1 /*-
2 * SPDX-License-Identifier: BSD-2-Clause-FreeBSD
3 *
4 * Copyright (c) 2011 Chelsio Communications, Inc.
5 * All rights reserved.
6 * Written by: Navdeep Parhar <[email protected]>
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 #include <sys/cdefs.h>
31 __FBSDID("$FreeBSD$");
32
33 #include "opt_inet.h"
34 #include "opt_inet6.h"
35 #include "opt_ratelimit.h"
36
37 #include <sys/types.h>
38 #include <sys/eventhandler.h>
39 #include <sys/mbuf.h>
40 #include <sys/socket.h>
41 #include <sys/kernel.h>
42 #include <sys/malloc.h>
43 #include <sys/queue.h>
44 #include <sys/sbuf.h>
45 #include <sys/taskqueue.h>
46 #include <sys/time.h>
47 #include <sys/sglist.h>
48 #include <sys/sysctl.h>
49 #include <sys/smp.h>
50 #include <sys/counter.h>
51 #include <net/bpf.h>
52 #include <net/ethernet.h>
53 #include <net/if.h>
54 #include <net/if_vlan_var.h>
55 #include <netinet/in.h>
56 #include <netinet/ip.h>
57 #include <netinet/ip6.h>
58 #include <netinet/tcp.h>
59 #include <netinet/udp.h>
60 #include <machine/in_cksum.h>
61 #include <machine/md_var.h>
62 #include <vm/vm.h>
63 #include <vm/pmap.h>
64 #ifdef DEV_NETMAP
65 #include <machine/bus.h>
66 #include <sys/selinfo.h>
67 #include <net/if_var.h>
68 #include <net/netmap.h>
69 #include <dev/netmap/netmap_kern.h>
70 #endif
71
72 #include "common/common.h"
73 #include "common/t4_regs.h"
74 #include "common/t4_regs_values.h"
75 #include "common/t4_msg.h"
76 #include "t4_l2t.h"
77 #include "t4_mp_ring.h"
78
79 #ifdef T4_PKT_TIMESTAMP
80 #define RX_COPY_THRESHOLD (MINCLSIZE - 8)
81 #else
82 #define RX_COPY_THRESHOLD MINCLSIZE
83 #endif
84
85 /* Internal mbuf flags stored in PH_loc.eight[1]. */
86 #define MC_RAW_WR 0x02
87
88 /*
89 * Ethernet frames are DMA'd at this byte offset into the freelist buffer.
90 * 0-7 are valid values.
91 */
92 static int fl_pktshift = 0;
93 SYSCTL_INT(_hw_cxgbe, OID_AUTO, fl_pktshift, CTLFLAG_RDTUN, &fl_pktshift, 0,
94 "payload DMA offset in rx buffer (bytes)");
95
96 /*
97 * Pad ethernet payload up to this boundary.
98 * -1: driver should figure out a good value.
99 * 0: disable padding.
100 * Any power of 2 from 32 to 4096 (both inclusive) is also a valid value.
101 */
102 int fl_pad = -1;
103 SYSCTL_INT(_hw_cxgbe, OID_AUTO, fl_pad, CTLFLAG_RDTUN, &fl_pad, 0,
104 "payload pad boundary (bytes)");
105
106 /*
107 * Status page length.
108 * -1: driver should figure out a good value.
109 * 64 or 128 are the only other valid values.
110 */
111 static int spg_len = -1;
112 SYSCTL_INT(_hw_cxgbe, OID_AUTO, spg_len, CTLFLAG_RDTUN, &spg_len, 0,
113 "status page size (bytes)");
114
115 /*
116 * Congestion drops.
117 * -1: no congestion feedback (not recommended).
118 * 0: backpressure the channel instead of dropping packets right away.
119 * 1: no backpressure, drop packets for the congested queue immediately.
120 */
121 static int cong_drop = 0;
122 SYSCTL_INT(_hw_cxgbe, OID_AUTO, cong_drop, CTLFLAG_RDTUN, &cong_drop, 0,
123 "Congestion control for RX queues (0 = backpressure, 1 = drop");
124
125 /*
126 * Deliver multiple frames in the same free list buffer if they fit.
127 * -1: let the driver decide whether to enable buffer packing or not.
128 * 0: disable buffer packing.
129 * 1: enable buffer packing.
130 */
131 static int buffer_packing = -1;
132 SYSCTL_INT(_hw_cxgbe, OID_AUTO, buffer_packing, CTLFLAG_RDTUN, &buffer_packing,
133 0, "Enable buffer packing");
134
135 /*
136 * Start next frame in a packed buffer at this boundary.
137 * -1: driver should figure out a good value.
138 * T4: driver will ignore this and use the same value as fl_pad above.
139 * T5: 16, or a power of 2 from 64 to 4096 (both inclusive) is a valid value.
140 */
141 static int fl_pack = -1;
142 SYSCTL_INT(_hw_cxgbe, OID_AUTO, fl_pack, CTLFLAG_RDTUN, &fl_pack, 0,
143 "payload pack boundary (bytes)");
144
145 /*
146 * Allow the driver to create mbuf(s) in a cluster allocated for rx.
147 * 0: never; always allocate mbufs from the zone_mbuf UMA zone.
148 * 1: ok to create mbuf(s) within a cluster if there is room.
149 */
150 static int allow_mbufs_in_cluster = 1;
151 SYSCTL_INT(_hw_cxgbe, OID_AUTO, allow_mbufs_in_cluster, CTLFLAG_RDTUN,
152 &allow_mbufs_in_cluster, 0,
153 "Allow driver to create mbufs within a rx cluster");
154
155 /*
156 * Largest rx cluster size that the driver is allowed to allocate.
157 */
158 static int largest_rx_cluster = MJUM16BYTES;
159 SYSCTL_INT(_hw_cxgbe, OID_AUTO, largest_rx_cluster, CTLFLAG_RDTUN,
160 &largest_rx_cluster, 0, "Largest rx cluster (bytes)");
161
162 /*
163 * Size of cluster allocation that's most likely to succeed. The driver will
164 * fall back to this size if it fails to allocate clusters larger than this.
165 */
166 static int safest_rx_cluster = PAGE_SIZE;
167 SYSCTL_INT(_hw_cxgbe, OID_AUTO, safest_rx_cluster, CTLFLAG_RDTUN,
168 &safest_rx_cluster, 0, "Safe rx cluster (bytes)");
169
170 #ifdef RATELIMIT
171 /*
172 * Knob to control TCP timestamp rewriting, and the granularity of the tick used
173 * for rewriting. -1 and 0-3 are all valid values.
174 * -1: hardware should leave the TCP timestamps alone.
175 * 0: 1ms
176 * 1: 100us
177 * 2: 10us
178 * 3: 1us
179 */
180 static int tsclk = -1;
181 SYSCTL_INT(_hw_cxgbe, OID_AUTO, tsclk, CTLFLAG_RDTUN, &tsclk, 0,
182 "Control TCP timestamp rewriting when using pacing");
183
184 static int eo_max_backlog = 1024 * 1024;
185 SYSCTL_INT(_hw_cxgbe, OID_AUTO, eo_max_backlog, CTLFLAG_RDTUN, &eo_max_backlog,
186 0, "Maximum backlog of ratelimited data per flow");
187 #endif
188
189 /*
190 * The interrupt holdoff timers are multiplied by this value on T6+.
191 * 1 and 3-17 (both inclusive) are legal values.
192 */
193 static int tscale = 1;
194 SYSCTL_INT(_hw_cxgbe, OID_AUTO, tscale, CTLFLAG_RDTUN, &tscale, 0,
195 "Interrupt holdoff timer scale on T6+");
196
197 /*
198 * Number of LRO entries in the lro_ctrl structure per rx queue.
199 */
200 static int lro_entries = TCP_LRO_ENTRIES;
201 SYSCTL_INT(_hw_cxgbe, OID_AUTO, lro_entries, CTLFLAG_RDTUN, &lro_entries, 0,
202 "Number of LRO entries per RX queue");
203
204 /*
205 * This enables presorting of frames before they're fed into tcp_lro_rx.
206 */
207 static int lro_mbufs = 0;
208 SYSCTL_INT(_hw_cxgbe, OID_AUTO, lro_mbufs, CTLFLAG_RDTUN, &lro_mbufs, 0,
209 "Enable presorting of LRO frames");
210
211 struct txpkts {
212 u_int wr_type; /* type 0 or type 1 */
213 u_int npkt; /* # of packets in this work request */
214 u_int plen; /* total payload (sum of all packets) */
215 u_int len16; /* # of 16B pieces used by this work request */
216 };
217
218 /* A packet's SGL. This + m_pkthdr has all info needed for tx */
219 struct sgl {
220 struct sglist sg;
221 struct sglist_seg seg[TX_SGL_SEGS];
222 };
223
224 static int service_iq(struct sge_iq *, int);
225 static int service_iq_fl(struct sge_iq *, int);
226 static struct mbuf *get_fl_payload(struct adapter *, struct sge_fl *, uint32_t);
227 static int t4_eth_rx(struct sge_iq *, const struct rss_header *, struct mbuf *);
228 static inline void init_iq(struct sge_iq *, struct adapter *, int, int, int);
229 static inline void init_fl(struct adapter *, struct sge_fl *, int, int, char *);
230 static inline void init_eq(struct adapter *, struct sge_eq *, int, int, uint8_t,
231 uint16_t, char *);
232 static int alloc_ring(struct adapter *, size_t, bus_dma_tag_t *, bus_dmamap_t *,
233 bus_addr_t *, void **);
234 static int free_ring(struct adapter *, bus_dma_tag_t, bus_dmamap_t, bus_addr_t,
235 void *);
236 static int alloc_iq_fl(struct vi_info *, struct sge_iq *, struct sge_fl *,
237 int, int);
238 static int free_iq_fl(struct vi_info *, struct sge_iq *, struct sge_fl *);
239 static void add_iq_sysctls(struct sysctl_ctx_list *, struct sysctl_oid *,
240 struct sge_iq *);
241 static void add_fl_sysctls(struct adapter *, struct sysctl_ctx_list *,
242 struct sysctl_oid *, struct sge_fl *);
243 static int alloc_fwq(struct adapter *);
244 static int free_fwq(struct adapter *);
245 static int alloc_ctrlq(struct adapter *, struct sge_wrq *, int,
246 struct sysctl_oid *);
247 static int alloc_rxq(struct vi_info *, struct sge_rxq *, int, int,
248 struct sysctl_oid *);
249 static int free_rxq(struct vi_info *, struct sge_rxq *);
250 #ifdef TCP_OFFLOAD
251 static int alloc_ofld_rxq(struct vi_info *, struct sge_ofld_rxq *, int, int,
252 struct sysctl_oid *);
253 static int free_ofld_rxq(struct vi_info *, struct sge_ofld_rxq *);
254 #endif
255 #ifdef DEV_NETMAP
256 static int alloc_nm_rxq(struct vi_info *, struct sge_nm_rxq *, int, int,
257 struct sysctl_oid *);
258 static int free_nm_rxq(struct vi_info *, struct sge_nm_rxq *);
259 static int alloc_nm_txq(struct vi_info *, struct sge_nm_txq *, int, int,
260 struct sysctl_oid *);
261 static int free_nm_txq(struct vi_info *, struct sge_nm_txq *);
262 #endif
263 static int ctrl_eq_alloc(struct adapter *, struct sge_eq *);
264 static int eth_eq_alloc(struct adapter *, struct vi_info *, struct sge_eq *);
265 #if defined(TCP_OFFLOAD) || defined(RATELIMIT)
266 static int ofld_eq_alloc(struct adapter *, struct vi_info *, struct sge_eq *);
267 #endif
268 static int alloc_eq(struct adapter *, struct vi_info *, struct sge_eq *);
269 static int free_eq(struct adapter *, struct sge_eq *);
270 static int alloc_wrq(struct adapter *, struct vi_info *, struct sge_wrq *,
271 struct sysctl_oid *);
272 static int free_wrq(struct adapter *, struct sge_wrq *);
273 static int alloc_txq(struct vi_info *, struct sge_txq *, int,
274 struct sysctl_oid *);
275 static int free_txq(struct vi_info *, struct sge_txq *);
276 static void oneseg_dma_callback(void *, bus_dma_segment_t *, int, int);
277 static inline void ring_fl_db(struct adapter *, struct sge_fl *);
278 static int refill_fl(struct adapter *, struct sge_fl *, int);
279 static void refill_sfl(void *);
280 static int alloc_fl_sdesc(struct sge_fl *);
281 static void free_fl_sdesc(struct adapter *, struct sge_fl *);
282 static void find_best_refill_source(struct adapter *, struct sge_fl *, int);
283 static void find_safe_refill_source(struct adapter *, struct sge_fl *);
284 static void add_fl_to_sfl(struct adapter *, struct sge_fl *);
285
286 static inline void get_pkt_gl(struct mbuf *, struct sglist *);
287 static inline u_int txpkt_len16(u_int, u_int);
288 static inline u_int txpkt_vm_len16(u_int, u_int);
289 static inline u_int txpkts0_len16(u_int);
290 static inline u_int txpkts1_len16(void);
291 static u_int write_raw_wr(struct sge_txq *, void *, struct mbuf *, u_int);
292 static u_int write_txpkt_wr(struct sge_txq *, struct fw_eth_tx_pkt_wr *,
293 struct mbuf *, u_int);
294 static u_int write_txpkt_vm_wr(struct adapter *, struct sge_txq *,
295 struct fw_eth_tx_pkt_vm_wr *, struct mbuf *, u_int);
296 static int try_txpkts(struct mbuf *, struct mbuf *, struct txpkts *, u_int);
297 static int add_to_txpkts(struct mbuf *, struct txpkts *, u_int);
298 static u_int write_txpkts_wr(struct sge_txq *, struct fw_eth_tx_pkts_wr *,
299 struct mbuf *, const struct txpkts *, u_int);
300 static void write_gl_to_txd(struct sge_txq *, struct mbuf *, caddr_t *, int);
301 static inline void copy_to_txd(struct sge_eq *, caddr_t, caddr_t *, int);
302 static inline void ring_eq_db(struct adapter *, struct sge_eq *, u_int);
303 static inline uint16_t read_hw_cidx(struct sge_eq *);
304 static inline u_int reclaimable_tx_desc(struct sge_eq *);
305 static inline u_int total_available_tx_desc(struct sge_eq *);
306 static u_int reclaim_tx_descs(struct sge_txq *, u_int);
307 static void tx_reclaim(void *, int);
308 static __be64 get_flit(struct sglist_seg *, int, int);
309 static int handle_sge_egr_update(struct sge_iq *, const struct rss_header *,
310 struct mbuf *);
311 static int handle_fw_msg(struct sge_iq *, const struct rss_header *,
312 struct mbuf *);
313 static int t4_handle_wrerr_rpl(struct adapter *, const __be64 *);
314 static void wrq_tx_drain(void *, int);
315 static void drain_wrq_wr_list(struct adapter *, struct sge_wrq *);
316
317 static int sysctl_uint16(SYSCTL_HANDLER_ARGS);
318 static int sysctl_bufsizes(SYSCTL_HANDLER_ARGS);
319 #ifdef RATELIMIT
320 static inline u_int txpkt_eo_len16(u_int, u_int, u_int);
321 static int ethofld_fw4_ack(struct sge_iq *, const struct rss_header *,
322 struct mbuf *);
323 #endif
324
325 static counter_u64_t extfree_refs;
326 static counter_u64_t extfree_rels;
327
328 an_handler_t t4_an_handler;
329 fw_msg_handler_t t4_fw_msg_handler[NUM_FW6_TYPES];
330 cpl_handler_t t4_cpl_handler[NUM_CPL_CMDS];
331 cpl_handler_t set_tcb_rpl_handlers[NUM_CPL_COOKIES];
332 cpl_handler_t l2t_write_rpl_handlers[NUM_CPL_COOKIES];
333 cpl_handler_t act_open_rpl_handlers[NUM_CPL_COOKIES];
334 cpl_handler_t abort_rpl_rss_handlers[NUM_CPL_COOKIES];
335 cpl_handler_t fw4_ack_handlers[NUM_CPL_COOKIES];
336
337 void
t4_register_an_handler(an_handler_t h)338 t4_register_an_handler(an_handler_t h)
339 {
340 uintptr_t *loc;
341
342 MPASS(h == NULL || t4_an_handler == NULL);
343
344 loc = (uintptr_t *)&t4_an_handler;
345 atomic_store_rel_ptr(loc, (uintptr_t)h);
346 }
347
348 void
t4_register_fw_msg_handler(int type,fw_msg_handler_t h)349 t4_register_fw_msg_handler(int type, fw_msg_handler_t h)
350 {
351 uintptr_t *loc;
352
353 MPASS(type < nitems(t4_fw_msg_handler));
354 MPASS(h == NULL || t4_fw_msg_handler[type] == NULL);
355 /*
356 * These are dispatched by the handler for FW{4|6}_CPL_MSG using the CPL
357 * handler dispatch table. Reject any attempt to install a handler for
358 * this subtype.
359 */
360 MPASS(type != FW_TYPE_RSSCPL);
361 MPASS(type != FW6_TYPE_RSSCPL);
362
363 loc = (uintptr_t *)&t4_fw_msg_handler[type];
364 atomic_store_rel_ptr(loc, (uintptr_t)h);
365 }
366
367 void
t4_register_cpl_handler(int opcode,cpl_handler_t h)368 t4_register_cpl_handler(int opcode, cpl_handler_t h)
369 {
370 uintptr_t *loc;
371
372 MPASS(opcode < nitems(t4_cpl_handler));
373 MPASS(h == NULL || t4_cpl_handler[opcode] == NULL);
374
375 loc = (uintptr_t *)&t4_cpl_handler[opcode];
376 atomic_store_rel_ptr(loc, (uintptr_t)h);
377 }
378
379 static int
set_tcb_rpl_handler(struct sge_iq * iq,const struct rss_header * rss,struct mbuf * m)380 set_tcb_rpl_handler(struct sge_iq *iq, const struct rss_header *rss,
381 struct mbuf *m)
382 {
383 const struct cpl_set_tcb_rpl *cpl = (const void *)(rss + 1);
384 u_int tid;
385 int cookie;
386
387 MPASS(m == NULL);
388
389 tid = GET_TID(cpl);
390 if (is_hpftid(iq->adapter, tid) || is_ftid(iq->adapter, tid)) {
391 /*
392 * The return code for filter-write is put in the CPL cookie so
393 * we have to rely on the hardware tid (is_ftid) to determine
394 * that this is a response to a filter.
395 */
396 cookie = CPL_COOKIE_FILTER;
397 } else {
398 cookie = G_COOKIE(cpl->cookie);
399 }
400 MPASS(cookie > CPL_COOKIE_RESERVED);
401 MPASS(cookie < nitems(set_tcb_rpl_handlers));
402
403 return (set_tcb_rpl_handlers[cookie](iq, rss, m));
404 }
405
406 static int
l2t_write_rpl_handler(struct sge_iq * iq,const struct rss_header * rss,struct mbuf * m)407 l2t_write_rpl_handler(struct sge_iq *iq, const struct rss_header *rss,
408 struct mbuf *m)
409 {
410 const struct cpl_l2t_write_rpl *rpl = (const void *)(rss + 1);
411 unsigned int cookie;
412
413 MPASS(m == NULL);
414
415 cookie = GET_TID(rpl) & F_SYNC_WR ? CPL_COOKIE_TOM : CPL_COOKIE_FILTER;
416 return (l2t_write_rpl_handlers[cookie](iq, rss, m));
417 }
418
419 static int
act_open_rpl_handler(struct sge_iq * iq,const struct rss_header * rss,struct mbuf * m)420 act_open_rpl_handler(struct sge_iq *iq, const struct rss_header *rss,
421 struct mbuf *m)
422 {
423 const struct cpl_act_open_rpl *cpl = (const void *)(rss + 1);
424 u_int cookie = G_TID_COOKIE(G_AOPEN_ATID(be32toh(cpl->atid_status)));
425
426 MPASS(m == NULL);
427 MPASS(cookie != CPL_COOKIE_RESERVED);
428
429 return (act_open_rpl_handlers[cookie](iq, rss, m));
430 }
431
432 static int
abort_rpl_rss_handler(struct sge_iq * iq,const struct rss_header * rss,struct mbuf * m)433 abort_rpl_rss_handler(struct sge_iq *iq, const struct rss_header *rss,
434 struct mbuf *m)
435 {
436 struct adapter *sc = iq->adapter;
437 u_int cookie;
438
439 MPASS(m == NULL);
440 if (is_hashfilter(sc))
441 cookie = CPL_COOKIE_HASHFILTER;
442 else
443 cookie = CPL_COOKIE_TOM;
444
445 return (abort_rpl_rss_handlers[cookie](iq, rss, m));
446 }
447
448 static int
fw4_ack_handler(struct sge_iq * iq,const struct rss_header * rss,struct mbuf * m)449 fw4_ack_handler(struct sge_iq *iq, const struct rss_header *rss, struct mbuf *m)
450 {
451 struct adapter *sc = iq->adapter;
452 const struct cpl_fw4_ack *cpl = (const void *)(rss + 1);
453 unsigned int tid = G_CPL_FW4_ACK_FLOWID(be32toh(OPCODE_TID(cpl)));
454 u_int cookie;
455
456 MPASS(m == NULL);
457 if (is_etid(sc, tid))
458 cookie = CPL_COOKIE_ETHOFLD;
459 else
460 cookie = CPL_COOKIE_TOM;
461
462 return (fw4_ack_handlers[cookie](iq, rss, m));
463 }
464
465 static void
t4_init_shared_cpl_handlers(void)466 t4_init_shared_cpl_handlers(void)
467 {
468
469 t4_register_cpl_handler(CPL_SET_TCB_RPL, set_tcb_rpl_handler);
470 t4_register_cpl_handler(CPL_L2T_WRITE_RPL, l2t_write_rpl_handler);
471 t4_register_cpl_handler(CPL_ACT_OPEN_RPL, act_open_rpl_handler);
472 t4_register_cpl_handler(CPL_ABORT_RPL_RSS, abort_rpl_rss_handler);
473 t4_register_cpl_handler(CPL_FW4_ACK, fw4_ack_handler);
474 }
475
476 void
t4_register_shared_cpl_handler(int opcode,cpl_handler_t h,int cookie)477 t4_register_shared_cpl_handler(int opcode, cpl_handler_t h, int cookie)
478 {
479 uintptr_t *loc;
480
481 MPASS(opcode < nitems(t4_cpl_handler));
482 MPASS(cookie > CPL_COOKIE_RESERVED);
483 MPASS(cookie < NUM_CPL_COOKIES);
484 MPASS(t4_cpl_handler[opcode] != NULL);
485
486 switch (opcode) {
487 case CPL_SET_TCB_RPL:
488 loc = (uintptr_t *)&set_tcb_rpl_handlers[cookie];
489 break;
490 case CPL_L2T_WRITE_RPL:
491 loc = (uintptr_t *)&l2t_write_rpl_handlers[cookie];
492 break;
493 case CPL_ACT_OPEN_RPL:
494 loc = (uintptr_t *)&act_open_rpl_handlers[cookie];
495 break;
496 case CPL_ABORT_RPL_RSS:
497 loc = (uintptr_t *)&abort_rpl_rss_handlers[cookie];
498 break;
499 case CPL_FW4_ACK:
500 loc = (uintptr_t *)&fw4_ack_handlers[cookie];
501 break;
502 default:
503 MPASS(0);
504 return;
505 }
506 MPASS(h == NULL || *loc == (uintptr_t)NULL);
507 atomic_store_rel_ptr(loc, (uintptr_t)h);
508 }
509
510 /*
511 * Called on MOD_LOAD. Validates and calculates the SGE tunables.
512 */
513 void
t4_sge_modload(void)514 t4_sge_modload(void)
515 {
516
517 if (fl_pktshift < 0 || fl_pktshift > 7) {
518 printf("Invalid hw.cxgbe.fl_pktshift value (%d),"
519 " using 0 instead.\n", fl_pktshift);
520 fl_pktshift = 0;
521 }
522
523 if (spg_len != 64 && spg_len != 128) {
524 int len;
525
526 #if defined(__i386__) || defined(__amd64__)
527 len = cpu_clflush_line_size > 64 ? 128 : 64;
528 #else
529 len = 64;
530 #endif
531 if (spg_len != -1) {
532 printf("Invalid hw.cxgbe.spg_len value (%d),"
533 " using %d instead.\n", spg_len, len);
534 }
535 spg_len = len;
536 }
537
538 if (cong_drop < -1 || cong_drop > 1) {
539 printf("Invalid hw.cxgbe.cong_drop value (%d),"
540 " using 0 instead.\n", cong_drop);
541 cong_drop = 0;
542 }
543
544 if (tscale != 1 && (tscale < 3 || tscale > 17)) {
545 printf("Invalid hw.cxgbe.tscale value (%d),"
546 " using 1 instead.\n", tscale);
547 tscale = 1;
548 }
549
550 extfree_refs = counter_u64_alloc(M_WAITOK);
551 extfree_rels = counter_u64_alloc(M_WAITOK);
552 counter_u64_zero(extfree_refs);
553 counter_u64_zero(extfree_rels);
554
555 t4_init_shared_cpl_handlers();
556 t4_register_cpl_handler(CPL_FW4_MSG, handle_fw_msg);
557 t4_register_cpl_handler(CPL_FW6_MSG, handle_fw_msg);
558 t4_register_cpl_handler(CPL_SGE_EGR_UPDATE, handle_sge_egr_update);
559 t4_register_cpl_handler(CPL_RX_PKT, t4_eth_rx);
560 #ifdef RATELIMIT
561 t4_register_shared_cpl_handler(CPL_FW4_ACK, ethofld_fw4_ack,
562 CPL_COOKIE_ETHOFLD);
563 #endif
564 t4_register_fw_msg_handler(FW6_TYPE_CMD_RPL, t4_handle_fw_rpl);
565 t4_register_fw_msg_handler(FW6_TYPE_WRERR_RPL, t4_handle_wrerr_rpl);
566 }
567
568 void
t4_sge_modunload(void)569 t4_sge_modunload(void)
570 {
571
572 counter_u64_free(extfree_refs);
573 counter_u64_free(extfree_rels);
574 }
575
576 uint64_t
t4_sge_extfree_refs(void)577 t4_sge_extfree_refs(void)
578 {
579 uint64_t refs, rels;
580
581 rels = counter_u64_fetch(extfree_rels);
582 refs = counter_u64_fetch(extfree_refs);
583
584 return (refs - rels);
585 }
586
587 static inline void
setup_pad_and_pack_boundaries(struct adapter * sc)588 setup_pad_and_pack_boundaries(struct adapter *sc)
589 {
590 uint32_t v, m;
591 int pad, pack, pad_shift;
592
593 pad_shift = chip_id(sc) > CHELSIO_T5 ? X_T6_INGPADBOUNDARY_SHIFT :
594 X_INGPADBOUNDARY_SHIFT;
595 pad = fl_pad;
596 if (fl_pad < (1 << pad_shift) ||
597 fl_pad > (1 << (pad_shift + M_INGPADBOUNDARY)) ||
598 !powerof2(fl_pad)) {
599 /*
600 * If there is any chance that we might use buffer packing and
601 * the chip is a T4, then pick 64 as the pad/pack boundary. Set
602 * it to the minimum allowed in all other cases.
603 */
604 pad = is_t4(sc) && buffer_packing ? 64 : 1 << pad_shift;
605
606 /*
607 * For fl_pad = 0 we'll still write a reasonable value to the
608 * register but all the freelists will opt out of padding.
609 * We'll complain here only if the user tried to set it to a
610 * value greater than 0 that was invalid.
611 */
612 if (fl_pad > 0) {
613 device_printf(sc->dev, "Invalid hw.cxgbe.fl_pad value"
614 " (%d), using %d instead.\n", fl_pad, pad);
615 }
616 }
617 m = V_INGPADBOUNDARY(M_INGPADBOUNDARY);
618 v = V_INGPADBOUNDARY(ilog2(pad) - pad_shift);
619 t4_set_reg_field(sc, A_SGE_CONTROL, m, v);
620
621 if (is_t4(sc)) {
622 if (fl_pack != -1 && fl_pack != pad) {
623 /* Complain but carry on. */
624 device_printf(sc->dev, "hw.cxgbe.fl_pack (%d) ignored,"
625 " using %d instead.\n", fl_pack, pad);
626 }
627 return;
628 }
629
630 pack = fl_pack;
631 if (fl_pack < 16 || fl_pack == 32 || fl_pack > 4096 ||
632 !powerof2(fl_pack)) {
633 pack = max(sc->params.pci.mps, CACHE_LINE_SIZE);
634 MPASS(powerof2(pack));
635 if (pack < 16)
636 pack = 16;
637 if (pack == 32)
638 pack = 64;
639 if (pack > 4096)
640 pack = 4096;
641 if (fl_pack != -1) {
642 device_printf(sc->dev, "Invalid hw.cxgbe.fl_pack value"
643 " (%d), using %d instead.\n", fl_pack, pack);
644 }
645 }
646 m = V_INGPACKBOUNDARY(M_INGPACKBOUNDARY);
647 if (pack == 16)
648 v = V_INGPACKBOUNDARY(0);
649 else
650 v = V_INGPACKBOUNDARY(ilog2(pack) - 5);
651
652 MPASS(!is_t4(sc)); /* T4 doesn't have SGE_CONTROL2 */
653 t4_set_reg_field(sc, A_SGE_CONTROL2, m, v);
654 }
655
656 /*
657 * adap->params.vpd.cclk must be set up before this is called.
658 */
659 void
t4_tweak_chip_settings(struct adapter * sc)660 t4_tweak_chip_settings(struct adapter *sc)
661 {
662 int i;
663 uint32_t v, m;
664 int intr_timer[SGE_NTIMERS] = {1, 5, 10, 50, 100, 200};
665 int timer_max = M_TIMERVALUE0 * 1000 / sc->params.vpd.cclk;
666 int intr_pktcount[SGE_NCOUNTERS] = {1, 8, 16, 32}; /* 63 max */
667 uint16_t indsz = min(RX_COPY_THRESHOLD - 1, M_INDICATESIZE);
668 static int sge_flbuf_sizes[] = {
669 MCLBYTES,
670 #if MJUMPAGESIZE != MCLBYTES
671 MJUMPAGESIZE,
672 MJUMPAGESIZE - CL_METADATA_SIZE,
673 MJUMPAGESIZE - 2 * MSIZE - CL_METADATA_SIZE,
674 #endif
675 MJUM9BYTES,
676 MJUM16BYTES,
677 MCLBYTES - MSIZE - CL_METADATA_SIZE,
678 MJUM9BYTES - CL_METADATA_SIZE,
679 MJUM16BYTES - CL_METADATA_SIZE,
680 };
681
682 KASSERT(sc->flags & MASTER_PF,
683 ("%s: trying to change chip settings when not master.", __func__));
684
685 m = V_PKTSHIFT(M_PKTSHIFT) | F_RXPKTCPLMODE | F_EGRSTATUSPAGESIZE;
686 v = V_PKTSHIFT(fl_pktshift) | F_RXPKTCPLMODE |
687 V_EGRSTATUSPAGESIZE(spg_len == 128);
688 t4_set_reg_field(sc, A_SGE_CONTROL, m, v);
689
690 setup_pad_and_pack_boundaries(sc);
691
692 v = V_HOSTPAGESIZEPF0(PAGE_SHIFT - 10) |
693 V_HOSTPAGESIZEPF1(PAGE_SHIFT - 10) |
694 V_HOSTPAGESIZEPF2(PAGE_SHIFT - 10) |
695 V_HOSTPAGESIZEPF3(PAGE_SHIFT - 10) |
696 V_HOSTPAGESIZEPF4(PAGE_SHIFT - 10) |
697 V_HOSTPAGESIZEPF5(PAGE_SHIFT - 10) |
698 V_HOSTPAGESIZEPF6(PAGE_SHIFT - 10) |
699 V_HOSTPAGESIZEPF7(PAGE_SHIFT - 10);
700 t4_write_reg(sc, A_SGE_HOST_PAGE_SIZE, v);
701
702 KASSERT(nitems(sge_flbuf_sizes) <= SGE_FLBUF_SIZES,
703 ("%s: hw buffer size table too big", __func__));
704 t4_write_reg(sc, A_SGE_FL_BUFFER_SIZE0, 4096);
705 t4_write_reg(sc, A_SGE_FL_BUFFER_SIZE1, 65536);
706 for (i = 0; i < min(nitems(sge_flbuf_sizes), SGE_FLBUF_SIZES); i++) {
707 t4_write_reg(sc, A_SGE_FL_BUFFER_SIZE15 - (4 * i),
708 sge_flbuf_sizes[i]);
709 }
710
711 v = V_THRESHOLD_0(intr_pktcount[0]) | V_THRESHOLD_1(intr_pktcount[1]) |
712 V_THRESHOLD_2(intr_pktcount[2]) | V_THRESHOLD_3(intr_pktcount[3]);
713 t4_write_reg(sc, A_SGE_INGRESS_RX_THRESHOLD, v);
714
715 KASSERT(intr_timer[0] <= timer_max,
716 ("%s: not a single usable timer (%d, %d)", __func__, intr_timer[0],
717 timer_max));
718 for (i = 1; i < nitems(intr_timer); i++) {
719 KASSERT(intr_timer[i] >= intr_timer[i - 1],
720 ("%s: timers not listed in increasing order (%d)",
721 __func__, i));
722
723 while (intr_timer[i] > timer_max) {
724 if (i == nitems(intr_timer) - 1) {
725 intr_timer[i] = timer_max;
726 break;
727 }
728 intr_timer[i] += intr_timer[i - 1];
729 intr_timer[i] /= 2;
730 }
731 }
732
733 v = V_TIMERVALUE0(us_to_core_ticks(sc, intr_timer[0])) |
734 V_TIMERVALUE1(us_to_core_ticks(sc, intr_timer[1]));
735 t4_write_reg(sc, A_SGE_TIMER_VALUE_0_AND_1, v);
736 v = V_TIMERVALUE2(us_to_core_ticks(sc, intr_timer[2])) |
737 V_TIMERVALUE3(us_to_core_ticks(sc, intr_timer[3]));
738 t4_write_reg(sc, A_SGE_TIMER_VALUE_2_AND_3, v);
739 v = V_TIMERVALUE4(us_to_core_ticks(sc, intr_timer[4])) |
740 V_TIMERVALUE5(us_to_core_ticks(sc, intr_timer[5]));
741 t4_write_reg(sc, A_SGE_TIMER_VALUE_4_AND_5, v);
742
743 if (chip_id(sc) >= CHELSIO_T6) {
744 m = V_TSCALE(M_TSCALE);
745 if (tscale == 1)
746 v = 0;
747 else
748 v = V_TSCALE(tscale - 2);
749 t4_set_reg_field(sc, A_SGE_ITP_CONTROL, m, v);
750
751 if (sc->debug_flags & DF_DISABLE_TCB_CACHE) {
752 m = V_RDTHRESHOLD(M_RDTHRESHOLD) | F_WRTHRTHRESHEN |
753 V_WRTHRTHRESH(M_WRTHRTHRESH);
754 t4_tp_pio_read(sc, &v, 1, A_TP_CMM_CONFIG, 1);
755 v &= ~m;
756 v |= V_RDTHRESHOLD(1) | F_WRTHRTHRESHEN |
757 V_WRTHRTHRESH(16);
758 t4_tp_pio_write(sc, &v, 1, A_TP_CMM_CONFIG, 1);
759 }
760 }
761
762 /* 4K, 16K, 64K, 256K DDP "page sizes" for TDDP */
763 v = V_HPZ0(0) | V_HPZ1(2) | V_HPZ2(4) | V_HPZ3(6);
764 t4_write_reg(sc, A_ULP_RX_TDDP_PSZ, v);
765
766 /*
767 * 4K, 8K, 16K, 64K DDP "page sizes" for iSCSI DDP. These have been
768 * chosen with MAXPHYS = 128K in mind. The largest DDP buffer that we
769 * may have to deal with is MAXPHYS + 1 page.
770 */
771 v = V_HPZ0(0) | V_HPZ1(1) | V_HPZ2(2) | V_HPZ3(4);
772 t4_write_reg(sc, A_ULP_RX_ISCSI_PSZ, v);
773
774 /* We use multiple DDP page sizes both in plain-TOE and ISCSI modes. */
775 m = v = F_TDDPTAGTCB | F_ISCSITAGTCB;
776 t4_set_reg_field(sc, A_ULP_RX_CTL, m, v);
777
778 m = V_INDICATESIZE(M_INDICATESIZE) | F_REARMDDPOFFSET |
779 F_RESETDDPOFFSET;
780 v = V_INDICATESIZE(indsz) | F_REARMDDPOFFSET | F_RESETDDPOFFSET;
781 t4_set_reg_field(sc, A_TP_PARA_REG5, m, v);
782 }
783
784 /*
785 * SGE wants the buffer to be at least 64B and then a multiple of 16. If
786 * padding is in use, the buffer's start and end need to be aligned to the pad
787 * boundary as well. We'll just make sure that the size is a multiple of the
788 * boundary here, it is up to the buffer allocation code to make sure the start
789 * of the buffer is aligned as well.
790 */
791 static inline int
hwsz_ok(struct adapter * sc,int hwsz)792 hwsz_ok(struct adapter *sc, int hwsz)
793 {
794 int mask = fl_pad ? sc->params.sge.pad_boundary - 1 : 16 - 1;
795
796 return (hwsz >= 64 && (hwsz & mask) == 0);
797 }
798
799 /*
800 * XXX: driver really should be able to deal with unexpected settings.
801 */
802 int
t4_read_chip_settings(struct adapter * sc)803 t4_read_chip_settings(struct adapter *sc)
804 {
805 struct sge *s = &sc->sge;
806 struct sge_params *sp = &sc->params.sge;
807 int i, j, n, rc = 0;
808 uint32_t m, v, r;
809 uint16_t indsz = min(RX_COPY_THRESHOLD - 1, M_INDICATESIZE);
810 static int sw_buf_sizes[] = { /* Sorted by size */
811 MCLBYTES,
812 #if MJUMPAGESIZE != MCLBYTES
813 MJUMPAGESIZE,
814 #endif
815 MJUM9BYTES,
816 MJUM16BYTES
817 };
818 struct sw_zone_info *swz, *safe_swz;
819 struct hw_buf_info *hwb;
820
821 m = F_RXPKTCPLMODE;
822 v = F_RXPKTCPLMODE;
823 r = sc->params.sge.sge_control;
824 if ((r & m) != v) {
825 device_printf(sc->dev, "invalid SGE_CONTROL(0x%x)\n", r);
826 rc = EINVAL;
827 }
828
829 /*
830 * If this changes then every single use of PAGE_SHIFT in the driver
831 * needs to be carefully reviewed for PAGE_SHIFT vs sp->page_shift.
832 */
833 if (sp->page_shift != PAGE_SHIFT) {
834 device_printf(sc->dev, "invalid SGE_HOST_PAGE_SIZE(0x%x)\n", r);
835 rc = EINVAL;
836 }
837
838 /* Filter out unusable hw buffer sizes entirely (mark with -2). */
839 hwb = &s->hw_buf_info[0];
840 for (i = 0; i < nitems(s->hw_buf_info); i++, hwb++) {
841 r = sc->params.sge.sge_fl_buffer_size[i];
842 hwb->size = r;
843 hwb->zidx = hwsz_ok(sc, r) ? -1 : -2;
844 hwb->next = -1;
845 }
846
847 /*
848 * Create a sorted list in decreasing order of hw buffer sizes (and so
849 * increasing order of spare area) for each software zone.
850 *
851 * If padding is enabled then the start and end of the buffer must align
852 * to the pad boundary; if packing is enabled then they must align with
853 * the pack boundary as well. Allocations from the cluster zones are
854 * aligned to min(size, 4K), so the buffer starts at that alignment and
855 * ends at hwb->size alignment. If mbuf inlining is allowed the
856 * starting alignment will be reduced to MSIZE and the driver will
857 * exercise appropriate caution when deciding on the best buffer layout
858 * to use.
859 */
860 n = 0; /* no usable buffer size to begin with */
861 swz = &s->sw_zone_info[0];
862 safe_swz = NULL;
863 for (i = 0; i < SW_ZONE_SIZES; i++, swz++) {
864 int8_t head = -1, tail = -1;
865
866 swz->size = sw_buf_sizes[i];
867 swz->zone = m_getzone(swz->size);
868 swz->type = m_gettype(swz->size);
869
870 if (swz->size < PAGE_SIZE) {
871 MPASS(powerof2(swz->size));
872 if (fl_pad && (swz->size % sp->pad_boundary != 0))
873 continue;
874 }
875
876 if (swz->size == safest_rx_cluster)
877 safe_swz = swz;
878
879 hwb = &s->hw_buf_info[0];
880 for (j = 0; j < SGE_FLBUF_SIZES; j++, hwb++) {
881 if (hwb->zidx != -1 || hwb->size > swz->size)
882 continue;
883 #ifdef INVARIANTS
884 if (fl_pad)
885 MPASS(hwb->size % sp->pad_boundary == 0);
886 #endif
887 hwb->zidx = i;
888 if (head == -1)
889 head = tail = j;
890 else if (hwb->size < s->hw_buf_info[tail].size) {
891 s->hw_buf_info[tail].next = j;
892 tail = j;
893 } else {
894 int8_t *cur;
895 struct hw_buf_info *t;
896
897 for (cur = &head; *cur != -1; cur = &t->next) {
898 t = &s->hw_buf_info[*cur];
899 if (hwb->size == t->size) {
900 hwb->zidx = -2;
901 break;
902 }
903 if (hwb->size > t->size) {
904 hwb->next = *cur;
905 *cur = j;
906 break;
907 }
908 }
909 }
910 }
911 swz->head_hwidx = head;
912 swz->tail_hwidx = tail;
913
914 if (tail != -1) {
915 n++;
916 if (swz->size - s->hw_buf_info[tail].size >=
917 CL_METADATA_SIZE)
918 sc->flags |= BUF_PACKING_OK;
919 }
920 }
921 if (n == 0) {
922 device_printf(sc->dev, "no usable SGE FL buffer size.\n");
923 rc = EINVAL;
924 }
925
926 s->safe_hwidx1 = -1;
927 s->safe_hwidx2 = -1;
928 if (safe_swz != NULL) {
929 s->safe_hwidx1 = safe_swz->head_hwidx;
930 for (i = safe_swz->head_hwidx; i != -1; i = hwb->next) {
931 int spare;
932
933 hwb = &s->hw_buf_info[i];
934 #ifdef INVARIANTS
935 if (fl_pad)
936 MPASS(hwb->size % sp->pad_boundary == 0);
937 #endif
938 spare = safe_swz->size - hwb->size;
939 if (spare >= CL_METADATA_SIZE) {
940 s->safe_hwidx2 = i;
941 break;
942 }
943 }
944 }
945
946 if (sc->flags & IS_VF)
947 return (0);
948
949 v = V_HPZ0(0) | V_HPZ1(2) | V_HPZ2(4) | V_HPZ3(6);
950 r = t4_read_reg(sc, A_ULP_RX_TDDP_PSZ);
951 if (r != v) {
952 device_printf(sc->dev, "invalid ULP_RX_TDDP_PSZ(0x%x)\n", r);
953 rc = EINVAL;
954 }
955
956 m = v = F_TDDPTAGTCB;
957 r = t4_read_reg(sc, A_ULP_RX_CTL);
958 if ((r & m) != v) {
959 device_printf(sc->dev, "invalid ULP_RX_CTL(0x%x)\n", r);
960 rc = EINVAL;
961 }
962
963 m = V_INDICATESIZE(M_INDICATESIZE) | F_REARMDDPOFFSET |
964 F_RESETDDPOFFSET;
965 v = V_INDICATESIZE(indsz) | F_REARMDDPOFFSET | F_RESETDDPOFFSET;
966 r = t4_read_reg(sc, A_TP_PARA_REG5);
967 if ((r & m) != v) {
968 device_printf(sc->dev, "invalid TP_PARA_REG5(0x%x)\n", r);
969 rc = EINVAL;
970 }
971
972 t4_init_tp_params(sc, 1);
973
974 t4_read_mtu_tbl(sc, sc->params.mtus, NULL);
975 t4_load_mtus(sc, sc->params.mtus, sc->params.a_wnd, sc->params.b_wnd);
976
977 return (rc);
978 }
979
980 int
t4_create_dma_tag(struct adapter * sc)981 t4_create_dma_tag(struct adapter *sc)
982 {
983 int rc;
984
985 rc = bus_dma_tag_create(bus_get_dma_tag(sc->dev), 1, 0,
986 BUS_SPACE_MAXADDR, BUS_SPACE_MAXADDR, NULL, NULL, BUS_SPACE_MAXSIZE,
987 BUS_SPACE_UNRESTRICTED, BUS_SPACE_MAXSIZE, BUS_DMA_ALLOCNOW, NULL,
988 NULL, &sc->dmat);
989 if (rc != 0) {
990 device_printf(sc->dev,
991 "failed to create main DMA tag: %d\n", rc);
992 }
993
994 return (rc);
995 }
996
997 void
t4_sge_sysctls(struct adapter * sc,struct sysctl_ctx_list * ctx,struct sysctl_oid_list * children)998 t4_sge_sysctls(struct adapter *sc, struct sysctl_ctx_list *ctx,
999 struct sysctl_oid_list *children)
1000 {
1001 struct sge_params *sp = &sc->params.sge;
1002
1003 SYSCTL_ADD_PROC(ctx, children, OID_AUTO, "buffer_sizes",
1004 CTLTYPE_STRING | CTLFLAG_RD, &sc->sge, 0, sysctl_bufsizes, "A",
1005 "freelist buffer sizes");
1006
1007 SYSCTL_ADD_INT(ctx, children, OID_AUTO, "fl_pktshift", CTLFLAG_RD,
1008 NULL, sp->fl_pktshift, "payload DMA offset in rx buffer (bytes)");
1009
1010 SYSCTL_ADD_INT(ctx, children, OID_AUTO, "fl_pad", CTLFLAG_RD,
1011 NULL, sp->pad_boundary, "payload pad boundary (bytes)");
1012
1013 SYSCTL_ADD_INT(ctx, children, OID_AUTO, "spg_len", CTLFLAG_RD,
1014 NULL, sp->spg_len, "status page size (bytes)");
1015
1016 SYSCTL_ADD_INT(ctx, children, OID_AUTO, "cong_drop", CTLFLAG_RD,
1017 NULL, cong_drop, "congestion drop setting");
1018
1019 SYSCTL_ADD_INT(ctx, children, OID_AUTO, "fl_pack", CTLFLAG_RD,
1020 NULL, sp->pack_boundary, "payload pack boundary (bytes)");
1021 }
1022
1023 int
t4_destroy_dma_tag(struct adapter * sc)1024 t4_destroy_dma_tag(struct adapter *sc)
1025 {
1026 if (sc->dmat)
1027 bus_dma_tag_destroy(sc->dmat);
1028
1029 return (0);
1030 }
1031
1032 /*
1033 * Allocate and initialize the firmware event queue, control queues, and special
1034 * purpose rx queues owned by the adapter.
1035 *
1036 * Returns errno on failure. Resources allocated up to that point may still be
1037 * allocated. Caller is responsible for cleanup in case this function fails.
1038 */
1039 int
t4_setup_adapter_queues(struct adapter * sc)1040 t4_setup_adapter_queues(struct adapter *sc)
1041 {
1042 struct sysctl_oid *oid;
1043 struct sysctl_oid_list *children;
1044 int rc, i;
1045
1046 ADAPTER_LOCK_ASSERT_NOTOWNED(sc);
1047
1048 sysctl_ctx_init(&sc->ctx);
1049 sc->flags |= ADAP_SYSCTL_CTX;
1050
1051 /*
1052 * Firmware event queue
1053 */
1054 rc = alloc_fwq(sc);
1055 if (rc != 0)
1056 return (rc);
1057
1058 /*
1059 * That's all for the VF driver.
1060 */
1061 if (sc->flags & IS_VF)
1062 return (rc);
1063
1064 oid = device_get_sysctl_tree(sc->dev);
1065 children = SYSCTL_CHILDREN(oid);
1066
1067 /*
1068 * XXX: General purpose rx queues, one per port.
1069 */
1070
1071 /*
1072 * Control queues, one per port.
1073 */
1074 oid = SYSCTL_ADD_NODE(&sc->ctx, children, OID_AUTO, "ctrlq",
1075 CTLFLAG_RD, NULL, "control queues");
1076 for_each_port(sc, i) {
1077 struct sge_wrq *ctrlq = &sc->sge.ctrlq[i];
1078
1079 rc = alloc_ctrlq(sc, ctrlq, i, oid);
1080 if (rc != 0)
1081 return (rc);
1082 }
1083
1084 return (rc);
1085 }
1086
1087 /*
1088 * Idempotent
1089 */
1090 int
t4_teardown_adapter_queues(struct adapter * sc)1091 t4_teardown_adapter_queues(struct adapter *sc)
1092 {
1093 int i;
1094
1095 ADAPTER_LOCK_ASSERT_NOTOWNED(sc);
1096
1097 /* Do this before freeing the queue */
1098 if (sc->flags & ADAP_SYSCTL_CTX) {
1099 sysctl_ctx_free(&sc->ctx);
1100 sc->flags &= ~ADAP_SYSCTL_CTX;
1101 }
1102
1103 if (!(sc->flags & IS_VF)) {
1104 for_each_port(sc, i)
1105 free_wrq(sc, &sc->sge.ctrlq[i]);
1106 }
1107 free_fwq(sc);
1108
1109 return (0);
1110 }
1111
1112 /* Maximum payload that can be delivered with a single iq descriptor */
1113 static inline int
mtu_to_max_payload(struct adapter * sc,int mtu,const int toe)1114 mtu_to_max_payload(struct adapter *sc, int mtu, const int toe)
1115 {
1116 int payload;
1117
1118 #ifdef TCP_OFFLOAD
1119 if (toe) {
1120 int rxcs = G_RXCOALESCESIZE(t4_read_reg(sc, A_TP_PARA_REG2));
1121
1122 /* Note that COP can set rx_coalesce on/off per connection. */
1123 payload = max(mtu, rxcs);
1124 } else {
1125 #endif
1126 /* large enough even when hw VLAN extraction is disabled */
1127 payload = sc->params.sge.fl_pktshift + ETHER_HDR_LEN +
1128 ETHER_VLAN_ENCAP_LEN + mtu;
1129 #ifdef TCP_OFFLOAD
1130 }
1131 #endif
1132
1133 return (payload);
1134 }
1135
1136 int
t4_setup_vi_queues(struct vi_info * vi)1137 t4_setup_vi_queues(struct vi_info *vi)
1138 {
1139 int rc = 0, i, intr_idx, iqidx;
1140 struct sge_rxq *rxq;
1141 struct sge_txq *txq;
1142 #ifdef TCP_OFFLOAD
1143 struct sge_ofld_rxq *ofld_rxq;
1144 #endif
1145 #if defined(TCP_OFFLOAD) || defined(RATELIMIT)
1146 struct sge_wrq *ofld_txq;
1147 #endif
1148 #ifdef DEV_NETMAP
1149 int saved_idx;
1150 struct sge_nm_rxq *nm_rxq;
1151 struct sge_nm_txq *nm_txq;
1152 #endif
1153 char name[16];
1154 struct port_info *pi = vi->pi;
1155 struct adapter *sc = pi->adapter;
1156 struct ifnet *ifp = vi->ifp;
1157 struct sysctl_oid *oid = device_get_sysctl_tree(vi->dev);
1158 struct sysctl_oid_list *children = SYSCTL_CHILDREN(oid);
1159 int maxp, mtu = ifp->if_mtu;
1160
1161 /* Interrupt vector to start from (when using multiple vectors) */
1162 intr_idx = vi->first_intr;
1163
1164 #ifdef DEV_NETMAP
1165 saved_idx = intr_idx;
1166 if (ifp->if_capabilities & IFCAP_NETMAP) {
1167
1168 /* netmap is supported with direct interrupts only. */
1169 MPASS(!forwarding_intr_to_fwq(sc));
1170
1171 /*
1172 * We don't have buffers to back the netmap rx queues
1173 * right now so we create the queues in a way that
1174 * doesn't set off any congestion signal in the chip.
1175 */
1176 oid = SYSCTL_ADD_NODE(&vi->ctx, children, OID_AUTO, "nm_rxq",
1177 CTLFLAG_RD, NULL, "rx queues");
1178 for_each_nm_rxq(vi, i, nm_rxq) {
1179 rc = alloc_nm_rxq(vi, nm_rxq, intr_idx, i, oid);
1180 if (rc != 0)
1181 goto done;
1182 intr_idx++;
1183 }
1184
1185 oid = SYSCTL_ADD_NODE(&vi->ctx, children, OID_AUTO, "nm_txq",
1186 CTLFLAG_RD, NULL, "tx queues");
1187 for_each_nm_txq(vi, i, nm_txq) {
1188 iqidx = vi->first_nm_rxq + (i % vi->nnmrxq);
1189 rc = alloc_nm_txq(vi, nm_txq, iqidx, i, oid);
1190 if (rc != 0)
1191 goto done;
1192 }
1193 }
1194
1195 /* Normal rx queues and netmap rx queues share the same interrupts. */
1196 intr_idx = saved_idx;
1197 #endif
1198
1199 /*
1200 * Allocate rx queues first because a default iqid is required when
1201 * creating a tx queue.
1202 */
1203 maxp = mtu_to_max_payload(sc, mtu, 0);
1204 oid = SYSCTL_ADD_NODE(&vi->ctx, children, OID_AUTO, "rxq",
1205 CTLFLAG_RD, NULL, "rx queues");
1206 for_each_rxq(vi, i, rxq) {
1207
1208 init_iq(&rxq->iq, sc, vi->tmr_idx, vi->pktc_idx, vi->qsize_rxq);
1209
1210 snprintf(name, sizeof(name), "%s rxq%d-fl",
1211 device_get_nameunit(vi->dev), i);
1212 init_fl(sc, &rxq->fl, vi->qsize_rxq / 8, maxp, name);
1213
1214 rc = alloc_rxq(vi, rxq,
1215 forwarding_intr_to_fwq(sc) ? -1 : intr_idx, i, oid);
1216 if (rc != 0)
1217 goto done;
1218 intr_idx++;
1219 }
1220 #ifdef DEV_NETMAP
1221 if (ifp->if_capabilities & IFCAP_NETMAP)
1222 intr_idx = saved_idx + max(vi->nrxq, vi->nnmrxq);
1223 #endif
1224 #ifdef TCP_OFFLOAD
1225 maxp = mtu_to_max_payload(sc, mtu, 1);
1226 oid = SYSCTL_ADD_NODE(&vi->ctx, children, OID_AUTO, "ofld_rxq",
1227 CTLFLAG_RD, NULL, "rx queues for offloaded TCP connections");
1228 for_each_ofld_rxq(vi, i, ofld_rxq) {
1229
1230 init_iq(&ofld_rxq->iq, sc, vi->ofld_tmr_idx, vi->ofld_pktc_idx,
1231 vi->qsize_rxq);
1232
1233 snprintf(name, sizeof(name), "%s ofld_rxq%d-fl",
1234 device_get_nameunit(vi->dev), i);
1235 init_fl(sc, &ofld_rxq->fl, vi->qsize_rxq / 8, maxp, name);
1236
1237 rc = alloc_ofld_rxq(vi, ofld_rxq,
1238 forwarding_intr_to_fwq(sc) ? -1 : intr_idx, i, oid);
1239 if (rc != 0)
1240 goto done;
1241 intr_idx++;
1242 }
1243 #endif
1244
1245 /*
1246 * Now the tx queues.
1247 */
1248 oid = SYSCTL_ADD_NODE(&vi->ctx, children, OID_AUTO, "txq", CTLFLAG_RD,
1249 NULL, "tx queues");
1250 for_each_txq(vi, i, txq) {
1251 iqidx = vi->first_rxq + (i % vi->nrxq);
1252 snprintf(name, sizeof(name), "%s txq%d",
1253 device_get_nameunit(vi->dev), i);
1254 init_eq(sc, &txq->eq, EQ_ETH, vi->qsize_txq, pi->tx_chan,
1255 sc->sge.rxq[iqidx].iq.cntxt_id, name);
1256
1257 rc = alloc_txq(vi, txq, i, oid);
1258 if (rc != 0)
1259 goto done;
1260 }
1261 #if defined(TCP_OFFLOAD) || defined(RATELIMIT)
1262 oid = SYSCTL_ADD_NODE(&vi->ctx, children, OID_AUTO, "ofld_txq",
1263 CTLFLAG_RD, NULL, "tx queues for TOE/ETHOFLD");
1264 for_each_ofld_txq(vi, i, ofld_txq) {
1265 struct sysctl_oid *oid2;
1266
1267 snprintf(name, sizeof(name), "%s ofld_txq%d",
1268 device_get_nameunit(vi->dev), i);
1269 if (vi->nofldrxq > 0) {
1270 iqidx = vi->first_ofld_rxq + (i % vi->nofldrxq);
1271 init_eq(sc, &ofld_txq->eq, EQ_OFLD, vi->qsize_txq,
1272 pi->tx_chan, sc->sge.ofld_rxq[iqidx].iq.cntxt_id,
1273 name);
1274 } else {
1275 iqidx = vi->first_rxq + (i % vi->nrxq);
1276 init_eq(sc, &ofld_txq->eq, EQ_OFLD, vi->qsize_txq,
1277 pi->tx_chan, sc->sge.rxq[iqidx].iq.cntxt_id, name);
1278 }
1279
1280 snprintf(name, sizeof(name), "%d", i);
1281 oid2 = SYSCTL_ADD_NODE(&vi->ctx, SYSCTL_CHILDREN(oid), OID_AUTO,
1282 name, CTLFLAG_RD, NULL, "offload tx queue");
1283
1284 rc = alloc_wrq(sc, vi, ofld_txq, oid2);
1285 if (rc != 0)
1286 goto done;
1287 }
1288 #endif
1289 done:
1290 if (rc)
1291 t4_teardown_vi_queues(vi);
1292
1293 return (rc);
1294 }
1295
1296 /*
1297 * Idempotent
1298 */
1299 int
t4_teardown_vi_queues(struct vi_info * vi)1300 t4_teardown_vi_queues(struct vi_info *vi)
1301 {
1302 int i;
1303 struct sge_rxq *rxq;
1304 struct sge_txq *txq;
1305 #if defined(TCP_OFFLOAD) || defined(RATELIMIT)
1306 struct port_info *pi = vi->pi;
1307 struct adapter *sc = pi->adapter;
1308 struct sge_wrq *ofld_txq;
1309 #endif
1310 #ifdef TCP_OFFLOAD
1311 struct sge_ofld_rxq *ofld_rxq;
1312 #endif
1313 #ifdef DEV_NETMAP
1314 struct sge_nm_rxq *nm_rxq;
1315 struct sge_nm_txq *nm_txq;
1316 #endif
1317
1318 /* Do this before freeing the queues */
1319 if (vi->flags & VI_SYSCTL_CTX) {
1320 sysctl_ctx_free(&vi->ctx);
1321 vi->flags &= ~VI_SYSCTL_CTX;
1322 }
1323
1324 #ifdef DEV_NETMAP
1325 if (vi->ifp->if_capabilities & IFCAP_NETMAP) {
1326 for_each_nm_txq(vi, i, nm_txq) {
1327 free_nm_txq(vi, nm_txq);
1328 }
1329
1330 for_each_nm_rxq(vi, i, nm_rxq) {
1331 free_nm_rxq(vi, nm_rxq);
1332 }
1333 }
1334 #endif
1335
1336 /*
1337 * Take down all the tx queues first, as they reference the rx queues
1338 * (for egress updates, etc.).
1339 */
1340
1341 for_each_txq(vi, i, txq) {
1342 free_txq(vi, txq);
1343 }
1344 #if defined(TCP_OFFLOAD) || defined(RATELIMIT)
1345 for_each_ofld_txq(vi, i, ofld_txq) {
1346 free_wrq(sc, ofld_txq);
1347 }
1348 #endif
1349
1350 /*
1351 * Then take down the rx queues.
1352 */
1353
1354 for_each_rxq(vi, i, rxq) {
1355 free_rxq(vi, rxq);
1356 }
1357 #ifdef TCP_OFFLOAD
1358 for_each_ofld_rxq(vi, i, ofld_rxq) {
1359 free_ofld_rxq(vi, ofld_rxq);
1360 }
1361 #endif
1362
1363 return (0);
1364 }
1365
1366 /*
1367 * Interrupt handler when the driver is using only 1 interrupt. This is a very
1368 * unusual scenario.
1369 *
1370 * a) Deals with errors, if any.
1371 * b) Services firmware event queue, which is taking interrupts for all other
1372 * queues.
1373 */
1374 void
t4_intr_all(void * arg)1375 t4_intr_all(void *arg)
1376 {
1377 struct adapter *sc = arg;
1378 struct sge_iq *fwq = &sc->sge.fwq;
1379
1380 MPASS(sc->intr_count == 1);
1381
1382 if (sc->intr_type == INTR_INTX)
1383 t4_write_reg(sc, MYPF_REG(A_PCIE_PF_CLI), 0);
1384
1385 t4_intr_err(arg);
1386 t4_intr_evt(fwq);
1387 }
1388
1389 /*
1390 * Interrupt handler for errors (installed directly when multiple interrupts are
1391 * being used, or called by t4_intr_all).
1392 */
1393 void
t4_intr_err(void * arg)1394 t4_intr_err(void *arg)
1395 {
1396 struct adapter *sc = arg;
1397 uint32_t v;
1398 const bool verbose = (sc->debug_flags & DF_VERBOSE_SLOWINTR) != 0;
1399
1400 if (sc->flags & ADAP_ERR)
1401 return;
1402
1403 v = t4_read_reg(sc, MYPF_REG(A_PL_PF_INT_CAUSE));
1404 if (v & F_PFSW) {
1405 sc->swintr++;
1406 t4_write_reg(sc, MYPF_REG(A_PL_PF_INT_CAUSE), v);
1407 }
1408
1409 t4_slow_intr_handler(sc, verbose);
1410 }
1411
1412 /*
1413 * Interrupt handler for iq-only queues. The firmware event queue is the only
1414 * such queue right now.
1415 */
1416 void
t4_intr_evt(void * arg)1417 t4_intr_evt(void *arg)
1418 {
1419 struct sge_iq *iq = arg;
1420
1421 if (atomic_cmpset_int(&iq->state, IQS_IDLE, IQS_BUSY)) {
1422 service_iq(iq, 0);
1423 (void) atomic_cmpset_int(&iq->state, IQS_BUSY, IQS_IDLE);
1424 }
1425 }
1426
1427 /*
1428 * Interrupt handler for iq+fl queues.
1429 */
1430 void
t4_intr(void * arg)1431 t4_intr(void *arg)
1432 {
1433 struct sge_iq *iq = arg;
1434
1435 if (atomic_cmpset_int(&iq->state, IQS_IDLE, IQS_BUSY)) {
1436 service_iq_fl(iq, 0);
1437 (void) atomic_cmpset_int(&iq->state, IQS_BUSY, IQS_IDLE);
1438 }
1439 }
1440
1441 #ifdef DEV_NETMAP
1442 /*
1443 * Interrupt handler for netmap rx queues.
1444 */
1445 void
t4_nm_intr(void * arg)1446 t4_nm_intr(void *arg)
1447 {
1448 struct sge_nm_rxq *nm_rxq = arg;
1449
1450 if (atomic_cmpset_int(&nm_rxq->nm_state, NM_ON, NM_BUSY)) {
1451 service_nm_rxq(nm_rxq);
1452 (void) atomic_cmpset_int(&nm_rxq->nm_state, NM_BUSY, NM_ON);
1453 }
1454 }
1455
1456 /*
1457 * Interrupt handler for vectors shared between NIC and netmap rx queues.
1458 */
1459 void
t4_vi_intr(void * arg)1460 t4_vi_intr(void *arg)
1461 {
1462 struct irq *irq = arg;
1463
1464 MPASS(irq->nm_rxq != NULL);
1465 t4_nm_intr(irq->nm_rxq);
1466
1467 MPASS(irq->rxq != NULL);
1468 t4_intr(irq->rxq);
1469 }
1470 #endif
1471
1472 /*
1473 * Deals with interrupts on an iq-only (no freelist) queue.
1474 */
1475 static int
service_iq(struct sge_iq * iq,int budget)1476 service_iq(struct sge_iq *iq, int budget)
1477 {
1478 struct sge_iq *q;
1479 struct adapter *sc = iq->adapter;
1480 struct iq_desc *d = &iq->desc[iq->cidx];
1481 int ndescs = 0, limit;
1482 int rsp_type;
1483 uint32_t lq;
1484 STAILQ_HEAD(, sge_iq) iql = STAILQ_HEAD_INITIALIZER(iql);
1485
1486 KASSERT(iq->state == IQS_BUSY, ("%s: iq %p not BUSY", __func__, iq));
1487 KASSERT((iq->flags & IQ_HAS_FL) == 0,
1488 ("%s: called for iq %p with fl (iq->flags 0x%x)", __func__, iq,
1489 iq->flags));
1490 MPASS((iq->flags & IQ_ADJ_CREDIT) == 0);
1491 MPASS((iq->flags & IQ_LRO_ENABLED) == 0);
1492
1493 limit = budget ? budget : iq->qsize / 16;
1494
1495 /*
1496 * We always come back and check the descriptor ring for new indirect
1497 * interrupts and other responses after running a single handler.
1498 */
1499 for (;;) {
1500 while ((d->rsp.u.type_gen & F_RSPD_GEN) == iq->gen) {
1501
1502 rmb();
1503
1504 rsp_type = G_RSPD_TYPE(d->rsp.u.type_gen);
1505 lq = be32toh(d->rsp.pldbuflen_qid);
1506
1507 switch (rsp_type) {
1508 case X_RSPD_TYPE_FLBUF:
1509 panic("%s: data for an iq (%p) with no freelist",
1510 __func__, iq);
1511
1512 /* NOTREACHED */
1513
1514 case X_RSPD_TYPE_CPL:
1515 KASSERT(d->rss.opcode < NUM_CPL_CMDS,
1516 ("%s: bad opcode %02x.", __func__,
1517 d->rss.opcode));
1518 t4_cpl_handler[d->rss.opcode](iq, &d->rss, NULL);
1519 break;
1520
1521 case X_RSPD_TYPE_INTR:
1522 /*
1523 * There are 1K interrupt-capable queues (qids 0
1524 * through 1023). A response type indicating a
1525 * forwarded interrupt with a qid >= 1K is an
1526 * iWARP async notification.
1527 */
1528 if (__predict_true(lq >= 1024)) {
1529 t4_an_handler(iq, &d->rsp);
1530 break;
1531 }
1532
1533 q = sc->sge.iqmap[lq - sc->sge.iq_start -
1534 sc->sge.iq_base];
1535 if (atomic_cmpset_int(&q->state, IQS_IDLE,
1536 IQS_BUSY)) {
1537 if (service_iq_fl(q, q->qsize / 16) == 0) {
1538 (void) atomic_cmpset_int(&q->state,
1539 IQS_BUSY, IQS_IDLE);
1540 } else {
1541 STAILQ_INSERT_TAIL(&iql, q,
1542 link);
1543 }
1544 }
1545 break;
1546
1547 default:
1548 KASSERT(0,
1549 ("%s: illegal response type %d on iq %p",
1550 __func__, rsp_type, iq));
1551 log(LOG_ERR,
1552 "%s: illegal response type %d on iq %p",
1553 device_get_nameunit(sc->dev), rsp_type, iq);
1554 break;
1555 }
1556
1557 d++;
1558 if (__predict_false(++iq->cidx == iq->sidx)) {
1559 iq->cidx = 0;
1560 iq->gen ^= F_RSPD_GEN;
1561 d = &iq->desc[0];
1562 }
1563 if (__predict_false(++ndescs == limit)) {
1564 t4_write_reg(sc, sc->sge_gts_reg,
1565 V_CIDXINC(ndescs) |
1566 V_INGRESSQID(iq->cntxt_id) |
1567 V_SEINTARM(V_QINTR_TIMER_IDX(X_TIMERREG_UPDATE_CIDX)));
1568 ndescs = 0;
1569
1570 if (budget) {
1571 return (EINPROGRESS);
1572 }
1573 }
1574 }
1575
1576 if (STAILQ_EMPTY(&iql))
1577 break;
1578
1579 /*
1580 * Process the head only, and send it to the back of the list if
1581 * it's still not done.
1582 */
1583 q = STAILQ_FIRST(&iql);
1584 STAILQ_REMOVE_HEAD(&iql, link);
1585 if (service_iq_fl(q, q->qsize / 8) == 0)
1586 (void) atomic_cmpset_int(&q->state, IQS_BUSY, IQS_IDLE);
1587 else
1588 STAILQ_INSERT_TAIL(&iql, q, link);
1589 }
1590
1591 t4_write_reg(sc, sc->sge_gts_reg, V_CIDXINC(ndescs) |
1592 V_INGRESSQID((u32)iq->cntxt_id) | V_SEINTARM(iq->intr_params));
1593
1594 return (0);
1595 }
1596
1597 static inline int
sort_before_lro(struct lro_ctrl * lro)1598 sort_before_lro(struct lro_ctrl *lro)
1599 {
1600
1601 return (lro->lro_mbuf_max != 0);
1602 }
1603
1604 static inline uint64_t
last_flit_to_ns(struct adapter * sc,uint64_t lf)1605 last_flit_to_ns(struct adapter *sc, uint64_t lf)
1606 {
1607 uint64_t n = be64toh(lf) & 0xfffffffffffffff; /* 60b, not 64b. */
1608
1609 if (n > UINT64_MAX / 1000000)
1610 return (n / sc->params.vpd.cclk * 1000000);
1611 else
1612 return (n * 1000000 / sc->params.vpd.cclk);
1613 }
1614
1615 /*
1616 * Deals with interrupts on an iq+fl queue.
1617 */
1618 static int
service_iq_fl(struct sge_iq * iq,int budget)1619 service_iq_fl(struct sge_iq *iq, int budget)
1620 {
1621 struct sge_rxq *rxq = iq_to_rxq(iq);
1622 struct sge_fl *fl;
1623 struct adapter *sc = iq->adapter;
1624 struct iq_desc *d = &iq->desc[iq->cidx];
1625 int ndescs = 0, limit;
1626 int rsp_type, refill, starved;
1627 uint32_t lq;
1628 uint16_t fl_hw_cidx;
1629 struct mbuf *m0;
1630 #if defined(INET) || defined(INET6)
1631 const struct timeval lro_timeout = {0, sc->lro_timeout};
1632 struct lro_ctrl *lro = &rxq->lro;
1633 #endif
1634
1635 KASSERT(iq->state == IQS_BUSY, ("%s: iq %p not BUSY", __func__, iq));
1636 MPASS(iq->flags & IQ_HAS_FL);
1637
1638 limit = budget ? budget : iq->qsize / 16;
1639 fl = &rxq->fl;
1640 fl_hw_cidx = fl->hw_cidx; /* stable snapshot */
1641
1642 #if defined(INET) || defined(INET6)
1643 if (iq->flags & IQ_ADJ_CREDIT) {
1644 MPASS(sort_before_lro(lro));
1645 iq->flags &= ~IQ_ADJ_CREDIT;
1646 if ((d->rsp.u.type_gen & F_RSPD_GEN) != iq->gen) {
1647 tcp_lro_flush_all(lro);
1648 t4_write_reg(sc, sc->sge_gts_reg, V_CIDXINC(1) |
1649 V_INGRESSQID((u32)iq->cntxt_id) |
1650 V_SEINTARM(iq->intr_params));
1651 return (0);
1652 }
1653 ndescs = 1;
1654 }
1655 #else
1656 MPASS((iq->flags & IQ_ADJ_CREDIT) == 0);
1657 #endif
1658
1659 while ((d->rsp.u.type_gen & F_RSPD_GEN) == iq->gen) {
1660
1661 rmb();
1662
1663 refill = 0;
1664 m0 = NULL;
1665 rsp_type = G_RSPD_TYPE(d->rsp.u.type_gen);
1666 lq = be32toh(d->rsp.pldbuflen_qid);
1667
1668 switch (rsp_type) {
1669 case X_RSPD_TYPE_FLBUF:
1670
1671 m0 = get_fl_payload(sc, fl, lq);
1672 if (__predict_false(m0 == NULL))
1673 goto out;
1674 refill = IDXDIFF(fl->hw_cidx, fl_hw_cidx, fl->sidx) > 2;
1675
1676 if (iq->flags & IQ_RX_TIMESTAMP) {
1677 /*
1678 * Fill up rcv_tstmp but do not set M_TSTMP.
1679 * rcv_tstmp is not in the format that the
1680 * kernel expects and we don't want to mislead
1681 * it. For now this is only for custom code
1682 * that knows how to interpret cxgbe's stamp.
1683 */
1684 m0->m_pkthdr.rcv_tstmp =
1685 last_flit_to_ns(sc, d->rsp.u.last_flit);
1686 #ifdef notyet
1687 m0->m_flags |= M_TSTMP;
1688 #endif
1689 }
1690
1691 /* fall through */
1692
1693 case X_RSPD_TYPE_CPL:
1694 KASSERT(d->rss.opcode < NUM_CPL_CMDS,
1695 ("%s: bad opcode %02x.", __func__, d->rss.opcode));
1696 t4_cpl_handler[d->rss.opcode](iq, &d->rss, m0);
1697 break;
1698
1699 case X_RSPD_TYPE_INTR:
1700
1701 /*
1702 * There are 1K interrupt-capable queues (qids 0
1703 * through 1023). A response type indicating a
1704 * forwarded interrupt with a qid >= 1K is an
1705 * iWARP async notification. That is the only
1706 * acceptable indirect interrupt on this queue.
1707 */
1708 if (__predict_false(lq < 1024)) {
1709 panic("%s: indirect interrupt on iq_fl %p "
1710 "with qid %u", __func__, iq, lq);
1711 }
1712
1713 t4_an_handler(iq, &d->rsp);
1714 break;
1715
1716 default:
1717 KASSERT(0, ("%s: illegal response type %d on iq %p",
1718 __func__, rsp_type, iq));
1719 log(LOG_ERR, "%s: illegal response type %d on iq %p",
1720 device_get_nameunit(sc->dev), rsp_type, iq);
1721 break;
1722 }
1723
1724 d++;
1725 if (__predict_false(++iq->cidx == iq->sidx)) {
1726 iq->cidx = 0;
1727 iq->gen ^= F_RSPD_GEN;
1728 d = &iq->desc[0];
1729 }
1730 if (__predict_false(++ndescs == limit)) {
1731 t4_write_reg(sc, sc->sge_gts_reg, V_CIDXINC(ndescs) |
1732 V_INGRESSQID(iq->cntxt_id) |
1733 V_SEINTARM(V_QINTR_TIMER_IDX(X_TIMERREG_UPDATE_CIDX)));
1734 ndescs = 0;
1735
1736 #if defined(INET) || defined(INET6)
1737 if (iq->flags & IQ_LRO_ENABLED &&
1738 !sort_before_lro(lro) &&
1739 sc->lro_timeout != 0) {
1740 tcp_lro_flush_inactive(lro, &lro_timeout);
1741 }
1742 #endif
1743 if (budget) {
1744 FL_LOCK(fl);
1745 refill_fl(sc, fl, 32);
1746 FL_UNLOCK(fl);
1747
1748 return (EINPROGRESS);
1749 }
1750 }
1751 if (refill) {
1752 FL_LOCK(fl);
1753 refill_fl(sc, fl, 32);
1754 FL_UNLOCK(fl);
1755 fl_hw_cidx = fl->hw_cidx;
1756 }
1757 }
1758 out:
1759 #if defined(INET) || defined(INET6)
1760 if (iq->flags & IQ_LRO_ENABLED) {
1761 if (ndescs > 0 && lro->lro_mbuf_count > 8) {
1762 MPASS(sort_before_lro(lro));
1763 /* hold back one credit and don't flush LRO state */
1764 iq->flags |= IQ_ADJ_CREDIT;
1765 ndescs--;
1766 } else {
1767 tcp_lro_flush_all(lro);
1768 }
1769 }
1770 #endif
1771
1772 t4_write_reg(sc, sc->sge_gts_reg, V_CIDXINC(ndescs) |
1773 V_INGRESSQID((u32)iq->cntxt_id) | V_SEINTARM(iq->intr_params));
1774
1775 FL_LOCK(fl);
1776 starved = refill_fl(sc, fl, 64);
1777 FL_UNLOCK(fl);
1778 if (__predict_false(starved != 0))
1779 add_fl_to_sfl(sc, fl);
1780
1781 return (0);
1782 }
1783
1784 static inline int
cl_has_metadata(struct sge_fl * fl,struct cluster_layout * cll)1785 cl_has_metadata(struct sge_fl *fl, struct cluster_layout *cll)
1786 {
1787 int rc = fl->flags & FL_BUF_PACKING || cll->region1 > 0;
1788
1789 if (rc)
1790 MPASS(cll->region3 >= CL_METADATA_SIZE);
1791
1792 return (rc);
1793 }
1794
1795 static inline struct cluster_metadata *
cl_metadata(struct adapter * sc,struct sge_fl * fl,struct cluster_layout * cll,caddr_t cl)1796 cl_metadata(struct adapter *sc, struct sge_fl *fl, struct cluster_layout *cll,
1797 caddr_t cl)
1798 {
1799
1800 if (cl_has_metadata(fl, cll)) {
1801 struct sw_zone_info *swz = &sc->sge.sw_zone_info[cll->zidx];
1802
1803 return ((struct cluster_metadata *)(cl + swz->size) - 1);
1804 }
1805 return (NULL);
1806 }
1807
1808 static void
rxb_free(struct mbuf * m)1809 rxb_free(struct mbuf *m)
1810 {
1811 uma_zone_t zone = m->m_ext.ext_arg1;
1812 void *cl = m->m_ext.ext_arg2;
1813
1814 uma_zfree(zone, cl);
1815 counter_u64_add(extfree_rels, 1);
1816 }
1817
1818 /*
1819 * The mbuf returned by this function could be allocated from zone_mbuf or
1820 * constructed in spare room in the cluster.
1821 *
1822 * The mbuf carries the payload in one of these ways
1823 * a) frame inside the mbuf (mbuf from zone_mbuf)
1824 * b) m_cljset (for clusters without metadata) zone_mbuf
1825 * c) m_extaddref (cluster with metadata) inline mbuf
1826 * d) m_extaddref (cluster with metadata) zone_mbuf
1827 */
1828 static struct mbuf *
get_scatter_segment(struct adapter * sc,struct sge_fl * fl,int fr_offset,int remaining)1829 get_scatter_segment(struct adapter *sc, struct sge_fl *fl, int fr_offset,
1830 int remaining)
1831 {
1832 struct mbuf *m;
1833 struct fl_sdesc *sd = &fl->sdesc[fl->cidx];
1834 struct cluster_layout *cll = &sd->cll;
1835 struct sw_zone_info *swz = &sc->sge.sw_zone_info[cll->zidx];
1836 struct hw_buf_info *hwb = &sc->sge.hw_buf_info[cll->hwidx];
1837 struct cluster_metadata *clm = cl_metadata(sc, fl, cll, sd->cl);
1838 int len, blen;
1839 caddr_t payload;
1840
1841 blen = hwb->size - fl->rx_offset; /* max possible in this buf */
1842 len = min(remaining, blen);
1843 payload = sd->cl + cll->region1 + fl->rx_offset;
1844 if (fl->flags & FL_BUF_PACKING) {
1845 const u_int l = fr_offset + len;
1846 const u_int pad = roundup2(l, fl->buf_boundary) - l;
1847
1848 if (fl->rx_offset + len + pad < hwb->size)
1849 blen = len + pad;
1850 MPASS(fl->rx_offset + blen <= hwb->size);
1851 } else {
1852 MPASS(fl->rx_offset == 0); /* not packing */
1853 }
1854
1855
1856 if (sc->sc_do_rxcopy && len < RX_COPY_THRESHOLD) {
1857
1858 /*
1859 * Copy payload into a freshly allocated mbuf.
1860 */
1861
1862 m = fr_offset == 0 ?
1863 m_gethdr(M_NOWAIT, MT_DATA) : m_get(M_NOWAIT, MT_DATA);
1864 if (m == NULL)
1865 return (NULL);
1866 fl->mbuf_allocated++;
1867
1868 /* copy data to mbuf */
1869 bcopy(payload, mtod(m, caddr_t), len);
1870
1871 } else if (sd->nmbuf * MSIZE < cll->region1) {
1872
1873 /*
1874 * There's spare room in the cluster for an mbuf. Create one
1875 * and associate it with the payload that's in the cluster.
1876 */
1877
1878 MPASS(clm != NULL);
1879 m = (struct mbuf *)(sd->cl + sd->nmbuf * MSIZE);
1880 /* No bzero required */
1881 if (m_init(m, M_NOWAIT, MT_DATA,
1882 fr_offset == 0 ? M_PKTHDR | M_NOFREE : M_NOFREE))
1883 return (NULL);
1884 fl->mbuf_inlined++;
1885 m_extaddref(m, payload, blen, &clm->refcount, rxb_free,
1886 swz->zone, sd->cl);
1887 if (sd->nmbuf++ == 0)
1888 counter_u64_add(extfree_refs, 1);
1889
1890 } else {
1891
1892 /*
1893 * Grab an mbuf from zone_mbuf and associate it with the
1894 * payload in the cluster.
1895 */
1896
1897 m = fr_offset == 0 ?
1898 m_gethdr(M_NOWAIT, MT_DATA) : m_get(M_NOWAIT, MT_DATA);
1899 if (m == NULL)
1900 return (NULL);
1901 fl->mbuf_allocated++;
1902 if (clm != NULL) {
1903 m_extaddref(m, payload, blen, &clm->refcount,
1904 rxb_free, swz->zone, sd->cl);
1905 if (sd->nmbuf++ == 0)
1906 counter_u64_add(extfree_refs, 1);
1907 } else {
1908 m_cljset(m, sd->cl, swz->type);
1909 sd->cl = NULL; /* consumed, not a recycle candidate */
1910 }
1911 }
1912 if (fr_offset == 0)
1913 m->m_pkthdr.len = remaining;
1914 m->m_len = len;
1915
1916 if (fl->flags & FL_BUF_PACKING) {
1917 fl->rx_offset += blen;
1918 MPASS(fl->rx_offset <= hwb->size);
1919 if (fl->rx_offset < hwb->size)
1920 return (m); /* without advancing the cidx */
1921 }
1922
1923 if (__predict_false(++fl->cidx % 8 == 0)) {
1924 uint16_t cidx = fl->cidx / 8;
1925
1926 if (__predict_false(cidx == fl->sidx))
1927 fl->cidx = cidx = 0;
1928 fl->hw_cidx = cidx;
1929 }
1930 fl->rx_offset = 0;
1931
1932 return (m);
1933 }
1934
1935 static struct mbuf *
get_fl_payload(struct adapter * sc,struct sge_fl * fl,uint32_t len_newbuf)1936 get_fl_payload(struct adapter *sc, struct sge_fl *fl, uint32_t len_newbuf)
1937 {
1938 struct mbuf *m0, *m, **pnext;
1939 u_int remaining;
1940 const u_int total = G_RSPD_LEN(len_newbuf);
1941
1942 if (__predict_false(fl->flags & FL_BUF_RESUME)) {
1943 M_ASSERTPKTHDR(fl->m0);
1944 MPASS(fl->m0->m_pkthdr.len == total);
1945 MPASS(fl->remaining < total);
1946
1947 m0 = fl->m0;
1948 pnext = fl->pnext;
1949 remaining = fl->remaining;
1950 fl->flags &= ~FL_BUF_RESUME;
1951 goto get_segment;
1952 }
1953
1954 if (fl->rx_offset > 0 && len_newbuf & F_RSPD_NEWBUF) {
1955 fl->rx_offset = 0;
1956 if (__predict_false(++fl->cidx % 8 == 0)) {
1957 uint16_t cidx = fl->cidx / 8;
1958
1959 if (__predict_false(cidx == fl->sidx))
1960 fl->cidx = cidx = 0;
1961 fl->hw_cidx = cidx;
1962 }
1963 }
1964
1965 /*
1966 * Payload starts at rx_offset in the current hw buffer. Its length is
1967 * 'len' and it may span multiple hw buffers.
1968 */
1969
1970 m0 = get_scatter_segment(sc, fl, 0, total);
1971 if (m0 == NULL)
1972 return (NULL);
1973 remaining = total - m0->m_len;
1974 pnext = &m0->m_next;
1975 while (remaining > 0) {
1976 get_segment:
1977 MPASS(fl->rx_offset == 0);
1978 m = get_scatter_segment(sc, fl, total - remaining, remaining);
1979 if (__predict_false(m == NULL)) {
1980 fl->m0 = m0;
1981 fl->pnext = pnext;
1982 fl->remaining = remaining;
1983 fl->flags |= FL_BUF_RESUME;
1984 return (NULL);
1985 }
1986 *pnext = m;
1987 pnext = &m->m_next;
1988 remaining -= m->m_len;
1989 }
1990 *pnext = NULL;
1991
1992 M_ASSERTPKTHDR(m0);
1993 return (m0);
1994 }
1995
1996 static int
t4_eth_rx(struct sge_iq * iq,const struct rss_header * rss,struct mbuf * m0)1997 t4_eth_rx(struct sge_iq *iq, const struct rss_header *rss, struct mbuf *m0)
1998 {
1999 struct sge_rxq *rxq = iq_to_rxq(iq);
2000 struct ifnet *ifp = rxq->ifp;
2001 struct adapter *sc = iq->adapter;
2002 const struct cpl_rx_pkt *cpl = (const void *)(rss + 1);
2003 #if defined(INET) || defined(INET6)
2004 struct lro_ctrl *lro = &rxq->lro;
2005 #endif
2006 static const int sw_hashtype[4][2] = {
2007 {M_HASHTYPE_NONE, M_HASHTYPE_NONE},
2008 {M_HASHTYPE_RSS_IPV4, M_HASHTYPE_RSS_IPV6},
2009 {M_HASHTYPE_RSS_TCP_IPV4, M_HASHTYPE_RSS_TCP_IPV6},
2010 {M_HASHTYPE_RSS_UDP_IPV4, M_HASHTYPE_RSS_UDP_IPV6},
2011 };
2012
2013 KASSERT(m0 != NULL, ("%s: no payload with opcode %02x", __func__,
2014 rss->opcode));
2015
2016 m0->m_pkthdr.len -= sc->params.sge.fl_pktshift;
2017 m0->m_len -= sc->params.sge.fl_pktshift;
2018 m0->m_data += sc->params.sge.fl_pktshift;
2019
2020 m0->m_pkthdr.rcvif = ifp;
2021 M_HASHTYPE_SET(m0, sw_hashtype[rss->hash_type][rss->ipv6]);
2022 m0->m_pkthdr.flowid = be32toh(rss->hash_val);
2023
2024 if (cpl->csum_calc && !(cpl->err_vec & sc->params.tp.err_vec_mask)) {
2025 if (ifp->if_capenable & IFCAP_RXCSUM &&
2026 cpl->l2info & htobe32(F_RXF_IP)) {
2027 m0->m_pkthdr.csum_flags = (CSUM_IP_CHECKED |
2028 CSUM_IP_VALID | CSUM_DATA_VALID | CSUM_PSEUDO_HDR);
2029 rxq->rxcsum++;
2030 } else if (ifp->if_capenable & IFCAP_RXCSUM_IPV6 &&
2031 cpl->l2info & htobe32(F_RXF_IP6)) {
2032 m0->m_pkthdr.csum_flags = (CSUM_DATA_VALID_IPV6 |
2033 CSUM_PSEUDO_HDR);
2034 rxq->rxcsum++;
2035 }
2036
2037 if (__predict_false(cpl->ip_frag))
2038 m0->m_pkthdr.csum_data = be16toh(cpl->csum);
2039 else
2040 m0->m_pkthdr.csum_data = 0xffff;
2041 }
2042
2043 if (cpl->vlan_ex) {
2044 m0->m_pkthdr.ether_vtag = be16toh(cpl->vlan);
2045 m0->m_flags |= M_VLANTAG;
2046 rxq->vlan_extraction++;
2047 }
2048
2049 #if defined(INET) || defined(INET6)
2050 if (iq->flags & IQ_LRO_ENABLED) {
2051 if (sort_before_lro(lro)) {
2052 tcp_lro_queue_mbuf(lro, m0);
2053 return (0); /* queued for sort, then LRO */
2054 }
2055 if (tcp_lro_rx(lro, m0, 0) == 0)
2056 return (0); /* queued for LRO */
2057 }
2058 #endif
2059 ifp->if_input(ifp, m0);
2060
2061 return (0);
2062 }
2063
2064 /*
2065 * Must drain the wrq or make sure that someone else will.
2066 */
2067 static void
wrq_tx_drain(void * arg,int n)2068 wrq_tx_drain(void *arg, int n)
2069 {
2070 struct sge_wrq *wrq = arg;
2071 struct sge_eq *eq = &wrq->eq;
2072
2073 EQ_LOCK(eq);
2074 if (TAILQ_EMPTY(&wrq->incomplete_wrs) && !STAILQ_EMPTY(&wrq->wr_list))
2075 drain_wrq_wr_list(wrq->adapter, wrq);
2076 EQ_UNLOCK(eq);
2077 }
2078
2079 static void
drain_wrq_wr_list(struct adapter * sc,struct sge_wrq * wrq)2080 drain_wrq_wr_list(struct adapter *sc, struct sge_wrq *wrq)
2081 {
2082 struct sge_eq *eq = &wrq->eq;
2083 u_int available, dbdiff; /* # of hardware descriptors */
2084 u_int n;
2085 struct wrqe *wr;
2086 struct fw_eth_tx_pkt_wr *dst; /* any fw WR struct will do */
2087
2088 EQ_LOCK_ASSERT_OWNED(eq);
2089 MPASS(TAILQ_EMPTY(&wrq->incomplete_wrs));
2090 wr = STAILQ_FIRST(&wrq->wr_list);
2091 MPASS(wr != NULL); /* Must be called with something useful to do */
2092 MPASS(eq->pidx == eq->dbidx);
2093 dbdiff = 0;
2094
2095 do {
2096 eq->cidx = read_hw_cidx(eq);
2097 if (eq->pidx == eq->cidx)
2098 available = eq->sidx - 1;
2099 else
2100 available = IDXDIFF(eq->cidx, eq->pidx, eq->sidx) - 1;
2101
2102 MPASS(wr->wrq == wrq);
2103 n = howmany(wr->wr_len, EQ_ESIZE);
2104 if (available < n)
2105 break;
2106
2107 dst = (void *)&eq->desc[eq->pidx];
2108 if (__predict_true(eq->sidx - eq->pidx > n)) {
2109 /* Won't wrap, won't end exactly at the status page. */
2110 bcopy(&wr->wr[0], dst, wr->wr_len);
2111 eq->pidx += n;
2112 } else {
2113 int first_portion = (eq->sidx - eq->pidx) * EQ_ESIZE;
2114
2115 bcopy(&wr->wr[0], dst, first_portion);
2116 if (wr->wr_len > first_portion) {
2117 bcopy(&wr->wr[first_portion], &eq->desc[0],
2118 wr->wr_len - first_portion);
2119 }
2120 eq->pidx = n - (eq->sidx - eq->pidx);
2121 }
2122 wrq->tx_wrs_copied++;
2123
2124 if (available < eq->sidx / 4 &&
2125 atomic_cmpset_int(&eq->equiq, 0, 1)) {
2126 /*
2127 * XXX: This is not 100% reliable with some
2128 * types of WRs. But this is a very unusual
2129 * situation for an ofld/ctrl queue anyway.
2130 */
2131 dst->equiq_to_len16 |= htobe32(F_FW_WR_EQUIQ |
2132 F_FW_WR_EQUEQ);
2133 }
2134
2135 dbdiff += n;
2136 if (dbdiff >= 16) {
2137 ring_eq_db(sc, eq, dbdiff);
2138 dbdiff = 0;
2139 }
2140
2141 STAILQ_REMOVE_HEAD(&wrq->wr_list, link);
2142 free_wrqe(wr);
2143 MPASS(wrq->nwr_pending > 0);
2144 wrq->nwr_pending--;
2145 MPASS(wrq->ndesc_needed >= n);
2146 wrq->ndesc_needed -= n;
2147 } while ((wr = STAILQ_FIRST(&wrq->wr_list)) != NULL);
2148
2149 if (dbdiff)
2150 ring_eq_db(sc, eq, dbdiff);
2151 }
2152
2153 /*
2154 * Doesn't fail. Holds on to work requests it can't send right away.
2155 */
2156 void
t4_wrq_tx_locked(struct adapter * sc,struct sge_wrq * wrq,struct wrqe * wr)2157 t4_wrq_tx_locked(struct adapter *sc, struct sge_wrq *wrq, struct wrqe *wr)
2158 {
2159 #ifdef INVARIANTS
2160 struct sge_eq *eq = &wrq->eq;
2161 #endif
2162
2163 EQ_LOCK_ASSERT_OWNED(eq);
2164 MPASS(wr != NULL);
2165 MPASS(wr->wr_len > 0 && wr->wr_len <= SGE_MAX_WR_LEN);
2166 MPASS((wr->wr_len & 0x7) == 0);
2167
2168 STAILQ_INSERT_TAIL(&wrq->wr_list, wr, link);
2169 wrq->nwr_pending++;
2170 wrq->ndesc_needed += howmany(wr->wr_len, EQ_ESIZE);
2171
2172 if (!TAILQ_EMPTY(&wrq->incomplete_wrs))
2173 return; /* commit_wrq_wr will drain wr_list as well. */
2174
2175 drain_wrq_wr_list(sc, wrq);
2176
2177 /* Doorbell must have caught up to the pidx. */
2178 MPASS(eq->pidx == eq->dbidx);
2179 }
2180
2181 void
t4_update_fl_bufsize(struct ifnet * ifp)2182 t4_update_fl_bufsize(struct ifnet *ifp)
2183 {
2184 struct vi_info *vi = ifp->if_softc;
2185 struct adapter *sc = vi->pi->adapter;
2186 struct sge_rxq *rxq;
2187 #ifdef TCP_OFFLOAD
2188 struct sge_ofld_rxq *ofld_rxq;
2189 #endif
2190 struct sge_fl *fl;
2191 int i, maxp, mtu = ifp->if_mtu;
2192
2193 maxp = mtu_to_max_payload(sc, mtu, 0);
2194 for_each_rxq(vi, i, rxq) {
2195 fl = &rxq->fl;
2196
2197 FL_LOCK(fl);
2198 find_best_refill_source(sc, fl, maxp);
2199 FL_UNLOCK(fl);
2200 }
2201 #ifdef TCP_OFFLOAD
2202 maxp = mtu_to_max_payload(sc, mtu, 1);
2203 for_each_ofld_rxq(vi, i, ofld_rxq) {
2204 fl = &ofld_rxq->fl;
2205
2206 FL_LOCK(fl);
2207 find_best_refill_source(sc, fl, maxp);
2208 FL_UNLOCK(fl);
2209 }
2210 #endif
2211 }
2212
2213 static inline int
mbuf_nsegs(struct mbuf * m)2214 mbuf_nsegs(struct mbuf *m)
2215 {
2216
2217 M_ASSERTPKTHDR(m);
2218 KASSERT(m->m_pkthdr.l5hlen > 0,
2219 ("%s: mbuf %p missing information on # of segments.", __func__, m));
2220
2221 return (m->m_pkthdr.l5hlen);
2222 }
2223
2224 static inline void
set_mbuf_nsegs(struct mbuf * m,uint8_t nsegs)2225 set_mbuf_nsegs(struct mbuf *m, uint8_t nsegs)
2226 {
2227
2228 M_ASSERTPKTHDR(m);
2229 m->m_pkthdr.l5hlen = nsegs;
2230 }
2231
2232 static inline int
mbuf_cflags(struct mbuf * m)2233 mbuf_cflags(struct mbuf *m)
2234 {
2235
2236 M_ASSERTPKTHDR(m);
2237 return (m->m_pkthdr.PH_loc.eight[4]);
2238 }
2239
2240 static inline void
set_mbuf_cflags(struct mbuf * m,uint8_t flags)2241 set_mbuf_cflags(struct mbuf *m, uint8_t flags)
2242 {
2243
2244 M_ASSERTPKTHDR(m);
2245 m->m_pkthdr.PH_loc.eight[4] = flags;
2246 }
2247
2248 static inline int
mbuf_len16(struct mbuf * m)2249 mbuf_len16(struct mbuf *m)
2250 {
2251 int n;
2252
2253 M_ASSERTPKTHDR(m);
2254 n = m->m_pkthdr.PH_loc.eight[0];
2255 MPASS(n > 0 && n <= SGE_MAX_WR_LEN / 16);
2256
2257 return (n);
2258 }
2259
2260 static inline void
set_mbuf_len16(struct mbuf * m,uint8_t len16)2261 set_mbuf_len16(struct mbuf *m, uint8_t len16)
2262 {
2263
2264 M_ASSERTPKTHDR(m);
2265 m->m_pkthdr.PH_loc.eight[0] = len16;
2266 }
2267
2268 #ifdef RATELIMIT
2269 static inline int
mbuf_eo_nsegs(struct mbuf * m)2270 mbuf_eo_nsegs(struct mbuf *m)
2271 {
2272
2273 M_ASSERTPKTHDR(m);
2274 return (m->m_pkthdr.PH_loc.eight[1]);
2275 }
2276
2277 static inline void
set_mbuf_eo_nsegs(struct mbuf * m,uint8_t nsegs)2278 set_mbuf_eo_nsegs(struct mbuf *m, uint8_t nsegs)
2279 {
2280
2281 M_ASSERTPKTHDR(m);
2282 m->m_pkthdr.PH_loc.eight[1] = nsegs;
2283 }
2284
2285 static inline int
mbuf_eo_len16(struct mbuf * m)2286 mbuf_eo_len16(struct mbuf *m)
2287 {
2288 int n;
2289
2290 M_ASSERTPKTHDR(m);
2291 n = m->m_pkthdr.PH_loc.eight[2];
2292 MPASS(n > 0 && n <= SGE_MAX_WR_LEN / 16);
2293
2294 return (n);
2295 }
2296
2297 static inline void
set_mbuf_eo_len16(struct mbuf * m,uint8_t len16)2298 set_mbuf_eo_len16(struct mbuf *m, uint8_t len16)
2299 {
2300
2301 M_ASSERTPKTHDR(m);
2302 m->m_pkthdr.PH_loc.eight[2] = len16;
2303 }
2304
2305 static inline int
mbuf_eo_tsclk_tsoff(struct mbuf * m)2306 mbuf_eo_tsclk_tsoff(struct mbuf *m)
2307 {
2308
2309 M_ASSERTPKTHDR(m);
2310 return (m->m_pkthdr.PH_loc.eight[3]);
2311 }
2312
2313 static inline void
set_mbuf_eo_tsclk_tsoff(struct mbuf * m,uint8_t tsclk_tsoff)2314 set_mbuf_eo_tsclk_tsoff(struct mbuf *m, uint8_t tsclk_tsoff)
2315 {
2316
2317 M_ASSERTPKTHDR(m);
2318 m->m_pkthdr.PH_loc.eight[3] = tsclk_tsoff;
2319 }
2320
2321 static inline int
needs_eo(struct mbuf * m)2322 needs_eo(struct mbuf *m)
2323 {
2324
2325 return (m->m_pkthdr.snd_tag != NULL);
2326 }
2327 #endif
2328
2329 /*
2330 * Try to allocate an mbuf to contain a raw work request. To make it
2331 * easy to construct the work request, don't allocate a chain but a
2332 * single mbuf.
2333 */
2334 struct mbuf *
alloc_wr_mbuf(int len,int how)2335 alloc_wr_mbuf(int len, int how)
2336 {
2337 struct mbuf *m;
2338
2339 if (len <= MHLEN)
2340 m = m_gethdr(how, MT_DATA);
2341 else if (len <= MCLBYTES)
2342 m = m_getcl(how, MT_DATA, M_PKTHDR);
2343 else
2344 m = NULL;
2345 if (m == NULL)
2346 return (NULL);
2347 m->m_pkthdr.len = len;
2348 m->m_len = len;
2349 set_mbuf_cflags(m, MC_RAW_WR);
2350 set_mbuf_len16(m, howmany(len, 16));
2351 return (m);
2352 }
2353
2354 static inline int
needs_tso(struct mbuf * m)2355 needs_tso(struct mbuf *m)
2356 {
2357
2358 M_ASSERTPKTHDR(m);
2359
2360 return (m->m_pkthdr.csum_flags & CSUM_TSO);
2361 }
2362
2363 static inline int
needs_l3_csum(struct mbuf * m)2364 needs_l3_csum(struct mbuf *m)
2365 {
2366
2367 M_ASSERTPKTHDR(m);
2368
2369 return (m->m_pkthdr.csum_flags & (CSUM_IP | CSUM_TSO));
2370 }
2371
2372 static inline int
needs_l4_csum(struct mbuf * m)2373 needs_l4_csum(struct mbuf *m)
2374 {
2375
2376 M_ASSERTPKTHDR(m);
2377
2378 return (m->m_pkthdr.csum_flags & (CSUM_TCP | CSUM_UDP | CSUM_UDP_IPV6 |
2379 CSUM_TCP_IPV6 | CSUM_TSO));
2380 }
2381
2382 static inline int
needs_tcp_csum(struct mbuf * m)2383 needs_tcp_csum(struct mbuf *m)
2384 {
2385
2386 M_ASSERTPKTHDR(m);
2387 return (m->m_pkthdr.csum_flags & (CSUM_TCP | CSUM_TCP_IPV6 | CSUM_TSO));
2388 }
2389
2390 #ifdef RATELIMIT
2391 static inline int
needs_udp_csum(struct mbuf * m)2392 needs_udp_csum(struct mbuf *m)
2393 {
2394
2395 M_ASSERTPKTHDR(m);
2396 return (m->m_pkthdr.csum_flags & (CSUM_UDP | CSUM_UDP_IPV6));
2397 }
2398 #endif
2399
2400 static inline int
needs_vlan_insertion(struct mbuf * m)2401 needs_vlan_insertion(struct mbuf *m)
2402 {
2403
2404 M_ASSERTPKTHDR(m);
2405
2406 return (m->m_flags & M_VLANTAG);
2407 }
2408
2409 static void *
m_advance(struct mbuf ** pm,int * poffset,int len)2410 m_advance(struct mbuf **pm, int *poffset, int len)
2411 {
2412 struct mbuf *m = *pm;
2413 int offset = *poffset;
2414 uintptr_t p = 0;
2415
2416 MPASS(len > 0);
2417
2418 for (;;) {
2419 if (offset + len < m->m_len) {
2420 offset += len;
2421 p = mtod(m, uintptr_t) + offset;
2422 break;
2423 }
2424 len -= m->m_len - offset;
2425 m = m->m_next;
2426 offset = 0;
2427 MPASS(m != NULL);
2428 }
2429 *poffset = offset;
2430 *pm = m;
2431 return ((void *)p);
2432 }
2433
2434 /*
2435 * Can deal with empty mbufs in the chain that have m_len = 0, but the chain
2436 * must have at least one mbuf that's not empty. It is possible for this
2437 * routine to return 0 if skip accounts for all the contents of the mbuf chain.
2438 */
2439 static inline int
count_mbuf_nsegs(struct mbuf * m,int skip)2440 count_mbuf_nsegs(struct mbuf *m, int skip)
2441 {
2442 vm_paddr_t lastb, next;
2443 vm_offset_t va;
2444 int len, nsegs;
2445
2446 M_ASSERTPKTHDR(m);
2447 MPASS(m->m_pkthdr.len > 0);
2448 MPASS(m->m_pkthdr.len >= skip);
2449
2450 nsegs = 0;
2451 lastb = 0;
2452 for (; m; m = m->m_next) {
2453
2454 len = m->m_len;
2455 if (__predict_false(len == 0))
2456 continue;
2457 if (skip >= len) {
2458 skip -= len;
2459 continue;
2460 }
2461 va = mtod(m, vm_offset_t) + skip;
2462 len -= skip;
2463 skip = 0;
2464 next = pmap_kextract(va);
2465 nsegs += sglist_count((void *)(uintptr_t)va, len);
2466 if (lastb + 1 == next)
2467 nsegs--;
2468 lastb = pmap_kextract(va + len - 1);
2469 }
2470
2471 return (nsegs);
2472 }
2473
2474 /*
2475 * Analyze the mbuf to determine its tx needs. The mbuf passed in may change:
2476 * a) caller can assume it's been freed if this function returns with an error.
2477 * b) it may get defragged up if the gather list is too long for the hardware.
2478 */
2479 int
parse_pkt(struct adapter * sc,struct mbuf ** mp)2480 parse_pkt(struct adapter *sc, struct mbuf **mp)
2481 {
2482 struct mbuf *m0 = *mp, *m;
2483 int rc, nsegs, defragged = 0, offset;
2484 struct ether_header *eh;
2485 void *l3hdr;
2486 #if defined(INET) || defined(INET6)
2487 struct tcphdr *tcp;
2488 #endif
2489 uint16_t eh_type;
2490
2491 M_ASSERTPKTHDR(m0);
2492 if (__predict_false(m0->m_pkthdr.len < ETHER_HDR_LEN)) {
2493 rc = EINVAL;
2494 fail:
2495 m_freem(m0);
2496 *mp = NULL;
2497 return (rc);
2498 }
2499 restart:
2500 /*
2501 * First count the number of gather list segments in the payload.
2502 * Defrag the mbuf if nsegs exceeds the hardware limit.
2503 */
2504 M_ASSERTPKTHDR(m0);
2505 MPASS(m0->m_pkthdr.len > 0);
2506 nsegs = count_mbuf_nsegs(m0, 0);
2507 if (nsegs > (needs_tso(m0) ? TX_SGL_SEGS_TSO : TX_SGL_SEGS)) {
2508 if (defragged++ > 0 || (m = m_defrag(m0, M_NOWAIT)) == NULL) {
2509 rc = EFBIG;
2510 goto fail;
2511 }
2512 *mp = m0 = m; /* update caller's copy after defrag */
2513 goto restart;
2514 }
2515
2516 if (__predict_false(nsegs > 2 && m0->m_pkthdr.len <= MHLEN)) {
2517 m0 = m_pullup(m0, m0->m_pkthdr.len);
2518 if (m0 == NULL) {
2519 /* Should have left well enough alone. */
2520 rc = EFBIG;
2521 goto fail;
2522 }
2523 *mp = m0; /* update caller's copy after pullup */
2524 goto restart;
2525 }
2526 set_mbuf_nsegs(m0, nsegs);
2527 set_mbuf_cflags(m0, 0);
2528 if (sc->flags & IS_VF)
2529 set_mbuf_len16(m0, txpkt_vm_len16(nsegs, needs_tso(m0)));
2530 else
2531 set_mbuf_len16(m0, txpkt_len16(nsegs, needs_tso(m0)));
2532
2533 #ifdef RATELIMIT
2534 /*
2535 * Ethofld is limited to TCP and UDP for now, and only when L4 hw
2536 * checksumming is enabled. needs_l4_csum happens to check for all the
2537 * right things.
2538 */
2539 if (__predict_false(needs_eo(m0) && !needs_l4_csum(m0)))
2540 m0->m_pkthdr.snd_tag = NULL;
2541 #endif
2542
2543 if (!needs_tso(m0) &&
2544 #ifdef RATELIMIT
2545 !needs_eo(m0) &&
2546 #endif
2547 !(sc->flags & IS_VF && (needs_l3_csum(m0) || needs_l4_csum(m0))))
2548 return (0);
2549
2550 m = m0;
2551 eh = mtod(m, struct ether_header *);
2552 eh_type = ntohs(eh->ether_type);
2553 if (eh_type == ETHERTYPE_VLAN) {
2554 struct ether_vlan_header *evh = (void *)eh;
2555
2556 eh_type = ntohs(evh->evl_proto);
2557 m0->m_pkthdr.l2hlen = sizeof(*evh);
2558 } else
2559 m0->m_pkthdr.l2hlen = sizeof(*eh);
2560
2561 offset = 0;
2562 l3hdr = m_advance(&m, &offset, m0->m_pkthdr.l2hlen);
2563
2564 switch (eh_type) {
2565 #ifdef INET6
2566 case ETHERTYPE_IPV6:
2567 {
2568 struct ip6_hdr *ip6 = l3hdr;
2569
2570 MPASS(!needs_tso(m0) || ip6->ip6_nxt == IPPROTO_TCP);
2571
2572 m0->m_pkthdr.l3hlen = sizeof(*ip6);
2573 break;
2574 }
2575 #endif
2576 #ifdef INET
2577 case ETHERTYPE_IP:
2578 {
2579 struct ip *ip = l3hdr;
2580
2581 m0->m_pkthdr.l3hlen = ip->ip_hl * 4;
2582 break;
2583 }
2584 #endif
2585 default:
2586 panic("%s: ethertype 0x%04x unknown. if_cxgbe must be compiled"
2587 " with the same INET/INET6 options as the kernel.",
2588 __func__, eh_type);
2589 }
2590
2591 #if defined(INET) || defined(INET6)
2592 if (needs_tcp_csum(m0)) {
2593 tcp = m_advance(&m, &offset, m0->m_pkthdr.l3hlen);
2594 m0->m_pkthdr.l4hlen = tcp->th_off * 4;
2595 #ifdef RATELIMIT
2596 if (tsclk >= 0 && *(uint32_t *)(tcp + 1) == ntohl(0x0101080a)) {
2597 set_mbuf_eo_tsclk_tsoff(m0,
2598 V_FW_ETH_TX_EO_WR_TSCLK(tsclk) |
2599 V_FW_ETH_TX_EO_WR_TSOFF(sizeof(*tcp) / 2 + 1));
2600 } else
2601 set_mbuf_eo_tsclk_tsoff(m0, 0);
2602 } else if (needs_udp_csum(m)) {
2603 m0->m_pkthdr.l4hlen = sizeof(struct udphdr);
2604 #endif
2605 }
2606 #ifdef RATELIMIT
2607 if (needs_eo(m0)) {
2608 u_int immhdrs;
2609
2610 /* EO WRs have the headers in the WR and not the GL. */
2611 immhdrs = m0->m_pkthdr.l2hlen + m0->m_pkthdr.l3hlen +
2612 m0->m_pkthdr.l4hlen;
2613 nsegs = count_mbuf_nsegs(m0, immhdrs);
2614 set_mbuf_eo_nsegs(m0, nsegs);
2615 set_mbuf_eo_len16(m0,
2616 txpkt_eo_len16(nsegs, immhdrs, needs_tso(m0)));
2617 }
2618 #endif
2619 #endif
2620 MPASS(m0 == *mp);
2621 return (0);
2622 }
2623
2624 void *
start_wrq_wr(struct sge_wrq * wrq,int len16,struct wrq_cookie * cookie)2625 start_wrq_wr(struct sge_wrq *wrq, int len16, struct wrq_cookie *cookie)
2626 {
2627 struct sge_eq *eq = &wrq->eq;
2628 struct adapter *sc = wrq->adapter;
2629 int ndesc, available;
2630 struct wrqe *wr;
2631 void *w;
2632
2633 MPASS(len16 > 0);
2634 ndesc = howmany(len16, EQ_ESIZE / 16);
2635 MPASS(ndesc > 0 && ndesc <= SGE_MAX_WR_NDESC);
2636
2637 EQ_LOCK(eq);
2638
2639 if (TAILQ_EMPTY(&wrq->incomplete_wrs) && !STAILQ_EMPTY(&wrq->wr_list))
2640 drain_wrq_wr_list(sc, wrq);
2641
2642 if (!STAILQ_EMPTY(&wrq->wr_list)) {
2643 slowpath:
2644 EQ_UNLOCK(eq);
2645 wr = alloc_wrqe(len16 * 16, wrq);
2646 if (__predict_false(wr == NULL))
2647 return (NULL);
2648 cookie->pidx = -1;
2649 cookie->ndesc = ndesc;
2650 return (&wr->wr);
2651 }
2652
2653 eq->cidx = read_hw_cidx(eq);
2654 if (eq->pidx == eq->cidx)
2655 available = eq->sidx - 1;
2656 else
2657 available = IDXDIFF(eq->cidx, eq->pidx, eq->sidx) - 1;
2658 if (available < ndesc)
2659 goto slowpath;
2660
2661 cookie->pidx = eq->pidx;
2662 cookie->ndesc = ndesc;
2663 TAILQ_INSERT_TAIL(&wrq->incomplete_wrs, cookie, link);
2664
2665 w = &eq->desc[eq->pidx];
2666 IDXINCR(eq->pidx, ndesc, eq->sidx);
2667 if (__predict_false(cookie->pidx + ndesc > eq->sidx)) {
2668 w = &wrq->ss[0];
2669 wrq->ss_pidx = cookie->pidx;
2670 wrq->ss_len = len16 * 16;
2671 }
2672
2673 EQ_UNLOCK(eq);
2674
2675 return (w);
2676 }
2677
2678 void
commit_wrq_wr(struct sge_wrq * wrq,void * w,struct wrq_cookie * cookie)2679 commit_wrq_wr(struct sge_wrq *wrq, void *w, struct wrq_cookie *cookie)
2680 {
2681 struct sge_eq *eq = &wrq->eq;
2682 struct adapter *sc = wrq->adapter;
2683 int ndesc, pidx;
2684 struct wrq_cookie *prev, *next;
2685
2686 if (cookie->pidx == -1) {
2687 struct wrqe *wr = __containerof(w, struct wrqe, wr);
2688
2689 t4_wrq_tx(sc, wr);
2690 return;
2691 }
2692
2693 if (__predict_false(w == &wrq->ss[0])) {
2694 int n = (eq->sidx - wrq->ss_pidx) * EQ_ESIZE;
2695
2696 MPASS(wrq->ss_len > n); /* WR had better wrap around. */
2697 bcopy(&wrq->ss[0], &eq->desc[wrq->ss_pidx], n);
2698 bcopy(&wrq->ss[n], &eq->desc[0], wrq->ss_len - n);
2699 wrq->tx_wrs_ss++;
2700 } else
2701 wrq->tx_wrs_direct++;
2702
2703 EQ_LOCK(eq);
2704 ndesc = cookie->ndesc; /* Can be more than SGE_MAX_WR_NDESC here. */
2705 pidx = cookie->pidx;
2706 MPASS(pidx >= 0 && pidx < eq->sidx);
2707 prev = TAILQ_PREV(cookie, wrq_incomplete_wrs, link);
2708 next = TAILQ_NEXT(cookie, link);
2709 if (prev == NULL) {
2710 MPASS(pidx == eq->dbidx);
2711 if (next == NULL || ndesc >= 16) {
2712 int available;
2713 struct fw_eth_tx_pkt_wr *dst; /* any fw WR struct will do */
2714
2715 /*
2716 * Note that the WR via which we'll request tx updates
2717 * is at pidx and not eq->pidx, which has moved on
2718 * already.
2719 */
2720 dst = (void *)&eq->desc[pidx];
2721 available = IDXDIFF(eq->cidx, eq->pidx, eq->sidx) - 1;
2722 if (available < eq->sidx / 4 &&
2723 atomic_cmpset_int(&eq->equiq, 0, 1)) {
2724 /*
2725 * XXX: This is not 100% reliable with some
2726 * types of WRs. But this is a very unusual
2727 * situation for an ofld/ctrl queue anyway.
2728 */
2729 dst->equiq_to_len16 |= htobe32(F_FW_WR_EQUIQ |
2730 F_FW_WR_EQUEQ);
2731 }
2732
2733 ring_eq_db(wrq->adapter, eq, ndesc);
2734 } else {
2735 MPASS(IDXDIFF(next->pidx, pidx, eq->sidx) == ndesc);
2736 next->pidx = pidx;
2737 next->ndesc += ndesc;
2738 }
2739 } else {
2740 MPASS(IDXDIFF(pidx, prev->pidx, eq->sidx) == prev->ndesc);
2741 prev->ndesc += ndesc;
2742 }
2743 TAILQ_REMOVE(&wrq->incomplete_wrs, cookie, link);
2744
2745 if (TAILQ_EMPTY(&wrq->incomplete_wrs) && !STAILQ_EMPTY(&wrq->wr_list))
2746 drain_wrq_wr_list(sc, wrq);
2747
2748 #ifdef INVARIANTS
2749 if (TAILQ_EMPTY(&wrq->incomplete_wrs)) {
2750 /* Doorbell must have caught up to the pidx. */
2751 MPASS(wrq->eq.pidx == wrq->eq.dbidx);
2752 }
2753 #endif
2754 EQ_UNLOCK(eq);
2755 }
2756
2757 static u_int
can_resume_eth_tx(struct mp_ring * r)2758 can_resume_eth_tx(struct mp_ring *r)
2759 {
2760 struct sge_eq *eq = r->cookie;
2761
2762 return (total_available_tx_desc(eq) > eq->sidx / 8);
2763 }
2764
2765 static inline int
cannot_use_txpkts(struct mbuf * m)2766 cannot_use_txpkts(struct mbuf *m)
2767 {
2768 /* maybe put a GL limit too, to avoid silliness? */
2769
2770 return (needs_tso(m) || (mbuf_cflags(m) & MC_RAW_WR) != 0);
2771 }
2772
2773 static inline int
discard_tx(struct sge_eq * eq)2774 discard_tx(struct sge_eq *eq)
2775 {
2776
2777 return ((eq->flags & (EQ_ENABLED | EQ_QFLUSH)) != EQ_ENABLED);
2778 }
2779
2780 static inline int
wr_can_update_eq(struct fw_eth_tx_pkts_wr * wr)2781 wr_can_update_eq(struct fw_eth_tx_pkts_wr *wr)
2782 {
2783
2784 switch (G_FW_WR_OP(be32toh(wr->op_pkd))) {
2785 case FW_ULPTX_WR:
2786 case FW_ETH_TX_PKT_WR:
2787 case FW_ETH_TX_PKTS_WR:
2788 case FW_ETH_TX_PKT_VM_WR:
2789 return (1);
2790 default:
2791 return (0);
2792 }
2793 }
2794
2795 /*
2796 * r->items[cidx] to r->items[pidx], with a wraparound at r->size, are ready to
2797 * be consumed. Return the actual number consumed. 0 indicates a stall.
2798 */
2799 static u_int
eth_tx(struct mp_ring * r,u_int cidx,u_int pidx)2800 eth_tx(struct mp_ring *r, u_int cidx, u_int pidx)
2801 {
2802 struct sge_txq *txq = r->cookie;
2803 struct sge_eq *eq = &txq->eq;
2804 struct ifnet *ifp = txq->ifp;
2805 struct vi_info *vi = ifp->if_softc;
2806 struct port_info *pi = vi->pi;
2807 struct adapter *sc = pi->adapter;
2808 u_int total, remaining; /* # of packets */
2809 u_int available, dbdiff; /* # of hardware descriptors */
2810 u_int n, next_cidx;
2811 struct mbuf *m0, *tail;
2812 struct txpkts txp;
2813 struct fw_eth_tx_pkts_wr *wr; /* any fw WR struct will do */
2814
2815 remaining = IDXDIFF(pidx, cidx, r->size);
2816 MPASS(remaining > 0); /* Must not be called without work to do. */
2817 total = 0;
2818
2819 TXQ_LOCK(txq);
2820 if (__predict_false(discard_tx(eq))) {
2821 while (cidx != pidx) {
2822 m0 = r->items[cidx];
2823 m_freem(m0);
2824 if (++cidx == r->size)
2825 cidx = 0;
2826 }
2827 reclaim_tx_descs(txq, 2048);
2828 total = remaining;
2829 goto done;
2830 }
2831
2832 /* How many hardware descriptors do we have readily available. */
2833 if (eq->pidx == eq->cidx)
2834 available = eq->sidx - 1;
2835 else
2836 available = IDXDIFF(eq->cidx, eq->pidx, eq->sidx) - 1;
2837 dbdiff = IDXDIFF(eq->pidx, eq->dbidx, eq->sidx);
2838
2839 while (remaining > 0) {
2840
2841 m0 = r->items[cidx];
2842 M_ASSERTPKTHDR(m0);
2843 MPASS(m0->m_nextpkt == NULL);
2844
2845 if (available < SGE_MAX_WR_NDESC) {
2846 available += reclaim_tx_descs(txq, 64);
2847 if (available < howmany(mbuf_len16(m0), EQ_ESIZE / 16))
2848 break; /* out of descriptors */
2849 }
2850
2851 next_cidx = cidx + 1;
2852 if (__predict_false(next_cidx == r->size))
2853 next_cidx = 0;
2854
2855 wr = (void *)&eq->desc[eq->pidx];
2856 if (sc->flags & IS_VF) {
2857 total++;
2858 remaining--;
2859 ETHER_BPF_MTAP(ifp, m0);
2860 n = write_txpkt_vm_wr(sc, txq, (void *)wr, m0,
2861 available);
2862 } else if (remaining > 1 &&
2863 try_txpkts(m0, r->items[next_cidx], &txp, available) == 0) {
2864
2865 /* pkts at cidx, next_cidx should both be in txp. */
2866 MPASS(txp.npkt == 2);
2867 tail = r->items[next_cidx];
2868 MPASS(tail->m_nextpkt == NULL);
2869 ETHER_BPF_MTAP(ifp, m0);
2870 ETHER_BPF_MTAP(ifp, tail);
2871 m0->m_nextpkt = tail;
2872
2873 if (__predict_false(++next_cidx == r->size))
2874 next_cidx = 0;
2875
2876 while (next_cidx != pidx) {
2877 if (add_to_txpkts(r->items[next_cidx], &txp,
2878 available) != 0)
2879 break;
2880 tail->m_nextpkt = r->items[next_cidx];
2881 tail = tail->m_nextpkt;
2882 ETHER_BPF_MTAP(ifp, tail);
2883 if (__predict_false(++next_cidx == r->size))
2884 next_cidx = 0;
2885 }
2886
2887 n = write_txpkts_wr(txq, wr, m0, &txp, available);
2888 total += txp.npkt;
2889 remaining -= txp.npkt;
2890 } else if (mbuf_cflags(m0) & MC_RAW_WR) {
2891 total++;
2892 remaining--;
2893 n = write_raw_wr(txq, (void *)wr, m0, available);
2894 } else {
2895 total++;
2896 remaining--;
2897 ETHER_BPF_MTAP(ifp, m0);
2898 n = write_txpkt_wr(txq, (void *)wr, m0, available);
2899 }
2900 MPASS(n >= 1 && n <= available && n <= SGE_MAX_WR_NDESC);
2901
2902 available -= n;
2903 dbdiff += n;
2904 IDXINCR(eq->pidx, n, eq->sidx);
2905
2906 if (wr_can_update_eq(wr)) {
2907 if (total_available_tx_desc(eq) < eq->sidx / 4 &&
2908 atomic_cmpset_int(&eq->equiq, 0, 1)) {
2909 wr->equiq_to_len16 |= htobe32(F_FW_WR_EQUIQ |
2910 F_FW_WR_EQUEQ);
2911 eq->equeqidx = eq->pidx;
2912 } else if (IDXDIFF(eq->pidx, eq->equeqidx, eq->sidx) >=
2913 32) {
2914 wr->equiq_to_len16 |= htobe32(F_FW_WR_EQUEQ);
2915 eq->equeqidx = eq->pidx;
2916 }
2917 }
2918
2919 if (dbdiff >= 16 && remaining >= 4) {
2920 ring_eq_db(sc, eq, dbdiff);
2921 available += reclaim_tx_descs(txq, 4 * dbdiff);
2922 dbdiff = 0;
2923 }
2924
2925 cidx = next_cidx;
2926 }
2927 if (dbdiff != 0) {
2928 ring_eq_db(sc, eq, dbdiff);
2929 reclaim_tx_descs(txq, 32);
2930 }
2931 done:
2932 TXQ_UNLOCK(txq);
2933
2934 return (total);
2935 }
2936
2937 static inline void
init_iq(struct sge_iq * iq,struct adapter * sc,int tmr_idx,int pktc_idx,int qsize)2938 init_iq(struct sge_iq *iq, struct adapter *sc, int tmr_idx, int pktc_idx,
2939 int qsize)
2940 {
2941
2942 KASSERT(tmr_idx >= 0 && tmr_idx < SGE_NTIMERS,
2943 ("%s: bad tmr_idx %d", __func__, tmr_idx));
2944 KASSERT(pktc_idx < SGE_NCOUNTERS, /* -ve is ok, means don't use */
2945 ("%s: bad pktc_idx %d", __func__, pktc_idx));
2946
2947 iq->flags = 0;
2948 iq->adapter = sc;
2949 iq->intr_params = V_QINTR_TIMER_IDX(tmr_idx);
2950 iq->intr_pktc_idx = SGE_NCOUNTERS - 1;
2951 if (pktc_idx >= 0) {
2952 iq->intr_params |= F_QINTR_CNT_EN;
2953 iq->intr_pktc_idx = pktc_idx;
2954 }
2955 iq->qsize = roundup2(qsize, 16); /* See FW_IQ_CMD/iqsize */
2956 iq->sidx = iq->qsize - sc->params.sge.spg_len / IQ_ESIZE;
2957 }
2958
2959 static inline void
init_fl(struct adapter * sc,struct sge_fl * fl,int qsize,int maxp,char * name)2960 init_fl(struct adapter *sc, struct sge_fl *fl, int qsize, int maxp, char *name)
2961 {
2962
2963 fl->qsize = qsize;
2964 fl->sidx = qsize - sc->params.sge.spg_len / EQ_ESIZE;
2965 strlcpy(fl->lockname, name, sizeof(fl->lockname));
2966 if (sc->flags & BUF_PACKING_OK &&
2967 ((!is_t4(sc) && buffer_packing) || /* T5+: enabled unless 0 */
2968 (is_t4(sc) && buffer_packing == 1)))/* T4: disabled unless 1 */
2969 fl->flags |= FL_BUF_PACKING;
2970 find_best_refill_source(sc, fl, maxp);
2971 find_safe_refill_source(sc, fl);
2972 }
2973
2974 static inline void
init_eq(struct adapter * sc,struct sge_eq * eq,int eqtype,int qsize,uint8_t tx_chan,uint16_t iqid,char * name)2975 init_eq(struct adapter *sc, struct sge_eq *eq, int eqtype, int qsize,
2976 uint8_t tx_chan, uint16_t iqid, char *name)
2977 {
2978 KASSERT(eqtype <= EQ_TYPEMASK, ("%s: bad qtype %d", __func__, eqtype));
2979
2980 eq->flags = eqtype & EQ_TYPEMASK;
2981 eq->tx_chan = tx_chan;
2982 eq->iqid = iqid;
2983 eq->sidx = qsize - sc->params.sge.spg_len / EQ_ESIZE;
2984 strlcpy(eq->lockname, name, sizeof(eq->lockname));
2985 }
2986
2987 static int
alloc_ring(struct adapter * sc,size_t len,bus_dma_tag_t * tag,bus_dmamap_t * map,bus_addr_t * pa,void ** va)2988 alloc_ring(struct adapter *sc, size_t len, bus_dma_tag_t *tag,
2989 bus_dmamap_t *map, bus_addr_t *pa, void **va)
2990 {
2991 int rc;
2992
2993 rc = bus_dma_tag_create(sc->dmat, 512, 0, BUS_SPACE_MAXADDR,
2994 BUS_SPACE_MAXADDR, NULL, NULL, len, 1, len, 0, NULL, NULL, tag);
2995 if (rc != 0) {
2996 device_printf(sc->dev, "cannot allocate DMA tag: %d\n", rc);
2997 goto done;
2998 }
2999
3000 rc = bus_dmamem_alloc(*tag, va,
3001 BUS_DMA_WAITOK | BUS_DMA_COHERENT | BUS_DMA_ZERO, map);
3002 if (rc != 0) {
3003 device_printf(sc->dev, "cannot allocate DMA memory: %d\n", rc);
3004 goto done;
3005 }
3006
3007 rc = bus_dmamap_load(*tag, *map, *va, len, oneseg_dma_callback, pa, 0);
3008 if (rc != 0) {
3009 device_printf(sc->dev, "cannot load DMA map: %d\n", rc);
3010 goto done;
3011 }
3012 done:
3013 if (rc)
3014 free_ring(sc, *tag, *map, *pa, *va);
3015
3016 return (rc);
3017 }
3018
3019 static int
free_ring(struct adapter * sc,bus_dma_tag_t tag,bus_dmamap_t map,bus_addr_t pa,void * va)3020 free_ring(struct adapter *sc, bus_dma_tag_t tag, bus_dmamap_t map,
3021 bus_addr_t pa, void *va)
3022 {
3023 if (pa)
3024 bus_dmamap_unload(tag, map);
3025 if (va)
3026 bus_dmamem_free(tag, va, map);
3027 if (tag)
3028 bus_dma_tag_destroy(tag);
3029
3030 return (0);
3031 }
3032
3033 /*
3034 * Allocates the ring for an ingress queue and an optional freelist. If the
3035 * freelist is specified it will be allocated and then associated with the
3036 * ingress queue.
3037 *
3038 * Returns errno on failure. Resources allocated up to that point may still be
3039 * allocated. Caller is responsible for cleanup in case this function fails.
3040 *
3041 * If the ingress queue will take interrupts directly then the intr_idx
3042 * specifies the vector, starting from 0. -1 means the interrupts for this
3043 * queue should be forwarded to the fwq.
3044 */
3045 static int
alloc_iq_fl(struct vi_info * vi,struct sge_iq * iq,struct sge_fl * fl,int intr_idx,int cong)3046 alloc_iq_fl(struct vi_info *vi, struct sge_iq *iq, struct sge_fl *fl,
3047 int intr_idx, int cong)
3048 {
3049 int rc, i, cntxt_id;
3050 size_t len;
3051 struct fw_iq_cmd c;
3052 struct port_info *pi = vi->pi;
3053 struct adapter *sc = iq->adapter;
3054 struct sge_params *sp = &sc->params.sge;
3055 __be32 v = 0;
3056
3057 len = iq->qsize * IQ_ESIZE;
3058 rc = alloc_ring(sc, len, &iq->desc_tag, &iq->desc_map, &iq->ba,
3059 (void **)&iq->desc);
3060 if (rc != 0)
3061 return (rc);
3062
3063 bzero(&c, sizeof(c));
3064 c.op_to_vfn = htobe32(V_FW_CMD_OP(FW_IQ_CMD) | F_FW_CMD_REQUEST |
3065 F_FW_CMD_WRITE | F_FW_CMD_EXEC | V_FW_IQ_CMD_PFN(sc->pf) |
3066 V_FW_IQ_CMD_VFN(0));
3067
3068 c.alloc_to_len16 = htobe32(F_FW_IQ_CMD_ALLOC | F_FW_IQ_CMD_IQSTART |
3069 FW_LEN16(c));
3070
3071 /* Special handling for firmware event queue */
3072 if (iq == &sc->sge.fwq)
3073 v |= F_FW_IQ_CMD_IQASYNCH;
3074
3075 if (intr_idx < 0) {
3076 /* Forwarded interrupts, all headed to fwq */
3077 v |= F_FW_IQ_CMD_IQANDST;
3078 v |= V_FW_IQ_CMD_IQANDSTINDEX(sc->sge.fwq.cntxt_id);
3079 } else {
3080 KASSERT(intr_idx < sc->intr_count,
3081 ("%s: invalid direct intr_idx %d", __func__, intr_idx));
3082 v |= V_FW_IQ_CMD_IQANDSTINDEX(intr_idx);
3083 }
3084
3085 c.type_to_iqandstindex = htobe32(v |
3086 V_FW_IQ_CMD_TYPE(FW_IQ_TYPE_FL_INT_CAP) |
3087 V_FW_IQ_CMD_VIID(vi->viid) |
3088 V_FW_IQ_CMD_IQANUD(X_UPDATEDELIVERY_INTERRUPT));
3089 c.iqdroprss_to_iqesize = htobe16(V_FW_IQ_CMD_IQPCIECH(pi->tx_chan) |
3090 F_FW_IQ_CMD_IQGTSMODE |
3091 V_FW_IQ_CMD_IQINTCNTTHRESH(iq->intr_pktc_idx) |
3092 V_FW_IQ_CMD_IQESIZE(ilog2(IQ_ESIZE) - 4));
3093 c.iqsize = htobe16(iq->qsize);
3094 c.iqaddr = htobe64(iq->ba);
3095 if (cong >= 0)
3096 c.iqns_to_fl0congen = htobe32(F_FW_IQ_CMD_IQFLINTCONGEN);
3097
3098 if (fl) {
3099 mtx_init(&fl->fl_lock, fl->lockname, NULL, MTX_DEF);
3100
3101 len = fl->qsize * EQ_ESIZE;
3102 rc = alloc_ring(sc, len, &fl->desc_tag, &fl->desc_map,
3103 &fl->ba, (void **)&fl->desc);
3104 if (rc)
3105 return (rc);
3106
3107 /* Allocate space for one software descriptor per buffer. */
3108 rc = alloc_fl_sdesc(fl);
3109 if (rc != 0) {
3110 device_printf(sc->dev,
3111 "failed to setup fl software descriptors: %d\n",
3112 rc);
3113 return (rc);
3114 }
3115
3116 if (fl->flags & FL_BUF_PACKING) {
3117 fl->lowat = roundup2(sp->fl_starve_threshold2, 8);
3118 fl->buf_boundary = sp->pack_boundary;
3119 } else {
3120 fl->lowat = roundup2(sp->fl_starve_threshold, 8);
3121 fl->buf_boundary = 16;
3122 }
3123 if (fl_pad && fl->buf_boundary < sp->pad_boundary)
3124 fl->buf_boundary = sp->pad_boundary;
3125
3126 c.iqns_to_fl0congen |=
3127 htobe32(V_FW_IQ_CMD_FL0HOSTFCMODE(X_HOSTFCMODE_NONE) |
3128 F_FW_IQ_CMD_FL0FETCHRO | F_FW_IQ_CMD_FL0DATARO |
3129 (fl_pad ? F_FW_IQ_CMD_FL0PADEN : 0) |
3130 (fl->flags & FL_BUF_PACKING ? F_FW_IQ_CMD_FL0PACKEN :
3131 0));
3132 if (cong >= 0) {
3133 c.iqns_to_fl0congen |=
3134 htobe32(V_FW_IQ_CMD_FL0CNGCHMAP(cong) |
3135 F_FW_IQ_CMD_FL0CONGCIF |
3136 F_FW_IQ_CMD_FL0CONGEN);
3137 }
3138 c.fl0dcaen_to_fl0cidxfthresh =
3139 htobe16(V_FW_IQ_CMD_FL0FBMIN(chip_id(sc) <= CHELSIO_T5 ?
3140 X_FETCHBURSTMIN_128B : X_FETCHBURSTMIN_64B) |
3141 V_FW_IQ_CMD_FL0FBMAX(chip_id(sc) <= CHELSIO_T5 ?
3142 X_FETCHBURSTMAX_512B : X_FETCHBURSTMAX_256B));
3143 c.fl0size = htobe16(fl->qsize);
3144 c.fl0addr = htobe64(fl->ba);
3145 }
3146
3147 rc = -t4_wr_mbox(sc, sc->mbox, &c, sizeof(c), &c);
3148 if (rc != 0) {
3149 device_printf(sc->dev,
3150 "failed to create ingress queue: %d\n", rc);
3151 return (rc);
3152 }
3153
3154 iq->cidx = 0;
3155 iq->gen = F_RSPD_GEN;
3156 iq->intr_next = iq->intr_params;
3157 iq->cntxt_id = be16toh(c.iqid);
3158 iq->abs_id = be16toh(c.physiqid);
3159 iq->flags |= IQ_ALLOCATED;
3160
3161 cntxt_id = iq->cntxt_id - sc->sge.iq_start;
3162 if (cntxt_id >= sc->sge.niq) {
3163 panic ("%s: iq->cntxt_id (%d) more than the max (%d)", __func__,
3164 cntxt_id, sc->sge.niq - 1);
3165 }
3166 sc->sge.iqmap[cntxt_id] = iq;
3167
3168 if (fl) {
3169 u_int qid;
3170
3171 iq->flags |= IQ_HAS_FL;
3172 fl->cntxt_id = be16toh(c.fl0id);
3173 fl->pidx = fl->cidx = 0;
3174
3175 cntxt_id = fl->cntxt_id - sc->sge.eq_start;
3176 if (cntxt_id >= sc->sge.neq) {
3177 panic("%s: fl->cntxt_id (%d) more than the max (%d)",
3178 __func__, cntxt_id, sc->sge.neq - 1);
3179 }
3180 sc->sge.eqmap[cntxt_id] = (void *)fl;
3181
3182 qid = fl->cntxt_id;
3183 if (isset(&sc->doorbells, DOORBELL_UDB)) {
3184 uint32_t s_qpp = sc->params.sge.eq_s_qpp;
3185 uint32_t mask = (1 << s_qpp) - 1;
3186 volatile uint8_t *udb;
3187
3188 udb = sc->udbs_base + UDBS_DB_OFFSET;
3189 udb += (qid >> s_qpp) << PAGE_SHIFT;
3190 qid &= mask;
3191 if (qid < PAGE_SIZE / UDBS_SEG_SIZE) {
3192 udb += qid << UDBS_SEG_SHIFT;
3193 qid = 0;
3194 }
3195 fl->udb = (volatile void *)udb;
3196 }
3197 fl->dbval = V_QID(qid) | sc->chip_params->sge_fl_db;
3198
3199 FL_LOCK(fl);
3200 /* Enough to make sure the SGE doesn't think it's starved */
3201 refill_fl(sc, fl, fl->lowat);
3202 FL_UNLOCK(fl);
3203 }
3204
3205 if (chip_id(sc) >= CHELSIO_T5 && !(sc->flags & IS_VF) && cong >= 0) {
3206 uint32_t param, val;
3207
3208 param = V_FW_PARAMS_MNEM(FW_PARAMS_MNEM_DMAQ) |
3209 V_FW_PARAMS_PARAM_X(FW_PARAMS_PARAM_DMAQ_CONM_CTXT) |
3210 V_FW_PARAMS_PARAM_YZ(iq->cntxt_id);
3211 if (cong == 0)
3212 val = 1 << 19;
3213 else {
3214 val = 2 << 19;
3215 for (i = 0; i < 4; i++) {
3216 if (cong & (1 << i))
3217 val |= 1 << (i << 2);
3218 }
3219 }
3220
3221 rc = -t4_set_params(sc, sc->mbox, sc->pf, 0, 1, ¶m, &val);
3222 if (rc != 0) {
3223 /* report error but carry on */
3224 device_printf(sc->dev,
3225 "failed to set congestion manager context for "
3226 "ingress queue %d: %d\n", iq->cntxt_id, rc);
3227 }
3228 }
3229
3230 /* Enable IQ interrupts */
3231 atomic_store_rel_int(&iq->state, IQS_IDLE);
3232 t4_write_reg(sc, sc->sge_gts_reg, V_SEINTARM(iq->intr_params) |
3233 V_INGRESSQID(iq->cntxt_id));
3234
3235 return (0);
3236 }
3237
3238 static int
free_iq_fl(struct vi_info * vi,struct sge_iq * iq,struct sge_fl * fl)3239 free_iq_fl(struct vi_info *vi, struct sge_iq *iq, struct sge_fl *fl)
3240 {
3241 int rc;
3242 struct adapter *sc = iq->adapter;
3243 device_t dev;
3244
3245 if (sc == NULL)
3246 return (0); /* nothing to do */
3247
3248 dev = vi ? vi->dev : sc->dev;
3249
3250 if (iq->flags & IQ_ALLOCATED) {
3251 rc = -t4_iq_free(sc, sc->mbox, sc->pf, 0,
3252 FW_IQ_TYPE_FL_INT_CAP, iq->cntxt_id,
3253 fl ? fl->cntxt_id : 0xffff, 0xffff);
3254 if (rc != 0) {
3255 device_printf(dev,
3256 "failed to free queue %p: %d\n", iq, rc);
3257 return (rc);
3258 }
3259 iq->flags &= ~IQ_ALLOCATED;
3260 }
3261
3262 free_ring(sc, iq->desc_tag, iq->desc_map, iq->ba, iq->desc);
3263
3264 bzero(iq, sizeof(*iq));
3265
3266 if (fl) {
3267 free_ring(sc, fl->desc_tag, fl->desc_map, fl->ba,
3268 fl->desc);
3269
3270 if (fl->sdesc)
3271 free_fl_sdesc(sc, fl);
3272
3273 if (mtx_initialized(&fl->fl_lock))
3274 mtx_destroy(&fl->fl_lock);
3275
3276 bzero(fl, sizeof(*fl));
3277 }
3278
3279 return (0);
3280 }
3281
3282 static void
add_iq_sysctls(struct sysctl_ctx_list * ctx,struct sysctl_oid * oid,struct sge_iq * iq)3283 add_iq_sysctls(struct sysctl_ctx_list *ctx, struct sysctl_oid *oid,
3284 struct sge_iq *iq)
3285 {
3286 struct sysctl_oid_list *children = SYSCTL_CHILDREN(oid);
3287
3288 SYSCTL_ADD_UAUTO(ctx, children, OID_AUTO, "ba", CTLFLAG_RD, &iq->ba,
3289 "bus address of descriptor ring");
3290 SYSCTL_ADD_INT(ctx, children, OID_AUTO, "dmalen", CTLFLAG_RD, NULL,
3291 iq->qsize * IQ_ESIZE, "descriptor ring size in bytes");
3292 SYSCTL_ADD_PROC(ctx, children, OID_AUTO, "abs_id",
3293 CTLTYPE_INT | CTLFLAG_RD, &iq->abs_id, 0, sysctl_uint16, "I",
3294 "absolute id of the queue");
3295 SYSCTL_ADD_PROC(ctx, children, OID_AUTO, "cntxt_id",
3296 CTLTYPE_INT | CTLFLAG_RD, &iq->cntxt_id, 0, sysctl_uint16, "I",
3297 "SGE context id of the queue");
3298 SYSCTL_ADD_PROC(ctx, children, OID_AUTO, "cidx",
3299 CTLTYPE_INT | CTLFLAG_RD, &iq->cidx, 0, sysctl_uint16, "I",
3300 "consumer index");
3301 }
3302
3303 static void
add_fl_sysctls(struct adapter * sc,struct sysctl_ctx_list * ctx,struct sysctl_oid * oid,struct sge_fl * fl)3304 add_fl_sysctls(struct adapter *sc, struct sysctl_ctx_list *ctx,
3305 struct sysctl_oid *oid, struct sge_fl *fl)
3306 {
3307 struct sysctl_oid_list *children = SYSCTL_CHILDREN(oid);
3308
3309 oid = SYSCTL_ADD_NODE(ctx, children, OID_AUTO, "fl", CTLFLAG_RD, NULL,
3310 "freelist");
3311 children = SYSCTL_CHILDREN(oid);
3312
3313 SYSCTL_ADD_UAUTO(ctx, children, OID_AUTO, "ba", CTLFLAG_RD,
3314 &fl->ba, "bus address of descriptor ring");
3315 SYSCTL_ADD_INT(ctx, children, OID_AUTO, "dmalen", CTLFLAG_RD, NULL,
3316 fl->sidx * EQ_ESIZE + sc->params.sge.spg_len,
3317 "desc ring size in bytes");
3318 SYSCTL_ADD_PROC(ctx, children, OID_AUTO, "cntxt_id",
3319 CTLTYPE_INT | CTLFLAG_RD, &fl->cntxt_id, 0, sysctl_uint16, "I",
3320 "SGE context id of the freelist");
3321 SYSCTL_ADD_UINT(ctx, children, OID_AUTO, "padding", CTLFLAG_RD, NULL,
3322 fl_pad ? 1 : 0, "padding enabled");
3323 SYSCTL_ADD_UINT(ctx, children, OID_AUTO, "packing", CTLFLAG_RD, NULL,
3324 fl->flags & FL_BUF_PACKING ? 1 : 0, "packing enabled");
3325 SYSCTL_ADD_UINT(ctx, children, OID_AUTO, "cidx", CTLFLAG_RD, &fl->cidx,
3326 0, "consumer index");
3327 if (fl->flags & FL_BUF_PACKING) {
3328 SYSCTL_ADD_UINT(ctx, children, OID_AUTO, "rx_offset",
3329 CTLFLAG_RD, &fl->rx_offset, 0, "packing rx offset");
3330 }
3331 SYSCTL_ADD_UINT(ctx, children, OID_AUTO, "pidx", CTLFLAG_RD, &fl->pidx,
3332 0, "producer index");
3333 SYSCTL_ADD_UQUAD(ctx, children, OID_AUTO, "mbuf_allocated",
3334 CTLFLAG_RD, &fl->mbuf_allocated, "# of mbuf allocated");
3335 SYSCTL_ADD_UQUAD(ctx, children, OID_AUTO, "mbuf_inlined",
3336 CTLFLAG_RD, &fl->mbuf_inlined, "# of mbuf inlined in clusters");
3337 SYSCTL_ADD_UQUAD(ctx, children, OID_AUTO, "cluster_allocated",
3338 CTLFLAG_RD, &fl->cl_allocated, "# of clusters allocated");
3339 SYSCTL_ADD_UQUAD(ctx, children, OID_AUTO, "cluster_recycled",
3340 CTLFLAG_RD, &fl->cl_recycled, "# of clusters recycled");
3341 SYSCTL_ADD_UQUAD(ctx, children, OID_AUTO, "cluster_fast_recycled",
3342 CTLFLAG_RD, &fl->cl_fast_recycled, "# of clusters recycled (fast)");
3343 }
3344
3345 static int
alloc_fwq(struct adapter * sc)3346 alloc_fwq(struct adapter *sc)
3347 {
3348 int rc, intr_idx;
3349 struct sge_iq *fwq = &sc->sge.fwq;
3350 struct sysctl_oid *oid = device_get_sysctl_tree(sc->dev);
3351 struct sysctl_oid_list *children = SYSCTL_CHILDREN(oid);
3352
3353 init_iq(fwq, sc, 0, 0, FW_IQ_QSIZE);
3354 if (sc->flags & IS_VF)
3355 intr_idx = 0;
3356 else
3357 intr_idx = sc->intr_count > 1 ? 1 : 0;
3358 rc = alloc_iq_fl(&sc->port[0]->vi[0], fwq, NULL, intr_idx, -1);
3359 if (rc != 0) {
3360 device_printf(sc->dev,
3361 "failed to create firmware event queue: %d\n", rc);
3362 return (rc);
3363 }
3364
3365 oid = SYSCTL_ADD_NODE(&sc->ctx, children, OID_AUTO, "fwq", CTLFLAG_RD,
3366 NULL, "firmware event queue");
3367 add_iq_sysctls(&sc->ctx, oid, fwq);
3368
3369 return (0);
3370 }
3371
3372 static int
free_fwq(struct adapter * sc)3373 free_fwq(struct adapter *sc)
3374 {
3375 return free_iq_fl(NULL, &sc->sge.fwq, NULL);
3376 }
3377
3378 static int
alloc_ctrlq(struct adapter * sc,struct sge_wrq * ctrlq,int idx,struct sysctl_oid * oid)3379 alloc_ctrlq(struct adapter *sc, struct sge_wrq *ctrlq, int idx,
3380 struct sysctl_oid *oid)
3381 {
3382 int rc;
3383 char name[16];
3384 struct sysctl_oid_list *children;
3385
3386 snprintf(name, sizeof(name), "%s ctrlq%d", device_get_nameunit(sc->dev),
3387 idx);
3388 init_eq(sc, &ctrlq->eq, EQ_CTRL, CTRL_EQ_QSIZE, sc->port[idx]->tx_chan,
3389 sc->sge.fwq.cntxt_id, name);
3390
3391 children = SYSCTL_CHILDREN(oid);
3392 snprintf(name, sizeof(name), "%d", idx);
3393 oid = SYSCTL_ADD_NODE(&sc->ctx, children, OID_AUTO, name, CTLFLAG_RD,
3394 NULL, "ctrl queue");
3395 rc = alloc_wrq(sc, NULL, ctrlq, oid);
3396
3397 return (rc);
3398 }
3399
3400 int
tnl_cong(struct port_info * pi,int drop)3401 tnl_cong(struct port_info *pi, int drop)
3402 {
3403
3404 if (drop == -1)
3405 return (-1);
3406 else if (drop == 1)
3407 return (0);
3408 else
3409 return (pi->rx_e_chan_map);
3410 }
3411
3412 static int
alloc_rxq(struct vi_info * vi,struct sge_rxq * rxq,int intr_idx,int idx,struct sysctl_oid * oid)3413 alloc_rxq(struct vi_info *vi, struct sge_rxq *rxq, int intr_idx, int idx,
3414 struct sysctl_oid *oid)
3415 {
3416 int rc;
3417 struct adapter *sc = vi->pi->adapter;
3418 struct sysctl_oid_list *children;
3419 char name[16];
3420
3421 rc = alloc_iq_fl(vi, &rxq->iq, &rxq->fl, intr_idx,
3422 tnl_cong(vi->pi, cong_drop));
3423 if (rc != 0)
3424 return (rc);
3425
3426 if (idx == 0)
3427 sc->sge.iq_base = rxq->iq.abs_id - rxq->iq.cntxt_id;
3428 else
3429 KASSERT(rxq->iq.cntxt_id + sc->sge.iq_base == rxq->iq.abs_id,
3430 ("iq_base mismatch"));
3431 KASSERT(sc->sge.iq_base == 0 || sc->flags & IS_VF,
3432 ("PF with non-zero iq_base"));
3433
3434 /*
3435 * The freelist is just barely above the starvation threshold right now,
3436 * fill it up a bit more.
3437 */
3438 FL_LOCK(&rxq->fl);
3439 refill_fl(sc, &rxq->fl, 128);
3440 FL_UNLOCK(&rxq->fl);
3441
3442 #if defined(INET) || defined(INET6)
3443 rc = tcp_lro_init_args(&rxq->lro, vi->ifp, lro_entries, lro_mbufs);
3444 if (rc != 0)
3445 return (rc);
3446 MPASS(rxq->lro.ifp == vi->ifp); /* also indicates LRO init'ed */
3447
3448 if (vi->ifp->if_capenable & IFCAP_LRO)
3449 rxq->iq.flags |= IQ_LRO_ENABLED;
3450 #endif
3451 if (vi->ifp->if_capenable & IFCAP_HWRXTSTMP)
3452 rxq->iq.flags |= IQ_RX_TIMESTAMP;
3453 rxq->ifp = vi->ifp;
3454
3455 children = SYSCTL_CHILDREN(oid);
3456
3457 snprintf(name, sizeof(name), "%d", idx);
3458 oid = SYSCTL_ADD_NODE(&vi->ctx, children, OID_AUTO, name, CTLFLAG_RD,
3459 NULL, "rx queue");
3460 children = SYSCTL_CHILDREN(oid);
3461
3462 add_iq_sysctls(&vi->ctx, oid, &rxq->iq);
3463 #if defined(INET) || defined(INET6)
3464 SYSCTL_ADD_U64(&vi->ctx, children, OID_AUTO, "lro_queued", CTLFLAG_RD,
3465 &rxq->lro.lro_queued, 0, NULL);
3466 SYSCTL_ADD_U64(&vi->ctx, children, OID_AUTO, "lro_flushed", CTLFLAG_RD,
3467 &rxq->lro.lro_flushed, 0, NULL);
3468 #endif
3469 SYSCTL_ADD_UQUAD(&vi->ctx, children, OID_AUTO, "rxcsum", CTLFLAG_RD,
3470 &rxq->rxcsum, "# of times hardware assisted with checksum");
3471 SYSCTL_ADD_UQUAD(&vi->ctx, children, OID_AUTO, "vlan_extraction",
3472 CTLFLAG_RD, &rxq->vlan_extraction,
3473 "# of times hardware extracted 802.1Q tag");
3474
3475 add_fl_sysctls(sc, &vi->ctx, oid, &rxq->fl);
3476
3477 return (rc);
3478 }
3479
3480 static int
free_rxq(struct vi_info * vi,struct sge_rxq * rxq)3481 free_rxq(struct vi_info *vi, struct sge_rxq *rxq)
3482 {
3483 int rc;
3484
3485 #if defined(INET) || defined(INET6)
3486 if (rxq->lro.ifp) {
3487 tcp_lro_free(&rxq->lro);
3488 rxq->lro.ifp = NULL;
3489 }
3490 #endif
3491
3492 rc = free_iq_fl(vi, &rxq->iq, &rxq->fl);
3493 if (rc == 0)
3494 bzero(rxq, sizeof(*rxq));
3495
3496 return (rc);
3497 }
3498
3499 #ifdef TCP_OFFLOAD
3500 static int
alloc_ofld_rxq(struct vi_info * vi,struct sge_ofld_rxq * ofld_rxq,int intr_idx,int idx,struct sysctl_oid * oid)3501 alloc_ofld_rxq(struct vi_info *vi, struct sge_ofld_rxq *ofld_rxq,
3502 int intr_idx, int idx, struct sysctl_oid *oid)
3503 {
3504 struct port_info *pi = vi->pi;
3505 int rc;
3506 struct sysctl_oid_list *children;
3507 char name[16];
3508
3509 rc = alloc_iq_fl(vi, &ofld_rxq->iq, &ofld_rxq->fl, intr_idx, 0);
3510 if (rc != 0)
3511 return (rc);
3512
3513 children = SYSCTL_CHILDREN(oid);
3514
3515 snprintf(name, sizeof(name), "%d", idx);
3516 oid = SYSCTL_ADD_NODE(&vi->ctx, children, OID_AUTO, name, CTLFLAG_RD,
3517 NULL, "rx queue");
3518 add_iq_sysctls(&vi->ctx, oid, &ofld_rxq->iq);
3519 add_fl_sysctls(pi->adapter, &vi->ctx, oid, &ofld_rxq->fl);
3520
3521 return (rc);
3522 }
3523
3524 static int
free_ofld_rxq(struct vi_info * vi,struct sge_ofld_rxq * ofld_rxq)3525 free_ofld_rxq(struct vi_info *vi, struct sge_ofld_rxq *ofld_rxq)
3526 {
3527 int rc;
3528
3529 rc = free_iq_fl(vi, &ofld_rxq->iq, &ofld_rxq->fl);
3530 if (rc == 0)
3531 bzero(ofld_rxq, sizeof(*ofld_rxq));
3532
3533 return (rc);
3534 }
3535 #endif
3536
3537 #ifdef DEV_NETMAP
3538 static int
alloc_nm_rxq(struct vi_info * vi,struct sge_nm_rxq * nm_rxq,int intr_idx,int idx,struct sysctl_oid * oid)3539 alloc_nm_rxq(struct vi_info *vi, struct sge_nm_rxq *nm_rxq, int intr_idx,
3540 int idx, struct sysctl_oid *oid)
3541 {
3542 int rc;
3543 struct sysctl_oid_list *children;
3544 struct sysctl_ctx_list *ctx;
3545 char name[16];
3546 size_t len;
3547 struct adapter *sc = vi->pi->adapter;
3548 struct netmap_adapter *na = NA(vi->ifp);
3549
3550 MPASS(na != NULL);
3551
3552 len = vi->qsize_rxq * IQ_ESIZE;
3553 rc = alloc_ring(sc, len, &nm_rxq->iq_desc_tag, &nm_rxq->iq_desc_map,
3554 &nm_rxq->iq_ba, (void **)&nm_rxq->iq_desc);
3555 if (rc != 0)
3556 return (rc);
3557
3558 len = na->num_rx_desc * EQ_ESIZE + sc->params.sge.spg_len;
3559 rc = alloc_ring(sc, len, &nm_rxq->fl_desc_tag, &nm_rxq->fl_desc_map,
3560 &nm_rxq->fl_ba, (void **)&nm_rxq->fl_desc);
3561 if (rc != 0)
3562 return (rc);
3563
3564 nm_rxq->vi = vi;
3565 nm_rxq->nid = idx;
3566 nm_rxq->iq_cidx = 0;
3567 nm_rxq->iq_sidx = vi->qsize_rxq - sc->params.sge.spg_len / IQ_ESIZE;
3568 nm_rxq->iq_gen = F_RSPD_GEN;
3569 nm_rxq->fl_pidx = nm_rxq->fl_cidx = 0;
3570 nm_rxq->fl_sidx = na->num_rx_desc;
3571 nm_rxq->intr_idx = intr_idx;
3572 nm_rxq->iq_cntxt_id = INVALID_NM_RXQ_CNTXT_ID;
3573
3574 ctx = &vi->ctx;
3575 children = SYSCTL_CHILDREN(oid);
3576
3577 snprintf(name, sizeof(name), "%d", idx);
3578 oid = SYSCTL_ADD_NODE(ctx, children, OID_AUTO, name, CTLFLAG_RD, NULL,
3579 "rx queue");
3580 children = SYSCTL_CHILDREN(oid);
3581
3582 SYSCTL_ADD_PROC(ctx, children, OID_AUTO, "abs_id",
3583 CTLTYPE_INT | CTLFLAG_RD, &nm_rxq->iq_abs_id, 0, sysctl_uint16,
3584 "I", "absolute id of the queue");
3585 SYSCTL_ADD_PROC(ctx, children, OID_AUTO, "cntxt_id",
3586 CTLTYPE_INT | CTLFLAG_RD, &nm_rxq->iq_cntxt_id, 0, sysctl_uint16,
3587 "I", "SGE context id of the queue");
3588 SYSCTL_ADD_PROC(ctx, children, OID_AUTO, "cidx",
3589 CTLTYPE_INT | CTLFLAG_RD, &nm_rxq->iq_cidx, 0, sysctl_uint16, "I",
3590 "consumer index");
3591
3592 children = SYSCTL_CHILDREN(oid);
3593 oid = SYSCTL_ADD_NODE(ctx, children, OID_AUTO, "fl", CTLFLAG_RD, NULL,
3594 "freelist");
3595 children = SYSCTL_CHILDREN(oid);
3596
3597 SYSCTL_ADD_PROC(ctx, children, OID_AUTO, "cntxt_id",
3598 CTLTYPE_INT | CTLFLAG_RD, &nm_rxq->fl_cntxt_id, 0, sysctl_uint16,
3599 "I", "SGE context id of the freelist");
3600 SYSCTL_ADD_UINT(ctx, children, OID_AUTO, "cidx", CTLFLAG_RD,
3601 &nm_rxq->fl_cidx, 0, "consumer index");
3602 SYSCTL_ADD_UINT(ctx, children, OID_AUTO, "pidx", CTLFLAG_RD,
3603 &nm_rxq->fl_pidx, 0, "producer index");
3604
3605 return (rc);
3606 }
3607
3608
3609 static int
free_nm_rxq(struct vi_info * vi,struct sge_nm_rxq * nm_rxq)3610 free_nm_rxq(struct vi_info *vi, struct sge_nm_rxq *nm_rxq)
3611 {
3612 struct adapter *sc = vi->pi->adapter;
3613
3614 if (vi->flags & VI_INIT_DONE)
3615 MPASS(nm_rxq->iq_cntxt_id == INVALID_NM_RXQ_CNTXT_ID);
3616 else
3617 MPASS(nm_rxq->iq_cntxt_id == 0);
3618
3619 free_ring(sc, nm_rxq->iq_desc_tag, nm_rxq->iq_desc_map, nm_rxq->iq_ba,
3620 nm_rxq->iq_desc);
3621 free_ring(sc, nm_rxq->fl_desc_tag, nm_rxq->fl_desc_map, nm_rxq->fl_ba,
3622 nm_rxq->fl_desc);
3623
3624 return (0);
3625 }
3626
3627 static int
alloc_nm_txq(struct vi_info * vi,struct sge_nm_txq * nm_txq,int iqidx,int idx,struct sysctl_oid * oid)3628 alloc_nm_txq(struct vi_info *vi, struct sge_nm_txq *nm_txq, int iqidx, int idx,
3629 struct sysctl_oid *oid)
3630 {
3631 int rc;
3632 size_t len;
3633 struct port_info *pi = vi->pi;
3634 struct adapter *sc = pi->adapter;
3635 struct netmap_adapter *na = NA(vi->ifp);
3636 char name[16];
3637 struct sysctl_oid_list *children = SYSCTL_CHILDREN(oid);
3638
3639 len = na->num_tx_desc * EQ_ESIZE + sc->params.sge.spg_len;
3640 rc = alloc_ring(sc, len, &nm_txq->desc_tag, &nm_txq->desc_map,
3641 &nm_txq->ba, (void **)&nm_txq->desc);
3642 if (rc)
3643 return (rc);
3644
3645 nm_txq->pidx = nm_txq->cidx = 0;
3646 nm_txq->sidx = na->num_tx_desc;
3647 nm_txq->nid = idx;
3648 nm_txq->iqidx = iqidx;
3649 nm_txq->cpl_ctrl0 = htobe32(V_TXPKT_OPCODE(CPL_TX_PKT) |
3650 V_TXPKT_INTF(pi->tx_chan) | V_TXPKT_PF(sc->pf) |
3651 V_TXPKT_VF(vi->vin) | V_TXPKT_VF_VLD(vi->vfvld));
3652 nm_txq->cntxt_id = INVALID_NM_TXQ_CNTXT_ID;
3653
3654 snprintf(name, sizeof(name), "%d", idx);
3655 oid = SYSCTL_ADD_NODE(&vi->ctx, children, OID_AUTO, name, CTLFLAG_RD,
3656 NULL, "netmap tx queue");
3657 children = SYSCTL_CHILDREN(oid);
3658
3659 SYSCTL_ADD_UINT(&vi->ctx, children, OID_AUTO, "cntxt_id", CTLFLAG_RD,
3660 &nm_txq->cntxt_id, 0, "SGE context id of the queue");
3661 SYSCTL_ADD_PROC(&vi->ctx, children, OID_AUTO, "cidx",
3662 CTLTYPE_INT | CTLFLAG_RD, &nm_txq->cidx, 0, sysctl_uint16, "I",
3663 "consumer index");
3664 SYSCTL_ADD_PROC(&vi->ctx, children, OID_AUTO, "pidx",
3665 CTLTYPE_INT | CTLFLAG_RD, &nm_txq->pidx, 0, sysctl_uint16, "I",
3666 "producer index");
3667
3668 return (rc);
3669 }
3670
3671 static int
free_nm_txq(struct vi_info * vi,struct sge_nm_txq * nm_txq)3672 free_nm_txq(struct vi_info *vi, struct sge_nm_txq *nm_txq)
3673 {
3674 struct adapter *sc = vi->pi->adapter;
3675
3676 if (vi->flags & VI_INIT_DONE)
3677 MPASS(nm_txq->cntxt_id == INVALID_NM_TXQ_CNTXT_ID);
3678 else
3679 MPASS(nm_txq->cntxt_id == 0);
3680
3681 free_ring(sc, nm_txq->desc_tag, nm_txq->desc_map, nm_txq->ba,
3682 nm_txq->desc);
3683
3684 return (0);
3685 }
3686 #endif
3687
3688 /*
3689 * Returns a reasonable automatic cidx flush threshold for a given queue size.
3690 */
3691 static u_int
qsize_to_fthresh(int qsize)3692 qsize_to_fthresh(int qsize)
3693 {
3694 u_int fthresh;
3695
3696 while (!powerof2(qsize))
3697 qsize++;
3698 fthresh = ilog2(qsize);
3699 if (fthresh > X_CIDXFLUSHTHRESH_128)
3700 fthresh = X_CIDXFLUSHTHRESH_128;
3701
3702 return (fthresh);
3703 }
3704
3705 static int
ctrl_eq_alloc(struct adapter * sc,struct sge_eq * eq)3706 ctrl_eq_alloc(struct adapter *sc, struct sge_eq *eq)
3707 {
3708 int rc, cntxt_id;
3709 struct fw_eq_ctrl_cmd c;
3710 int qsize = eq->sidx + sc->params.sge.spg_len / EQ_ESIZE;
3711
3712 bzero(&c, sizeof(c));
3713
3714 c.op_to_vfn = htobe32(V_FW_CMD_OP(FW_EQ_CTRL_CMD) | F_FW_CMD_REQUEST |
3715 F_FW_CMD_WRITE | F_FW_CMD_EXEC | V_FW_EQ_CTRL_CMD_PFN(sc->pf) |
3716 V_FW_EQ_CTRL_CMD_VFN(0));
3717 c.alloc_to_len16 = htobe32(F_FW_EQ_CTRL_CMD_ALLOC |
3718 F_FW_EQ_CTRL_CMD_EQSTART | FW_LEN16(c));
3719 c.cmpliqid_eqid = htonl(V_FW_EQ_CTRL_CMD_CMPLIQID(eq->iqid));
3720 c.physeqid_pkd = htobe32(0);
3721 c.fetchszm_to_iqid =
3722 htobe32(V_FW_EQ_CTRL_CMD_HOSTFCMODE(X_HOSTFCMODE_STATUS_PAGE) |
3723 V_FW_EQ_CTRL_CMD_PCIECHN(eq->tx_chan) |
3724 F_FW_EQ_CTRL_CMD_FETCHRO | V_FW_EQ_CTRL_CMD_IQID(eq->iqid));
3725 c.dcaen_to_eqsize =
3726 htobe32(V_FW_EQ_CTRL_CMD_FBMIN(X_FETCHBURSTMIN_64B) |
3727 V_FW_EQ_CTRL_CMD_FBMAX(X_FETCHBURSTMAX_512B) |
3728 V_FW_EQ_CTRL_CMD_CIDXFTHRESH(qsize_to_fthresh(qsize)) |
3729 V_FW_EQ_CTRL_CMD_EQSIZE(qsize));
3730 c.eqaddr = htobe64(eq->ba);
3731
3732 rc = -t4_wr_mbox(sc, sc->mbox, &c, sizeof(c), &c);
3733 if (rc != 0) {
3734 device_printf(sc->dev,
3735 "failed to create control queue %d: %d\n", eq->tx_chan, rc);
3736 return (rc);
3737 }
3738 eq->flags |= EQ_ALLOCATED;
3739
3740 eq->cntxt_id = G_FW_EQ_CTRL_CMD_EQID(be32toh(c.cmpliqid_eqid));
3741 cntxt_id = eq->cntxt_id - sc->sge.eq_start;
3742 if (cntxt_id >= sc->sge.neq)
3743 panic("%s: eq->cntxt_id (%d) more than the max (%d)", __func__,
3744 cntxt_id, sc->sge.neq - 1);
3745 sc->sge.eqmap[cntxt_id] = eq;
3746
3747 return (rc);
3748 }
3749
3750 static int
eth_eq_alloc(struct adapter * sc,struct vi_info * vi,struct sge_eq * eq)3751 eth_eq_alloc(struct adapter *sc, struct vi_info *vi, struct sge_eq *eq)
3752 {
3753 int rc, cntxt_id;
3754 struct fw_eq_eth_cmd c;
3755 int qsize = eq->sidx + sc->params.sge.spg_len / EQ_ESIZE;
3756
3757 bzero(&c, sizeof(c));
3758
3759 c.op_to_vfn = htobe32(V_FW_CMD_OP(FW_EQ_ETH_CMD) | F_FW_CMD_REQUEST |
3760 F_FW_CMD_WRITE | F_FW_CMD_EXEC | V_FW_EQ_ETH_CMD_PFN(sc->pf) |
3761 V_FW_EQ_ETH_CMD_VFN(0));
3762 c.alloc_to_len16 = htobe32(F_FW_EQ_ETH_CMD_ALLOC |
3763 F_FW_EQ_ETH_CMD_EQSTART | FW_LEN16(c));
3764 c.autoequiqe_to_viid = htobe32(F_FW_EQ_ETH_CMD_AUTOEQUIQE |
3765 F_FW_EQ_ETH_CMD_AUTOEQUEQE | V_FW_EQ_ETH_CMD_VIID(vi->viid));
3766 c.fetchszm_to_iqid =
3767 htobe32(V_FW_EQ_ETH_CMD_HOSTFCMODE(X_HOSTFCMODE_NONE) |
3768 V_FW_EQ_ETH_CMD_PCIECHN(eq->tx_chan) | F_FW_EQ_ETH_CMD_FETCHRO |
3769 V_FW_EQ_ETH_CMD_IQID(eq->iqid));
3770 c.dcaen_to_eqsize = htobe32(V_FW_EQ_ETH_CMD_FBMIN(X_FETCHBURSTMIN_64B) |
3771 V_FW_EQ_ETH_CMD_FBMAX(X_FETCHBURSTMAX_512B) |
3772 V_FW_EQ_ETH_CMD_EQSIZE(qsize));
3773 c.eqaddr = htobe64(eq->ba);
3774
3775 rc = -t4_wr_mbox(sc, sc->mbox, &c, sizeof(c), &c);
3776 if (rc != 0) {
3777 device_printf(vi->dev,
3778 "failed to create Ethernet egress queue: %d\n", rc);
3779 return (rc);
3780 }
3781 eq->flags |= EQ_ALLOCATED;
3782
3783 eq->cntxt_id = G_FW_EQ_ETH_CMD_EQID(be32toh(c.eqid_pkd));
3784 eq->abs_id = G_FW_EQ_ETH_CMD_PHYSEQID(be32toh(c.physeqid_pkd));
3785 cntxt_id = eq->cntxt_id - sc->sge.eq_start;
3786 if (cntxt_id >= sc->sge.neq)
3787 panic("%s: eq->cntxt_id (%d) more than the max (%d)", __func__,
3788 cntxt_id, sc->sge.neq - 1);
3789 sc->sge.eqmap[cntxt_id] = eq;
3790
3791 return (rc);
3792 }
3793
3794 #if defined(TCP_OFFLOAD) || defined(RATELIMIT)
3795 static int
ofld_eq_alloc(struct adapter * sc,struct vi_info * vi,struct sge_eq * eq)3796 ofld_eq_alloc(struct adapter *sc, struct vi_info *vi, struct sge_eq *eq)
3797 {
3798 int rc, cntxt_id;
3799 struct fw_eq_ofld_cmd c;
3800 int qsize = eq->sidx + sc->params.sge.spg_len / EQ_ESIZE;
3801
3802 bzero(&c, sizeof(c));
3803
3804 c.op_to_vfn = htonl(V_FW_CMD_OP(FW_EQ_OFLD_CMD) | F_FW_CMD_REQUEST |
3805 F_FW_CMD_WRITE | F_FW_CMD_EXEC | V_FW_EQ_OFLD_CMD_PFN(sc->pf) |
3806 V_FW_EQ_OFLD_CMD_VFN(0));
3807 c.alloc_to_len16 = htonl(F_FW_EQ_OFLD_CMD_ALLOC |
3808 F_FW_EQ_OFLD_CMD_EQSTART | FW_LEN16(c));
3809 c.fetchszm_to_iqid =
3810 htonl(V_FW_EQ_OFLD_CMD_HOSTFCMODE(X_HOSTFCMODE_STATUS_PAGE) |
3811 V_FW_EQ_OFLD_CMD_PCIECHN(eq->tx_chan) |
3812 F_FW_EQ_OFLD_CMD_FETCHRO | V_FW_EQ_OFLD_CMD_IQID(eq->iqid));
3813 c.dcaen_to_eqsize =
3814 htobe32(V_FW_EQ_OFLD_CMD_FBMIN(X_FETCHBURSTMIN_64B) |
3815 V_FW_EQ_OFLD_CMD_FBMAX(X_FETCHBURSTMAX_512B) |
3816 V_FW_EQ_OFLD_CMD_CIDXFTHRESH(qsize_to_fthresh(qsize)) |
3817 V_FW_EQ_OFLD_CMD_EQSIZE(qsize));
3818 c.eqaddr = htobe64(eq->ba);
3819
3820 rc = -t4_wr_mbox(sc, sc->mbox, &c, sizeof(c), &c);
3821 if (rc != 0) {
3822 device_printf(vi->dev,
3823 "failed to create egress queue for TCP offload: %d\n", rc);
3824 return (rc);
3825 }
3826 eq->flags |= EQ_ALLOCATED;
3827
3828 eq->cntxt_id = G_FW_EQ_OFLD_CMD_EQID(be32toh(c.eqid_pkd));
3829 cntxt_id = eq->cntxt_id - sc->sge.eq_start;
3830 if (cntxt_id >= sc->sge.neq)
3831 panic("%s: eq->cntxt_id (%d) more than the max (%d)", __func__,
3832 cntxt_id, sc->sge.neq - 1);
3833 sc->sge.eqmap[cntxt_id] = eq;
3834
3835 return (rc);
3836 }
3837 #endif
3838
3839 static int
alloc_eq(struct adapter * sc,struct vi_info * vi,struct sge_eq * eq)3840 alloc_eq(struct adapter *sc, struct vi_info *vi, struct sge_eq *eq)
3841 {
3842 int rc, qsize;
3843 size_t len;
3844
3845 mtx_init(&eq->eq_lock, eq->lockname, NULL, MTX_DEF);
3846
3847 qsize = eq->sidx + sc->params.sge.spg_len / EQ_ESIZE;
3848 len = qsize * EQ_ESIZE;
3849 rc = alloc_ring(sc, len, &eq->desc_tag, &eq->desc_map,
3850 &eq->ba, (void **)&eq->desc);
3851 if (rc)
3852 return (rc);
3853
3854 eq->pidx = eq->cidx = eq->dbidx = 0;
3855 /* Note that equeqidx is not used with sge_wrq (OFLD/CTRL) queues. */
3856 eq->equeqidx = 0;
3857 eq->doorbells = sc->doorbells;
3858
3859 switch (eq->flags & EQ_TYPEMASK) {
3860 case EQ_CTRL:
3861 rc = ctrl_eq_alloc(sc, eq);
3862 break;
3863
3864 case EQ_ETH:
3865 rc = eth_eq_alloc(sc, vi, eq);
3866 break;
3867
3868 #if defined(TCP_OFFLOAD) || defined(RATELIMIT)
3869 case EQ_OFLD:
3870 rc = ofld_eq_alloc(sc, vi, eq);
3871 break;
3872 #endif
3873
3874 default:
3875 panic("%s: invalid eq type %d.", __func__,
3876 eq->flags & EQ_TYPEMASK);
3877 }
3878 if (rc != 0) {
3879 device_printf(sc->dev,
3880 "failed to allocate egress queue(%d): %d\n",
3881 eq->flags & EQ_TYPEMASK, rc);
3882 }
3883
3884 if (isset(&eq->doorbells, DOORBELL_UDB) ||
3885 isset(&eq->doorbells, DOORBELL_UDBWC) ||
3886 isset(&eq->doorbells, DOORBELL_WCWR)) {
3887 uint32_t s_qpp = sc->params.sge.eq_s_qpp;
3888 uint32_t mask = (1 << s_qpp) - 1;
3889 volatile uint8_t *udb;
3890
3891 udb = sc->udbs_base + UDBS_DB_OFFSET;
3892 udb += (eq->cntxt_id >> s_qpp) << PAGE_SHIFT; /* pg offset */
3893 eq->udb_qid = eq->cntxt_id & mask; /* id in page */
3894 if (eq->udb_qid >= PAGE_SIZE / UDBS_SEG_SIZE)
3895 clrbit(&eq->doorbells, DOORBELL_WCWR);
3896 else {
3897 udb += eq->udb_qid << UDBS_SEG_SHIFT; /* seg offset */
3898 eq->udb_qid = 0;
3899 }
3900 eq->udb = (volatile void *)udb;
3901 }
3902
3903 return (rc);
3904 }
3905
3906 static int
free_eq(struct adapter * sc,struct sge_eq * eq)3907 free_eq(struct adapter *sc, struct sge_eq *eq)
3908 {
3909 int rc;
3910
3911 if (eq->flags & EQ_ALLOCATED) {
3912 switch (eq->flags & EQ_TYPEMASK) {
3913 case EQ_CTRL:
3914 rc = -t4_ctrl_eq_free(sc, sc->mbox, sc->pf, 0,
3915 eq->cntxt_id);
3916 break;
3917
3918 case EQ_ETH:
3919 rc = -t4_eth_eq_free(sc, sc->mbox, sc->pf, 0,
3920 eq->cntxt_id);
3921 break;
3922
3923 #if defined(TCP_OFFLOAD) || defined(RATELIMIT)
3924 case EQ_OFLD:
3925 rc = -t4_ofld_eq_free(sc, sc->mbox, sc->pf, 0,
3926 eq->cntxt_id);
3927 break;
3928 #endif
3929
3930 default:
3931 panic("%s: invalid eq type %d.", __func__,
3932 eq->flags & EQ_TYPEMASK);
3933 }
3934 if (rc != 0) {
3935 device_printf(sc->dev,
3936 "failed to free egress queue (%d): %d\n",
3937 eq->flags & EQ_TYPEMASK, rc);
3938 return (rc);
3939 }
3940 eq->flags &= ~EQ_ALLOCATED;
3941 }
3942
3943 free_ring(sc, eq->desc_tag, eq->desc_map, eq->ba, eq->desc);
3944
3945 if (mtx_initialized(&eq->eq_lock))
3946 mtx_destroy(&eq->eq_lock);
3947
3948 bzero(eq, sizeof(*eq));
3949 return (0);
3950 }
3951
3952 static int
alloc_wrq(struct adapter * sc,struct vi_info * vi,struct sge_wrq * wrq,struct sysctl_oid * oid)3953 alloc_wrq(struct adapter *sc, struct vi_info *vi, struct sge_wrq *wrq,
3954 struct sysctl_oid *oid)
3955 {
3956 int rc;
3957 struct sysctl_ctx_list *ctx = vi ? &vi->ctx : &sc->ctx;
3958 struct sysctl_oid_list *children = SYSCTL_CHILDREN(oid);
3959
3960 rc = alloc_eq(sc, vi, &wrq->eq);
3961 if (rc)
3962 return (rc);
3963
3964 wrq->adapter = sc;
3965 TASK_INIT(&wrq->wrq_tx_task, 0, wrq_tx_drain, wrq);
3966 TAILQ_INIT(&wrq->incomplete_wrs);
3967 STAILQ_INIT(&wrq->wr_list);
3968 wrq->nwr_pending = 0;
3969 wrq->ndesc_needed = 0;
3970
3971 SYSCTL_ADD_UAUTO(ctx, children, OID_AUTO, "ba", CTLFLAG_RD,
3972 &wrq->eq.ba, "bus address of descriptor ring");
3973 SYSCTL_ADD_INT(ctx, children, OID_AUTO, "dmalen", CTLFLAG_RD, NULL,
3974 wrq->eq.sidx * EQ_ESIZE + sc->params.sge.spg_len,
3975 "desc ring size in bytes");
3976 SYSCTL_ADD_UINT(ctx, children, OID_AUTO, "cntxt_id", CTLFLAG_RD,
3977 &wrq->eq.cntxt_id, 0, "SGE context id of the queue");
3978 SYSCTL_ADD_PROC(ctx, children, OID_AUTO, "cidx",
3979 CTLTYPE_INT | CTLFLAG_RD, &wrq->eq.cidx, 0, sysctl_uint16, "I",
3980 "consumer index");
3981 SYSCTL_ADD_PROC(ctx, children, OID_AUTO, "pidx",
3982 CTLTYPE_INT | CTLFLAG_RD, &wrq->eq.pidx, 0, sysctl_uint16, "I",
3983 "producer index");
3984 SYSCTL_ADD_INT(ctx, children, OID_AUTO, "sidx", CTLFLAG_RD, NULL,
3985 wrq->eq.sidx, "status page index");
3986 SYSCTL_ADD_UQUAD(ctx, children, OID_AUTO, "tx_wrs_direct", CTLFLAG_RD,
3987 &wrq->tx_wrs_direct, "# of work requests (direct)");
3988 SYSCTL_ADD_UQUAD(ctx, children, OID_AUTO, "tx_wrs_copied", CTLFLAG_RD,
3989 &wrq->tx_wrs_copied, "# of work requests (copied)");
3990 SYSCTL_ADD_UQUAD(ctx, children, OID_AUTO, "tx_wrs_sspace", CTLFLAG_RD,
3991 &wrq->tx_wrs_ss, "# of work requests (copied from scratch space)");
3992
3993 return (rc);
3994 }
3995
3996 static int
free_wrq(struct adapter * sc,struct sge_wrq * wrq)3997 free_wrq(struct adapter *sc, struct sge_wrq *wrq)
3998 {
3999 int rc;
4000
4001 rc = free_eq(sc, &wrq->eq);
4002 if (rc)
4003 return (rc);
4004
4005 bzero(wrq, sizeof(*wrq));
4006 return (0);
4007 }
4008
4009 static int
alloc_txq(struct vi_info * vi,struct sge_txq * txq,int idx,struct sysctl_oid * oid)4010 alloc_txq(struct vi_info *vi, struct sge_txq *txq, int idx,
4011 struct sysctl_oid *oid)
4012 {
4013 int rc;
4014 struct port_info *pi = vi->pi;
4015 struct adapter *sc = pi->adapter;
4016 struct sge_eq *eq = &txq->eq;
4017 char name[16];
4018 struct sysctl_oid_list *children = SYSCTL_CHILDREN(oid);
4019
4020 rc = mp_ring_alloc(&txq->r, eq->sidx, txq, eth_tx, can_resume_eth_tx,
4021 M_CXGBE, M_WAITOK);
4022 if (rc != 0) {
4023 device_printf(sc->dev, "failed to allocate mp_ring: %d\n", rc);
4024 return (rc);
4025 }
4026
4027 rc = alloc_eq(sc, vi, eq);
4028 if (rc != 0) {
4029 mp_ring_free(txq->r);
4030 txq->r = NULL;
4031 return (rc);
4032 }
4033
4034 /* Can't fail after this point. */
4035
4036 if (idx == 0)
4037 sc->sge.eq_base = eq->abs_id - eq->cntxt_id;
4038 else
4039 KASSERT(eq->cntxt_id + sc->sge.eq_base == eq->abs_id,
4040 ("eq_base mismatch"));
4041 KASSERT(sc->sge.eq_base == 0 || sc->flags & IS_VF,
4042 ("PF with non-zero eq_base"));
4043
4044 TASK_INIT(&txq->tx_reclaim_task, 0, tx_reclaim, eq);
4045 txq->ifp = vi->ifp;
4046 txq->gl = sglist_alloc(TX_SGL_SEGS, M_WAITOK);
4047 if (sc->flags & IS_VF)
4048 txq->cpl_ctrl0 = htobe32(V_TXPKT_OPCODE(CPL_TX_PKT_XT) |
4049 V_TXPKT_INTF(pi->tx_chan));
4050 else
4051 txq->cpl_ctrl0 = htobe32(V_TXPKT_OPCODE(CPL_TX_PKT) |
4052 V_TXPKT_INTF(pi->tx_chan) | V_TXPKT_PF(sc->pf) |
4053 V_TXPKT_VF(vi->vin) | V_TXPKT_VF_VLD(vi->vfvld));
4054 txq->tc_idx = -1;
4055 txq->sdesc = malloc(eq->sidx * sizeof(struct tx_sdesc), M_CXGBE,
4056 M_ZERO | M_WAITOK);
4057
4058 snprintf(name, sizeof(name), "%d", idx);
4059 oid = SYSCTL_ADD_NODE(&vi->ctx, children, OID_AUTO, name, CTLFLAG_RD,
4060 NULL, "tx queue");
4061 children = SYSCTL_CHILDREN(oid);
4062
4063 SYSCTL_ADD_UAUTO(&vi->ctx, children, OID_AUTO, "ba", CTLFLAG_RD,
4064 &eq->ba, "bus address of descriptor ring");
4065 SYSCTL_ADD_INT(&vi->ctx, children, OID_AUTO, "dmalen", CTLFLAG_RD, NULL,
4066 eq->sidx * EQ_ESIZE + sc->params.sge.spg_len,
4067 "desc ring size in bytes");
4068 SYSCTL_ADD_UINT(&vi->ctx, children, OID_AUTO, "abs_id", CTLFLAG_RD,
4069 &eq->abs_id, 0, "absolute id of the queue");
4070 SYSCTL_ADD_UINT(&vi->ctx, children, OID_AUTO, "cntxt_id", CTLFLAG_RD,
4071 &eq->cntxt_id, 0, "SGE context id of the queue");
4072 SYSCTL_ADD_PROC(&vi->ctx, children, OID_AUTO, "cidx",
4073 CTLTYPE_INT | CTLFLAG_RD, &eq->cidx, 0, sysctl_uint16, "I",
4074 "consumer index");
4075 SYSCTL_ADD_PROC(&vi->ctx, children, OID_AUTO, "pidx",
4076 CTLTYPE_INT | CTLFLAG_RD, &eq->pidx, 0, sysctl_uint16, "I",
4077 "producer index");
4078 SYSCTL_ADD_INT(&vi->ctx, children, OID_AUTO, "sidx", CTLFLAG_RD, NULL,
4079 eq->sidx, "status page index");
4080
4081 SYSCTL_ADD_PROC(&vi->ctx, children, OID_AUTO, "tc",
4082 CTLTYPE_INT | CTLFLAG_RW, vi, idx, sysctl_tc, "I",
4083 "traffic class (-1 means none)");
4084
4085 SYSCTL_ADD_UQUAD(&vi->ctx, children, OID_AUTO, "txcsum", CTLFLAG_RD,
4086 &txq->txcsum, "# of times hardware assisted with checksum");
4087 SYSCTL_ADD_UQUAD(&vi->ctx, children, OID_AUTO, "vlan_insertion",
4088 CTLFLAG_RD, &txq->vlan_insertion,
4089 "# of times hardware inserted 802.1Q tag");
4090 SYSCTL_ADD_UQUAD(&vi->ctx, children, OID_AUTO, "tso_wrs", CTLFLAG_RD,
4091 &txq->tso_wrs, "# of TSO work requests");
4092 SYSCTL_ADD_UQUAD(&vi->ctx, children, OID_AUTO, "imm_wrs", CTLFLAG_RD,
4093 &txq->imm_wrs, "# of work requests with immediate data");
4094 SYSCTL_ADD_UQUAD(&vi->ctx, children, OID_AUTO, "sgl_wrs", CTLFLAG_RD,
4095 &txq->sgl_wrs, "# of work requests with direct SGL");
4096 SYSCTL_ADD_UQUAD(&vi->ctx, children, OID_AUTO, "txpkt_wrs", CTLFLAG_RD,
4097 &txq->txpkt_wrs, "# of txpkt work requests (one pkt/WR)");
4098 SYSCTL_ADD_UQUAD(&vi->ctx, children, OID_AUTO, "txpkts0_wrs",
4099 CTLFLAG_RD, &txq->txpkts0_wrs,
4100 "# of txpkts (type 0) work requests");
4101 SYSCTL_ADD_UQUAD(&vi->ctx, children, OID_AUTO, "txpkts1_wrs",
4102 CTLFLAG_RD, &txq->txpkts1_wrs,
4103 "# of txpkts (type 1) work requests");
4104 SYSCTL_ADD_UQUAD(&vi->ctx, children, OID_AUTO, "txpkts0_pkts",
4105 CTLFLAG_RD, &txq->txpkts0_pkts,
4106 "# of frames tx'd using type0 txpkts work requests");
4107 SYSCTL_ADD_UQUAD(&vi->ctx, children, OID_AUTO, "txpkts1_pkts",
4108 CTLFLAG_RD, &txq->txpkts1_pkts,
4109 "# of frames tx'd using type1 txpkts work requests");
4110 SYSCTL_ADD_UQUAD(&vi->ctx, children, OID_AUTO, "raw_wrs", CTLFLAG_RD,
4111 &txq->raw_wrs, "# of raw work requests (non-packets)");
4112
4113 SYSCTL_ADD_COUNTER_U64(&vi->ctx, children, OID_AUTO, "r_enqueues",
4114 CTLFLAG_RD, &txq->r->enqueues,
4115 "# of enqueues to the mp_ring for this queue");
4116 SYSCTL_ADD_COUNTER_U64(&vi->ctx, children, OID_AUTO, "r_drops",
4117 CTLFLAG_RD, &txq->r->drops,
4118 "# of drops in the mp_ring for this queue");
4119 SYSCTL_ADD_COUNTER_U64(&vi->ctx, children, OID_AUTO, "r_starts",
4120 CTLFLAG_RD, &txq->r->starts,
4121 "# of normal consumer starts in the mp_ring for this queue");
4122 SYSCTL_ADD_COUNTER_U64(&vi->ctx, children, OID_AUTO, "r_stalls",
4123 CTLFLAG_RD, &txq->r->stalls,
4124 "# of consumer stalls in the mp_ring for this queue");
4125 SYSCTL_ADD_COUNTER_U64(&vi->ctx, children, OID_AUTO, "r_restarts",
4126 CTLFLAG_RD, &txq->r->restarts,
4127 "# of consumer restarts in the mp_ring for this queue");
4128 SYSCTL_ADD_COUNTER_U64(&vi->ctx, children, OID_AUTO, "r_abdications",
4129 CTLFLAG_RD, &txq->r->abdications,
4130 "# of consumer abdications in the mp_ring for this queue");
4131
4132 return (0);
4133 }
4134
4135 static int
free_txq(struct vi_info * vi,struct sge_txq * txq)4136 free_txq(struct vi_info *vi, struct sge_txq *txq)
4137 {
4138 int rc;
4139 struct adapter *sc = vi->pi->adapter;
4140 struct sge_eq *eq = &txq->eq;
4141
4142 rc = free_eq(sc, eq);
4143 if (rc)
4144 return (rc);
4145
4146 sglist_free(txq->gl);
4147 free(txq->sdesc, M_CXGBE);
4148 mp_ring_free(txq->r);
4149
4150 bzero(txq, sizeof(*txq));
4151 return (0);
4152 }
4153
4154 static void
oneseg_dma_callback(void * arg,bus_dma_segment_t * segs,int nseg,int error)4155 oneseg_dma_callback(void *arg, bus_dma_segment_t *segs, int nseg, int error)
4156 {
4157 bus_addr_t *ba = arg;
4158
4159 KASSERT(nseg == 1,
4160 ("%s meant for single segment mappings only.", __func__));
4161
4162 *ba = error ? 0 : segs->ds_addr;
4163 }
4164
4165 static inline void
ring_fl_db(struct adapter * sc,struct sge_fl * fl)4166 ring_fl_db(struct adapter *sc, struct sge_fl *fl)
4167 {
4168 uint32_t n, v;
4169
4170 n = IDXDIFF(fl->pidx / 8, fl->dbidx, fl->sidx);
4171 MPASS(n > 0);
4172
4173 wmb();
4174 v = fl->dbval | V_PIDX(n);
4175 if (fl->udb)
4176 *fl->udb = htole32(v);
4177 else
4178 t4_write_reg(sc, sc->sge_kdoorbell_reg, v);
4179 IDXINCR(fl->dbidx, n, fl->sidx);
4180 }
4181
4182 /*
4183 * Fills up the freelist by allocating up to 'n' buffers. Buffers that are
4184 * recycled do not count towards this allocation budget.
4185 *
4186 * Returns non-zero to indicate that this freelist should be added to the list
4187 * of starving freelists.
4188 */
4189 static int
refill_fl(struct adapter * sc,struct sge_fl * fl,int n)4190 refill_fl(struct adapter *sc, struct sge_fl *fl, int n)
4191 {
4192 __be64 *d;
4193 struct fl_sdesc *sd;
4194 uintptr_t pa;
4195 caddr_t cl;
4196 struct cluster_layout *cll;
4197 struct sw_zone_info *swz;
4198 struct cluster_metadata *clm;
4199 uint16_t max_pidx;
4200 uint16_t hw_cidx = fl->hw_cidx; /* stable snapshot */
4201
4202 FL_LOCK_ASSERT_OWNED(fl);
4203
4204 /*
4205 * We always stop at the beginning of the hardware descriptor that's just
4206 * before the one with the hw cidx. This is to avoid hw pidx = hw cidx,
4207 * which would mean an empty freelist to the chip.
4208 */
4209 max_pidx = __predict_false(hw_cidx == 0) ? fl->sidx - 1 : hw_cidx - 1;
4210 if (fl->pidx == max_pidx * 8)
4211 return (0);
4212
4213 d = &fl->desc[fl->pidx];
4214 sd = &fl->sdesc[fl->pidx];
4215 cll = &fl->cll_def; /* default layout */
4216 swz = &sc->sge.sw_zone_info[cll->zidx];
4217
4218 while (n > 0) {
4219
4220 if (sd->cl != NULL) {
4221
4222 if (sd->nmbuf == 0) {
4223 /*
4224 * Fast recycle without involving any atomics on
4225 * the cluster's metadata (if the cluster has
4226 * metadata). This happens when all frames
4227 * received in the cluster were small enough to
4228 * fit within a single mbuf each.
4229 */
4230 fl->cl_fast_recycled++;
4231 #ifdef INVARIANTS
4232 clm = cl_metadata(sc, fl, &sd->cll, sd->cl);
4233 if (clm != NULL)
4234 MPASS(clm->refcount == 1);
4235 #endif
4236 goto recycled_fast;
4237 }
4238
4239 /*
4240 * Cluster is guaranteed to have metadata. Clusters
4241 * without metadata always take the fast recycle path
4242 * when they're recycled.
4243 */
4244 clm = cl_metadata(sc, fl, &sd->cll, sd->cl);
4245 MPASS(clm != NULL);
4246
4247 if (atomic_fetchadd_int(&clm->refcount, -1) == 1) {
4248 fl->cl_recycled++;
4249 counter_u64_add(extfree_rels, 1);
4250 goto recycled;
4251 }
4252 sd->cl = NULL; /* gave up my reference */
4253 }
4254 MPASS(sd->cl == NULL);
4255 alloc:
4256 cl = uma_zalloc(swz->zone, M_NOWAIT);
4257 if (__predict_false(cl == NULL)) {
4258 if (cll == &fl->cll_alt || fl->cll_alt.zidx == -1 ||
4259 fl->cll_def.zidx == fl->cll_alt.zidx)
4260 break;
4261
4262 /* fall back to the safe zone */
4263 cll = &fl->cll_alt;
4264 swz = &sc->sge.sw_zone_info[cll->zidx];
4265 goto alloc;
4266 }
4267 fl->cl_allocated++;
4268 n--;
4269
4270 pa = pmap_kextract((vm_offset_t)cl);
4271 pa += cll->region1;
4272 sd->cl = cl;
4273 sd->cll = *cll;
4274 *d = htobe64(pa | cll->hwidx);
4275 clm = cl_metadata(sc, fl, cll, cl);
4276 if (clm != NULL) {
4277 recycled:
4278 #ifdef INVARIANTS
4279 clm->sd = sd;
4280 #endif
4281 clm->refcount = 1;
4282 }
4283 sd->nmbuf = 0;
4284 recycled_fast:
4285 d++;
4286 sd++;
4287 if (__predict_false(++fl->pidx % 8 == 0)) {
4288 uint16_t pidx = fl->pidx / 8;
4289
4290 if (__predict_false(pidx == fl->sidx)) {
4291 fl->pidx = 0;
4292 pidx = 0;
4293 sd = fl->sdesc;
4294 d = fl->desc;
4295 }
4296 if (pidx == max_pidx)
4297 break;
4298
4299 if (IDXDIFF(pidx, fl->dbidx, fl->sidx) >= 4)
4300 ring_fl_db(sc, fl);
4301 }
4302 }
4303
4304 if (fl->pidx / 8 != fl->dbidx)
4305 ring_fl_db(sc, fl);
4306
4307 return (FL_RUNNING_LOW(fl) && !(fl->flags & FL_STARVING));
4308 }
4309
4310 /*
4311 * Attempt to refill all starving freelists.
4312 */
4313 static void
refill_sfl(void * arg)4314 refill_sfl(void *arg)
4315 {
4316 struct adapter *sc = arg;
4317 struct sge_fl *fl, *fl_temp;
4318
4319 mtx_assert(&sc->sfl_lock, MA_OWNED);
4320 TAILQ_FOREACH_SAFE(fl, &sc->sfl, link, fl_temp) {
4321 FL_LOCK(fl);
4322 refill_fl(sc, fl, 64);
4323 if (FL_NOT_RUNNING_LOW(fl) || fl->flags & FL_DOOMED) {
4324 TAILQ_REMOVE(&sc->sfl, fl, link);
4325 fl->flags &= ~FL_STARVING;
4326 }
4327 FL_UNLOCK(fl);
4328 }
4329
4330 if (!TAILQ_EMPTY(&sc->sfl))
4331 callout_schedule(&sc->sfl_callout, hz / 5);
4332 }
4333
4334 static int
alloc_fl_sdesc(struct sge_fl * fl)4335 alloc_fl_sdesc(struct sge_fl *fl)
4336 {
4337
4338 fl->sdesc = malloc(fl->sidx * 8 * sizeof(struct fl_sdesc), M_CXGBE,
4339 M_ZERO | M_WAITOK);
4340
4341 return (0);
4342 }
4343
4344 static void
free_fl_sdesc(struct adapter * sc,struct sge_fl * fl)4345 free_fl_sdesc(struct adapter *sc, struct sge_fl *fl)
4346 {
4347 struct fl_sdesc *sd;
4348 struct cluster_metadata *clm;
4349 struct cluster_layout *cll;
4350 int i;
4351
4352 sd = fl->sdesc;
4353 for (i = 0; i < fl->sidx * 8; i++, sd++) {
4354 if (sd->cl == NULL)
4355 continue;
4356
4357 cll = &sd->cll;
4358 clm = cl_metadata(sc, fl, cll, sd->cl);
4359 if (sd->nmbuf == 0)
4360 uma_zfree(sc->sge.sw_zone_info[cll->zidx].zone, sd->cl);
4361 else if (clm && atomic_fetchadd_int(&clm->refcount, -1) == 1) {
4362 uma_zfree(sc->sge.sw_zone_info[cll->zidx].zone, sd->cl);
4363 counter_u64_add(extfree_rels, 1);
4364 }
4365 sd->cl = NULL;
4366 }
4367
4368 free(fl->sdesc, M_CXGBE);
4369 fl->sdesc = NULL;
4370 }
4371
4372 static inline void
get_pkt_gl(struct mbuf * m,struct sglist * gl)4373 get_pkt_gl(struct mbuf *m, struct sglist *gl)
4374 {
4375 int rc;
4376
4377 M_ASSERTPKTHDR(m);
4378
4379 sglist_reset(gl);
4380 rc = sglist_append_mbuf(gl, m);
4381 if (__predict_false(rc != 0)) {
4382 panic("%s: mbuf %p (%d segs) was vetted earlier but now fails "
4383 "with %d.", __func__, m, mbuf_nsegs(m), rc);
4384 }
4385
4386 KASSERT(gl->sg_nseg == mbuf_nsegs(m),
4387 ("%s: nsegs changed for mbuf %p from %d to %d", __func__, m,
4388 mbuf_nsegs(m), gl->sg_nseg));
4389 KASSERT(gl->sg_nseg > 0 &&
4390 gl->sg_nseg <= (needs_tso(m) ? TX_SGL_SEGS_TSO : TX_SGL_SEGS),
4391 ("%s: %d segments, should have been 1 <= nsegs <= %d", __func__,
4392 gl->sg_nseg, needs_tso(m) ? TX_SGL_SEGS_TSO : TX_SGL_SEGS));
4393 }
4394
4395 /*
4396 * len16 for a txpkt WR with a GL. Includes the firmware work request header.
4397 */
4398 static inline u_int
txpkt_len16(u_int nsegs,u_int tso)4399 txpkt_len16(u_int nsegs, u_int tso)
4400 {
4401 u_int n;
4402
4403 MPASS(nsegs > 0);
4404
4405 nsegs--; /* first segment is part of ulptx_sgl */
4406 n = sizeof(struct fw_eth_tx_pkt_wr) + sizeof(struct cpl_tx_pkt_core) +
4407 sizeof(struct ulptx_sgl) + 8 * ((3 * nsegs) / 2 + (nsegs & 1));
4408 if (tso)
4409 n += sizeof(struct cpl_tx_pkt_lso_core);
4410
4411 return (howmany(n, 16));
4412 }
4413
4414 /*
4415 * len16 for a txpkt_vm WR with a GL. Includes the firmware work
4416 * request header.
4417 */
4418 static inline u_int
txpkt_vm_len16(u_int nsegs,u_int tso)4419 txpkt_vm_len16(u_int nsegs, u_int tso)
4420 {
4421 u_int n;
4422
4423 MPASS(nsegs > 0);
4424
4425 nsegs--; /* first segment is part of ulptx_sgl */
4426 n = sizeof(struct fw_eth_tx_pkt_vm_wr) +
4427 sizeof(struct cpl_tx_pkt_core) +
4428 sizeof(struct ulptx_sgl) + 8 * ((3 * nsegs) / 2 + (nsegs & 1));
4429 if (tso)
4430 n += sizeof(struct cpl_tx_pkt_lso_core);
4431
4432 return (howmany(n, 16));
4433 }
4434
4435 /*
4436 * len16 for a txpkts type 0 WR with a GL. Does not include the firmware work
4437 * request header.
4438 */
4439 static inline u_int
txpkts0_len16(u_int nsegs)4440 txpkts0_len16(u_int nsegs)
4441 {
4442 u_int n;
4443
4444 MPASS(nsegs > 0);
4445
4446 nsegs--; /* first segment is part of ulptx_sgl */
4447 n = sizeof(struct ulp_txpkt) + sizeof(struct ulptx_idata) +
4448 sizeof(struct cpl_tx_pkt_core) + sizeof(struct ulptx_sgl) +
4449 8 * ((3 * nsegs) / 2 + (nsegs & 1));
4450
4451 return (howmany(n, 16));
4452 }
4453
4454 /*
4455 * len16 for a txpkts type 1 WR with a GL. Does not include the firmware work
4456 * request header.
4457 */
4458 static inline u_int
txpkts1_len16(void)4459 txpkts1_len16(void)
4460 {
4461 u_int n;
4462
4463 n = sizeof(struct cpl_tx_pkt_core) + sizeof(struct ulptx_sgl);
4464
4465 return (howmany(n, 16));
4466 }
4467
4468 static inline u_int
imm_payload(u_int ndesc)4469 imm_payload(u_int ndesc)
4470 {
4471 u_int n;
4472
4473 n = ndesc * EQ_ESIZE - sizeof(struct fw_eth_tx_pkt_wr) -
4474 sizeof(struct cpl_tx_pkt_core);
4475
4476 return (n);
4477 }
4478
4479 /*
4480 * Write a VM txpkt WR for this packet to the hardware descriptors, update the
4481 * software descriptor, and advance the pidx. It is guaranteed that enough
4482 * descriptors are available.
4483 *
4484 * The return value is the # of hardware descriptors used.
4485 */
4486 static u_int
write_txpkt_vm_wr(struct adapter * sc,struct sge_txq * txq,struct fw_eth_tx_pkt_vm_wr * wr,struct mbuf * m0,u_int available)4487 write_txpkt_vm_wr(struct adapter *sc, struct sge_txq *txq,
4488 struct fw_eth_tx_pkt_vm_wr *wr, struct mbuf *m0, u_int available)
4489 {
4490 struct sge_eq *eq = &txq->eq;
4491 struct tx_sdesc *txsd;
4492 struct cpl_tx_pkt_core *cpl;
4493 uint32_t ctrl; /* used in many unrelated places */
4494 uint64_t ctrl1;
4495 int csum_type, len16, ndesc, pktlen, nsegs;
4496 caddr_t dst;
4497
4498 TXQ_LOCK_ASSERT_OWNED(txq);
4499 M_ASSERTPKTHDR(m0);
4500 MPASS(available > 0 && available < eq->sidx);
4501
4502 len16 = mbuf_len16(m0);
4503 nsegs = mbuf_nsegs(m0);
4504 pktlen = m0->m_pkthdr.len;
4505 ctrl = sizeof(struct cpl_tx_pkt_core);
4506 if (needs_tso(m0))
4507 ctrl += sizeof(struct cpl_tx_pkt_lso_core);
4508 ndesc = howmany(len16, EQ_ESIZE / 16);
4509 MPASS(ndesc <= available);
4510
4511 /* Firmware work request header */
4512 MPASS(wr == (void *)&eq->desc[eq->pidx]);
4513 wr->op_immdlen = htobe32(V_FW_WR_OP(FW_ETH_TX_PKT_VM_WR) |
4514 V_FW_ETH_TX_PKT_WR_IMMDLEN(ctrl));
4515
4516 ctrl = V_FW_WR_LEN16(len16);
4517 wr->equiq_to_len16 = htobe32(ctrl);
4518 wr->r3[0] = 0;
4519 wr->r3[1] = 0;
4520
4521 /*
4522 * Copy over ethmacdst, ethmacsrc, ethtype, and vlantci.
4523 * vlantci is ignored unless the ethtype is 0x8100, so it's
4524 * simpler to always copy it rather than making it
4525 * conditional. Also, it seems that we do not have to set
4526 * vlantci or fake the ethtype when doing VLAN tag insertion.
4527 */
4528 m_copydata(m0, 0, sizeof(struct ether_header) + 2, wr->ethmacdst);
4529
4530 csum_type = -1;
4531 if (needs_tso(m0)) {
4532 struct cpl_tx_pkt_lso_core *lso = (void *)(wr + 1);
4533
4534 KASSERT(m0->m_pkthdr.l2hlen > 0 && m0->m_pkthdr.l3hlen > 0 &&
4535 m0->m_pkthdr.l4hlen > 0,
4536 ("%s: mbuf %p needs TSO but missing header lengths",
4537 __func__, m0));
4538
4539 ctrl = V_LSO_OPCODE(CPL_TX_PKT_LSO) | F_LSO_FIRST_SLICE |
4540 F_LSO_LAST_SLICE | V_LSO_IPHDR_LEN(m0->m_pkthdr.l3hlen >> 2)
4541 | V_LSO_TCPHDR_LEN(m0->m_pkthdr.l4hlen >> 2);
4542 if (m0->m_pkthdr.l2hlen == sizeof(struct ether_vlan_header))
4543 ctrl |= V_LSO_ETHHDR_LEN(1);
4544 if (m0->m_pkthdr.l3hlen == sizeof(struct ip6_hdr))
4545 ctrl |= F_LSO_IPV6;
4546
4547 lso->lso_ctrl = htobe32(ctrl);
4548 lso->ipid_ofst = htobe16(0);
4549 lso->mss = htobe16(m0->m_pkthdr.tso_segsz);
4550 lso->seqno_offset = htobe32(0);
4551 lso->len = htobe32(pktlen);
4552
4553 if (m0->m_pkthdr.l3hlen == sizeof(struct ip6_hdr))
4554 csum_type = TX_CSUM_TCPIP6;
4555 else
4556 csum_type = TX_CSUM_TCPIP;
4557
4558 cpl = (void *)(lso + 1);
4559
4560 txq->tso_wrs++;
4561 } else {
4562 if (m0->m_pkthdr.csum_flags & CSUM_IP_TCP)
4563 csum_type = TX_CSUM_TCPIP;
4564 else if (m0->m_pkthdr.csum_flags & CSUM_IP_UDP)
4565 csum_type = TX_CSUM_UDPIP;
4566 else if (m0->m_pkthdr.csum_flags & CSUM_IP6_TCP)
4567 csum_type = TX_CSUM_TCPIP6;
4568 else if (m0->m_pkthdr.csum_flags & CSUM_IP6_UDP)
4569 csum_type = TX_CSUM_UDPIP6;
4570 #if defined(INET)
4571 else if (m0->m_pkthdr.csum_flags & CSUM_IP) {
4572 /*
4573 * XXX: The firmware appears to stomp on the
4574 * fragment/flags field of the IP header when
4575 * using TX_CSUM_IP. Fall back to doing
4576 * software checksums.
4577 */
4578 u_short *sump;
4579 struct mbuf *m;
4580 int offset;
4581
4582 m = m0;
4583 offset = 0;
4584 sump = m_advance(&m, &offset, m0->m_pkthdr.l2hlen +
4585 offsetof(struct ip, ip_sum));
4586 *sump = in_cksum_skip(m0, m0->m_pkthdr.l2hlen +
4587 m0->m_pkthdr.l3hlen, m0->m_pkthdr.l2hlen);
4588 m0->m_pkthdr.csum_flags &= ~CSUM_IP;
4589 }
4590 #endif
4591
4592 cpl = (void *)(wr + 1);
4593 }
4594
4595 /* Checksum offload */
4596 ctrl1 = 0;
4597 if (needs_l3_csum(m0) == 0)
4598 ctrl1 |= F_TXPKT_IPCSUM_DIS;
4599 if (csum_type >= 0) {
4600 KASSERT(m0->m_pkthdr.l2hlen > 0 && m0->m_pkthdr.l3hlen > 0,
4601 ("%s: mbuf %p needs checksum offload but missing header lengths",
4602 __func__, m0));
4603
4604 if (chip_id(sc) <= CHELSIO_T5) {
4605 ctrl1 |= V_TXPKT_ETHHDR_LEN(m0->m_pkthdr.l2hlen -
4606 ETHER_HDR_LEN);
4607 } else {
4608 ctrl1 |= V_T6_TXPKT_ETHHDR_LEN(m0->m_pkthdr.l2hlen -
4609 ETHER_HDR_LEN);
4610 }
4611 ctrl1 |= V_TXPKT_IPHDR_LEN(m0->m_pkthdr.l3hlen);
4612 ctrl1 |= V_TXPKT_CSUM_TYPE(csum_type);
4613 } else
4614 ctrl1 |= F_TXPKT_L4CSUM_DIS;
4615 if (m0->m_pkthdr.csum_flags & (CSUM_IP | CSUM_TCP | CSUM_UDP |
4616 CSUM_UDP_IPV6 | CSUM_TCP_IPV6 | CSUM_TSO))
4617 txq->txcsum++; /* some hardware assistance provided */
4618
4619 /* VLAN tag insertion */
4620 if (needs_vlan_insertion(m0)) {
4621 ctrl1 |= F_TXPKT_VLAN_VLD |
4622 V_TXPKT_VLAN(m0->m_pkthdr.ether_vtag);
4623 txq->vlan_insertion++;
4624 }
4625
4626 /* CPL header */
4627 cpl->ctrl0 = txq->cpl_ctrl0;
4628 cpl->pack = 0;
4629 cpl->len = htobe16(pktlen);
4630 cpl->ctrl1 = htobe64(ctrl1);
4631
4632 /* SGL */
4633 dst = (void *)(cpl + 1);
4634
4635 /*
4636 * A packet using TSO will use up an entire descriptor for the
4637 * firmware work request header, LSO CPL, and TX_PKT_XT CPL.
4638 * If this descriptor is the last descriptor in the ring, wrap
4639 * around to the front of the ring explicitly for the start of
4640 * the sgl.
4641 */
4642 if (dst == (void *)&eq->desc[eq->sidx]) {
4643 dst = (void *)&eq->desc[0];
4644 write_gl_to_txd(txq, m0, &dst, 0);
4645 } else
4646 write_gl_to_txd(txq, m0, &dst, eq->sidx - ndesc < eq->pidx);
4647 txq->sgl_wrs++;
4648
4649 txq->txpkt_wrs++;
4650
4651 txsd = &txq->sdesc[eq->pidx];
4652 txsd->m = m0;
4653 txsd->desc_used = ndesc;
4654
4655 return (ndesc);
4656 }
4657
4658 /*
4659 * Write a raw WR to the hardware descriptors, update the software
4660 * descriptor, and advance the pidx. It is guaranteed that enough
4661 * descriptors are available.
4662 *
4663 * The return value is the # of hardware descriptors used.
4664 */
4665 static u_int
write_raw_wr(struct sge_txq * txq,void * wr,struct mbuf * m0,u_int available)4666 write_raw_wr(struct sge_txq *txq, void *wr, struct mbuf *m0, u_int available)
4667 {
4668 struct sge_eq *eq = &txq->eq;
4669 struct tx_sdesc *txsd;
4670 struct mbuf *m;
4671 caddr_t dst;
4672 int len16, ndesc;
4673
4674 len16 = mbuf_len16(m0);
4675 ndesc = howmany(len16, EQ_ESIZE / 16);
4676 MPASS(ndesc <= available);
4677
4678 dst = wr;
4679 for (m = m0; m != NULL; m = m->m_next)
4680 copy_to_txd(eq, mtod(m, caddr_t), &dst, m->m_len);
4681
4682 txq->raw_wrs++;
4683
4684 txsd = &txq->sdesc[eq->pidx];
4685 txsd->m = m0;
4686 txsd->desc_used = ndesc;
4687
4688 return (ndesc);
4689 }
4690
4691 /*
4692 * Write a txpkt WR for this packet to the hardware descriptors, update the
4693 * software descriptor, and advance the pidx. It is guaranteed that enough
4694 * descriptors are available.
4695 *
4696 * The return value is the # of hardware descriptors used.
4697 */
4698 static u_int
write_txpkt_wr(struct sge_txq * txq,struct fw_eth_tx_pkt_wr * wr,struct mbuf * m0,u_int available)4699 write_txpkt_wr(struct sge_txq *txq, struct fw_eth_tx_pkt_wr *wr,
4700 struct mbuf *m0, u_int available)
4701 {
4702 struct sge_eq *eq = &txq->eq;
4703 struct tx_sdesc *txsd;
4704 struct cpl_tx_pkt_core *cpl;
4705 uint32_t ctrl; /* used in many unrelated places */
4706 uint64_t ctrl1;
4707 int len16, ndesc, pktlen, nsegs;
4708 caddr_t dst;
4709
4710 TXQ_LOCK_ASSERT_OWNED(txq);
4711 M_ASSERTPKTHDR(m0);
4712 MPASS(available > 0 && available < eq->sidx);
4713
4714 len16 = mbuf_len16(m0);
4715 nsegs = mbuf_nsegs(m0);
4716 pktlen = m0->m_pkthdr.len;
4717 ctrl = sizeof(struct cpl_tx_pkt_core);
4718 if (needs_tso(m0))
4719 ctrl += sizeof(struct cpl_tx_pkt_lso_core);
4720 else if (pktlen <= imm_payload(2) && available >= 2) {
4721 /* Immediate data. Recalculate len16 and set nsegs to 0. */
4722 ctrl += pktlen;
4723 len16 = howmany(sizeof(struct fw_eth_tx_pkt_wr) +
4724 sizeof(struct cpl_tx_pkt_core) + pktlen, 16);
4725 nsegs = 0;
4726 }
4727 ndesc = howmany(len16, EQ_ESIZE / 16);
4728 MPASS(ndesc <= available);
4729
4730 /* Firmware work request header */
4731 MPASS(wr == (void *)&eq->desc[eq->pidx]);
4732 wr->op_immdlen = htobe32(V_FW_WR_OP(FW_ETH_TX_PKT_WR) |
4733 V_FW_ETH_TX_PKT_WR_IMMDLEN(ctrl));
4734
4735 ctrl = V_FW_WR_LEN16(len16);
4736 wr->equiq_to_len16 = htobe32(ctrl);
4737 wr->r3 = 0;
4738
4739 if (needs_tso(m0)) {
4740 struct cpl_tx_pkt_lso_core *lso = (void *)(wr + 1);
4741
4742 KASSERT(m0->m_pkthdr.l2hlen > 0 && m0->m_pkthdr.l3hlen > 0 &&
4743 m0->m_pkthdr.l4hlen > 0,
4744 ("%s: mbuf %p needs TSO but missing header lengths",
4745 __func__, m0));
4746
4747 ctrl = V_LSO_OPCODE(CPL_TX_PKT_LSO) | F_LSO_FIRST_SLICE |
4748 F_LSO_LAST_SLICE | V_LSO_IPHDR_LEN(m0->m_pkthdr.l3hlen >> 2)
4749 | V_LSO_TCPHDR_LEN(m0->m_pkthdr.l4hlen >> 2);
4750 if (m0->m_pkthdr.l2hlen == sizeof(struct ether_vlan_header))
4751 ctrl |= V_LSO_ETHHDR_LEN(1);
4752 if (m0->m_pkthdr.l3hlen == sizeof(struct ip6_hdr))
4753 ctrl |= F_LSO_IPV6;
4754
4755 lso->lso_ctrl = htobe32(ctrl);
4756 lso->ipid_ofst = htobe16(0);
4757 lso->mss = htobe16(m0->m_pkthdr.tso_segsz);
4758 lso->seqno_offset = htobe32(0);
4759 lso->len = htobe32(pktlen);
4760
4761 cpl = (void *)(lso + 1);
4762
4763 txq->tso_wrs++;
4764 } else
4765 cpl = (void *)(wr + 1);
4766
4767 /* Checksum offload */
4768 ctrl1 = 0;
4769 if (needs_l3_csum(m0) == 0)
4770 ctrl1 |= F_TXPKT_IPCSUM_DIS;
4771 if (needs_l4_csum(m0) == 0)
4772 ctrl1 |= F_TXPKT_L4CSUM_DIS;
4773 if (m0->m_pkthdr.csum_flags & (CSUM_IP | CSUM_TCP | CSUM_UDP |
4774 CSUM_UDP_IPV6 | CSUM_TCP_IPV6 | CSUM_TSO))
4775 txq->txcsum++; /* some hardware assistance provided */
4776
4777 /* VLAN tag insertion */
4778 if (needs_vlan_insertion(m0)) {
4779 ctrl1 |= F_TXPKT_VLAN_VLD | V_TXPKT_VLAN(m0->m_pkthdr.ether_vtag);
4780 txq->vlan_insertion++;
4781 }
4782
4783 /* CPL header */
4784 cpl->ctrl0 = txq->cpl_ctrl0;
4785 cpl->pack = 0;
4786 cpl->len = htobe16(pktlen);
4787 cpl->ctrl1 = htobe64(ctrl1);
4788
4789 /* SGL */
4790 dst = (void *)(cpl + 1);
4791 if (nsegs > 0) {
4792
4793 write_gl_to_txd(txq, m0, &dst, eq->sidx - ndesc < eq->pidx);
4794 txq->sgl_wrs++;
4795 } else {
4796 struct mbuf *m;
4797
4798 for (m = m0; m != NULL; m = m->m_next) {
4799 copy_to_txd(eq, mtod(m, caddr_t), &dst, m->m_len);
4800 #ifdef INVARIANTS
4801 pktlen -= m->m_len;
4802 #endif
4803 }
4804 #ifdef INVARIANTS
4805 KASSERT(pktlen == 0, ("%s: %d bytes left.", __func__, pktlen));
4806 #endif
4807 txq->imm_wrs++;
4808 }
4809
4810 txq->txpkt_wrs++;
4811
4812 txsd = &txq->sdesc[eq->pidx];
4813 txsd->m = m0;
4814 txsd->desc_used = ndesc;
4815
4816 return (ndesc);
4817 }
4818
4819 static int
try_txpkts(struct mbuf * m,struct mbuf * n,struct txpkts * txp,u_int available)4820 try_txpkts(struct mbuf *m, struct mbuf *n, struct txpkts *txp, u_int available)
4821 {
4822 u_int needed, nsegs1, nsegs2, l1, l2;
4823
4824 if (cannot_use_txpkts(m) || cannot_use_txpkts(n))
4825 return (1);
4826
4827 nsegs1 = mbuf_nsegs(m);
4828 nsegs2 = mbuf_nsegs(n);
4829 if (nsegs1 + nsegs2 == 2) {
4830 txp->wr_type = 1;
4831 l1 = l2 = txpkts1_len16();
4832 } else {
4833 txp->wr_type = 0;
4834 l1 = txpkts0_len16(nsegs1);
4835 l2 = txpkts0_len16(nsegs2);
4836 }
4837 txp->len16 = howmany(sizeof(struct fw_eth_tx_pkts_wr), 16) + l1 + l2;
4838 needed = howmany(txp->len16, EQ_ESIZE / 16);
4839 if (needed > SGE_MAX_WR_NDESC || needed > available)
4840 return (1);
4841
4842 txp->plen = m->m_pkthdr.len + n->m_pkthdr.len;
4843 if (txp->plen > 65535)
4844 return (1);
4845
4846 txp->npkt = 2;
4847 set_mbuf_len16(m, l1);
4848 set_mbuf_len16(n, l2);
4849
4850 return (0);
4851 }
4852
4853 static int
add_to_txpkts(struct mbuf * m,struct txpkts * txp,u_int available)4854 add_to_txpkts(struct mbuf *m, struct txpkts *txp, u_int available)
4855 {
4856 u_int plen, len16, needed, nsegs;
4857
4858 MPASS(txp->wr_type == 0 || txp->wr_type == 1);
4859
4860 nsegs = mbuf_nsegs(m);
4861 if (needs_tso(m) || (txp->wr_type == 1 && nsegs != 1))
4862 return (1);
4863
4864 plen = txp->plen + m->m_pkthdr.len;
4865 if (plen > 65535)
4866 return (1);
4867
4868 if (txp->wr_type == 0)
4869 len16 = txpkts0_len16(nsegs);
4870 else
4871 len16 = txpkts1_len16();
4872 needed = howmany(txp->len16 + len16, EQ_ESIZE / 16);
4873 if (needed > SGE_MAX_WR_NDESC || needed > available)
4874 return (1);
4875
4876 txp->npkt++;
4877 txp->plen = plen;
4878 txp->len16 += len16;
4879 set_mbuf_len16(m, len16);
4880
4881 return (0);
4882 }
4883
4884 /*
4885 * Write a txpkts WR for the packets in txp to the hardware descriptors, update
4886 * the software descriptor, and advance the pidx. It is guaranteed that enough
4887 * descriptors are available.
4888 *
4889 * The return value is the # of hardware descriptors used.
4890 */
4891 static u_int
write_txpkts_wr(struct sge_txq * txq,struct fw_eth_tx_pkts_wr * wr,struct mbuf * m0,const struct txpkts * txp,u_int available)4892 write_txpkts_wr(struct sge_txq *txq, struct fw_eth_tx_pkts_wr *wr,
4893 struct mbuf *m0, const struct txpkts *txp, u_int available)
4894 {
4895 struct sge_eq *eq = &txq->eq;
4896 struct tx_sdesc *txsd;
4897 struct cpl_tx_pkt_core *cpl;
4898 uint32_t ctrl;
4899 uint64_t ctrl1;
4900 int ndesc, checkwrap;
4901 struct mbuf *m;
4902 void *flitp;
4903
4904 TXQ_LOCK_ASSERT_OWNED(txq);
4905 MPASS(txp->npkt > 0);
4906 MPASS(txp->plen < 65536);
4907 MPASS(m0 != NULL);
4908 MPASS(m0->m_nextpkt != NULL);
4909 MPASS(txp->len16 <= howmany(SGE_MAX_WR_LEN, 16));
4910 MPASS(available > 0 && available < eq->sidx);
4911
4912 ndesc = howmany(txp->len16, EQ_ESIZE / 16);
4913 MPASS(ndesc <= available);
4914
4915 MPASS(wr == (void *)&eq->desc[eq->pidx]);
4916 wr->op_pkd = htobe32(V_FW_WR_OP(FW_ETH_TX_PKTS_WR));
4917 ctrl = V_FW_WR_LEN16(txp->len16);
4918 wr->equiq_to_len16 = htobe32(ctrl);
4919 wr->plen = htobe16(txp->plen);
4920 wr->npkt = txp->npkt;
4921 wr->r3 = 0;
4922 wr->type = txp->wr_type;
4923 flitp = wr + 1;
4924
4925 /*
4926 * At this point we are 16B into a hardware descriptor. If checkwrap is
4927 * set then we know the WR is going to wrap around somewhere. We'll
4928 * check for that at appropriate points.
4929 */
4930 checkwrap = eq->sidx - ndesc < eq->pidx;
4931 for (m = m0; m != NULL; m = m->m_nextpkt) {
4932 if (txp->wr_type == 0) {
4933 struct ulp_txpkt *ulpmc;
4934 struct ulptx_idata *ulpsc;
4935
4936 /* ULP master command */
4937 ulpmc = flitp;
4938 ulpmc->cmd_dest = htobe32(V_ULPTX_CMD(ULP_TX_PKT) |
4939 V_ULP_TXPKT_DEST(0) | V_ULP_TXPKT_FID(eq->iqid));
4940 ulpmc->len = htobe32(mbuf_len16(m));
4941
4942 /* ULP subcommand */
4943 ulpsc = (void *)(ulpmc + 1);
4944 ulpsc->cmd_more = htobe32(V_ULPTX_CMD(ULP_TX_SC_IMM) |
4945 F_ULP_TX_SC_MORE);
4946 ulpsc->len = htobe32(sizeof(struct cpl_tx_pkt_core));
4947
4948 cpl = (void *)(ulpsc + 1);
4949 if (checkwrap &&
4950 (uintptr_t)cpl == (uintptr_t)&eq->desc[eq->sidx])
4951 cpl = (void *)&eq->desc[0];
4952 } else {
4953 cpl = flitp;
4954 }
4955
4956 /* Checksum offload */
4957 ctrl1 = 0;
4958 if (needs_l3_csum(m) == 0)
4959 ctrl1 |= F_TXPKT_IPCSUM_DIS;
4960 if (needs_l4_csum(m) == 0)
4961 ctrl1 |= F_TXPKT_L4CSUM_DIS;
4962 if (m->m_pkthdr.csum_flags & (CSUM_IP | CSUM_TCP | CSUM_UDP |
4963 CSUM_UDP_IPV6 | CSUM_TCP_IPV6 | CSUM_TSO))
4964 txq->txcsum++; /* some hardware assistance provided */
4965
4966 /* VLAN tag insertion */
4967 if (needs_vlan_insertion(m)) {
4968 ctrl1 |= F_TXPKT_VLAN_VLD |
4969 V_TXPKT_VLAN(m->m_pkthdr.ether_vtag);
4970 txq->vlan_insertion++;
4971 }
4972
4973 /* CPL header */
4974 cpl->ctrl0 = txq->cpl_ctrl0;
4975 cpl->pack = 0;
4976 cpl->len = htobe16(m->m_pkthdr.len);
4977 cpl->ctrl1 = htobe64(ctrl1);
4978
4979 flitp = cpl + 1;
4980 if (checkwrap &&
4981 (uintptr_t)flitp == (uintptr_t)&eq->desc[eq->sidx])
4982 flitp = (void *)&eq->desc[0];
4983
4984 write_gl_to_txd(txq, m, (caddr_t *)(&flitp), checkwrap);
4985
4986 }
4987
4988 if (txp->wr_type == 0) {
4989 txq->txpkts0_pkts += txp->npkt;
4990 txq->txpkts0_wrs++;
4991 } else {
4992 txq->txpkts1_pkts += txp->npkt;
4993 txq->txpkts1_wrs++;
4994 }
4995
4996 txsd = &txq->sdesc[eq->pidx];
4997 txsd->m = m0;
4998 txsd->desc_used = ndesc;
4999
5000 return (ndesc);
5001 }
5002
5003 /*
5004 * If the SGL ends on an address that is not 16 byte aligned, this function will
5005 * add a 0 filled flit at the end.
5006 */
5007 static void
write_gl_to_txd(struct sge_txq * txq,struct mbuf * m,caddr_t * to,int checkwrap)5008 write_gl_to_txd(struct sge_txq *txq, struct mbuf *m, caddr_t *to, int checkwrap)
5009 {
5010 struct sge_eq *eq = &txq->eq;
5011 struct sglist *gl = txq->gl;
5012 struct sglist_seg *seg;
5013 __be64 *flitp, *wrap;
5014 struct ulptx_sgl *usgl;
5015 int i, nflits, nsegs;
5016
5017 KASSERT(((uintptr_t)(*to) & 0xf) == 0,
5018 ("%s: SGL must start at a 16 byte boundary: %p", __func__, *to));
5019 MPASS((uintptr_t)(*to) >= (uintptr_t)&eq->desc[0]);
5020 MPASS((uintptr_t)(*to) < (uintptr_t)&eq->desc[eq->sidx]);
5021
5022 get_pkt_gl(m, gl);
5023 nsegs = gl->sg_nseg;
5024 MPASS(nsegs > 0);
5025
5026 nflits = (3 * (nsegs - 1)) / 2 + ((nsegs - 1) & 1) + 2;
5027 flitp = (__be64 *)(*to);
5028 wrap = (__be64 *)(&eq->desc[eq->sidx]);
5029 seg = &gl->sg_segs[0];
5030 usgl = (void *)flitp;
5031
5032 /*
5033 * We start at a 16 byte boundary somewhere inside the tx descriptor
5034 * ring, so we're at least 16 bytes away from the status page. There is
5035 * no chance of a wrap around in the middle of usgl (which is 16 bytes).
5036 */
5037
5038 usgl->cmd_nsge = htobe32(V_ULPTX_CMD(ULP_TX_SC_DSGL) |
5039 V_ULPTX_NSGE(nsegs));
5040 usgl->len0 = htobe32(seg->ss_len);
5041 usgl->addr0 = htobe64(seg->ss_paddr);
5042 seg++;
5043
5044 if (checkwrap == 0 || (uintptr_t)(flitp + nflits) <= (uintptr_t)wrap) {
5045
5046 /* Won't wrap around at all */
5047
5048 for (i = 0; i < nsegs - 1; i++, seg++) {
5049 usgl->sge[i / 2].len[i & 1] = htobe32(seg->ss_len);
5050 usgl->sge[i / 2].addr[i & 1] = htobe64(seg->ss_paddr);
5051 }
5052 if (i & 1)
5053 usgl->sge[i / 2].len[1] = htobe32(0);
5054 flitp += nflits;
5055 } else {
5056
5057 /* Will wrap somewhere in the rest of the SGL */
5058
5059 /* 2 flits already written, write the rest flit by flit */
5060 flitp = (void *)(usgl + 1);
5061 for (i = 0; i < nflits - 2; i++) {
5062 if (flitp == wrap)
5063 flitp = (void *)eq->desc;
5064 *flitp++ = get_flit(seg, nsegs - 1, i);
5065 }
5066 }
5067
5068 if (nflits & 1) {
5069 MPASS(((uintptr_t)flitp) & 0xf);
5070 *flitp++ = 0;
5071 }
5072
5073 MPASS((((uintptr_t)flitp) & 0xf) == 0);
5074 if (__predict_false(flitp == wrap))
5075 *to = (void *)eq->desc;
5076 else
5077 *to = (void *)flitp;
5078 }
5079
5080 static inline void
copy_to_txd(struct sge_eq * eq,caddr_t from,caddr_t * to,int len)5081 copy_to_txd(struct sge_eq *eq, caddr_t from, caddr_t *to, int len)
5082 {
5083
5084 MPASS((uintptr_t)(*to) >= (uintptr_t)&eq->desc[0]);
5085 MPASS((uintptr_t)(*to) < (uintptr_t)&eq->desc[eq->sidx]);
5086
5087 if (__predict_true((uintptr_t)(*to) + len <=
5088 (uintptr_t)&eq->desc[eq->sidx])) {
5089 bcopy(from, *to, len);
5090 (*to) += len;
5091 } else {
5092 int portion = (uintptr_t)&eq->desc[eq->sidx] - (uintptr_t)(*to);
5093
5094 bcopy(from, *to, portion);
5095 from += portion;
5096 portion = len - portion; /* remaining */
5097 bcopy(from, (void *)eq->desc, portion);
5098 (*to) = (caddr_t)eq->desc + portion;
5099 }
5100 }
5101
5102 static inline void
ring_eq_db(struct adapter * sc,struct sge_eq * eq,u_int n)5103 ring_eq_db(struct adapter *sc, struct sge_eq *eq, u_int n)
5104 {
5105 u_int db;
5106
5107 MPASS(n > 0);
5108
5109 db = eq->doorbells;
5110 if (n > 1)
5111 clrbit(&db, DOORBELL_WCWR);
5112 wmb();
5113
5114 switch (ffs(db) - 1) {
5115 case DOORBELL_UDB:
5116 *eq->udb = htole32(V_QID(eq->udb_qid) | V_PIDX(n));
5117 break;
5118
5119 case DOORBELL_WCWR: {
5120 volatile uint64_t *dst, *src;
5121 int i;
5122
5123 /*
5124 * Queues whose 128B doorbell segment fits in the page do not
5125 * use relative qid (udb_qid is always 0). Only queues with
5126 * doorbell segments can do WCWR.
5127 */
5128 KASSERT(eq->udb_qid == 0 && n == 1,
5129 ("%s: inappropriate doorbell (0x%x, %d, %d) for eq %p",
5130 __func__, eq->doorbells, n, eq->dbidx, eq));
5131
5132 dst = (volatile void *)((uintptr_t)eq->udb + UDBS_WR_OFFSET -
5133 UDBS_DB_OFFSET);
5134 i = eq->dbidx;
5135 src = (void *)&eq->desc[i];
5136 while (src != (void *)&eq->desc[i + 1])
5137 *dst++ = *src++;
5138 wmb();
5139 break;
5140 }
5141
5142 case DOORBELL_UDBWC:
5143 *eq->udb = htole32(V_QID(eq->udb_qid) | V_PIDX(n));
5144 wmb();
5145 break;
5146
5147 case DOORBELL_KDB:
5148 t4_write_reg(sc, sc->sge_kdoorbell_reg,
5149 V_QID(eq->cntxt_id) | V_PIDX(n));
5150 break;
5151 }
5152
5153 IDXINCR(eq->dbidx, n, eq->sidx);
5154 }
5155
5156 static inline u_int
reclaimable_tx_desc(struct sge_eq * eq)5157 reclaimable_tx_desc(struct sge_eq *eq)
5158 {
5159 uint16_t hw_cidx;
5160
5161 hw_cidx = read_hw_cidx(eq);
5162 return (IDXDIFF(hw_cidx, eq->cidx, eq->sidx));
5163 }
5164
5165 static inline u_int
total_available_tx_desc(struct sge_eq * eq)5166 total_available_tx_desc(struct sge_eq *eq)
5167 {
5168 uint16_t hw_cidx, pidx;
5169
5170 hw_cidx = read_hw_cidx(eq);
5171 pidx = eq->pidx;
5172
5173 if (pidx == hw_cidx)
5174 return (eq->sidx - 1);
5175 else
5176 return (IDXDIFF(hw_cidx, pidx, eq->sidx) - 1);
5177 }
5178
5179 static inline uint16_t
read_hw_cidx(struct sge_eq * eq)5180 read_hw_cidx(struct sge_eq *eq)
5181 {
5182 struct sge_qstat *spg = (void *)&eq->desc[eq->sidx];
5183 uint16_t cidx = spg->cidx; /* stable snapshot */
5184
5185 return (be16toh(cidx));
5186 }
5187
5188 /*
5189 * Reclaim 'n' descriptors approximately.
5190 */
5191 static u_int
reclaim_tx_descs(struct sge_txq * txq,u_int n)5192 reclaim_tx_descs(struct sge_txq *txq, u_int n)
5193 {
5194 struct tx_sdesc *txsd;
5195 struct sge_eq *eq = &txq->eq;
5196 u_int can_reclaim, reclaimed;
5197
5198 TXQ_LOCK_ASSERT_OWNED(txq);
5199 MPASS(n > 0);
5200
5201 reclaimed = 0;
5202 can_reclaim = reclaimable_tx_desc(eq);
5203 while (can_reclaim && reclaimed < n) {
5204 int ndesc;
5205 struct mbuf *m, *nextpkt;
5206
5207 txsd = &txq->sdesc[eq->cidx];
5208 ndesc = txsd->desc_used;
5209
5210 /* Firmware doesn't return "partial" credits. */
5211 KASSERT(can_reclaim >= ndesc,
5212 ("%s: unexpected number of credits: %d, %d",
5213 __func__, can_reclaim, ndesc));
5214 KASSERT(ndesc != 0,
5215 ("%s: descriptor with no credits: cidx %d",
5216 __func__, eq->cidx));
5217
5218 for (m = txsd->m; m != NULL; m = nextpkt) {
5219 nextpkt = m->m_nextpkt;
5220 m->m_nextpkt = NULL;
5221 m_freem(m);
5222 }
5223 reclaimed += ndesc;
5224 can_reclaim -= ndesc;
5225 IDXINCR(eq->cidx, ndesc, eq->sidx);
5226 }
5227
5228 return (reclaimed);
5229 }
5230
5231 static void
tx_reclaim(void * arg,int n)5232 tx_reclaim(void *arg, int n)
5233 {
5234 struct sge_txq *txq = arg;
5235 struct sge_eq *eq = &txq->eq;
5236
5237 do {
5238 if (TXQ_TRYLOCK(txq) == 0)
5239 break;
5240 n = reclaim_tx_descs(txq, 32);
5241 if (eq->cidx == eq->pidx)
5242 eq->equeqidx = eq->pidx;
5243 TXQ_UNLOCK(txq);
5244 } while (n > 0);
5245 }
5246
5247 static __be64
get_flit(struct sglist_seg * segs,int nsegs,int idx)5248 get_flit(struct sglist_seg *segs, int nsegs, int idx)
5249 {
5250 int i = (idx / 3) * 2;
5251
5252 switch (idx % 3) {
5253 case 0: {
5254 uint64_t rc;
5255
5256 rc = (uint64_t)segs[i].ss_len << 32;
5257 if (i + 1 < nsegs)
5258 rc |= (uint64_t)(segs[i + 1].ss_len);
5259
5260 return (htobe64(rc));
5261 }
5262 case 1:
5263 return (htobe64(segs[i].ss_paddr));
5264 case 2:
5265 return (htobe64(segs[i + 1].ss_paddr));
5266 }
5267
5268 return (0);
5269 }
5270
5271 static void
find_best_refill_source(struct adapter * sc,struct sge_fl * fl,int maxp)5272 find_best_refill_source(struct adapter *sc, struct sge_fl *fl, int maxp)
5273 {
5274 int8_t zidx, hwidx, idx;
5275 uint16_t region1, region3;
5276 int spare, spare_needed, n;
5277 struct sw_zone_info *swz;
5278 struct hw_buf_info *hwb, *hwb_list = &sc->sge.hw_buf_info[0];
5279
5280 /*
5281 * Buffer Packing: Look for PAGE_SIZE or larger zone which has a bufsize
5282 * large enough for the max payload and cluster metadata. Otherwise
5283 * settle for the largest bufsize that leaves enough room in the cluster
5284 * for metadata.
5285 *
5286 * Without buffer packing: Look for the smallest zone which has a
5287 * bufsize large enough for the max payload. Settle for the largest
5288 * bufsize available if there's nothing big enough for max payload.
5289 */
5290 spare_needed = fl->flags & FL_BUF_PACKING ? CL_METADATA_SIZE : 0;
5291 swz = &sc->sge.sw_zone_info[0];
5292 hwidx = -1;
5293 for (zidx = 0; zidx < SW_ZONE_SIZES; zidx++, swz++) {
5294 if (swz->size > largest_rx_cluster) {
5295 if (__predict_true(hwidx != -1))
5296 break;
5297
5298 /*
5299 * This is a misconfiguration. largest_rx_cluster is
5300 * preventing us from finding a refill source. See
5301 * dev.t5nex.<n>.buffer_sizes to figure out why.
5302 */
5303 device_printf(sc->dev, "largest_rx_cluster=%u leaves no"
5304 " refill source for fl %p (dma %u). Ignored.\n",
5305 largest_rx_cluster, fl, maxp);
5306 }
5307 for (idx = swz->head_hwidx; idx != -1; idx = hwb->next) {
5308 hwb = &hwb_list[idx];
5309 spare = swz->size - hwb->size;
5310 if (spare < spare_needed)
5311 continue;
5312
5313 hwidx = idx; /* best option so far */
5314 if (hwb->size >= maxp) {
5315
5316 if ((fl->flags & FL_BUF_PACKING) == 0)
5317 goto done; /* stop looking (not packing) */
5318
5319 if (swz->size >= safest_rx_cluster)
5320 goto done; /* stop looking (packing) */
5321 }
5322 break; /* keep looking, next zone */
5323 }
5324 }
5325 done:
5326 /* A usable hwidx has been located. */
5327 MPASS(hwidx != -1);
5328 hwb = &hwb_list[hwidx];
5329 zidx = hwb->zidx;
5330 swz = &sc->sge.sw_zone_info[zidx];
5331 region1 = 0;
5332 region3 = swz->size - hwb->size;
5333
5334 /*
5335 * Stay within this zone and see if there is a better match when mbuf
5336 * inlining is allowed. Remember that the hwidx's are sorted in
5337 * decreasing order of size (so in increasing order of spare area).
5338 */
5339 for (idx = hwidx; idx != -1; idx = hwb->next) {
5340 hwb = &hwb_list[idx];
5341 spare = swz->size - hwb->size;
5342
5343 if (allow_mbufs_in_cluster == 0 || hwb->size < maxp)
5344 break;
5345
5346 /*
5347 * Do not inline mbufs if doing so would violate the pad/pack
5348 * boundary alignment requirement.
5349 */
5350 if (fl_pad && (MSIZE % sc->params.sge.pad_boundary) != 0)
5351 continue;
5352 if (fl->flags & FL_BUF_PACKING &&
5353 (MSIZE % sc->params.sge.pack_boundary) != 0)
5354 continue;
5355
5356 if (spare < CL_METADATA_SIZE + MSIZE)
5357 continue;
5358 n = (spare - CL_METADATA_SIZE) / MSIZE;
5359 if (n > howmany(hwb->size, maxp))
5360 break;
5361
5362 hwidx = idx;
5363 if (fl->flags & FL_BUF_PACKING) {
5364 region1 = n * MSIZE;
5365 region3 = spare - region1;
5366 } else {
5367 region1 = MSIZE;
5368 region3 = spare - region1;
5369 break;
5370 }
5371 }
5372
5373 KASSERT(zidx >= 0 && zidx < SW_ZONE_SIZES,
5374 ("%s: bad zone %d for fl %p, maxp %d", __func__, zidx, fl, maxp));
5375 KASSERT(hwidx >= 0 && hwidx <= SGE_FLBUF_SIZES,
5376 ("%s: bad hwidx %d for fl %p, maxp %d", __func__, hwidx, fl, maxp));
5377 KASSERT(region1 + sc->sge.hw_buf_info[hwidx].size + region3 ==
5378 sc->sge.sw_zone_info[zidx].size,
5379 ("%s: bad buffer layout for fl %p, maxp %d. "
5380 "cl %d; r1 %d, payload %d, r3 %d", __func__, fl, maxp,
5381 sc->sge.sw_zone_info[zidx].size, region1,
5382 sc->sge.hw_buf_info[hwidx].size, region3));
5383 if (fl->flags & FL_BUF_PACKING || region1 > 0) {
5384 KASSERT(region3 >= CL_METADATA_SIZE,
5385 ("%s: no room for metadata. fl %p, maxp %d; "
5386 "cl %d; r1 %d, payload %d, r3 %d", __func__, fl, maxp,
5387 sc->sge.sw_zone_info[zidx].size, region1,
5388 sc->sge.hw_buf_info[hwidx].size, region3));
5389 KASSERT(region1 % MSIZE == 0,
5390 ("%s: bad mbuf region for fl %p, maxp %d. "
5391 "cl %d; r1 %d, payload %d, r3 %d", __func__, fl, maxp,
5392 sc->sge.sw_zone_info[zidx].size, region1,
5393 sc->sge.hw_buf_info[hwidx].size, region3));
5394 }
5395
5396 fl->cll_def.zidx = zidx;
5397 fl->cll_def.hwidx = hwidx;
5398 fl->cll_def.region1 = region1;
5399 fl->cll_def.region3 = region3;
5400 }
5401
5402 static void
find_safe_refill_source(struct adapter * sc,struct sge_fl * fl)5403 find_safe_refill_source(struct adapter *sc, struct sge_fl *fl)
5404 {
5405 struct sge *s = &sc->sge;
5406 struct hw_buf_info *hwb;
5407 struct sw_zone_info *swz;
5408 int spare;
5409 int8_t hwidx;
5410
5411 if (fl->flags & FL_BUF_PACKING)
5412 hwidx = s->safe_hwidx2; /* with room for metadata */
5413 else if (allow_mbufs_in_cluster && s->safe_hwidx2 != -1) {
5414 hwidx = s->safe_hwidx2;
5415 hwb = &s->hw_buf_info[hwidx];
5416 swz = &s->sw_zone_info[hwb->zidx];
5417 spare = swz->size - hwb->size;
5418
5419 /* no good if there isn't room for an mbuf as well */
5420 if (spare < CL_METADATA_SIZE + MSIZE)
5421 hwidx = s->safe_hwidx1;
5422 } else
5423 hwidx = s->safe_hwidx1;
5424
5425 if (hwidx == -1) {
5426 /* No fallback source */
5427 fl->cll_alt.hwidx = -1;
5428 fl->cll_alt.zidx = -1;
5429
5430 return;
5431 }
5432
5433 hwb = &s->hw_buf_info[hwidx];
5434 swz = &s->sw_zone_info[hwb->zidx];
5435 spare = swz->size - hwb->size;
5436 fl->cll_alt.hwidx = hwidx;
5437 fl->cll_alt.zidx = hwb->zidx;
5438 if (allow_mbufs_in_cluster &&
5439 (fl_pad == 0 || (MSIZE % sc->params.sge.pad_boundary) == 0))
5440 fl->cll_alt.region1 = ((spare - CL_METADATA_SIZE) / MSIZE) * MSIZE;
5441 else
5442 fl->cll_alt.region1 = 0;
5443 fl->cll_alt.region3 = spare - fl->cll_alt.region1;
5444 }
5445
5446 static void
add_fl_to_sfl(struct adapter * sc,struct sge_fl * fl)5447 add_fl_to_sfl(struct adapter *sc, struct sge_fl *fl)
5448 {
5449 mtx_lock(&sc->sfl_lock);
5450 FL_LOCK(fl);
5451 if ((fl->flags & FL_DOOMED) == 0) {
5452 fl->flags |= FL_STARVING;
5453 TAILQ_INSERT_TAIL(&sc->sfl, fl, link);
5454 callout_reset(&sc->sfl_callout, hz / 5, refill_sfl, sc);
5455 }
5456 FL_UNLOCK(fl);
5457 mtx_unlock(&sc->sfl_lock);
5458 }
5459
5460 static void
handle_wrq_egr_update(struct adapter * sc,struct sge_eq * eq)5461 handle_wrq_egr_update(struct adapter *sc, struct sge_eq *eq)
5462 {
5463 struct sge_wrq *wrq = (void *)eq;
5464
5465 atomic_readandclear_int(&eq->equiq);
5466 taskqueue_enqueue(sc->tq[eq->tx_chan], &wrq->wrq_tx_task);
5467 }
5468
5469 static void
handle_eth_egr_update(struct adapter * sc,struct sge_eq * eq)5470 handle_eth_egr_update(struct adapter *sc, struct sge_eq *eq)
5471 {
5472 struct sge_txq *txq = (void *)eq;
5473
5474 MPASS((eq->flags & EQ_TYPEMASK) == EQ_ETH);
5475
5476 atomic_readandclear_int(&eq->equiq);
5477 mp_ring_check_drainage(txq->r, 0);
5478 taskqueue_enqueue(sc->tq[eq->tx_chan], &txq->tx_reclaim_task);
5479 }
5480
5481 static int
handle_sge_egr_update(struct sge_iq * iq,const struct rss_header * rss,struct mbuf * m)5482 handle_sge_egr_update(struct sge_iq *iq, const struct rss_header *rss,
5483 struct mbuf *m)
5484 {
5485 const struct cpl_sge_egr_update *cpl = (const void *)(rss + 1);
5486 unsigned int qid = G_EGR_QID(ntohl(cpl->opcode_qid));
5487 struct adapter *sc = iq->adapter;
5488 struct sge *s = &sc->sge;
5489 struct sge_eq *eq;
5490 static void (*h[])(struct adapter *, struct sge_eq *) = {NULL,
5491 &handle_wrq_egr_update, &handle_eth_egr_update,
5492 &handle_wrq_egr_update};
5493
5494 KASSERT(m == NULL, ("%s: payload with opcode %02x", __func__,
5495 rss->opcode));
5496
5497 eq = s->eqmap[qid - s->eq_start - s->eq_base];
5498 (*h[eq->flags & EQ_TYPEMASK])(sc, eq);
5499
5500 return (0);
5501 }
5502
5503 /* handle_fw_msg works for both fw4_msg and fw6_msg because this is valid */
5504 CTASSERT(offsetof(struct cpl_fw4_msg, data) == \
5505 offsetof(struct cpl_fw6_msg, data));
5506
5507 static int
handle_fw_msg(struct sge_iq * iq,const struct rss_header * rss,struct mbuf * m)5508 handle_fw_msg(struct sge_iq *iq, const struct rss_header *rss, struct mbuf *m)
5509 {
5510 struct adapter *sc = iq->adapter;
5511 const struct cpl_fw6_msg *cpl = (const void *)(rss + 1);
5512
5513 KASSERT(m == NULL, ("%s: payload with opcode %02x", __func__,
5514 rss->opcode));
5515
5516 if (cpl->type == FW_TYPE_RSSCPL || cpl->type == FW6_TYPE_RSSCPL) {
5517 const struct rss_header *rss2;
5518
5519 rss2 = (const struct rss_header *)&cpl->data[0];
5520 return (t4_cpl_handler[rss2->opcode](iq, rss2, m));
5521 }
5522
5523 return (t4_fw_msg_handler[cpl->type](sc, &cpl->data[0]));
5524 }
5525
5526 /**
5527 * t4_handle_wrerr_rpl - process a FW work request error message
5528 * @adap: the adapter
5529 * @rpl: start of the FW message
5530 */
5531 static int
t4_handle_wrerr_rpl(struct adapter * adap,const __be64 * rpl)5532 t4_handle_wrerr_rpl(struct adapter *adap, const __be64 *rpl)
5533 {
5534 u8 opcode = *(const u8 *)rpl;
5535 const struct fw_error_cmd *e = (const void *)rpl;
5536 unsigned int i;
5537
5538 if (opcode != FW_ERROR_CMD) {
5539 log(LOG_ERR,
5540 "%s: Received WRERR_RPL message with opcode %#x\n",
5541 device_get_nameunit(adap->dev), opcode);
5542 return (EINVAL);
5543 }
5544 log(LOG_ERR, "%s: FW_ERROR (%s) ", device_get_nameunit(adap->dev),
5545 G_FW_ERROR_CMD_FATAL(be32toh(e->op_to_type)) ? "fatal" :
5546 "non-fatal");
5547 switch (G_FW_ERROR_CMD_TYPE(be32toh(e->op_to_type))) {
5548 case FW_ERROR_TYPE_EXCEPTION:
5549 log(LOG_ERR, "exception info:\n");
5550 for (i = 0; i < nitems(e->u.exception.info); i++)
5551 log(LOG_ERR, "%s%08x", i == 0 ? "\t" : " ",
5552 be32toh(e->u.exception.info[i]));
5553 log(LOG_ERR, "\n");
5554 break;
5555 case FW_ERROR_TYPE_HWMODULE:
5556 log(LOG_ERR, "HW module regaddr %08x regval %08x\n",
5557 be32toh(e->u.hwmodule.regaddr),
5558 be32toh(e->u.hwmodule.regval));
5559 break;
5560 case FW_ERROR_TYPE_WR:
5561 log(LOG_ERR, "WR cidx %d PF %d VF %d eqid %d hdr:\n",
5562 be16toh(e->u.wr.cidx),
5563 G_FW_ERROR_CMD_PFN(be16toh(e->u.wr.pfn_vfn)),
5564 G_FW_ERROR_CMD_VFN(be16toh(e->u.wr.pfn_vfn)),
5565 be32toh(e->u.wr.eqid));
5566 for (i = 0; i < nitems(e->u.wr.wrhdr); i++)
5567 log(LOG_ERR, "%s%02x", i == 0 ? "\t" : " ",
5568 e->u.wr.wrhdr[i]);
5569 log(LOG_ERR, "\n");
5570 break;
5571 case FW_ERROR_TYPE_ACL:
5572 log(LOG_ERR, "ACL cidx %d PF %d VF %d eqid %d %s",
5573 be16toh(e->u.acl.cidx),
5574 G_FW_ERROR_CMD_PFN(be16toh(e->u.acl.pfn_vfn)),
5575 G_FW_ERROR_CMD_VFN(be16toh(e->u.acl.pfn_vfn)),
5576 be32toh(e->u.acl.eqid),
5577 G_FW_ERROR_CMD_MV(be16toh(e->u.acl.mv_pkd)) ? "vlanid" :
5578 "MAC");
5579 for (i = 0; i < nitems(e->u.acl.val); i++)
5580 log(LOG_ERR, " %02x", e->u.acl.val[i]);
5581 log(LOG_ERR, "\n");
5582 break;
5583 default:
5584 log(LOG_ERR, "type %#x\n",
5585 G_FW_ERROR_CMD_TYPE(be32toh(e->op_to_type)));
5586 return (EINVAL);
5587 }
5588 return (0);
5589 }
5590
5591 static int
sysctl_uint16(SYSCTL_HANDLER_ARGS)5592 sysctl_uint16(SYSCTL_HANDLER_ARGS)
5593 {
5594 uint16_t *id = arg1;
5595 int i = *id;
5596
5597 return sysctl_handle_int(oidp, &i, 0, req);
5598 }
5599
5600 static int
sysctl_bufsizes(SYSCTL_HANDLER_ARGS)5601 sysctl_bufsizes(SYSCTL_HANDLER_ARGS)
5602 {
5603 struct sge *s = arg1;
5604 struct hw_buf_info *hwb = &s->hw_buf_info[0];
5605 struct sw_zone_info *swz = &s->sw_zone_info[0];
5606 int i, rc;
5607 struct sbuf sb;
5608 char c;
5609
5610 sbuf_new(&sb, NULL, 32, SBUF_AUTOEXTEND);
5611 for (i = 0; i < SGE_FLBUF_SIZES; i++, hwb++) {
5612 if (hwb->zidx >= 0 && swz[hwb->zidx].size <= largest_rx_cluster)
5613 c = '*';
5614 else
5615 c = '\0';
5616
5617 sbuf_printf(&sb, "%u%c ", hwb->size, c);
5618 }
5619 sbuf_trim(&sb);
5620 sbuf_finish(&sb);
5621 rc = sysctl_handle_string(oidp, sbuf_data(&sb), sbuf_len(&sb), req);
5622 sbuf_delete(&sb);
5623 return (rc);
5624 }
5625
5626 #ifdef RATELIMIT
5627 /*
5628 * len16 for a txpkt WR with a GL. Includes the firmware work request header.
5629 */
5630 static inline u_int
txpkt_eo_len16(u_int nsegs,u_int immhdrs,u_int tso)5631 txpkt_eo_len16(u_int nsegs, u_int immhdrs, u_int tso)
5632 {
5633 u_int n;
5634
5635 MPASS(immhdrs > 0);
5636
5637 n = roundup2(sizeof(struct fw_eth_tx_eo_wr) +
5638 sizeof(struct cpl_tx_pkt_core) + immhdrs, 16);
5639 if (__predict_false(nsegs == 0))
5640 goto done;
5641
5642 nsegs--; /* first segment is part of ulptx_sgl */
5643 n += sizeof(struct ulptx_sgl) + 8 * ((3 * nsegs) / 2 + (nsegs & 1));
5644 if (tso)
5645 n += sizeof(struct cpl_tx_pkt_lso_core);
5646
5647 done:
5648 return (howmany(n, 16));
5649 }
5650
5651 #define ETID_FLOWC_NPARAMS 6
5652 #define ETID_FLOWC_LEN (roundup2((sizeof(struct fw_flowc_wr) + \
5653 ETID_FLOWC_NPARAMS * sizeof(struct fw_flowc_mnemval)), 16))
5654 #define ETID_FLOWC_LEN16 (howmany(ETID_FLOWC_LEN, 16))
5655
5656 static int
send_etid_flowc_wr(struct cxgbe_snd_tag * cst,struct port_info * pi,struct vi_info * vi)5657 send_etid_flowc_wr(struct cxgbe_snd_tag *cst, struct port_info *pi,
5658 struct vi_info *vi)
5659 {
5660 struct wrq_cookie cookie;
5661 u_int pfvf = pi->adapter->pf << S_FW_VIID_PFN;
5662 struct fw_flowc_wr *flowc;
5663
5664 mtx_assert(&cst->lock, MA_OWNED);
5665 MPASS((cst->flags & (EO_FLOWC_PENDING | EO_FLOWC_RPL_PENDING)) ==
5666 EO_FLOWC_PENDING);
5667
5668 flowc = start_wrq_wr(cst->eo_txq, ETID_FLOWC_LEN16, &cookie);
5669 if (__predict_false(flowc == NULL))
5670 return (ENOMEM);
5671
5672 bzero(flowc, ETID_FLOWC_LEN);
5673 flowc->op_to_nparams = htobe32(V_FW_WR_OP(FW_FLOWC_WR) |
5674 V_FW_FLOWC_WR_NPARAMS(ETID_FLOWC_NPARAMS) | V_FW_WR_COMPL(0));
5675 flowc->flowid_len16 = htonl(V_FW_WR_LEN16(ETID_FLOWC_LEN16) |
5676 V_FW_WR_FLOWID(cst->etid));
5677 flowc->mnemval[0].mnemonic = FW_FLOWC_MNEM_PFNVFN;
5678 flowc->mnemval[0].val = htobe32(pfvf);
5679 flowc->mnemval[1].mnemonic = FW_FLOWC_MNEM_CH;
5680 flowc->mnemval[1].val = htobe32(pi->tx_chan);
5681 flowc->mnemval[2].mnemonic = FW_FLOWC_MNEM_PORT;
5682 flowc->mnemval[2].val = htobe32(pi->tx_chan);
5683 flowc->mnemval[3].mnemonic = FW_FLOWC_MNEM_IQID;
5684 flowc->mnemval[3].val = htobe32(cst->iqid);
5685 flowc->mnemval[4].mnemonic = FW_FLOWC_MNEM_EOSTATE;
5686 flowc->mnemval[4].val = htobe32(FW_FLOWC_MNEM_EOSTATE_ESTABLISHED);
5687 flowc->mnemval[5].mnemonic = FW_FLOWC_MNEM_SCHEDCLASS;
5688 flowc->mnemval[5].val = htobe32(cst->schedcl);
5689
5690 commit_wrq_wr(cst->eo_txq, flowc, &cookie);
5691
5692 cst->flags &= ~EO_FLOWC_PENDING;
5693 cst->flags |= EO_FLOWC_RPL_PENDING;
5694 MPASS(cst->tx_credits >= ETID_FLOWC_LEN16); /* flowc is first WR. */
5695 cst->tx_credits -= ETID_FLOWC_LEN16;
5696
5697 return (0);
5698 }
5699
5700 #define ETID_FLUSH_LEN16 (howmany(sizeof (struct fw_flowc_wr), 16))
5701
5702 void
send_etid_flush_wr(struct cxgbe_snd_tag * cst)5703 send_etid_flush_wr(struct cxgbe_snd_tag *cst)
5704 {
5705 struct fw_flowc_wr *flowc;
5706 struct wrq_cookie cookie;
5707
5708 mtx_assert(&cst->lock, MA_OWNED);
5709
5710 flowc = start_wrq_wr(cst->eo_txq, ETID_FLUSH_LEN16, &cookie);
5711 if (__predict_false(flowc == NULL))
5712 CXGBE_UNIMPLEMENTED(__func__);
5713
5714 bzero(flowc, ETID_FLUSH_LEN16 * 16);
5715 flowc->op_to_nparams = htobe32(V_FW_WR_OP(FW_FLOWC_WR) |
5716 V_FW_FLOWC_WR_NPARAMS(0) | F_FW_WR_COMPL);
5717 flowc->flowid_len16 = htobe32(V_FW_WR_LEN16(ETID_FLUSH_LEN16) |
5718 V_FW_WR_FLOWID(cst->etid));
5719
5720 commit_wrq_wr(cst->eo_txq, flowc, &cookie);
5721
5722 cst->flags |= EO_FLUSH_RPL_PENDING;
5723 MPASS(cst->tx_credits >= ETID_FLUSH_LEN16);
5724 cst->tx_credits -= ETID_FLUSH_LEN16;
5725 cst->ncompl++;
5726 }
5727
5728 static void
write_ethofld_wr(struct cxgbe_snd_tag * cst,struct fw_eth_tx_eo_wr * wr,struct mbuf * m0,int compl)5729 write_ethofld_wr(struct cxgbe_snd_tag *cst, struct fw_eth_tx_eo_wr *wr,
5730 struct mbuf *m0, int compl)
5731 {
5732 struct cpl_tx_pkt_core *cpl;
5733 uint64_t ctrl1;
5734 uint32_t ctrl; /* used in many unrelated places */
5735 int len16, pktlen, nsegs, immhdrs;
5736 caddr_t dst;
5737 uintptr_t p;
5738 struct ulptx_sgl *usgl;
5739 struct sglist sg;
5740 struct sglist_seg segs[38]; /* XXX: find real limit. XXX: get off the stack */
5741
5742 mtx_assert(&cst->lock, MA_OWNED);
5743 M_ASSERTPKTHDR(m0);
5744 KASSERT(m0->m_pkthdr.l2hlen > 0 && m0->m_pkthdr.l3hlen > 0 &&
5745 m0->m_pkthdr.l4hlen > 0,
5746 ("%s: ethofld mbuf %p is missing header lengths", __func__, m0));
5747
5748 len16 = mbuf_eo_len16(m0);
5749 nsegs = mbuf_eo_nsegs(m0);
5750 pktlen = m0->m_pkthdr.len;
5751 ctrl = sizeof(struct cpl_tx_pkt_core);
5752 if (needs_tso(m0))
5753 ctrl += sizeof(struct cpl_tx_pkt_lso_core);
5754 immhdrs = m0->m_pkthdr.l2hlen + m0->m_pkthdr.l3hlen + m0->m_pkthdr.l4hlen;
5755 ctrl += immhdrs;
5756
5757 wr->op_immdlen = htobe32(V_FW_WR_OP(FW_ETH_TX_EO_WR) |
5758 V_FW_ETH_TX_EO_WR_IMMDLEN(ctrl) | V_FW_WR_COMPL(!!compl));
5759 wr->equiq_to_len16 = htobe32(V_FW_WR_LEN16(len16) |
5760 V_FW_WR_FLOWID(cst->etid));
5761 wr->r3 = 0;
5762 if (needs_udp_csum(m0)) {
5763 wr->u.udpseg.type = FW_ETH_TX_EO_TYPE_UDPSEG;
5764 wr->u.udpseg.ethlen = m0->m_pkthdr.l2hlen;
5765 wr->u.udpseg.iplen = htobe16(m0->m_pkthdr.l3hlen);
5766 wr->u.udpseg.udplen = m0->m_pkthdr.l4hlen;
5767 wr->u.udpseg.rtplen = 0;
5768 wr->u.udpseg.r4 = 0;
5769 wr->u.udpseg.mss = htobe16(pktlen - immhdrs);
5770 wr->u.udpseg.schedpktsize = wr->u.udpseg.mss;
5771 wr->u.udpseg.plen = htobe32(pktlen - immhdrs);
5772 cpl = (void *)(wr + 1);
5773 } else {
5774 MPASS(needs_tcp_csum(m0));
5775 wr->u.tcpseg.type = FW_ETH_TX_EO_TYPE_TCPSEG;
5776 wr->u.tcpseg.ethlen = m0->m_pkthdr.l2hlen;
5777 wr->u.tcpseg.iplen = htobe16(m0->m_pkthdr.l3hlen);
5778 wr->u.tcpseg.tcplen = m0->m_pkthdr.l4hlen;
5779 wr->u.tcpseg.tsclk_tsoff = mbuf_eo_tsclk_tsoff(m0);
5780 wr->u.tcpseg.r4 = 0;
5781 wr->u.tcpseg.r5 = 0;
5782 wr->u.tcpseg.plen = htobe32(pktlen - immhdrs);
5783
5784 if (needs_tso(m0)) {
5785 struct cpl_tx_pkt_lso_core *lso = (void *)(wr + 1);
5786
5787 wr->u.tcpseg.mss = htobe16(m0->m_pkthdr.tso_segsz);
5788
5789 ctrl = V_LSO_OPCODE(CPL_TX_PKT_LSO) |
5790 F_LSO_FIRST_SLICE | F_LSO_LAST_SLICE |
5791 V_LSO_IPHDR_LEN(m0->m_pkthdr.l3hlen >> 2) |
5792 V_LSO_TCPHDR_LEN(m0->m_pkthdr.l4hlen >> 2);
5793 if (m0->m_pkthdr.l2hlen == sizeof(struct ether_vlan_header))
5794 ctrl |= V_LSO_ETHHDR_LEN(1);
5795 if (m0->m_pkthdr.l3hlen == sizeof(struct ip6_hdr))
5796 ctrl |= F_LSO_IPV6;
5797 lso->lso_ctrl = htobe32(ctrl);
5798 lso->ipid_ofst = htobe16(0);
5799 lso->mss = htobe16(m0->m_pkthdr.tso_segsz);
5800 lso->seqno_offset = htobe32(0);
5801 lso->len = htobe32(pktlen);
5802
5803 cpl = (void *)(lso + 1);
5804 } else {
5805 wr->u.tcpseg.mss = htobe16(0xffff);
5806 cpl = (void *)(wr + 1);
5807 }
5808 }
5809
5810 /* Checksum offload must be requested for ethofld. */
5811 ctrl1 = 0;
5812 MPASS(needs_l4_csum(m0));
5813
5814 /* VLAN tag insertion */
5815 if (needs_vlan_insertion(m0)) {
5816 ctrl1 |= F_TXPKT_VLAN_VLD |
5817 V_TXPKT_VLAN(m0->m_pkthdr.ether_vtag);
5818 }
5819
5820 /* CPL header */
5821 cpl->ctrl0 = cst->ctrl0;
5822 cpl->pack = 0;
5823 cpl->len = htobe16(pktlen);
5824 cpl->ctrl1 = htobe64(ctrl1);
5825
5826 /* Copy Ethernet, IP & TCP/UDP hdrs as immediate data */
5827 p = (uintptr_t)(cpl + 1);
5828 m_copydata(m0, 0, immhdrs, (void *)p);
5829
5830 /* SGL */
5831 dst = (void *)(cpl + 1);
5832 if (nsegs > 0) {
5833 int i, pad;
5834
5835 /* zero-pad upto next 16Byte boundary, if not 16Byte aligned */
5836 p += immhdrs;
5837 pad = 16 - (immhdrs & 0xf);
5838 bzero((void *)p, pad);
5839
5840 usgl = (void *)(p + pad);
5841 usgl->cmd_nsge = htobe32(V_ULPTX_CMD(ULP_TX_SC_DSGL) |
5842 V_ULPTX_NSGE(nsegs));
5843
5844 sglist_init(&sg, nitems(segs), segs);
5845 for (; m0 != NULL; m0 = m0->m_next) {
5846 if (__predict_false(m0->m_len == 0))
5847 continue;
5848 if (immhdrs >= m0->m_len) {
5849 immhdrs -= m0->m_len;
5850 continue;
5851 }
5852
5853 sglist_append(&sg, mtod(m0, char *) + immhdrs,
5854 m0->m_len - immhdrs);
5855 immhdrs = 0;
5856 }
5857 MPASS(sg.sg_nseg == nsegs);
5858
5859 /*
5860 * Zero pad last 8B in case the WR doesn't end on a 16B
5861 * boundary.
5862 */
5863 *(uint64_t *)((char *)wr + len16 * 16 - 8) = 0;
5864
5865 usgl->len0 = htobe32(segs[0].ss_len);
5866 usgl->addr0 = htobe64(segs[0].ss_paddr);
5867 for (i = 0; i < nsegs - 1; i++) {
5868 usgl->sge[i / 2].len[i & 1] = htobe32(segs[i + 1].ss_len);
5869 usgl->sge[i / 2].addr[i & 1] = htobe64(segs[i + 1].ss_paddr);
5870 }
5871 if (i & 1)
5872 usgl->sge[i / 2].len[1] = htobe32(0);
5873 }
5874
5875 }
5876
5877 static void
ethofld_tx(struct cxgbe_snd_tag * cst)5878 ethofld_tx(struct cxgbe_snd_tag *cst)
5879 {
5880 struct mbuf *m;
5881 struct wrq_cookie cookie;
5882 int next_credits, compl;
5883 struct fw_eth_tx_eo_wr *wr;
5884
5885 mtx_assert(&cst->lock, MA_OWNED);
5886
5887 while ((m = mbufq_first(&cst->pending_tx)) != NULL) {
5888 M_ASSERTPKTHDR(m);
5889
5890 /* How many len16 credits do we need to send this mbuf. */
5891 next_credits = mbuf_eo_len16(m);
5892 MPASS(next_credits > 0);
5893 if (next_credits > cst->tx_credits) {
5894 /*
5895 * Tx will make progress eventually because there is at
5896 * least one outstanding fw4_ack that will return
5897 * credits and kick the tx.
5898 */
5899 MPASS(cst->ncompl > 0);
5900 return;
5901 }
5902 wr = start_wrq_wr(cst->eo_txq, next_credits, &cookie);
5903 if (__predict_false(wr == NULL)) {
5904 /* XXX: wishful thinking, not a real assertion. */
5905 MPASS(cst->ncompl > 0);
5906 return;
5907 }
5908 cst->tx_credits -= next_credits;
5909 cst->tx_nocompl += next_credits;
5910 compl = cst->ncompl == 0 || cst->tx_nocompl >= cst->tx_total / 2;
5911 ETHER_BPF_MTAP(cst->com.ifp, m);
5912 write_ethofld_wr(cst, wr, m, compl);
5913 commit_wrq_wr(cst->eo_txq, wr, &cookie);
5914 if (compl) {
5915 cst->ncompl++;
5916 cst->tx_nocompl = 0;
5917 }
5918 (void) mbufq_dequeue(&cst->pending_tx);
5919 mbufq_enqueue(&cst->pending_fwack, m);
5920 }
5921 }
5922
5923 int
ethofld_transmit(struct ifnet * ifp,struct mbuf * m0)5924 ethofld_transmit(struct ifnet *ifp, struct mbuf *m0)
5925 {
5926 struct cxgbe_snd_tag *cst;
5927 int rc;
5928
5929 MPASS(m0->m_nextpkt == NULL);
5930 MPASS(m0->m_pkthdr.snd_tag != NULL);
5931 cst = mst_to_cst(m0->m_pkthdr.snd_tag);
5932
5933 mtx_lock(&cst->lock);
5934 MPASS(cst->flags & EO_SND_TAG_REF);
5935
5936 if (__predict_false(cst->flags & EO_FLOWC_PENDING)) {
5937 struct vi_info *vi = ifp->if_softc;
5938 struct port_info *pi = vi->pi;
5939 struct adapter *sc = pi->adapter;
5940 const uint32_t rss_mask = vi->rss_size - 1;
5941 uint32_t rss_hash;
5942
5943 cst->eo_txq = &sc->sge.ofld_txq[vi->first_ofld_txq];
5944 if (M_HASHTYPE_ISHASH(m0))
5945 rss_hash = m0->m_pkthdr.flowid;
5946 else
5947 rss_hash = arc4random();
5948 /* We assume RSS hashing */
5949 cst->iqid = vi->rss[rss_hash & rss_mask];
5950 cst->eo_txq += rss_hash % vi->nofldtxq;
5951 rc = send_etid_flowc_wr(cst, pi, vi);
5952 if (rc != 0)
5953 goto done;
5954 }
5955
5956 if (__predict_false(cst->plen + m0->m_pkthdr.len > eo_max_backlog)) {
5957 rc = ENOBUFS;
5958 goto done;
5959 }
5960
5961 mbufq_enqueue(&cst->pending_tx, m0);
5962 cst->plen += m0->m_pkthdr.len;
5963
5964 ethofld_tx(cst);
5965 rc = 0;
5966 done:
5967 mtx_unlock(&cst->lock);
5968 if (__predict_false(rc != 0))
5969 m_freem(m0);
5970 return (rc);
5971 }
5972
5973 static int
ethofld_fw4_ack(struct sge_iq * iq,const struct rss_header * rss,struct mbuf * m0)5974 ethofld_fw4_ack(struct sge_iq *iq, const struct rss_header *rss, struct mbuf *m0)
5975 {
5976 struct adapter *sc = iq->adapter;
5977 const struct cpl_fw4_ack *cpl = (const void *)(rss + 1);
5978 struct mbuf *m;
5979 u_int etid = G_CPL_FW4_ACK_FLOWID(be32toh(OPCODE_TID(cpl)));
5980 struct cxgbe_snd_tag *cst;
5981 uint8_t credits = cpl->credits;
5982
5983 cst = lookup_etid(sc, etid);
5984 mtx_lock(&cst->lock);
5985 if (__predict_false(cst->flags & EO_FLOWC_RPL_PENDING)) {
5986 MPASS(credits >= ETID_FLOWC_LEN16);
5987 credits -= ETID_FLOWC_LEN16;
5988 cst->flags &= ~EO_FLOWC_RPL_PENDING;
5989 }
5990
5991 KASSERT(cst->ncompl > 0,
5992 ("%s: etid %u (%p) wasn't expecting completion.",
5993 __func__, etid, cst));
5994 cst->ncompl--;
5995
5996 while (credits > 0) {
5997 m = mbufq_dequeue(&cst->pending_fwack);
5998 if (__predict_false(m == NULL)) {
5999 /*
6000 * The remaining credits are for the final flush that
6001 * was issued when the tag was freed by the kernel.
6002 */
6003 MPASS((cst->flags &
6004 (EO_FLUSH_RPL_PENDING | EO_SND_TAG_REF)) ==
6005 EO_FLUSH_RPL_PENDING);
6006 MPASS(credits == ETID_FLUSH_LEN16);
6007 MPASS(cst->tx_credits + cpl->credits == cst->tx_total);
6008 MPASS(cst->ncompl == 0);
6009
6010 cst->flags &= ~EO_FLUSH_RPL_PENDING;
6011 cst->tx_credits += cpl->credits;
6012 freetag:
6013 cxgbe_snd_tag_free_locked(cst);
6014 return (0); /* cst is gone. */
6015 }
6016 KASSERT(m != NULL,
6017 ("%s: too many credits (%u, %u)", __func__, cpl->credits,
6018 credits));
6019 KASSERT(credits >= mbuf_eo_len16(m),
6020 ("%s: too few credits (%u, %u, %u)", __func__,
6021 cpl->credits, credits, mbuf_eo_len16(m)));
6022 credits -= mbuf_eo_len16(m);
6023 cst->plen -= m->m_pkthdr.len;
6024 m_freem(m);
6025 }
6026
6027 cst->tx_credits += cpl->credits;
6028 MPASS(cst->tx_credits <= cst->tx_total);
6029
6030 m = mbufq_first(&cst->pending_tx);
6031 if (m != NULL && cst->tx_credits >= mbuf_eo_len16(m))
6032 ethofld_tx(cst);
6033
6034 if (__predict_false((cst->flags & EO_SND_TAG_REF) == 0) &&
6035 cst->ncompl == 0) {
6036 if (cst->tx_credits == cst->tx_total)
6037 goto freetag;
6038 else {
6039 MPASS((cst->flags & EO_FLUSH_RPL_PENDING) == 0);
6040 send_etid_flush_wr(cst);
6041 }
6042 }
6043
6044 mtx_unlock(&cst->lock);
6045
6046 return (0);
6047 }
6048 #endif
6049