xref: /freebsd/sys/dev/ocs_fc/ocs_cam.c (revision 85732ac8)
1 /*-
2  * Copyright (c) 2017 Broadcom. All rights reserved.
3  * The term "Broadcom" refers to Broadcom Limited and/or its subsidiaries.
4  *
5  * Redistribution and use in source and binary forms, with or without
6  * modification, are permitted provided that the following conditions are met:
7  *
8  * 1. Redistributions of source code must retain the above copyright notice,
9  *    this list of conditions and the following disclaimer.
10  *
11  * 2. Redistributions in binary form must reproduce the above copyright notice,
12  *    this list of conditions and the following disclaimer in the documentation
13  *    and/or other materials provided with the distribution.
14  *
15  * 3. Neither the name of the copyright holder nor the names of its contributors
16  *    may be used to endorse or promote products derived from this software
17  *    without specific prior written permission.
18  *
19  * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS "AS IS"
20  * AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
21  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
22  * ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT HOLDER OR CONTRIBUTORS BE
23  * LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
24  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
25  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
26  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
27  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
28  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
29  * POSSIBILITY OF SUCH DAMAGE.
30  *
31  * $FreeBSD$
32  */
33 
34 /**
35  * @defgroup scsi_api_target SCSI Target API
36  * @defgroup scsi_api_initiator SCSI Initiator API
37  * @defgroup cam_api Common Access Method (CAM) API
38  * @defgroup cam_io CAM IO
39  */
40 
41 /**
42  * @file
43  * Provides CAM functionality.
44  */
45 
46 #include "ocs.h"
47 #include "ocs_scsi.h"
48 #include "ocs_device.h"
49 
50 /* Default IO timeout value for initiators is 30 seconds */
51 #define OCS_CAM_IO_TIMEOUT	30
52 
53 typedef struct {
54 	ocs_scsi_sgl_t *sgl;
55 	uint32_t sgl_max;
56 	uint32_t sgl_count;
57 	int32_t rc;
58 } ocs_dmamap_load_arg_t;
59 
60 static void ocs_action(struct cam_sim *, union ccb *);
61 static void ocs_poll(struct cam_sim *);
62 
63 static ocs_tgt_resource_t *ocs_tgt_resource_get(ocs_fcport *,
64 					struct ccb_hdr *, uint32_t *);
65 static int32_t ocs_tgt_resource_abort(struct ocs_softc *, ocs_tgt_resource_t *);
66 static uint32_t ocs_abort_initiator_io(struct ocs_softc *ocs, union ccb *accb);
67 static void ocs_abort_inot(struct ocs_softc *ocs, union ccb *ccb);
68 static void ocs_abort_atio(struct ocs_softc *ocs, union ccb *ccb);
69 static int32_t ocs_target_tmf_cb(ocs_io_t *, ocs_scsi_io_status_e, uint32_t, void *);
70 static int32_t ocs_io_abort_cb(ocs_io_t *, ocs_scsi_io_status_e, uint32_t, void *);
71 static int32_t ocs_task_set_full_or_busy(ocs_io_t *io);
72 static int32_t ocs_initiator_tmf_cb(ocs_io_t *, ocs_scsi_io_status_e,
73 		ocs_scsi_cmd_resp_t *, uint32_t, void *);
74 static uint32_t
75 ocs_fcp_change_role(struct ocs_softc *ocs, ocs_fcport *fcp, uint32_t new_role);
76 
77 static void ocs_ldt(void *arg);
78 static void ocs_ldt_task(void *arg, int pending);
79 static void ocs_delete_target(ocs_t *ocs, ocs_fcport *fcp, int tgt);
80 uint32_t ocs_add_new_tgt(ocs_node_t *node, ocs_fcport *fcp);
81 uint32_t ocs_update_tgt(ocs_node_t *node, ocs_fcport *fcp, uint32_t tgt_id);
82 
83 int32_t ocs_tgt_find(ocs_fcport *fcp, ocs_node_t *node);
84 
85 static inline ocs_io_t *ocs_scsi_find_io(struct ocs_softc *ocs, uint32_t tag)
86 {
87 
88 	return ocs_io_get_instance(ocs, tag);
89 }
90 
91 static inline void ocs_target_io_free(ocs_io_t *io)
92 {
93 	io->tgt_io.state = OCS_CAM_IO_FREE;
94 	io->tgt_io.flags = 0;
95 	io->tgt_io.app = NULL;
96 	ocs_scsi_io_complete(io);
97 	if(io->ocs->io_in_use != 0)
98 		atomic_subtract_acq_32(&io->ocs->io_in_use, 1);
99 }
100 
101 static int32_t
102 ocs_attach_port(ocs_t *ocs, int chan)
103 {
104 
105 	struct cam_sim	*sim = NULL;
106 	struct cam_path	*path = NULL;
107 	uint32_t	max_io = ocs_scsi_get_property(ocs, OCS_SCSI_MAX_IOS);
108 	ocs_fcport *fcp = FCPORT(ocs, chan);
109 
110 	if (NULL == (sim = cam_sim_alloc(ocs_action, ocs_poll,
111 				device_get_name(ocs->dev), ocs,
112 				device_get_unit(ocs->dev), &ocs->sim_lock,
113 				max_io, max_io, ocs->devq))) {
114 		device_printf(ocs->dev, "Can't allocate SIM\n");
115 		return 1;
116 	}
117 
118 	mtx_lock(&ocs->sim_lock);
119 	if (CAM_SUCCESS != xpt_bus_register(sim, ocs->dev, chan)) {
120 		device_printf(ocs->dev, "Can't register bus %d\n", 0);
121 		mtx_unlock(&ocs->sim_lock);
122 		cam_sim_free(sim, FALSE);
123 		return 1;
124 	}
125 	mtx_unlock(&ocs->sim_lock);
126 
127 	if (CAM_REQ_CMP != xpt_create_path(&path, NULL, cam_sim_path(sim),
128 				CAM_TARGET_WILDCARD, CAM_LUN_WILDCARD)) {
129 		device_printf(ocs->dev, "Can't create path\n");
130 		xpt_bus_deregister(cam_sim_path(sim));
131 		mtx_unlock(&ocs->sim_lock);
132 		cam_sim_free(sim, FALSE);
133 		return 1;
134 	}
135 
136 	fcp->ocs = ocs;
137 	fcp->sim  = sim;
138 	fcp->path = path;
139 
140 	callout_init_mtx(&fcp->ldt, &ocs->sim_lock, 0);
141 	TASK_INIT(&fcp->ltask, 1, ocs_ldt_task, fcp);
142 
143 	return 0;
144 }
145 
146 static int32_t
147 ocs_detach_port(ocs_t *ocs, int32_t chan)
148 {
149 	ocs_fcport *fcp = NULL;
150 	struct cam_sim	*sim = NULL;
151 	struct cam_path	*path = NULL;
152 	fcp = FCPORT(ocs, chan);
153 
154 	sim = fcp->sim;
155 	path = fcp->path;
156 
157 	callout_drain(&fcp->ldt);
158 	ocs_ldt_task(fcp, 0);
159 
160 	if (fcp->sim) {
161 		mtx_lock(&ocs->sim_lock);
162 			ocs_tgt_resource_abort(ocs, &fcp->targ_rsrc_wildcard);
163 			if (path) {
164 				xpt_async(AC_LOST_DEVICE, path, NULL);
165 				xpt_free_path(path);
166 				fcp->path = NULL;
167 			}
168 			xpt_bus_deregister(cam_sim_path(sim));
169 
170 			cam_sim_free(sim, FALSE);
171 			fcp->sim = NULL;
172 		mtx_unlock(&ocs->sim_lock);
173 	}
174 
175 	return 0;
176 }
177 
178 int32_t
179 ocs_cam_attach(ocs_t *ocs)
180 {
181 	struct cam_devq	*devq = NULL;
182 	int	i = 0;
183 	uint32_t	max_io = ocs_scsi_get_property(ocs, OCS_SCSI_MAX_IOS);
184 
185 	if (NULL == (devq = cam_simq_alloc(max_io))) {
186 		device_printf(ocs->dev, "Can't allocate SIMQ\n");
187 		return -1;
188 	}
189 
190 	ocs->devq = devq;
191 
192 	if (mtx_initialized(&ocs->sim_lock) == 0) {
193 		mtx_init(&ocs->sim_lock, "ocs_sim_lock", NULL, MTX_DEF);
194 	}
195 
196 	for (i = 0; i < (ocs->num_vports + 1); i++) {
197 		if (ocs_attach_port(ocs, i)) {
198 			ocs_log_err(ocs, "Attach port failed for chan: %d\n", i);
199 			goto detach_port;
200 		}
201 	}
202 
203 	ocs->io_high_watermark = max_io;
204 	ocs->io_in_use = 0;
205 	return 0;
206 
207 detach_port:
208 	while (--i >= 0) {
209 		ocs_detach_port(ocs, i);
210 	}
211 
212 	cam_simq_free(ocs->devq);
213 
214 	if (mtx_initialized(&ocs->sim_lock))
215 		mtx_destroy(&ocs->sim_lock);
216 
217 	return 1;
218 }
219 
220 int32_t
221 ocs_cam_detach(ocs_t *ocs)
222 {
223 	int i = 0;
224 
225 	for (i = (ocs->num_vports); i >= 0; i--) {
226 		ocs_detach_port(ocs, i);
227 	}
228 
229 	cam_simq_free(ocs->devq);
230 
231 	if (mtx_initialized(&ocs->sim_lock))
232 		mtx_destroy(&ocs->sim_lock);
233 
234 	return 0;
235 }
236 
237 /***************************************************************************
238  * Functions required by SCSI base driver API
239  */
240 
241 /**
242  * @ingroup scsi_api_target
243  * @brief Attach driver to the BSD SCSI layer (a.k.a CAM)
244  *
245  * Allocates + initializes CAM related resources and attaches to the CAM
246  *
247  * @param ocs the driver instance's software context
248  *
249  * @return 0 on success, non-zero otherwise
250  */
251 int32_t
252 ocs_scsi_tgt_new_device(ocs_t *ocs)
253 {
254 	ocs->enable_task_set_full = ocs_scsi_get_property(ocs,
255 					OCS_SCSI_ENABLE_TASK_SET_FULL);
256 	ocs_log_debug(ocs, "task set full processing is %s\n",
257 		ocs->enable_task_set_full ? "enabled" : "disabled");
258 
259 	return 0;
260 }
261 
262 /**
263  * @ingroup scsi_api_target
264  * @brief Tears down target members of ocs structure.
265  *
266  * Called by OS code when device is removed.
267  *
268  * @param ocs pointer to ocs
269  *
270  * @return returns 0 for success, a negative error code value for failure.
271  */
272 int32_t
273 ocs_scsi_tgt_del_device(ocs_t *ocs)
274 {
275 
276 	return 0;
277 }
278 
279 /**
280  * @ingroup scsi_api_target
281  * @brief accept new domain notification
282  *
283  * Called by base drive when new domain is discovered.  A target-server
284  * will use this call to prepare for new remote node notifications
285  * arising from ocs_scsi_new_initiator().
286  *
287  * The domain context has an element <b>ocs_scsi_tgt_domain_t tgt_domain</b>
288  * which is declared by the target-server code and is used for target-server
289  * private data.
290  *
291  * This function will only be called if the base-driver has been enabled for
292  * target capability.
293  *
294  * Note that this call is made to target-server backends,
295  * the ocs_scsi_ini_new_domain() function is called to initiator-client backends.
296  *
297  * @param domain pointer to domain
298  *
299  * @return returns 0 for success, a negative error code value for failure.
300  */
301 int32_t
302 ocs_scsi_tgt_new_domain(ocs_domain_t *domain)
303 {
304 	return 0;
305 }
306 
307 /**
308  * @ingroup scsi_api_target
309  * @brief accept domain lost notification
310  *
311  * Called by base-driver when a domain goes away.  A target-server will
312  * use this call to clean up all domain scoped resources.
313  *
314  * Note that this call is made to target-server backends,
315  * the ocs_scsi_ini_del_domain() function is called to initiator-client backends.
316  *
317  * @param domain pointer to domain
318  *
319  * @return returns 0 for success, a negative error code value for failure.
320  */
321 void
322 ocs_scsi_tgt_del_domain(ocs_domain_t *domain)
323 {
324 }
325 
326 
327 /**
328  * @ingroup scsi_api_target
329  * @brief accept new sli port (sport) notification
330  *
331  * Called by base drive when new sport is discovered.  A target-server
332  * will use this call to prepare for new remote node notifications
333  * arising from ocs_scsi_new_initiator().
334  *
335  * The domain context has an element <b>ocs_scsi_tgt_sport_t tgt_sport</b>
336  * which is declared by the target-server code and is used for
337  * target-server private data.
338  *
339  * This function will only be called if the base-driver has been enabled for
340  * target capability.
341  *
342  * Note that this call is made to target-server backends,
343  * the ocs_scsi_tgt_new_domain() is called to initiator-client backends.
344  *
345  * @param sport pointer to SLI port
346  *
347  * @return returns 0 for success, a negative error code value for failure.
348  */
349 int32_t
350 ocs_scsi_tgt_new_sport(ocs_sport_t *sport)
351 {
352 	ocs_t *ocs = sport->ocs;
353 
354 	if(!sport->is_vport) {
355 		sport->tgt_data = FCPORT(ocs, 0);
356 	}
357 
358 	return 0;
359 }
360 
361 /**
362  * @ingroup scsi_api_target
363  * @brief accept SLI port gone notification
364  *
365  * Called by base-driver when a sport goes away.  A target-server will
366  * use this call to clean up all sport scoped resources.
367  *
368  * Note that this call is made to target-server backends,
369  * the ocs_scsi_ini_del_sport() is called to initiator-client backends.
370  *
371  * @param sport pointer to SLI port
372  *
373  * @return returns 0 for success, a negative error code value for failure.
374  */
375 void
376 ocs_scsi_tgt_del_sport(ocs_sport_t *sport)
377 {
378 	return;
379 }
380 
381 /**
382  * @ingroup scsi_api_target
383  * @brief receive notification of a new SCSI initiator node
384  *
385  * Sent by base driver to notify a target-server of the presense of a new
386  * remote initiator.   The target-server may use this call to prepare for
387  * inbound IO from this node.
388  *
389  * The ocs_node_t structure has and elment of type ocs_scsi_tgt_node_t named
390  * tgt_node that is declared and used by a target-server for private
391  * information.
392  *
393  * This function is only called if the target capability is enabled in driver.
394  *
395  * @param node pointer to new remote initiator node
396  *
397  * @return returns 0 for success, a negative error code value for failure.
398  *
399  * @note
400  */
401 int32_t
402 ocs_scsi_new_initiator(ocs_node_t *node)
403 {
404 	ocs_t	*ocs = node->ocs;
405 	struct ac_contract ac;
406 	struct ac_device_changed *adc;
407 
408 	ocs_fcport	*fcp = NULL;
409 
410 	fcp = node->sport->tgt_data;
411 	if (fcp == NULL) {
412 		ocs_log_err(ocs, "FCP is NULL \n");
413 		return 1;
414 	}
415 
416 	/*
417 	 * Update the IO watermark by decrementing it by the
418 	 * number of IOs reserved for each initiator.
419 	 */
420 	atomic_subtract_acq_32(&ocs->io_high_watermark, OCS_RSVD_INI_IO);
421 
422 	ac.contract_number = AC_CONTRACT_DEV_CHG;
423 	adc = (struct ac_device_changed *) ac.contract_data;
424 	adc->wwpn = ocs_node_get_wwpn(node);
425 	adc->port = node->rnode.fc_id;
426 	adc->target = node->instance_index;
427 	adc->arrived = 1;
428 	xpt_async(AC_CONTRACT, fcp->path, &ac);
429 
430 	return 0;
431 }
432 
433 /**
434  * @ingroup scsi_api_target
435  * @brief validate new initiator
436  *
437  * Sent by base driver to validate a remote initiatiator.   The target-server
438  * returns TRUE if this initiator should be accepted.
439  *
440  * This function is only called if the target capability is enabled in driver.
441  *
442  * @param node pointer to remote initiator node to validate
443  *
444  * @return TRUE if initiator should be accepted, FALSE if it should be rejected
445  *
446  * @note
447  */
448 
449 int32_t
450 ocs_scsi_validate_initiator(ocs_node_t *node)
451 {
452 	return 1;
453 }
454 
455 /**
456  * @ingroup scsi_api_target
457  * @brief Delete a SCSI initiator node
458  *
459  * Sent by base driver to notify a target-server that a remote initiator
460  * is now gone. The base driver will have terminated all outstanding IOs
461  * and the target-server will receive appropriate completions.
462  *
463  * This function is only called if the base driver is enabled for
464  * target capability.
465  *
466  * @param node pointer node being deleted
467  * @param reason Reason why initiator is gone.
468  *
469  * @return OCS_SCSI_CALL_COMPLETE to indicate that all work was completed
470  *
471  * @note
472  */
473 int32_t
474 ocs_scsi_del_initiator(ocs_node_t *node, ocs_scsi_del_initiator_reason_e reason)
475 {
476 	ocs_t	*ocs = node->ocs;
477 
478 	struct ac_contract ac;
479 	struct ac_device_changed *adc;
480 	ocs_fcport	*fcp = NULL;
481 
482 	fcp = node->sport->tgt_data;
483 	if (fcp == NULL) {
484 		ocs_log_err(ocs, "FCP is NULL \n");
485 		return 1;
486 	}
487 
488 	ac.contract_number = AC_CONTRACT_DEV_CHG;
489 	adc = (struct ac_device_changed *) ac.contract_data;
490 	adc->wwpn = ocs_node_get_wwpn(node);
491 	adc->port = node->rnode.fc_id;
492 	adc->target = node->instance_index;
493 	adc->arrived = 0;
494 	xpt_async(AC_CONTRACT, fcp->path, &ac);
495 
496 
497 	if (reason == OCS_SCSI_INITIATOR_MISSING) {
498 		return OCS_SCSI_CALL_COMPLETE;
499 	}
500 
501 	/*
502 	 * Update the IO watermark by incrementing it by the
503 	 * number of IOs reserved for each initiator.
504 	 */
505 	atomic_add_acq_32(&ocs->io_high_watermark, OCS_RSVD_INI_IO);
506 
507 	return OCS_SCSI_CALL_COMPLETE;
508 }
509 
510 /**
511  * @ingroup scsi_api_target
512  * @brief receive FCP SCSI Command
513  *
514  * Called by the base driver when a new SCSI command has been received.   The
515  * target-server will process the command, and issue data and/or response phase
516  * requests to the base driver.
517  *
518  * The IO context (ocs_io_t) structure has and element of type
519  * ocs_scsi_tgt_io_t named tgt_io that is declared and used by
520  * a target-server for private information.
521  *
522  * @param io pointer to IO context
523  * @param lun LUN for this IO
524  * @param cdb pointer to SCSI CDB
525  * @param cdb_len length of CDB in bytes
526  * @param flags command flags
527  *
528  * @return returns 0 for success, a negative error code value for failure.
529  */
530 int32_t ocs_scsi_recv_cmd(ocs_io_t *io, uint64_t lun, uint8_t *cdb,
531 				uint32_t cdb_len, uint32_t flags)
532 {
533 	ocs_t *ocs = io->ocs;
534 	struct ccb_accept_tio *atio = NULL;
535 	ocs_node_t	*node = io->node;
536 	ocs_tgt_resource_t *trsrc = NULL;
537 	int32_t		rc = -1;
538 	ocs_fcport	*fcp = NULL;
539 
540 	fcp = node->sport->tgt_data;
541 	if (fcp == NULL) {
542 		ocs_log_err(ocs, "FCP is NULL \n");
543 		return 1;
544 	}
545 
546 	atomic_add_acq_32(&ocs->io_in_use, 1);
547 
548 	/* set target io timeout */
549 	io->timeout = ocs->target_io_timer_sec;
550 
551 	if (ocs->enable_task_set_full &&
552 		(ocs->io_in_use >= ocs->io_high_watermark)) {
553 		return ocs_task_set_full_or_busy(io);
554 	} else {
555 		atomic_store_rel_32(&io->node->tgt_node.busy_sent, FALSE);
556 	}
557 
558 	if ((lun < OCS_MAX_LUN) && fcp->targ_rsrc[lun].enabled) {
559 		trsrc = &fcp->targ_rsrc[lun];
560 	} else if (fcp->targ_rsrc_wildcard.enabled) {
561 		trsrc = &fcp->targ_rsrc_wildcard;
562 	}
563 
564 	if (trsrc) {
565 		atio = (struct ccb_accept_tio *)STAILQ_FIRST(&trsrc->atio);
566 	}
567 
568 	if (atio) {
569 
570 		STAILQ_REMOVE_HEAD(&trsrc->atio, sim_links.stqe);
571 
572 		atio->ccb_h.status = CAM_CDB_RECVD;
573 		atio->ccb_h.target_lun = lun;
574 		atio->sense_len = 0;
575 
576 		atio->init_id = node->instance_index;
577 		atio->tag_id = io->tag;
578 		atio->ccb_h.ccb_io_ptr = io;
579 
580 		if (flags & OCS_SCSI_CMD_SIMPLE)
581 			atio->tag_action = MSG_SIMPLE_Q_TAG;
582 		else if (flags &  FCP_TASK_ATTR_HEAD_OF_QUEUE)
583 			atio->tag_action = MSG_HEAD_OF_Q_TAG;
584 		else if (flags & FCP_TASK_ATTR_ORDERED)
585 			atio->tag_action = MSG_ORDERED_Q_TAG;
586 		else
587 			atio->tag_action = 0;
588 
589 		atio->cdb_len = cdb_len;
590 		ocs_memcpy(atio->cdb_io.cdb_bytes, cdb, cdb_len);
591 
592 		io->tgt_io.flags = 0;
593 		io->tgt_io.state = OCS_CAM_IO_COMMAND;
594 		io->tgt_io.lun = lun;
595 
596 		xpt_done((union ccb *)atio);
597 
598 		rc = 0;
599 	} else {
600 		device_printf(
601 			ocs->dev, "%s: no ATIO for LUN %lx (en=%s) OX_ID %#x\n",
602 			__func__, (unsigned long)lun,
603 			trsrc ? (trsrc->enabled ? "T" : "F") : "X",
604 			be16toh(io->init_task_tag));
605 
606 		io->tgt_io.state = OCS_CAM_IO_MAX;
607 		ocs_target_io_free(io);
608 	}
609 
610 	return rc;
611 }
612 
613 /**
614  * @ingroup scsi_api_target
615  * @brief receive FCP SCSI Command with first burst data.
616  *
617  * Receive a new FCP SCSI command from the base driver with first burst data.
618  *
619  * @param io pointer to IO context
620  * @param lun LUN for this IO
621  * @param cdb pointer to SCSI CDB
622  * @param cdb_len length of CDB in bytes
623  * @param flags command flags
624  * @param first_burst_buffers first burst buffers
625  * @param first_burst_buffer_count The number of bytes received in the first burst
626  *
627  * @return returns 0 for success, a negative error code value for failure.
628  */
629 int32_t ocs_scsi_recv_cmd_first_burst(ocs_io_t *io, uint64_t lun, uint8_t *cdb,
630 		 			uint32_t cdb_len, uint32_t flags,
631 					ocs_dma_t first_burst_buffers[],
632 					uint32_t first_burst_buffer_count)
633 {
634 	return -1;
635 }
636 
637 /**
638  * @ingroup scsi_api_target
639  * @brief receive a TMF command IO
640  *
641  * Called by the base driver when a SCSI TMF command has been received.   The
642  * target-server will process the command, aborting commands as needed, and post
643  * a response using ocs_scsi_send_resp()
644  *
645  * The IO context (ocs_io_t) structure has and element of type ocs_scsi_tgt_io_t named
646  * tgt_io that is declared and used by a target-server for private information.
647  *
648  * If the target-server walks the nodes active_ios linked list, and starts IO
649  * abort processing, the code <b>must</b> be sure not to abort the IO passed into the
650  * ocs_scsi_recv_tmf() command.
651  *
652  * @param tmfio pointer to IO context
653  * @param lun logical unit value
654  * @param cmd command request
655  * @param abortio pointer to IO object to abort for TASK_ABORT (NULL for all other TMF)
656  * @param flags flags
657  *
658  * @return returns 0 for success, a negative error code value for failure.
659  */
660 int32_t ocs_scsi_recv_tmf(ocs_io_t *tmfio, uint64_t lun, ocs_scsi_tmf_cmd_e cmd,
661 				ocs_io_t *abortio, uint32_t flags)
662 {
663 	ocs_t *ocs = tmfio->ocs;
664 	ocs_node_t *node = tmfio->node;
665 	ocs_tgt_resource_t *trsrc = NULL;
666 	struct ccb_immediate_notify *inot = NULL;
667 	int32_t		rc = -1;
668 	ocs_fcport	*fcp = NULL;
669 
670 	fcp = node->sport->tgt_data;
671 	if (fcp == NULL) {
672 		ocs_log_err(ocs, "FCP is NULL \n");
673 		return 1;
674 	}
675 
676 	if ((lun < OCS_MAX_LUN) && fcp->targ_rsrc[lun].enabled) {
677 		trsrc = &fcp->targ_rsrc[lun];
678 	} else if (fcp->targ_rsrc_wildcard.enabled) {
679 		trsrc = &fcp->targ_rsrc_wildcard;
680 	}
681 
682 	device_printf(tmfio->ocs->dev, "%s: io=%p cmd=%#x LU=%lx en=%s\n",
683 			__func__, tmfio, cmd, (unsigned long)lun,
684 			trsrc ? (trsrc->enabled ? "T" : "F") : "X");
685 	if (trsrc) {
686 		inot = (struct ccb_immediate_notify *)STAILQ_FIRST(&trsrc->inot);
687 	}
688 
689 	if (!inot) {
690 		device_printf(
691 			ocs->dev, "%s: no INOT for LUN %llx (en=%s) OX_ID %#x\n",
692 			__func__, (unsigned long long)lun, trsrc ? (trsrc->enabled ? "T" : "F") : "X",
693 			be16toh(tmfio->init_task_tag));
694 
695 		if (abortio) {
696 			ocs_scsi_io_complete(abortio);
697 		}
698 		ocs_scsi_io_complete(tmfio);
699 		goto ocs_scsi_recv_tmf_out;
700 	}
701 
702 
703 	tmfio->tgt_io.app = abortio;
704 
705 	STAILQ_REMOVE_HEAD(&trsrc->inot, sim_links.stqe);
706 
707 	inot->tag_id = tmfio->tag;
708 	inot->seq_id = tmfio->tag;
709 
710 	if ((lun < OCS_MAX_LUN) && fcp->targ_rsrc[lun].enabled) {
711 		inot->initiator_id = node->instance_index;
712 	} else {
713 		inot->initiator_id = CAM_TARGET_WILDCARD;
714 	}
715 
716 	inot->ccb_h.status = CAM_MESSAGE_RECV;
717 	inot->ccb_h.target_lun = lun;
718 
719 	switch (cmd) {
720 	case OCS_SCSI_TMF_ABORT_TASK:
721 		inot->arg = MSG_ABORT_TASK;
722 		inot->seq_id = abortio->tag;
723 		device_printf(ocs->dev, "%s: ABTS IO.%#x st=%#x\n",
724 			__func__, abortio->tag,	abortio->tgt_io.state);
725 		abortio->tgt_io.flags |= OCS_CAM_IO_F_ABORT_RECV;
726 		abortio->tgt_io.flags |= OCS_CAM_IO_F_ABORT_NOTIFY;
727 		break;
728 	case OCS_SCSI_TMF_QUERY_TASK_SET:
729 		device_printf(ocs->dev,
730 			"%s: OCS_SCSI_TMF_QUERY_TASK_SET not supported\n",
731 				__func__);
732 		STAILQ_INSERT_TAIL(&trsrc->inot, &inot->ccb_h, sim_links.stqe);
733 		ocs_scsi_io_complete(tmfio);
734 		goto ocs_scsi_recv_tmf_out;
735 		break;
736 	case OCS_SCSI_TMF_ABORT_TASK_SET:
737 		inot->arg = MSG_ABORT_TASK_SET;
738 		break;
739 	case OCS_SCSI_TMF_CLEAR_TASK_SET:
740 		inot->arg = MSG_CLEAR_TASK_SET;
741 		break;
742 	case OCS_SCSI_TMF_QUERY_ASYNCHRONOUS_EVENT:
743 		inot->arg = MSG_QUERY_ASYNC_EVENT;
744 		break;
745 	case OCS_SCSI_TMF_LOGICAL_UNIT_RESET:
746 		inot->arg = MSG_LOGICAL_UNIT_RESET;
747 		break;
748 	case OCS_SCSI_TMF_CLEAR_ACA:
749 		inot->arg = MSG_CLEAR_ACA;
750 		break;
751 	case OCS_SCSI_TMF_TARGET_RESET:
752 		inot->arg = MSG_TARGET_RESET;
753 		break;
754 	default:
755 		device_printf(ocs->dev, "%s: unsupported TMF %#x\n",
756 							 __func__, cmd);
757 		STAILQ_INSERT_TAIL(&trsrc->inot, &inot->ccb_h, sim_links.stqe);
758 		goto ocs_scsi_recv_tmf_out;
759 	}
760 
761 	rc = 0;
762 
763 	xpt_print(inot->ccb_h.path, "%s: func=%#x stat=%#x id=%#x lun=%#x"
764 			" flags=%#x tag=%#x seq=%#x ini=%#x arg=%#x\n",
765 			__func__, inot->ccb_h.func_code, inot->ccb_h.status,
766 			inot->ccb_h.target_id,
767 			(unsigned int)inot->ccb_h.target_lun, inot->ccb_h.flags,
768 			inot->tag_id, inot->seq_id, inot->initiator_id,
769 			inot->arg);
770 	xpt_done((union ccb *)inot);
771 
772 	if (abortio) {
773 		abortio->tgt_io.flags |= OCS_CAM_IO_F_ABORT_DEV;
774 		rc = ocs_scsi_tgt_abort_io(abortio, ocs_io_abort_cb, tmfio);
775 	}
776 
777 ocs_scsi_recv_tmf_out:
778 	return rc;
779 }
780 
781 /**
782  * @ingroup scsi_api_initiator
783  * @brief Initializes any initiator fields on the ocs structure.
784  *
785  * Called by OS initialization code when a new device is discovered.
786  *
787  * @param ocs pointer to ocs
788  *
789  * @return returns 0 for success, a negative error code value for failure.
790  */
791 int32_t
792 ocs_scsi_ini_new_device(ocs_t *ocs)
793 {
794 
795 	return 0;
796 }
797 
798 /**
799  * @ingroup scsi_api_initiator
800  * @brief Tears down initiator members of ocs structure.
801  *
802  * Called by OS code when device is removed.
803  *
804  * @param ocs pointer to ocs
805  *
806  * @return returns 0 for success, a negative error code value for failure.
807  */
808 
809 int32_t
810 ocs_scsi_ini_del_device(ocs_t *ocs)
811 {
812 
813 	return 0;
814 }
815 
816 
817 /**
818  * @ingroup scsi_api_initiator
819  * @brief accept new domain notification
820  *
821  * Called by base drive when new domain is discovered.  An initiator-client
822  * will accept this call to prepare for new remote node notifications
823  * arising from ocs_scsi_new_target().
824  *
825  * The domain context has the element <b>ocs_scsi_ini_domain_t ini_domain</b>
826  * which is declared by the initiator-client code and is used for
827  * initiator-client private data.
828  *
829  * This function will only be called if the base-driver has been enabled for
830  * initiator capability.
831  *
832  * Note that this call is made to initiator-client backends,
833  * the ocs_scsi_tgt_new_domain() function is called to target-server backends.
834  *
835  * @param domain pointer to domain
836  *
837  * @return returns 0 for success, a negative error code value for failure.
838  */
839 int32_t
840 ocs_scsi_ini_new_domain(ocs_domain_t *domain)
841 {
842 	return 0;
843 }
844 
845 /**
846  * @ingroup scsi_api_initiator
847  * @brief accept domain lost notification
848  *
849  * Called by base-driver when a domain goes away.  An initiator-client will
850  * use this call to clean up all domain scoped resources.
851  *
852  * This function will only be called if the base-driver has been enabled for
853  * initiator capability.
854  *
855  * Note that this call is made to initiator-client backends,
856  * the ocs_scsi_tgt_del_domain() function is called to target-server backends.
857  *
858  * @param domain pointer to domain
859  *
860  * @return returns 0 for success, a negative error code value for failure.
861  */
862 void
863 ocs_scsi_ini_del_domain(ocs_domain_t *domain)
864 {
865 }
866 
867 /**
868  * @ingroup scsi_api_initiator
869  * @brief accept new sli port notification
870  *
871  * Called by base drive when new sli port (sport) is discovered.
872  * A target-server will use this call to prepare for new remote node
873  * notifications arising from ocs_scsi_new_initiator().
874  *
875  * This function will only be called if the base-driver has been enabled for
876  * target capability.
877  *
878  * Note that this call is made to target-server backends,
879  * the ocs_scsi_ini_new_sport() function is called to initiator-client backends.
880  *
881  * @param sport pointer to sport
882  *
883  * @return returns 0 for success, a negative error code value for failure.
884  */
885 int32_t
886 ocs_scsi_ini_new_sport(ocs_sport_t *sport)
887 {
888 	ocs_t *ocs = sport->ocs;
889 
890 	if(!sport->is_vport) {
891 		sport->tgt_data = FCPORT(ocs, 0);
892 	}
893 
894 	return 0;
895 }
896 
897 /**
898  * @ingroup scsi_api_initiator
899  * @brief accept sli port gone notification
900  *
901  * Called by base-driver when a sport goes away.  A target-server will
902  * use this call to clean up all sport scoped resources.
903  *
904  * Note that this call is made to target-server backends,
905  * the ocs_scsi_ini_del_sport() function is called to initiator-client backends.
906  *
907  * @param sport pointer to SLI port
908  *
909  * @return returns 0 for success, a negative error code value for failure.
910  */
911 void
912 ocs_scsi_ini_del_sport(ocs_sport_t *sport)
913 {
914 }
915 
916 void
917 ocs_scsi_sport_deleted(ocs_sport_t *sport)
918 {
919 	ocs_t *ocs = sport->ocs;
920 	ocs_fcport *fcp = NULL;
921 
922 	ocs_xport_stats_t value;
923 
924 	if (!sport->is_vport) {
925 		return;
926 	}
927 
928 	fcp = sport->tgt_data;
929 
930 	ocs_xport_status(ocs->xport, OCS_XPORT_PORT_STATUS, &value);
931 
932 	if (value.value == 0) {
933 		ocs_log_debug(ocs, "PORT offline,.. skipping\n");
934 		return;
935 	}
936 
937 	if ((fcp->role != KNOB_ROLE_NONE)) {
938 		if(fcp->vport->sport != NULL) {
939 			ocs_log_debug(ocs,"sport is not NULL, skipping\n");
940 			return;
941 		}
942 
943 		ocs_sport_vport_alloc(ocs->domain, fcp->vport);
944 		return;
945 	}
946 
947 }
948 
949 int32_t
950 ocs_tgt_find(ocs_fcport *fcp, ocs_node_t *node)
951 {
952 	ocs_fc_target_t *tgt = NULL;
953 	uint32_t i;
954 
955 	for (i = 0; i < OCS_MAX_TARGETS; i++) {
956 		tgt = &fcp->tgt[i];
957 
958 		if (tgt->state == OCS_TGT_STATE_NONE)
959 			continue;
960 
961 		if (ocs_node_get_wwpn(node) == tgt->wwpn) {
962 			return i;
963 		}
964 	}
965 
966 	return -1;
967 }
968 
969 /**
970  * @ingroup scsi_api_initiator
971  * @brief receive notification of a new SCSI target node
972  *
973  * Sent by base driver to notify an initiator-client of the presense of a new
974  * remote target.   The initiator-server may use this call to prepare for
975  * inbound IO from this node.
976  *
977  * This function is only called if the base driver is enabled for
978  * initiator capability.
979  *
980  * @param node pointer to new remote initiator node
981  *
982  * @return none
983  *
984  * @note
985  */
986 
987 uint32_t
988 ocs_update_tgt(ocs_node_t *node, ocs_fcport *fcp, uint32_t tgt_id)
989 {
990 	ocs_fc_target_t *tgt = NULL;
991 
992 	tgt = &fcp->tgt[tgt_id];
993 
994 	tgt->node_id = node->instance_index;
995 	tgt->state = OCS_TGT_STATE_VALID;
996 
997 	tgt->port_id = node->rnode.fc_id;
998 	tgt->wwpn = ocs_node_get_wwpn(node);
999 	tgt->wwnn = ocs_node_get_wwnn(node);
1000 	return 0;
1001 }
1002 
1003 uint32_t
1004 ocs_add_new_tgt(ocs_node_t *node, ocs_fcport *fcp)
1005 {
1006 	uint32_t i;
1007 
1008 	struct ocs_softc *ocs = node->ocs;
1009 	union ccb *ccb = NULL;
1010 	for (i = 0; i < OCS_MAX_TARGETS; i++) {
1011 		if (fcp->tgt[i].state == OCS_TGT_STATE_NONE)
1012 			break;
1013 	}
1014 
1015 	if (NULL == (ccb = xpt_alloc_ccb_nowait())) {
1016 		device_printf(ocs->dev, "%s: ccb allocation failed\n", __func__);
1017 		return -1;
1018 	}
1019 
1020 	if (CAM_REQ_CMP != xpt_create_path(&ccb->ccb_h.path, xpt_periph,
1021 				cam_sim_path(fcp->sim),
1022 				i, CAM_LUN_WILDCARD)) {
1023 		device_printf(
1024 			ocs->dev, "%s: target path creation failed\n", __func__);
1025 		xpt_free_ccb(ccb);
1026 		return -1;
1027 	}
1028 
1029 	ocs_update_tgt(node, fcp, i);
1030 	xpt_rescan(ccb);
1031 	return 0;
1032 }
1033 
1034 int32_t
1035 ocs_scsi_new_target(ocs_node_t *node)
1036 {
1037 	ocs_fcport	*fcp = NULL;
1038 	int32_t i;
1039 
1040 	fcp = node->sport->tgt_data;
1041 	if (fcp == NULL) {
1042 		printf("%s:FCP is NULL \n", __func__);
1043 		return 0;
1044 	}
1045 
1046 	i = ocs_tgt_find(fcp, node);
1047 
1048 	if (i < 0) {
1049 		ocs_add_new_tgt(node, fcp);
1050 		return 0;
1051 	}
1052 
1053 	ocs_update_tgt(node, fcp, i);
1054 	return 0;
1055 }
1056 
1057 static void
1058 ocs_delete_target(ocs_t *ocs, ocs_fcport *fcp, int tgt)
1059 {
1060 	struct cam_path *cpath = NULL;
1061 
1062 	if (!fcp->sim) {
1063 		device_printf(ocs->dev, "%s: calling with NULL sim\n", __func__);
1064 		return;
1065 	}
1066 
1067 	if (CAM_REQ_CMP == xpt_create_path(&cpath, NULL, cam_sim_path(fcp->sim),
1068 				tgt, CAM_LUN_WILDCARD)) {
1069 		xpt_async(AC_LOST_DEVICE, cpath, NULL);
1070 
1071 		xpt_free_path(cpath);
1072 	}
1073 }
1074 
1075 /*
1076  * Device Lost Timer Function- when we have decided that a device was lost,
1077  * we wait a specific period of time prior to telling the OS about lost device.
1078  *
1079  * This timer function gets activated when the device was lost.
1080  * This function fires once a second and then scans the port database
1081  * for devices that are marked dead but still have a virtual target assigned.
1082  * We decrement a counter for that port database entry, and when it hits zero,
1083  * we tell the OS the device was lost. Timer will be stopped when the device
1084  * comes back active or removed from the OS.
1085  */
1086 static void
1087 ocs_ldt(void *arg)
1088 {
1089 	ocs_fcport *fcp = arg;
1090 	taskqueue_enqueue(taskqueue_thread, &fcp->ltask);
1091 }
1092 
1093 static void
1094 ocs_ldt_task(void *arg, int pending)
1095 {
1096 	ocs_fcport *fcp = arg;
1097 	ocs_t	*ocs = fcp->ocs;
1098 	int i, more_to_do = 0;
1099 	ocs_fc_target_t *tgt = NULL;
1100 
1101 	for (i = 0; i < OCS_MAX_TARGETS; i++) {
1102 		tgt = &fcp->tgt[i];
1103 
1104 		if (tgt->state != OCS_TGT_STATE_LOST) {
1105 			continue;
1106 		}
1107 
1108 		if ((tgt->gone_timer != 0) && (ocs->attached)){
1109 			tgt->gone_timer -= 1;
1110 			more_to_do++;
1111 			continue;
1112 		}
1113 
1114 		if (tgt->is_target) {
1115 			tgt->is_target = 0;
1116 			ocs_delete_target(ocs, fcp, i);
1117 		}
1118 
1119 		tgt->state = OCS_TGT_STATE_NONE;
1120 	}
1121 
1122 	if (more_to_do) {
1123 		callout_reset(&fcp->ldt, hz, ocs_ldt, fcp);
1124 	} else {
1125 		callout_deactivate(&fcp->ldt);
1126 	}
1127 
1128 }
1129 
1130 /**
1131  * @ingroup scsi_api_initiator
1132  * @brief Delete a SCSI target node
1133  *
1134  * Sent by base driver to notify a initiator-client that a remote target
1135  * is now gone. The base driver will have terminated all  outstanding IOs
1136  * and the initiator-client will receive appropriate completions.
1137  *
1138  * The ocs_node_t structure has and elment of type ocs_scsi_ini_node_t named
1139  * ini_node that is declared and used by a target-server for private
1140  * information.
1141  *
1142  * This function is only called if the base driver is enabled for
1143  * initiator capability.
1144  *
1145  * @param node pointer node being deleted
1146  * @param reason reason for deleting the target
1147  *
1148  * @return Returns OCS_SCSI_CALL_ASYNC if target delete is queued for async
1149  * completion and OCS_SCSI_CALL_COMPLETE if call completed or error.
1150  *
1151  * @note
1152  */
1153 int32_t
1154 ocs_scsi_del_target(ocs_node_t *node, ocs_scsi_del_target_reason_e reason)
1155 {
1156 	struct ocs_softc *ocs = node->ocs;
1157 	ocs_fcport	*fcp = NULL;
1158 	ocs_fc_target_t *tgt = NULL;
1159 	uint32_t	tgt_id;
1160 
1161 	fcp = node->sport->tgt_data;
1162 	if (fcp == NULL) {
1163 		ocs_log_err(ocs,"FCP is NULL \n");
1164 		return 0;
1165 	}
1166 
1167 	tgt_id = ocs_tgt_find(fcp, node);
1168 
1169 	tgt = &fcp->tgt[tgt_id];
1170 
1171 	// IF in shutdown delete target.
1172 	if(!ocs->attached) {
1173 		ocs_delete_target(ocs, fcp, tgt_id);
1174 	} else {
1175 
1176 		tgt->state = OCS_TGT_STATE_LOST;
1177 		tgt->gone_timer = 30;
1178 		if (!callout_active(&fcp->ldt)) {
1179 			callout_reset(&fcp->ldt, hz, ocs_ldt, fcp);
1180 		}
1181 	}
1182 
1183 	return 0;
1184 }
1185 
1186 /**
1187  * @brief Initialize SCSI IO
1188  *
1189  * Initialize SCSI IO, this function is called once per IO during IO pool
1190  * allocation so that the target server may initialize any of its own private
1191  * data.
1192  *
1193  * @param io pointer to SCSI IO object
1194  *
1195  * @return returns 0 for success, a negative error code value for failure.
1196  */
1197 int32_t
1198 ocs_scsi_tgt_io_init(ocs_io_t *io)
1199 {
1200 	return 0;
1201 }
1202 
1203 /**
1204  * @brief Uninitialize SCSI IO
1205  *
1206  * Uninitialize target server private data in a SCSI io object
1207  *
1208  * @param io pointer to SCSI IO object
1209  *
1210  * @return returns 0 for success, a negative error code value for failure.
1211  */
1212 int32_t
1213 ocs_scsi_tgt_io_exit(ocs_io_t *io)
1214 {
1215 	return 0;
1216 }
1217 
1218 /**
1219  * @brief Initialize SCSI IO
1220  *
1221  * Initialize SCSI IO, this function is called once per IO during IO pool
1222  * allocation so that the initiator client may initialize any of its own private
1223  * data.
1224  *
1225  * @param io pointer to SCSI IO object
1226  *
1227  * @return returns 0 for success, a negative error code value for failure.
1228  */
1229 int32_t
1230 ocs_scsi_ini_io_init(ocs_io_t *io)
1231 {
1232 	return 0;
1233 }
1234 
1235 /**
1236  * @brief Uninitialize SCSI IO
1237  *
1238  * Uninitialize initiator client private data in a SCSI io object
1239  *
1240  * @param io pointer to SCSI IO object
1241  *
1242  * @return returns 0 for success, a negative error code value for failure.
1243  */
1244 int32_t
1245 ocs_scsi_ini_io_exit(ocs_io_t *io)
1246 {
1247 	return 0;
1248 }
1249 /*
1250  * End of functions required by SCSI base driver API
1251  ***************************************************************************/
1252 
1253 static __inline void
1254 ocs_set_ccb_status(union ccb *ccb, cam_status status)
1255 {
1256 	ccb->ccb_h.status &= ~CAM_STATUS_MASK;
1257 	ccb->ccb_h.status |= status;
1258 }
1259 
1260 static int32_t
1261 ocs_task_set_full_or_busy_cb(ocs_io_t *io, ocs_scsi_io_status_e scsi_status,
1262 						uint32_t flags, void *arg)
1263 {
1264 
1265 	ocs_target_io_free(io);
1266 
1267 	return 0;
1268 }
1269 
1270 /**
1271  * @brief send SCSI task set full or busy status
1272  *
1273  * A SCSI task set full or busy response is sent depending on whether
1274  * another IO is already active on the LUN.
1275  *
1276  * @param io pointer to IO context
1277  *
1278  * @return returns 0 for success, a negative error code value for failure.
1279  */
1280 
1281 static int32_t
1282 ocs_task_set_full_or_busy(ocs_io_t *io)
1283 {
1284 	ocs_scsi_cmd_resp_t rsp = { 0 };
1285 	ocs_t *ocs = io->ocs;
1286 
1287 	/*
1288 	 * If there is another command for the LUN, then send task set full,
1289 	 * if this is the first one, then send the busy status.
1290 	 *
1291 	 * if 'busy sent' is FALSE, set it to TRUE and send BUSY
1292 	 * otherwise send FULL
1293 	 */
1294 	if (atomic_cmpset_acq_32(&io->node->tgt_node.busy_sent, FALSE, TRUE)) {
1295 		rsp.scsi_status = SCSI_STATUS_BUSY; /* Busy */
1296 		printf("%s: busy [%s] tag=%x iiu=%d ihw=%d\n", __func__,
1297 				io->node->display_name, io->tag,
1298 				io->ocs->io_in_use, io->ocs->io_high_watermark);
1299 	} else {
1300 		rsp.scsi_status = SCSI_STATUS_TASK_SET_FULL; /* Task set full */
1301 		printf("%s: full tag=%x iiu=%d\n", __func__, io->tag,
1302 			io->ocs->io_in_use);
1303 	}
1304 
1305 	/* Log a message here indicating a busy or task set full state */
1306 	if (OCS_LOG_ENABLE_Q_FULL_BUSY_MSG(ocs)) {
1307 		/* Log Task Set Full */
1308 		if (rsp.scsi_status == SCSI_STATUS_TASK_SET_FULL) {
1309 			/* Task Set Full Message */
1310 			ocs_log_info(ocs, "OCS CAM TASK SET FULL. Tasks >= %d\n",
1311 			 		ocs->io_high_watermark);
1312 		}
1313 		else if (rsp.scsi_status == SCSI_STATUS_BUSY) {
1314 			/* Log Busy Message */
1315 			ocs_log_info(ocs, "OCS CAM SCSI BUSY\n");
1316 		}
1317 	}
1318 
1319 	/* Send the response */
1320 	return
1321 	ocs_scsi_send_resp(io, 0, &rsp, ocs_task_set_full_or_busy_cb, NULL);
1322 }
1323 
1324 /**
1325  * @ingroup cam_io
1326  * @brief Process target IO completions
1327  *
1328  * @param io
1329  * @param scsi_status did the IO complete successfully
1330  * @param flags
1331  * @param arg application specific pointer provided in the call to ocs_target_io()
1332  *
1333  * @todo
1334  */
1335 static int32_t ocs_scsi_target_io_cb(ocs_io_t *io,
1336 				ocs_scsi_io_status_e scsi_status,
1337 				uint32_t flags, void *arg)
1338 {
1339 	union ccb *ccb = arg;
1340 	struct ccb_scsiio *csio = &ccb->csio;
1341 	struct ocs_softc *ocs = csio->ccb_h.ccb_ocs_ptr;
1342 	uint32_t cam_dir = ccb->ccb_h.flags & CAM_DIR_MASK;
1343 	uint32_t io_is_done =
1344 		(ccb->ccb_h.flags & CAM_SEND_STATUS) == CAM_SEND_STATUS;
1345 
1346 	ccb->ccb_h.status &= ~CAM_SIM_QUEUED;
1347 
1348 	if (CAM_DIR_NONE != cam_dir) {
1349 		bus_dmasync_op_t op;
1350 
1351 		if (CAM_DIR_IN == cam_dir) {
1352 			op = BUS_DMASYNC_POSTREAD;
1353 		} else {
1354 			op = BUS_DMASYNC_POSTWRITE;
1355 		}
1356 		/* Synchronize the DMA memory with the CPU and free the mapping */
1357 		bus_dmamap_sync(ocs->buf_dmat, io->tgt_io.dmap, op);
1358 		if (io->tgt_io.flags & OCS_CAM_IO_F_DMAPPED) {
1359 			bus_dmamap_unload(ocs->buf_dmat, io->tgt_io.dmap);
1360 		}
1361 	}
1362 
1363 	if (io->tgt_io.sendresp) {
1364 		io->tgt_io.sendresp = 0;
1365 		ocs_scsi_cmd_resp_t  resp = { 0 };
1366 		io->tgt_io.state = OCS_CAM_IO_RESP;
1367 		resp.scsi_status = scsi_status;
1368 		if (ccb->ccb_h.flags & CAM_SEND_SENSE) {
1369 			resp.sense_data = (uint8_t *)&csio->sense_data;
1370 			resp.sense_data_length = csio->sense_len;
1371 		}
1372 		resp.residual = io->exp_xfer_len - io->transferred;
1373 
1374 		return ocs_scsi_send_resp(io, 0, &resp, ocs_scsi_target_io_cb, ccb);
1375 	}
1376 
1377 	switch (scsi_status) {
1378 	case OCS_SCSI_STATUS_GOOD:
1379 		ocs_set_ccb_status(ccb, CAM_REQ_CMP);
1380 		break;
1381 	case OCS_SCSI_STATUS_ABORTED:
1382 		ocs_set_ccb_status(ccb, CAM_REQ_ABORTED);
1383 		break;
1384 	default:
1385 		ocs_set_ccb_status(ccb, CAM_REQ_CMP_ERR);
1386 	}
1387 
1388 	if (io_is_done) {
1389 		if ((io->tgt_io.flags & OCS_CAM_IO_F_ABORT_NOTIFY) == 0) {
1390 			ocs_target_io_free(io);
1391 		}
1392 	} else {
1393 		io->tgt_io.state = OCS_CAM_IO_DATA_DONE;
1394 		/*device_printf(ocs->dev, "%s: CTIO state=%d tag=%#x\n",
1395 				__func__, io->tgt_io.state, io->tag);*/
1396 	}
1397 
1398 	xpt_done(ccb);
1399 
1400 	return 0;
1401 }
1402 
1403 /**
1404  * @note	1. Since the CCB is assigned to the ocs_io_t on an XPT_CONT_TARGET_IO
1405  * 		   action, if an initiator aborts a command prior to the SIM receiving
1406  * 		   a CTIO, the IO's CCB will be NULL.
1407  */
1408 static int32_t
1409 ocs_io_abort_cb(ocs_io_t *io, ocs_scsi_io_status_e scsi_status, uint32_t flags, void *arg)
1410 {
1411 	struct ocs_softc *ocs = NULL;
1412 	ocs_io_t	*tmfio = arg;
1413 	ocs_scsi_tmf_resp_e tmf_resp = OCS_SCSI_TMF_FUNCTION_COMPLETE;
1414 	int32_t	rc = 0;
1415 
1416 	ocs = io->ocs;
1417 
1418 	io->tgt_io.flags &= ~OCS_CAM_IO_F_ABORT_DEV;
1419 
1420 	/* A good status indicates the IO was aborted and will be completed in
1421 	 * the IO's completion handler. Handle the other cases here. */
1422 	switch (scsi_status) {
1423 	case OCS_SCSI_STATUS_GOOD:
1424 		break;
1425 	case OCS_SCSI_STATUS_NO_IO:
1426 		break;
1427 	default:
1428 		device_printf(ocs->dev, "%s: unhandled status %d\n",
1429 				__func__, scsi_status);
1430 		tmf_resp = OCS_SCSI_TMF_FUNCTION_REJECTED;
1431 		rc = -1;
1432 	}
1433 
1434 	ocs_scsi_send_tmf_resp(tmfio, tmf_resp, NULL, ocs_target_tmf_cb, NULL);
1435 
1436 	return rc;
1437 }
1438 
1439 /**
1440  * @ingroup cam_io
1441  * @brief Process initiator IO completions
1442  *
1443  * @param io
1444  * @param scsi_status did the IO complete successfully
1445  * @param rsp pointer to response buffer
1446  * @param flags
1447  * @param arg application specific pointer provided in the call to ocs_target_io()
1448  *
1449  * @todo
1450  */
1451 static int32_t ocs_scsi_initiator_io_cb(ocs_io_t *io,
1452 					ocs_scsi_io_status_e scsi_status,
1453 					ocs_scsi_cmd_resp_t *rsp,
1454 					uint32_t flags, void *arg)
1455 {
1456 	union ccb *ccb = arg;
1457 	struct ccb_scsiio *csio = &ccb->csio;
1458 	struct ocs_softc *ocs = csio->ccb_h.ccb_ocs_ptr;
1459 	uint32_t cam_dir = ccb->ccb_h.flags & CAM_DIR_MASK;
1460 	cam_status ccb_status= CAM_REQ_CMP_ERR;
1461 
1462 	if (CAM_DIR_NONE != cam_dir) {
1463 		bus_dmasync_op_t op;
1464 
1465 		if (CAM_DIR_IN == cam_dir) {
1466 			op = BUS_DMASYNC_POSTREAD;
1467 		} else {
1468 			op = BUS_DMASYNC_POSTWRITE;
1469 		}
1470 		/* Synchronize the DMA memory with the CPU and free the mapping */
1471 		bus_dmamap_sync(ocs->buf_dmat, io->tgt_io.dmap, op);
1472 		if (io->tgt_io.flags & OCS_CAM_IO_F_DMAPPED) {
1473 			bus_dmamap_unload(ocs->buf_dmat, io->tgt_io.dmap);
1474 		}
1475 	}
1476 
1477 	if (scsi_status == OCS_SCSI_STATUS_CHECK_RESPONSE) {
1478 		csio->scsi_status = rsp->scsi_status;
1479 		if (SCSI_STATUS_OK != rsp->scsi_status) {
1480 			ccb_status = CAM_SCSI_STATUS_ERROR;
1481 		}
1482 
1483 		csio->resid = rsp->residual;
1484 		if (rsp->residual > 0) {
1485 			uint32_t length = rsp->response_wire_length;
1486 			/* underflow */
1487 			if (csio->dxfer_len == (length + csio->resid)) {
1488 				ccb_status = CAM_REQ_CMP;
1489 			}
1490 		} else if (rsp->residual < 0) {
1491 			ccb_status = CAM_DATA_RUN_ERR;
1492 		}
1493 
1494 		if ((rsp->sense_data_length) &&
1495 			!(ccb->ccb_h.flags & (CAM_SENSE_PHYS | CAM_SENSE_PTR))) {
1496 			uint32_t	sense_len = 0;
1497 
1498 			ccb->ccb_h.status |= CAM_AUTOSNS_VALID;
1499 			if (rsp->sense_data_length < csio->sense_len) {
1500 				csio->sense_resid =
1501 					csio->sense_len - rsp->sense_data_length;
1502 				sense_len = rsp->sense_data_length;
1503 			} else {
1504 				csio->sense_resid = 0;
1505 				sense_len = csio->sense_len;
1506 			}
1507 			ocs_memcpy(&csio->sense_data, rsp->sense_data, sense_len);
1508 		}
1509 	} else if (scsi_status != OCS_SCSI_STATUS_GOOD) {
1510 		ccb_status = CAM_REQ_CMP_ERR;
1511 		ocs_set_ccb_status(ccb, ccb_status);
1512 		csio->ccb_h.status |= CAM_DEV_QFRZN;
1513 		xpt_freeze_devq(csio->ccb_h.path, 1);
1514 
1515 	} else {
1516 		ccb_status = CAM_REQ_CMP;
1517 	}
1518 
1519 	ocs_set_ccb_status(ccb, ccb_status);
1520 
1521 	ocs_scsi_io_free(io);
1522 
1523 	csio->ccb_h.ccb_io_ptr = NULL;
1524 	csio->ccb_h.ccb_ocs_ptr = NULL;
1525 	ccb->ccb_h.status &= ~CAM_SIM_QUEUED;
1526 
1527 	xpt_done(ccb);
1528 
1529 	return 0;
1530 }
1531 
1532 /**
1533  * @brief Load scatter-gather list entries into an IO
1534  *
1535  * This routine relies on the driver instance's software context pointer and
1536  * the IO object pointer having been already assigned to hooks in the CCB.
1537  * Although the routine does not return success/fail, callers can look at the
1538  * n_sge member to determine if the mapping failed (0 on failure).
1539  *
1540  * @param arg pointer to the CAM ccb for this IO
1541  * @param seg DMA address/length pairs
1542  * @param nseg number of DMA address/length pairs
1543  * @param error any errors while mapping the IO
1544  */
1545 static void
1546 ocs_scsi_dmamap_load(void *arg, bus_dma_segment_t *seg, int nseg, int error)
1547 {
1548 	ocs_dmamap_load_arg_t *sglarg = (ocs_dmamap_load_arg_t*) arg;
1549 
1550 	if (error) {
1551 		printf("%s: seg=%p nseg=%d error=%d\n",
1552 				__func__, seg, nseg, error);
1553 		sglarg->rc = -1;
1554 	} else {
1555 		uint32_t i = 0;
1556 		uint32_t c = 0;
1557 
1558 		if ((sglarg->sgl_count + nseg) > sglarg->sgl_max) {
1559 			printf("%s: sgl_count=%d nseg=%d max=%d\n", __func__,
1560 				sglarg->sgl_count, nseg, sglarg->sgl_max);
1561 			sglarg->rc = -2;
1562 			return;
1563 		}
1564 
1565 		for (i = 0, c = sglarg->sgl_count; i < nseg; i++, c++) {
1566 			sglarg->sgl[c].addr = seg[i].ds_addr;
1567 			sglarg->sgl[c].len  = seg[i].ds_len;
1568 		}
1569 
1570 		sglarg->sgl_count = c;
1571 
1572 		sglarg->rc = 0;
1573 	}
1574 }
1575 
1576 /**
1577  * @brief Build a scatter-gather list from a CAM CCB
1578  *
1579  * @param ocs the driver instance's software context
1580  * @param ccb pointer to the CCB
1581  * @param io pointer to the previously allocated IO object
1582  * @param sgl pointer to SGL
1583  * @param sgl_max number of entries in sgl
1584  *
1585  * @return 0 on success, non-zero otherwise
1586  */
1587 static int32_t
1588 ocs_build_scsi_sgl(struct ocs_softc *ocs, union ccb *ccb, ocs_io_t *io,
1589 		ocs_scsi_sgl_t *sgl, uint32_t sgl_max)
1590 {
1591 	ocs_dmamap_load_arg_t dmaarg;
1592 	int32_t	err = 0;
1593 
1594 	if (!ocs || !ccb || !io || !sgl) {
1595 		printf("%s: bad param o=%p c=%p i=%p s=%p\n", __func__,
1596 				ocs, ccb, io, sgl);
1597 		return -1;
1598 	}
1599 
1600 	io->tgt_io.flags &= ~OCS_CAM_IO_F_DMAPPED;
1601 
1602 	dmaarg.sgl = sgl;
1603 	dmaarg.sgl_count = 0;
1604 	dmaarg.sgl_max = sgl_max;
1605 	dmaarg.rc = 0;
1606 
1607 	err = bus_dmamap_load_ccb(ocs->buf_dmat, io->tgt_io.dmap, ccb,
1608 			ocs_scsi_dmamap_load, &dmaarg, 0);
1609 
1610 	if (err || dmaarg.rc) {
1611 		device_printf(
1612 			ocs->dev, "%s: bus_dmamap_load_ccb error (%d %d)\n",
1613 				__func__, err, dmaarg.rc);
1614 		return -1;
1615 	}
1616 
1617 	io->tgt_io.flags |= OCS_CAM_IO_F_DMAPPED;
1618 	return dmaarg.sgl_count;
1619 }
1620 
1621 /**
1622  * @ingroup cam_io
1623  * @brief Send a target IO
1624  *
1625  * @param ocs the driver instance's software context
1626  * @param ccb pointer to the CCB
1627  *
1628  * @return 0 on success, non-zero otherwise
1629  */
1630 static int32_t
1631 ocs_target_io(struct ocs_softc *ocs, union ccb *ccb)
1632 {
1633 	struct ccb_scsiio *csio = &ccb->csio;
1634 	ocs_io_t *io = NULL;
1635 	uint32_t cam_dir = ccb->ccb_h.flags & CAM_DIR_MASK;
1636 	bool sendstatus = ccb->ccb_h.flags & CAM_SEND_STATUS;
1637 	uint32_t xferlen = csio->dxfer_len;
1638 	int32_t rc = 0;
1639 
1640 	io = ocs_scsi_find_io(ocs, csio->tag_id);
1641 	if (io == NULL) {
1642 		ocs_set_ccb_status(ccb, CAM_REQ_CMP_ERR);
1643 		panic("bad tag value");
1644 		return 1;
1645 	}
1646 
1647 	/* Received an ABORT TASK for this IO */
1648 	if (io->tgt_io.flags & OCS_CAM_IO_F_ABORT_RECV) {
1649 		/*device_printf(ocs->dev,
1650 			"%s: XPT_CONT_TARGET_IO state=%d tag=%#x xid=%#x flags=%#x\n",
1651 			__func__, io->tgt_io.state, io->tag, io->init_task_tag,
1652 			io->tgt_io.flags);*/
1653 		io->tgt_io.flags |= OCS_CAM_IO_F_ABORT_CAM;
1654 
1655 		if (ccb->ccb_h.flags & CAM_SEND_STATUS) {
1656 			ocs_set_ccb_status(ccb, CAM_REQ_CMP);
1657 			ocs_target_io_free(io);
1658 			return 1;
1659 		}
1660 
1661 		ocs_set_ccb_status(ccb, CAM_REQ_ABORTED);
1662 
1663 		return 1;
1664 	}
1665 
1666 	io->tgt_io.app = ccb;
1667 
1668 	ocs_set_ccb_status(ccb, CAM_REQ_INPROG);
1669 	ccb->ccb_h.status |= CAM_SIM_QUEUED;
1670 
1671 	csio->ccb_h.ccb_ocs_ptr = ocs;
1672 	csio->ccb_h.ccb_io_ptr  = io;
1673 
1674 	if ((sendstatus && (xferlen == 0))) {
1675 		ocs_scsi_cmd_resp_t	resp = { 0 };
1676 
1677 		ocs_assert(ccb->ccb_h.flags & CAM_SEND_STATUS, -1);
1678 
1679 		io->tgt_io.state = OCS_CAM_IO_RESP;
1680 
1681 		resp.scsi_status = csio->scsi_status;
1682 
1683 		if (ccb->ccb_h.flags & CAM_SEND_SENSE) {
1684 			resp.sense_data = (uint8_t *)&csio->sense_data;
1685 			resp.sense_data_length = csio->sense_len;
1686 		}
1687 
1688 		resp.residual = io->exp_xfer_len - io->transferred;
1689 		rc = ocs_scsi_send_resp(io, 0, &resp, ocs_scsi_target_io_cb, ccb);
1690 
1691 	} else if (xferlen != 0) {
1692 		ocs_scsi_sgl_t sgl[OCS_FC_MAX_SGL];
1693 		int32_t sgl_count = 0;
1694 
1695 		io->tgt_io.state = OCS_CAM_IO_DATA;
1696 
1697 		if (sendstatus)
1698 			io->tgt_io.sendresp = 1;
1699 
1700 		sgl_count = ocs_build_scsi_sgl(ocs, ccb, io, sgl, ARRAY_SIZE(sgl));
1701 		if (sgl_count > 0) {
1702 			if (cam_dir == CAM_DIR_IN) {
1703 				rc = ocs_scsi_send_rd_data(io, 0, NULL, sgl,
1704 						sgl_count, csio->dxfer_len,
1705 						ocs_scsi_target_io_cb, ccb);
1706 			} else if (cam_dir == CAM_DIR_OUT) {
1707 				rc = ocs_scsi_recv_wr_data(io, 0, NULL, sgl,
1708 						sgl_count, csio->dxfer_len,
1709 						ocs_scsi_target_io_cb, ccb);
1710 			} else {
1711 				device_printf(ocs->dev, "%s:"
1712 						" unknown CAM direction %#x\n",
1713 						__func__, cam_dir);
1714 				ocs_set_ccb_status(ccb, CAM_REQ_INVALID);
1715 				rc = 1;
1716 			}
1717 		} else {
1718 			device_printf(ocs->dev, "%s: building SGL failed\n",
1719 						__func__);
1720 			ocs_set_ccb_status(ccb, CAM_REQ_CMP_ERR);
1721 			rc = 1;
1722 		}
1723 	} else {
1724 		device_printf(ocs->dev, "%s: Wrong value xfer and sendstatus"
1725 					" are 0 \n", __func__);
1726 		ocs_set_ccb_status(ccb, CAM_REQ_INVALID);
1727 		rc = 1;
1728 
1729 	}
1730 
1731 	if (rc) {
1732 		ocs_set_ccb_status(ccb, CAM_REQ_CMP_ERR);
1733 		ccb->ccb_h.status &= ~CAM_SIM_QUEUED;
1734 		io->tgt_io.state = OCS_CAM_IO_DATA_DONE;
1735 		device_printf(ocs->dev, "%s: CTIO state=%d tag=%#x\n",
1736 				__func__, io->tgt_io.state, io->tag);
1737 	if ((sendstatus && (xferlen == 0))) {
1738 			ocs_target_io_free(io);
1739 		}
1740 	}
1741 
1742 	return rc;
1743 }
1744 
1745 static int32_t
1746 ocs_target_tmf_cb(ocs_io_t *io, ocs_scsi_io_status_e scsi_status, uint32_t flags,
1747 		void *arg)
1748 {
1749 
1750 	/*device_printf(io->ocs->dev, "%s: tag=%x io=%p s=%#x\n",
1751 			 __func__, io->tag, io, scsi_status);*/
1752 	ocs_scsi_io_complete(io);
1753 
1754 	return 0;
1755 }
1756 
1757 /**
1758  * @ingroup cam_io
1759  * @brief Send an initiator IO
1760  *
1761  * @param ocs the driver instance's software context
1762  * @param ccb pointer to the CCB
1763  *
1764  * @return 0 on success, non-zero otherwise
1765  */
1766 static int32_t
1767 ocs_initiator_io(struct ocs_softc *ocs, union ccb *ccb)
1768 {
1769 	int32_t rc;
1770 	struct ccb_scsiio *csio = &ccb->csio;
1771 	struct ccb_hdr *ccb_h = &csio->ccb_h;
1772 	ocs_node_t *node = NULL;
1773 	ocs_io_t *io = NULL;
1774 	ocs_scsi_sgl_t sgl[OCS_FC_MAX_SGL];
1775 	int32_t sgl_count;
1776 
1777 	ocs_fcport	*fcp = NULL;
1778 	fcp = FCPORT(ocs, cam_sim_bus(xpt_path_sim((ccb)->ccb_h.path)));
1779 	if (fcp == NULL) {
1780 		device_printf(ocs->dev, "%s: fcp is NULL\n", __func__);
1781 		return -1;
1782 	}
1783 
1784 	if (fcp->tgt[ccb_h->target_id].state == OCS_TGT_STATE_LOST) {
1785 		device_printf(ocs->dev, "%s: device LOST %d\n", __func__,
1786 							ccb_h->target_id);
1787 		return CAM_REQUEUE_REQ;
1788 	}
1789 
1790 	if (fcp->tgt[ccb_h->target_id].state == OCS_TGT_STATE_NONE) {
1791 		device_printf(ocs->dev, "%s: device not ready %d\n", __func__,
1792 							ccb_h->target_id);
1793 		return CAM_SEL_TIMEOUT;
1794 	}
1795 
1796 	node = ocs_node_get_instance(ocs, fcp->tgt[ccb_h->target_id].node_id);
1797 	if (node == NULL) {
1798 		device_printf(ocs->dev, "%s: no device %d\n", __func__,
1799 							ccb_h->target_id);
1800 		return CAM_SEL_TIMEOUT;
1801 	}
1802 
1803 	if (!node->targ) {
1804 		device_printf(ocs->dev, "%s: not target device %d\n", __func__,
1805 							ccb_h->target_id);
1806 		return CAM_SEL_TIMEOUT;
1807 	}
1808 
1809 	io = ocs_scsi_io_alloc(node, OCS_SCSI_IO_ROLE_ORIGINATOR);
1810 	if (io == NULL) {
1811 		device_printf(ocs->dev, "%s: unable to alloc IO\n", __func__);
1812 		return -1;
1813 	}
1814 
1815 	/* eventhough this is INI, use target structure as ocs_build_scsi_sgl
1816 	 * only references the tgt_io part of an ocs_io_t */
1817 	io->tgt_io.app = ccb;
1818 
1819 	csio->ccb_h.ccb_ocs_ptr = ocs;
1820 	csio->ccb_h.ccb_io_ptr  = io;
1821 
1822 	sgl_count = ocs_build_scsi_sgl(ocs, ccb, io, sgl, ARRAY_SIZE(sgl));
1823 	if (sgl_count < 0) {
1824 		ocs_scsi_io_free(io);
1825 		device_printf(ocs->dev, "%s: building SGL failed\n", __func__);
1826 		return -1;
1827 	}
1828 
1829 	if (ccb->ccb_h.timeout == CAM_TIME_INFINITY) {
1830 		io->timeout = 0;
1831 	} else if (ccb->ccb_h.timeout == CAM_TIME_DEFAULT) {
1832 		io->timeout = OCS_CAM_IO_TIMEOUT;
1833 	} else {
1834 		io->timeout = ccb->ccb_h.timeout;
1835 	}
1836 
1837 	switch (ccb->ccb_h.flags & CAM_DIR_MASK) {
1838 	case CAM_DIR_NONE:
1839 		rc = ocs_scsi_send_nodata_io(node, io, ccb_h->target_lun,
1840 				ccb->ccb_h.flags & CAM_CDB_POINTER ?
1841 				csio->cdb_io.cdb_ptr: csio->cdb_io.cdb_bytes,
1842 				csio->cdb_len,
1843 				ocs_scsi_initiator_io_cb, ccb);
1844 		break;
1845 	case CAM_DIR_IN:
1846 		rc = ocs_scsi_send_rd_io(node, io, ccb_h->target_lun,
1847 				ccb->ccb_h.flags & CAM_CDB_POINTER ?
1848 				csio->cdb_io.cdb_ptr: csio->cdb_io.cdb_bytes,
1849 				csio->cdb_len,
1850 				NULL,
1851 				sgl, sgl_count, csio->dxfer_len,
1852 				ocs_scsi_initiator_io_cb, ccb);
1853 		break;
1854 	case CAM_DIR_OUT:
1855 		rc = ocs_scsi_send_wr_io(node, io, ccb_h->target_lun,
1856 				ccb->ccb_h.flags & CAM_CDB_POINTER ?
1857 				csio->cdb_io.cdb_ptr: csio->cdb_io.cdb_bytes,
1858 				csio->cdb_len,
1859 				NULL,
1860 				sgl, sgl_count, csio->dxfer_len,
1861 				ocs_scsi_initiator_io_cb, ccb);
1862 		break;
1863 	default:
1864 		panic("%s invalid data direction %08x\n", __func__,
1865 							ccb->ccb_h.flags);
1866 		break;
1867 	}
1868 
1869 	return rc;
1870 }
1871 
1872 static uint32_t
1873 ocs_fcp_change_role(struct ocs_softc *ocs, ocs_fcport *fcp, uint32_t new_role)
1874 {
1875 
1876 	uint32_t rc = 0, was = 0, i = 0;
1877 	ocs_vport_spec_t *vport = fcp->vport;
1878 
1879 	for (was = 0, i = 0; i < (ocs->num_vports + 1); i++) {
1880 		if (FCPORT(ocs, i)->role != KNOB_ROLE_NONE)
1881 		was++;
1882 	}
1883 
1884 	// Physical port
1885 	if ((was == 0) || (vport == NULL)) {
1886 		fcp->role = new_role;
1887 		if (vport == NULL) {
1888 			ocs->enable_ini = (new_role & KNOB_ROLE_INITIATOR)? 1:0;
1889 			ocs->enable_tgt = (new_role & KNOB_ROLE_TARGET)? 1:0;
1890 		} else {
1891 			vport->enable_ini = (new_role & KNOB_ROLE_INITIATOR)? 1:0;
1892 			vport->enable_tgt = (new_role & KNOB_ROLE_TARGET)? 1:0;
1893 		}
1894 
1895 		rc = ocs_xport_control(ocs->xport, OCS_XPORT_PORT_OFFLINE);
1896 		if (rc) {
1897 			ocs_log_debug(ocs, "port offline failed : %d\n", rc);
1898 		}
1899 
1900 		rc = ocs_xport_control(ocs->xport, OCS_XPORT_PORT_ONLINE);
1901 		if (rc) {
1902 			ocs_log_debug(ocs, "port online failed : %d\n", rc);
1903 		}
1904 
1905 		return 0;
1906 	}
1907 
1908 	if ((fcp->role != KNOB_ROLE_NONE)){
1909 		fcp->role = new_role;
1910 		vport->enable_ini = (new_role & KNOB_ROLE_INITIATOR)? 1:0;
1911 		vport->enable_tgt = (new_role & KNOB_ROLE_TARGET)? 1:0;
1912 		/* New Sport will be created in sport deleted cb */
1913 		return ocs_sport_vport_del(ocs, ocs->domain, vport->wwpn, vport->wwnn);
1914 	}
1915 
1916 	fcp->role = new_role;
1917 
1918 	vport->enable_ini = (new_role & KNOB_ROLE_INITIATOR)? 1:0;
1919 	vport->enable_tgt = (new_role & KNOB_ROLE_TARGET)? 1:0;
1920 
1921 	if (fcp->role != KNOB_ROLE_NONE) {
1922 		return ocs_sport_vport_alloc(ocs->domain, vport);
1923 	}
1924 
1925 	return (0);
1926 }
1927 
1928 /**
1929  * @ingroup cam_api
1930  * @brief Process CAM actions
1931  *
1932  * The driver supplies this routine to the CAM during intialization and
1933  * is the main entry point for processing CAM Control Blocks (CCB)
1934  *
1935  * @param sim pointer to the SCSI Interface Module
1936  * @param ccb CAM control block
1937  *
1938  * @todo
1939  *  - populate path inquiry data via info retrieved from SLI port
1940  */
1941 static void
1942 ocs_action(struct cam_sim *sim, union ccb *ccb)
1943 {
1944 	struct ocs_softc *ocs = (struct ocs_softc *)cam_sim_softc(sim);
1945 	struct ccb_hdr	*ccb_h = &ccb->ccb_h;
1946 
1947 	int32_t	rc, bus;
1948 	bus = cam_sim_bus(sim);
1949 
1950 	switch (ccb_h->func_code) {
1951 	case XPT_SCSI_IO:
1952 
1953 		if ((ccb->ccb_h.flags & CAM_CDB_POINTER) != 0) {
1954 			if ((ccb->ccb_h.flags & CAM_CDB_PHYS) != 0) {
1955 				ccb->ccb_h.status = CAM_REQ_INVALID;
1956 				xpt_done(ccb);
1957 				break;
1958 			}
1959 		}
1960 
1961 		rc = ocs_initiator_io(ocs, ccb);
1962 		if (0 == rc) {
1963 			ocs_set_ccb_status(ccb, CAM_REQ_INPROG | CAM_SIM_QUEUED);
1964 			break;
1965 		} else {
1966 		  	if (rc == CAM_REQUEUE_REQ) {
1967 				cam_freeze_devq(ccb->ccb_h.path);
1968 				cam_release_devq(ccb->ccb_h.path, RELSIM_RELEASE_AFTER_TIMEOUT, 0, 100, 0);
1969 				ccb->ccb_h.status = CAM_REQUEUE_REQ;
1970 				xpt_done(ccb);
1971 				break;
1972 			}
1973 
1974 			ccb->ccb_h.status &= ~CAM_SIM_QUEUED;
1975 			if (rc > 0) {
1976 				ocs_set_ccb_status(ccb, rc);
1977 			} else {
1978 				ocs_set_ccb_status(ccb, CAM_SEL_TIMEOUT);
1979 			}
1980 		}
1981 		xpt_done(ccb);
1982 		break;
1983 	case XPT_PATH_INQ:
1984 	{
1985 		struct ccb_pathinq *cpi = &ccb->cpi;
1986 		struct ccb_pathinq_settings_fc *fc = &cpi->xport_specific.fc;
1987 
1988 		uint64_t wwn = 0;
1989 		ocs_xport_stats_t value;
1990 
1991 		cpi->version_num = 1;
1992 
1993 		cpi->protocol = PROTO_SCSI;
1994 		cpi->protocol_version = SCSI_REV_SPC;
1995 
1996 		if (ocs->ocs_xport == OCS_XPORT_FC) {
1997 			cpi->transport = XPORT_FC;
1998 		} else {
1999 			cpi->transport = XPORT_UNKNOWN;
2000 		}
2001 
2002 		cpi->transport_version = 0;
2003 
2004 		/* Set the transport parameters of the SIM */
2005 		ocs_xport_status(ocs->xport, OCS_XPORT_LINK_SPEED, &value);
2006 		fc->bitrate = value.value * 1000;	/* speed in Mbps */
2007 
2008 		wwn = *((uint64_t *)ocs_scsi_get_property_ptr(ocs, OCS_SCSI_WWPN));
2009 		fc->wwpn = be64toh(wwn);
2010 
2011 		wwn = *((uint64_t *)ocs_scsi_get_property_ptr(ocs, OCS_SCSI_WWNN));
2012 		fc->wwnn = be64toh(wwn);
2013 
2014 		if (ocs->domain && ocs->domain->attached) {
2015 			fc->port = ocs->domain->sport->fc_id;
2016 		}
2017 
2018 		if (ocs->config_tgt) {
2019 			cpi->target_sprt =
2020 				PIT_PROCESSOR | PIT_DISCONNECT | PIT_TERM_IO;
2021 		}
2022 
2023 		cpi->hba_misc = PIM_NOBUSRESET | PIM_UNMAPPED;
2024 		cpi->hba_misc |= PIM_EXTLUNS | PIM_NOSCAN;
2025 
2026 		cpi->hba_inquiry = PI_TAG_ABLE;
2027 		cpi->max_target = OCS_MAX_TARGETS;
2028 		cpi->initiator_id = ocs->max_remote_nodes + 1;
2029 
2030 		if (!ocs->enable_ini) {
2031 			cpi->hba_misc |= PIM_NOINITIATOR;
2032 		}
2033 
2034 		cpi->max_lun = OCS_MAX_LUN;
2035 		cpi->bus_id = cam_sim_bus(sim);
2036 
2037 		/* Need to supply a base transfer speed prior to linking up
2038 		 * Worst case, this would be FC 1Gbps */
2039 		cpi->base_transfer_speed = 1 * 1000 * 1000;
2040 
2041 		/* Calculate the max IO supported
2042 		 * Worst case would be an OS page per SGL entry */
2043 		cpi->maxio = PAGE_SIZE *
2044 			(ocs_scsi_get_property(ocs, OCS_SCSI_MAX_SGL) - 1);
2045 
2046 		strncpy(cpi->sim_vid, "FreeBSD", SIM_IDLEN);
2047 		strncpy(cpi->hba_vid, "Emulex", HBA_IDLEN);
2048 		strncpy(cpi->dev_name, cam_sim_name(sim), DEV_IDLEN);
2049 		cpi->unit_number = cam_sim_unit(sim);
2050 
2051 		cpi->ccb_h.status = CAM_REQ_CMP;
2052 		xpt_done(ccb);
2053 		break;
2054 	}
2055 	case XPT_GET_TRAN_SETTINGS:
2056 	{
2057 		struct ccb_trans_settings *cts = &ccb->cts;
2058 		struct ccb_trans_settings_scsi *scsi = &cts->proto_specific.scsi;
2059 		struct ccb_trans_settings_fc *fc = &cts->xport_specific.fc;
2060 		ocs_xport_stats_t value;
2061 		ocs_fcport *fcp = FCPORT(ocs, bus);
2062 		ocs_node_t	*fnode = NULL;
2063 
2064 		if (ocs->ocs_xport != OCS_XPORT_FC) {
2065 			ocs_set_ccb_status(ccb, CAM_REQ_INVALID);
2066 			xpt_done(ccb);
2067 			break;
2068 		}
2069 
2070 		fnode = ocs_node_get_instance(ocs, fcp->tgt[cts->ccb_h.target_id].node_id);
2071 		if (fnode == NULL) {
2072 			ocs_set_ccb_status(ccb, CAM_DEV_NOT_THERE);
2073 			xpt_done(ccb);
2074 			break;
2075 		}
2076 
2077 		cts->protocol = PROTO_SCSI;
2078 		cts->protocol_version = SCSI_REV_SPC2;
2079 		cts->transport = XPORT_FC;
2080 		cts->transport_version = 2;
2081 
2082 		scsi->valid = CTS_SCSI_VALID_TQ;
2083 		scsi->flags = CTS_SCSI_FLAGS_TAG_ENB;
2084 
2085 		/* speed in Mbps */
2086 		ocs_xport_status(ocs->xport, OCS_XPORT_LINK_SPEED, &value);
2087 		fc->bitrate = value.value * 100;
2088 
2089 		fc->wwpn = ocs_node_get_wwpn(fnode);
2090 
2091 		fc->wwnn = ocs_node_get_wwnn(fnode);
2092 
2093 		fc->port = fnode->rnode.fc_id;
2094 
2095 		fc->valid = CTS_FC_VALID_SPEED |
2096 			CTS_FC_VALID_WWPN |
2097 			CTS_FC_VALID_WWNN |
2098 			CTS_FC_VALID_PORT;
2099 
2100 		ocs_set_ccb_status(ccb, CAM_REQ_CMP);
2101 		xpt_done(ccb);
2102 		break;
2103 	}
2104 	case XPT_SET_TRAN_SETTINGS:
2105 		ocs_set_ccb_status(ccb, CAM_REQ_CMP);
2106 		xpt_done(ccb);
2107 		break;
2108 
2109 	case XPT_CALC_GEOMETRY:
2110 		cam_calc_geometry(&ccb->ccg, TRUE);
2111 		xpt_done(ccb);
2112 		break;
2113 
2114 	case XPT_GET_SIM_KNOB:
2115 	{
2116 		struct ccb_sim_knob *knob = &ccb->knob;
2117 		uint64_t wwn = 0;
2118 		ocs_fcport *fcp = FCPORT(ocs, bus);
2119 
2120 		if (ocs->ocs_xport != OCS_XPORT_FC) {
2121 			ocs_set_ccb_status(ccb, CAM_REQ_INVALID);
2122 			xpt_done(ccb);
2123 			break;
2124 		}
2125 
2126 		if (bus == 0) {
2127 			wwn = *((uint64_t *)ocs_scsi_get_property_ptr(ocs,
2128 						OCS_SCSI_WWNN));
2129 			knob->xport_specific.fc.wwnn = be64toh(wwn);
2130 
2131 			wwn = *((uint64_t *)ocs_scsi_get_property_ptr(ocs,
2132 						OCS_SCSI_WWPN));
2133 			knob->xport_specific.fc.wwpn = be64toh(wwn);
2134 		} else {
2135 			knob->xport_specific.fc.wwnn = fcp->vport->wwnn;
2136 			knob->xport_specific.fc.wwpn = fcp->vport->wwpn;
2137 		}
2138 
2139 		knob->xport_specific.fc.role = fcp->role;
2140 		knob->xport_specific.fc.valid = KNOB_VALID_ADDRESS |
2141 						KNOB_VALID_ROLE;
2142 
2143 		ocs_set_ccb_status(ccb, CAM_REQ_CMP);
2144 		xpt_done(ccb);
2145 		break;
2146 	}
2147 	case XPT_SET_SIM_KNOB:
2148 	{
2149 		struct ccb_sim_knob *knob = &ccb->knob;
2150 		bool role_changed = FALSE;
2151 		ocs_fcport *fcp = FCPORT(ocs, bus);
2152 
2153 		if (ocs->ocs_xport != OCS_XPORT_FC) {
2154 			ocs_set_ccb_status(ccb, CAM_REQ_INVALID);
2155 			xpt_done(ccb);
2156 			break;
2157 		}
2158 
2159 		if (knob->xport_specific.fc.valid & KNOB_VALID_ADDRESS) {
2160 			device_printf(ocs->dev,
2161 				"%s: XPT_SET_SIM_KNOB wwnn=%llx wwpn=%llx\n",
2162 					__func__,
2163 					(unsigned long long)knob->xport_specific.fc.wwnn,
2164 					(unsigned long long)knob->xport_specific.fc.wwpn);
2165 		}
2166 
2167 		if (knob->xport_specific.fc.valid & KNOB_VALID_ROLE) {
2168 			switch (knob->xport_specific.fc.role) {
2169 			case KNOB_ROLE_NONE:
2170 				if (fcp->role != KNOB_ROLE_NONE) {
2171 					role_changed = TRUE;
2172 				}
2173 				break;
2174 			case KNOB_ROLE_TARGET:
2175 				if (fcp->role != KNOB_ROLE_TARGET) {
2176 					role_changed = TRUE;
2177 				}
2178 				break;
2179 			case KNOB_ROLE_INITIATOR:
2180 				if (fcp->role != KNOB_ROLE_INITIATOR) {
2181 					role_changed = TRUE;
2182 				}
2183 				break;
2184 			case KNOB_ROLE_BOTH:
2185 				if (fcp->role != KNOB_ROLE_BOTH) {
2186 					role_changed = TRUE;
2187 				}
2188 				break;
2189 			default:
2190 				device_printf(ocs->dev,
2191 					"%s: XPT_SET_SIM_KNOB unsupported role: %d\n",
2192 					__func__, knob->xport_specific.fc.role);
2193 			}
2194 
2195 			if (role_changed) {
2196 				device_printf(ocs->dev,
2197 						"BUS:%d XPT_SET_SIM_KNOB old_role: %d new_role: %d\n",
2198 						bus, fcp->role, knob->xport_specific.fc.role);
2199 
2200 				ocs_fcp_change_role(ocs, fcp, knob->xport_specific.fc.role);
2201 			}
2202 		}
2203 
2204 
2205 
2206 		ocs_set_ccb_status(ccb, CAM_REQ_CMP);
2207 		xpt_done(ccb);
2208 		break;
2209 	}
2210 	case XPT_ABORT:
2211 	{
2212 		union ccb *accb = ccb->cab.abort_ccb;
2213 
2214 		switch (accb->ccb_h.func_code) {
2215 		case XPT_ACCEPT_TARGET_IO:
2216 			ocs_abort_atio(ocs, ccb);
2217 			break;
2218 		case XPT_IMMEDIATE_NOTIFY:
2219 			ocs_abort_inot(ocs, ccb);
2220 			break;
2221 		case XPT_SCSI_IO:
2222 			rc = ocs_abort_initiator_io(ocs, accb);
2223 			if (rc) {
2224 				ccb->ccb_h.status = CAM_UA_ABORT;
2225 			} else {
2226 				ccb->ccb_h.status = CAM_REQ_CMP;
2227 			}
2228 
2229 			break;
2230 		default:
2231 			printf("abort of unknown func %#x\n",
2232 					accb->ccb_h.func_code);
2233 			ccb->ccb_h.status = CAM_REQ_INVALID;
2234 			break;
2235 		}
2236 		break;
2237 	}
2238 	case XPT_RESET_BUS:
2239 		if (ocs_xport_control(ocs->xport, OCS_XPORT_PORT_OFFLINE) == 0) {
2240 			ocs_xport_control(ocs->xport, OCS_XPORT_PORT_ONLINE);
2241 
2242 			ocs_set_ccb_status(ccb, CAM_REQ_CMP);
2243 		} else {
2244 			ocs_set_ccb_status(ccb, CAM_REQ_CMP_ERR);
2245 		}
2246 		xpt_done(ccb);
2247 		break;
2248 	case XPT_RESET_DEV:
2249 	{
2250 		ocs_node_t	*node = NULL;
2251 		ocs_io_t	*io = NULL;
2252 		int32_t		rc = 0;
2253 		ocs_fcport *fcp = FCPORT(ocs, bus);
2254 
2255 		node = ocs_node_get_instance(ocs, fcp->tgt[ccb_h->target_id].node_id);
2256 		if (node == NULL) {
2257 			device_printf(ocs->dev, "%s: no device %d\n",
2258 						__func__, ccb_h->target_id);
2259 			ocs_set_ccb_status(ccb, CAM_DEV_NOT_THERE);
2260 			xpt_done(ccb);
2261 			break;
2262 		}
2263 
2264 		io = ocs_scsi_io_alloc(node, OCS_SCSI_IO_ROLE_ORIGINATOR);
2265 		if (io == NULL) {
2266 			device_printf(ocs->dev, "%s: unable to alloc IO\n",
2267 								 __func__);
2268 			ocs_set_ccb_status(ccb, CAM_REQ_CMP_ERR);
2269 			xpt_done(ccb);
2270 			break;
2271 		}
2272 
2273 		rc = ocs_scsi_send_tmf(node, io, NULL, ccb_h->target_lun,
2274 				OCS_SCSI_TMF_LOGICAL_UNIT_RESET,
2275 				NULL, 0, 0,	/* sgl, sgl_count, length */
2276 				ocs_initiator_tmf_cb, NULL/*arg*/);
2277 
2278 		if (rc) {
2279 			ocs_set_ccb_status(ccb, CAM_REQ_CMP_ERR);
2280 		} else {
2281 			ocs_set_ccb_status(ccb, CAM_REQ_CMP);
2282 		}
2283 
2284 		if (node->fcp2device) {
2285 			ocs_reset_crn(node, ccb_h->target_lun);
2286 		}
2287 
2288 		xpt_done(ccb);
2289 		break;
2290 	}
2291 	case XPT_EN_LUN:	/* target support */
2292 	{
2293 		ocs_tgt_resource_t *trsrc = NULL;
2294 		uint32_t	status = 0;
2295 		ocs_fcport *fcp = FCPORT(ocs, bus);
2296 
2297 		device_printf(ocs->dev, "XPT_EN_LUN %sable %d:%d\n",
2298 				ccb->cel.enable ? "en" : "dis",
2299 				ccb->ccb_h.target_id,
2300 				(unsigned int)ccb->ccb_h.target_lun);
2301 
2302 		trsrc = ocs_tgt_resource_get(fcp, &ccb->ccb_h, &status);
2303 		if (trsrc) {
2304 			trsrc->enabled = ccb->cel.enable;
2305 
2306 			/* Abort all ATIO/INOT on LUN disable */
2307 			if (trsrc->enabled == FALSE) {
2308 				ocs_tgt_resource_abort(ocs, trsrc);
2309 			} else {
2310 				STAILQ_INIT(&trsrc->atio);
2311 				STAILQ_INIT(&trsrc->inot);
2312 			}
2313 			status = CAM_REQ_CMP;
2314 		}
2315 
2316 		ocs_set_ccb_status(ccb, status);
2317 		xpt_done(ccb);
2318 		break;
2319 	}
2320 	/*
2321 	 * The flow of target IOs in CAM is:
2322 	 *  - CAM supplies a number of CCBs to the driver used for received
2323 	 *    commands.
2324 	 *  - when the driver receives a command, it copies the relevant
2325 	 *    information to the CCB and returns it to the CAM using xpt_done()
2326 	 *  - after the target server processes the request, it creates
2327 	 *    a new CCB containing information on how to continue the IO and
2328 	 *    passes that to the driver
2329 	 *  - the driver processes the "continue IO" (a.k.a CTIO) CCB
2330 	 *  - once the IO completes, the driver returns the CTIO to the CAM
2331 	 *    using xpt_done()
2332 	 */
2333 	case XPT_ACCEPT_TARGET_IO:	/* used to inform upper layer of
2334 						received CDB (a.k.a. ATIO) */
2335 	case XPT_IMMEDIATE_NOTIFY:	/* used to inform upper layer of other
2336 							 event (a.k.a. INOT) */
2337 	{
2338 		ocs_tgt_resource_t *trsrc = NULL;
2339 		uint32_t	status = 0;
2340 		ocs_fcport *fcp = FCPORT(ocs, bus);
2341 
2342 		/*printf("XPT_%s %p\n", ccb_h->func_code == XPT_ACCEPT_TARGET_IO ?
2343 				"ACCEPT_TARGET_IO" : "IMMEDIATE_NOTIFY", ccb);*/
2344 		trsrc = ocs_tgt_resource_get(fcp, &ccb->ccb_h, &status);
2345 		if (trsrc == NULL) {
2346 			ocs_set_ccb_status(ccb, CAM_DEV_NOT_THERE);
2347 			xpt_done(ccb);
2348 			break;
2349 		}
2350 
2351 		if (XPT_ACCEPT_TARGET_IO == ccb->ccb_h.func_code) {
2352 			struct ccb_accept_tio *atio = NULL;
2353 
2354 			atio = (struct ccb_accept_tio *)ccb;
2355 			atio->init_id = 0x0badbeef;
2356 			atio->tag_id  = 0xdeadc0de;
2357 
2358 			STAILQ_INSERT_TAIL(&trsrc->atio, &ccb->ccb_h,
2359 					sim_links.stqe);
2360 		} else {
2361 			STAILQ_INSERT_TAIL(&trsrc->inot, &ccb->ccb_h,
2362 					sim_links.stqe);
2363 		}
2364 		ccb->ccb_h.ccb_io_ptr  = NULL;
2365 		ccb->ccb_h.ccb_ocs_ptr = ocs;
2366 		ocs_set_ccb_status(ccb, CAM_REQ_INPROG);
2367 		/*
2368 		 * These actions give resources to the target driver.
2369 		 * If we didn't return here, this function would call
2370 		 * xpt_done(), signaling to the upper layers that an
2371 		 * IO or other event had arrived.
2372 		 */
2373 		break;
2374 	}
2375 	case XPT_NOTIFY_ACKNOWLEDGE:
2376 	{
2377 		ocs_io_t *io = NULL;
2378 		ocs_io_t *abortio = NULL;
2379 
2380 		/* Get the IO reference for this tag */
2381 		io = ocs_scsi_find_io(ocs, ccb->cna2.tag_id);
2382 		if (io == NULL) {
2383 			device_printf(ocs->dev,
2384 				"%s: XPT_NOTIFY_ACKNOWLEDGE no IO with tag %#x\n",
2385 					__func__, ccb->cna2.tag_id);
2386 			ocs_set_ccb_status(ccb, CAM_REQ_CMP_ERR);
2387 			xpt_done(ccb);
2388 			break;
2389 		}
2390 
2391 		abortio = io->tgt_io.app;
2392 		if (abortio) {
2393 			abortio->tgt_io.flags &= ~OCS_CAM_IO_F_ABORT_NOTIFY;
2394 			device_printf(ocs->dev,
2395 				"%s: XPT_NOTIFY_ACK state=%d tag=%#x xid=%#x"
2396 				" flags=%#x\n",	__func__, abortio->tgt_io.state,
2397 				abortio->tag, abortio->init_task_tag,
2398 					abortio->tgt_io.flags);
2399 			/* TMF response was sent in abort callback */
2400 		} else {
2401 			ocs_scsi_send_tmf_resp(io,
2402 					OCS_SCSI_TMF_FUNCTION_COMPLETE,
2403 					NULL, ocs_target_tmf_cb, NULL);
2404 		}
2405 
2406 		ocs_set_ccb_status(ccb, CAM_REQ_CMP);
2407 		xpt_done(ccb);
2408 		break;
2409 	}
2410 	case XPT_CONT_TARGET_IO:	/* continue target IO, sending data/response (a.k.a. CTIO) */
2411 		if (ocs_target_io(ocs, ccb)) {
2412 			device_printf(ocs->dev,
2413 				"XPT_CONT_TARGET_IO failed flags=%x tag=%#x\n",
2414 				ccb->ccb_h.flags, ccb->csio.tag_id);
2415 			xpt_done(ccb);
2416 		}
2417 		break;
2418 	default:
2419 		device_printf(ocs->dev, "unhandled func_code = %#x\n",
2420 				ccb_h->func_code);
2421 		ccb_h->status = CAM_REQ_INVALID;
2422 		xpt_done(ccb);
2423 		break;
2424 	}
2425 }
2426 
2427 /**
2428  * @ingroup cam_api
2429  * @brief Process events
2430  *
2431  * @param sim pointer to the SCSI Interface Module
2432  *
2433  */
2434 static void
2435 ocs_poll(struct cam_sim *sim)
2436 {
2437 	printf("%s\n", __func__);
2438 }
2439 
2440 static int32_t
2441 ocs_initiator_tmf_cb(ocs_io_t *io, ocs_scsi_io_status_e scsi_status,
2442 		ocs_scsi_cmd_resp_t *rsp, uint32_t flags, void *arg)
2443 {
2444 	int32_t	rc = 0;
2445 
2446 	switch (scsi_status) {
2447 	case OCS_SCSI_STATUS_GOOD:
2448 	case OCS_SCSI_STATUS_NO_IO:
2449 		break;
2450 	case OCS_SCSI_STATUS_CHECK_RESPONSE:
2451 		if (rsp->response_data_length == 0) {
2452 			ocs_log_test(io->ocs, "check response without data?!?\n");
2453 			rc = -1;
2454 			break;
2455 		}
2456 
2457 		if (rsp->response_data[3] != 0) {
2458 			ocs_log_test(io->ocs, "TMF status %08x\n",
2459 				be32toh(*((uint32_t *)rsp->response_data)));
2460 			rc = -1;
2461 			break;
2462 		}
2463 		break;
2464 	default:
2465 		ocs_log_test(io->ocs, "status=%#x\n", scsi_status);
2466 		rc = -1;
2467 	}
2468 
2469 	ocs_scsi_io_free(io);
2470 
2471 	return rc;
2472 }
2473 
2474 /**
2475  * @brief lookup target resource structure
2476  *
2477  * Arbitrarily support
2478  *  - wildcard target ID + LU
2479  *  - 0 target ID + non-wildcard LU
2480  *
2481  * @param ocs the driver instance's software context
2482  * @param ccb_h pointer to the CCB header
2483  * @param status returned status value
2484  *
2485  * @return pointer to the target resource, NULL if none available (e.g. if LU
2486  * 	   is not enabled)
2487  */
2488 static ocs_tgt_resource_t *ocs_tgt_resource_get(ocs_fcport *fcp,
2489 				struct ccb_hdr *ccb_h, uint32_t *status)
2490 {
2491 	target_id_t	tid = ccb_h->target_id;
2492 	lun_id_t	lun = ccb_h->target_lun;
2493 
2494 	if (CAM_TARGET_WILDCARD == tid) {
2495 		if (CAM_LUN_WILDCARD != lun) {
2496 			*status = CAM_LUN_INVALID;
2497 			return NULL;
2498 		}
2499 		return &fcp->targ_rsrc_wildcard;
2500 	} else {
2501 		if (lun < OCS_MAX_LUN) {
2502 			return &fcp->targ_rsrc[lun];
2503 		} else {
2504 			*status = CAM_LUN_INVALID;
2505 			return NULL;
2506 		}
2507 	}
2508 
2509 }
2510 
2511 static int32_t
2512 ocs_tgt_resource_abort(struct ocs_softc *ocs, ocs_tgt_resource_t *trsrc)
2513 {
2514 	union ccb *ccb = NULL;
2515 	uint32_t	count;
2516 
2517 	count = 0;
2518 	do {
2519 		ccb = (union ccb *)STAILQ_FIRST(&trsrc->atio);
2520 		if (ccb) {
2521 			STAILQ_REMOVE_HEAD(&trsrc->atio, sim_links.stqe);
2522 			ccb->ccb_h.status = CAM_REQ_ABORTED;
2523 			xpt_done(ccb);
2524 			count++;
2525 		}
2526 	} while (ccb);
2527 
2528 	count = 0;
2529 	do {
2530 		ccb = (union ccb *)STAILQ_FIRST(&trsrc->inot);
2531 		if (ccb) {
2532 			STAILQ_REMOVE_HEAD(&trsrc->inot, sim_links.stqe);
2533 			ccb->ccb_h.status = CAM_REQ_ABORTED;
2534 			xpt_done(ccb);
2535 			count++;
2536 		}
2537 	} while (ccb);
2538 
2539 	return 0;
2540 }
2541 
2542 static void
2543 ocs_abort_atio(struct ocs_softc *ocs, union ccb *ccb)
2544 {
2545 
2546 	ocs_io_t	*aio = NULL;
2547 	ocs_tgt_resource_t *trsrc = NULL;
2548 	uint32_t	status = CAM_REQ_INVALID;
2549 	struct ccb_hdr *cur = NULL;
2550 	union ccb *accb = ccb->cab.abort_ccb;
2551 
2552 	int bus = cam_sim_bus(xpt_path_sim((ccb)->ccb_h.path));
2553 	ocs_fcport *fcp = FCPORT(ocs, bus);
2554 
2555 	trsrc = ocs_tgt_resource_get(fcp, &accb->ccb_h, &status);
2556 	if (trsrc != NULL) {
2557 		STAILQ_FOREACH(cur, &trsrc->atio, sim_links.stqe) {
2558 			if (cur != &accb->ccb_h)
2559 				continue;
2560 
2561 			STAILQ_REMOVE(&trsrc->atio, cur, ccb_hdr,
2562 							sim_links.stqe);
2563 			accb->ccb_h.status = CAM_REQ_ABORTED;
2564 			xpt_done(accb);
2565 			ocs_set_ccb_status(ccb, CAM_REQ_CMP);
2566 			return;
2567 		}
2568 	}
2569 
2570 	/* if the ATIO has a valid IO pointer, CAM is telling
2571 	 * the driver that the ATIO (which represents the entire
2572 	 * exchange) has been aborted. */
2573 
2574 	aio = accb->ccb_h.ccb_io_ptr;
2575 	if (aio == NULL) {
2576 		ccb->ccb_h.status = CAM_UA_ABORT;
2577 		return;
2578 	}
2579 
2580 	device_printf(ocs->dev,
2581 			"%s: XPT_ABORT ATIO state=%d tag=%#x"
2582 			" xid=%#x flags=%#x\n",	__func__,
2583 			aio->tgt_io.state, aio->tag,
2584 			aio->init_task_tag, aio->tgt_io.flags);
2585 	/* Expectations are:
2586 	 *  - abort task was received
2587 	 *  - already aborted IO in the DEVICE
2588 	 *  - already received NOTIFY ACKNOWLEDGE */
2589 
2590 	if ((aio->tgt_io.flags & OCS_CAM_IO_F_ABORT_RECV) == 0) {
2591 		device_printf(ocs->dev,	"%s: abort not received or io completed \n", __func__);
2592 		ocs_set_ccb_status(ccb, CAM_REQ_CMP);
2593 		return;
2594 	}
2595 
2596 	aio->tgt_io.flags |= OCS_CAM_IO_F_ABORT_CAM;
2597 	ocs_target_io_free(aio);
2598 	ocs_set_ccb_status(ccb, CAM_REQ_CMP);
2599 
2600 	return;
2601 }
2602 
2603 static void
2604 ocs_abort_inot(struct ocs_softc *ocs, union ccb *ccb)
2605 {
2606 	ocs_tgt_resource_t *trsrc = NULL;
2607 	uint32_t	status = CAM_REQ_INVALID;
2608 	struct ccb_hdr *cur = NULL;
2609 	union ccb *accb = ccb->cab.abort_ccb;
2610 
2611 	int bus = cam_sim_bus(xpt_path_sim((ccb)->ccb_h.path));
2612 	ocs_fcport *fcp = FCPORT(ocs, bus);
2613 
2614 	trsrc = ocs_tgt_resource_get(fcp, &accb->ccb_h, &status);
2615 	if (trsrc) {
2616 		STAILQ_FOREACH(cur, &trsrc->inot, sim_links.stqe) {
2617 			if (cur != &accb->ccb_h)
2618 				continue;
2619 
2620 			STAILQ_REMOVE(&trsrc->inot, cur, ccb_hdr,
2621 							sim_links.stqe);
2622 			accb->ccb_h.status = CAM_REQ_ABORTED;
2623 			xpt_done(accb);
2624 			ocs_set_ccb_status(ccb, CAM_REQ_CMP);
2625 			return;
2626 		}
2627 	}
2628 
2629 	ocs_set_ccb_status(ccb, CAM_UA_ABORT);
2630 	return;
2631 }
2632 
2633 static uint32_t
2634 ocs_abort_initiator_io(struct ocs_softc *ocs, union ccb *accb)
2635 {
2636 
2637 	ocs_node_t	*node = NULL;
2638 	ocs_io_t	*io = NULL;
2639 	int32_t		rc = 0;
2640 	struct ccb_scsiio *csio = &accb->csio;
2641 
2642 	ocs_fcport *fcp = FCPORT(ocs, cam_sim_bus(xpt_path_sim((accb)->ccb_h.path)));
2643 	node = ocs_node_get_instance(ocs, fcp->tgt[accb->ccb_h.target_id].node_id);
2644 	if (node == NULL) {
2645 		device_printf(ocs->dev, "%s: no device %d\n",
2646 				__func__, accb->ccb_h.target_id);
2647 		ocs_set_ccb_status(accb, CAM_DEV_NOT_THERE);
2648 		xpt_done(accb);
2649 		return (-1);
2650 	}
2651 
2652 	io = ocs_scsi_io_alloc(node, OCS_SCSI_IO_ROLE_ORIGINATOR);
2653 	if (io == NULL) {
2654 		device_printf(ocs->dev,
2655 				"%s: unable to alloc IO\n", __func__);
2656 		ocs_set_ccb_status(accb, CAM_REQ_CMP_ERR);
2657 		xpt_done(accb);
2658 		return (-1);
2659 	}
2660 
2661 	rc = ocs_scsi_send_tmf(node, io,
2662 			(ocs_io_t *)csio->ccb_h.ccb_io_ptr,
2663 			accb->ccb_h.target_lun,
2664 			OCS_SCSI_TMF_ABORT_TASK,
2665 			NULL, 0, 0,
2666 			ocs_initiator_tmf_cb, NULL/*arg*/);
2667 
2668 	return rc;
2669 }
2670 
2671 void
2672 ocs_scsi_ini_ddump(ocs_textbuf_t *textbuf, ocs_scsi_ddump_type_e type, void *obj)
2673 {
2674 	switch(type) {
2675 	case OCS_SCSI_DDUMP_DEVICE: {
2676 		//ocs_t *ocs = obj;
2677 		break;
2678 	}
2679 	case OCS_SCSI_DDUMP_DOMAIN: {
2680 		//ocs_domain_t *domain = obj;
2681 		break;
2682 	}
2683 	case OCS_SCSI_DDUMP_SPORT: {
2684 		//ocs_sport_t *sport = obj;
2685 		break;
2686 	}
2687 	case OCS_SCSI_DDUMP_NODE: {
2688 		//ocs_node_t *node = obj;
2689 		break;
2690 	}
2691 	case OCS_SCSI_DDUMP_IO: {
2692 		//ocs_io_t *io = obj;
2693 		break;
2694 	}
2695 	default: {
2696 		break;
2697 	}
2698 	}
2699 }
2700 
2701 void
2702 ocs_scsi_tgt_ddump(ocs_textbuf_t *textbuf, ocs_scsi_ddump_type_e type, void *obj)
2703 {
2704 	switch(type) {
2705 	case OCS_SCSI_DDUMP_DEVICE: {
2706 		//ocs_t *ocs = obj;
2707 		break;
2708 	}
2709 	case OCS_SCSI_DDUMP_DOMAIN: {
2710 		//ocs_domain_t *domain = obj;
2711 		break;
2712 	}
2713 	case OCS_SCSI_DDUMP_SPORT: {
2714 		//ocs_sport_t *sport = obj;
2715 		break;
2716 	}
2717 	case OCS_SCSI_DDUMP_NODE: {
2718 		//ocs_node_t *node = obj;
2719 		break;
2720 	}
2721 	case OCS_SCSI_DDUMP_IO: {
2722 		ocs_io_t *io = obj;
2723 		char *state_str = NULL;
2724 
2725 		switch (io->tgt_io.state) {
2726 		case OCS_CAM_IO_FREE:
2727 			state_str = "FREE";
2728 			break;
2729 		case OCS_CAM_IO_COMMAND:
2730 			state_str = "COMMAND";
2731 			break;
2732 		case OCS_CAM_IO_DATA:
2733 			state_str = "DATA";
2734 			break;
2735 		case OCS_CAM_IO_DATA_DONE:
2736 			state_str = "DATA_DONE";
2737 			break;
2738 		case OCS_CAM_IO_RESP:
2739 			state_str = "RESP";
2740 			break;
2741 		default:
2742 			state_str = "xxx BAD xxx";
2743 		}
2744 		ocs_ddump_value(textbuf, "cam_st", "%s", state_str);
2745 		if (io->tgt_io.app) {
2746 			ocs_ddump_value(textbuf, "cam_flags", "%#x",
2747 				((union ccb *)(io->tgt_io.app))->ccb_h.flags);
2748 			ocs_ddump_value(textbuf, "cam_status", "%#x",
2749 				((union ccb *)(io->tgt_io.app))->ccb_h.status);
2750 		}
2751 
2752 		break;
2753 	}
2754 	default: {
2755 		break;
2756 	}
2757 	}
2758 }
2759 
2760 int32_t ocs_scsi_get_block_vaddr(ocs_io_t *io, uint64_t blocknumber,
2761 				ocs_scsi_vaddr_len_t addrlen[],
2762 				uint32_t max_addrlen, void **dif_vaddr)
2763 {
2764 	return -1;
2765 }
2766 
2767 uint32_t
2768 ocs_get_crn(ocs_node_t *node, uint8_t *crn, uint64_t lun)
2769 {
2770 	uint32_t idx;
2771 	struct ocs_lun_crn *lcrn = NULL;
2772 	idx = lun % OCS_MAX_LUN;
2773 
2774 	lcrn = node->ini_node.lun_crn[idx];
2775 
2776 	if (lcrn == NULL) {
2777 		lcrn = ocs_malloc(node->ocs, sizeof(struct ocs_lun_crn),
2778 					M_ZERO|M_NOWAIT);
2779 		if (lcrn == NULL) {
2780 			return (1);
2781 		}
2782 
2783 		lcrn->lun = lun;
2784 		node->ini_node.lun_crn[idx] = lcrn;
2785 	}
2786 
2787 	if (lcrn->lun != lun) {
2788 		return (1);
2789 	}
2790 
2791 	if (lcrn->crnseed == 0)
2792 		lcrn->crnseed = 1;
2793 
2794 	*crn = lcrn->crnseed++;
2795 	return (0);
2796 }
2797 
2798 void
2799 ocs_del_crn(ocs_node_t *node)
2800 {
2801 	uint32_t i;
2802 	struct ocs_lun_crn *lcrn = NULL;
2803 
2804 	for(i = 0; i < OCS_MAX_LUN; i++) {
2805 		lcrn = node->ini_node.lun_crn[i];
2806 		if (lcrn) {
2807 			ocs_free(node->ocs, lcrn, sizeof(*lcrn));
2808 		}
2809 	}
2810 
2811 	return;
2812 }
2813 
2814 void
2815 ocs_reset_crn(ocs_node_t *node, uint64_t lun)
2816 {
2817 	uint32_t idx;
2818 	struct ocs_lun_crn *lcrn = NULL;
2819 	idx = lun % OCS_MAX_LUN;
2820 
2821 	lcrn = node->ini_node.lun_crn[idx];
2822 	if (lcrn)
2823 		lcrn->crnseed = 0;
2824 
2825 	return;
2826 }
2827