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1 /*
2  * Copyright (c) 2013-2016 Qlogic Corporation
3  * All rights reserved.
4  *
5  *  Redistribution and use in source and binary forms, with or without
6  *  modification, are permitted provided that the following conditions
7  *  are met:
8  *
9  *  1. Redistributions of source code must retain the above copyright
10  *     notice, this list of conditions and the following disclaimer.
11  *  2. Redistributions in binary form must reproduce the above copyright
12  *     notice, this list of conditions and the following disclaimer in the
13  *     documentation and/or other materials provided with the distribution.
14  *
15  *  THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS "AS IS"
16  *  and ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
17  *  IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
18  *  ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT OWNER OR CONTRIBUTORS BE
19  *  LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
20  *  CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
21  *  SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
22  *  INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
23  *  CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
24  *  ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
25  *  POSSIBILITY OF SUCH DAMAGE.
26  */
27
28 /*
29  * File: ql_os.c
30  * Author : David C Somayajulu, Qlogic Corporation, Aliso Viejo, CA 92656.
31  */
32
33 #include <sys/cdefs.h>
34 __FBSDID("$FreeBSD$");
35
36
37 #include "ql_os.h"
38 #include "ql_hw.h"
39 #include "ql_def.h"
40 #include "ql_inline.h"
41 #include "ql_ver.h"
42 #include "ql_glbl.h"
43 #include "ql_dbg.h"
44 #include <sys/smp.h>
45
46 /*
47  * Some PCI Configuration Space Related Defines
48  */
49
50 #ifndef PCI_VENDOR_QLOGIC
51 #define PCI_VENDOR_QLOGIC       0x1077
52 #endif
53
54 #ifndef PCI_PRODUCT_QLOGIC_ISP8030
55 #define PCI_PRODUCT_QLOGIC_ISP8030      0x8030
56 #endif
57
58 #define PCI_QLOGIC_ISP8030 \
59         ((PCI_PRODUCT_QLOGIC_ISP8030 << 16) | PCI_VENDOR_QLOGIC)
60
61 /*
62  * static functions
63  */
64 static int qla_alloc_parent_dma_tag(qla_host_t *ha);
65 static void qla_free_parent_dma_tag(qla_host_t *ha);
66 static int qla_alloc_xmt_bufs(qla_host_t *ha);
67 static void qla_free_xmt_bufs(qla_host_t *ha);
68 static int qla_alloc_rcv_bufs(qla_host_t *ha);
69 static void qla_free_rcv_bufs(qla_host_t *ha);
70 static void qla_clear_tx_buf(qla_host_t *ha, qla_tx_buf_t *txb);
71
72 static void qla_init_ifnet(device_t dev, qla_host_t *ha);
73 static int qla_sysctl_get_stats(SYSCTL_HANDLER_ARGS);
74 static int qla_sysctl_get_link_status(SYSCTL_HANDLER_ARGS);
75 static void qla_release(qla_host_t *ha);
76 static void qla_dmamap_callback(void *arg, bus_dma_segment_t *segs, int nsegs,
77                 int error);
78 static void qla_stop(qla_host_t *ha);
79 static void qla_get_peer(qla_host_t *ha);
80 static void qla_error_recovery(void *context, int pending);
81 static void qla_async_event(void *context, int pending);
82 static int qla_send(qla_host_t *ha, struct mbuf **m_headp, uint32_t txr_idx,
83                 uint32_t iscsi_pdu);
84
85 /*
86  * Hooks to the Operating Systems
87  */
88 static int qla_pci_probe (device_t);
89 static int qla_pci_attach (device_t);
90 static int qla_pci_detach (device_t);
91
92 static void qla_init(void *arg);
93 static int qla_ioctl(struct ifnet *ifp, u_long cmd, caddr_t data);
94 static int qla_media_change(struct ifnet *ifp);
95 static void qla_media_status(struct ifnet *ifp, struct ifmediareq *ifmr);
96
97 static int qla_transmit(struct ifnet *ifp, struct mbuf  *mp);
98 static void qla_qflush(struct ifnet *ifp);
99 static int qla_alloc_tx_br(qla_host_t *ha, qla_tx_fp_t *tx_fp);
100 static void qla_free_tx_br(qla_host_t *ha, qla_tx_fp_t *tx_fp);
101 static int qla_create_fp_taskqueues(qla_host_t *ha);
102 static void qla_destroy_fp_taskqueues(qla_host_t *ha);
103 static void qla_drain_fp_taskqueues(qla_host_t *ha);
104
105 static device_method_t qla_pci_methods[] = {
106         /* Device interface */
107         DEVMETHOD(device_probe, qla_pci_probe),
108         DEVMETHOD(device_attach, qla_pci_attach),
109         DEVMETHOD(device_detach, qla_pci_detach),
110         { 0, 0 }
111 };
112
113 static driver_t qla_pci_driver = {
114         "ql", qla_pci_methods, sizeof (qla_host_t),
115 };
116
117 static devclass_t qla83xx_devclass;
118
119 DRIVER_MODULE(qla83xx, pci, qla_pci_driver, qla83xx_devclass, 0, 0);
120
121 MODULE_DEPEND(qla83xx, pci, 1, 1, 1);
122 MODULE_DEPEND(qla83xx, ether, 1, 1, 1);
123
124 MALLOC_DEFINE(M_QLA83XXBUF, "qla83xxbuf", "Buffers for qla83xx driver");
125
126 #define QL_STD_REPLENISH_THRES          0
127 #define QL_JUMBO_REPLENISH_THRES        32
128
129
130 static char dev_str[64];
131 static char ver_str[64];
132
133 /*
134  * Name:        qla_pci_probe
135  * Function:    Validate the PCI device to be a QLA80XX device
136  */
137 static int
138 qla_pci_probe(device_t dev)
139 {
140         switch ((pci_get_device(dev) << 16) | (pci_get_vendor(dev))) {
141         case PCI_QLOGIC_ISP8030:
142                 snprintf(dev_str, sizeof(dev_str), "%s v%d.%d.%d",
143                         "Qlogic ISP 83xx PCI CNA Adapter-Ethernet Function",
144                         QLA_VERSION_MAJOR, QLA_VERSION_MINOR,
145                         QLA_VERSION_BUILD);
146                 snprintf(ver_str, sizeof(ver_str), "v%d.%d.%d",
147                         QLA_VERSION_MAJOR, QLA_VERSION_MINOR,
148                         QLA_VERSION_BUILD);
149                 device_set_desc(dev, dev_str);
150                 break;
151         default:
152                 return (ENXIO);
153         }
154
155         if (bootverbose)
156                 printf("%s: %s\n ", __func__, dev_str);
157
158         return (BUS_PROBE_DEFAULT);
159 }
160
161 static void
162 qla_add_sysctls(qla_host_t *ha)
163 {
164         device_t dev = ha->pci_dev;
165
166         SYSCTL_ADD_STRING(device_get_sysctl_ctx(dev),
167                 SYSCTL_CHILDREN(device_get_sysctl_tree(dev)),
168                 OID_AUTO, "version", CTLFLAG_RD,
169                 ver_str, 0, "Driver Version");
170
171         SYSCTL_ADD_PROC(device_get_sysctl_ctx(dev),
172                 SYSCTL_CHILDREN(device_get_sysctl_tree(dev)),
173                 OID_AUTO, "stats", CTLTYPE_INT | CTLFLAG_RW,
174                 (void *)ha, 0,
175                 qla_sysctl_get_stats, "I", "Statistics");
176
177         SYSCTL_ADD_STRING(device_get_sysctl_ctx(dev),
178                 SYSCTL_CHILDREN(device_get_sysctl_tree(dev)),
179                 OID_AUTO, "fw_version", CTLFLAG_RD,
180                 ha->fw_ver_str, 0, "firmware version");
181
182         SYSCTL_ADD_PROC(device_get_sysctl_ctx(dev),
183                 SYSCTL_CHILDREN(device_get_sysctl_tree(dev)),
184                 OID_AUTO, "link_status", CTLTYPE_INT | CTLFLAG_RW,
185                 (void *)ha, 0,
186                 qla_sysctl_get_link_status, "I", "Link Status");
187
188         ha->dbg_level = 0;
189         SYSCTL_ADD_UINT(device_get_sysctl_ctx(dev),
190                 SYSCTL_CHILDREN(device_get_sysctl_tree(dev)),
191                 OID_AUTO, "debug", CTLFLAG_RW,
192                 &ha->dbg_level, ha->dbg_level, "Debug Level");
193
194         ha->std_replenish = QL_STD_REPLENISH_THRES;
195         SYSCTL_ADD_UINT(device_get_sysctl_ctx(dev),
196                 SYSCTL_CHILDREN(device_get_sysctl_tree(dev)),
197                 OID_AUTO, "std_replenish", CTLFLAG_RW,
198                 &ha->std_replenish, ha->std_replenish,
199                 "Threshold for Replenishing Standard Frames");
200
201         SYSCTL_ADD_QUAD(device_get_sysctl_ctx(dev),
202                 SYSCTL_CHILDREN(device_get_sysctl_tree(dev)),
203                 OID_AUTO, "ipv4_lro",
204                 CTLFLAG_RD, &ha->ipv4_lro,
205                 "number of ipv4 lro completions");
206
207         SYSCTL_ADD_QUAD(device_get_sysctl_ctx(dev),
208                 SYSCTL_CHILDREN(device_get_sysctl_tree(dev)),
209                 OID_AUTO, "ipv6_lro",
210                 CTLFLAG_RD, &ha->ipv6_lro,
211                 "number of ipv6 lro completions");
212
213         SYSCTL_ADD_QUAD(device_get_sysctl_ctx(dev),
214                 SYSCTL_CHILDREN(device_get_sysctl_tree(dev)),
215                 OID_AUTO, "tx_tso_frames",
216                 CTLFLAG_RD, &ha->tx_tso_frames,
217                 "number of Tx TSO Frames");
218
219         SYSCTL_ADD_QUAD(device_get_sysctl_ctx(dev),
220                 SYSCTL_CHILDREN(device_get_sysctl_tree(dev)),
221                 OID_AUTO, "hw_vlan_tx_frames",
222                 CTLFLAG_RD, &ha->hw_vlan_tx_frames,
223                 "number of Tx VLAN Frames");
224
225         return;
226 }
227
228 static void
229 qla_watchdog(void *arg)
230 {
231         qla_host_t *ha = arg;
232         qla_hw_t *hw;
233         struct ifnet *ifp;
234         uint32_t i;
235
236         hw = &ha->hw;
237         ifp = ha->ifp;
238
239         if (ha->flags.qla_watchdog_exit) {
240                 ha->qla_watchdog_exited = 1;
241                 return;
242         }
243         ha->qla_watchdog_exited = 0;
244
245         if (!ha->flags.qla_watchdog_pause) {
246                 if (ql_hw_check_health(ha) || ha->qla_initiate_recovery ||
247                         (ha->msg_from_peer == QL_PEER_MSG_RESET)) {
248                         ha->qla_watchdog_paused = 1;
249                         ha->flags.qla_watchdog_pause = 1;
250                         ha->qla_initiate_recovery = 0;
251                         ha->err_inject = 0;
252                         device_printf(ha->pci_dev,
253                                 "%s: taskqueue_enqueue(err_task) \n", __func__);
254                         taskqueue_enqueue(ha->err_tq, &ha->err_task);
255                 } else if (ha->flags.qla_interface_up) {
256
257                         if (ha->async_event) {
258                                 ha->async_event = 0;
259                                 taskqueue_enqueue(ha->async_event_tq,
260                                         &ha->async_event_task);
261                         }
262
263                         for (i = 0; i < ha->hw.num_sds_rings; i++) {
264                                 qla_tx_fp_t *fp = &ha->tx_fp[i];
265
266                                 if (fp->fp_taskqueue != NULL)
267                                         taskqueue_enqueue(fp->fp_taskqueue,
268                                                 &fp->fp_task);
269                         }
270
271                         ha->qla_watchdog_paused = 0;
272                 } else {
273                         ha->qla_watchdog_paused = 0;
274                 }
275         } else {
276                 ha->qla_watchdog_paused = 1;
277         }
278
279         ha->watchdog_ticks = ha->watchdog_ticks++ % 1000;
280         callout_reset(&ha->tx_callout, QLA_WATCHDOG_CALLOUT_TICKS,
281                 qla_watchdog, ha);
282 }
283
284 /*
285  * Name:        qla_pci_attach
286  * Function:    attaches the device to the operating system
287  */
288 static int
289 qla_pci_attach(device_t dev)
290 {
291         qla_host_t *ha = NULL;
292         uint32_t rsrc_len;
293         int i;
294         uint32_t num_rcvq = 0;
295
296         if ((ha = device_get_softc(dev)) == NULL) {
297                 device_printf(dev, "cannot get softc\n");
298                 return (ENOMEM);
299         }
300
301         memset(ha, 0, sizeof (qla_host_t));
302
303         if (pci_get_device(dev) != PCI_PRODUCT_QLOGIC_ISP8030) {
304                 device_printf(dev, "device is not ISP8030\n");
305                 return (ENXIO);
306         }
307
308         ha->pci_func = pci_get_function(dev) & 0x1;
309
310         ha->pci_dev = dev;
311
312         pci_enable_busmaster(dev);
313
314         ha->reg_rid = PCIR_BAR(0);
315         ha->pci_reg = bus_alloc_resource_any(dev, SYS_RES_MEMORY, &ha->reg_rid,
316                                 RF_ACTIVE);
317
318         if (ha->pci_reg == NULL) {
319                 device_printf(dev, "unable to map any ports\n");
320                 goto qla_pci_attach_err;
321         }
322
323         rsrc_len = (uint32_t) bus_get_resource_count(dev, SYS_RES_MEMORY,
324                                         ha->reg_rid);
325
326         mtx_init(&ha->hw_lock, "qla83xx_hw_lock", MTX_NETWORK_LOCK, MTX_DEF);
327
328         qla_add_sysctls(ha);
329         ql_hw_add_sysctls(ha);
330
331         ha->flags.lock_init = 1;
332
333         ha->reg_rid1 = PCIR_BAR(2);
334         ha->pci_reg1 = bus_alloc_resource_any(dev, SYS_RES_MEMORY,
335                         &ha->reg_rid1, RF_ACTIVE);
336
337         ha->msix_count = pci_msix_count(dev);
338
339         if (ha->msix_count < (ha->hw.num_sds_rings + 1)) {
340                 device_printf(dev, "%s: msix_count[%d] not enough\n", __func__,
341                         ha->msix_count);
342                 goto qla_pci_attach_err;
343         }
344
345         QL_DPRINT2(ha, (dev, "%s: ha %p pci_func 0x%x rsrc_count 0x%08x"
346                 " msix_count 0x%x pci_reg %p pci_reg1 %p\n", __func__, ha,
347                 ha->pci_func, rsrc_len, ha->msix_count, ha->pci_reg,
348                 ha->pci_reg1));
349
350         /* initialize hardware */
351         if (ql_init_hw(ha)) {
352                 device_printf(dev, "%s: ql_init_hw failed\n", __func__);
353                 goto qla_pci_attach_err;
354         }
355
356         device_printf(dev, "%s: firmware[%d.%d.%d.%d]\n", __func__,
357                 ha->fw_ver_major, ha->fw_ver_minor, ha->fw_ver_sub,
358                 ha->fw_ver_build);
359         snprintf(ha->fw_ver_str, sizeof(ha->fw_ver_str), "%d.%d.%d.%d",
360                         ha->fw_ver_major, ha->fw_ver_minor, ha->fw_ver_sub,
361                         ha->fw_ver_build);
362
363         if (qla_get_nic_partition(ha, NULL, &num_rcvq)) {
364                 device_printf(dev, "%s: qla_get_nic_partition failed\n",
365                         __func__);
366                 goto qla_pci_attach_err;
367         }
368         device_printf(dev, "%s: ha %p pci_func 0x%x rsrc_count 0x%08x"
369                 " msix_count 0x%x pci_reg %p pci_reg1 %p num_rcvq = %d\n",
370                 __func__, ha, ha->pci_func, rsrc_len, ha->msix_count,
371                 ha->pci_reg, ha->pci_reg1, num_rcvq);
372
373
374 #ifdef QL_ENABLE_ISCSI_TLV
375         if ((ha->msix_count  < 64) || (num_rcvq != 32)) {
376                 ha->hw.num_sds_rings = 15;
377                 ha->hw.num_tx_rings = ha->hw.num_sds_rings * 2;
378         }
379 #endif /* #ifdef QL_ENABLE_ISCSI_TLV */
380         ha->hw.num_rds_rings = ha->hw.num_sds_rings;
381
382         ha->msix_count = ha->hw.num_sds_rings + 1;
383
384         if (pci_alloc_msix(dev, &ha->msix_count)) {
385                 device_printf(dev, "%s: pci_alloc_msi[%d] failed\n", __func__,
386                         ha->msix_count);
387                 ha->msix_count = 0;
388                 goto qla_pci_attach_err;
389         }
390
391         ha->mbx_irq_rid = 1;
392         ha->mbx_irq = bus_alloc_resource_any(dev, SYS_RES_IRQ,
393                                 &ha->mbx_irq_rid,
394                                 (RF_ACTIVE | RF_SHAREABLE));
395         if (ha->mbx_irq == NULL) {
396                 device_printf(dev, "could not allocate mbx interrupt\n");
397                 goto qla_pci_attach_err;
398         }
399         if (bus_setup_intr(dev, ha->mbx_irq, (INTR_TYPE_NET | INTR_MPSAFE),
400                 NULL, ql_mbx_isr, ha, &ha->mbx_handle)) {
401                 device_printf(dev, "could not setup mbx interrupt\n");
402                 goto qla_pci_attach_err;
403         }
404
405         for (i = 0; i < ha->hw.num_sds_rings; i++) {
406                 ha->irq_vec[i].sds_idx = i;
407                 ha->irq_vec[i].ha = ha;
408                 ha->irq_vec[i].irq_rid = 2 + i;
409
410                 ha->irq_vec[i].irq = bus_alloc_resource_any(dev, SYS_RES_IRQ,
411                                 &ha->irq_vec[i].irq_rid,
412                                 (RF_ACTIVE | RF_SHAREABLE));
413
414                 if (ha->irq_vec[i].irq == NULL) {
415                         device_printf(dev, "could not allocate interrupt\n");
416                         goto qla_pci_attach_err;
417                 }
418                 if (bus_setup_intr(dev, ha->irq_vec[i].irq,
419                         (INTR_TYPE_NET | INTR_MPSAFE),
420                         NULL, ql_isr, &ha->irq_vec[i],
421                         &ha->irq_vec[i].handle)) {
422                         device_printf(dev, "could not setup interrupt\n");
423                         goto qla_pci_attach_err;
424                 }
425
426                 ha->tx_fp[i].ha = ha;
427                 ha->tx_fp[i].txr_idx = i;
428
429                 if (qla_alloc_tx_br(ha, &ha->tx_fp[i])) {
430                         device_printf(dev, "%s: could not allocate tx_br[%d]\n",
431                                 __func__, i);
432                         goto qla_pci_attach_err;
433                 }
434         }
435
436         if (qla_create_fp_taskqueues(ha) != 0)
437                 goto qla_pci_attach_err;
438
439         printf("%s: mp__ncpus %d sds %d rds %d msi-x %d\n", __func__, mp_ncpus,
440                 ha->hw.num_sds_rings, ha->hw.num_rds_rings, ha->msix_count);
441
442         ql_read_mac_addr(ha);
443
444         /* allocate parent dma tag */
445         if (qla_alloc_parent_dma_tag(ha)) {
446                 device_printf(dev, "%s: qla_alloc_parent_dma_tag failed\n",
447                         __func__);
448                 goto qla_pci_attach_err;
449         }
450
451         /* alloc all dma buffers */
452         if (ql_alloc_dma(ha)) {
453                 device_printf(dev, "%s: ql_alloc_dma failed\n", __func__);
454                 goto qla_pci_attach_err;
455         }
456         qla_get_peer(ha);
457
458         if (ql_minidump_init(ha) != 0) {
459                 device_printf(dev, "%s: ql_minidump_init failed\n", __func__);
460                 goto qla_pci_attach_err;
461         }
462         /* create the o.s ethernet interface */
463         qla_init_ifnet(dev, ha);
464
465         ha->flags.qla_watchdog_active = 1;
466         ha->flags.qla_watchdog_pause = 0;
467
468         callout_init(&ha->tx_callout, TRUE);
469         ha->flags.qla_callout_init = 1;
470
471         /* create ioctl device interface */
472         if (ql_make_cdev(ha)) {
473                 device_printf(dev, "%s: ql_make_cdev failed\n", __func__);
474                 goto qla_pci_attach_err;
475         }
476
477         callout_reset(&ha->tx_callout, QLA_WATCHDOG_CALLOUT_TICKS,
478                 qla_watchdog, ha);
479
480         TASK_INIT(&ha->err_task, 0, qla_error_recovery, ha);
481         ha->err_tq = taskqueue_create("qla_errq", M_NOWAIT,
482                         taskqueue_thread_enqueue, &ha->err_tq);
483         taskqueue_start_threads(&ha->err_tq, 1, PI_NET, "%s errq",
484                 device_get_nameunit(ha->pci_dev));
485
486         TASK_INIT(&ha->async_event_task, 0, qla_async_event, ha);
487         ha->async_event_tq = taskqueue_create("qla_asyncq", M_NOWAIT,
488                         taskqueue_thread_enqueue, &ha->async_event_tq);
489         taskqueue_start_threads(&ha->async_event_tq, 1, PI_NET, "%s asyncq",
490                 device_get_nameunit(ha->pci_dev));
491
492         QL_DPRINT2(ha, (dev, "%s: exit 0\n", __func__));
493         return (0);
494
495 qla_pci_attach_err:
496
497         qla_release(ha);
498
499         QL_DPRINT2(ha, (dev, "%s: exit ENXIO\n", __func__));
500         return (ENXIO);
501 }
502
503 /*
504  * Name:        qla_pci_detach
505  * Function:    Unhooks the device from the operating system
506  */
507 static int
508 qla_pci_detach(device_t dev)
509 {
510         qla_host_t *ha = NULL;
511         struct ifnet *ifp;
512
513         QL_DPRINT2(ha, (dev, "%s: enter\n", __func__));
514
515         if ((ha = device_get_softc(dev)) == NULL) {
516                 device_printf(dev, "cannot get softc\n");
517                 return (ENOMEM);
518         }
519
520         ifp = ha->ifp;
521
522         (void)QLA_LOCK(ha, __func__, 0);
523         qla_stop(ha);
524         QLA_UNLOCK(ha, __func__);
525
526         qla_release(ha);
527
528         QL_DPRINT2(ha, (dev, "%s: exit\n", __func__));
529
530         return (0);
531 }
532
533 /*
534  * SYSCTL Related Callbacks
535  */
536 static int
537 qla_sysctl_get_stats(SYSCTL_HANDLER_ARGS)
538 {
539         int err, ret = 0;
540         qla_host_t *ha;
541
542         err = sysctl_handle_int(oidp, &ret, 0, req);
543
544         if (err || !req->newptr)
545                 return (err);
546
547         if (ret == 1) {
548                 ha = (qla_host_t *)arg1;
549                 ql_get_stats(ha);
550         }
551         return (err);
552 }
553 static int
554 qla_sysctl_get_link_status(SYSCTL_HANDLER_ARGS)
555 {
556         int err, ret = 0;
557         qla_host_t *ha;
558
559         err = sysctl_handle_int(oidp, &ret, 0, req);
560
561         if (err || !req->newptr)
562                 return (err);
563
564         if (ret == 1) {
565                 ha = (qla_host_t *)arg1;
566                 ql_hw_link_status(ha);
567         }
568         return (err);
569 }
570
571 /*
572  * Name:        qla_release
573  * Function:    Releases the resources allocated for the device
574  */
575 static void
576 qla_release(qla_host_t *ha)
577 {
578         device_t dev;
579         int i;
580
581         dev = ha->pci_dev;
582
583         if (ha->async_event_tq) {
584                 taskqueue_drain(ha->async_event_tq, &ha->async_event_task);
585                 taskqueue_free(ha->async_event_tq);
586         }
587
588         if (ha->err_tq) {
589                 taskqueue_drain(ha->err_tq, &ha->err_task);
590                 taskqueue_free(ha->err_tq);
591         }
592
593         ql_del_cdev(ha);
594
595         if (ha->flags.qla_watchdog_active) {
596                 ha->flags.qla_watchdog_exit = 1;
597
598                 while (ha->qla_watchdog_exited == 0)
599                         qla_mdelay(__func__, 1);
600         }
601
602         if (ha->flags.qla_callout_init)
603                 callout_stop(&ha->tx_callout);
604
605         if (ha->ifp != NULL)
606                 ether_ifdetach(ha->ifp);
607
608         ql_free_dma(ha); 
609         qla_free_parent_dma_tag(ha);
610
611         if (ha->mbx_handle)
612                 (void)bus_teardown_intr(dev, ha->mbx_irq, ha->mbx_handle);
613
614         if (ha->mbx_irq)
615                 (void) bus_release_resource(dev, SYS_RES_IRQ, ha->mbx_irq_rid,
616                                 ha->mbx_irq);
617
618         for (i = 0; i < ha->hw.num_sds_rings; i++) {
619
620                 if (ha->irq_vec[i].handle) {
621                         (void)bus_teardown_intr(dev, ha->irq_vec[i].irq,
622                                         ha->irq_vec[i].handle);
623                 }
624                         
625                 if (ha->irq_vec[i].irq) {
626                         (void)bus_release_resource(dev, SYS_RES_IRQ,
627                                 ha->irq_vec[i].irq_rid,
628                                 ha->irq_vec[i].irq);
629                 }
630
631                 qla_free_tx_br(ha, &ha->tx_fp[i]);
632         }
633         qla_destroy_fp_taskqueues(ha);
634
635         if (ha->msix_count)
636                 pci_release_msi(dev);
637
638         if (ha->flags.lock_init) {
639                 mtx_destroy(&ha->hw_lock);
640         }
641
642         if (ha->pci_reg)
643                 (void) bus_release_resource(dev, SYS_RES_MEMORY, ha->reg_rid,
644                                 ha->pci_reg);
645
646         if (ha->pci_reg1)
647                 (void) bus_release_resource(dev, SYS_RES_MEMORY, ha->reg_rid1,
648                                 ha->pci_reg1);
649 }
650
651 /*
652  * DMA Related Functions
653  */
654
655 static void
656 qla_dmamap_callback(void *arg, bus_dma_segment_t *segs, int nsegs, int error)
657 {
658         *((bus_addr_t *)arg) = 0;
659
660         if (error) {
661                 printf("%s: bus_dmamap_load failed (%d)\n", __func__, error);
662                 return;
663         }
664
665         *((bus_addr_t *)arg) = segs[0].ds_addr;
666
667         return;
668 }
669
670 int
671 ql_alloc_dmabuf(qla_host_t *ha, qla_dma_t *dma_buf)
672 {
673         int             ret = 0;
674         device_t        dev;
675         bus_addr_t      b_addr;
676
677         dev = ha->pci_dev;
678
679         QL_DPRINT2(ha, (dev, "%s: enter\n", __func__));
680
681         ret = bus_dma_tag_create(
682                         ha->parent_tag,/* parent */
683                         dma_buf->alignment,
684                         ((bus_size_t)(1ULL << 32)),/* boundary */
685                         BUS_SPACE_MAXADDR,      /* lowaddr */
686                         BUS_SPACE_MAXADDR,      /* highaddr */
687                         NULL, NULL,             /* filter, filterarg */
688                         dma_buf->size,          /* maxsize */
689                         1,                      /* nsegments */
690                         dma_buf->size,          /* maxsegsize */
691                         0,                      /* flags */
692                         NULL, NULL,             /* lockfunc, lockarg */
693                         &dma_buf->dma_tag);
694
695         if (ret) {
696                 device_printf(dev, "%s: could not create dma tag\n", __func__);
697                 goto ql_alloc_dmabuf_exit;
698         }
699         ret = bus_dmamem_alloc(dma_buf->dma_tag,
700                         (void **)&dma_buf->dma_b,
701                         (BUS_DMA_ZERO | BUS_DMA_COHERENT | BUS_DMA_NOWAIT),
702                         &dma_buf->dma_map);
703         if (ret) {
704                 bus_dma_tag_destroy(dma_buf->dma_tag);
705                 device_printf(dev, "%s: bus_dmamem_alloc failed\n", __func__);
706                 goto ql_alloc_dmabuf_exit;
707         }
708
709         ret = bus_dmamap_load(dma_buf->dma_tag,
710                         dma_buf->dma_map,
711                         dma_buf->dma_b,
712                         dma_buf->size,
713                         qla_dmamap_callback,
714                         &b_addr, BUS_DMA_NOWAIT);
715
716         if (ret || !b_addr) {
717                 bus_dma_tag_destroy(dma_buf->dma_tag);
718                 bus_dmamem_free(dma_buf->dma_tag, dma_buf->dma_b,
719                         dma_buf->dma_map);
720                 ret = -1;
721                 goto ql_alloc_dmabuf_exit;
722         }
723
724         dma_buf->dma_addr = b_addr;
725
726 ql_alloc_dmabuf_exit:
727         QL_DPRINT2(ha, (dev, "%s: exit ret 0x%08x tag %p map %p b %p sz 0x%x\n",
728                 __func__, ret, (void *)dma_buf->dma_tag,
729                 (void *)dma_buf->dma_map, (void *)dma_buf->dma_b,
730                 dma_buf->size));
731
732         return ret;
733 }
734
735 void
736 ql_free_dmabuf(qla_host_t *ha, qla_dma_t *dma_buf)
737 {
738         bus_dmamap_unload(dma_buf->dma_tag, dma_buf->dma_map); 
739         bus_dmamem_free(dma_buf->dma_tag, dma_buf->dma_b, dma_buf->dma_map);
740         bus_dma_tag_destroy(dma_buf->dma_tag);
741 }
742
743 static int
744 qla_alloc_parent_dma_tag(qla_host_t *ha)
745 {
746         int             ret;
747         device_t        dev;
748
749         dev = ha->pci_dev;
750
751         /*
752          * Allocate parent DMA Tag
753          */
754         ret = bus_dma_tag_create(
755                         bus_get_dma_tag(dev),   /* parent */
756                         1,((bus_size_t)(1ULL << 32)),/* alignment, boundary */
757                         BUS_SPACE_MAXADDR,      /* lowaddr */
758                         BUS_SPACE_MAXADDR,      /* highaddr */
759                         NULL, NULL,             /* filter, filterarg */
760                         BUS_SPACE_MAXSIZE_32BIT,/* maxsize */
761                         0,                      /* nsegments */
762                         BUS_SPACE_MAXSIZE_32BIT,/* maxsegsize */
763                         0,                      /* flags */
764                         NULL, NULL,             /* lockfunc, lockarg */
765                         &ha->parent_tag);
766
767         if (ret) {
768                 device_printf(dev, "%s: could not create parent dma tag\n",
769                         __func__);
770                 return (-1);
771         }
772
773         ha->flags.parent_tag = 1;
774         
775         return (0);
776 }
777
778 static void
779 qla_free_parent_dma_tag(qla_host_t *ha)
780 {
781         if (ha->flags.parent_tag) {
782                 bus_dma_tag_destroy(ha->parent_tag);
783                 ha->flags.parent_tag = 0;
784         }
785 }
786
787 /*
788  * Name: qla_init_ifnet
789  * Function: Creates the Network Device Interface and Registers it with the O.S
790  */
791
792 static void
793 qla_init_ifnet(device_t dev, qla_host_t *ha)
794 {
795         struct ifnet *ifp;
796
797         QL_DPRINT2(ha, (dev, "%s: enter\n", __func__));
798
799         ifp = ha->ifp = if_alloc(IFT_ETHER);
800
801         if (ifp == NULL)
802                 panic("%s: cannot if_alloc()\n", device_get_nameunit(dev));
803
804         if_initname(ifp, device_get_name(dev), device_get_unit(dev));
805
806 #if __FreeBSD_version >= 1000000
807         if_initbaudrate(ifp, IF_Gbps(10));
808         ifp->if_capabilities = IFCAP_LINKSTATE;
809 #else
810         ifp->if_mtu = ETHERMTU;
811         ifp->if_baudrate = (1 * 1000 * 1000 *1000);
812
813 #endif /* #if __FreeBSD_version >= 1000000 */
814
815         ifp->if_init = qla_init;
816         ifp->if_softc = ha;
817         ifp->if_flags = IFF_BROADCAST | IFF_SIMPLEX | IFF_MULTICAST;
818         ifp->if_ioctl = qla_ioctl;
819
820         ifp->if_transmit = qla_transmit;
821         ifp->if_qflush = qla_qflush;
822
823         IFQ_SET_MAXLEN(&ifp->if_snd, qla_get_ifq_snd_maxlen(ha));
824         ifp->if_snd.ifq_drv_maxlen = qla_get_ifq_snd_maxlen(ha);
825         IFQ_SET_READY(&ifp->if_snd);
826
827         ha->max_frame_size = ifp->if_mtu + ETHER_HDR_LEN + ETHER_CRC_LEN;
828
829         ether_ifattach(ifp, qla_get_mac_addr(ha));
830
831         ifp->if_capabilities |= IFCAP_HWCSUM |
832                                 IFCAP_TSO4 |
833                                 IFCAP_JUMBO_MTU |
834                                 IFCAP_VLAN_HWTAGGING |
835                                 IFCAP_VLAN_MTU |
836                                 IFCAP_VLAN_HWTSO |
837                                 IFCAP_LRO;
838
839         ifp->if_capenable = ifp->if_capabilities;
840
841         ifp->if_data.ifi_hdrlen = sizeof(struct ether_vlan_header);
842
843         ifmedia_init(&ha->media, IFM_IMASK, qla_media_change, qla_media_status);
844
845         ifmedia_add(&ha->media, (IFM_ETHER | qla_get_optics(ha) | IFM_FDX), 0,
846                 NULL);
847         ifmedia_add(&ha->media, (IFM_ETHER | IFM_AUTO), 0, NULL);
848
849         ifmedia_set(&ha->media, (IFM_ETHER | IFM_AUTO));
850
851         QL_DPRINT2(ha, (dev, "%s: exit\n", __func__));
852
853         return;
854 }
855
856 static void
857 qla_init_locked(qla_host_t *ha)
858 {
859         struct ifnet *ifp = ha->ifp;
860
861         qla_stop(ha);
862
863         if (qla_alloc_xmt_bufs(ha) != 0) 
864                 return;
865
866         qla_confirm_9kb_enable(ha);
867
868         if (qla_alloc_rcv_bufs(ha) != 0)
869                 return;
870
871         bcopy(IF_LLADDR(ha->ifp), ha->hw.mac_addr, ETHER_ADDR_LEN);
872
873         ifp->if_hwassist = CSUM_TCP | CSUM_UDP | CSUM_TSO;
874
875         ha->flags.stop_rcv = 0;
876         if (ql_init_hw_if(ha) == 0) {
877                 ifp = ha->ifp;
878                 ifp->if_drv_flags |= IFF_DRV_RUNNING;
879                 ifp->if_drv_flags &= ~IFF_DRV_OACTIVE;
880                 ha->flags.qla_watchdog_pause = 0;
881                 ha->hw_vlan_tx_frames = 0;
882                 ha->tx_tso_frames = 0;
883                 ha->flags.qla_interface_up = 1;
884         }
885
886         return;
887 }
888
889 static void
890 qla_init(void *arg)
891 {
892         qla_host_t *ha;
893
894         ha = (qla_host_t *)arg;
895
896         QL_DPRINT2(ha, (ha->pci_dev, "%s: enter\n", __func__));
897
898         (void)QLA_LOCK(ha, __func__, 0);
899         qla_init_locked(ha);
900         QLA_UNLOCK(ha, __func__);
901
902         QL_DPRINT2(ha, (ha->pci_dev, "%s: exit\n", __func__));
903 }
904
905 static int
906 qla_set_multi(qla_host_t *ha, uint32_t add_multi)
907 {
908         uint8_t mta[Q8_MAX_NUM_MULTICAST_ADDRS * Q8_MAC_ADDR_LEN];
909         struct ifmultiaddr *ifma;
910         int mcnt = 0;
911         struct ifnet *ifp = ha->ifp;
912         int ret = 0;
913
914         if_maddr_rlock(ifp);
915
916         TAILQ_FOREACH(ifma, &ifp->if_multiaddrs, ifma_link) {
917
918                 if (ifma->ifma_addr->sa_family != AF_LINK)
919                         continue;
920
921                 if (mcnt == Q8_MAX_NUM_MULTICAST_ADDRS)
922                         break;
923
924                 bcopy(LLADDR((struct sockaddr_dl *) ifma->ifma_addr),
925                         &mta[mcnt * Q8_MAC_ADDR_LEN], Q8_MAC_ADDR_LEN);
926
927                 mcnt++;
928         }
929
930         if_maddr_runlock(ifp);
931
932         //if (QLA_LOCK(ha, __func__, 1) == 0) {
933         //      ret = ql_hw_set_multi(ha, mta, mcnt, add_multi);
934         //      QLA_UNLOCK(ha, __func__);
935         //}
936         QLA_LOCK(ha, __func__, 1);
937         ret = ql_hw_set_multi(ha, mta, mcnt, add_multi);
938         QLA_UNLOCK(ha, __func__);
939
940         return (ret);
941 }
942
943 static int
944 qla_ioctl(struct ifnet *ifp, u_long cmd, caddr_t data)
945 {
946         int ret = 0;
947         struct ifreq *ifr = (struct ifreq *)data;
948         struct ifaddr *ifa = (struct ifaddr *)data;
949         qla_host_t *ha;
950
951         ha = (qla_host_t *)ifp->if_softc;
952
953         switch (cmd) {
954         case SIOCSIFADDR:
955                 QL_DPRINT4(ha, (ha->pci_dev, "%s: SIOCSIFADDR (0x%lx)\n",
956                         __func__, cmd));
957
958                 if (ifa->ifa_addr->sa_family == AF_INET) {
959                         ifp->if_flags |= IFF_UP;
960                         if (!(ifp->if_drv_flags & IFF_DRV_RUNNING)) {
961                                 (void)QLA_LOCK(ha, __func__, 0);
962                                 qla_init_locked(ha);
963                                 QLA_UNLOCK(ha, __func__);
964                         }
965                         QL_DPRINT4(ha, (ha->pci_dev,
966                                 "%s: SIOCSIFADDR (0x%lx) ipv4 [0x%08x]\n",
967                                 __func__, cmd,
968                                 ntohl(IA_SIN(ifa)->sin_addr.s_addr)));
969
970                         arp_ifinit(ifp, ifa);
971                 } else {
972                         ether_ioctl(ifp, cmd, data);
973                 }
974                 break;
975
976         case SIOCSIFMTU:
977                 QL_DPRINT4(ha, (ha->pci_dev, "%s: SIOCSIFMTU (0x%lx)\n",
978                         __func__, cmd));
979
980                 if (ifr->ifr_mtu > QLA_MAX_MTU) {
981                         ret = EINVAL;
982                 } else {
983                         (void) QLA_LOCK(ha, __func__, 0);
984                         ifp->if_mtu = ifr->ifr_mtu;
985                         ha->max_frame_size =
986                                 ifp->if_mtu + ETHER_HDR_LEN + ETHER_CRC_LEN;
987                         if ((ifp->if_drv_flags & IFF_DRV_RUNNING)) {
988                                 ret = ql_set_max_mtu(ha, ha->max_frame_size,
989                                         ha->hw.rcv_cntxt_id);
990                         }
991
992                         if (ifp->if_mtu > ETHERMTU)
993                                 ha->std_replenish = QL_JUMBO_REPLENISH_THRES;
994                         else
995                                 ha->std_replenish = QL_STD_REPLENISH_THRES;
996                                 
997
998                         QLA_UNLOCK(ha, __func__);
999
1000                         if (ret)
1001                                 ret = EINVAL;
1002                 }
1003
1004                 break;
1005
1006         case SIOCSIFFLAGS:
1007                 QL_DPRINT4(ha, (ha->pci_dev, "%s: SIOCSIFFLAGS (0x%lx)\n",
1008                         __func__, cmd));
1009
1010                 (void)QLA_LOCK(ha, __func__, 0);
1011
1012                 if (ifp->if_flags & IFF_UP) {
1013                         if ((ifp->if_drv_flags & IFF_DRV_RUNNING)) {
1014                                 if ((ifp->if_flags ^ ha->if_flags) &
1015                                         IFF_PROMISC) {
1016                                         ret = ql_set_promisc(ha);
1017                                 } else if ((ifp->if_flags ^ ha->if_flags) &
1018                                         IFF_ALLMULTI) {
1019                                         ret = ql_set_allmulti(ha);
1020                                 }
1021                         } else {
1022                                 qla_init_locked(ha);
1023                                 ha->max_frame_size = ifp->if_mtu +
1024                                         ETHER_HDR_LEN + ETHER_CRC_LEN;
1025                                 ret = ql_set_max_mtu(ha, ha->max_frame_size,
1026                                         ha->hw.rcv_cntxt_id);
1027                         }
1028                 } else {
1029                         if (ifp->if_drv_flags & IFF_DRV_RUNNING)
1030                                 qla_stop(ha);
1031                         ha->if_flags = ifp->if_flags;
1032                 }
1033
1034                 QLA_UNLOCK(ha, __func__);
1035                 break;
1036
1037         case SIOCADDMULTI:
1038                 QL_DPRINT4(ha, (ha->pci_dev,
1039                         "%s: %s (0x%lx)\n", __func__, "SIOCADDMULTI", cmd));
1040
1041                 if (ifp->if_drv_flags & IFF_DRV_RUNNING) {
1042                         if (qla_set_multi(ha, 1))
1043                                 ret = EINVAL;
1044                 }
1045                 break;
1046
1047         case SIOCDELMULTI:
1048                 QL_DPRINT4(ha, (ha->pci_dev,
1049                         "%s: %s (0x%lx)\n", __func__, "SIOCDELMULTI", cmd));
1050
1051                 if (ifp->if_drv_flags & IFF_DRV_RUNNING) {
1052                         if (qla_set_multi(ha, 0))
1053                                 ret = EINVAL;
1054                 }
1055                 break;
1056
1057         case SIOCSIFMEDIA:
1058         case SIOCGIFMEDIA:
1059                 QL_DPRINT4(ha, (ha->pci_dev,
1060                         "%s: SIOCSIFMEDIA/SIOCGIFMEDIA (0x%lx)\n",
1061                         __func__, cmd));
1062                 ret = ifmedia_ioctl(ifp, ifr, &ha->media, cmd);
1063                 break;
1064
1065         case SIOCSIFCAP:
1066         {
1067                 int mask = ifr->ifr_reqcap ^ ifp->if_capenable;
1068
1069                 QL_DPRINT4(ha, (ha->pci_dev, "%s: SIOCSIFCAP (0x%lx)\n",
1070                         __func__, cmd));
1071
1072                 if (mask & IFCAP_HWCSUM)
1073                         ifp->if_capenable ^= IFCAP_HWCSUM;
1074                 if (mask & IFCAP_TSO4)
1075                         ifp->if_capenable ^= IFCAP_TSO4;
1076                 if (mask & IFCAP_VLAN_HWTAGGING)
1077                         ifp->if_capenable ^= IFCAP_VLAN_HWTAGGING;
1078                 if (mask & IFCAP_VLAN_HWTSO)
1079                         ifp->if_capenable ^= IFCAP_VLAN_HWTSO;
1080
1081                 if (!(ifp->if_drv_flags & IFF_DRV_RUNNING))
1082                         qla_init(ha);
1083
1084                 VLAN_CAPABILITIES(ifp);
1085                 break;
1086         }
1087
1088         default:
1089                 QL_DPRINT4(ha, (ha->pci_dev, "%s: default (0x%lx)\n",
1090                         __func__, cmd));
1091                 ret = ether_ioctl(ifp, cmd, data);
1092                 break;
1093         }
1094
1095         return (ret);
1096 }
1097
1098 static int
1099 qla_media_change(struct ifnet *ifp)
1100 {
1101         qla_host_t *ha;
1102         struct ifmedia *ifm;
1103         int ret = 0;
1104
1105         ha = (qla_host_t *)ifp->if_softc;
1106
1107         QL_DPRINT2(ha, (ha->pci_dev, "%s: enter\n", __func__));
1108
1109         ifm = &ha->media;
1110
1111         if (IFM_TYPE(ifm->ifm_media) != IFM_ETHER)
1112                 ret = EINVAL;
1113
1114         QL_DPRINT2(ha, (ha->pci_dev, "%s: exit\n", __func__));
1115
1116         return (ret);
1117 }
1118
1119 static void
1120 qla_media_status(struct ifnet *ifp, struct ifmediareq *ifmr)
1121 {
1122         qla_host_t *ha;
1123
1124         ha = (qla_host_t *)ifp->if_softc;
1125
1126         QL_DPRINT2(ha, (ha->pci_dev, "%s: enter\n", __func__));
1127
1128         ifmr->ifm_status = IFM_AVALID;
1129         ifmr->ifm_active = IFM_ETHER;
1130         
1131         ql_update_link_state(ha);
1132         if (ha->hw.link_up) {
1133                 ifmr->ifm_status |= IFM_ACTIVE;
1134                 ifmr->ifm_active |= (IFM_FDX | qla_get_optics(ha));
1135         }
1136
1137         QL_DPRINT2(ha, (ha->pci_dev, "%s: exit (%s)\n", __func__,\
1138                 (ha->hw.link_up ? "link_up" : "link_down")));
1139
1140         return;
1141 }
1142
1143
1144 static int
1145 qla_send(qla_host_t *ha, struct mbuf **m_headp, uint32_t txr_idx,
1146         uint32_t iscsi_pdu)
1147 {
1148         bus_dma_segment_t       segs[QLA_MAX_SEGMENTS];
1149         bus_dmamap_t            map;
1150         int                     nsegs;
1151         int                     ret = -1;
1152         uint32_t                tx_idx;
1153         struct mbuf             *m_head = *m_headp;
1154
1155         QL_DPRINT8(ha, (ha->pci_dev, "%s: enter\n", __func__));
1156
1157         if (m_head->m_flags & M_FLOWID) {
1158 #ifdef QL_ENABLE_ISCSI_TLV
1159                 if (qla_iscsi_pdu(ha, m_head) == 0) {
1160                         iscsi_pdu = 1;
1161                         txr_idx = m_head->m_pkthdr.flowid &
1162                                         ((ha->hw.num_tx_rings >> 1) - 1);
1163                 } else {
1164                         txr_idx = m_head->m_pkthdr.flowid &
1165                                         (ha->hw.num_tx_rings - 1);
1166                 }
1167 #else
1168                 txr_idx = m_head->m_pkthdr.flowid & (ha->hw.num_tx_rings - 1);
1169 #endif /* #ifdef QL_ENABLE_ISCSI_TLV */
1170         }
1171
1172
1173         tx_idx = ha->hw.tx_cntxt[txr_idx].txr_next;
1174         map = ha->tx_ring[txr_idx].tx_buf[tx_idx].map;
1175
1176         ret = bus_dmamap_load_mbuf_sg(ha->tx_tag, map, m_head, segs, &nsegs,
1177                         BUS_DMA_NOWAIT);
1178
1179         if (ret == EFBIG) {
1180
1181                 struct mbuf *m;
1182
1183                 QL_DPRINT8(ha, (ha->pci_dev, "%s: EFBIG [%d]\n", __func__,
1184                         m_head->m_pkthdr.len));
1185
1186                 m = m_defrag(m_head, M_NOWAIT);
1187                 if (m == NULL) {
1188                         ha->err_tx_defrag++;
1189                         m_freem(m_head);
1190                         *m_headp = NULL;
1191                         device_printf(ha->pci_dev,
1192                                 "%s: m_defrag() = NULL [%d]\n",
1193                                 __func__, ret);
1194                         return (ENOBUFS);
1195                 }
1196                 m_head = m;
1197                 *m_headp = m_head;
1198
1199                 if ((ret = bus_dmamap_load_mbuf_sg(ha->tx_tag, map, m_head,
1200                                         segs, &nsegs, BUS_DMA_NOWAIT))) {
1201
1202                         ha->err_tx_dmamap_load++;
1203
1204                         device_printf(ha->pci_dev,
1205                                 "%s: bus_dmamap_load_mbuf_sg failed0[%d, %d]\n",
1206                                 __func__, ret, m_head->m_pkthdr.len);
1207
1208                         if (ret != ENOMEM) {
1209                                 m_freem(m_head);
1210                                 *m_headp = NULL;
1211                         }
1212                         return (ret);
1213                 }
1214
1215         } else if (ret) {
1216
1217                 ha->err_tx_dmamap_load++;
1218
1219                 device_printf(ha->pci_dev,
1220                         "%s: bus_dmamap_load_mbuf_sg failed1[%d, %d]\n",
1221                         __func__, ret, m_head->m_pkthdr.len);
1222
1223                 if (ret != ENOMEM) {
1224                         m_freem(m_head);
1225                         *m_headp = NULL;
1226                 }
1227                 return (ret);
1228         }
1229
1230         QL_ASSERT(ha, (nsegs != 0), ("qla_send: empty packet"));
1231
1232         bus_dmamap_sync(ha->tx_tag, map, BUS_DMASYNC_PREWRITE);
1233
1234         if (!(ret = ql_hw_send(ha, segs, nsegs, tx_idx, m_head, txr_idx,
1235                                 iscsi_pdu))) {
1236                 ha->tx_ring[txr_idx].count++;
1237                 ha->tx_ring[txr_idx].tx_buf[tx_idx].m_head = m_head;
1238         } else {
1239                 if (ret == EINVAL) {
1240                         if (m_head)
1241                                 m_freem(m_head);
1242                         *m_headp = NULL;
1243                 }
1244         }
1245
1246         QL_DPRINT8(ha, (ha->pci_dev, "%s: exit\n", __func__));
1247         return (ret);
1248 }
1249
1250 static int
1251 qla_alloc_tx_br(qla_host_t *ha, qla_tx_fp_t *fp)
1252 {
1253         snprintf(fp->tx_mtx_name, sizeof(fp->tx_mtx_name),
1254                 "qla%d_fp%d_tx_mq_lock", ha->pci_func, fp->txr_idx);
1255
1256         mtx_init(&fp->tx_mtx, fp->tx_mtx_name, NULL, MTX_DEF);
1257
1258         fp->tx_br = buf_ring_alloc(NUM_TX_DESCRIPTORS, M_DEVBUF,
1259                                    M_NOWAIT, &fp->tx_mtx);
1260         if (fp->tx_br == NULL) {
1261             QL_DPRINT1(ha, (ha->pci_dev, "buf_ring_alloc failed for "
1262                 " fp[%d, %d]\n", ha->pci_func, fp->txr_idx));
1263             return (-ENOMEM);
1264         }
1265         return 0;
1266 }
1267
1268 static void
1269 qla_free_tx_br(qla_host_t *ha, qla_tx_fp_t *fp)
1270 {
1271         struct mbuf *mp;
1272         struct ifnet *ifp = ha->ifp;
1273
1274         if (mtx_initialized(&fp->tx_mtx)) {
1275
1276                 if (fp->tx_br != NULL) {
1277
1278                         mtx_lock(&fp->tx_mtx);
1279
1280                         while ((mp = drbr_dequeue(ifp, fp->tx_br)) != NULL) {
1281                                 m_freem(mp);
1282                         }
1283
1284                         mtx_unlock(&fp->tx_mtx);
1285
1286                         buf_ring_free(fp->tx_br, M_DEVBUF);
1287                         fp->tx_br = NULL;
1288                 }
1289                 mtx_destroy(&fp->tx_mtx);
1290         }
1291         return;
1292 }
1293
1294 static void
1295 qla_fp_taskqueue(void *context, int pending)
1296 {
1297         qla_tx_fp_t *fp;
1298         qla_host_t *ha;
1299         struct ifnet *ifp;
1300         struct mbuf  *mp;
1301         int ret = 0;
1302         uint32_t txr_idx;
1303         uint32_t iscsi_pdu = 0;
1304         uint32_t rx_pkts_left;
1305
1306         fp = context;
1307
1308         if (fp == NULL)
1309                 return;
1310
1311         ha = (qla_host_t *)fp->ha;
1312
1313         ifp = ha->ifp;
1314
1315         txr_idx = fp->txr_idx;
1316
1317         mtx_lock(&fp->tx_mtx);
1318
1319         if (((ifp->if_drv_flags & (IFF_DRV_RUNNING | IFF_DRV_OACTIVE)) !=
1320                 IFF_DRV_RUNNING) || (!ha->hw.link_up)) {
1321                 mtx_unlock(&fp->tx_mtx);
1322                 goto qla_fp_taskqueue_exit;
1323         }
1324
1325         rx_pkts_left = ql_rcv_isr(ha, fp->txr_idx, 64);
1326
1327 #ifdef QL_ENABLE_ISCSI_TLV
1328         ql_hw_tx_done_locked(ha, fp->txr_idx);
1329         ql_hw_tx_done_locked(ha, (fp->txr_idx + (ha->hw.num_tx_rings >> 1)));
1330         txr_idx = txr_idx + (ha->hw.num_tx_rings >> 1);
1331 #else
1332         ql_hw_tx_done_locked(ha, fp->txr_idx);
1333 #endif /* #ifdef QL_ENABLE_ISCSI_TLV */
1334
1335         mp = drbr_peek(ifp, fp->tx_br);
1336
1337         while (mp != NULL) {
1338
1339                 if (M_HASHTYPE_GET(mp) != M_HASHTYPE_NONE) {
1340 #ifdef QL_ENABLE_ISCSI_TLV
1341                         if (ql_iscsi_pdu(ha, mp) == 0) {
1342                                 iscsi_pdu = 1;
1343                         }
1344 #endif /* #ifdef QL_ENABLE_ISCSI_TLV */
1345                 }
1346
1347                 ret = qla_send(ha, &mp, txr_idx, iscsi_pdu);
1348
1349                 if (ret) {
1350                         if (mp != NULL)
1351                                 drbr_putback(ifp, fp->tx_br, mp);
1352                         else {
1353                                 drbr_advance(ifp, fp->tx_br);
1354                         }
1355
1356                         mtx_unlock(&fp->tx_mtx);
1357
1358                         goto qla_fp_taskqueue_exit0;
1359                 } else {
1360                         drbr_advance(ifp, fp->tx_br);
1361                 }
1362
1363                 mp = drbr_peek(ifp, fp->tx_br);
1364         }
1365
1366         mtx_unlock(&fp->tx_mtx);
1367
1368 qla_fp_taskqueue_exit0:
1369
1370         if (rx_pkts_left || ((mp != NULL) && ret)) {
1371                 taskqueue_enqueue(fp->fp_taskqueue, &fp->fp_task);
1372         } else {
1373                 if (!ha->flags.stop_rcv) {
1374                         QL_ENABLE_INTERRUPTS(ha, fp->txr_idx);
1375                 }
1376         }
1377
1378 qla_fp_taskqueue_exit:
1379
1380         QL_DPRINT2(ha, (ha->pci_dev, "%s: exit ret = %d\n", __func__, ret));
1381         return;
1382 }
1383
1384 static int
1385 qla_create_fp_taskqueues(qla_host_t *ha)
1386 {
1387         int     i;
1388         uint8_t tq_name[32];
1389
1390         for (i = 0; i < ha->hw.num_sds_rings; i++) {
1391
1392                 qla_tx_fp_t *fp = &ha->tx_fp[i];
1393
1394                 bzero(tq_name, sizeof (tq_name));
1395                 snprintf(tq_name, sizeof (tq_name), "ql_fp_tq_%d", i);
1396
1397                 TASK_INIT(&fp->fp_task, 0, qla_fp_taskqueue, fp);
1398
1399                 fp->fp_taskqueue = taskqueue_create_fast(tq_name, M_NOWAIT,
1400                                         taskqueue_thread_enqueue,
1401                                         &fp->fp_taskqueue);
1402
1403                 if (fp->fp_taskqueue == NULL)
1404                         return (-1);
1405
1406                 taskqueue_start_threads(&fp->fp_taskqueue, 1, PI_NET, "%s",
1407                         tq_name);
1408
1409                 QL_DPRINT1(ha, (ha->pci_dev, "%s: %p\n", __func__,
1410                         fp->fp_taskqueue));
1411         }
1412
1413         return (0);
1414 }
1415
1416 static void
1417 qla_destroy_fp_taskqueues(qla_host_t *ha)
1418 {
1419         int     i;
1420
1421         for (i = 0; i < ha->hw.num_sds_rings; i++) {
1422
1423                 qla_tx_fp_t *fp = &ha->tx_fp[i];
1424
1425                 if (fp->fp_taskqueue != NULL) {
1426                         taskqueue_drain(fp->fp_taskqueue, &fp->fp_task);
1427                         taskqueue_free(fp->fp_taskqueue);
1428                         fp->fp_taskqueue = NULL;
1429                 }
1430         }
1431         return;
1432 }
1433
1434 static void
1435 qla_drain_fp_taskqueues(qla_host_t *ha)
1436 {
1437         int     i;
1438
1439         for (i = 0; i < ha->hw.num_sds_rings; i++) {
1440                 qla_tx_fp_t *fp = &ha->tx_fp[i];
1441
1442                 if (fp->fp_taskqueue != NULL) {
1443                         taskqueue_drain(fp->fp_taskqueue, &fp->fp_task);
1444                 }
1445         }
1446         return;
1447 }
1448
1449 static int
1450 qla_transmit(struct ifnet *ifp, struct mbuf  *mp)
1451 {
1452         qla_host_t *ha = (qla_host_t *)ifp->if_softc;
1453         qla_tx_fp_t *fp;
1454         int rss_id = 0;
1455         int ret = 0;
1456
1457         QL_DPRINT2(ha, (ha->pci_dev, "%s: enter\n", __func__));
1458
1459 #if __FreeBSD_version >= 1100000
1460         if (M_HASHTYPE_GET(mp) != M_HASHTYPE_NONE)
1461 #else
1462         if (mp->m_flags & M_FLOWID)
1463 #endif
1464                 rss_id = (mp->m_pkthdr.flowid & Q8_RSS_IND_TBL_MAX_IDX) %
1465                                         ha->hw.num_sds_rings;
1466         fp = &ha->tx_fp[rss_id];
1467
1468         if (fp->tx_br == NULL) {
1469                 ret = EINVAL;
1470                 goto qla_transmit_exit;
1471         }
1472
1473         if (mp != NULL) {
1474                 ret = drbr_enqueue(ifp, fp->tx_br, mp);
1475         }
1476
1477         if (fp->fp_taskqueue != NULL)
1478                 taskqueue_enqueue(fp->fp_taskqueue, &fp->fp_task);
1479
1480         ret = 0;
1481
1482 qla_transmit_exit:
1483
1484         QL_DPRINT2(ha, (ha->pci_dev, "%s: exit ret = %d\n", __func__, ret));
1485         return ret;
1486 }
1487
1488 static void
1489 qla_qflush(struct ifnet *ifp)
1490 {
1491         int                     i;
1492         qla_tx_fp_t             *fp;
1493         struct mbuf             *mp;
1494         qla_host_t              *ha;
1495
1496         ha = (qla_host_t *)ifp->if_softc;
1497
1498         QL_DPRINT2(ha, (ha->pci_dev, "%s: enter\n", __func__));
1499
1500         for (i = 0; i < ha->hw.num_sds_rings; i++) {
1501
1502                 fp = &ha->tx_fp[i];
1503
1504                 if (fp == NULL)
1505                         continue;
1506
1507                 if (fp->tx_br) {
1508                         mtx_lock(&fp->tx_mtx);
1509
1510                         while ((mp = drbr_dequeue(ifp, fp->tx_br)) != NULL) {
1511                                 m_freem(mp);
1512                         }
1513                         mtx_unlock(&fp->tx_mtx);
1514                 }
1515         }
1516         QL_DPRINT2(ha, (ha->pci_dev, "%s: exit\n", __func__));
1517
1518         return;
1519 }
1520
1521
1522 static void
1523 qla_stop(qla_host_t *ha)
1524 {
1525         struct ifnet *ifp = ha->ifp;
1526         device_t        dev;
1527         int i = 0;
1528
1529         dev = ha->pci_dev;
1530
1531         ifp->if_drv_flags &= ~(IFF_DRV_OACTIVE | IFF_DRV_RUNNING);
1532
1533         for (i = 0; i < ha->hw.num_sds_rings; i++) {
1534                 qla_tx_fp_t *fp;
1535
1536                 fp = &ha->tx_fp[i];
1537
1538                 if (fp == NULL)
1539                         continue;
1540
1541                 if (fp->tx_br != NULL) {
1542                         mtx_lock(&fp->tx_mtx);
1543                         mtx_unlock(&fp->tx_mtx);
1544                 }
1545         }
1546
1547         ha->flags.qla_watchdog_pause = 1;
1548
1549         while (!ha->qla_watchdog_paused)
1550                 qla_mdelay(__func__, 1);
1551
1552         ha->flags.qla_interface_up = 0;
1553
1554         qla_drain_fp_taskqueues(ha);
1555
1556         ql_hw_stop_rcv(ha);
1557
1558         ql_del_hw_if(ha);
1559
1560         qla_free_xmt_bufs(ha);
1561         qla_free_rcv_bufs(ha);
1562
1563         return;
1564 }
1565
1566 /*
1567  * Buffer Management Functions for Transmit and Receive Rings
1568  */
1569 static int
1570 qla_alloc_xmt_bufs(qla_host_t *ha)
1571 {
1572         int ret = 0;
1573         uint32_t i, j;
1574         qla_tx_buf_t *txb;
1575
1576         if (bus_dma_tag_create(NULL,    /* parent */
1577                 1, 0,    /* alignment, bounds */
1578                 BUS_SPACE_MAXADDR,       /* lowaddr */
1579                 BUS_SPACE_MAXADDR,       /* highaddr */
1580                 NULL, NULL,      /* filter, filterarg */
1581                 QLA_MAX_TSO_FRAME_SIZE,     /* maxsize */
1582                 QLA_MAX_SEGMENTS,        /* nsegments */
1583                 PAGE_SIZE,        /* maxsegsize */
1584                 BUS_DMA_ALLOCNOW,        /* flags */
1585                 NULL,    /* lockfunc */
1586                 NULL,    /* lockfuncarg */
1587                 &ha->tx_tag)) {
1588                 device_printf(ha->pci_dev, "%s: tx_tag alloc failed\n",
1589                         __func__);
1590                 return (ENOMEM);
1591         }
1592
1593         for (i = 0; i < ha->hw.num_tx_rings; i++) {
1594                 bzero((void *)ha->tx_ring[i].tx_buf,
1595                         (sizeof(qla_tx_buf_t) * NUM_TX_DESCRIPTORS));
1596         }
1597
1598         for (j = 0; j < ha->hw.num_tx_rings; j++) {
1599                 for (i = 0; i < NUM_TX_DESCRIPTORS; i++) {
1600
1601                         txb = &ha->tx_ring[j].tx_buf[i];
1602
1603                         if ((ret = bus_dmamap_create(ha->tx_tag,
1604                                         BUS_DMA_NOWAIT, &txb->map))) {
1605
1606                                 ha->err_tx_dmamap_create++;
1607                                 device_printf(ha->pci_dev,
1608                                         "%s: bus_dmamap_create failed[%d]\n",
1609                                         __func__, ret);
1610
1611                                 qla_free_xmt_bufs(ha);
1612
1613                                 return (ret);
1614                         }
1615                 }
1616         }
1617
1618         return 0;
1619 }
1620
1621 /*
1622  * Release mbuf after it sent on the wire
1623  */
1624 static void
1625 qla_clear_tx_buf(qla_host_t *ha, qla_tx_buf_t *txb)
1626 {
1627         QL_DPRINT2(ha, (ha->pci_dev, "%s: enter\n", __func__));
1628
1629         if (txb->m_head && txb->map) {
1630
1631                 bus_dmamap_unload(ha->tx_tag, txb->map);
1632
1633                 m_freem(txb->m_head);
1634                 txb->m_head = NULL;
1635         }
1636
1637         if (txb->map)
1638                 bus_dmamap_destroy(ha->tx_tag, txb->map);
1639
1640         QL_DPRINT2(ha, (ha->pci_dev, "%s: exit\n", __func__));
1641 }
1642
1643 static void
1644 qla_free_xmt_bufs(qla_host_t *ha)
1645 {
1646         int             i, j;
1647
1648         for (j = 0; j < ha->hw.num_tx_rings; j++) {
1649                 for (i = 0; i < NUM_TX_DESCRIPTORS; i++)
1650                         qla_clear_tx_buf(ha, &ha->tx_ring[j].tx_buf[i]);
1651         }
1652
1653         if (ha->tx_tag != NULL) {
1654                 bus_dma_tag_destroy(ha->tx_tag);
1655                 ha->tx_tag = NULL;
1656         }
1657
1658         for (i = 0; i < ha->hw.num_tx_rings; i++) {
1659                 bzero((void *)ha->tx_ring[i].tx_buf,
1660                         (sizeof(qla_tx_buf_t) * NUM_TX_DESCRIPTORS));
1661         }
1662         return;
1663 }
1664
1665
1666 static int
1667 qla_alloc_rcv_std(qla_host_t *ha)
1668 {
1669         int             i, j, k, r, ret = 0;
1670         qla_rx_buf_t    *rxb;
1671         qla_rx_ring_t   *rx_ring;
1672
1673         for (r = 0; r < ha->hw.num_rds_rings; r++) {
1674
1675                 rx_ring = &ha->rx_ring[r];
1676
1677                 for (i = 0; i < NUM_RX_DESCRIPTORS; i++) {
1678
1679                         rxb = &rx_ring->rx_buf[i];
1680
1681                         ret = bus_dmamap_create(ha->rx_tag, BUS_DMA_NOWAIT,
1682                                         &rxb->map);
1683
1684                         if (ret) {
1685                                 device_printf(ha->pci_dev,
1686                                         "%s: dmamap[%d, %d] failed\n",
1687                                         __func__, r, i);
1688
1689                                 for (k = 0; k < r; k++) {
1690                                         for (j = 0; j < NUM_RX_DESCRIPTORS;
1691                                                 j++) {
1692                                                 rxb = &ha->rx_ring[k].rx_buf[j];
1693                                                 bus_dmamap_destroy(ha->rx_tag,
1694                                                         rxb->map);
1695                                         }
1696                                 }
1697
1698                                 for (j = 0; j < i; j++) {
1699                                         bus_dmamap_destroy(ha->rx_tag,
1700                                                 rx_ring->rx_buf[j].map);
1701                                 }
1702                                 goto qla_alloc_rcv_std_err;
1703                         }
1704                 }
1705         }
1706
1707         qla_init_hw_rcv_descriptors(ha);
1708
1709         
1710         for (r = 0; r < ha->hw.num_rds_rings; r++) {
1711
1712                 rx_ring = &ha->rx_ring[r];
1713
1714                 for (i = 0; i < NUM_RX_DESCRIPTORS; i++) {
1715                         rxb = &rx_ring->rx_buf[i];
1716                         rxb->handle = i;
1717                         if (!(ret = ql_get_mbuf(ha, rxb, NULL))) {
1718                                 /*
1719                                  * set the physical address in the
1720                                  * corresponding descriptor entry in the
1721                                  * receive ring/queue for the hba 
1722                                  */
1723                                 qla_set_hw_rcv_desc(ha, r, i, rxb->handle,
1724                                         rxb->paddr,
1725                                         (rxb->m_head)->m_pkthdr.len);
1726                         } else {
1727                                 device_printf(ha->pci_dev,
1728                                         "%s: ql_get_mbuf [%d, %d] failed\n",
1729                                         __func__, r, i);
1730                                 bus_dmamap_destroy(ha->rx_tag, rxb->map);
1731                                 goto qla_alloc_rcv_std_err;
1732                         }
1733                 }
1734         }
1735         return 0;
1736
1737 qla_alloc_rcv_std_err:
1738         return (-1);
1739 }
1740
1741 static void
1742 qla_free_rcv_std(qla_host_t *ha)
1743 {
1744         int             i, r;
1745         qla_rx_buf_t    *rxb;
1746
1747         for (r = 0; r < ha->hw.num_rds_rings; r++) {
1748                 for (i = 0; i < NUM_RX_DESCRIPTORS; i++) {
1749                         rxb = &ha->rx_ring[r].rx_buf[i];
1750                         if (rxb->m_head != NULL) {
1751                                 bus_dmamap_unload(ha->rx_tag, rxb->map);
1752                                 bus_dmamap_destroy(ha->rx_tag, rxb->map);
1753                                 m_freem(rxb->m_head);
1754                                 rxb->m_head = NULL;
1755                         }
1756                 }
1757         }
1758         return;
1759 }
1760
1761 static int
1762 qla_alloc_rcv_bufs(qla_host_t *ha)
1763 {
1764         int             i, ret = 0;
1765
1766         if (bus_dma_tag_create(NULL,    /* parent */
1767                         1, 0,    /* alignment, bounds */
1768                         BUS_SPACE_MAXADDR,       /* lowaddr */
1769                         BUS_SPACE_MAXADDR,       /* highaddr */
1770                         NULL, NULL,      /* filter, filterarg */
1771                         MJUM9BYTES,     /* maxsize */
1772                         1,        /* nsegments */
1773                         MJUM9BYTES,        /* maxsegsize */
1774                         BUS_DMA_ALLOCNOW,        /* flags */
1775                         NULL,    /* lockfunc */
1776                         NULL,    /* lockfuncarg */
1777                         &ha->rx_tag)) {
1778
1779                 device_printf(ha->pci_dev, "%s: rx_tag alloc failed\n",
1780                         __func__);
1781
1782                 return (ENOMEM);
1783         }
1784
1785         bzero((void *)ha->rx_ring, (sizeof(qla_rx_ring_t) * MAX_RDS_RINGS));
1786
1787         for (i = 0; i < ha->hw.num_sds_rings; i++) {
1788                 ha->hw.sds[i].sdsr_next = 0;
1789                 ha->hw.sds[i].rxb_free = NULL;
1790                 ha->hw.sds[i].rx_free = 0;
1791         }
1792
1793         ret = qla_alloc_rcv_std(ha);
1794
1795         return (ret);
1796 }
1797
1798 static void
1799 qla_free_rcv_bufs(qla_host_t *ha)
1800 {
1801         int             i;
1802
1803         qla_free_rcv_std(ha);
1804
1805         if (ha->rx_tag != NULL) {
1806                 bus_dma_tag_destroy(ha->rx_tag);
1807                 ha->rx_tag = NULL;
1808         }
1809
1810         bzero((void *)ha->rx_ring, (sizeof(qla_rx_ring_t) * MAX_RDS_RINGS));
1811
1812         for (i = 0; i < ha->hw.num_sds_rings; i++) {
1813                 ha->hw.sds[i].sdsr_next = 0;
1814                 ha->hw.sds[i].rxb_free = NULL;
1815                 ha->hw.sds[i].rx_free = 0;
1816         }
1817
1818         return;
1819 }
1820
1821 int
1822 ql_get_mbuf(qla_host_t *ha, qla_rx_buf_t *rxb, struct mbuf *nmp)
1823 {
1824         register struct mbuf *mp = nmp;
1825         struct ifnet            *ifp;
1826         int                     ret = 0;
1827         uint32_t                offset;
1828         bus_dma_segment_t       segs[1];
1829         int                     nsegs, mbuf_size;
1830
1831         QL_DPRINT2(ha, (ha->pci_dev, "%s: enter\n", __func__));
1832
1833         ifp = ha->ifp;
1834
1835         if (ha->hw.enable_9kb)
1836                 mbuf_size = MJUM9BYTES;
1837         else
1838                 mbuf_size = MCLBYTES;
1839
1840         if (mp == NULL) {
1841
1842                 if (QL_ERR_INJECT(ha, INJCT_M_GETCL_M_GETJCL_FAILURE))
1843                         return(-1);
1844
1845                 if (ha->hw.enable_9kb)
1846                         mp = m_getjcl(M_NOWAIT, MT_DATA, M_PKTHDR, mbuf_size);
1847                 else
1848                         mp = m_getcl(M_NOWAIT, MT_DATA, M_PKTHDR);
1849
1850                 if (mp == NULL) {
1851                         ha->err_m_getcl++;
1852                         ret = ENOBUFS;
1853                         device_printf(ha->pci_dev,
1854                                         "%s: m_getcl failed\n", __func__);
1855                         goto exit_ql_get_mbuf;
1856                 }
1857                 mp->m_len = mp->m_pkthdr.len = mbuf_size;
1858         } else {
1859                 mp->m_len = mp->m_pkthdr.len = mbuf_size;
1860                 mp->m_data = mp->m_ext.ext_buf;
1861                 mp->m_next = NULL;
1862         }
1863
1864         offset = (uint32_t)((unsigned long long)mp->m_data & 0x7ULL);
1865         if (offset) {
1866                 offset = 8 - offset;
1867                 m_adj(mp, offset);
1868         }
1869
1870         /*
1871          * Using memory from the mbuf cluster pool, invoke the bus_dma
1872          * machinery to arrange the memory mapping.
1873          */
1874         ret = bus_dmamap_load_mbuf_sg(ha->rx_tag, rxb->map,
1875                         mp, segs, &nsegs, BUS_DMA_NOWAIT);
1876         rxb->paddr = segs[0].ds_addr;
1877
1878         if (ret || !rxb->paddr || (nsegs != 1)) {
1879                 m_free(mp);
1880                 rxb->m_head = NULL;
1881                 device_printf(ha->pci_dev,
1882                         "%s: bus_dmamap_load failed[%d, 0x%016llx, %d]\n",
1883                         __func__, ret, (long long unsigned int)rxb->paddr,
1884                         nsegs);
1885                 ret = -1;
1886                 goto exit_ql_get_mbuf;
1887         }
1888         rxb->m_head = mp;
1889         bus_dmamap_sync(ha->rx_tag, rxb->map, BUS_DMASYNC_PREREAD);
1890
1891 exit_ql_get_mbuf:
1892         QL_DPRINT2(ha, (ha->pci_dev, "%s: exit ret = 0x%08x\n", __func__, ret));
1893         return (ret);
1894 }
1895
1896
1897 static void
1898 qla_get_peer(qla_host_t *ha)
1899 {
1900         device_t *peers;
1901         int count, i, slot;
1902         int my_slot = pci_get_slot(ha->pci_dev);
1903
1904         if (device_get_children(device_get_parent(ha->pci_dev), &peers, &count))
1905                 return;
1906
1907         for (i = 0; i < count; i++) {
1908                 slot = pci_get_slot(peers[i]);
1909
1910                 if ((slot >= 0) && (slot == my_slot) &&
1911                         (pci_get_device(peers[i]) ==
1912                                 pci_get_device(ha->pci_dev))) {
1913                         if (ha->pci_dev != peers[i]) 
1914                                 ha->peer_dev = peers[i];
1915                 }
1916         }
1917 }
1918
1919 static void
1920 qla_send_msg_to_peer(qla_host_t *ha, uint32_t msg_to_peer)
1921 {
1922         qla_host_t *ha_peer;
1923         
1924         if (ha->peer_dev) {
1925                 if ((ha_peer = device_get_softc(ha->peer_dev)) != NULL) {
1926
1927                         ha_peer->msg_from_peer = msg_to_peer;
1928                 }
1929         }
1930 }
1931
1932 static void
1933 qla_error_recovery(void *context, int pending)
1934 {
1935         qla_host_t *ha = context;
1936         uint32_t msecs_100 = 100;
1937         struct ifnet *ifp = ha->ifp;
1938         int i = 0;
1939
1940         (void)QLA_LOCK(ha, __func__, 0);
1941
1942         if (ha->flags.qla_interface_up) {
1943
1944                 ha->hw.imd_compl = 1;
1945                 qla_mdelay(__func__, 300);
1946
1947                 ql_hw_stop_rcv(ha);
1948
1949                 ifp->if_drv_flags &= ~(IFF_DRV_OACTIVE | IFF_DRV_RUNNING);
1950
1951                 for (i = 0; i < ha->hw.num_sds_rings; i++) {
1952                         qla_tx_fp_t *fp;
1953
1954                         fp = &ha->tx_fp[i];
1955
1956                         if (fp == NULL)
1957                                 continue;
1958
1959                         if (fp->tx_br != NULL) {
1960                                 mtx_lock(&fp->tx_mtx);
1961                                 mtx_unlock(&fp->tx_mtx);
1962                         }
1963                 }
1964         }
1965
1966         QLA_UNLOCK(ha, __func__);
1967
1968         if ((ha->pci_func & 0x1) == 0) {
1969
1970                 if (!ha->msg_from_peer) {
1971                         qla_send_msg_to_peer(ha, QL_PEER_MSG_RESET);
1972
1973                         while ((ha->msg_from_peer != QL_PEER_MSG_ACK) &&
1974                                 msecs_100--)
1975                                 qla_mdelay(__func__, 100);
1976                 }
1977
1978                 ha->msg_from_peer = 0;
1979
1980                 (void)QLA_LOCK(ha, __func__, 0);
1981                 ql_minidump(ha);
1982                 QLA_UNLOCK(ha, __func__);
1983
1984                 (void) ql_init_hw(ha);
1985
1986                 (void)QLA_LOCK(ha, __func__, 0);
1987                 if (ha->flags.qla_interface_up) {
1988                 qla_free_xmt_bufs(ha);
1989                 qla_free_rcv_bufs(ha);
1990                 }
1991                 QLA_UNLOCK(ha, __func__);
1992
1993                 qla_send_msg_to_peer(ha, QL_PEER_MSG_ACK);
1994
1995         } else {
1996                 if (ha->msg_from_peer == QL_PEER_MSG_RESET) {
1997
1998                         ha->msg_from_peer = 0;
1999
2000                         qla_send_msg_to_peer(ha, QL_PEER_MSG_ACK);
2001                 } else {
2002                         qla_send_msg_to_peer(ha, QL_PEER_MSG_RESET);
2003                 }
2004
2005                 while ((ha->msg_from_peer != QL_PEER_MSG_ACK)  && msecs_100--)
2006                         qla_mdelay(__func__, 100);
2007                 ha->msg_from_peer = 0;
2008
2009                 (void) ql_init_hw(ha);
2010
2011                 (void)QLA_LOCK(ha, __func__, 0);
2012                 if (ha->flags.qla_interface_up) {
2013                 qla_free_xmt_bufs(ha);
2014                 qla_free_rcv_bufs(ha);
2015         }
2016                 QLA_UNLOCK(ha, __func__);
2017         }
2018
2019         (void)QLA_LOCK(ha, __func__, 0);
2020
2021         if (ha->flags.qla_interface_up) {
2022         if (qla_alloc_xmt_bufs(ha) != 0) {
2023                 QLA_UNLOCK(ha, __func__);
2024                 return;
2025         }
2026         qla_confirm_9kb_enable(ha);
2027
2028         if (qla_alloc_rcv_bufs(ha) != 0) {
2029                 QLA_UNLOCK(ha, __func__);
2030                 return;
2031         }
2032
2033         ha->flags.stop_rcv = 0;
2034         if (ql_init_hw_if(ha) == 0) {
2035                 ifp = ha->ifp;
2036                 ifp->if_drv_flags |= IFF_DRV_RUNNING;
2037                 ifp->if_drv_flags &= ~IFF_DRV_OACTIVE;
2038                 ha->flags.qla_watchdog_pause = 0;
2039         }
2040         } else
2041                 ha->flags.qla_watchdog_pause = 0;
2042
2043         QLA_UNLOCK(ha, __func__);
2044 }
2045
2046 static void
2047 qla_async_event(void *context, int pending)
2048 {
2049         qla_host_t *ha = context;
2050
2051         (void)QLA_LOCK(ha, __func__, 0);
2052         qla_hw_async_event(ha);
2053         QLA_UNLOCK(ha, __func__);
2054 }
2055