xref: /illumos-gate/usr/src/uts/common/io/nvme/nvme.c (revision 8b4261085e0d677be9a3253ff6b4c290e402576d)
1 /*
2  * This file and its contents are supplied under the terms of the
3  * Common Development and Distribution License ("CDDL"), version 1.0.
4  * You may only use this file in accordance with the terms of version
5  * 1.0 of the CDDL.
6  *
7  * A full copy of the text of the CDDL should have accompanied this
8  * source.  A copy of the CDDL is also available via the Internet at
9  * http://www.illumos.org/license/CDDL.
10  */
11 
12 /*
13  * Copyright (c) 2016 The MathWorks, Inc.  All rights reserved.
14  * Copyright 2019 Unix Software Ltd.
15  * Copyright 2020 Joyent, Inc.
16  * Copyright 2020 Racktop Systems.
17  * Copyright 2022 Oxide Computer Company.
18  * Copyright 2022 OmniOS Community Edition (OmniOSce) Association.
19  * Copyright 2022 Tintri by DDN, Inc. All rights reserved.
20  */
21 
22 /*
23  * blkdev driver for NVMe compliant storage devices
24  *
25  * This driver targets and is designed to support all NVMe 1.x devices.
26  * Features are added to the driver as we encounter devices that require them
27  * and our needs, so some commands or log pages may not take advantage of newer
28  * features that devices support at this time. When you encounter such a case,
29  * it is generally fine to add that support to the driver as long as you take
30  * care to ensure that the requisite device version is met before using it.
31  *
32  * The driver has only been tested on x86 systems and will not work on big-
33  * endian systems without changes to the code accessing registers and data
34  * structures used by the hardware.
35  *
36  *
37  * Interrupt Usage:
38  *
39  * The driver will use a single interrupt while configuring the device as the
40  * specification requires, but contrary to the specification it will try to use
41  * a single-message MSI(-X) or FIXED interrupt. Later in the attach process it
42  * will switch to multiple-message MSI(-X) if supported. The driver wants to
43  * have one interrupt vector per CPU, but it will work correctly if less are
44  * available. Interrupts can be shared by queues, the interrupt handler will
45  * iterate through the I/O queue array by steps of n_intr_cnt. Usually only
46  * the admin queue will share an interrupt with one I/O queue. The interrupt
47  * handler will retrieve completed commands from all queues sharing an interrupt
48  * vector and will post them to a taskq for completion processing.
49  *
50  *
51  * Command Processing:
52  *
53  * NVMe devices can have up to 65535 I/O queue pairs, with each queue holding up
54  * to 65536 I/O commands. The driver will configure one I/O queue pair per
55  * available interrupt vector, with the queue length usually much smaller than
56  * the maximum of 65536. If the hardware doesn't provide enough queues, fewer
57  * interrupt vectors will be used.
58  *
59  * Additionally the hardware provides a single special admin queue pair that can
60  * hold up to 4096 admin commands.
61  *
62  * From the hardware perspective both queues of a queue pair are independent,
63  * but they share some driver state: the command array (holding pointers to
64  * commands currently being processed by the hardware) and the active command
65  * counter. Access to a submission queue and the shared state is protected by
66  * nq_mutex; completion queue is protected by ncq_mutex.
67  *
68  * When a command is submitted to a queue pair the active command counter is
69  * incremented and a pointer to the command is stored in the command array. The
70  * array index is used as command identifier (CID) in the submission queue
71  * entry. Some commands may take a very long time to complete, and if the queue
72  * wraps around in that time a submission may find the next array slot to still
73  * be used by a long-running command. In this case the array is sequentially
74  * searched for the next free slot. The length of the command array is the same
75  * as the configured queue length. Queue overrun is prevented by the semaphore,
76  * so a command submission may block if the queue is full.
77  *
78  *
79  * Polled I/O Support:
80  *
81  * For kernel core dump support the driver can do polled I/O. As interrupts are
82  * turned off while dumping the driver will just submit a command in the regular
83  * way, and then repeatedly attempt a command retrieval until it gets the
84  * command back.
85  *
86  *
87  * Namespace Support:
88  *
89  * NVMe devices can have multiple namespaces, each being a independent data
90  * store. The driver supports multiple namespaces and creates a blkdev interface
91  * for each namespace found. Namespaces can have various attributes to support
92  * protection information. This driver does not support any of this and ignores
93  * namespaces that have these attributes.
94  *
95  * As of NVMe 1.1 namespaces can have an 64bit Extended Unique Identifier
96  * (EUI64), and NVMe 1.2 introduced an additional 128bit Namespace Globally
97  * Unique Identifier (NGUID). This driver uses either the NGUID or the EUI64
98  * if present to generate the devid, and passes the EUI64 to blkdev to use it
99  * in the device node names.
100  *
101  * We currently support only (2 << NVME_MINOR_INST_SHIFT) - 2 namespaces in a
102  * single controller. This is an artificial limit imposed by the driver to be
103  * able to address a reasonable number of controllers and namespaces using a
104  * 32bit minor node number.
105  *
106  *
107  * Minor nodes:
108  *
109  * For each NVMe device the driver exposes one minor node for the controller and
110  * one minor node for each namespace. The only operations supported by those
111  * minor nodes are open(9E), close(9E), and ioctl(9E). This serves as the
112  * interface for the nvmeadm(8) utility.
113  *
114  * Exclusive opens are required for certain ioctl(9E) operations that alter
115  * controller and/or namespace state. While different namespaces may be opened
116  * exclusively in parallel, an exclusive open of the controller minor node
117  * requires that no namespaces are currently open (exclusive or otherwise).
118  * Opening any namespace minor node (exclusive or otherwise) will fail while
119  * the controller minor node is opened exclusively by any other thread. Thus it
120  * is possible for one thread at a time to open the controller minor node
121  * exclusively, and keep it open while opening any namespace minor node of the
122  * same controller, exclusively or otherwise.
123  *
124  *
125  *
126  * Blkdev Interface:
127  *
128  * This driver uses blkdev to do all the heavy lifting involved with presenting
129  * a disk device to the system. As a result, the processing of I/O requests is
130  * relatively simple as blkdev takes care of partitioning, boundary checks, DMA
131  * setup, and splitting of transfers into manageable chunks.
132  *
133  * I/O requests coming in from blkdev are turned into NVM commands and posted to
134  * an I/O queue. The queue is selected by taking the CPU id modulo the number of
135  * queues. There is currently no timeout handling of I/O commands.
136  *
137  * Blkdev also supports querying device/media information and generating a
138  * devid. The driver reports the best block size as determined by the namespace
139  * format back to blkdev as physical block size to support partition and block
140  * alignment. The devid is either based on the namespace GUID or EUI64, if
141  * present, or composed using the device vendor ID, model number, serial number,
142  * and the namespace ID.
143  *
144  *
145  * Error Handling:
146  *
147  * Error handling is currently limited to detecting fatal hardware errors,
148  * either by asynchronous events, or synchronously through command status or
149  * admin command timeouts. In case of severe errors the device is fenced off,
150  * all further requests will return EIO. FMA is then called to fault the device.
151  *
152  * The hardware has a limit for outstanding asynchronous event requests. Before
153  * this limit is known the driver assumes it is at least 1 and posts a single
154  * asynchronous request. Later when the limit is known more asynchronous event
155  * requests are posted to allow quicker reception of error information. When an
156  * asynchronous event is posted by the hardware the driver will parse the error
157  * status fields and log information or fault the device, depending on the
158  * severity of the asynchronous event. The asynchronous event request is then
159  * reused and posted to the admin queue again.
160  *
161  * On command completion the command status is checked for errors. In case of
162  * errors indicating a driver bug the driver panics. Almost all other error
163  * status values just cause EIO to be returned.
164  *
165  * Command timeouts are currently detected for all admin commands except
166  * asynchronous event requests. If a command times out and the hardware appears
167  * to be healthy the driver attempts to abort the command. The original command
168  * timeout is also applied to the abort command. If the abort times out too the
169  * driver assumes the device to be dead, fences it off, and calls FMA to retire
170  * it. In all other cases the aborted command should return immediately with a
171  * status indicating it was aborted, and the driver will wait indefinitely for
172  * that to happen. No timeout handling of normal I/O commands is presently done.
173  *
174  * Any command that times out due to the controller dropping dead will be put on
175  * nvme_lost_cmds list if it references DMA memory. This will prevent the DMA
176  * memory being reused by the system and later be written to by a "dead" NVMe
177  * controller.
178  *
179  *
180  * Locking:
181  *
182  * Each queue pair has a nq_mutex and ncq_mutex. The nq_mutex must be held
183  * when accessing shared state and submission queue registers, ncq_mutex
184  * is held when accessing completion queue state and registers.
185  * Callers of nvme_unqueue_cmd() must make sure that nq_mutex is held, while
186  * nvme_submit_{admin,io}_cmd() and nvme_retrieve_cmd() take care of both
187  * mutexes themselves.
188  *
189  * Each command also has its own nc_mutex, which is associated with the
190  * condition variable nc_cv. It is only used on admin commands which are run
191  * synchronously. In that case it must be held across calls to
192  * nvme_submit_{admin,io}_cmd() and nvme_wait_cmd(), which is taken care of by
193  * nvme_admin_cmd(). It must also be held whenever the completion state of the
194  * command is changed or while a admin command timeout is handled.
195  *
196  * If both nc_mutex and nq_mutex must be held, nc_mutex must be acquired first.
197  * More than one nc_mutex may only be held when aborting commands. In this case,
198  * the nc_mutex of the command to be aborted must be held across the call to
199  * nvme_abort_cmd() to prevent the command from completing while the abort is in
200  * progress.
201  *
202  * If both nq_mutex and ncq_mutex need to be held, ncq_mutex must be
203  * acquired first. More than one nq_mutex is never held by a single thread.
204  * The ncq_mutex is only held by nvme_retrieve_cmd() and
205  * nvme_process_iocq(). nvme_process_iocq() is only called from the
206  * interrupt thread and nvme_retrieve_cmd() during polled I/O, so the
207  * mutex is non-contentious but is required for implementation completeness
208  * and safety.
209  *
210  * There is one mutex n_minor_mutex which protects all open flags nm_open and
211  * exclusive-open thread pointers nm_oexcl of each minor node associated with a
212  * controller and its namespaces.
213  *
214  * In addition, there is one mutex n_mgmt_mutex which must be held whenever the
215  * driver state for any namespace is changed, especially across calls to
216  * nvme_init_ns(), nvme_attach_ns() and nvme_detach_ns(). Except when detaching
217  * nvme, it should also be held across calls that modify the blkdev handle of a
218  * namespace. Command and queue mutexes may be acquired and released while
219  * n_mgmt_mutex is held, n_minor_mutex should not.
220  *
221  *
222  * Quiesce / Fast Reboot:
223  *
224  * The driver currently does not support fast reboot. A quiesce(9E) entry point
225  * is still provided which is used to send a shutdown notification to the
226  * device.
227  *
228  *
229  * NVMe Hotplug:
230  *
231  * The driver supports hot removal. The driver uses the NDI event framework
232  * to register a callback, nvme_remove_callback, to clean up when a disk is
233  * removed. In particular, the driver will unqueue outstanding I/O commands and
234  * set n_dead on the softstate to true so that other operations, such as ioctls
235  * and command submissions, fail as well.
236  *
237  * While the callback registration relies on the NDI event framework, the
238  * removal event itself is kicked off in the PCIe hotplug framework, when the
239  * PCIe bridge driver ("pcieb") gets a hotplug interrupt indicating that a
240  * device was removed from the slot.
241  *
242  * The NVMe driver instance itself will remain until the final close of the
243  * device.
244  *
245  *
246  * DDI UFM Support
247  *
248  * The driver supports the DDI UFM framework for reporting information about
249  * the device's firmware image and slot configuration. This data can be
250  * queried by userland software via ioctls to the ufm driver. For more
251  * information, see ddi_ufm(9E).
252  *
253  *
254  * Driver Configuration:
255  *
256  * The following driver properties can be changed to control some aspects of the
257  * drivers operation:
258  * - strict-version: can be set to 0 to allow devices conforming to newer
259  *   major versions to be used
260  * - ignore-unknown-vendor-status: can be set to 1 to not handle any vendor
261  *   specific command status as a fatal error leading device faulting
262  * - admin-queue-len: the maximum length of the admin queue (16-4096)
263  * - io-squeue-len: the maximum length of the I/O submission queues (16-65536)
264  * - io-cqueue-len: the maximum length of the I/O completion queues (16-65536)
265  * - async-event-limit: the maximum number of asynchronous event requests to be
266  *   posted by the driver
267  * - volatile-write-cache-enable: can be set to 0 to disable the volatile write
268  *   cache
269  * - min-phys-block-size: the minimum physical block size to report to blkdev,
270  *   which is among other things the basis for ZFS vdev ashift
271  * - max-submission-queues: the maximum number of I/O submission queues.
272  * - max-completion-queues: the maximum number of I/O completion queues,
273  *   can be less than max-submission-queues, in which case the completion
274  *   queues are shared.
275  *
276  * In addition to the above properties, some device-specific tunables can be
277  * configured using the nvme-config-list global property. The value of this
278  * property is a list of triplets. The formal syntax is:
279  *
280  *   nvme-config-list ::= <triplet> [, <triplet>]* ;
281  *   <triplet>        ::= "<model>" , "<rev-list>" , "<tuple-list>"
282  *   <rev-list>       ::= [ <fwrev> [, <fwrev>]*]
283  *   <tuple-list>     ::= <tunable> [, <tunable>]*
284  *   <tunable>        ::= <name> : <value>
285  *
286  * The <model> and <fwrev> are the strings in nvme_identify_ctrl_t`id_model and
287  * nvme_identify_ctrl_t`id_fwrev, respectively. The remainder of <tuple-list>
288  * contains one or more tunables to apply to all controllers that match the
289  * specified model number and optionally firmware revision. Each <tunable> is a
290  * <name> : <value> pair.  Supported tunables are:
291  *
292  * - ignore-unknown-vendor-status:  can be set to "on" to not handle any vendor
293  *   specific command status as a fatal error leading device faulting
294  *
295  * - min-phys-block-size: the minimum physical block size to report to blkdev,
296  *   which is among other things the basis for ZFS vdev ashift
297  *
298  * - volatile-write-cache: can be set to "on" or "off" to enable or disable the
299  *   volatile write cache, if present
300  *
301  *
302  * TODO:
303  * - figure out sane default for I/O queue depth reported to blkdev
304  * - FMA handling of media errors
305  * - support for devices supporting very large I/O requests using chained PRPs
306  * - support for configuring hardware parameters like interrupt coalescing
307  * - support for media formatting and hard partitioning into namespaces
308  * - support for big-endian systems
309  * - support for fast reboot
310  * - support for NVMe Subsystem Reset (1.1)
311  * - support for Scatter/Gather lists (1.1)
312  * - support for Reservations (1.1)
313  * - support for power management
314  */
315 
316 #include <sys/byteorder.h>
317 #ifdef _BIG_ENDIAN
318 #error nvme driver needs porting for big-endian platforms
319 #endif
320 
321 #include <sys/modctl.h>
322 #include <sys/conf.h>
323 #include <sys/devops.h>
324 #include <sys/ddi.h>
325 #include <sys/ddi_ufm.h>
326 #include <sys/sunddi.h>
327 #include <sys/sunndi.h>
328 #include <sys/bitmap.h>
329 #include <sys/sysmacros.h>
330 #include <sys/param.h>
331 #include <sys/varargs.h>
332 #include <sys/cpuvar.h>
333 #include <sys/disp.h>
334 #include <sys/blkdev.h>
335 #include <sys/atomic.h>
336 #include <sys/archsystm.h>
337 #include <sys/sata/sata_hba.h>
338 #include <sys/stat.h>
339 #include <sys/policy.h>
340 #include <sys/list.h>
341 #include <sys/dkio.h>
342 
343 #include <sys/nvme.h>
344 
345 #ifdef __x86
346 #include <sys/x86_archext.h>
347 #endif
348 
349 #include "nvme_reg.h"
350 #include "nvme_var.h"
351 
352 /*
353  * Assertions to make sure that we've properly captured various aspects of the
354  * packed structures and haven't broken them during updates.
355  */
356 CTASSERT(sizeof (nvme_identify_ctrl_t) == NVME_IDENTIFY_BUFSIZE);
357 CTASSERT(offsetof(nvme_identify_ctrl_t, id_oacs) == 256);
358 CTASSERT(offsetof(nvme_identify_ctrl_t, id_sqes) == 512);
359 CTASSERT(offsetof(nvme_identify_ctrl_t, id_oncs) == 520);
360 CTASSERT(offsetof(nvme_identify_ctrl_t, id_subnqn) == 768);
361 CTASSERT(offsetof(nvme_identify_ctrl_t, id_nvmof) == 1792);
362 CTASSERT(offsetof(nvme_identify_ctrl_t, id_psd) == 2048);
363 CTASSERT(offsetof(nvme_identify_ctrl_t, id_vs) == 3072);
364 
365 CTASSERT(sizeof (nvme_identify_nsid_t) == NVME_IDENTIFY_BUFSIZE);
366 CTASSERT(offsetof(nvme_identify_nsid_t, id_fpi) == 32);
367 CTASSERT(offsetof(nvme_identify_nsid_t, id_anagrpid) == 92);
368 CTASSERT(offsetof(nvme_identify_nsid_t, id_nguid) == 104);
369 CTASSERT(offsetof(nvme_identify_nsid_t, id_lbaf) == 128);
370 CTASSERT(offsetof(nvme_identify_nsid_t, id_vs) == 384);
371 
372 CTASSERT(sizeof (nvme_identify_nsid_list_t) == NVME_IDENTIFY_BUFSIZE);
373 CTASSERT(sizeof (nvme_identify_ctrl_list_t) == NVME_IDENTIFY_BUFSIZE);
374 
375 CTASSERT(sizeof (nvme_identify_primary_caps_t) == NVME_IDENTIFY_BUFSIZE);
376 CTASSERT(offsetof(nvme_identify_primary_caps_t, nipc_vqfrt) == 32);
377 CTASSERT(offsetof(nvme_identify_primary_caps_t, nipc_vifrt) == 64);
378 
379 CTASSERT(sizeof (nvme_nschange_list_t) == 4096);
380 
381 
382 /* NVMe spec version supported */
383 static const int nvme_version_major = 1;
384 
385 /* tunable for admin command timeout in seconds, default is 1s */
386 int nvme_admin_cmd_timeout = 1;
387 
388 /* tunable for FORMAT NVM command timeout in seconds, default is 600s */
389 int nvme_format_cmd_timeout = 600;
390 
391 /* tunable for firmware commit with NVME_FWC_SAVE, default is 15s */
392 int nvme_commit_save_cmd_timeout = 15;
393 
394 /*
395  * tunable for the size of arbitrary vendor specific admin commands,
396  * default is 16MiB.
397  */
398 uint32_t nvme_vendor_specific_admin_cmd_size = 1 << 24;
399 
400 /*
401  * tunable for the max timeout of arbitary vendor specific admin commands,
402  * default is 60s.
403  */
404 uint_t nvme_vendor_specific_admin_cmd_max_timeout = 60;
405 
406 static int nvme_attach(dev_info_t *, ddi_attach_cmd_t);
407 static int nvme_detach(dev_info_t *, ddi_detach_cmd_t);
408 static int nvme_quiesce(dev_info_t *);
409 static int nvme_fm_errcb(dev_info_t *, ddi_fm_error_t *, const void *);
410 static int nvme_setup_interrupts(nvme_t *, int, int);
411 static void nvme_release_interrupts(nvme_t *);
412 static uint_t nvme_intr(caddr_t, caddr_t);
413 
414 static void nvme_shutdown(nvme_t *, int, boolean_t);
415 static boolean_t nvme_reset(nvme_t *, boolean_t);
416 static int nvme_init(nvme_t *);
417 static nvme_cmd_t *nvme_alloc_cmd(nvme_t *, int);
418 static void nvme_free_cmd(nvme_cmd_t *);
419 static nvme_cmd_t *nvme_create_nvm_cmd(nvme_namespace_t *, uint8_t,
420     bd_xfer_t *);
421 static void nvme_admin_cmd(nvme_cmd_t *, int);
422 static void nvme_submit_admin_cmd(nvme_qpair_t *, nvme_cmd_t *);
423 static int nvme_submit_io_cmd(nvme_qpair_t *, nvme_cmd_t *);
424 static void nvme_submit_cmd_common(nvme_qpair_t *, nvme_cmd_t *);
425 static nvme_cmd_t *nvme_unqueue_cmd(nvme_t *, nvme_qpair_t *, int);
426 static nvme_cmd_t *nvme_retrieve_cmd(nvme_t *, nvme_qpair_t *);
427 static void nvme_wait_cmd(nvme_cmd_t *, uint_t);
428 static void nvme_wakeup_cmd(void *);
429 static void nvme_async_event_task(void *);
430 
431 static int nvme_check_unknown_cmd_status(nvme_cmd_t *);
432 static int nvme_check_vendor_cmd_status(nvme_cmd_t *);
433 static int nvme_check_integrity_cmd_status(nvme_cmd_t *);
434 static int nvme_check_specific_cmd_status(nvme_cmd_t *);
435 static int nvme_check_generic_cmd_status(nvme_cmd_t *);
436 static inline int nvme_check_cmd_status(nvme_cmd_t *);
437 
438 static int nvme_abort_cmd(nvme_cmd_t *, uint_t);
439 static void nvme_async_event(nvme_t *);
440 static int nvme_format_nvm(nvme_t *, boolean_t, uint32_t, uint8_t, boolean_t,
441     uint8_t, boolean_t, uint8_t);
442 static int nvme_get_logpage(nvme_t *, boolean_t, void **, size_t *, uint8_t,
443     ...);
444 static int nvme_identify(nvme_t *, boolean_t, uint32_t, uint8_t, void **);
445 static int nvme_set_features(nvme_t *, boolean_t, uint32_t, uint8_t, uint32_t,
446     uint32_t *);
447 static int nvme_get_features(nvme_t *, boolean_t, uint32_t, uint8_t, uint32_t *,
448     void **, size_t *);
449 static int nvme_write_cache_set(nvme_t *, boolean_t);
450 static int nvme_set_nqueues(nvme_t *);
451 
452 static void nvme_free_dma(nvme_dma_t *);
453 static int nvme_zalloc_dma(nvme_t *, size_t, uint_t, ddi_dma_attr_t *,
454     nvme_dma_t **);
455 static int nvme_zalloc_queue_dma(nvme_t *, uint32_t, uint16_t, uint_t,
456     nvme_dma_t **);
457 static void nvme_free_qpair(nvme_qpair_t *);
458 static int nvme_alloc_qpair(nvme_t *, uint32_t, nvme_qpair_t **, uint_t);
459 static int nvme_create_io_qpair(nvme_t *, nvme_qpair_t *, uint16_t);
460 
461 static inline void nvme_put64(nvme_t *, uintptr_t, uint64_t);
462 static inline void nvme_put32(nvme_t *, uintptr_t, uint32_t);
463 static inline uint64_t nvme_get64(nvme_t *, uintptr_t);
464 static inline uint32_t nvme_get32(nvme_t *, uintptr_t);
465 
466 static boolean_t nvme_check_regs_hdl(nvme_t *);
467 static boolean_t nvme_check_dma_hdl(nvme_dma_t *);
468 
469 static int nvme_fill_prp(nvme_cmd_t *, ddi_dma_handle_t);
470 
471 static void nvme_bd_xfer_done(void *);
472 static void nvme_bd_driveinfo(void *, bd_drive_t *);
473 static int nvme_bd_mediainfo(void *, bd_media_t *);
474 static int nvme_bd_cmd(nvme_namespace_t *, bd_xfer_t *, uint8_t);
475 static int nvme_bd_read(void *, bd_xfer_t *);
476 static int nvme_bd_write(void *, bd_xfer_t *);
477 static int nvme_bd_sync(void *, bd_xfer_t *);
478 static int nvme_bd_devid(void *, dev_info_t *, ddi_devid_t *);
479 static int nvme_bd_free_space(void *, bd_xfer_t *);
480 
481 static int nvme_prp_dma_constructor(void *, void *, int);
482 static void nvme_prp_dma_destructor(void *, void *);
483 
484 static void nvme_prepare_devid(nvme_t *, uint32_t);
485 
486 /* DDI UFM callbacks */
487 static int nvme_ufm_fill_image(ddi_ufm_handle_t *, void *, uint_t,
488     ddi_ufm_image_t *);
489 static int nvme_ufm_fill_slot(ddi_ufm_handle_t *, void *, uint_t, uint_t,
490     ddi_ufm_slot_t *);
491 static int nvme_ufm_getcaps(ddi_ufm_handle_t *, void *, ddi_ufm_cap_t *);
492 
493 static int nvme_open(dev_t *, int, int, cred_t *);
494 static int nvme_close(dev_t, int, int, cred_t *);
495 static int nvme_ioctl(dev_t, int, intptr_t, int, cred_t *, int *);
496 
497 static int nvme_init_ns(nvme_t *, int);
498 static int nvme_attach_ns(nvme_t *, int);
499 static int nvme_detach_ns(nvme_t *, int);
500 
501 #define	NVME_NSID2NS(nvme, nsid)	(&((nvme)->n_ns[(nsid) - 1]))
502 
503 static ddi_ufm_ops_t nvme_ufm_ops = {
504 	NULL,
505 	nvme_ufm_fill_image,
506 	nvme_ufm_fill_slot,
507 	nvme_ufm_getcaps
508 };
509 
510 #define	NVME_MINOR_INST_SHIFT	9
511 #define	NVME_MINOR(inst, nsid)	(((inst) << NVME_MINOR_INST_SHIFT) | (nsid))
512 #define	NVME_MINOR_INST(minor)	((minor) >> NVME_MINOR_INST_SHIFT)
513 #define	NVME_MINOR_NSID(minor)	((minor) & ((1 << NVME_MINOR_INST_SHIFT) - 1))
514 #define	NVME_MINOR_MAX		(NVME_MINOR(1, 0) - 2)
515 #define	NVME_IS_VENDOR_SPECIFIC_CMD(x)	(((x) >= 0xC0) && ((x) <= 0xFF))
516 #define	NVME_VENDOR_SPECIFIC_LOGPAGE_MIN	0xC0
517 #define	NVME_VENDOR_SPECIFIC_LOGPAGE_MAX	0xFF
518 #define	NVME_IS_VENDOR_SPECIFIC_LOGPAGE(x)	\
519 		(((x) >= NVME_VENDOR_SPECIFIC_LOGPAGE_MIN) && \
520 		((x) <= NVME_VENDOR_SPECIFIC_LOGPAGE_MAX))
521 
522 /*
523  * NVMe versions 1.3 and later actually support log pages up to UINT32_MAX
524  * DWords in size. However, revision 1.3 also modified the layout of the Get Log
525  * Page command significantly relative to version 1.2, including changing
526  * reserved bits, adding new bitfields, and requiring the use of command DWord
527  * 11 to fully specify the size of the log page (the lower and upper 16 bits of
528  * the number of DWords in the page are split between DWord 10 and DWord 11,
529  * respectively).
530  *
531  * All of these impose significantly different layout requirements on the
532  * `nvme_getlogpage_t` type. This could be solved with two different types, or a
533  * complicated/nested union with the two versions as the overlying members. Both
534  * of these are reasonable, if a bit convoluted. However, these is no current
535  * need for such large pages, or a way to test them, as most log pages actually
536  * fit within the current size limit. So for simplicity, we retain the size cap
537  * from version 1.2.
538  *
539  * Note that the number of DWords is zero-based, so we add 1. It is subtracted
540  * to form a zero-based value in `nvme_get_logpage`.
541  */
542 #define	NVME_VENDOR_SPECIFIC_LOGPAGE_MAX_SIZE	\
543 		(((1 << 12) + 1) * sizeof (uint32_t))
544 
545 static void *nvme_state;
546 static kmem_cache_t *nvme_cmd_cache;
547 
548 /*
549  * DMA attributes for queue DMA memory
550  *
551  * Queue DMA memory must be page aligned. The maximum length of a queue is
552  * 65536 entries, and an entry can be 64 bytes long.
553  */
554 static ddi_dma_attr_t nvme_queue_dma_attr = {
555 	.dma_attr_version	= DMA_ATTR_V0,
556 	.dma_attr_addr_lo	= 0,
557 	.dma_attr_addr_hi	= 0xffffffffffffffffULL,
558 	.dma_attr_count_max	= (UINT16_MAX + 1) * sizeof (nvme_sqe_t) - 1,
559 	.dma_attr_align		= 0x1000,
560 	.dma_attr_burstsizes	= 0x7ff,
561 	.dma_attr_minxfer	= 0x1000,
562 	.dma_attr_maxxfer	= (UINT16_MAX + 1) * sizeof (nvme_sqe_t),
563 	.dma_attr_seg		= 0xffffffffffffffffULL,
564 	.dma_attr_sgllen	= 1,
565 	.dma_attr_granular	= 1,
566 	.dma_attr_flags		= 0,
567 };
568 
569 /*
570  * DMA attributes for transfers using Physical Region Page (PRP) entries
571  *
572  * A PRP entry describes one page of DMA memory using the page size specified
573  * in the controller configuration's memory page size register (CC.MPS). It uses
574  * a 64bit base address aligned to this page size. There is no limitation on
575  * chaining PRPs together for arbitrarily large DMA transfers.
576  */
577 static ddi_dma_attr_t nvme_prp_dma_attr = {
578 	.dma_attr_version	= DMA_ATTR_V0,
579 	.dma_attr_addr_lo	= 0,
580 	.dma_attr_addr_hi	= 0xffffffffffffffffULL,
581 	.dma_attr_count_max	= 0xfff,
582 	.dma_attr_align		= 0x1000,
583 	.dma_attr_burstsizes	= 0x7ff,
584 	.dma_attr_minxfer	= 0x1000,
585 	.dma_attr_maxxfer	= 0x1000,
586 	.dma_attr_seg		= 0xfff,
587 	.dma_attr_sgllen	= -1,
588 	.dma_attr_granular	= 1,
589 	.dma_attr_flags		= 0,
590 };
591 
592 /*
593  * DMA attributes for transfers using scatter/gather lists
594  *
595  * A SGL entry describes a chunk of DMA memory using a 64bit base address and a
596  * 32bit length field. SGL Segment and SGL Last Segment entries require the
597  * length to be a multiple of 16 bytes.
598  */
599 static ddi_dma_attr_t nvme_sgl_dma_attr = {
600 	.dma_attr_version	= DMA_ATTR_V0,
601 	.dma_attr_addr_lo	= 0,
602 	.dma_attr_addr_hi	= 0xffffffffffffffffULL,
603 	.dma_attr_count_max	= 0xffffffffUL,
604 	.dma_attr_align		= 1,
605 	.dma_attr_burstsizes	= 0x7ff,
606 	.dma_attr_minxfer	= 0x10,
607 	.dma_attr_maxxfer	= 0xfffffffffULL,
608 	.dma_attr_seg		= 0xffffffffffffffffULL,
609 	.dma_attr_sgllen	= -1,
610 	.dma_attr_granular	= 0x10,
611 	.dma_attr_flags		= 0
612 };
613 
614 static ddi_device_acc_attr_t nvme_reg_acc_attr = {
615 	.devacc_attr_version	= DDI_DEVICE_ATTR_V0,
616 	.devacc_attr_endian_flags = DDI_STRUCTURE_LE_ACC,
617 	.devacc_attr_dataorder	= DDI_STRICTORDER_ACC
618 };
619 
620 static struct cb_ops nvme_cb_ops = {
621 	.cb_open	= nvme_open,
622 	.cb_close	= nvme_close,
623 	.cb_strategy	= nodev,
624 	.cb_print	= nodev,
625 	.cb_dump	= nodev,
626 	.cb_read	= nodev,
627 	.cb_write	= nodev,
628 	.cb_ioctl	= nvme_ioctl,
629 	.cb_devmap	= nodev,
630 	.cb_mmap	= nodev,
631 	.cb_segmap	= nodev,
632 	.cb_chpoll	= nochpoll,
633 	.cb_prop_op	= ddi_prop_op,
634 	.cb_str		= 0,
635 	.cb_flag	= D_NEW | D_MP,
636 	.cb_rev		= CB_REV,
637 	.cb_aread	= nodev,
638 	.cb_awrite	= nodev
639 };
640 
641 static struct dev_ops nvme_dev_ops = {
642 	.devo_rev	= DEVO_REV,
643 	.devo_refcnt	= 0,
644 	.devo_getinfo	= ddi_no_info,
645 	.devo_identify	= nulldev,
646 	.devo_probe	= nulldev,
647 	.devo_attach	= nvme_attach,
648 	.devo_detach	= nvme_detach,
649 	.devo_reset	= nodev,
650 	.devo_cb_ops	= &nvme_cb_ops,
651 	.devo_bus_ops	= NULL,
652 	.devo_power	= NULL,
653 	.devo_quiesce	= nvme_quiesce,
654 };
655 
656 static struct modldrv nvme_modldrv = {
657 	.drv_modops	= &mod_driverops,
658 	.drv_linkinfo	= "NVMe v1.1b",
659 	.drv_dev_ops	= &nvme_dev_ops
660 };
661 
662 static struct modlinkage nvme_modlinkage = {
663 	.ml_rev		= MODREV_1,
664 	.ml_linkage	= { &nvme_modldrv, NULL }
665 };
666 
667 static bd_ops_t nvme_bd_ops = {
668 	.o_version	= BD_OPS_CURRENT_VERSION,
669 	.o_drive_info	= nvme_bd_driveinfo,
670 	.o_media_info	= nvme_bd_mediainfo,
671 	.o_devid_init	= nvme_bd_devid,
672 	.o_sync_cache	= nvme_bd_sync,
673 	.o_read		= nvme_bd_read,
674 	.o_write	= nvme_bd_write,
675 	.o_free_space	= nvme_bd_free_space,
676 };
677 
678 /*
679  * This list will hold commands that have timed out and couldn't be aborted.
680  * As we don't know what the hardware may still do with the DMA memory we can't
681  * free them, so we'll keep them forever on this list where we can easily look
682  * at them with mdb.
683  */
684 static struct list nvme_lost_cmds;
685 static kmutex_t nvme_lc_mutex;
686 
687 int
688 _init(void)
689 {
690 	int error;
691 
692 	error = ddi_soft_state_init(&nvme_state, sizeof (nvme_t), 1);
693 	if (error != DDI_SUCCESS)
694 		return (error);
695 
696 	nvme_cmd_cache = kmem_cache_create("nvme_cmd_cache",
697 	    sizeof (nvme_cmd_t), 64, NULL, NULL, NULL, NULL, NULL, 0);
698 
699 	mutex_init(&nvme_lc_mutex, NULL, MUTEX_DRIVER, NULL);
700 	list_create(&nvme_lost_cmds, sizeof (nvme_cmd_t),
701 	    offsetof(nvme_cmd_t, nc_list));
702 
703 	bd_mod_init(&nvme_dev_ops);
704 
705 	error = mod_install(&nvme_modlinkage);
706 	if (error != DDI_SUCCESS) {
707 		ddi_soft_state_fini(&nvme_state);
708 		mutex_destroy(&nvme_lc_mutex);
709 		list_destroy(&nvme_lost_cmds);
710 		bd_mod_fini(&nvme_dev_ops);
711 	}
712 
713 	return (error);
714 }
715 
716 int
717 _fini(void)
718 {
719 	int error;
720 
721 	if (!list_is_empty(&nvme_lost_cmds))
722 		return (DDI_FAILURE);
723 
724 	error = mod_remove(&nvme_modlinkage);
725 	if (error == DDI_SUCCESS) {
726 		ddi_soft_state_fini(&nvme_state);
727 		kmem_cache_destroy(nvme_cmd_cache);
728 		mutex_destroy(&nvme_lc_mutex);
729 		list_destroy(&nvme_lost_cmds);
730 		bd_mod_fini(&nvme_dev_ops);
731 	}
732 
733 	return (error);
734 }
735 
736 int
737 _info(struct modinfo *modinfop)
738 {
739 	return (mod_info(&nvme_modlinkage, modinfop));
740 }
741 
742 static inline void
743 nvme_put64(nvme_t *nvme, uintptr_t reg, uint64_t val)
744 {
745 	ASSERT(((uintptr_t)(nvme->n_regs + reg) & 0x7) == 0);
746 
747 	/*LINTED: E_BAD_PTR_CAST_ALIGN*/
748 	ddi_put64(nvme->n_regh, (uint64_t *)(nvme->n_regs + reg), val);
749 }
750 
751 static inline void
752 nvme_put32(nvme_t *nvme, uintptr_t reg, uint32_t val)
753 {
754 	ASSERT(((uintptr_t)(nvme->n_regs + reg) & 0x3) == 0);
755 
756 	/*LINTED: E_BAD_PTR_CAST_ALIGN*/
757 	ddi_put32(nvme->n_regh, (uint32_t *)(nvme->n_regs + reg), val);
758 }
759 
760 static inline uint64_t
761 nvme_get64(nvme_t *nvme, uintptr_t reg)
762 {
763 	uint64_t val;
764 
765 	ASSERT(((uintptr_t)(nvme->n_regs + reg) & 0x7) == 0);
766 
767 	/*LINTED: E_BAD_PTR_CAST_ALIGN*/
768 	val = ddi_get64(nvme->n_regh, (uint64_t *)(nvme->n_regs + reg));
769 
770 	return (val);
771 }
772 
773 static inline uint32_t
774 nvme_get32(nvme_t *nvme, uintptr_t reg)
775 {
776 	uint32_t val;
777 
778 	ASSERT(((uintptr_t)(nvme->n_regs + reg) & 0x3) == 0);
779 
780 	/*LINTED: E_BAD_PTR_CAST_ALIGN*/
781 	val = ddi_get32(nvme->n_regh, (uint32_t *)(nvme->n_regs + reg));
782 
783 	return (val);
784 }
785 
786 static boolean_t
787 nvme_check_regs_hdl(nvme_t *nvme)
788 {
789 	ddi_fm_error_t error;
790 
791 	ddi_fm_acc_err_get(nvme->n_regh, &error, DDI_FME_VERSION);
792 
793 	if (error.fme_status != DDI_FM_OK)
794 		return (B_TRUE);
795 
796 	return (B_FALSE);
797 }
798 
799 static boolean_t
800 nvme_check_dma_hdl(nvme_dma_t *dma)
801 {
802 	ddi_fm_error_t error;
803 
804 	if (dma == NULL)
805 		return (B_FALSE);
806 
807 	ddi_fm_dma_err_get(dma->nd_dmah, &error, DDI_FME_VERSION);
808 
809 	if (error.fme_status != DDI_FM_OK)
810 		return (B_TRUE);
811 
812 	return (B_FALSE);
813 }
814 
815 static void
816 nvme_free_dma_common(nvme_dma_t *dma)
817 {
818 	if (dma->nd_dmah != NULL)
819 		(void) ddi_dma_unbind_handle(dma->nd_dmah);
820 	if (dma->nd_acch != NULL)
821 		ddi_dma_mem_free(&dma->nd_acch);
822 	if (dma->nd_dmah != NULL)
823 		ddi_dma_free_handle(&dma->nd_dmah);
824 }
825 
826 static void
827 nvme_free_dma(nvme_dma_t *dma)
828 {
829 	nvme_free_dma_common(dma);
830 	kmem_free(dma, sizeof (*dma));
831 }
832 
833 /* ARGSUSED */
834 static void
835 nvme_prp_dma_destructor(void *buf, void *private)
836 {
837 	nvme_dma_t *dma = (nvme_dma_t *)buf;
838 
839 	nvme_free_dma_common(dma);
840 }
841 
842 static int
843 nvme_alloc_dma_common(nvme_t *nvme, nvme_dma_t *dma,
844     size_t len, uint_t flags, ddi_dma_attr_t *dma_attr)
845 {
846 	if (ddi_dma_alloc_handle(nvme->n_dip, dma_attr, DDI_DMA_SLEEP, NULL,
847 	    &dma->nd_dmah) != DDI_SUCCESS) {
848 		/*
849 		 * Due to DDI_DMA_SLEEP this can't be DDI_DMA_NORESOURCES, and
850 		 * the only other possible error is DDI_DMA_BADATTR which
851 		 * indicates a driver bug which should cause a panic.
852 		 */
853 		dev_err(nvme->n_dip, CE_PANIC,
854 		    "!failed to get DMA handle, check DMA attributes");
855 		return (DDI_FAILURE);
856 	}
857 
858 	/*
859 	 * ddi_dma_mem_alloc() can only fail when DDI_DMA_NOSLEEP is specified
860 	 * or the flags are conflicting, which isn't the case here.
861 	 */
862 	(void) ddi_dma_mem_alloc(dma->nd_dmah, len, &nvme->n_reg_acc_attr,
863 	    DDI_DMA_CONSISTENT, DDI_DMA_SLEEP, NULL, &dma->nd_memp,
864 	    &dma->nd_len, &dma->nd_acch);
865 
866 	if (ddi_dma_addr_bind_handle(dma->nd_dmah, NULL, dma->nd_memp,
867 	    dma->nd_len, flags | DDI_DMA_CONSISTENT, DDI_DMA_SLEEP, NULL,
868 	    &dma->nd_cookie, &dma->nd_ncookie) != DDI_DMA_MAPPED) {
869 		dev_err(nvme->n_dip, CE_WARN,
870 		    "!failed to bind DMA memory");
871 		atomic_inc_32(&nvme->n_dma_bind_err);
872 		nvme_free_dma_common(dma);
873 		return (DDI_FAILURE);
874 	}
875 
876 	return (DDI_SUCCESS);
877 }
878 
879 static int
880 nvme_zalloc_dma(nvme_t *nvme, size_t len, uint_t flags,
881     ddi_dma_attr_t *dma_attr, nvme_dma_t **ret)
882 {
883 	nvme_dma_t *dma = kmem_zalloc(sizeof (nvme_dma_t), KM_SLEEP);
884 
885 	if (nvme_alloc_dma_common(nvme, dma, len, flags, dma_attr) !=
886 	    DDI_SUCCESS) {
887 		*ret = NULL;
888 		kmem_free(dma, sizeof (nvme_dma_t));
889 		return (DDI_FAILURE);
890 	}
891 
892 	bzero(dma->nd_memp, dma->nd_len);
893 
894 	*ret = dma;
895 	return (DDI_SUCCESS);
896 }
897 
898 /* ARGSUSED */
899 static int
900 nvme_prp_dma_constructor(void *buf, void *private, int flags)
901 {
902 	nvme_dma_t *dma = (nvme_dma_t *)buf;
903 	nvme_t *nvme = (nvme_t *)private;
904 
905 	dma->nd_dmah = NULL;
906 	dma->nd_acch = NULL;
907 
908 	if (nvme_alloc_dma_common(nvme, dma, nvme->n_pagesize,
909 	    DDI_DMA_READ, &nvme->n_prp_dma_attr) != DDI_SUCCESS) {
910 		return (-1);
911 	}
912 
913 	ASSERT(dma->nd_ncookie == 1);
914 
915 	dma->nd_cached = B_TRUE;
916 
917 	return (0);
918 }
919 
920 static int
921 nvme_zalloc_queue_dma(nvme_t *nvme, uint32_t nentry, uint16_t qe_len,
922     uint_t flags, nvme_dma_t **dma)
923 {
924 	uint32_t len = nentry * qe_len;
925 	ddi_dma_attr_t q_dma_attr = nvme->n_queue_dma_attr;
926 
927 	len = roundup(len, nvme->n_pagesize);
928 
929 	if (nvme_zalloc_dma(nvme, len, flags, &q_dma_attr, dma)
930 	    != DDI_SUCCESS) {
931 		dev_err(nvme->n_dip, CE_WARN,
932 		    "!failed to get DMA memory for queue");
933 		goto fail;
934 	}
935 
936 	if ((*dma)->nd_ncookie != 1) {
937 		dev_err(nvme->n_dip, CE_WARN,
938 		    "!got too many cookies for queue DMA");
939 		goto fail;
940 	}
941 
942 	return (DDI_SUCCESS);
943 
944 fail:
945 	if (*dma) {
946 		nvme_free_dma(*dma);
947 		*dma = NULL;
948 	}
949 
950 	return (DDI_FAILURE);
951 }
952 
953 static void
954 nvme_free_cq(nvme_cq_t *cq)
955 {
956 	mutex_destroy(&cq->ncq_mutex);
957 
958 	if (cq->ncq_cmd_taskq != NULL)
959 		taskq_destroy(cq->ncq_cmd_taskq);
960 
961 	if (cq->ncq_dma != NULL)
962 		nvme_free_dma(cq->ncq_dma);
963 
964 	kmem_free(cq, sizeof (*cq));
965 }
966 
967 static void
968 nvme_free_qpair(nvme_qpair_t *qp)
969 {
970 	int i;
971 
972 	mutex_destroy(&qp->nq_mutex);
973 	sema_destroy(&qp->nq_sema);
974 
975 	if (qp->nq_sqdma != NULL)
976 		nvme_free_dma(qp->nq_sqdma);
977 
978 	if (qp->nq_active_cmds > 0)
979 		for (i = 0; i != qp->nq_nentry; i++)
980 			if (qp->nq_cmd[i] != NULL)
981 				nvme_free_cmd(qp->nq_cmd[i]);
982 
983 	if (qp->nq_cmd != NULL)
984 		kmem_free(qp->nq_cmd, sizeof (nvme_cmd_t *) * qp->nq_nentry);
985 
986 	kmem_free(qp, sizeof (nvme_qpair_t));
987 }
988 
989 /*
990  * Destroy the pre-allocated cq array, but only free individual completion
991  * queues from the given starting index.
992  */
993 static void
994 nvme_destroy_cq_array(nvme_t *nvme, uint_t start)
995 {
996 	uint_t i;
997 
998 	for (i = start; i < nvme->n_cq_count; i++)
999 		if (nvme->n_cq[i] != NULL)
1000 			nvme_free_cq(nvme->n_cq[i]);
1001 
1002 	kmem_free(nvme->n_cq, sizeof (*nvme->n_cq) * nvme->n_cq_count);
1003 }
1004 
1005 static int
1006 nvme_alloc_cq(nvme_t *nvme, uint32_t nentry, nvme_cq_t **cqp, uint16_t idx,
1007     uint_t nthr)
1008 {
1009 	nvme_cq_t *cq = kmem_zalloc(sizeof (*cq), KM_SLEEP);
1010 	char name[64];		/* large enough for the taskq name */
1011 
1012 	mutex_init(&cq->ncq_mutex, NULL, MUTEX_DRIVER,
1013 	    DDI_INTR_PRI(nvme->n_intr_pri));
1014 
1015 	if (nvme_zalloc_queue_dma(nvme, nentry, sizeof (nvme_cqe_t),
1016 	    DDI_DMA_READ, &cq->ncq_dma) != DDI_SUCCESS)
1017 		goto fail;
1018 
1019 	cq->ncq_cq = (nvme_cqe_t *)cq->ncq_dma->nd_memp;
1020 	cq->ncq_nentry = nentry;
1021 	cq->ncq_id = idx;
1022 	cq->ncq_hdbl = NVME_REG_CQHDBL(nvme, idx);
1023 
1024 	/*
1025 	 * Each completion queue has its own command taskq.
1026 	 */
1027 	(void) snprintf(name, sizeof (name), "%s%d_cmd_taskq%u",
1028 	    ddi_driver_name(nvme->n_dip), ddi_get_instance(nvme->n_dip), idx);
1029 
1030 	cq->ncq_cmd_taskq = taskq_create(name, nthr, minclsyspri, 64, INT_MAX,
1031 	    TASKQ_PREPOPULATE);
1032 
1033 	if (cq->ncq_cmd_taskq == NULL) {
1034 		dev_err(nvme->n_dip, CE_WARN, "!failed to create cmd "
1035 		    "taskq for cq %u", idx);
1036 		goto fail;
1037 	}
1038 
1039 	*cqp = cq;
1040 	return (DDI_SUCCESS);
1041 
1042 fail:
1043 	nvme_free_cq(cq);
1044 	*cqp = NULL;
1045 
1046 	return (DDI_FAILURE);
1047 }
1048 
1049 /*
1050  * Create the n_cq array big enough to hold "ncq" completion queues.
1051  * If the array already exists it will be re-sized (but only larger).
1052  * The admin queue is included in this array, which boosts the
1053  * max number of entries to UINT16_MAX + 1.
1054  */
1055 static int
1056 nvme_create_cq_array(nvme_t *nvme, uint_t ncq, uint32_t nentry, uint_t nthr)
1057 {
1058 	nvme_cq_t **cq;
1059 	uint_t i, cq_count;
1060 
1061 	ASSERT3U(ncq, >, nvme->n_cq_count);
1062 
1063 	cq = nvme->n_cq;
1064 	cq_count = nvme->n_cq_count;
1065 
1066 	nvme->n_cq = kmem_zalloc(sizeof (*nvme->n_cq) * ncq, KM_SLEEP);
1067 	nvme->n_cq_count = ncq;
1068 
1069 	for (i = 0; i < cq_count; i++)
1070 		nvme->n_cq[i] = cq[i];
1071 
1072 	for (; i < nvme->n_cq_count; i++)
1073 		if (nvme_alloc_cq(nvme, nentry, &nvme->n_cq[i], i, nthr) !=
1074 		    DDI_SUCCESS)
1075 			goto fail;
1076 
1077 	if (cq != NULL)
1078 		kmem_free(cq, sizeof (*cq) * cq_count);
1079 
1080 	return (DDI_SUCCESS);
1081 
1082 fail:
1083 	nvme_destroy_cq_array(nvme, cq_count);
1084 	/*
1085 	 * Restore the original array
1086 	 */
1087 	nvme->n_cq_count = cq_count;
1088 	nvme->n_cq = cq;
1089 
1090 	return (DDI_FAILURE);
1091 }
1092 
1093 static int
1094 nvme_alloc_qpair(nvme_t *nvme, uint32_t nentry, nvme_qpair_t **nqp,
1095     uint_t idx)
1096 {
1097 	nvme_qpair_t *qp = kmem_zalloc(sizeof (*qp), KM_SLEEP);
1098 	uint_t cq_idx;
1099 
1100 	mutex_init(&qp->nq_mutex, NULL, MUTEX_DRIVER,
1101 	    DDI_INTR_PRI(nvme->n_intr_pri));
1102 
1103 	/*
1104 	 * The NVMe spec defines that a full queue has one empty (unused) slot;
1105 	 * initialize the semaphore accordingly.
1106 	 */
1107 	sema_init(&qp->nq_sema, nentry - 1, NULL, SEMA_DRIVER, NULL);
1108 
1109 	if (nvme_zalloc_queue_dma(nvme, nentry, sizeof (nvme_sqe_t),
1110 	    DDI_DMA_WRITE, &qp->nq_sqdma) != DDI_SUCCESS)
1111 		goto fail;
1112 
1113 	/*
1114 	 * idx == 0 is adminq, those above 0 are shared io completion queues.
1115 	 */
1116 	cq_idx = idx == 0 ? 0 : 1 + (idx - 1) % (nvme->n_cq_count - 1);
1117 	qp->nq_cq = nvme->n_cq[cq_idx];
1118 	qp->nq_sq = (nvme_sqe_t *)qp->nq_sqdma->nd_memp;
1119 	qp->nq_nentry = nentry;
1120 
1121 	qp->nq_sqtdbl = NVME_REG_SQTDBL(nvme, idx);
1122 
1123 	qp->nq_cmd = kmem_zalloc(sizeof (nvme_cmd_t *) * nentry, KM_SLEEP);
1124 	qp->nq_next_cmd = 0;
1125 
1126 	*nqp = qp;
1127 	return (DDI_SUCCESS);
1128 
1129 fail:
1130 	nvme_free_qpair(qp);
1131 	*nqp = NULL;
1132 
1133 	return (DDI_FAILURE);
1134 }
1135 
1136 static nvme_cmd_t *
1137 nvme_alloc_cmd(nvme_t *nvme, int kmflag)
1138 {
1139 	nvme_cmd_t *cmd = kmem_cache_alloc(nvme_cmd_cache, kmflag);
1140 
1141 	if (cmd == NULL)
1142 		return (cmd);
1143 
1144 	bzero(cmd, sizeof (nvme_cmd_t));
1145 
1146 	cmd->nc_nvme = nvme;
1147 
1148 	mutex_init(&cmd->nc_mutex, NULL, MUTEX_DRIVER,
1149 	    DDI_INTR_PRI(nvme->n_intr_pri));
1150 	cv_init(&cmd->nc_cv, NULL, CV_DRIVER, NULL);
1151 
1152 	return (cmd);
1153 }
1154 
1155 static void
1156 nvme_free_cmd(nvme_cmd_t *cmd)
1157 {
1158 	/* Don't free commands on the lost commands list. */
1159 	if (list_link_active(&cmd->nc_list))
1160 		return;
1161 
1162 	if (cmd->nc_dma) {
1163 		nvme_free_dma(cmd->nc_dma);
1164 		cmd->nc_dma = NULL;
1165 	}
1166 
1167 	if (cmd->nc_prp) {
1168 		kmem_cache_free(cmd->nc_nvme->n_prp_cache, cmd->nc_prp);
1169 		cmd->nc_prp = NULL;
1170 	}
1171 
1172 	cv_destroy(&cmd->nc_cv);
1173 	mutex_destroy(&cmd->nc_mutex);
1174 
1175 	kmem_cache_free(nvme_cmd_cache, cmd);
1176 }
1177 
1178 static void
1179 nvme_submit_admin_cmd(nvme_qpair_t *qp, nvme_cmd_t *cmd)
1180 {
1181 	sema_p(&qp->nq_sema);
1182 	nvme_submit_cmd_common(qp, cmd);
1183 }
1184 
1185 static int
1186 nvme_submit_io_cmd(nvme_qpair_t *qp, nvme_cmd_t *cmd)
1187 {
1188 	if (cmd->nc_nvme->n_dead) {
1189 		return (EIO);
1190 	}
1191 
1192 	if (sema_tryp(&qp->nq_sema) == 0)
1193 		return (EAGAIN);
1194 
1195 	nvme_submit_cmd_common(qp, cmd);
1196 	return (0);
1197 }
1198 
1199 static void
1200 nvme_submit_cmd_common(nvme_qpair_t *qp, nvme_cmd_t *cmd)
1201 {
1202 	nvme_reg_sqtdbl_t tail = { 0 };
1203 
1204 	mutex_enter(&qp->nq_mutex);
1205 	cmd->nc_completed = B_FALSE;
1206 
1207 	/*
1208 	 * Now that we hold the queue pair lock, we must check whether or not
1209 	 * the controller has been listed as dead (e.g. was removed due to
1210 	 * hotplug). This is necessary as otherwise we could race with
1211 	 * nvme_remove_callback(). Because this has not been enqueued, we don't
1212 	 * call nvme_unqueue_cmd(), which is why we must manually decrement the
1213 	 * semaphore.
1214 	 */
1215 	if (cmd->nc_nvme->n_dead) {
1216 		taskq_dispatch_ent(qp->nq_cq->ncq_cmd_taskq, cmd->nc_callback,
1217 		    cmd, TQ_NOSLEEP, &cmd->nc_tqent);
1218 		sema_v(&qp->nq_sema);
1219 		mutex_exit(&qp->nq_mutex);
1220 		return;
1221 	}
1222 
1223 	/*
1224 	 * Try to insert the cmd into the active cmd array at the nq_next_cmd
1225 	 * slot. If the slot is already occupied advance to the next slot and
1226 	 * try again. This can happen for long running commands like async event
1227 	 * requests.
1228 	 */
1229 	while (qp->nq_cmd[qp->nq_next_cmd] != NULL)
1230 		qp->nq_next_cmd = (qp->nq_next_cmd + 1) % qp->nq_nentry;
1231 	qp->nq_cmd[qp->nq_next_cmd] = cmd;
1232 
1233 	qp->nq_active_cmds++;
1234 
1235 	cmd->nc_sqe.sqe_cid = qp->nq_next_cmd;
1236 	bcopy(&cmd->nc_sqe, &qp->nq_sq[qp->nq_sqtail], sizeof (nvme_sqe_t));
1237 	(void) ddi_dma_sync(qp->nq_sqdma->nd_dmah,
1238 	    sizeof (nvme_sqe_t) * qp->nq_sqtail,
1239 	    sizeof (nvme_sqe_t), DDI_DMA_SYNC_FORDEV);
1240 	qp->nq_next_cmd = (qp->nq_next_cmd + 1) % qp->nq_nentry;
1241 
1242 	tail.b.sqtdbl_sqt = qp->nq_sqtail = (qp->nq_sqtail + 1) % qp->nq_nentry;
1243 	nvme_put32(cmd->nc_nvme, qp->nq_sqtdbl, tail.r);
1244 
1245 	mutex_exit(&qp->nq_mutex);
1246 }
1247 
1248 static nvme_cmd_t *
1249 nvme_unqueue_cmd(nvme_t *nvme, nvme_qpair_t *qp, int cid)
1250 {
1251 	nvme_cmd_t *cmd;
1252 
1253 	ASSERT(mutex_owned(&qp->nq_mutex));
1254 	ASSERT3S(cid, <, qp->nq_nentry);
1255 
1256 	cmd = qp->nq_cmd[cid];
1257 	qp->nq_cmd[cid] = NULL;
1258 	ASSERT3U(qp->nq_active_cmds, >, 0);
1259 	qp->nq_active_cmds--;
1260 	sema_v(&qp->nq_sema);
1261 
1262 	ASSERT3P(cmd, !=, NULL);
1263 	ASSERT3P(cmd->nc_nvme, ==, nvme);
1264 	ASSERT3S(cmd->nc_sqe.sqe_cid, ==, cid);
1265 
1266 	return (cmd);
1267 }
1268 
1269 /*
1270  * Get the command tied to the next completed cqe and bump along completion
1271  * queue head counter.
1272  */
1273 static nvme_cmd_t *
1274 nvme_get_completed(nvme_t *nvme, nvme_cq_t *cq)
1275 {
1276 	nvme_qpair_t *qp;
1277 	nvme_cqe_t *cqe;
1278 	nvme_cmd_t *cmd;
1279 
1280 	ASSERT(mutex_owned(&cq->ncq_mutex));
1281 
1282 	cqe = &cq->ncq_cq[cq->ncq_head];
1283 
1284 	/* Check phase tag of CQE. Hardware inverts it for new entries. */
1285 	if (cqe->cqe_sf.sf_p == cq->ncq_phase)
1286 		return (NULL);
1287 
1288 	qp = nvme->n_ioq[cqe->cqe_sqid];
1289 
1290 	mutex_enter(&qp->nq_mutex);
1291 	cmd = nvme_unqueue_cmd(nvme, qp, cqe->cqe_cid);
1292 	mutex_exit(&qp->nq_mutex);
1293 
1294 	ASSERT(cmd->nc_sqid == cqe->cqe_sqid);
1295 	bcopy(cqe, &cmd->nc_cqe, sizeof (nvme_cqe_t));
1296 
1297 	qp->nq_sqhead = cqe->cqe_sqhd;
1298 
1299 	cq->ncq_head = (cq->ncq_head + 1) % cq->ncq_nentry;
1300 
1301 	/* Toggle phase on wrap-around. */
1302 	if (cq->ncq_head == 0)
1303 		cq->ncq_phase = cq->ncq_phase ? 0 : 1;
1304 
1305 	return (cmd);
1306 }
1307 
1308 /*
1309  * Process all completed commands on the io completion queue.
1310  */
1311 static uint_t
1312 nvme_process_iocq(nvme_t *nvme, nvme_cq_t *cq)
1313 {
1314 	nvme_reg_cqhdbl_t head = { 0 };
1315 	nvme_cmd_t *cmd;
1316 	uint_t completed = 0;
1317 
1318 	if (ddi_dma_sync(cq->ncq_dma->nd_dmah, 0, 0, DDI_DMA_SYNC_FORKERNEL) !=
1319 	    DDI_SUCCESS)
1320 		dev_err(nvme->n_dip, CE_WARN, "!ddi_dma_sync() failed in %s",
1321 		    __func__);
1322 
1323 	mutex_enter(&cq->ncq_mutex);
1324 
1325 	while ((cmd = nvme_get_completed(nvme, cq)) != NULL) {
1326 		taskq_dispatch_ent(cq->ncq_cmd_taskq, cmd->nc_callback, cmd,
1327 		    TQ_NOSLEEP, &cmd->nc_tqent);
1328 
1329 		completed++;
1330 	}
1331 
1332 	if (completed > 0) {
1333 		/*
1334 		 * Update the completion queue head doorbell.
1335 		 */
1336 		head.b.cqhdbl_cqh = cq->ncq_head;
1337 		nvme_put32(nvme, cq->ncq_hdbl, head.r);
1338 	}
1339 
1340 	mutex_exit(&cq->ncq_mutex);
1341 
1342 	return (completed);
1343 }
1344 
1345 static nvme_cmd_t *
1346 nvme_retrieve_cmd(nvme_t *nvme, nvme_qpair_t *qp)
1347 {
1348 	nvme_cq_t *cq = qp->nq_cq;
1349 	nvme_reg_cqhdbl_t head = { 0 };
1350 	nvme_cmd_t *cmd;
1351 
1352 	if (ddi_dma_sync(cq->ncq_dma->nd_dmah, 0, 0, DDI_DMA_SYNC_FORKERNEL) !=
1353 	    DDI_SUCCESS)
1354 		dev_err(nvme->n_dip, CE_WARN, "!ddi_dma_sync() failed in %s",
1355 		    __func__);
1356 
1357 	mutex_enter(&cq->ncq_mutex);
1358 
1359 	if ((cmd = nvme_get_completed(nvme, cq)) != NULL) {
1360 		head.b.cqhdbl_cqh = cq->ncq_head;
1361 		nvme_put32(nvme, cq->ncq_hdbl, head.r);
1362 	}
1363 
1364 	mutex_exit(&cq->ncq_mutex);
1365 
1366 	return (cmd);
1367 }
1368 
1369 static int
1370 nvme_check_unknown_cmd_status(nvme_cmd_t *cmd)
1371 {
1372 	nvme_cqe_t *cqe = &cmd->nc_cqe;
1373 
1374 	dev_err(cmd->nc_nvme->n_dip, CE_WARN,
1375 	    "!unknown command status received: opc = %x, sqid = %d, cid = %d, "
1376 	    "sc = %x, sct = %x, dnr = %d, m = %d", cmd->nc_sqe.sqe_opc,
1377 	    cqe->cqe_sqid, cqe->cqe_cid, cqe->cqe_sf.sf_sc, cqe->cqe_sf.sf_sct,
1378 	    cqe->cqe_sf.sf_dnr, cqe->cqe_sf.sf_m);
1379 
1380 	if (cmd->nc_xfer != NULL)
1381 		bd_error(cmd->nc_xfer, BD_ERR_ILLRQ);
1382 
1383 	if (cmd->nc_nvme->n_strict_version) {
1384 		cmd->nc_nvme->n_dead = B_TRUE;
1385 		ddi_fm_service_impact(cmd->nc_nvme->n_dip, DDI_SERVICE_LOST);
1386 	}
1387 
1388 	return (EIO);
1389 }
1390 
1391 static int
1392 nvme_check_vendor_cmd_status(nvme_cmd_t *cmd)
1393 {
1394 	nvme_cqe_t *cqe = &cmd->nc_cqe;
1395 
1396 	dev_err(cmd->nc_nvme->n_dip, CE_WARN,
1397 	    "!unknown command status received: opc = %x, sqid = %d, cid = %d, "
1398 	    "sc = %x, sct = %x, dnr = %d, m = %d", cmd->nc_sqe.sqe_opc,
1399 	    cqe->cqe_sqid, cqe->cqe_cid, cqe->cqe_sf.sf_sc, cqe->cqe_sf.sf_sct,
1400 	    cqe->cqe_sf.sf_dnr, cqe->cqe_sf.sf_m);
1401 	if (!cmd->nc_nvme->n_ignore_unknown_vendor_status) {
1402 		cmd->nc_nvme->n_dead = B_TRUE;
1403 		ddi_fm_service_impact(cmd->nc_nvme->n_dip, DDI_SERVICE_LOST);
1404 	}
1405 
1406 	return (EIO);
1407 }
1408 
1409 static int
1410 nvme_check_integrity_cmd_status(nvme_cmd_t *cmd)
1411 {
1412 	nvme_cqe_t *cqe = &cmd->nc_cqe;
1413 
1414 	switch (cqe->cqe_sf.sf_sc) {
1415 	case NVME_CQE_SC_INT_NVM_WRITE:
1416 		/* write fail */
1417 		/* TODO: post ereport */
1418 		if (cmd->nc_xfer != NULL)
1419 			bd_error(cmd->nc_xfer, BD_ERR_MEDIA);
1420 		return (EIO);
1421 
1422 	case NVME_CQE_SC_INT_NVM_READ:
1423 		/* read fail */
1424 		/* TODO: post ereport */
1425 		if (cmd->nc_xfer != NULL)
1426 			bd_error(cmd->nc_xfer, BD_ERR_MEDIA);
1427 		return (EIO);
1428 
1429 	default:
1430 		return (nvme_check_unknown_cmd_status(cmd));
1431 	}
1432 }
1433 
1434 static int
1435 nvme_check_generic_cmd_status(nvme_cmd_t *cmd)
1436 {
1437 	nvme_cqe_t *cqe = &cmd->nc_cqe;
1438 
1439 	switch (cqe->cqe_sf.sf_sc) {
1440 	case NVME_CQE_SC_GEN_SUCCESS:
1441 		return (0);
1442 
1443 	/*
1444 	 * Errors indicating a bug in the driver should cause a panic.
1445 	 */
1446 	case NVME_CQE_SC_GEN_INV_OPC:
1447 		/* Invalid Command Opcode */
1448 		if (!cmd->nc_dontpanic)
1449 			dev_err(cmd->nc_nvme->n_dip, CE_PANIC,
1450 			    "programming error: invalid opcode in cmd %p",
1451 			    (void *)cmd);
1452 		return (EINVAL);
1453 
1454 	case NVME_CQE_SC_GEN_INV_FLD:
1455 		/* Invalid Field in Command */
1456 		if (!cmd->nc_dontpanic)
1457 			dev_err(cmd->nc_nvme->n_dip, CE_PANIC,
1458 			    "programming error: invalid field in cmd %p",
1459 			    (void *)cmd);
1460 		return (EIO);
1461 
1462 	case NVME_CQE_SC_GEN_ID_CNFL:
1463 		/* Command ID Conflict */
1464 		dev_err(cmd->nc_nvme->n_dip, CE_PANIC, "programming error: "
1465 		    "cmd ID conflict in cmd %p", (void *)cmd);
1466 		return (0);
1467 
1468 	case NVME_CQE_SC_GEN_INV_NS:
1469 		/* Invalid Namespace or Format */
1470 		if (!cmd->nc_dontpanic)
1471 			dev_err(cmd->nc_nvme->n_dip, CE_PANIC,
1472 			    "programming error: invalid NS/format in cmd %p",
1473 			    (void *)cmd);
1474 		return (EINVAL);
1475 
1476 	case NVME_CQE_SC_GEN_NVM_LBA_RANGE:
1477 		/* LBA Out Of Range */
1478 		dev_err(cmd->nc_nvme->n_dip, CE_PANIC, "programming error: "
1479 		    "LBA out of range in cmd %p", (void *)cmd);
1480 		return (0);
1481 
1482 	/*
1483 	 * Non-fatal errors, handle gracefully.
1484 	 */
1485 	case NVME_CQE_SC_GEN_DATA_XFR_ERR:
1486 		/* Data Transfer Error (DMA) */
1487 		/* TODO: post ereport */
1488 		atomic_inc_32(&cmd->nc_nvme->n_data_xfr_err);
1489 		if (cmd->nc_xfer != NULL)
1490 			bd_error(cmd->nc_xfer, BD_ERR_NTRDY);
1491 		return (EIO);
1492 
1493 	case NVME_CQE_SC_GEN_INTERNAL_ERR:
1494 		/*
1495 		 * Internal Error. The spec (v1.0, section 4.5.1.2) says
1496 		 * detailed error information is returned as async event,
1497 		 * so we pretty much ignore the error here and handle it
1498 		 * in the async event handler.
1499 		 */
1500 		atomic_inc_32(&cmd->nc_nvme->n_internal_err);
1501 		if (cmd->nc_xfer != NULL)
1502 			bd_error(cmd->nc_xfer, BD_ERR_NTRDY);
1503 		return (EIO);
1504 
1505 	case NVME_CQE_SC_GEN_ABORT_REQUEST:
1506 		/*
1507 		 * Command Abort Requested. This normally happens only when a
1508 		 * command times out.
1509 		 */
1510 		/* TODO: post ereport or change blkdev to handle this? */
1511 		atomic_inc_32(&cmd->nc_nvme->n_abort_rq_err);
1512 		return (ECANCELED);
1513 
1514 	case NVME_CQE_SC_GEN_ABORT_PWRLOSS:
1515 		/* Command Aborted due to Power Loss Notification */
1516 		ddi_fm_service_impact(cmd->nc_nvme->n_dip, DDI_SERVICE_LOST);
1517 		cmd->nc_nvme->n_dead = B_TRUE;
1518 		return (EIO);
1519 
1520 	case NVME_CQE_SC_GEN_ABORT_SQ_DEL:
1521 		/* Command Aborted due to SQ Deletion */
1522 		atomic_inc_32(&cmd->nc_nvme->n_abort_sq_del);
1523 		return (EIO);
1524 
1525 	case NVME_CQE_SC_GEN_NVM_CAP_EXC:
1526 		/* Capacity Exceeded */
1527 		atomic_inc_32(&cmd->nc_nvme->n_nvm_cap_exc);
1528 		if (cmd->nc_xfer != NULL)
1529 			bd_error(cmd->nc_xfer, BD_ERR_MEDIA);
1530 		return (EIO);
1531 
1532 	case NVME_CQE_SC_GEN_NVM_NS_NOTRDY:
1533 		/* Namespace Not Ready */
1534 		atomic_inc_32(&cmd->nc_nvme->n_nvm_ns_notrdy);
1535 		if (cmd->nc_xfer != NULL)
1536 			bd_error(cmd->nc_xfer, BD_ERR_NTRDY);
1537 		return (EIO);
1538 
1539 	case NVME_CQE_SC_GEN_NVM_FORMATTING:
1540 		/* Format in progress (1.2) */
1541 		if (!NVME_VERSION_ATLEAST(&cmd->nc_nvme->n_version, 1, 2))
1542 			return (nvme_check_unknown_cmd_status(cmd));
1543 		atomic_inc_32(&cmd->nc_nvme->n_nvm_ns_formatting);
1544 		if (cmd->nc_xfer != NULL)
1545 			bd_error(cmd->nc_xfer, BD_ERR_NTRDY);
1546 		return (EIO);
1547 
1548 	default:
1549 		return (nvme_check_unknown_cmd_status(cmd));
1550 	}
1551 }
1552 
1553 static int
1554 nvme_check_specific_cmd_status(nvme_cmd_t *cmd)
1555 {
1556 	nvme_cqe_t *cqe = &cmd->nc_cqe;
1557 
1558 	switch (cqe->cqe_sf.sf_sc) {
1559 	case NVME_CQE_SC_SPC_INV_CQ:
1560 		/* Completion Queue Invalid */
1561 		ASSERT(cmd->nc_sqe.sqe_opc == NVME_OPC_CREATE_SQUEUE);
1562 		atomic_inc_32(&cmd->nc_nvme->n_inv_cq_err);
1563 		return (EINVAL);
1564 
1565 	case NVME_CQE_SC_SPC_INV_QID:
1566 		/* Invalid Queue Identifier */
1567 		ASSERT(cmd->nc_sqe.sqe_opc == NVME_OPC_CREATE_SQUEUE ||
1568 		    cmd->nc_sqe.sqe_opc == NVME_OPC_DELETE_SQUEUE ||
1569 		    cmd->nc_sqe.sqe_opc == NVME_OPC_CREATE_CQUEUE ||
1570 		    cmd->nc_sqe.sqe_opc == NVME_OPC_DELETE_CQUEUE);
1571 		atomic_inc_32(&cmd->nc_nvme->n_inv_qid_err);
1572 		return (EINVAL);
1573 
1574 	case NVME_CQE_SC_SPC_MAX_QSZ_EXC:
1575 		/* Max Queue Size Exceeded */
1576 		ASSERT(cmd->nc_sqe.sqe_opc == NVME_OPC_CREATE_SQUEUE ||
1577 		    cmd->nc_sqe.sqe_opc == NVME_OPC_CREATE_CQUEUE);
1578 		atomic_inc_32(&cmd->nc_nvme->n_max_qsz_exc);
1579 		return (EINVAL);
1580 
1581 	case NVME_CQE_SC_SPC_ABRT_CMD_EXC:
1582 		/* Abort Command Limit Exceeded */
1583 		ASSERT(cmd->nc_sqe.sqe_opc == NVME_OPC_ABORT);
1584 		dev_err(cmd->nc_nvme->n_dip, CE_PANIC, "programming error: "
1585 		    "abort command limit exceeded in cmd %p", (void *)cmd);
1586 		return (0);
1587 
1588 	case NVME_CQE_SC_SPC_ASYNC_EVREQ_EXC:
1589 		/* Async Event Request Limit Exceeded */
1590 		ASSERT(cmd->nc_sqe.sqe_opc == NVME_OPC_ASYNC_EVENT);
1591 		dev_err(cmd->nc_nvme->n_dip, CE_PANIC, "programming error: "
1592 		    "async event request limit exceeded in cmd %p",
1593 		    (void *)cmd);
1594 		return (0);
1595 
1596 	case NVME_CQE_SC_SPC_INV_INT_VECT:
1597 		/* Invalid Interrupt Vector */
1598 		ASSERT(cmd->nc_sqe.sqe_opc == NVME_OPC_CREATE_CQUEUE);
1599 		atomic_inc_32(&cmd->nc_nvme->n_inv_int_vect);
1600 		return (EINVAL);
1601 
1602 	case NVME_CQE_SC_SPC_INV_LOG_PAGE:
1603 		/* Invalid Log Page */
1604 		ASSERT(cmd->nc_sqe.sqe_opc == NVME_OPC_GET_LOG_PAGE);
1605 		atomic_inc_32(&cmd->nc_nvme->n_inv_log_page);
1606 		return (EINVAL);
1607 
1608 	case NVME_CQE_SC_SPC_INV_FORMAT:
1609 		/* Invalid Format */
1610 		ASSERT(cmd->nc_sqe.sqe_opc == NVME_OPC_NVM_FORMAT);
1611 		atomic_inc_32(&cmd->nc_nvme->n_inv_format);
1612 		if (cmd->nc_xfer != NULL)
1613 			bd_error(cmd->nc_xfer, BD_ERR_ILLRQ);
1614 		return (EINVAL);
1615 
1616 	case NVME_CQE_SC_SPC_INV_Q_DEL:
1617 		/* Invalid Queue Deletion */
1618 		ASSERT(cmd->nc_sqe.sqe_opc == NVME_OPC_DELETE_CQUEUE);
1619 		atomic_inc_32(&cmd->nc_nvme->n_inv_q_del);
1620 		return (EINVAL);
1621 
1622 	case NVME_CQE_SC_SPC_NVM_CNFL_ATTR:
1623 		/* Conflicting Attributes */
1624 		ASSERT(cmd->nc_sqe.sqe_opc == NVME_OPC_NVM_DSET_MGMT ||
1625 		    cmd->nc_sqe.sqe_opc == NVME_OPC_NVM_READ ||
1626 		    cmd->nc_sqe.sqe_opc == NVME_OPC_NVM_WRITE);
1627 		atomic_inc_32(&cmd->nc_nvme->n_cnfl_attr);
1628 		if (cmd->nc_xfer != NULL)
1629 			bd_error(cmd->nc_xfer, BD_ERR_ILLRQ);
1630 		return (EINVAL);
1631 
1632 	case NVME_CQE_SC_SPC_NVM_INV_PROT:
1633 		/* Invalid Protection Information */
1634 		ASSERT(cmd->nc_sqe.sqe_opc == NVME_OPC_NVM_COMPARE ||
1635 		    cmd->nc_sqe.sqe_opc == NVME_OPC_NVM_READ ||
1636 		    cmd->nc_sqe.sqe_opc == NVME_OPC_NVM_WRITE);
1637 		atomic_inc_32(&cmd->nc_nvme->n_inv_prot);
1638 		if (cmd->nc_xfer != NULL)
1639 			bd_error(cmd->nc_xfer, BD_ERR_ILLRQ);
1640 		return (EINVAL);
1641 
1642 	case NVME_CQE_SC_SPC_NVM_READONLY:
1643 		/* Write to Read Only Range */
1644 		ASSERT(cmd->nc_sqe.sqe_opc == NVME_OPC_NVM_WRITE);
1645 		atomic_inc_32(&cmd->nc_nvme->n_readonly);
1646 		if (cmd->nc_xfer != NULL)
1647 			bd_error(cmd->nc_xfer, BD_ERR_ILLRQ);
1648 		return (EROFS);
1649 
1650 	case NVME_CQE_SC_SPC_INV_FW_SLOT:
1651 		/* Invalid Firmware Slot */
1652 		ASSERT(cmd->nc_sqe.sqe_opc == NVME_OPC_FW_ACTIVATE);
1653 		return (EINVAL);
1654 
1655 	case NVME_CQE_SC_SPC_INV_FW_IMG:
1656 		/* Invalid Firmware Image */
1657 		ASSERT(cmd->nc_sqe.sqe_opc == NVME_OPC_FW_ACTIVATE);
1658 		return (EINVAL);
1659 
1660 	case NVME_CQE_SC_SPC_FW_RESET:
1661 		/* Conventional Reset Required */
1662 		ASSERT(cmd->nc_sqe.sqe_opc == NVME_OPC_FW_ACTIVATE);
1663 		return (0);
1664 
1665 	case NVME_CQE_SC_SPC_FW_NSSR:
1666 		/* NVMe Subsystem Reset Required */
1667 		ASSERT(cmd->nc_sqe.sqe_opc == NVME_OPC_FW_ACTIVATE);
1668 		return (0);
1669 
1670 	case NVME_CQE_SC_SPC_FW_NEXT_RESET:
1671 		/* Activation Requires Reset */
1672 		ASSERT(cmd->nc_sqe.sqe_opc == NVME_OPC_FW_ACTIVATE);
1673 		return (0);
1674 
1675 	case NVME_CQE_SC_SPC_FW_MTFA:
1676 		/* Activation Requires Maximum Time Violation */
1677 		ASSERT(cmd->nc_sqe.sqe_opc == NVME_OPC_FW_ACTIVATE);
1678 		return (EAGAIN);
1679 
1680 	case NVME_CQE_SC_SPC_FW_PROHIBITED:
1681 		/* Activation Prohibited */
1682 		ASSERT(cmd->nc_sqe.sqe_opc == NVME_OPC_FW_ACTIVATE);
1683 		return (EINVAL);
1684 
1685 	case NVME_CQE_SC_SPC_FW_OVERLAP:
1686 		/* Overlapping Firmware Ranges */
1687 		ASSERT(cmd->nc_sqe.sqe_opc == NVME_OPC_FW_IMAGE_LOAD);
1688 		return (EINVAL);
1689 
1690 	default:
1691 		return (nvme_check_unknown_cmd_status(cmd));
1692 	}
1693 }
1694 
1695 static inline int
1696 nvme_check_cmd_status(nvme_cmd_t *cmd)
1697 {
1698 	nvme_cqe_t *cqe = &cmd->nc_cqe;
1699 
1700 	/*
1701 	 * Take a shortcut if the controller is dead, or if
1702 	 * command status indicates no error.
1703 	 */
1704 	if (cmd->nc_nvme->n_dead)
1705 		return (EIO);
1706 
1707 	if (cqe->cqe_sf.sf_sct == NVME_CQE_SCT_GENERIC &&
1708 	    cqe->cqe_sf.sf_sc == NVME_CQE_SC_GEN_SUCCESS)
1709 		return (0);
1710 
1711 	if (cqe->cqe_sf.sf_sct == NVME_CQE_SCT_GENERIC)
1712 		return (nvme_check_generic_cmd_status(cmd));
1713 	else if (cqe->cqe_sf.sf_sct == NVME_CQE_SCT_SPECIFIC)
1714 		return (nvme_check_specific_cmd_status(cmd));
1715 	else if (cqe->cqe_sf.sf_sct == NVME_CQE_SCT_INTEGRITY)
1716 		return (nvme_check_integrity_cmd_status(cmd));
1717 	else if (cqe->cqe_sf.sf_sct == NVME_CQE_SCT_VENDOR)
1718 		return (nvme_check_vendor_cmd_status(cmd));
1719 
1720 	return (nvme_check_unknown_cmd_status(cmd));
1721 }
1722 
1723 static int
1724 nvme_abort_cmd(nvme_cmd_t *abort_cmd, uint_t sec)
1725 {
1726 	nvme_t *nvme = abort_cmd->nc_nvme;
1727 	nvme_cmd_t *cmd = nvme_alloc_cmd(nvme, KM_SLEEP);
1728 	nvme_abort_cmd_t ac = { 0 };
1729 	int ret = 0;
1730 
1731 	sema_p(&nvme->n_abort_sema);
1732 
1733 	ac.b.ac_cid = abort_cmd->nc_sqe.sqe_cid;
1734 	ac.b.ac_sqid = abort_cmd->nc_sqid;
1735 
1736 	cmd->nc_sqid = 0;
1737 	cmd->nc_sqe.sqe_opc = NVME_OPC_ABORT;
1738 	cmd->nc_callback = nvme_wakeup_cmd;
1739 	cmd->nc_sqe.sqe_cdw10 = ac.r;
1740 
1741 	/*
1742 	 * Send the ABORT to the hardware. The ABORT command will return _after_
1743 	 * the aborted command has completed (aborted or otherwise), but since
1744 	 * we still hold the aborted command's mutex its callback hasn't been
1745 	 * processed yet.
1746 	 */
1747 	nvme_admin_cmd(cmd, sec);
1748 	sema_v(&nvme->n_abort_sema);
1749 
1750 	if ((ret = nvme_check_cmd_status(cmd)) != 0) {
1751 		dev_err(nvme->n_dip, CE_WARN,
1752 		    "!ABORT failed with sct = %x, sc = %x",
1753 		    cmd->nc_cqe.cqe_sf.sf_sct, cmd->nc_cqe.cqe_sf.sf_sc);
1754 		atomic_inc_32(&nvme->n_abort_failed);
1755 	} else {
1756 		dev_err(nvme->n_dip, CE_WARN,
1757 		    "!ABORT of command %d/%d %ssuccessful",
1758 		    abort_cmd->nc_sqe.sqe_cid, abort_cmd->nc_sqid,
1759 		    cmd->nc_cqe.cqe_dw0 & 1 ? "un" : "");
1760 		if ((cmd->nc_cqe.cqe_dw0 & 1) == 0)
1761 			atomic_inc_32(&nvme->n_cmd_aborted);
1762 	}
1763 
1764 	nvme_free_cmd(cmd);
1765 	return (ret);
1766 }
1767 
1768 /*
1769  * nvme_wait_cmd -- wait for command completion or timeout
1770  *
1771  * In case of a serious error or a timeout of the abort command the hardware
1772  * will be declared dead and FMA will be notified.
1773  */
1774 static void
1775 nvme_wait_cmd(nvme_cmd_t *cmd, uint_t sec)
1776 {
1777 	clock_t timeout = ddi_get_lbolt() + drv_usectohz(sec * MICROSEC);
1778 	nvme_t *nvme = cmd->nc_nvme;
1779 	nvme_reg_csts_t csts;
1780 	nvme_qpair_t *qp;
1781 
1782 	ASSERT(mutex_owned(&cmd->nc_mutex));
1783 
1784 	while (!cmd->nc_completed) {
1785 		if (cv_timedwait(&cmd->nc_cv, &cmd->nc_mutex, timeout) == -1)
1786 			break;
1787 	}
1788 
1789 	if (cmd->nc_completed)
1790 		return;
1791 
1792 	/*
1793 	 * The command timed out.
1794 	 *
1795 	 * Check controller for fatal status, any errors associated with the
1796 	 * register or DMA handle, or for a double timeout (abort command timed
1797 	 * out). If necessary log a warning and call FMA.
1798 	 */
1799 	csts.r = nvme_get32(nvme, NVME_REG_CSTS);
1800 	dev_err(nvme->n_dip, CE_WARN, "!command %d/%d timeout, "
1801 	    "OPC = %x, CFS = %d", cmd->nc_sqe.sqe_cid, cmd->nc_sqid,
1802 	    cmd->nc_sqe.sqe_opc, csts.b.csts_cfs);
1803 	atomic_inc_32(&nvme->n_cmd_timeout);
1804 
1805 	if (csts.b.csts_cfs ||
1806 	    nvme_check_regs_hdl(nvme) ||
1807 	    nvme_check_dma_hdl(cmd->nc_dma) ||
1808 	    cmd->nc_sqe.sqe_opc == NVME_OPC_ABORT) {
1809 		ddi_fm_service_impact(nvme->n_dip, DDI_SERVICE_LOST);
1810 		nvme->n_dead = B_TRUE;
1811 	} else if (nvme_abort_cmd(cmd, sec) == 0) {
1812 		/*
1813 		 * If the abort succeeded the command should complete
1814 		 * immediately with an appropriate status.
1815 		 */
1816 		while (!cmd->nc_completed)
1817 			cv_wait(&cmd->nc_cv, &cmd->nc_mutex);
1818 
1819 		return;
1820 	}
1821 
1822 	qp = nvme->n_ioq[cmd->nc_sqid];
1823 
1824 	mutex_enter(&qp->nq_mutex);
1825 	(void) nvme_unqueue_cmd(nvme, qp, cmd->nc_sqe.sqe_cid);
1826 	mutex_exit(&qp->nq_mutex);
1827 
1828 	/*
1829 	 * As we don't know what the presumed dead hardware might still do with
1830 	 * the DMA memory, we'll put the command on the lost commands list if it
1831 	 * has any DMA memory.
1832 	 */
1833 	if (cmd->nc_dma != NULL) {
1834 		mutex_enter(&nvme_lc_mutex);
1835 		list_insert_head(&nvme_lost_cmds, cmd);
1836 		mutex_exit(&nvme_lc_mutex);
1837 	}
1838 }
1839 
1840 static void
1841 nvme_wakeup_cmd(void *arg)
1842 {
1843 	nvme_cmd_t *cmd = arg;
1844 
1845 	mutex_enter(&cmd->nc_mutex);
1846 	cmd->nc_completed = B_TRUE;
1847 	cv_signal(&cmd->nc_cv);
1848 	mutex_exit(&cmd->nc_mutex);
1849 }
1850 
1851 static void
1852 nvme_async_event_task(void *arg)
1853 {
1854 	nvme_cmd_t *cmd = arg;
1855 	nvme_t *nvme = cmd->nc_nvme;
1856 	nvme_error_log_entry_t *error_log = NULL;
1857 	nvme_health_log_t *health_log = NULL;
1858 	nvme_nschange_list_t *nslist = NULL;
1859 	size_t logsize = 0;
1860 	nvme_async_event_t event;
1861 
1862 	/*
1863 	 * Check for errors associated with the async request itself. The only
1864 	 * command-specific error is "async event limit exceeded", which
1865 	 * indicates a programming error in the driver and causes a panic in
1866 	 * nvme_check_cmd_status().
1867 	 *
1868 	 * Other possible errors are various scenarios where the async request
1869 	 * was aborted, or internal errors in the device. Internal errors are
1870 	 * reported to FMA, the command aborts need no special handling here.
1871 	 *
1872 	 * And finally, at least qemu nvme does not support async events,
1873 	 * and will return NVME_CQE_SC_GEN_INV_OPC | DNR. If so, we
1874 	 * will avoid posting async events.
1875 	 */
1876 
1877 	if (nvme_check_cmd_status(cmd) != 0) {
1878 		dev_err(cmd->nc_nvme->n_dip, CE_WARN,
1879 		    "!async event request returned failure, sct = %x, "
1880 		    "sc = %x, dnr = %d, m = %d", cmd->nc_cqe.cqe_sf.sf_sct,
1881 		    cmd->nc_cqe.cqe_sf.sf_sc, cmd->nc_cqe.cqe_sf.sf_dnr,
1882 		    cmd->nc_cqe.cqe_sf.sf_m);
1883 
1884 		if (cmd->nc_cqe.cqe_sf.sf_sct == NVME_CQE_SCT_GENERIC &&
1885 		    cmd->nc_cqe.cqe_sf.sf_sc == NVME_CQE_SC_GEN_INTERNAL_ERR) {
1886 			cmd->nc_nvme->n_dead = B_TRUE;
1887 			ddi_fm_service_impact(cmd->nc_nvme->n_dip,
1888 			    DDI_SERVICE_LOST);
1889 		}
1890 
1891 		if (cmd->nc_cqe.cqe_sf.sf_sct == NVME_CQE_SCT_GENERIC &&
1892 		    cmd->nc_cqe.cqe_sf.sf_sc == NVME_CQE_SC_GEN_INV_OPC &&
1893 		    cmd->nc_cqe.cqe_sf.sf_dnr == 1) {
1894 			nvme->n_async_event_supported = B_FALSE;
1895 		}
1896 
1897 		nvme_free_cmd(cmd);
1898 		return;
1899 	}
1900 
1901 	event.r = cmd->nc_cqe.cqe_dw0;
1902 
1903 	/* Clear CQE and re-submit the async request. */
1904 	bzero(&cmd->nc_cqe, sizeof (nvme_cqe_t));
1905 	nvme_submit_admin_cmd(nvme->n_adminq, cmd);
1906 
1907 	switch (event.b.ae_type) {
1908 	case NVME_ASYNC_TYPE_ERROR:
1909 		if (event.b.ae_logpage == NVME_LOGPAGE_ERROR) {
1910 			(void) nvme_get_logpage(nvme, B_FALSE,
1911 			    (void **)&error_log, &logsize, event.b.ae_logpage);
1912 		} else {
1913 			dev_err(nvme->n_dip, CE_WARN, "!wrong logpage in "
1914 			    "async event reply: %d", event.b.ae_logpage);
1915 			atomic_inc_32(&nvme->n_wrong_logpage);
1916 		}
1917 
1918 		switch (event.b.ae_info) {
1919 		case NVME_ASYNC_ERROR_INV_SQ:
1920 			dev_err(nvme->n_dip, CE_PANIC, "programming error: "
1921 			    "invalid submission queue");
1922 			return;
1923 
1924 		case NVME_ASYNC_ERROR_INV_DBL:
1925 			dev_err(nvme->n_dip, CE_PANIC, "programming error: "
1926 			    "invalid doorbell write value");
1927 			return;
1928 
1929 		case NVME_ASYNC_ERROR_DIAGFAIL:
1930 			dev_err(nvme->n_dip, CE_WARN, "!diagnostic failure");
1931 			ddi_fm_service_impact(nvme->n_dip, DDI_SERVICE_LOST);
1932 			nvme->n_dead = B_TRUE;
1933 			atomic_inc_32(&nvme->n_diagfail_event);
1934 			break;
1935 
1936 		case NVME_ASYNC_ERROR_PERSISTENT:
1937 			dev_err(nvme->n_dip, CE_WARN, "!persistent internal "
1938 			    "device error");
1939 			ddi_fm_service_impact(nvme->n_dip, DDI_SERVICE_LOST);
1940 			nvme->n_dead = B_TRUE;
1941 			atomic_inc_32(&nvme->n_persistent_event);
1942 			break;
1943 
1944 		case NVME_ASYNC_ERROR_TRANSIENT:
1945 			dev_err(nvme->n_dip, CE_WARN, "!transient internal "
1946 			    "device error");
1947 			/* TODO: send ereport */
1948 			atomic_inc_32(&nvme->n_transient_event);
1949 			break;
1950 
1951 		case NVME_ASYNC_ERROR_FW_LOAD:
1952 			dev_err(nvme->n_dip, CE_WARN,
1953 			    "!firmware image load error");
1954 			atomic_inc_32(&nvme->n_fw_load_event);
1955 			break;
1956 		}
1957 		break;
1958 
1959 	case NVME_ASYNC_TYPE_HEALTH:
1960 		if (event.b.ae_logpage == NVME_LOGPAGE_HEALTH) {
1961 			(void) nvme_get_logpage(nvme, B_FALSE,
1962 			    (void **)&health_log, &logsize, event.b.ae_logpage,
1963 			    -1);
1964 		} else {
1965 			dev_err(nvme->n_dip, CE_WARN, "!wrong logpage in "
1966 			    "async event reply: %d", event.b.ae_logpage);
1967 			atomic_inc_32(&nvme->n_wrong_logpage);
1968 		}
1969 
1970 		switch (event.b.ae_info) {
1971 		case NVME_ASYNC_HEALTH_RELIABILITY:
1972 			dev_err(nvme->n_dip, CE_WARN,
1973 			    "!device reliability compromised");
1974 			/* TODO: send ereport */
1975 			atomic_inc_32(&nvme->n_reliability_event);
1976 			break;
1977 
1978 		case NVME_ASYNC_HEALTH_TEMPERATURE:
1979 			dev_err(nvme->n_dip, CE_WARN,
1980 			    "!temperature above threshold");
1981 			/* TODO: send ereport */
1982 			atomic_inc_32(&nvme->n_temperature_event);
1983 			break;
1984 
1985 		case NVME_ASYNC_HEALTH_SPARE:
1986 			dev_err(nvme->n_dip, CE_WARN,
1987 			    "!spare space below threshold");
1988 			/* TODO: send ereport */
1989 			atomic_inc_32(&nvme->n_spare_event);
1990 			break;
1991 		}
1992 		break;
1993 
1994 	case NVME_ASYNC_TYPE_NOTICE:
1995 		switch (event.b.ae_info) {
1996 		case NVME_ASYNC_NOTICE_NS_CHANGE:
1997 			dev_err(nvme->n_dip, CE_NOTE,
1998 			    "namespace attribute change event, "
1999 			    "logpage = %x", event.b.ae_logpage);
2000 			atomic_inc_32(&nvme->n_notice_event);
2001 
2002 			if (event.b.ae_logpage != NVME_LOGPAGE_NSCHANGE)
2003 				break;
2004 
2005 			if (nvme_get_logpage(nvme, B_FALSE, (void **)&nslist,
2006 			    &logsize, event.b.ae_logpage, -1) != 0) {
2007 				break;
2008 			}
2009 
2010 			if (nslist->nscl_ns[0] == UINT32_MAX) {
2011 				dev_err(nvme->n_dip, CE_CONT,
2012 				    "more than %u namespaces have changed.\n",
2013 				    NVME_NSCHANGE_LIST_SIZE);
2014 				break;
2015 			}
2016 
2017 			mutex_enter(&nvme->n_mgmt_mutex);
2018 			for (uint_t i = 0; i < NVME_NSCHANGE_LIST_SIZE; i++) {
2019 				uint32_t nsid = nslist->nscl_ns[i];
2020 
2021 				if (nsid == 0)	/* end of list */
2022 					break;
2023 
2024 				dev_err(nvme->n_dip, CE_NOTE,
2025 				    "!namespace nvme%d/%u has changed.",
2026 				    ddi_get_instance(nvme->n_dip), nsid);
2027 
2028 
2029 				if (nvme_init_ns(nvme, nsid) != DDI_SUCCESS)
2030 					continue;
2031 
2032 				bd_state_change(
2033 				    NVME_NSID2NS(nvme, nsid)->ns_bd_hdl);
2034 			}
2035 			mutex_exit(&nvme->n_mgmt_mutex);
2036 
2037 			break;
2038 
2039 		case NVME_ASYNC_NOTICE_FW_ACTIVATE:
2040 			dev_err(nvme->n_dip, CE_NOTE,
2041 			    "firmware activation starting, "
2042 			    "logpage = %x", event.b.ae_logpage);
2043 			atomic_inc_32(&nvme->n_notice_event);
2044 			break;
2045 
2046 		case NVME_ASYNC_NOTICE_TELEMETRY:
2047 			dev_err(nvme->n_dip, CE_NOTE,
2048 			    "telemetry log changed, "
2049 			    "logpage = %x", event.b.ae_logpage);
2050 			atomic_inc_32(&nvme->n_notice_event);
2051 			break;
2052 
2053 		case NVME_ASYNC_NOTICE_NS_ASYMM:
2054 			dev_err(nvme->n_dip, CE_NOTE,
2055 			    "asymmetric namespace access change, "
2056 			    "logpage = %x", event.b.ae_logpage);
2057 			atomic_inc_32(&nvme->n_notice_event);
2058 			break;
2059 
2060 		case NVME_ASYNC_NOTICE_LATENCYLOG:
2061 			dev_err(nvme->n_dip, CE_NOTE,
2062 			    "predictable latency event aggregate log change, "
2063 			    "logpage = %x", event.b.ae_logpage);
2064 			atomic_inc_32(&nvme->n_notice_event);
2065 			break;
2066 
2067 		case NVME_ASYNC_NOTICE_LBASTATUS:
2068 			dev_err(nvme->n_dip, CE_NOTE,
2069 			    "LBA status information alert, "
2070 			    "logpage = %x", event.b.ae_logpage);
2071 			atomic_inc_32(&nvme->n_notice_event);
2072 			break;
2073 
2074 		case NVME_ASYNC_NOTICE_ENDURANCELOG:
2075 			dev_err(nvme->n_dip, CE_NOTE,
2076 			    "endurance group event aggregate log page change, "
2077 			    "logpage = %x", event.b.ae_logpage);
2078 			atomic_inc_32(&nvme->n_notice_event);
2079 			break;
2080 
2081 		default:
2082 			dev_err(nvme->n_dip, CE_WARN,
2083 			    "!unknown notice async event received, "
2084 			    "info = %x, logpage = %x", event.b.ae_info,
2085 			    event.b.ae_logpage);
2086 			atomic_inc_32(&nvme->n_unknown_event);
2087 			break;
2088 		}
2089 		break;
2090 
2091 	case NVME_ASYNC_TYPE_VENDOR:
2092 		dev_err(nvme->n_dip, CE_WARN, "!vendor specific async event "
2093 		    "received, info = %x, logpage = %x", event.b.ae_info,
2094 		    event.b.ae_logpage);
2095 		atomic_inc_32(&nvme->n_vendor_event);
2096 		break;
2097 
2098 	default:
2099 		dev_err(nvme->n_dip, CE_WARN, "!unknown async event received, "
2100 		    "type = %x, info = %x, logpage = %x", event.b.ae_type,
2101 		    event.b.ae_info, event.b.ae_logpage);
2102 		atomic_inc_32(&nvme->n_unknown_event);
2103 		break;
2104 	}
2105 
2106 	if (error_log != NULL)
2107 		kmem_free(error_log, logsize);
2108 
2109 	if (health_log != NULL)
2110 		kmem_free(health_log, logsize);
2111 
2112 	if (nslist != NULL)
2113 		kmem_free(nslist, logsize);
2114 }
2115 
2116 static void
2117 nvme_admin_cmd(nvme_cmd_t *cmd, int sec)
2118 {
2119 	mutex_enter(&cmd->nc_mutex);
2120 	nvme_submit_admin_cmd(cmd->nc_nvme->n_adminq, cmd);
2121 	nvme_wait_cmd(cmd, sec);
2122 	mutex_exit(&cmd->nc_mutex);
2123 }
2124 
2125 static void
2126 nvme_async_event(nvme_t *nvme)
2127 {
2128 	nvme_cmd_t *cmd;
2129 
2130 	cmd = nvme_alloc_cmd(nvme, KM_SLEEP);
2131 	cmd->nc_sqid = 0;
2132 	cmd->nc_sqe.sqe_opc = NVME_OPC_ASYNC_EVENT;
2133 	cmd->nc_callback = nvme_async_event_task;
2134 	cmd->nc_dontpanic = B_TRUE;
2135 
2136 	nvme_submit_admin_cmd(nvme->n_adminq, cmd);
2137 }
2138 
2139 static int
2140 nvme_format_nvm(nvme_t *nvme, boolean_t user, uint32_t nsid, uint8_t lbaf,
2141     boolean_t ms, uint8_t pi, boolean_t pil, uint8_t ses)
2142 {
2143 	nvme_cmd_t *cmd = nvme_alloc_cmd(nvme, KM_SLEEP);
2144 	nvme_format_nvm_t format_nvm = { 0 };
2145 	int ret;
2146 
2147 	format_nvm.b.fm_lbaf = lbaf & 0xf;
2148 	format_nvm.b.fm_ms = ms ? 1 : 0;
2149 	format_nvm.b.fm_pi = pi & 0x7;
2150 	format_nvm.b.fm_pil = pil ? 1 : 0;
2151 	format_nvm.b.fm_ses = ses & 0x7;
2152 
2153 	cmd->nc_sqid = 0;
2154 	cmd->nc_callback = nvme_wakeup_cmd;
2155 	cmd->nc_sqe.sqe_nsid = nsid;
2156 	cmd->nc_sqe.sqe_opc = NVME_OPC_NVM_FORMAT;
2157 	cmd->nc_sqe.sqe_cdw10 = format_nvm.r;
2158 
2159 	/*
2160 	 * Some devices like Samsung SM951 don't allow formatting of all
2161 	 * namespaces in one command. Handle that gracefully.
2162 	 */
2163 	if (nsid == (uint32_t)-1)
2164 		cmd->nc_dontpanic = B_TRUE;
2165 	/*
2166 	 * If this format request was initiated by the user, then don't allow a
2167 	 * programmer error to panic the system.
2168 	 */
2169 	if (user)
2170 		cmd->nc_dontpanic = B_TRUE;
2171 
2172 	nvme_admin_cmd(cmd, nvme_format_cmd_timeout);
2173 
2174 	if ((ret = nvme_check_cmd_status(cmd)) != 0) {
2175 		dev_err(nvme->n_dip, CE_WARN,
2176 		    "!FORMAT failed with sct = %x, sc = %x",
2177 		    cmd->nc_cqe.cqe_sf.sf_sct, cmd->nc_cqe.cqe_sf.sf_sc);
2178 	}
2179 
2180 	nvme_free_cmd(cmd);
2181 	return (ret);
2182 }
2183 
2184 /*
2185  * The `bufsize` parameter is usually an output parameter, set by this routine
2186  * when filling in the supported types of logpages from the device. However, for
2187  * vendor-specific pages, it is an input parameter, and must be set
2188  * appropriately by callers.
2189  */
2190 static int
2191 nvme_get_logpage(nvme_t *nvme, boolean_t user, void **buf, size_t *bufsize,
2192     uint8_t logpage, ...)
2193 {
2194 	nvme_cmd_t *cmd = nvme_alloc_cmd(nvme, KM_SLEEP);
2195 	nvme_getlogpage_t getlogpage = { 0 };
2196 	va_list ap;
2197 	int ret;
2198 
2199 	va_start(ap, logpage);
2200 
2201 	cmd->nc_sqid = 0;
2202 	cmd->nc_callback = nvme_wakeup_cmd;
2203 	cmd->nc_sqe.sqe_opc = NVME_OPC_GET_LOG_PAGE;
2204 
2205 	if (user)
2206 		cmd->nc_dontpanic = B_TRUE;
2207 
2208 	getlogpage.b.lp_lid = logpage;
2209 
2210 	switch (logpage) {
2211 	case NVME_LOGPAGE_ERROR:
2212 		cmd->nc_sqe.sqe_nsid = (uint32_t)-1;
2213 		*bufsize = MIN(NVME_VENDOR_SPECIFIC_LOGPAGE_MAX_SIZE,
2214 		    nvme->n_error_log_len * sizeof (nvme_error_log_entry_t));
2215 		break;
2216 
2217 	case NVME_LOGPAGE_HEALTH:
2218 		cmd->nc_sqe.sqe_nsid = va_arg(ap, uint32_t);
2219 		*bufsize = sizeof (nvme_health_log_t);
2220 		break;
2221 
2222 	case NVME_LOGPAGE_FWSLOT:
2223 		cmd->nc_sqe.sqe_nsid = (uint32_t)-1;
2224 		*bufsize = sizeof (nvme_fwslot_log_t);
2225 		break;
2226 
2227 	case NVME_LOGPAGE_NSCHANGE:
2228 		cmd->nc_sqe.sqe_nsid = (uint32_t)-1;
2229 		*bufsize = sizeof (nvme_nschange_list_t);
2230 		break;
2231 
2232 	default:
2233 		/*
2234 		 * This intentionally only checks against the minimum valid
2235 		 * log page ID. `logpage` is a uint8_t, and `0xFF` is a valid
2236 		 * page ID, so this one-sided check avoids a compiler error
2237 		 * about a check that's always true.
2238 		 */
2239 		if (logpage < NVME_VENDOR_SPECIFIC_LOGPAGE_MIN) {
2240 			dev_err(nvme->n_dip, CE_WARN,
2241 			    "!unknown log page requested: %d", logpage);
2242 			atomic_inc_32(&nvme->n_unknown_logpage);
2243 			ret = EINVAL;
2244 			goto fail;
2245 		}
2246 		cmd->nc_sqe.sqe_nsid = va_arg(ap, uint32_t);
2247 	}
2248 
2249 	va_end(ap);
2250 
2251 	getlogpage.b.lp_numd = *bufsize / sizeof (uint32_t) - 1;
2252 
2253 	cmd->nc_sqe.sqe_cdw10 = getlogpage.r;
2254 
2255 	if (nvme_zalloc_dma(nvme, *bufsize,
2256 	    DDI_DMA_READ, &nvme->n_prp_dma_attr, &cmd->nc_dma) != DDI_SUCCESS) {
2257 		dev_err(nvme->n_dip, CE_WARN,
2258 		    "!nvme_zalloc_dma failed for GET LOG PAGE");
2259 		ret = ENOMEM;
2260 		goto fail;
2261 	}
2262 
2263 	if ((ret = nvme_fill_prp(cmd, cmd->nc_dma->nd_dmah)) != 0)
2264 		goto fail;
2265 	nvme_admin_cmd(cmd, nvme_admin_cmd_timeout);
2266 
2267 	if ((ret = nvme_check_cmd_status(cmd)) != 0) {
2268 		dev_err(nvme->n_dip, CE_WARN,
2269 		    "!GET LOG PAGE failed with sct = %x, sc = %x",
2270 		    cmd->nc_cqe.cqe_sf.sf_sct, cmd->nc_cqe.cqe_sf.sf_sc);
2271 		goto fail;
2272 	}
2273 
2274 	*buf = kmem_alloc(*bufsize, KM_SLEEP);
2275 	bcopy(cmd->nc_dma->nd_memp, *buf, *bufsize);
2276 
2277 fail:
2278 	nvme_free_cmd(cmd);
2279 
2280 	return (ret);
2281 }
2282 
2283 static int
2284 nvme_identify(nvme_t *nvme, boolean_t user, uint32_t nsid, uint8_t cns,
2285     void **buf)
2286 {
2287 	nvme_cmd_t *cmd = nvme_alloc_cmd(nvme, KM_SLEEP);
2288 	int ret;
2289 
2290 	if (buf == NULL)
2291 		return (EINVAL);
2292 
2293 	cmd->nc_sqid = 0;
2294 	cmd->nc_callback = nvme_wakeup_cmd;
2295 	cmd->nc_sqe.sqe_opc = NVME_OPC_IDENTIFY;
2296 	cmd->nc_sqe.sqe_nsid = nsid;
2297 	cmd->nc_sqe.sqe_cdw10 = cns;
2298 
2299 	if (nvme_zalloc_dma(nvme, NVME_IDENTIFY_BUFSIZE, DDI_DMA_READ,
2300 	    &nvme->n_prp_dma_attr, &cmd->nc_dma) != DDI_SUCCESS) {
2301 		dev_err(nvme->n_dip, CE_WARN,
2302 		    "!nvme_zalloc_dma failed for IDENTIFY");
2303 		ret = ENOMEM;
2304 		goto fail;
2305 	}
2306 
2307 	if (cmd->nc_dma->nd_ncookie > 2) {
2308 		dev_err(nvme->n_dip, CE_WARN,
2309 		    "!too many DMA cookies for IDENTIFY");
2310 		atomic_inc_32(&nvme->n_too_many_cookies);
2311 		ret = ENOMEM;
2312 		goto fail;
2313 	}
2314 
2315 	cmd->nc_sqe.sqe_dptr.d_prp[0] = cmd->nc_dma->nd_cookie.dmac_laddress;
2316 	if (cmd->nc_dma->nd_ncookie > 1) {
2317 		ddi_dma_nextcookie(cmd->nc_dma->nd_dmah,
2318 		    &cmd->nc_dma->nd_cookie);
2319 		cmd->nc_sqe.sqe_dptr.d_prp[1] =
2320 		    cmd->nc_dma->nd_cookie.dmac_laddress;
2321 	}
2322 
2323 	if (user)
2324 		cmd->nc_dontpanic = B_TRUE;
2325 
2326 	nvme_admin_cmd(cmd, nvme_admin_cmd_timeout);
2327 
2328 	if ((ret = nvme_check_cmd_status(cmd)) != 0) {
2329 		dev_err(nvme->n_dip, CE_WARN,
2330 		    "!IDENTIFY failed with sct = %x, sc = %x",
2331 		    cmd->nc_cqe.cqe_sf.sf_sct, cmd->nc_cqe.cqe_sf.sf_sc);
2332 		goto fail;
2333 	}
2334 
2335 	*buf = kmem_alloc(NVME_IDENTIFY_BUFSIZE, KM_SLEEP);
2336 	bcopy(cmd->nc_dma->nd_memp, *buf, NVME_IDENTIFY_BUFSIZE);
2337 
2338 fail:
2339 	nvme_free_cmd(cmd);
2340 
2341 	return (ret);
2342 }
2343 
2344 static int
2345 nvme_set_features(nvme_t *nvme, boolean_t user, uint32_t nsid, uint8_t feature,
2346     uint32_t val, uint32_t *res)
2347 {
2348 	_NOTE(ARGUNUSED(nsid));
2349 	nvme_cmd_t *cmd = nvme_alloc_cmd(nvme, KM_SLEEP);
2350 	int ret = EINVAL;
2351 
2352 	ASSERT(res != NULL);
2353 
2354 	cmd->nc_sqid = 0;
2355 	cmd->nc_callback = nvme_wakeup_cmd;
2356 	cmd->nc_sqe.sqe_opc = NVME_OPC_SET_FEATURES;
2357 	cmd->nc_sqe.sqe_cdw10 = feature;
2358 	cmd->nc_sqe.sqe_cdw11 = val;
2359 
2360 	if (user)
2361 		cmd->nc_dontpanic = B_TRUE;
2362 
2363 	switch (feature) {
2364 	case NVME_FEAT_WRITE_CACHE:
2365 		if (!nvme->n_write_cache_present)
2366 			goto fail;
2367 		break;
2368 
2369 	case NVME_FEAT_NQUEUES:
2370 		break;
2371 
2372 	default:
2373 		goto fail;
2374 	}
2375 
2376 	nvme_admin_cmd(cmd, nvme_admin_cmd_timeout);
2377 
2378 	if ((ret = nvme_check_cmd_status(cmd)) != 0) {
2379 		dev_err(nvme->n_dip, CE_WARN,
2380 		    "!SET FEATURES %d failed with sct = %x, sc = %x",
2381 		    feature, cmd->nc_cqe.cqe_sf.sf_sct,
2382 		    cmd->nc_cqe.cqe_sf.sf_sc);
2383 		goto fail;
2384 	}
2385 
2386 	*res = cmd->nc_cqe.cqe_dw0;
2387 
2388 fail:
2389 	nvme_free_cmd(cmd);
2390 	return (ret);
2391 }
2392 
2393 static int
2394 nvme_get_features(nvme_t *nvme, boolean_t user, uint32_t nsid, uint8_t feature,
2395     uint32_t *res, void **buf, size_t *bufsize)
2396 {
2397 	nvme_cmd_t *cmd = nvme_alloc_cmd(nvme, KM_SLEEP);
2398 	int ret = EINVAL;
2399 
2400 	ASSERT(res != NULL);
2401 
2402 	if (bufsize != NULL)
2403 		*bufsize = 0;
2404 
2405 	cmd->nc_sqid = 0;
2406 	cmd->nc_callback = nvme_wakeup_cmd;
2407 	cmd->nc_sqe.sqe_opc = NVME_OPC_GET_FEATURES;
2408 	cmd->nc_sqe.sqe_cdw10 = feature;
2409 	cmd->nc_sqe.sqe_cdw11 = *res;
2410 
2411 	/*
2412 	 * For some of the optional features there doesn't seem to be a method
2413 	 * of detecting whether it is supported other than using it.  This will
2414 	 * cause "Invalid Field in Command" error, which is normally considered
2415 	 * a programming error.  Set the nc_dontpanic flag to override the panic
2416 	 * in nvme_check_generic_cmd_status().
2417 	 */
2418 	switch (feature) {
2419 	case NVME_FEAT_ARBITRATION:
2420 	case NVME_FEAT_POWER_MGMT:
2421 	case NVME_FEAT_TEMPERATURE:
2422 	case NVME_FEAT_ERROR:
2423 	case NVME_FEAT_NQUEUES:
2424 	case NVME_FEAT_INTR_COAL:
2425 	case NVME_FEAT_INTR_VECT:
2426 	case NVME_FEAT_WRITE_ATOM:
2427 	case NVME_FEAT_ASYNC_EVENT:
2428 		break;
2429 
2430 	case NVME_FEAT_WRITE_CACHE:
2431 		if (!nvme->n_write_cache_present)
2432 			goto fail;
2433 		break;
2434 
2435 	case NVME_FEAT_LBA_RANGE:
2436 		if (!nvme->n_lba_range_supported)
2437 			goto fail;
2438 
2439 		cmd->nc_dontpanic = B_TRUE;
2440 		cmd->nc_sqe.sqe_nsid = nsid;
2441 		ASSERT(bufsize != NULL);
2442 		*bufsize = NVME_LBA_RANGE_BUFSIZE;
2443 		break;
2444 
2445 	case NVME_FEAT_AUTO_PST:
2446 		if (!nvme->n_auto_pst_supported)
2447 			goto fail;
2448 
2449 		ASSERT(bufsize != NULL);
2450 		*bufsize = NVME_AUTO_PST_BUFSIZE;
2451 		break;
2452 
2453 	case NVME_FEAT_PROGRESS:
2454 		if (!nvme->n_progress_supported)
2455 			goto fail;
2456 
2457 		cmd->nc_dontpanic = B_TRUE;
2458 		break;
2459 
2460 	default:
2461 		goto fail;
2462 	}
2463 
2464 	if (user)
2465 		cmd->nc_dontpanic = B_TRUE;
2466 
2467 	if (bufsize != NULL && *bufsize != 0) {
2468 		if (nvme_zalloc_dma(nvme, *bufsize, DDI_DMA_READ,
2469 		    &nvme->n_prp_dma_attr, &cmd->nc_dma) != DDI_SUCCESS) {
2470 			dev_err(nvme->n_dip, CE_WARN,
2471 			    "!nvme_zalloc_dma failed for GET FEATURES");
2472 			ret = ENOMEM;
2473 			goto fail;
2474 		}
2475 
2476 		if (cmd->nc_dma->nd_ncookie > 2) {
2477 			dev_err(nvme->n_dip, CE_WARN,
2478 			    "!too many DMA cookies for GET FEATURES");
2479 			atomic_inc_32(&nvme->n_too_many_cookies);
2480 			ret = ENOMEM;
2481 			goto fail;
2482 		}
2483 
2484 		cmd->nc_sqe.sqe_dptr.d_prp[0] =
2485 		    cmd->nc_dma->nd_cookie.dmac_laddress;
2486 		if (cmd->nc_dma->nd_ncookie > 1) {
2487 			ddi_dma_nextcookie(cmd->nc_dma->nd_dmah,
2488 			    &cmd->nc_dma->nd_cookie);
2489 			cmd->nc_sqe.sqe_dptr.d_prp[1] =
2490 			    cmd->nc_dma->nd_cookie.dmac_laddress;
2491 		}
2492 	}
2493 
2494 	nvme_admin_cmd(cmd, nvme_admin_cmd_timeout);
2495 
2496 	if ((ret = nvme_check_cmd_status(cmd)) != 0) {
2497 		boolean_t known = B_TRUE;
2498 
2499 		/* Check if this is unsupported optional feature */
2500 		if (cmd->nc_cqe.cqe_sf.sf_sct == NVME_CQE_SCT_GENERIC &&
2501 		    cmd->nc_cqe.cqe_sf.sf_sc == NVME_CQE_SC_GEN_INV_FLD) {
2502 			switch (feature) {
2503 			case NVME_FEAT_LBA_RANGE:
2504 				nvme->n_lba_range_supported = B_FALSE;
2505 				break;
2506 			case NVME_FEAT_PROGRESS:
2507 				nvme->n_progress_supported = B_FALSE;
2508 				break;
2509 			default:
2510 				known = B_FALSE;
2511 				break;
2512 			}
2513 		} else {
2514 			known = B_FALSE;
2515 		}
2516 
2517 		/* Report the error otherwise */
2518 		if (!known) {
2519 			dev_err(nvme->n_dip, CE_WARN,
2520 			    "!GET FEATURES %d failed with sct = %x, sc = %x",
2521 			    feature, cmd->nc_cqe.cqe_sf.sf_sct,
2522 			    cmd->nc_cqe.cqe_sf.sf_sc);
2523 		}
2524 
2525 		goto fail;
2526 	}
2527 
2528 	if (bufsize != NULL && *bufsize != 0) {
2529 		ASSERT(buf != NULL);
2530 		*buf = kmem_alloc(*bufsize, KM_SLEEP);
2531 		bcopy(cmd->nc_dma->nd_memp, *buf, *bufsize);
2532 	}
2533 
2534 	*res = cmd->nc_cqe.cqe_dw0;
2535 
2536 fail:
2537 	nvme_free_cmd(cmd);
2538 	return (ret);
2539 }
2540 
2541 static int
2542 nvme_write_cache_set(nvme_t *nvme, boolean_t enable)
2543 {
2544 	nvme_write_cache_t nwc = { 0 };
2545 
2546 	if (enable)
2547 		nwc.b.wc_wce = 1;
2548 
2549 	return (nvme_set_features(nvme, B_FALSE, 0, NVME_FEAT_WRITE_CACHE,
2550 	    nwc.r, &nwc.r));
2551 }
2552 
2553 static int
2554 nvme_set_nqueues(nvme_t *nvme)
2555 {
2556 	nvme_nqueues_t nq = { 0 };
2557 	int ret;
2558 
2559 	/*
2560 	 * The default is to allocate one completion queue per vector.
2561 	 */
2562 	if (nvme->n_completion_queues == -1)
2563 		nvme->n_completion_queues = nvme->n_intr_cnt;
2564 
2565 	/*
2566 	 * There is no point in having more completion queues than
2567 	 * interrupt vectors.
2568 	 */
2569 	nvme->n_completion_queues = MIN(nvme->n_completion_queues,
2570 	    nvme->n_intr_cnt);
2571 
2572 	/*
2573 	 * The default is to use one submission queue per completion queue.
2574 	 */
2575 	if (nvme->n_submission_queues == -1)
2576 		nvme->n_submission_queues = nvme->n_completion_queues;
2577 
2578 	/*
2579 	 * There is no point in having more compeletion queues than
2580 	 * submission queues.
2581 	 */
2582 	nvme->n_completion_queues = MIN(nvme->n_completion_queues,
2583 	    nvme->n_submission_queues);
2584 
2585 	ASSERT(nvme->n_submission_queues > 0);
2586 	ASSERT(nvme->n_completion_queues > 0);
2587 
2588 	nq.b.nq_nsq = nvme->n_submission_queues - 1;
2589 	nq.b.nq_ncq = nvme->n_completion_queues - 1;
2590 
2591 	ret = nvme_set_features(nvme, B_FALSE, 0, NVME_FEAT_NQUEUES, nq.r,
2592 	    &nq.r);
2593 
2594 	if (ret == 0) {
2595 		/*
2596 		 * Never use more than the requested number of queues.
2597 		 */
2598 		nvme->n_submission_queues = MIN(nvme->n_submission_queues,
2599 		    nq.b.nq_nsq + 1);
2600 		nvme->n_completion_queues = MIN(nvme->n_completion_queues,
2601 		    nq.b.nq_ncq + 1);
2602 	}
2603 
2604 	return (ret);
2605 }
2606 
2607 static int
2608 nvme_create_completion_queue(nvme_t *nvme, nvme_cq_t *cq)
2609 {
2610 	nvme_cmd_t *cmd = nvme_alloc_cmd(nvme, KM_SLEEP);
2611 	nvme_create_queue_dw10_t dw10 = { 0 };
2612 	nvme_create_cq_dw11_t c_dw11 = { 0 };
2613 	int ret;
2614 
2615 	dw10.b.q_qid = cq->ncq_id;
2616 	dw10.b.q_qsize = cq->ncq_nentry - 1;
2617 
2618 	c_dw11.b.cq_pc = 1;
2619 	c_dw11.b.cq_ien = 1;
2620 	c_dw11.b.cq_iv = cq->ncq_id % nvme->n_intr_cnt;
2621 
2622 	cmd->nc_sqid = 0;
2623 	cmd->nc_callback = nvme_wakeup_cmd;
2624 	cmd->nc_sqe.sqe_opc = NVME_OPC_CREATE_CQUEUE;
2625 	cmd->nc_sqe.sqe_cdw10 = dw10.r;
2626 	cmd->nc_sqe.sqe_cdw11 = c_dw11.r;
2627 	cmd->nc_sqe.sqe_dptr.d_prp[0] = cq->ncq_dma->nd_cookie.dmac_laddress;
2628 
2629 	nvme_admin_cmd(cmd, nvme_admin_cmd_timeout);
2630 
2631 	if ((ret = nvme_check_cmd_status(cmd)) != 0) {
2632 		dev_err(nvme->n_dip, CE_WARN,
2633 		    "!CREATE CQUEUE failed with sct = %x, sc = %x",
2634 		    cmd->nc_cqe.cqe_sf.sf_sct, cmd->nc_cqe.cqe_sf.sf_sc);
2635 	}
2636 
2637 	nvme_free_cmd(cmd);
2638 
2639 	return (ret);
2640 }
2641 
2642 static int
2643 nvme_create_io_qpair(nvme_t *nvme, nvme_qpair_t *qp, uint16_t idx)
2644 {
2645 	nvme_cq_t *cq = qp->nq_cq;
2646 	nvme_cmd_t *cmd;
2647 	nvme_create_queue_dw10_t dw10 = { 0 };
2648 	nvme_create_sq_dw11_t s_dw11 = { 0 };
2649 	int ret;
2650 
2651 	/*
2652 	 * It is possible to have more qpairs than completion queues,
2653 	 * and when the idx > ncq_id, that completion queue is shared
2654 	 * and has already been created.
2655 	 */
2656 	if (idx <= cq->ncq_id &&
2657 	    nvme_create_completion_queue(nvme, cq) != DDI_SUCCESS)
2658 		return (DDI_FAILURE);
2659 
2660 	dw10.b.q_qid = idx;
2661 	dw10.b.q_qsize = qp->nq_nentry - 1;
2662 
2663 	s_dw11.b.sq_pc = 1;
2664 	s_dw11.b.sq_cqid = cq->ncq_id;
2665 
2666 	cmd = nvme_alloc_cmd(nvme, KM_SLEEP);
2667 	cmd->nc_sqid = 0;
2668 	cmd->nc_callback = nvme_wakeup_cmd;
2669 	cmd->nc_sqe.sqe_opc = NVME_OPC_CREATE_SQUEUE;
2670 	cmd->nc_sqe.sqe_cdw10 = dw10.r;
2671 	cmd->nc_sqe.sqe_cdw11 = s_dw11.r;
2672 	cmd->nc_sqe.sqe_dptr.d_prp[0] = qp->nq_sqdma->nd_cookie.dmac_laddress;
2673 
2674 	nvme_admin_cmd(cmd, nvme_admin_cmd_timeout);
2675 
2676 	if ((ret = nvme_check_cmd_status(cmd)) != 0) {
2677 		dev_err(nvme->n_dip, CE_WARN,
2678 		    "!CREATE SQUEUE failed with sct = %x, sc = %x",
2679 		    cmd->nc_cqe.cqe_sf.sf_sct, cmd->nc_cqe.cqe_sf.sf_sc);
2680 	}
2681 
2682 	nvme_free_cmd(cmd);
2683 
2684 	return (ret);
2685 }
2686 
2687 static boolean_t
2688 nvme_reset(nvme_t *nvme, boolean_t quiesce)
2689 {
2690 	nvme_reg_csts_t csts;
2691 	int i;
2692 
2693 	nvme_put32(nvme, NVME_REG_CC, 0);
2694 
2695 	csts.r = nvme_get32(nvme, NVME_REG_CSTS);
2696 	if (csts.b.csts_rdy == 1) {
2697 		nvme_put32(nvme, NVME_REG_CC, 0);
2698 		for (i = 0; i != nvme->n_timeout * 10; i++) {
2699 			csts.r = nvme_get32(nvme, NVME_REG_CSTS);
2700 			if (csts.b.csts_rdy == 0)
2701 				break;
2702 
2703 			if (quiesce)
2704 				drv_usecwait(50000);
2705 			else
2706 				delay(drv_usectohz(50000));
2707 		}
2708 	}
2709 
2710 	nvme_put32(nvme, NVME_REG_AQA, 0);
2711 	nvme_put32(nvme, NVME_REG_ASQ, 0);
2712 	nvme_put32(nvme, NVME_REG_ACQ, 0);
2713 
2714 	csts.r = nvme_get32(nvme, NVME_REG_CSTS);
2715 	return (csts.b.csts_rdy == 0 ? B_TRUE : B_FALSE);
2716 }
2717 
2718 static void
2719 nvme_shutdown(nvme_t *nvme, int mode, boolean_t quiesce)
2720 {
2721 	nvme_reg_cc_t cc;
2722 	nvme_reg_csts_t csts;
2723 	int i;
2724 
2725 	ASSERT(mode == NVME_CC_SHN_NORMAL || mode == NVME_CC_SHN_ABRUPT);
2726 
2727 	cc.r = nvme_get32(nvme, NVME_REG_CC);
2728 	cc.b.cc_shn = mode & 0x3;
2729 	nvme_put32(nvme, NVME_REG_CC, cc.r);
2730 
2731 	for (i = 0; i != 10; i++) {
2732 		csts.r = nvme_get32(nvme, NVME_REG_CSTS);
2733 		if (csts.b.csts_shst == NVME_CSTS_SHN_COMPLETE)
2734 			break;
2735 
2736 		if (quiesce)
2737 			drv_usecwait(100000);
2738 		else
2739 			delay(drv_usectohz(100000));
2740 	}
2741 }
2742 
2743 /*
2744  * Return length of string without trailing spaces.
2745  */
2746 static int
2747 nvme_strlen(const char *str, int len)
2748 {
2749 	if (len <= 0)
2750 		return (0);
2751 
2752 	while (str[--len] == ' ')
2753 		;
2754 
2755 	return (++len);
2756 }
2757 
2758 static void
2759 nvme_config_min_block_size(nvme_t *nvme, char *model, char *val)
2760 {
2761 	ulong_t bsize = 0;
2762 	char *msg = "";
2763 
2764 	if (ddi_strtoul(val, NULL, 0, &bsize) != 0)
2765 		goto err;
2766 
2767 	if (!ISP2(bsize)) {
2768 		msg = ": not a power of 2";
2769 		goto err;
2770 	}
2771 
2772 	if (bsize < NVME_DEFAULT_MIN_BLOCK_SIZE) {
2773 		msg = ": too low";
2774 		goto err;
2775 	}
2776 
2777 	nvme->n_min_block_size = bsize;
2778 	return;
2779 
2780 err:
2781 	dev_err(nvme->n_dip, CE_WARN,
2782 	    "!nvme-config-list: ignoring invalid min-phys-block-size '%s' "
2783 	    "for model '%s'%s", val, model, msg);
2784 
2785 	nvme->n_min_block_size = NVME_DEFAULT_MIN_BLOCK_SIZE;
2786 }
2787 
2788 static void
2789 nvme_config_boolean(nvme_t *nvme, char *model, char *name, char *val,
2790     boolean_t *b)
2791 {
2792 	if (strcmp(val, "on") == 0 ||
2793 	    strcmp(val, "true") == 0)
2794 		*b = B_TRUE;
2795 	else if (strcmp(val, "off") == 0 ||
2796 	    strcmp(val, "false") == 0)
2797 		*b = B_FALSE;
2798 	else
2799 		dev_err(nvme->n_dip, CE_WARN,
2800 		    "!nvme-config-list: invalid value for %s '%s'"
2801 		    " for model '%s', ignoring", name, val, model);
2802 }
2803 
2804 static void
2805 nvme_config_list(nvme_t *nvme)
2806 {
2807 	char	**config_list;
2808 	uint_t	nelem;
2809 	int	rv, i;
2810 
2811 	/*
2812 	 * We're following the pattern of 'sd-config-list' here, but extend it.
2813 	 * Instead of two we have three separate strings for "model", "fwrev",
2814 	 * and "name-value-list".
2815 	 */
2816 	rv = ddi_prop_lookup_string_array(DDI_DEV_T_ANY, nvme->n_dip,
2817 	    DDI_PROP_DONTPASS, "nvme-config-list", &config_list, &nelem);
2818 
2819 	if (rv != DDI_PROP_SUCCESS) {
2820 		if (rv == DDI_PROP_CANNOT_DECODE) {
2821 			dev_err(nvme->n_dip, CE_WARN,
2822 			    "!nvme-config-list: cannot be decoded");
2823 		}
2824 
2825 		return;
2826 	}
2827 
2828 	if ((nelem % 3) != 0) {
2829 		dev_err(nvme->n_dip, CE_WARN, "!nvme-config-list: must be "
2830 		    "triplets of <model>/<fwrev>/<name-value-list> strings ");
2831 		goto out;
2832 	}
2833 
2834 	for (i = 0; i < nelem; i += 3) {
2835 		char	*model = config_list[i];
2836 		char	*fwrev = config_list[i + 1];
2837 		char	*nvp, *save_nv;
2838 		int	id_model_len, id_fwrev_len;
2839 
2840 		id_model_len = nvme_strlen(nvme->n_idctl->id_model,
2841 		    sizeof (nvme->n_idctl->id_model));
2842 
2843 		if (strlen(model) != id_model_len)
2844 			continue;
2845 
2846 		if (strncmp(model, nvme->n_idctl->id_model, id_model_len) != 0)
2847 			continue;
2848 
2849 		id_fwrev_len = nvme_strlen(nvme->n_idctl->id_fwrev,
2850 		    sizeof (nvme->n_idctl->id_fwrev));
2851 
2852 		if (strlen(fwrev) != 0) {
2853 			boolean_t match = B_FALSE;
2854 			char *fwr, *last_fw;
2855 
2856 			for (fwr = strtok_r(fwrev, ",", &last_fw);
2857 			    fwr != NULL;
2858 			    fwr = strtok_r(NULL, ",", &last_fw)) {
2859 				if (strlen(fwr) != id_fwrev_len)
2860 					continue;
2861 
2862 				if (strncmp(fwr, nvme->n_idctl->id_fwrev,
2863 				    id_fwrev_len) == 0)
2864 					match = B_TRUE;
2865 			}
2866 
2867 			if (!match)
2868 				continue;
2869 		}
2870 
2871 		/*
2872 		 * We should now have a comma-separated list of name:value
2873 		 * pairs.
2874 		 */
2875 		for (nvp = strtok_r(config_list[i + 2], ",", &save_nv);
2876 		    nvp != NULL; nvp = strtok_r(NULL, ",", &save_nv)) {
2877 			char	*name = nvp;
2878 			char	*val = strchr(nvp, ':');
2879 
2880 			if (val == NULL || name == val) {
2881 				dev_err(nvme->n_dip, CE_WARN,
2882 				    "!nvme-config-list: <name-value-list> "
2883 				    "for model '%s' is malformed", model);
2884 				goto out;
2885 			}
2886 
2887 			/*
2888 			 * Null-terminate 'name', move 'val' past ':' sep.
2889 			 */
2890 			*val++ = '\0';
2891 
2892 			/*
2893 			 * Process the name:val pairs that we know about.
2894 			 */
2895 			if (strcmp(name, "ignore-unknown-vendor-status") == 0) {
2896 				nvme_config_boolean(nvme, model, name, val,
2897 				    &nvme->n_ignore_unknown_vendor_status);
2898 			} else if (strcmp(name, "min-phys-block-size") == 0) {
2899 				nvme_config_min_block_size(nvme, model, val);
2900 			} else if (strcmp(name, "volatile-write-cache") == 0) {
2901 				nvme_config_boolean(nvme, model, name, val,
2902 				    &nvme->n_write_cache_enabled);
2903 			} else {
2904 				/*
2905 				 * Unknown 'name'.
2906 				 */
2907 				dev_err(nvme->n_dip, CE_WARN,
2908 				    "!nvme-config-list: unknown config '%s' "
2909 				    "for model '%s', ignoring", name, model);
2910 			}
2911 		}
2912 	}
2913 
2914 out:
2915 	ddi_prop_free(config_list);
2916 }
2917 
2918 static void
2919 nvme_prepare_devid(nvme_t *nvme, uint32_t nsid)
2920 {
2921 	/*
2922 	 * Section 7.7 of the spec describes how to get a unique ID for
2923 	 * the controller: the vendor ID, the model name and the serial
2924 	 * number shall be unique when combined.
2925 	 *
2926 	 * If a namespace has no EUI64 we use the above and add the hex
2927 	 * namespace ID to get a unique ID for the namespace.
2928 	 */
2929 	char model[sizeof (nvme->n_idctl->id_model) + 1];
2930 	char serial[sizeof (nvme->n_idctl->id_serial) + 1];
2931 
2932 	bcopy(nvme->n_idctl->id_model, model, sizeof (nvme->n_idctl->id_model));
2933 	bcopy(nvme->n_idctl->id_serial, serial,
2934 	    sizeof (nvme->n_idctl->id_serial));
2935 
2936 	model[sizeof (nvme->n_idctl->id_model)] = '\0';
2937 	serial[sizeof (nvme->n_idctl->id_serial)] = '\0';
2938 
2939 	NVME_NSID2NS(nvme, nsid)->ns_devid = kmem_asprintf("%4X-%s-%s-%X",
2940 	    nvme->n_idctl->id_vid, model, serial, nsid);
2941 }
2942 
2943 static boolean_t
2944 nvme_allocated_ns(nvme_namespace_t *ns)
2945 {
2946 	nvme_t *nvme = ns->ns_nvme;
2947 
2948 	ASSERT(MUTEX_HELD(&nvme->n_mgmt_mutex));
2949 
2950 	/*
2951 	 * Since we don't know any better, we assume all namespaces to be
2952 	 * allocated.
2953 	 */
2954 	return (B_TRUE);
2955 }
2956 
2957 static boolean_t
2958 nvme_active_ns(nvme_namespace_t *ns)
2959 {
2960 	nvme_t *nvme = ns->ns_nvme;
2961 	boolean_t ret = B_FALSE;
2962 	uint64_t *ptr;
2963 
2964 	ASSERT(MUTEX_HELD(&nvme->n_mgmt_mutex));
2965 
2966 	/*
2967 	 * Check whether the IDENTIFY NAMESPACE data is zero-filled.
2968 	 */
2969 	for (ptr = (uint64_t *)ns->ns_idns;
2970 	    ptr != (uint64_t *)(ns->ns_idns + 1);
2971 	    ptr++) {
2972 		if (*ptr != 0) {
2973 			ret = B_TRUE;
2974 			break;
2975 		}
2976 	}
2977 
2978 	return (ret);
2979 }
2980 
2981 static int
2982 nvme_init_ns(nvme_t *nvme, int nsid)
2983 {
2984 	nvme_namespace_t *ns = NVME_NSID2NS(nvme, nsid);
2985 	nvme_identify_nsid_t *idns;
2986 	boolean_t was_ignored;
2987 	int last_rp;
2988 
2989 	ns->ns_nvme = nvme;
2990 
2991 	ASSERT(MUTEX_HELD(&nvme->n_mgmt_mutex));
2992 
2993 	if (nvme_identify(nvme, B_FALSE, nsid, NVME_IDENTIFY_NSID,
2994 	    (void **)&idns) != 0) {
2995 		dev_err(nvme->n_dip, CE_WARN,
2996 		    "!failed to identify namespace %d", nsid);
2997 		return (DDI_FAILURE);
2998 	}
2999 
3000 	if (ns->ns_idns != NULL)
3001 		kmem_free(ns->ns_idns, sizeof (nvme_identify_nsid_t));
3002 
3003 	ns->ns_idns = idns;
3004 	ns->ns_id = nsid;
3005 
3006 	was_ignored = ns->ns_ignore;
3007 
3008 	ns->ns_allocated = nvme_allocated_ns(ns);
3009 	ns->ns_active = nvme_active_ns(ns);
3010 
3011 	ns->ns_block_count = idns->id_nsize;
3012 	ns->ns_block_size =
3013 	    1 << idns->id_lbaf[idns->id_flbas.lba_format].lbaf_lbads;
3014 	ns->ns_best_block_size = ns->ns_block_size;
3015 
3016 	/*
3017 	 * Get the EUI64 if present.
3018 	 */
3019 	if (NVME_VERSION_ATLEAST(&nvme->n_version, 1, 1))
3020 		bcopy(idns->id_eui64, ns->ns_eui64, sizeof (ns->ns_eui64));
3021 
3022 	/*
3023 	 * Get the NGUID if present.
3024 	 */
3025 	if (NVME_VERSION_ATLEAST(&nvme->n_version, 1, 2))
3026 		bcopy(idns->id_nguid, ns->ns_nguid, sizeof (ns->ns_nguid));
3027 
3028 	/*LINTED: E_BAD_PTR_CAST_ALIGN*/
3029 	if (*(uint64_t *)ns->ns_eui64 == 0)
3030 		nvme_prepare_devid(nvme, ns->ns_id);
3031 
3032 	(void) snprintf(ns->ns_name, sizeof (ns->ns_name), "%u", ns->ns_id);
3033 
3034 	/*
3035 	 * Find the LBA format with no metadata and the best relative
3036 	 * performance. A value of 3 means "degraded", 0 is best.
3037 	 */
3038 	last_rp = 3;
3039 	for (int j = 0; j <= idns->id_nlbaf; j++) {
3040 		if (idns->id_lbaf[j].lbaf_lbads == 0)
3041 			break;
3042 		if (idns->id_lbaf[j].lbaf_ms != 0)
3043 			continue;
3044 		if (idns->id_lbaf[j].lbaf_rp >= last_rp)
3045 			continue;
3046 		last_rp = idns->id_lbaf[j].lbaf_rp;
3047 		ns->ns_best_block_size =
3048 		    1 << idns->id_lbaf[j].lbaf_lbads;
3049 	}
3050 
3051 	if (ns->ns_best_block_size < nvme->n_min_block_size)
3052 		ns->ns_best_block_size = nvme->n_min_block_size;
3053 
3054 	was_ignored = ns->ns_ignore;
3055 
3056 	/*
3057 	 * We currently don't support namespaces that use either:
3058 	 * - protection information
3059 	 * - illegal block size (< 512)
3060 	 */
3061 	if (idns->id_dps.dp_pinfo) {
3062 		dev_err(nvme->n_dip, CE_WARN,
3063 		    "!ignoring namespace %d, unsupported feature: "
3064 		    "pinfo = %d", nsid, idns->id_dps.dp_pinfo);
3065 		ns->ns_ignore = B_TRUE;
3066 	} else if (ns->ns_block_size < 512) {
3067 		dev_err(nvme->n_dip, CE_WARN,
3068 		    "!ignoring namespace %d, unsupported block size %"PRIu64,
3069 		    nsid, (uint64_t)ns->ns_block_size);
3070 		ns->ns_ignore = B_TRUE;
3071 	} else {
3072 		ns->ns_ignore = B_FALSE;
3073 	}
3074 
3075 	/*
3076 	 * Keep a count of namespaces which are attachable.
3077 	 * See comments in nvme_bd_driveinfo() to understand its effect.
3078 	 */
3079 	if (was_ignored) {
3080 		/*
3081 		 * Previously ignored, but now not. Count it.
3082 		 */
3083 		if (!ns->ns_ignore)
3084 			nvme->n_namespaces_attachable++;
3085 	} else {
3086 		/*
3087 		 * Wasn't ignored previously, but now needs to be.
3088 		 * Discount it.
3089 		 */
3090 		if (ns->ns_ignore)
3091 			nvme->n_namespaces_attachable--;
3092 	}
3093 
3094 	return (DDI_SUCCESS);
3095 }
3096 
3097 static int
3098 nvme_attach_ns(nvme_t *nvme, int nsid)
3099 {
3100 	nvme_namespace_t *ns = NVME_NSID2NS(nvme, nsid);
3101 
3102 	ASSERT(MUTEX_HELD(&nvme->n_mgmt_mutex));
3103 
3104 	if (ns->ns_ignore)
3105 		return (ENOTSUP);
3106 
3107 	if (ns->ns_bd_hdl == NULL) {
3108 		bd_ops_t ops = nvme_bd_ops;
3109 
3110 		if (!nvme->n_idctl->id_oncs.on_dset_mgmt)
3111 			ops.o_free_space = NULL;
3112 
3113 		ns->ns_bd_hdl = bd_alloc_handle(ns, &ops, &nvme->n_prp_dma_attr,
3114 		    KM_SLEEP);
3115 
3116 		if (ns->ns_bd_hdl == NULL) {
3117 			dev_err(nvme->n_dip, CE_WARN, "!Failed to get blkdev "
3118 			    "handle for namespace id %d", nsid);
3119 			return (EINVAL);
3120 		}
3121 	}
3122 
3123 	if (bd_attach_handle(nvme->n_dip, ns->ns_bd_hdl) != DDI_SUCCESS)
3124 		return (EBUSY);
3125 
3126 	ns->ns_attached = B_TRUE;
3127 
3128 	return (0);
3129 }
3130 
3131 static int
3132 nvme_detach_ns(nvme_t *nvme, int nsid)
3133 {
3134 	nvme_namespace_t *ns = NVME_NSID2NS(nvme, nsid);
3135 	int rv;
3136 
3137 	ASSERT(MUTEX_HELD(&nvme->n_mgmt_mutex));
3138 
3139 	if (ns->ns_ignore || !ns->ns_attached)
3140 		return (0);
3141 
3142 	ASSERT(ns->ns_bd_hdl != NULL);
3143 	rv = bd_detach_handle(ns->ns_bd_hdl);
3144 	if (rv != DDI_SUCCESS)
3145 		return (EBUSY);
3146 	else
3147 		ns->ns_attached = B_FALSE;
3148 
3149 	return (0);
3150 }
3151 
3152 static int
3153 nvme_init(nvme_t *nvme)
3154 {
3155 	nvme_reg_cc_t cc = { 0 };
3156 	nvme_reg_aqa_t aqa = { 0 };
3157 	nvme_reg_asq_t asq = { 0 };
3158 	nvme_reg_acq_t acq = { 0 };
3159 	nvme_reg_cap_t cap;
3160 	nvme_reg_vs_t vs;
3161 	nvme_reg_csts_t csts;
3162 	int i = 0;
3163 	uint16_t nqueues;
3164 	uint_t tq_threads;
3165 	char model[sizeof (nvme->n_idctl->id_model) + 1];
3166 	char *vendor, *product;
3167 
3168 	/* Check controller version */
3169 	vs.r = nvme_get32(nvme, NVME_REG_VS);
3170 	nvme->n_version.v_major = vs.b.vs_mjr;
3171 	nvme->n_version.v_minor = vs.b.vs_mnr;
3172 	dev_err(nvme->n_dip, CE_CONT, "?NVMe spec version %d.%d",
3173 	    nvme->n_version.v_major, nvme->n_version.v_minor);
3174 
3175 	if (nvme->n_version.v_major > nvme_version_major) {
3176 		dev_err(nvme->n_dip, CE_WARN, "!no support for version > %d.x",
3177 		    nvme_version_major);
3178 		if (nvme->n_strict_version)
3179 			goto fail;
3180 	}
3181 
3182 	/* retrieve controller configuration */
3183 	cap.r = nvme_get64(nvme, NVME_REG_CAP);
3184 
3185 	if ((cap.b.cap_css & NVME_CAP_CSS_NVM) == 0) {
3186 		dev_err(nvme->n_dip, CE_WARN,
3187 		    "!NVM command set not supported by hardware");
3188 		goto fail;
3189 	}
3190 
3191 	nvme->n_nssr_supported = cap.b.cap_nssrs;
3192 	nvme->n_doorbell_stride = 4 << cap.b.cap_dstrd;
3193 	nvme->n_timeout = cap.b.cap_to;
3194 	nvme->n_arbitration_mechanisms = cap.b.cap_ams;
3195 	nvme->n_cont_queues_reqd = cap.b.cap_cqr;
3196 	nvme->n_max_queue_entries = cap.b.cap_mqes + 1;
3197 
3198 	/*
3199 	 * The MPSMIN and MPSMAX fields in the CAP register use 0 to specify
3200 	 * the base page size of 4k (1<<12), so add 12 here to get the real
3201 	 * page size value.
3202 	 */
3203 	nvme->n_pageshift = MIN(MAX(cap.b.cap_mpsmin + 12, PAGESHIFT),
3204 	    cap.b.cap_mpsmax + 12);
3205 	nvme->n_pagesize = 1UL << (nvme->n_pageshift);
3206 
3207 	/*
3208 	 * Set up Queue DMA to transfer at least 1 page-aligned page at a time.
3209 	 */
3210 	nvme->n_queue_dma_attr.dma_attr_align = nvme->n_pagesize;
3211 	nvme->n_queue_dma_attr.dma_attr_minxfer = nvme->n_pagesize;
3212 
3213 	/*
3214 	 * Set up PRP DMA to transfer 1 page-aligned page at a time.
3215 	 * Maxxfer may be increased after we identified the controller limits.
3216 	 */
3217 	nvme->n_prp_dma_attr.dma_attr_maxxfer = nvme->n_pagesize;
3218 	nvme->n_prp_dma_attr.dma_attr_minxfer = nvme->n_pagesize;
3219 	nvme->n_prp_dma_attr.dma_attr_align = nvme->n_pagesize;
3220 	nvme->n_prp_dma_attr.dma_attr_seg = nvme->n_pagesize - 1;
3221 
3222 	/*
3223 	 * Reset controller if it's still in ready state.
3224 	 */
3225 	if (nvme_reset(nvme, B_FALSE) == B_FALSE) {
3226 		dev_err(nvme->n_dip, CE_WARN, "!unable to reset controller");
3227 		ddi_fm_service_impact(nvme->n_dip, DDI_SERVICE_LOST);
3228 		nvme->n_dead = B_TRUE;
3229 		goto fail;
3230 	}
3231 
3232 	/*
3233 	 * Create the cq array with one completion queue to be assigned
3234 	 * to the admin queue pair and a limited number of taskqs (4).
3235 	 */
3236 	if (nvme_create_cq_array(nvme, 1, nvme->n_admin_queue_len, 4) !=
3237 	    DDI_SUCCESS) {
3238 		dev_err(nvme->n_dip, CE_WARN,
3239 		    "!failed to pre-allocate admin completion queue");
3240 		goto fail;
3241 	}
3242 	/*
3243 	 * Create the admin queue pair.
3244 	 */
3245 	if (nvme_alloc_qpair(nvme, nvme->n_admin_queue_len, &nvme->n_adminq, 0)
3246 	    != DDI_SUCCESS) {
3247 		dev_err(nvme->n_dip, CE_WARN,
3248 		    "!unable to allocate admin qpair");
3249 		goto fail;
3250 	}
3251 	nvme->n_ioq = kmem_alloc(sizeof (nvme_qpair_t *), KM_SLEEP);
3252 	nvme->n_ioq[0] = nvme->n_adminq;
3253 
3254 	nvme->n_progress |= NVME_ADMIN_QUEUE;
3255 
3256 	(void) ddi_prop_update_int(DDI_DEV_T_NONE, nvme->n_dip,
3257 	    "admin-queue-len", nvme->n_admin_queue_len);
3258 
3259 	aqa.b.aqa_asqs = aqa.b.aqa_acqs = nvme->n_admin_queue_len - 1;
3260 	asq = nvme->n_adminq->nq_sqdma->nd_cookie.dmac_laddress;
3261 	acq = nvme->n_adminq->nq_cq->ncq_dma->nd_cookie.dmac_laddress;
3262 
3263 	ASSERT((asq & (nvme->n_pagesize - 1)) == 0);
3264 	ASSERT((acq & (nvme->n_pagesize - 1)) == 0);
3265 
3266 	nvme_put32(nvme, NVME_REG_AQA, aqa.r);
3267 	nvme_put64(nvme, NVME_REG_ASQ, asq);
3268 	nvme_put64(nvme, NVME_REG_ACQ, acq);
3269 
3270 	cc.b.cc_ams = 0;	/* use Round-Robin arbitration */
3271 	cc.b.cc_css = 0;	/* use NVM command set */
3272 	cc.b.cc_mps = nvme->n_pageshift - 12;
3273 	cc.b.cc_shn = 0;	/* no shutdown in progress */
3274 	cc.b.cc_en = 1;		/* enable controller */
3275 	cc.b.cc_iosqes = 6;	/* submission queue entry is 2^6 bytes long */
3276 	cc.b.cc_iocqes = 4;	/* completion queue entry is 2^4 bytes long */
3277 
3278 	nvme_put32(nvme, NVME_REG_CC, cc.r);
3279 
3280 	/*
3281 	 * Wait for the controller to become ready.
3282 	 */
3283 	csts.r = nvme_get32(nvme, NVME_REG_CSTS);
3284 	if (csts.b.csts_rdy == 0) {
3285 		for (i = 0; i != nvme->n_timeout * 10; i++) {
3286 			delay(drv_usectohz(50000));
3287 			csts.r = nvme_get32(nvme, NVME_REG_CSTS);
3288 
3289 			if (csts.b.csts_cfs == 1) {
3290 				dev_err(nvme->n_dip, CE_WARN,
3291 				    "!controller fatal status at init");
3292 				ddi_fm_service_impact(nvme->n_dip,
3293 				    DDI_SERVICE_LOST);
3294 				nvme->n_dead = B_TRUE;
3295 				goto fail;
3296 			}
3297 
3298 			if (csts.b.csts_rdy == 1)
3299 				break;
3300 		}
3301 	}
3302 
3303 	if (csts.b.csts_rdy == 0) {
3304 		dev_err(nvme->n_dip, CE_WARN, "!controller not ready");
3305 		ddi_fm_service_impact(nvme->n_dip, DDI_SERVICE_LOST);
3306 		nvme->n_dead = B_TRUE;
3307 		goto fail;
3308 	}
3309 
3310 	/*
3311 	 * Assume an abort command limit of 1. We'll destroy and re-init
3312 	 * that later when we know the true abort command limit.
3313 	 */
3314 	sema_init(&nvme->n_abort_sema, 1, NULL, SEMA_DRIVER, NULL);
3315 
3316 	/*
3317 	 * Set up initial interrupt for admin queue.
3318 	 */
3319 	if ((nvme_setup_interrupts(nvme, DDI_INTR_TYPE_MSIX, 1)
3320 	    != DDI_SUCCESS) &&
3321 	    (nvme_setup_interrupts(nvme, DDI_INTR_TYPE_MSI, 1)
3322 	    != DDI_SUCCESS) &&
3323 	    (nvme_setup_interrupts(nvme, DDI_INTR_TYPE_FIXED, 1)
3324 	    != DDI_SUCCESS)) {
3325 		dev_err(nvme->n_dip, CE_WARN,
3326 		    "!failed to setup initial interrupt");
3327 		goto fail;
3328 	}
3329 
3330 	/*
3331 	 * Post an asynchronous event command to catch errors.
3332 	 * We assume the asynchronous events are supported as required by
3333 	 * specification (Figure 40 in section 5 of NVMe 1.2).
3334 	 * However, since at least qemu does not follow the specification,
3335 	 * we need a mechanism to protect ourselves.
3336 	 */
3337 	nvme->n_async_event_supported = B_TRUE;
3338 	nvme_async_event(nvme);
3339 
3340 	/*
3341 	 * Identify Controller
3342 	 */
3343 	if (nvme_identify(nvme, B_FALSE, 0, NVME_IDENTIFY_CTRL,
3344 	    (void **)&nvme->n_idctl) != 0) {
3345 		dev_err(nvme->n_dip, CE_WARN,
3346 		    "!failed to identify controller");
3347 		goto fail;
3348 	}
3349 
3350 	/*
3351 	 * Process nvme-config-list (if present) in nvme.conf.
3352 	 */
3353 	nvme_config_list(nvme);
3354 
3355 	/*
3356 	 * Get Vendor & Product ID
3357 	 */
3358 	bcopy(nvme->n_idctl->id_model, model, sizeof (nvme->n_idctl->id_model));
3359 	model[sizeof (nvme->n_idctl->id_model)] = '\0';
3360 	sata_split_model(model, &vendor, &product);
3361 
3362 	if (vendor == NULL)
3363 		nvme->n_vendor = strdup("NVMe");
3364 	else
3365 		nvme->n_vendor = strdup(vendor);
3366 
3367 	nvme->n_product = strdup(product);
3368 
3369 	/*
3370 	 * Get controller limits.
3371 	 */
3372 	nvme->n_async_event_limit = MAX(NVME_MIN_ASYNC_EVENT_LIMIT,
3373 	    MIN(nvme->n_admin_queue_len / 10,
3374 	    MIN(nvme->n_idctl->id_aerl + 1, nvme->n_async_event_limit)));
3375 
3376 	(void) ddi_prop_update_int(DDI_DEV_T_NONE, nvme->n_dip,
3377 	    "async-event-limit", nvme->n_async_event_limit);
3378 
3379 	nvme->n_abort_command_limit = nvme->n_idctl->id_acl + 1;
3380 
3381 	/*
3382 	 * Reinitialize the semaphore with the true abort command limit
3383 	 * supported by the hardware. It's not necessary to disable interrupts
3384 	 * as only command aborts use the semaphore, and no commands are
3385 	 * executed or aborted while we're here.
3386 	 */
3387 	sema_destroy(&nvme->n_abort_sema);
3388 	sema_init(&nvme->n_abort_sema, nvme->n_abort_command_limit - 1, NULL,
3389 	    SEMA_DRIVER, NULL);
3390 
3391 	nvme->n_progress |= NVME_CTRL_LIMITS;
3392 
3393 	if (nvme->n_idctl->id_mdts == 0)
3394 		nvme->n_max_data_transfer_size = nvme->n_pagesize * 65536;
3395 	else
3396 		nvme->n_max_data_transfer_size =
3397 		    1ull << (nvme->n_pageshift + nvme->n_idctl->id_mdts);
3398 
3399 	nvme->n_error_log_len = nvme->n_idctl->id_elpe + 1;
3400 
3401 	/*
3402 	 * Limit n_max_data_transfer_size to what we can handle in one PRP.
3403 	 * Chained PRPs are currently unsupported.
3404 	 *
3405 	 * This is a no-op on hardware which doesn't support a transfer size
3406 	 * big enough to require chained PRPs.
3407 	 */
3408 	nvme->n_max_data_transfer_size = MIN(nvme->n_max_data_transfer_size,
3409 	    (nvme->n_pagesize / sizeof (uint64_t) * nvme->n_pagesize));
3410 
3411 	nvme->n_prp_dma_attr.dma_attr_maxxfer = nvme->n_max_data_transfer_size;
3412 
3413 	/*
3414 	 * Make sure the minimum/maximum queue entry sizes are not
3415 	 * larger/smaller than the default.
3416 	 */
3417 
3418 	if (((1 << nvme->n_idctl->id_sqes.qes_min) > sizeof (nvme_sqe_t)) ||
3419 	    ((1 << nvme->n_idctl->id_sqes.qes_max) < sizeof (nvme_sqe_t)) ||
3420 	    ((1 << nvme->n_idctl->id_cqes.qes_min) > sizeof (nvme_cqe_t)) ||
3421 	    ((1 << nvme->n_idctl->id_cqes.qes_max) < sizeof (nvme_cqe_t)))
3422 		goto fail;
3423 
3424 	/*
3425 	 * Check for the presence of a Volatile Write Cache. If present,
3426 	 * enable or disable based on the value of the property
3427 	 * volatile-write-cache-enable (default is enabled).
3428 	 */
3429 	nvme->n_write_cache_present =
3430 	    nvme->n_idctl->id_vwc.vwc_present == 0 ? B_FALSE : B_TRUE;
3431 
3432 	(void) ddi_prop_update_int(DDI_DEV_T_NONE, nvme->n_dip,
3433 	    "volatile-write-cache-present",
3434 	    nvme->n_write_cache_present ? 1 : 0);
3435 
3436 	if (!nvme->n_write_cache_present) {
3437 		nvme->n_write_cache_enabled = B_FALSE;
3438 	} else if (nvme_write_cache_set(nvme, nvme->n_write_cache_enabled)
3439 	    != 0) {
3440 		dev_err(nvme->n_dip, CE_WARN,
3441 		    "!failed to %sable volatile write cache",
3442 		    nvme->n_write_cache_enabled ? "en" : "dis");
3443 		/*
3444 		 * Assume the cache is (still) enabled.
3445 		 */
3446 		nvme->n_write_cache_enabled = B_TRUE;
3447 	}
3448 
3449 	(void) ddi_prop_update_int(DDI_DEV_T_NONE, nvme->n_dip,
3450 	    "volatile-write-cache-enable",
3451 	    nvme->n_write_cache_enabled ? 1 : 0);
3452 
3453 	/*
3454 	 * Assume LBA Range Type feature is supported. If it isn't this
3455 	 * will be set to B_FALSE by nvme_get_features().
3456 	 */
3457 	nvme->n_lba_range_supported = B_TRUE;
3458 
3459 	/*
3460 	 * Check support for Autonomous Power State Transition.
3461 	 */
3462 	if (NVME_VERSION_ATLEAST(&nvme->n_version, 1, 1))
3463 		nvme->n_auto_pst_supported =
3464 		    nvme->n_idctl->id_apsta.ap_sup == 0 ? B_FALSE : B_TRUE;
3465 
3466 	/*
3467 	 * Assume Software Progress Marker feature is supported.  If it isn't
3468 	 * this will be set to B_FALSE by nvme_get_features().
3469 	 */
3470 	nvme->n_progress_supported = B_TRUE;
3471 
3472 	/*
3473 	 * Get number of supported namespaces and allocate namespace array.
3474 	 */
3475 	nvme->n_namespace_count = nvme->n_idctl->id_nn;
3476 
3477 	if (nvme->n_namespace_count == 0) {
3478 		dev_err(nvme->n_dip, CE_WARN,
3479 		    "!controllers without namespaces are not supported");
3480 		goto fail;
3481 	}
3482 
3483 	if (nvme->n_namespace_count > NVME_MINOR_MAX) {
3484 		dev_err(nvme->n_dip, CE_WARN,
3485 		    "!too many namespaces: %d, limiting to %d\n",
3486 		    nvme->n_namespace_count, NVME_MINOR_MAX);
3487 		nvme->n_namespace_count = NVME_MINOR_MAX;
3488 	}
3489 
3490 	nvme->n_ns = kmem_zalloc(sizeof (nvme_namespace_t) *
3491 	    nvme->n_namespace_count, KM_SLEEP);
3492 
3493 	/*
3494 	 * Try to set up MSI/MSI-X interrupts.
3495 	 */
3496 	if ((nvme->n_intr_types & (DDI_INTR_TYPE_MSI | DDI_INTR_TYPE_MSIX))
3497 	    != 0) {
3498 		nvme_release_interrupts(nvme);
3499 
3500 		nqueues = MIN(UINT16_MAX, ncpus);
3501 
3502 		if ((nvme_setup_interrupts(nvme, DDI_INTR_TYPE_MSIX,
3503 		    nqueues) != DDI_SUCCESS) &&
3504 		    (nvme_setup_interrupts(nvme, DDI_INTR_TYPE_MSI,
3505 		    nqueues) != DDI_SUCCESS)) {
3506 			dev_err(nvme->n_dip, CE_WARN,
3507 			    "!failed to setup MSI/MSI-X interrupts");
3508 			goto fail;
3509 		}
3510 	}
3511 
3512 	/*
3513 	 * Create I/O queue pairs.
3514 	 */
3515 
3516 	if (nvme_set_nqueues(nvme) != 0) {
3517 		dev_err(nvme->n_dip, CE_WARN,
3518 		    "!failed to set number of I/O queues to %d",
3519 		    nvme->n_intr_cnt);
3520 		goto fail;
3521 	}
3522 
3523 	/*
3524 	 * Reallocate I/O queue array
3525 	 */
3526 	kmem_free(nvme->n_ioq, sizeof (nvme_qpair_t *));
3527 	nvme->n_ioq = kmem_zalloc(sizeof (nvme_qpair_t *) *
3528 	    (nvme->n_submission_queues + 1), KM_SLEEP);
3529 	nvme->n_ioq[0] = nvme->n_adminq;
3530 
3531 	/*
3532 	 * There should always be at least as many submission queues
3533 	 * as completion queues.
3534 	 */
3535 	ASSERT(nvme->n_submission_queues >= nvme->n_completion_queues);
3536 
3537 	nvme->n_ioq_count = nvme->n_submission_queues;
3538 
3539 	nvme->n_io_squeue_len =
3540 	    MIN(nvme->n_io_squeue_len, nvme->n_max_queue_entries);
3541 
3542 	(void) ddi_prop_update_int(DDI_DEV_T_NONE, nvme->n_dip, "io-squeue-len",
3543 	    nvme->n_io_squeue_len);
3544 
3545 	/*
3546 	 * Pre-allocate completion queues.
3547 	 * When there are the same number of submission and completion
3548 	 * queues there is no value in having a larger completion
3549 	 * queue length.
3550 	 */
3551 	if (nvme->n_submission_queues == nvme->n_completion_queues)
3552 		nvme->n_io_cqueue_len = MIN(nvme->n_io_cqueue_len,
3553 		    nvme->n_io_squeue_len);
3554 
3555 	nvme->n_io_cqueue_len = MIN(nvme->n_io_cqueue_len,
3556 	    nvme->n_max_queue_entries);
3557 
3558 	(void) ddi_prop_update_int(DDI_DEV_T_NONE, nvme->n_dip, "io-cqueue-len",
3559 	    nvme->n_io_cqueue_len);
3560 
3561 	/*
3562 	 * Assign the equal quantity of taskq threads to each completion
3563 	 * queue, capping the total number of threads to the number
3564 	 * of CPUs.
3565 	 */
3566 	tq_threads = MIN(UINT16_MAX, ncpus) / nvme->n_completion_queues;
3567 
3568 	/*
3569 	 * In case the calculation above is zero, we need at least one
3570 	 * thread per completion queue.
3571 	 */
3572 	tq_threads = MAX(1, tq_threads);
3573 
3574 	if (nvme_create_cq_array(nvme, nvme->n_completion_queues + 1,
3575 	    nvme->n_io_cqueue_len, tq_threads) != DDI_SUCCESS) {
3576 		dev_err(nvme->n_dip, CE_WARN,
3577 		    "!failed to pre-allocate completion queues");
3578 		goto fail;
3579 	}
3580 
3581 	/*
3582 	 * If we use less completion queues than interrupt vectors return
3583 	 * some of the interrupt vectors back to the system.
3584 	 */
3585 	if (nvme->n_completion_queues + 1 < nvme->n_intr_cnt) {
3586 		nvme_release_interrupts(nvme);
3587 
3588 		if (nvme_setup_interrupts(nvme, nvme->n_intr_type,
3589 		    nvme->n_completion_queues + 1) != DDI_SUCCESS) {
3590 			dev_err(nvme->n_dip, CE_WARN,
3591 			    "!failed to reduce number of interrupts");
3592 			goto fail;
3593 		}
3594 	}
3595 
3596 	/*
3597 	 * Alloc & register I/O queue pairs
3598 	 */
3599 
3600 	for (i = 1; i != nvme->n_ioq_count + 1; i++) {
3601 		if (nvme_alloc_qpair(nvme, nvme->n_io_squeue_len,
3602 		    &nvme->n_ioq[i], i) != DDI_SUCCESS) {
3603 			dev_err(nvme->n_dip, CE_WARN,
3604 			    "!unable to allocate I/O qpair %d", i);
3605 			goto fail;
3606 		}
3607 
3608 		if (nvme_create_io_qpair(nvme, nvme->n_ioq[i], i) != 0) {
3609 			dev_err(nvme->n_dip, CE_WARN,
3610 			    "!unable to create I/O qpair %d", i);
3611 			goto fail;
3612 		}
3613 	}
3614 
3615 	/*
3616 	 * Post more asynchronous events commands to reduce event reporting
3617 	 * latency as suggested by the spec.
3618 	 */
3619 	if (nvme->n_async_event_supported) {
3620 		for (i = 1; i != nvme->n_async_event_limit; i++)
3621 			nvme_async_event(nvme);
3622 	}
3623 
3624 	return (DDI_SUCCESS);
3625 
3626 fail:
3627 	(void) nvme_reset(nvme, B_FALSE);
3628 	return (DDI_FAILURE);
3629 }
3630 
3631 static uint_t
3632 nvme_intr(caddr_t arg1, caddr_t arg2)
3633 {
3634 	/*LINTED: E_PTR_BAD_CAST_ALIGN*/
3635 	nvme_t *nvme = (nvme_t *)arg1;
3636 	int inum = (int)(uintptr_t)arg2;
3637 	int ccnt = 0;
3638 	int qnum;
3639 
3640 	if (inum >= nvme->n_intr_cnt)
3641 		return (DDI_INTR_UNCLAIMED);
3642 
3643 	if (nvme->n_dead)
3644 		return (nvme->n_intr_type == DDI_INTR_TYPE_FIXED ?
3645 		    DDI_INTR_UNCLAIMED : DDI_INTR_CLAIMED);
3646 
3647 	/*
3648 	 * The interrupt vector a queue uses is calculated as queue_idx %
3649 	 * intr_cnt in nvme_create_io_qpair(). Iterate through the queue array
3650 	 * in steps of n_intr_cnt to process all queues using this vector.
3651 	 */
3652 	for (qnum = inum;
3653 	    qnum < nvme->n_cq_count && nvme->n_cq[qnum] != NULL;
3654 	    qnum += nvme->n_intr_cnt) {
3655 		ccnt += nvme_process_iocq(nvme, nvme->n_cq[qnum]);
3656 	}
3657 
3658 	return (ccnt > 0 ? DDI_INTR_CLAIMED : DDI_INTR_UNCLAIMED);
3659 }
3660 
3661 static void
3662 nvme_release_interrupts(nvme_t *nvme)
3663 {
3664 	int i;
3665 
3666 	for (i = 0; i < nvme->n_intr_cnt; i++) {
3667 		if (nvme->n_inth[i] == NULL)
3668 			break;
3669 
3670 		if (nvme->n_intr_cap & DDI_INTR_FLAG_BLOCK)
3671 			(void) ddi_intr_block_disable(&nvme->n_inth[i], 1);
3672 		else
3673 			(void) ddi_intr_disable(nvme->n_inth[i]);
3674 
3675 		(void) ddi_intr_remove_handler(nvme->n_inth[i]);
3676 		(void) ddi_intr_free(nvme->n_inth[i]);
3677 	}
3678 
3679 	kmem_free(nvme->n_inth, nvme->n_inth_sz);
3680 	nvme->n_inth = NULL;
3681 	nvme->n_inth_sz = 0;
3682 
3683 	nvme->n_progress &= ~NVME_INTERRUPTS;
3684 }
3685 
3686 static int
3687 nvme_setup_interrupts(nvme_t *nvme, int intr_type, int nqpairs)
3688 {
3689 	int nintrs, navail, count;
3690 	int ret;
3691 	int i;
3692 
3693 	if (nvme->n_intr_types == 0) {
3694 		ret = ddi_intr_get_supported_types(nvme->n_dip,
3695 		    &nvme->n_intr_types);
3696 		if (ret != DDI_SUCCESS) {
3697 			dev_err(nvme->n_dip, CE_WARN,
3698 			    "!%s: ddi_intr_get_supported types failed",
3699 			    __func__);
3700 			return (ret);
3701 		}
3702 #ifdef __x86
3703 		if (get_hwenv() == HW_VMWARE)
3704 			nvme->n_intr_types &= ~DDI_INTR_TYPE_MSIX;
3705 #endif
3706 	}
3707 
3708 	if ((nvme->n_intr_types & intr_type) == 0)
3709 		return (DDI_FAILURE);
3710 
3711 	ret = ddi_intr_get_nintrs(nvme->n_dip, intr_type, &nintrs);
3712 	if (ret != DDI_SUCCESS) {
3713 		dev_err(nvme->n_dip, CE_WARN, "!%s: ddi_intr_get_nintrs failed",
3714 		    __func__);
3715 		return (ret);
3716 	}
3717 
3718 	ret = ddi_intr_get_navail(nvme->n_dip, intr_type, &navail);
3719 	if (ret != DDI_SUCCESS) {
3720 		dev_err(nvme->n_dip, CE_WARN, "!%s: ddi_intr_get_navail failed",
3721 		    __func__);
3722 		return (ret);
3723 	}
3724 
3725 	/* We want at most one interrupt per queue pair. */
3726 	if (navail > nqpairs)
3727 		navail = nqpairs;
3728 
3729 	nvme->n_inth_sz = sizeof (ddi_intr_handle_t) * navail;
3730 	nvme->n_inth = kmem_zalloc(nvme->n_inth_sz, KM_SLEEP);
3731 
3732 	ret = ddi_intr_alloc(nvme->n_dip, nvme->n_inth, intr_type, 0, navail,
3733 	    &count, 0);
3734 	if (ret != DDI_SUCCESS) {
3735 		dev_err(nvme->n_dip, CE_WARN, "!%s: ddi_intr_alloc failed",
3736 		    __func__);
3737 		goto fail;
3738 	}
3739 
3740 	nvme->n_intr_cnt = count;
3741 
3742 	ret = ddi_intr_get_pri(nvme->n_inth[0], &nvme->n_intr_pri);
3743 	if (ret != DDI_SUCCESS) {
3744 		dev_err(nvme->n_dip, CE_WARN, "!%s: ddi_intr_get_pri failed",
3745 		    __func__);
3746 		goto fail;
3747 	}
3748 
3749 	for (i = 0; i < count; i++) {
3750 		ret = ddi_intr_add_handler(nvme->n_inth[i], nvme_intr,
3751 		    (void *)nvme, (void *)(uintptr_t)i);
3752 		if (ret != DDI_SUCCESS) {
3753 			dev_err(nvme->n_dip, CE_WARN,
3754 			    "!%s: ddi_intr_add_handler failed", __func__);
3755 			goto fail;
3756 		}
3757 	}
3758 
3759 	(void) ddi_intr_get_cap(nvme->n_inth[0], &nvme->n_intr_cap);
3760 
3761 	for (i = 0; i < count; i++) {
3762 		if (nvme->n_intr_cap & DDI_INTR_FLAG_BLOCK)
3763 			ret = ddi_intr_block_enable(&nvme->n_inth[i], 1);
3764 		else
3765 			ret = ddi_intr_enable(nvme->n_inth[i]);
3766 
3767 		if (ret != DDI_SUCCESS) {
3768 			dev_err(nvme->n_dip, CE_WARN,
3769 			    "!%s: enabling interrupt %d failed", __func__, i);
3770 			goto fail;
3771 		}
3772 	}
3773 
3774 	nvme->n_intr_type = intr_type;
3775 
3776 	nvme->n_progress |= NVME_INTERRUPTS;
3777 
3778 	return (DDI_SUCCESS);
3779 
3780 fail:
3781 	nvme_release_interrupts(nvme);
3782 
3783 	return (ret);
3784 }
3785 
3786 static int
3787 nvme_fm_errcb(dev_info_t *dip, ddi_fm_error_t *fm_error, const void *arg)
3788 {
3789 	_NOTE(ARGUNUSED(arg));
3790 
3791 	pci_ereport_post(dip, fm_error, NULL);
3792 	return (fm_error->fme_status);
3793 }
3794 
3795 static void
3796 nvme_remove_callback(dev_info_t *dip, ddi_eventcookie_t cookie, void *a,
3797     void *b)
3798 {
3799 	nvme_t *nvme = a;
3800 
3801 	nvme->n_dead = B_TRUE;
3802 
3803 	/*
3804 	 * Fail all outstanding commands, including those in the admin queue
3805 	 * (queue 0).
3806 	 */
3807 	for (uint_t i = 0; i < nvme->n_ioq_count + 1; i++) {
3808 		nvme_qpair_t *qp = nvme->n_ioq[i];
3809 
3810 		mutex_enter(&qp->nq_mutex);
3811 		for (size_t j = 0; j < qp->nq_nentry; j++) {
3812 			nvme_cmd_t *cmd = qp->nq_cmd[j];
3813 			nvme_cmd_t *u_cmd;
3814 
3815 			if (cmd == NULL) {
3816 				continue;
3817 			}
3818 
3819 			/*
3820 			 * Since we have the queue lock held the entire time we
3821 			 * iterate over it, it's not possible for the queue to
3822 			 * change underneath us. Thus, we don't need to check
3823 			 * that the return value of nvme_unqueue_cmd matches the
3824 			 * requested cmd to unqueue.
3825 			 */
3826 			u_cmd = nvme_unqueue_cmd(nvme, qp, cmd->nc_sqe.sqe_cid);
3827 			taskq_dispatch_ent(qp->nq_cq->ncq_cmd_taskq,
3828 			    cmd->nc_callback, cmd, TQ_NOSLEEP, &cmd->nc_tqent);
3829 
3830 			ASSERT3P(u_cmd, ==, cmd);
3831 		}
3832 		mutex_exit(&qp->nq_mutex);
3833 	}
3834 }
3835 
3836 static int
3837 nvme_attach(dev_info_t *dip, ddi_attach_cmd_t cmd)
3838 {
3839 	nvme_t *nvme;
3840 	int instance;
3841 	int nregs;
3842 	off_t regsize;
3843 	int i;
3844 	char name[32];
3845 	boolean_t attached_ns;
3846 
3847 	if (cmd != DDI_ATTACH)
3848 		return (DDI_FAILURE);
3849 
3850 	instance = ddi_get_instance(dip);
3851 
3852 	if (ddi_soft_state_zalloc(nvme_state, instance) != DDI_SUCCESS)
3853 		return (DDI_FAILURE);
3854 
3855 	nvme = ddi_get_soft_state(nvme_state, instance);
3856 	ddi_set_driver_private(dip, nvme);
3857 	nvme->n_dip = dip;
3858 
3859 	/* Set up event handlers for hot removal. */
3860 	if (ddi_get_eventcookie(nvme->n_dip, DDI_DEVI_REMOVE_EVENT,
3861 	    &nvme->n_rm_cookie) != DDI_SUCCESS) {
3862 		goto fail;
3863 	}
3864 	if (ddi_add_event_handler(nvme->n_dip, nvme->n_rm_cookie,
3865 	    nvme_remove_callback, nvme, &nvme->n_ev_rm_cb_id) !=
3866 	    DDI_SUCCESS) {
3867 		goto fail;
3868 	}
3869 
3870 	mutex_init(&nvme->n_minor_mutex, NULL, MUTEX_DRIVER, NULL);
3871 	nvme->n_progress |= NVME_MUTEX_INIT;
3872 
3873 	nvme->n_strict_version = ddi_prop_get_int(DDI_DEV_T_ANY, dip,
3874 	    DDI_PROP_DONTPASS, "strict-version", 1) == 1 ? B_TRUE : B_FALSE;
3875 	nvme->n_ignore_unknown_vendor_status = ddi_prop_get_int(DDI_DEV_T_ANY,
3876 	    dip, DDI_PROP_DONTPASS, "ignore-unknown-vendor-status", 0) == 1 ?
3877 	    B_TRUE : B_FALSE;
3878 	nvme->n_admin_queue_len = ddi_prop_get_int(DDI_DEV_T_ANY, dip,
3879 	    DDI_PROP_DONTPASS, "admin-queue-len", NVME_DEFAULT_ADMIN_QUEUE_LEN);
3880 	nvme->n_io_squeue_len = ddi_prop_get_int(DDI_DEV_T_ANY, dip,
3881 	    DDI_PROP_DONTPASS, "io-squeue-len", NVME_DEFAULT_IO_QUEUE_LEN);
3882 	/*
3883 	 * Double up the default for completion queues in case of
3884 	 * queue sharing.
3885 	 */
3886 	nvme->n_io_cqueue_len = ddi_prop_get_int(DDI_DEV_T_ANY, dip,
3887 	    DDI_PROP_DONTPASS, "io-cqueue-len", 2 * NVME_DEFAULT_IO_QUEUE_LEN);
3888 	nvme->n_async_event_limit = ddi_prop_get_int(DDI_DEV_T_ANY, dip,
3889 	    DDI_PROP_DONTPASS, "async-event-limit",
3890 	    NVME_DEFAULT_ASYNC_EVENT_LIMIT);
3891 	nvme->n_write_cache_enabled = ddi_prop_get_int(DDI_DEV_T_ANY, dip,
3892 	    DDI_PROP_DONTPASS, "volatile-write-cache-enable", 1) != 0 ?
3893 	    B_TRUE : B_FALSE;
3894 	nvme->n_min_block_size = ddi_prop_get_int(DDI_DEV_T_ANY, dip,
3895 	    DDI_PROP_DONTPASS, "min-phys-block-size",
3896 	    NVME_DEFAULT_MIN_BLOCK_SIZE);
3897 	nvme->n_submission_queues = ddi_prop_get_int(DDI_DEV_T_ANY, dip,
3898 	    DDI_PROP_DONTPASS, "max-submission-queues", -1);
3899 	nvme->n_completion_queues = ddi_prop_get_int(DDI_DEV_T_ANY, dip,
3900 	    DDI_PROP_DONTPASS, "max-completion-queues", -1);
3901 
3902 	if (!ISP2(nvme->n_min_block_size) ||
3903 	    (nvme->n_min_block_size < NVME_DEFAULT_MIN_BLOCK_SIZE)) {
3904 		dev_err(dip, CE_WARN, "!min-phys-block-size %s, "
3905 		    "using default %d", ISP2(nvme->n_min_block_size) ?
3906 		    "too low" : "not a power of 2",
3907 		    NVME_DEFAULT_MIN_BLOCK_SIZE);
3908 		nvme->n_min_block_size = NVME_DEFAULT_MIN_BLOCK_SIZE;
3909 	}
3910 
3911 	if (nvme->n_submission_queues != -1 &&
3912 	    (nvme->n_submission_queues < 1 ||
3913 	    nvme->n_submission_queues > UINT16_MAX)) {
3914 		dev_err(dip, CE_WARN, "!\"submission-queues\"=%d is not "
3915 		    "valid. Must be [1..%d]", nvme->n_submission_queues,
3916 		    UINT16_MAX);
3917 		nvme->n_submission_queues = -1;
3918 	}
3919 
3920 	if (nvme->n_completion_queues != -1 &&
3921 	    (nvme->n_completion_queues < 1 ||
3922 	    nvme->n_completion_queues > UINT16_MAX)) {
3923 		dev_err(dip, CE_WARN, "!\"completion-queues\"=%d is not "
3924 		    "valid. Must be [1..%d]", nvme->n_completion_queues,
3925 		    UINT16_MAX);
3926 		nvme->n_completion_queues = -1;
3927 	}
3928 
3929 	if (nvme->n_admin_queue_len < NVME_MIN_ADMIN_QUEUE_LEN)
3930 		nvme->n_admin_queue_len = NVME_MIN_ADMIN_QUEUE_LEN;
3931 	else if (nvme->n_admin_queue_len > NVME_MAX_ADMIN_QUEUE_LEN)
3932 		nvme->n_admin_queue_len = NVME_MAX_ADMIN_QUEUE_LEN;
3933 
3934 	if (nvme->n_io_squeue_len < NVME_MIN_IO_QUEUE_LEN)
3935 		nvme->n_io_squeue_len = NVME_MIN_IO_QUEUE_LEN;
3936 	if (nvme->n_io_cqueue_len < NVME_MIN_IO_QUEUE_LEN)
3937 		nvme->n_io_cqueue_len = NVME_MIN_IO_QUEUE_LEN;
3938 
3939 	if (nvme->n_async_event_limit < 1)
3940 		nvme->n_async_event_limit = NVME_DEFAULT_ASYNC_EVENT_LIMIT;
3941 
3942 	nvme->n_reg_acc_attr = nvme_reg_acc_attr;
3943 	nvme->n_queue_dma_attr = nvme_queue_dma_attr;
3944 	nvme->n_prp_dma_attr = nvme_prp_dma_attr;
3945 	nvme->n_sgl_dma_attr = nvme_sgl_dma_attr;
3946 
3947 	/*
3948 	 * Set up FMA support.
3949 	 */
3950 	nvme->n_fm_cap = ddi_getprop(DDI_DEV_T_ANY, dip,
3951 	    DDI_PROP_CANSLEEP | DDI_PROP_DONTPASS, "fm-capable",
3952 	    DDI_FM_EREPORT_CAPABLE | DDI_FM_ACCCHK_CAPABLE |
3953 	    DDI_FM_DMACHK_CAPABLE | DDI_FM_ERRCB_CAPABLE);
3954 
3955 	ddi_fm_init(dip, &nvme->n_fm_cap, &nvme->n_fm_ibc);
3956 
3957 	if (nvme->n_fm_cap) {
3958 		if (nvme->n_fm_cap & DDI_FM_ACCCHK_CAPABLE)
3959 			nvme->n_reg_acc_attr.devacc_attr_access =
3960 			    DDI_FLAGERR_ACC;
3961 
3962 		if (nvme->n_fm_cap & DDI_FM_DMACHK_CAPABLE) {
3963 			nvme->n_prp_dma_attr.dma_attr_flags |= DDI_DMA_FLAGERR;
3964 			nvme->n_sgl_dma_attr.dma_attr_flags |= DDI_DMA_FLAGERR;
3965 		}
3966 
3967 		if (DDI_FM_EREPORT_CAP(nvme->n_fm_cap) ||
3968 		    DDI_FM_ERRCB_CAP(nvme->n_fm_cap))
3969 			pci_ereport_setup(dip);
3970 
3971 		if (DDI_FM_ERRCB_CAP(nvme->n_fm_cap))
3972 			ddi_fm_handler_register(dip, nvme_fm_errcb,
3973 			    (void *)nvme);
3974 	}
3975 
3976 	nvme->n_progress |= NVME_FMA_INIT;
3977 
3978 	/*
3979 	 * The spec defines several register sets. Only the controller
3980 	 * registers (set 1) are currently used.
3981 	 */
3982 	if (ddi_dev_nregs(dip, &nregs) == DDI_FAILURE ||
3983 	    nregs < 2 ||
3984 	    ddi_dev_regsize(dip, 1, &regsize) == DDI_FAILURE)
3985 		goto fail;
3986 
3987 	if (ddi_regs_map_setup(dip, 1, &nvme->n_regs, 0, regsize,
3988 	    &nvme->n_reg_acc_attr, &nvme->n_regh) != DDI_SUCCESS) {
3989 		dev_err(dip, CE_WARN, "!failed to map regset 1");
3990 		goto fail;
3991 	}
3992 
3993 	nvme->n_progress |= NVME_REGS_MAPPED;
3994 
3995 	/*
3996 	 * Create PRP DMA cache
3997 	 */
3998 	(void) snprintf(name, sizeof (name), "%s%d_prp_cache",
3999 	    ddi_driver_name(dip), ddi_get_instance(dip));
4000 	nvme->n_prp_cache = kmem_cache_create(name, sizeof (nvme_dma_t),
4001 	    0, nvme_prp_dma_constructor, nvme_prp_dma_destructor,
4002 	    NULL, (void *)nvme, NULL, 0);
4003 
4004 	if (nvme_init(nvme) != DDI_SUCCESS)
4005 		goto fail;
4006 
4007 	/*
4008 	 * Initialize the driver with the UFM subsystem
4009 	 */
4010 	if (ddi_ufm_init(dip, DDI_UFM_CURRENT_VERSION, &nvme_ufm_ops,
4011 	    &nvme->n_ufmh, nvme) != 0) {
4012 		dev_err(dip, CE_WARN, "!failed to initialize UFM subsystem");
4013 		goto fail;
4014 	}
4015 	mutex_init(&nvme->n_fwslot_mutex, NULL, MUTEX_DRIVER, NULL);
4016 	ddi_ufm_update(nvme->n_ufmh);
4017 	nvme->n_progress |= NVME_UFM_INIT;
4018 
4019 	mutex_init(&nvme->n_mgmt_mutex, NULL, MUTEX_DRIVER, NULL);
4020 	nvme->n_progress |= NVME_MGMT_INIT;
4021 
4022 	/*
4023 	 * Identify namespaces.
4024 	 */
4025 	mutex_enter(&nvme->n_mgmt_mutex);
4026 
4027 	for (i = 1; i <= nvme->n_namespace_count; i++) {
4028 		nvme_namespace_t *ns = NVME_NSID2NS(nvme, i);
4029 
4030 		/*
4031 		 * Namespaces start out ignored. When nvme_init_ns() checks
4032 		 * their properties and finds they can be used, it will set
4033 		 * ns_ignore to B_FALSE. It will also use this state change
4034 		 * to keep an accurate count of attachable namespaces.
4035 		 */
4036 		ns->ns_ignore = B_TRUE;
4037 		if (nvme_init_ns(nvme, i) != 0) {
4038 			mutex_exit(&nvme->n_mgmt_mutex);
4039 			goto fail;
4040 		}
4041 
4042 		if (ddi_create_minor_node(nvme->n_dip, ns->ns_name, S_IFCHR,
4043 		    NVME_MINOR(ddi_get_instance(nvme->n_dip), i),
4044 		    DDI_NT_NVME_ATTACHMENT_POINT, 0) != DDI_SUCCESS) {
4045 			mutex_exit(&nvme->n_mgmt_mutex);
4046 			dev_err(dip, CE_WARN,
4047 			    "!failed to create minor node for namespace %d", i);
4048 			goto fail;
4049 		}
4050 	}
4051 
4052 	if (ddi_create_minor_node(dip, "devctl", S_IFCHR,
4053 	    NVME_MINOR(ddi_get_instance(dip), 0), DDI_NT_NVME_NEXUS, 0)
4054 	    != DDI_SUCCESS) {
4055 		mutex_exit(&nvme->n_mgmt_mutex);
4056 		dev_err(dip, CE_WARN, "nvme_attach: "
4057 		    "cannot create devctl minor node");
4058 		goto fail;
4059 	}
4060 
4061 	attached_ns = B_FALSE;
4062 	for (i = 1; i <= nvme->n_namespace_count; i++) {
4063 		int rv;
4064 
4065 		rv = nvme_attach_ns(nvme, i);
4066 		if (rv == 0) {
4067 			attached_ns = B_TRUE;
4068 		} else if (rv != ENOTSUP) {
4069 			dev_err(nvme->n_dip, CE_WARN,
4070 			    "!failed to attach namespace %d: %d", i, rv);
4071 			/*
4072 			 * Once we have successfully attached a namespace we
4073 			 * can no longer fail the driver attach as there is now
4074 			 * a blkdev child node linked to this device, and
4075 			 * our node is not yet in the attached state.
4076 			 */
4077 			if (!attached_ns) {
4078 				mutex_exit(&nvme->n_mgmt_mutex);
4079 				goto fail;
4080 			}
4081 		}
4082 	}
4083 
4084 	mutex_exit(&nvme->n_mgmt_mutex);
4085 
4086 	return (DDI_SUCCESS);
4087 
4088 fail:
4089 	/* attach successful anyway so that FMA can retire the device */
4090 	if (nvme->n_dead)
4091 		return (DDI_SUCCESS);
4092 
4093 	(void) nvme_detach(dip, DDI_DETACH);
4094 
4095 	return (DDI_FAILURE);
4096 }
4097 
4098 static int
4099 nvme_detach(dev_info_t *dip, ddi_detach_cmd_t cmd)
4100 {
4101 	int instance, i;
4102 	nvme_t *nvme;
4103 
4104 	if (cmd != DDI_DETACH)
4105 		return (DDI_FAILURE);
4106 
4107 	instance = ddi_get_instance(dip);
4108 
4109 	nvme = ddi_get_soft_state(nvme_state, instance);
4110 
4111 	if (nvme == NULL)
4112 		return (DDI_FAILURE);
4113 
4114 	ddi_remove_minor_node(dip, "devctl");
4115 
4116 	if (nvme->n_ns) {
4117 		for (i = 1; i <= nvme->n_namespace_count; i++) {
4118 			nvme_namespace_t *ns = NVME_NSID2NS(nvme, i);
4119 
4120 			ddi_remove_minor_node(dip, ns->ns_name);
4121 
4122 			if (ns->ns_bd_hdl) {
4123 				(void) bd_detach_handle(ns->ns_bd_hdl);
4124 				bd_free_handle(ns->ns_bd_hdl);
4125 			}
4126 
4127 			if (ns->ns_idns)
4128 				kmem_free(ns->ns_idns,
4129 				    sizeof (nvme_identify_nsid_t));
4130 			if (ns->ns_devid)
4131 				strfree(ns->ns_devid);
4132 		}
4133 
4134 		kmem_free(nvme->n_ns, sizeof (nvme_namespace_t) *
4135 		    nvme->n_namespace_count);
4136 	}
4137 
4138 	if (nvme->n_progress & NVME_MGMT_INIT) {
4139 		mutex_destroy(&nvme->n_mgmt_mutex);
4140 	}
4141 
4142 	if (nvme->n_progress & NVME_UFM_INIT) {
4143 		ddi_ufm_fini(nvme->n_ufmh);
4144 		mutex_destroy(&nvme->n_fwslot_mutex);
4145 	}
4146 
4147 	if (nvme->n_progress & NVME_INTERRUPTS)
4148 		nvme_release_interrupts(nvme);
4149 
4150 	for (i = 0; i < nvme->n_cq_count; i++) {
4151 		if (nvme->n_cq[i]->ncq_cmd_taskq != NULL)
4152 			taskq_wait(nvme->n_cq[i]->ncq_cmd_taskq);
4153 	}
4154 
4155 	if (nvme->n_progress & NVME_MUTEX_INIT) {
4156 		mutex_destroy(&nvme->n_minor_mutex);
4157 	}
4158 
4159 	if (nvme->n_ioq_count > 0) {
4160 		for (i = 1; i != nvme->n_ioq_count + 1; i++) {
4161 			if (nvme->n_ioq[i] != NULL) {
4162 				/* TODO: send destroy queue commands */
4163 				nvme_free_qpair(nvme->n_ioq[i]);
4164 			}
4165 		}
4166 
4167 		kmem_free(nvme->n_ioq, sizeof (nvme_qpair_t *) *
4168 		    (nvme->n_ioq_count + 1));
4169 	}
4170 
4171 	if (nvme->n_prp_cache != NULL) {
4172 		kmem_cache_destroy(nvme->n_prp_cache);
4173 	}
4174 
4175 	if (nvme->n_progress & NVME_REGS_MAPPED) {
4176 		nvme_shutdown(nvme, NVME_CC_SHN_NORMAL, B_FALSE);
4177 		(void) nvme_reset(nvme, B_FALSE);
4178 	}
4179 
4180 	if (nvme->n_progress & NVME_CTRL_LIMITS)
4181 		sema_destroy(&nvme->n_abort_sema);
4182 
4183 	if (nvme->n_progress & NVME_ADMIN_QUEUE)
4184 		nvme_free_qpair(nvme->n_adminq);
4185 
4186 	if (nvme->n_cq_count > 0) {
4187 		nvme_destroy_cq_array(nvme, 0);
4188 		nvme->n_cq = NULL;
4189 		nvme->n_cq_count = 0;
4190 	}
4191 
4192 	if (nvme->n_idctl)
4193 		kmem_free(nvme->n_idctl, NVME_IDENTIFY_BUFSIZE);
4194 
4195 	if (nvme->n_progress & NVME_REGS_MAPPED)
4196 		ddi_regs_map_free(&nvme->n_regh);
4197 
4198 	if (nvme->n_progress & NVME_FMA_INIT) {
4199 		if (DDI_FM_ERRCB_CAP(nvme->n_fm_cap))
4200 			ddi_fm_handler_unregister(nvme->n_dip);
4201 
4202 		if (DDI_FM_EREPORT_CAP(nvme->n_fm_cap) ||
4203 		    DDI_FM_ERRCB_CAP(nvme->n_fm_cap))
4204 			pci_ereport_teardown(nvme->n_dip);
4205 
4206 		ddi_fm_fini(nvme->n_dip);
4207 	}
4208 
4209 	if (nvme->n_vendor != NULL)
4210 		strfree(nvme->n_vendor);
4211 
4212 	if (nvme->n_product != NULL)
4213 		strfree(nvme->n_product);
4214 
4215 	/* Clean up hot removal event handler. */
4216 	if (nvme->n_ev_rm_cb_id != NULL) {
4217 		(void) ddi_remove_event_handler(nvme->n_ev_rm_cb_id);
4218 	}
4219 	nvme->n_ev_rm_cb_id = NULL;
4220 
4221 	ddi_soft_state_free(nvme_state, instance);
4222 
4223 	return (DDI_SUCCESS);
4224 }
4225 
4226 static int
4227 nvme_quiesce(dev_info_t *dip)
4228 {
4229 	int instance;
4230 	nvme_t *nvme;
4231 
4232 	instance = ddi_get_instance(dip);
4233 
4234 	nvme = ddi_get_soft_state(nvme_state, instance);
4235 
4236 	if (nvme == NULL)
4237 		return (DDI_FAILURE);
4238 
4239 	nvme_shutdown(nvme, NVME_CC_SHN_ABRUPT, B_TRUE);
4240 
4241 	(void) nvme_reset(nvme, B_TRUE);
4242 
4243 	return (DDI_FAILURE);
4244 }
4245 
4246 static int
4247 nvme_fill_prp(nvme_cmd_t *cmd, ddi_dma_handle_t dma)
4248 {
4249 	nvme_t *nvme = cmd->nc_nvme;
4250 	uint_t nprp_per_page, nprp;
4251 	uint64_t *prp;
4252 	const ddi_dma_cookie_t *cookie;
4253 	uint_t idx;
4254 	uint_t ncookies = ddi_dma_ncookies(dma);
4255 
4256 	if (ncookies == 0)
4257 		return (DDI_FAILURE);
4258 
4259 	if ((cookie = ddi_dma_cookie_get(dma, 0)) == NULL)
4260 		return (DDI_FAILURE);
4261 	cmd->nc_sqe.sqe_dptr.d_prp[0] = cookie->dmac_laddress;
4262 
4263 	if (ncookies == 1) {
4264 		cmd->nc_sqe.sqe_dptr.d_prp[1] = 0;
4265 		return (DDI_SUCCESS);
4266 	} else if (ncookies == 2) {
4267 		if ((cookie = ddi_dma_cookie_get(dma, 1)) == NULL)
4268 			return (DDI_FAILURE);
4269 		cmd->nc_sqe.sqe_dptr.d_prp[1] = cookie->dmac_laddress;
4270 		return (DDI_SUCCESS);
4271 	}
4272 
4273 	/*
4274 	 * At this point, we're always operating on cookies at
4275 	 * index >= 1 and writing the addresses of those cookies
4276 	 * into a new page. The address of that page is stored
4277 	 * as the second PRP entry.
4278 	 */
4279 	nprp_per_page = nvme->n_pagesize / sizeof (uint64_t);
4280 	ASSERT(nprp_per_page > 0);
4281 
4282 	/*
4283 	 * We currently don't support chained PRPs and set up our DMA
4284 	 * attributes to reflect that. If we still get an I/O request
4285 	 * that needs a chained PRP something is very wrong. Account
4286 	 * for the first cookie here, which we've placed in d_prp[0].
4287 	 */
4288 	nprp = howmany(ncookies - 1, nprp_per_page);
4289 	VERIFY(nprp == 1);
4290 
4291 	/*
4292 	 * Allocate a page of pointers, in which we'll write the
4293 	 * addresses of cookies 1 to `ncookies`.
4294 	 */
4295 	cmd->nc_prp = kmem_cache_alloc(nvme->n_prp_cache, KM_SLEEP);
4296 	bzero(cmd->nc_prp->nd_memp, cmd->nc_prp->nd_len);
4297 	cmd->nc_sqe.sqe_dptr.d_prp[1] = cmd->nc_prp->nd_cookie.dmac_laddress;
4298 
4299 	prp = (uint64_t *)cmd->nc_prp->nd_memp;
4300 	for (idx = 1; idx < ncookies; idx++) {
4301 		if ((cookie = ddi_dma_cookie_get(dma, idx)) == NULL)
4302 			return (DDI_FAILURE);
4303 		*prp++ = cookie->dmac_laddress;
4304 	}
4305 
4306 	(void) ddi_dma_sync(cmd->nc_prp->nd_dmah, 0, cmd->nc_prp->nd_len,
4307 	    DDI_DMA_SYNC_FORDEV);
4308 	return (DDI_SUCCESS);
4309 }
4310 
4311 /*
4312  * The maximum number of requests supported for a deallocate request is
4313  * NVME_DSET_MGMT_MAX_RANGES (256) -- this is from the NVMe 1.1 spec (and
4314  * unchanged through at least 1.4a). The definition of nvme_range_t is also
4315  * from the NVMe 1.1 spec. Together, the result is that all of the ranges for
4316  * a deallocate request will fit into the smallest supported namespace page
4317  * (4k).
4318  */
4319 CTASSERT(sizeof (nvme_range_t) * NVME_DSET_MGMT_MAX_RANGES == 4096);
4320 
4321 static int
4322 nvme_fill_ranges(nvme_cmd_t *cmd, bd_xfer_t *xfer, uint64_t blocksize,
4323     int allocflag)
4324 {
4325 	const dkioc_free_list_t *dfl = xfer->x_dfl;
4326 	const dkioc_free_list_ext_t *exts = dfl->dfl_exts;
4327 	nvme_t *nvme = cmd->nc_nvme;
4328 	nvme_range_t *ranges = NULL;
4329 	uint_t i;
4330 
4331 	/*
4332 	 * The number of ranges in the request is 0s based (that is
4333 	 * word10 == 0 -> 1 range, word10 == 1 -> 2 ranges, ...,
4334 	 * word10 == 255 -> 256 ranges). Therefore the allowed values are
4335 	 * [1..NVME_DSET_MGMT_MAX_RANGES]. If blkdev gives us a bad request,
4336 	 * we either provided bad info in nvme_bd_driveinfo() or there is a bug
4337 	 * in blkdev.
4338 	 */
4339 	VERIFY3U(dfl->dfl_num_exts, >, 0);
4340 	VERIFY3U(dfl->dfl_num_exts, <=, NVME_DSET_MGMT_MAX_RANGES);
4341 	cmd->nc_sqe.sqe_cdw10 = (dfl->dfl_num_exts - 1) & 0xff;
4342 
4343 	cmd->nc_sqe.sqe_cdw11 = NVME_DSET_MGMT_ATTR_DEALLOCATE;
4344 
4345 	cmd->nc_prp = kmem_cache_alloc(nvme->n_prp_cache, allocflag);
4346 	if (cmd->nc_prp == NULL)
4347 		return (DDI_FAILURE);
4348 
4349 	bzero(cmd->nc_prp->nd_memp, cmd->nc_prp->nd_len);
4350 	ranges = (nvme_range_t *)cmd->nc_prp->nd_memp;
4351 
4352 	cmd->nc_sqe.sqe_dptr.d_prp[0] = cmd->nc_prp->nd_cookie.dmac_laddress;
4353 	cmd->nc_sqe.sqe_dptr.d_prp[1] = 0;
4354 
4355 	for (i = 0; i < dfl->dfl_num_exts; i++) {
4356 		uint64_t lba, len;
4357 
4358 		lba = (dfl->dfl_offset + exts[i].dfle_start) / blocksize;
4359 		len = exts[i].dfle_length / blocksize;
4360 
4361 		VERIFY3U(len, <=, UINT32_MAX);
4362 
4363 		/* No context attributes for a deallocate request */
4364 		ranges[i].nr_ctxattr = 0;
4365 		ranges[i].nr_len = len;
4366 		ranges[i].nr_lba = lba;
4367 	}
4368 
4369 	(void) ddi_dma_sync(cmd->nc_prp->nd_dmah, 0, cmd->nc_prp->nd_len,
4370 	    DDI_DMA_SYNC_FORDEV);
4371 
4372 	return (DDI_SUCCESS);
4373 }
4374 
4375 static nvme_cmd_t *
4376 nvme_create_nvm_cmd(nvme_namespace_t *ns, uint8_t opc, bd_xfer_t *xfer)
4377 {
4378 	nvme_t *nvme = ns->ns_nvme;
4379 	nvme_cmd_t *cmd;
4380 	int allocflag;
4381 
4382 	/*
4383 	 * Blkdev only sets BD_XFER_POLL when dumping, so don't sleep.
4384 	 */
4385 	allocflag = (xfer->x_flags & BD_XFER_POLL) ? KM_NOSLEEP : KM_SLEEP;
4386 	cmd = nvme_alloc_cmd(nvme, allocflag);
4387 
4388 	if (cmd == NULL)
4389 		return (NULL);
4390 
4391 	cmd->nc_sqe.sqe_opc = opc;
4392 	cmd->nc_callback = nvme_bd_xfer_done;
4393 	cmd->nc_xfer = xfer;
4394 
4395 	switch (opc) {
4396 	case NVME_OPC_NVM_WRITE:
4397 	case NVME_OPC_NVM_READ:
4398 		VERIFY(xfer->x_nblks <= 0x10000);
4399 
4400 		cmd->nc_sqe.sqe_nsid = ns->ns_id;
4401 
4402 		cmd->nc_sqe.sqe_cdw10 = xfer->x_blkno & 0xffffffffu;
4403 		cmd->nc_sqe.sqe_cdw11 = (xfer->x_blkno >> 32);
4404 		cmd->nc_sqe.sqe_cdw12 = (uint16_t)(xfer->x_nblks - 1);
4405 
4406 		if (nvme_fill_prp(cmd, xfer->x_dmah) != DDI_SUCCESS)
4407 			goto fail;
4408 		break;
4409 
4410 	case NVME_OPC_NVM_FLUSH:
4411 		cmd->nc_sqe.sqe_nsid = ns->ns_id;
4412 		break;
4413 
4414 	case NVME_OPC_NVM_DSET_MGMT:
4415 		cmd->nc_sqe.sqe_nsid = ns->ns_id;
4416 
4417 		if (nvme_fill_ranges(cmd, xfer,
4418 		    (uint64_t)ns->ns_block_size, allocflag) != DDI_SUCCESS)
4419 			goto fail;
4420 		break;
4421 
4422 	default:
4423 		goto fail;
4424 	}
4425 
4426 	return (cmd);
4427 
4428 fail:
4429 	nvme_free_cmd(cmd);
4430 	return (NULL);
4431 }
4432 
4433 static void
4434 nvme_bd_xfer_done(void *arg)
4435 {
4436 	nvme_cmd_t *cmd = arg;
4437 	bd_xfer_t *xfer = cmd->nc_xfer;
4438 	int error = 0;
4439 
4440 	error = nvme_check_cmd_status(cmd);
4441 	nvme_free_cmd(cmd);
4442 
4443 	bd_xfer_done(xfer, error);
4444 }
4445 
4446 static void
4447 nvme_bd_driveinfo(void *arg, bd_drive_t *drive)
4448 {
4449 	nvme_namespace_t *ns = arg;
4450 	nvme_t *nvme = ns->ns_nvme;
4451 	uint_t ns_count = MAX(1, nvme->n_namespaces_attachable);
4452 	boolean_t mutex_exit_needed = B_TRUE;
4453 
4454 	/*
4455 	 * nvme_bd_driveinfo is called by blkdev in two situations:
4456 	 * - during bd_attach_handle(), which we call with the mutex held
4457 	 * - during bd_attach(), which may be called with or without the
4458 	 *   mutex held
4459 	 */
4460 	if (mutex_owned(&nvme->n_mgmt_mutex))
4461 		mutex_exit_needed = B_FALSE;
4462 	else
4463 		mutex_enter(&nvme->n_mgmt_mutex);
4464 
4465 	/*
4466 	 * Set the blkdev qcount to the number of submission queues.
4467 	 * It will then create one waitq/runq pair for each submission
4468 	 * queue and spread I/O requests across the queues.
4469 	 */
4470 	drive->d_qcount = nvme->n_ioq_count;
4471 
4472 	/*
4473 	 * I/O activity to individual namespaces is distributed across
4474 	 * each of the d_qcount blkdev queues (which has been set to
4475 	 * the number of nvme submission queues). d_qsize is the number
4476 	 * of submitted and not completed I/Os within each queue that blkdev
4477 	 * will allow before it starts holding them in the waitq.
4478 	 *
4479 	 * Each namespace will create a child blkdev instance, for each one
4480 	 * we try and set the d_qsize so that each namespace gets an
4481 	 * equal portion of the submission queue.
4482 	 *
4483 	 * If post instantiation of the nvme drive, n_namespaces_attachable
4484 	 * changes and a namespace is attached it could calculate a
4485 	 * different d_qsize. It may even be that the sum of the d_qsizes is
4486 	 * now beyond the submission queue size. Should that be the case
4487 	 * and the I/O rate is such that blkdev attempts to submit more
4488 	 * I/Os than the size of the submission queue, the excess I/Os
4489 	 * will be held behind the semaphore nq_sema.
4490 	 */
4491 	drive->d_qsize = nvme->n_io_squeue_len / ns_count;
4492 
4493 	/*
4494 	 * Don't let the queue size drop below the minimum, though.
4495 	 */
4496 	drive->d_qsize = MAX(drive->d_qsize, NVME_MIN_IO_QUEUE_LEN);
4497 
4498 	/*
4499 	 * d_maxxfer is not set, which means the value is taken from the DMA
4500 	 * attributes specified to bd_alloc_handle.
4501 	 */
4502 
4503 	drive->d_removable = B_FALSE;
4504 	drive->d_hotpluggable = B_FALSE;
4505 
4506 	bcopy(ns->ns_eui64, drive->d_eui64, sizeof (drive->d_eui64));
4507 	drive->d_target = ns->ns_id;
4508 	drive->d_lun = 0;
4509 
4510 	drive->d_model = nvme->n_idctl->id_model;
4511 	drive->d_model_len = sizeof (nvme->n_idctl->id_model);
4512 	drive->d_vendor = nvme->n_vendor;
4513 	drive->d_vendor_len = strlen(nvme->n_vendor);
4514 	drive->d_product = nvme->n_product;
4515 	drive->d_product_len = strlen(nvme->n_product);
4516 	drive->d_serial = nvme->n_idctl->id_serial;
4517 	drive->d_serial_len = sizeof (nvme->n_idctl->id_serial);
4518 	drive->d_revision = nvme->n_idctl->id_fwrev;
4519 	drive->d_revision_len = sizeof (nvme->n_idctl->id_fwrev);
4520 
4521 	/*
4522 	 * If we support the dataset management command, the only restrictions
4523 	 * on a discard request are the maximum number of ranges (segments)
4524 	 * per single request.
4525 	 */
4526 	if (nvme->n_idctl->id_oncs.on_dset_mgmt)
4527 		drive->d_max_free_seg = NVME_DSET_MGMT_MAX_RANGES;
4528 
4529 	if (mutex_exit_needed)
4530 		mutex_exit(&nvme->n_mgmt_mutex);
4531 }
4532 
4533 static int
4534 nvme_bd_mediainfo(void *arg, bd_media_t *media)
4535 {
4536 	nvme_namespace_t *ns = arg;
4537 	nvme_t *nvme = ns->ns_nvme;
4538 	boolean_t mutex_exit_needed = B_TRUE;
4539 
4540 	if (nvme->n_dead) {
4541 		return (EIO);
4542 	}
4543 
4544 	/*
4545 	 * nvme_bd_mediainfo is called by blkdev in various situations,
4546 	 * most of them out of our control. There's one exception though:
4547 	 * When we call bd_state_change() in response to "namespace change"
4548 	 * notification, where the mutex is already being held by us.
4549 	 */
4550 	if (mutex_owned(&nvme->n_mgmt_mutex))
4551 		mutex_exit_needed = B_FALSE;
4552 	else
4553 		mutex_enter(&nvme->n_mgmt_mutex);
4554 
4555 	media->m_nblks = ns->ns_block_count;
4556 	media->m_blksize = ns->ns_block_size;
4557 	media->m_readonly = B_FALSE;
4558 	media->m_solidstate = B_TRUE;
4559 
4560 	media->m_pblksize = ns->ns_best_block_size;
4561 
4562 	if (mutex_exit_needed)
4563 		mutex_exit(&nvme->n_mgmt_mutex);
4564 
4565 	return (0);
4566 }
4567 
4568 static int
4569 nvme_bd_cmd(nvme_namespace_t *ns, bd_xfer_t *xfer, uint8_t opc)
4570 {
4571 	nvme_t *nvme = ns->ns_nvme;
4572 	nvme_cmd_t *cmd;
4573 	nvme_qpair_t *ioq;
4574 	boolean_t poll;
4575 	int ret;
4576 
4577 	if (nvme->n_dead) {
4578 		return (EIO);
4579 	}
4580 
4581 	cmd = nvme_create_nvm_cmd(ns, opc, xfer);
4582 	if (cmd == NULL)
4583 		return (ENOMEM);
4584 
4585 	cmd->nc_sqid = xfer->x_qnum + 1;
4586 	ASSERT(cmd->nc_sqid <= nvme->n_ioq_count);
4587 	ioq = nvme->n_ioq[cmd->nc_sqid];
4588 
4589 	/*
4590 	 * Get the polling flag before submitting the command. The command may
4591 	 * complete immediately after it was submitted, which means we must
4592 	 * treat both cmd and xfer as if they have been freed already.
4593 	 */
4594 	poll = (xfer->x_flags & BD_XFER_POLL) != 0;
4595 
4596 	ret = nvme_submit_io_cmd(ioq, cmd);
4597 
4598 	if (ret != 0)
4599 		return (ret);
4600 
4601 	if (!poll)
4602 		return (0);
4603 
4604 	do {
4605 		cmd = nvme_retrieve_cmd(nvme, ioq);
4606 		if (cmd != NULL)
4607 			cmd->nc_callback(cmd);
4608 		else
4609 			drv_usecwait(10);
4610 	} while (ioq->nq_active_cmds != 0);
4611 
4612 	return (0);
4613 }
4614 
4615 static int
4616 nvme_bd_read(void *arg, bd_xfer_t *xfer)
4617 {
4618 	nvme_namespace_t *ns = arg;
4619 
4620 	return (nvme_bd_cmd(ns, xfer, NVME_OPC_NVM_READ));
4621 }
4622 
4623 static int
4624 nvme_bd_write(void *arg, bd_xfer_t *xfer)
4625 {
4626 	nvme_namespace_t *ns = arg;
4627 
4628 	return (nvme_bd_cmd(ns, xfer, NVME_OPC_NVM_WRITE));
4629 }
4630 
4631 static int
4632 nvme_bd_sync(void *arg, bd_xfer_t *xfer)
4633 {
4634 	nvme_namespace_t *ns = arg;
4635 
4636 	if (ns->ns_nvme->n_dead)
4637 		return (EIO);
4638 
4639 	/*
4640 	 * If the volatile write cache is not present or not enabled the FLUSH
4641 	 * command is a no-op, so we can take a shortcut here.
4642 	 */
4643 	if (!ns->ns_nvme->n_write_cache_present) {
4644 		bd_xfer_done(xfer, ENOTSUP);
4645 		return (0);
4646 	}
4647 
4648 	if (!ns->ns_nvme->n_write_cache_enabled) {
4649 		bd_xfer_done(xfer, 0);
4650 		return (0);
4651 	}
4652 
4653 	return (nvme_bd_cmd(ns, xfer, NVME_OPC_NVM_FLUSH));
4654 }
4655 
4656 static int
4657 nvme_bd_devid(void *arg, dev_info_t *devinfo, ddi_devid_t *devid)
4658 {
4659 	nvme_namespace_t *ns = arg;
4660 	nvme_t *nvme = ns->ns_nvme;
4661 
4662 	if (nvme->n_dead) {
4663 		return (EIO);
4664 	}
4665 
4666 	if (*(uint64_t *)ns->ns_nguid != 0 ||
4667 	    *(uint64_t *)(ns->ns_nguid + 8) != 0) {
4668 		return (ddi_devid_init(devinfo, DEVID_NVME_NGUID,
4669 		    sizeof (ns->ns_nguid), ns->ns_nguid, devid));
4670 	} else if (*(uint64_t *)ns->ns_eui64 != 0) {
4671 		return (ddi_devid_init(devinfo, DEVID_NVME_EUI64,
4672 		    sizeof (ns->ns_eui64), ns->ns_eui64, devid));
4673 	} else {
4674 		return (ddi_devid_init(devinfo, DEVID_NVME_NSID,
4675 		    strlen(ns->ns_devid), ns->ns_devid, devid));
4676 	}
4677 }
4678 
4679 static int
4680 nvme_bd_free_space(void *arg, bd_xfer_t *xfer)
4681 {
4682 	nvme_namespace_t *ns = arg;
4683 
4684 	if (xfer->x_dfl == NULL)
4685 		return (EINVAL);
4686 
4687 	if (!ns->ns_nvme->n_idctl->id_oncs.on_dset_mgmt)
4688 		return (ENOTSUP);
4689 
4690 	return (nvme_bd_cmd(ns, xfer, NVME_OPC_NVM_DSET_MGMT));
4691 }
4692 
4693 static int
4694 nvme_open(dev_t *devp, int flag, int otyp, cred_t *cred_p)
4695 {
4696 #ifndef __lock_lint
4697 	_NOTE(ARGUNUSED(cred_p));
4698 #endif
4699 	minor_t minor = getminor(*devp);
4700 	nvme_t *nvme = ddi_get_soft_state(nvme_state, NVME_MINOR_INST(minor));
4701 	int nsid = NVME_MINOR_NSID(minor);
4702 	nvme_minor_state_t *nm;
4703 	int rv = 0;
4704 
4705 	if (otyp != OTYP_CHR)
4706 		return (EINVAL);
4707 
4708 	if (nvme == NULL)
4709 		return (ENXIO);
4710 
4711 	if (nsid > nvme->n_namespace_count)
4712 		return (ENXIO);
4713 
4714 	if (nvme->n_dead)
4715 		return (EIO);
4716 
4717 	mutex_enter(&nvme->n_minor_mutex);
4718 
4719 	/*
4720 	 * First check the devctl node and error out if it's been opened
4721 	 * exclusively already by any other thread.
4722 	 */
4723 	if (nvme->n_minor.nm_oexcl != NULL &&
4724 	    nvme->n_minor.nm_oexcl != curthread) {
4725 		rv = EBUSY;
4726 		goto out;
4727 	}
4728 
4729 	nm = nsid == 0 ? &nvme->n_minor : &(NVME_NSID2NS(nvme, nsid)->ns_minor);
4730 
4731 	if (flag & FEXCL) {
4732 		if (nm->nm_oexcl != NULL || nm->nm_open) {
4733 			rv = EBUSY;
4734 			goto out;
4735 		}
4736 
4737 		/*
4738 		 * If at least one namespace is already open, fail the
4739 		 * exclusive open of the devctl node.
4740 		 */
4741 		if (nsid == 0) {
4742 			for (int i = 1; i <= nvme->n_namespace_count; i++) {
4743 				if (NVME_NSID2NS(nvme, i)->ns_minor.nm_open) {
4744 					rv = EBUSY;
4745 					goto out;
4746 				}
4747 			}
4748 		}
4749 
4750 		nm->nm_oexcl = curthread;
4751 	}
4752 
4753 	nm->nm_open = B_TRUE;
4754 
4755 out:
4756 	mutex_exit(&nvme->n_minor_mutex);
4757 	return (rv);
4758 
4759 }
4760 
4761 static int
4762 nvme_close(dev_t dev, int flag, int otyp, cred_t *cred_p)
4763 {
4764 #ifndef __lock_lint
4765 	_NOTE(ARGUNUSED(cred_p));
4766 	_NOTE(ARGUNUSED(flag));
4767 #endif
4768 	minor_t minor = getminor(dev);
4769 	nvme_t *nvme = ddi_get_soft_state(nvme_state, NVME_MINOR_INST(minor));
4770 	int nsid = NVME_MINOR_NSID(minor);
4771 	nvme_minor_state_t *nm;
4772 
4773 	if (otyp != OTYP_CHR)
4774 		return (ENXIO);
4775 
4776 	if (nvme == NULL)
4777 		return (ENXIO);
4778 
4779 	if (nsid > nvme->n_namespace_count)
4780 		return (ENXIO);
4781 
4782 	nm = nsid == 0 ? &nvme->n_minor : &(NVME_NSID2NS(nvme, nsid)->ns_minor);
4783 
4784 	mutex_enter(&nvme->n_minor_mutex);
4785 	if (nm->nm_oexcl != NULL) {
4786 		ASSERT(nm->nm_oexcl == curthread);
4787 		nm->nm_oexcl = NULL;
4788 	}
4789 
4790 	ASSERT(nm->nm_open);
4791 	nm->nm_open = B_FALSE;
4792 	mutex_exit(&nvme->n_minor_mutex);
4793 
4794 	return (0);
4795 }
4796 
4797 static int
4798 nvme_ioctl_identify(nvme_t *nvme, int nsid, nvme_ioctl_t *nioc, int mode,
4799     cred_t *cred_p)
4800 {
4801 	_NOTE(ARGUNUSED(cred_p));
4802 	int rv = 0;
4803 	void *idctl;
4804 
4805 	if ((mode & FREAD) == 0)
4806 		return (EPERM);
4807 
4808 	if (nioc->n_len < NVME_IDENTIFY_BUFSIZE)
4809 		return (EINVAL);
4810 
4811 	switch (nioc->n_arg) {
4812 	case NVME_IDENTIFY_NSID:
4813 		/*
4814 		 * If we support namespace management, set the nsid to -1 to
4815 		 * retrieve the common namespace capabilities. Otherwise
4816 		 * have a best guess by returning identify data for namespace 1.
4817 		 */
4818 		if (nsid == 0)
4819 			nsid = nvme->n_idctl->id_oacs.oa_nsmgmt == 1 ? -1 : 1;
4820 		break;
4821 
4822 	case NVME_IDENTIFY_CTRL:
4823 		/*
4824 		 * Let NVME_IDENTIFY_CTRL work the same on devctl and attachment
4825 		 * point nodes.
4826 		 */
4827 		nsid = 0;
4828 		break;
4829 
4830 	case NVME_IDENTIFY_NSID_LIST:
4831 		if (!NVME_VERSION_ATLEAST(&nvme->n_version, 1, 1))
4832 			return (ENOTSUP);
4833 
4834 		/*
4835 		 * For now, always try to get the list of active NSIDs starting
4836 		 * at the first namespace. This will have to be revisited should
4837 		 * the need arise to support more than 1024 namespaces.
4838 		 */
4839 		nsid = 0;
4840 		break;
4841 
4842 	case NVME_IDENTIFY_NSID_DESC:
4843 		if (!NVME_VERSION_ATLEAST(&nvme->n_version, 1, 3))
4844 			return (ENOTSUP);
4845 		break;
4846 
4847 	case NVME_IDENTIFY_NSID_ALLOC:
4848 		if (!NVME_VERSION_ATLEAST(&nvme->n_version, 1, 2) ||
4849 		    (nvme->n_idctl->id_oacs.oa_nsmgmt == 0))
4850 			return (ENOTSUP);
4851 
4852 		/*
4853 		 * To make this work on a devctl node, make this return the
4854 		 * identify data for namespace 1. We assume that any NVMe
4855 		 * device supports at least one namespace, which has ID 1.
4856 		 */
4857 		if (nsid == 0)
4858 			nsid = 1;
4859 		break;
4860 
4861 	case NVME_IDENTIFY_NSID_ALLOC_LIST:
4862 		if (!NVME_VERSION_ATLEAST(&nvme->n_version, 1, 2) ||
4863 		    (nvme->n_idctl->id_oacs.oa_nsmgmt == 0))
4864 			return (ENOTSUP);
4865 
4866 		/*
4867 		 * For now, always try to get the list of allocated NSIDs
4868 		 * starting at the first namespace. This will have to be
4869 		 * revisited should the need arise to support more than 1024
4870 		 * namespaces.
4871 		 */
4872 		nsid = 0;
4873 		break;
4874 
4875 	case NVME_IDENTIFY_NSID_CTRL_LIST:
4876 		if (!NVME_VERSION_ATLEAST(&nvme->n_version, 1, 2) ||
4877 		    (nvme->n_idctl->id_oacs.oa_nsmgmt == 0))
4878 			return (ENOTSUP);
4879 
4880 		if (nsid == 0)
4881 			return (EINVAL);
4882 		break;
4883 
4884 	case NVME_IDENTIFY_CTRL_LIST:
4885 		if (!NVME_VERSION_ATLEAST(&nvme->n_version, 1, 2) ||
4886 		    (nvme->n_idctl->id_oacs.oa_nsmgmt == 0))
4887 			return (ENOTSUP);
4888 
4889 		if (nsid != 0)
4890 			return (EINVAL);
4891 		break;
4892 
4893 	default:
4894 		return (EINVAL);
4895 	}
4896 
4897 	if ((rv = nvme_identify(nvme, B_TRUE, nsid, nioc->n_arg & 0xff,
4898 	    (void **)&idctl)) != 0)
4899 		return (rv);
4900 
4901 	if (ddi_copyout(idctl, (void *)nioc->n_buf, NVME_IDENTIFY_BUFSIZE, mode)
4902 	    != 0)
4903 		rv = EFAULT;
4904 
4905 	kmem_free(idctl, NVME_IDENTIFY_BUFSIZE);
4906 
4907 	return (rv);
4908 }
4909 
4910 /*
4911  * Execute commands on behalf of the various ioctls.
4912  */
4913 static int
4914 nvme_ioc_cmd(nvme_t *nvme, nvme_sqe_t *sqe, boolean_t is_admin, void *data_addr,
4915     uint32_t data_len, int rwk, nvme_cqe_t *cqe, uint_t timeout)
4916 {
4917 	nvme_cmd_t *cmd;
4918 	nvme_qpair_t *ioq;
4919 	int rv = 0;
4920 
4921 	cmd = nvme_alloc_cmd(nvme, KM_SLEEP);
4922 	if (is_admin) {
4923 		cmd->nc_sqid = 0;
4924 		ioq = nvme->n_adminq;
4925 	} else {
4926 		cmd->nc_sqid = (CPU->cpu_id % nvme->n_ioq_count) + 1;
4927 		ASSERT(cmd->nc_sqid <= nvme->n_ioq_count);
4928 		ioq = nvme->n_ioq[cmd->nc_sqid];
4929 	}
4930 
4931 	/*
4932 	 * This function is used to facilitate requests from
4933 	 * userspace, so don't panic if the command fails. This
4934 	 * is especially true for admin passthru commands, where
4935 	 * the actual command data structure is entirely defined
4936 	 * by userspace.
4937 	 */
4938 	cmd->nc_dontpanic = B_TRUE;
4939 
4940 	cmd->nc_callback = nvme_wakeup_cmd;
4941 	cmd->nc_sqe = *sqe;
4942 
4943 	if ((rwk & (FREAD | FWRITE)) != 0) {
4944 		if (data_addr == NULL) {
4945 			rv = EINVAL;
4946 			goto free_cmd;
4947 		}
4948 
4949 		if (nvme_zalloc_dma(nvme, data_len, DDI_DMA_READ,
4950 		    &nvme->n_prp_dma_attr, &cmd->nc_dma) != DDI_SUCCESS) {
4951 			dev_err(nvme->n_dip, CE_WARN,
4952 			    "!nvme_zalloc_dma failed for nvme_ioc_cmd()");
4953 
4954 			rv = ENOMEM;
4955 			goto free_cmd;
4956 		}
4957 
4958 		if ((rv = nvme_fill_prp(cmd, cmd->nc_dma->nd_dmah)) != 0)
4959 			goto free_cmd;
4960 
4961 		if ((rwk & FWRITE) != 0) {
4962 			if (ddi_copyin(data_addr, cmd->nc_dma->nd_memp,
4963 			    data_len, rwk & FKIOCTL) != 0) {
4964 				rv = EFAULT;
4965 				goto free_cmd;
4966 			}
4967 		}
4968 	}
4969 
4970 	if (is_admin) {
4971 		nvme_admin_cmd(cmd, timeout);
4972 	} else {
4973 		mutex_enter(&cmd->nc_mutex);
4974 
4975 		rv = nvme_submit_io_cmd(ioq, cmd);
4976 
4977 		if (rv == EAGAIN) {
4978 			mutex_exit(&cmd->nc_mutex);
4979 			dev_err(cmd->nc_nvme->n_dip, CE_WARN,
4980 			    "!nvme_ioc_cmd() failed, I/O Q full");
4981 			goto free_cmd;
4982 		}
4983 
4984 		nvme_wait_cmd(cmd, timeout);
4985 
4986 		mutex_exit(&cmd->nc_mutex);
4987 	}
4988 
4989 	if (cqe != NULL)
4990 		*cqe = cmd->nc_cqe;
4991 
4992 	if ((rv = nvme_check_cmd_status(cmd)) != 0) {
4993 		dev_err(nvme->n_dip, CE_WARN,
4994 		    "!nvme_ioc_cmd() failed with sct = %x, sc = %x",
4995 		    cmd->nc_cqe.cqe_sf.sf_sct, cmd->nc_cqe.cqe_sf.sf_sc);
4996 
4997 		goto free_cmd;
4998 	}
4999 
5000 	if ((rwk & FREAD) != 0) {
5001 		if (ddi_copyout(cmd->nc_dma->nd_memp,
5002 		    data_addr, data_len, rwk & FKIOCTL) != 0)
5003 			rv = EFAULT;
5004 	}
5005 
5006 free_cmd:
5007 	nvme_free_cmd(cmd);
5008 
5009 	return (rv);
5010 }
5011 
5012 static int
5013 nvme_ioctl_capabilities(nvme_t *nvme, int nsid, nvme_ioctl_t *nioc,
5014     int mode, cred_t *cred_p)
5015 {
5016 	_NOTE(ARGUNUSED(nsid, cred_p));
5017 	int rv = 0;
5018 	nvme_reg_cap_t cap = { 0 };
5019 	nvme_capabilities_t nc;
5020 
5021 	if ((mode & FREAD) == 0)
5022 		return (EPERM);
5023 
5024 	if (nioc->n_len < sizeof (nc))
5025 		return (EINVAL);
5026 
5027 	cap.r = nvme_get64(nvme, NVME_REG_CAP);
5028 
5029 	/*
5030 	 * The MPSMIN and MPSMAX fields in the CAP register use 0 to
5031 	 * specify the base page size of 4k (1<<12), so add 12 here to
5032 	 * get the real page size value.
5033 	 */
5034 	nc.mpsmax = 1 << (12 + cap.b.cap_mpsmax);
5035 	nc.mpsmin = 1 << (12 + cap.b.cap_mpsmin);
5036 
5037 	if (ddi_copyout(&nc, (void *)nioc->n_buf, sizeof (nc), mode) != 0)
5038 		rv = EFAULT;
5039 
5040 	return (rv);
5041 }
5042 
5043 static int
5044 nvme_ioctl_get_logpage(nvme_t *nvme, int nsid, nvme_ioctl_t *nioc,
5045     int mode, cred_t *cred_p)
5046 {
5047 	_NOTE(ARGUNUSED(cred_p));
5048 	void *log = NULL;
5049 	size_t bufsize = 0;
5050 	int rv = 0;
5051 
5052 	if ((mode & FREAD) == 0)
5053 		return (EPERM);
5054 
5055 	if (nsid > 0 && !NVME_NSID2NS(nvme, nsid)->ns_active)
5056 		return (EINVAL);
5057 
5058 	switch (nioc->n_arg) {
5059 	case NVME_LOGPAGE_ERROR:
5060 		if (nsid != 0)
5061 			return (EINVAL);
5062 		break;
5063 	case NVME_LOGPAGE_HEALTH:
5064 		if (nsid != 0 && nvme->n_idctl->id_lpa.lp_smart == 0)
5065 			return (EINVAL);
5066 
5067 		if (nsid == 0)
5068 			nsid = (uint32_t)-1;
5069 
5070 		break;
5071 	case NVME_LOGPAGE_FWSLOT:
5072 		if (nsid != 0)
5073 			return (EINVAL);
5074 		break;
5075 	default:
5076 		if (!NVME_IS_VENDOR_SPECIFIC_LOGPAGE(nioc->n_arg))
5077 			return (EINVAL);
5078 		if (nioc->n_len > NVME_VENDOR_SPECIFIC_LOGPAGE_MAX_SIZE) {
5079 			dev_err(nvme->n_dip, CE_NOTE, "!Vendor-specific log "
5080 			    "page size exceeds device maximum supported size: "
5081 			    "%lu", NVME_VENDOR_SPECIFIC_LOGPAGE_MAX_SIZE);
5082 			return (EINVAL);
5083 		}
5084 		if (nioc->n_len == 0)
5085 			return (EINVAL);
5086 		bufsize = nioc->n_len;
5087 		if (nsid == 0)
5088 			nsid = (uint32_t)-1;
5089 	}
5090 
5091 	if (nvme_get_logpage(nvme, B_TRUE, &log, &bufsize, nioc->n_arg, nsid)
5092 	    != DDI_SUCCESS)
5093 		return (EIO);
5094 
5095 	if (nioc->n_len < bufsize) {
5096 		kmem_free(log, bufsize);
5097 		return (EINVAL);
5098 	}
5099 
5100 	if (ddi_copyout(log, (void *)nioc->n_buf, bufsize, mode) != 0)
5101 		rv = EFAULT;
5102 
5103 	nioc->n_len = bufsize;
5104 	kmem_free(log, bufsize);
5105 
5106 	return (rv);
5107 }
5108 
5109 static int
5110 nvme_ioctl_get_features(nvme_t *nvme, int nsid, nvme_ioctl_t *nioc,
5111     int mode, cred_t *cred_p)
5112 {
5113 	_NOTE(ARGUNUSED(cred_p));
5114 	void *buf = NULL;
5115 	size_t bufsize = 0;
5116 	uint32_t res = 0;
5117 	uint8_t feature;
5118 	int rv = 0;
5119 
5120 	if ((mode & FREAD) == 0)
5121 		return (EPERM);
5122 
5123 	if (nsid > 0 && !NVME_NSID2NS(nvme, nsid)->ns_active)
5124 		return (EINVAL);
5125 
5126 	if ((nioc->n_arg >> 32) > 0xff)
5127 		return (EINVAL);
5128 
5129 	feature = (uint8_t)(nioc->n_arg >> 32);
5130 
5131 	switch (feature) {
5132 	case NVME_FEAT_ARBITRATION:
5133 	case NVME_FEAT_POWER_MGMT:
5134 	case NVME_FEAT_ERROR:
5135 	case NVME_FEAT_NQUEUES:
5136 	case NVME_FEAT_INTR_COAL:
5137 	case NVME_FEAT_WRITE_ATOM:
5138 	case NVME_FEAT_ASYNC_EVENT:
5139 	case NVME_FEAT_PROGRESS:
5140 		if (nsid != 0)
5141 			return (EINVAL);
5142 		break;
5143 
5144 	case NVME_FEAT_TEMPERATURE:
5145 		if (nsid != 0)
5146 			return (EINVAL);
5147 		res = nioc->n_arg & 0xffffffffUL;
5148 		if (NVME_VERSION_ATLEAST(&nvme->n_version, 1, 2)) {
5149 			nvme_temp_threshold_t tt;
5150 
5151 			tt.r = res;
5152 			if (tt.b.tt_thsel != NVME_TEMP_THRESH_OVER &&
5153 			    tt.b.tt_thsel != NVME_TEMP_THRESH_UNDER) {
5154 				return (EINVAL);
5155 			}
5156 
5157 			if (tt.b.tt_tmpsel > NVME_TEMP_THRESH_MAX_SENSOR) {
5158 				return (EINVAL);
5159 			}
5160 		} else if (res != 0) {
5161 			return (ENOTSUP);
5162 		}
5163 		break;
5164 
5165 	case NVME_FEAT_INTR_VECT:
5166 		if (nsid != 0)
5167 			return (EINVAL);
5168 
5169 		res = nioc->n_arg & 0xffffffffUL;
5170 		if (res >= nvme->n_intr_cnt)
5171 			return (EINVAL);
5172 		break;
5173 
5174 	case NVME_FEAT_LBA_RANGE:
5175 		if (nvme->n_lba_range_supported == B_FALSE)
5176 			return (EINVAL);
5177 
5178 		if (nsid == 0 ||
5179 		    nsid > nvme->n_namespace_count)
5180 			return (EINVAL);
5181 
5182 		break;
5183 
5184 	case NVME_FEAT_WRITE_CACHE:
5185 		if (nsid != 0)
5186 			return (EINVAL);
5187 
5188 		if (!nvme->n_write_cache_present)
5189 			return (EINVAL);
5190 
5191 		break;
5192 
5193 	case NVME_FEAT_AUTO_PST:
5194 		if (nsid != 0)
5195 			return (EINVAL);
5196 
5197 		if (!nvme->n_auto_pst_supported)
5198 			return (EINVAL);
5199 
5200 		break;
5201 
5202 	default:
5203 		return (EINVAL);
5204 	}
5205 
5206 	rv = nvme_get_features(nvme, B_TRUE, nsid, feature, &res, &buf,
5207 	    &bufsize);
5208 	if (rv != 0)
5209 		return (rv);
5210 
5211 	if (nioc->n_len < bufsize) {
5212 		kmem_free(buf, bufsize);
5213 		return (EINVAL);
5214 	}
5215 
5216 	if (buf && ddi_copyout(buf, (void*)nioc->n_buf, bufsize, mode) != 0)
5217 		rv = EFAULT;
5218 
5219 	kmem_free(buf, bufsize);
5220 	nioc->n_arg = res;
5221 	nioc->n_len = bufsize;
5222 
5223 	return (rv);
5224 }
5225 
5226 static int
5227 nvme_ioctl_intr_cnt(nvme_t *nvme, int nsid, nvme_ioctl_t *nioc, int mode,
5228     cred_t *cred_p)
5229 {
5230 	_NOTE(ARGUNUSED(nsid, mode, cred_p));
5231 
5232 	if ((mode & FREAD) == 0)
5233 		return (EPERM);
5234 
5235 	nioc->n_arg = nvme->n_intr_cnt;
5236 	return (0);
5237 }
5238 
5239 static int
5240 nvme_ioctl_version(nvme_t *nvme, int nsid, nvme_ioctl_t *nioc, int mode,
5241     cred_t *cred_p)
5242 {
5243 	_NOTE(ARGUNUSED(nsid, cred_p));
5244 	int rv = 0;
5245 
5246 	if ((mode & FREAD) == 0)
5247 		return (EPERM);
5248 
5249 	if (nioc->n_len < sizeof (nvme->n_version))
5250 		return (ENOMEM);
5251 
5252 	if (ddi_copyout(&nvme->n_version, (void *)nioc->n_buf,
5253 	    sizeof (nvme->n_version), mode) != 0)
5254 		rv = EFAULT;
5255 
5256 	return (rv);
5257 }
5258 
5259 static int
5260 nvme_ioctl_format(nvme_t *nvme, int nsid, nvme_ioctl_t *nioc, int mode,
5261     cred_t *cred_p)
5262 {
5263 	_NOTE(ARGUNUSED(mode));
5264 	nvme_format_nvm_t frmt = { 0 };
5265 	int c_nsid = nsid != 0 ? nsid : 1;
5266 	nvme_identify_nsid_t *idns;
5267 	nvme_minor_state_t *nm;
5268 
5269 	if ((mode & FWRITE) == 0 || secpolicy_sys_config(cred_p, B_FALSE) != 0)
5270 		return (EPERM);
5271 
5272 	nm = nsid == 0 ? &nvme->n_minor : &(NVME_NSID2NS(nvme, nsid)->ns_minor);
5273 	if (nm->nm_oexcl != curthread)
5274 		return (EACCES);
5275 
5276 	if (nsid != 0) {
5277 		if (NVME_NSID2NS(nvme, nsid)->ns_attached)
5278 			return (EBUSY);
5279 		else if (!NVME_NSID2NS(nvme, nsid)->ns_active)
5280 			return (EINVAL);
5281 	}
5282 
5283 	frmt.r = nioc->n_arg & 0xffffffff;
5284 
5285 	/*
5286 	 * Check whether the FORMAT NVM command is supported.
5287 	 */
5288 	if (nvme->n_idctl->id_oacs.oa_format == 0)
5289 		return (ENOTSUP);
5290 
5291 	/*
5292 	 * Don't allow format or secure erase of individual namespace if that
5293 	 * would cause a format or secure erase of all namespaces.
5294 	 */
5295 	if (nsid != 0 && nvme->n_idctl->id_fna.fn_format != 0)
5296 		return (EINVAL);
5297 
5298 	if (nsid != 0 && frmt.b.fm_ses != NVME_FRMT_SES_NONE &&
5299 	    nvme->n_idctl->id_fna.fn_sec_erase != 0)
5300 		return (EINVAL);
5301 
5302 	/*
5303 	 * Don't allow formatting with Protection Information.
5304 	 */
5305 	if (frmt.b.fm_pi != 0 || frmt.b.fm_pil != 0 || frmt.b.fm_ms != 0)
5306 		return (EINVAL);
5307 
5308 	/*
5309 	 * Don't allow formatting using an illegal LBA format, or any LBA format
5310 	 * that uses metadata.
5311 	 */
5312 	idns = NVME_NSID2NS(nvme, c_nsid)->ns_idns;
5313 	if (frmt.b.fm_lbaf > idns->id_nlbaf ||
5314 	    idns->id_lbaf[frmt.b.fm_lbaf].lbaf_ms != 0)
5315 		return (EINVAL);
5316 
5317 	/*
5318 	 * Don't allow formatting using an illegal Secure Erase setting.
5319 	 */
5320 	if (frmt.b.fm_ses > NVME_FRMT_MAX_SES ||
5321 	    (frmt.b.fm_ses == NVME_FRMT_SES_CRYPTO &&
5322 	    nvme->n_idctl->id_fna.fn_crypt_erase == 0))
5323 		return (EINVAL);
5324 
5325 	if (nsid == 0)
5326 		nsid = (uint32_t)-1;
5327 
5328 	return (nvme_format_nvm(nvme, B_TRUE, nsid, frmt.b.fm_lbaf, B_FALSE, 0,
5329 	    B_FALSE, frmt.b.fm_ses));
5330 }
5331 
5332 static int
5333 nvme_ioctl_detach(nvme_t *nvme, int nsid, nvme_ioctl_t *nioc, int mode,
5334     cred_t *cred_p)
5335 {
5336 	_NOTE(ARGUNUSED(nioc, mode));
5337 	int rv;
5338 
5339 	if ((mode & FWRITE) == 0 || secpolicy_sys_config(cred_p, B_FALSE) != 0)
5340 		return (EPERM);
5341 
5342 	if (nsid == 0)
5343 		return (EINVAL);
5344 
5345 	if (NVME_NSID2NS(nvme, nsid)->ns_minor.nm_oexcl != curthread)
5346 		return (EACCES);
5347 
5348 	mutex_enter(&nvme->n_mgmt_mutex);
5349 
5350 	rv = nvme_detach_ns(nvme, nsid);
5351 
5352 	mutex_exit(&nvme->n_mgmt_mutex);
5353 
5354 	return (rv);
5355 }
5356 
5357 static int
5358 nvme_ioctl_attach(nvme_t *nvme, int nsid, nvme_ioctl_t *nioc, int mode,
5359     cred_t *cred_p)
5360 {
5361 	_NOTE(ARGUNUSED(nioc, mode));
5362 	int rv;
5363 
5364 	if ((mode & FWRITE) == 0 || secpolicy_sys_config(cred_p, B_FALSE) != 0)
5365 		return (EPERM);
5366 
5367 	if (nsid == 0)
5368 		return (EINVAL);
5369 
5370 	if (NVME_NSID2NS(nvme, nsid)->ns_minor.nm_oexcl != curthread)
5371 		return (EACCES);
5372 
5373 	mutex_enter(&nvme->n_mgmt_mutex);
5374 
5375 	if (nvme_init_ns(nvme, nsid) != DDI_SUCCESS) {
5376 		mutex_exit(&nvme->n_mgmt_mutex);
5377 		return (EIO);
5378 	}
5379 
5380 	rv = nvme_attach_ns(nvme, nsid);
5381 
5382 	mutex_exit(&nvme->n_mgmt_mutex);
5383 	return (rv);
5384 }
5385 
5386 static void
5387 nvme_ufm_update(nvme_t *nvme)
5388 {
5389 	mutex_enter(&nvme->n_fwslot_mutex);
5390 	ddi_ufm_update(nvme->n_ufmh);
5391 	if (nvme->n_fwslot != NULL) {
5392 		kmem_free(nvme->n_fwslot, sizeof (nvme_fwslot_log_t));
5393 		nvme->n_fwslot = NULL;
5394 	}
5395 	mutex_exit(&nvme->n_fwslot_mutex);
5396 }
5397 
5398 static int
5399 nvme_ioctl_firmware_download(nvme_t *nvme, int nsid, nvme_ioctl_t *nioc,
5400     int mode, cred_t *cred_p)
5401 {
5402 	int rv = 0;
5403 	size_t len, copylen;
5404 	offset_t offset;
5405 	uintptr_t buf;
5406 	nvme_cqe_t cqe = { 0 };
5407 	nvme_sqe_t sqe = {
5408 	    .sqe_opc	= NVME_OPC_FW_IMAGE_LOAD
5409 	};
5410 
5411 	if ((mode & FWRITE) == 0 || secpolicy_sys_config(cred_p, B_FALSE) != 0)
5412 		return (EPERM);
5413 
5414 	if (nvme->n_idctl->id_oacs.oa_firmware == 0)
5415 		return (ENOTSUP);
5416 
5417 	if (nsid != 0)
5418 		return (EINVAL);
5419 
5420 	/*
5421 	 * The offset (in n_len) is restricted to the number of DWORDs in
5422 	 * 32 bits.
5423 	 */
5424 	if (nioc->n_len > NVME_FW_OFFSETB_MAX)
5425 		return (EINVAL);
5426 
5427 	/* Confirm that both offset and length are a multiple of DWORD bytes */
5428 	if ((nioc->n_len & NVME_DWORD_MASK) != 0 ||
5429 	    (nioc->n_arg & NVME_DWORD_MASK) != 0)
5430 		return (EINVAL);
5431 
5432 	len = nioc->n_len;
5433 	offset = nioc->n_arg;
5434 	buf = (uintptr_t)nioc->n_buf;
5435 
5436 	nioc->n_arg = 0;
5437 
5438 	while (len > 0 && rv == 0) {
5439 		/*
5440 		 * nvme_ioc_cmd() does not use SGLs or PRP lists.
5441 		 * It is limited to 2 PRPs per NVM command, so limit
5442 		 * the size of the data to 2 pages.
5443 		 */
5444 		copylen = MIN(2 * nvme->n_pagesize, len);
5445 
5446 		sqe.sqe_cdw10 = (uint32_t)(copylen >> NVME_DWORD_SHIFT) - 1;
5447 		sqe.sqe_cdw11 = (uint32_t)(offset >> NVME_DWORD_SHIFT);
5448 
5449 		rv = nvme_ioc_cmd(nvme, &sqe, B_TRUE, (void *)buf, copylen,
5450 		    FWRITE, &cqe, nvme_admin_cmd_timeout);
5451 
5452 		/*
5453 		 * Regardless of whether the command succeeded or not, whether
5454 		 * there's an errno in rv to be returned, we'll return any
5455 		 * command-specific status code in n_arg.
5456 		 *
5457 		 * As n_arg isn't cleared in all other possible code paths
5458 		 * returning an error, we return the status code as a negative
5459 		 * value so it can be distinguished easily from whatever value
5460 		 * was passed in n_arg originally. This of course only works as
5461 		 * long as arguments passed in n_arg are less than INT64_MAX,
5462 		 * which they currently are.
5463 		 */
5464 		if (cqe.cqe_sf.sf_sct == NVME_CQE_SCT_SPECIFIC)
5465 			nioc->n_arg = (uint64_t)-cqe.cqe_sf.sf_sc;
5466 
5467 		buf += copylen;
5468 		offset += copylen;
5469 		len -= copylen;
5470 	}
5471 
5472 	/*
5473 	 * Let the DDI UFM subsystem know that the firmware information for
5474 	 * this device has changed.
5475 	 */
5476 	nvme_ufm_update(nvme);
5477 
5478 	return (rv);
5479 }
5480 
5481 static int
5482 nvme_ioctl_firmware_commit(nvme_t *nvme, int nsid, nvme_ioctl_t *nioc,
5483     int mode, cred_t *cred_p)
5484 {
5485 	nvme_firmware_commit_dw10_t fc_dw10 = { 0 };
5486 	uint32_t slot = nioc->n_arg & 0xffffffff;
5487 	uint32_t action = nioc->n_arg >> 32;
5488 	nvme_cqe_t cqe = { 0 };
5489 	nvme_sqe_t sqe = {
5490 	    .sqe_opc	= NVME_OPC_FW_ACTIVATE
5491 	};
5492 	int timeout;
5493 	int rv;
5494 
5495 	if ((mode & FWRITE) == 0 || secpolicy_sys_config(cred_p, B_FALSE) != 0)
5496 		return (EPERM);
5497 
5498 	if (nvme->n_idctl->id_oacs.oa_firmware == 0)
5499 		return (ENOTSUP);
5500 
5501 	if (nsid != 0)
5502 		return (EINVAL);
5503 
5504 	/* Validate slot is in range. */
5505 	if (slot < NVME_FW_SLOT_MIN || slot > NVME_FW_SLOT_MAX)
5506 		return (EINVAL);
5507 
5508 	switch (action) {
5509 	case NVME_FWC_SAVE:
5510 	case NVME_FWC_SAVE_ACTIVATE:
5511 		timeout = nvme_commit_save_cmd_timeout;
5512 		if (slot == 1 && nvme->n_idctl->id_frmw.fw_readonly)
5513 			return (EROFS);
5514 		break;
5515 	case NVME_FWC_ACTIVATE:
5516 	case NVME_FWC_ACTIVATE_IMMED:
5517 		timeout = nvme_admin_cmd_timeout;
5518 		break;
5519 	default:
5520 		return (EINVAL);
5521 	}
5522 
5523 	fc_dw10.b.fc_slot = slot;
5524 	fc_dw10.b.fc_action = action;
5525 	sqe.sqe_cdw10 = fc_dw10.r;
5526 
5527 	nioc->n_arg = 0;
5528 	rv = nvme_ioc_cmd(nvme, &sqe, B_TRUE, NULL, 0, 0, &cqe, timeout);
5529 
5530 	/*
5531 	 * Regardless of whether the command succeeded or not, whether
5532 	 * there's an errno in rv to be returned, we'll return any
5533 	 * command-specific status code in n_arg.
5534 	 *
5535 	 * As n_arg isn't cleared in all other possible code paths
5536 	 * returning an error, we return the status code as a negative
5537 	 * value so it can be distinguished easily from whatever value
5538 	 * was passed in n_arg originally. This of course only works as
5539 	 * long as arguments passed in n_arg are less than INT64_MAX,
5540 	 * which they currently are.
5541 	 */
5542 	if (cqe.cqe_sf.sf_sct == NVME_CQE_SCT_SPECIFIC)
5543 		nioc->n_arg = (uint64_t)-cqe.cqe_sf.sf_sc;
5544 
5545 	/*
5546 	 * Let the DDI UFM subsystem know that the firmware information for
5547 	 * this device has changed.
5548 	 */
5549 	nvme_ufm_update(nvme);
5550 
5551 	return (rv);
5552 }
5553 
5554 /*
5555  * Helper to copy in a passthru command from userspace, handling
5556  * different data models.
5557  */
5558 static int
5559 nvme_passthru_copy_cmd_in(const void *buf, nvme_passthru_cmd_t *cmd, int mode)
5560 {
5561 #ifdef _MULTI_DATAMODEL
5562 	switch (ddi_model_convert_from(mode & FMODELS)) {
5563 	case DDI_MODEL_ILP32: {
5564 		nvme_passthru_cmd32_t cmd32;
5565 		if (ddi_copyin(buf, (void*)&cmd32, sizeof (cmd32), mode) != 0)
5566 			return (-1);
5567 		cmd->npc_opcode = cmd32.npc_opcode;
5568 		cmd->npc_timeout = cmd32.npc_timeout;
5569 		cmd->npc_flags = cmd32.npc_flags;
5570 		cmd->npc_cdw12 = cmd32.npc_cdw12;
5571 		cmd->npc_cdw13 = cmd32.npc_cdw13;
5572 		cmd->npc_cdw14 = cmd32.npc_cdw14;
5573 		cmd->npc_cdw15 = cmd32.npc_cdw15;
5574 		cmd->npc_buflen = cmd32.npc_buflen;
5575 		cmd->npc_buf = cmd32.npc_buf;
5576 		break;
5577 	}
5578 	case DDI_MODEL_NONE:
5579 #endif
5580 	if (ddi_copyin(buf, (void*)cmd, sizeof (nvme_passthru_cmd_t),
5581 	    mode) != 0)
5582 		return (-1);
5583 #ifdef _MULTI_DATAMODEL
5584 		break;
5585 	}
5586 #endif
5587 	return (0);
5588 }
5589 
5590 /*
5591  * Helper to copy out a passthru command result to userspace, handling
5592  * different data models.
5593  */
5594 static int
5595 nvme_passthru_copy_cmd_out(const nvme_passthru_cmd_t *cmd, void *buf, int mode)
5596 {
5597 #ifdef _MULTI_DATAMODEL
5598 	switch (ddi_model_convert_from(mode & FMODELS)) {
5599 	case DDI_MODEL_ILP32: {
5600 		nvme_passthru_cmd32_t cmd32;
5601 		bzero(&cmd32, sizeof (cmd32));
5602 		cmd32.npc_opcode = cmd->npc_opcode;
5603 		cmd32.npc_status = cmd->npc_status;
5604 		cmd32.npc_err = cmd->npc_err;
5605 		cmd32.npc_timeout = cmd->npc_timeout;
5606 		cmd32.npc_flags = cmd->npc_flags;
5607 		cmd32.npc_cdw0 = cmd->npc_cdw0;
5608 		cmd32.npc_cdw12 = cmd->npc_cdw12;
5609 		cmd32.npc_cdw13 = cmd->npc_cdw13;
5610 		cmd32.npc_cdw14 = cmd->npc_cdw14;
5611 		cmd32.npc_cdw15 = cmd->npc_cdw15;
5612 		cmd32.npc_buflen = (size32_t)cmd->npc_buflen;
5613 		cmd32.npc_buf = (uintptr32_t)cmd->npc_buf;
5614 		if (ddi_copyout(&cmd32, buf, sizeof (cmd32), mode) != 0)
5615 			return (-1);
5616 		break;
5617 	}
5618 	case DDI_MODEL_NONE:
5619 #endif
5620 		if (ddi_copyout(cmd, buf, sizeof (nvme_passthru_cmd_t),
5621 		    mode) != 0)
5622 			return (-1);
5623 #ifdef _MULTI_DATAMODEL
5624 		break;
5625 	}
5626 #endif
5627 	return (0);
5628 }
5629 
5630 /*
5631  * Run an arbitrary vendor-specific admin command on the device.
5632  */
5633 static int
5634 nvme_ioctl_passthru(nvme_t *nvme, int nsid, nvme_ioctl_t *nioc, int mode,
5635     cred_t *cred_p)
5636 {
5637 	int rv = 0;
5638 	uint_t timeout = 0;
5639 	int rwk = 0;
5640 	nvme_passthru_cmd_t cmd;
5641 	size_t expected_passthru_size = 0;
5642 	nvme_sqe_t sqe;
5643 	nvme_cqe_t cqe;
5644 
5645 	bzero(&cmd, sizeof (cmd));
5646 	bzero(&sqe, sizeof (sqe));
5647 	bzero(&cqe, sizeof (cqe));
5648 
5649 	/*
5650 	 * Basic checks: permissions, data model, argument size.
5651 	 */
5652 	if ((mode & FWRITE) == 0 || secpolicy_sys_config(cred_p, B_FALSE) != 0)
5653 		return (EPERM);
5654 
5655 	/*
5656 	 * Compute the expected size of the argument buffer
5657 	 */
5658 #ifdef _MULTI_DATAMODEL
5659 	switch (ddi_model_convert_from(mode & FMODELS)) {
5660 	case DDI_MODEL_ILP32:
5661 		expected_passthru_size = sizeof (nvme_passthru_cmd32_t);
5662 		break;
5663 	case DDI_MODEL_NONE:
5664 #endif
5665 		expected_passthru_size = sizeof (nvme_passthru_cmd_t);
5666 #ifdef _MULTI_DATAMODEL
5667 		break;
5668 	}
5669 #endif
5670 
5671 	if (nioc->n_len != expected_passthru_size) {
5672 		cmd.npc_err = NVME_PASSTHRU_ERR_CMD_SIZE;
5673 		rv = EINVAL;
5674 		goto out;
5675 	}
5676 
5677 	/*
5678 	 * Ensure the device supports the standard vendor specific
5679 	 * admin command format.
5680 	 */
5681 	if (!nvme->n_idctl->id_nvscc.nv_spec) {
5682 		cmd.npc_err = NVME_PASSTHRU_ERR_NOT_SUPPORTED;
5683 		rv = ENOTSUP;
5684 		goto out;
5685 	}
5686 
5687 	if (nvme_passthru_copy_cmd_in((const void*)nioc->n_buf, &cmd, mode))
5688 		return (EFAULT);
5689 
5690 	if (!NVME_IS_VENDOR_SPECIFIC_CMD(cmd.npc_opcode)) {
5691 		cmd.npc_err = NVME_PASSTHRU_ERR_INVALID_OPCODE;
5692 		rv = EINVAL;
5693 		goto out;
5694 	}
5695 
5696 	/*
5697 	 * This restriction is not mandated by the spec, so future work
5698 	 * could relax this if it's necessary to support commands that both
5699 	 * read and write.
5700 	 */
5701 	if ((cmd.npc_flags & NVME_PASSTHRU_READ) != 0 &&
5702 	    (cmd.npc_flags & NVME_PASSTHRU_WRITE) != 0) {
5703 		cmd.npc_err = NVME_PASSTHRU_ERR_READ_AND_WRITE;
5704 		rv = EINVAL;
5705 		goto out;
5706 	}
5707 	if (cmd.npc_timeout > nvme_vendor_specific_admin_cmd_max_timeout) {
5708 		cmd.npc_err = NVME_PASSTHRU_ERR_INVALID_TIMEOUT;
5709 		rv = EINVAL;
5710 		goto out;
5711 	}
5712 	timeout = cmd.npc_timeout;
5713 
5714 	/*
5715 	 * Passed-thru command buffer verification:
5716 	 *  - Size is multiple of DWords
5717 	 *  - Non-null iff the length is non-zero
5718 	 *  - Null if neither reading nor writing data.
5719 	 *  - Non-null if reading or writing.
5720 	 *  - Maximum buffer size.
5721 	 */
5722 	if ((cmd.npc_buflen % sizeof (uint32_t)) != 0) {
5723 		cmd.npc_err = NVME_PASSTHRU_ERR_INVALID_BUFFER;
5724 		rv = EINVAL;
5725 		goto out;
5726 	}
5727 	if (((void*)cmd.npc_buf != NULL && cmd.npc_buflen == 0) ||
5728 	    ((void*)cmd.npc_buf == NULL && cmd.npc_buflen != 0)) {
5729 		cmd.npc_err = NVME_PASSTHRU_ERR_INVALID_BUFFER;
5730 		rv = EINVAL;
5731 		goto out;
5732 	}
5733 	if (cmd.npc_flags == 0 && (void*)cmd.npc_buf != NULL) {
5734 		cmd.npc_err = NVME_PASSTHRU_ERR_INVALID_BUFFER;
5735 		rv = EINVAL;
5736 		goto out;
5737 	}
5738 	if ((cmd.npc_flags != 0) && ((void*)cmd.npc_buf == NULL)) {
5739 		cmd.npc_err = NVME_PASSTHRU_ERR_INVALID_BUFFER;
5740 		rv = EINVAL;
5741 		goto out;
5742 	}
5743 	if (cmd.npc_buflen > nvme_vendor_specific_admin_cmd_size) {
5744 		cmd.npc_err = NVME_PASSTHRU_ERR_INVALID_BUFFER;
5745 		rv = EINVAL;
5746 		goto out;
5747 	}
5748 	if ((cmd.npc_buflen >> NVME_DWORD_SHIFT) > UINT32_MAX) {
5749 		cmd.npc_err = NVME_PASSTHRU_ERR_INVALID_BUFFER;
5750 		rv = EINVAL;
5751 		goto out;
5752 	}
5753 
5754 	sqe.sqe_opc = cmd.npc_opcode;
5755 	sqe.sqe_nsid = nsid;
5756 	sqe.sqe_cdw10 = (uint32_t)(cmd.npc_buflen >> NVME_DWORD_SHIFT);
5757 	sqe.sqe_cdw12 = cmd.npc_cdw12;
5758 	sqe.sqe_cdw13 = cmd.npc_cdw13;
5759 	sqe.sqe_cdw14 = cmd.npc_cdw14;
5760 	sqe.sqe_cdw15 = cmd.npc_cdw15;
5761 	if ((cmd.npc_flags & NVME_PASSTHRU_READ) != 0)
5762 		rwk = FREAD;
5763 	else if ((cmd.npc_flags & NVME_PASSTHRU_WRITE) != 0)
5764 		rwk = FWRITE;
5765 
5766 	rv = nvme_ioc_cmd(nvme, &sqe, B_TRUE, (void*)cmd.npc_buf,
5767 	    cmd.npc_buflen, rwk, &cqe, timeout);
5768 	cmd.npc_status = cqe.cqe_sf.sf_sc;
5769 	cmd.npc_cdw0 = cqe.cqe_dw0;
5770 
5771 out:
5772 	if (nvme_passthru_copy_cmd_out(&cmd, (void*)nioc->n_buf, mode))
5773 		rv = EFAULT;
5774 	return (rv);
5775 }
5776 
5777 static int
5778 nvme_ioctl_ns_state(nvme_t *nvme, int nsid, nvme_ioctl_t *nioc, int mode,
5779     cred_t *cred_p)
5780 {
5781 	_NOTE(ARGUNUSED(cred_p));
5782 	nvme_namespace_t *ns = NVME_NSID2NS(nvme, nsid);
5783 
5784 	if ((mode & FREAD) == 0)
5785 		return (EPERM);
5786 
5787 	if (nsid == 0)
5788 		return (EINVAL);
5789 
5790 	nioc->n_arg = 0;
5791 
5792 	mutex_enter(&nvme->n_mgmt_mutex);
5793 
5794 	if (ns->ns_allocated)
5795 		nioc->n_arg |= NVME_NS_STATE_ALLOCATED;
5796 
5797 	if (ns->ns_active)
5798 		nioc->n_arg |= NVME_NS_STATE_ACTIVE;
5799 
5800 	if (ns->ns_attached)
5801 		nioc->n_arg |= NVME_NS_STATE_ATTACHED;
5802 
5803 	if (ns->ns_ignore)
5804 		nioc->n_arg |= NVME_NS_STATE_IGNORED;
5805 
5806 	mutex_exit(&nvme->n_mgmt_mutex);
5807 
5808 	return (0);
5809 }
5810 
5811 static int
5812 nvme_ioctl(dev_t dev, int cmd, intptr_t arg, int mode, cred_t *cred_p,
5813     int *rval_p)
5814 {
5815 #ifndef __lock_lint
5816 	_NOTE(ARGUNUSED(rval_p));
5817 #endif
5818 	minor_t minor = getminor(dev);
5819 	nvme_t *nvme = ddi_get_soft_state(nvme_state, NVME_MINOR_INST(minor));
5820 	int nsid = NVME_MINOR_NSID(minor);
5821 	int rv = 0;
5822 	nvme_ioctl_t nioc;
5823 
5824 	int (*nvme_ioctl[])(nvme_t *, int, nvme_ioctl_t *, int, cred_t *) = {
5825 		NULL,
5826 		nvme_ioctl_identify,
5827 		NULL,
5828 		nvme_ioctl_capabilities,
5829 		nvme_ioctl_get_logpage,
5830 		nvme_ioctl_get_features,
5831 		nvme_ioctl_intr_cnt,
5832 		nvme_ioctl_version,
5833 		nvme_ioctl_format,
5834 		nvme_ioctl_detach,
5835 		nvme_ioctl_attach,
5836 		nvme_ioctl_firmware_download,
5837 		nvme_ioctl_firmware_commit,
5838 		nvme_ioctl_passthru,
5839 		nvme_ioctl_ns_state
5840 	};
5841 
5842 	if (nvme == NULL)
5843 		return (ENXIO);
5844 
5845 	if (nsid > nvme->n_namespace_count)
5846 		return (ENXIO);
5847 
5848 	if (IS_DEVCTL(cmd))
5849 		return (ndi_devctl_ioctl(nvme->n_dip, cmd, arg, mode, 0));
5850 
5851 #ifdef _MULTI_DATAMODEL
5852 	switch (ddi_model_convert_from(mode & FMODELS)) {
5853 	case DDI_MODEL_ILP32: {
5854 		nvme_ioctl32_t nioc32;
5855 		if (ddi_copyin((void*)arg, &nioc32, sizeof (nvme_ioctl32_t),
5856 		    mode) != 0)
5857 			return (EFAULT);
5858 		nioc.n_len = nioc32.n_len;
5859 		nioc.n_buf = nioc32.n_buf;
5860 		nioc.n_arg = nioc32.n_arg;
5861 		break;
5862 	}
5863 	case DDI_MODEL_NONE:
5864 #endif
5865 		if (ddi_copyin((void*)arg, &nioc, sizeof (nvme_ioctl_t), mode)
5866 		    != 0)
5867 			return (EFAULT);
5868 #ifdef _MULTI_DATAMODEL
5869 		break;
5870 	}
5871 #endif
5872 
5873 	if (nvme->n_dead && cmd != NVME_IOC_DETACH)
5874 		return (EIO);
5875 
5876 	if (IS_NVME_IOC(cmd) && nvme_ioctl[NVME_IOC_CMD(cmd)] != NULL)
5877 		rv = nvme_ioctl[NVME_IOC_CMD(cmd)](nvme, nsid, &nioc, mode,
5878 		    cred_p);
5879 	else
5880 		rv = EINVAL;
5881 
5882 #ifdef _MULTI_DATAMODEL
5883 	switch (ddi_model_convert_from(mode & FMODELS)) {
5884 	case DDI_MODEL_ILP32: {
5885 		nvme_ioctl32_t nioc32;
5886 
5887 		nioc32.n_len = (size32_t)nioc.n_len;
5888 		nioc32.n_buf = (uintptr32_t)nioc.n_buf;
5889 		nioc32.n_arg = nioc.n_arg;
5890 
5891 		if (ddi_copyout(&nioc32, (void *)arg, sizeof (nvme_ioctl32_t),
5892 		    mode) != 0)
5893 			return (EFAULT);
5894 		break;
5895 	}
5896 	case DDI_MODEL_NONE:
5897 #endif
5898 		if (ddi_copyout(&nioc, (void *)arg, sizeof (nvme_ioctl_t), mode)
5899 		    != 0)
5900 			return (EFAULT);
5901 #ifdef _MULTI_DATAMODEL
5902 		break;
5903 	}
5904 #endif
5905 
5906 	return (rv);
5907 }
5908 
5909 /*
5910  * DDI UFM Callbacks
5911  */
5912 static int
5913 nvme_ufm_fill_image(ddi_ufm_handle_t *ufmh, void *arg, uint_t imgno,
5914     ddi_ufm_image_t *img)
5915 {
5916 	nvme_t *nvme = arg;
5917 
5918 	if (imgno != 0)
5919 		return (EINVAL);
5920 
5921 	ddi_ufm_image_set_desc(img, "Firmware");
5922 	ddi_ufm_image_set_nslots(img, nvme->n_idctl->id_frmw.fw_nslot);
5923 
5924 	return (0);
5925 }
5926 
5927 /*
5928  * Fill out firmware slot information for the requested slot.  The firmware
5929  * slot information is gathered by requesting the Firmware Slot Information log
5930  * page.  The format of the page is described in section 5.10.1.3.
5931  *
5932  * We lazily cache the log page on the first call and then invalidate the cache
5933  * data after a successful firmware download or firmware commit command.
5934  * The cached data is protected by a mutex as the state can change
5935  * asynchronous to this callback.
5936  */
5937 static int
5938 nvme_ufm_fill_slot(ddi_ufm_handle_t *ufmh, void *arg, uint_t imgno,
5939     uint_t slotno, ddi_ufm_slot_t *slot)
5940 {
5941 	nvme_t *nvme = arg;
5942 	void *log = NULL;
5943 	size_t bufsize;
5944 	ddi_ufm_attr_t attr = 0;
5945 	char fw_ver[NVME_FWVER_SZ + 1];
5946 	int ret;
5947 
5948 	if (imgno > 0 || slotno > (nvme->n_idctl->id_frmw.fw_nslot - 1))
5949 		return (EINVAL);
5950 
5951 	mutex_enter(&nvme->n_fwslot_mutex);
5952 	if (nvme->n_fwslot == NULL) {
5953 		ret = nvme_get_logpage(nvme, B_TRUE, &log, &bufsize,
5954 		    NVME_LOGPAGE_FWSLOT, 0);
5955 		if (ret != DDI_SUCCESS ||
5956 		    bufsize != sizeof (nvme_fwslot_log_t)) {
5957 			if (log != NULL)
5958 				kmem_free(log, bufsize);
5959 			mutex_exit(&nvme->n_fwslot_mutex);
5960 			return (EIO);
5961 		}
5962 		nvme->n_fwslot = (nvme_fwslot_log_t *)log;
5963 	}
5964 
5965 	/*
5966 	 * NVMe numbers firmware slots starting at 1
5967 	 */
5968 	if (slotno == (nvme->n_fwslot->fw_afi - 1))
5969 		attr |= DDI_UFM_ATTR_ACTIVE;
5970 
5971 	if (slotno != 0 || nvme->n_idctl->id_frmw.fw_readonly == 0)
5972 		attr |= DDI_UFM_ATTR_WRITEABLE;
5973 
5974 	if (nvme->n_fwslot->fw_frs[slotno][0] == '\0') {
5975 		attr |= DDI_UFM_ATTR_EMPTY;
5976 	} else {
5977 		(void) strncpy(fw_ver, nvme->n_fwslot->fw_frs[slotno],
5978 		    NVME_FWVER_SZ);
5979 		fw_ver[NVME_FWVER_SZ] = '\0';
5980 		ddi_ufm_slot_set_version(slot, fw_ver);
5981 	}
5982 	mutex_exit(&nvme->n_fwslot_mutex);
5983 
5984 	ddi_ufm_slot_set_attrs(slot, attr);
5985 
5986 	return (0);
5987 }
5988 
5989 static int
5990 nvme_ufm_getcaps(ddi_ufm_handle_t *ufmh, void *arg, ddi_ufm_cap_t *caps)
5991 {
5992 	*caps = DDI_UFM_CAP_REPORT;
5993 	return (0);
5994 }
5995