1 /* SPDX-License-Identifier: BSD-3-Clause 2 * Copyright(c) 2014-2018 Chelsio Communications. 3 * All rights reserved. 4 */ 5 6 #include <sys/queue.h> 7 #include <stdio.h> 8 #include <errno.h> 9 #include <stdint.h> 10 #include <string.h> 11 #include <unistd.h> 12 #include <stdarg.h> 13 #include <inttypes.h> 14 #include <netinet/in.h> 15 16 #include <rte_byteorder.h> 17 #include <rte_common.h> 18 #include <rte_cycles.h> 19 #include <rte_interrupts.h> 20 #include <rte_log.h> 21 #include <rte_debug.h> 22 #include <rte_pci.h> 23 #include <rte_atomic.h> 24 #include <rte_branch_prediction.h> 25 #include <rte_memory.h> 26 #include <rte_memzone.h> 27 #include <rte_tailq.h> 28 #include <rte_eal.h> 29 #include <rte_alarm.h> 30 #include <rte_ether.h> 31 #include <rte_ethdev_driver.h> 32 #include <rte_malloc.h> 33 #include <rte_random.h> 34 #include <rte_dev.h> 35 36 #include "common.h" 37 #include "t4_regs.h" 38 #include "t4_msg.h" 39 #include "cxgbe.h" 40 41 static inline void ship_tx_pkt_coalesce_wr(struct adapter *adap, 42 struct sge_eth_txq *txq); 43 44 /* 45 * Max number of Rx buffers we replenish at a time. 46 */ 47 #define MAX_RX_REFILL 64U 48 49 #define NOMEM_TMR_IDX (SGE_NTIMERS - 1) 50 51 /* 52 * Max Tx descriptor space we allow for an Ethernet packet to be inlined 53 * into a WR. 54 */ 55 #define MAX_IMM_TX_PKT_LEN 256 56 57 /* 58 * Max size of a WR sent through a control Tx queue. 59 */ 60 #define MAX_CTRL_WR_LEN SGE_MAX_WR_LEN 61 62 /* 63 * Rx buffer sizes for "usembufs" Free List buffers (one ingress packet 64 * per mbuf buffer). We currently only support two sizes for 1500- and 65 * 9000-byte MTUs. We could easily support more but there doesn't seem to be 66 * much need for that ... 67 */ 68 #define FL_MTU_SMALL 1500 69 #define FL_MTU_LARGE 9000 70 71 static inline unsigned int fl_mtu_bufsize(struct adapter *adapter, 72 unsigned int mtu) 73 { 74 struct sge *s = &adapter->sge; 75 76 return CXGBE_ALIGN(s->pktshift + ETHER_HDR_LEN + VLAN_HLEN + mtu, 77 s->fl_align); 78 } 79 80 #define FL_MTU_SMALL_BUFSIZE(adapter) fl_mtu_bufsize(adapter, FL_MTU_SMALL) 81 #define FL_MTU_LARGE_BUFSIZE(adapter) fl_mtu_bufsize(adapter, FL_MTU_LARGE) 82 83 /* 84 * Bits 0..3 of rx_sw_desc.dma_addr have special meaning. The hardware uses 85 * these to specify the buffer size as an index into the SGE Free List Buffer 86 * Size register array. We also use bit 4, when the buffer has been unmapped 87 * for DMA, but this is of course never sent to the hardware and is only used 88 * to prevent double unmappings. All of the above requires that the Free List 89 * Buffers which we allocate have the bottom 5 bits free (0) -- i.e. are 90 * 32-byte or or a power of 2 greater in alignment. Since the SGE's minimal 91 * Free List Buffer alignment is 32 bytes, this works out for us ... 92 */ 93 enum { 94 RX_BUF_FLAGS = 0x1f, /* bottom five bits are special */ 95 RX_BUF_SIZE = 0x0f, /* bottom three bits are for buf sizes */ 96 RX_UNMAPPED_BUF = 0x10, /* buffer is not mapped */ 97 98 /* 99 * XXX We shouldn't depend on being able to use these indices. 100 * XXX Especially when some other Master PF has initialized the 101 * XXX adapter or we use the Firmware Configuration File. We 102 * XXX should really search through the Host Buffer Size register 103 * XXX array for the appropriately sized buffer indices. 104 */ 105 RX_SMALL_PG_BUF = 0x0, /* small (PAGE_SIZE) page buffer */ 106 RX_LARGE_PG_BUF = 0x1, /* buffer large page buffer */ 107 108 RX_SMALL_MTU_BUF = 0x2, /* small MTU buffer */ 109 RX_LARGE_MTU_BUF = 0x3, /* large MTU buffer */ 110 }; 111 112 /** 113 * txq_avail - return the number of available slots in a Tx queue 114 * @q: the Tx queue 115 * 116 * Returns the number of descriptors in a Tx queue available to write new 117 * packets. 118 */ 119 static inline unsigned int txq_avail(const struct sge_txq *q) 120 { 121 return q->size - 1 - q->in_use; 122 } 123 124 static int map_mbuf(struct rte_mbuf *mbuf, dma_addr_t *addr) 125 { 126 struct rte_mbuf *m = mbuf; 127 128 for (; m; m = m->next, addr++) { 129 *addr = m->buf_iova + rte_pktmbuf_headroom(m); 130 if (*addr == 0) 131 goto out_err; 132 } 133 return 0; 134 135 out_err: 136 return -ENOMEM; 137 } 138 139 /** 140 * free_tx_desc - reclaims Tx descriptors and their buffers 141 * @q: the Tx queue to reclaim descriptors from 142 * @n: the number of descriptors to reclaim 143 * 144 * Reclaims Tx descriptors from an SGE Tx queue and frees the associated 145 * Tx buffers. Called with the Tx queue lock held. 146 */ 147 static void free_tx_desc(struct sge_txq *q, unsigned int n) 148 { 149 struct tx_sw_desc *d; 150 unsigned int cidx = 0; 151 152 d = &q->sdesc[cidx]; 153 while (n--) { 154 if (d->mbuf) { /* an SGL is present */ 155 rte_pktmbuf_free(d->mbuf); 156 d->mbuf = NULL; 157 } 158 if (d->coalesce.idx) { 159 int i; 160 161 for (i = 0; i < d->coalesce.idx; i++) { 162 rte_pktmbuf_free(d->coalesce.mbuf[i]); 163 d->coalesce.mbuf[i] = NULL; 164 } 165 d->coalesce.idx = 0; 166 } 167 ++d; 168 if (++cidx == q->size) { 169 cidx = 0; 170 d = q->sdesc; 171 } 172 RTE_MBUF_PREFETCH_TO_FREE(&q->sdesc->mbuf->pool); 173 } 174 } 175 176 static void reclaim_tx_desc(struct sge_txq *q, unsigned int n) 177 { 178 struct tx_sw_desc *d; 179 unsigned int cidx = q->cidx; 180 181 d = &q->sdesc[cidx]; 182 while (n--) { 183 if (d->mbuf) { /* an SGL is present */ 184 rte_pktmbuf_free(d->mbuf); 185 d->mbuf = NULL; 186 } 187 ++d; 188 if (++cidx == q->size) { 189 cidx = 0; 190 d = q->sdesc; 191 } 192 } 193 q->cidx = cidx; 194 } 195 196 /** 197 * fl_cap - return the capacity of a free-buffer list 198 * @fl: the FL 199 * 200 * Returns the capacity of a free-buffer list. The capacity is less than 201 * the size because one descriptor needs to be left unpopulated, otherwise 202 * HW will think the FL is empty. 203 */ 204 static inline unsigned int fl_cap(const struct sge_fl *fl) 205 { 206 return fl->size - 8; /* 1 descriptor = 8 buffers */ 207 } 208 209 /** 210 * fl_starving - return whether a Free List is starving. 211 * @adapter: pointer to the adapter 212 * @fl: the Free List 213 * 214 * Tests specified Free List to see whether the number of buffers 215 * available to the hardware has falled below our "starvation" 216 * threshold. 217 */ 218 static inline bool fl_starving(const struct adapter *adapter, 219 const struct sge_fl *fl) 220 { 221 const struct sge *s = &adapter->sge; 222 223 return fl->avail - fl->pend_cred <= s->fl_starve_thres; 224 } 225 226 static inline unsigned int get_buf_size(struct adapter *adapter, 227 const struct rx_sw_desc *d) 228 { 229 unsigned int rx_buf_size_idx = d->dma_addr & RX_BUF_SIZE; 230 unsigned int buf_size = 0; 231 232 switch (rx_buf_size_idx) { 233 case RX_SMALL_MTU_BUF: 234 buf_size = FL_MTU_SMALL_BUFSIZE(adapter); 235 break; 236 237 case RX_LARGE_MTU_BUF: 238 buf_size = FL_MTU_LARGE_BUFSIZE(adapter); 239 break; 240 241 default: 242 BUG_ON(1); 243 /* NOT REACHED */ 244 } 245 246 return buf_size; 247 } 248 249 /** 250 * free_rx_bufs - free the Rx buffers on an SGE free list 251 * @q: the SGE free list to free buffers from 252 * @n: how many buffers to free 253 * 254 * Release the next @n buffers on an SGE free-buffer Rx queue. The 255 * buffers must be made inaccessible to HW before calling this function. 256 */ 257 static void free_rx_bufs(struct sge_fl *q, int n) 258 { 259 unsigned int cidx = q->cidx; 260 struct rx_sw_desc *d; 261 262 d = &q->sdesc[cidx]; 263 while (n--) { 264 if (d->buf) { 265 rte_pktmbuf_free(d->buf); 266 d->buf = NULL; 267 } 268 ++d; 269 if (++cidx == q->size) { 270 cidx = 0; 271 d = q->sdesc; 272 } 273 q->avail--; 274 } 275 q->cidx = cidx; 276 } 277 278 /** 279 * unmap_rx_buf - unmap the current Rx buffer on an SGE free list 280 * @q: the SGE free list 281 * 282 * Unmap the current buffer on an SGE free-buffer Rx queue. The 283 * buffer must be made inaccessible to HW before calling this function. 284 * 285 * This is similar to @free_rx_bufs above but does not free the buffer. 286 * Do note that the FL still loses any further access to the buffer. 287 */ 288 static void unmap_rx_buf(struct sge_fl *q) 289 { 290 if (++q->cidx == q->size) 291 q->cidx = 0; 292 q->avail--; 293 } 294 295 static inline void ring_fl_db(struct adapter *adap, struct sge_fl *q) 296 { 297 if (q->pend_cred >= 64) { 298 u32 val = adap->params.arch.sge_fl_db; 299 300 if (is_t4(adap->params.chip)) 301 val |= V_PIDX(q->pend_cred / 8); 302 else 303 val |= V_PIDX_T5(q->pend_cred / 8); 304 305 /* 306 * Make sure all memory writes to the Free List queue are 307 * committed before we tell the hardware about them. 308 */ 309 wmb(); 310 311 /* 312 * If we don't have access to the new User Doorbell (T5+), use 313 * the old doorbell mechanism; otherwise use the new BAR2 314 * mechanism. 315 */ 316 if (unlikely(!q->bar2_addr)) { 317 u32 reg = is_pf4(adap) ? MYPF_REG(A_SGE_PF_KDOORBELL) : 318 T4VF_SGE_BASE_ADDR + 319 A_SGE_VF_KDOORBELL; 320 321 t4_write_reg_relaxed(adap, reg, 322 val | V_QID(q->cntxt_id)); 323 } else { 324 writel_relaxed(val | V_QID(q->bar2_qid), 325 (void *)((uintptr_t)q->bar2_addr + 326 SGE_UDB_KDOORBELL)); 327 328 /* 329 * This Write memory Barrier will force the write to 330 * the User Doorbell area to be flushed. 331 */ 332 wmb(); 333 } 334 q->pend_cred &= 7; 335 } 336 } 337 338 static inline void set_rx_sw_desc(struct rx_sw_desc *sd, void *buf, 339 dma_addr_t mapping) 340 { 341 sd->buf = buf; 342 sd->dma_addr = mapping; /* includes size low bits */ 343 } 344 345 /** 346 * refill_fl_usembufs - refill an SGE Rx buffer ring with mbufs 347 * @adap: the adapter 348 * @q: the ring to refill 349 * @n: the number of new buffers to allocate 350 * 351 * (Re)populate an SGE free-buffer queue with up to @n new packet buffers, 352 * allocated with the supplied gfp flags. The caller must assure that 353 * @n does not exceed the queue's capacity. If afterwards the queue is 354 * found critically low mark it as starving in the bitmap of starving FLs. 355 * 356 * Returns the number of buffers allocated. 357 */ 358 static unsigned int refill_fl_usembufs(struct adapter *adap, struct sge_fl *q, 359 int n) 360 { 361 struct sge_eth_rxq *rxq = container_of(q, struct sge_eth_rxq, fl); 362 unsigned int cred = q->avail; 363 __be64 *d = &q->desc[q->pidx]; 364 struct rx_sw_desc *sd = &q->sdesc[q->pidx]; 365 unsigned int buf_size_idx = RX_SMALL_MTU_BUF; 366 struct rte_mbuf *buf_bulk[n]; 367 int ret, i; 368 struct rte_pktmbuf_pool_private *mbp_priv; 369 u8 jumbo_en = rxq->rspq.eth_dev->data->dev_conf.rxmode.offloads & 370 DEV_RX_OFFLOAD_JUMBO_FRAME; 371 372 /* Use jumbo mtu buffers if mbuf data room size can fit jumbo data. */ 373 mbp_priv = rte_mempool_get_priv(rxq->rspq.mb_pool); 374 if (jumbo_en && 375 ((mbp_priv->mbuf_data_room_size - RTE_PKTMBUF_HEADROOM) >= 9000)) 376 buf_size_idx = RX_LARGE_MTU_BUF; 377 378 ret = rte_mempool_get_bulk(rxq->rspq.mb_pool, (void *)buf_bulk, n); 379 if (unlikely(ret != 0)) { 380 dev_debug(adap, "%s: failed to allocated fl entries in bulk ..\n", 381 __func__); 382 q->alloc_failed++; 383 rxq->rspq.eth_dev->data->rx_mbuf_alloc_failed++; 384 goto out; 385 } 386 387 for (i = 0; i < n; i++) { 388 struct rte_mbuf *mbuf = buf_bulk[i]; 389 dma_addr_t mapping; 390 391 if (!mbuf) { 392 dev_debug(adap, "%s: mbuf alloc failed\n", __func__); 393 q->alloc_failed++; 394 rxq->rspq.eth_dev->data->rx_mbuf_alloc_failed++; 395 goto out; 396 } 397 398 rte_mbuf_refcnt_set(mbuf, 1); 399 mbuf->data_off = 400 (uint16_t)(RTE_PTR_ALIGN((char *)mbuf->buf_addr + 401 RTE_PKTMBUF_HEADROOM, 402 adap->sge.fl_align) - 403 (char *)mbuf->buf_addr); 404 mbuf->next = NULL; 405 mbuf->nb_segs = 1; 406 mbuf->port = rxq->rspq.port_id; 407 408 mapping = (dma_addr_t)RTE_ALIGN(mbuf->buf_iova + 409 mbuf->data_off, 410 adap->sge.fl_align); 411 mapping |= buf_size_idx; 412 *d++ = cpu_to_be64(mapping); 413 set_rx_sw_desc(sd, mbuf, mapping); 414 sd++; 415 416 q->avail++; 417 if (++q->pidx == q->size) { 418 q->pidx = 0; 419 sd = q->sdesc; 420 d = q->desc; 421 } 422 } 423 424 out: cred = q->avail - cred; 425 q->pend_cred += cred; 426 ring_fl_db(adap, q); 427 428 if (unlikely(fl_starving(adap, q))) { 429 /* 430 * Make sure data has been written to free list 431 */ 432 wmb(); 433 q->low++; 434 } 435 436 return cred; 437 } 438 439 /** 440 * refill_fl - refill an SGE Rx buffer ring with mbufs 441 * @adap: the adapter 442 * @q: the ring to refill 443 * @n: the number of new buffers to allocate 444 * 445 * (Re)populate an SGE free-buffer queue with up to @n new packet buffers, 446 * allocated with the supplied gfp flags. The caller must assure that 447 * @n does not exceed the queue's capacity. Returns the number of buffers 448 * allocated. 449 */ 450 static unsigned int refill_fl(struct adapter *adap, struct sge_fl *q, int n) 451 { 452 return refill_fl_usembufs(adap, q, n); 453 } 454 455 static inline void __refill_fl(struct adapter *adap, struct sge_fl *fl) 456 { 457 refill_fl(adap, fl, min(MAX_RX_REFILL, fl_cap(fl) - fl->avail)); 458 } 459 460 /* 461 * Return the number of reclaimable descriptors in a Tx queue. 462 */ 463 static inline int reclaimable(const struct sge_txq *q) 464 { 465 int hw_cidx = ntohs(q->stat->cidx); 466 467 hw_cidx -= q->cidx; 468 if (hw_cidx < 0) 469 return hw_cidx + q->size; 470 return hw_cidx; 471 } 472 473 /** 474 * reclaim_completed_tx - reclaims completed Tx descriptors 475 * @q: the Tx queue to reclaim completed descriptors from 476 * 477 * Reclaims Tx descriptors that the SGE has indicated it has processed. 478 */ 479 void reclaim_completed_tx(struct sge_txq *q) 480 { 481 unsigned int avail = reclaimable(q); 482 483 do { 484 /* reclaim as much as possible */ 485 reclaim_tx_desc(q, avail); 486 q->in_use -= avail; 487 avail = reclaimable(q); 488 } while (avail); 489 } 490 491 /** 492 * sgl_len - calculates the size of an SGL of the given capacity 493 * @n: the number of SGL entries 494 * 495 * Calculates the number of flits needed for a scatter/gather list that 496 * can hold the given number of entries. 497 */ 498 static inline unsigned int sgl_len(unsigned int n) 499 { 500 /* 501 * A Direct Scatter Gather List uses 32-bit lengths and 64-bit PCI DMA 502 * addresses. The DSGL Work Request starts off with a 32-bit DSGL 503 * ULPTX header, then Length0, then Address0, then, for 1 <= i <= N, 504 * repeated sequences of { Length[i], Length[i+1], Address[i], 505 * Address[i+1] } (this ensures that all addresses are on 64-bit 506 * boundaries). If N is even, then Length[N+1] should be set to 0 and 507 * Address[N+1] is omitted. 508 * 509 * The following calculation incorporates all of the above. It's 510 * somewhat hard to follow but, briefly: the "+2" accounts for the 511 * first two flits which include the DSGL header, Length0 and 512 * Address0; the "(3*(n-1))/2" covers the main body of list entries (3 513 * flits for every pair of the remaining N) +1 if (n-1) is odd; and 514 * finally the "+((n-1)&1)" adds the one remaining flit needed if 515 * (n-1) is odd ... 516 */ 517 n--; 518 return (3 * n) / 2 + (n & 1) + 2; 519 } 520 521 /** 522 * flits_to_desc - returns the num of Tx descriptors for the given flits 523 * @n: the number of flits 524 * 525 * Returns the number of Tx descriptors needed for the supplied number 526 * of flits. 527 */ 528 static inline unsigned int flits_to_desc(unsigned int n) 529 { 530 return DIV_ROUND_UP(n, 8); 531 } 532 533 /** 534 * is_eth_imm - can an Ethernet packet be sent as immediate data? 535 * @m: the packet 536 * 537 * Returns whether an Ethernet packet is small enough to fit as 538 * immediate data. Return value corresponds to the headroom required. 539 */ 540 static inline int is_eth_imm(const struct rte_mbuf *m) 541 { 542 unsigned int hdrlen = (m->ol_flags & PKT_TX_TCP_SEG) ? 543 sizeof(struct cpl_tx_pkt_lso_core) : 0; 544 545 hdrlen += sizeof(struct cpl_tx_pkt); 546 if (m->pkt_len <= MAX_IMM_TX_PKT_LEN - hdrlen) 547 return hdrlen; 548 549 return 0; 550 } 551 552 /** 553 * calc_tx_flits - calculate the number of flits for a packet Tx WR 554 * @m: the packet 555 * @adap: adapter structure pointer 556 * 557 * Returns the number of flits needed for a Tx WR for the given Ethernet 558 * packet, including the needed WR and CPL headers. 559 */ 560 static inline unsigned int calc_tx_flits(const struct rte_mbuf *m, 561 struct adapter *adap) 562 { 563 size_t wr_size = is_pf4(adap) ? sizeof(struct fw_eth_tx_pkt_wr) : 564 sizeof(struct fw_eth_tx_pkt_vm_wr); 565 unsigned int flits; 566 int hdrlen; 567 568 /* 569 * If the mbuf is small enough, we can pump it out as a work request 570 * with only immediate data. In that case we just have to have the 571 * TX Packet header plus the mbuf data in the Work Request. 572 */ 573 574 hdrlen = is_eth_imm(m); 575 if (hdrlen) 576 return DIV_ROUND_UP(m->pkt_len + hdrlen, sizeof(__be64)); 577 578 /* 579 * Otherwise, we're going to have to construct a Scatter gather list 580 * of the mbuf body and fragments. We also include the flits necessary 581 * for the TX Packet Work Request and CPL. We always have a firmware 582 * Write Header (incorporated as part of the cpl_tx_pkt_lso and 583 * cpl_tx_pkt structures), followed by either a TX Packet Write CPL 584 * message or, if we're doing a Large Send Offload, an LSO CPL message 585 * with an embedded TX Packet Write CPL message. 586 */ 587 flits = sgl_len(m->nb_segs); 588 if (m->tso_segsz) 589 flits += (wr_size + sizeof(struct cpl_tx_pkt_lso_core) + 590 sizeof(struct cpl_tx_pkt_core)) / sizeof(__be64); 591 else 592 flits += (wr_size + 593 sizeof(struct cpl_tx_pkt_core)) / sizeof(__be64); 594 return flits; 595 } 596 597 /** 598 * write_sgl - populate a scatter/gather list for a packet 599 * @mbuf: the packet 600 * @q: the Tx queue we are writing into 601 * @sgl: starting location for writing the SGL 602 * @end: points right after the end of the SGL 603 * @start: start offset into mbuf main-body data to include in the SGL 604 * @addr: address of mapped region 605 * 606 * Generates a scatter/gather list for the buffers that make up a packet. 607 * The caller must provide adequate space for the SGL that will be written. 608 * The SGL includes all of the packet's page fragments and the data in its 609 * main body except for the first @start bytes. @sgl must be 16-byte 610 * aligned and within a Tx descriptor with available space. @end points 611 * write after the end of the SGL but does not account for any potential 612 * wrap around, i.e., @end > @sgl. 613 */ 614 static void write_sgl(struct rte_mbuf *mbuf, struct sge_txq *q, 615 struct ulptx_sgl *sgl, u64 *end, unsigned int start, 616 const dma_addr_t *addr) 617 { 618 unsigned int i, len; 619 struct ulptx_sge_pair *to; 620 struct rte_mbuf *m = mbuf; 621 unsigned int nfrags = m->nb_segs; 622 struct ulptx_sge_pair buf[nfrags / 2]; 623 624 len = m->data_len - start; 625 sgl->len0 = htonl(len); 626 sgl->addr0 = rte_cpu_to_be_64(addr[0]); 627 628 sgl->cmd_nsge = htonl(V_ULPTX_CMD(ULP_TX_SC_DSGL) | 629 V_ULPTX_NSGE(nfrags)); 630 if (likely(--nfrags == 0)) 631 return; 632 /* 633 * Most of the complexity below deals with the possibility we hit the 634 * end of the queue in the middle of writing the SGL. For this case 635 * only we create the SGL in a temporary buffer and then copy it. 636 */ 637 to = (u8 *)end > (u8 *)q->stat ? buf : sgl->sge; 638 639 for (i = 0; nfrags >= 2; nfrags -= 2, to++) { 640 m = m->next; 641 to->len[0] = rte_cpu_to_be_32(m->data_len); 642 to->addr[0] = rte_cpu_to_be_64(addr[++i]); 643 m = m->next; 644 to->len[1] = rte_cpu_to_be_32(m->data_len); 645 to->addr[1] = rte_cpu_to_be_64(addr[++i]); 646 } 647 if (nfrags) { 648 m = m->next; 649 to->len[0] = rte_cpu_to_be_32(m->data_len); 650 to->len[1] = rte_cpu_to_be_32(0); 651 to->addr[0] = rte_cpu_to_be_64(addr[i + 1]); 652 } 653 if (unlikely((u8 *)end > (u8 *)q->stat)) { 654 unsigned int part0 = RTE_PTR_DIFF((u8 *)q->stat, 655 (u8 *)sgl->sge); 656 unsigned int part1; 657 658 if (likely(part0)) 659 memcpy(sgl->sge, buf, part0); 660 part1 = RTE_PTR_DIFF((u8 *)end, (u8 *)q->stat); 661 rte_memcpy(q->desc, RTE_PTR_ADD((u8 *)buf, part0), part1); 662 end = RTE_PTR_ADD((void *)q->desc, part1); 663 } 664 if ((uintptr_t)end & 8) /* 0-pad to multiple of 16 */ 665 *(u64 *)end = 0; 666 } 667 668 #define IDXDIFF(head, tail, wrap) \ 669 ((head) >= (tail) ? (head) - (tail) : (wrap) - (tail) + (head)) 670 671 #define Q_IDXDIFF(q, idx) IDXDIFF((q)->pidx, (q)->idx, (q)->size) 672 #define R_IDXDIFF(q, idx) IDXDIFF((q)->cidx, (q)->idx, (q)->size) 673 674 #define PIDXDIFF(head, tail, wrap) \ 675 ((tail) >= (head) ? (tail) - (head) : (wrap) - (head) + (tail)) 676 #define P_IDXDIFF(q, idx) PIDXDIFF((q)->cidx, idx, (q)->size) 677 678 /** 679 * ring_tx_db - ring a Tx queue's doorbell 680 * @adap: the adapter 681 * @q: the Tx queue 682 * @n: number of new descriptors to give to HW 683 * 684 * Ring the doorbel for a Tx queue. 685 */ 686 static inline void ring_tx_db(struct adapter *adap, struct sge_txq *q) 687 { 688 int n = Q_IDXDIFF(q, dbidx); 689 690 /* 691 * Make sure that all writes to the TX Descriptors are committed 692 * before we tell the hardware about them. 693 */ 694 rte_wmb(); 695 696 /* 697 * If we don't have access to the new User Doorbell (T5+), use the old 698 * doorbell mechanism; otherwise use the new BAR2 mechanism. 699 */ 700 if (unlikely(!q->bar2_addr)) { 701 u32 val = V_PIDX(n); 702 703 /* 704 * For T4 we need to participate in the Doorbell Recovery 705 * mechanism. 706 */ 707 if (!q->db_disabled) 708 t4_write_reg(adap, MYPF_REG(A_SGE_PF_KDOORBELL), 709 V_QID(q->cntxt_id) | val); 710 else 711 q->db_pidx_inc += n; 712 q->db_pidx = q->pidx; 713 } else { 714 u32 val = V_PIDX_T5(n); 715 716 /* 717 * T4 and later chips share the same PIDX field offset within 718 * the doorbell, but T5 and later shrank the field in order to 719 * gain a bit for Doorbell Priority. The field was absurdly 720 * large in the first place (14 bits) so we just use the T5 721 * and later limits and warn if a Queue ID is too large. 722 */ 723 WARN_ON(val & F_DBPRIO); 724 725 writel(val | V_QID(q->bar2_qid), 726 (void *)((uintptr_t)q->bar2_addr + SGE_UDB_KDOORBELL)); 727 728 /* 729 * This Write Memory Barrier will force the write to the User 730 * Doorbell area to be flushed. This is needed to prevent 731 * writes on different CPUs for the same queue from hitting 732 * the adapter out of order. This is required when some Work 733 * Requests take the Write Combine Gather Buffer path (user 734 * doorbell area offset [SGE_UDB_WCDOORBELL..+63]) and some 735 * take the traditional path where we simply increment the 736 * PIDX (User Doorbell area SGE_UDB_KDOORBELL) and have the 737 * hardware DMA read the actual Work Request. 738 */ 739 rte_wmb(); 740 } 741 q->dbidx = q->pidx; 742 } 743 744 /* 745 * Figure out what HW csum a packet wants and return the appropriate control 746 * bits. 747 */ 748 static u64 hwcsum(enum chip_type chip, const struct rte_mbuf *m) 749 { 750 int csum_type; 751 752 if (m->ol_flags & PKT_TX_IP_CKSUM) { 753 switch (m->ol_flags & PKT_TX_L4_MASK) { 754 case PKT_TX_TCP_CKSUM: 755 csum_type = TX_CSUM_TCPIP; 756 break; 757 case PKT_TX_UDP_CKSUM: 758 csum_type = TX_CSUM_UDPIP; 759 break; 760 default: 761 goto nocsum; 762 } 763 } else { 764 goto nocsum; 765 } 766 767 if (likely(csum_type >= TX_CSUM_TCPIP)) { 768 u64 hdr_len = V_TXPKT_IPHDR_LEN(m->l3_len); 769 int eth_hdr_len = m->l2_len; 770 771 if (CHELSIO_CHIP_VERSION(chip) <= CHELSIO_T5) 772 hdr_len |= V_TXPKT_ETHHDR_LEN(eth_hdr_len); 773 else 774 hdr_len |= V_T6_TXPKT_ETHHDR_LEN(eth_hdr_len); 775 return V_TXPKT_CSUM_TYPE(csum_type) | hdr_len; 776 } 777 nocsum: 778 /* 779 * unknown protocol, disable HW csum 780 * and hope a bad packet is detected 781 */ 782 return F_TXPKT_L4CSUM_DIS; 783 } 784 785 static inline void txq_advance(struct sge_txq *q, unsigned int n) 786 { 787 q->in_use += n; 788 q->pidx += n; 789 if (q->pidx >= q->size) 790 q->pidx -= q->size; 791 } 792 793 #define MAX_COALESCE_LEN 64000 794 795 static inline int wraps_around(struct sge_txq *q, int ndesc) 796 { 797 return (q->pidx + ndesc) > q->size ? 1 : 0; 798 } 799 800 static void tx_timer_cb(void *data) 801 { 802 struct adapter *adap = (struct adapter *)data; 803 struct sge_eth_txq *txq = &adap->sge.ethtxq[0]; 804 int i; 805 unsigned int coal_idx; 806 807 /* monitor any pending tx */ 808 for (i = 0; i < adap->sge.max_ethqsets; i++, txq++) { 809 if (t4_os_trylock(&txq->txq_lock)) { 810 coal_idx = txq->q.coalesce.idx; 811 if (coal_idx) { 812 if (coal_idx == txq->q.last_coal_idx && 813 txq->q.pidx == txq->q.last_pidx) { 814 ship_tx_pkt_coalesce_wr(adap, txq); 815 } else { 816 txq->q.last_coal_idx = coal_idx; 817 txq->q.last_pidx = txq->q.pidx; 818 } 819 } 820 t4_os_unlock(&txq->txq_lock); 821 } 822 } 823 rte_eal_alarm_set(50, tx_timer_cb, (void *)adap); 824 } 825 826 /** 827 * ship_tx_pkt_coalesce_wr - finalizes and ships a coalesce WR 828 * @ adap: adapter structure 829 * @txq: tx queue 830 * 831 * writes the different fields of the pkts WR and sends it. 832 */ 833 static inline void ship_tx_pkt_coalesce_wr(struct adapter *adap, 834 struct sge_eth_txq *txq) 835 { 836 struct fw_eth_tx_pkts_vm_wr *vmwr; 837 const size_t fw_hdr_copy_len = (sizeof(vmwr->ethmacdst) + 838 sizeof(vmwr->ethmacsrc) + 839 sizeof(vmwr->ethtype) + 840 sizeof(vmwr->vlantci)); 841 struct fw_eth_tx_pkts_wr *wr; 842 struct sge_txq *q = &txq->q; 843 unsigned int ndesc; 844 u32 wr_mid; 845 846 /* fill the pkts WR header */ 847 wr = (void *)&q->desc[q->pidx]; 848 wr->op_pkd = htonl(V_FW_WR_OP(FW_ETH_TX_PKTS2_WR)); 849 vmwr = (void *)&q->desc[q->pidx]; 850 851 wr_mid = V_FW_WR_LEN16(DIV_ROUND_UP(q->coalesce.flits, 2)); 852 ndesc = flits_to_desc(q->coalesce.flits); 853 wr->equiq_to_len16 = htonl(wr_mid); 854 wr->plen = cpu_to_be16(q->coalesce.len); 855 wr->npkt = q->coalesce.idx; 856 wr->r3 = 0; 857 if (is_pf4(adap)) { 858 wr->op_pkd = htonl(V_FW_WR_OP(FW_ETH_TX_PKTS2_WR)); 859 wr->type = q->coalesce.type; 860 } else { 861 wr->op_pkd = htonl(V_FW_WR_OP(FW_ETH_TX_PKTS_VM_WR)); 862 vmwr->r4 = 0; 863 memcpy((void *)vmwr->ethmacdst, (void *)q->coalesce.ethmacdst, 864 fw_hdr_copy_len); 865 } 866 867 /* zero out coalesce structure members */ 868 memset((void *)&q->coalesce, 0, sizeof(struct eth_coalesce)); 869 870 txq_advance(q, ndesc); 871 txq->stats.coal_wr++; 872 txq->stats.coal_pkts += wr->npkt; 873 874 if (Q_IDXDIFF(q, equeidx) >= q->size / 2) { 875 q->equeidx = q->pidx; 876 wr_mid |= F_FW_WR_EQUEQ; 877 wr->equiq_to_len16 = htonl(wr_mid); 878 } 879 ring_tx_db(adap, q); 880 } 881 882 /** 883 * should_tx_packet_coalesce - decides wether to coalesce an mbuf or not 884 * @txq: tx queue where the mbuf is sent 885 * @mbuf: mbuf to be sent 886 * @nflits: return value for number of flits needed 887 * @adap: adapter structure 888 * 889 * This function decides if a packet should be coalesced or not. 890 */ 891 static inline int should_tx_packet_coalesce(struct sge_eth_txq *txq, 892 struct rte_mbuf *mbuf, 893 unsigned int *nflits, 894 struct adapter *adap) 895 { 896 struct fw_eth_tx_pkts_vm_wr *wr; 897 const size_t fw_hdr_copy_len = (sizeof(wr->ethmacdst) + 898 sizeof(wr->ethmacsrc) + 899 sizeof(wr->ethtype) + 900 sizeof(wr->vlantci)); 901 struct sge_txq *q = &txq->q; 902 unsigned int flits, ndesc; 903 unsigned char type = 0; 904 int credits, wr_size; 905 906 /* use coal WR type 1 when no frags are present */ 907 type = (mbuf->nb_segs == 1) ? 1 : 0; 908 if (!is_pf4(adap)) { 909 if (!type) 910 return 0; 911 912 if (q->coalesce.idx && memcmp((void *)q->coalesce.ethmacdst, 913 rte_pktmbuf_mtod(mbuf, void *), 914 fw_hdr_copy_len)) 915 ship_tx_pkt_coalesce_wr(adap, txq); 916 } 917 918 if (unlikely(type != q->coalesce.type && q->coalesce.idx)) 919 ship_tx_pkt_coalesce_wr(adap, txq); 920 921 /* calculate the number of flits required for coalescing this packet 922 * without the 2 flits of the WR header. These are added further down 923 * if we are just starting in new PKTS WR. sgl_len doesn't account for 924 * the possible 16 bytes alignment ULP TX commands so we do it here. 925 */ 926 flits = (sgl_len(mbuf->nb_segs) + 1) & ~1U; 927 if (type == 0) 928 flits += (sizeof(struct ulp_txpkt) + 929 sizeof(struct ulptx_idata)) / sizeof(__be64); 930 flits += sizeof(struct cpl_tx_pkt_core) / sizeof(__be64); 931 *nflits = flits; 932 933 /* If coalescing is on, the mbuf is added to a pkts WR */ 934 if (q->coalesce.idx) { 935 ndesc = DIV_ROUND_UP(q->coalesce.flits + flits, 8); 936 credits = txq_avail(q) - ndesc; 937 938 /* If we are wrapping or this is last mbuf then, send the 939 * already coalesced mbufs and let the non-coalesce pass 940 * handle the mbuf. 941 */ 942 if (unlikely(credits < 0 || wraps_around(q, ndesc))) { 943 ship_tx_pkt_coalesce_wr(adap, txq); 944 return 0; 945 } 946 947 /* If the max coalesce len or the max WR len is reached 948 * ship the WR and keep coalescing on. 949 */ 950 if (unlikely((q->coalesce.len + mbuf->pkt_len > 951 MAX_COALESCE_LEN) || 952 (q->coalesce.flits + flits > 953 q->coalesce.max))) { 954 ship_tx_pkt_coalesce_wr(adap, txq); 955 goto new; 956 } 957 return 1; 958 } 959 960 new: 961 /* start a new pkts WR, the WR header is not filled below */ 962 wr_size = is_pf4(adap) ? sizeof(struct fw_eth_tx_pkts_wr) : 963 sizeof(struct fw_eth_tx_pkts_vm_wr); 964 flits += wr_size / sizeof(__be64); 965 ndesc = flits_to_desc(q->coalesce.flits + flits); 966 credits = txq_avail(q) - ndesc; 967 968 if (unlikely(credits < 0 || wraps_around(q, ndesc))) 969 return 0; 970 q->coalesce.flits += wr_size / sizeof(__be64); 971 q->coalesce.type = type; 972 q->coalesce.ptr = (unsigned char *)&q->desc[q->pidx] + 973 q->coalesce.flits * sizeof(__be64); 974 if (!is_pf4(adap)) 975 memcpy((void *)q->coalesce.ethmacdst, 976 rte_pktmbuf_mtod(mbuf, void *), fw_hdr_copy_len); 977 return 1; 978 } 979 980 /** 981 * tx_do_packet_coalesce - add an mbuf to a coalesce WR 982 * @txq: sge_eth_txq used send the mbuf 983 * @mbuf: mbuf to be sent 984 * @flits: flits needed for this mbuf 985 * @adap: adapter structure 986 * @pi: port_info structure 987 * @addr: mapped address of the mbuf 988 * 989 * Adds an mbuf to be sent as part of a coalesce WR by filling a 990 * ulp_tx_pkt command, ulp_tx_sc_imm command, cpl message and 991 * ulp_tx_sc_dsgl command. 992 */ 993 static inline int tx_do_packet_coalesce(struct sge_eth_txq *txq, 994 struct rte_mbuf *mbuf, 995 int flits, struct adapter *adap, 996 const struct port_info *pi, 997 dma_addr_t *addr, uint16_t nb_pkts) 998 { 999 u64 cntrl, *end; 1000 struct sge_txq *q = &txq->q; 1001 struct ulp_txpkt *mc; 1002 struct ulptx_idata *sc_imm; 1003 struct cpl_tx_pkt_core *cpl; 1004 struct tx_sw_desc *sd; 1005 unsigned int idx = q->coalesce.idx, len = mbuf->pkt_len; 1006 unsigned int max_coal_pkt_num = is_pf4(adap) ? ETH_COALESCE_PKT_NUM : 1007 ETH_COALESCE_VF_PKT_NUM; 1008 1009 #ifdef RTE_LIBRTE_CXGBE_TPUT 1010 RTE_SET_USED(nb_pkts); 1011 #endif 1012 1013 if (q->coalesce.type == 0) { 1014 mc = (struct ulp_txpkt *)q->coalesce.ptr; 1015 mc->cmd_dest = htonl(V_ULPTX_CMD(4) | V_ULP_TXPKT_DEST(0) | 1016 V_ULP_TXPKT_FID(adap->sge.fw_evtq.cntxt_id) | 1017 F_ULP_TXPKT_RO); 1018 mc->len = htonl(DIV_ROUND_UP(flits, 2)); 1019 sc_imm = (struct ulptx_idata *)(mc + 1); 1020 sc_imm->cmd_more = htonl(V_ULPTX_CMD(ULP_TX_SC_IMM) | 1021 F_ULP_TX_SC_MORE); 1022 sc_imm->len = htonl(sizeof(*cpl)); 1023 end = (u64 *)mc + flits; 1024 cpl = (struct cpl_tx_pkt_core *)(sc_imm + 1); 1025 } else { 1026 end = (u64 *)q->coalesce.ptr + flits; 1027 cpl = (struct cpl_tx_pkt_core *)q->coalesce.ptr; 1028 } 1029 1030 /* update coalesce structure for this txq */ 1031 q->coalesce.flits += flits; 1032 q->coalesce.ptr += flits * sizeof(__be64); 1033 q->coalesce.len += mbuf->pkt_len; 1034 1035 /* fill the cpl message, same as in t4_eth_xmit, this should be kept 1036 * similar to t4_eth_xmit 1037 */ 1038 if (mbuf->ol_flags & PKT_TX_IP_CKSUM) { 1039 cntrl = hwcsum(adap->params.chip, mbuf) | 1040 F_TXPKT_IPCSUM_DIS; 1041 txq->stats.tx_cso++; 1042 } else { 1043 cntrl = F_TXPKT_L4CSUM_DIS | F_TXPKT_IPCSUM_DIS; 1044 } 1045 1046 if (mbuf->ol_flags & PKT_TX_VLAN_PKT) { 1047 txq->stats.vlan_ins++; 1048 cntrl |= F_TXPKT_VLAN_VLD | V_TXPKT_VLAN(mbuf->vlan_tci); 1049 } 1050 1051 cpl->ctrl0 = htonl(V_TXPKT_OPCODE(CPL_TX_PKT_XT)); 1052 if (is_pf4(adap)) 1053 cpl->ctrl0 |= htonl(V_TXPKT_INTF(pi->tx_chan) | 1054 V_TXPKT_PF(adap->pf)); 1055 else 1056 cpl->ctrl0 |= htonl(V_TXPKT_INTF(pi->port_id)); 1057 cpl->pack = htons(0); 1058 cpl->len = htons(len); 1059 cpl->ctrl1 = cpu_to_be64(cntrl); 1060 write_sgl(mbuf, q, (struct ulptx_sgl *)(cpl + 1), end, 0, addr); 1061 txq->stats.pkts++; 1062 txq->stats.tx_bytes += len; 1063 1064 sd = &q->sdesc[q->pidx + (idx >> 1)]; 1065 if (!(idx & 1)) { 1066 if (sd->coalesce.idx) { 1067 int i; 1068 1069 for (i = 0; i < sd->coalesce.idx; i++) { 1070 rte_pktmbuf_free(sd->coalesce.mbuf[i]); 1071 sd->coalesce.mbuf[i] = NULL; 1072 } 1073 } 1074 } 1075 1076 /* store pointers to the mbuf and the sgl used in free_tx_desc. 1077 * each tx desc can hold two pointers corresponding to the value 1078 * of ETH_COALESCE_PKT_PER_DESC 1079 */ 1080 sd->coalesce.mbuf[idx & 1] = mbuf; 1081 sd->coalesce.sgl[idx & 1] = (struct ulptx_sgl *)(cpl + 1); 1082 sd->coalesce.idx = (idx & 1) + 1; 1083 1084 /* send the coaelsced work request if max reached */ 1085 if (++q->coalesce.idx == max_coal_pkt_num 1086 #ifndef RTE_LIBRTE_CXGBE_TPUT 1087 || q->coalesce.idx >= nb_pkts 1088 #endif 1089 ) 1090 ship_tx_pkt_coalesce_wr(adap, txq); 1091 return 0; 1092 } 1093 1094 /** 1095 * t4_eth_xmit - add a packet to an Ethernet Tx queue 1096 * @txq: the egress queue 1097 * @mbuf: the packet 1098 * 1099 * Add a packet to an SGE Ethernet Tx queue. Runs with softirqs disabled. 1100 */ 1101 int t4_eth_xmit(struct sge_eth_txq *txq, struct rte_mbuf *mbuf, 1102 uint16_t nb_pkts) 1103 { 1104 const struct port_info *pi; 1105 struct cpl_tx_pkt_lso_core *lso; 1106 struct adapter *adap; 1107 struct rte_mbuf *m = mbuf; 1108 struct fw_eth_tx_pkt_wr *wr; 1109 struct fw_eth_tx_pkt_vm_wr *vmwr; 1110 struct cpl_tx_pkt_core *cpl; 1111 struct tx_sw_desc *d; 1112 dma_addr_t addr[m->nb_segs]; 1113 unsigned int flits, ndesc, cflits; 1114 int l3hdr_len, l4hdr_len, eth_xtra_len; 1115 int len, last_desc; 1116 int credits; 1117 u32 wr_mid; 1118 u64 cntrl, *end; 1119 bool v6; 1120 u32 max_pkt_len = txq->data->dev_conf.rxmode.max_rx_pkt_len; 1121 1122 /* Reject xmit if queue is stopped */ 1123 if (unlikely(txq->flags & EQ_STOPPED)) 1124 return -(EBUSY); 1125 1126 /* 1127 * The chip min packet length is 10 octets but play safe and reject 1128 * anything shorter than an Ethernet header. 1129 */ 1130 if (unlikely(m->pkt_len < ETHER_HDR_LEN)) { 1131 out_free: 1132 rte_pktmbuf_free(m); 1133 return 0; 1134 } 1135 1136 if ((!(m->ol_flags & PKT_TX_TCP_SEG)) && 1137 (unlikely(m->pkt_len > max_pkt_len))) 1138 goto out_free; 1139 1140 pi = (struct port_info *)txq->data->dev_private; 1141 adap = pi->adapter; 1142 1143 cntrl = F_TXPKT_L4CSUM_DIS | F_TXPKT_IPCSUM_DIS; 1144 /* align the end of coalesce WR to a 512 byte boundary */ 1145 txq->q.coalesce.max = (8 - (txq->q.pidx & 7)) * 8; 1146 1147 if (!((m->ol_flags & PKT_TX_TCP_SEG) || (m->pkt_len > ETHER_MAX_LEN))) { 1148 if (should_tx_packet_coalesce(txq, mbuf, &cflits, adap)) { 1149 if (unlikely(map_mbuf(mbuf, addr) < 0)) { 1150 dev_warn(adap, "%s: mapping err for coalesce\n", 1151 __func__); 1152 txq->stats.mapping_err++; 1153 goto out_free; 1154 } 1155 rte_prefetch0((volatile void *)addr); 1156 return tx_do_packet_coalesce(txq, mbuf, cflits, adap, 1157 pi, addr, nb_pkts); 1158 } else { 1159 return -EBUSY; 1160 } 1161 } 1162 1163 if (txq->q.coalesce.idx) 1164 ship_tx_pkt_coalesce_wr(adap, txq); 1165 1166 flits = calc_tx_flits(m, adap); 1167 ndesc = flits_to_desc(flits); 1168 credits = txq_avail(&txq->q) - ndesc; 1169 1170 if (unlikely(credits < 0)) { 1171 dev_debug(adap, "%s: Tx ring %u full; credits = %d\n", 1172 __func__, txq->q.cntxt_id, credits); 1173 return -EBUSY; 1174 } 1175 1176 if (unlikely(map_mbuf(m, addr) < 0)) { 1177 txq->stats.mapping_err++; 1178 goto out_free; 1179 } 1180 1181 wr_mid = V_FW_WR_LEN16(DIV_ROUND_UP(flits, 2)); 1182 if (Q_IDXDIFF(&txq->q, equeidx) >= 64) { 1183 txq->q.equeidx = txq->q.pidx; 1184 wr_mid |= F_FW_WR_EQUEQ; 1185 } 1186 1187 wr = (void *)&txq->q.desc[txq->q.pidx]; 1188 vmwr = (void *)&txq->q.desc[txq->q.pidx]; 1189 wr->equiq_to_len16 = htonl(wr_mid); 1190 if (is_pf4(adap)) { 1191 wr->r3 = rte_cpu_to_be_64(0); 1192 end = (u64 *)wr + flits; 1193 } else { 1194 const size_t fw_hdr_copy_len = (sizeof(vmwr->ethmacdst) + 1195 sizeof(vmwr->ethmacsrc) + 1196 sizeof(vmwr->ethtype) + 1197 sizeof(vmwr->vlantci)); 1198 1199 vmwr->r3[0] = rte_cpu_to_be_32(0); 1200 vmwr->r3[1] = rte_cpu_to_be_32(0); 1201 memcpy((void *)vmwr->ethmacdst, rte_pktmbuf_mtod(m, void *), 1202 fw_hdr_copy_len); 1203 end = (u64 *)vmwr + flits; 1204 } 1205 1206 len = 0; 1207 len += sizeof(*cpl); 1208 1209 /* Coalescing skipped and we send through normal path */ 1210 if (!(m->ol_flags & PKT_TX_TCP_SEG)) { 1211 wr->op_immdlen = htonl(V_FW_WR_OP(is_pf4(adap) ? 1212 FW_ETH_TX_PKT_WR : 1213 FW_ETH_TX_PKT_VM_WR) | 1214 V_FW_WR_IMMDLEN(len)); 1215 if (is_pf4(adap)) 1216 cpl = (void *)(wr + 1); 1217 else 1218 cpl = (void *)(vmwr + 1); 1219 if (m->ol_flags & PKT_TX_IP_CKSUM) { 1220 cntrl = hwcsum(adap->params.chip, m) | 1221 F_TXPKT_IPCSUM_DIS; 1222 txq->stats.tx_cso++; 1223 } 1224 } else { 1225 if (is_pf4(adap)) 1226 lso = (void *)(wr + 1); 1227 else 1228 lso = (void *)(vmwr + 1); 1229 v6 = (m->ol_flags & PKT_TX_IPV6) != 0; 1230 l3hdr_len = m->l3_len; 1231 l4hdr_len = m->l4_len; 1232 eth_xtra_len = m->l2_len - ETHER_HDR_LEN; 1233 len += sizeof(*lso); 1234 wr->op_immdlen = htonl(V_FW_WR_OP(is_pf4(adap) ? 1235 FW_ETH_TX_PKT_WR : 1236 FW_ETH_TX_PKT_VM_WR) | 1237 V_FW_WR_IMMDLEN(len)); 1238 lso->lso_ctrl = htonl(V_LSO_OPCODE(CPL_TX_PKT_LSO) | 1239 F_LSO_FIRST_SLICE | F_LSO_LAST_SLICE | 1240 V_LSO_IPV6(v6) | 1241 V_LSO_ETHHDR_LEN(eth_xtra_len / 4) | 1242 V_LSO_IPHDR_LEN(l3hdr_len / 4) | 1243 V_LSO_TCPHDR_LEN(l4hdr_len / 4)); 1244 lso->ipid_ofst = htons(0); 1245 lso->mss = htons(m->tso_segsz); 1246 lso->seqno_offset = htonl(0); 1247 if (is_t4(adap->params.chip)) 1248 lso->len = htonl(m->pkt_len); 1249 else 1250 lso->len = htonl(V_LSO_T5_XFER_SIZE(m->pkt_len)); 1251 cpl = (void *)(lso + 1); 1252 1253 if (CHELSIO_CHIP_VERSION(adap->params.chip) <= CHELSIO_T5) 1254 cntrl = V_TXPKT_ETHHDR_LEN(eth_xtra_len); 1255 else 1256 cntrl = V_T6_TXPKT_ETHHDR_LEN(eth_xtra_len); 1257 1258 cntrl |= V_TXPKT_CSUM_TYPE(v6 ? TX_CSUM_TCPIP6 : 1259 TX_CSUM_TCPIP) | 1260 V_TXPKT_IPHDR_LEN(l3hdr_len); 1261 txq->stats.tso++; 1262 txq->stats.tx_cso += m->tso_segsz; 1263 } 1264 1265 if (m->ol_flags & PKT_TX_VLAN_PKT) { 1266 txq->stats.vlan_ins++; 1267 cntrl |= F_TXPKT_VLAN_VLD | V_TXPKT_VLAN(m->vlan_tci); 1268 } 1269 1270 cpl->ctrl0 = htonl(V_TXPKT_OPCODE(CPL_TX_PKT_XT)); 1271 if (is_pf4(adap)) 1272 cpl->ctrl0 |= htonl(V_TXPKT_INTF(pi->tx_chan) | 1273 V_TXPKT_PF(adap->pf)); 1274 else 1275 cpl->ctrl0 |= htonl(V_TXPKT_INTF(pi->port_id) | 1276 V_TXPKT_PF(0)); 1277 1278 cpl->pack = htons(0); 1279 cpl->len = htons(m->pkt_len); 1280 cpl->ctrl1 = cpu_to_be64(cntrl); 1281 1282 txq->stats.pkts++; 1283 txq->stats.tx_bytes += m->pkt_len; 1284 last_desc = txq->q.pidx + ndesc - 1; 1285 if (last_desc >= (int)txq->q.size) 1286 last_desc -= txq->q.size; 1287 1288 d = &txq->q.sdesc[last_desc]; 1289 if (d->coalesce.idx) { 1290 int i; 1291 1292 for (i = 0; i < d->coalesce.idx; i++) { 1293 rte_pktmbuf_free(d->coalesce.mbuf[i]); 1294 d->coalesce.mbuf[i] = NULL; 1295 } 1296 d->coalesce.idx = 0; 1297 } 1298 write_sgl(m, &txq->q, (struct ulptx_sgl *)(cpl + 1), end, 0, 1299 addr); 1300 txq->q.sdesc[last_desc].mbuf = m; 1301 txq->q.sdesc[last_desc].sgl = (struct ulptx_sgl *)(cpl + 1); 1302 txq_advance(&txq->q, ndesc); 1303 ring_tx_db(adap, &txq->q); 1304 return 0; 1305 } 1306 1307 /** 1308 * reclaim_completed_tx_imm - reclaim completed control-queue Tx descs 1309 * @q: the SGE control Tx queue 1310 * 1311 * This is a variant of reclaim_completed_tx() that is used for Tx queues 1312 * that send only immediate data (presently just the control queues) and 1313 * thus do not have any mbufs to release. 1314 */ 1315 static inline void reclaim_completed_tx_imm(struct sge_txq *q) 1316 { 1317 int hw_cidx = ntohs(q->stat->cidx); 1318 int reclaim = hw_cidx - q->cidx; 1319 1320 if (reclaim < 0) 1321 reclaim += q->size; 1322 1323 q->in_use -= reclaim; 1324 q->cidx = hw_cidx; 1325 } 1326 1327 /** 1328 * is_imm - check whether a packet can be sent as immediate data 1329 * @mbuf: the packet 1330 * 1331 * Returns true if a packet can be sent as a WR with immediate data. 1332 */ 1333 static inline int is_imm(const struct rte_mbuf *mbuf) 1334 { 1335 return mbuf->pkt_len <= MAX_CTRL_WR_LEN; 1336 } 1337 1338 /** 1339 * inline_tx_mbuf: inline a packet's data into TX descriptors 1340 * @q: the TX queue where the packet will be inlined 1341 * @from: pointer to data portion of packet 1342 * @to: pointer after cpl where data has to be inlined 1343 * @len: length of data to inline 1344 * 1345 * Inline a packet's contents directly to TX descriptors, starting at 1346 * the given position within the TX DMA ring. 1347 * Most of the complexity of this operation is dealing with wrap arounds 1348 * in the middle of the packet we want to inline. 1349 */ 1350 static void inline_tx_mbuf(const struct sge_txq *q, caddr_t from, caddr_t *to, 1351 int len) 1352 { 1353 int left = RTE_PTR_DIFF(q->stat, *to); 1354 1355 if (likely((uintptr_t)*to + len <= (uintptr_t)q->stat)) { 1356 rte_memcpy(*to, from, len); 1357 *to = RTE_PTR_ADD(*to, len); 1358 } else { 1359 rte_memcpy(*to, from, left); 1360 from = RTE_PTR_ADD(from, left); 1361 left = len - left; 1362 rte_memcpy((void *)q->desc, from, left); 1363 *to = RTE_PTR_ADD((void *)q->desc, left); 1364 } 1365 } 1366 1367 /** 1368 * ctrl_xmit - send a packet through an SGE control Tx queue 1369 * @q: the control queue 1370 * @mbuf: the packet 1371 * 1372 * Send a packet through an SGE control Tx queue. Packets sent through 1373 * a control queue must fit entirely as immediate data. 1374 */ 1375 static int ctrl_xmit(struct sge_ctrl_txq *q, struct rte_mbuf *mbuf) 1376 { 1377 unsigned int ndesc; 1378 struct fw_wr_hdr *wr; 1379 caddr_t dst; 1380 1381 if (unlikely(!is_imm(mbuf))) { 1382 WARN_ON(1); 1383 rte_pktmbuf_free(mbuf); 1384 return -1; 1385 } 1386 1387 reclaim_completed_tx_imm(&q->q); 1388 ndesc = DIV_ROUND_UP(mbuf->pkt_len, sizeof(struct tx_desc)); 1389 t4_os_lock(&q->ctrlq_lock); 1390 1391 q->full = txq_avail(&q->q) < ndesc ? 1 : 0; 1392 if (unlikely(q->full)) { 1393 t4_os_unlock(&q->ctrlq_lock); 1394 return -1; 1395 } 1396 1397 wr = (struct fw_wr_hdr *)&q->q.desc[q->q.pidx]; 1398 dst = (void *)wr; 1399 inline_tx_mbuf(&q->q, rte_pktmbuf_mtod(mbuf, caddr_t), 1400 &dst, mbuf->data_len); 1401 1402 txq_advance(&q->q, ndesc); 1403 if (unlikely(txq_avail(&q->q) < 64)) 1404 wr->lo |= htonl(F_FW_WR_EQUEQ); 1405 1406 q->txp++; 1407 1408 ring_tx_db(q->adapter, &q->q); 1409 t4_os_unlock(&q->ctrlq_lock); 1410 1411 rte_pktmbuf_free(mbuf); 1412 return 0; 1413 } 1414 1415 /** 1416 * t4_mgmt_tx - send a management message 1417 * @q: the control queue 1418 * @mbuf: the packet containing the management message 1419 * 1420 * Send a management message through control queue. 1421 */ 1422 int t4_mgmt_tx(struct sge_ctrl_txq *q, struct rte_mbuf *mbuf) 1423 { 1424 return ctrl_xmit(q, mbuf); 1425 } 1426 1427 /** 1428 * alloc_ring - allocate resources for an SGE descriptor ring 1429 * @dev: the PCI device's core device 1430 * @nelem: the number of descriptors 1431 * @elem_size: the size of each descriptor 1432 * @sw_size: the size of the SW state associated with each ring element 1433 * @phys: the physical address of the allocated ring 1434 * @metadata: address of the array holding the SW state for the ring 1435 * @stat_size: extra space in HW ring for status information 1436 * @node: preferred node for memory allocations 1437 * 1438 * Allocates resources for an SGE descriptor ring, such as Tx queues, 1439 * free buffer lists, or response queues. Each SGE ring requires 1440 * space for its HW descriptors plus, optionally, space for the SW state 1441 * associated with each HW entry (the metadata). The function returns 1442 * three values: the virtual address for the HW ring (the return value 1443 * of the function), the bus address of the HW ring, and the address 1444 * of the SW ring. 1445 */ 1446 static void *alloc_ring(size_t nelem, size_t elem_size, 1447 size_t sw_size, dma_addr_t *phys, void *metadata, 1448 size_t stat_size, __rte_unused uint16_t queue_id, 1449 int socket_id, const char *z_name, 1450 const char *z_name_sw) 1451 { 1452 size_t len = CXGBE_MAX_RING_DESC_SIZE * elem_size + stat_size; 1453 const struct rte_memzone *tz; 1454 void *s = NULL; 1455 1456 dev_debug(adapter, "%s: nelem = %zu; elem_size = %zu; sw_size = %zu; " 1457 "stat_size = %zu; queue_id = %u; socket_id = %d; z_name = %s;" 1458 " z_name_sw = %s\n", __func__, nelem, elem_size, sw_size, 1459 stat_size, queue_id, socket_id, z_name, z_name_sw); 1460 1461 tz = rte_memzone_lookup(z_name); 1462 if (tz) { 1463 dev_debug(adapter, "%s: tz exists...returning existing..\n", 1464 __func__); 1465 goto alloc_sw_ring; 1466 } 1467 1468 /* 1469 * Allocate TX/RX ring hardware descriptors. A memzone large enough to 1470 * handle the maximum ring size is allocated in order to allow for 1471 * resizing in later calls to the queue setup function. 1472 */ 1473 tz = rte_memzone_reserve_aligned(z_name, len, socket_id, 1474 RTE_MEMZONE_IOVA_CONTIG, 4096); 1475 if (!tz) 1476 return NULL; 1477 1478 alloc_sw_ring: 1479 memset(tz->addr, 0, len); 1480 if (sw_size) { 1481 s = rte_zmalloc_socket(z_name_sw, nelem * sw_size, 1482 RTE_CACHE_LINE_SIZE, socket_id); 1483 1484 if (!s) { 1485 dev_err(adapter, "%s: failed to get sw_ring memory\n", 1486 __func__); 1487 return NULL; 1488 } 1489 } 1490 if (metadata) 1491 *(void **)metadata = s; 1492 1493 *phys = (uint64_t)tz->iova; 1494 return tz->addr; 1495 } 1496 1497 /** 1498 * t4_pktgl_to_mbuf_usembufs - build an mbuf from a packet gather list 1499 * @gl: the gather list 1500 * 1501 * Builds an mbuf from the given packet gather list. Returns the mbuf or 1502 * %NULL if mbuf allocation failed. 1503 */ 1504 static struct rte_mbuf *t4_pktgl_to_mbuf_usembufs(const struct pkt_gl *gl) 1505 { 1506 /* 1507 * If there's only one mbuf fragment, just return that. 1508 */ 1509 if (likely(gl->nfrags == 1)) 1510 return gl->mbufs[0]; 1511 1512 return NULL; 1513 } 1514 1515 /** 1516 * t4_pktgl_to_mbuf - build an mbuf from a packet gather list 1517 * @gl: the gather list 1518 * 1519 * Builds an mbuf from the given packet gather list. Returns the mbuf or 1520 * %NULL if mbuf allocation failed. 1521 */ 1522 static struct rte_mbuf *t4_pktgl_to_mbuf(const struct pkt_gl *gl) 1523 { 1524 return t4_pktgl_to_mbuf_usembufs(gl); 1525 } 1526 1527 /** 1528 * t4_ethrx_handler - process an ingress ethernet packet 1529 * @q: the response queue that received the packet 1530 * @rsp: the response queue descriptor holding the RX_PKT message 1531 * @si: the gather list of packet fragments 1532 * 1533 * Process an ingress ethernet packet and deliver it to the stack. 1534 */ 1535 int t4_ethrx_handler(struct sge_rspq *q, const __be64 *rsp, 1536 const struct pkt_gl *si) 1537 { 1538 struct rte_mbuf *mbuf; 1539 const struct cpl_rx_pkt *pkt; 1540 const struct rss_header *rss_hdr; 1541 bool csum_ok; 1542 struct sge_eth_rxq *rxq = container_of(q, struct sge_eth_rxq, rspq); 1543 u16 err_vec; 1544 1545 rss_hdr = (const void *)rsp; 1546 pkt = (const void *)&rsp[1]; 1547 /* Compressed error vector is enabled for T6 only */ 1548 if (q->adapter->params.tp.rx_pkt_encap) 1549 err_vec = G_T6_COMPR_RXERR_VEC(ntohs(pkt->err_vec)); 1550 else 1551 err_vec = ntohs(pkt->err_vec); 1552 csum_ok = pkt->csum_calc && !err_vec; 1553 1554 mbuf = t4_pktgl_to_mbuf(si); 1555 if (unlikely(!mbuf)) { 1556 rxq->stats.rx_drops++; 1557 return 0; 1558 } 1559 1560 mbuf->port = pkt->iff; 1561 if (pkt->l2info & htonl(F_RXF_IP)) { 1562 mbuf->packet_type = RTE_PTYPE_L3_IPV4; 1563 if (unlikely(!csum_ok)) 1564 mbuf->ol_flags |= PKT_RX_IP_CKSUM_BAD; 1565 1566 if ((pkt->l2info & htonl(F_RXF_UDP | F_RXF_TCP)) && !csum_ok) 1567 mbuf->ol_flags |= PKT_RX_L4_CKSUM_BAD; 1568 } else if (pkt->l2info & htonl(F_RXF_IP6)) { 1569 mbuf->packet_type = RTE_PTYPE_L3_IPV6; 1570 } 1571 1572 mbuf->port = pkt->iff; 1573 1574 if (!rss_hdr->filter_tid && rss_hdr->hash_type) { 1575 mbuf->ol_flags |= PKT_RX_RSS_HASH; 1576 mbuf->hash.rss = ntohl(rss_hdr->hash_val); 1577 } 1578 1579 if (pkt->vlan_ex) { 1580 mbuf->ol_flags |= PKT_RX_VLAN; 1581 mbuf->vlan_tci = ntohs(pkt->vlan); 1582 } 1583 rxq->stats.pkts++; 1584 rxq->stats.rx_bytes += mbuf->pkt_len; 1585 1586 return 0; 1587 } 1588 1589 #define CXGB4_MSG_AN ((void *)1) 1590 1591 /** 1592 * rspq_next - advance to the next entry in a response queue 1593 * @q: the queue 1594 * 1595 * Updates the state of a response queue to advance it to the next entry. 1596 */ 1597 static inline void rspq_next(struct sge_rspq *q) 1598 { 1599 q->cur_desc = (const __be64 *)((const char *)q->cur_desc + q->iqe_len); 1600 if (unlikely(++q->cidx == q->size)) { 1601 q->cidx = 0; 1602 q->gen ^= 1; 1603 q->cur_desc = q->desc; 1604 } 1605 } 1606 1607 static inline void cxgbe_set_mbuf_info(struct rte_mbuf *pkt, uint32_t ptype, 1608 uint64_t ol_flags) 1609 { 1610 pkt->packet_type |= ptype; 1611 pkt->ol_flags |= ol_flags; 1612 } 1613 1614 static inline void cxgbe_fill_mbuf_info(struct adapter *adap, 1615 const struct cpl_rx_pkt *cpl, 1616 struct rte_mbuf *pkt) 1617 { 1618 bool csum_ok; 1619 u16 err_vec; 1620 1621 if (adap->params.tp.rx_pkt_encap) 1622 err_vec = G_T6_COMPR_RXERR_VEC(ntohs(cpl->err_vec)); 1623 else 1624 err_vec = ntohs(cpl->err_vec); 1625 1626 csum_ok = cpl->csum_calc && !err_vec; 1627 1628 if (cpl->vlan_ex) 1629 cxgbe_set_mbuf_info(pkt, RTE_PTYPE_L2_ETHER_VLAN, 1630 PKT_RX_VLAN | PKT_RX_VLAN_STRIPPED); 1631 else 1632 cxgbe_set_mbuf_info(pkt, RTE_PTYPE_L2_ETHER, 0); 1633 1634 if (cpl->l2info & htonl(F_RXF_IP)) 1635 cxgbe_set_mbuf_info(pkt, RTE_PTYPE_L3_IPV4, 1636 csum_ok ? PKT_RX_IP_CKSUM_GOOD : 1637 PKT_RX_IP_CKSUM_BAD); 1638 else if (cpl->l2info & htonl(F_RXF_IP6)) 1639 cxgbe_set_mbuf_info(pkt, RTE_PTYPE_L3_IPV6, 1640 csum_ok ? PKT_RX_IP_CKSUM_GOOD : 1641 PKT_RX_IP_CKSUM_BAD); 1642 1643 if (cpl->l2info & htonl(F_RXF_TCP)) 1644 cxgbe_set_mbuf_info(pkt, RTE_PTYPE_L4_TCP, 1645 csum_ok ? PKT_RX_L4_CKSUM_GOOD : 1646 PKT_RX_L4_CKSUM_BAD); 1647 else if (cpl->l2info & htonl(F_RXF_UDP)) 1648 cxgbe_set_mbuf_info(pkt, RTE_PTYPE_L4_UDP, 1649 csum_ok ? PKT_RX_L4_CKSUM_GOOD : 1650 PKT_RX_L4_CKSUM_BAD); 1651 } 1652 1653 /** 1654 * process_responses - process responses from an SGE response queue 1655 * @q: the ingress queue to process 1656 * @budget: how many responses can be processed in this round 1657 * @rx_pkts: mbuf to put the pkts 1658 * 1659 * Process responses from an SGE response queue up to the supplied budget. 1660 * Responses include received packets as well as control messages from FW 1661 * or HW. 1662 * 1663 * Additionally choose the interrupt holdoff time for the next interrupt 1664 * on this queue. If the system is under memory shortage use a fairly 1665 * long delay to help recovery. 1666 */ 1667 static int process_responses(struct sge_rspq *q, int budget, 1668 struct rte_mbuf **rx_pkts) 1669 { 1670 int ret = 0, rsp_type; 1671 int budget_left = budget; 1672 const struct rsp_ctrl *rc; 1673 struct sge_eth_rxq *rxq = container_of(q, struct sge_eth_rxq, rspq); 1674 1675 while (likely(budget_left)) { 1676 if (q->cidx == ntohs(q->stat->pidx)) 1677 break; 1678 1679 rc = (const struct rsp_ctrl *) 1680 ((const char *)q->cur_desc + (q->iqe_len - sizeof(*rc))); 1681 1682 /* 1683 * Ensure response has been read 1684 */ 1685 rmb(); 1686 rsp_type = G_RSPD_TYPE(rc->u.type_gen); 1687 1688 if (likely(rsp_type == X_RSPD_TYPE_FLBUF)) { 1689 struct sge *s = &q->adapter->sge; 1690 unsigned int stat_pidx; 1691 int stat_pidx_diff; 1692 1693 stat_pidx = ntohs(q->stat->pidx); 1694 stat_pidx_diff = P_IDXDIFF(q, stat_pidx); 1695 while (stat_pidx_diff && budget_left) { 1696 const struct rx_sw_desc *rsd = 1697 &rxq->fl.sdesc[rxq->fl.cidx]; 1698 const struct rss_header *rss_hdr = 1699 (const void *)q->cur_desc; 1700 const struct cpl_rx_pkt *cpl = 1701 (const void *)&q->cur_desc[1]; 1702 struct rte_mbuf *pkt, *npkt; 1703 u32 len, bufsz; 1704 1705 rc = (const struct rsp_ctrl *) 1706 ((const char *)q->cur_desc + 1707 (q->iqe_len - sizeof(*rc))); 1708 1709 rsp_type = G_RSPD_TYPE(rc->u.type_gen); 1710 if (unlikely(rsp_type != X_RSPD_TYPE_FLBUF)) 1711 break; 1712 1713 len = ntohl(rc->pldbuflen_qid); 1714 BUG_ON(!(len & F_RSPD_NEWBUF)); 1715 pkt = rsd->buf; 1716 npkt = pkt; 1717 len = G_RSPD_LEN(len); 1718 pkt->pkt_len = len; 1719 1720 /* Chain mbufs into len if necessary */ 1721 while (len) { 1722 struct rte_mbuf *new_pkt = rsd->buf; 1723 1724 bufsz = min(get_buf_size(q->adapter, 1725 rsd), len); 1726 new_pkt->data_len = bufsz; 1727 unmap_rx_buf(&rxq->fl); 1728 len -= bufsz; 1729 npkt->next = new_pkt; 1730 npkt = new_pkt; 1731 pkt->nb_segs++; 1732 rsd = &rxq->fl.sdesc[rxq->fl.cidx]; 1733 } 1734 npkt->next = NULL; 1735 pkt->nb_segs--; 1736 1737 cxgbe_fill_mbuf_info(q->adapter, cpl, pkt); 1738 1739 if (!rss_hdr->filter_tid && 1740 rss_hdr->hash_type) { 1741 pkt->ol_flags |= PKT_RX_RSS_HASH; 1742 pkt->hash.rss = 1743 ntohl(rss_hdr->hash_val); 1744 } 1745 1746 if (cpl->vlan_ex) 1747 pkt->vlan_tci = ntohs(cpl->vlan); 1748 1749 rte_pktmbuf_adj(pkt, s->pktshift); 1750 rxq->stats.pkts++; 1751 rxq->stats.rx_bytes += pkt->pkt_len; 1752 rx_pkts[budget - budget_left] = pkt; 1753 1754 rspq_next(q); 1755 budget_left--; 1756 stat_pidx_diff--; 1757 } 1758 continue; 1759 } else if (likely(rsp_type == X_RSPD_TYPE_CPL)) { 1760 ret = q->handler(q, q->cur_desc, NULL); 1761 } else { 1762 ret = q->handler(q, (const __be64 *)rc, CXGB4_MSG_AN); 1763 } 1764 1765 if (unlikely(ret)) { 1766 /* couldn't process descriptor, back off for recovery */ 1767 q->next_intr_params = V_QINTR_TIMER_IDX(NOMEM_TMR_IDX); 1768 break; 1769 } 1770 1771 rspq_next(q); 1772 budget_left--; 1773 } 1774 1775 /* 1776 * If this is a Response Queue with an associated Free List and 1777 * there's room for another chunk of new Free List buffer pointers, 1778 * refill the Free List. 1779 */ 1780 1781 if (q->offset >= 0 && fl_cap(&rxq->fl) - rxq->fl.avail >= 64) 1782 __refill_fl(q->adapter, &rxq->fl); 1783 1784 return budget - budget_left; 1785 } 1786 1787 int cxgbe_poll(struct sge_rspq *q, struct rte_mbuf **rx_pkts, 1788 unsigned int budget, unsigned int *work_done) 1789 { 1790 struct sge_eth_rxq *rxq = container_of(q, struct sge_eth_rxq, rspq); 1791 unsigned int cidx_inc; 1792 unsigned int params; 1793 u32 val; 1794 1795 *work_done = process_responses(q, budget, rx_pkts); 1796 1797 if (*work_done) { 1798 cidx_inc = R_IDXDIFF(q, gts_idx); 1799 1800 if (q->offset >= 0 && fl_cap(&rxq->fl) - rxq->fl.avail >= 64) 1801 __refill_fl(q->adapter, &rxq->fl); 1802 1803 params = q->intr_params; 1804 q->next_intr_params = params; 1805 val = V_CIDXINC(cidx_inc) | V_SEINTARM(params); 1806 1807 if (unlikely(!q->bar2_addr)) { 1808 u32 reg = is_pf4(q->adapter) ? MYPF_REG(A_SGE_PF_GTS) : 1809 T4VF_SGE_BASE_ADDR + 1810 A_SGE_VF_GTS; 1811 1812 t4_write_reg(q->adapter, reg, 1813 val | V_INGRESSQID((u32)q->cntxt_id)); 1814 } else { 1815 writel(val | V_INGRESSQID(q->bar2_qid), 1816 (void *)((uintptr_t)q->bar2_addr + SGE_UDB_GTS)); 1817 /* This Write memory Barrier will force the 1818 * write to the User Doorbell area to be 1819 * flushed. 1820 */ 1821 wmb(); 1822 } 1823 q->gts_idx = q->cidx; 1824 } 1825 return 0; 1826 } 1827 1828 /** 1829 * bar2_address - return the BAR2 address for an SGE Queue's Registers 1830 * @adapter: the adapter 1831 * @qid: the SGE Queue ID 1832 * @qtype: the SGE Queue Type (Egress or Ingress) 1833 * @pbar2_qid: BAR2 Queue ID or 0 for Queue ID inferred SGE Queues 1834 * 1835 * Returns the BAR2 address for the SGE Queue Registers associated with 1836 * @qid. If BAR2 SGE Registers aren't available, returns NULL. Also 1837 * returns the BAR2 Queue ID to be used with writes to the BAR2 SGE 1838 * Queue Registers. If the BAR2 Queue ID is 0, then "Inferred Queue ID" 1839 * Registers are supported (e.g. the Write Combining Doorbell Buffer). 1840 */ 1841 static void __iomem *bar2_address(struct adapter *adapter, unsigned int qid, 1842 enum t4_bar2_qtype qtype, 1843 unsigned int *pbar2_qid) 1844 { 1845 u64 bar2_qoffset; 1846 int ret; 1847 1848 ret = t4_bar2_sge_qregs(adapter, qid, qtype, &bar2_qoffset, pbar2_qid); 1849 if (ret) 1850 return NULL; 1851 1852 return adapter->bar2 + bar2_qoffset; 1853 } 1854 1855 int t4_sge_eth_rxq_start(struct adapter *adap, struct sge_rspq *rq) 1856 { 1857 struct sge_eth_rxq *rxq = container_of(rq, struct sge_eth_rxq, rspq); 1858 unsigned int fl_id = rxq->fl.size ? rxq->fl.cntxt_id : 0xffff; 1859 1860 return t4_iq_start_stop(adap, adap->mbox, true, adap->pf, 0, 1861 rq->cntxt_id, fl_id, 0xffff); 1862 } 1863 1864 int t4_sge_eth_rxq_stop(struct adapter *adap, struct sge_rspq *rq) 1865 { 1866 struct sge_eth_rxq *rxq = container_of(rq, struct sge_eth_rxq, rspq); 1867 unsigned int fl_id = rxq->fl.size ? rxq->fl.cntxt_id : 0xffff; 1868 1869 return t4_iq_start_stop(adap, adap->mbox, false, adap->pf, 0, 1870 rq->cntxt_id, fl_id, 0xffff); 1871 } 1872 1873 /* 1874 * @intr_idx: MSI/MSI-X vector if >=0, -(absolute qid + 1) if < 0 1875 * @cong: < 0 -> no congestion feedback, >= 0 -> congestion channel map 1876 */ 1877 int t4_sge_alloc_rxq(struct adapter *adap, struct sge_rspq *iq, bool fwevtq, 1878 struct rte_eth_dev *eth_dev, int intr_idx, 1879 struct sge_fl *fl, rspq_handler_t hnd, int cong, 1880 struct rte_mempool *mp, int queue_id, int socket_id) 1881 { 1882 int ret, flsz = 0; 1883 struct fw_iq_cmd c; 1884 struct sge *s = &adap->sge; 1885 struct port_info *pi = (struct port_info *)(eth_dev->data->dev_private); 1886 char z_name[RTE_MEMZONE_NAMESIZE]; 1887 char z_name_sw[RTE_MEMZONE_NAMESIZE]; 1888 unsigned int nb_refill; 1889 u8 pciechan; 1890 1891 /* Size needs to be multiple of 16, including status entry. */ 1892 iq->size = cxgbe_roundup(iq->size, 16); 1893 1894 snprintf(z_name, sizeof(z_name), "eth_p%d_q%d_%s", 1895 eth_dev->data->port_id, queue_id, 1896 fwevtq ? "fwq_ring" : "rx_ring"); 1897 snprintf(z_name_sw, sizeof(z_name_sw), "%s_sw_ring", z_name); 1898 1899 iq->desc = alloc_ring(iq->size, iq->iqe_len, 0, &iq->phys_addr, NULL, 0, 1900 queue_id, socket_id, z_name, z_name_sw); 1901 if (!iq->desc) 1902 return -ENOMEM; 1903 1904 memset(&c, 0, sizeof(c)); 1905 c.op_to_vfn = htonl(V_FW_CMD_OP(FW_IQ_CMD) | F_FW_CMD_REQUEST | 1906 F_FW_CMD_WRITE | F_FW_CMD_EXEC); 1907 1908 if (is_pf4(adap)) { 1909 pciechan = pi->tx_chan; 1910 c.op_to_vfn |= htonl(V_FW_IQ_CMD_PFN(adap->pf) | 1911 V_FW_IQ_CMD_VFN(0)); 1912 if (cong >= 0) 1913 c.iqns_to_fl0congen = 1914 htonl(F_FW_IQ_CMD_IQFLINTCONGEN | 1915 V_FW_IQ_CMD_IQTYPE(cong ? 1916 FW_IQ_IQTYPE_NIC : 1917 FW_IQ_IQTYPE_OFLD) | 1918 F_FW_IQ_CMD_IQRO); 1919 } else { 1920 pciechan = pi->port_id; 1921 } 1922 1923 c.alloc_to_len16 = htonl(F_FW_IQ_CMD_ALLOC | F_FW_IQ_CMD_IQSTART | 1924 (sizeof(c) / 16)); 1925 c.type_to_iqandstindex = 1926 htonl(V_FW_IQ_CMD_TYPE(FW_IQ_TYPE_FL_INT_CAP) | 1927 V_FW_IQ_CMD_IQASYNCH(fwevtq) | 1928 V_FW_IQ_CMD_VIID(pi->viid) | 1929 V_FW_IQ_CMD_IQANDST(intr_idx < 0) | 1930 V_FW_IQ_CMD_IQANUD(X_UPDATEDELIVERY_STATUS_PAGE) | 1931 V_FW_IQ_CMD_IQANDSTINDEX(intr_idx >= 0 ? intr_idx : 1932 -intr_idx - 1)); 1933 c.iqdroprss_to_iqesize = 1934 htons(V_FW_IQ_CMD_IQPCIECH(pciechan) | 1935 F_FW_IQ_CMD_IQGTSMODE | 1936 V_FW_IQ_CMD_IQINTCNTTHRESH(iq->pktcnt_idx) | 1937 V_FW_IQ_CMD_IQESIZE(ilog2(iq->iqe_len) - 4)); 1938 c.iqsize = htons(iq->size); 1939 c.iqaddr = cpu_to_be64(iq->phys_addr); 1940 1941 if (fl) { 1942 struct sge_eth_rxq *rxq = container_of(fl, struct sge_eth_rxq, 1943 fl); 1944 unsigned int chip_ver = CHELSIO_CHIP_VERSION(adap->params.chip); 1945 1946 /* 1947 * Allocate the ring for the hardware free list (with space 1948 * for its status page) along with the associated software 1949 * descriptor ring. The free list size needs to be a multiple 1950 * of the Egress Queue Unit and at least 2 Egress Units larger 1951 * than the SGE's Egress Congrestion Threshold 1952 * (fl_starve_thres - 1). 1953 */ 1954 if (fl->size < s->fl_starve_thres - 1 + 2 * 8) 1955 fl->size = s->fl_starve_thres - 1 + 2 * 8; 1956 fl->size = cxgbe_roundup(fl->size, 8); 1957 1958 snprintf(z_name, sizeof(z_name), "eth_p%d_q%d_%s", 1959 eth_dev->data->port_id, queue_id, 1960 fwevtq ? "fwq_ring" : "fl_ring"); 1961 snprintf(z_name_sw, sizeof(z_name_sw), "%s_sw_ring", z_name); 1962 1963 fl->desc = alloc_ring(fl->size, sizeof(__be64), 1964 sizeof(struct rx_sw_desc), 1965 &fl->addr, &fl->sdesc, s->stat_len, 1966 queue_id, socket_id, z_name, z_name_sw); 1967 1968 if (!fl->desc) 1969 goto fl_nomem; 1970 1971 flsz = fl->size / 8 + s->stat_len / sizeof(struct tx_desc); 1972 c.iqns_to_fl0congen |= 1973 htonl(V_FW_IQ_CMD_FL0HOSTFCMODE(X_HOSTFCMODE_NONE) | 1974 (unlikely(rxq->usembufs) ? 1975 0 : F_FW_IQ_CMD_FL0PACKEN) | 1976 F_FW_IQ_CMD_FL0FETCHRO | F_FW_IQ_CMD_FL0DATARO | 1977 F_FW_IQ_CMD_FL0PADEN); 1978 if (is_pf4(adap) && cong >= 0) 1979 c.iqns_to_fl0congen |= 1980 htonl(V_FW_IQ_CMD_FL0CNGCHMAP(cong) | 1981 F_FW_IQ_CMD_FL0CONGCIF | 1982 F_FW_IQ_CMD_FL0CONGEN); 1983 1984 /* In T6, for egress queue type FL there is internal overhead 1985 * of 16B for header going into FLM module. 1986 * Hence maximum allowed burst size will be 448 bytes. 1987 */ 1988 c.fl0dcaen_to_fl0cidxfthresh = 1989 htons(V_FW_IQ_CMD_FL0FBMIN(chip_ver <= CHELSIO_T5 ? 1990 X_FETCHBURSTMIN_128B : 1991 X_FETCHBURSTMIN_64B) | 1992 V_FW_IQ_CMD_FL0FBMAX(chip_ver <= CHELSIO_T5 ? 1993 X_FETCHBURSTMAX_512B : 1994 X_FETCHBURSTMAX_256B)); 1995 c.fl0size = htons(flsz); 1996 c.fl0addr = cpu_to_be64(fl->addr); 1997 } 1998 1999 if (is_pf4(adap)) 2000 ret = t4_wr_mbox(adap, adap->mbox, &c, sizeof(c), &c); 2001 else 2002 ret = t4vf_wr_mbox(adap, &c, sizeof(c), &c); 2003 if (ret) 2004 goto err; 2005 2006 iq->cur_desc = iq->desc; 2007 iq->cidx = 0; 2008 iq->gts_idx = 0; 2009 iq->gen = 1; 2010 iq->next_intr_params = iq->intr_params; 2011 iq->cntxt_id = ntohs(c.iqid); 2012 iq->abs_id = ntohs(c.physiqid); 2013 iq->bar2_addr = bar2_address(adap, iq->cntxt_id, T4_BAR2_QTYPE_INGRESS, 2014 &iq->bar2_qid); 2015 iq->size--; /* subtract status entry */ 2016 iq->stat = (void *)&iq->desc[iq->size * 8]; 2017 iq->eth_dev = eth_dev; 2018 iq->handler = hnd; 2019 iq->port_id = pi->pidx; 2020 iq->mb_pool = mp; 2021 2022 /* set offset to -1 to distinguish ingress queues without FL */ 2023 iq->offset = fl ? 0 : -1; 2024 2025 if (fl) { 2026 fl->cntxt_id = ntohs(c.fl0id); 2027 fl->avail = 0; 2028 fl->pend_cred = 0; 2029 fl->pidx = 0; 2030 fl->cidx = 0; 2031 fl->alloc_failed = 0; 2032 2033 /* 2034 * Note, we must initialize the BAR2 Free List User Doorbell 2035 * information before refilling the Free List! 2036 */ 2037 fl->bar2_addr = bar2_address(adap, fl->cntxt_id, 2038 T4_BAR2_QTYPE_EGRESS, 2039 &fl->bar2_qid); 2040 2041 nb_refill = refill_fl(adap, fl, fl_cap(fl)); 2042 if (nb_refill != fl_cap(fl)) { 2043 ret = -ENOMEM; 2044 dev_err(adap, "%s: mbuf alloc failed with error: %d\n", 2045 __func__, ret); 2046 goto refill_fl_err; 2047 } 2048 } 2049 2050 /* 2051 * For T5 and later we attempt to set up the Congestion Manager values 2052 * of the new RX Ethernet Queue. This should really be handled by 2053 * firmware because it's more complex than any host driver wants to 2054 * get involved with and it's different per chip and this is almost 2055 * certainly wrong. Formware would be wrong as well, but it would be 2056 * a lot easier to fix in one place ... For now we do something very 2057 * simple (and hopefully less wrong). 2058 */ 2059 if (is_pf4(adap) && !is_t4(adap->params.chip) && cong >= 0) { 2060 u32 param, val; 2061 int i; 2062 2063 param = (V_FW_PARAMS_MNEM(FW_PARAMS_MNEM_DMAQ) | 2064 V_FW_PARAMS_PARAM_X(FW_PARAMS_PARAM_DMAQ_CONM_CTXT) | 2065 V_FW_PARAMS_PARAM_YZ(iq->cntxt_id)); 2066 if (cong == 0) { 2067 val = V_CONMCTXT_CNGTPMODE(X_CONMCTXT_CNGTPMODE_QUEUE); 2068 } else { 2069 val = V_CONMCTXT_CNGTPMODE( 2070 X_CONMCTXT_CNGTPMODE_CHANNEL); 2071 for (i = 0; i < 4; i++) { 2072 if (cong & (1 << i)) 2073 val |= V_CONMCTXT_CNGCHMAP(1 << 2074 (i << 2)); 2075 } 2076 } 2077 ret = t4_set_params(adap, adap->mbox, adap->pf, 0, 1, 2078 ¶m, &val); 2079 if (ret) 2080 dev_warn(adap->pdev_dev, "Failed to set Congestion Manager Context for Ingress Queue %d: %d\n", 2081 iq->cntxt_id, -ret); 2082 } 2083 2084 return 0; 2085 2086 refill_fl_err: 2087 t4_iq_free(adap, adap->mbox, adap->pf, 0, FW_IQ_TYPE_FL_INT_CAP, 2088 iq->cntxt_id, fl->cntxt_id, 0xffff); 2089 fl_nomem: 2090 ret = -ENOMEM; 2091 err: 2092 iq->cntxt_id = 0; 2093 iq->abs_id = 0; 2094 if (iq->desc) 2095 iq->desc = NULL; 2096 2097 if (fl && fl->desc) { 2098 rte_free(fl->sdesc); 2099 fl->cntxt_id = 0; 2100 fl->sdesc = NULL; 2101 fl->desc = NULL; 2102 } 2103 return ret; 2104 } 2105 2106 static void init_txq(struct adapter *adap, struct sge_txq *q, unsigned int id, 2107 unsigned int abs_id) 2108 { 2109 q->cntxt_id = id; 2110 q->abs_id = abs_id; 2111 q->bar2_addr = bar2_address(adap, q->cntxt_id, T4_BAR2_QTYPE_EGRESS, 2112 &q->bar2_qid); 2113 q->cidx = 0; 2114 q->pidx = 0; 2115 q->dbidx = 0; 2116 q->in_use = 0; 2117 q->equeidx = 0; 2118 q->coalesce.idx = 0; 2119 q->coalesce.len = 0; 2120 q->coalesce.flits = 0; 2121 q->last_coal_idx = 0; 2122 q->last_pidx = 0; 2123 q->stat = (void *)&q->desc[q->size]; 2124 } 2125 2126 int t4_sge_eth_txq_start(struct sge_eth_txq *txq) 2127 { 2128 /* 2129 * TODO: For flow-control, queue may be stopped waiting to reclaim 2130 * credits. 2131 * Ensure queue is in EQ_STOPPED state before starting it. 2132 */ 2133 if (!(txq->flags & EQ_STOPPED)) 2134 return -(EBUSY); 2135 2136 txq->flags &= ~EQ_STOPPED; 2137 2138 return 0; 2139 } 2140 2141 int t4_sge_eth_txq_stop(struct sge_eth_txq *txq) 2142 { 2143 txq->flags |= EQ_STOPPED; 2144 2145 return 0; 2146 } 2147 2148 int t4_sge_alloc_eth_txq(struct adapter *adap, struct sge_eth_txq *txq, 2149 struct rte_eth_dev *eth_dev, uint16_t queue_id, 2150 unsigned int iqid, int socket_id) 2151 { 2152 int ret, nentries; 2153 struct fw_eq_eth_cmd c; 2154 struct sge *s = &adap->sge; 2155 struct port_info *pi = (struct port_info *)(eth_dev->data->dev_private); 2156 char z_name[RTE_MEMZONE_NAMESIZE]; 2157 char z_name_sw[RTE_MEMZONE_NAMESIZE]; 2158 u8 pciechan; 2159 2160 /* Add status entries */ 2161 nentries = txq->q.size + s->stat_len / sizeof(struct tx_desc); 2162 2163 snprintf(z_name, sizeof(z_name), "eth_p%d_q%d_%s", 2164 eth_dev->data->port_id, queue_id, "tx_ring"); 2165 snprintf(z_name_sw, sizeof(z_name_sw), "%s_sw_ring", z_name); 2166 2167 txq->q.desc = alloc_ring(txq->q.size, sizeof(struct tx_desc), 2168 sizeof(struct tx_sw_desc), &txq->q.phys_addr, 2169 &txq->q.sdesc, s->stat_len, queue_id, 2170 socket_id, z_name, z_name_sw); 2171 if (!txq->q.desc) 2172 return -ENOMEM; 2173 2174 memset(&c, 0, sizeof(c)); 2175 c.op_to_vfn = htonl(V_FW_CMD_OP(FW_EQ_ETH_CMD) | F_FW_CMD_REQUEST | 2176 F_FW_CMD_WRITE | F_FW_CMD_EXEC); 2177 if (is_pf4(adap)) { 2178 pciechan = pi->tx_chan; 2179 c.op_to_vfn |= htonl(V_FW_EQ_ETH_CMD_PFN(adap->pf) | 2180 V_FW_EQ_ETH_CMD_VFN(0)); 2181 } else { 2182 pciechan = pi->port_id; 2183 } 2184 2185 c.alloc_to_len16 = htonl(F_FW_EQ_ETH_CMD_ALLOC | 2186 F_FW_EQ_ETH_CMD_EQSTART | (sizeof(c) / 16)); 2187 c.autoequiqe_to_viid = htonl(F_FW_EQ_ETH_CMD_AUTOEQUEQE | 2188 V_FW_EQ_ETH_CMD_VIID(pi->viid)); 2189 c.fetchszm_to_iqid = 2190 htonl(V_FW_EQ_ETH_CMD_HOSTFCMODE(X_HOSTFCMODE_NONE) | 2191 V_FW_EQ_ETH_CMD_PCIECHN(pciechan) | 2192 F_FW_EQ_ETH_CMD_FETCHRO | V_FW_EQ_ETH_CMD_IQID(iqid)); 2193 c.dcaen_to_eqsize = 2194 htonl(V_FW_EQ_ETH_CMD_FBMIN(X_FETCHBURSTMIN_64B) | 2195 V_FW_EQ_ETH_CMD_FBMAX(X_FETCHBURSTMAX_512B) | 2196 V_FW_EQ_ETH_CMD_EQSIZE(nentries)); 2197 c.eqaddr = rte_cpu_to_be_64(txq->q.phys_addr); 2198 2199 if (is_pf4(adap)) 2200 ret = t4_wr_mbox(adap, adap->mbox, &c, sizeof(c), &c); 2201 else 2202 ret = t4vf_wr_mbox(adap, &c, sizeof(c), &c); 2203 if (ret) { 2204 rte_free(txq->q.sdesc); 2205 txq->q.sdesc = NULL; 2206 txq->q.desc = NULL; 2207 return ret; 2208 } 2209 2210 init_txq(adap, &txq->q, G_FW_EQ_ETH_CMD_EQID(ntohl(c.eqid_pkd)), 2211 G_FW_EQ_ETH_CMD_PHYSEQID(ntohl(c.physeqid_pkd))); 2212 txq->stats.tso = 0; 2213 txq->stats.pkts = 0; 2214 txq->stats.tx_cso = 0; 2215 txq->stats.coal_wr = 0; 2216 txq->stats.vlan_ins = 0; 2217 txq->stats.tx_bytes = 0; 2218 txq->stats.coal_pkts = 0; 2219 txq->stats.mapping_err = 0; 2220 txq->flags |= EQ_STOPPED; 2221 txq->eth_dev = eth_dev; 2222 txq->data = eth_dev->data; 2223 t4_os_lock_init(&txq->txq_lock); 2224 return 0; 2225 } 2226 2227 int t4_sge_alloc_ctrl_txq(struct adapter *adap, struct sge_ctrl_txq *txq, 2228 struct rte_eth_dev *eth_dev, uint16_t queue_id, 2229 unsigned int iqid, int socket_id) 2230 { 2231 int ret, nentries; 2232 struct fw_eq_ctrl_cmd c; 2233 struct sge *s = &adap->sge; 2234 struct port_info *pi = (struct port_info *)(eth_dev->data->dev_private); 2235 char z_name[RTE_MEMZONE_NAMESIZE]; 2236 char z_name_sw[RTE_MEMZONE_NAMESIZE]; 2237 2238 /* Add status entries */ 2239 nentries = txq->q.size + s->stat_len / sizeof(struct tx_desc); 2240 2241 snprintf(z_name, sizeof(z_name), "eth_p%d_q%d_%s", 2242 eth_dev->data->port_id, queue_id, "ctrl_tx_ring"); 2243 snprintf(z_name_sw, sizeof(z_name_sw), "%s_sw_ring", z_name); 2244 2245 txq->q.desc = alloc_ring(txq->q.size, sizeof(struct tx_desc), 2246 0, &txq->q.phys_addr, 2247 NULL, 0, queue_id, 2248 socket_id, z_name, z_name_sw); 2249 if (!txq->q.desc) 2250 return -ENOMEM; 2251 2252 memset(&c, 0, sizeof(c)); 2253 c.op_to_vfn = htonl(V_FW_CMD_OP(FW_EQ_CTRL_CMD) | F_FW_CMD_REQUEST | 2254 F_FW_CMD_WRITE | F_FW_CMD_EXEC | 2255 V_FW_EQ_CTRL_CMD_PFN(adap->pf) | 2256 V_FW_EQ_CTRL_CMD_VFN(0)); 2257 c.alloc_to_len16 = htonl(F_FW_EQ_CTRL_CMD_ALLOC | 2258 F_FW_EQ_CTRL_CMD_EQSTART | (sizeof(c) / 16)); 2259 c.cmpliqid_eqid = htonl(V_FW_EQ_CTRL_CMD_CMPLIQID(0)); 2260 c.physeqid_pkd = htonl(0); 2261 c.fetchszm_to_iqid = 2262 htonl(V_FW_EQ_CTRL_CMD_HOSTFCMODE(X_HOSTFCMODE_NONE) | 2263 V_FW_EQ_CTRL_CMD_PCIECHN(pi->tx_chan) | 2264 F_FW_EQ_CTRL_CMD_FETCHRO | V_FW_EQ_CTRL_CMD_IQID(iqid)); 2265 c.dcaen_to_eqsize = 2266 htonl(V_FW_EQ_CTRL_CMD_FBMIN(X_FETCHBURSTMIN_64B) | 2267 V_FW_EQ_CTRL_CMD_FBMAX(X_FETCHBURSTMAX_512B) | 2268 V_FW_EQ_CTRL_CMD_EQSIZE(nentries)); 2269 c.eqaddr = cpu_to_be64(txq->q.phys_addr); 2270 2271 ret = t4_wr_mbox(adap, adap->mbox, &c, sizeof(c), &c); 2272 if (ret) { 2273 txq->q.desc = NULL; 2274 return ret; 2275 } 2276 2277 init_txq(adap, &txq->q, G_FW_EQ_CTRL_CMD_EQID(ntohl(c.cmpliqid_eqid)), 2278 G_FW_EQ_CTRL_CMD_EQID(ntohl(c. physeqid_pkd))); 2279 txq->adapter = adap; 2280 txq->full = 0; 2281 return 0; 2282 } 2283 2284 static void free_txq(struct sge_txq *q) 2285 { 2286 q->cntxt_id = 0; 2287 q->sdesc = NULL; 2288 q->desc = NULL; 2289 } 2290 2291 static void free_rspq_fl(struct adapter *adap, struct sge_rspq *rq, 2292 struct sge_fl *fl) 2293 { 2294 unsigned int fl_id = fl ? fl->cntxt_id : 0xffff; 2295 2296 t4_iq_free(adap, adap->mbox, adap->pf, 0, FW_IQ_TYPE_FL_INT_CAP, 2297 rq->cntxt_id, fl_id, 0xffff); 2298 rq->cntxt_id = 0; 2299 rq->abs_id = 0; 2300 rq->desc = NULL; 2301 2302 if (fl) { 2303 free_rx_bufs(fl, fl->avail); 2304 rte_free(fl->sdesc); 2305 fl->sdesc = NULL; 2306 fl->cntxt_id = 0; 2307 fl->desc = NULL; 2308 } 2309 } 2310 2311 /* 2312 * Clear all queues of the port 2313 * 2314 * Note: This function must only be called after rx and tx path 2315 * of the port have been disabled. 2316 */ 2317 void t4_sge_eth_clear_queues(struct port_info *pi) 2318 { 2319 int i; 2320 struct adapter *adap = pi->adapter; 2321 struct sge_eth_rxq *rxq = &adap->sge.ethrxq[pi->first_qset]; 2322 struct sge_eth_txq *txq = &adap->sge.ethtxq[pi->first_qset]; 2323 2324 for (i = 0; i < pi->n_rx_qsets; i++, rxq++) { 2325 if (rxq->rspq.desc) 2326 t4_sge_eth_rxq_stop(adap, &rxq->rspq); 2327 } 2328 for (i = 0; i < pi->n_tx_qsets; i++, txq++) { 2329 if (txq->q.desc) { 2330 struct sge_txq *q = &txq->q; 2331 2332 t4_sge_eth_txq_stop(txq); 2333 reclaim_completed_tx(q); 2334 free_tx_desc(q, q->size); 2335 q->equeidx = q->pidx; 2336 } 2337 } 2338 } 2339 2340 void t4_sge_eth_rxq_release(struct adapter *adap, struct sge_eth_rxq *rxq) 2341 { 2342 if (rxq->rspq.desc) { 2343 t4_sge_eth_rxq_stop(adap, &rxq->rspq); 2344 free_rspq_fl(adap, &rxq->rspq, rxq->fl.size ? &rxq->fl : NULL); 2345 } 2346 } 2347 2348 void t4_sge_eth_txq_release(struct adapter *adap, struct sge_eth_txq *txq) 2349 { 2350 if (txq->q.desc) { 2351 t4_sge_eth_txq_stop(txq); 2352 reclaim_completed_tx(&txq->q); 2353 t4_eth_eq_free(adap, adap->mbox, adap->pf, 0, txq->q.cntxt_id); 2354 free_tx_desc(&txq->q, txq->q.size); 2355 rte_free(txq->q.sdesc); 2356 free_txq(&txq->q); 2357 } 2358 } 2359 2360 void t4_sge_tx_monitor_start(struct adapter *adap) 2361 { 2362 rte_eal_alarm_set(50, tx_timer_cb, (void *)adap); 2363 } 2364 2365 void t4_sge_tx_monitor_stop(struct adapter *adap) 2366 { 2367 rte_eal_alarm_cancel(tx_timer_cb, (void *)adap); 2368 } 2369 2370 /** 2371 * t4_free_sge_resources - free SGE resources 2372 * @adap: the adapter 2373 * 2374 * Frees resources used by the SGE queue sets. 2375 */ 2376 void t4_free_sge_resources(struct adapter *adap) 2377 { 2378 unsigned int i; 2379 struct sge_eth_rxq *rxq = &adap->sge.ethrxq[0]; 2380 struct sge_eth_txq *txq = &adap->sge.ethtxq[0]; 2381 2382 /* clean up Ethernet Tx/Rx queues */ 2383 for (i = 0; i < adap->sge.max_ethqsets; i++, rxq++, txq++) { 2384 /* Free only the queues allocated */ 2385 if (rxq->rspq.desc) { 2386 t4_sge_eth_rxq_release(adap, rxq); 2387 rxq->rspq.eth_dev = NULL; 2388 } 2389 if (txq->q.desc) { 2390 t4_sge_eth_txq_release(adap, txq); 2391 txq->eth_dev = NULL; 2392 } 2393 } 2394 2395 /* clean up control Tx queues */ 2396 for (i = 0; i < ARRAY_SIZE(adap->sge.ctrlq); i++) { 2397 struct sge_ctrl_txq *cq = &adap->sge.ctrlq[i]; 2398 2399 if (cq->q.desc) { 2400 reclaim_completed_tx_imm(&cq->q); 2401 t4_ctrl_eq_free(adap, adap->mbox, adap->pf, 0, 2402 cq->q.cntxt_id); 2403 free_txq(&cq->q); 2404 } 2405 } 2406 2407 if (adap->sge.fw_evtq.desc) 2408 free_rspq_fl(adap, &adap->sge.fw_evtq, NULL); 2409 } 2410 2411 /** 2412 * t4_sge_init - initialize SGE 2413 * @adap: the adapter 2414 * 2415 * Performs SGE initialization needed every time after a chip reset. 2416 * We do not initialize any of the queues here, instead the driver 2417 * top-level must request those individually. 2418 * 2419 * Called in two different modes: 2420 * 2421 * 1. Perform actual hardware initialization and record hard-coded 2422 * parameters which were used. This gets used when we're the 2423 * Master PF and the Firmware Configuration File support didn't 2424 * work for some reason. 2425 * 2426 * 2. We're not the Master PF or initialization was performed with 2427 * a Firmware Configuration File. In this case we need to grab 2428 * any of the SGE operating parameters that we need to have in 2429 * order to do our job and make sure we can live with them ... 2430 */ 2431 static int t4_sge_init_soft(struct adapter *adap) 2432 { 2433 struct sge *s = &adap->sge; 2434 u32 fl_small_pg, fl_large_pg, fl_small_mtu, fl_large_mtu; 2435 u32 timer_value_0_and_1, timer_value_2_and_3, timer_value_4_and_5; 2436 u32 ingress_rx_threshold; 2437 2438 /* 2439 * Verify that CPL messages are going to the Ingress Queue for 2440 * process_responses() and that only packet data is going to the 2441 * Free Lists. 2442 */ 2443 if ((t4_read_reg(adap, A_SGE_CONTROL) & F_RXPKTCPLMODE) != 2444 V_RXPKTCPLMODE(X_RXPKTCPLMODE_SPLIT)) { 2445 dev_err(adap, "bad SGE CPL MODE\n"); 2446 return -EINVAL; 2447 } 2448 2449 /* 2450 * Validate the Host Buffer Register Array indices that we want to 2451 * use ... 2452 * 2453 * XXX Note that we should really read through the Host Buffer Size 2454 * XXX register array and find the indices of the Buffer Sizes which 2455 * XXX meet our needs! 2456 */ 2457 #define READ_FL_BUF(x) \ 2458 t4_read_reg(adap, A_SGE_FL_BUFFER_SIZE0 + (x) * sizeof(u32)) 2459 2460 fl_small_pg = READ_FL_BUF(RX_SMALL_PG_BUF); 2461 fl_large_pg = READ_FL_BUF(RX_LARGE_PG_BUF); 2462 fl_small_mtu = READ_FL_BUF(RX_SMALL_MTU_BUF); 2463 fl_large_mtu = READ_FL_BUF(RX_LARGE_MTU_BUF); 2464 2465 /* 2466 * We only bother using the Large Page logic if the Large Page Buffer 2467 * is larger than our Page Size Buffer. 2468 */ 2469 if (fl_large_pg <= fl_small_pg) 2470 fl_large_pg = 0; 2471 2472 #undef READ_FL_BUF 2473 2474 /* 2475 * The Page Size Buffer must be exactly equal to our Page Size and the 2476 * Large Page Size Buffer should be 0 (per above) or a power of 2. 2477 */ 2478 if (fl_small_pg != CXGBE_PAGE_SIZE || 2479 (fl_large_pg & (fl_large_pg - 1)) != 0) { 2480 dev_err(adap, "bad SGE FL page buffer sizes [%d, %d]\n", 2481 fl_small_pg, fl_large_pg); 2482 return -EINVAL; 2483 } 2484 if (fl_large_pg) 2485 s->fl_pg_order = ilog2(fl_large_pg) - PAGE_SHIFT; 2486 2487 if (adap->use_unpacked_mode) { 2488 int err = 0; 2489 2490 if (fl_small_mtu < FL_MTU_SMALL_BUFSIZE(adap)) { 2491 dev_err(adap, "bad SGE FL small MTU %d\n", 2492 fl_small_mtu); 2493 err = -EINVAL; 2494 } 2495 if (fl_large_mtu < FL_MTU_LARGE_BUFSIZE(adap)) { 2496 dev_err(adap, "bad SGE FL large MTU %d\n", 2497 fl_large_mtu); 2498 err = -EINVAL; 2499 } 2500 if (err) 2501 return err; 2502 } 2503 2504 /* 2505 * Retrieve our RX interrupt holdoff timer values and counter 2506 * threshold values from the SGE parameters. 2507 */ 2508 timer_value_0_and_1 = t4_read_reg(adap, A_SGE_TIMER_VALUE_0_AND_1); 2509 timer_value_2_and_3 = t4_read_reg(adap, A_SGE_TIMER_VALUE_2_AND_3); 2510 timer_value_4_and_5 = t4_read_reg(adap, A_SGE_TIMER_VALUE_4_AND_5); 2511 s->timer_val[0] = core_ticks_to_us(adap, 2512 G_TIMERVALUE0(timer_value_0_and_1)); 2513 s->timer_val[1] = core_ticks_to_us(adap, 2514 G_TIMERVALUE1(timer_value_0_and_1)); 2515 s->timer_val[2] = core_ticks_to_us(adap, 2516 G_TIMERVALUE2(timer_value_2_and_3)); 2517 s->timer_val[3] = core_ticks_to_us(adap, 2518 G_TIMERVALUE3(timer_value_2_and_3)); 2519 s->timer_val[4] = core_ticks_to_us(adap, 2520 G_TIMERVALUE4(timer_value_4_and_5)); 2521 s->timer_val[5] = core_ticks_to_us(adap, 2522 G_TIMERVALUE5(timer_value_4_and_5)); 2523 2524 ingress_rx_threshold = t4_read_reg(adap, A_SGE_INGRESS_RX_THRESHOLD); 2525 s->counter_val[0] = G_THRESHOLD_0(ingress_rx_threshold); 2526 s->counter_val[1] = G_THRESHOLD_1(ingress_rx_threshold); 2527 s->counter_val[2] = G_THRESHOLD_2(ingress_rx_threshold); 2528 s->counter_val[3] = G_THRESHOLD_3(ingress_rx_threshold); 2529 2530 return 0; 2531 } 2532 2533 int t4_sge_init(struct adapter *adap) 2534 { 2535 struct sge *s = &adap->sge; 2536 u32 sge_control, sge_conm_ctrl; 2537 int ret, egress_threshold; 2538 2539 /* 2540 * Ingress Padding Boundary and Egress Status Page Size are set up by 2541 * t4_fixup_host_params(). 2542 */ 2543 sge_control = t4_read_reg(adap, A_SGE_CONTROL); 2544 s->pktshift = G_PKTSHIFT(sge_control); 2545 s->stat_len = (sge_control & F_EGRSTATUSPAGESIZE) ? 128 : 64; 2546 s->fl_align = t4_fl_pkt_align(adap); 2547 ret = t4_sge_init_soft(adap); 2548 if (ret < 0) { 2549 dev_err(adap, "%s: t4_sge_init_soft failed, error %d\n", 2550 __func__, -ret); 2551 return ret; 2552 } 2553 2554 /* 2555 * A FL with <= fl_starve_thres buffers is starving and a periodic 2556 * timer will attempt to refill it. This needs to be larger than the 2557 * SGE's Egress Congestion Threshold. If it isn't, then we can get 2558 * stuck waiting for new packets while the SGE is waiting for us to 2559 * give it more Free List entries. (Note that the SGE's Egress 2560 * Congestion Threshold is in units of 2 Free List pointers.) For T4, 2561 * there was only a single field to control this. For T5 there's the 2562 * original field which now only applies to Unpacked Mode Free List 2563 * buffers and a new field which only applies to Packed Mode Free List 2564 * buffers. 2565 */ 2566 sge_conm_ctrl = t4_read_reg(adap, A_SGE_CONM_CTRL); 2567 if (is_t4(adap->params.chip) || adap->use_unpacked_mode) 2568 egress_threshold = G_EGRTHRESHOLD(sge_conm_ctrl); 2569 else 2570 egress_threshold = G_EGRTHRESHOLDPACKING(sge_conm_ctrl); 2571 s->fl_starve_thres = 2 * egress_threshold + 1; 2572 2573 return 0; 2574 } 2575 2576 int t4vf_sge_init(struct adapter *adap) 2577 { 2578 struct sge_params *sge_params = &adap->params.sge; 2579 u32 sge_ingress_queues_per_page; 2580 u32 sge_egress_queues_per_page; 2581 u32 sge_control, sge_control2; 2582 u32 fl_small_pg, fl_large_pg; 2583 u32 sge_ingress_rx_threshold; 2584 u32 sge_timer_value_0_and_1; 2585 u32 sge_timer_value_2_and_3; 2586 u32 sge_timer_value_4_and_5; 2587 u32 sge_congestion_control; 2588 struct sge *s = &adap->sge; 2589 unsigned int s_hps, s_qpp; 2590 u32 sge_host_page_size; 2591 u32 params[7], vals[7]; 2592 int v; 2593 2594 /* query basic params from fw */ 2595 params[0] = (V_FW_PARAMS_MNEM(FW_PARAMS_MNEM_REG) | 2596 V_FW_PARAMS_PARAM_XYZ(A_SGE_CONTROL)); 2597 params[1] = (V_FW_PARAMS_MNEM(FW_PARAMS_MNEM_REG) | 2598 V_FW_PARAMS_PARAM_XYZ(A_SGE_HOST_PAGE_SIZE)); 2599 params[2] = (V_FW_PARAMS_MNEM(FW_PARAMS_MNEM_REG) | 2600 V_FW_PARAMS_PARAM_XYZ(A_SGE_FL_BUFFER_SIZE0)); 2601 params[3] = (V_FW_PARAMS_MNEM(FW_PARAMS_MNEM_REG) | 2602 V_FW_PARAMS_PARAM_XYZ(A_SGE_FL_BUFFER_SIZE1)); 2603 params[4] = (V_FW_PARAMS_MNEM(FW_PARAMS_MNEM_REG) | 2604 V_FW_PARAMS_PARAM_XYZ(A_SGE_TIMER_VALUE_0_AND_1)); 2605 params[5] = (V_FW_PARAMS_MNEM(FW_PARAMS_MNEM_REG) | 2606 V_FW_PARAMS_PARAM_XYZ(A_SGE_TIMER_VALUE_2_AND_3)); 2607 params[6] = (V_FW_PARAMS_MNEM(FW_PARAMS_MNEM_REG) | 2608 V_FW_PARAMS_PARAM_XYZ(A_SGE_TIMER_VALUE_4_AND_5)); 2609 v = t4vf_query_params(adap, 7, params, vals); 2610 if (v != FW_SUCCESS) 2611 return v; 2612 2613 sge_control = vals[0]; 2614 sge_host_page_size = vals[1]; 2615 fl_small_pg = vals[2]; 2616 fl_large_pg = vals[3]; 2617 sge_timer_value_0_and_1 = vals[4]; 2618 sge_timer_value_2_and_3 = vals[5]; 2619 sge_timer_value_4_and_5 = vals[6]; 2620 2621 /* 2622 * Start by vetting the basic SGE parameters which have been set up by 2623 * the Physical Function Driver. 2624 */ 2625 2626 /* We only bother using the Large Page logic if the Large Page Buffer 2627 * is larger than our Page Size Buffer. 2628 */ 2629 if (fl_large_pg <= fl_small_pg) 2630 fl_large_pg = 0; 2631 2632 /* The Page Size Buffer must be exactly equal to our Page Size and the 2633 * Large Page Size Buffer should be 0 (per above) or a power of 2. 2634 */ 2635 if (fl_small_pg != CXGBE_PAGE_SIZE || 2636 (fl_large_pg & (fl_large_pg - 1)) != 0) { 2637 dev_err(adapter->pdev_dev, "bad SGE FL buffer sizes [%d, %d]\n", 2638 fl_small_pg, fl_large_pg); 2639 return -EINVAL; 2640 } 2641 2642 if ((sge_control & F_RXPKTCPLMODE) != 2643 V_RXPKTCPLMODE(X_RXPKTCPLMODE_SPLIT)) { 2644 dev_err(adapter->pdev_dev, "bad SGE CPL MODE\n"); 2645 return -EINVAL; 2646 } 2647 2648 2649 /* Grab ingress packing boundary from SGE_CONTROL2 for */ 2650 params[0] = (V_FW_PARAMS_MNEM(FW_PARAMS_MNEM_REG) | 2651 V_FW_PARAMS_PARAM_XYZ(A_SGE_CONTROL2)); 2652 v = t4vf_query_params(adap, 1, params, vals); 2653 if (v != FW_SUCCESS) { 2654 dev_err(adapter, "Unable to get SGE Control2; " 2655 "probably old firmware.\n"); 2656 return v; 2657 } 2658 sge_control2 = vals[0]; 2659 2660 params[0] = (V_FW_PARAMS_MNEM(FW_PARAMS_MNEM_REG) | 2661 V_FW_PARAMS_PARAM_XYZ(A_SGE_INGRESS_RX_THRESHOLD)); 2662 params[1] = (V_FW_PARAMS_MNEM(FW_PARAMS_MNEM_REG) | 2663 V_FW_PARAMS_PARAM_XYZ(A_SGE_CONM_CTRL)); 2664 v = t4vf_query_params(adap, 2, params, vals); 2665 if (v != FW_SUCCESS) 2666 return v; 2667 sge_ingress_rx_threshold = vals[0]; 2668 sge_congestion_control = vals[1]; 2669 params[0] = (V_FW_PARAMS_MNEM(FW_PARAMS_MNEM_REG) | 2670 V_FW_PARAMS_PARAM_XYZ(A_SGE_EGRESS_QUEUES_PER_PAGE_VF)); 2671 params[1] = (V_FW_PARAMS_MNEM(FW_PARAMS_MNEM_REG) | 2672 V_FW_PARAMS_PARAM_XYZ(A_SGE_INGRESS_QUEUES_PER_PAGE_VF)); 2673 v = t4vf_query_params(adap, 2, params, vals); 2674 if (v != FW_SUCCESS) { 2675 dev_warn(adap, "Unable to get VF SGE Queues/Page; " 2676 "probably old firmware.\n"); 2677 return v; 2678 } 2679 sge_egress_queues_per_page = vals[0]; 2680 sge_ingress_queues_per_page = vals[1]; 2681 2682 /* 2683 * We need the Queues/Page for our VF. This is based on the 2684 * PF from which we're instantiated and is indexed in the 2685 * register we just read. 2686 */ 2687 s_hps = (S_HOSTPAGESIZEPF0 + 2688 (S_HOSTPAGESIZEPF1 - S_HOSTPAGESIZEPF0) * adap->pf); 2689 sge_params->hps = 2690 ((sge_host_page_size >> s_hps) & M_HOSTPAGESIZEPF0); 2691 2692 s_qpp = (S_QUEUESPERPAGEPF0 + 2693 (S_QUEUESPERPAGEPF1 - S_QUEUESPERPAGEPF0) * adap->pf); 2694 sge_params->eq_qpp = 2695 ((sge_egress_queues_per_page >> s_qpp) 2696 & M_QUEUESPERPAGEPF0); 2697 sge_params->iq_qpp = 2698 ((sge_ingress_queues_per_page >> s_qpp) 2699 & M_QUEUESPERPAGEPF0); 2700 2701 /* 2702 * Now translate the queried parameters into our internal forms. 2703 */ 2704 if (fl_large_pg) 2705 s->fl_pg_order = ilog2(fl_large_pg) - PAGE_SHIFT; 2706 s->stat_len = ((sge_control & F_EGRSTATUSPAGESIZE) 2707 ? 128 : 64); 2708 s->pktshift = G_PKTSHIFT(sge_control); 2709 s->fl_align = t4vf_fl_pkt_align(adap, sge_control, sge_control2); 2710 2711 /* 2712 * A FL with <= fl_starve_thres buffers is starving and a periodic 2713 * timer will attempt to refill it. This needs to be larger than the 2714 * SGE's Egress Congestion Threshold. If it isn't, then we can get 2715 * stuck waiting for new packets while the SGE is waiting for us to 2716 * give it more Free List entries. (Note that the SGE's Egress 2717 * Congestion Threshold is in units of 2 Free List pointers.) 2718 */ 2719 switch (CHELSIO_CHIP_VERSION(adap->params.chip)) { 2720 case CHELSIO_T5: 2721 s->fl_starve_thres = 2722 G_EGRTHRESHOLDPACKING(sge_congestion_control); 2723 break; 2724 case CHELSIO_T6: 2725 default: 2726 s->fl_starve_thres = 2727 G_T6_EGRTHRESHOLDPACKING(sge_congestion_control); 2728 break; 2729 } 2730 s->fl_starve_thres = s->fl_starve_thres * 2 + 1; 2731 2732 /* 2733 * Save RX interrupt holdoff timer values and counter 2734 * threshold values from the SGE parameters. 2735 */ 2736 s->timer_val[0] = core_ticks_to_us(adap, 2737 G_TIMERVALUE0(sge_timer_value_0_and_1)); 2738 s->timer_val[1] = core_ticks_to_us(adap, 2739 G_TIMERVALUE1(sge_timer_value_0_and_1)); 2740 s->timer_val[2] = core_ticks_to_us(adap, 2741 G_TIMERVALUE2(sge_timer_value_2_and_3)); 2742 s->timer_val[3] = core_ticks_to_us(adap, 2743 G_TIMERVALUE3(sge_timer_value_2_and_3)); 2744 s->timer_val[4] = core_ticks_to_us(adap, 2745 G_TIMERVALUE4(sge_timer_value_4_and_5)); 2746 s->timer_val[5] = core_ticks_to_us(adap, 2747 G_TIMERVALUE5(sge_timer_value_4_and_5)); 2748 s->counter_val[0] = G_THRESHOLD_0(sge_ingress_rx_threshold); 2749 s->counter_val[1] = G_THRESHOLD_1(sge_ingress_rx_threshold); 2750 s->counter_val[2] = G_THRESHOLD_2(sge_ingress_rx_threshold); 2751 s->counter_val[3] = G_THRESHOLD_3(sge_ingress_rx_threshold); 2752 return 0; 2753 } 2754