Merge git://git.kernel.org/pub/scm/linux/kernel/git/bunk/trivial
[linux-2.6] / drivers / ieee1394 / sbp2.c
1 /*
2  * sbp2.c - SBP-2 protocol driver for IEEE-1394
3  *
4  * Copyright (C) 2000 James Goodwin, Filanet Corporation (www.filanet.com)
5  * jamesg@filanet.com (JSG)
6  *
7  * Copyright (C) 2003 Ben Collins <bcollins@debian.org>
8  *
9  * This program is free software; you can redistribute it and/or modify
10  * it under the terms of the GNU General Public License as published by
11  * the Free Software Foundation; either version 2 of the License, or
12  * (at your option) any later version.
13  *
14  * This program is distributed in the hope that it will be useful,
15  * but WITHOUT ANY WARRANTY; without even the implied warranty of
16  * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
17  * GNU General Public License for more details.
18  *
19  * You should have received a copy of the GNU General Public License
20  * along with this program; if not, write to the Free Software Foundation,
21  * Inc., 59 Temple Place - Suite 330, Boston, MA 02111-1307, USA.
22  */
23
24 /*
25  * Brief Description:
26  *
27  * This driver implements the Serial Bus Protocol 2 (SBP-2) over IEEE-1394
28  * under Linux. The SBP-2 driver is implemented as an IEEE-1394 high-level
29  * driver. It also registers as a SCSI lower-level driver in order to accept
30  * SCSI commands for transport using SBP-2.
31  *
32  * You may access any attached SBP-2 (usually storage devices) as regular
33  * SCSI devices. E.g. mount /dev/sda1, fdisk, mkfs, etc..
34  *
35  * See http://www.t10.org/drafts.htm#sbp2 for the final draft of the SBP-2
36  * specification and for where to purchase the official standard.
37  *
38  * TODO:
39  *   - look into possible improvements of the SCSI error handlers
40  *   - handle Unit_Characteristics.mgt_ORB_timeout and .ORB_size
41  *   - handle Logical_Unit_Number.ordered
42  *   - handle src == 1 in status blocks
43  *   - reimplement the DMA mapping in absence of physical DMA so that
44  *     bus_to_virt is no longer required
45  *   - debug the handling of absent physical DMA
46  *   - replace CONFIG_IEEE1394_SBP2_PHYS_DMA by automatic detection
47  *     (this is easy but depends on the previous two TODO items)
48  *   - make the parameter serialize_io configurable per device
49  *   - move all requests to fetch agent registers into non-atomic context,
50  *     replace all usages of sbp2util_node_write_no_wait by true transactions
51  * Grep for inline FIXME comments below.
52  */
53
54 #include <linux/compiler.h>
55 #include <linux/delay.h>
56 #include <linux/device.h>
57 #include <linux/dma-mapping.h>
58 #include <linux/gfp.h>
59 #include <linux/init.h>
60 #include <linux/kernel.h>
61 #include <linux/list.h>
62 #include <linux/mm.h>
63 #include <linux/module.h>
64 #include <linux/moduleparam.h>
65 #include <linux/sched.h>
66 #include <linux/slab.h>
67 #include <linux/spinlock.h>
68 #include <linux/stat.h>
69 #include <linux/string.h>
70 #include <linux/stringify.h>
71 #include <linux/types.h>
72 #include <linux/wait.h>
73
74 #include <asm/byteorder.h>
75 #include <asm/errno.h>
76 #include <asm/param.h>
77 #include <asm/scatterlist.h>
78 #include <asm/system.h>
79 #include <asm/types.h>
80
81 #ifdef CONFIG_IEEE1394_SBP2_PHYS_DMA
82 #include <asm/io.h> /* for bus_to_virt */
83 #endif
84
85 #include <scsi/scsi.h>
86 #include <scsi/scsi_cmnd.h>
87 #include <scsi/scsi_dbg.h>
88 #include <scsi/scsi_device.h>
89 #include <scsi/scsi_host.h>
90
91 #include "csr1212.h"
92 #include "highlevel.h"
93 #include "hosts.h"
94 #include "ieee1394.h"
95 #include "ieee1394_core.h"
96 #include "ieee1394_hotplug.h"
97 #include "ieee1394_transactions.h"
98 #include "ieee1394_types.h"
99 #include "nodemgr.h"
100 #include "sbp2.h"
101
102 /*
103  * Module load parameter definitions
104  */
105
106 /*
107  * Change max_speed on module load if you have a bad IEEE-1394
108  * controller that has trouble running 2KB packets at 400mb.
109  *
110  * NOTE: On certain OHCI parts I have seen short packets on async transmit
111  * (probably due to PCI latency/throughput issues with the part). You can
112  * bump down the speed if you are running into problems.
113  */
114 static int sbp2_max_speed = IEEE1394_SPEED_MAX;
115 module_param_named(max_speed, sbp2_max_speed, int, 0644);
116 MODULE_PARM_DESC(max_speed, "Force max speed "
117                  "(3 = 800Mb/s, 2 = 400Mb/s, 1 = 200Mb/s, 0 = 100Mb/s)");
118
119 /*
120  * Set serialize_io to 1 if you'd like only one scsi command sent
121  * down to us at a time (debugging). This might be necessary for very
122  * badly behaved sbp2 devices.
123  */
124 static int sbp2_serialize_io = 1;
125 module_param_named(serialize_io, sbp2_serialize_io, int, 0444);
126 MODULE_PARM_DESC(serialize_io, "Serialize I/O coming from scsi drivers "
127                  "(default = 1, faster = 0)");
128
129 /*
130  * Bump up max_sectors if you'd like to support very large sized
131  * transfers. Please note that some older sbp2 bridge chips are broken for
132  * transfers greater or equal to 128KB.  Default is a value of 255
133  * sectors, or just under 128KB (at 512 byte sector size). I can note that
134  * the Oxsemi sbp2 chipsets have no problems supporting very large
135  * transfer sizes.
136  */
137 static int sbp2_max_sectors = SBP2_MAX_SECTORS;
138 module_param_named(max_sectors, sbp2_max_sectors, int, 0444);
139 MODULE_PARM_DESC(max_sectors, "Change max sectors per I/O supported "
140                  "(default = " __stringify(SBP2_MAX_SECTORS) ")");
141
142 /*
143  * Exclusive login to sbp2 device? In most cases, the sbp2 driver should
144  * do an exclusive login, as it's generally unsafe to have two hosts
145  * talking to a single sbp2 device at the same time (filesystem coherency,
146  * etc.). If you're running an sbp2 device that supports multiple logins,
147  * and you're either running read-only filesystems or some sort of special
148  * filesystem supporting multiple hosts, e.g. OpenGFS, Oracle Cluster
149  * File System, or Lustre, then set exclusive_login to zero.
150  *
151  * So far only bridges from Oxford Semiconductor are known to support
152  * concurrent logins. Depending on firmware, four or two concurrent logins
153  * are possible on OXFW911 and newer Oxsemi bridges.
154  */
155 static int sbp2_exclusive_login = 1;
156 module_param_named(exclusive_login, sbp2_exclusive_login, int, 0644);
157 MODULE_PARM_DESC(exclusive_login, "Exclusive login to sbp2 device "
158                  "(default = 1)");
159
160 /*
161  * If any of the following workarounds is required for your device to work,
162  * please submit the kernel messages logged by sbp2 to the linux1394-devel
163  * mailing list.
164  *
165  * - 128kB max transfer
166  *   Limit transfer size. Necessary for some old bridges.
167  *
168  * - 36 byte inquiry
169  *   When scsi_mod probes the device, let the inquiry command look like that
170  *   from MS Windows.
171  *
172  * - skip mode page 8
173  *   Suppress sending of mode_sense for mode page 8 if the device pretends to
174  *   support the SCSI Primary Block commands instead of Reduced Block Commands.
175  *
176  * - fix capacity
177  *   Tell sd_mod to correct the last sector number reported by read_capacity.
178  *   Avoids access beyond actual disk limits on devices with an off-by-one bug.
179  *   Don't use this with devices which don't have this bug.
180  *
181  * - override internal blacklist
182  *   Instead of adding to the built-in blacklist, use only the workarounds
183  *   specified in the module load parameter.
184  *   Useful if a blacklist entry interfered with a non-broken device.
185  */
186 static int sbp2_default_workarounds;
187 module_param_named(workarounds, sbp2_default_workarounds, int, 0644);
188 MODULE_PARM_DESC(workarounds, "Work around device bugs (default = 0"
189         ", 128kB max transfer = " __stringify(SBP2_WORKAROUND_128K_MAX_TRANS)
190         ", 36 byte inquiry = "    __stringify(SBP2_WORKAROUND_INQUIRY_36)
191         ", skip mode page 8 = "   __stringify(SBP2_WORKAROUND_MODE_SENSE_8)
192         ", fix capacity = "       __stringify(SBP2_WORKAROUND_FIX_CAPACITY)
193         ", override internal blacklist = " __stringify(SBP2_WORKAROUND_OVERRIDE)
194         ", or a combination)");
195
196
197 #define SBP2_INFO(fmt, args...) HPSB_INFO("sbp2: "fmt, ## args)
198 #define SBP2_ERR(fmt, args...)  HPSB_ERR("sbp2: "fmt, ## args)
199
200 /*
201  * Globals
202  */
203 static void sbp2scsi_complete_all_commands(struct sbp2_lu *, u32);
204 static void sbp2scsi_complete_command(struct sbp2_lu *, u32, struct scsi_cmnd *,
205                                       void (*)(struct scsi_cmnd *));
206 static struct sbp2_lu *sbp2_alloc_device(struct unit_directory *);
207 static int sbp2_start_device(struct sbp2_lu *);
208 static void sbp2_remove_device(struct sbp2_lu *);
209 static int sbp2_login_device(struct sbp2_lu *);
210 static int sbp2_reconnect_device(struct sbp2_lu *);
211 static int sbp2_logout_device(struct sbp2_lu *);
212 static void sbp2_host_reset(struct hpsb_host *);
213 static int sbp2_handle_status_write(struct hpsb_host *, int, int, quadlet_t *,
214                                     u64, size_t, u16);
215 static int sbp2_agent_reset(struct sbp2_lu *, int);
216 static void sbp2_parse_unit_directory(struct sbp2_lu *,
217                                       struct unit_directory *);
218 static int sbp2_set_busy_timeout(struct sbp2_lu *);
219 static int sbp2_max_speed_and_size(struct sbp2_lu *);
220
221
222 static const u8 sbp2_speedto_max_payload[] = { 0x7, 0x8, 0x9, 0xA, 0xB, 0xC };
223
224 static struct hpsb_highlevel sbp2_highlevel = {
225         .name           = SBP2_DEVICE_NAME,
226         .host_reset     = sbp2_host_reset,
227 };
228
229 static struct hpsb_address_ops sbp2_ops = {
230         .write          = sbp2_handle_status_write
231 };
232
233 #ifdef CONFIG_IEEE1394_SBP2_PHYS_DMA
234 static int sbp2_handle_physdma_write(struct hpsb_host *, int, int, quadlet_t *,
235                                      u64, size_t, u16);
236 static int sbp2_handle_physdma_read(struct hpsb_host *, int, quadlet_t *, u64,
237                                     size_t, u16);
238
239 static struct hpsb_address_ops sbp2_physdma_ops = {
240         .read           = sbp2_handle_physdma_read,
241         .write          = sbp2_handle_physdma_write,
242 };
243 #endif
244
245
246 /*
247  * Interface to driver core and IEEE 1394 core
248  */
249 static struct ieee1394_device_id sbp2_id_table[] = {
250         {
251          .match_flags   = IEEE1394_MATCH_SPECIFIER_ID | IEEE1394_MATCH_VERSION,
252          .specifier_id  = SBP2_UNIT_SPEC_ID_ENTRY & 0xffffff,
253          .version       = SBP2_SW_VERSION_ENTRY & 0xffffff},
254         {}
255 };
256 MODULE_DEVICE_TABLE(ieee1394, sbp2_id_table);
257
258 static int sbp2_probe(struct device *);
259 static int sbp2_remove(struct device *);
260 static int sbp2_update(struct unit_directory *);
261
262 static struct hpsb_protocol_driver sbp2_driver = {
263         .name           = SBP2_DEVICE_NAME,
264         .id_table       = sbp2_id_table,
265         .update         = sbp2_update,
266         .driver         = {
267                 .probe          = sbp2_probe,
268                 .remove         = sbp2_remove,
269         },
270 };
271
272
273 /*
274  * Interface to SCSI core
275  */
276 static int sbp2scsi_queuecommand(struct scsi_cmnd *,
277                                  void (*)(struct scsi_cmnd *));
278 static int sbp2scsi_abort(struct scsi_cmnd *);
279 static int sbp2scsi_reset(struct scsi_cmnd *);
280 static int sbp2scsi_slave_alloc(struct scsi_device *);
281 static int sbp2scsi_slave_configure(struct scsi_device *);
282 static void sbp2scsi_slave_destroy(struct scsi_device *);
283 static ssize_t sbp2_sysfs_ieee1394_id_show(struct device *,
284                                            struct device_attribute *, char *);
285
286 static DEVICE_ATTR(ieee1394_id, S_IRUGO, sbp2_sysfs_ieee1394_id_show, NULL);
287
288 static struct device_attribute *sbp2_sysfs_sdev_attrs[] = {
289         &dev_attr_ieee1394_id,
290         NULL
291 };
292
293 static struct scsi_host_template sbp2_shost_template = {
294         .module                  = THIS_MODULE,
295         .name                    = "SBP-2 IEEE-1394",
296         .proc_name               = SBP2_DEVICE_NAME,
297         .queuecommand            = sbp2scsi_queuecommand,
298         .eh_abort_handler        = sbp2scsi_abort,
299         .eh_device_reset_handler = sbp2scsi_reset,
300         .slave_alloc             = sbp2scsi_slave_alloc,
301         .slave_configure         = sbp2scsi_slave_configure,
302         .slave_destroy           = sbp2scsi_slave_destroy,
303         .this_id                 = -1,
304         .sg_tablesize            = SG_ALL,
305         .use_clustering          = ENABLE_CLUSTERING,
306         .cmd_per_lun             = SBP2_MAX_CMDS,
307         .can_queue               = SBP2_MAX_CMDS,
308         .sdev_attrs              = sbp2_sysfs_sdev_attrs,
309 };
310
311 /* for match-all entries in sbp2_workarounds_table */
312 #define SBP2_ROM_VALUE_WILDCARD 0x1000000
313
314 /*
315  * List of devices with known bugs.
316  *
317  * The firmware_revision field, masked with 0xffff00, is the best indicator
318  * for the type of bridge chip of a device.  It yields a few false positives
319  * but this did not break correctly behaving devices so far.
320  */
321 static const struct {
322         u32 firmware_revision;
323         u32 model_id;
324         unsigned workarounds;
325 } sbp2_workarounds_table[] = {
326         /* DViCO Momobay CX-1 with TSB42AA9 bridge */ {
327                 .firmware_revision      = 0x002800,
328                 .model_id               = 0x001010,
329                 .workarounds            = SBP2_WORKAROUND_INQUIRY_36 |
330                                           SBP2_WORKAROUND_MODE_SENSE_8,
331         },
332         /* Initio bridges, actually only needed for some older ones */ {
333                 .firmware_revision      = 0x000200,
334                 .model_id               = SBP2_ROM_VALUE_WILDCARD,
335                 .workarounds            = SBP2_WORKAROUND_INQUIRY_36,
336         },
337         /* Symbios bridge */ {
338                 .firmware_revision      = 0xa0b800,
339                 .model_id               = SBP2_ROM_VALUE_WILDCARD,
340                 .workarounds            = SBP2_WORKAROUND_128K_MAX_TRANS,
341         },
342         /* iPod 4th generation */ {
343                 .firmware_revision      = 0x0a2700,
344                 .model_id               = 0x000021,
345                 .workarounds            = SBP2_WORKAROUND_FIX_CAPACITY,
346         },
347         /* iPod mini */ {
348                 .firmware_revision      = 0x0a2700,
349                 .model_id               = 0x000023,
350                 .workarounds            = SBP2_WORKAROUND_FIX_CAPACITY,
351         },
352         /* iPod Photo */ {
353                 .firmware_revision      = 0x0a2700,
354                 .model_id               = 0x00007e,
355                 .workarounds            = SBP2_WORKAROUND_FIX_CAPACITY,
356         }
357 };
358
359 /**************************************
360  * General utility functions
361  **************************************/
362
363 #ifndef __BIG_ENDIAN
364 /*
365  * Converts a buffer from be32 to cpu byte ordering. Length is in bytes.
366  */
367 static inline void sbp2util_be32_to_cpu_buffer(void *buffer, int length)
368 {
369         u32 *temp = buffer;
370
371         for (length = (length >> 2); length--; )
372                 temp[length] = be32_to_cpu(temp[length]);
373 }
374
375 /*
376  * Converts a buffer from cpu to be32 byte ordering. Length is in bytes.
377  */
378 static inline void sbp2util_cpu_to_be32_buffer(void *buffer, int length)
379 {
380         u32 *temp = buffer;
381
382         for (length = (length >> 2); length--; )
383                 temp[length] = cpu_to_be32(temp[length]);
384 }
385 #else /* BIG_ENDIAN */
386 /* Why waste the cpu cycles? */
387 #define sbp2util_be32_to_cpu_buffer(x,y) do {} while (0)
388 #define sbp2util_cpu_to_be32_buffer(x,y) do {} while (0)
389 #endif
390
391 static DECLARE_WAIT_QUEUE_HEAD(sbp2_access_wq);
392
393 /*
394  * Waits for completion of an SBP-2 access request.
395  * Returns nonzero if timed out or prematurely interrupted.
396  */
397 static int sbp2util_access_timeout(struct sbp2_lu *lu, int timeout)
398 {
399         long leftover;
400
401         leftover = wait_event_interruptible_timeout(
402                         sbp2_access_wq, lu->access_complete, timeout);
403         lu->access_complete = 0;
404         return leftover <= 0;
405 }
406
407 static void sbp2_free_packet(void *packet)
408 {
409         hpsb_free_tlabel(packet);
410         hpsb_free_packet(packet);
411 }
412
413 /*
414  * This is much like hpsb_node_write(), except it ignores the response
415  * subaction and returns immediately. Can be used from atomic context.
416  */
417 static int sbp2util_node_write_no_wait(struct node_entry *ne, u64 addr,
418                                        quadlet_t *buf, size_t len)
419 {
420         struct hpsb_packet *packet;
421
422         packet = hpsb_make_writepacket(ne->host, ne->nodeid, addr, buf, len);
423         if (!packet)
424                 return -ENOMEM;
425
426         hpsb_set_packet_complete_task(packet, sbp2_free_packet, packet);
427         hpsb_node_fill_packet(ne, packet);
428         if (hpsb_send_packet(packet) < 0) {
429                 sbp2_free_packet(packet);
430                 return -EIO;
431         }
432         return 0;
433 }
434
435 static void sbp2util_notify_fetch_agent(struct sbp2_lu *lu, u64 offset,
436                                         quadlet_t *data, size_t len)
437 {
438         /* There is a small window after a bus reset within which the node
439          * entry's generation is current but the reconnect wasn't completed. */
440         if (unlikely(atomic_read(&lu->state) == SBP2LU_STATE_IN_RESET))
441                 return;
442
443         if (hpsb_node_write(lu->ne, lu->command_block_agent_addr + offset,
444                             data, len))
445                 SBP2_ERR("sbp2util_notify_fetch_agent failed.");
446
447         /* Now accept new SCSI commands, unless a bus reset happended during
448          * hpsb_node_write. */
449         if (likely(atomic_read(&lu->state) != SBP2LU_STATE_IN_RESET))
450                 scsi_unblock_requests(lu->shost);
451 }
452
453 static void sbp2util_write_orb_pointer(struct work_struct *work)
454 {
455         struct sbp2_lu *lu = container_of(work, struct sbp2_lu, protocol_work);
456         quadlet_t data[2];
457
458         data[0] = ORB_SET_NODE_ID(lu->hi->host->node_id);
459         data[1] = lu->last_orb_dma;
460         sbp2util_cpu_to_be32_buffer(data, 8);
461         sbp2util_notify_fetch_agent(lu, SBP2_ORB_POINTER_OFFSET, data, 8);
462 }
463
464 static void sbp2util_write_doorbell(struct work_struct *work)
465 {
466         struct sbp2_lu *lu = container_of(work, struct sbp2_lu, protocol_work);
467
468         sbp2util_notify_fetch_agent(lu, SBP2_DOORBELL_OFFSET, NULL, 4);
469 }
470
471 static int sbp2util_create_command_orb_pool(struct sbp2_lu *lu)
472 {
473         struct sbp2_fwhost_info *hi = lu->hi;
474         struct sbp2_command_info *cmd;
475         int i, orbs = sbp2_serialize_io ? 2 : SBP2_MAX_CMDS;
476
477         for (i = 0; i < orbs; i++) {
478                 cmd = kzalloc(sizeof(*cmd), GFP_KERNEL);
479                 if (!cmd)
480                         return -ENOMEM;
481                 cmd->command_orb_dma = dma_map_single(hi->host->device.parent,
482                                                 &cmd->command_orb,
483                                                 sizeof(struct sbp2_command_orb),
484                                                 DMA_TO_DEVICE);
485                 cmd->sge_dma = dma_map_single(hi->host->device.parent,
486                                         &cmd->scatter_gather_element,
487                                         sizeof(cmd->scatter_gather_element),
488                                         DMA_TO_DEVICE);
489                 INIT_LIST_HEAD(&cmd->list);
490                 list_add_tail(&cmd->list, &lu->cmd_orb_completed);
491         }
492         return 0;
493 }
494
495 static void sbp2util_remove_command_orb_pool(struct sbp2_lu *lu)
496 {
497         struct hpsb_host *host = lu->hi->host;
498         struct list_head *lh, *next;
499         struct sbp2_command_info *cmd;
500         unsigned long flags;
501
502         spin_lock_irqsave(&lu->cmd_orb_lock, flags);
503         if (!list_empty(&lu->cmd_orb_completed))
504                 list_for_each_safe(lh, next, &lu->cmd_orb_completed) {
505                         cmd = list_entry(lh, struct sbp2_command_info, list);
506                         dma_unmap_single(host->device.parent,
507                                          cmd->command_orb_dma,
508                                          sizeof(struct sbp2_command_orb),
509                                          DMA_TO_DEVICE);
510                         dma_unmap_single(host->device.parent, cmd->sge_dma,
511                                          sizeof(cmd->scatter_gather_element),
512                                          DMA_TO_DEVICE);
513                         kfree(cmd);
514                 }
515         spin_unlock_irqrestore(&lu->cmd_orb_lock, flags);
516         return;
517 }
518
519 /*
520  * Finds the sbp2_command for a given outstanding command ORB.
521  * Only looks at the in-use list.
522  */
523 static struct sbp2_command_info *sbp2util_find_command_for_orb(
524                                 struct sbp2_lu *lu, dma_addr_t orb)
525 {
526         struct sbp2_command_info *cmd;
527         unsigned long flags;
528
529         spin_lock_irqsave(&lu->cmd_orb_lock, flags);
530         if (!list_empty(&lu->cmd_orb_inuse))
531                 list_for_each_entry(cmd, &lu->cmd_orb_inuse, list)
532                         if (cmd->command_orb_dma == orb) {
533                                 spin_unlock_irqrestore(
534                                                 &lu->cmd_orb_lock, flags);
535                                 return cmd;
536                         }
537         spin_unlock_irqrestore(&lu->cmd_orb_lock, flags);
538         return NULL;
539 }
540
541 /*
542  * Finds the sbp2_command for a given outstanding SCpnt.
543  * Only looks at the in-use list.
544  * Must be called with lu->cmd_orb_lock held.
545  */
546 static struct sbp2_command_info *sbp2util_find_command_for_SCpnt(
547                                 struct sbp2_lu *lu, void *SCpnt)
548 {
549         struct sbp2_command_info *cmd;
550
551         if (!list_empty(&lu->cmd_orb_inuse))
552                 list_for_each_entry(cmd, &lu->cmd_orb_inuse, list)
553                         if (cmd->Current_SCpnt == SCpnt)
554                                 return cmd;
555         return NULL;
556 }
557
558 static struct sbp2_command_info *sbp2util_allocate_command_orb(
559                                 struct sbp2_lu *lu,
560                                 struct scsi_cmnd *Current_SCpnt,
561                                 void (*Current_done)(struct scsi_cmnd *))
562 {
563         struct list_head *lh;
564         struct sbp2_command_info *cmd = NULL;
565         unsigned long flags;
566
567         spin_lock_irqsave(&lu->cmd_orb_lock, flags);
568         if (!list_empty(&lu->cmd_orb_completed)) {
569                 lh = lu->cmd_orb_completed.next;
570                 list_del(lh);
571                 cmd = list_entry(lh, struct sbp2_command_info, list);
572                 cmd->Current_done = Current_done;
573                 cmd->Current_SCpnt = Current_SCpnt;
574                 list_add_tail(&cmd->list, &lu->cmd_orb_inuse);
575         } else
576                 SBP2_ERR("%s: no orbs available", __FUNCTION__);
577         spin_unlock_irqrestore(&lu->cmd_orb_lock, flags);
578         return cmd;
579 }
580
581 /*
582  * Unmaps the DMAs of a command and moves the command to the completed ORB list.
583  * Must be called with lu->cmd_orb_lock held.
584  */
585 static void sbp2util_mark_command_completed(struct sbp2_lu *lu,
586                                             struct sbp2_command_info *cmd)
587 {
588         struct hpsb_host *host = lu->ud->ne->host;
589
590         if (cmd->cmd_dma) {
591                 if (cmd->dma_type == CMD_DMA_SINGLE)
592                         dma_unmap_single(host->device.parent, cmd->cmd_dma,
593                                          cmd->dma_size, cmd->dma_dir);
594                 else if (cmd->dma_type == CMD_DMA_PAGE)
595                         dma_unmap_page(host->device.parent, cmd->cmd_dma,
596                                        cmd->dma_size, cmd->dma_dir);
597                 /* XXX: Check for CMD_DMA_NONE bug */
598                 cmd->dma_type = CMD_DMA_NONE;
599                 cmd->cmd_dma = 0;
600         }
601         if (cmd->sge_buffer) {
602                 dma_unmap_sg(host->device.parent, cmd->sge_buffer,
603                              cmd->dma_size, cmd->dma_dir);
604                 cmd->sge_buffer = NULL;
605         }
606         list_move_tail(&cmd->list, &lu->cmd_orb_completed);
607 }
608
609 /*
610  * Is lu valid? Is the 1394 node still present?
611  */
612 static inline int sbp2util_node_is_available(struct sbp2_lu *lu)
613 {
614         return lu && lu->ne && !lu->ne->in_limbo;
615 }
616
617 /*********************************************
618  * IEEE-1394 core driver stack related section
619  *********************************************/
620
621 static int sbp2_probe(struct device *dev)
622 {
623         struct unit_directory *ud;
624         struct sbp2_lu *lu;
625
626         ud = container_of(dev, struct unit_directory, device);
627
628         /* Don't probe UD's that have the LUN flag. We'll probe the LUN(s)
629          * instead. */
630         if (ud->flags & UNIT_DIRECTORY_HAS_LUN_DIRECTORY)
631                 return -ENODEV;
632
633         lu = sbp2_alloc_device(ud);
634         if (!lu)
635                 return -ENOMEM;
636
637         sbp2_parse_unit_directory(lu, ud);
638         return sbp2_start_device(lu);
639 }
640
641 static int sbp2_remove(struct device *dev)
642 {
643         struct unit_directory *ud;
644         struct sbp2_lu *lu;
645         struct scsi_device *sdev;
646
647         ud = container_of(dev, struct unit_directory, device);
648         lu = ud->device.driver_data;
649         if (!lu)
650                 return 0;
651
652         if (lu->shost) {
653                 /* Get rid of enqueued commands if there is no chance to
654                  * send them. */
655                 if (!sbp2util_node_is_available(lu))
656                         sbp2scsi_complete_all_commands(lu, DID_NO_CONNECT);
657                 /* scsi_remove_device() may trigger shutdown functions of SCSI
658                  * highlevel drivers which would deadlock if blocked. */
659                 atomic_set(&lu->state, SBP2LU_STATE_IN_SHUTDOWN);
660                 scsi_unblock_requests(lu->shost);
661         }
662         sdev = lu->sdev;
663         if (sdev) {
664                 lu->sdev = NULL;
665                 scsi_remove_device(sdev);
666         }
667
668         sbp2_logout_device(lu);
669         sbp2_remove_device(lu);
670
671         return 0;
672 }
673
674 static int sbp2_update(struct unit_directory *ud)
675 {
676         struct sbp2_lu *lu = ud->device.driver_data;
677
678         if (sbp2_reconnect_device(lu)) {
679                 /* Reconnect has failed. Perhaps we didn't reconnect fast
680                  * enough. Try a regular login, but first log out just in
681                  * case of any weirdness. */
682                 sbp2_logout_device(lu);
683
684                 if (sbp2_login_device(lu)) {
685                         /* Login failed too, just fail, and the backend
686                          * will call our sbp2_remove for us */
687                         SBP2_ERR("Failed to reconnect to sbp2 device!");
688                         return -EBUSY;
689                 }
690         }
691
692         sbp2_set_busy_timeout(lu);
693         sbp2_agent_reset(lu, 1);
694         sbp2_max_speed_and_size(lu);
695
696         /* Complete any pending commands with busy (so they get retried)
697          * and remove them from our queue. */
698         sbp2scsi_complete_all_commands(lu, DID_BUS_BUSY);
699
700         /* Accept new commands unless there was another bus reset in the
701          * meantime. */
702         if (hpsb_node_entry_valid(lu->ne)) {
703                 atomic_set(&lu->state, SBP2LU_STATE_RUNNING);
704                 scsi_unblock_requests(lu->shost);
705         }
706         return 0;
707 }
708
709 static struct sbp2_lu *sbp2_alloc_device(struct unit_directory *ud)
710 {
711         struct sbp2_fwhost_info *hi;
712         struct Scsi_Host *shost = NULL;
713         struct sbp2_lu *lu = NULL;
714
715         lu = kzalloc(sizeof(*lu), GFP_KERNEL);
716         if (!lu) {
717                 SBP2_ERR("failed to create lu");
718                 goto failed_alloc;
719         }
720
721         lu->ne = ud->ne;
722         lu->ud = ud;
723         lu->speed_code = IEEE1394_SPEED_100;
724         lu->max_payload_size = sbp2_speedto_max_payload[IEEE1394_SPEED_100];
725         lu->status_fifo_addr = CSR1212_INVALID_ADDR_SPACE;
726         INIT_LIST_HEAD(&lu->cmd_orb_inuse);
727         INIT_LIST_HEAD(&lu->cmd_orb_completed);
728         INIT_LIST_HEAD(&lu->lu_list);
729         spin_lock_init(&lu->cmd_orb_lock);
730         atomic_set(&lu->state, SBP2LU_STATE_RUNNING);
731         INIT_WORK(&lu->protocol_work, NULL);
732
733         ud->device.driver_data = lu;
734
735         hi = hpsb_get_hostinfo(&sbp2_highlevel, ud->ne->host);
736         if (!hi) {
737                 hi = hpsb_create_hostinfo(&sbp2_highlevel, ud->ne->host,
738                                           sizeof(*hi));
739                 if (!hi) {
740                         SBP2_ERR("failed to allocate hostinfo");
741                         goto failed_alloc;
742                 }
743                 hi->host = ud->ne->host;
744                 INIT_LIST_HEAD(&hi->logical_units);
745
746 #ifdef CONFIG_IEEE1394_SBP2_PHYS_DMA
747                 /* Handle data movement if physical dma is not
748                  * enabled or not supported on host controller */
749                 if (!hpsb_register_addrspace(&sbp2_highlevel, ud->ne->host,
750                                              &sbp2_physdma_ops,
751                                              0x0ULL, 0xfffffffcULL)) {
752                         SBP2_ERR("failed to register lower 4GB address range");
753                         goto failed_alloc;
754                 }
755 #else
756                 if (dma_set_mask(hi->host->device.parent, DMA_32BIT_MASK)) {
757                         SBP2_ERR("failed to set 4GB DMA mask");
758                         goto failed_alloc;
759                 }
760 #endif
761         }
762
763         /* Prevent unloading of the 1394 host */
764         if (!try_module_get(hi->host->driver->owner)) {
765                 SBP2_ERR("failed to get a reference on 1394 host driver");
766                 goto failed_alloc;
767         }
768
769         lu->hi = hi;
770
771         list_add_tail(&lu->lu_list, &hi->logical_units);
772
773         /* Register the status FIFO address range. We could use the same FIFO
774          * for targets at different nodes. However we need different FIFOs per
775          * target in order to support multi-unit devices.
776          * The FIFO is located out of the local host controller's physical range
777          * but, if possible, within the posted write area. Status writes will
778          * then be performed as unified transactions. This slightly reduces
779          * bandwidth usage, and some Prolific based devices seem to require it.
780          */
781         lu->status_fifo_addr = hpsb_allocate_and_register_addrspace(
782                         &sbp2_highlevel, ud->ne->host, &sbp2_ops,
783                         sizeof(struct sbp2_status_block), sizeof(quadlet_t),
784                         ud->ne->host->low_addr_space, CSR1212_ALL_SPACE_END);
785         if (lu->status_fifo_addr == CSR1212_INVALID_ADDR_SPACE) {
786                 SBP2_ERR("failed to allocate status FIFO address range");
787                 goto failed_alloc;
788         }
789
790         shost = scsi_host_alloc(&sbp2_shost_template, sizeof(unsigned long));
791         if (!shost) {
792                 SBP2_ERR("failed to register scsi host");
793                 goto failed_alloc;
794         }
795
796         shost->hostdata[0] = (unsigned long)lu;
797
798         if (!scsi_add_host(shost, &ud->device)) {
799                 lu->shost = shost;
800                 return lu;
801         }
802
803         SBP2_ERR("failed to add scsi host");
804         scsi_host_put(shost);
805
806 failed_alloc:
807         sbp2_remove_device(lu);
808         return NULL;
809 }
810
811 static void sbp2_host_reset(struct hpsb_host *host)
812 {
813         struct sbp2_fwhost_info *hi;
814         struct sbp2_lu *lu;
815
816         hi = hpsb_get_hostinfo(&sbp2_highlevel, host);
817         if (!hi)
818                 return;
819         list_for_each_entry(lu, &hi->logical_units, lu_list)
820                 if (likely(atomic_read(&lu->state) !=
821                            SBP2LU_STATE_IN_SHUTDOWN)) {
822                         atomic_set(&lu->state, SBP2LU_STATE_IN_RESET);
823                         scsi_block_requests(lu->shost);
824                 }
825 }
826
827 static int sbp2_start_device(struct sbp2_lu *lu)
828 {
829         struct sbp2_fwhost_info *hi = lu->hi;
830         int error;
831
832         lu->login_response = dma_alloc_coherent(hi->host->device.parent,
833                                      sizeof(struct sbp2_login_response),
834                                      &lu->login_response_dma, GFP_KERNEL);
835         if (!lu->login_response)
836                 goto alloc_fail;
837
838         lu->query_logins_orb = dma_alloc_coherent(hi->host->device.parent,
839                                      sizeof(struct sbp2_query_logins_orb),
840                                      &lu->query_logins_orb_dma, GFP_KERNEL);
841         if (!lu->query_logins_orb)
842                 goto alloc_fail;
843
844         lu->query_logins_response = dma_alloc_coherent(hi->host->device.parent,
845                                      sizeof(struct sbp2_query_logins_response),
846                                      &lu->query_logins_response_dma, GFP_KERNEL);
847         if (!lu->query_logins_response)
848                 goto alloc_fail;
849
850         lu->reconnect_orb = dma_alloc_coherent(hi->host->device.parent,
851                                      sizeof(struct sbp2_reconnect_orb),
852                                      &lu->reconnect_orb_dma, GFP_KERNEL);
853         if (!lu->reconnect_orb)
854                 goto alloc_fail;
855
856         lu->logout_orb = dma_alloc_coherent(hi->host->device.parent,
857                                      sizeof(struct sbp2_logout_orb),
858                                      &lu->logout_orb_dma, GFP_KERNEL);
859         if (!lu->logout_orb)
860                 goto alloc_fail;
861
862         lu->login_orb = dma_alloc_coherent(hi->host->device.parent,
863                                      sizeof(struct sbp2_login_orb),
864                                      &lu->login_orb_dma, GFP_KERNEL);
865         if (!lu->login_orb)
866                 goto alloc_fail;
867
868         if (sbp2util_create_command_orb_pool(lu))
869                 goto alloc_fail;
870
871         /* Wait a second before trying to log in. Previously logged in
872          * initiators need a chance to reconnect. */
873         if (msleep_interruptible(1000)) {
874                 sbp2_remove_device(lu);
875                 return -EINTR;
876         }
877
878         if (sbp2_login_device(lu)) {
879                 sbp2_remove_device(lu);
880                 return -EBUSY;
881         }
882
883         sbp2_set_busy_timeout(lu);
884         sbp2_agent_reset(lu, 1);
885         sbp2_max_speed_and_size(lu);
886
887         error = scsi_add_device(lu->shost, 0, lu->ud->id, 0);
888         if (error) {
889                 SBP2_ERR("scsi_add_device failed");
890                 sbp2_logout_device(lu);
891                 sbp2_remove_device(lu);
892                 return error;
893         }
894
895         return 0;
896
897 alloc_fail:
898         SBP2_ERR("Could not allocate memory for lu");
899         sbp2_remove_device(lu);
900         return -ENOMEM;
901 }
902
903 static void sbp2_remove_device(struct sbp2_lu *lu)
904 {
905         struct sbp2_fwhost_info *hi;
906
907         if (!lu)
908                 return;
909
910         hi = lu->hi;
911
912         if (lu->shost) {
913                 scsi_remove_host(lu->shost);
914                 scsi_host_put(lu->shost);
915         }
916         flush_scheduled_work();
917         sbp2util_remove_command_orb_pool(lu);
918
919         list_del(&lu->lu_list);
920
921         if (lu->login_response)
922                 dma_free_coherent(hi->host->device.parent,
923                                     sizeof(struct sbp2_login_response),
924                                     lu->login_response,
925                                     lu->login_response_dma);
926         if (lu->login_orb)
927                 dma_free_coherent(hi->host->device.parent,
928                                     sizeof(struct sbp2_login_orb),
929                                     lu->login_orb,
930                                     lu->login_orb_dma);
931         if (lu->reconnect_orb)
932                 dma_free_coherent(hi->host->device.parent,
933                                     sizeof(struct sbp2_reconnect_orb),
934                                     lu->reconnect_orb,
935                                     lu->reconnect_orb_dma);
936         if (lu->logout_orb)
937                 dma_free_coherent(hi->host->device.parent,
938                                     sizeof(struct sbp2_logout_orb),
939                                     lu->logout_orb,
940                                     lu->logout_orb_dma);
941         if (lu->query_logins_orb)
942                 dma_free_coherent(hi->host->device.parent,
943                                     sizeof(struct sbp2_query_logins_orb),
944                                     lu->query_logins_orb,
945                                     lu->query_logins_orb_dma);
946         if (lu->query_logins_response)
947                 dma_free_coherent(hi->host->device.parent,
948                                     sizeof(struct sbp2_query_logins_response),
949                                     lu->query_logins_response,
950                                     lu->query_logins_response_dma);
951
952         if (lu->status_fifo_addr != CSR1212_INVALID_ADDR_SPACE)
953                 hpsb_unregister_addrspace(&sbp2_highlevel, hi->host,
954                                           lu->status_fifo_addr);
955
956         lu->ud->device.driver_data = NULL;
957
958         if (hi)
959                 module_put(hi->host->driver->owner);
960
961         kfree(lu);
962 }
963
964 #ifdef CONFIG_IEEE1394_SBP2_PHYS_DMA
965 /*
966  * Deal with write requests on adapters which do not support physical DMA or
967  * have it switched off.
968  */
969 static int sbp2_handle_physdma_write(struct hpsb_host *host, int nodeid,
970                                      int destid, quadlet_t *data, u64 addr,
971                                      size_t length, u16 flags)
972 {
973         memcpy(bus_to_virt((u32) addr), data, length);
974         return RCODE_COMPLETE;
975 }
976
977 /*
978  * Deal with read requests on adapters which do not support physical DMA or
979  * have it switched off.
980  */
981 static int sbp2_handle_physdma_read(struct hpsb_host *host, int nodeid,
982                                     quadlet_t *data, u64 addr, size_t length,
983                                     u16 flags)
984 {
985         memcpy(data, bus_to_virt((u32) addr), length);
986         return RCODE_COMPLETE;
987 }
988 #endif
989
990 /**************************************
991  * SBP-2 protocol related section
992  **************************************/
993
994 static int sbp2_query_logins(struct sbp2_lu *lu)
995 {
996         struct sbp2_fwhost_info *hi = lu->hi;
997         quadlet_t data[2];
998         int max_logins;
999         int active_logins;
1000
1001         lu->query_logins_orb->reserved1 = 0x0;
1002         lu->query_logins_orb->reserved2 = 0x0;
1003
1004         lu->query_logins_orb->query_response_lo = lu->query_logins_response_dma;
1005         lu->query_logins_orb->query_response_hi =
1006                         ORB_SET_NODE_ID(hi->host->node_id);
1007         lu->query_logins_orb->lun_misc =
1008                         ORB_SET_FUNCTION(SBP2_QUERY_LOGINS_REQUEST);
1009         lu->query_logins_orb->lun_misc |= ORB_SET_NOTIFY(1);
1010         lu->query_logins_orb->lun_misc |= ORB_SET_LUN(lu->lun);
1011
1012         lu->query_logins_orb->reserved_resp_length =
1013                 ORB_SET_QUERY_LOGINS_RESP_LENGTH(
1014                         sizeof(struct sbp2_query_logins_response));
1015
1016         lu->query_logins_orb->status_fifo_hi =
1017                 ORB_SET_STATUS_FIFO_HI(lu->status_fifo_addr, hi->host->node_id);
1018         lu->query_logins_orb->status_fifo_lo =
1019                 ORB_SET_STATUS_FIFO_LO(lu->status_fifo_addr);
1020
1021         sbp2util_cpu_to_be32_buffer(lu->query_logins_orb,
1022                                     sizeof(struct sbp2_query_logins_orb));
1023
1024         memset(lu->query_logins_response, 0,
1025                sizeof(struct sbp2_query_logins_response));
1026
1027         data[0] = ORB_SET_NODE_ID(hi->host->node_id);
1028         data[1] = lu->query_logins_orb_dma;
1029         sbp2util_cpu_to_be32_buffer(data, 8);
1030
1031         hpsb_node_write(lu->ne, lu->management_agent_addr, data, 8);
1032
1033         if (sbp2util_access_timeout(lu, 2*HZ)) {
1034                 SBP2_INFO("Error querying logins to SBP-2 device - timed out");
1035                 return -EIO;
1036         }
1037
1038         if (lu->status_block.ORB_offset_lo != lu->query_logins_orb_dma) {
1039                 SBP2_INFO("Error querying logins to SBP-2 device - timed out");
1040                 return -EIO;
1041         }
1042
1043         if (STATUS_TEST_RDS(lu->status_block.ORB_offset_hi_misc)) {
1044                 SBP2_INFO("Error querying logins to SBP-2 device - failed");
1045                 return -EIO;
1046         }
1047
1048         sbp2util_cpu_to_be32_buffer(lu->query_logins_response,
1049                                     sizeof(struct sbp2_query_logins_response));
1050
1051         max_logins = RESPONSE_GET_MAX_LOGINS(
1052                         lu->query_logins_response->length_max_logins);
1053         SBP2_INFO("Maximum concurrent logins supported: %d", max_logins);
1054
1055         active_logins = RESPONSE_GET_ACTIVE_LOGINS(
1056                         lu->query_logins_response->length_max_logins);
1057         SBP2_INFO("Number of active logins: %d", active_logins);
1058
1059         if (active_logins >= max_logins) {
1060                 return -EIO;
1061         }
1062
1063         return 0;
1064 }
1065
1066 static int sbp2_login_device(struct sbp2_lu *lu)
1067 {
1068         struct sbp2_fwhost_info *hi = lu->hi;
1069         quadlet_t data[2];
1070
1071         if (!lu->login_orb)
1072                 return -EIO;
1073
1074         if (!sbp2_exclusive_login && sbp2_query_logins(lu)) {
1075                 SBP2_INFO("Device does not support any more concurrent logins");
1076                 return -EIO;
1077         }
1078
1079         /* assume no password */
1080         lu->login_orb->password_hi = 0;
1081         lu->login_orb->password_lo = 0;
1082
1083         lu->login_orb->login_response_lo = lu->login_response_dma;
1084         lu->login_orb->login_response_hi = ORB_SET_NODE_ID(hi->host->node_id);
1085         lu->login_orb->lun_misc = ORB_SET_FUNCTION(SBP2_LOGIN_REQUEST);
1086
1087         /* one second reconnect time */
1088         lu->login_orb->lun_misc |= ORB_SET_RECONNECT(0);
1089         lu->login_orb->lun_misc |= ORB_SET_EXCLUSIVE(sbp2_exclusive_login);
1090         lu->login_orb->lun_misc |= ORB_SET_NOTIFY(1);
1091         lu->login_orb->lun_misc |= ORB_SET_LUN(lu->lun);
1092
1093         lu->login_orb->passwd_resp_lengths =
1094                 ORB_SET_LOGIN_RESP_LENGTH(sizeof(struct sbp2_login_response));
1095
1096         lu->login_orb->status_fifo_hi =
1097                 ORB_SET_STATUS_FIFO_HI(lu->status_fifo_addr, hi->host->node_id);
1098         lu->login_orb->status_fifo_lo =
1099                 ORB_SET_STATUS_FIFO_LO(lu->status_fifo_addr);
1100
1101         sbp2util_cpu_to_be32_buffer(lu->login_orb,
1102                                     sizeof(struct sbp2_login_orb));
1103
1104         memset(lu->login_response, 0, sizeof(struct sbp2_login_response));
1105
1106         data[0] = ORB_SET_NODE_ID(hi->host->node_id);
1107         data[1] = lu->login_orb_dma;
1108         sbp2util_cpu_to_be32_buffer(data, 8);
1109
1110         hpsb_node_write(lu->ne, lu->management_agent_addr, data, 8);
1111
1112         /* wait up to 20 seconds for login status */
1113         if (sbp2util_access_timeout(lu, 20*HZ)) {
1114                 SBP2_ERR("Error logging into SBP-2 device - timed out");
1115                 return -EIO;
1116         }
1117
1118         /* make sure that the returned status matches the login ORB */
1119         if (lu->status_block.ORB_offset_lo != lu->login_orb_dma) {
1120                 SBP2_ERR("Error logging into SBP-2 device - timed out");
1121                 return -EIO;
1122         }
1123
1124         if (STATUS_TEST_RDS(lu->status_block.ORB_offset_hi_misc)) {
1125                 SBP2_ERR("Error logging into SBP-2 device - failed");
1126                 return -EIO;
1127         }
1128
1129         sbp2util_cpu_to_be32_buffer(lu->login_response,
1130                                     sizeof(struct sbp2_login_response));
1131         lu->command_block_agent_addr =
1132                         ((u64)lu->login_response->command_block_agent_hi) << 32;
1133         lu->command_block_agent_addr |=
1134                         ((u64)lu->login_response->command_block_agent_lo);
1135         lu->command_block_agent_addr &= 0x0000ffffffffffffULL;
1136
1137         SBP2_INFO("Logged into SBP-2 device");
1138         return 0;
1139 }
1140
1141 static int sbp2_logout_device(struct sbp2_lu *lu)
1142 {
1143         struct sbp2_fwhost_info *hi = lu->hi;
1144         quadlet_t data[2];
1145         int error;
1146
1147         lu->logout_orb->reserved1 = 0x0;
1148         lu->logout_orb->reserved2 = 0x0;
1149         lu->logout_orb->reserved3 = 0x0;
1150         lu->logout_orb->reserved4 = 0x0;
1151
1152         lu->logout_orb->login_ID_misc = ORB_SET_FUNCTION(SBP2_LOGOUT_REQUEST);
1153         lu->logout_orb->login_ID_misc |=
1154                         ORB_SET_LOGIN_ID(lu->login_response->length_login_ID);
1155         lu->logout_orb->login_ID_misc |= ORB_SET_NOTIFY(1);
1156
1157         lu->logout_orb->reserved5 = 0x0;
1158         lu->logout_orb->status_fifo_hi =
1159                 ORB_SET_STATUS_FIFO_HI(lu->status_fifo_addr, hi->host->node_id);
1160         lu->logout_orb->status_fifo_lo =
1161                 ORB_SET_STATUS_FIFO_LO(lu->status_fifo_addr);
1162
1163         sbp2util_cpu_to_be32_buffer(lu->logout_orb,
1164                                     sizeof(struct sbp2_logout_orb));
1165
1166         data[0] = ORB_SET_NODE_ID(hi->host->node_id);
1167         data[1] = lu->logout_orb_dma;
1168         sbp2util_cpu_to_be32_buffer(data, 8);
1169
1170         error = hpsb_node_write(lu->ne, lu->management_agent_addr, data, 8);
1171         if (error)
1172                 return error;
1173
1174         /* wait up to 1 second for the device to complete logout */
1175         if (sbp2util_access_timeout(lu, HZ))
1176                 return -EIO;
1177
1178         SBP2_INFO("Logged out of SBP-2 device");
1179         return 0;
1180 }
1181
1182 static int sbp2_reconnect_device(struct sbp2_lu *lu)
1183 {
1184         struct sbp2_fwhost_info *hi = lu->hi;
1185         quadlet_t data[2];
1186         int error;
1187
1188         lu->reconnect_orb->reserved1 = 0x0;
1189         lu->reconnect_orb->reserved2 = 0x0;
1190         lu->reconnect_orb->reserved3 = 0x0;
1191         lu->reconnect_orb->reserved4 = 0x0;
1192
1193         lu->reconnect_orb->login_ID_misc =
1194                         ORB_SET_FUNCTION(SBP2_RECONNECT_REQUEST);
1195         lu->reconnect_orb->login_ID_misc |=
1196                         ORB_SET_LOGIN_ID(lu->login_response->length_login_ID);
1197         lu->reconnect_orb->login_ID_misc |= ORB_SET_NOTIFY(1);
1198
1199         lu->reconnect_orb->reserved5 = 0x0;
1200         lu->reconnect_orb->status_fifo_hi =
1201                 ORB_SET_STATUS_FIFO_HI(lu->status_fifo_addr, hi->host->node_id);
1202         lu->reconnect_orb->status_fifo_lo =
1203                 ORB_SET_STATUS_FIFO_LO(lu->status_fifo_addr);
1204
1205         sbp2util_cpu_to_be32_buffer(lu->reconnect_orb,
1206                                     sizeof(struct sbp2_reconnect_orb));
1207
1208         data[0] = ORB_SET_NODE_ID(hi->host->node_id);
1209         data[1] = lu->reconnect_orb_dma;
1210         sbp2util_cpu_to_be32_buffer(data, 8);
1211
1212         error = hpsb_node_write(lu->ne, lu->management_agent_addr, data, 8);
1213         if (error)
1214                 return error;
1215
1216         /* wait up to 1 second for reconnect status */
1217         if (sbp2util_access_timeout(lu, HZ)) {
1218                 SBP2_ERR("Error reconnecting to SBP-2 device - timed out");
1219                 return -EIO;
1220         }
1221
1222         /* make sure that the returned status matches the reconnect ORB */
1223         if (lu->status_block.ORB_offset_lo != lu->reconnect_orb_dma) {
1224                 SBP2_ERR("Error reconnecting to SBP-2 device - timed out");
1225                 return -EIO;
1226         }
1227
1228         if (STATUS_TEST_RDS(lu->status_block.ORB_offset_hi_misc)) {
1229                 SBP2_ERR("Error reconnecting to SBP-2 device - failed");
1230                 return -EIO;
1231         }
1232
1233         SBP2_INFO("Reconnected to SBP-2 device");
1234         return 0;
1235 }
1236
1237 /*
1238  * Set the target node's Single Phase Retry limit. Affects the target's retry
1239  * behaviour if our node is too busy to accept requests.
1240  */
1241 static int sbp2_set_busy_timeout(struct sbp2_lu *lu)
1242 {
1243         quadlet_t data;
1244
1245         data = cpu_to_be32(SBP2_BUSY_TIMEOUT_VALUE);
1246         if (hpsb_node_write(lu->ne, SBP2_BUSY_TIMEOUT_ADDRESS, &data, 4))
1247                 SBP2_ERR("%s error", __FUNCTION__);
1248         return 0;
1249 }
1250
1251 static void sbp2_parse_unit_directory(struct sbp2_lu *lu,
1252                                       struct unit_directory *ud)
1253 {
1254         struct csr1212_keyval *kv;
1255         struct csr1212_dentry *dentry;
1256         u64 management_agent_addr;
1257         u32 unit_characteristics, firmware_revision;
1258         unsigned workarounds;
1259         int i;
1260
1261         management_agent_addr = 0;
1262         unit_characteristics = 0;
1263         firmware_revision = 0;
1264
1265         csr1212_for_each_dir_entry(ud->ne->csr, kv, ud->ud_kv, dentry) {
1266                 switch (kv->key.id) {
1267                 case CSR1212_KV_ID_DEPENDENT_INFO:
1268                         if (kv->key.type == CSR1212_KV_TYPE_CSR_OFFSET)
1269                                 management_agent_addr =
1270                                     CSR1212_REGISTER_SPACE_BASE +
1271                                     (kv->value.csr_offset << 2);
1272
1273                         else if (kv->key.type == CSR1212_KV_TYPE_IMMEDIATE)
1274                                 lu->lun = ORB_SET_LUN(kv->value.immediate);
1275                         break;
1276
1277                 case SBP2_UNIT_CHARACTERISTICS_KEY:
1278                         /* FIXME: This is ignored so far.
1279                          * See SBP-2 clause 7.4.8. */
1280                         unit_characteristics = kv->value.immediate;
1281                         break;
1282
1283                 case SBP2_FIRMWARE_REVISION_KEY:
1284                         firmware_revision = kv->value.immediate;
1285                         break;
1286
1287                 default:
1288                         /* FIXME: Check for SBP2_DEVICE_TYPE_AND_LUN_KEY.
1289                          * Its "ordered" bit has consequences for command ORB
1290                          * list handling. See SBP-2 clauses 4.6, 7.4.11, 10.2 */
1291                         break;
1292                 }
1293         }
1294
1295         workarounds = sbp2_default_workarounds;
1296
1297         if (!(workarounds & SBP2_WORKAROUND_OVERRIDE))
1298                 for (i = 0; i < ARRAY_SIZE(sbp2_workarounds_table); i++) {
1299                         if (sbp2_workarounds_table[i].firmware_revision !=
1300                             SBP2_ROM_VALUE_WILDCARD &&
1301                             sbp2_workarounds_table[i].firmware_revision !=
1302                             (firmware_revision & 0xffff00))
1303                                 continue;
1304                         if (sbp2_workarounds_table[i].model_id !=
1305                             SBP2_ROM_VALUE_WILDCARD &&
1306                             sbp2_workarounds_table[i].model_id != ud->model_id)
1307                                 continue;
1308                         workarounds |= sbp2_workarounds_table[i].workarounds;
1309                         break;
1310                 }
1311
1312         if (workarounds)
1313                 SBP2_INFO("Workarounds for node " NODE_BUS_FMT ": 0x%x "
1314                           "(firmware_revision 0x%06x, vendor_id 0x%06x,"
1315                           " model_id 0x%06x)",
1316                           NODE_BUS_ARGS(ud->ne->host, ud->ne->nodeid),
1317                           workarounds, firmware_revision,
1318                           ud->vendor_id ? ud->vendor_id : ud->ne->vendor_id,
1319                           ud->model_id);
1320
1321         /* We would need one SCSI host template for each target to adjust
1322          * max_sectors on the fly, therefore warn only. */
1323         if (workarounds & SBP2_WORKAROUND_128K_MAX_TRANS &&
1324             (sbp2_max_sectors * 512) > (128 * 1024))
1325                 SBP2_INFO("Node " NODE_BUS_FMT ": Bridge only supports 128KB "
1326                           "max transfer size. WARNING: Current max_sectors "
1327                           "setting is larger than 128KB (%d sectors)",
1328                           NODE_BUS_ARGS(ud->ne->host, ud->ne->nodeid),
1329                           sbp2_max_sectors);
1330
1331         /* If this is a logical unit directory entry, process the parent
1332          * to get the values. */
1333         if (ud->flags & UNIT_DIRECTORY_LUN_DIRECTORY) {
1334                 struct unit_directory *parent_ud = container_of(
1335                         ud->device.parent, struct unit_directory, device);
1336                 sbp2_parse_unit_directory(lu, parent_ud);
1337         } else {
1338                 lu->management_agent_addr = management_agent_addr;
1339                 lu->workarounds = workarounds;
1340                 if (ud->flags & UNIT_DIRECTORY_HAS_LUN)
1341                         lu->lun = ORB_SET_LUN(ud->lun);
1342         }
1343 }
1344
1345 #define SBP2_PAYLOAD_TO_BYTES(p) (1 << ((p) + 2))
1346
1347 /*
1348  * This function is called in order to determine the max speed and packet
1349  * size we can use in our ORBs. Note, that we (the driver and host) only
1350  * initiate the transaction. The SBP-2 device actually transfers the data
1351  * (by reading from the DMA area we tell it). This means that the SBP-2
1352  * device decides the actual maximum data it can transfer. We just tell it
1353  * the speed that it needs to use, and the max_rec the host supports, and
1354  * it takes care of the rest.
1355  */
1356 static int sbp2_max_speed_and_size(struct sbp2_lu *lu)
1357 {
1358         struct sbp2_fwhost_info *hi = lu->hi;
1359         u8 payload;
1360
1361         lu->speed_code = hi->host->speed[NODEID_TO_NODE(lu->ne->nodeid)];
1362
1363         if (lu->speed_code > sbp2_max_speed) {
1364                 lu->speed_code = sbp2_max_speed;
1365                 SBP2_INFO("Reducing speed to %s",
1366                           hpsb_speedto_str[sbp2_max_speed]);
1367         }
1368
1369         /* Payload size is the lesser of what our speed supports and what
1370          * our host supports.  */
1371         payload = min(sbp2_speedto_max_payload[lu->speed_code],
1372                       (u8) (hi->host->csr.max_rec - 1));
1373
1374         /* If physical DMA is off, work around limitation in ohci1394:
1375          * packet size must not exceed PAGE_SIZE */
1376         if (lu->ne->host->low_addr_space < (1ULL << 32))
1377                 while (SBP2_PAYLOAD_TO_BYTES(payload) + 24 > PAGE_SIZE &&
1378                        payload)
1379                         payload--;
1380
1381         SBP2_INFO("Node " NODE_BUS_FMT ": Max speed [%s] - Max payload [%u]",
1382                   NODE_BUS_ARGS(hi->host, lu->ne->nodeid),
1383                   hpsb_speedto_str[lu->speed_code],
1384                   SBP2_PAYLOAD_TO_BYTES(payload));
1385
1386         lu->max_payload_size = payload;
1387         return 0;
1388 }
1389
1390 static int sbp2_agent_reset(struct sbp2_lu *lu, int wait)
1391 {
1392         quadlet_t data;
1393         u64 addr;
1394         int retval;
1395         unsigned long flags;
1396
1397         /* flush lu->protocol_work */
1398         if (wait)
1399                 flush_scheduled_work();
1400
1401         data = ntohl(SBP2_AGENT_RESET_DATA);
1402         addr = lu->command_block_agent_addr + SBP2_AGENT_RESET_OFFSET;
1403
1404         if (wait)
1405                 retval = hpsb_node_write(lu->ne, addr, &data, 4);
1406         else
1407                 retval = sbp2util_node_write_no_wait(lu->ne, addr, &data, 4);
1408
1409         if (retval < 0) {
1410                 SBP2_ERR("hpsb_node_write failed.\n");
1411                 return -EIO;
1412         }
1413
1414         /* make sure that the ORB_POINTER is written on next command */
1415         spin_lock_irqsave(&lu->cmd_orb_lock, flags);
1416         lu->last_orb = NULL;
1417         spin_unlock_irqrestore(&lu->cmd_orb_lock, flags);
1418
1419         return 0;
1420 }
1421
1422 static void sbp2_prep_command_orb_sg(struct sbp2_command_orb *orb,
1423                                      struct sbp2_fwhost_info *hi,
1424                                      struct sbp2_command_info *cmd,
1425                                      unsigned int scsi_use_sg,
1426                                      struct scatterlist *sgpnt,
1427                                      u32 orb_direction,
1428                                      enum dma_data_direction dma_dir)
1429 {
1430         cmd->dma_dir = dma_dir;
1431         orb->data_descriptor_hi = ORB_SET_NODE_ID(hi->host->node_id);
1432         orb->misc |= ORB_SET_DIRECTION(orb_direction);
1433
1434         /* special case if only one element (and less than 64KB in size) */
1435         if ((scsi_use_sg == 1) &&
1436             (sgpnt[0].length <= SBP2_MAX_SG_ELEMENT_LENGTH)) {
1437
1438                 cmd->dma_size = sgpnt[0].length;
1439                 cmd->dma_type = CMD_DMA_PAGE;
1440                 cmd->cmd_dma = dma_map_page(hi->host->device.parent,
1441                                             sgpnt[0].page, sgpnt[0].offset,
1442                                             cmd->dma_size, cmd->dma_dir);
1443
1444                 orb->data_descriptor_lo = cmd->cmd_dma;
1445                 orb->misc |= ORB_SET_DATA_SIZE(cmd->dma_size);
1446
1447         } else {
1448                 struct sbp2_unrestricted_page_table *sg_element =
1449                                                 &cmd->scatter_gather_element[0];
1450                 u32 sg_count, sg_len;
1451                 dma_addr_t sg_addr;
1452                 int i, count = dma_map_sg(hi->host->device.parent, sgpnt,
1453                                           scsi_use_sg, dma_dir);
1454
1455                 cmd->dma_size = scsi_use_sg;
1456                 cmd->sge_buffer = sgpnt;
1457
1458                 /* use page tables (s/g) */
1459                 orb->misc |= ORB_SET_PAGE_TABLE_PRESENT(0x1);
1460                 orb->data_descriptor_lo = cmd->sge_dma;
1461
1462                 /* loop through and fill out our SBP-2 page tables
1463                  * (and split up anything too large) */
1464                 for (i = 0, sg_count = 0 ; i < count; i++, sgpnt++) {
1465                         sg_len = sg_dma_len(sgpnt);
1466                         sg_addr = sg_dma_address(sgpnt);
1467                         while (sg_len) {
1468                                 sg_element[sg_count].segment_base_lo = sg_addr;
1469                                 if (sg_len > SBP2_MAX_SG_ELEMENT_LENGTH) {
1470                                         sg_element[sg_count].length_segment_base_hi =
1471                                                 PAGE_TABLE_SET_SEGMENT_LENGTH(SBP2_MAX_SG_ELEMENT_LENGTH);
1472                                         sg_addr += SBP2_MAX_SG_ELEMENT_LENGTH;
1473                                         sg_len -= SBP2_MAX_SG_ELEMENT_LENGTH;
1474                                 } else {
1475                                         sg_element[sg_count].length_segment_base_hi =
1476                                                 PAGE_TABLE_SET_SEGMENT_LENGTH(sg_len);
1477                                         sg_len = 0;
1478                                 }
1479                                 sg_count++;
1480                         }
1481                 }
1482
1483                 orb->misc |= ORB_SET_DATA_SIZE(sg_count);
1484
1485                 sbp2util_cpu_to_be32_buffer(sg_element,
1486                                 (sizeof(struct sbp2_unrestricted_page_table)) *
1487                                 sg_count);
1488         }
1489 }
1490
1491 static void sbp2_prep_command_orb_no_sg(struct sbp2_command_orb *orb,
1492                                         struct sbp2_fwhost_info *hi,
1493                                         struct sbp2_command_info *cmd,
1494                                         struct scatterlist *sgpnt,
1495                                         u32 orb_direction,
1496                                         unsigned int scsi_request_bufflen,
1497                                         void *scsi_request_buffer,
1498                                         enum dma_data_direction dma_dir)
1499 {
1500         cmd->dma_dir = dma_dir;
1501         cmd->dma_size = scsi_request_bufflen;
1502         cmd->dma_type = CMD_DMA_SINGLE;
1503         cmd->cmd_dma = dma_map_single(hi->host->device.parent,
1504                                       scsi_request_buffer,
1505                                       cmd->dma_size, cmd->dma_dir);
1506         orb->data_descriptor_hi = ORB_SET_NODE_ID(hi->host->node_id);
1507         orb->misc |= ORB_SET_DIRECTION(orb_direction);
1508
1509         /* handle case where we get a command w/o s/g enabled
1510          * (but check for transfers larger than 64K) */
1511         if (scsi_request_bufflen <= SBP2_MAX_SG_ELEMENT_LENGTH) {
1512
1513                 orb->data_descriptor_lo = cmd->cmd_dma;
1514                 orb->misc |= ORB_SET_DATA_SIZE(scsi_request_bufflen);
1515
1516         } else {
1517                 /* The buffer is too large. Turn this into page tables. */
1518
1519                 struct sbp2_unrestricted_page_table *sg_element =
1520                                                 &cmd->scatter_gather_element[0];
1521                 u32 sg_count, sg_len;
1522                 dma_addr_t sg_addr;
1523
1524                 orb->data_descriptor_lo = cmd->sge_dma;
1525                 orb->misc |= ORB_SET_PAGE_TABLE_PRESENT(0x1);
1526
1527                 /* fill out our SBP-2 page tables; split up the large buffer */
1528                 sg_count = 0;
1529                 sg_len = scsi_request_bufflen;
1530                 sg_addr = cmd->cmd_dma;
1531                 while (sg_len) {
1532                         sg_element[sg_count].segment_base_lo = sg_addr;
1533                         if (sg_len > SBP2_MAX_SG_ELEMENT_LENGTH) {
1534                                 sg_element[sg_count].length_segment_base_hi =
1535                                         PAGE_TABLE_SET_SEGMENT_LENGTH(SBP2_MAX_SG_ELEMENT_LENGTH);
1536                                 sg_addr += SBP2_MAX_SG_ELEMENT_LENGTH;
1537                                 sg_len -= SBP2_MAX_SG_ELEMENT_LENGTH;
1538                         } else {
1539                                 sg_element[sg_count].length_segment_base_hi =
1540                                         PAGE_TABLE_SET_SEGMENT_LENGTH(sg_len);
1541                                 sg_len = 0;
1542                         }
1543                         sg_count++;
1544                 }
1545
1546                 orb->misc |= ORB_SET_DATA_SIZE(sg_count);
1547
1548                 sbp2util_cpu_to_be32_buffer(sg_element,
1549                                 (sizeof(struct sbp2_unrestricted_page_table)) *
1550                                 sg_count);
1551         }
1552 }
1553
1554 static void sbp2_create_command_orb(struct sbp2_lu *lu,
1555                                     struct sbp2_command_info *cmd,
1556                                     unchar *scsi_cmd,
1557                                     unsigned int scsi_use_sg,
1558                                     unsigned int scsi_request_bufflen,
1559                                     void *scsi_request_buffer,
1560                                     enum dma_data_direction dma_dir)
1561 {
1562         struct sbp2_fwhost_info *hi = lu->hi;
1563         struct scatterlist *sgpnt = (struct scatterlist *)scsi_request_buffer;
1564         struct sbp2_command_orb *orb = &cmd->command_orb;
1565         u32 orb_direction;
1566
1567         /*
1568          * Set-up our command ORB.
1569          *
1570          * NOTE: We're doing unrestricted page tables (s/g), as this is
1571          * best performance (at least with the devices I have). This means
1572          * that data_size becomes the number of s/g elements, and
1573          * page_size should be zero (for unrestricted).
1574          */
1575         orb->next_ORB_hi = ORB_SET_NULL_PTR(1);
1576         orb->next_ORB_lo = 0x0;
1577         orb->misc = ORB_SET_MAX_PAYLOAD(lu->max_payload_size);
1578         orb->misc |= ORB_SET_SPEED(lu->speed_code);
1579         orb->misc |= ORB_SET_NOTIFY(1);
1580
1581         if (dma_dir == DMA_NONE)
1582                 orb_direction = ORB_DIRECTION_NO_DATA_TRANSFER;
1583         else if (dma_dir == DMA_TO_DEVICE && scsi_request_bufflen)
1584                 orb_direction = ORB_DIRECTION_WRITE_TO_MEDIA;
1585         else if (dma_dir == DMA_FROM_DEVICE && scsi_request_bufflen)
1586                 orb_direction = ORB_DIRECTION_READ_FROM_MEDIA;
1587         else {
1588                 SBP2_INFO("Falling back to DMA_NONE");
1589                 orb_direction = ORB_DIRECTION_NO_DATA_TRANSFER;
1590         }
1591
1592         /* set up our page table stuff */
1593         if (orb_direction == ORB_DIRECTION_NO_DATA_TRANSFER) {
1594                 orb->data_descriptor_hi = 0x0;
1595                 orb->data_descriptor_lo = 0x0;
1596                 orb->misc |= ORB_SET_DIRECTION(1);
1597         } else if (scsi_use_sg)
1598                 sbp2_prep_command_orb_sg(orb, hi, cmd, scsi_use_sg, sgpnt,
1599                                          orb_direction, dma_dir);
1600         else
1601                 sbp2_prep_command_orb_no_sg(orb, hi, cmd, sgpnt, orb_direction,
1602                                             scsi_request_bufflen,
1603                                             scsi_request_buffer, dma_dir);
1604
1605         sbp2util_cpu_to_be32_buffer(orb, sizeof(*orb));
1606
1607         memset(orb->cdb, 0, 12);
1608         memcpy(orb->cdb, scsi_cmd, COMMAND_SIZE(*scsi_cmd));
1609 }
1610
1611 static void sbp2_link_orb_command(struct sbp2_lu *lu,
1612                                   struct sbp2_command_info *cmd)
1613 {
1614         struct sbp2_fwhost_info *hi = lu->hi;
1615         struct sbp2_command_orb *last_orb;
1616         dma_addr_t last_orb_dma;
1617         u64 addr = lu->command_block_agent_addr;
1618         quadlet_t data[2];
1619         size_t length;
1620         unsigned long flags;
1621
1622         dma_sync_single_for_device(hi->host->device.parent,
1623                                    cmd->command_orb_dma,
1624                                    sizeof(struct sbp2_command_orb),
1625                                    DMA_TO_DEVICE);
1626         dma_sync_single_for_device(hi->host->device.parent, cmd->sge_dma,
1627                                    sizeof(cmd->scatter_gather_element),
1628                                    DMA_TO_DEVICE);
1629
1630         /* check to see if there are any previous orbs to use */
1631         spin_lock_irqsave(&lu->cmd_orb_lock, flags);
1632         last_orb = lu->last_orb;
1633         last_orb_dma = lu->last_orb_dma;
1634         if (!last_orb) {
1635                 /*
1636                  * last_orb == NULL means: We know that the target's fetch agent
1637                  * is not active right now.
1638                  */
1639                 addr += SBP2_ORB_POINTER_OFFSET;
1640                 data[0] = ORB_SET_NODE_ID(hi->host->node_id);
1641                 data[1] = cmd->command_orb_dma;
1642                 sbp2util_cpu_to_be32_buffer(data, 8);
1643                 length = 8;
1644         } else {
1645                 /*
1646                  * last_orb != NULL means: We know that the target's fetch agent
1647                  * is (very probably) not dead or in reset state right now.
1648                  * We have an ORB already sent that we can append a new one to.
1649                  * The target's fetch agent may or may not have read this
1650                  * previous ORB yet.
1651                  */
1652                 dma_sync_single_for_cpu(hi->host->device.parent, last_orb_dma,
1653                                         sizeof(struct sbp2_command_orb),
1654                                         DMA_TO_DEVICE);
1655                 last_orb->next_ORB_lo = cpu_to_be32(cmd->command_orb_dma);
1656                 wmb();
1657                 /* Tells hardware that this pointer is valid */
1658                 last_orb->next_ORB_hi = 0;
1659                 dma_sync_single_for_device(hi->host->device.parent,
1660                                            last_orb_dma,
1661                                            sizeof(struct sbp2_command_orb),
1662                                            DMA_TO_DEVICE);
1663                 addr += SBP2_DOORBELL_OFFSET;
1664                 data[0] = 0;
1665                 length = 4;
1666         }
1667         lu->last_orb = &cmd->command_orb;
1668         lu->last_orb_dma = cmd->command_orb_dma;
1669         spin_unlock_irqrestore(&lu->cmd_orb_lock, flags);
1670
1671         if (sbp2util_node_write_no_wait(lu->ne, addr, data, length)) {
1672                 /*
1673                  * sbp2util_node_write_no_wait failed. We certainly ran out
1674                  * of transaction labels, perhaps just because there were no
1675                  * context switches which gave khpsbpkt a chance to collect
1676                  * free tlabels. Try again in non-atomic context. If necessary,
1677                  * the workqueue job will sleep to guaranteedly get a tlabel.
1678                  * We do not accept new commands until the job is over.
1679                  */
1680                 scsi_block_requests(lu->shost);
1681                 PREPARE_WORK(&lu->protocol_work,
1682                              last_orb ? sbp2util_write_doorbell:
1683                                         sbp2util_write_orb_pointer);
1684                 schedule_work(&lu->protocol_work);
1685         }
1686 }
1687
1688 static int sbp2_send_command(struct sbp2_lu *lu, struct scsi_cmnd *SCpnt,
1689                              void (*done)(struct scsi_cmnd *))
1690 {
1691         unchar *scsi_cmd = (unchar *)SCpnt->cmnd;
1692         unsigned int request_bufflen = SCpnt->request_bufflen;
1693         struct sbp2_command_info *cmd;
1694
1695         cmd = sbp2util_allocate_command_orb(lu, SCpnt, done);
1696         if (!cmd)
1697                 return -EIO;
1698
1699         sbp2_create_command_orb(lu, cmd, scsi_cmd, SCpnt->use_sg,
1700                                 request_bufflen, SCpnt->request_buffer,
1701                                 SCpnt->sc_data_direction);
1702         sbp2_link_orb_command(lu, cmd);
1703
1704         return 0;
1705 }
1706
1707 /*
1708  * Translates SBP-2 status into SCSI sense data for check conditions
1709  */
1710 static unsigned int sbp2_status_to_sense_data(unchar *sbp2_status,
1711                                               unchar *sense_data)
1712 {
1713         /* OK, it's pretty ugly... ;-) */
1714         sense_data[0] = 0x70;
1715         sense_data[1] = 0x0;
1716         sense_data[2] = sbp2_status[9];
1717         sense_data[3] = sbp2_status[12];
1718         sense_data[4] = sbp2_status[13];
1719         sense_data[5] = sbp2_status[14];
1720         sense_data[6] = sbp2_status[15];
1721         sense_data[7] = 10;
1722         sense_data[8] = sbp2_status[16];
1723         sense_data[9] = sbp2_status[17];
1724         sense_data[10] = sbp2_status[18];
1725         sense_data[11] = sbp2_status[19];
1726         sense_data[12] = sbp2_status[10];
1727         sense_data[13] = sbp2_status[11];
1728         sense_data[14] = sbp2_status[20];
1729         sense_data[15] = sbp2_status[21];
1730
1731         return sbp2_status[8] & 0x3f;
1732 }
1733
1734 static int sbp2_handle_status_write(struct hpsb_host *host, int nodeid,
1735                                     int destid, quadlet_t *data, u64 addr,
1736                                     size_t length, u16 fl)
1737 {
1738         struct sbp2_fwhost_info *hi;
1739         struct sbp2_lu *lu = NULL, *lu_tmp;
1740         struct scsi_cmnd *SCpnt = NULL;
1741         struct sbp2_status_block *sb;
1742         u32 scsi_status = SBP2_SCSI_STATUS_GOOD;
1743         struct sbp2_command_info *cmd;
1744         unsigned long flags;
1745
1746         if (unlikely(length < 8 || length > sizeof(struct sbp2_status_block))) {
1747                 SBP2_ERR("Wrong size of status block");
1748                 return RCODE_ADDRESS_ERROR;
1749         }
1750         if (unlikely(!host)) {
1751                 SBP2_ERR("host is NULL - this is bad!");
1752                 return RCODE_ADDRESS_ERROR;
1753         }
1754         hi = hpsb_get_hostinfo(&sbp2_highlevel, host);
1755         if (unlikely(!hi)) {
1756                 SBP2_ERR("host info is NULL - this is bad!");
1757                 return RCODE_ADDRESS_ERROR;
1758         }
1759
1760         /* Find the unit which wrote the status. */
1761         list_for_each_entry(lu_tmp, &hi->logical_units, lu_list) {
1762                 if (lu_tmp->ne->nodeid == nodeid &&
1763                     lu_tmp->status_fifo_addr == addr) {
1764                         lu = lu_tmp;
1765                         break;
1766                 }
1767         }
1768         if (unlikely(!lu)) {
1769                 SBP2_ERR("lu is NULL - device is gone?");
1770                 return RCODE_ADDRESS_ERROR;
1771         }
1772
1773         /* Put response into lu status fifo buffer. The first two bytes
1774          * come in big endian bit order. Often the target writes only a
1775          * truncated status block, minimally the first two quadlets. The rest
1776          * is implied to be zeros. */
1777         sb = &lu->status_block;
1778         memset(sb->command_set_dependent, 0, sizeof(sb->command_set_dependent));
1779         memcpy(sb, data, length);
1780         sbp2util_be32_to_cpu_buffer(sb, 8);
1781
1782         /* Ignore unsolicited status. Handle command ORB status. */
1783         if (unlikely(STATUS_GET_SRC(sb->ORB_offset_hi_misc) == 2))
1784                 cmd = NULL;
1785         else
1786                 cmd = sbp2util_find_command_for_orb(lu, sb->ORB_offset_lo);
1787         if (cmd) {
1788                 dma_sync_single_for_cpu(hi->host->device.parent,
1789                                         cmd->command_orb_dma,
1790                                         sizeof(struct sbp2_command_orb),
1791                                         DMA_TO_DEVICE);
1792                 dma_sync_single_for_cpu(hi->host->device.parent, cmd->sge_dma,
1793                                         sizeof(cmd->scatter_gather_element),
1794                                         DMA_TO_DEVICE);
1795                 /* Grab SCSI command pointers and check status. */
1796                 /*
1797                  * FIXME: If the src field in the status is 1, the ORB DMA must
1798                  * not be reused until status for a subsequent ORB is received.
1799                  */
1800                 SCpnt = cmd->Current_SCpnt;
1801                 spin_lock_irqsave(&lu->cmd_orb_lock, flags);
1802                 sbp2util_mark_command_completed(lu, cmd);
1803                 spin_unlock_irqrestore(&lu->cmd_orb_lock, flags);
1804
1805                 if (SCpnt) {
1806                         u32 h = sb->ORB_offset_hi_misc;
1807                         u32 r = STATUS_GET_RESP(h);
1808
1809                         if (r != RESP_STATUS_REQUEST_COMPLETE) {
1810                                 SBP2_INFO("resp 0x%x, sbp_status 0x%x",
1811                                           r, STATUS_GET_SBP_STATUS(h));
1812                                 scsi_status =
1813                                         r == RESP_STATUS_TRANSPORT_FAILURE ?
1814                                         SBP2_SCSI_STATUS_BUSY :
1815                                         SBP2_SCSI_STATUS_COMMAND_TERMINATED;
1816                         }
1817
1818                         if (STATUS_GET_LEN(h) > 1)
1819                                 scsi_status = sbp2_status_to_sense_data(
1820                                         (unchar *)sb, SCpnt->sense_buffer);
1821
1822                         if (STATUS_TEST_DEAD(h))
1823                                 sbp2_agent_reset(lu, 0);
1824                 }
1825
1826                 /* Check here to see if there are no commands in-use. If there
1827                  * are none, we know that the fetch agent left the active state
1828                  * _and_ that we did not reactivate it yet. Therefore clear
1829                  * last_orb so that next time we write directly to the
1830                  * ORB_POINTER register. That way the fetch agent does not need
1831                  * to refetch the next_ORB. */
1832                 spin_lock_irqsave(&lu->cmd_orb_lock, flags);
1833                 if (list_empty(&lu->cmd_orb_inuse))
1834                         lu->last_orb = NULL;
1835                 spin_unlock_irqrestore(&lu->cmd_orb_lock, flags);
1836
1837         } else {
1838                 /* It's probably status after a management request. */
1839                 if ((sb->ORB_offset_lo == lu->reconnect_orb_dma) ||
1840                     (sb->ORB_offset_lo == lu->login_orb_dma) ||
1841                     (sb->ORB_offset_lo == lu->query_logins_orb_dma) ||
1842                     (sb->ORB_offset_lo == lu->logout_orb_dma)) {
1843                         lu->access_complete = 1;
1844                         wake_up_interruptible(&sbp2_access_wq);
1845                 }
1846         }
1847
1848         if (SCpnt)
1849                 sbp2scsi_complete_command(lu, scsi_status, SCpnt,
1850                                           cmd->Current_done);
1851         return RCODE_COMPLETE;
1852 }
1853
1854 /**************************************
1855  * SCSI interface related section
1856  **************************************/
1857
1858 static int sbp2scsi_queuecommand(struct scsi_cmnd *SCpnt,
1859                                  void (*done)(struct scsi_cmnd *))
1860 {
1861         struct sbp2_lu *lu = (struct sbp2_lu *)SCpnt->device->host->hostdata[0];
1862         struct sbp2_fwhost_info *hi;
1863         int result = DID_NO_CONNECT << 16;
1864
1865         if (unlikely(!sbp2util_node_is_available(lu)))
1866                 goto done;
1867
1868         hi = lu->hi;
1869
1870         if (unlikely(!hi)) {
1871                 SBP2_ERR("sbp2_fwhost_info is NULL - this is bad!");
1872                 goto done;
1873         }
1874
1875         /* Multiple units are currently represented to the SCSI core as separate
1876          * targets, not as one target with multiple LUs. Therefore return
1877          * selection time-out to any IO directed at non-zero LUNs. */
1878         if (unlikely(SCpnt->device->lun))
1879                 goto done;
1880
1881         if (unlikely(!hpsb_node_entry_valid(lu->ne))) {
1882                 SBP2_ERR("Bus reset in progress - rejecting command");
1883                 result = DID_BUS_BUSY << 16;
1884                 goto done;
1885         }
1886
1887         /* Bidirectional commands are not yet implemented,
1888          * and unknown transfer direction not handled. */
1889         if (unlikely(SCpnt->sc_data_direction == DMA_BIDIRECTIONAL)) {
1890                 SBP2_ERR("Cannot handle DMA_BIDIRECTIONAL - rejecting command");
1891                 result = DID_ERROR << 16;
1892                 goto done;
1893         }
1894
1895         if (sbp2_send_command(lu, SCpnt, done)) {
1896                 SBP2_ERR("Error sending SCSI command");
1897                 sbp2scsi_complete_command(lu,
1898                                           SBP2_SCSI_STATUS_SELECTION_TIMEOUT,
1899                                           SCpnt, done);
1900         }
1901         return 0;
1902
1903 done:
1904         SCpnt->result = result;
1905         done(SCpnt);
1906         return 0;
1907 }
1908
1909 static void sbp2scsi_complete_all_commands(struct sbp2_lu *lu, u32 status)
1910 {
1911         struct sbp2_fwhost_info *hi = lu->hi;
1912         struct list_head *lh;
1913         struct sbp2_command_info *cmd;
1914         unsigned long flags;
1915
1916         spin_lock_irqsave(&lu->cmd_orb_lock, flags);
1917         while (!list_empty(&lu->cmd_orb_inuse)) {
1918                 lh = lu->cmd_orb_inuse.next;
1919                 cmd = list_entry(lh, struct sbp2_command_info, list);
1920                 dma_sync_single_for_cpu(hi->host->device.parent,
1921                                         cmd->command_orb_dma,
1922                                         sizeof(struct sbp2_command_orb),
1923                                         DMA_TO_DEVICE);
1924                 dma_sync_single_for_cpu(hi->host->device.parent, cmd->sge_dma,
1925                                         sizeof(cmd->scatter_gather_element),
1926                                         DMA_TO_DEVICE);
1927                 sbp2util_mark_command_completed(lu, cmd);
1928                 if (cmd->Current_SCpnt) {
1929                         cmd->Current_SCpnt->result = status << 16;
1930                         cmd->Current_done(cmd->Current_SCpnt);
1931                 }
1932         }
1933         spin_unlock_irqrestore(&lu->cmd_orb_lock, flags);
1934
1935         return;
1936 }
1937
1938 /*
1939  * Complete a regular SCSI command. Can be called in atomic context.
1940  */
1941 static void sbp2scsi_complete_command(struct sbp2_lu *lu, u32 scsi_status,
1942                                       struct scsi_cmnd *SCpnt,
1943                                       void (*done)(struct scsi_cmnd *))
1944 {
1945         if (!SCpnt) {
1946                 SBP2_ERR("SCpnt is NULL");
1947                 return;
1948         }
1949
1950         switch (scsi_status) {
1951         case SBP2_SCSI_STATUS_GOOD:
1952                 SCpnt->result = DID_OK << 16;
1953                 break;
1954
1955         case SBP2_SCSI_STATUS_BUSY:
1956                 SBP2_ERR("SBP2_SCSI_STATUS_BUSY");
1957                 SCpnt->result = DID_BUS_BUSY << 16;
1958                 break;
1959
1960         case SBP2_SCSI_STATUS_CHECK_CONDITION:
1961                 SCpnt->result = CHECK_CONDITION << 1 | DID_OK << 16;
1962                 break;
1963
1964         case SBP2_SCSI_STATUS_SELECTION_TIMEOUT:
1965                 SBP2_ERR("SBP2_SCSI_STATUS_SELECTION_TIMEOUT");
1966                 SCpnt->result = DID_NO_CONNECT << 16;
1967                 scsi_print_command(SCpnt);
1968                 break;
1969
1970         case SBP2_SCSI_STATUS_CONDITION_MET:
1971         case SBP2_SCSI_STATUS_RESERVATION_CONFLICT:
1972         case SBP2_SCSI_STATUS_COMMAND_TERMINATED:
1973                 SBP2_ERR("Bad SCSI status = %x", scsi_status);
1974                 SCpnt->result = DID_ERROR << 16;
1975                 scsi_print_command(SCpnt);
1976                 break;
1977
1978         default:
1979                 SBP2_ERR("Unsupported SCSI status = %x", scsi_status);
1980                 SCpnt->result = DID_ERROR << 16;
1981         }
1982
1983         /* If a bus reset is in progress and there was an error, complete
1984          * the command as busy so that it will get retried. */
1985         if (!hpsb_node_entry_valid(lu->ne)
1986             && (scsi_status != SBP2_SCSI_STATUS_GOOD)) {
1987                 SBP2_ERR("Completing command with busy (bus reset)");
1988                 SCpnt->result = DID_BUS_BUSY << 16;
1989         }
1990
1991         /* Tell the SCSI stack that we're done with this command. */
1992         done(SCpnt);
1993 }
1994
1995 static int sbp2scsi_slave_alloc(struct scsi_device *sdev)
1996 {
1997         struct sbp2_lu *lu = (struct sbp2_lu *)sdev->host->hostdata[0];
1998
1999         lu->sdev = sdev;
2000         sdev->allow_restart = 1;
2001
2002         if (lu->workarounds & SBP2_WORKAROUND_INQUIRY_36)
2003                 sdev->inquiry_len = 36;
2004         return 0;
2005 }
2006
2007 static int sbp2scsi_slave_configure(struct scsi_device *sdev)
2008 {
2009         struct sbp2_lu *lu = (struct sbp2_lu *)sdev->host->hostdata[0];
2010
2011         sdev->use_10_for_rw = 1;
2012
2013         if (sdev->type == TYPE_ROM)
2014                 sdev->use_10_for_ms = 1;
2015         if (sdev->type == TYPE_DISK &&
2016             lu->workarounds & SBP2_WORKAROUND_MODE_SENSE_8)
2017                 sdev->skip_ms_page_8 = 1;
2018         if (lu->workarounds & SBP2_WORKAROUND_FIX_CAPACITY)
2019                 sdev->fix_capacity = 1;
2020         return 0;
2021 }
2022
2023 static void sbp2scsi_slave_destroy(struct scsi_device *sdev)
2024 {
2025         ((struct sbp2_lu *)sdev->host->hostdata[0])->sdev = NULL;
2026         return;
2027 }
2028
2029 /*
2030  * Called by scsi stack when something has really gone wrong.
2031  * Usually called when a command has timed-out for some reason.
2032  */
2033 static int sbp2scsi_abort(struct scsi_cmnd *SCpnt)
2034 {
2035         struct sbp2_lu *lu = (struct sbp2_lu *)SCpnt->device->host->hostdata[0];
2036         struct sbp2_fwhost_info *hi = lu->hi;
2037         struct sbp2_command_info *cmd;
2038         unsigned long flags;
2039
2040         SBP2_INFO("aborting sbp2 command");
2041         scsi_print_command(SCpnt);
2042
2043         if (sbp2util_node_is_available(lu)) {
2044                 sbp2_agent_reset(lu, 1);
2045
2046                 /* Return a matching command structure to the free pool. */
2047                 spin_lock_irqsave(&lu->cmd_orb_lock, flags);
2048                 cmd = sbp2util_find_command_for_SCpnt(lu, SCpnt);
2049                 if (cmd) {
2050                         dma_sync_single_for_cpu(hi->host->device.parent,
2051                                         cmd->command_orb_dma,
2052                                         sizeof(struct sbp2_command_orb),
2053                                         DMA_TO_DEVICE);
2054                         dma_sync_single_for_cpu(hi->host->device.parent,
2055                                         cmd->sge_dma,
2056                                         sizeof(cmd->scatter_gather_element),
2057                                         DMA_TO_DEVICE);
2058                         sbp2util_mark_command_completed(lu, cmd);
2059                         if (cmd->Current_SCpnt) {
2060                                 cmd->Current_SCpnt->result = DID_ABORT << 16;
2061                                 cmd->Current_done(cmd->Current_SCpnt);
2062                         }
2063                 }
2064                 spin_unlock_irqrestore(&lu->cmd_orb_lock, flags);
2065
2066                 sbp2scsi_complete_all_commands(lu, DID_BUS_BUSY);
2067         }
2068
2069         return SUCCESS;
2070 }
2071
2072 /*
2073  * Called by scsi stack when something has really gone wrong.
2074  */
2075 static int sbp2scsi_reset(struct scsi_cmnd *SCpnt)
2076 {
2077         struct sbp2_lu *lu = (struct sbp2_lu *)SCpnt->device->host->hostdata[0];
2078
2079         SBP2_INFO("reset requested");
2080
2081         if (sbp2util_node_is_available(lu)) {
2082                 SBP2_INFO("generating sbp2 fetch agent reset");
2083                 sbp2_agent_reset(lu, 1);
2084         }
2085
2086         return SUCCESS;
2087 }
2088
2089 static ssize_t sbp2_sysfs_ieee1394_id_show(struct device *dev,
2090                                            struct device_attribute *attr,
2091                                            char *buf)
2092 {
2093         struct scsi_device *sdev;
2094         struct sbp2_lu *lu;
2095
2096         if (!(sdev = to_scsi_device(dev)))
2097                 return 0;
2098
2099         if (!(lu = (struct sbp2_lu *)sdev->host->hostdata[0]))
2100                 return 0;
2101
2102         return sprintf(buf, "%016Lx:%d:%d\n", (unsigned long long)lu->ne->guid,
2103                        lu->ud->id, ORB_SET_LUN(lu->lun));
2104 }
2105
2106 MODULE_AUTHOR("Ben Collins <bcollins@debian.org>");
2107 MODULE_DESCRIPTION("IEEE-1394 SBP-2 protocol driver");
2108 MODULE_SUPPORTED_DEVICE(SBP2_DEVICE_NAME);
2109 MODULE_LICENSE("GPL");
2110
2111 static int sbp2_module_init(void)
2112 {
2113         int ret;
2114
2115         if (sbp2_serialize_io) {
2116                 sbp2_shost_template.can_queue = 1;
2117                 sbp2_shost_template.cmd_per_lun = 1;
2118         }
2119
2120         if (sbp2_default_workarounds & SBP2_WORKAROUND_128K_MAX_TRANS &&
2121             (sbp2_max_sectors * 512) > (128 * 1024))
2122                 sbp2_max_sectors = 128 * 1024 / 512;
2123         sbp2_shost_template.max_sectors = sbp2_max_sectors;
2124
2125         hpsb_register_highlevel(&sbp2_highlevel);
2126         ret = hpsb_register_protocol(&sbp2_driver);
2127         if (ret) {
2128                 SBP2_ERR("Failed to register protocol");
2129                 hpsb_unregister_highlevel(&sbp2_highlevel);
2130                 return ret;
2131         }
2132         return 0;
2133 }
2134
2135 static void __exit sbp2_module_exit(void)
2136 {
2137         hpsb_unregister_protocol(&sbp2_driver);
2138         hpsb_unregister_highlevel(&sbp2_highlevel);
2139 }
2140
2141 module_init(sbp2_module_init);
2142 module_exit(sbp2_module_exit);