 */ 1457 if (nmd->nm_numa_domain == -1) { 1458 clust = contigmalloc(p->_clustsize, M_NETMAP, 1459 M_NOWAIT | M_ZERO, (size_t)0, -1UL, PAGE_SIZE, 0); 1460 } else { 1461 struct domainset *ds; 1462 1463 ds = DOMAINSET_PREF(nmd->nm_numa_domain); 1464 clust = contigmalloc_domainset(p->_clustsize, M_NETMAP, 1465 ds, M_NOWAIT | M_ZERO, (size_t)0, -1UL, PAGE_SIZE, 0); 1466 } 1467 if (clust == NULL) { 1468 /* 1469 * If we get here, there is a severe memory shortage, 1470 * so halve the allocated memory to reclaim some. 1471 */ 1472 nm_prerr("Unable to create cluster at %d for '%s' allocator", 1473 i, p->name); 1474 if (i < 2) /* nothing to halve */ 1475 goto out; 1476 lim = i / 2; 1477 for (i--; i >= lim; i--) { 1478 if (i % p->_clustentries == 0 && p->lut[i].vaddr) 1479 free(p->lut[i].vaddr, M_NETMAP); 1480 p->lut[i].vaddr = NULL; 1481 } 1482 out: 1483 p->objtotal = i; 1484 /* we may have stopped in the middle of a cluster */ 1485 p->numclusters = (i + p->_clustentries - 1) / p->_clustentries; 1486 break; 1487 } 1488 /* 1489 * Set lut state for all buffers in the current cluster. 1490 * 1491 * [i, lim) is the set of buffer indexes that cover the 1492 * current cluster. 1493 * 1494 * 'clust' is really the address of the current buffer in 1495 * the current cluster as we index through it with a stride 1496 * of p->_objsize. 1497 */ 1498 for (; i < lim; i++, clust += p->_objsize) { 1499 p->lut[i].vaddr = clust; 1500 #if !defined(linux) && !defined(_WIN32) 1501 p->lut[i].paddr = vtophys(clust); 1502 #endif 1503 } 1504 } 1505 p->memtotal = (size_t)p->numclusters * (size_t)p->_clustsize; 1506 if (netmap_verbose) 1507 nm_prinf("Pre-allocated %d clusters (%d/%zuKB) for '%s'", 1508 p->numclusters, p->_clustsize >> 10, 1509 p->memtotal >> 10, p->name); 1510 1511 return 0; 1512 1513 clean: 1514 netmap_reset_obj_allocator(p); 1515 return ENOMEM; 1516 } 1517 1518 /* call with lock held */ 1519 static int 1520 netmap_mem_params_changed(struct netmap_obj_params* p) 1521 { 1522 int i, rv = 0; 1523 1524 for (i = 0; i < NETMAP_POOLS_NR; i++) { 1525 if (p[i].last_size != p[i].size || p[i].last_num != p[i].num) { 1526 p[i].last_size = p[i].size; 1527 p[i].last_num = p[i].num; 1528 rv = 1; 1529 } 1530 } 1531 return rv; 1532 } 1533 1534 static void 1535 netmap_mem_reset_all(struct netmap_mem_d *nmd) 1536 { 1537 int i; 1538 1539 if (netmap_debug & NM_DEBUG_MEM) 1540 nm_prinf("resetting %p", nmd); 1541 for (i = 0; i < NETMAP_POOLS_NR; i++) { 1542 netmap_reset_obj_allocator(&nmd->pools[i]); 1543 } 1544 nmd->flags &= ~NETMAP_MEM_FINALIZED; 1545 } 1546 1547 static int 1548 netmap_mem_unmap(struct netmap_obj_pool *p, struct netmap_adapter *na) 1549 { 1550 int i, lim = p->objtotal; 1551 struct netmap_lut *lut; 1552 if (na == NULL || na->pdev == NULL) 1553 return 0; 1554 1555 lut = &na->na_lut; 1556 1557 1558 1559 #if defined(__FreeBSD__) 1560 /* On FreeBSD mapping and unmapping is performed by the txsync 1561 * and rxsync routine, packet by packet. */ 1562 (void)i; 1563 (void)lim; 1564 (void)lut; 1565 #elif defined(_WIN32) 1566 (void)i; 1567 (void)lim; 1568 (void)lut; 1569 nm_prerr("unsupported on Windows"); 1570 #else /* linux */ 1571 nm_prdis("unmapping and freeing plut for %s", na->name); 1572 if (lut->plut == NULL || na->pdev == NULL) 1573 return 0; 1574 for (i = 0; i < lim; i += p->_clustentries) { 1575 if (lut->plut[i].paddr) 1576 netmap_unload_map(na, (bus_dma_tag_t) na->pdev, &lut->plut[i].paddr, p->_clustsize); 1577 } 1578 nm_free_plut(lut->plut); 1579 lut->plut = NULL; 1580 #endif /* linux */ 1581 1582 return 0; 1583 } 1584 1585 static int 1586 netmap_mem_map(struct netmap_obj_pool *p, struct netmap_adapter *na) 1587 { 1588 int error = 0; 1589 int i, lim = p->objtotal; 1590 struct netmap_lut *lut = &na->na_lut; 1591 1592 if (na->pdev == NULL) 1593 return 0; 1594 1595 #if defined(__FreeBSD__) 1596 /* On FreeBSD mapping and unmapping is performed by the txsync 1597 * and rxsync routine, packet by packet. */ 1598 (void)i; 1599 (void)lim; 1600 (void)lut; 1601 #elif defined(_WIN32) 1602 (void)i; 1603 (void)lim; 1604 (void)lut; 1605 nm_prerr("unsupported on Windows"); 1606 #else /* linux */ 1607 1608 if (lut->plut != NULL) { 1609 nm_prdis("plut already allocated for %s", na->name); 1610 return 0; 1611 } 1612 1613 nm_prdis("allocating physical lut for %s", na->name); 1614 lut->plut = nm_alloc_plut(lim); 1615 if (lut->plut == NULL) { 1616 nm_prerr("Failed to allocate physical lut for %s", na->name); 1617 return ENOMEM; 1618 } 1619 1620 for (i = 0; i < lim; i += p->_clustentries) { 1621 lut->plut[i].paddr = 0; 1622 } 1623 1624 for (i = 0; i < lim; i += p->_clustentries) { 1625 int j; 1626 1627 if (p->lut[i].vaddr == NULL) 1628 continue; 1629 1630 error = netmap_load_map(na, (bus_dma_tag_t) na->pdev, &lut->plut[i].paddr, 1631 p->lut[i].vaddr, p->_clustsize); 1632 if (error) { 1633 nm_prerr("Failed to map cluster #%d from the %s pool", i, p->name); 1634 break; 1635 } 1636 1637 for (j = 1; j < p->_clustentries; j++) { 1638 lut->plut[i + j].paddr = lut->plut[i + j - 1].paddr + p->_objsize; 1639 } 1640 } 1641 1642 if (error) 1643 netmap_mem_unmap(p, na); 1644 1645 #endif /* linux */ 1646 1647 return error; 1648 } 1649 1650 static int 1651 netmap_mem_finalize_all(struct netmap_mem_d *nmd) 1652 { 1653 int i; 1654 if (nmd->flags & NETMAP_MEM_FINALIZED) 1655 return 0; 1656 nmd->lasterr = 0; 1657 nmd->nm_totalsize = 0; 1658 for (i = 0; i < NETMAP_POOLS_NR; i++) { 1659 nmd->lasterr = netmap_finalize_obj_allocator(nmd, &nmd->pools[i]); 1660 if (nmd->lasterr) 1661 goto error; 1662 nmd->nm_totalsize += nmd->pools[i].memtotal; 1663 } 1664 nmd->nm_totalsize = (nmd->nm_totalsize + PAGE_SIZE - 1) & ~(PAGE_SIZE - 1); 1665 nmd->lasterr = netmap_mem_init_bitmaps(nmd); 1666 if (nmd->lasterr) 1667 goto error; 1668 1669 nmd->flags |= NETMAP_MEM_FINALIZED; 1670 1671 if (netmap_verbose) 1672 nm_prinf("interfaces %zd KB, rings %zd KB, buffers %zd MB", 1673 nmd->pools[NETMAP_IF_POOL].memtotal >> 10, 1674 nmd->pools[NETMAP_RING_POOL].memtotal >> 10, 1675 nmd->pools[NETMAP_BUF_POOL].memtotal >> 20); 1676 1677 if (netmap_verbose) 1678 nm_prinf("Free buffers: %d", nmd->pools[NETMAP_BUF_POOL].objfree); 1679 1680 1681 return 0; 1682 error: 1683 netmap_mem_reset_all(nmd); 1684 return nmd->lasterr; 1685 } 1686 1687 /* 1688 * allocator for private memory 1689 */ 1690 static void * 1691 _netmap_mem_private_new(size_t size, struct netmap_obj_params *p, int grp_id, 1692 const struct netmap_mem_ops *ops, uint64_t memtotal, int *perr) 1693 { 1694 struct netmap_mem_d *d = NULL; 1695 int i, err = 0; 1696 int checksz = 0; 1697 1698 /* if memtotal is !=0 we check that the request fits the available 1699 * memory. Moreover, any surprlus memory is assigned to buffers. 1700 */ 1701 checksz = (memtotal > 0); 1702 1703 d = nm_os_malloc(size); 1704 if (d == NULL) { 1705 err = ENOMEM; 1706 goto error; 1707 } 1708 1709 *d = nm_blueprint; 1710 d->ops = ops; 1711 1712 err = nm_mem_assign_id(d, grp_id); 1713 if (err) 1714 goto error_free; 1715 snprintf(d->name, NM_MEM_NAMESZ, "%d", d->nm_id); 1716 1717 for (i = 0; i < NETMAP_POOLS_NR; i++) { 1718 snprintf(d->pools[i].name, NETMAP_POOL_MAX_NAMSZ, 1719 nm_blueprint.pools[i].name, 1720 d->name); 1721 if (checksz) { 1722 uint64_t poolsz = (uint64_t)p[i].num * p[i].size; 1723 if (memtotal < poolsz) { 1724 nm_prerr("%s: request too large", d->pools[i].name); 1725 err = ENOMEM; 1726 goto error_rel_id; 1727 } 1728 memtotal -= poolsz; 1729 } 1730 d->params[i].num = p[i].num; 1731 d->params[i].size = p[i].size; 1732 } 1733 if (checksz && memtotal > 0) { 1734 uint64_t sz = d->params[NETMAP_BUF_POOL].size; 1735 uint64_t n = (memtotal + sz - 1) / sz; 1736 1737 if (n) { 1738 if (netmap_verbose) { 1739 nm_prinf("%s: adding %llu more buffers", 1740 d->pools[NETMAP_BUF_POOL].name, 1741 (unsigned long long)n); 1742 } 1743 d->params[NETMAP_BUF_POOL].num += n; 1744 } 1745 } 1746 1747 NMA_LOCK_INIT(d); 1748 1749 err = netmap_mem_config(d); 1750 if (err) 1751 goto error_destroy_lock; 1752 1753 d->flags &= ~NETMAP_MEM_FINALIZED; 1754 1755 return d; 1756 1757 error_destroy_lock: 1758 NMA_LOCK_DESTROY(d); 1759 error_rel_id: 1760 nm_mem_release_id(d); 1761 error_free: 1762 nm_os_free(d); 1763 error: 1764 if (perr) 1765 *perr = err; 1766 return NULL; 1767 } 1768 1769 struct netmap_mem_d * 1770 netmap_mem_private_new(u_int txr, u_int txd, u_int rxr, u_int rxd, 1771 u_int extra_bufs, u_int npipes, int *perr) 1772 { 1773 struct netmap_mem_d *d = NULL; 1774 struct netmap_obj_params p[NETMAP_POOLS_NR]; 1775 int i; 1776 u_int v, maxd; 1777 /* account for the fake host rings */ 1778 txr++; 1779 rxr++; 1780 1781 /* copy the min values */ 1782 for (i = 0; i < NETMAP_POOLS_NR; i++) { 1783 p[i] = netmap_min_priv_params[i]; 1784 } 1785 1786 /* possibly increase them to fit user request */ 1787 v = sizeof(struct netmap_if) + sizeof(ssize_t) * (txr + rxr); 1788 if (p[NETMAP_IF_POOL].size < v) 1789 p[NETMAP_IF_POOL].size = v; 1790 v = 2 + 4 * npipes; 1791 if (p[NETMAP_IF_POOL].num < v) 1792 p[NETMAP_IF_POOL].num = v; 1793 maxd = (txd > rxd) ? txd : rxd; 1794 v = sizeof(struct netmap_ring) + sizeof(struct netmap_slot) * maxd; 1795 if (p[NETMAP_RING_POOL].size < v) 1796 p[NETMAP_RING_POOL].size = v; 1797 /* each pipe endpoint needs two tx rings (1 normal + 1 host, fake) 1798 * and two rx rings (again, 1 normal and 1 fake host) 1799 */ 1800 v = txr + rxr + 8 * npipes; 1801 if (p[NETMAP_RING_POOL].num < v) 1802 p[NETMAP_RING_POOL].num = v; 1803 /* for each pipe we only need the buffers for the 4 "real" rings. 1804 * On the other end, the pipe ring dimension may be different from 1805 * the parent port ring dimension. As a compromise, we allocate twice the 1806 * space actually needed if the pipe rings were the same size as the parent rings 1807 */ 1808 v = (4 * npipes + rxr) * rxd + (4 * npipes + txr) * txd + 2 + extra_bufs; 1809 /* the +2 is for the tx and rx fake buffers (indices 0 and 1) */ 1810 if (p[NETMAP_BUF_POOL].num < v) 1811 p[NETMAP_BUF_POOL].num = v; 1812 1813 if (netmap_verbose) 1814 nm_prinf("req if %d*%d ring %d*%d buf %d*%d", 1815 p[NETMAP_IF_POOL].num, 1816 p[NETMAP_IF_POOL].size, 1817 p[NETMAP_RING_POOL].num, 1818 p[NETMAP_RING_POOL].size, 1819 p[NETMAP_BUF_POOL].num, 1820 p[NETMAP_BUF_POOL].size); 1821 1822 d = _netmap_mem_private_new(sizeof(*d), p, -1, &netmap_mem_global_ops, 0, perr); 1823 1824 return d; 1825 } 1826 1827 /* Reference IOMMU and NUMA local allocator - find existing or create new, 1828 * for non-hw adapters, fall back to global allocator. 1829 */ 1830 struct netmap_mem_d * 1831 netmap_mem_get_allocator(struct netmap_adapter *na) 1832 { 1833 int i, domain, err, grp_id; 1834 struct netmap_mem_d *nmd; 1835 1836 if (na == NULL || na->pdev == NULL) 1837 return netmap_mem_get(&nm_mem); 1838 1839 domain = nm_numa_domain(na->pdev); 1840 grp_id = nm_iommu_group_id(na->pdev); 1841 1842 NM_MTX_LOCK(nm_mem_list_lock); 1843 nmd = netmap_last_mem_d; 1844 do { 1845 if (!(nmd->flags & NETMAP_MEM_HIDDEN) && 1846 nmd->nm_grp == grp_id && nmd->nm_numa_domain == domain) { 1847 nmd->refcount++; 1848 NM_DBG_REFC(nmd, __FUNCTION__, __LINE__); 1849 NM_MTX_UNLOCK(nm_mem_list_lock); 1850 return nmd; 1851 } 1852 nmd = nmd->next; 1853 } while (nmd != netmap_last_mem_d); 1854 1855 nmd = nm_os_malloc(sizeof(*nmd)); 1856 if (nmd == NULL) 1857 goto error; 1858 1859 *nmd = nm_mem_blueprint; 1860 1861 err = nm_mem_assign_id_locked(nmd, grp_id, domain); 1862 if (err) 1863 goto error_free; 1864 1865 snprintf(nmd->name, sizeof(nmd->name), "%d", nmd->nm_id); 1866 1867 for (i = 0; i < NETMAP_POOLS_NR; i++) { 1868 snprintf(nmd->pools[i].name, NETMAP_POOL_MAX_NAMSZ, "%s-%s", 1869 nm_mem_blueprint.pools[i].name, nmd->name); 1870 } 1871 1872 NMA_LOCK_INIT(nmd); 1873 1874 NM_MTX_UNLOCK(nm_mem_list_lock); 1875 return nmd; 1876 1877 error_free: 1878 nm_os_free(nmd); 1879 error: 1880 NM_MTX_UNLOCK(nm_mem_list_lock); 1881 return NULL; 1882 } 1883 1884 /* call with lock held */ 1885 static int 1886 netmap_mem2_config(struct netmap_mem_d *nmd) 1887 { 1888 int i; 1889 1890 if (!netmap_mem_params_changed(nmd->params)) 1891 goto out; 1892 1893 nm_prdis("reconfiguring"); 1894 1895 if (nmd->flags & NETMAP_MEM_FINALIZED) { 1896 /* reset previous allocation */ 1897 for (i = 0; i < NETMAP_POOLS_NR; i++) { 1898 netmap_reset_obj_allocator(&nmd->pools[i]); 1899 } 1900 nmd->flags &= ~NETMAP_MEM_FINALIZED; 1901 } 1902 1903 for (i = 0; i < NETMAP_POOLS_NR; i++) { 1904 nmd->lasterr = netmap_config_obj_allocator(&nmd->pools[i], 1905 nmd->params[i].num, nmd->params[i].size); 1906 if (nmd->lasterr) 1907 goto out; 1908 } 1909 1910 out: 1911 1912 return nmd->lasterr; 1913 } 1914 1915 static int 1916 netmap_mem2_finalize(struct netmap_mem_d *nmd, struct netmap_adapter *na) 1917 { 1918 if (nmd->flags & NETMAP_MEM_FINALIZED) 1919 goto out; 1920 1921 if (netmap_mem_finalize_all(nmd)) 1922 goto out; 1923 1924 nmd->lasterr = 0; 1925 1926 out: 1927 return nmd->lasterr; 1928 } 1929 1930 static void 1931 netmap_mem2_delete(struct netmap_mem_d *nmd) 1932 { 1933 int i; 1934 1935 for (i = 0; i < NETMAP_POOLS_NR; i++) { 1936 netmap_destroy_obj_allocator(&nmd->pools[i]); 1937 } 1938 1939 NMA_LOCK_DESTROY(nmd); 1940 if (nmd != &nm_mem) 1941 nm_os_free(nmd); 1942 } 1943 1944 #ifdef WITH_EXTMEM 1945 /* doubly linekd list of all existing external allocators */ 1946 static struct netmap_mem_ext *netmap_mem_ext_list = NULL; 1947 NM_MTX_T nm_mem_ext_list_lock; 1948 #endif /* WITH_EXTMEM */ 1949 1950 int 1951 netmap_mem_init(void) 1952 { 1953 nm_mem_blueprint = nm_mem; 1954 NM_MTX_INIT(nm_mem_list_lock); 1955 NMA_LOCK_INIT(&nm_mem); 1956 netmap_mem_get(&nm_mem); 1957 #ifdef WITH_EXTMEM 1958 NM_MTX_INIT(nm_mem_ext_list_lock); 1959 #endif /* WITH_EXTMEM */ 1960 return (0); 1961 } 1962 1963 void 1964 netmap_mem_fini(void) 1965 { 1966 netmap_mem_put(&nm_mem); 1967 } 1968 1969 static int 1970 netmap_mem_ring_needed(struct netmap_kring *kring) 1971 { 1972 return kring->ring == NULL && 1973 (kring->users > 0 || 1974 (kring->nr_kflags & NKR_NEEDRING)); 1975 } 1976 1977 static int 1978 netmap_mem_ring_todelete(struct netmap_kring *kring) 1979 { 1980 return kring->ring != NULL && 1981 kring->users == 0 && 1982 !(kring->nr_kflags & NKR_NEEDRING); 1983 } 1984 1985 1986 /* call with NMA_LOCK held * 1987 * 1988 * Allocate netmap rings and buffers for this card 1989 * The rings are contiguous, but have variable size. 1990 * The kring array must follow the layout described 1991 * in netmap_krings_create(). 1992 */ 1993 static int 1994 netmap_mem2_rings_create(struct netmap_mem_d *nmd, struct netmap_adapter *na) 1995 { 1996 enum txrx t; 1997 int error; 1998 1999 for_rx_tx(t) { 2000 u_int i; 2001 2002 for (i = 0; i < netmap_all_rings(na, t); i++) { 2003 struct netmap_kring *kring = NMR(na, t)[i]; 2004 struct netmap_ring *ring = kring->ring; 2005 u_int len, ndesc; 2006 2007 if (!netmap_mem_ring_needed(kring)) { 2008 /* unneeded, or already created by somebody else */ 2009 if (netmap_debug & NM_DEBUG_MEM) 2010 nm_prinf("NOT creating ring %s (ring %p, users %d neekring %d)", 2011 kring->name, ring, kring->users, kring->nr_kflags & NKR_NEEDRING); 2012 continue; 2013 } 2014 if (netmap_debug & NM_DEBUG_MEM) 2015 nm_prinf("creating %s", kring->name); 2016 ndesc = kring->nkr_num_slots; 2017 if (ckd_mul(&len, ndesc, sizeof(struct netmap_slot)) || 2018 ckd_add(&len, len, sizeof(struct netmap_ring))) { 2019 error = EINVAL; 2020 goto cleanup; 2021 } 2022 ring = netmap_ring_malloc(nmd, len); 2023 if (ring == NULL) { 2024 nm_prerr("Cannot allocate %s_ring", nm_txrx2str(t)); 2025 error = ENOMEM; 2026 goto cleanup; 2027 } 2028 nm_prdis("txring at %p", ring); 2029 kring->ring = ring; 2030 *(uint32_t *)(uintptr_t)&ring->num_slots = ndesc; 2031 *(int64_t *)(uintptr_t)&ring->buf_ofs = 2032 (nmd->pools[NETMAP_IF_POOL].memtotal + 2033 nmd->pools[NETMAP_RING_POOL].memtotal) - 2034 netmap_ring_offset(nmd, ring); 2035 2036 /* copy values from kring */ 2037 ring->head = kring->rhead; 2038 ring->cur = kring->rcur; 2039 ring->tail = kring->rtail; 2040 *(uint32_t *)(uintptr_t)&ring->nr_buf_size = 2041 netmap_mem_bufsize(nmd); 2042 nm_prdis("%s h %d c %d t %d", kring->name, 2043 ring->head, ring->cur, ring->tail); 2044 nm_prdis("initializing slots for %s_ring", nm_txrx2str(t)); 2045 if (!(kring->nr_kflags & NKR_FAKERING)) { 2046 /* this is a real ring */ 2047 if (netmap_debug & NM_DEBUG_MEM) 2048 nm_prinf("allocating buffers for %s", kring->name); 2049 if (netmap_new_bufs(nmd, ring->slot, ndesc)) { 2050 nm_prerr( 2051 "Cannot allocate buffers for %s_ring", 2052 nm_txrx2str(t)); 2053 error = ENOMEM; 2054 goto cleanup; 2055 } 2056 } else { 2057 /* this is a fake ring, set all indices to 0 */ 2058 if (netmap_debug & NM_DEBUG_MEM) 2059 nm_prinf("NOT allocating buffers for %s", kring->name); 2060 netmap_mem_set_ring(nmd, ring->slot, ndesc, 0); 2061 } 2062 /* ring info */ 2063 *(uint16_t *)(uintptr_t)&ring->ringid = kring->ring_id; 2064 *(uint16_t *)(uintptr_t)&ring->dir = kring->tx; 2065 } 2066 } 2067 2068 return 0; 2069 2070 cleanup: 2071 /* we cannot actually cleanup here, since we don't own kring->users 2072 * and kring->nr_klags & NKR_NEEDRING. The caller must decrement 2073 * the first or zero-out the second, then call netmap_free_rings() 2074 * to do the cleanup 2075 */ 2076 2077 return error; 2078 } 2079 2080 static void 2081 netmap_mem2_rings_delete(struct netmap_mem_d *nmd, struct netmap_adapter *na) 2082 { 2083 enum txrx t; 2084 2085 for_rx_tx(t) { 2086 u_int i; 2087 for (i = 0; i < netmap_all_rings(na, t); i++) { 2088 struct netmap_kring *kring = NMR(na, t)[i]; 2089 struct netmap_ring *ring = kring->ring; 2090 2091 if (!netmap_mem_ring_todelete(kring)) { 2092 if (netmap_debug & NM_DEBUG_MEM) 2093 nm_prinf("NOT deleting ring %s (ring %p, users %d neekring %d)", 2094 kring->name, ring, kring->users, kring->nr_kflags & NKR_NEEDRING); 2095 continue; 2096 } 2097 if (netmap_debug & NM_DEBUG_MEM) 2098 nm_prinf("deleting ring %s", kring->name); 2099 if (!(kring->nr_kflags & NKR_FAKERING)) { 2100 nm_prdis("freeing bufs for %s", kring->name); 2101 netmap_free_bufs(nmd, ring->slot, kring->nkr_num_slots); 2102 } else { 2103 nm_prdis("NOT freeing bufs for %s", kring->name); 2104 } 2105 netmap_ring_free(nmd, ring); 2106 kring->ring = NULL; 2107 } 2108 } 2109 } 2110 2111 /* call with NMA_LOCK held */ 2112 /* 2113 * Allocate the per-fd structure netmap_if. 2114 * 2115 * We assume that the configuration stored in na 2116 * (number of tx/rx rings and descs) does not change while 2117 * the interface is in netmap mode. 2118 */ 2119 static struct netmap_if * 2120 netmap_mem2_if_new(struct netmap_mem_d *nmd, 2121 struct netmap_adapter *na, struct netmap_priv_d *priv) 2122 { 2123 struct netmap_if *nifp; 2124 ssize_t base; /* handy for relative offsets between rings and nifp */ 2125 u_int i, len, n[NR_TXRX], ntot; 2126 enum txrx t; 2127 2128 ntot = 0; 2129 for_rx_tx(t) { 2130 /* account for the (eventually fake) host rings */ 2131 n[t] = netmap_all_rings(na, t); 2132 ntot += n[t]; 2133 } 2134 /* 2135 * the descriptor is followed inline by an array of offsets 2136 * to the tx and rx rings in the shared memory region. 2137 */ 2138 2139 len = sizeof(struct netmap_if) + (ntot * sizeof(ssize_t)); 2140 nifp = netmap_if_malloc(nmd, len); 2141 if (nifp == NULL) { 2142 return NULL; 2143 } 2144 2145 /* initialize base fields -- override const */ 2146 *(u_int *)(uintptr_t)&nifp->ni_tx_rings = na->num_tx_rings; 2147 *(u_int *)(uintptr_t)&nifp->ni_rx_rings = na->num_rx_rings; 2148 *(u_int *)(uintptr_t)&nifp->ni_host_tx_rings = 2149 (na->num_host_tx_rings ? na->num_host_tx_rings : 1); 2150 *(u_int *)(uintptr_t)&nifp->ni_host_rx_rings = 2151 (na->num_host_rx_rings ? na->num_host_rx_rings : 1); 2152 strlcpy(nifp->ni_name, na->name, sizeof(nifp->ni_name)); 2153 2154 /* 2155 * fill the slots for the rx and tx rings. They contain the offset 2156 * between the ring and nifp, so the information is usable in 2157 * userspace to reach the ring from the nifp. 2158 */ 2159 base = netmap_if_offset(nmd, nifp); 2160 for (i = 0; i < n[NR_TX]; i++) { 2161 /* XXX instead of ofs == 0 maybe use the offset of an error 2162 * ring, like we do for buffers? */ 2163 ssize_t ofs = 0; 2164 2165 if (na->tx_rings[i]->ring != NULL && i >= priv->np_qfirst[NR_TX] 2166 && i < priv->np_qlast[NR_TX]) { 2167 ofs = netmap_ring_offset(nmd, 2168 na->tx_rings[i]->ring) - base; 2169 } 2170 *(ssize_t *)(uintptr_t)&nifp->ring_ofs[i] = ofs; 2171 } 2172 for (i = 0; i < n[NR_RX]; i++) { 2173 /* XXX instead of ofs == 0 maybe use the offset of an error 2174 * ring, like we do for buffers? */ 2175 ssize_t ofs = 0; 2176 2177 if (na->rx_rings[i]->ring != NULL && i >= priv->np_qfirst[NR_RX] 2178 && i < priv->np_qlast[NR_RX]) { 2179 ofs = netmap_ring_offset(nmd, 2180 na->rx_rings[i]->ring) - base; 2181 } 2182 *(ssize_t *)(uintptr_t)&nifp->ring_ofs[i+n[NR_TX]] = ofs; 2183 } 2184 2185 return (nifp); 2186 } 2187 2188 static void 2189 netmap_mem2_if_delete(struct netmap_mem_d *nmd, 2190 struct netmap_adapter *na, struct netmap_if *nifp) 2191 { 2192 if (nifp == NULL) 2193 /* nothing to do */ 2194 return; 2195 if (nifp->ni_bufs_head) 2196 netmap_extra_free(na, nifp->ni_bufs_head); 2197 netmap_if_free(nmd, nifp); 2198 } 2199 2200 static void 2201 netmap_mem2_deref(struct netmap_mem_d *nmd, struct netmap_adapter *na) 2202 { 2203 2204 if (netmap_debug & NM_DEBUG_MEM) 2205 nm_prinf("active = %d", nmd->active); 2206 2207 } 2208 2209 const struct netmap_mem_ops netmap_mem_global_ops = { 2210 .nmd_get_lut = netmap_mem2_get_lut, 2211 .nmd_get_info = netmap_mem2_get_info, 2212 .nmd_ofstophys = netmap_mem2_ofstophys, 2213 .nmd_config = netmap_mem2_config, 2214 .nmd_finalize = netmap_mem2_finalize, 2215 .nmd_deref = netmap_mem2_deref, 2216 .nmd_delete = netmap_mem2_delete, 2217 .nmd_if_offset = netmap_mem2_if_offset, 2218 .nmd_if_new = netmap_mem2_if_new, 2219 .nmd_if_delete = netmap_mem2_if_delete, 2220 .nmd_rings_create = netmap_mem2_rings_create, 2221 .nmd_rings_delete = netmap_mem2_rings_delete 2222 }; 2223 2224 int 2225 netmap_mem_pools_info_get(struct nmreq_pools_info *req, 2226 struct netmap_mem_d *nmd) 2227 { 2228 int ret; 2229 2230 ret = netmap_mem_get_info(nmd, &req->nr_memsize, NULL, 2231 &req->nr_mem_id); 2232 if (ret) { 2233 return ret; 2234 } 2235 2236 NMA_LOCK(nmd); 2237 req->nr_if_pool_offset = 0; 2238 req->nr_if_pool_objtotal = nmd->pools[NETMAP_IF_POOL].objtotal; 2239 req->nr_if_pool_objsize = nmd->pools[NETMAP_IF_POOL]._objsize; 2240 2241 req->nr_ring_pool_offset = nmd->pools[NETMAP_IF_POOL].memtotal; 2242 req->nr_ring_pool_objtotal = nmd->pools[NETMAP_RING_POOL].objtotal; 2243 req->nr_ring_pool_objsize = nmd->pools[NETMAP_RING_POOL]._objsize; 2244 2245 req->nr_buf_pool_offset = nmd->pools[NETMAP_IF_POOL].memtotal + 2246 nmd->pools[NETMAP_RING_POOL].memtotal; 2247 req->nr_buf_pool_objtotal = nmd->pools[NETMAP_BUF_POOL].objtotal; 2248 req->nr_buf_pool_objsize = nmd->pools[NETMAP_BUF_POOL]._objsize; 2249 NMA_UNLOCK(nmd); 2250 2251 return 0; 2252 } 2253 2254 #ifdef WITH_EXTMEM 2255 struct netmap_mem_ext { 2256 struct netmap_mem_d up; 2257 2258 struct nm_os_extmem *os; 2259 struct netmap_mem_ext *next, *prev; 2260 }; 2261 2262 /* call with nm_mem_list_lock held */ 2263 static void 2264 netmap_mem_ext_register(struct netmap_mem_ext *e) 2265 { 2266 NM_MTX_LOCK(nm_mem_ext_list_lock); 2267 if (netmap_mem_ext_list) 2268 netmap_mem_ext_list->prev = e; 2269 e->next = netmap_mem_ext_list; 2270 netmap_mem_ext_list = e; 2271 e->prev = NULL; 2272 NM_MTX_UNLOCK(nm_mem_ext_list_lock); 2273 } 2274 2275 /* call with nm_mem_list_lock held */ 2276 static void 2277 netmap_mem_ext_unregister(struct netmap_mem_ext *e) 2278 { 2279 if (e->prev) 2280 e->prev->next = e->next; 2281 else 2282 netmap_mem_ext_list = e->next; 2283 if (e->next) 2284 e->next->prev = e->prev; 2285 e->prev = e->next = NULL; 2286 } 2287 2288 static struct netmap_mem_ext * 2289 netmap_mem_ext_search(struct nm_os_extmem *os) 2290 { 2291 struct netmap_mem_ext *e; 2292 2293 NM_MTX_LOCK(nm_mem_ext_list_lock); 2294 for (e = netmap_mem_ext_list; e; e = e->next) { 2295 if (nm_os_extmem_isequal(e->os, os)) { 2296 netmap_mem_get(&e->up); 2297 break; 2298 } 2299 } 2300 NM_MTX_UNLOCK(nm_mem_ext_list_lock); 2301 return e; 2302 } 2303 2304 2305 static void 2306 netmap_mem_ext_delete(struct netmap_mem_d *d) 2307 { 2308 int i; 2309 struct netmap_mem_ext *e = 2310 (struct netmap_mem_ext *)d; 2311 2312 netmap_mem_ext_unregister(e); 2313 2314 for (i = 0; i < NETMAP_POOLS_NR; i++) { 2315 struct netmap_obj_pool *p = &d->pools[i]; 2316 2317 if (p->lut) { 2318 nm_free_lut(p->lut, p->objtotal); 2319 p->lut = NULL; 2320 } 2321 } 2322 if (e->os) 2323 nm_os_extmem_delete(e->os); 2324 netmap_mem2_delete(d); 2325 } 2326 2327 static int 2328 netmap_mem_ext_config(struct netmap_mem_d *nmd) 2329 { 2330 return 0; 2331 } 2332 2333 struct netmap_mem_ops netmap_mem_ext_ops = { 2334 .nmd_get_lut = netmap_mem2_get_lut, 2335 .nmd_get_info = netmap_mem2_get_info, 2336 .nmd_ofstophys = netmap_mem2_ofstophys, 2337 .nmd_config = netmap_mem_ext_config, 2338 .nmd_finalize = netmap_mem2_finalize, 2339 .nmd_deref = netmap_mem2_deref, 2340 .nmd_delete = netmap_mem_ext_delete, 2341 .nmd_if_offset = netmap_mem2_if_offset, 2342 .nmd_if_new = netmap_mem2_if_new, 2343 .nmd_if_delete = netmap_mem2_if_delete, 2344 .nmd_rings_create = netmap_mem2_rings_create, 2345 .nmd_rings_delete = netmap_mem2_rings_delete 2346 }; 2347 2348 struct netmap_mem_d * 2349 netmap_mem_ext_create(uint64_t usrptr, struct nmreq_pools_info *pi, int *perror) 2350 { 2351 int error = 0; 2352 int i, j; 2353 struct netmap_mem_ext *nme; 2354 char *clust; 2355 size_t off; 2356 struct nm_os_extmem *os = NULL; 2357 int nr_pages; 2358 2359 // XXX sanity checks 2360 if (pi->nr_if_pool_objtotal == 0) 2361 pi->nr_if_pool_objtotal = netmap_min_priv_params[NETMAP_IF_POOL].num; 2362 if (pi->nr_if_pool_objsize == 0) 2363 pi->nr_if_pool_objsize = netmap_min_priv_params[NETMAP_IF_POOL].size; 2364 if (pi->nr_ring_pool_objtotal == 0) 2365 pi->nr_ring_pool_objtotal = netmap_min_priv_params[NETMAP_RING_POOL].num; 2366 if (pi->nr_ring_pool_objsize == 0) 2367 pi->nr_ring_pool_objsize = netmap_min_priv_params[NETMAP_RING_POOL].size; 2368 if (pi->nr_buf_pool_objtotal == 0) 2369 pi->nr_buf_pool_objtotal = netmap_min_priv_params[NETMAP_BUF_POOL].num; 2370 if (pi->nr_buf_pool_objsize == 0) 2371 pi->nr_buf_pool_objsize = netmap_min_priv_params[NETMAP_BUF_POOL].size; 2372 if (netmap_verbose & NM_DEBUG_MEM) 2373 nm_prinf("if %d %d ring %d %d buf %d %d", 2374 pi->nr_if_pool_objtotal, pi->nr_if_pool_objsize, 2375 pi->nr_ring_pool_objtotal, pi->nr_ring_pool_objsize, 2376 pi->nr_buf_pool_objtotal, pi->nr_buf_pool_objsize); 2377 2378 os = nm_os_extmem_create(usrptr, pi, &error); 2379 if (os == NULL) { 2380 nm_prerr("os extmem creation failed"); 2381 goto out; 2382 } 2383 2384 nme = netmap_mem_ext_search(os); 2385 if (nme) { 2386 nm_os_extmem_delete(os); 2387 return &nme->up; 2388 } 2389 if (netmap_verbose & NM_DEBUG_MEM) 2390 nm_prinf("not found, creating new"); 2391 2392 nme = _netmap_mem_private_new(sizeof(*nme), 2393 2394 (struct netmap_obj_params[]){ 2395 { pi->nr_if_pool_objsize, pi->nr_if_pool_objtotal }, 2396 { pi->nr_ring_pool_objsize, pi->nr_ring_pool_objtotal }, 2397 { pi->nr_buf_pool_objsize, pi->nr_buf_pool_objtotal }}, 2398 -1, 2399 &netmap_mem_ext_ops, 2400 pi->nr_memsize, 2401 &error); 2402 if (nme == NULL) 2403 goto out_unmap; 2404 2405 nr_pages = nm_os_extmem_nr_pages(os); 2406 2407 /* from now on pages will be released by nme destructor; 2408 * we let res = 0 to prevent release in out_unmap below 2409 */ 2410 nme->os = os; 2411 os = NULL; /* pass ownership */ 2412 2413 clust = nm_os_extmem_nextpage(nme->os); 2414 off = 0; 2415 for (i = 0; i < NETMAP_POOLS_NR; i++) { 2416 struct netmap_obj_pool *p = &nme->up.pools[i]; 2417 struct netmap_obj_params *o = &nme->up.params[i]; 2418 2419 p->_objsize = o->size; 2420 p->_clustsize = o->size; 2421 p->_clustentries = 1; 2422 2423 p->lut = nm_alloc_lut(o->num); 2424 if (p->lut == NULL) { 2425 error = ENOMEM; 2426 goto out_delete; 2427 } 2428 2429 p->bitmap_slots = (o->num + sizeof(uint32_t) - 1) / sizeof(uint32_t); 2430 p->invalid_bitmap = nm_os_malloc(sizeof(uint32_t) * p->bitmap_slots); 2431 if (p->invalid_bitmap == NULL) { 2432 error = ENOMEM; 2433 goto out_delete; 2434 } 2435 2436 if (nr_pages == 0) { 2437 p->objtotal = 0; 2438 p->memtotal = 0; 2439 p->objfree = 0; 2440 continue; 2441 } 2442 2443 for (j = 0; j < o->num && nr_pages > 0; j++) { 2444 size_t noff; 2445 2446 p->lut[j].vaddr = clust + off; 2447 #if !defined(linux) && !defined(_WIN32) 2448 p->lut[j].paddr = vtophys(p->lut[j].vaddr); 2449 #endif 2450 nm_prdis("%s %d at %p", p->name, j, p->lut[j].vaddr); 2451 noff = off + p->_objsize; 2452 if (noff < PAGE_SIZE) { 2453 off = noff; 2454 continue; 2455 } 2456 nm_prdis("too big, recomputing offset..."); 2457 while (noff >= PAGE_SIZE) { 2458 char *old_clust = clust; 2459 noff -= PAGE_SIZE; 2460 clust = nm_os_extmem_nextpage(nme->os); 2461 nr_pages--; 2462 nm_prdis("noff %zu page %p nr_pages %d", noff, 2463 page_to_virt(*pages), nr_pages); 2464 if (noff > 0 && !nm_isset(p->invalid_bitmap, j) && 2465 (nr_pages == 0 || 2466 old_clust + PAGE_SIZE != clust)) 2467 { 2468 /* out of space or non contiguous, 2469 * drop this object 2470 * */ 2471 p->invalid_bitmap[ (j>>5) ] |= 1U << (j & 31U); 2472 nm_prdis("non contiguous at off %zu, drop", noff); 2473 } 2474 if (nr_pages == 0) 2475 break; 2476 } 2477 off = noff; 2478 } 2479 p->objtotal = j; 2480 p->numclusters = p->objtotal; 2481 p->memtotal = j * (size_t)p->_objsize; 2482 nm_prdis("%d memtotal %zu", j, p->memtotal); 2483 } 2484 2485 netmap_mem_ext_register(nme); 2486 2487 return &nme->up; 2488 2489 out_delete: 2490 netmap_mem_put(&nme->up); 2491 out_unmap: 2492 if (os) 2493 nm_os_extmem_delete(os); 2494 out: 2495 if (perror) 2496 *perror = error; 2497 return NULL; 2498 2499 } 2500 #endif /* WITH_EXTMEM */ 2501 2502 2503 #ifdef WITH_PTNETMAP 2504 struct mem_pt_if { 2505 struct mem_pt_if *next; 2506 if_t ifp; 2507 unsigned int nifp_offset; 2508 }; 2509 2510 /* Netmap allocator for ptnetmap guests. */ 2511 struct netmap_mem_ptg { 2512 struct netmap_mem_d up; 2513 2514 vm_paddr_t nm_paddr; /* physical address in the guest */ 2515 void *nm_addr; /* virtual address in the guest */ 2516 struct netmap_lut buf_lut; /* lookup table for BUF pool in the guest */ 2517 nm_memid_t host_mem_id; /* allocator identifier in the host */ 2518 struct ptnetmap_memdev *ptn_dev;/* ptnetmap memdev */ 2519 struct mem_pt_if *pt_ifs; /* list of interfaces in passthrough */ 2520 }; 2521 2522 /* Link a passthrough interface to a passthrough netmap allocator. */ 2523 static int 2524 netmap_mem_pt_guest_ifp_add(struct netmap_mem_d *nmd, if_t ifp, 2525 unsigned int nifp_offset) 2526 { 2527 struct netmap_mem_ptg *ptnmd = (struct netmap_mem_ptg *)nmd; 2528 struct mem_pt_if *ptif = nm_os_malloc(sizeof(*ptif)); 2529 2530 if (!ptif) { 2531 return ENOMEM; 2532 } 2533 2534 NMA_LOCK(nmd); 2535 2536 ptif->ifp = ifp; 2537 ptif->nifp_offset = nifp_offset; 2538 2539 if (ptnmd->pt_ifs) { 2540 ptif->next = ptnmd->pt_ifs; 2541 } 2542 ptnmd->pt_ifs = ptif; 2543 2544 NMA_UNLOCK(nmd); 2545 2546 nm_prinf("ifp=%s,nifp_offset=%u", 2547 if_name(ptif->ifp), ptif->nifp_offset); 2548 2549 return 0; 2550 } 2551 2552 /* Called with NMA_LOCK(nmd) held. */ 2553 static struct mem_pt_if * 2554 netmap_mem_pt_guest_ifp_lookup(struct netmap_mem_d *nmd, if_t ifp) 2555 { 2556 struct netmap_mem_ptg *ptnmd = (struct netmap_mem_ptg *)nmd; 2557 struct mem_pt_if *curr; 2558 2559 for (curr = ptnmd->pt_ifs; curr; curr = curr->next) { 2560 if (curr->ifp == ifp) { 2561 return curr; 2562 } 2563 } 2564 2565 return NULL; 2566 } 2567 2568 /* Unlink a passthrough interface from a passthrough netmap allocator. */ 2569 int 2570 netmap_mem_pt_guest_ifp_del(struct netmap_mem_d *nmd, if_t ifp) 2571 { 2572 struct netmap_mem_ptg *ptnmd = (struct netmap_mem_ptg *)nmd; 2573 struct mem_pt_if *prev = NULL; 2574 struct mem_pt_if *curr; 2575 int ret = -1; 2576 2577 NMA_LOCK(nmd); 2578 2579 for (curr = ptnmd->pt_ifs; curr; curr = curr->next) { 2580 if (curr->ifp == ifp) { 2581 if (prev) { 2582 prev->next = curr->next; 2583 } else { 2584 ptnmd->pt_ifs = curr->next; 2585 } 2586 nm_prinf("removed (ifp=%s,nifp_offset=%u)", 2587 if_name(curr->ifp), curr->nifp_offset); 2588 nm_os_free(curr); 2589 ret = 0; 2590 break; 2591 } 2592 prev = curr; 2593 } 2594 2595 NMA_UNLOCK(nmd); 2596 2597 return ret; 2598 } 2599 2600 static int 2601 netmap_mem_pt_guest_get_lut(struct netmap_mem_d *nmd, struct netmap_lut *lut) 2602 { 2603 struct netmap_mem_ptg *ptnmd = (struct netmap_mem_ptg *)nmd; 2604 2605 if (!(nmd->flags & NETMAP_MEM_FINALIZED)) { 2606 return EINVAL; 2607 } 2608 2609 *lut = ptnmd->buf_lut; 2610 return 0; 2611 } 2612 2613 static int 2614 netmap_mem_pt_guest_get_info(struct netmap_mem_d *nmd, uint64_t *size, 2615 u_int *memflags, uint16_t *id) 2616 { 2617 int error = 0; 2618 2619 error = nmd->ops->nmd_config(nmd); 2620 if (error) 2621 goto out; 2622 2623 if (size) 2624 *size = nmd->nm_totalsize; 2625 if (memflags) 2626 *memflags = nmd->flags; 2627 if (id) 2628 *id = nmd->nm_id; 2629 2630 out: 2631 2632 return error; 2633 } 2634 2635 static vm_paddr_t 2636 netmap_mem_pt_guest_ofstophys(struct netmap_mem_d *nmd, vm_ooffset_t off) 2637 { 2638 struct netmap_mem_ptg *ptnmd = (struct netmap_mem_ptg *)nmd; 2639 vm_paddr_t paddr; 2640 /* if the offset is valid, just return csb->base_addr + off */ 2641 paddr = (vm_paddr_t)(ptnmd->nm_paddr + off); 2642 nm_prdis("off %lx padr %lx", off, (unsigned long)paddr); 2643 return paddr; 2644 } 2645 2646 static int 2647 netmap_mem_pt_guest_config(struct netmap_mem_d *nmd) 2648 { 2649 /* nothing to do, we are configured on creation 2650 * and configuration never changes thereafter 2651 */ 2652 return 0; 2653 } 2654 2655 static int 2656 netmap_mem_pt_guest_finalize(struct netmap_mem_d *nmd, struct netmap_adapter *na) 2657 { 2658 struct netmap_mem_ptg *ptnmd = (struct netmap_mem_ptg *)nmd; 2659 uint64_t mem_size; 2660 uint32_t bufsize; 2661 uint32_t nbuffers; 2662 uint32_t poolofs; 2663 vm_paddr_t paddr; 2664 char *vaddr; 2665 int i; 2666 int error = 0; 2667 2668 if (nmd->flags & NETMAP_MEM_FINALIZED) 2669 goto out; 2670 2671 if (ptnmd->ptn_dev == NULL) { 2672 nm_prerr("ptnetmap memdev not attached"); 2673 error = ENOMEM; 2674 goto out; 2675 } 2676 /* Map memory through ptnetmap-memdev BAR. */ 2677 error = nm_os_pt_memdev_iomap(ptnmd->ptn_dev, &ptnmd->nm_paddr, 2678 &ptnmd->nm_addr, &mem_size); 2679 if (error) 2680 goto out; 2681 2682 /* Initialize the lut using the information contained in the 2683 * ptnetmap memory device. */ 2684 bufsize = nm_os_pt_memdev_ioread(ptnmd->ptn_dev, 2685 PTNET_MDEV_IO_BUF_POOL_OBJSZ); 2686 nbuffers = nm_os_pt_memdev_ioread(ptnmd->ptn_dev, 2687 PTNET_MDEV_IO_BUF_POOL_OBJNUM); 2688 2689 /* allocate the lut */ 2690 if (ptnmd->buf_lut.lut == NULL) { 2691 nm_prinf("allocating lut"); 2692 ptnmd->buf_lut.lut = nm_alloc_lut(nbuffers); 2693 if (ptnmd->buf_lut.lut == NULL) { 2694 nm_prerr("lut allocation failed"); 2695 return ENOMEM; 2696 } 2697 } 2698 2699 /* we have physically contiguous memory mapped through PCI BAR */ 2700 poolofs = nm_os_pt_memdev_ioread(ptnmd->ptn_dev, 2701 PTNET_MDEV_IO_BUF_POOL_OFS); 2702 vaddr = (char *)(ptnmd->nm_addr) + poolofs; 2703 paddr = ptnmd->nm_paddr + poolofs; 2704 2705 for (i = 0; i < nbuffers; i++) { 2706 ptnmd->buf_lut.lut[i].vaddr = vaddr; 2707 vaddr += bufsize; 2708 paddr += bufsize; 2709 } 2710 2711 ptnmd->buf_lut.objtotal = nbuffers; 2712 ptnmd->buf_lut.objsize = bufsize; 2713 nmd->nm_totalsize = mem_size; 2714 2715 /* Initialize these fields as are needed by 2716 * netmap_mem_bufsize(). 2717 * XXX please improve this, why do we need this 2718 * replication? maybe we nmd->pools[] should no be 2719 * there for the guest allocator? */ 2720 nmd->pools[NETMAP_BUF_POOL]._objsize = bufsize; 2721 nmd->pools[NETMAP_BUF_POOL]._objtotal = nbuffers; 2722 2723 nmd->flags |= NETMAP_MEM_FINALIZED; 2724 out: 2725 return error; 2726 } 2727 2728 static void 2729 netmap_mem_pt_guest_deref(struct netmap_mem_d *nmd, struct netmap_adapter *na) 2730 { 2731 struct netmap_mem_ptg *ptnmd = (struct netmap_mem_ptg *)nmd; 2732 2733 if (nmd->active == 1 && 2734 (nmd->flags & NETMAP_MEM_FINALIZED)) { 2735 nmd->flags &= ~NETMAP_MEM_FINALIZED; 2736 /* unmap ptnetmap-memdev memory */ 2737 if (ptnmd->ptn_dev) { 2738 nm_os_pt_memdev_iounmap(ptnmd->ptn_dev); 2739 } 2740 ptnmd->nm_addr = NULL; 2741 ptnmd->nm_paddr = 0; 2742 } 2743 } 2744 2745 static ssize_t 2746 netmap_mem_pt_guest_if_offset(struct netmap_mem_d *nmd, const void *vaddr) 2747 { 2748 struct netmap_mem_ptg *ptnmd = (struct netmap_mem_ptg *)nmd; 2749 2750 return (const char *)(vaddr) - (char *)(ptnmd->nm_addr); 2751 } 2752 2753 static void 2754 netmap_mem_pt_guest_delete(struct netmap_mem_d *nmd) 2755 { 2756 if (nmd == NULL) 2757 return; 2758 if (netmap_verbose) 2759 nm_prinf("deleting %p", nmd); 2760 if (nmd->active > 0) 2761 nm_prerr("bug: deleting mem allocator with active=%d!", nmd->active); 2762 if (netmap_verbose) 2763 nm_prinf("done deleting %p", nmd); 2764 NMA_LOCK_DESTROY(nmd); 2765 nm_os_free(nmd); 2766 } 2767 2768 static struct netmap_if * 2769 netmap_mem_pt_guest_if_new(struct netmap_mem_d *nmd, 2770 struct netmap_adapter *na, struct netmap_priv_d *priv) 2771 { 2772 struct netmap_mem_ptg *ptnmd = (struct netmap_mem_ptg *)nmd; 2773 struct mem_pt_if *ptif; 2774 struct netmap_if *nifp = NULL; 2775 2776 ptif = netmap_mem_pt_guest_ifp_lookup(nmd, na->ifp); 2777 if (ptif == NULL) { 2778 nm_prerr("interface %s is not in passthrough", na->name); 2779 goto out; 2780 } 2781 2782 nifp = (struct netmap_if *)((char *)(ptnmd->nm_addr) + 2783 ptif->nifp_offset); 2784 out: 2785 return nifp; 2786 } 2787 2788 static void 2789 netmap_mem_pt_guest_if_delete(struct netmap_mem_d * nmd, 2790 struct netmap_adapter *na, struct netmap_if *nifp) 2791 { 2792 struct mem_pt_if *ptif; 2793 2794 ptif = netmap_mem_pt_guest_ifp_lookup(nmd, na->ifp); 2795 if (ptif == NULL) { 2796 nm_prerr("interface %s is not in passthrough", na->name); 2797 } 2798 } 2799 2800 static int 2801 netmap_mem_pt_guest_rings_create(struct netmap_mem_d *nmd, 2802 struct netmap_adapter *na) 2803 { 2804 struct netmap_mem_ptg *ptnmd = (struct netmap_mem_ptg *)nmd; 2805 struct mem_pt_if *ptif; 2806 struct netmap_if *nifp; 2807 int i, error = -1; 2808 2809 ptif = netmap_mem_pt_guest_ifp_lookup(nmd, na->ifp); 2810 if (ptif == NULL) { 2811 nm_prerr("interface %s is not in passthrough", na->name); 2812 goto out; 2813 } 2814 2815 2816 /* point each kring to the corresponding backend ring */ 2817 nifp = (struct netmap_if *)((char *)ptnmd->nm_addr + ptif->nifp_offset); 2818 for (i = 0; i < netmap_all_rings(na, NR_TX); i++) { 2819 struct netmap_kring *kring = na->tx_rings[i]; 2820 if (kring->ring) 2821 continue; 2822 kring->ring = (struct netmap_ring *) 2823 ((char *)nifp + nifp->ring_ofs[i]); 2824 } 2825 for (i = 0; i < netmap_all_rings(na, NR_RX); i++) { 2826 struct netmap_kring *kring = na->rx_rings[i]; 2827 if (kring->ring) 2828 continue; 2829 kring->ring = (struct netmap_ring *) 2830 ((char *)nifp + 2831 nifp->ring_ofs[netmap_all_rings(na, NR_TX) + i]); 2832 } 2833 2834 error = 0; 2835 out: 2836 return error; 2837 } 2838 2839 static void 2840 netmap_mem_pt_guest_rings_delete(struct netmap_mem_d *nmd, struct netmap_adapter *na) 2841 { 2842 #if 0 2843 enum txrx t; 2844 2845 for_rx_tx(t) { 2846 u_int i; 2847 for (i = 0; i < nma_get_nrings(na, t) + 1; i++) { 2848 struct netmap_kring *kring = &NMR(na, t)[i]; 2849 2850 kring->ring = NULL; 2851 } 2852 } 2853 #endif 2854 (void)nmd; 2855 (void)na; 2856 } 2857 2858 static struct netmap_mem_ops netmap_mem_pt_guest_ops = { 2859 .nmd_get_lut = netmap_mem_pt_guest_get_lut, 2860 .nmd_get_info = netmap_mem_pt_guest_get_info, 2861 .nmd_ofstophys = netmap_mem_pt_guest_ofstophys, 2862 .nmd_config = netmap_mem_pt_guest_config, 2863 .nmd_finalize = netmap_mem_pt_guest_finalize, 2864 .nmd_deref = netmap_mem_pt_guest_deref, 2865 .nmd_if_offset = netmap_mem_pt_guest_if_offset, 2866 .nmd_delete = netmap_mem_pt_guest_delete, 2867 .nmd_if_new = netmap_mem_pt_guest_if_new, 2868 .nmd_if_delete = netmap_mem_pt_guest_if_delete, 2869 .nmd_rings_create = netmap_mem_pt_guest_rings_create, 2870 .nmd_rings_delete = netmap_mem_pt_guest_rings_delete 2871 }; 2872 2873 /* Called with nm_mem_list_lock held. */ 2874 static struct netmap_mem_d * 2875 netmap_mem_pt_guest_find_memid(nm_memid_t mem_id) 2876 { 2877 struct netmap_mem_d *mem = NULL; 2878 struct netmap_mem_d *scan = netmap_last_mem_d; 2879 2880 do { 2881 /* find ptnetmap allocator through host ID */ 2882 if (scan->ops->nmd_deref == netmap_mem_pt_guest_deref && 2883 ((struct netmap_mem_ptg *)(scan))->host_mem_id == mem_id) { 2884 mem = scan; 2885 mem->refcount++; 2886 NM_DBG_REFC(mem, __FUNCTION__, __LINE__); 2887 break; 2888 } 2889 scan = scan->next; 2890 } while (scan != netmap_last_mem_d); 2891 2892 return mem; 2893 } 2894 2895 /* Called with nm_mem_list_lock held. */ 2896 static struct netmap_mem_d * 2897 netmap_mem_pt_guest_create(nm_memid_t mem_id) 2898 { 2899 struct netmap_mem_ptg *ptnmd; 2900 int err = 0; 2901 2902 ptnmd = nm_os_malloc(sizeof(struct netmap_mem_ptg)); 2903 if (ptnmd == NULL) { 2904 err = ENOMEM; 2905 goto error; 2906 } 2907 2908 ptnmd->up.ops = &netmap_mem_pt_guest_ops; 2909 ptnmd->host_mem_id = mem_id; 2910 ptnmd->pt_ifs = NULL; 2911 2912 /* Assign new id in the guest (We have the lock) */ 2913 err = nm_mem_assign_id_locked(&ptnmd->up, -1, -1); 2914 if (err) 2915 goto error; 2916 2917 ptnmd->up.flags &= ~NETMAP_MEM_FINALIZED; 2918 ptnmd->up.flags |= NETMAP_MEM_IO; 2919 2920 NMA_LOCK_INIT(&ptnmd->up); 2921 2922 snprintf(ptnmd->up.name, NM_MEM_NAMESZ, "%d", ptnmd->up.nm_id); 2923 2924 2925 return &ptnmd->up; 2926 error: 2927 netmap_mem_pt_guest_delete(&ptnmd->up); 2928 return NULL; 2929 } 2930 2931 /* 2932 * find host id in guest allocators and create guest allocator 2933 * if it is not there 2934 */ 2935 static struct netmap_mem_d * 2936 netmap_mem_pt_guest_get(nm_memid_t mem_id) 2937 { 2938 struct netmap_mem_d *nmd; 2939 2940 NM_MTX_LOCK(nm_mem_list_lock); 2941 nmd = netmap_mem_pt_guest_find_memid(mem_id); 2942 if (nmd == NULL) { 2943 nmd = netmap_mem_pt_guest_create(mem_id); 2944 } 2945 NM_MTX_UNLOCK(nm_mem_list_lock); 2946 2947 return nmd; 2948 } 2949 2950 /* 2951 * The guest allocator can be created by ptnetmap_memdev (during the device 2952 * attach) or by ptnetmap device (ptnet), during the netmap_attach. 2953 * 2954 * The order is not important (we have different order in LINUX and FreeBSD). 2955 * The first one, creates the device, and the second one simply attaches it. 2956 */ 2957 2958 /* Called when ptnetmap_memdev is attaching, to attach a new allocator in 2959 * the guest */ 2960 struct netmap_mem_d * 2961 netmap_mem_pt_guest_attach(struct ptnetmap_memdev *ptn_dev, nm_memid_t mem_id) 2962 { 2963 struct netmap_mem_d *nmd; 2964 struct netmap_mem_ptg *ptnmd; 2965 2966 nmd = netmap_mem_pt_guest_get(mem_id); 2967 2968 /* assign this device to the guest allocator */ 2969 if (nmd) { 2970 ptnmd = (struct netmap_mem_ptg *)nmd; 2971 ptnmd->ptn_dev = ptn_dev; 2972 } 2973 2974 return nmd; 2975 } 2976 2977 /* Called when ptnet device is attaching */ 2978 struct netmap_mem_d * 2979 netmap_mem_pt_guest_new(if_t ifp, 2980 unsigned int nifp_offset, 2981 unsigned int memid) 2982 { 2983 struct netmap_mem_d *nmd; 2984 2985 if (ifp == NULL) { 2986 return NULL; 2987 } 2988 2989 nmd = netmap_mem_pt_guest_get((nm_memid_t)memid); 2990 2991 if (nmd) { 2992 netmap_mem_pt_guest_ifp_add(nmd, ifp, nifp_offset); 2993 } 2994 2995 return nmd; 2996 } 2997 2998 #endif /* WITH_PTNETMAP */ 2999