1 /*- 2 * SPDX-License-Identifier: BSD-2-Clause 3 * 4 * Copyright (C) 2011-2014 Matteo Landi, Luigi Rizzo 5 * Copyright (C) 2013-2016 Universita` di Pisa 6 * All rights reserved. 7 * 8 * Redistribution and use in source and binary forms, with or without 9 * modification, are permitted provided that the following conditions 10 * are met: 11 * 1. Redistributions of source code must retain the above copyright 12 * notice, this list of conditions and the following disclaimer. 13 * 2. Redistributions in binary form must reproduce the above copyright 14 * notice, this list of conditions and the following disclaimer in the 15 * documentation and/or other materials provided with the distribution. 16 * 17 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND 18 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE 19 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE 20 * ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE 21 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL 22 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS 23 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) 24 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT 25 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY 26 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF 27 * SUCH DAMAGE. 28 */ 29 30 /* 31 * 32 * The header contains the definitions of constants and function 33 * prototypes used only in kernelspace. 34 */ 35 36 #ifndef _NET_NETMAP_KERN_H_ 37 #define _NET_NETMAP_KERN_H_ 38 39 #if defined(linux) 40 41 #if defined(CONFIG_NETMAP_EXTMEM) 42 #define WITH_EXTMEM 43 #endif 44 #if defined(CONFIG_NETMAP_VALE) 45 #define WITH_VALE 46 #endif 47 #if defined(CONFIG_NETMAP_PIPE) 48 #define WITH_PIPES 49 #endif 50 #if defined(CONFIG_NETMAP_MONITOR) 51 #define WITH_MONITOR 52 #endif 53 #if defined(CONFIG_NETMAP_GENERIC) 54 #define WITH_GENERIC 55 #endif 56 #if defined(CONFIG_NETMAP_PTNETMAP) 57 #define WITH_PTNETMAP 58 #endif 59 #if defined(CONFIG_NETMAP_SINK) 60 #define WITH_SINK 61 #endif 62 #if defined(CONFIG_NETMAP_NULL) 63 #define WITH_NMNULL 64 #endif 65 66 #elif defined (_WIN32) 67 #define WITH_VALE // comment out to disable VALE support 68 #define WITH_PIPES 69 #define WITH_MONITOR 70 #define WITH_GENERIC 71 #define WITH_NMNULL 72 73 #else /* neither linux nor windows */ 74 #define WITH_VALE // comment out to disable VALE support 75 #define WITH_PIPES 76 #define WITH_MONITOR 77 #define WITH_GENERIC 78 #define WITH_EXTMEM 79 #define WITH_NMNULL 80 #endif 81 82 #if defined(__FreeBSD__) 83 #include <sys/selinfo.h> 84 #include <vm/vm.h> 85 86 #define likely(x) __builtin_expect((long)!!(x), 1L) 87 #define unlikely(x) __builtin_expect((long)!!(x), 0L) 88 #define __user 89 90 #define NM_LOCK_T struct mtx /* low level spinlock, used to protect queues */ 91 92 #define NM_MTX_T struct sx /* OS-specific mutex (sleepable) */ 93 #define NM_MTX_INIT(m) sx_init(&(m), #m) 94 #define NM_MTX_DESTROY(m) sx_destroy(&(m)) 95 #define NM_MTX_LOCK(m) sx_xlock(&(m)) 96 #define NM_MTX_SPINLOCK(m) while (!sx_try_xlock(&(m))) ; 97 #define NM_MTX_UNLOCK(m) sx_xunlock(&(m)) 98 #define NM_MTX_ASSERT(m) sx_assert(&(m), SA_XLOCKED) 99 100 #define NM_SELINFO_T struct nm_selinfo 101 #define NM_SELRECORD_T struct thread 102 #define MBUF_LEN(m) ((m)->m_pkthdr.len) 103 #define MBUF_TXQ(m) ((m)->m_pkthdr.flowid) 104 #define MBUF_TRANSMIT(na, ifp, m) ((na)->if_transmit(ifp, m)) 105 #define GEN_TX_MBUF_IFP(m) ((m)->m_pkthdr.rcvif) 106 #define GEN_TX_MBUF_NA(m) ((struct netmap_adapter *)(m)->m_ext.ext_arg1) 107 108 #define NM_ATOMIC_T volatile int /* required by atomic/bitops.h */ 109 /* atomic operations */ 110 #include <machine/atomic.h> 111 #define NM_ATOMIC_TEST_AND_SET(p) (!atomic_cmpset_acq_int((p), 0, 1)) 112 #define NM_ATOMIC_CLEAR(p) atomic_store_rel_int((p), 0) 113 114 struct netmap_adapter *netmap_getna(if_t ifp); 115 116 #define MBUF_REFCNT(m) ((m)->m_ext.ext_count) 117 #define SET_MBUF_REFCNT(m, x) (m)->m_ext.ext_count = x 118 119 #define MBUF_QUEUED(m) 1 120 121 struct nm_selinfo { 122 /* Support for select(2) and poll(2). */ 123 struct selinfo si; 124 /* Support for kqueue(9). See comments in netmap_freebsd.c */ 125 struct taskqueue *ntfytq; 126 struct task ntfytask; 127 struct mtx m; 128 char mtxname[32]; 129 int kqueue_users; 130 }; 131 132 133 struct hrtimer { 134 /* Not used in FreeBSD. */ 135 }; 136 137 #define NM_BNS_GET(b) 138 #define NM_BNS_PUT(b) 139 140 #elif defined (linux) 141 142 #define NM_LOCK_T safe_spinlock_t // see bsd_glue.h 143 #define NM_SELINFO_T wait_queue_head_t 144 #define MBUF_LEN(m) ((m)->len) 145 #define MBUF_TRANSMIT(na, ifp, m) \ 146 ({ \ 147 /* Avoid infinite recursion with generic. */ \ 148 m->priority = NM_MAGIC_PRIORITY_TX; \ 149 (((struct net_device_ops *)(na)->if_transmit)->ndo_start_xmit(m, ifp)); \ 150 0; \ 151 }) 152 153 /* See explanation in nm_os_generic_xmit_frame. */ 154 #define GEN_TX_MBUF_IFP(m) ((if_t)skb_shinfo(m)->destructor_arg) 155 156 #define NM_ATOMIC_T volatile long unsigned int 157 158 #define NM_MTX_T struct mutex /* OS-specific sleepable lock */ 159 #define NM_MTX_INIT(m) mutex_init(&(m)) 160 #define NM_MTX_DESTROY(m) do { (void)(m); } while (0) 161 #define NM_MTX_LOCK(m) mutex_lock(&(m)) 162 #define NM_MTX_UNLOCK(m) mutex_unlock(&(m)) 163 #define NM_MTX_ASSERT(m) mutex_is_locked(&(m)) 164 165 #ifndef DEV_NETMAP 166 #define DEV_NETMAP 167 #endif /* DEV_NETMAP */ 168 169 #elif defined (__APPLE__) 170 171 #warning apple support is incomplete. 172 #define likely(x) __builtin_expect(!!(x), 1) 173 #define unlikely(x) __builtin_expect(!!(x), 0) 174 #define NM_LOCK_T IOLock * 175 #define NM_SELINFO_T struct selinfo 176 #define MBUF_LEN(m) ((m)->m_pkthdr.len) 177 178 #elif defined (_WIN32) 179 #include "../../../WINDOWS/win_glue.h" 180 181 #define NM_SELRECORD_T IO_STACK_LOCATION 182 #define NM_SELINFO_T win_SELINFO // see win_glue.h 183 #define NM_LOCK_T win_spinlock_t // see win_glue.h 184 #define NM_MTX_T KGUARDED_MUTEX /* OS-specific mutex (sleepable) */ 185 186 #define NM_MTX_INIT(m) KeInitializeGuardedMutex(&m); 187 #define NM_MTX_DESTROY(m) do { (void)(m); } while (0) 188 #define NM_MTX_LOCK(m) KeAcquireGuardedMutex(&(m)) 189 #define NM_MTX_UNLOCK(m) KeReleaseGuardedMutex(&(m)) 190 #define NM_MTX_ASSERT(m) assert(&m.Count>0) 191 192 //These linknames are for the NDIS driver 193 #define NETMAP_NDIS_LINKNAME_STRING L"\\DosDevices\\NMAPNDIS" 194 #define NETMAP_NDIS_NTDEVICE_STRING L"\\Device\\NMAPNDIS" 195 196 //Definition of internal driver-to-driver ioctl codes 197 #define NETMAP_KERNEL_XCHANGE_POINTERS _IO('i', 180) 198 #define NETMAP_KERNEL_SEND_SHUTDOWN_SIGNAL _IO_direct('i', 195) 199 200 typedef struct hrtimer{ 201 KTIMER timer; 202 BOOLEAN active; 203 KDPC deferred_proc; 204 }; 205 206 /* MSVC does not have likely/unlikely support */ 207 #ifdef _MSC_VER 208 #define likely(x) (x) 209 #define unlikely(x) (x) 210 #else 211 #define likely(x) __builtin_expect((long)!!(x), 1L) 212 #define unlikely(x) __builtin_expect((long)!!(x), 0L) 213 #endif //_MSC_VER 214 215 #else 216 217 #error unsupported platform 218 219 #endif /* end - platform-specific code */ 220 221 #ifndef _WIN32 /* support for emulated sysctl */ 222 #define SYSBEGIN(x) 223 #define SYSEND 224 #endif /* _WIN32 */ 225 226 #define NM_ACCESS_ONCE(x) (*(volatile __typeof__(x) *)&(x)) 227 228 #define NMG_LOCK_T NM_MTX_T 229 #define NMG_LOCK_INIT() NM_MTX_INIT(netmap_global_lock) 230 #define NMG_LOCK_DESTROY() NM_MTX_DESTROY(netmap_global_lock) 231 #define NMG_LOCK() NM_MTX_LOCK(netmap_global_lock) 232 #define NMG_UNLOCK() NM_MTX_UNLOCK(netmap_global_lock) 233 #define NMG_LOCK_ASSERT() NM_MTX_ASSERT(netmap_global_lock) 234 235 #if defined(__FreeBSD__) 236 #define nm_prerr_int printf 237 #define nm_prinf_int printf 238 #elif defined (_WIN32) 239 #define nm_prerr_int DbgPrint 240 #define nm_prinf_int DbgPrint 241 #elif defined(linux) 242 #define nm_prerr_int(fmt, arg...) printk(KERN_ERR fmt, ##arg) 243 #define nm_prinf_int(fmt, arg...) printk(KERN_INFO fmt, ##arg) 244 #endif 245 246 #define nm_prinf(format, ...) \ 247 do { \ 248 struct timeval __xxts; \ 249 microtime(&__xxts); \ 250 nm_prinf_int("%03d.%06d [%4d] %-25s " format "\n",\ 251 (int)__xxts.tv_sec % 1000, (int)__xxts.tv_usec, \ 252 __LINE__, __FUNCTION__, ##__VA_ARGS__); \ 253 } while (0) 254 255 #define nm_prerr(format, ...) \ 256 do { \ 257 struct timeval __xxts; \ 258 microtime(&__xxts); \ 259 nm_prerr_int("%03d.%06d [%4d] %-25s " format "\n",\ 260 (int)__xxts.tv_sec % 1000, (int)__xxts.tv_usec, \ 261 __LINE__, __FUNCTION__, ##__VA_ARGS__); \ 262 } while (0) 263 264 /* Disabled printf (used to be nm_prdis). */ 265 #define nm_prdis(format, ...) 266 267 /* Rate limited, lps indicates how many per second. */ 268 #define nm_prlim(lps, format, ...) \ 269 do { \ 270 static int t0, __cnt; \ 271 if (t0 != time_second) { \ 272 t0 = time_second; \ 273 __cnt = 0; \ 274 } \ 275 if (__cnt++ < lps) \ 276 nm_prinf(format, ##__VA_ARGS__); \ 277 } while (0) 278 279 struct netmap_adapter; 280 struct nm_bdg_fwd; 281 struct nm_bridge; 282 struct netmap_priv_d; 283 struct nm_bdg_args; 284 285 /* os-specific NM_SELINFO_T initialization/destruction functions */ 286 int nm_os_selinfo_init(NM_SELINFO_T *, const char *name); 287 void nm_os_selinfo_uninit(NM_SELINFO_T *); 288 289 const char *nm_dump_buf(char *p, int len, int lim, char *dst); 290 291 void nm_os_selwakeup(NM_SELINFO_T *si); 292 void nm_os_selrecord(NM_SELRECORD_T *sr, NM_SELINFO_T *si); 293 294 int nm_os_ifnet_init(void); 295 void nm_os_ifnet_fini(void); 296 void nm_os_ifnet_lock(void); 297 void nm_os_ifnet_unlock(void); 298 299 unsigned nm_os_ifnet_mtu(if_t ifp); 300 301 void nm_os_get_module(void); 302 void nm_os_put_module(void); 303 304 void netmap_make_zombie(if_t); 305 void netmap_undo_zombie(if_t); 306 307 /* os independent alloc/realloc/free */ 308 void *nm_os_malloc(size_t); 309 void *nm_os_vmalloc(size_t); 310 void *nm_os_realloc(void *, size_t new_size, size_t old_size); 311 void nm_os_free(void *); 312 void nm_os_vfree(void *); 313 314 /* os specific attach/detach enter/exit-netmap-mode routines */ 315 void nm_os_onattach(if_t); 316 void nm_os_ondetach(if_t); 317 void nm_os_onenter(if_t); 318 void nm_os_onexit(if_t); 319 320 /* passes a packet up to the host stack. 321 * If the packet is sent (or dropped) immediately it returns NULL, 322 * otherwise it links the packet to prev and returns m. 323 * In this case, a final call with m=NULL and prev != NULL will send up 324 * the entire chain to the host stack. 325 */ 326 void *nm_os_send_up(if_t, struct mbuf *m, struct mbuf *prev); 327 328 int nm_os_mbuf_has_seg_offld(struct mbuf *m); 329 int nm_os_mbuf_has_csum_offld(struct mbuf *m); 330 331 #include "netmap_mbq.h" 332 333 extern NMG_LOCK_T netmap_global_lock; 334 335 enum txrx { NR_RX = 0, NR_TX = 1, NR_TXRX }; 336 337 static __inline const char* 338 nm_txrx2str(enum txrx t) 339 { 340 return (t== NR_RX ? "RX" : "TX"); 341 } 342 343 static __inline enum txrx 344 nm_txrx_swap(enum txrx t) 345 { 346 return (t== NR_RX ? NR_TX : NR_RX); 347 } 348 349 #define for_rx_tx(t) for ((t) = 0; (t) < NR_TXRX; (t)++) 350 351 #ifdef WITH_MONITOR 352 struct netmap_zmon_list { 353 struct netmap_kring *next; 354 struct netmap_kring *prev; 355 }; 356 #endif /* WITH_MONITOR */ 357 358 /* 359 * private, kernel view of a ring. Keeps track of the status of 360 * a ring across system calls. 361 * 362 * nr_hwcur index of the next buffer to refill. 363 * It corresponds to ring->head 364 * at the time the system call returns. 365 * 366 * nr_hwtail index of the first buffer owned by the kernel. 367 * On RX, hwcur->hwtail are receive buffers 368 * not yet released. hwcur is advanced following 369 * ring->head, hwtail is advanced on incoming packets, 370 * and a wakeup is generated when hwtail passes ring->cur 371 * On TX, hwcur->rcur have been filled by the sender 372 * but not sent yet to the NIC; rcur->hwtail are available 373 * for new transmissions, and hwtail->hwcur-1 are pending 374 * transmissions not yet acknowledged. 375 * 376 * The indexes in the NIC and netmap rings are offset by nkr_hwofs slots. 377 * This is so that, on a reset, buffers owned by userspace are not 378 * modified by the kernel. In particular: 379 * RX rings: the next empty buffer (hwtail + hwofs) coincides with 380 * the next empty buffer as known by the hardware (next_to_check or so). 381 * TX rings: hwcur + hwofs coincides with next_to_send 382 * 383 * The following fields are used to implement lock-free copy of packets 384 * from input to output ports in VALE switch: 385 * nkr_hwlease buffer after the last one being copied. 386 * A writer in nm_bdg_flush reserves N buffers 387 * from nr_hwlease, advances it, then does the 388 * copy outside the lock. 389 * In RX rings (used for VALE ports), 390 * nkr_hwtail <= nkr_hwlease < nkr_hwcur+N-1 391 * In TX rings (used for NIC or host stack ports) 392 * nkr_hwcur <= nkr_hwlease < nkr_hwtail 393 * nkr_leases array of nkr_num_slots where writers can report 394 * completion of their block. NR_NOSLOT (~0) indicates 395 * that the writer has not finished yet 396 * nkr_lease_idx index of next free slot in nr_leases, to be assigned 397 * 398 * The kring is manipulated by txsync/rxsync and generic netmap function. 399 * 400 * Concurrent rxsync or txsync on the same ring are prevented through 401 * by nm_kr_(try)lock() which in turn uses nr_busy. This is all we need 402 * for NIC rings, and for TX rings attached to the host stack. 403 * 404 * RX rings attached to the host stack use an mbq (rx_queue) on both 405 * rxsync_from_host() and netmap_transmit(). The mbq is protected 406 * by its internal lock. 407 * 408 * RX rings attached to the VALE switch are accessed by both senders 409 * and receiver. They are protected through the q_lock on the RX ring. 410 */ 411 struct netmap_kring { 412 struct netmap_ring *ring; 413 414 uint32_t nr_hwcur; /* should be nr_hwhead */ 415 uint32_t nr_hwtail; 416 417 /* 418 * Copies of values in user rings, so we do not need to look 419 * at the ring (which could be modified). These are set in the 420 * *sync_prologue()/finalize() routines. 421 */ 422 uint32_t rhead; 423 uint32_t rcur; 424 uint32_t rtail; 425 426 uint32_t nr_kflags; /* private driver flags */ 427 #define NKR_PENDINTR 0x1 // Pending interrupt. 428 #define NKR_EXCLUSIVE 0x2 /* exclusive binding */ 429 #define NKR_FORWARD 0x4 /* (host ring only) there are 430 packets to forward 431 */ 432 #define NKR_NEEDRING 0x8 /* ring needed even if users==0 433 * (used internally by pipes and 434 * by ptnetmap host ports) 435 */ 436 #define NKR_NOINTR 0x10 /* don't use interrupts on this ring */ 437 #define NKR_FAKERING 0x20 /* don't allocate/free buffers */ 438 439 uint32_t nr_mode; 440 uint32_t nr_pending_mode; 441 #define NKR_NETMAP_OFF 0x0 442 #define NKR_NETMAP_ON 0x1 443 444 uint32_t nkr_num_slots; 445 446 /* 447 * On a NIC reset, the NIC ring indexes may be reset but the 448 * indexes in the netmap rings remain the same. nkr_hwofs 449 * keeps track of the offset between the two. 450 * 451 * Moreover, during reset, we can restore only the subset of 452 * the NIC ring that corresponds to the kernel-owned part of 453 * the netmap ring. The rest of the slots must be restored 454 * by the *sync routines when the user releases more slots. 455 * The nkr_to_refill field keeps track of the number of slots 456 * that still need to be restored. 457 */ 458 int32_t nkr_hwofs; 459 int32_t nkr_to_refill; 460 461 /* last_reclaim is opaque marker to help reduce the frequency 462 * of operations such as reclaiming tx buffers. A possible use 463 * is set it to ticks and do the reclaim only once per tick. 464 */ 465 uint64_t last_reclaim; 466 467 468 NM_SELINFO_T si; /* poll/select wait queue */ 469 NM_LOCK_T q_lock; /* protects kring and ring. */ 470 NM_ATOMIC_T nr_busy; /* prevent concurrent syscalls */ 471 472 /* the adapter the owns this kring */ 473 struct netmap_adapter *na; 474 475 /* the adapter that wants to be notified when this kring has 476 * new slots available. This is usually the same as the above, 477 * but wrappers may let it point to themselves 478 */ 479 struct netmap_adapter *notify_na; 480 481 /* The following fields are for VALE switch support */ 482 struct nm_bdg_fwd *nkr_ft; 483 uint32_t *nkr_leases; 484 #define NR_NOSLOT ((uint32_t)~0) /* used in nkr_*lease* */ 485 uint32_t nkr_hwlease; 486 uint32_t nkr_lease_idx; 487 488 /* while nkr_stopped is set, no new [tr]xsync operations can 489 * be started on this kring. 490 * This is used by netmap_disable_all_rings() 491 * to find a synchronization point where critical data 492 * structures pointed to by the kring can be added or removed 493 */ 494 volatile int nkr_stopped; 495 496 /* Support for adapters without native netmap support. 497 * On tx rings we preallocate an array of tx buffers 498 * (same size as the netmap ring), on rx rings we 499 * store incoming mbufs in a queue that is drained by 500 * a rxsync. 501 */ 502 struct mbuf **tx_pool; 503 struct mbuf *tx_event; /* TX event used as a notification */ 504 NM_LOCK_T tx_event_lock; /* protects the tx_event mbuf */ 505 #ifdef __FreeBSD__ 506 struct callout tx_event_callout; 507 #endif 508 struct mbq rx_queue; /* intercepted rx mbufs. */ 509 510 uint32_t users; /* existing bindings for this ring */ 511 512 uint32_t ring_id; /* kring identifier */ 513 enum txrx tx; /* kind of ring (tx or rx) */ 514 char name[64]; /* diagnostic */ 515 516 /* [tx]sync callback for this kring. 517 * The default nm_kring_create callback (netmap_krings_create) 518 * sets the nm_sync callback of each hardware tx(rx) kring to 519 * the corresponding nm_txsync(nm_rxsync) taken from the 520 * netmap_adapter; moreover, it sets the sync callback 521 * of the host tx(rx) ring to netmap_txsync_to_host 522 * (netmap_rxsync_from_host). 523 * 524 * Overrides: the above configuration is not changed by 525 * any of the nm_krings_create callbacks. 526 */ 527 int (*nm_sync)(struct netmap_kring *kring, int flags); 528 int (*nm_notify)(struct netmap_kring *kring, int flags); 529 530 #ifdef WITH_PIPES 531 struct netmap_kring *pipe; /* if this is a pipe ring, 532 * pointer to the other end 533 */ 534 uint32_t pipe_tail; /* hwtail updated by the other end */ 535 #endif /* WITH_PIPES */ 536 537 /* mask for the offset-related part of the ptr field in the slots */ 538 uint64_t offset_mask; 539 /* maximum user-specified offset, as stipulated at bind time. 540 * Larger offset requests will be silently capped to offset_max. 541 */ 542 uint64_t offset_max; 543 /* minimum gap between two consecutive offsets into the same 544 * buffer, as stipulated at bind time. This is used to choose 545 * the hwbuf_len, but is not otherwise checked for compliance 546 * at runtime. 547 */ 548 uint64_t offset_gap; 549 550 /* size of hardware buffer. This may be less than the size of 551 * the netmap buffers because of non-zero offsets, or because 552 * the netmap buffer size exceeds the capability of the hardware. 553 */ 554 uint64_t hwbuf_len; 555 556 /* required alignment (in bytes) for the buffers used by this ring. 557 * Netmap buffers are aligned to cachelines, which should suffice 558 * for most NICs. If the user is passing offsets, though, we need 559 * to check that the resulting buf address complies with any 560 * alignment restriction. 561 */ 562 uint64_t buf_align; 563 564 /* hardware specific logic for the selection of the hwbuf_len */ 565 int (*nm_bufcfg)(struct netmap_kring *kring, uint64_t target); 566 567 int (*save_notify)(struct netmap_kring *kring, int flags); 568 569 #ifdef WITH_MONITOR 570 /* array of krings that are monitoring this kring */ 571 struct netmap_kring **monitors; 572 uint32_t max_monitors; /* current size of the monitors array */ 573 uint32_t n_monitors; /* next unused entry in the monitor array */ 574 uint32_t mon_pos[NR_TXRX]; /* index of this ring in the monitored ring array */ 575 uint32_t mon_tail; /* last seen slot on rx */ 576 577 /* circular list of zero-copy monitors */ 578 struct netmap_zmon_list zmon_list[NR_TXRX]; 579 580 /* 581 * Monitors work by intercepting the sync and notify callbacks of the 582 * monitored krings. This is implemented by replacing the pointers 583 * above and saving the previous ones in mon_* pointers below 584 */ 585 int (*mon_sync)(struct netmap_kring *kring, int flags); 586 int (*mon_notify)(struct netmap_kring *kring, int flags); 587 588 #endif 589 } 590 #ifdef _WIN32 591 __declspec(align(64)); 592 #else 593 __attribute__((__aligned__(64))); 594 #endif 595 596 /* return 1 iff the kring needs to be turned on */ 597 static inline int 598 nm_kring_pending_on(struct netmap_kring *kring) 599 { 600 return kring->nr_pending_mode == NKR_NETMAP_ON && 601 kring->nr_mode == NKR_NETMAP_OFF; 602 } 603 604 /* return 1 iff the kring needs to be turned off */ 605 static inline int 606 nm_kring_pending_off(struct netmap_kring *kring) 607 { 608 return kring->nr_pending_mode == NKR_NETMAP_OFF && 609 kring->nr_mode == NKR_NETMAP_ON; 610 } 611 612 /* return the next index, with wraparound */ 613 static inline uint32_t 614 nm_next(uint32_t i, uint32_t lim) 615 { 616 return unlikely (i == lim) ? 0 : i + 1; 617 } 618 619 620 /* return the previous index, with wraparound */ 621 static inline uint32_t 622 nm_prev(uint32_t i, uint32_t lim) 623 { 624 return unlikely (i == 0) ? lim : i - 1; 625 } 626 627 628 /* 629 * 630 * Here is the layout for the Rx and Tx rings. 631 632 RxRING TxRING 633 634 +-----------------+ +-----------------+ 635 | | | | 636 | free | | free | 637 +-----------------+ +-----------------+ 638 head->| owned by user |<-hwcur | not sent to nic |<-hwcur 639 | | | yet | 640 +-----------------+ | | 641 cur->| available to | | | 642 | user, not read | +-----------------+ 643 | yet | cur->| (being | 644 | | | prepared) | 645 | | | | 646 +-----------------+ + ------ + 647 tail->| |<-hwtail | |<-hwlease 648 | (being | ... | | ... 649 | prepared) | ... | | ... 650 +-----------------+ ... | | ... 651 | |<-hwlease +-----------------+ 652 | | tail->| |<-hwtail 653 | | | | 654 | | | | 655 | | | | 656 +-----------------+ +-----------------+ 657 658 * The cur/tail (user view) and hwcur/hwtail (kernel view) 659 * are used in the normal operation of the card. 660 * 661 * When a ring is the output of a switch port (Rx ring for 662 * a VALE port, Tx ring for the host stack or NIC), slots 663 * are reserved in blocks through 'hwlease' which points 664 * to the next unused slot. 665 * On an Rx ring, hwlease is always after hwtail, 666 * and completions cause hwtail to advance. 667 * On a Tx ring, hwlease is always between cur and hwtail, 668 * and completions cause cur to advance. 669 * 670 * nm_kr_space() returns the maximum number of slots that 671 * can be assigned. 672 * nm_kr_lease() reserves the required number of buffers, 673 * advances nkr_hwlease and also returns an entry in 674 * a circular array where completions should be reported. 675 */ 676 677 struct lut_entry; 678 #ifdef __FreeBSD__ 679 #define plut_entry lut_entry 680 #endif 681 682 struct netmap_lut { 683 struct lut_entry *lut; 684 struct plut_entry *plut; 685 uint32_t objtotal; /* max buffer index */ 686 uint32_t objsize; /* buffer size */ 687 }; 688 689 struct netmap_vp_adapter; // forward 690 struct nm_bridge; 691 692 /* Struct to be filled by nm_config callbacks. */ 693 struct nm_config_info { 694 unsigned num_tx_rings; 695 unsigned num_rx_rings; 696 unsigned num_tx_descs; 697 unsigned num_rx_descs; 698 unsigned rx_buf_maxsize; 699 }; 700 701 /* 702 * default type for the magic field. 703 * May be overridden in glue code. 704 */ 705 #ifndef NM_OS_MAGIC 706 #define NM_OS_MAGIC uint32_t 707 #endif /* !NM_OS_MAGIC */ 708 709 /* 710 * The "struct netmap_adapter" extends the "struct adapter" 711 * (or equivalent) device descriptor. 712 * It contains all base fields needed to support netmap operation. 713 * There are in fact different types of netmap adapters 714 * (native, generic, VALE switch...) so a netmap_adapter is 715 * just the first field in the derived type. 716 */ 717 struct netmap_adapter { 718 /* 719 * On linux we do not have a good way to tell if an interface 720 * is netmap-capable. So we always use the following trick: 721 * NA(ifp) points here, and the first entry (which hopefully 722 * always exists and is at least 32 bits) contains a magic 723 * value which we can use to detect that the interface is good. 724 */ 725 NM_OS_MAGIC magic; 726 uint32_t na_flags; /* enabled, and other flags */ 727 #define NAF_SKIP_INTR 1 /* use the regular interrupt handler. 728 * useful during initialization 729 */ 730 #define NAF_SW_ONLY 2 /* forward packets only to sw adapter */ 731 #define NAF_BDG_MAYSLEEP 4 /* the bridge is allowed to sleep when 732 * forwarding packets coming from this 733 * interface 734 */ 735 #define NAF_MEM_OWNER 8 /* the adapter uses its own memory area 736 * that cannot be changed 737 */ 738 #define NAF_NATIVE 16 /* the adapter is native. 739 * Virtual ports (non persistent vale ports, 740 * pipes, monitors...) should never use 741 * this flag. 742 */ 743 #define NAF_NETMAP_ON 32 /* netmap is active (either native or 744 * emulated). Where possible (e.g. FreeBSD) 745 * IFCAP_NETMAP also mirrors this flag. 746 */ 747 #define NAF_HOST_RINGS 64 /* the adapter supports the host rings */ 748 #define NAF_FORCE_NATIVE 128 /* the adapter is always NATIVE */ 749 /* free */ 750 #define NAF_MOREFRAG 512 /* the adapter supports NS_MOREFRAG */ 751 #define NAF_OFFSETS 1024 /* the adapter supports the slot offsets */ 752 #define NAF_HOST_ALL 2048 /* the adapter wants as many host rings as hw */ 753 #define NAF_ZOMBIE (1U<<30) /* the nic driver has been unloaded */ 754 #define NAF_BUSY (1U<<31) /* the adapter is used internally and 755 * cannot be registered from userspace 756 */ 757 int active_fds; /* number of user-space descriptors using this 758 interface, which is equal to the number of 759 struct netmap_if objs in the mapped region. */ 760 761 u_int num_rx_rings; /* number of adapter receive rings */ 762 u_int num_tx_rings; /* number of adapter transmit rings */ 763 u_int num_host_rx_rings; /* number of host receive rings */ 764 u_int num_host_tx_rings; /* number of host transmit rings */ 765 766 u_int num_tx_desc; /* number of descriptor in each queue */ 767 u_int num_rx_desc; 768 769 /* tx_rings and rx_rings are private but allocated as a 770 * contiguous chunk of memory. Each array has N+K entries, 771 * N for the hardware rings and K for the host rings. 772 */ 773 struct netmap_kring **tx_rings; /* array of TX rings. */ 774 struct netmap_kring **rx_rings; /* array of RX rings. */ 775 776 void *tailroom; /* space below the rings array */ 777 /* (used for leases) */ 778 779 780 NM_SELINFO_T si[NR_TXRX]; /* global wait queues */ 781 782 /* count users of the global wait queues */ 783 int si_users[NR_TXRX]; 784 785 void *pdev; /* used to store pci device */ 786 787 /* copy of if_qflush and if_transmit pointers, to intercept 788 * packets from the network stack when netmap is active. 789 */ 790 int (*if_transmit)(if_t, struct mbuf *); 791 792 /* copy of if_input for netmap_send_up() */ 793 void (*if_input)(if_t, struct mbuf *); 794 795 /* Back reference to the parent ifnet struct. Used for 796 * hardware ports (emulated netmap included). */ 797 if_t ifp; /* adapter is if_getsoftc(ifp) */ 798 799 /*---- callbacks for this netmap adapter -----*/ 800 /* 801 * nm_dtor() is the cleanup routine called when destroying 802 * the adapter. 803 * Called with NMG_LOCK held. 804 * 805 * nm_register() is called on NIOCREGIF and close() to enter 806 * or exit netmap mode on the NIC 807 * Called with NNG_LOCK held. 808 * 809 * nm_txsync() pushes packets to the underlying hw/switch 810 * 811 * nm_rxsync() collects packets from the underlying hw/switch 812 * 813 * nm_config() returns configuration information from the OS 814 * Called with NMG_LOCK held. 815 * 816 * nm_bufcfg() 817 * the purpose of this callback is to fill the kring->hwbuf_len 818 * (l) and kring->buf_align fields. The l value is most important 819 * for RX rings, where we want to disallow writes outside of the 820 * netmap buffer. The l value must be computed taking into account 821 * the stipulated max_offset (o), possibly increased if there are 822 * alignment constraints, the maxframe (m), if known, and the 823 * current NETMAP_BUF_SIZE (b) of the memory region used by the 824 * adapter. We want the largest supported l such that o + l <= b. 825 * If m is known to be <= b - o, the callback may also choose the 826 * largest l <= m, ignoring the offset. The buf_align field is 827 * most important for TX rings when there are offsets. The user 828 * will see this value in the ring->buf_align field. Misaligned 829 * offsets will cause the corresponding packets to be silently 830 * dropped. 831 * 832 * nm_krings_create() create and init the tx_rings and 833 * rx_rings arrays of kring structures. In particular, 834 * set the nm_sync callbacks for each ring. 835 * There is no need to also allocate the corresponding 836 * netmap_rings, since netmap_mem_rings_create() will always 837 * be called to provide the missing ones. 838 * Called with NNG_LOCK held. 839 * 840 * nm_krings_delete() cleanup and delete the tx_rings and rx_rings 841 * arrays 842 * Called with NMG_LOCK held. 843 * 844 * nm_notify() is used to act after data have become available 845 * (or the stopped state of the ring has changed) 846 * For hw devices this is typically a selwakeup(), 847 * but for NIC/host ports attached to a switch (or vice-versa) 848 * we also need to invoke the 'txsync' code downstream. 849 * This callback pointer is actually used only to initialize 850 * kring->nm_notify. 851 * Return values are the same as for netmap_rx_irq(). 852 */ 853 void (*nm_dtor)(struct netmap_adapter *); 854 855 int (*nm_register)(struct netmap_adapter *, int onoff); 856 void (*nm_intr)(struct netmap_adapter *, int onoff); 857 858 int (*nm_txsync)(struct netmap_kring *kring, int flags); 859 int (*nm_rxsync)(struct netmap_kring *kring, int flags); 860 int (*nm_notify)(struct netmap_kring *kring, int flags); 861 int (*nm_bufcfg)(struct netmap_kring *kring, uint64_t target); 862 #define NAF_FORCE_READ 1 863 #define NAF_FORCE_RECLAIM 2 864 #define NAF_CAN_FORWARD_DOWN 4 865 /* return configuration information */ 866 int (*nm_config)(struct netmap_adapter *, struct nm_config_info *info); 867 int (*nm_krings_create)(struct netmap_adapter *); 868 void (*nm_krings_delete)(struct netmap_adapter *); 869 /* 870 * nm_bdg_attach() initializes the na_vp field to point 871 * to an adapter that can be attached to a VALE switch. If the 872 * current adapter is already a VALE port, na_vp is simply a cast; 873 * otherwise, na_vp points to a netmap_bwrap_adapter. 874 * If applicable, this callback also initializes na_hostvp, 875 * that can be used to connect the adapter host rings to the 876 * switch. 877 * Called with NMG_LOCK held. 878 * 879 * nm_bdg_ctl() is called on the actual attach/detach to/from 880 * to/from the switch, to perform adapter-specific 881 * initializations 882 * Called with NMG_LOCK held. 883 */ 884 int (*nm_bdg_attach)(const char *bdg_name, struct netmap_adapter *, 885 struct nm_bridge *); 886 int (*nm_bdg_ctl)(struct nmreq_header *, struct netmap_adapter *); 887 888 /* adapter used to attach this adapter to a VALE switch (if any) */ 889 struct netmap_vp_adapter *na_vp; 890 /* adapter used to attach the host rings of this adapter 891 * to a VALE switch (if any) */ 892 struct netmap_vp_adapter *na_hostvp; 893 894 /* standard refcount to control the lifetime of the adapter 895 * (it should be equal to the lifetime of the corresponding ifp) 896 */ 897 int na_refcount; 898 899 /* memory allocator (opaque) 900 * We also cache a pointer to the lut_entry for translating 901 * buffer addresses, the total number of buffers and the buffer size. 902 */ 903 struct netmap_mem_d *nm_mem; 904 struct netmap_mem_d *nm_mem_prev; 905 struct netmap_lut na_lut; 906 907 /* additional information attached to this adapter 908 * by other netmap subsystems. Currently used by 909 * bwrap, LINUX/v1000 and ptnetmap 910 */ 911 void *na_private; 912 913 /* array of pipes that have this adapter as a parent */ 914 struct netmap_pipe_adapter **na_pipes; 915 int na_next_pipe; /* next free slot in the array */ 916 int na_max_pipes; /* size of the array */ 917 918 /* Offset of ethernet header for each packet. */ 919 u_int virt_hdr_len; 920 921 /* Max number of bytes that the NIC can store in the buffer 922 * referenced by each RX descriptor. This translates to the maximum 923 * bytes that a single netmap slot can reference. Larger packets 924 * require NS_MOREFRAG support. */ 925 unsigned rx_buf_maxsize; 926 927 char name[NETMAP_REQ_IFNAMSIZ]; /* used at least by pipes */ 928 929 #ifdef WITH_MONITOR 930 unsigned long monitor_id; /* debugging */ 931 #endif 932 }; 933 934 static __inline u_int 935 nma_get_ndesc(struct netmap_adapter *na, enum txrx t) 936 { 937 return (t == NR_TX ? na->num_tx_desc : na->num_rx_desc); 938 } 939 940 static __inline void 941 nma_set_ndesc(struct netmap_adapter *na, enum txrx t, u_int v) 942 { 943 if (t == NR_TX) 944 na->num_tx_desc = v; 945 else 946 na->num_rx_desc = v; 947 } 948 949 static __inline u_int 950 nma_get_nrings(struct netmap_adapter *na, enum txrx t) 951 { 952 return (t == NR_TX ? na->num_tx_rings : na->num_rx_rings); 953 } 954 955 static __inline u_int 956 nma_get_host_nrings(struct netmap_adapter *na, enum txrx t) 957 { 958 return (t == NR_TX ? na->num_host_tx_rings : na->num_host_rx_rings); 959 } 960 961 static __inline void 962 nma_set_nrings(struct netmap_adapter *na, enum txrx t, u_int v) 963 { 964 if (t == NR_TX) 965 na->num_tx_rings = v; 966 else 967 na->num_rx_rings = v; 968 } 969 970 static __inline void 971 nma_set_host_nrings(struct netmap_adapter *na, enum txrx t, u_int v) 972 { 973 if (t == NR_TX) 974 na->num_host_tx_rings = v; 975 else 976 na->num_host_rx_rings = v; 977 } 978 979 static __inline struct netmap_kring** 980 NMR(struct netmap_adapter *na, enum txrx t) 981 { 982 return (t == NR_TX ? na->tx_rings : na->rx_rings); 983 } 984 985 int nma_intr_enable(struct netmap_adapter *na, int onoff); 986 987 /* 988 * If the NIC is owned by the kernel 989 * (i.e., bridge), neither another bridge nor user can use it; 990 * if the NIC is owned by a user, only users can share it. 991 * Evaluation must be done under NMG_LOCK(). 992 */ 993 #define NETMAP_OWNED_BY_KERN(na) ((na)->na_flags & NAF_BUSY) 994 #define NETMAP_OWNED_BY_ANY(na) \ 995 (NETMAP_OWNED_BY_KERN(na) || ((na)->active_fds > 0)) 996 997 /* 998 * derived netmap adapters for various types of ports 999 */ 1000 struct netmap_vp_adapter { /* VALE software port */ 1001 struct netmap_adapter up; 1002 1003 /* 1004 * Bridge support: 1005 * 1006 * bdg_port is the port number used in the bridge; 1007 * na_bdg points to the bridge this NA is attached to. 1008 */ 1009 int bdg_port; 1010 struct nm_bridge *na_bdg; 1011 int retry; 1012 int autodelete; /* remove the ifp on last reference */ 1013 1014 /* Maximum Frame Size, used in bdg_mismatch_datapath() */ 1015 u_int mfs; 1016 /* Last source MAC on this port */ 1017 uint64_t last_smac; 1018 1019 /* Buffer for ifnet driver name */ 1020 char *name; 1021 }; 1022 1023 1024 struct netmap_hw_adapter { /* physical device */ 1025 struct netmap_adapter up; 1026 1027 #ifdef linux 1028 struct net_device_ops nm_ndo; 1029 struct ethtool_ops nm_eto; 1030 #endif 1031 const struct ethtool_ops* save_ethtool; 1032 1033 int (*nm_hw_register)(struct netmap_adapter *, int onoff); 1034 }; 1035 1036 #ifdef WITH_GENERIC 1037 /* Mitigation support. */ 1038 struct nm_generic_mit { 1039 struct hrtimer mit_timer; 1040 int mit_pending; 1041 int mit_ring_idx; /* index of the ring being mitigated */ 1042 struct netmap_adapter *mit_na; /* backpointer */ 1043 }; 1044 1045 struct netmap_generic_adapter { /* emulated device */ 1046 struct netmap_hw_adapter up; 1047 1048 /* Pointer to a previously used netmap adapter. */ 1049 struct netmap_adapter *prev; 1050 1051 /* Emulated netmap adapters support: 1052 * - mit implements rx interrupt mitigation; 1053 */ 1054 struct nm_generic_mit *mit; 1055 #ifdef linux 1056 netdev_tx_t (*save_start_xmit)(struct mbuf *, if_t); 1057 #endif 1058 /* Is the adapter able to use multiple RX slots to scatter 1059 * each packet pushed up by the driver? */ 1060 int rxsg; 1061 1062 /* Is the transmission path controlled by a netmap-aware 1063 * device queue (i.e. qdisc on linux)? */ 1064 int txqdisc; 1065 }; 1066 #endif /* WITH_GENERIC */ 1067 1068 static __inline u_int 1069 netmap_real_rings(struct netmap_adapter *na, enum txrx t) 1070 { 1071 return nma_get_nrings(na, t) + 1072 !!(na->na_flags & NAF_HOST_RINGS) * nma_get_host_nrings(na, t); 1073 } 1074 1075 /* account for fake rings */ 1076 static __inline u_int 1077 netmap_all_rings(struct netmap_adapter *na, enum txrx t) 1078 { 1079 return max(nma_get_nrings(na, t) + 1, netmap_real_rings(na, t)); 1080 } 1081 1082 int netmap_default_bdg_attach(const char *name, struct netmap_adapter *na, 1083 struct nm_bridge *); 1084 struct nm_bdg_polling_state; 1085 /* 1086 * Bridge wrapper for non VALE ports attached to a VALE switch. 1087 * 1088 * The real device must already have its own netmap adapter (hwna). 1089 * The bridge wrapper and the hwna adapter share the same set of 1090 * netmap rings and buffers, but they have two separate sets of 1091 * krings descriptors, with tx/rx meanings swapped: 1092 * 1093 * netmap 1094 * bwrap krings rings krings hwna 1095 * +------+ +------+ +-----+ +------+ +------+ 1096 * |tx_rings->| |\ /| |----| |<-tx_rings| 1097 * | | +------+ \ / +-----+ +------+ | | 1098 * | | X | | 1099 * | | / \ | | 1100 * | | +------+/ \+-----+ +------+ | | 1101 * |rx_rings->| | | |----| |<-rx_rings| 1102 * | | +------+ +-----+ +------+ | | 1103 * +------+ +------+ 1104 * 1105 * - packets coming from the bridge go to the brwap rx rings, 1106 * which are also the hwna tx rings. The bwrap notify callback 1107 * will then complete the hwna tx (see netmap_bwrap_notify). 1108 * 1109 * - packets coming from the outside go to the hwna rx rings, 1110 * which are also the bwrap tx rings. The (overwritten) hwna 1111 * notify method will then complete the bridge tx 1112 * (see netmap_bwrap_intr_notify). 1113 * 1114 * The bridge wrapper may optionally connect the hwna 'host' rings 1115 * to the bridge. This is done by using a second port in the 1116 * bridge and connecting it to the 'host' netmap_vp_adapter 1117 * contained in the netmap_bwrap_adapter. The brwap host adapter 1118 * cross-links the hwna host rings in the same way as shown above. 1119 * 1120 * - packets coming from the bridge and directed to the host stack 1121 * are handled by the bwrap host notify callback 1122 * (see netmap_bwrap_host_notify) 1123 * 1124 * - packets coming from the host stack are still handled by the 1125 * overwritten hwna notify callback (netmap_bwrap_intr_notify), 1126 * but are diverted to the host adapter depending on the ring number. 1127 * 1128 */ 1129 struct netmap_bwrap_adapter { 1130 struct netmap_vp_adapter up; 1131 struct netmap_vp_adapter host; /* for host rings */ 1132 struct netmap_adapter *hwna; /* the underlying device */ 1133 1134 /* 1135 * When we attach a physical interface to the bridge, we 1136 * allow the controlling process to terminate, so we need 1137 * a place to store the n_detmap_priv_d data structure. 1138 * This is only done when physical interfaces 1139 * are attached to a bridge. 1140 */ 1141 struct netmap_priv_d *na_kpriv; 1142 struct nm_bdg_polling_state *na_polling_state; 1143 /* we overwrite the hwna->na_vp pointer, so we save 1144 * here its original value, to be restored at detach 1145 */ 1146 struct netmap_vp_adapter *saved_na_vp; 1147 int (*nm_intr_notify)(struct netmap_kring *kring, int flags); 1148 }; 1149 int nm_is_bwrap(struct netmap_adapter *na); 1150 int nm_bdg_polling(struct nmreq_header *hdr); 1151 1152 int netmap_bdg_attach(struct nmreq_header *hdr, void *auth_token); 1153 int netmap_bdg_detach(struct nmreq_header *hdr, void *auth_token); 1154 #ifdef WITH_VALE 1155 int netmap_vale_list(struct nmreq_header *hdr); 1156 int netmap_vi_create(struct nmreq_header *hdr, int); 1157 int nm_vi_create(struct nmreq_header *); 1158 int nm_vi_destroy(const char *name); 1159 #else /* !WITH_VALE */ 1160 #define netmap_vi_create(hdr, a) (EOPNOTSUPP) 1161 #endif /* WITH_VALE */ 1162 1163 #ifdef WITH_PIPES 1164 1165 #define NM_MAXPIPES 64 /* max number of pipes per adapter */ 1166 1167 struct netmap_pipe_adapter { 1168 /* pipe identifier is up.name */ 1169 struct netmap_adapter up; 1170 1171 #define NM_PIPE_ROLE_MASTER 0x1 1172 #define NM_PIPE_ROLE_SLAVE 0x2 1173 int role; /* either NM_PIPE_ROLE_MASTER or NM_PIPE_ROLE_SLAVE */ 1174 1175 struct netmap_adapter *parent; /* adapter that owns the memory */ 1176 struct netmap_pipe_adapter *peer; /* the other end of the pipe */ 1177 int peer_ref; /* 1 iff we are holding a ref to the peer */ 1178 if_t parent_ifp; /* maybe null */ 1179 1180 u_int parent_slot; /* index in the parent pipe array */ 1181 }; 1182 1183 #endif /* WITH_PIPES */ 1184 1185 #ifdef WITH_NMNULL 1186 struct netmap_null_adapter { 1187 struct netmap_adapter up; 1188 }; 1189 #endif /* WITH_NMNULL */ 1190 1191 1192 /* return slots reserved to rx clients; used in drivers */ 1193 static inline uint32_t 1194 nm_kr_rxspace(struct netmap_kring *k) 1195 { 1196 int space = k->nr_hwtail - k->nr_hwcur; 1197 if (space < 0) 1198 space += k->nkr_num_slots; 1199 nm_prdis("preserving %d rx slots %d -> %d", space, k->nr_hwcur, k->nr_hwtail); 1200 1201 return space; 1202 } 1203 1204 /* return slots reserved to tx clients */ 1205 #define nm_kr_txspace(_k) nm_kr_rxspace(_k) 1206 1207 1208 /* True if no space in the tx ring, only valid after txsync_prologue */ 1209 static inline int 1210 nm_kr_txempty(struct netmap_kring *kring) 1211 { 1212 return kring->rhead == kring->nr_hwtail; 1213 } 1214 1215 /* True if no more completed slots in the rx ring, only valid after 1216 * rxsync_prologue */ 1217 #define nm_kr_rxempty(_k) nm_kr_txempty(_k) 1218 1219 /* True if the application needs to wait for more space on the ring 1220 * (more received packets or more free tx slots). 1221 * Only valid after *xsync_prologue. */ 1222 static inline int 1223 nm_kr_wouldblock(struct netmap_kring *kring) 1224 { 1225 return kring->rcur == kring->nr_hwtail; 1226 } 1227 1228 /* 1229 * protect against multiple threads using the same ring. 1230 * also check that the ring has not been stopped or locked 1231 */ 1232 #define NM_KR_BUSY 1 /* some other thread is syncing the ring */ 1233 #define NM_KR_STOPPED 2 /* unbounded stop (ifconfig down or driver unload) */ 1234 #define NM_KR_LOCKED 3 /* bounded, brief stop for mutual exclusion */ 1235 1236 1237 /* release the previously acquired right to use the *sync() methods of the ring */ 1238 static __inline void nm_kr_put(struct netmap_kring *kr) 1239 { 1240 NM_ATOMIC_CLEAR(&kr->nr_busy); 1241 } 1242 1243 1244 /* true if the ifp that backed the adapter has disappeared (e.g., the 1245 * driver has been unloaded) 1246 */ 1247 static inline int nm_iszombie(struct netmap_adapter *na); 1248 1249 /* try to obtain exclusive right to issue the *sync() operations on the ring. 1250 * The right is obtained and must be later relinquished via nm_kr_put() if and 1251 * only if nm_kr_tryget() returns 0. 1252 * If can_sleep is 1 there are only two other possible outcomes: 1253 * - the function returns NM_KR_BUSY 1254 * - the function returns NM_KR_STOPPED and sets the POLLERR bit in *perr 1255 * (if non-null) 1256 * In both cases the caller will typically skip the ring, possibly collecting 1257 * errors along the way. 1258 * If the calling context does not allow sleeping, the caller must pass 0 in can_sleep. 1259 * In the latter case, the function may also return NM_KR_LOCKED and leave *perr 1260 * untouched: ideally, the caller should try again at a later time. 1261 */ 1262 static __inline int nm_kr_tryget(struct netmap_kring *kr, int can_sleep, int *perr) 1263 { 1264 int busy = 1, stopped; 1265 /* check a first time without taking the lock 1266 * to avoid starvation for nm_kr_get() 1267 */ 1268 retry: 1269 stopped = kr->nkr_stopped; 1270 if (unlikely(stopped)) { 1271 goto stop; 1272 } 1273 busy = NM_ATOMIC_TEST_AND_SET(&kr->nr_busy); 1274 /* we should not return NM_KR_BUSY if the ring was 1275 * actually stopped, so check another time after 1276 * the barrier provided by the atomic operation 1277 */ 1278 stopped = kr->nkr_stopped; 1279 if (unlikely(stopped)) { 1280 goto stop; 1281 } 1282 1283 if (unlikely(nm_iszombie(kr->na))) { 1284 stopped = NM_KR_STOPPED; 1285 goto stop; 1286 } 1287 1288 return unlikely(busy) ? NM_KR_BUSY : 0; 1289 1290 stop: 1291 if (!busy) 1292 nm_kr_put(kr); 1293 if (stopped == NM_KR_STOPPED) { 1294 /* if POLLERR is defined we want to use it to simplify netmap_poll(). 1295 * Otherwise, any non-zero value will do. 1296 */ 1297 #ifdef POLLERR 1298 #define NM_POLLERR POLLERR 1299 #else 1300 #define NM_POLLERR 1 1301 #endif /* POLLERR */ 1302 if (perr) 1303 *perr |= NM_POLLERR; 1304 #undef NM_POLLERR 1305 } else if (can_sleep) { 1306 tsleep(kr, 0, "NM_KR_TRYGET", 4); 1307 goto retry; 1308 } 1309 return stopped; 1310 } 1311 1312 /* put the ring in the 'stopped' state and wait for the current user (if any) to 1313 * notice. stopped must be either NM_KR_STOPPED or NM_KR_LOCKED 1314 */ 1315 static __inline void nm_kr_stop(struct netmap_kring *kr, int stopped) 1316 { 1317 kr->nkr_stopped = stopped; 1318 while (NM_ATOMIC_TEST_AND_SET(&kr->nr_busy)) 1319 tsleep(kr, 0, "NM_KR_GET", 4); 1320 } 1321 1322 /* restart a ring after a stop */ 1323 static __inline void nm_kr_start(struct netmap_kring *kr) 1324 { 1325 kr->nkr_stopped = 0; 1326 nm_kr_put(kr); 1327 } 1328 1329 1330 /* 1331 * The following functions are used by individual drivers to 1332 * support netmap operation. 1333 * 1334 * netmap_attach() initializes a struct netmap_adapter, allocating the 1335 * struct netmap_ring's and the struct selinfo. 1336 * 1337 * netmap_detach() frees the memory allocated by netmap_attach(). 1338 * 1339 * netmap_transmit() replaces the if_transmit routine of the interface, 1340 * and is used to intercept packets coming from the stack. 1341 * 1342 * netmap_load_map/netmap_reload_map are helper routines to set/reset 1343 * the dmamap for a packet buffer 1344 * 1345 * netmap_reset() is a helper routine to be called in the hw driver 1346 * when reinitializing a ring. It should not be called by 1347 * virtual ports (vale, pipes, monitor) 1348 */ 1349 int netmap_attach(struct netmap_adapter *); 1350 int netmap_attach_ext(struct netmap_adapter *, size_t size, int override_reg); 1351 void netmap_detach(if_t); 1352 int netmap_transmit(if_t, struct mbuf *); 1353 struct netmap_slot *netmap_reset(struct netmap_adapter *na, 1354 enum txrx tx, u_int n, u_int new_cur); 1355 int netmap_ring_reinit(struct netmap_kring *); 1356 int netmap_rings_config_get(struct netmap_adapter *, struct nm_config_info *); 1357 1358 /* Return codes for netmap_*x_irq. */ 1359 enum { 1360 /* Driver should do normal interrupt processing, e.g. because 1361 * the interface is not in netmap mode. */ 1362 NM_IRQ_PASS = 0, 1363 /* Port is in netmap mode, and the interrupt work has been 1364 * completed. The driver does not have to notify netmap 1365 * again before the next interrupt. */ 1366 NM_IRQ_COMPLETED = -1, 1367 /* Port is in netmap mode, but the interrupt work has not been 1368 * completed. The driver has to make sure netmap will be 1369 * notified again soon, even if no more interrupts come (e.g. 1370 * on Linux the driver should not call napi_complete()). */ 1371 NM_IRQ_RESCHED = -2, 1372 }; 1373 1374 /* default functions to handle rx/tx interrupts */ 1375 int netmap_rx_irq(if_t, u_int, u_int *); 1376 #define netmap_tx_irq(_n, _q) netmap_rx_irq(_n, _q, NULL) 1377 int netmap_common_irq(struct netmap_adapter *, u_int, u_int *work_done); 1378 1379 1380 #ifdef WITH_VALE 1381 /* functions used by external modules to interface with VALE */ 1382 #define netmap_vp_to_ifp(_vp) ((_vp)->up.ifp) 1383 #define netmap_ifp_to_vp(_ifp) (NA(_ifp)->na_vp) 1384 #define netmap_ifp_to_host_vp(_ifp) (NA(_ifp)->na_hostvp) 1385 #define netmap_bdg_idx(_vp) ((_vp)->bdg_port) 1386 const char *netmap_bdg_name(struct netmap_vp_adapter *); 1387 #else /* !WITH_VALE */ 1388 #define netmap_vp_to_ifp(_vp) NULL 1389 #define netmap_ifp_to_vp(_ifp) NULL 1390 #define netmap_ifp_to_host_vp(_ifp) NULL 1391 #define netmap_bdg_idx(_vp) -1 1392 #endif /* WITH_VALE */ 1393 1394 static inline int 1395 nm_netmap_on(struct netmap_adapter *na) 1396 { 1397 return na && na->na_flags & NAF_NETMAP_ON; 1398 } 1399 1400 static inline int 1401 nm_native_on(struct netmap_adapter *na) 1402 { 1403 return nm_netmap_on(na) && (na->na_flags & NAF_NATIVE); 1404 } 1405 1406 static inline struct netmap_kring * 1407 netmap_kring_on(struct netmap_adapter *na, u_int q, enum txrx t) 1408 { 1409 struct netmap_kring *kring = NULL; 1410 1411 if (!nm_native_on(na)) 1412 return NULL; 1413 1414 if (t == NR_RX && q < na->num_rx_rings) 1415 kring = na->rx_rings[q]; 1416 else if (t == NR_TX && q < na->num_tx_rings) 1417 kring = na->tx_rings[q]; 1418 else 1419 return NULL; 1420 1421 return (kring->nr_mode == NKR_NETMAP_ON) ? kring : NULL; 1422 } 1423 1424 static inline int 1425 nm_iszombie(struct netmap_adapter *na) 1426 { 1427 return na == NULL || (na->na_flags & NAF_ZOMBIE); 1428 } 1429 1430 void nm_set_native_flags(struct netmap_adapter *); 1431 void nm_clear_native_flags(struct netmap_adapter *); 1432 1433 void netmap_krings_mode_commit(struct netmap_adapter *na, int onoff); 1434 1435 /* 1436 * nm_*sync_prologue() functions are used in ioctl/poll and ptnetmap 1437 * kthreads. 1438 * We need netmap_ring* parameter, because in ptnetmap it is decoupled 1439 * from host kring. 1440 * The user-space ring pointers (head/cur/tail) are shared through 1441 * CSB between host and guest. 1442 */ 1443 1444 /* 1445 * validates parameters in the ring/kring, returns a value for head 1446 * If any error, returns ring_size to force a reinit. 1447 */ 1448 uint32_t nm_txsync_prologue(struct netmap_kring *, struct netmap_ring *); 1449 1450 1451 /* 1452 * validates parameters in the ring/kring, returns a value for head 1453 * If any error, returns ring_size lim to force a reinit. 1454 */ 1455 uint32_t nm_rxsync_prologue(struct netmap_kring *, struct netmap_ring *); 1456 1457 1458 /* check/fix address and len in tx rings */ 1459 #if 1 /* debug version */ 1460 #define NM_CHECK_ADDR_LEN(_na, _a, _l) do { \ 1461 if (_a == NETMAP_BUF_BASE(_na) || _l > NETMAP_BUF_SIZE(_na)) { \ 1462 nm_prlim(5, "bad addr/len ring %d slot %d idx %d len %d", \ 1463 kring->ring_id, nm_i, slot->buf_idx, len); \ 1464 if (_l > NETMAP_BUF_SIZE(_na)) \ 1465 _l = NETMAP_BUF_SIZE(_na); \ 1466 } } while (0) 1467 #else /* no debug version */ 1468 #define NM_CHECK_ADDR_LEN(_na, _a, _l) do { \ 1469 if (_l > NETMAP_BUF_SIZE(_na)) \ 1470 _l = NETMAP_BUF_SIZE(_na); \ 1471 } while (0) 1472 #endif 1473 1474 #define NM_CHECK_ADDR_LEN_OFF(na_, l_, o_) do { \ 1475 if ((l_) + (o_) < (l_) || \ 1476 (l_) + (o_) > NETMAP_BUF_SIZE(na_)) { \ 1477 (l_) = NETMAP_BUF_SIZE(na_) - (o_); \ 1478 } } while (0) 1479 1480 1481 /*---------------------------------------------------------------*/ 1482 /* 1483 * Support routines used by netmap subsystems 1484 * (native drivers, VALE, generic, pipes, monitors, ...) 1485 */ 1486 1487 1488 /* common routine for all functions that create a netmap adapter. It performs 1489 * two main tasks: 1490 * - if the na points to an ifp, mark the ifp as netmap capable 1491 * using na as its native adapter; 1492 * - provide defaults for the setup callbacks and the memory allocator 1493 */ 1494 int netmap_attach_common(struct netmap_adapter *); 1495 /* fill priv->np_[tr]xq{first,last} using the ringid and flags information 1496 * coming from a struct nmreq_register 1497 */ 1498 int netmap_interp_ringid(struct netmap_priv_d *priv, struct nmreq_header *hdr); 1499 /* update the ring parameters (number and size of tx and rx rings). 1500 * It calls the nm_config callback, if available. 1501 */ 1502 int netmap_update_config(struct netmap_adapter *na); 1503 /* create and initialize the common fields of the krings array. 1504 * using the information that must be already available in the na. 1505 * tailroom can be used to request the allocation of additional 1506 * tailroom bytes after the krings array. This is used by 1507 * netmap_vp_adapter's (i.e., VALE ports) to make room for 1508 * leasing-related data structures 1509 */ 1510 int netmap_krings_create(struct netmap_adapter *na, u_int tailroom); 1511 /* deletes the kring array of the adapter. The array must have 1512 * been created using netmap_krings_create 1513 */ 1514 void netmap_krings_delete(struct netmap_adapter *na); 1515 1516 int netmap_hw_krings_create(struct netmap_adapter *na); 1517 void netmap_hw_krings_delete(struct netmap_adapter *na); 1518 1519 /* set the stopped/enabled status of ring 1520 * When stopping, they also wait for all current activity on the ring to 1521 * terminate. The status change is then notified using the na nm_notify 1522 * callback. 1523 */ 1524 void netmap_set_ring(struct netmap_adapter *, u_int ring_id, enum txrx, int stopped); 1525 /* set the stopped/enabled status of all rings of the adapter. */ 1526 void netmap_set_all_rings(struct netmap_adapter *, int stopped); 1527 /* convenience wrappers for netmap_set_all_rings */ 1528 void netmap_disable_all_rings(if_t); 1529 void netmap_enable_all_rings(if_t); 1530 1531 int netmap_buf_size_validate(const struct netmap_adapter *na, unsigned mtu); 1532 int netmap_do_regif(struct netmap_priv_d *priv, struct netmap_adapter *na, 1533 struct nmreq_header *); 1534 void netmap_do_unregif(struct netmap_priv_d *priv); 1535 1536 u_int nm_bound_var(u_int *v, u_int dflt, u_int lo, u_int hi, const char *msg); 1537 int netmap_get_na(struct nmreq_header *hdr, struct netmap_adapter **na, 1538 if_t *ifp, struct netmap_mem_d *nmd, int create); 1539 void netmap_unget_na(struct netmap_adapter *na, if_t ifp); 1540 int netmap_get_hw_na(if_t ifp, 1541 struct netmap_mem_d *nmd, struct netmap_adapter **na); 1542 void netmap_mem_restore(struct netmap_adapter *na); 1543 1544 #ifdef WITH_VALE 1545 uint32_t netmap_vale_learning(struct nm_bdg_fwd *ft, uint8_t *dst_ring, 1546 struct netmap_vp_adapter *, void *private_data); 1547 1548 /* these are redefined in case of no VALE support */ 1549 int netmap_get_vale_na(struct nmreq_header *hdr, struct netmap_adapter **na, 1550 struct netmap_mem_d *nmd, int create); 1551 void *netmap_vale_create(const char *bdg_name, int *return_status); 1552 int netmap_vale_destroy(const char *bdg_name, void *auth_token); 1553 1554 extern unsigned int vale_max_bridges; 1555 1556 #else /* !WITH_VALE */ 1557 #define netmap_bdg_learning(_1, _2, _3, _4) 0 1558 #define netmap_get_vale_na(_1, _2, _3, _4) 0 1559 #define netmap_bdg_create(_1, _2) NULL 1560 #define netmap_bdg_destroy(_1, _2) 0 1561 #define vale_max_bridges 1 1562 #endif /* !WITH_VALE */ 1563 1564 #ifdef WITH_PIPES 1565 /* max number of pipes per device */ 1566 #define NM_MAXPIPES 64 /* XXX this should probably be a sysctl */ 1567 void netmap_pipe_dealloc(struct netmap_adapter *); 1568 int netmap_get_pipe_na(struct nmreq_header *hdr, struct netmap_adapter **na, 1569 struct netmap_mem_d *nmd, int create); 1570 #else /* !WITH_PIPES */ 1571 #define NM_MAXPIPES 0 1572 #define netmap_pipe_alloc(_1, _2) 0 1573 #define netmap_pipe_dealloc(_1) 1574 #define netmap_get_pipe_na(hdr, _2, _3, _4) \ 1575 ((strchr(hdr->nr_name, '{') != NULL || strchr(hdr->nr_name, '}') != NULL) ? EOPNOTSUPP : 0) 1576 #endif 1577 1578 #ifdef WITH_MONITOR 1579 int netmap_get_monitor_na(struct nmreq_header *hdr, struct netmap_adapter **na, 1580 struct netmap_mem_d *nmd, int create); 1581 void netmap_monitor_stop(struct netmap_adapter *na); 1582 #else 1583 #define netmap_get_monitor_na(hdr, _2, _3, _4) \ 1584 (((struct nmreq_register *)(uintptr_t)hdr->nr_body)->nr_flags & (NR_MONITOR_TX | NR_MONITOR_RX) ? EOPNOTSUPP : 0) 1585 #endif 1586 1587 #ifdef WITH_NMNULL 1588 int netmap_get_null_na(struct nmreq_header *hdr, struct netmap_adapter **na, 1589 struct netmap_mem_d *nmd, int create); 1590 #else /* !WITH_NMNULL */ 1591 #define netmap_get_null_na(hdr, _2, _3, _4) \ 1592 (((struct nmreq_register *)(uintptr_t)hdr->nr_body)->nr_flags & (NR_MONITOR_TX | NR_MONITOR_RX) ? EOPNOTSUPP : 0) 1593 #endif /* WITH_NMNULL */ 1594 1595 #ifdef CONFIG_NET_NS 1596 struct net *netmap_bns_get(void); 1597 void netmap_bns_put(struct net *); 1598 void netmap_bns_getbridges(struct nm_bridge **, u_int *); 1599 #else 1600 extern struct nm_bridge *nm_bridges; 1601 #define netmap_bns_get() 1602 #define netmap_bns_put(_1) 1603 #define netmap_bns_getbridges(b, n) \ 1604 do { *b = nm_bridges; *n = vale_max_bridges; } while (0) 1605 #endif 1606 1607 /* Various prototypes */ 1608 int netmap_poll(struct netmap_priv_d *, int events, NM_SELRECORD_T *td); 1609 int netmap_init(void); 1610 void netmap_fini(void); 1611 int netmap_get_memory(struct netmap_priv_d* p); 1612 void netmap_dtor(void *data); 1613 1614 int netmap_ioctl(struct netmap_priv_d *priv, u_long cmd, caddr_t data, 1615 struct thread *, int nr_body_is_user); 1616 int netmap_ioctl_legacy(struct netmap_priv_d *priv, u_long cmd, caddr_t data, 1617 struct thread *td); 1618 size_t nmreq_size_by_type(uint16_t nr_reqtype); 1619 1620 /* netmap_adapter creation/destruction */ 1621 1622 // #define NM_DEBUG_PUTGET 1 1623 1624 #ifdef NM_DEBUG_PUTGET 1625 1626 #define NM_DBG(f) __##f 1627 1628 void __netmap_adapter_get(struct netmap_adapter *na); 1629 1630 #define netmap_adapter_get(na) \ 1631 do { \ 1632 struct netmap_adapter *__na = na; \ 1633 __netmap_adapter_get(__na); \ 1634 nm_prinf("getting %p:%s -> %d", __na, (__na)->name, (__na)->na_refcount); \ 1635 } while (0) 1636 1637 int __netmap_adapter_put(struct netmap_adapter *na); 1638 1639 #define netmap_adapter_put(na) \ 1640 ({ \ 1641 struct netmap_adapter *__na = na; \ 1642 if (__na == NULL) \ 1643 nm_prinf("putting NULL"); \ 1644 else \ 1645 nm_prinf("putting %p:%s -> %d", __na, (__na)->name, (__na)->na_refcount - 1); \ 1646 __netmap_adapter_put(__na); \ 1647 }) 1648 1649 #else /* !NM_DEBUG_PUTGET */ 1650 1651 #define NM_DBG(f) f 1652 void netmap_adapter_get(struct netmap_adapter *na); 1653 int netmap_adapter_put(struct netmap_adapter *na); 1654 1655 #endif /* !NM_DEBUG_PUTGET */ 1656 1657 1658 /* 1659 * module variables 1660 */ 1661 #define NETMAP_BUF_BASE(_na) ((_na)->na_lut.lut[0].vaddr) 1662 #define NETMAP_BUF_SIZE(_na) ((_na)->na_lut.objsize) 1663 extern int netmap_no_pendintr; 1664 extern int netmap_verbose; 1665 #ifdef CONFIG_NETMAP_DEBUG 1666 extern int netmap_debug; /* for debugging */ 1667 #else /* !CONFIG_NETMAP_DEBUG */ 1668 #define netmap_debug (0) 1669 #endif /* !CONFIG_NETMAP_DEBUG */ 1670 enum { /* debug flags */ 1671 NM_DEBUG_ON = 1, /* generic debug messages */ 1672 NM_DEBUG_HOST = 0x2, /* debug host stack */ 1673 NM_DEBUG_RXSYNC = 0x10, /* debug on rxsync/txsync */ 1674 NM_DEBUG_TXSYNC = 0x20, 1675 NM_DEBUG_RXINTR = 0x100, /* debug on rx/tx intr (driver) */ 1676 NM_DEBUG_TXINTR = 0x200, 1677 NM_DEBUG_NIC_RXSYNC = 0x1000, /* debug on rx/tx intr (driver) */ 1678 NM_DEBUG_NIC_TXSYNC = 0x2000, 1679 NM_DEBUG_MEM = 0x4000, /* verbose memory allocations/deallocations */ 1680 NM_DEBUG_VALE = 0x8000, /* debug messages from memory allocators */ 1681 NM_DEBUG_BDG = NM_DEBUG_VALE, 1682 }; 1683 1684 extern int netmap_txsync_retry; 1685 extern int netmap_generic_hwcsum; 1686 extern int netmap_generic_mit; 1687 extern int netmap_generic_ringsize; 1688 extern int netmap_generic_rings; 1689 #ifdef linux 1690 extern int netmap_generic_txqdisc; 1691 #endif 1692 1693 /* 1694 * NA returns a pointer to the struct netmap adapter from the ifp. 1695 * The if_getnetmapadapter() and if_setnetmapadapter() helpers are 1696 * os-specific and must be defined in glue code. 1697 */ 1698 #define NA(_ifp) (if_getnetmapadapter(_ifp)) 1699 1700 /* 1701 * we provide a default implementation of NM_ATTACH_NA/NM_DETACH_NA 1702 * based on the if_setnetmapadapter() setter function. 1703 * Glue code may override this by defining its own NM_ATTACH_NA 1704 */ 1705 #ifndef NM_ATTACH_NA 1706 /* 1707 * On old versions of FreeBSD, NA(ifp) is a pspare. On linux we 1708 * overload another pointer in the netdev. 1709 * 1710 * We check if NA(ifp) is set and its first element has a related 1711 * magic value. The capenable is within the struct netmap_adapter. 1712 */ 1713 #define NETMAP_MAGIC 0x52697a7a 1714 1715 #define NM_NA_VALID(ifp) (NA(ifp) && \ 1716 ((uint32_t)(uintptr_t)NA(ifp) ^ NA(ifp)->magic) == NETMAP_MAGIC ) 1717 1718 #define NM_ATTACH_NA(ifp, na) do { \ 1719 if_setnetmapadapter(ifp, na); \ 1720 if (NA(ifp)) \ 1721 NA(ifp)->magic = \ 1722 ((uint32_t)(uintptr_t)NA(ifp)) ^ NETMAP_MAGIC; \ 1723 } while(0) 1724 #define NM_RESTORE_NA(ifp, na) if_setnetmapadapter(ifp, na); 1725 1726 #define NM_DETACH_NA(ifp) do { if_setnetmapadapter(ifp, NULL); } while (0) 1727 #define NM_NA_CLASH(ifp) (NA(ifp) && !NM_NA_VALID(ifp)) 1728 #endif /* !NM_ATTACH_NA */ 1729 1730 1731 #define NM_IS_NATIVE(ifp) (NM_NA_VALID(ifp) && NA(ifp)->nm_dtor == netmap_hw_dtor) 1732 1733 #if defined(__FreeBSD__) 1734 extern int netmap_port_numa_affinity; 1735 1736 static inline int 1737 nm_iommu_group_id(struct netmap_adapter *na) 1738 { 1739 return (-1); 1740 } 1741 1742 static inline int 1743 nm_numa_domain(struct netmap_adapter *na) 1744 { 1745 int domain; 1746 1747 /* 1748 * If the system has only one NUMA domain, don't bother distinguishing 1749 * between IF_NODOM and domain 0. 1750 */ 1751 if (vm_ndomains == 1 || netmap_port_numa_affinity == 0) 1752 return (-1); 1753 domain = if_getnumadomain(na->ifp); 1754 if (domain == IF_NODOM) 1755 domain = -1; 1756 return (domain); 1757 } 1758 1759 /* Callback invoked by the dma machinery after a successful dmamap_load */ 1760 static void netmap_dmamap_cb(__unused void *arg, 1761 __unused bus_dma_segment_t * segs, __unused int nseg, __unused int error) 1762 { 1763 } 1764 1765 /* bus_dmamap_load wrapper: call aforementioned function if map != NULL. 1766 * XXX can we do it without a callback ? 1767 */ 1768 static inline int 1769 netmap_load_map(struct netmap_adapter *na, 1770 bus_dma_tag_t tag, bus_dmamap_t map, void *buf) 1771 { 1772 if (map) 1773 bus_dmamap_load(tag, map, buf, NETMAP_BUF_SIZE(na), 1774 netmap_dmamap_cb, NULL, BUS_DMA_NOWAIT); 1775 return 0; 1776 } 1777 1778 static inline void 1779 netmap_unload_map(struct netmap_adapter *na, 1780 bus_dma_tag_t tag, bus_dmamap_t map) 1781 { 1782 if (map) 1783 bus_dmamap_unload(tag, map); 1784 } 1785 1786 #define netmap_sync_map(na, tag, map, sz, t) 1787 1788 /* update the map when a buffer changes. */ 1789 static inline void 1790 netmap_reload_map(struct netmap_adapter *na, 1791 bus_dma_tag_t tag, bus_dmamap_t map, void *buf) 1792 { 1793 if (map) { 1794 bus_dmamap_unload(tag, map); 1795 bus_dmamap_load(tag, map, buf, NETMAP_BUF_SIZE(na), 1796 netmap_dmamap_cb, NULL, BUS_DMA_NOWAIT); 1797 } 1798 } 1799 1800 #elif defined(_WIN32) 1801 1802 #else /* linux */ 1803 1804 int nm_iommu_group_id(bus_dma_tag_t dev); 1805 #include <linux/dma-mapping.h> 1806 1807 /* 1808 * on linux we need 1809 * dma_map_single(&pdev->dev, virt_addr, len, direction) 1810 * dma_unmap_single(&adapter->pdev->dev, phys_addr, len, direction) 1811 */ 1812 #if 0 1813 struct e1000_buffer *buffer_info = &tx_ring->buffer_info[l]; 1814 /* set time_stamp *before* dma to help avoid a possible race */ 1815 buffer_info->time_stamp = jiffies; 1816 buffer_info->mapped_as_page = false; 1817 buffer_info->length = len; 1818 //buffer_info->next_to_watch = l; 1819 /* reload dma map */ 1820 dma_unmap_single(&adapter->pdev->dev, buffer_info->dma, 1821 NETMAP_BUF_SIZE, DMA_TO_DEVICE); 1822 buffer_info->dma = dma_map_single(&adapter->pdev->dev, 1823 addr, NETMAP_BUF_SIZE, DMA_TO_DEVICE); 1824 1825 if (dma_mapping_error(&adapter->pdev->dev, buffer_info->dma)) { 1826 nm_prerr("dma mapping error"); 1827 /* goto dma_error; See e1000_put_txbuf() */ 1828 /* XXX reset */ 1829 } 1830 tx_desc->buffer_addr = htole64(buffer_info->dma); //XXX 1831 1832 #endif 1833 1834 static inline int 1835 netmap_load_map(struct netmap_adapter *na, 1836 bus_dma_tag_t tag, bus_dmamap_t map, void *buf, u_int size) 1837 { 1838 if (map) { 1839 *map = dma_map_single(na->pdev, buf, size, 1840 DMA_BIDIRECTIONAL); 1841 if (dma_mapping_error(na->pdev, *map)) { 1842 *map = 0; 1843 return ENOMEM; 1844 } 1845 } 1846 return 0; 1847 } 1848 1849 static inline void 1850 netmap_unload_map(struct netmap_adapter *na, 1851 bus_dma_tag_t tag, bus_dmamap_t map, u_int sz) 1852 { 1853 if (*map) { 1854 dma_unmap_single(na->pdev, *map, sz, 1855 DMA_BIDIRECTIONAL); 1856 } 1857 } 1858 1859 #ifdef NETMAP_LINUX_HAVE_DMASYNC 1860 static inline void 1861 netmap_sync_map_cpu(struct netmap_adapter *na, 1862 bus_dma_tag_t tag, bus_dmamap_t map, u_int sz, enum txrx t) 1863 { 1864 if (*map) { 1865 dma_sync_single_for_cpu(na->pdev, *map, sz, 1866 (t == NR_TX ? DMA_TO_DEVICE : DMA_FROM_DEVICE)); 1867 } 1868 } 1869 1870 static inline void 1871 netmap_sync_map_dev(struct netmap_adapter *na, 1872 bus_dma_tag_t tag, bus_dmamap_t map, u_int sz, enum txrx t) 1873 { 1874 if (*map) { 1875 dma_sync_single_for_device(na->pdev, *map, sz, 1876 (t == NR_TX ? DMA_TO_DEVICE : DMA_FROM_DEVICE)); 1877 } 1878 } 1879 1880 static inline void 1881 netmap_reload_map(struct netmap_adapter *na, 1882 bus_dma_tag_t tag, bus_dmamap_t map, void *buf) 1883 { 1884 u_int sz = NETMAP_BUF_SIZE(na); 1885 1886 if (*map) { 1887 dma_unmap_single(na->pdev, *map, sz, 1888 DMA_BIDIRECTIONAL); 1889 } 1890 1891 *map = dma_map_single(na->pdev, buf, sz, 1892 DMA_BIDIRECTIONAL); 1893 } 1894 #else /* !NETMAP_LINUX_HAVE_DMASYNC */ 1895 #define netmap_sync_map_cpu(na, tag, map, sz, t) 1896 #define netmap_sync_map_dev(na, tag, map, sz, t) 1897 #endif /* NETMAP_LINUX_HAVE_DMASYNC */ 1898 1899 #endif /* linux */ 1900 1901 1902 /* 1903 * functions to map NIC to KRING indexes (n2k) and vice versa (k2n) 1904 */ 1905 static inline int 1906 netmap_idx_n2k(struct netmap_kring *kr, int idx) 1907 { 1908 int n = kr->nkr_num_slots; 1909 1910 if (likely(kr->nkr_hwofs == 0)) { 1911 return idx; 1912 } 1913 1914 idx += kr->nkr_hwofs; 1915 if (idx < 0) 1916 return idx + n; 1917 else if (idx < n) 1918 return idx; 1919 else 1920 return idx - n; 1921 } 1922 1923 1924 static inline int 1925 netmap_idx_k2n(struct netmap_kring *kr, int idx) 1926 { 1927 int n = kr->nkr_num_slots; 1928 1929 if (likely(kr->nkr_hwofs == 0)) { 1930 return idx; 1931 } 1932 1933 idx -= kr->nkr_hwofs; 1934 if (idx < 0) 1935 return idx + n; 1936 else if (idx < n) 1937 return idx; 1938 else 1939 return idx - n; 1940 } 1941 1942 1943 /* Entries of the look-up table. */ 1944 #ifdef __FreeBSD__ 1945 struct lut_entry { 1946 void *vaddr; /* virtual address. */ 1947 vm_paddr_t paddr; /* physical address. */ 1948 }; 1949 #else /* linux & _WIN32 */ 1950 /* dma-mapping in linux can assign a buffer a different address 1951 * depending on the device, so we need to have a separate 1952 * physical-address look-up table for each na. 1953 * We can still share the vaddrs, though, therefore we split 1954 * the lut_entry structure. 1955 */ 1956 struct lut_entry { 1957 void *vaddr; /* virtual address. */ 1958 }; 1959 1960 struct plut_entry { 1961 vm_paddr_t paddr; /* physical address. */ 1962 }; 1963 #endif /* linux & _WIN32 */ 1964 1965 struct netmap_obj_pool; 1966 1967 /* alignment for netmap buffers */ 1968 #define NM_BUF_ALIGN 64 1969 1970 /* 1971 * NMB return the virtual address of a buffer (buffer 0 on bad index) 1972 * PNMB also fills the physical address 1973 */ 1974 static inline void * 1975 NMB(struct netmap_adapter *na, struct netmap_slot *slot) 1976 { 1977 struct lut_entry *lut = na->na_lut.lut; 1978 uint32_t i = slot->buf_idx; 1979 return (unlikely(i >= na->na_lut.objtotal)) ? 1980 lut[0].vaddr : lut[i].vaddr; 1981 } 1982 1983 static inline void * 1984 PNMB(struct netmap_adapter *na, struct netmap_slot *slot, uint64_t *pp) 1985 { 1986 uint32_t i = slot->buf_idx; 1987 struct lut_entry *lut = na->na_lut.lut; 1988 struct plut_entry *plut = na->na_lut.plut; 1989 void *ret = (i >= na->na_lut.objtotal) ? lut[0].vaddr : lut[i].vaddr; 1990 1991 #ifdef _WIN32 1992 *pp = (i >= na->na_lut.objtotal) ? (uint64_t)plut[0].paddr.QuadPart : (uint64_t)plut[i].paddr.QuadPart; 1993 #else 1994 *pp = (i >= na->na_lut.objtotal) ? plut[0].paddr : plut[i].paddr; 1995 #endif 1996 return ret; 1997 } 1998 1999 static inline void 2000 nm_write_offset(struct netmap_kring *kring, 2001 struct netmap_slot *slot, uint64_t offset) 2002 { 2003 slot->ptr = (slot->ptr & ~kring->offset_mask) | 2004 (offset & kring->offset_mask); 2005 } 2006 2007 static inline uint64_t 2008 nm_get_offset(struct netmap_kring *kring, struct netmap_slot *slot) 2009 { 2010 uint64_t offset = (slot->ptr & kring->offset_mask); 2011 if (unlikely(offset > kring->offset_max)) 2012 offset = kring->offset_max; 2013 return offset; 2014 } 2015 2016 static inline void * 2017 NMB_O(struct netmap_kring *kring, struct netmap_slot *slot) 2018 { 2019 void *addr = NMB(kring->na, slot); 2020 return (char *)addr + nm_get_offset(kring, slot); 2021 } 2022 2023 static inline void * 2024 PNMB_O(struct netmap_kring *kring, struct netmap_slot *slot, uint64_t *pp) 2025 { 2026 void *addr = PNMB(kring->na, slot, pp); 2027 uint64_t offset = nm_get_offset(kring, slot); 2028 addr = (char *)addr + offset; 2029 *pp += offset; 2030 return addr; 2031 } 2032 2033 2034 /* 2035 * Structure associated to each netmap file descriptor. 2036 * It is created on open and left unbound (np_nifp == NULL). 2037 * A successful NIOCREGIF will set np_nifp and the first few fields; 2038 * this is protected by a global lock (NMG_LOCK) due to low contention. 2039 * 2040 * np_refs counts the number of references to the structure: one for the fd, 2041 * plus (on FreeBSD) one for each active mmap which we track ourselves 2042 * (linux automatically tracks them, but FreeBSD does not). 2043 * np_refs is protected by NMG_LOCK. 2044 * 2045 * Read access to the structure is lock free, because ni_nifp once set 2046 * can only go to 0 when nobody is using the entry anymore. Readers 2047 * must check that np_nifp != NULL before using the other fields. 2048 */ 2049 struct netmap_priv_d { 2050 struct netmap_if * volatile np_nifp; /* netmap if descriptor. */ 2051 2052 struct netmap_adapter *np_na; 2053 if_t np_ifp; 2054 uint32_t np_flags; /* from the ioctl */ 2055 u_int np_qfirst[NR_TXRX], 2056 np_qlast[NR_TXRX]; /* range of tx/rx rings to scan */ 2057 uint16_t np_txpoll; 2058 uint16_t np_kloop_state; /* use with NMG_LOCK held */ 2059 #define NM_SYNC_KLOOP_RUNNING (1 << 0) 2060 #define NM_SYNC_KLOOP_STOPPING (1 << 1) 2061 int np_sync_flags; /* to be passed to nm_sync */ 2062 2063 int np_refs; /* use with NMG_LOCK held */ 2064 2065 /* pointers to the selinfo to be used for selrecord. 2066 * Either the local or the global one depending on the 2067 * number of rings. 2068 */ 2069 NM_SELINFO_T *np_si[NR_TXRX]; 2070 2071 /* In the optional CSB mode, the user must specify the start address 2072 * of two arrays of Communication Status Block (CSB) entries, for the 2073 * two directions (kernel read application write, and kernel write 2074 * application read). 2075 * The number of entries must agree with the number of rings bound to 2076 * the netmap file descriptor. The entries corresponding to the TX 2077 * rings are laid out before the ones corresponding to the RX rings. 2078 * 2079 * Array of CSB entries for application --> kernel communication 2080 * (N entries). */ 2081 struct nm_csb_atok *np_csb_atok_base; 2082 /* Array of CSB entries for kernel --> application communication 2083 * (N entries). */ 2084 struct nm_csb_ktoa *np_csb_ktoa_base; 2085 2086 #ifdef linux 2087 struct file *np_filp; /* used by sync kloop */ 2088 #endif /* linux */ 2089 }; 2090 2091 struct netmap_priv_d *netmap_priv_new(void); 2092 void netmap_priv_delete(struct netmap_priv_d *); 2093 2094 static inline int nm_kring_pending(struct netmap_priv_d *np) 2095 { 2096 struct netmap_adapter *na = np->np_na; 2097 enum txrx t; 2098 int i; 2099 2100 for_rx_tx(t) { 2101 for (i = np->np_qfirst[t]; i < np->np_qlast[t]; i++) { 2102 struct netmap_kring *kring = NMR(na, t)[i]; 2103 if (kring->nr_mode != kring->nr_pending_mode) { 2104 return 1; 2105 } 2106 } 2107 } 2108 return 0; 2109 } 2110 2111 /* call with NMG_LOCK held */ 2112 static __inline int 2113 nm_si_user(struct netmap_priv_d *priv, enum txrx t) 2114 { 2115 return (priv->np_na != NULL && 2116 (priv->np_qlast[t] - priv->np_qfirst[t] > 1)); 2117 } 2118 2119 #ifdef WITH_PIPES 2120 int netmap_pipe_txsync(struct netmap_kring *txkring, int flags); 2121 int netmap_pipe_rxsync(struct netmap_kring *rxkring, int flags); 2122 int netmap_pipe_krings_create_both(struct netmap_adapter *na, 2123 struct netmap_adapter *ona); 2124 void netmap_pipe_krings_delete_both(struct netmap_adapter *na, 2125 struct netmap_adapter *ona); 2126 int netmap_pipe_reg_both(struct netmap_adapter *na, 2127 struct netmap_adapter *ona); 2128 #endif /* WITH_PIPES */ 2129 2130 #ifdef WITH_MONITOR 2131 2132 struct netmap_monitor_adapter { 2133 struct netmap_adapter up; 2134 2135 struct netmap_priv_d priv; 2136 uint32_t flags; 2137 }; 2138 2139 #endif /* WITH_MONITOR */ 2140 2141 2142 #ifdef WITH_GENERIC 2143 /* 2144 * generic netmap emulation for devices that do not have 2145 * native netmap support. 2146 */ 2147 int generic_netmap_attach(if_t ifp); 2148 int generic_rx_handler(if_t ifp, struct mbuf *m); 2149 2150 int nm_os_catch_rx(struct netmap_generic_adapter *gna, int intercept); 2151 int nm_os_catch_tx(struct netmap_generic_adapter *gna, int intercept); 2152 2153 int na_is_generic(struct netmap_adapter *na); 2154 2155 /* 2156 * the generic transmit routine is passed a structure to optionally 2157 * build a queue of descriptors, in an OS-specific way. 2158 * The payload is at addr, if non-null, and the routine should send or queue 2159 * the packet, returning 0 if successful, 1 on failure. 2160 * 2161 * At the end, if head is non-null, there will be an additional call 2162 * to the function with addr = NULL; this should tell the OS-specific 2163 * routine to send the queue and free any resources. Failure is ignored. 2164 */ 2165 struct nm_os_gen_arg { 2166 if_t ifp; 2167 void *m; /* os-specific mbuf-like object */ 2168 void *head, *tail; /* tailq, if the OS-specific routine needs to build one */ 2169 void *addr; /* payload of current packet */ 2170 u_int len; /* packet length */ 2171 u_int ring_nr; /* transmit ring index */ 2172 u_int qevent; /* in txqdisc mode, place an event on this mbuf */ 2173 }; 2174 2175 int nm_os_generic_xmit_frame(struct nm_os_gen_arg *); 2176 int nm_os_generic_find_num_desc(if_t ifp, u_int *tx, u_int *rx); 2177 void nm_os_generic_find_num_queues(if_t ifp, u_int *txq, u_int *rxq); 2178 void nm_os_generic_set_features(struct netmap_generic_adapter *gna); 2179 2180 static inline if_t 2181 netmap_generic_getifp(struct netmap_generic_adapter *gna) 2182 { 2183 if (gna->prev) 2184 return gna->prev->ifp; 2185 2186 return gna->up.up.ifp; 2187 } 2188 2189 void netmap_generic_irq(struct netmap_adapter *na, u_int q, u_int *work_done); 2190 2191 //#define RATE_GENERIC /* Enables communication statistics for generic. */ 2192 #ifdef RATE_GENERIC 2193 void generic_rate(int txp, int txs, int txi, int rxp, int rxs, int rxi); 2194 #else 2195 #define generic_rate(txp, txs, txi, rxp, rxs, rxi) 2196 #endif 2197 2198 /* 2199 * netmap_mitigation API. This is used by the generic adapter 2200 * to reduce the number of interrupt requests/selwakeup 2201 * to clients on incoming packets. 2202 */ 2203 void nm_os_mitigation_init(struct nm_generic_mit *mit, int idx, 2204 struct netmap_adapter *na); 2205 void nm_os_mitigation_start(struct nm_generic_mit *mit); 2206 void nm_os_mitigation_restart(struct nm_generic_mit *mit); 2207 int nm_os_mitigation_active(struct nm_generic_mit *mit); 2208 void nm_os_mitigation_cleanup(struct nm_generic_mit *mit); 2209 #else /* !WITH_GENERIC */ 2210 #define generic_netmap_attach(ifp) (EOPNOTSUPP) 2211 #define na_is_generic(na) (0) 2212 #endif /* WITH_GENERIC */ 2213 2214 /* Shared declarations for the VALE switch. */ 2215 2216 /* 2217 * Each transmit queue accumulates a batch of packets into 2218 * a structure before forwarding. Packets to the same 2219 * destination are put in a list using ft_next as a link field. 2220 * ft_frags and ft_next are valid only on the first fragment. 2221 */ 2222 struct nm_bdg_fwd { /* forwarding entry for a bridge */ 2223 void *ft_buf; /* netmap or indirect buffer */ 2224 uint8_t ft_frags; /* how many fragments (only on 1st frag) */ 2225 uint16_t ft_offset; /* dst port (unused) */ 2226 uint16_t ft_flags; /* flags, e.g. indirect */ 2227 uint16_t ft_len; /* src fragment len */ 2228 uint16_t ft_next; /* next packet to same destination */ 2229 }; 2230 2231 /* struct 'virtio_net_hdr' from linux. */ 2232 struct nm_vnet_hdr { 2233 #define VIRTIO_NET_HDR_F_NEEDS_CSUM 1 /* Use csum_start, csum_offset */ 2234 #define VIRTIO_NET_HDR_F_DATA_VALID 2 /* Csum is valid */ 2235 uint8_t flags; 2236 #define VIRTIO_NET_HDR_GSO_NONE 0 /* Not a GSO frame */ 2237 #define VIRTIO_NET_HDR_GSO_TCPV4 1 /* GSO frame, IPv4 TCP (TSO) */ 2238 #define VIRTIO_NET_HDR_GSO_UDP 3 /* GSO frame, IPv4 UDP (UFO) */ 2239 #define VIRTIO_NET_HDR_GSO_TCPV6 4 /* GSO frame, IPv6 TCP */ 2240 #define VIRTIO_NET_HDR_GSO_ECN 0x80 /* TCP has ECN set */ 2241 uint8_t gso_type; 2242 uint16_t hdr_len; 2243 uint16_t gso_size; 2244 uint16_t csum_start; 2245 uint16_t csum_offset; 2246 }; 2247 2248 #define WORST_CASE_GSO_HEADER (14+40+60) /* IPv6 + TCP */ 2249 2250 /* Private definitions for IPv4, IPv6, UDP and TCP headers. */ 2251 2252 struct nm_iphdr { 2253 uint8_t version_ihl; 2254 uint8_t tos; 2255 uint16_t tot_len; 2256 uint16_t id; 2257 uint16_t frag_off; 2258 uint8_t ttl; 2259 uint8_t protocol; 2260 uint16_t check; 2261 uint32_t saddr; 2262 uint32_t daddr; 2263 /*The options start here. */ 2264 }; 2265 2266 struct nm_tcphdr { 2267 uint16_t source; 2268 uint16_t dest; 2269 uint32_t seq; 2270 uint32_t ack_seq; 2271 uint8_t doff; /* Data offset + Reserved */ 2272 uint8_t flags; 2273 uint16_t window; 2274 uint16_t check; 2275 uint16_t urg_ptr; 2276 }; 2277 2278 struct nm_udphdr { 2279 uint16_t source; 2280 uint16_t dest; 2281 uint16_t len; 2282 uint16_t check; 2283 }; 2284 2285 struct nm_ipv6hdr { 2286 uint8_t priority_version; 2287 uint8_t flow_lbl[3]; 2288 2289 uint16_t payload_len; 2290 uint8_t nexthdr; 2291 uint8_t hop_limit; 2292 2293 uint8_t saddr[16]; 2294 uint8_t daddr[16]; 2295 }; 2296 2297 /* Type used to store a checksum (in host byte order) that hasn't been 2298 * folded yet. 2299 */ 2300 #define rawsum_t uint32_t 2301 2302 rawsum_t nm_os_csum_raw(uint8_t *data, size_t len, rawsum_t cur_sum); 2303 uint16_t nm_os_csum_ipv4(struct nm_iphdr *iph); 2304 void nm_os_csum_tcpudp_ipv4(struct nm_iphdr *iph, void *data, 2305 size_t datalen, uint16_t *check); 2306 void nm_os_csum_tcpudp_ipv6(struct nm_ipv6hdr *ip6h, void *data, 2307 size_t datalen, uint16_t *check); 2308 uint16_t nm_os_csum_fold(rawsum_t cur_sum); 2309 2310 void bdg_mismatch_datapath(struct netmap_vp_adapter *na, 2311 struct netmap_vp_adapter *dst_na, 2312 const struct nm_bdg_fwd *ft_p, 2313 struct netmap_ring *dst_ring, 2314 u_int *j, u_int lim, u_int *howmany); 2315 2316 /* persistent virtual port routines */ 2317 int nm_os_vi_persist(const char *, if_t *); 2318 void nm_os_vi_detach(if_t); 2319 void nm_os_vi_init_index(void); 2320 2321 /* 2322 * kernel thread routines 2323 */ 2324 struct nm_kctx; /* OS-specific kernel context - opaque */ 2325 typedef void (*nm_kctx_worker_fn_t)(void *data); 2326 2327 /* kthread configuration */ 2328 struct nm_kctx_cfg { 2329 long type; /* kthread type/identifier */ 2330 nm_kctx_worker_fn_t worker_fn; /* worker function */ 2331 void *worker_private;/* worker parameter */ 2332 int attach_user; /* attach kthread to user process */ 2333 }; 2334 /* kthread configuration */ 2335 struct nm_kctx *nm_os_kctx_create(struct nm_kctx_cfg *cfg, 2336 void *opaque); 2337 int nm_os_kctx_worker_start(struct nm_kctx *); 2338 void nm_os_kctx_worker_stop(struct nm_kctx *); 2339 void nm_os_kctx_destroy(struct nm_kctx *); 2340 void nm_os_kctx_worker_setaff(struct nm_kctx *, int); 2341 u_int nm_os_ncpus(void); 2342 2343 int netmap_sync_kloop(struct netmap_priv_d *priv, 2344 struct nmreq_header *hdr); 2345 int netmap_sync_kloop_stop(struct netmap_priv_d *priv); 2346 2347 #ifdef WITH_PTNETMAP 2348 /* ptnetmap guest routines */ 2349 2350 /* 2351 * ptnetmap_memdev routines used to talk with ptnetmap_memdev device driver 2352 */ 2353 struct ptnetmap_memdev; 2354 int nm_os_pt_memdev_iomap(struct ptnetmap_memdev *, vm_paddr_t *, void **, 2355 uint64_t *); 2356 void nm_os_pt_memdev_iounmap(struct ptnetmap_memdev *); 2357 uint32_t nm_os_pt_memdev_ioread(struct ptnetmap_memdev *, unsigned int); 2358 2359 /* 2360 * netmap adapter for guest ptnetmap ports 2361 */ 2362 struct netmap_pt_guest_adapter { 2363 /* The netmap adapter to be used by netmap applications. 2364 * This field must be the first, to allow upcast. */ 2365 struct netmap_hw_adapter hwup; 2366 2367 /* The netmap adapter to be used by the driver. */ 2368 struct netmap_hw_adapter dr; 2369 2370 /* Reference counter to track users of backend netmap port: the 2371 * network stack and netmap clients. 2372 * Used to decide when we need (de)allocate krings/rings and 2373 * start (stop) ptnetmap kthreads. */ 2374 int backend_users; 2375 2376 }; 2377 2378 int netmap_pt_guest_attach(struct netmap_adapter *na, 2379 unsigned int nifp_offset, 2380 unsigned int memid); 2381 bool netmap_pt_guest_txsync(struct nm_csb_atok *atok, 2382 struct nm_csb_ktoa *ktoa, 2383 struct netmap_kring *kring, int flags); 2384 bool netmap_pt_guest_rxsync(struct nm_csb_atok *atok, 2385 struct nm_csb_ktoa *ktoa, 2386 struct netmap_kring *kring, int flags); 2387 int ptnet_nm_krings_create(struct netmap_adapter *na); 2388 void ptnet_nm_krings_delete(struct netmap_adapter *na); 2389 void ptnet_nm_dtor(struct netmap_adapter *na); 2390 2391 /* Helper function wrapping nm_sync_kloop_appl_read(). */ 2392 static inline void 2393 ptnet_sync_tail(struct nm_csb_ktoa *ktoa, struct netmap_kring *kring) 2394 { 2395 struct netmap_ring *ring = kring->ring; 2396 2397 /* Update hwcur and hwtail as known by the host. */ 2398 nm_sync_kloop_appl_read(ktoa, &kring->nr_hwtail, &kring->nr_hwcur); 2399 2400 /* nm_sync_finalize */ 2401 ring->tail = kring->rtail = kring->nr_hwtail; 2402 } 2403 #endif /* WITH_PTNETMAP */ 2404 2405 #ifdef __FreeBSD__ 2406 /* 2407 * FreeBSD mbuf allocator/deallocator in emulation mode: 2408 * 2409 * We allocate mbufs with m_gethdr(), since the mbuf header is needed 2410 * by the driver. We also attach a customly-provided external storage, 2411 * which in this case is a netmap buffer. 2412 * 2413 * The dtor function does nothing, however we need it since mb_free_ext() 2414 * has a KASSERT(), checking that the mbuf dtor function is not NULL. 2415 */ 2416 2417 static inline void 2418 nm_generic_mbuf_dtor(struct mbuf *m) 2419 { 2420 uma_zfree(zone_clust, m->m_ext.ext_buf); 2421 } 2422 2423 #define SET_MBUF_DESTRUCTOR(m, fn, na) do { \ 2424 (m)->m_ext.ext_free = (fn != NULL) ? \ 2425 (void *)fn : (void *)nm_generic_mbuf_dtor; \ 2426 (m)->m_ext.ext_arg1 = na; \ 2427 } while (0) 2428 2429 static inline struct mbuf * 2430 nm_os_get_mbuf(if_t ifp __unused, int len) 2431 { 2432 struct mbuf *m; 2433 void *buf; 2434 2435 KASSERT(len <= MCLBYTES, ("%s: len %d", __func__, len)); 2436 2437 m = m_gethdr(M_NOWAIT, MT_DATA); 2438 if (__predict_false(m == NULL)) 2439 return (NULL); 2440 buf = uma_zalloc(zone_clust, M_NOWAIT); 2441 if (__predict_false(buf == NULL)) { 2442 m_free(m); 2443 return (NULL); 2444 } 2445 m_extadd(m, buf, MCLBYTES, nm_generic_mbuf_dtor, NULL, NULL, 0, 2446 EXT_NET_DRV); 2447 return (m); 2448 } 2449 2450 static inline void 2451 nm_os_mbuf_reinit(struct mbuf *m) 2452 { 2453 void *buf; 2454 2455 KASSERT((m->m_flags & M_EXT) != 0, 2456 ("%s: mbuf %p has no external storage", __func__, m)); 2457 KASSERT(m->m_ext.ext_size == MCLBYTES, 2458 ("%s: mbuf %p has wrong external storage size %u", __func__, m, 2459 m->m_ext.ext_size)); 2460 2461 buf = m->m_ext.ext_buf; 2462 m_init(m, M_NOWAIT, MT_DATA, M_PKTHDR); 2463 m_extadd(m, buf, MCLBYTES, nm_generic_mbuf_dtor, NULL, NULL, 0, 2464 EXT_NET_DRV); 2465 } 2466 2467 #endif /* __FreeBSD__ */ 2468 2469 struct nmreq_option * nmreq_getoption(struct nmreq_header *, uint16_t); 2470 2471 int netmap_init_bridges(void); 2472 void netmap_uninit_bridges(void); 2473 2474 /* Functions to read and write CSB fields from the kernel. */ 2475 #if defined (linux) 2476 #define CSB_READ(csb, field, r) (get_user(r, &csb->field)) 2477 #define CSB_WRITE(csb, field, v) (put_user(v, &csb->field)) 2478 #else /* ! linux */ 2479 #define CSB_READ(csb, field, r) do { \ 2480 int32_t v __diagused; \ 2481 \ 2482 v = fuword32(&csb->field); \ 2483 KASSERT(v != -1, ("%s: fuword32 failed", __func__)); \ 2484 r = v; \ 2485 } while (0) 2486 #define CSB_WRITE(csb, field, v) do { \ 2487 int error __diagused; \ 2488 \ 2489 error = suword32(&csb->field, v); \ 2490 KASSERT(error == 0, ("%s: suword32 failed", __func__)); \ 2491 } while (0) 2492 #endif /* ! linux */ 2493 2494 /* some macros that may not be defined */ 2495 #ifndef ETH_HLEN 2496 #define ETH_HLEN 6 2497 #endif 2498 #ifndef ETH_FCS_LEN 2499 #define ETH_FCS_LEN 4 2500 #endif 2501 #ifndef VLAN_HLEN 2502 #define VLAN_HLEN 4 2503 #endif 2504 2505 #endif /* _NET_NETMAP_KERN_H_ */ 2506