mps_user.c revision 322658
1/*-
2 * Copyright (c) 2008 Yahoo!, Inc.
3 * All rights reserved.
4 * Written by: John Baldwin <jhb@FreeBSD.org>
5 *
6 * Redistribution and use in source and binary forms, with or without
7 * modification, are permitted provided that the following conditions
8 * are met:
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 * 3. Neither the name of the author nor the names of any co-contributors
15 *    may be used to endorse or promote products derived from this software
16 *    without specific prior written permission.
17 *
18 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
19 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
20 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
21 * ARE DISCLAIMED.  IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE
22 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
23 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
24 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
25 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
26 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
27 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
28 * SUCH DAMAGE.
29 *
30 * Avago Technologies (LSI) MPT-Fusion Host Adapter FreeBSD userland interface
31 */
32/*-
33 * Copyright (c) 2011-2015 LSI Corp.
34 * Copyright (c) 2013-2015 Avago Technologies
35 * All rights reserved.
36 *
37 * Redistribution and use in source and binary forms, with or without
38 * modification, are permitted provided that the following conditions
39 * are met:
40 * 1. Redistributions of source code must retain the above copyright
41 *    notice, this list of conditions and the following disclaimer.
42 * 2. Redistributions in binary form must reproduce the above copyright
43 *    notice, this list of conditions and the following disclaimer in the
44 *    documentation and/or other materials provided with the distribution.
45 *
46 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
47 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
48 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
49 * ARE DISCLAIMED.  IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE
50 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
51 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
52 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
53 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
54 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
55 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
56 * SUCH DAMAGE.
57 *
58 * Avago Technologies (LSI) MPT-Fusion Host Adapter FreeBSD
59 *
60 * $FreeBSD: stable/11/sys/dev/mps/mps_user.c 322658 2017-08-18 14:25:07Z ken $
61 */
62
63#include <sys/cdefs.h>
64__FBSDID("$FreeBSD: stable/11/sys/dev/mps/mps_user.c 322658 2017-08-18 14:25:07Z ken $");
65
66#include "opt_compat.h"
67
68/* TODO Move headers to mpsvar */
69#include <sys/types.h>
70#include <sys/param.h>
71#include <sys/systm.h>
72#include <sys/kernel.h>
73#include <sys/selinfo.h>
74#include <sys/module.h>
75#include <sys/bus.h>
76#include <sys/conf.h>
77#include <sys/bio.h>
78#include <sys/malloc.h>
79#include <sys/uio.h>
80#include <sys/sysctl.h>
81#include <sys/ioccom.h>
82#include <sys/endian.h>
83#include <sys/queue.h>
84#include <sys/kthread.h>
85#include <sys/taskqueue.h>
86#include <sys/proc.h>
87#include <sys/sysent.h>
88
89#include <machine/bus.h>
90#include <machine/resource.h>
91#include <sys/rman.h>
92
93#include <cam/cam.h>
94#include <cam/cam_ccb.h>
95#include <cam/scsi/scsi_all.h>
96
97#include <dev/mps/mpi/mpi2_type.h>
98#include <dev/mps/mpi/mpi2.h>
99#include <dev/mps/mpi/mpi2_ioc.h>
100#include <dev/mps/mpi/mpi2_cnfg.h>
101#include <dev/mps/mpi/mpi2_init.h>
102#include <dev/mps/mpi/mpi2_tool.h>
103#include <dev/mps/mps_ioctl.h>
104#include <dev/mps/mpsvar.h>
105#include <dev/mps/mps_table.h>
106#include <dev/mps/mps_sas.h>
107#include <dev/pci/pcivar.h>
108#include <dev/pci/pcireg.h>
109
110static d_open_t		mps_open;
111static d_close_t	mps_close;
112static d_ioctl_t	mps_ioctl_devsw;
113
114static struct cdevsw mps_cdevsw = {
115	.d_version =	D_VERSION,
116	.d_flags =	0,
117	.d_open =	mps_open,
118	.d_close =	mps_close,
119	.d_ioctl =	mps_ioctl_devsw,
120	.d_name =	"mps",
121};
122
123typedef int (mps_user_f)(struct mps_command *, struct mps_usr_command *);
124static mps_user_f	mpi_pre_ioc_facts;
125static mps_user_f	mpi_pre_port_facts;
126static mps_user_f	mpi_pre_fw_download;
127static mps_user_f	mpi_pre_fw_upload;
128static mps_user_f	mpi_pre_sata_passthrough;
129static mps_user_f	mpi_pre_smp_passthrough;
130static mps_user_f	mpi_pre_config;
131static mps_user_f	mpi_pre_sas_io_unit_control;
132
133static int mps_user_read_cfg_header(struct mps_softc *,
134				    struct mps_cfg_page_req *);
135static int mps_user_read_cfg_page(struct mps_softc *,
136				  struct mps_cfg_page_req *, void *);
137static int mps_user_read_extcfg_header(struct mps_softc *,
138				     struct mps_ext_cfg_page_req *);
139static int mps_user_read_extcfg_page(struct mps_softc *,
140				     struct mps_ext_cfg_page_req *, void *);
141static int mps_user_write_cfg_page(struct mps_softc *,
142				   struct mps_cfg_page_req *, void *);
143static int mps_user_setup_request(struct mps_command *,
144				  struct mps_usr_command *);
145static int mps_user_command(struct mps_softc *, struct mps_usr_command *);
146
147static int mps_user_pass_thru(struct mps_softc *sc, mps_pass_thru_t *data);
148static void mps_user_get_adapter_data(struct mps_softc *sc,
149    mps_adapter_data_t *data);
150static void mps_user_read_pci_info(struct mps_softc *sc,
151    mps_pci_info_t *data);
152static uint8_t mps_get_fw_diag_buffer_number(struct mps_softc *sc,
153    uint32_t unique_id);
154static int mps_post_fw_diag_buffer(struct mps_softc *sc,
155    mps_fw_diagnostic_buffer_t *pBuffer, uint32_t *return_code);
156static int mps_release_fw_diag_buffer(struct mps_softc *sc,
157    mps_fw_diagnostic_buffer_t *pBuffer, uint32_t *return_code,
158    uint32_t diag_type);
159static int mps_diag_register(struct mps_softc *sc,
160    mps_fw_diag_register_t *diag_register, uint32_t *return_code);
161static int mps_diag_unregister(struct mps_softc *sc,
162    mps_fw_diag_unregister_t *diag_unregister, uint32_t *return_code);
163static int mps_diag_query(struct mps_softc *sc, mps_fw_diag_query_t *diag_query,
164    uint32_t *return_code);
165static int mps_diag_read_buffer(struct mps_softc *sc,
166    mps_diag_read_buffer_t *diag_read_buffer, uint8_t *ioctl_buf,
167    uint32_t *return_code);
168static int mps_diag_release(struct mps_softc *sc,
169    mps_fw_diag_release_t *diag_release, uint32_t *return_code);
170static int mps_do_diag_action(struct mps_softc *sc, uint32_t action,
171    uint8_t *diag_action, uint32_t length, uint32_t *return_code);
172static int mps_user_diag_action(struct mps_softc *sc, mps_diag_action_t *data);
173static void mps_user_event_query(struct mps_softc *sc, mps_event_query_t *data);
174static void mps_user_event_enable(struct mps_softc *sc,
175    mps_event_enable_t *data);
176static int mps_user_event_report(struct mps_softc *sc,
177    mps_event_report_t *data);
178static int mps_user_reg_access(struct mps_softc *sc, mps_reg_access_t *data);
179static int mps_user_btdh(struct mps_softc *sc, mps_btdh_mapping_t *data);
180
181static MALLOC_DEFINE(M_MPSUSER, "mps_user", "Buffers for mps(4) ioctls");
182
183/* Macros from compat/freebsd32/freebsd32.h */
184#define	PTRIN(v)	(void *)(uintptr_t)(v)
185#define	PTROUT(v)	(uint32_t)(uintptr_t)(v)
186
187#define	CP(src,dst,fld) do { (dst).fld = (src).fld; } while (0)
188#define	PTRIN_CP(src,dst,fld)				\
189	do { (dst).fld = PTRIN((src).fld); } while (0)
190#define	PTROUT_CP(src,dst,fld) \
191	do { (dst).fld = PTROUT((src).fld); } while (0)
192
193int
194mps_attach_user(struct mps_softc *sc)
195{
196	int unit;
197
198	unit = device_get_unit(sc->mps_dev);
199	sc->mps_cdev = make_dev(&mps_cdevsw, unit, UID_ROOT, GID_OPERATOR, 0640,
200	    "mps%d", unit);
201	if (sc->mps_cdev == NULL) {
202		return (ENOMEM);
203	}
204	sc->mps_cdev->si_drv1 = sc;
205	return (0);
206}
207
208void
209mps_detach_user(struct mps_softc *sc)
210{
211
212	/* XXX: do a purge of pending requests? */
213	if (sc->mps_cdev != NULL)
214		destroy_dev(sc->mps_cdev);
215}
216
217static int
218mps_open(struct cdev *dev, int flags, int fmt, struct thread *td)
219{
220
221	return (0);
222}
223
224static int
225mps_close(struct cdev *dev, int flags, int fmt, struct thread *td)
226{
227
228	return (0);
229}
230
231static int
232mps_user_read_cfg_header(struct mps_softc *sc,
233    struct mps_cfg_page_req *page_req)
234{
235	MPI2_CONFIG_PAGE_HEADER *hdr;
236	struct mps_config_params params;
237	int	    error;
238
239	hdr = &params.hdr.Struct;
240	params.action = MPI2_CONFIG_ACTION_PAGE_HEADER;
241	params.page_address = le32toh(page_req->page_address);
242	hdr->PageVersion = 0;
243	hdr->PageLength = 0;
244	hdr->PageNumber = page_req->header.PageNumber;
245	hdr->PageType = page_req->header.PageType;
246	params.buffer = NULL;
247	params.length = 0;
248	params.callback = NULL;
249
250	if ((error = mps_read_config_page(sc, &params)) != 0) {
251		/*
252		 * Leave the request. Without resetting the chip, it's
253		 * still owned by it and we'll just get into trouble
254		 * freeing it now. Mark it as abandoned so that if it
255		 * shows up later it can be freed.
256		 */
257		mps_printf(sc, "read_cfg_header timed out\n");
258		return (ETIMEDOUT);
259	}
260
261	page_req->ioc_status = htole16(params.status);
262	if ((page_req->ioc_status & MPI2_IOCSTATUS_MASK) ==
263	    MPI2_IOCSTATUS_SUCCESS) {
264		bcopy(hdr, &page_req->header, sizeof(page_req->header));
265	}
266
267	return (0);
268}
269
270static int
271mps_user_read_cfg_page(struct mps_softc *sc, struct mps_cfg_page_req *page_req,
272    void *buf)
273{
274	MPI2_CONFIG_PAGE_HEADER *reqhdr, *hdr;
275	struct mps_config_params params;
276	int	      error;
277
278	reqhdr = buf;
279	hdr = &params.hdr.Struct;
280	hdr->PageVersion = reqhdr->PageVersion;
281	hdr->PageLength = reqhdr->PageLength;
282	hdr->PageNumber = reqhdr->PageNumber;
283	hdr->PageType = reqhdr->PageType & MPI2_CONFIG_PAGETYPE_MASK;
284	params.action = MPI2_CONFIG_ACTION_PAGE_READ_CURRENT;
285	params.page_address = le32toh(page_req->page_address);
286	params.buffer = buf;
287	params.length = le32toh(page_req->len);
288	params.callback = NULL;
289
290	if ((error = mps_read_config_page(sc, &params)) != 0) {
291		mps_printf(sc, "mps_user_read_cfg_page timed out\n");
292		return (ETIMEDOUT);
293	}
294
295	page_req->ioc_status = htole16(params.status);
296	return (0);
297}
298
299static int
300mps_user_read_extcfg_header(struct mps_softc *sc,
301    struct mps_ext_cfg_page_req *ext_page_req)
302{
303	MPI2_CONFIG_EXTENDED_PAGE_HEADER *hdr;
304	struct mps_config_params params;
305	int	    error;
306
307	hdr = &params.hdr.Ext;
308	params.action = MPI2_CONFIG_ACTION_PAGE_HEADER;
309	hdr->PageVersion = ext_page_req->header.PageVersion;
310	hdr->PageType = MPI2_CONFIG_PAGETYPE_EXTENDED;
311	hdr->ExtPageLength = 0;
312	hdr->PageNumber = ext_page_req->header.PageNumber;
313	hdr->ExtPageType = ext_page_req->header.ExtPageType;
314	params.page_address = le32toh(ext_page_req->page_address);
315	params.buffer = NULL;
316	params.length = 0;
317	params.callback = NULL;
318
319	if ((error = mps_read_config_page(sc, &params)) != 0) {
320		/*
321		 * Leave the request. Without resetting the chip, it's
322		 * still owned by it and we'll just get into trouble
323		 * freeing it now. Mark it as abandoned so that if it
324		 * shows up later it can be freed.
325		 */
326		mps_printf(sc, "mps_user_read_extcfg_header timed out\n");
327		return (ETIMEDOUT);
328	}
329
330	ext_page_req->ioc_status = htole16(params.status);
331	if ((ext_page_req->ioc_status & MPI2_IOCSTATUS_MASK) ==
332	    MPI2_IOCSTATUS_SUCCESS) {
333		ext_page_req->header.PageVersion = hdr->PageVersion;
334		ext_page_req->header.PageNumber = hdr->PageNumber;
335		ext_page_req->header.PageType = hdr->PageType;
336		ext_page_req->header.ExtPageLength = hdr->ExtPageLength;
337		ext_page_req->header.ExtPageType = hdr->ExtPageType;
338	}
339
340	return (0);
341}
342
343static int
344mps_user_read_extcfg_page(struct mps_softc *sc,
345    struct mps_ext_cfg_page_req *ext_page_req, void *buf)
346{
347	MPI2_CONFIG_EXTENDED_PAGE_HEADER *reqhdr, *hdr;
348	struct mps_config_params params;
349	int error;
350
351	reqhdr = buf;
352	hdr = &params.hdr.Ext;
353	params.action = MPI2_CONFIG_ACTION_PAGE_READ_CURRENT;
354	params.page_address = le32toh(ext_page_req->page_address);
355	hdr->PageVersion = reqhdr->PageVersion;
356	hdr->PageType = MPI2_CONFIG_PAGETYPE_EXTENDED;
357	hdr->PageNumber = reqhdr->PageNumber;
358	hdr->ExtPageType = reqhdr->ExtPageType;
359	hdr->ExtPageLength = reqhdr->ExtPageLength;
360	params.buffer = buf;
361	params.length = le32toh(ext_page_req->len);
362	params.callback = NULL;
363
364	if ((error = mps_read_config_page(sc, &params)) != 0) {
365		mps_printf(sc, "mps_user_read_extcfg_page timed out\n");
366		return (ETIMEDOUT);
367	}
368
369	ext_page_req->ioc_status = htole16(params.status);
370	return (0);
371}
372
373static int
374mps_user_write_cfg_page(struct mps_softc *sc,
375    struct mps_cfg_page_req *page_req, void *buf)
376{
377	MPI2_CONFIG_PAGE_HEADER *reqhdr, *hdr;
378	struct mps_config_params params;
379	u_int	      hdr_attr;
380	int	      error;
381
382	reqhdr = buf;
383	hdr = &params.hdr.Struct;
384	hdr_attr = reqhdr->PageType & MPI2_CONFIG_PAGEATTR_MASK;
385	if (hdr_attr != MPI2_CONFIG_PAGEATTR_CHANGEABLE &&
386	    hdr_attr != MPI2_CONFIG_PAGEATTR_PERSISTENT) {
387		mps_printf(sc, "page type 0x%x not changeable\n",
388			reqhdr->PageType & MPI2_CONFIG_PAGETYPE_MASK);
389		return (EINVAL);
390	}
391
392	/*
393	 * There isn't any point in restoring stripped out attributes
394	 * if you then mask them going down to issue the request.
395	 */
396
397	hdr->PageVersion = reqhdr->PageVersion;
398	hdr->PageLength = reqhdr->PageLength;
399	hdr->PageNumber = reqhdr->PageNumber;
400	hdr->PageType = reqhdr->PageType;
401	params.action = MPI2_CONFIG_ACTION_PAGE_WRITE_CURRENT;
402	params.page_address = le32toh(page_req->page_address);
403	params.buffer = buf;
404	params.length = le32toh(page_req->len);
405	params.callback = NULL;
406
407	if ((error = mps_write_config_page(sc, &params)) != 0) {
408		mps_printf(sc, "mps_write_cfg_page timed out\n");
409		return (ETIMEDOUT);
410	}
411
412	page_req->ioc_status = htole16(params.status);
413	return (0);
414}
415
416void
417mpi_init_sge(struct mps_command *cm, void *req, void *sge)
418{
419	int off, space;
420
421	space = (int)cm->cm_sc->facts->IOCRequestFrameSize * 4;
422	off = (uintptr_t)sge - (uintptr_t)req;
423
424	KASSERT(off < space, ("bad pointers %p %p, off %d, space %d",
425            req, sge, off, space));
426
427	cm->cm_sge = sge;
428	cm->cm_sglsize = space - off;
429}
430
431/*
432 * Prepare the mps_command for an IOC_FACTS request.
433 */
434static int
435mpi_pre_ioc_facts(struct mps_command *cm, struct mps_usr_command *cmd)
436{
437	MPI2_IOC_FACTS_REQUEST *req = (void *)cm->cm_req;
438	MPI2_IOC_FACTS_REPLY *rpl;
439
440	if (cmd->req_len != sizeof *req)
441		return (EINVAL);
442	if (cmd->rpl_len != sizeof *rpl)
443		return (EINVAL);
444
445	cm->cm_sge = NULL;
446	cm->cm_sglsize = 0;
447	return (0);
448}
449
450/*
451 * Prepare the mps_command for a PORT_FACTS request.
452 */
453static int
454mpi_pre_port_facts(struct mps_command *cm, struct mps_usr_command *cmd)
455{
456	MPI2_PORT_FACTS_REQUEST *req = (void *)cm->cm_req;
457	MPI2_PORT_FACTS_REPLY *rpl;
458
459	if (cmd->req_len != sizeof *req)
460		return (EINVAL);
461	if (cmd->rpl_len != sizeof *rpl)
462		return (EINVAL);
463
464	cm->cm_sge = NULL;
465	cm->cm_sglsize = 0;
466	return (0);
467}
468
469/*
470 * Prepare the mps_command for a FW_DOWNLOAD request.
471 */
472static int
473mpi_pre_fw_download(struct mps_command *cm, struct mps_usr_command *cmd)
474{
475	MPI2_FW_DOWNLOAD_REQUEST *req = (void *)cm->cm_req;
476	MPI2_FW_DOWNLOAD_REPLY *rpl;
477	MPI2_FW_DOWNLOAD_TCSGE tc;
478	int error;
479
480	/*
481	 * This code assumes there is room in the request's SGL for
482	 * the TransactionContext plus at least a SGL chain element.
483	 */
484	CTASSERT(sizeof req->SGL >= sizeof tc + MPS_SGC_SIZE);
485
486	if (cmd->req_len != sizeof *req)
487		return (EINVAL);
488	if (cmd->rpl_len != sizeof *rpl)
489		return (EINVAL);
490
491	if (cmd->len == 0)
492		return (EINVAL);
493
494	error = copyin(cmd->buf, cm->cm_data, cmd->len);
495	if (error != 0)
496		return (error);
497
498	mpi_init_sge(cm, req, &req->SGL);
499	bzero(&tc, sizeof tc);
500
501	/*
502	 * For now, the F/W image must be provided in a single request.
503	 */
504	if ((req->MsgFlags & MPI2_FW_DOWNLOAD_MSGFLGS_LAST_SEGMENT) == 0)
505		return (EINVAL);
506	if (req->TotalImageSize != cmd->len)
507		return (EINVAL);
508
509	/*
510	 * The value of the first two elements is specified in the
511	 * Fusion-MPT Message Passing Interface document.
512	 */
513	tc.ContextSize = 0;
514	tc.DetailsLength = 12;
515	tc.ImageOffset = 0;
516	tc.ImageSize = cmd->len;
517
518	cm->cm_flags |= MPS_CM_FLAGS_DATAOUT;
519
520	return (mps_push_sge(cm, &tc, sizeof tc, 0));
521}
522
523/*
524 * Prepare the mps_command for a FW_UPLOAD request.
525 */
526static int
527mpi_pre_fw_upload(struct mps_command *cm, struct mps_usr_command *cmd)
528{
529	MPI2_FW_UPLOAD_REQUEST *req = (void *)cm->cm_req;
530	MPI2_FW_UPLOAD_REPLY *rpl;
531	MPI2_FW_UPLOAD_TCSGE tc;
532
533	/*
534	 * This code assumes there is room in the request's SGL for
535	 * the TransactionContext plus at least a SGL chain element.
536	 */
537	CTASSERT(sizeof req->SGL >= sizeof tc + MPS_SGC_SIZE);
538
539	if (cmd->req_len != sizeof *req)
540		return (EINVAL);
541	if (cmd->rpl_len != sizeof *rpl)
542		return (EINVAL);
543
544	mpi_init_sge(cm, req, &req->SGL);
545	bzero(&tc, sizeof tc);
546
547	/*
548	 * The value of the first two elements is specified in the
549	 * Fusion-MPT Message Passing Interface document.
550	 */
551	tc.ContextSize = 0;
552	tc.DetailsLength = 12;
553	/*
554	 * XXX Is there any reason to fetch a partial image?  I.e. to
555	 * set ImageOffset to something other than 0?
556	 */
557	tc.ImageOffset = 0;
558	tc.ImageSize = cmd->len;
559
560	cm->cm_flags |= MPS_CM_FLAGS_DATAIN;
561
562	return (mps_push_sge(cm, &tc, sizeof tc, 0));
563}
564
565/*
566 * Prepare the mps_command for a SATA_PASSTHROUGH request.
567 */
568static int
569mpi_pre_sata_passthrough(struct mps_command *cm, struct mps_usr_command *cmd)
570{
571	MPI2_SATA_PASSTHROUGH_REQUEST *req = (void *)cm->cm_req;
572	MPI2_SATA_PASSTHROUGH_REPLY *rpl;
573
574	if (cmd->req_len != sizeof *req)
575		return (EINVAL);
576	if (cmd->rpl_len != sizeof *rpl)
577		return (EINVAL);
578
579	mpi_init_sge(cm, req, &req->SGL);
580	return (0);
581}
582
583/*
584 * Prepare the mps_command for a SMP_PASSTHROUGH request.
585 */
586static int
587mpi_pre_smp_passthrough(struct mps_command *cm, struct mps_usr_command *cmd)
588{
589	MPI2_SMP_PASSTHROUGH_REQUEST *req = (void *)cm->cm_req;
590	MPI2_SMP_PASSTHROUGH_REPLY *rpl;
591
592	if (cmd->req_len != sizeof *req)
593		return (EINVAL);
594	if (cmd->rpl_len != sizeof *rpl)
595		return (EINVAL);
596
597	mpi_init_sge(cm, req, &req->SGL);
598	return (0);
599}
600
601/*
602 * Prepare the mps_command for a CONFIG request.
603 */
604static int
605mpi_pre_config(struct mps_command *cm, struct mps_usr_command *cmd)
606{
607	MPI2_CONFIG_REQUEST *req = (void *)cm->cm_req;
608	MPI2_CONFIG_REPLY *rpl;
609
610	if (cmd->req_len != sizeof *req)
611		return (EINVAL);
612	if (cmd->rpl_len != sizeof *rpl)
613		return (EINVAL);
614
615	mpi_init_sge(cm, req, &req->PageBufferSGE);
616	return (0);
617}
618
619/*
620 * Prepare the mps_command for a SAS_IO_UNIT_CONTROL request.
621 */
622static int
623mpi_pre_sas_io_unit_control(struct mps_command *cm,
624			     struct mps_usr_command *cmd)
625{
626
627	cm->cm_sge = NULL;
628	cm->cm_sglsize = 0;
629	return (0);
630}
631
632/*
633 * A set of functions to prepare an mps_command for the various
634 * supported requests.
635 */
636struct mps_user_func {
637	U8		Function;
638	mps_user_f	*f_pre;
639} mps_user_func_list[] = {
640	{ MPI2_FUNCTION_IOC_FACTS,		mpi_pre_ioc_facts },
641	{ MPI2_FUNCTION_PORT_FACTS,		mpi_pre_port_facts },
642	{ MPI2_FUNCTION_FW_DOWNLOAD, 		mpi_pre_fw_download },
643	{ MPI2_FUNCTION_FW_UPLOAD,		mpi_pre_fw_upload },
644	{ MPI2_FUNCTION_SATA_PASSTHROUGH,	mpi_pre_sata_passthrough },
645	{ MPI2_FUNCTION_SMP_PASSTHROUGH,	mpi_pre_smp_passthrough},
646	{ MPI2_FUNCTION_CONFIG,			mpi_pre_config},
647	{ MPI2_FUNCTION_SAS_IO_UNIT_CONTROL,	mpi_pre_sas_io_unit_control },
648	{ 0xFF,					NULL } /* list end */
649};
650
651static int
652mps_user_setup_request(struct mps_command *cm, struct mps_usr_command *cmd)
653{
654	MPI2_REQUEST_HEADER *hdr = (MPI2_REQUEST_HEADER *)cm->cm_req;
655	struct mps_user_func *f;
656
657	for (f = mps_user_func_list; f->f_pre != NULL; f++) {
658		if (hdr->Function == f->Function)
659			return (f->f_pre(cm, cmd));
660	}
661	return (EINVAL);
662}
663
664static int
665mps_user_command(struct mps_softc *sc, struct mps_usr_command *cmd)
666{
667	MPI2_REQUEST_HEADER *hdr;
668	MPI2_DEFAULT_REPLY *rpl;
669	void *buf = NULL;
670	struct mps_command *cm = NULL;
671	int err = 0;
672	int sz;
673
674	mps_lock(sc);
675	cm = mps_alloc_command(sc);
676
677	if (cm == NULL) {
678		mps_printf(sc, "%s: no mps requests\n", __func__);
679		err = ENOMEM;
680		goto RetFree;
681	}
682	mps_unlock(sc);
683
684	hdr = (MPI2_REQUEST_HEADER *)cm->cm_req;
685
686	mps_dprint(sc, MPS_USER, "%s: req %p %d  rpl %p %d\n", __func__,
687	    cmd->req, cmd->req_len, cmd->rpl, cmd->rpl_len);
688
689	if (cmd->req_len > (int)sc->facts->IOCRequestFrameSize * 4) {
690		err = EINVAL;
691		goto RetFreeUnlocked;
692	}
693	err = copyin(cmd->req, hdr, cmd->req_len);
694	if (err != 0)
695		goto RetFreeUnlocked;
696
697	mps_dprint(sc, MPS_USER, "%s: Function %02X MsgFlags %02X\n", __func__,
698	    hdr->Function, hdr->MsgFlags);
699
700	if (cmd->len > 0) {
701		buf = malloc(cmd->len, M_MPSUSER, M_WAITOK|M_ZERO);
702		cm->cm_data = buf;
703		cm->cm_length = cmd->len;
704	} else {
705		cm->cm_data = NULL;
706		cm->cm_length = 0;
707	}
708
709	cm->cm_flags = MPS_CM_FLAGS_SGE_SIMPLE;
710	cm->cm_desc.Default.RequestFlags = MPI2_REQ_DESCRIPT_FLAGS_DEFAULT_TYPE;
711
712	err = mps_user_setup_request(cm, cmd);
713	if (err == EINVAL) {
714		mps_printf(sc, "%s: unsupported parameter or unsupported "
715		    "function in request (function = 0x%X)\n", __func__,
716		    hdr->Function);
717	}
718	if (err != 0)
719		goto RetFreeUnlocked;
720
721	mps_lock(sc);
722	err = mps_wait_command(sc, &cm, 60, CAN_SLEEP);
723
724	if (err || (cm == NULL)) {
725		mps_printf(sc, "%s: invalid request: error %d\n",
726		    __func__, err);
727		goto RetFree;
728	}
729
730	rpl = (MPI2_DEFAULT_REPLY *)cm->cm_reply;
731	if (rpl != NULL)
732		sz = rpl->MsgLength * 4;
733	else
734		sz = 0;
735
736	if (sz > cmd->rpl_len) {
737		mps_printf(sc, "%s: user reply buffer (%d) smaller than "
738		    "returned buffer (%d)\n", __func__, cmd->rpl_len, sz);
739		sz = cmd->rpl_len;
740	}
741
742	mps_unlock(sc);
743	copyout(rpl, cmd->rpl, sz);
744	if (buf != NULL)
745		copyout(buf, cmd->buf, cmd->len);
746	mps_dprint(sc, MPS_USER, "%s: reply size %d\n", __func__, sz);
747
748RetFreeUnlocked:
749	mps_lock(sc);
750RetFree:
751	if (cm != NULL)
752		mps_free_command(sc, cm);
753	mps_unlock(sc);
754	if (buf != NULL)
755		free(buf, M_MPSUSER);
756	return (err);
757}
758
759static int
760mps_user_pass_thru(struct mps_softc *sc, mps_pass_thru_t *data)
761{
762	MPI2_REQUEST_HEADER	*hdr, tmphdr;
763	MPI2_DEFAULT_REPLY	*rpl = NULL;
764	struct mps_command	*cm = NULL;
765	int			err = 0, dir = 0, sz;
766	uint8_t			function = 0;
767	u_int			sense_len;
768	struct mpssas_target	*targ = NULL;
769
770	/*
771	 * Only allow one passthru command at a time.  Use the MPS_FLAGS_BUSY
772	 * bit to denote that a passthru is being processed.
773	 */
774	mps_lock(sc);
775	if (sc->mps_flags & MPS_FLAGS_BUSY) {
776		mps_dprint(sc, MPS_USER, "%s: Only one passthru command "
777		    "allowed at a single time.", __func__);
778		mps_unlock(sc);
779		return (EBUSY);
780	}
781	sc->mps_flags |= MPS_FLAGS_BUSY;
782	mps_unlock(sc);
783
784	/*
785	 * Do some validation on data direction.  Valid cases are:
786	 *    1) DataSize is 0 and direction is NONE
787	 *    2) DataSize is non-zero and one of:
788	 *        a) direction is READ or
789	 *        b) direction is WRITE or
790	 *        c) direction is BOTH and DataOutSize is non-zero
791	 * If valid and the direction is BOTH, change the direction to READ.
792	 * if valid and the direction is not BOTH, make sure DataOutSize is 0.
793	 */
794	if (((data->DataSize == 0) &&
795	    (data->DataDirection == MPS_PASS_THRU_DIRECTION_NONE)) ||
796	    ((data->DataSize != 0) &&
797	    ((data->DataDirection == MPS_PASS_THRU_DIRECTION_READ) ||
798	    (data->DataDirection == MPS_PASS_THRU_DIRECTION_WRITE) ||
799	    ((data->DataDirection == MPS_PASS_THRU_DIRECTION_BOTH) &&
800	    (data->DataOutSize != 0))))) {
801		if (data->DataDirection == MPS_PASS_THRU_DIRECTION_BOTH)
802			data->DataDirection = MPS_PASS_THRU_DIRECTION_READ;
803		else
804			data->DataOutSize = 0;
805	} else
806		return (EINVAL);
807
808	mps_dprint(sc, MPS_USER, "%s: req 0x%jx %d  rpl 0x%jx %d "
809	    "data in 0x%jx %d data out 0x%jx %d data dir %d\n", __func__,
810	    data->PtrRequest, data->RequestSize, data->PtrReply,
811	    data->ReplySize, data->PtrData, data->DataSize,
812	    data->PtrDataOut, data->DataOutSize, data->DataDirection);
813
814	/*
815	 * copy in the header so we know what we're dealing with before we
816	 * commit to allocating a command for it.
817	 */
818	err = copyin(PTRIN(data->PtrRequest), &tmphdr, data->RequestSize);
819	if (err != 0)
820		goto RetFreeUnlocked;
821
822	if (data->RequestSize > (int)sc->facts->IOCRequestFrameSize * 4) {
823		err = EINVAL;
824		goto RetFreeUnlocked;
825	}
826
827	function = tmphdr.Function;
828	mps_dprint(sc, MPS_USER, "%s: Function %02X MsgFlags %02X\n", __func__,
829	    function, tmphdr.MsgFlags);
830
831	/*
832	 * Handle a passthru TM request.
833	 */
834	if (function == MPI2_FUNCTION_SCSI_TASK_MGMT) {
835		MPI2_SCSI_TASK_MANAGE_REQUEST	*task;
836
837		mps_lock(sc);
838		cm = mpssas_alloc_tm(sc);
839		if (cm == NULL) {
840			err = EINVAL;
841			goto Ret;
842		}
843
844		/* Copy the header in.  Only a small fixup is needed. */
845		task = (MPI2_SCSI_TASK_MANAGE_REQUEST *)cm->cm_req;
846		bcopy(&tmphdr, task, data->RequestSize);
847		task->TaskMID = cm->cm_desc.Default.SMID;
848
849		cm->cm_data = NULL;
850		cm->cm_desc.HighPriority.RequestFlags =
851		    MPI2_REQ_DESCRIPT_FLAGS_HIGH_PRIORITY;
852		cm->cm_complete = NULL;
853		cm->cm_complete_data = NULL;
854
855		targ = mpssas_find_target_by_handle(sc->sassc, 0,
856		    task->DevHandle);
857		if (targ == NULL) {
858			mps_dprint(sc, MPS_INFO,
859			   "%s %d : invalid handle for requested TM 0x%x \n",
860			   __func__, __LINE__, task->DevHandle);
861			err = 1;
862		} else {
863			mpssas_prepare_for_tm(sc, cm, targ, CAM_LUN_WILDCARD);
864			err = mps_wait_command(sc, &cm, 30, CAN_SLEEP);
865		}
866
867		if (err != 0) {
868			err = EIO;
869			mps_dprint(sc, MPS_FAULT, "%s: task management failed",
870			    __func__);
871		}
872		/*
873		 * Copy the reply data and sense data to user space.
874		 */
875		if ((cm != NULL) && (cm->cm_reply != NULL)) {
876			rpl = (MPI2_DEFAULT_REPLY *)cm->cm_reply;
877			sz = rpl->MsgLength * 4;
878
879			if (sz > data->ReplySize) {
880				mps_printf(sc, "%s: user reply buffer (%d) "
881				    "smaller than returned buffer (%d)\n",
882				    __func__, data->ReplySize, sz);
883			}
884			mps_unlock(sc);
885			copyout(cm->cm_reply, PTRIN(data->PtrReply),
886			    data->ReplySize);
887			mps_lock(sc);
888		}
889		mpssas_free_tm(sc, cm);
890		goto Ret;
891	}
892
893	mps_lock(sc);
894	cm = mps_alloc_command(sc);
895
896	if (cm == NULL) {
897		mps_printf(sc, "%s: no mps requests\n", __func__);
898		err = ENOMEM;
899		goto Ret;
900	}
901	mps_unlock(sc);
902
903	hdr = (MPI2_REQUEST_HEADER *)cm->cm_req;
904	bcopy(&tmphdr, hdr, data->RequestSize);
905
906	/*
907	 * Do some checking to make sure the IOCTL request contains a valid
908	 * request.  Then set the SGL info.
909	 */
910	mpi_init_sge(cm, hdr, (void *)((uint8_t *)hdr + data->RequestSize));
911
912	/*
913	 * Set up for read, write or both.  From check above, DataOutSize will
914	 * be 0 if direction is READ or WRITE, but it will have some non-zero
915	 * value if the direction is BOTH.  So, just use the biggest size to get
916	 * the cm_data buffer size.  If direction is BOTH, 2 SGLs need to be set
917	 * up; the first is for the request and the second will contain the
918	 * response data. cm_out_len needs to be set here and this will be used
919	 * when the SGLs are set up.
920	 */
921	cm->cm_data = NULL;
922	cm->cm_length = MAX(data->DataSize, data->DataOutSize);
923	cm->cm_out_len = data->DataOutSize;
924	cm->cm_flags = 0;
925	if (cm->cm_length != 0) {
926		cm->cm_data = malloc(cm->cm_length, M_MPSUSER, M_WAITOK |
927		    M_ZERO);
928		cm->cm_flags = MPS_CM_FLAGS_DATAIN;
929		if (data->DataOutSize) {
930			cm->cm_flags |= MPS_CM_FLAGS_DATAOUT;
931			err = copyin(PTRIN(data->PtrDataOut),
932			    cm->cm_data, data->DataOutSize);
933		} else if (data->DataDirection ==
934		    MPS_PASS_THRU_DIRECTION_WRITE) {
935			cm->cm_flags = MPS_CM_FLAGS_DATAOUT;
936			err = copyin(PTRIN(data->PtrData),
937			    cm->cm_data, data->DataSize);
938		}
939		if (err != 0)
940			mps_dprint(sc, MPS_FAULT, "%s: failed to copy "
941			    "IOCTL data from user space\n", __func__);
942	}
943	cm->cm_flags |= MPS_CM_FLAGS_SGE_SIMPLE;
944	cm->cm_desc.Default.RequestFlags = MPI2_REQ_DESCRIPT_FLAGS_DEFAULT_TYPE;
945
946	/*
947	 * Set up Sense buffer and SGL offset for IO passthru.  SCSI IO request
948	 * uses SCSI IO descriptor.
949	 */
950	if ((function == MPI2_FUNCTION_SCSI_IO_REQUEST) ||
951	    (function == MPI2_FUNCTION_RAID_SCSI_IO_PASSTHROUGH)) {
952		MPI2_SCSI_IO_REQUEST	*scsi_io_req;
953
954		scsi_io_req = (MPI2_SCSI_IO_REQUEST *)hdr;
955		/*
956		 * Put SGE for data and data_out buffer at the end of
957		 * scsi_io_request message header (64 bytes in total).
958		 * Following above SGEs, the residual space will be used by
959		 * sense data.
960		 */
961		scsi_io_req->SenseBufferLength = (uint8_t)(data->RequestSize -
962		    64);
963		scsi_io_req->SenseBufferLowAddress = htole32(cm->cm_sense_busaddr);
964
965		/*
966		 * Set SGLOffset0 value.  This is the number of dwords that SGL
967		 * is offset from the beginning of MPI2_SCSI_IO_REQUEST struct.
968		 */
969		scsi_io_req->SGLOffset0 = 24;
970
971		/*
972		 * Setup descriptor info.  RAID passthrough must use the
973		 * default request descriptor which is already set, so if this
974		 * is a SCSI IO request, change the descriptor to SCSI IO.
975		 * Also, if this is a SCSI IO request, handle the reply in the
976		 * mpssas_scsio_complete function.
977		 */
978		if (function == MPI2_FUNCTION_SCSI_IO_REQUEST) {
979			cm->cm_desc.SCSIIO.RequestFlags =
980			    MPI2_REQ_DESCRIPT_FLAGS_SCSI_IO;
981			cm->cm_desc.SCSIIO.DevHandle = scsi_io_req->DevHandle;
982
983			/*
984			 * Make sure the DevHandle is not 0 because this is a
985			 * likely error.
986			 */
987			if (scsi_io_req->DevHandle == 0) {
988				err = EINVAL;
989				goto RetFreeUnlocked;
990			}
991		}
992	}
993
994	mps_lock(sc);
995
996	err = mps_wait_command(sc, &cm, 30, CAN_SLEEP);
997
998	if (err || (cm == NULL)) {
999		mps_printf(sc, "%s: invalid request: error %d\n", __func__,
1000		    err);
1001		mps_unlock(sc);
1002		goto RetFreeUnlocked;
1003	}
1004
1005	/*
1006	 * Sync the DMA data, if any.  Then copy the data to user space.
1007	 */
1008	if (cm->cm_data != NULL) {
1009		if (cm->cm_flags & MPS_CM_FLAGS_DATAIN)
1010			dir = BUS_DMASYNC_POSTREAD;
1011		else if (cm->cm_flags & MPS_CM_FLAGS_DATAOUT)
1012			dir = BUS_DMASYNC_POSTWRITE;
1013		bus_dmamap_sync(sc->buffer_dmat, cm->cm_dmamap, dir);
1014		bus_dmamap_unload(sc->buffer_dmat, cm->cm_dmamap);
1015
1016		if (cm->cm_flags & MPS_CM_FLAGS_DATAIN) {
1017			mps_unlock(sc);
1018			err = copyout(cm->cm_data,
1019			    PTRIN(data->PtrData), data->DataSize);
1020			mps_lock(sc);
1021			if (err != 0)
1022				mps_dprint(sc, MPS_FAULT, "%s: failed to copy "
1023				    "IOCTL data to user space\n", __func__);
1024		}
1025	}
1026
1027	/*
1028	 * Copy the reply data and sense data to user space.
1029	 */
1030	if (cm->cm_reply != NULL) {
1031		rpl = (MPI2_DEFAULT_REPLY *)cm->cm_reply;
1032		sz = rpl->MsgLength * 4;
1033
1034		if (sz > data->ReplySize) {
1035			mps_printf(sc, "%s: user reply buffer (%d) smaller "
1036			    "than returned buffer (%d)\n", __func__,
1037			    data->ReplySize, sz);
1038		}
1039		mps_unlock(sc);
1040		copyout(cm->cm_reply, PTRIN(data->PtrReply), data->ReplySize);
1041		mps_lock(sc);
1042
1043		if ((function == MPI2_FUNCTION_SCSI_IO_REQUEST) ||
1044		    (function == MPI2_FUNCTION_RAID_SCSI_IO_PASSTHROUGH)) {
1045			if (((MPI2_SCSI_IO_REPLY *)rpl)->SCSIState &
1046			    MPI2_SCSI_STATE_AUTOSENSE_VALID) {
1047				sense_len =
1048				    MIN((le32toh(((MPI2_SCSI_IO_REPLY *)rpl)->SenseCount)),
1049				    sizeof(struct scsi_sense_data));
1050				mps_unlock(sc);
1051				copyout(cm->cm_sense, cm->cm_req + 64, sense_len);
1052				mps_lock(sc);
1053			}
1054		}
1055	}
1056	mps_unlock(sc);
1057
1058RetFreeUnlocked:
1059	mps_lock(sc);
1060
1061	if (cm != NULL) {
1062		if (cm->cm_data)
1063			free(cm->cm_data, M_MPSUSER);
1064		mps_free_command(sc, cm);
1065	}
1066Ret:
1067	sc->mps_flags &= ~MPS_FLAGS_BUSY;
1068	mps_unlock(sc);
1069
1070	return (err);
1071}
1072
1073static void
1074mps_user_get_adapter_data(struct mps_softc *sc, mps_adapter_data_t *data)
1075{
1076	Mpi2ConfigReply_t	mpi_reply;
1077	Mpi2BiosPage3_t		config_page;
1078
1079	/*
1080	 * Use the PCI interface functions to get the Bus, Device, and Function
1081	 * information.
1082	 */
1083	data->PciInformation.u.bits.BusNumber = pci_get_bus(sc->mps_dev);
1084	data->PciInformation.u.bits.DeviceNumber = pci_get_slot(sc->mps_dev);
1085	data->PciInformation.u.bits.FunctionNumber =
1086	    pci_get_function(sc->mps_dev);
1087
1088	/*
1089	 * Get the FW version that should already be saved in IOC Facts.
1090	 */
1091	data->MpiFirmwareVersion = sc->facts->FWVersion.Word;
1092
1093	/*
1094	 * General device info.
1095	 */
1096	data->AdapterType = MPSIOCTL_ADAPTER_TYPE_SAS2;
1097	if (sc->mps_flags & MPS_FLAGS_WD_AVAILABLE)
1098		data->AdapterType = MPSIOCTL_ADAPTER_TYPE_SAS2_SSS6200;
1099	data->PCIDeviceHwId = pci_get_device(sc->mps_dev);
1100	data->PCIDeviceHwRev = pci_read_config(sc->mps_dev, PCIR_REVID, 1);
1101	data->SubSystemId = pci_get_subdevice(sc->mps_dev);
1102	data->SubsystemVendorId = pci_get_subvendor(sc->mps_dev);
1103
1104	/*
1105	 * Get the driver version.
1106	 */
1107	strcpy((char *)&data->DriverVersion[0], MPS_DRIVER_VERSION);
1108
1109	/*
1110	 * Need to get BIOS Config Page 3 for the BIOS Version.
1111	 */
1112	data->BiosVersion = 0;
1113	mps_lock(sc);
1114	if (mps_config_get_bios_pg3(sc, &mpi_reply, &config_page))
1115		printf("%s: Error while retrieving BIOS Version\n", __func__);
1116	else
1117		data->BiosVersion = config_page.BiosVersion;
1118	mps_unlock(sc);
1119}
1120
1121static void
1122mps_user_read_pci_info(struct mps_softc *sc, mps_pci_info_t *data)
1123{
1124	int	i;
1125
1126	/*
1127	 * Use the PCI interface functions to get the Bus, Device, and Function
1128	 * information.
1129	 */
1130	data->BusNumber = pci_get_bus(sc->mps_dev);
1131	data->DeviceNumber = pci_get_slot(sc->mps_dev);
1132	data->FunctionNumber = pci_get_function(sc->mps_dev);
1133
1134	/*
1135	 * Now get the interrupt vector and the pci header.  The vector can
1136	 * only be 0 right now.  The header is the first 256 bytes of config
1137	 * space.
1138	 */
1139	data->InterruptVector = 0;
1140	for (i = 0; i < sizeof (data->PciHeader); i++) {
1141		data->PciHeader[i] = pci_read_config(sc->mps_dev, i, 1);
1142	}
1143}
1144
1145static uint8_t
1146mps_get_fw_diag_buffer_number(struct mps_softc *sc, uint32_t unique_id)
1147{
1148	uint8_t	index;
1149
1150	for (index = 0; index < MPI2_DIAG_BUF_TYPE_COUNT; index++) {
1151		if (sc->fw_diag_buffer_list[index].unique_id == unique_id) {
1152			return (index);
1153		}
1154	}
1155
1156	return (MPS_FW_DIAGNOSTIC_UID_NOT_FOUND);
1157}
1158
1159static int
1160mps_post_fw_diag_buffer(struct mps_softc *sc,
1161    mps_fw_diagnostic_buffer_t *pBuffer, uint32_t *return_code)
1162{
1163	MPI2_DIAG_BUFFER_POST_REQUEST	*req;
1164	MPI2_DIAG_BUFFER_POST_REPLY	*reply = NULL;
1165	struct mps_command		*cm = NULL;
1166	int				i, status;
1167
1168	/*
1169	 * If buffer is not enabled, just leave.
1170	 */
1171	*return_code = MPS_FW_DIAG_ERROR_POST_FAILED;
1172	if (!pBuffer->enabled) {
1173		return (MPS_DIAG_FAILURE);
1174	}
1175
1176	/*
1177	 * Clear some flags initially.
1178	 */
1179	pBuffer->force_release = FALSE;
1180	pBuffer->valid_data = FALSE;
1181	pBuffer->owned_by_firmware = FALSE;
1182
1183	/*
1184	 * Get a command.
1185	 */
1186	cm = mps_alloc_command(sc);
1187	if (cm == NULL) {
1188		mps_printf(sc, "%s: no mps requests\n", __func__);
1189		return (MPS_DIAG_FAILURE);
1190	}
1191
1192	/*
1193	 * Build the request for releasing the FW Diag Buffer and send it.
1194	 */
1195	req = (MPI2_DIAG_BUFFER_POST_REQUEST *)cm->cm_req;
1196	req->Function = MPI2_FUNCTION_DIAG_BUFFER_POST;
1197	req->BufferType = pBuffer->buffer_type;
1198	req->ExtendedType = pBuffer->extended_type;
1199	req->BufferLength = pBuffer->size;
1200	for (i = 0; i < (sizeof(req->ProductSpecific) / 4); i++)
1201		req->ProductSpecific[i] = pBuffer->product_specific[i];
1202	mps_from_u64(sc->fw_diag_busaddr, &req->BufferAddress);
1203	cm->cm_data = NULL;
1204	cm->cm_length = 0;
1205	cm->cm_desc.Default.RequestFlags = MPI2_REQ_DESCRIPT_FLAGS_DEFAULT_TYPE;
1206	cm->cm_complete_data = NULL;
1207
1208	/*
1209	 * Send command synchronously.
1210	 */
1211	status = mps_wait_command(sc, &cm, 30, CAN_SLEEP);
1212	if (status || (cm == NULL)) {
1213		mps_printf(sc, "%s: invalid request: error %d\n", __func__,
1214		    status);
1215		status = MPS_DIAG_FAILURE;
1216		goto done;
1217	}
1218
1219	/*
1220	 * Process POST reply.
1221	 */
1222	reply = (MPI2_DIAG_BUFFER_POST_REPLY *)cm->cm_reply;
1223	if ((le16toh(reply->IOCStatus) & MPI2_IOCSTATUS_MASK) !=
1224	    MPI2_IOCSTATUS_SUCCESS) {
1225		status = MPS_DIAG_FAILURE;
1226		mps_dprint(sc, MPS_FAULT, "%s: post of FW  Diag Buffer failed "
1227		    "with IOCStatus = 0x%x, IOCLogInfo = 0x%x and "
1228		    "TransferLength = 0x%x\n", __func__,
1229		    le16toh(reply->IOCStatus), le32toh(reply->IOCLogInfo),
1230		    le32toh(reply->TransferLength));
1231		goto done;
1232	}
1233
1234	/*
1235	 * Post was successful.
1236	 */
1237	pBuffer->valid_data = TRUE;
1238	pBuffer->owned_by_firmware = TRUE;
1239	*return_code = MPS_FW_DIAG_ERROR_SUCCESS;
1240	status = MPS_DIAG_SUCCESS;
1241
1242done:
1243	if (cm != NULL)
1244		mps_free_command(sc, cm);
1245	return (status);
1246}
1247
1248static int
1249mps_release_fw_diag_buffer(struct mps_softc *sc,
1250    mps_fw_diagnostic_buffer_t *pBuffer, uint32_t *return_code,
1251    uint32_t diag_type)
1252{
1253	MPI2_DIAG_RELEASE_REQUEST	*req;
1254	MPI2_DIAG_RELEASE_REPLY		*reply = NULL;
1255	struct mps_command		*cm = NULL;
1256	int				status;
1257
1258	/*
1259	 * If buffer is not enabled, just leave.
1260	 */
1261	*return_code = MPS_FW_DIAG_ERROR_RELEASE_FAILED;
1262	if (!pBuffer->enabled) {
1263		mps_dprint(sc, MPS_USER, "%s: This buffer type is not "
1264		    "supported by the IOC", __func__);
1265		return (MPS_DIAG_FAILURE);
1266	}
1267
1268	/*
1269	 * Clear some flags initially.
1270	 */
1271	pBuffer->force_release = FALSE;
1272	pBuffer->valid_data = FALSE;
1273	pBuffer->owned_by_firmware = FALSE;
1274
1275	/*
1276	 * Get a command.
1277	 */
1278	cm = mps_alloc_command(sc);
1279	if (cm == NULL) {
1280		mps_printf(sc, "%s: no mps requests\n", __func__);
1281		return (MPS_DIAG_FAILURE);
1282	}
1283
1284	/*
1285	 * Build the request for releasing the FW Diag Buffer and send it.
1286	 */
1287	req = (MPI2_DIAG_RELEASE_REQUEST *)cm->cm_req;
1288	req->Function = MPI2_FUNCTION_DIAG_RELEASE;
1289	req->BufferType = pBuffer->buffer_type;
1290	cm->cm_data = NULL;
1291	cm->cm_length = 0;
1292	cm->cm_desc.Default.RequestFlags = MPI2_REQ_DESCRIPT_FLAGS_DEFAULT_TYPE;
1293	cm->cm_complete_data = NULL;
1294
1295	/*
1296	 * Send command synchronously.
1297	 */
1298	status = mps_wait_command(sc, &cm, 30, CAN_SLEEP);
1299	if (status || (cm == NULL)) {
1300		mps_printf(sc, "%s: invalid request: error %d\n", __func__,
1301		    status);
1302		status = MPS_DIAG_FAILURE;
1303		goto done;
1304	}
1305
1306	/*
1307	 * Process RELEASE reply.
1308	 */
1309	reply = (MPI2_DIAG_RELEASE_REPLY *)cm->cm_reply;
1310	if (((le16toh(reply->IOCStatus) & MPI2_IOCSTATUS_MASK) !=
1311	    MPI2_IOCSTATUS_SUCCESS) || pBuffer->owned_by_firmware) {
1312		status = MPS_DIAG_FAILURE;
1313		mps_dprint(sc, MPS_FAULT, "%s: release of FW Diag Buffer "
1314		    "failed with IOCStatus = 0x%x and IOCLogInfo = 0x%x\n",
1315		    __func__, le16toh(reply->IOCStatus),
1316		    le32toh(reply->IOCLogInfo));
1317		goto done;
1318	}
1319
1320	/*
1321	 * Release was successful.
1322	 */
1323	*return_code = MPS_FW_DIAG_ERROR_SUCCESS;
1324	status = MPS_DIAG_SUCCESS;
1325
1326	/*
1327	 * If this was for an UNREGISTER diag type command, clear the unique ID.
1328	 */
1329	if (diag_type == MPS_FW_DIAG_TYPE_UNREGISTER) {
1330		pBuffer->unique_id = MPS_FW_DIAG_INVALID_UID;
1331	}
1332
1333done:
1334	if (cm != NULL)
1335		mps_free_command(sc, cm);
1336
1337	return (status);
1338}
1339
1340static int
1341mps_diag_register(struct mps_softc *sc, mps_fw_diag_register_t *diag_register,
1342    uint32_t *return_code)
1343{
1344	mps_fw_diagnostic_buffer_t	*pBuffer;
1345	uint8_t				extended_type, buffer_type, i;
1346	uint32_t			buffer_size;
1347	uint32_t			unique_id;
1348	int				status;
1349
1350	extended_type = diag_register->ExtendedType;
1351	buffer_type = diag_register->BufferType;
1352	buffer_size = diag_register->RequestedBufferSize;
1353	unique_id = diag_register->UniqueId;
1354
1355	/*
1356	 * Check for valid buffer type
1357	 */
1358	if (buffer_type >= MPI2_DIAG_BUF_TYPE_COUNT) {
1359		*return_code = MPS_FW_DIAG_ERROR_INVALID_PARAMETER;
1360		return (MPS_DIAG_FAILURE);
1361	}
1362
1363	/*
1364	 * Get the current buffer and look up the unique ID.  The unique ID
1365	 * should not be found.  If it is, the ID is already in use.
1366	 */
1367	i = mps_get_fw_diag_buffer_number(sc, unique_id);
1368	pBuffer = &sc->fw_diag_buffer_list[buffer_type];
1369	if (i != MPS_FW_DIAGNOSTIC_UID_NOT_FOUND) {
1370		*return_code = MPS_FW_DIAG_ERROR_INVALID_UID;
1371		return (MPS_DIAG_FAILURE);
1372	}
1373
1374	/*
1375	 * The buffer's unique ID should not be registered yet, and the given
1376	 * unique ID cannot be 0.
1377	 */
1378	if ((pBuffer->unique_id != MPS_FW_DIAG_INVALID_UID) ||
1379	    (unique_id == MPS_FW_DIAG_INVALID_UID)) {
1380		*return_code = MPS_FW_DIAG_ERROR_INVALID_UID;
1381		return (MPS_DIAG_FAILURE);
1382	}
1383
1384	/*
1385	 * If this buffer is already posted as immediate, just change owner.
1386	 */
1387	if (pBuffer->immediate && pBuffer->owned_by_firmware &&
1388	    (pBuffer->unique_id == MPS_FW_DIAG_INVALID_UID)) {
1389		pBuffer->immediate = FALSE;
1390		pBuffer->unique_id = unique_id;
1391		return (MPS_DIAG_SUCCESS);
1392	}
1393
1394	/*
1395	 * Post a new buffer after checking if it's enabled.  The DMA buffer
1396	 * that is allocated will be contiguous (nsegments = 1).
1397	 */
1398	if (!pBuffer->enabled) {
1399		*return_code = MPS_FW_DIAG_ERROR_NO_BUFFER;
1400		return (MPS_DIAG_FAILURE);
1401	}
1402        if (bus_dma_tag_create( sc->mps_parent_dmat,    /* parent */
1403				1, 0,			/* algnmnt, boundary */
1404				BUS_SPACE_MAXADDR_32BIT,/* lowaddr */
1405				BUS_SPACE_MAXADDR,	/* highaddr */
1406				NULL, NULL,		/* filter, filterarg */
1407                                buffer_size,		/* maxsize */
1408                                1,			/* nsegments */
1409                                buffer_size,		/* maxsegsize */
1410                                0,			/* flags */
1411                                NULL, NULL,		/* lockfunc, lockarg */
1412                                &sc->fw_diag_dmat)) {
1413		device_printf(sc->mps_dev, "Cannot allocate FW diag buffer DMA "
1414		    "tag\n");
1415		return (ENOMEM);
1416        }
1417        if (bus_dmamem_alloc(sc->fw_diag_dmat, (void **)&sc->fw_diag_buffer,
1418	    BUS_DMA_NOWAIT, &sc->fw_diag_map)) {
1419		device_printf(sc->mps_dev, "Cannot allocate FW diag buffer "
1420		    "memory\n");
1421		return (ENOMEM);
1422        }
1423        bzero(sc->fw_diag_buffer, buffer_size);
1424        bus_dmamap_load(sc->fw_diag_dmat, sc->fw_diag_map, sc->fw_diag_buffer,
1425	    buffer_size, mps_memaddr_cb, &sc->fw_diag_busaddr, 0);
1426	pBuffer->size = buffer_size;
1427
1428	/*
1429	 * Copy the given info to the diag buffer and post the buffer.
1430	 */
1431	pBuffer->buffer_type = buffer_type;
1432	pBuffer->immediate = FALSE;
1433	if (buffer_type == MPI2_DIAG_BUF_TYPE_TRACE) {
1434		for (i = 0; i < (sizeof (pBuffer->product_specific) / 4);
1435		    i++) {
1436			pBuffer->product_specific[i] =
1437			    diag_register->ProductSpecific[i];
1438		}
1439	}
1440	pBuffer->extended_type = extended_type;
1441	pBuffer->unique_id = unique_id;
1442	status = mps_post_fw_diag_buffer(sc, pBuffer, return_code);
1443
1444	/*
1445	 * In case there was a failure, free the DMA buffer.
1446	 */
1447	if (status == MPS_DIAG_FAILURE) {
1448		if (sc->fw_diag_busaddr != 0)
1449			bus_dmamap_unload(sc->fw_diag_dmat, sc->fw_diag_map);
1450		if (sc->fw_diag_buffer != NULL)
1451			bus_dmamem_free(sc->fw_diag_dmat, sc->fw_diag_buffer,
1452			    sc->fw_diag_map);
1453		if (sc->fw_diag_dmat != NULL)
1454			bus_dma_tag_destroy(sc->fw_diag_dmat);
1455	}
1456
1457	return (status);
1458}
1459
1460static int
1461mps_diag_unregister(struct mps_softc *sc,
1462    mps_fw_diag_unregister_t *diag_unregister, uint32_t *return_code)
1463{
1464	mps_fw_diagnostic_buffer_t	*pBuffer;
1465	uint8_t				i;
1466	uint32_t			unique_id;
1467	int				status;
1468
1469	unique_id = diag_unregister->UniqueId;
1470
1471	/*
1472	 * Get the current buffer and look up the unique ID.  The unique ID
1473	 * should be there.
1474	 */
1475	i = mps_get_fw_diag_buffer_number(sc, unique_id);
1476	if (i == MPS_FW_DIAGNOSTIC_UID_NOT_FOUND) {
1477		*return_code = MPS_FW_DIAG_ERROR_INVALID_UID;
1478		return (MPS_DIAG_FAILURE);
1479	}
1480
1481	pBuffer = &sc->fw_diag_buffer_list[i];
1482
1483	/*
1484	 * Try to release the buffer from FW before freeing it.  If release
1485	 * fails, don't free the DMA buffer in case FW tries to access it
1486	 * later.  If buffer is not owned by firmware, can't release it.
1487	 */
1488	if (!pBuffer->owned_by_firmware) {
1489		status = MPS_DIAG_SUCCESS;
1490	} else {
1491		status = mps_release_fw_diag_buffer(sc, pBuffer, return_code,
1492		    MPS_FW_DIAG_TYPE_UNREGISTER);
1493	}
1494
1495	/*
1496	 * At this point, return the current status no matter what happens with
1497	 * the DMA buffer.
1498	 */
1499	pBuffer->unique_id = MPS_FW_DIAG_INVALID_UID;
1500	if (status == MPS_DIAG_SUCCESS) {
1501		if (sc->fw_diag_busaddr != 0)
1502			bus_dmamap_unload(sc->fw_diag_dmat, sc->fw_diag_map);
1503		if (sc->fw_diag_buffer != NULL)
1504			bus_dmamem_free(sc->fw_diag_dmat, sc->fw_diag_buffer,
1505			    sc->fw_diag_map);
1506		if (sc->fw_diag_dmat != NULL)
1507			bus_dma_tag_destroy(sc->fw_diag_dmat);
1508	}
1509
1510	return (status);
1511}
1512
1513static int
1514mps_diag_query(struct mps_softc *sc, mps_fw_diag_query_t *diag_query,
1515    uint32_t *return_code)
1516{
1517	mps_fw_diagnostic_buffer_t	*pBuffer;
1518	uint8_t				i;
1519	uint32_t			unique_id;
1520
1521	unique_id = diag_query->UniqueId;
1522
1523	/*
1524	 * If ID is valid, query on ID.
1525	 * If ID is invalid, query on buffer type.
1526	 */
1527	if (unique_id == MPS_FW_DIAG_INVALID_UID) {
1528		i = diag_query->BufferType;
1529		if (i >= MPI2_DIAG_BUF_TYPE_COUNT) {
1530			*return_code = MPS_FW_DIAG_ERROR_INVALID_UID;
1531			return (MPS_DIAG_FAILURE);
1532		}
1533	} else {
1534		i = mps_get_fw_diag_buffer_number(sc, unique_id);
1535		if (i == MPS_FW_DIAGNOSTIC_UID_NOT_FOUND) {
1536			*return_code = MPS_FW_DIAG_ERROR_INVALID_UID;
1537			return (MPS_DIAG_FAILURE);
1538		}
1539	}
1540
1541	/*
1542	 * Fill query structure with the diag buffer info.
1543	 */
1544	pBuffer = &sc->fw_diag_buffer_list[i];
1545	diag_query->BufferType = pBuffer->buffer_type;
1546	diag_query->ExtendedType = pBuffer->extended_type;
1547	if (diag_query->BufferType == MPI2_DIAG_BUF_TYPE_TRACE) {
1548		for (i = 0; i < (sizeof(diag_query->ProductSpecific) / 4);
1549		    i++) {
1550			diag_query->ProductSpecific[i] =
1551			    pBuffer->product_specific[i];
1552		}
1553	}
1554	diag_query->TotalBufferSize = pBuffer->size;
1555	diag_query->DriverAddedBufferSize = 0;
1556	diag_query->UniqueId = pBuffer->unique_id;
1557	diag_query->ApplicationFlags = 0;
1558	diag_query->DiagnosticFlags = 0;
1559
1560	/*
1561	 * Set/Clear application flags
1562	 */
1563	if (pBuffer->immediate) {
1564		diag_query->ApplicationFlags &= ~MPS_FW_DIAG_FLAG_APP_OWNED;
1565	} else {
1566		diag_query->ApplicationFlags |= MPS_FW_DIAG_FLAG_APP_OWNED;
1567	}
1568	if (pBuffer->valid_data || pBuffer->owned_by_firmware) {
1569		diag_query->ApplicationFlags |= MPS_FW_DIAG_FLAG_BUFFER_VALID;
1570	} else {
1571		diag_query->ApplicationFlags &= ~MPS_FW_DIAG_FLAG_BUFFER_VALID;
1572	}
1573	if (pBuffer->owned_by_firmware) {
1574		diag_query->ApplicationFlags |=
1575		    MPS_FW_DIAG_FLAG_FW_BUFFER_ACCESS;
1576	} else {
1577		diag_query->ApplicationFlags &=
1578		    ~MPS_FW_DIAG_FLAG_FW_BUFFER_ACCESS;
1579	}
1580
1581	return (MPS_DIAG_SUCCESS);
1582}
1583
1584static int
1585mps_diag_read_buffer(struct mps_softc *sc,
1586    mps_diag_read_buffer_t *diag_read_buffer, uint8_t *ioctl_buf,
1587    uint32_t *return_code)
1588{
1589	mps_fw_diagnostic_buffer_t	*pBuffer;
1590	uint8_t				i, *pData;
1591	uint32_t			unique_id;
1592	int				status;
1593
1594	unique_id = diag_read_buffer->UniqueId;
1595
1596	/*
1597	 * Get the current buffer and look up the unique ID.  The unique ID
1598	 * should be there.
1599	 */
1600	i = mps_get_fw_diag_buffer_number(sc, unique_id);
1601	if (i == MPS_FW_DIAGNOSTIC_UID_NOT_FOUND) {
1602		*return_code = MPS_FW_DIAG_ERROR_INVALID_UID;
1603		return (MPS_DIAG_FAILURE);
1604	}
1605
1606	pBuffer = &sc->fw_diag_buffer_list[i];
1607
1608	/*
1609	 * Make sure requested read is within limits
1610	 */
1611	if (diag_read_buffer->StartingOffset + diag_read_buffer->BytesToRead >
1612	    pBuffer->size) {
1613		*return_code = MPS_FW_DIAG_ERROR_INVALID_PARAMETER;
1614		return (MPS_DIAG_FAILURE);
1615	}
1616
1617	/*
1618	 * Copy the requested data from DMA to the diag_read_buffer.  The DMA
1619	 * buffer that was allocated is one contiguous buffer.
1620	 */
1621	pData = (uint8_t *)(sc->fw_diag_buffer +
1622	    diag_read_buffer->StartingOffset);
1623	if (copyout(pData, ioctl_buf, diag_read_buffer->BytesToRead) != 0)
1624		return (MPS_DIAG_FAILURE);
1625	diag_read_buffer->Status = 0;
1626
1627	/*
1628	 * Set or clear the Force Release flag.
1629	 */
1630	if (pBuffer->force_release) {
1631		diag_read_buffer->Flags |= MPS_FW_DIAG_FLAG_FORCE_RELEASE;
1632	} else {
1633		diag_read_buffer->Flags &= ~MPS_FW_DIAG_FLAG_FORCE_RELEASE;
1634	}
1635
1636	/*
1637	 * If buffer is to be reregistered, make sure it's not already owned by
1638	 * firmware first.
1639	 */
1640	status = MPS_DIAG_SUCCESS;
1641	if (!pBuffer->owned_by_firmware) {
1642		if (diag_read_buffer->Flags & MPS_FW_DIAG_FLAG_REREGISTER) {
1643			status = mps_post_fw_diag_buffer(sc, pBuffer,
1644			    return_code);
1645		}
1646	}
1647
1648	return (status);
1649}
1650
1651static int
1652mps_diag_release(struct mps_softc *sc, mps_fw_diag_release_t *diag_release,
1653    uint32_t *return_code)
1654{
1655	mps_fw_diagnostic_buffer_t	*pBuffer;
1656	uint8_t				i;
1657	uint32_t			unique_id;
1658	int				status;
1659
1660	unique_id = diag_release->UniqueId;
1661
1662	/*
1663	 * Get the current buffer and look up the unique ID.  The unique ID
1664	 * should be there.
1665	 */
1666	i = mps_get_fw_diag_buffer_number(sc, unique_id);
1667	if (i == MPS_FW_DIAGNOSTIC_UID_NOT_FOUND) {
1668		*return_code = MPS_FW_DIAG_ERROR_INVALID_UID;
1669		return (MPS_DIAG_FAILURE);
1670	}
1671
1672	pBuffer = &sc->fw_diag_buffer_list[i];
1673
1674	/*
1675	 * If buffer is not owned by firmware, it's already been released.
1676	 */
1677	if (!pBuffer->owned_by_firmware) {
1678		*return_code = MPS_FW_DIAG_ERROR_ALREADY_RELEASED;
1679		return (MPS_DIAG_FAILURE);
1680	}
1681
1682	/*
1683	 * Release the buffer.
1684	 */
1685	status = mps_release_fw_diag_buffer(sc, pBuffer, return_code,
1686	    MPS_FW_DIAG_TYPE_RELEASE);
1687	return (status);
1688}
1689
1690static int
1691mps_do_diag_action(struct mps_softc *sc, uint32_t action, uint8_t *diag_action,
1692    uint32_t length, uint32_t *return_code)
1693{
1694	mps_fw_diag_register_t		diag_register;
1695	mps_fw_diag_unregister_t	diag_unregister;
1696	mps_fw_diag_query_t		diag_query;
1697	mps_diag_read_buffer_t		diag_read_buffer;
1698	mps_fw_diag_release_t		diag_release;
1699	int				status = MPS_DIAG_SUCCESS;
1700	uint32_t			original_return_code;
1701
1702	original_return_code = *return_code;
1703	*return_code = MPS_FW_DIAG_ERROR_SUCCESS;
1704
1705	switch (action) {
1706		case MPS_FW_DIAG_TYPE_REGISTER:
1707			if (!length) {
1708				*return_code =
1709				    MPS_FW_DIAG_ERROR_INVALID_PARAMETER;
1710				status = MPS_DIAG_FAILURE;
1711				break;
1712			}
1713			if (copyin(diag_action, &diag_register,
1714			    sizeof(diag_register)) != 0)
1715				return (MPS_DIAG_FAILURE);
1716			status = mps_diag_register(sc, &diag_register,
1717			    return_code);
1718			break;
1719
1720		case MPS_FW_DIAG_TYPE_UNREGISTER:
1721			if (length < sizeof(diag_unregister)) {
1722				*return_code =
1723				    MPS_FW_DIAG_ERROR_INVALID_PARAMETER;
1724				status = MPS_DIAG_FAILURE;
1725				break;
1726			}
1727			if (copyin(diag_action, &diag_unregister,
1728			    sizeof(diag_unregister)) != 0)
1729				return (MPS_DIAG_FAILURE);
1730			status = mps_diag_unregister(sc, &diag_unregister,
1731			    return_code);
1732			break;
1733
1734		case MPS_FW_DIAG_TYPE_QUERY:
1735			if (length < sizeof (diag_query)) {
1736				*return_code =
1737				    MPS_FW_DIAG_ERROR_INVALID_PARAMETER;
1738				status = MPS_DIAG_FAILURE;
1739				break;
1740			}
1741			if (copyin(diag_action, &diag_query, sizeof(diag_query))
1742			    != 0)
1743				return (MPS_DIAG_FAILURE);
1744			status = mps_diag_query(sc, &diag_query, return_code);
1745			if (status == MPS_DIAG_SUCCESS)
1746				if (copyout(&diag_query, diag_action,
1747				    sizeof (diag_query)) != 0)
1748					return (MPS_DIAG_FAILURE);
1749			break;
1750
1751		case MPS_FW_DIAG_TYPE_READ_BUFFER:
1752			if (copyin(diag_action, &diag_read_buffer,
1753			    sizeof(diag_read_buffer)) != 0)
1754				return (MPS_DIAG_FAILURE);
1755			if (length < diag_read_buffer.BytesToRead) {
1756				*return_code =
1757				    MPS_FW_DIAG_ERROR_INVALID_PARAMETER;
1758				status = MPS_DIAG_FAILURE;
1759				break;
1760			}
1761			status = mps_diag_read_buffer(sc, &diag_read_buffer,
1762			    PTRIN(diag_read_buffer.PtrDataBuffer),
1763			    return_code);
1764			if (status == MPS_DIAG_SUCCESS) {
1765				if (copyout(&diag_read_buffer, diag_action,
1766				    sizeof(diag_read_buffer) -
1767				    sizeof(diag_read_buffer.PtrDataBuffer)) !=
1768				    0)
1769					return (MPS_DIAG_FAILURE);
1770			}
1771			break;
1772
1773		case MPS_FW_DIAG_TYPE_RELEASE:
1774			if (length < sizeof(diag_release)) {
1775				*return_code =
1776				    MPS_FW_DIAG_ERROR_INVALID_PARAMETER;
1777				status = MPS_DIAG_FAILURE;
1778				break;
1779			}
1780			if (copyin(diag_action, &diag_release,
1781			    sizeof(diag_release)) != 0)
1782				return (MPS_DIAG_FAILURE);
1783			status = mps_diag_release(sc, &diag_release,
1784			    return_code);
1785			break;
1786
1787		default:
1788			*return_code = MPS_FW_DIAG_ERROR_INVALID_PARAMETER;
1789			status = MPS_DIAG_FAILURE;
1790			break;
1791	}
1792
1793	if ((status == MPS_DIAG_FAILURE) &&
1794	    (original_return_code == MPS_FW_DIAG_NEW) &&
1795	    (*return_code != MPS_FW_DIAG_ERROR_SUCCESS))
1796		status = MPS_DIAG_SUCCESS;
1797
1798	return (status);
1799}
1800
1801static int
1802mps_user_diag_action(struct mps_softc *sc, mps_diag_action_t *data)
1803{
1804	int			status;
1805
1806	/*
1807	 * Only allow one diag action at one time.
1808	 */
1809	if (sc->mps_flags & MPS_FLAGS_BUSY) {
1810		mps_dprint(sc, MPS_USER, "%s: Only one FW diag command "
1811		    "allowed at a single time.", __func__);
1812		return (EBUSY);
1813	}
1814	sc->mps_flags |= MPS_FLAGS_BUSY;
1815
1816	/*
1817	 * Send diag action request
1818	 */
1819	if (data->Action == MPS_FW_DIAG_TYPE_REGISTER ||
1820	    data->Action == MPS_FW_DIAG_TYPE_UNREGISTER ||
1821	    data->Action == MPS_FW_DIAG_TYPE_QUERY ||
1822	    data->Action == MPS_FW_DIAG_TYPE_READ_BUFFER ||
1823	    data->Action == MPS_FW_DIAG_TYPE_RELEASE) {
1824		status = mps_do_diag_action(sc, data->Action,
1825		    PTRIN(data->PtrDiagAction), data->Length,
1826		    &data->ReturnCode);
1827	} else
1828		status = EINVAL;
1829
1830	sc->mps_flags &= ~MPS_FLAGS_BUSY;
1831	return (status);
1832}
1833
1834/*
1835 * Copy the event recording mask and the event queue size out.  For
1836 * clarification, the event recording mask (events_to_record) is not the same
1837 * thing as the event mask (event_mask).  events_to_record has a bit set for
1838 * every event type that is to be recorded by the driver, and event_mask has a
1839 * bit cleared for every event that is allowed into the driver from the IOC.
1840 * They really have nothing to do with each other.
1841 */
1842static void
1843mps_user_event_query(struct mps_softc *sc, mps_event_query_t *data)
1844{
1845	uint8_t	i;
1846
1847	mps_lock(sc);
1848	data->Entries = MPS_EVENT_QUEUE_SIZE;
1849
1850	for (i = 0; i < 4; i++) {
1851		data->Types[i] = sc->events_to_record[i];
1852	}
1853	mps_unlock(sc);
1854}
1855
1856/*
1857 * Set the driver's event mask according to what's been given.  See
1858 * mps_user_event_query for explanation of the event recording mask and the IOC
1859 * event mask.  It's the app's responsibility to enable event logging by setting
1860 * the bits in events_to_record.  Initially, no events will be logged.
1861 */
1862static void
1863mps_user_event_enable(struct mps_softc *sc, mps_event_enable_t *data)
1864{
1865	uint8_t	i;
1866
1867	mps_lock(sc);
1868	for (i = 0; i < 4; i++) {
1869		sc->events_to_record[i] = data->Types[i];
1870	}
1871	mps_unlock(sc);
1872}
1873
1874/*
1875 * Copy out the events that have been recorded, up to the max events allowed.
1876 */
1877static int
1878mps_user_event_report(struct mps_softc *sc, mps_event_report_t *data)
1879{
1880	int		status = 0;
1881	uint32_t	size;
1882
1883	mps_lock(sc);
1884	size = data->Size;
1885	if ((size >= sizeof(sc->recorded_events)) && (status == 0)) {
1886		mps_unlock(sc);
1887		if (copyout((void *)sc->recorded_events,
1888		    PTRIN(data->PtrEvents), size) != 0)
1889			status = EFAULT;
1890		mps_lock(sc);
1891	} else {
1892		/*
1893		 * data->Size value is not large enough to copy event data.
1894		 */
1895		status = EFAULT;
1896	}
1897
1898	/*
1899	 * Change size value to match the number of bytes that were copied.
1900	 */
1901	if (status == 0)
1902		data->Size = sizeof(sc->recorded_events);
1903	mps_unlock(sc);
1904
1905	return (status);
1906}
1907
1908/*
1909 * Record events into the driver from the IOC if they are not masked.
1910 */
1911void
1912mpssas_record_event(struct mps_softc *sc,
1913    MPI2_EVENT_NOTIFICATION_REPLY *event_reply)
1914{
1915	uint32_t	event;
1916	int		i, j;
1917	uint16_t	event_data_len;
1918	boolean_t	sendAEN = FALSE;
1919
1920	event = event_reply->Event;
1921
1922	/*
1923	 * Generate a system event to let anyone who cares know that a
1924	 * LOG_ENTRY_ADDED event has occurred.  This is sent no matter what the
1925	 * event mask is set to.
1926	 */
1927	if (event == MPI2_EVENT_LOG_ENTRY_ADDED) {
1928		sendAEN = TRUE;
1929	}
1930
1931	/*
1932	 * Record the event only if its corresponding bit is set in
1933	 * events_to_record.  event_index is the index into recorded_events and
1934	 * event_number is the overall number of an event being recorded since
1935	 * start-of-day.  event_index will roll over; event_number will never
1936	 * roll over.
1937	 */
1938	i = (uint8_t)(event / 32);
1939	j = (uint8_t)(event % 32);
1940	if ((i < 4) && ((1 << j) & sc->events_to_record[i])) {
1941		i = sc->event_index;
1942		sc->recorded_events[i].Type = event;
1943		sc->recorded_events[i].Number = ++sc->event_number;
1944		bzero(sc->recorded_events[i].Data, MPS_MAX_EVENT_DATA_LENGTH *
1945		    4);
1946		event_data_len = event_reply->EventDataLength;
1947
1948		if (event_data_len > 0) {
1949			/*
1950			 * Limit data to size in m_event entry
1951			 */
1952			if (event_data_len > MPS_MAX_EVENT_DATA_LENGTH) {
1953				event_data_len = MPS_MAX_EVENT_DATA_LENGTH;
1954			}
1955			for (j = 0; j < event_data_len; j++) {
1956				sc->recorded_events[i].Data[j] =
1957				    event_reply->EventData[j];
1958			}
1959
1960			/*
1961			 * check for index wrap-around
1962			 */
1963			if (++i == MPS_EVENT_QUEUE_SIZE) {
1964				i = 0;
1965			}
1966			sc->event_index = (uint8_t)i;
1967
1968			/*
1969			 * Set flag to send the event.
1970			 */
1971			sendAEN = TRUE;
1972		}
1973	}
1974
1975	/*
1976	 * Generate a system event if flag is set to let anyone who cares know
1977	 * that an event has occurred.
1978	 */
1979	if (sendAEN) {
1980//SLM-how to send a system event (see kqueue, kevent)
1981//		(void) ddi_log_sysevent(mpt->m_dip, DDI_VENDOR_LSI, "MPT_SAS",
1982//		    "SAS", NULL, NULL, DDI_NOSLEEP);
1983	}
1984}
1985
1986static int
1987mps_user_reg_access(struct mps_softc *sc, mps_reg_access_t *data)
1988{
1989	int	status = 0;
1990
1991	switch (data->Command) {
1992		/*
1993		 * IO access is not supported.
1994		 */
1995		case REG_IO_READ:
1996		case REG_IO_WRITE:
1997			mps_dprint(sc, MPS_USER, "IO access is not supported. "
1998			    "Use memory access.");
1999			status = EINVAL;
2000			break;
2001
2002		case REG_MEM_READ:
2003			data->RegData = mps_regread(sc, data->RegOffset);
2004			break;
2005
2006		case REG_MEM_WRITE:
2007			mps_regwrite(sc, data->RegOffset, data->RegData);
2008			break;
2009
2010		default:
2011			status = EINVAL;
2012			break;
2013	}
2014
2015	return (status);
2016}
2017
2018static int
2019mps_user_btdh(struct mps_softc *sc, mps_btdh_mapping_t *data)
2020{
2021	uint8_t		bt2dh = FALSE;
2022	uint8_t		dh2bt = FALSE;
2023	uint16_t	dev_handle, bus, target;
2024
2025	bus = data->Bus;
2026	target = data->TargetID;
2027	dev_handle = data->DevHandle;
2028
2029	/*
2030	 * When DevHandle is 0xFFFF and Bus/Target are not 0xFFFF, use Bus/
2031	 * Target to get DevHandle.  When Bus/Target are 0xFFFF and DevHandle is
2032	 * not 0xFFFF, use DevHandle to get Bus/Target.  Anything else is
2033	 * invalid.
2034	 */
2035	if ((bus == 0xFFFF) && (target == 0xFFFF) && (dev_handle != 0xFFFF))
2036		dh2bt = TRUE;
2037	if ((dev_handle == 0xFFFF) && (bus != 0xFFFF) && (target != 0xFFFF))
2038		bt2dh = TRUE;
2039	if (!dh2bt && !bt2dh)
2040		return (EINVAL);
2041
2042	/*
2043	 * Only handle bus of 0.  Make sure target is within range.
2044	 */
2045	if (bt2dh) {
2046		if (bus != 0)
2047			return (EINVAL);
2048
2049		if (target > sc->max_devices) {
2050			mps_dprint(sc, MPS_FAULT, "Target ID is out of range "
2051			   "for Bus/Target to DevHandle mapping.");
2052			return (EINVAL);
2053		}
2054		dev_handle = sc->mapping_table[target].dev_handle;
2055		if (dev_handle)
2056			data->DevHandle = dev_handle;
2057	} else {
2058		bus = 0;
2059		target = mps_mapping_get_tid_from_handle(sc, dev_handle);
2060		data->Bus = bus;
2061		data->TargetID = target;
2062	}
2063
2064	return (0);
2065}
2066
2067static int
2068mps_ioctl(struct cdev *dev, u_long cmd, void *arg, int flag,
2069    struct thread *td)
2070{
2071	struct mps_softc *sc;
2072	struct mps_cfg_page_req *page_req;
2073	struct mps_ext_cfg_page_req *ext_page_req;
2074	void *mps_page;
2075	int error, msleep_ret;
2076
2077	mps_page = NULL;
2078	sc = dev->si_drv1;
2079	page_req = (void *)arg;
2080	ext_page_req = (void *)arg;
2081
2082	switch (cmd) {
2083	case MPSIO_READ_CFG_HEADER:
2084		mps_lock(sc);
2085		error = mps_user_read_cfg_header(sc, page_req);
2086		mps_unlock(sc);
2087		break;
2088	case MPSIO_READ_CFG_PAGE:
2089		mps_page = malloc(page_req->len, M_MPSUSER, M_WAITOK | M_ZERO);
2090		error = copyin(page_req->buf, mps_page,
2091		    sizeof(MPI2_CONFIG_PAGE_HEADER));
2092		if (error)
2093			break;
2094		mps_lock(sc);
2095		error = mps_user_read_cfg_page(sc, page_req, mps_page);
2096		mps_unlock(sc);
2097		if (error)
2098			break;
2099		error = copyout(mps_page, page_req->buf, page_req->len);
2100		break;
2101	case MPSIO_READ_EXT_CFG_HEADER:
2102		mps_lock(sc);
2103		error = mps_user_read_extcfg_header(sc, ext_page_req);
2104		mps_unlock(sc);
2105		break;
2106	case MPSIO_READ_EXT_CFG_PAGE:
2107		mps_page = malloc(ext_page_req->len, M_MPSUSER, M_WAITOK|M_ZERO);
2108		error = copyin(ext_page_req->buf, mps_page,
2109		    sizeof(MPI2_CONFIG_EXTENDED_PAGE_HEADER));
2110		if (error)
2111			break;
2112		mps_lock(sc);
2113		error = mps_user_read_extcfg_page(sc, ext_page_req, mps_page);
2114		mps_unlock(sc);
2115		if (error)
2116			break;
2117		error = copyout(mps_page, ext_page_req->buf, ext_page_req->len);
2118		break;
2119	case MPSIO_WRITE_CFG_PAGE:
2120		mps_page = malloc(page_req->len, M_MPSUSER, M_WAITOK|M_ZERO);
2121		error = copyin(page_req->buf, mps_page, page_req->len);
2122		if (error)
2123			break;
2124		mps_lock(sc);
2125		error = mps_user_write_cfg_page(sc, page_req, mps_page);
2126		mps_unlock(sc);
2127		break;
2128	case MPSIO_MPS_COMMAND:
2129		error = mps_user_command(sc, (struct mps_usr_command *)arg);
2130		break;
2131	case MPTIOCTL_PASS_THRU:
2132		/*
2133		 * The user has requested to pass through a command to be
2134		 * executed by the MPT firmware.  Call our routine which does
2135		 * this.  Only allow one passthru IOCTL at one time.
2136		 */
2137		error = mps_user_pass_thru(sc, (mps_pass_thru_t *)arg);
2138		break;
2139	case MPTIOCTL_GET_ADAPTER_DATA:
2140		/*
2141		 * The user has requested to read adapter data.  Call our
2142		 * routine which does this.
2143		 */
2144		error = 0;
2145		mps_user_get_adapter_data(sc, (mps_adapter_data_t *)arg);
2146		break;
2147	case MPTIOCTL_GET_PCI_INFO:
2148		/*
2149		 * The user has requested to read pci info.  Call
2150		 * our routine which does this.
2151		 */
2152		mps_lock(sc);
2153		error = 0;
2154		mps_user_read_pci_info(sc, (mps_pci_info_t *)arg);
2155		mps_unlock(sc);
2156		break;
2157	case MPTIOCTL_RESET_ADAPTER:
2158		mps_lock(sc);
2159		sc->port_enable_complete = 0;
2160		uint32_t reinit_start = time_uptime;
2161		error = mps_reinit(sc);
2162		/* Sleep for 300 second. */
2163		msleep_ret = msleep(&sc->port_enable_complete, &sc->mps_mtx, PRIBIO,
2164		       "mps_porten", 300 * hz);
2165		mps_unlock(sc);
2166		if (msleep_ret)
2167			printf("Port Enable did not complete after Diag "
2168			    "Reset msleep error %d.\n", msleep_ret);
2169		else
2170			mps_dprint(sc, MPS_USER,
2171				"Hard Reset with Port Enable completed in %d seconds.\n",
2172				 (uint32_t) (time_uptime - reinit_start));
2173		break;
2174	case MPTIOCTL_DIAG_ACTION:
2175		/*
2176		 * The user has done a diag buffer action.  Call our routine
2177		 * which does this.  Only allow one diag action at one time.
2178		 */
2179		mps_lock(sc);
2180		error = mps_user_diag_action(sc, (mps_diag_action_t *)arg);
2181		mps_unlock(sc);
2182		break;
2183	case MPTIOCTL_EVENT_QUERY:
2184		/*
2185		 * The user has done an event query. Call our routine which does
2186		 * this.
2187		 */
2188		error = 0;
2189		mps_user_event_query(sc, (mps_event_query_t *)arg);
2190		break;
2191	case MPTIOCTL_EVENT_ENABLE:
2192		/*
2193		 * The user has done an event enable. Call our routine which
2194		 * does this.
2195		 */
2196		error = 0;
2197		mps_user_event_enable(sc, (mps_event_enable_t *)arg);
2198		break;
2199	case MPTIOCTL_EVENT_REPORT:
2200		/*
2201		 * The user has done an event report. Call our routine which
2202		 * does this.
2203		 */
2204		error = mps_user_event_report(sc, (mps_event_report_t *)arg);
2205		break;
2206	case MPTIOCTL_REG_ACCESS:
2207		/*
2208		 * The user has requested register access.  Call our routine
2209		 * which does this.
2210		 */
2211		mps_lock(sc);
2212		error = mps_user_reg_access(sc, (mps_reg_access_t *)arg);
2213		mps_unlock(sc);
2214		break;
2215	case MPTIOCTL_BTDH_MAPPING:
2216		/*
2217		 * The user has requested to translate a bus/target to a
2218		 * DevHandle or a DevHandle to a bus/target.  Call our routine
2219		 * which does this.
2220		 */
2221		error = mps_user_btdh(sc, (mps_btdh_mapping_t *)arg);
2222		break;
2223	default:
2224		error = ENOIOCTL;
2225		break;
2226	}
2227
2228	if (mps_page != NULL)
2229		free(mps_page, M_MPSUSER);
2230
2231	return (error);
2232}
2233
2234#ifdef COMPAT_FREEBSD32
2235
2236struct mps_cfg_page_req32 {
2237	MPI2_CONFIG_PAGE_HEADER header;
2238	uint32_t page_address;
2239	uint32_t buf;
2240	int	len;
2241	uint16_t ioc_status;
2242};
2243
2244struct mps_ext_cfg_page_req32 {
2245	MPI2_CONFIG_EXTENDED_PAGE_HEADER header;
2246	uint32_t page_address;
2247	uint32_t buf;
2248	int	len;
2249	uint16_t ioc_status;
2250};
2251
2252struct mps_raid_action32 {
2253	uint8_t action;
2254	uint8_t volume_bus;
2255	uint8_t volume_id;
2256	uint8_t phys_disk_num;
2257	uint32_t action_data_word;
2258	uint32_t buf;
2259	int len;
2260	uint32_t volume_status;
2261	uint32_t action_data[4];
2262	uint16_t action_status;
2263	uint16_t ioc_status;
2264	uint8_t write;
2265};
2266
2267struct mps_usr_command32 {
2268	uint32_t req;
2269	uint32_t req_len;
2270	uint32_t rpl;
2271	uint32_t rpl_len;
2272	uint32_t buf;
2273	int len;
2274	uint32_t flags;
2275};
2276
2277#define	MPSIO_READ_CFG_HEADER32	_IOWR('M', 200, struct mps_cfg_page_req32)
2278#define	MPSIO_READ_CFG_PAGE32	_IOWR('M', 201, struct mps_cfg_page_req32)
2279#define	MPSIO_READ_EXT_CFG_HEADER32 _IOWR('M', 202, struct mps_ext_cfg_page_req32)
2280#define	MPSIO_READ_EXT_CFG_PAGE32 _IOWR('M', 203, struct mps_ext_cfg_page_req32)
2281#define	MPSIO_WRITE_CFG_PAGE32	_IOWR('M', 204, struct mps_cfg_page_req32)
2282#define	MPSIO_RAID_ACTION32	_IOWR('M', 205, struct mps_raid_action32)
2283#define	MPSIO_MPS_COMMAND32	_IOWR('M', 210, struct mps_usr_command32)
2284
2285static int
2286mps_ioctl32(struct cdev *dev, u_long cmd32, void *_arg, int flag,
2287    struct thread *td)
2288{
2289	struct mps_cfg_page_req32 *page32 = _arg;
2290	struct mps_ext_cfg_page_req32 *ext32 = _arg;
2291	struct mps_raid_action32 *raid32 = _arg;
2292	struct mps_usr_command32 *user32 = _arg;
2293	union {
2294		struct mps_cfg_page_req page;
2295		struct mps_ext_cfg_page_req ext;
2296		struct mps_raid_action raid;
2297		struct mps_usr_command user;
2298	} arg;
2299	u_long cmd;
2300	int error;
2301
2302	switch (cmd32) {
2303	case MPSIO_READ_CFG_HEADER32:
2304	case MPSIO_READ_CFG_PAGE32:
2305	case MPSIO_WRITE_CFG_PAGE32:
2306		if (cmd32 == MPSIO_READ_CFG_HEADER32)
2307			cmd = MPSIO_READ_CFG_HEADER;
2308		else if (cmd32 == MPSIO_READ_CFG_PAGE32)
2309			cmd = MPSIO_READ_CFG_PAGE;
2310		else
2311			cmd = MPSIO_WRITE_CFG_PAGE;
2312		CP(*page32, arg.page, header);
2313		CP(*page32, arg.page, page_address);
2314		PTRIN_CP(*page32, arg.page, buf);
2315		CP(*page32, arg.page, len);
2316		CP(*page32, arg.page, ioc_status);
2317		break;
2318
2319	case MPSIO_READ_EXT_CFG_HEADER32:
2320	case MPSIO_READ_EXT_CFG_PAGE32:
2321		if (cmd32 == MPSIO_READ_EXT_CFG_HEADER32)
2322			cmd = MPSIO_READ_EXT_CFG_HEADER;
2323		else
2324			cmd = MPSIO_READ_EXT_CFG_PAGE;
2325		CP(*ext32, arg.ext, header);
2326		CP(*ext32, arg.ext, page_address);
2327		PTRIN_CP(*ext32, arg.ext, buf);
2328		CP(*ext32, arg.ext, len);
2329		CP(*ext32, arg.ext, ioc_status);
2330		break;
2331
2332	case MPSIO_RAID_ACTION32:
2333		cmd = MPSIO_RAID_ACTION;
2334		CP(*raid32, arg.raid, action);
2335		CP(*raid32, arg.raid, volume_bus);
2336		CP(*raid32, arg.raid, volume_id);
2337		CP(*raid32, arg.raid, phys_disk_num);
2338		CP(*raid32, arg.raid, action_data_word);
2339		PTRIN_CP(*raid32, arg.raid, buf);
2340		CP(*raid32, arg.raid, len);
2341		CP(*raid32, arg.raid, volume_status);
2342		bcopy(raid32->action_data, arg.raid.action_data,
2343		    sizeof arg.raid.action_data);
2344		CP(*raid32, arg.raid, ioc_status);
2345		CP(*raid32, arg.raid, write);
2346		break;
2347
2348	case MPSIO_MPS_COMMAND32:
2349		cmd = MPSIO_MPS_COMMAND;
2350		PTRIN_CP(*user32, arg.user, req);
2351		CP(*user32, arg.user, req_len);
2352		PTRIN_CP(*user32, arg.user, rpl);
2353		CP(*user32, arg.user, rpl_len);
2354		PTRIN_CP(*user32, arg.user, buf);
2355		CP(*user32, arg.user, len);
2356		CP(*user32, arg.user, flags);
2357		break;
2358	default:
2359		return (ENOIOCTL);
2360	}
2361
2362	error = mps_ioctl(dev, cmd, &arg, flag, td);
2363	if (error == 0 && (cmd32 & IOC_OUT) != 0) {
2364		switch (cmd32) {
2365		case MPSIO_READ_CFG_HEADER32:
2366		case MPSIO_READ_CFG_PAGE32:
2367		case MPSIO_WRITE_CFG_PAGE32:
2368			CP(arg.page, *page32, header);
2369			CP(arg.page, *page32, page_address);
2370			PTROUT_CP(arg.page, *page32, buf);
2371			CP(arg.page, *page32, len);
2372			CP(arg.page, *page32, ioc_status);
2373			break;
2374
2375		case MPSIO_READ_EXT_CFG_HEADER32:
2376		case MPSIO_READ_EXT_CFG_PAGE32:
2377			CP(arg.ext, *ext32, header);
2378			CP(arg.ext, *ext32, page_address);
2379			PTROUT_CP(arg.ext, *ext32, buf);
2380			CP(arg.ext, *ext32, len);
2381			CP(arg.ext, *ext32, ioc_status);
2382			break;
2383
2384		case MPSIO_RAID_ACTION32:
2385			CP(arg.raid, *raid32, action);
2386			CP(arg.raid, *raid32, volume_bus);
2387			CP(arg.raid, *raid32, volume_id);
2388			CP(arg.raid, *raid32, phys_disk_num);
2389			CP(arg.raid, *raid32, action_data_word);
2390			PTROUT_CP(arg.raid, *raid32, buf);
2391			CP(arg.raid, *raid32, len);
2392			CP(arg.raid, *raid32, volume_status);
2393			bcopy(arg.raid.action_data, raid32->action_data,
2394			    sizeof arg.raid.action_data);
2395			CP(arg.raid, *raid32, ioc_status);
2396			CP(arg.raid, *raid32, write);
2397			break;
2398
2399		case MPSIO_MPS_COMMAND32:
2400			PTROUT_CP(arg.user, *user32, req);
2401			CP(arg.user, *user32, req_len);
2402			PTROUT_CP(arg.user, *user32, rpl);
2403			CP(arg.user, *user32, rpl_len);
2404			PTROUT_CP(arg.user, *user32, buf);
2405			CP(arg.user, *user32, len);
2406			CP(arg.user, *user32, flags);
2407			break;
2408		}
2409	}
2410
2411	return (error);
2412}
2413#endif /* COMPAT_FREEBSD32 */
2414
2415static int
2416mps_ioctl_devsw(struct cdev *dev, u_long com, caddr_t arg, int flag,
2417    struct thread *td)
2418{
2419#ifdef COMPAT_FREEBSD32
2420	if (SV_CURPROC_FLAG(SV_ILP32))
2421		return (mps_ioctl32(dev, com, arg, flag, td));
2422#endif
2423	return (mps_ioctl(dev, com, arg, flag, td));
2424}
2425