firewire: sbp2: fix payload limit at S1600 and S3200
[linux-2.6-block.git] / drivers / firewire / fw-sbp2.c
CommitLineData
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1/*
2 * SBP2 driver (SCSI over IEEE1394)
9ba136d0 3 *
27a15e50 4 * Copyright (C) 2005-2007 Kristian Hoegsberg <krh@bitplanet.net>
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5 *
6 * This program is free software; you can redistribute it and/or modify
7 * it under the terms of the GNU General Public License as published by
8 * the Free Software Foundation; either version 2 of the License, or
9 * (at your option) any later version.
10 *
11 * This program is distributed in the hope that it will be useful,
12 * but WITHOUT ANY WARRANTY; without even the implied warranty of
13 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14 * GNU General Public License for more details.
15 *
16 * You should have received a copy of the GNU General Public License
17 * along with this program; if not, write to the Free Software Foundation,
18 * Inc., 59 Temple Place - Suite 330, Boston, MA 02111-1307, USA.
19 */
20
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21/*
22 * The basic structure of this driver is based on the old storage driver,
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23 * drivers/ieee1394/sbp2.c, originally written by
24 * James Goodwin <jamesg@filanet.com>
25 * with later contributions and ongoing maintenance from
26 * Ben Collins <bcollins@debian.org>,
27 * Stefan Richter <stefanr@s5r6.in-berlin.de>
28 * and many others.
29 */
30
7bb6bf7c 31#include <linux/blkdev.h>
09b12dd4 32#include <linux/bug.h>
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33#include <linux/delay.h>
34#include <linux/device.h>
35#include <linux/dma-mapping.h>
9ba136d0 36#include <linux/kernel.h>
7bb6bf7c 37#include <linux/mod_devicetable.h>
9ba136d0 38#include <linux/module.h>
5cd54c94 39#include <linux/moduleparam.h>
0b5b2903 40#include <linux/scatterlist.h>
e7cdf237 41#include <linux/string.h>
2df222b8 42#include <linux/stringify.h>
1d3d52c5 43#include <linux/timer.h>
df8ec249 44#include <linux/workqueue.h>
b5d2a5e0 45#include <asm/system.h>
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46
47#include <scsi/scsi.h>
48#include <scsi/scsi_cmnd.h>
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49#include <scsi/scsi_device.h>
50#include <scsi/scsi_host.h>
51
9ba136d0 52#include "fw-device.h"
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53#include "fw-topology.h"
54#include "fw-transaction.h"
9ba136d0 55
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56/*
57 * So far only bridges from Oxford Semiconductor are known to support
58 * concurrent logins. Depending on firmware, four or two concurrent logins
59 * are possible on OXFW911 and newer Oxsemi bridges.
60 *
61 * Concurrent logins are useful together with cluster filesystems.
62 */
63static int sbp2_param_exclusive_login = 1;
64module_param_named(exclusive_login, sbp2_param_exclusive_login, bool, 0644);
65MODULE_PARM_DESC(exclusive_login, "Exclusive login to sbp2 device "
66 "(default = Y, use N for concurrent initiators)");
67
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68/*
69 * Flags for firmware oddities
70 *
71 * - 128kB max transfer
72 * Limit transfer size. Necessary for some old bridges.
73 *
74 * - 36 byte inquiry
75 * When scsi_mod probes the device, let the inquiry command look like that
76 * from MS Windows.
77 *
78 * - skip mode page 8
79 * Suppress sending of mode_sense for mode page 8 if the device pretends to
80 * support the SCSI Primary Block commands instead of Reduced Block Commands.
81 *
82 * - fix capacity
83 * Tell sd_mod to correct the last sector number reported by read_capacity.
84 * Avoids access beyond actual disk limits on devices with an off-by-one bug.
85 * Don't use this with devices which don't have this bug.
86 *
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87 * - delay inquiry
88 * Wait extra SBP2_INQUIRY_DELAY seconds after login before SCSI inquiry.
89 *
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90 * - power condition
91 * Set the power condition field in the START STOP UNIT commands sent by
92 * sd_mod on suspend, resume, and shutdown (if manage_start_stop is on).
93 * Some disks need this to spin down or to resume properly.
94 *
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95 * - override internal blacklist
96 * Instead of adding to the built-in blacklist, use only the workarounds
97 * specified in the module load parameter.
98 * Useful if a blacklist entry interfered with a non-broken device.
99 */
100#define SBP2_WORKAROUND_128K_MAX_TRANS 0x1
101#define SBP2_WORKAROUND_INQUIRY_36 0x2
102#define SBP2_WORKAROUND_MODE_SENSE_8 0x4
103#define SBP2_WORKAROUND_FIX_CAPACITY 0x8
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104#define SBP2_WORKAROUND_DELAY_INQUIRY 0x10
105#define SBP2_INQUIRY_DELAY 12
ffcaade3 106#define SBP2_WORKAROUND_POWER_CONDITION 0x20
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107#define SBP2_WORKAROUND_OVERRIDE 0x100
108
109static int sbp2_param_workarounds;
110module_param_named(workarounds, sbp2_param_workarounds, int, 0644);
111MODULE_PARM_DESC(workarounds, "Work around device bugs (default = 0"
112 ", 128kB max transfer = " __stringify(SBP2_WORKAROUND_128K_MAX_TRANS)
113 ", 36 byte inquiry = " __stringify(SBP2_WORKAROUND_INQUIRY_36)
114 ", skip mode page 8 = " __stringify(SBP2_WORKAROUND_MODE_SENSE_8)
115 ", fix capacity = " __stringify(SBP2_WORKAROUND_FIX_CAPACITY)
9220f194 116 ", delay inquiry = " __stringify(SBP2_WORKAROUND_DELAY_INQUIRY)
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117 ", set power condition in start stop unit = "
118 __stringify(SBP2_WORKAROUND_POWER_CONDITION)
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119 ", override internal blacklist = " __stringify(SBP2_WORKAROUND_OVERRIDE)
120 ", or a combination)");
121
9ba136d0 122/* I don't know why the SCSI stack doesn't define something like this... */
a98e2719 123typedef void (*scsi_done_fn_t)(struct scsi_cmnd *);
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124
125static const char sbp2_driver_name[] = "sbp2";
126
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127/*
128 * We create one struct sbp2_logical_unit per SBP-2 Logical Unit Number Entry
129 * and one struct scsi_device per sbp2_logical_unit.
130 */
131struct sbp2_logical_unit {
132 struct sbp2_target *tgt;
133 struct list_head link;
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134 struct fw_address_handler address_handler;
135 struct list_head orb_list;
5a3c2be6 136
9ba136d0 137 u64 command_block_agent_address;
5a3c2be6 138 u16 lun;
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139 int login_id;
140
c781c06d 141 /*
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142 * The generation is updated once we've logged in or reconnected
143 * to the logical unit. Thus, I/O to the device will automatically
144 * fail and get retried if it happens in a window where the device
145 * is not ready, e.g. after a bus reset but before we reconnect.
c781c06d 146 */
9ba136d0 147 int generation;
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148 int retries;
149 struct delayed_work work;
f8436158 150 bool has_sdev;
2e2705bd 151 bool blocked;
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152};
153
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154/*
155 * We create one struct sbp2_target per IEEE 1212 Unit Directory
156 * and one struct Scsi_Host per sbp2_target.
157 */
158struct sbp2_target {
159 struct kref kref;
160 struct fw_unit *unit;
48f18c76 161 const char *bus_id;
05cca738 162 struct list_head lu_list;
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163
164 u64 management_agent_address;
c9755e14 165 u64 guid;
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166 int directory_id;
167 int node_id;
168 int address_high;
05cca738 169 unsigned int workarounds;
384170da 170 unsigned int mgt_orb_timeout;
a08e100a 171 unsigned int max_payload;
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172
173 int dont_block; /* counter for each logical unit */
174 int blocked; /* ditto */
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175};
176
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177/* Impossible login_id, to detect logout attempt before successful login */
178#define INVALID_LOGIN_ID 0x10000
179
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180/*
181 * Per section 7.4.8 of the SBP-2 spec, a mgt_ORB_timeout value can be
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182 * provided in the config rom. Most devices do provide a value, which
183 * we'll use for login management orbs, but with some sane limits.
a4c379c1 184 */
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185#define SBP2_MIN_LOGIN_ORB_TIMEOUT 5000U /* Timeout in ms */
186#define SBP2_MAX_LOGIN_ORB_TIMEOUT 40000U /* Timeout in ms */
05cca738 187#define SBP2_ORB_TIMEOUT 2000U /* Timeout in ms */
9ba136d0 188#define SBP2_ORB_NULL 0x80000000
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189#define SBP2_RETRY_LIMIT 0xf /* 15 retries */
190#define SBP2_CYCLE_LIMIT (0xc8 << 12) /* 200 125us cycles */
9ba136d0 191
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192/*
193 * The default maximum s/g segment size of a FireWire controller is
194 * usually 0x10000, but SBP-2 only allows 0xffff. Since buffers have to
195 * be quadlet-aligned, we set the length limit to 0xffff & ~3.
196 */
197#define SBP2_MAX_SEG_SIZE 0xfffc
198
9ba136d0 199/* Unit directory keys */
384170da 200#define SBP2_CSR_UNIT_CHARACTERISTICS 0x3a
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201#define SBP2_CSR_FIRMWARE_REVISION 0x3c
202#define SBP2_CSR_LOGICAL_UNIT_NUMBER 0x14
203#define SBP2_CSR_LOGICAL_UNIT_DIRECTORY 0xd4
9ba136d0 204
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205/* Management orb opcodes */
206#define SBP2_LOGIN_REQUEST 0x0
207#define SBP2_QUERY_LOGINS_REQUEST 0x1
208#define SBP2_RECONNECT_REQUEST 0x3
209#define SBP2_SET_PASSWORD_REQUEST 0x4
210#define SBP2_LOGOUT_REQUEST 0x7
211#define SBP2_ABORT_TASK_REQUEST 0xb
212#define SBP2_ABORT_TASK_SET 0xc
213#define SBP2_LOGICAL_UNIT_RESET 0xe
214#define SBP2_TARGET_RESET_REQUEST 0xf
215
216/* Offsets for command block agent registers */
217#define SBP2_AGENT_STATE 0x00
218#define SBP2_AGENT_RESET 0x04
219#define SBP2_ORB_POINTER 0x08
220#define SBP2_DOORBELL 0x10
221#define SBP2_UNSOLICITED_STATUS_ENABLE 0x14
222
223/* Status write response codes */
224#define SBP2_STATUS_REQUEST_COMPLETE 0x0
225#define SBP2_STATUS_TRANSPORT_FAILURE 0x1
226#define SBP2_STATUS_ILLEGAL_REQUEST 0x2
227#define SBP2_STATUS_VENDOR_DEPENDENT 0x3
228
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229#define STATUS_GET_ORB_HIGH(v) ((v).status & 0xffff)
230#define STATUS_GET_SBP_STATUS(v) (((v).status >> 16) & 0xff)
231#define STATUS_GET_LEN(v) (((v).status >> 24) & 0x07)
232#define STATUS_GET_DEAD(v) (((v).status >> 27) & 0x01)
233#define STATUS_GET_RESPONSE(v) (((v).status >> 28) & 0x03)
234#define STATUS_GET_SOURCE(v) (((v).status >> 30) & 0x03)
235#define STATUS_GET_ORB_LOW(v) ((v).orb_low)
236#define STATUS_GET_DATA(v) ((v).data)
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237
238struct sbp2_status {
239 u32 status;
240 u32 orb_low;
241 u8 data[24];
242};
243
244struct sbp2_pointer {
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245 __be32 high;
246 __be32 low;
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247};
248
249struct sbp2_orb {
250 struct fw_transaction t;
e57d2011 251 struct kref kref;
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252 dma_addr_t request_bus;
253 int rcode;
254 struct sbp2_pointer pointer;
a98e2719 255 void (*callback)(struct sbp2_orb * orb, struct sbp2_status * status);
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256 struct list_head link;
257};
258
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259#define MANAGEMENT_ORB_LUN(v) ((v))
260#define MANAGEMENT_ORB_FUNCTION(v) ((v) << 16)
261#define MANAGEMENT_ORB_RECONNECT(v) ((v) << 20)
5cd54c94 262#define MANAGEMENT_ORB_EXCLUSIVE(v) ((v) ? 1 << 28 : 0)
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263#define MANAGEMENT_ORB_REQUEST_FORMAT(v) ((v) << 29)
264#define MANAGEMENT_ORB_NOTIFY ((1) << 31)
9ba136d0 265
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266#define MANAGEMENT_ORB_RESPONSE_LENGTH(v) ((v))
267#define MANAGEMENT_ORB_PASSWORD_LENGTH(v) ((v) << 16)
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268
269struct sbp2_management_orb {
270 struct sbp2_orb base;
271 struct {
272 struct sbp2_pointer password;
273 struct sbp2_pointer response;
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274 __be32 misc;
275 __be32 length;
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276 struct sbp2_pointer status_fifo;
277 } request;
278 __be32 response[4];
279 dma_addr_t response_bus;
280 struct completion done;
281 struct sbp2_status status;
282};
283
9ba136d0 284struct sbp2_login_response {
71ee9f01 285 __be32 misc;
9ba136d0 286 struct sbp2_pointer command_block_agent;
71ee9f01 287 __be32 reconnect_hold;
9ba136d0 288};
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289#define COMMAND_ORB_DATA_SIZE(v) ((v))
290#define COMMAND_ORB_PAGE_SIZE(v) ((v) << 16)
291#define COMMAND_ORB_PAGE_TABLE_PRESENT ((1) << 19)
292#define COMMAND_ORB_MAX_PAYLOAD(v) ((v) << 20)
293#define COMMAND_ORB_SPEED(v) ((v) << 24)
0d7dcbf2 294#define COMMAND_ORB_DIRECTION ((1) << 27)
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295#define COMMAND_ORB_REQUEST_FORMAT(v) ((v) << 29)
296#define COMMAND_ORB_NOTIFY ((1) << 31)
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297
298struct sbp2_command_orb {
299 struct sbp2_orb base;
300 struct {
301 struct sbp2_pointer next;
302 struct sbp2_pointer data_descriptor;
71ee9f01 303 __be32 misc;
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304 u8 command_block[12];
305 } request;
306 struct scsi_cmnd *cmd;
307 scsi_done_fn_t done;
5a3c2be6 308 struct sbp2_logical_unit *lu;
9ba136d0 309
9fb2dd12 310 struct sbp2_pointer page_table[SG_ALL] __attribute__((aligned(8)));
9ba136d0 311 dma_addr_t page_table_bus;
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312};
313
314/*
315 * List of devices with known bugs.
316 *
317 * The firmware_revision field, masked with 0xffff00, is the best
318 * indicator for the type of bridge chip of a device. It yields a few
319 * false positives but this did not break correctly behaving devices
320 * so far. We use ~0 as a wildcard, since the 24 bit values we get
321 * from the config rom can never match that.
322 */
323static const struct {
324 u32 firmware_revision;
325 u32 model;
05cca738 326 unsigned int workarounds;
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327} sbp2_workarounds_table[] = {
328 /* DViCO Momobay CX-1 with TSB42AA9 bridge */ {
329 .firmware_revision = 0x002800,
330 .model = 0x001010,
331 .workarounds = SBP2_WORKAROUND_INQUIRY_36 |
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332 SBP2_WORKAROUND_MODE_SENSE_8 |
333 SBP2_WORKAROUND_POWER_CONDITION,
9ba136d0 334 },
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335 /* DViCO Momobay FX-3A with TSB42AA9A bridge */ {
336 .firmware_revision = 0x002800,
337 .model = 0x000000,
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338 .workarounds = SBP2_WORKAROUND_DELAY_INQUIRY |
339 SBP2_WORKAROUND_POWER_CONDITION,
9220f194 340 },
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341 /* Initio bridges, actually only needed for some older ones */ {
342 .firmware_revision = 0x000200,
343 .model = ~0,
344 .workarounds = SBP2_WORKAROUND_INQUIRY_36,
345 },
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346 /* PL-3507 bridge with Prolific firmware */ {
347 .firmware_revision = 0x012800,
348 .model = ~0,
349 .workarounds = SBP2_WORKAROUND_POWER_CONDITION,
350 },
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351 /* Symbios bridge */ {
352 .firmware_revision = 0xa0b800,
353 .model = ~0,
354 .workarounds = SBP2_WORKAROUND_128K_MAX_TRANS,
355 },
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356 /* Datafab MD2-FW2 with Symbios/LSILogic SYM13FW500 bridge */ {
357 .firmware_revision = 0x002600,
358 .model = ~0,
359 .workarounds = SBP2_WORKAROUND_128K_MAX_TRANS,
360 },
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361
362 /*
363 * There are iPods (2nd gen, 3rd gen) with model_id == 0, but
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364 * these iPods do not feature the read_capacity bug according
365 * to one report. Read_capacity behaviour as well as model_id
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366 * could change due to Apple-supplied firmware updates though.
367 */
368
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369 /* iPod 4th generation. */ {
370 .firmware_revision = 0x0a2700,
371 .model = 0x000021,
372 .workarounds = SBP2_WORKAROUND_FIX_CAPACITY,
373 },
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374 /* iPod mini */ {
375 .firmware_revision = 0x0a2700,
376 .model = 0x000022,
377 .workarounds = SBP2_WORKAROUND_FIX_CAPACITY,
378 },
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379 /* iPod mini */ {
380 .firmware_revision = 0x0a2700,
381 .model = 0x000023,
382 .workarounds = SBP2_WORKAROUND_FIX_CAPACITY,
383 },
384 /* iPod Photo */ {
385 .firmware_revision = 0x0a2700,
386 .model = 0x00007e,
387 .workarounds = SBP2_WORKAROUND_FIX_CAPACITY,
388 }
389};
390
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391static void
392free_orb(struct kref *kref)
393{
394 struct sbp2_orb *orb = container_of(kref, struct sbp2_orb, kref);
395
396 kfree(orb);
397}
398
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399static void
400sbp2_status_write(struct fw_card *card, struct fw_request *request,
401 int tcode, int destination, int source,
402 int generation, int speed,
403 unsigned long long offset,
404 void *payload, size_t length, void *callback_data)
405{
5a3c2be6 406 struct sbp2_logical_unit *lu = callback_data;
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407 struct sbp2_orb *orb;
408 struct sbp2_status status;
409 size_t header_size;
410 unsigned long flags;
411
412 if (tcode != TCODE_WRITE_BLOCK_REQUEST ||
2d826cc5 413 length == 0 || length > sizeof(status)) {
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414 fw_send_response(card, request, RCODE_TYPE_ERROR);
415 return;
416 }
417
418 header_size = min(length, 2 * sizeof(u32));
419 fw_memcpy_from_be32(&status, payload, header_size);
420 if (length > header_size)
421 memcpy(status.data, payload + 8, length - header_size);
a77754a7 422 if (STATUS_GET_SOURCE(status) == 2 || STATUS_GET_SOURCE(status) == 3) {
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423 fw_notify("non-orb related status write, not handled\n");
424 fw_send_response(card, request, RCODE_COMPLETE);
425 return;
426 }
427
428 /* Lookup the orb corresponding to this status write. */
429 spin_lock_irqsave(&card->lock, flags);
5a3c2be6 430 list_for_each_entry(orb, &lu->orb_list, link) {
a77754a7 431 if (STATUS_GET_ORB_HIGH(status) == 0 &&
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432 STATUS_GET_ORB_LOW(status) == orb->request_bus) {
433 orb->rcode = RCODE_COMPLETE;
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434 list_del(&orb->link);
435 break;
436 }
437 }
438 spin_unlock_irqrestore(&card->lock, flags);
439
5a3c2be6 440 if (&orb->link != &lu->orb_list)
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441 orb->callback(orb, &status);
442 else
443 fw_error("status write for unknown orb\n");
444
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445 kref_put(&orb->kref, free_orb);
446
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447 fw_send_response(card, request, RCODE_COMPLETE);
448}
449
450static void
451complete_transaction(struct fw_card *card, int rcode,
452 void *payload, size_t length, void *data)
453{
454 struct sbp2_orb *orb = data;
455 unsigned long flags;
456
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457 /*
458 * This is a little tricky. We can get the status write for
459 * the orb before we get this callback. The status write
460 * handler above will assume the orb pointer transaction was
461 * successful and set the rcode to RCODE_COMPLETE for the orb.
462 * So this callback only sets the rcode if it hasn't already
463 * been set and only does the cleanup if the transaction
464 * failed and we didn't already get a status write.
465 */
466 spin_lock_irqsave(&card->lock, flags);
467
468 if (orb->rcode == -1)
469 orb->rcode = rcode;
470 if (orb->rcode != RCODE_COMPLETE) {
9ba136d0 471 list_del(&orb->link);
1b34e974 472 spin_unlock_irqrestore(&card->lock, flags);
9ba136d0 473 orb->callback(orb, NULL);
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474 } else {
475 spin_unlock_irqrestore(&card->lock, flags);
9ba136d0 476 }
e57d2011 477
e57d2011 478 kref_put(&orb->kref, free_orb);
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479}
480
481static void
5a3c2be6 482sbp2_send_orb(struct sbp2_orb *orb, struct sbp2_logical_unit *lu,
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483 int node_id, int generation, u64 offset)
484{
5a3c2be6 485 struct fw_device *device = fw_device(lu->tgt->unit->device.parent);
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486 unsigned long flags;
487
488 orb->pointer.high = 0;
71ee9f01 489 orb->pointer.low = cpu_to_be32(orb->request_bus);
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490
491 spin_lock_irqsave(&device->card->lock, flags);
5a3c2be6 492 list_add_tail(&orb->link, &lu->orb_list);
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493 spin_unlock_irqrestore(&device->card->lock, flags);
494
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495 /* Take a ref for the orb list and for the transaction callback. */
496 kref_get(&orb->kref);
497 kref_get(&orb->kref);
498
9ba136d0 499 fw_send_request(device->card, &orb->t, TCODE_WRITE_BLOCK_REQUEST,
f1397490 500 node_id, generation, device->max_speed, offset,
2d826cc5 501 &orb->pointer, sizeof(orb->pointer),
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502 complete_transaction, orb);
503}
504
5a3c2be6 505static int sbp2_cancel_orbs(struct sbp2_logical_unit *lu)
9ba136d0 506{
5a3c2be6 507 struct fw_device *device = fw_device(lu->tgt->unit->device.parent);
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508 struct sbp2_orb *orb, *next;
509 struct list_head list;
510 unsigned long flags;
2aaad97b 511 int retval = -ENOENT;
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512
513 INIT_LIST_HEAD(&list);
514 spin_lock_irqsave(&device->card->lock, flags);
5a3c2be6 515 list_splice_init(&lu->orb_list, &list);
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516 spin_unlock_irqrestore(&device->card->lock, flags);
517
518 list_for_each_entry_safe(orb, next, &list, link) {
2aaad97b 519 retval = 0;
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520 if (fw_cancel_transaction(device->card, &orb->t) == 0)
521 continue;
522
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523 orb->rcode = RCODE_CANCELLED;
524 orb->callback(orb, NULL);
525 }
9ba136d0 526
2aaad97b 527 return retval;
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528}
529
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530static void
531complete_management_orb(struct sbp2_orb *base_orb, struct sbp2_status *status)
532{
533 struct sbp2_management_orb *orb =
6f061487 534 container_of(base_orb, struct sbp2_management_orb, base);
9ba136d0
KH
535
536 if (status)
2d826cc5 537 memcpy(&orb->status, status, sizeof(*status));
9ba136d0
KH
538 complete(&orb->done);
539}
540
541static int
5a3c2be6
SR
542sbp2_send_management_orb(struct sbp2_logical_unit *lu, int node_id,
543 int generation, int function, int lun_or_login_id,
544 void *response)
9ba136d0 545{
5a3c2be6 546 struct fw_device *device = fw_device(lu->tgt->unit->device.parent);
9ba136d0 547 struct sbp2_management_orb *orb;
a4c379c1 548 unsigned int timeout;
9ba136d0
KH
549 int retval = -ENOMEM;
550
be6f48b0
SR
551 if (function == SBP2_LOGOUT_REQUEST && fw_device_is_shutdown(device))
552 return 0;
553
2d826cc5 554 orb = kzalloc(sizeof(*orb), GFP_ATOMIC);
9ba136d0
KH
555 if (orb == NULL)
556 return -ENOMEM;
557
e57d2011 558 kref_init(&orb->base.kref);
9ba136d0
KH
559 orb->response_bus =
560 dma_map_single(device->card->device, &orb->response,
2d826cc5 561 sizeof(orb->response), DMA_FROM_DEVICE);
8d8bb39b 562 if (dma_mapping_error(device->card->device, orb->response_bus))
7aa48481 563 goto fail_mapping_response;
9ba136d0 564
71ee9f01
SR
565 orb->request.response.high = 0;
566 orb->request.response.low = cpu_to_be32(orb->response_bus);
9ba136d0 567
71ee9f01 568 orb->request.misc = cpu_to_be32(
a77754a7
KH
569 MANAGEMENT_ORB_NOTIFY |
570 MANAGEMENT_ORB_FUNCTION(function) |
71ee9f01
SR
571 MANAGEMENT_ORB_LUN(lun_or_login_id));
572 orb->request.length = cpu_to_be32(
573 MANAGEMENT_ORB_RESPONSE_LENGTH(sizeof(orb->response)));
9ba136d0 574
71ee9f01
SR
575 orb->request.status_fifo.high =
576 cpu_to_be32(lu->address_handler.offset >> 32);
577 orb->request.status_fifo.low =
578 cpu_to_be32(lu->address_handler.offset);
9ba136d0 579
9ba136d0 580 if (function == SBP2_LOGIN_REQUEST) {
14dc992a 581 /* Ask for 2^2 == 4 seconds reconnect grace period */
71ee9f01 582 orb->request.misc |= cpu_to_be32(
14dc992a 583 MANAGEMENT_ORB_RECONNECT(2) |
71ee9f01 584 MANAGEMENT_ORB_EXCLUSIVE(sbp2_param_exclusive_login));
384170da 585 timeout = lu->tgt->mgt_orb_timeout;
a4c379c1
JW
586 } else {
587 timeout = SBP2_ORB_TIMEOUT;
9ba136d0
KH
588 }
589
9ba136d0
KH
590 init_completion(&orb->done);
591 orb->base.callback = complete_management_orb;
2aaad97b 592
7aa48481
SR
593 orb->base.request_bus =
594 dma_map_single(device->card->device, &orb->request,
595 sizeof(orb->request), DMA_TO_DEVICE);
8d8bb39b 596 if (dma_mapping_error(device->card->device, orb->base.request_bus))
7aa48481
SR
597 goto fail_mapping_request;
598
5a3c2be6
SR
599 sbp2_send_orb(&orb->base, lu, node_id, generation,
600 lu->tgt->management_agent_address);
9ba136d0 601
a4c379c1 602 wait_for_completion_timeout(&orb->done, msecs_to_jiffies(timeout));
9ba136d0 603
9ba136d0 604 retval = -EIO;
5a3c2be6 605 if (sbp2_cancel_orbs(lu) == 0) {
48f18c76
SR
606 fw_error("%s: orb reply timed out, rcode=0x%02x\n",
607 lu->tgt->bus_id, orb->base.rcode);
9ba136d0
KH
608 goto out;
609 }
610
2aaad97b 611 if (orb->base.rcode != RCODE_COMPLETE) {
48f18c76
SR
612 fw_error("%s: management write failed, rcode 0x%02x\n",
613 lu->tgt->bus_id, orb->base.rcode);
9ba136d0
KH
614 goto out;
615 }
616
a77754a7
KH
617 if (STATUS_GET_RESPONSE(orb->status) != 0 ||
618 STATUS_GET_SBP_STATUS(orb->status) != 0) {
48f18c76 619 fw_error("%s: error status: %d:%d\n", lu->tgt->bus_id,
a77754a7
KH
620 STATUS_GET_RESPONSE(orb->status),
621 STATUS_GET_SBP_STATUS(orb->status));
9ba136d0
KH
622 goto out;
623 }
624
625 retval = 0;
626 out:
627 dma_unmap_single(device->card->device, orb->base.request_bus,
2d826cc5 628 sizeof(orb->request), DMA_TO_DEVICE);
7aa48481 629 fail_mapping_request:
9ba136d0 630 dma_unmap_single(device->card->device, orb->response_bus,
2d826cc5 631 sizeof(orb->response), DMA_FROM_DEVICE);
7aa48481 632 fail_mapping_response:
9ba136d0 633 if (response)
71ee9f01 634 memcpy(response, orb->response, sizeof(orb->response));
e57d2011 635 kref_put(&orb->base.kref, free_orb);
9ba136d0
KH
636
637 return retval;
638}
639
e0e60215
SR
640static void sbp2_agent_reset(struct sbp2_logical_unit *lu)
641{
642 struct fw_device *device = fw_device(lu->tgt->unit->device.parent);
1e119fa9 643 __be32 d = 0;
9ba136d0 644
1e119fa9
JF
645 fw_run_transaction(device->card, TCODE_WRITE_QUADLET_REQUEST,
646 lu->tgt->node_id, lu->generation, device->max_speed,
647 lu->command_block_agent_address + SBP2_AGENT_RESET,
648 &d, sizeof(d));
9ba136d0
KH
649}
650
e0e60215
SR
651static void
652complete_agent_reset_write_no_wait(struct fw_card *card, int rcode,
653 void *payload, size_t length, void *data)
654{
655 kfree(data);
656}
657
658static void sbp2_agent_reset_no_wait(struct sbp2_logical_unit *lu)
9ba136d0 659{
5a3c2be6 660 struct fw_device *device = fw_device(lu->tgt->unit->device.parent);
9ba136d0 661 struct fw_transaction *t;
1e119fa9 662 static __be32 d;
9ba136d0 663
e0e60215 664 t = kmalloc(sizeof(*t), GFP_ATOMIC);
9ba136d0 665 if (t == NULL)
e0e60215 666 return;
9ba136d0
KH
667
668 fw_send_request(device->card, t, TCODE_WRITE_QUADLET_REQUEST,
5a3c2be6
SR
669 lu->tgt->node_id, lu->generation, device->max_speed,
670 lu->command_block_agent_address + SBP2_AGENT_RESET,
1e119fa9 671 &d, sizeof(d), complete_agent_reset_write_no_wait, t);
9ba136d0
KH
672}
673
2e2705bd
SR
674static inline void sbp2_allow_block(struct sbp2_logical_unit *lu)
675{
676 /*
677 * We may access dont_block without taking card->lock here:
678 * All callers of sbp2_allow_block() and all callers of sbp2_unblock()
679 * are currently serialized against each other.
680 * And a wrong result in sbp2_conditionally_block()'s access of
681 * dont_block is rather harmless, it simply misses its first chance.
682 */
683 --lu->tgt->dont_block;
684}
685
686/*
687 * Blocks lu->tgt if all of the following conditions are met:
688 * - Login, INQUIRY, and high-level SCSI setup of all of the target's
689 * logical units have been finished (indicated by dont_block == 0).
690 * - lu->generation is stale.
691 *
692 * Note, scsi_block_requests() must be called while holding card->lock,
693 * otherwise it might foil sbp2_[conditionally_]unblock()'s attempt to
694 * unblock the target.
695 */
696static void sbp2_conditionally_block(struct sbp2_logical_unit *lu)
697{
698 struct sbp2_target *tgt = lu->tgt;
699 struct fw_card *card = fw_device(tgt->unit->device.parent)->card;
700 struct Scsi_Host *shost =
701 container_of((void *)tgt, struct Scsi_Host, hostdata[0]);
702 unsigned long flags;
703
704 spin_lock_irqsave(&card->lock, flags);
705 if (!tgt->dont_block && !lu->blocked &&
706 lu->generation != card->generation) {
707 lu->blocked = true;
a5fd9ec7 708 if (++tgt->blocked == 1)
2e2705bd 709 scsi_block_requests(shost);
2e2705bd
SR
710 }
711 spin_unlock_irqrestore(&card->lock, flags);
712}
713
714/*
715 * Unblocks lu->tgt as soon as all its logical units can be unblocked.
716 * Note, it is harmless to run scsi_unblock_requests() outside the
717 * card->lock protected section. On the other hand, running it inside
718 * the section might clash with shost->host_lock.
719 */
720static void sbp2_conditionally_unblock(struct sbp2_logical_unit *lu)
721{
722 struct sbp2_target *tgt = lu->tgt;
723 struct fw_card *card = fw_device(tgt->unit->device.parent)->card;
724 struct Scsi_Host *shost =
725 container_of((void *)tgt, struct Scsi_Host, hostdata[0]);
726 unsigned long flags;
727 bool unblock = false;
728
729 spin_lock_irqsave(&card->lock, flags);
730 if (lu->blocked && lu->generation == card->generation) {
731 lu->blocked = false;
732 unblock = --tgt->blocked == 0;
733 }
734 spin_unlock_irqrestore(&card->lock, flags);
735
a5fd9ec7 736 if (unblock)
2e2705bd 737 scsi_unblock_requests(shost);
2e2705bd
SR
738}
739
740/*
741 * Prevents future blocking of tgt and unblocks it.
742 * Note, it is harmless to run scsi_unblock_requests() outside the
743 * card->lock protected section. On the other hand, running it inside
744 * the section might clash with shost->host_lock.
745 */
746static void sbp2_unblock(struct sbp2_target *tgt)
747{
748 struct fw_card *card = fw_device(tgt->unit->device.parent)->card;
749 struct Scsi_Host *shost =
750 container_of((void *)tgt, struct Scsi_Host, hostdata[0]);
751 unsigned long flags;
752
753 spin_lock_irqsave(&card->lock, flags);
754 ++tgt->dont_block;
755 spin_unlock_irqrestore(&card->lock, flags);
756
757 scsi_unblock_requests(shost);
758}
759
f8436158
SR
760static int sbp2_lun2int(u16 lun)
761{
762 struct scsi_lun eight_bytes_lun;
763
764 memset(&eight_bytes_lun, 0, sizeof(eight_bytes_lun));
765 eight_bytes_lun.scsi_lun[0] = (lun >> 8) & 0xff;
766 eight_bytes_lun.scsi_lun[1] = lun & 0xff;
767
768 return scsilun_to_int(&eight_bytes_lun);
769}
770
5a3c2be6 771static void sbp2_release_target(struct kref *kref)
b3d6e151 772{
5a3c2be6
SR
773 struct sbp2_target *tgt = container_of(kref, struct sbp2_target, kref);
774 struct sbp2_logical_unit *lu, *next;
775 struct Scsi_Host *shost =
776 container_of((void *)tgt, struct Scsi_Host, hostdata[0]);
f8436158 777 struct scsi_device *sdev;
855c603d 778 struct fw_device *device = fw_device(tgt->unit->device.parent);
5a3c2be6 779
2e2705bd
SR
780 /* prevent deadlocks */
781 sbp2_unblock(tgt);
782
5a3c2be6 783 list_for_each_entry_safe(lu, next, &tgt->lu_list, link) {
f8436158
SR
784 sdev = scsi_device_lookup(shost, 0, 0, sbp2_lun2int(lu->lun));
785 if (sdev) {
786 scsi_remove_device(sdev);
787 scsi_device_put(sdev);
33f1c6c3 788 }
cd1f70fd
JF
789 if (lu->login_id != INVALID_LOGIN_ID) {
790 int generation, node_id;
791 /*
792 * tgt->node_id may be obsolete here if we failed
793 * during initial login or after a bus reset where
794 * the topology changed.
795 */
796 generation = device->generation;
797 smp_rmb(); /* node_id vs. generation */
798 node_id = device->node_id;
799 sbp2_send_management_orb(lu, node_id, generation,
800 SBP2_LOGOUT_REQUEST,
801 lu->login_id, NULL);
802 }
5a3c2be6
SR
803 fw_core_remove_address_handler(&lu->address_handler);
804 list_del(&lu->link);
805 kfree(lu);
806 }
807 scsi_remove_host(shost);
f32ddadd 808 fw_notify("released %s, target %d:0:0\n", tgt->bus_id, shost->host_no);
5a3c2be6 809
1dc3bea7 810 fw_unit_put(tgt->unit);
5a3c2be6 811 scsi_host_put(shost);
855c603d 812 fw_device_put(device);
b3d6e151
KH
813}
814
df8ec249
SR
815static struct workqueue_struct *sbp2_wq;
816
cd1f70fd
JF
817static void sbp2_target_put(struct sbp2_target *tgt)
818{
819 kref_put(&tgt->kref, sbp2_release_target);
820}
821
285838eb
SR
822/*
823 * Always get the target's kref when scheduling work on one its units.
824 * Each workqueue job is responsible to call sbp2_target_put() upon return.
825 */
826static void sbp2_queue_work(struct sbp2_logical_unit *lu, unsigned long delay)
827{
cd1f70fd
JF
828 kref_get(&lu->tgt->kref);
829 if (!queue_delayed_work(sbp2_wq, &lu->work, delay))
830 sbp2_target_put(lu->tgt);
285838eb
SR
831}
832
17cff9ff
JW
833/*
834 * Write retransmit retry values into the BUSY_TIMEOUT register.
835 * - The single-phase retry protocol is supported by all SBP-2 devices, but the
836 * default retry_limit value is 0 (i.e. never retry transmission). We write a
837 * saner value after logging into the device.
838 * - The dual-phase retry protocol is optional to implement, and if not
839 * supported, writes to the dual-phase portion of the register will be
840 * ignored. We try to write the original 1394-1995 default here.
841 * - In the case of devices that are also SBP-3-compliant, all writes are
842 * ignored, as the register is read-only, but contains single-phase retry of
843 * 15, which is what we're trying to set for all SBP-2 device anyway, so this
844 * write attempt is safe and yields more consistent behavior for all devices.
845 *
846 * See section 8.3.2.3.5 of the 1394-1995 spec, section 6.2 of the SBP-2 spec,
847 * and section 6.4 of the SBP-3 spec for further details.
848 */
51f9dbef
JW
849static void sbp2_set_busy_timeout(struct sbp2_logical_unit *lu)
850{
851 struct fw_device *device = fw_device(lu->tgt->unit->device.parent);
1e119fa9 852 __be32 d = cpu_to_be32(SBP2_CYCLE_LIMIT | SBP2_RETRY_LIMIT);
51f9dbef 853
1e119fa9
JF
854 fw_run_transaction(device->card, TCODE_WRITE_QUADLET_REQUEST,
855 lu->tgt->node_id, lu->generation, device->max_speed,
856 CSR_REGISTER_BASE + CSR_BUSY_TIMEOUT,
857 &d, sizeof(d));
51f9dbef
JW
858}
859
5a3c2be6
SR
860static void sbp2_reconnect(struct work_struct *work);
861
7f37c426
KH
862static void sbp2_login(struct work_struct *work)
863{
5a3c2be6
SR
864 struct sbp2_logical_unit *lu =
865 container_of(work, struct sbp2_logical_unit, work.work);
48f18c76
SR
866 struct sbp2_target *tgt = lu->tgt;
867 struct fw_device *device = fw_device(tgt->unit->device.parent);
868 struct Scsi_Host *shost;
5a3c2be6 869 struct scsi_device *sdev;
7f37c426 870 struct sbp2_login_response response;
5a3c2be6 871 int generation, node_id, local_node_id;
7f37c426 872
be6f48b0
SR
873 if (fw_device_is_shutdown(device))
874 goto out;
875
5a8a1bcd 876 generation = device->generation;
621f6dd7 877 smp_rmb(); /* node IDs must not be older than generation */
5a8a1bcd
SR
878 node_id = device->node_id;
879 local_node_id = device->card->node_id;
7f37c426 880
ce896d95 881 /* If this is a re-login attempt, log out, or we might be rejected. */
f8436158 882 if (lu->has_sdev)
ce896d95
SR
883 sbp2_send_management_orb(lu, device->node_id, generation,
884 SBP2_LOGOUT_REQUEST, lu->login_id, NULL);
885
5a3c2be6
SR
886 if (sbp2_send_management_orb(lu, node_id, generation,
887 SBP2_LOGIN_REQUEST, lu->lun, &response) < 0) {
2e2705bd 888 if (lu->retries++ < 5) {
285838eb 889 sbp2_queue_work(lu, DIV_ROUND_UP(HZ, 5));
2e2705bd 890 } else {
48f18c76
SR
891 fw_error("%s: failed to login to LUN %04x\n",
892 tgt->bus_id, lu->lun);
2e2705bd
SR
893 /* Let any waiting I/O fail from now on. */
894 sbp2_unblock(lu->tgt);
895 }
285838eb 896 goto out;
7f37c426
KH
897 }
898
48f18c76
SR
899 tgt->node_id = node_id;
900 tgt->address_high = local_node_id << 16;
621f6dd7
SR
901 smp_wmb(); /* node IDs must not be older than generation */
902 lu->generation = generation;
7f37c426 903
5a3c2be6 904 lu->command_block_agent_address =
71ee9f01
SR
905 ((u64)(be32_to_cpu(response.command_block_agent.high) & 0xffff)
906 << 32) | be32_to_cpu(response.command_block_agent.low);
907 lu->login_id = be32_to_cpu(response.misc) & 0xffff;
7f37c426 908
48f18c76
SR
909 fw_notify("%s: logged in to LUN %04x (%d retries)\n",
910 tgt->bus_id, lu->lun, lu->retries);
7f37c426 911
51f9dbef
JW
912 /* set appropriate retry limit(s) in BUSY_TIMEOUT register */
913 sbp2_set_busy_timeout(lu);
7f37c426 914
5a3c2be6
SR
915 PREPARE_DELAYED_WORK(&lu->work, sbp2_reconnect);
916 sbp2_agent_reset(lu);
917
0fa6dfdb 918 /* This was a re-login. */
f8436158 919 if (lu->has_sdev) {
0fa6dfdb 920 sbp2_cancel_orbs(lu);
2e2705bd 921 sbp2_conditionally_unblock(lu);
0fa6dfdb
SR
922 goto out;
923 }
924
9220f194
SR
925 if (lu->tgt->workarounds & SBP2_WORKAROUND_DELAY_INQUIRY)
926 ssleep(SBP2_INQUIRY_DELAY);
927
48f18c76 928 shost = container_of((void *)tgt, struct Scsi_Host, hostdata[0]);
f8436158 929 sdev = __scsi_add_device(shost, 0, 0, sbp2_lun2int(lu->lun), lu);
e80de370
SR
930 /*
931 * FIXME: We are unable to perform reconnects while in sbp2_login().
932 * Therefore __scsi_add_device() will get into trouble if a bus reset
933 * happens in parallel. It will either fail or leave us with an
934 * unusable sdev. As a workaround we check for this and retry the
935 * whole login and SCSI probing.
936 */
1b9c12ba 937
e80de370
SR
938 /* Reported error during __scsi_add_device() */
939 if (IS_ERR(sdev))
940 goto out_logout_login;
941
e80de370
SR
942 /* Unreported error during __scsi_add_device() */
943 smp_rmb(); /* get current card generation */
944 if (generation != device->card->generation) {
945 scsi_remove_device(sdev);
33f1c6c3 946 scsi_device_put(sdev);
e80de370 947 goto out_logout_login;
7f37c426 948 }
e80de370
SR
949
950 /* No error during __scsi_add_device() */
f8436158
SR
951 lu->has_sdev = true;
952 scsi_device_put(sdev);
2e2705bd 953 sbp2_allow_block(lu);
e80de370
SR
954 goto out;
955
956 out_logout_login:
957 smp_rmb(); /* generation may have changed */
958 generation = device->generation;
959 smp_rmb(); /* node_id must not be older than generation */
960
961 sbp2_send_management_orb(lu, device->node_id, generation,
962 SBP2_LOGOUT_REQUEST, lu->login_id, NULL);
963 /*
964 * If a bus reset happened, sbp2_update will have requeued
965 * lu->work already. Reset the work from reconnect to login.
966 */
967 PREPARE_DELAYED_WORK(&lu->work, sbp2_login);
285838eb 968 out:
48f18c76 969 sbp2_target_put(tgt);
7f37c426 970}
9ba136d0 971
5a3c2be6 972static int sbp2_add_logical_unit(struct sbp2_target *tgt, int lun_entry)
9ba136d0 973{
5a3c2be6 974 struct sbp2_logical_unit *lu;
9ba136d0 975
5a3c2be6
SR
976 lu = kmalloc(sizeof(*lu), GFP_KERNEL);
977 if (!lu)
978 return -ENOMEM;
9ba136d0 979
5a3c2be6
SR
980 lu->address_handler.length = 0x100;
981 lu->address_handler.address_callback = sbp2_status_write;
982 lu->address_handler.callback_data = lu;
9ba136d0 983
5a3c2be6
SR
984 if (fw_core_add_address_handler(&lu->address_handler,
985 &fw_high_memory_region) < 0) {
986 kfree(lu);
987 return -ENOMEM;
988 }
9ba136d0 989
f8436158
SR
990 lu->tgt = tgt;
991 lu->lun = lun_entry & 0xffff;
cd1f70fd 992 lu->login_id = INVALID_LOGIN_ID;
f8436158
SR
993 lu->retries = 0;
994 lu->has_sdev = false;
995 lu->blocked = false;
2e2705bd 996 ++tgt->dont_block;
5a3c2be6
SR
997 INIT_LIST_HEAD(&lu->orb_list);
998 INIT_DELAYED_WORK(&lu->work, sbp2_login);
9ba136d0 999
5a3c2be6
SR
1000 list_add_tail(&lu->link, &tgt->lu_list);
1001 return 0;
1002}
ad85274f 1003
5a3c2be6
SR
1004static int sbp2_scan_logical_unit_dir(struct sbp2_target *tgt, u32 *directory)
1005{
1006 struct fw_csr_iterator ci;
1007 int key, value;
9ba136d0 1008
5a3c2be6
SR
1009 fw_csr_iterator_init(&ci, directory);
1010 while (fw_csr_iterator_next(&ci, &key, &value))
1011 if (key == SBP2_CSR_LOGICAL_UNIT_NUMBER &&
1012 sbp2_add_logical_unit(tgt, value) < 0)
1013 return -ENOMEM;
1014 return 0;
1015}
1016
1017static int sbp2_scan_unit_dir(struct sbp2_target *tgt, u32 *directory,
1018 u32 *model, u32 *firmware_revision)
1019{
1020 struct fw_csr_iterator ci;
1021 int key, value;
384170da 1022 unsigned int timeout;
5a3c2be6
SR
1023
1024 fw_csr_iterator_init(&ci, directory);
9ba136d0
KH
1025 while (fw_csr_iterator_next(&ci, &key, &value)) {
1026 switch (key) {
5a3c2be6 1027
9ba136d0 1028 case CSR_DEPENDENT_INFO | CSR_OFFSET:
5a3c2be6
SR
1029 tgt->management_agent_address =
1030 CSR_REGISTER_BASE + 4 * value;
9ba136d0 1031 break;
5a3c2be6
SR
1032
1033 case CSR_DIRECTORY_ID:
1034 tgt->directory_id = value;
9ba136d0 1035 break;
5a3c2be6 1036
9ba136d0 1037 case CSR_MODEL:
5a3c2be6
SR
1038 *model = value;
1039 break;
1040
1041 case SBP2_CSR_FIRMWARE_REVISION:
1042 *firmware_revision = value;
1043 break;
1044
384170da
JW
1045 case SBP2_CSR_UNIT_CHARACTERISTICS:
1046 /* the timeout value is stored in 500ms units */
1047 timeout = ((unsigned int) value >> 8 & 0xff) * 500;
1048 timeout = max(timeout, SBP2_MIN_LOGIN_ORB_TIMEOUT);
1049 tgt->mgt_orb_timeout =
1050 min(timeout, SBP2_MAX_LOGIN_ORB_TIMEOUT);
1051
1052 if (timeout > tgt->mgt_orb_timeout)
1053 fw_notify("%s: config rom contains %ds "
1054 "management ORB timeout, limiting "
48f18c76 1055 "to %ds\n", tgt->bus_id,
384170da
JW
1056 timeout / 1000,
1057 tgt->mgt_orb_timeout / 1000);
1058 break;
1059
5a3c2be6
SR
1060 case SBP2_CSR_LOGICAL_UNIT_NUMBER:
1061 if (sbp2_add_logical_unit(tgt, value) < 0)
1062 return -ENOMEM;
1063 break;
1064
1065 case SBP2_CSR_LOGICAL_UNIT_DIRECTORY:
0e3e2eab
RS
1066 /* Adjust for the increment in the iterator */
1067 if (sbp2_scan_logical_unit_dir(tgt, ci.p - 1 + value) < 0)
5a3c2be6 1068 return -ENOMEM;
9ba136d0
KH
1069 break;
1070 }
1071 }
5a3c2be6
SR
1072 return 0;
1073}
1074
1075static void sbp2_init_workarounds(struct sbp2_target *tgt, u32 model,
1076 u32 firmware_revision)
1077{
1078 int i;
05cca738 1079 unsigned int w = sbp2_param_workarounds;
2df222b8
SR
1080
1081 if (w)
1082 fw_notify("Please notify linux1394-devel@lists.sourceforge.net "
1083 "if you need the workarounds parameter for %s\n",
48f18c76 1084 tgt->bus_id);
5a3c2be6 1085
2df222b8
SR
1086 if (w & SBP2_WORKAROUND_OVERRIDE)
1087 goto out;
9ba136d0
KH
1088
1089 for (i = 0; i < ARRAY_SIZE(sbp2_workarounds_table); i++) {
5a3c2be6 1090
9ba136d0
KH
1091 if (sbp2_workarounds_table[i].firmware_revision !=
1092 (firmware_revision & 0xffffff00))
1093 continue;
5a3c2be6 1094
9ba136d0
KH
1095 if (sbp2_workarounds_table[i].model != model &&
1096 sbp2_workarounds_table[i].model != ~0)
1097 continue;
5a3c2be6 1098
2df222b8 1099 w |= sbp2_workarounds_table[i].workarounds;
9ba136d0
KH
1100 break;
1101 }
2df222b8
SR
1102 out:
1103 if (w)
5a3c2be6 1104 fw_notify("Workarounds for %s: 0x%x "
9ba136d0 1105 "(firmware_revision 0x%06x, model_id 0x%06x)\n",
48f18c76 1106 tgt->bus_id, w, firmware_revision, model);
2df222b8 1107 tgt->workarounds = w;
5a3c2be6
SR
1108}
1109
1110static struct scsi_host_template scsi_driver_template;
1111
1112static int sbp2_probe(struct device *dev)
1113{
1114 struct fw_unit *unit = fw_unit(dev);
1115 struct fw_device *device = fw_device(unit->device.parent);
1116 struct sbp2_target *tgt;
1117 struct sbp2_logical_unit *lu;
1118 struct Scsi_Host *shost;
1119 u32 model, firmware_revision;
1120
09b12dd4
SR
1121 if (dma_get_max_seg_size(device->card->device) > SBP2_MAX_SEG_SIZE)
1122 BUG_ON(dma_set_max_seg_size(device->card->device,
1123 SBP2_MAX_SEG_SIZE));
1124
5a3c2be6
SR
1125 shost = scsi_host_alloc(&scsi_driver_template, sizeof(*tgt));
1126 if (shost == NULL)
1127 return -ENOMEM;
1128
1129 tgt = (struct sbp2_target *)shost->hostdata;
1130 unit->device.driver_data = tgt;
1131 tgt->unit = unit;
1132 kref_init(&tgt->kref);
1133 INIT_LIST_HEAD(&tgt->lu_list);
a1f64819 1134 tgt->bus_id = dev_name(&unit->device);
c9755e14 1135 tgt->guid = (u64)device->config_rom[3] << 32 | device->config_rom[4];
5a3c2be6
SR
1136
1137 if (fw_device_enable_phys_dma(device) < 0)
1138 goto fail_shost_put;
1139
1140 if (scsi_add_host(shost, &unit->device) < 0)
1141 goto fail_shost_put;
1142
855c603d 1143 fw_device_get(device);
1dc3bea7 1144 fw_unit_get(unit);
855c603d 1145
5a3c2be6
SR
1146 /* Initialize to values that won't match anything in our table. */
1147 firmware_revision = 0xff000000;
1148 model = 0xff000000;
1149
1150 /* implicit directory ID */
1151 tgt->directory_id = ((unit->directory - device->config_rom) * 4
1152 + CSR_CONFIG_ROM) & 0xffffff;
1153
1154 if (sbp2_scan_unit_dir(tgt, unit->directory, &model,
1155 &firmware_revision) < 0)
1156 goto fail_tgt_put;
1157
1158 sbp2_init_workarounds(tgt, model, firmware_revision);
9ba136d0 1159
a08e100a
SR
1160 /*
1161 * At S100 we can do 512 bytes per packet, at S200 1024 bytes,
1162 * and so on up to 4096 bytes. The SBP-2 max_payload field
1163 * specifies the max payload size as 2 ^ (max_payload + 2), so
1164 * if we set this to max_speed + 7, we get the right value.
1165 */
1166 tgt->max_payload = min(device->max_speed + 7, 10U);
1167 tgt->max_payload = min(tgt->max_payload, device->card->max_receive - 1);
1168
285838eb 1169 /* Do the login in a workqueue so we can easily reschedule retries. */
5a3c2be6 1170 list_for_each_entry(lu, &tgt->lu_list, link)
0dcfeb7e 1171 sbp2_queue_work(lu, DIV_ROUND_UP(HZ, 5));
9ba136d0 1172 return 0;
ad85274f 1173
5a3c2be6 1174 fail_tgt_put:
285838eb 1175 sbp2_target_put(tgt);
5a3c2be6
SR
1176 return -ENOMEM;
1177
1178 fail_shost_put:
1179 scsi_host_put(shost);
1180 return -ENOMEM;
9ba136d0
KH
1181}
1182
1183static int sbp2_remove(struct device *dev)
1184{
1185 struct fw_unit *unit = fw_unit(dev);
5a3c2be6 1186 struct sbp2_target *tgt = unit->device.driver_data;
9ba136d0 1187
285838eb 1188 sbp2_target_put(tgt);
9ba136d0
KH
1189 return 0;
1190}
1191
1192static void sbp2_reconnect(struct work_struct *work)
1193{
5a3c2be6
SR
1194 struct sbp2_logical_unit *lu =
1195 container_of(work, struct sbp2_logical_unit, work.work);
48f18c76
SR
1196 struct sbp2_target *tgt = lu->tgt;
1197 struct fw_device *device = fw_device(tgt->unit->device.parent);
9ba136d0
KH
1198 int generation, node_id, local_node_id;
1199
be6f48b0
SR
1200 if (fw_device_is_shutdown(device))
1201 goto out;
1202
5a8a1bcd 1203 generation = device->generation;
621f6dd7 1204 smp_rmb(); /* node IDs must not be older than generation */
5a8a1bcd
SR
1205 node_id = device->node_id;
1206 local_node_id = device->card->node_id;
9ba136d0 1207
5a3c2be6 1208 if (sbp2_send_management_orb(lu, node_id, generation,
7f37c426 1209 SBP2_RECONNECT_REQUEST,
5a3c2be6 1210 lu->login_id, NULL) < 0) {
ce896d95
SR
1211 /*
1212 * If reconnect was impossible even though we are in the
1213 * current generation, fall back and try to log in again.
1214 *
1215 * We could check for "Function rejected" status, but
1216 * looking at the bus generation as simpler and more general.
1217 */
1218 smp_rmb(); /* get current card generation */
1219 if (generation == device->card->generation ||
1220 lu->retries++ >= 5) {
48f18c76 1221 fw_error("%s: failed to reconnect\n", tgt->bus_id);
5a3c2be6
SR
1222 lu->retries = 0;
1223 PREPARE_DELAYED_WORK(&lu->work, sbp2_login);
7f37c426 1224 }
285838eb
SR
1225 sbp2_queue_work(lu, DIV_ROUND_UP(HZ, 5));
1226 goto out;
7f37c426 1227 }
9ba136d0 1228
48f18c76
SR
1229 tgt->node_id = node_id;
1230 tgt->address_high = local_node_id << 16;
621f6dd7
SR
1231 smp_wmb(); /* node IDs must not be older than generation */
1232 lu->generation = generation;
7f37c426 1233
48f18c76
SR
1234 fw_notify("%s: reconnected to LUN %04x (%d retries)\n",
1235 tgt->bus_id, lu->lun, lu->retries);
5a3c2be6
SR
1236
1237 sbp2_agent_reset(lu);
1238 sbp2_cancel_orbs(lu);
2e2705bd 1239 sbp2_conditionally_unblock(lu);
285838eb 1240 out:
48f18c76 1241 sbp2_target_put(tgt);
9ba136d0
KH
1242}
1243
1244static void sbp2_update(struct fw_unit *unit)
1245{
5a3c2be6
SR
1246 struct sbp2_target *tgt = unit->device.driver_data;
1247 struct sbp2_logical_unit *lu;
9ba136d0 1248
5a3c2be6
SR
1249 fw_device_enable_phys_dma(fw_device(unit->device.parent));
1250
1251 /*
1252 * Fw-core serializes sbp2_update() against sbp2_remove().
1253 * Iteration over tgt->lu_list is therefore safe here.
1254 */
1255 list_for_each_entry(lu, &tgt->lu_list, link) {
2e2705bd 1256 sbp2_conditionally_block(lu);
5a3c2be6 1257 lu->retries = 0;
285838eb 1258 sbp2_queue_work(lu, 0);
5a3c2be6 1259 }
9ba136d0
KH
1260}
1261
1262#define SBP2_UNIT_SPEC_ID_ENTRY 0x0000609e
1263#define SBP2_SW_VERSION_ENTRY 0x00010483
1264
21ebcd12 1265static const struct fw_device_id sbp2_id_table[] = {
9ba136d0
KH
1266 {
1267 .match_flags = FW_MATCH_SPECIFIER_ID | FW_MATCH_VERSION,
1268 .specifier_id = SBP2_UNIT_SPEC_ID_ENTRY,
5af4e5ea 1269 .version = SBP2_SW_VERSION_ENTRY,
9ba136d0
KH
1270 },
1271 { }
1272};
1273
1274static struct fw_driver sbp2_driver = {
1275 .driver = {
1276 .owner = THIS_MODULE,
1277 .name = sbp2_driver_name,
1278 .bus = &fw_bus_type,
1279 .probe = sbp2_probe,
1280 .remove = sbp2_remove,
1281 },
1282 .update = sbp2_update,
1283 .id_table = sbp2_id_table,
1284};
1285
fbb5423c
KH
1286static unsigned int
1287sbp2_status_to_sense_data(u8 *sbp2_status, u8 *sense_data)
9ba136d0 1288{
fbb5423c
KH
1289 int sam_status;
1290
9ba136d0
KH
1291 sense_data[0] = 0x70;
1292 sense_data[1] = 0x0;
1293 sense_data[2] = sbp2_status[1];
1294 sense_data[3] = sbp2_status[4];
1295 sense_data[4] = sbp2_status[5];
1296 sense_data[5] = sbp2_status[6];
1297 sense_data[6] = sbp2_status[7];
1298 sense_data[7] = 10;
1299 sense_data[8] = sbp2_status[8];
1300 sense_data[9] = sbp2_status[9];
1301 sense_data[10] = sbp2_status[10];
1302 sense_data[11] = sbp2_status[11];
1303 sense_data[12] = sbp2_status[2];
1304 sense_data[13] = sbp2_status[3];
1305 sense_data[14] = sbp2_status[12];
1306 sense_data[15] = sbp2_status[13];
1307
fbb5423c 1308 sam_status = sbp2_status[0] & 0x3f;
9ba136d0 1309
fbb5423c
KH
1310 switch (sam_status) {
1311 case SAM_STAT_GOOD:
9ba136d0 1312 case SAM_STAT_CHECK_CONDITION:
9ba136d0 1313 case SAM_STAT_CONDITION_MET:
fbb5423c 1314 case SAM_STAT_BUSY:
9ba136d0
KH
1315 case SAM_STAT_RESERVATION_CONFLICT:
1316 case SAM_STAT_COMMAND_TERMINATED:
fbb5423c
KH
1317 return DID_OK << 16 | sam_status;
1318
9ba136d0 1319 default:
fbb5423c 1320 return DID_ERROR << 16;
9ba136d0
KH
1321 }
1322}
1323
1324static void
1325complete_command_orb(struct sbp2_orb *base_orb, struct sbp2_status *status)
1326{
6f061487
JF
1327 struct sbp2_command_orb *orb =
1328 container_of(base_orb, struct sbp2_command_orb, base);
5a3c2be6 1329 struct fw_device *device = fw_device(orb->lu->tgt->unit->device.parent);
9ba136d0
KH
1330 int result;
1331
1332 if (status != NULL) {
a77754a7 1333 if (STATUS_GET_DEAD(*status))
e0e60215 1334 sbp2_agent_reset_no_wait(orb->lu);
9ba136d0 1335
a77754a7 1336 switch (STATUS_GET_RESPONSE(*status)) {
9ba136d0 1337 case SBP2_STATUS_REQUEST_COMPLETE:
fbb5423c 1338 result = DID_OK << 16;
9ba136d0
KH
1339 break;
1340 case SBP2_STATUS_TRANSPORT_FAILURE:
fbb5423c 1341 result = DID_BUS_BUSY << 16;
9ba136d0
KH
1342 break;
1343 case SBP2_STATUS_ILLEGAL_REQUEST:
1344 case SBP2_STATUS_VENDOR_DEPENDENT:
1345 default:
fbb5423c 1346 result = DID_ERROR << 16;
9ba136d0
KH
1347 break;
1348 }
1349
a77754a7
KH
1350 if (result == DID_OK << 16 && STATUS_GET_LEN(*status) > 1)
1351 result = sbp2_status_to_sense_data(STATUS_GET_DATA(*status),
9ba136d0
KH
1352 orb->cmd->sense_buffer);
1353 } else {
c781c06d
KH
1354 /*
1355 * If the orb completes with status == NULL, something
9ba136d0 1356 * went wrong, typically a bus reset happened mid-orb
c781c06d
KH
1357 * or when sending the write (less likely).
1358 */
fbb5423c 1359 result = DID_BUS_BUSY << 16;
2e2705bd 1360 sbp2_conditionally_block(orb->lu);
9ba136d0
KH
1361 }
1362
1363 dma_unmap_single(device->card->device, orb->base.request_bus,
2d826cc5 1364 sizeof(orb->request), DMA_TO_DEVICE);
9ba136d0 1365
412edf65
SR
1366 if (scsi_sg_count(orb->cmd) > 0)
1367 dma_unmap_sg(device->card->device, scsi_sglist(orb->cmd),
1368 scsi_sg_count(orb->cmd),
9ba136d0 1369 orb->cmd->sc_data_direction);
9ba136d0
KH
1370
1371 if (orb->page_table_bus != 0)
1372 dma_unmap_single(device->card->device, orb->page_table_bus,
b4be016a 1373 sizeof(orb->page_table), DMA_TO_DEVICE);
9ba136d0 1374
fbb5423c 1375 orb->cmd->result = result;
9ba136d0 1376 orb->done(orb->cmd);
9ba136d0
KH
1377}
1378
5a3c2be6
SR
1379static int
1380sbp2_map_scatterlist(struct sbp2_command_orb *orb, struct fw_device *device,
1381 struct sbp2_logical_unit *lu)
9ba136d0 1382{
09b12dd4
SR
1383 struct scatterlist *sg = scsi_sglist(orb->cmd);
1384 int i, n;
1385
1386 n = dma_map_sg(device->card->device, sg, scsi_sg_count(orb->cmd),
1387 orb->cmd->sc_data_direction);
1388 if (n == 0)
95ffc5e3 1389 goto fail;
9ba136d0 1390
c781c06d
KH
1391 /*
1392 * Handle the special case where there is only one element in
9ba136d0
KH
1393 * the scatter list by converting it to an immediate block
1394 * request. This is also a workaround for broken devices such
1395 * as the second generation iPod which doesn't support page
c781c06d
KH
1396 * tables.
1397 */
09b12dd4 1398 if (n == 1) {
71ee9f01
SR
1399 orb->request.data_descriptor.high =
1400 cpu_to_be32(lu->tgt->address_high);
1401 orb->request.data_descriptor.low =
1402 cpu_to_be32(sg_dma_address(sg));
1403 orb->request.misc |=
1404 cpu_to_be32(COMMAND_ORB_DATA_SIZE(sg_dma_len(sg)));
95ffc5e3 1405 return 0;
9ba136d0
KH
1406 }
1407
09b12dd4
SR
1408 for_each_sg(sg, sg, n, i) {
1409 orb->page_table[i].high = cpu_to_be32(sg_dma_len(sg) << 16);
1410 orb->page_table[i].low = cpu_to_be32(sg_dma_address(sg));
9ba136d0
KH
1411 }
1412
b4be016a
SR
1413 orb->page_table_bus =
1414 dma_map_single(device->card->device, orb->page_table,
1415 sizeof(orb->page_table), DMA_TO_DEVICE);
8d8bb39b 1416 if (dma_mapping_error(device->card->device, orb->page_table_bus))
b4be016a 1417 goto fail_page_table;
9ba136d0 1418
c781c06d
KH
1419 /*
1420 * The data_descriptor pointer is the one case where we need
9ba136d0
KH
1421 * to fill in the node ID part of the address. All other
1422 * pointers assume that the data referenced reside on the
1423 * initiator (i.e. us), but data_descriptor can refer to data
c781c06d
KH
1424 * on other nodes so we need to put our ID in descriptor.high.
1425 */
71ee9f01
SR
1426 orb->request.data_descriptor.high = cpu_to_be32(lu->tgt->address_high);
1427 orb->request.data_descriptor.low = cpu_to_be32(orb->page_table_bus);
1428 orb->request.misc |= cpu_to_be32(COMMAND_ORB_PAGE_TABLE_PRESENT |
09b12dd4 1429 COMMAND_ORB_DATA_SIZE(n));
9ba136d0 1430
95ffc5e3
KH
1431 return 0;
1432
1433 fail_page_table:
09b12dd4
SR
1434 dma_unmap_sg(device->card->device, scsi_sglist(orb->cmd),
1435 scsi_sg_count(orb->cmd), orb->cmd->sc_data_direction);
95ffc5e3
KH
1436 fail:
1437 return -ENOMEM;
9ba136d0
KH
1438}
1439
9ba136d0
KH
1440/* SCSI stack integration */
1441
1442static int sbp2_scsi_queuecommand(struct scsi_cmnd *cmd, scsi_done_fn_t done)
1443{
5a3c2be6
SR
1444 struct sbp2_logical_unit *lu = cmd->device->hostdata;
1445 struct fw_device *device = fw_device(lu->tgt->unit->device.parent);
9ba136d0 1446 struct sbp2_command_orb *orb;
4bbc1bdd 1447 int generation, retval = SCSI_MLQUEUE_HOST_BUSY;
9ba136d0 1448
c781c06d
KH
1449 /*
1450 * Bidirectional commands are not yet implemented, and unknown
1451 * transfer direction not handled.
1452 */
9ba136d0 1453 if (cmd->sc_data_direction == DMA_BIDIRECTIONAL) {
8a8cea27 1454 fw_error("Can't handle DMA_BIDIRECTIONAL, rejecting command\n");
e1b68c4d
KH
1455 cmd->result = DID_ERROR << 16;
1456 done(cmd);
1457 return 0;
9ba136d0
KH
1458 }
1459
2d826cc5 1460 orb = kzalloc(sizeof(*orb), GFP_ATOMIC);
9ba136d0
KH
1461 if (orb == NULL) {
1462 fw_notify("failed to alloc orb\n");
5a3c2be6 1463 return SCSI_MLQUEUE_HOST_BUSY;
9ba136d0
KH
1464 }
1465
12f26aa1
KH
1466 /* Initialize rcode to something not RCODE_COMPLETE. */
1467 orb->base.rcode = -1;
e57d2011 1468 kref_init(&orb->base.kref);
9ba136d0 1469
5a3c2be6 1470 orb->lu = lu;
9ba136d0
KH
1471 orb->done = done;
1472 orb->cmd = cmd;
1473
a08e100a 1474 orb->request.next.high = cpu_to_be32(SBP2_ORB_NULL);
71ee9f01 1475 orb->request.misc = cpu_to_be32(
a08e100a 1476 COMMAND_ORB_MAX_PAYLOAD(lu->tgt->max_payload) |
f1397490 1477 COMMAND_ORB_SPEED(device->max_speed) |
71ee9f01 1478 COMMAND_ORB_NOTIFY);
9ba136d0
KH
1479
1480 if (cmd->sc_data_direction == DMA_FROM_DEVICE)
0d7dcbf2 1481 orb->request.misc |= cpu_to_be32(COMMAND_ORB_DIRECTION);
9ba136d0 1482
4bbc1bdd
SR
1483 generation = device->generation;
1484 smp_rmb(); /* sbp2_map_scatterlist looks at tgt->address_high */
1485
5a3c2be6
SR
1486 if (scsi_sg_count(cmd) && sbp2_map_scatterlist(orb, device, lu) < 0)
1487 goto out;
9ba136d0 1488
64a87b24 1489 memcpy(orb->request.command_block, cmd->cmnd, cmd->cmd_len);
9ba136d0
KH
1490
1491 orb->base.callback = complete_command_orb;
8526392a
SR
1492 orb->base.request_bus =
1493 dma_map_single(device->card->device, &orb->request,
1494 sizeof(orb->request), DMA_TO_DEVICE);
8d8bb39b 1495 if (dma_mapping_error(device->card->device, orb->base.request_bus))
5a3c2be6 1496 goto out;
82eff9db 1497
4bbc1bdd 1498 sbp2_send_orb(&orb->base, lu, lu->tgt->node_id, generation,
5a3c2be6
SR
1499 lu->command_block_agent_address + SBP2_ORB_POINTER);
1500 retval = 0;
1501 out:
e57d2011 1502 kref_put(&orb->base.kref, free_orb);
5a3c2be6 1503 return retval;
9ba136d0
KH
1504}
1505
cfb01381
SR
1506static int sbp2_scsi_slave_alloc(struct scsi_device *sdev)
1507{
5a3c2be6 1508 struct sbp2_logical_unit *lu = sdev->hostdata;
cfb01381 1509
5513c5f6
SR
1510 /* (Re-)Adding logical units via the SCSI stack is not supported. */
1511 if (!lu)
1512 return -ENOSYS;
1513
cfb01381
SR
1514 sdev->allow_restart = 1;
1515
8ac3a47c
SR
1516 /* SBP-2 requires quadlet alignment of the data buffers. */
1517 blk_queue_update_dma_alignment(sdev->request_queue, 4 - 1);
465ff318 1518
5a3c2be6 1519 if (lu->tgt->workarounds & SBP2_WORKAROUND_INQUIRY_36)
cfb01381 1520 sdev->inquiry_len = 36;
5a3c2be6 1521
cfb01381
SR
1522 return 0;
1523}
1524
9ba136d0
KH
1525static int sbp2_scsi_slave_configure(struct scsi_device *sdev)
1526{
5a3c2be6 1527 struct sbp2_logical_unit *lu = sdev->hostdata;
9ba136d0 1528
cfb01381
SR
1529 sdev->use_10_for_rw = 1;
1530
2635f96f
SR
1531 if (sbp2_param_exclusive_login)
1532 sdev->manage_start_stop = 1;
1533
cfb01381
SR
1534 if (sdev->type == TYPE_ROM)
1535 sdev->use_10_for_ms = 1;
5a3c2be6 1536
9ba136d0 1537 if (sdev->type == TYPE_DISK &&
5a3c2be6 1538 lu->tgt->workarounds & SBP2_WORKAROUND_MODE_SENSE_8)
9ba136d0 1539 sdev->skip_ms_page_8 = 1;
5a3c2be6
SR
1540
1541 if (lu->tgt->workarounds & SBP2_WORKAROUND_FIX_CAPACITY)
9ba136d0 1542 sdev->fix_capacity = 1;
5a3c2be6 1543
ffcaade3
SR
1544 if (lu->tgt->workarounds & SBP2_WORKAROUND_POWER_CONDITION)
1545 sdev->start_stop_pwr_cond = 1;
1546
5a3c2be6 1547 if (lu->tgt->workarounds & SBP2_WORKAROUND_128K_MAX_TRANS)
cf47c7a2 1548 blk_queue_max_sectors(sdev->request_queue, 128 * 1024 / 512);
5a3c2be6 1549
09b12dd4
SR
1550 blk_queue_max_segment_size(sdev->request_queue, SBP2_MAX_SEG_SIZE);
1551
9ba136d0
KH
1552 return 0;
1553}
1554
1555/*
1556 * Called by scsi stack when something has really gone wrong. Usually
1557 * called when a command has timed-out for some reason.
1558 */
1559static int sbp2_scsi_abort(struct scsi_cmnd *cmd)
1560{
5a3c2be6 1561 struct sbp2_logical_unit *lu = cmd->device->hostdata;
9ba136d0 1562
48f18c76 1563 fw_notify("%s: sbp2_scsi_abort\n", lu->tgt->bus_id);
5a3c2be6
SR
1564 sbp2_agent_reset(lu);
1565 sbp2_cancel_orbs(lu);
9ba136d0
KH
1566
1567 return SUCCESS;
1568}
1569
14e21986
SR
1570/*
1571 * Format of /sys/bus/scsi/devices/.../ieee1394_id:
1572 * u64 EUI-64 : u24 directory_ID : u16 LUN (all printed in hexadecimal)
1573 *
1574 * This is the concatenation of target port identifier and logical unit
1575 * identifier as per SAM-2...SAM-4 annex A.
1576 */
1577static ssize_t
1578sbp2_sysfs_ieee1394_id_show(struct device *dev, struct device_attribute *attr,
1579 char *buf)
1580{
1581 struct scsi_device *sdev = to_scsi_device(dev);
5a3c2be6 1582 struct sbp2_logical_unit *lu;
14e21986
SR
1583
1584 if (!sdev)
1585 return 0;
14e21986 1586
5a3c2be6 1587 lu = sdev->hostdata;
14e21986 1588
c9755e14
SR
1589 return sprintf(buf, "%016llx:%06x:%04x\n",
1590 (unsigned long long)lu->tgt->guid,
5a3c2be6 1591 lu->tgt->directory_id, lu->lun);
14e21986
SR
1592}
1593
1594static DEVICE_ATTR(ieee1394_id, S_IRUGO, sbp2_sysfs_ieee1394_id_show, NULL);
1595
1596static struct device_attribute *sbp2_scsi_sysfs_attrs[] = {
1597 &dev_attr_ieee1394_id,
1598 NULL
1599};
1600
9ba136d0
KH
1601static struct scsi_host_template scsi_driver_template = {
1602 .module = THIS_MODULE,
1603 .name = "SBP-2 IEEE-1394",
b02b6bc4 1604 .proc_name = sbp2_driver_name,
9ba136d0 1605 .queuecommand = sbp2_scsi_queuecommand,
cfb01381 1606 .slave_alloc = sbp2_scsi_slave_alloc,
9ba136d0
KH
1607 .slave_configure = sbp2_scsi_slave_configure,
1608 .eh_abort_handler = sbp2_scsi_abort,
1609 .this_id = -1,
1610 .sg_tablesize = SG_ALL,
1611 .use_clustering = ENABLE_CLUSTERING,
02af8e70
SR
1612 .cmd_per_lun = 1,
1613 .can_queue = 1,
14e21986 1614 .sdev_attrs = sbp2_scsi_sysfs_attrs,
9ba136d0
KH
1615};
1616
9ba136d0
KH
1617MODULE_AUTHOR("Kristian Hoegsberg <krh@bitplanet.net>");
1618MODULE_DESCRIPTION("SCSI over IEEE1394");
1619MODULE_LICENSE("GPL");
1620MODULE_DEVICE_TABLE(ieee1394, sbp2_id_table);
1621
1e4c7b0d
OH
1622/* Provide a module alias so root-on-sbp2 initrds don't break. */
1623#ifndef CONFIG_IEEE1394_SBP2_MODULE
1624MODULE_ALIAS("sbp2");
1625#endif
1626
9ba136d0
KH
1627static int __init sbp2_init(void)
1628{
df8ec249
SR
1629 sbp2_wq = create_singlethread_workqueue(KBUILD_MODNAME);
1630 if (!sbp2_wq)
1631 return -ENOMEM;
1632
9ba136d0
KH
1633 return driver_register(&sbp2_driver.driver);
1634}
1635
1636static void __exit sbp2_cleanup(void)
1637{
1638 driver_unregister(&sbp2_driver.driver);
df8ec249 1639 destroy_workqueue(sbp2_wq);
9ba136d0
KH
1640}
1641
1642module_init(sbp2_init);
1643module_exit(sbp2_cleanup);