1 /*
2 * dc395x.c
3 *
4 * Device Driver for Tekram DC395(U/UW/F), DC315(U)
5 * PCI SCSI Bus Master Host Adapter
6 * (SCSI chip set used Tekram ASIC TRM-S1040)
7 *
8 * Authors:
9 * C.L. Huang <ching@tekram.com.tw>
10 * Erich Chen <erich@tekram.com.tw>
11 * (C) Copyright 1995-1999 Tekram Technology Co., Ltd.
12 *
13 * Kurt Garloff <garloff@suse.de>
14 * (C) 1999-2000 Kurt Garloff
15 *
16 * Oliver Neukum <oliver@neukum.name>
17 * Ali Akcaagac <aliakc@web.de>
18 * Jamie Lenehan <lenehan@twibble.org>
19 * (C) 2003
20 *
21 * License: GNU GPL
22 *
23 *************************************************************************
24 *
25 * Redistribution and use in source and binary forms, with or without
26 * modification, are permitted provided that the following conditions
27 * are met:
28 * 1. Redistributions of source code must retain the above copyright
29 * notice, this list of conditions and the following disclaimer.
30 * 2. Redistributions in binary form must reproduce the above copyright
31 * notice, this list of conditions and the following disclaimer in the
32 * documentation and/or other materials provided with the distribution.
33 * 3. The name of the author may not be used to endorse or promote products
34 * derived from this software without specific prior written permission.
35 *
36 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
37 * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
38 * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
39 * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
40 * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
41 * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
42 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
43 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
44 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
45 * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
46 *
47 ************************************************************************
48 */
49 #include <linux/module.h>
50 #include <linux/moduleparam.h>
51 #include <linux/delay.h>
52 #include <linux/ctype.h>
53 #include <linux/blkdev.h>
54 #include <linux/interrupt.h>
55 #include <linux/init.h>
56 #include <linux/spinlock.h>
57 #include <linux/pci.h>
58 #include <linux/list.h>
59 #include <linux/vmalloc.h>
60 #include <linux/slab.h>
61 #include <asm/io.h>
62
63 #include <scsi/scsi.h>
64 #include <scsi/scsi_cmnd.h>
65 #include <scsi/scsi_device.h>
66 #include <scsi/scsi_host.h>
67 #include <scsi/scsi_transport_spi.h>
68
69 #include "dc395x.h"
70
71 #define DC395X_NAME "dc395x"
72 #define DC395X_BANNER "Tekram DC395(U/UW/F), DC315(U) - ASIC TRM-S1040"
73 #define DC395X_VERSION "v2.05, 2004/03/08"
74
75 /*---------------------------------------------------------------------------
76 Features
77 ---------------------------------------------------------------------------*/
78 /*
79 * Set to disable parts of the driver
80 */
81 /*#define DC395x_NO_DISCONNECT*/
82 /*#define DC395x_NO_TAGQ*/
83 /*#define DC395x_NO_SYNC*/
84 /*#define DC395x_NO_WIDE*/
85
86 #ifndef PCI_VENDOR_ID_TEKRAM
87 #define PCI_VENDOR_ID_TEKRAM 0x1DE1 /* Vendor ID */
88 #endif
89 #ifndef PCI_DEVICE_ID_TEKRAM_TRMS1040
90 #define PCI_DEVICE_ID_TEKRAM_TRMS1040 0x0391 /* Device ID */
91 #endif
92
93
94 #define DC395x_LOCK_IO(dev,flags) spin_lock_irqsave(((struct Scsi_Host *)dev)->host_lock, flags)
95 #define DC395x_UNLOCK_IO(dev,flags) spin_unlock_irqrestore(((struct Scsi_Host *)dev)->host_lock, flags)
96
97 #define DC395x_read8(acb,address) (u8)(inb(acb->io_port_base + (address)))
98 #define DC395x_read16(acb,address) (u16)(inw(acb->io_port_base + (address)))
99 #define DC395x_read32(acb,address) (u32)(inl(acb->io_port_base + (address)))
100 #define DC395x_write8(acb,address,value) outb((value), acb->io_port_base + (address))
101 #define DC395x_write16(acb,address,value) outw((value), acb->io_port_base + (address))
102 #define DC395x_write32(acb,address,value) outl((value), acb->io_port_base + (address))
103
104 #define TAG_NONE 255
105
106 /*
107 * srb->segement_x is the hw sg list. It is always allocated as a
108 * DC395x_MAX_SG_LISTENTRY entries in a linear block which does not
109 * cross a page boundy.
110 */
111 #define SEGMENTX_LEN (sizeof(struct SGentry)*DC395x_MAX_SG_LISTENTRY)
112
113
114 struct SGentry {
115 u32 address; /* bus! address */
116 u32 length;
117 };
118
119 /* The SEEPROM structure for TRM_S1040 */
120 struct NVRamTarget {
121 u8 cfg0; /* Target configuration byte 0 */
122 u8 period; /* Target period */
123 u8 cfg2; /* Target configuration byte 2 */
124 u8 cfg3; /* Target configuration byte 3 */
125 };
126
127 struct NvRamType {
128 u8 sub_vendor_id[2]; /* 0,1 Sub Vendor ID */
129 u8 sub_sys_id[2]; /* 2,3 Sub System ID */
130 u8 sub_class; /* 4 Sub Class */
131 u8 vendor_id[2]; /* 5,6 Vendor ID */
132 u8 device_id[2]; /* 7,8 Device ID */
133 u8 reserved; /* 9 Reserved */
134 struct NVRamTarget target[DC395x_MAX_SCSI_ID];
135 /** 10,11,12,13
136 ** 14,15,16,17
137 ** ....
138 ** ....
139 ** 70,71,72,73
140 */
141 u8 scsi_id; /* 74 Host Adapter SCSI ID */
142 u8 channel_cfg; /* 75 Channel configuration */
143 u8 delay_time; /* 76 Power on delay time */
144 u8 max_tag; /* 77 Maximum tags */
145 u8 reserved0; /* 78 */
146 u8 boot_target; /* 79 */
147 u8 boot_lun; /* 80 */
148 u8 reserved1; /* 81 */
149 u16 reserved2[22]; /* 82,..125 */
150 u16 cksum; /* 126,127 */
151 };
152
153 struct ScsiReqBlk {
154 struct list_head list; /* next/prev ptrs for srb lists */
155 struct DeviceCtlBlk *dcb;
156 struct scsi_cmnd *cmd;
157
158 struct SGentry *segment_x; /* Linear array of hw sg entries (up to 64 entries) */
159 dma_addr_t sg_bus_addr; /* Bus address of sg list (ie, of segment_x) */
160
161 u8 sg_count; /* No of HW sg entries for this request */
162 u8 sg_index; /* Index of HW sg entry for this request */
163 size_t total_xfer_length; /* Total number of bytes remaining to be transferred */
164 size_t request_length; /* Total number of bytes in this request */
165 /*
166 * The sense buffer handling function, request_sense, uses
167 * the first hw sg entry (segment_x[0]) and the transfer
168 * length (total_xfer_length). While doing this it stores the
169 * original values into the last sg hw list
170 * (srb->segment_x[DC395x_MAX_SG_LISTENTRY - 1] and the
171 * total_xfer_length in xferred. These values are restored in
172 * pci_unmap_srb_sense. This is the only place xferred is used.
173 */
174 size_t xferred; /* Saved copy of total_xfer_length */
175
176 u16 state;
177
178 u8 msgin_buf[6];
179 u8 msgout_buf[6];
180
181 u8 adapter_status;
182 u8 target_status;
183 u8 msg_count;
184 u8 end_message;
185
186 u8 tag_number;
187 u8 status;
188 u8 retry_count;
189 u8 flag;
190
191 u8 scsi_phase;
192 };
193
194 struct DeviceCtlBlk {
195 struct list_head list; /* next/prev ptrs for the dcb list */
196 struct AdapterCtlBlk *acb;
197 struct list_head srb_going_list; /* head of going srb list */
198 struct list_head srb_waiting_list; /* head of waiting srb list */
199
200 struct ScsiReqBlk *active_srb;
201 u32 tag_mask;
202
203 u16 max_command;
204
205 u8 target_id; /* SCSI Target ID (SCSI Only) */
206 u8 target_lun; /* SCSI Log. Unit (SCSI Only) */
207 u8 identify_msg;
208 u8 dev_mode;
209
210 u8 inquiry7; /* To store Inquiry flags */
211 u8 sync_mode; /* 0:async mode */
212 u8 min_nego_period; /* for nego. */
213 u8 sync_period; /* for reg. */
214
215 u8 sync_offset; /* for reg. and nego.(low nibble) */
216 u8 flag;
217 u8 dev_type;
218 u8 init_tcq_flag;
219 };
220
221 struct AdapterCtlBlk {
222 struct Scsi_Host *scsi_host;
223
224 unsigned long io_port_base;
225 unsigned long io_port_len;
226
227 struct list_head dcb_list; /* head of going dcb list */
228 struct DeviceCtlBlk *dcb_run_robin;
229 struct DeviceCtlBlk *active_dcb;
230
231 struct list_head srb_free_list; /* head of free srb list */
232 struct ScsiReqBlk *tmp_srb;
233 struct timer_list waiting_timer;
234 struct timer_list selto_timer;
235
236 unsigned long last_reset;
237
238 u16 srb_count;
239
240 u8 sel_timeout;
241
242 unsigned int irq_level;
243 u8 tag_max_num;
244 u8 acb_flag;
245 u8 gmode2;
246
247 u8 config;
248 u8 lun_chk;
249 u8 scan_devices;
250 u8 hostid_bit;
251
252 u8 dcb_map[DC395x_MAX_SCSI_ID];
253 struct DeviceCtlBlk *children[DC395x_MAX_SCSI_ID][32];
254
255 struct pci_dev *dev;
256
257 u8 msg_len;
258
259 struct ScsiReqBlk srb_array[DC395x_MAX_SRB_CNT];
260 struct ScsiReqBlk srb;
261
262 struct NvRamType eeprom; /* eeprom settings for this adapter */
263 };
264
265
266 /*---------------------------------------------------------------------------
267 Forward declarations
268 ---------------------------------------------------------------------------*/
269 static void data_out_phase0(struct AdapterCtlBlk *acb, struct ScsiReqBlk *srb,
270 u16 *pscsi_status);
271 static void data_in_phase0(struct AdapterCtlBlk *acb, struct ScsiReqBlk *srb,
272 u16 *pscsi_status);
273 static void command_phase0(struct AdapterCtlBlk *acb, struct ScsiReqBlk *srb,
274 u16 *pscsi_status);
275 static void status_phase0(struct AdapterCtlBlk *acb, struct ScsiReqBlk *srb,
276 u16 *pscsi_status);
277 static void msgout_phase0(struct AdapterCtlBlk *acb, struct ScsiReqBlk *srb,
278 u16 *pscsi_status);
279 static void msgin_phase0(struct AdapterCtlBlk *acb, struct ScsiReqBlk *srb,
280 u16 *pscsi_status);
281 static void data_out_phase1(struct AdapterCtlBlk *acb, struct ScsiReqBlk *srb,
282 u16 *pscsi_status);
283 static void data_in_phase1(struct AdapterCtlBlk *acb, struct ScsiReqBlk *srb,
284 u16 *pscsi_status);
285 static void command_phase1(struct AdapterCtlBlk *acb, struct ScsiReqBlk *srb,
286 u16 *pscsi_status);
287 static void status_phase1(struct AdapterCtlBlk *acb, struct ScsiReqBlk *srb,
288 u16 *pscsi_status);
289 static void msgout_phase1(struct AdapterCtlBlk *acb, struct ScsiReqBlk *srb,
290 u16 *pscsi_status);
291 static void msgin_phase1(struct AdapterCtlBlk *acb, struct ScsiReqBlk *srb,
292 u16 *pscsi_status);
293 static void nop0(struct AdapterCtlBlk *acb, struct ScsiReqBlk *srb,
294 u16 *pscsi_status);
295 static void nop1(struct AdapterCtlBlk *acb, struct ScsiReqBlk *srb,
296 u16 *pscsi_status);
297 static void set_basic_config(struct AdapterCtlBlk *acb);
298 static void cleanup_after_transfer(struct AdapterCtlBlk *acb,
299 struct ScsiReqBlk *srb);
300 static void reset_scsi_bus(struct AdapterCtlBlk *acb);
301 static void data_io_transfer(struct AdapterCtlBlk *acb,
302 struct ScsiReqBlk *srb, u16 io_dir);
303 static void disconnect(struct AdapterCtlBlk *acb);
304 static void reselect(struct AdapterCtlBlk *acb);
305 static u8 start_scsi(struct AdapterCtlBlk *acb, struct DeviceCtlBlk *dcb,
306 struct ScsiReqBlk *srb);
307 static inline void enable_msgout_abort(struct AdapterCtlBlk *acb,
308 struct ScsiReqBlk *srb);
309 static void build_srb(struct scsi_cmnd *cmd, struct DeviceCtlBlk *dcb,
310 struct ScsiReqBlk *srb);
311 static void doing_srb_done(struct AdapterCtlBlk *acb, u8 did_code,
312 struct scsi_cmnd *cmd, u8 force);
313 static void scsi_reset_detect(struct AdapterCtlBlk *acb);
314 static void pci_unmap_srb(struct AdapterCtlBlk *acb, struct ScsiReqBlk *srb);
315 static void pci_unmap_srb_sense(struct AdapterCtlBlk *acb,
316 struct ScsiReqBlk *srb);
317 static void srb_done(struct AdapterCtlBlk *acb, struct DeviceCtlBlk *dcb,
318 struct ScsiReqBlk *srb);
319 static void request_sense(struct AdapterCtlBlk *acb, struct DeviceCtlBlk *dcb,
320 struct ScsiReqBlk *srb);
321 static void set_xfer_rate(struct AdapterCtlBlk *acb,
322 struct DeviceCtlBlk *dcb);
323 static void waiting_timeout(struct timer_list *t);
324
325
326 /*---------------------------------------------------------------------------
327 Static Data
328 ---------------------------------------------------------------------------*/
329 static u16 current_sync_offset = 0;
330
331 static void *dc395x_scsi_phase0[] = {
332 data_out_phase0,/* phase:0 */
333 data_in_phase0, /* phase:1 */
334 command_phase0, /* phase:2 */
335 status_phase0, /* phase:3 */
336 nop0, /* phase:4 PH_BUS_FREE .. initial phase */
337 nop0, /* phase:5 PH_BUS_FREE .. initial phase */
338 msgout_phase0, /* phase:6 */
339 msgin_phase0, /* phase:7 */
340 };
341
342 static void *dc395x_scsi_phase1[] = {
343 data_out_phase1,/* phase:0 */
344 data_in_phase1, /* phase:1 */
345 command_phase1, /* phase:2 */
346 status_phase1, /* phase:3 */
347 nop1, /* phase:4 PH_BUS_FREE .. initial phase */
348 nop1, /* phase:5 PH_BUS_FREE .. initial phase */
349 msgout_phase1, /* phase:6 */
350 msgin_phase1, /* phase:7 */
351 };
352
353 /*
354 *Fast20: 000 50ns, 20.0 MHz
355 * 001 75ns, 13.3 MHz
356 * 010 100ns, 10.0 MHz
357 * 011 125ns, 8.0 MHz
358 * 100 150ns, 6.6 MHz
359 * 101 175ns, 5.7 MHz
360 * 110 200ns, 5.0 MHz
361 * 111 250ns, 4.0 MHz
362 *
363 *Fast40(LVDS): 000 25ns, 40.0 MHz
364 * 001 50ns, 20.0 MHz
365 * 010 75ns, 13.3 MHz
366 * 011 100ns, 10.0 MHz
367 * 100 125ns, 8.0 MHz
368 * 101 150ns, 6.6 MHz
369 * 110 175ns, 5.7 MHz
370 * 111 200ns, 5.0 MHz
371 */
372 /*static u8 clock_period[] = {12,19,25,31,37,44,50,62};*/
373
374 /* real period:48ns,76ns,100ns,124ns,148ns,176ns,200ns,248ns */
375 static u8 clock_period[] = { 12, 18, 25, 31, 37, 43, 50, 62 };
376
377
378 /*---------------------------------------------------------------------------
379 Configuration
380 ---------------------------------------------------------------------------*/
381 /*
382 * Module/boot parameters currently effect *all* instances of the
383 * card in the system.
384 */
385
386 /*
387 * Command line parameters are stored in a structure below.
388 * These are the index's into the structure for the various
389 * command line options.
390 */
391 #define CFG_ADAPTER_ID 0
392 #define CFG_MAX_SPEED 1
393 #define CFG_DEV_MODE 2
394 #define CFG_ADAPTER_MODE 3
395 #define CFG_TAGS 4
396 #define CFG_RESET_DELAY 5
397
398 #define CFG_NUM 6 /* number of configuration items */
399
400
401 /*
402 * Value used to indicate that a command line override
403 * hasn't been used to modify the value.
404 */
405 #define CFG_PARAM_UNSET -1
406
407
408 /*
409 * Hold command line parameters.
410 */
411 struct ParameterData {
412 int value; /* value of this setting */
413 int min; /* minimum value */
414 int max; /* maximum value */
415 int def; /* default value */
416 int safe; /* safe value */
417 };
418 static struct ParameterData cfg_data[] = {
419 { /* adapter id */
420 CFG_PARAM_UNSET,
421 0,
422 15,
423 7,
424 7
425 },
426 { /* max speed */
427 CFG_PARAM_UNSET,
428 0,
429 7,
430 1, /* 13.3Mhz */
431 4, /* 6.7Hmz */
432 },
433 { /* dev mode */
434 CFG_PARAM_UNSET,
435 0,
436 0x3f,
437 NTC_DO_PARITY_CHK | NTC_DO_DISCONNECT | NTC_DO_SYNC_NEGO |
438 NTC_DO_WIDE_NEGO | NTC_DO_TAG_QUEUEING |
439 NTC_DO_SEND_START,
440 NTC_DO_PARITY_CHK | NTC_DO_SEND_START
441 },
442 { /* adapter mode */
443 CFG_PARAM_UNSET,
444 0,
445 0x2f,
446 NAC_SCANLUN |
447 NAC_GT2DRIVES | NAC_GREATER_1G | NAC_POWERON_SCSI_RESET
448 /*| NAC_ACTIVE_NEG*/,
449 NAC_GT2DRIVES | NAC_GREATER_1G | NAC_POWERON_SCSI_RESET | 0x08
450 },
451 { /* tags */
452 CFG_PARAM_UNSET,
453 0,
454 5,
455 3, /* 16 tags (??) */
456 2,
457 },
458 { /* reset delay */
459 CFG_PARAM_UNSET,
460 0,
461 180,
462 1, /* 1 second */
463 10, /* 10 seconds */
464 }
465 };
466
467
468 /*
469 * Safe settings. If set to zero the BIOS/default values with
470 * command line overrides will be used. If set to 1 then safe and
471 * slow settings will be used.
472 */
473 static bool use_safe_settings = 0;
474 module_param_named(safe, use_safe_settings, bool, 0);
475 MODULE_PARM_DESC(safe, "Use safe and slow settings only. Default: false");
476
477
478 module_param_named(adapter_id, cfg_data[CFG_ADAPTER_ID].value, int, 0);
479 MODULE_PARM_DESC(adapter_id, "Adapter SCSI ID. Default 7 (0-15)");
480
481 module_param_named(max_speed, cfg_data[CFG_MAX_SPEED].value, int, 0);
482 MODULE_PARM_DESC(max_speed, "Maximum bus speed. Default 1 (0-7) Speeds: 0=20, 1=13.3, 2=10, 3=8, 4=6.7, 5=5.8, 6=5, 7=4 Mhz");
483
484 module_param_named(dev_mode, cfg_data[CFG_DEV_MODE].value, int, 0);
485 MODULE_PARM_DESC(dev_mode, "Device mode.");
486
487 module_param_named(adapter_mode, cfg_data[CFG_ADAPTER_MODE].value, int, 0);
488 MODULE_PARM_DESC(adapter_mode, "Adapter mode.");
489
490 module_param_named(tags, cfg_data[CFG_TAGS].value, int, 0);
491 MODULE_PARM_DESC(tags, "Number of tags (1<<x). Default 3 (0-5)");
492
493 module_param_named(reset_delay, cfg_data[CFG_RESET_DELAY].value, int, 0);
494 MODULE_PARM_DESC(reset_delay, "Reset delay in seconds. Default 1 (0-180)");
495
496
497 /**
498 * set_safe_settings - if the use_safe_settings option is set then
499 * set all values to the safe and slow values.
500 **/
set_safe_settings(void)501 static void set_safe_settings(void)
502 {
503 if (use_safe_settings)
504 {
505 int i;
506
507 for (i = 0; i < CFG_NUM; i++)
508 {
509 cfg_data[i].value = cfg_data[i].safe;
510 }
511 }
512 }
513
514
515 /**
516 * fix_settings - reset any boot parameters which are out of range
517 * back to the default values.
518 **/
fix_settings(void)519 static void fix_settings(void)
520 {
521 int i;
522
523 for (i = 0; i < CFG_NUM; i++)
524 {
525 if (cfg_data[i].value < cfg_data[i].min
526 || cfg_data[i].value > cfg_data[i].max)
527 cfg_data[i].value = cfg_data[i].def;
528 }
529 }
530
531
532
533 /*
534 * Mapping from the eeprom delay index value (index into this array)
535 * to the number of actual seconds that the delay should be for.
536 */
537 static char eeprom_index_to_delay_map[] =
538 { 1, 3, 5, 10, 16, 30, 60, 120 };
539
540
541 /**
542 * eeprom_index_to_delay - Take the eeprom delay setting and convert it
543 * into a number of seconds.
544 *
545 * @eeprom: The eeprom structure in which we find the delay index to map.
546 **/
eeprom_index_to_delay(struct NvRamType * eeprom)547 static void eeprom_index_to_delay(struct NvRamType *eeprom)
548 {
549 eeprom->delay_time = eeprom_index_to_delay_map[eeprom->delay_time];
550 }
551
552
553 /**
554 * delay_to_eeprom_index - Take a delay in seconds and return the
555 * closest eeprom index which will delay for at least that amount of
556 * seconds.
557 *
558 * @delay: The delay, in seconds, to find the eeprom index for.
559 **/
delay_to_eeprom_index(int delay)560 static int delay_to_eeprom_index(int delay)
561 {
562 u8 idx = 0;
563 while (idx < 7 && eeprom_index_to_delay_map[idx] < delay)
564 idx++;
565 return idx;
566 }
567
568
569 /**
570 * eeprom_override - Override the eeprom settings, in the provided
571 * eeprom structure, with values that have been set on the command
572 * line.
573 *
574 * @eeprom: The eeprom data to override with command line options.
575 **/
eeprom_override(struct NvRamType * eeprom)576 static void eeprom_override(struct NvRamType *eeprom)
577 {
578 u8 id;
579
580 /* Adapter Settings */
581 if (cfg_data[CFG_ADAPTER_ID].value != CFG_PARAM_UNSET)
582 eeprom->scsi_id = (u8)cfg_data[CFG_ADAPTER_ID].value;
583
584 if (cfg_data[CFG_ADAPTER_MODE].value != CFG_PARAM_UNSET)
585 eeprom->channel_cfg = (u8)cfg_data[CFG_ADAPTER_MODE].value;
586
587 if (cfg_data[CFG_RESET_DELAY].value != CFG_PARAM_UNSET)
588 eeprom->delay_time = delay_to_eeprom_index(
589 cfg_data[CFG_RESET_DELAY].value);
590
591 if (cfg_data[CFG_TAGS].value != CFG_PARAM_UNSET)
592 eeprom->max_tag = (u8)cfg_data[CFG_TAGS].value;
593
594 /* Device Settings */
595 for (id = 0; id < DC395x_MAX_SCSI_ID; id++) {
596 if (cfg_data[CFG_DEV_MODE].value != CFG_PARAM_UNSET)
597 eeprom->target[id].cfg0 =
598 (u8)cfg_data[CFG_DEV_MODE].value;
599
600 if (cfg_data[CFG_MAX_SPEED].value != CFG_PARAM_UNSET)
601 eeprom->target[id].period =
602 (u8)cfg_data[CFG_MAX_SPEED].value;
603
604 }
605 }
606
607
608 /*---------------------------------------------------------------------------
609 ---------------------------------------------------------------------------*/
610
list_size(struct list_head * head)611 static unsigned int list_size(struct list_head *head)
612 {
613 unsigned int count = 0;
614 struct list_head *pos;
615 list_for_each(pos, head)
616 count++;
617 return count;
618 }
619
620
dcb_get_next(struct list_head * head,struct DeviceCtlBlk * pos)621 static struct DeviceCtlBlk *dcb_get_next(struct list_head *head,
622 struct DeviceCtlBlk *pos)
623 {
624 int use_next = 0;
625 struct DeviceCtlBlk* next = NULL;
626 struct DeviceCtlBlk* i;
627
628 if (list_empty(head))
629 return NULL;
630
631 /* find supplied dcb and then select the next one */
632 list_for_each_entry(i, head, list)
633 if (use_next) {
634 next = i;
635 break;
636 } else if (i == pos) {
637 use_next = 1;
638 }
639 /* if no next one take the head one (ie, wraparound) */
640 if (!next)
641 list_for_each_entry(i, head, list) {
642 next = i;
643 break;
644 }
645
646 return next;
647 }
648
649
free_tag(struct DeviceCtlBlk * dcb,struct ScsiReqBlk * srb)650 static void free_tag(struct DeviceCtlBlk *dcb, struct ScsiReqBlk *srb)
651 {
652 if (srb->tag_number < 255) {
653 dcb->tag_mask &= ~(1 << srb->tag_number); /* free tag mask */
654 srb->tag_number = 255;
655 }
656 }
657
658
659 /* Find cmd in SRB list */
find_cmd(struct scsi_cmnd * cmd,struct list_head * head)660 static inline struct ScsiReqBlk *find_cmd(struct scsi_cmnd *cmd,
661 struct list_head *head)
662 {
663 struct ScsiReqBlk *i;
664 list_for_each_entry(i, head, list)
665 if (i->cmd == cmd)
666 return i;
667 return NULL;
668 }
669
670 /* Sets the timer to wake us up */
waiting_set_timer(struct AdapterCtlBlk * acb,unsigned long to)671 static void waiting_set_timer(struct AdapterCtlBlk *acb, unsigned long to)
672 {
673 if (timer_pending(&acb->waiting_timer))
674 return;
675 if (time_before(jiffies + to, acb->last_reset - HZ / 2))
676 acb->waiting_timer.expires =
677 acb->last_reset - HZ / 2 + 1;
678 else
679 acb->waiting_timer.expires = jiffies + to + 1;
680 add_timer(&acb->waiting_timer);
681 }
682
683
684 /* Send the next command from the waiting list to the bus */
waiting_process_next(struct AdapterCtlBlk * acb)685 static void waiting_process_next(struct AdapterCtlBlk *acb)
686 {
687 struct DeviceCtlBlk *start = NULL;
688 struct DeviceCtlBlk *pos;
689 struct DeviceCtlBlk *dcb;
690 struct ScsiReqBlk *srb;
691 struct list_head *dcb_list_head = &acb->dcb_list;
692
693 if (acb->active_dcb
694 || (acb->acb_flag & (RESET_DETECT + RESET_DONE + RESET_DEV)))
695 return;
696
697 if (timer_pending(&acb->waiting_timer))
698 timer_delete(&acb->waiting_timer);
699
700 if (list_empty(dcb_list_head))
701 return;
702
703 /*
704 * Find the starting dcb. Need to find it again in the list
705 * since the list may have changed since we set the ptr to it
706 */
707 list_for_each_entry(dcb, dcb_list_head, list)
708 if (dcb == acb->dcb_run_robin) {
709 start = dcb;
710 break;
711 }
712 if (!start) {
713 /* This can happen! */
714 start = list_entry(dcb_list_head->next, typeof(*start), list);
715 acb->dcb_run_robin = start;
716 }
717
718
719 /*
720 * Loop over the dcb, but we start somewhere (potentially) in
721 * the middle of the loop so we need to manully do this.
722 */
723 pos = start;
724 do {
725 struct list_head *waiting_list_head = &pos->srb_waiting_list;
726
727 /* Make sure, the next another device gets scheduled ... */
728 acb->dcb_run_robin = dcb_get_next(dcb_list_head,
729 acb->dcb_run_robin);
730
731 if (list_empty(waiting_list_head) ||
732 pos->max_command <= list_size(&pos->srb_going_list)) {
733 /* move to next dcb */
734 pos = dcb_get_next(dcb_list_head, pos);
735 } else {
736 srb = list_entry(waiting_list_head->next,
737 struct ScsiReqBlk, list);
738
739 /* Try to send to the bus */
740 if (!start_scsi(acb, pos, srb))
741 list_move(&srb->list, &pos->srb_going_list);
742 else
743 waiting_set_timer(acb, HZ/50);
744 break;
745 }
746 } while (pos != start);
747 }
748
749
750 /* Wake up waiting queue */
waiting_timeout(struct timer_list * t)751 static void waiting_timeout(struct timer_list *t)
752 {
753 unsigned long flags;
754 struct AdapterCtlBlk *acb = timer_container_of(acb, t, waiting_timer);
755 DC395x_LOCK_IO(acb->scsi_host, flags);
756 waiting_process_next(acb);
757 DC395x_UNLOCK_IO(acb->scsi_host, flags);
758 }
759
760
761 /* Get the DCB for a given ID/LUN combination */
find_dcb(struct AdapterCtlBlk * acb,u8 id,u8 lun)762 static struct DeviceCtlBlk *find_dcb(struct AdapterCtlBlk *acb, u8 id, u8 lun)
763 {
764 return acb->children[id][lun];
765 }
766
767
768 /* Send SCSI Request Block (srb) to adapter (acb) */
send_srb(struct AdapterCtlBlk * acb,struct ScsiReqBlk * srb)769 static void send_srb(struct AdapterCtlBlk *acb, struct ScsiReqBlk *srb)
770 {
771 struct DeviceCtlBlk *dcb = srb->dcb;
772
773 if (dcb->max_command <= list_size(&dcb->srb_going_list) ||
774 acb->active_dcb ||
775 (acb->acb_flag & (RESET_DETECT + RESET_DONE + RESET_DEV))) {
776 list_add_tail(&srb->list, &dcb->srb_waiting_list);
777 waiting_process_next(acb);
778 return;
779 }
780
781 if (!start_scsi(acb, dcb, srb)) {
782 list_add_tail(&srb->list, &dcb->srb_going_list);
783 } else {
784 list_add(&srb->list, &dcb->srb_waiting_list);
785 waiting_set_timer(acb, HZ / 50);
786 }
787 }
788
789 /* Prepare SRB for being sent to Device DCB w/ command *cmd */
build_srb(struct scsi_cmnd * cmd,struct DeviceCtlBlk * dcb,struct ScsiReqBlk * srb)790 static void build_srb(struct scsi_cmnd *cmd, struct DeviceCtlBlk *dcb,
791 struct ScsiReqBlk *srb)
792 {
793 int nseg;
794 enum dma_data_direction dir = cmd->sc_data_direction;
795
796 srb->dcb = dcb;
797 srb->cmd = cmd;
798 srb->sg_count = 0;
799 srb->total_xfer_length = 0;
800 srb->sg_bus_addr = 0;
801 srb->sg_index = 0;
802 srb->adapter_status = 0;
803 srb->target_status = 0;
804 srb->msg_count = 0;
805 srb->status = 0;
806 srb->flag = 0;
807 srb->state = 0;
808 srb->retry_count = 0;
809 srb->tag_number = TAG_NONE;
810 srb->scsi_phase = PH_BUS_FREE; /* initial phase */
811 srb->end_message = 0;
812
813 nseg = scsi_dma_map(cmd);
814 BUG_ON(nseg < 0);
815
816 if (!(dir == DMA_NONE || !nseg)) {
817 int i;
818 u32 reqlen = scsi_bufflen(cmd);
819 struct scatterlist *sg;
820 struct SGentry *sgp = srb->segment_x;
821
822 srb->sg_count = nseg;
823
824 scsi_for_each_sg(cmd, sg, srb->sg_count, i) {
825 u32 busaddr = (u32)sg_dma_address(sg);
826 u32 seglen = (u32)sg->length;
827 sgp[i].address = busaddr;
828 sgp[i].length = seglen;
829 srb->total_xfer_length += seglen;
830 }
831 sgp += srb->sg_count - 1;
832
833 /*
834 * adjust last page if too big as it is allocated
835 * on even page boundaries
836 */
837 if (srb->total_xfer_length > reqlen) {
838 sgp->length -= (srb->total_xfer_length - reqlen);
839 srb->total_xfer_length = reqlen;
840 }
841
842 /* Fixup for WIDE padding - make sure length is even */
843 if (dcb->sync_period & WIDE_SYNC &&
844 srb->total_xfer_length % 2) {
845 srb->total_xfer_length++;
846 sgp->length++;
847 }
848
849 srb->sg_bus_addr = dma_map_single(&dcb->acb->dev->dev,
850 srb->segment_x, SEGMENTX_LEN, DMA_TO_DEVICE);
851
852 }
853
854 srb->request_length = srb->total_xfer_length;
855 }
856
857
858 /**
859 * dc395x_queue_command_lck - queue scsi command passed from the mid
860 * layer, invoke 'done' on completion
861 *
862 * @cmd: pointer to scsi command object
863 *
864 * Returns 1 if the adapter (host) is busy, else returns 0. One
865 * reason for an adapter to be busy is that the number
866 * of outstanding queued commands is already equal to
867 * struct Scsi_Host::can_queue .
868 *
869 * Required: if struct Scsi_Host::can_queue is ever non-zero
870 * then this function is required.
871 *
872 * Locks: struct Scsi_Host::host_lock held on entry (with "irqsave")
873 * and is expected to be held on return.
874 *
875 */
dc395x_queue_command_lck(struct scsi_cmnd * cmd)876 static int dc395x_queue_command_lck(struct scsi_cmnd *cmd)
877 {
878 void (*done)(struct scsi_cmnd *) = scsi_done;
879 struct DeviceCtlBlk *dcb;
880 struct ScsiReqBlk *srb;
881 struct AdapterCtlBlk *acb =
882 (struct AdapterCtlBlk *)cmd->device->host->hostdata;
883
884 /* Assume BAD_TARGET; will be cleared later */
885 set_host_byte(cmd, DID_BAD_TARGET);
886
887 /* ignore invalid targets */
888 if (cmd->device->id >= acb->scsi_host->max_id ||
889 cmd->device->lun >= acb->scsi_host->max_lun ||
890 cmd->device->lun > 31)
891 goto complete;
892
893 /* does the specified lun on the specified device exist */
894 if (!(acb->dcb_map[cmd->device->id] & (1 << cmd->device->lun)))
895 goto complete;
896
897 /* do we have a DCB for the device */
898 dcb = find_dcb(acb, cmd->device->id, cmd->device->lun);
899 if (!dcb)
900 goto complete;
901
902 set_host_byte(cmd, DID_OK);
903 set_status_byte(cmd, SAM_STAT_GOOD);
904
905 srb = list_first_entry_or_null(&acb->srb_free_list,
906 struct ScsiReqBlk, list);
907
908 if (!srb) {
909 /* should never happen */
910 return 1;
911 }
912 list_del(&srb->list);
913
914 build_srb(cmd, dcb, srb);
915
916 if (!list_empty(&dcb->srb_waiting_list)) {
917 /* append to waiting queue */
918 list_add_tail(&srb->list, &dcb->srb_waiting_list);
919 waiting_process_next(acb);
920 } else {
921 /* process immediately */
922 send_srb(acb, srb);
923 }
924 return 0;
925
926 complete:
927 /*
928 * Complete the command immediatey, and then return 0 to
929 * indicate that we have handled the command. This is usually
930 * done when the commad is for things like non existent
931 * devices.
932 */
933 done(cmd);
934 return 0;
935 }
936
DEF_SCSI_QCMD(dc395x_queue_command)937 static DEF_SCSI_QCMD(dc395x_queue_command)
938
939 static inline void clear_fifo(struct AdapterCtlBlk *acb, char *txt)
940 {
941 DC395x_write16(acb, TRM_S1040_SCSI_CONTROL, DO_CLRFIFO);
942 }
943
944
reset_dev_param(struct AdapterCtlBlk * acb)945 static void reset_dev_param(struct AdapterCtlBlk *acb)
946 {
947 struct DeviceCtlBlk *dcb;
948 struct NvRamType *eeprom = &acb->eeprom;
949
950 list_for_each_entry(dcb, &acb->dcb_list, list) {
951 u8 period_index;
952
953 dcb->sync_mode &= ~(SYNC_NEGO_DONE + WIDE_NEGO_DONE);
954 dcb->sync_period = 0;
955 dcb->sync_offset = 0;
956
957 dcb->dev_mode = eeprom->target[dcb->target_id].cfg0;
958 period_index = eeprom->target[dcb->target_id].period & 0x07;
959 dcb->min_nego_period = clock_period[period_index];
960 if (!(dcb->dev_mode & NTC_DO_WIDE_NEGO)
961 || !(acb->config & HCC_WIDE_CARD))
962 dcb->sync_mode &= ~WIDE_NEGO_ENABLE;
963 }
964 }
965
966
967 /*
968 * perform a hard reset on the SCSI bus
969 * @cmd - some command for this host (for fetching hooks)
970 * Returns: SUCCESS (0x2002) on success, else FAILED (0x2003).
971 */
__dc395x_eh_bus_reset(struct scsi_cmnd * cmd)972 static int __dc395x_eh_bus_reset(struct scsi_cmnd *cmd)
973 {
974 struct AdapterCtlBlk *acb =
975 (struct AdapterCtlBlk *)cmd->device->host->hostdata;
976
977 if (timer_pending(&acb->waiting_timer))
978 timer_delete(&acb->waiting_timer);
979
980 /*
981 * disable interrupt
982 */
983 DC395x_write8(acb, TRM_S1040_DMA_INTEN, 0x00);
984 DC395x_write8(acb, TRM_S1040_SCSI_INTEN, 0x00);
985 DC395x_write8(acb, TRM_S1040_SCSI_CONTROL, DO_RSTMODULE);
986 DC395x_write8(acb, TRM_S1040_DMA_CONTROL, DMARESETMODULE);
987
988 reset_scsi_bus(acb);
989 udelay(500);
990
991 /* We may be in serious trouble. Wait some seconds */
992 acb->last_reset =
993 jiffies + 3 * HZ / 2 +
994 HZ * acb->eeprom.delay_time;
995
996 /*
997 * re-enable interrupt
998 */
999 /* Clear SCSI FIFO */
1000 DC395x_write8(acb, TRM_S1040_DMA_CONTROL, CLRXFIFO);
1001 clear_fifo(acb, "eh_bus_reset");
1002 /* Delete pending IRQ */
1003 DC395x_read8(acb, TRM_S1040_SCSI_INTSTATUS);
1004 set_basic_config(acb);
1005
1006 reset_dev_param(acb);
1007 doing_srb_done(acb, DID_RESET, cmd, 0);
1008 acb->active_dcb = NULL;
1009 acb->acb_flag = 0; /* RESET_DETECT, RESET_DONE ,RESET_DEV */
1010 waiting_process_next(acb);
1011
1012 return SUCCESS;
1013 }
1014
dc395x_eh_bus_reset(struct scsi_cmnd * cmd)1015 static int dc395x_eh_bus_reset(struct scsi_cmnd *cmd)
1016 {
1017 int rc;
1018
1019 spin_lock_irq(cmd->device->host->host_lock);
1020 rc = __dc395x_eh_bus_reset(cmd);
1021 spin_unlock_irq(cmd->device->host->host_lock);
1022
1023 return rc;
1024 }
1025
1026 /*
1027 * abort an errant SCSI command
1028 * @cmd - command to be aborted
1029 * Returns: SUCCESS (0x2002) on success, else FAILED (0x2003).
1030 */
dc395x_eh_abort(struct scsi_cmnd * cmd)1031 static int dc395x_eh_abort(struct scsi_cmnd *cmd)
1032 {
1033 /*
1034 * Look into our command queues: If it has not been sent already,
1035 * we remove it and return success. Otherwise fail.
1036 */
1037 struct AdapterCtlBlk *acb =
1038 (struct AdapterCtlBlk *)cmd->device->host->hostdata;
1039 struct DeviceCtlBlk *dcb;
1040 struct ScsiReqBlk *srb;
1041
1042 dcb = find_dcb(acb, cmd->device->id, cmd->device->lun);
1043 if (!dcb)
1044 return FAILED;
1045
1046 srb = find_cmd(cmd, &dcb->srb_waiting_list);
1047 if (srb) {
1048 list_del(&srb->list);
1049 pci_unmap_srb_sense(acb, srb);
1050 pci_unmap_srb(acb, srb);
1051 free_tag(dcb, srb);
1052 list_add_tail(&srb->list, &acb->srb_free_list);
1053 set_host_byte(cmd, DID_ABORT);
1054 return SUCCESS;
1055 }
1056 srb = find_cmd(cmd, &dcb->srb_going_list);
1057 if (srb) {
1058 /* XXX: Should abort the command here */
1059 }
1060 return FAILED;
1061 }
1062
1063
1064 /* SDTR */
build_sdtr(struct AdapterCtlBlk * acb,struct DeviceCtlBlk * dcb,struct ScsiReqBlk * srb)1065 static void build_sdtr(struct AdapterCtlBlk *acb, struct DeviceCtlBlk *dcb,
1066 struct ScsiReqBlk *srb)
1067 {
1068 u8 *ptr = srb->msgout_buf + srb->msg_count;
1069 if (srb->msg_count > 1) {
1070 return;
1071 }
1072 if (!(dcb->dev_mode & NTC_DO_SYNC_NEGO)) {
1073 dcb->sync_offset = 0;
1074 dcb->min_nego_period = 200 >> 2;
1075 } else if (dcb->sync_offset == 0)
1076 dcb->sync_offset = SYNC_NEGO_OFFSET;
1077
1078 srb->msg_count += spi_populate_sync_msg(ptr, dcb->min_nego_period,
1079 dcb->sync_offset);
1080 srb->state |= SRB_DO_SYNC_NEGO;
1081 }
1082
1083
1084 /* WDTR */
build_wdtr(struct AdapterCtlBlk * acb,struct DeviceCtlBlk * dcb,struct ScsiReqBlk * srb)1085 static void build_wdtr(struct AdapterCtlBlk *acb, struct DeviceCtlBlk *dcb,
1086 struct ScsiReqBlk *srb)
1087 {
1088 u8 wide = ((dcb->dev_mode & NTC_DO_WIDE_NEGO) &
1089 (acb->config & HCC_WIDE_CARD)) ? 1 : 0;
1090 u8 *ptr = srb->msgout_buf + srb->msg_count;
1091 if (srb->msg_count > 1)
1092 return;
1093
1094 srb->msg_count += spi_populate_width_msg(ptr, wide);
1095 srb->state |= SRB_DO_WIDE_NEGO;
1096 }
1097
1098
1099 #if 0
1100 /* Timer to work around chip flaw: When selecting and the bus is
1101 * busy, we sometimes miss a Selection timeout IRQ */
1102 void selection_timeout_missed(unsigned long ptr);
1103 /* Sets the timer to wake us up */
1104 static void selto_timer(struct AdapterCtlBlk *acb)
1105 {
1106 if (timer_pending(&acb->selto_timer))
1107 return;
1108 acb->selto_timer.function = selection_timeout_missed;
1109 acb->selto_timer.data = (unsigned long) acb;
1110 if (time_before
1111 (jiffies + HZ, acb->last_reset + HZ / 2))
1112 acb->selto_timer.expires =
1113 acb->last_reset + HZ / 2 + 1;
1114 else
1115 acb->selto_timer.expires = jiffies + HZ + 1;
1116 add_timer(&acb->selto_timer);
1117 }
1118
1119
1120 void selection_timeout_missed(unsigned long ptr)
1121 {
1122 unsigned long flags;
1123 struct AdapterCtlBlk *acb = (struct AdapterCtlBlk *)ptr;
1124 struct ScsiReqBlk *srb;
1125 if (!acb->active_dcb || !acb->active_dcb->active_srb)
1126 return;
1127
1128 DC395x_LOCK_IO(acb->scsi_host, flags);
1129 srb = acb->active_dcb->active_srb;
1130 disconnect(acb);
1131 DC395x_UNLOCK_IO(acb->scsi_host, flags);
1132 }
1133 #endif
1134
1135
start_scsi(struct AdapterCtlBlk * acb,struct DeviceCtlBlk * dcb,struct ScsiReqBlk * srb)1136 static u8 start_scsi(struct AdapterCtlBlk* acb, struct DeviceCtlBlk* dcb,
1137 struct ScsiReqBlk* srb)
1138 {
1139 u16 __maybe_unused s_stat2, return_code;
1140 u8 s_stat, scsicommand, i, identify_message;
1141 u8 *ptr;
1142
1143 srb->tag_number = TAG_NONE; /* acb->tag_max_num: had error read in eeprom */
1144
1145 s_stat = DC395x_read8(acb, TRM_S1040_SCSI_SIGNAL);
1146 s_stat2 = 0;
1147 s_stat2 = DC395x_read16(acb, TRM_S1040_SCSI_STATUS);
1148 #if 1
1149 if (s_stat & 0x20 /* s_stat2 & 0x02000 */ ) {
1150 /*
1151 * Try anyway?
1152 *
1153 * We could, BUT: Sometimes the TRM_S1040 misses to produce a Selection
1154 * Timeout, a Disconnect or a Reselection IRQ, so we would be screwed!
1155 * (This is likely to be a bug in the hardware. Obviously, most people
1156 * only have one initiator per SCSI bus.)
1157 * Instead let this fail and have the timer make sure the command is
1158 * tried again after a short time
1159 */
1160 /*selto_timer (acb); */
1161 return 1;
1162 }
1163 #endif
1164 if (acb->active_dcb)
1165 return 1;
1166
1167 if (DC395x_read16(acb, TRM_S1040_SCSI_STATUS) & SCSIINTERRUPT)
1168 return 1;
1169
1170 /* Allow starting of SCSI commands half a second before we allow the mid-level
1171 * to queue them again after a reset */
1172 if (time_before(jiffies, acb->last_reset - HZ / 2))
1173 return 1;
1174
1175 /* Flush FIFO */
1176 clear_fifo(acb, "start_scsi");
1177 DC395x_write8(acb, TRM_S1040_SCSI_HOSTID, acb->scsi_host->this_id);
1178 DC395x_write8(acb, TRM_S1040_SCSI_TARGETID, dcb->target_id);
1179 DC395x_write8(acb, TRM_S1040_SCSI_SYNC, dcb->sync_period);
1180 DC395x_write8(acb, TRM_S1040_SCSI_OFFSET, dcb->sync_offset);
1181 srb->scsi_phase = PH_BUS_FREE; /* initial phase */
1182
1183 identify_message = dcb->identify_msg;
1184 /*DC395x_TRM_write8(TRM_S1040_SCSI_IDMSG, identify_message); */
1185 /* Don't allow disconnection for AUTO_REQSENSE: Cont.All.Cond.! */
1186 if (srb->flag & AUTO_REQSENSE)
1187 identify_message &= 0xBF;
1188
1189 if (((srb->cmd->cmnd[0] == INQUIRY)
1190 || (srb->cmd->cmnd[0] == REQUEST_SENSE)
1191 || (srb->flag & AUTO_REQSENSE))
1192 && (((dcb->sync_mode & WIDE_NEGO_ENABLE)
1193 && !(dcb->sync_mode & WIDE_NEGO_DONE))
1194 || ((dcb->sync_mode & SYNC_NEGO_ENABLE)
1195 && !(dcb->sync_mode & SYNC_NEGO_DONE)))
1196 && (dcb->target_lun == 0)) {
1197 srb->msgout_buf[0] = identify_message;
1198 srb->msg_count = 1;
1199 scsicommand = SCMD_SEL_ATNSTOP;
1200 srb->state = SRB_MSGOUT;
1201 #ifndef SYNC_FIRST
1202 if (dcb->sync_mode & WIDE_NEGO_ENABLE
1203 && dcb->inquiry7 & SCSI_INQ_WBUS16) {
1204 build_wdtr(acb, dcb, srb);
1205 goto no_cmd;
1206 }
1207 #endif
1208 if (dcb->sync_mode & SYNC_NEGO_ENABLE
1209 && dcb->inquiry7 & SCSI_INQ_SYNC) {
1210 build_sdtr(acb, dcb, srb);
1211 goto no_cmd;
1212 }
1213 if (dcb->sync_mode & WIDE_NEGO_ENABLE
1214 && dcb->inquiry7 & SCSI_INQ_WBUS16) {
1215 build_wdtr(acb, dcb, srb);
1216 goto no_cmd;
1217 }
1218 srb->msg_count = 0;
1219 }
1220 /* Send identify message */
1221 DC395x_write8(acb, TRM_S1040_SCSI_FIFO, identify_message);
1222
1223 scsicommand = SCMD_SEL_ATN;
1224 srb->state = SRB_START_;
1225 #ifndef DC395x_NO_TAGQ
1226 if ((dcb->sync_mode & EN_TAG_QUEUEING)
1227 && (identify_message & 0xC0)) {
1228 /* Send Tag message */
1229 u32 tag_mask = 1;
1230 u8 tag_number = 0;
1231 while (tag_mask & dcb->tag_mask
1232 && tag_number < dcb->max_command) {
1233 tag_mask = tag_mask << 1;
1234 tag_number++;
1235 }
1236 if (tag_number >= dcb->max_command) {
1237 srb->state = SRB_READY;
1238 DC395x_write16(acb, TRM_S1040_SCSI_CONTROL,
1239 DO_HWRESELECT);
1240 return 1;
1241 }
1242 /* Send Tag id */
1243 DC395x_write8(acb, TRM_S1040_SCSI_FIFO, SIMPLE_QUEUE_TAG);
1244 DC395x_write8(acb, TRM_S1040_SCSI_FIFO, tag_number);
1245 dcb->tag_mask |= tag_mask;
1246 srb->tag_number = tag_number;
1247 scsicommand = SCMD_SEL_ATN3;
1248 srb->state = SRB_START_;
1249 }
1250 #endif
1251 /*polling:*/
1252 /* Send CDB ..command block ......... */
1253 if (srb->flag & AUTO_REQSENSE) {
1254 DC395x_write8(acb, TRM_S1040_SCSI_FIFO, REQUEST_SENSE);
1255 DC395x_write8(acb, TRM_S1040_SCSI_FIFO, (dcb->target_lun << 5));
1256 DC395x_write8(acb, TRM_S1040_SCSI_FIFO, 0);
1257 DC395x_write8(acb, TRM_S1040_SCSI_FIFO, 0);
1258 DC395x_write8(acb, TRM_S1040_SCSI_FIFO, SCSI_SENSE_BUFFERSIZE);
1259 DC395x_write8(acb, TRM_S1040_SCSI_FIFO, 0);
1260 } else {
1261 ptr = (u8 *)srb->cmd->cmnd;
1262 for (i = 0; i < srb->cmd->cmd_len; i++)
1263 DC395x_write8(acb, TRM_S1040_SCSI_FIFO, *ptr++);
1264 }
1265 no_cmd:
1266 DC395x_write16(acb, TRM_S1040_SCSI_CONTROL,
1267 DO_HWRESELECT | DO_DATALATCH);
1268 if (DC395x_read16(acb, TRM_S1040_SCSI_STATUS) & SCSIINTERRUPT) {
1269 /*
1270 * If start_scsi return 1:
1271 * we caught an interrupt (must be reset or reselection ... )
1272 * : Let's process it first!
1273 */
1274 srb->state = SRB_READY;
1275 free_tag(dcb, srb);
1276 srb->msg_count = 0;
1277 return_code = 1;
1278 /* This IRQ should NOT get lost, as we did not acknowledge it */
1279 } else {
1280 /*
1281 * If start_scsi returns 0:
1282 * we know that the SCSI processor is free
1283 */
1284 srb->scsi_phase = PH_BUS_FREE; /* initial phase */
1285 dcb->active_srb = srb;
1286 acb->active_dcb = dcb;
1287 return_code = 0;
1288 /* it's important for atn stop */
1289 DC395x_write16(acb, TRM_S1040_SCSI_CONTROL,
1290 DO_DATALATCH | DO_HWRESELECT);
1291 /* SCSI command */
1292 DC395x_write8(acb, TRM_S1040_SCSI_COMMAND, scsicommand);
1293 }
1294 return return_code;
1295 }
1296
1297
1298 #define DC395x_ENABLE_MSGOUT \
1299 DC395x_write16 (acb, TRM_S1040_SCSI_CONTROL, DO_SETATN); \
1300 srb->state |= SRB_MSGOUT
1301
1302
1303 /* abort command */
enable_msgout_abort(struct AdapterCtlBlk * acb,struct ScsiReqBlk * srb)1304 static inline void enable_msgout_abort(struct AdapterCtlBlk *acb,
1305 struct ScsiReqBlk *srb)
1306 {
1307 srb->msgout_buf[0] = ABORT;
1308 srb->msg_count = 1;
1309 DC395x_ENABLE_MSGOUT;
1310 srb->state &= ~SRB_MSGIN;
1311 srb->state |= SRB_MSGOUT;
1312 }
1313
1314
1315 /**
1316 * dc395x_handle_interrupt - Handle an interrupt that has been confirmed to
1317 * have been triggered for this card.
1318 *
1319 * @acb: a pointer to the adpter control block
1320 * @scsi_status: the status return when we checked the card
1321 **/
dc395x_handle_interrupt(struct AdapterCtlBlk * acb,u16 scsi_status)1322 static void dc395x_handle_interrupt(struct AdapterCtlBlk *acb,
1323 u16 scsi_status)
1324 {
1325 struct DeviceCtlBlk *dcb;
1326 struct ScsiReqBlk *srb;
1327 u16 phase;
1328 u8 scsi_intstatus;
1329 unsigned long flags;
1330 void (*dc395x_statev)(struct AdapterCtlBlk *, struct ScsiReqBlk *,
1331 u16 *);
1332
1333 DC395x_LOCK_IO(acb->scsi_host, flags);
1334
1335 /* This acknowledges the IRQ */
1336 scsi_intstatus = DC395x_read8(acb, TRM_S1040_SCSI_INTSTATUS);
1337
1338 if (timer_pending(&acb->selto_timer))
1339 timer_delete(&acb->selto_timer);
1340
1341 if (scsi_intstatus & (INT_SELTIMEOUT | INT_DISCONNECT)) {
1342 disconnect(acb); /* bus free interrupt */
1343 goto out_unlock;
1344 }
1345 if (scsi_intstatus & INT_RESELECTED) {
1346 reselect(acb);
1347 goto out_unlock;
1348 }
1349 if (scsi_intstatus & INT_SELECT)
1350 goto out_unlock;
1351
1352 if (scsi_intstatus & INT_SCSIRESET) {
1353 scsi_reset_detect(acb);
1354 goto out_unlock;
1355 }
1356 if (scsi_intstatus & (INT_BUSSERVICE | INT_CMDDONE)) {
1357 dcb = acb->active_dcb;
1358 if (!dcb)
1359 goto out_unlock;
1360
1361 srb = dcb->active_srb;
1362 if (dcb->flag & ABORT_DEV_)
1363 enable_msgout_abort(acb, srb);
1364
1365 /* software sequential machine */
1366 phase = (u16)srb->scsi_phase;
1367
1368 /*
1369 * 62037 or 62137
1370 * call dc395x_scsi_phase0[]... "phase entry"
1371 * handle every phase before start transfer
1372 */
1373 /* data_out_phase0, phase:0 */
1374 /* data_in_phase0, phase:1 */
1375 /* command_phase0, phase:2 */
1376 /* status_phase0, phase:3 */
1377 /* nop0, phase:4 PH_BUS_FREE .. initial phase */
1378 /* nop0, phase:5 PH_BUS_FREE .. initial phase */
1379 /* msgout_phase0, phase:6 */
1380 /* msgin_phase0, phase:7 */
1381 dc395x_statev = dc395x_scsi_phase0[phase];
1382 dc395x_statev(acb, srb, &scsi_status);
1383
1384 /*
1385 * if there were any exception occurred scsi_status
1386 * will be modify to bus free phase new scsi_status
1387 * transfer out from ... previous dc395x_statev
1388 */
1389 srb->scsi_phase = scsi_status & PHASEMASK;
1390 phase = (u16)scsi_status & PHASEMASK;
1391
1392 /*
1393 * call dc395x_scsi_phase1[]... "phase entry" handle
1394 * every phase to do transfer
1395 */
1396 /* data_out_phase1, phase:0 */
1397 /* data_in_phase1, phase:1 */
1398 /* command_phase1, phase:2 */
1399 /* status_phase1, phase:3 */
1400 /* nop1, phase:4 PH_BUS_FREE .. initial phase */
1401 /* nop1, phase:5 PH_BUS_FREE .. initial phase */
1402 /* msgout_phase1, phase:6 */
1403 /* msgin_phase1, phase:7 */
1404 dc395x_statev = dc395x_scsi_phase1[phase];
1405 dc395x_statev(acb, srb, &scsi_status);
1406 }
1407 out_unlock:
1408 DC395x_UNLOCK_IO(acb->scsi_host, flags);
1409 }
1410
1411
dc395x_interrupt(int irq,void * dev_id)1412 static irqreturn_t dc395x_interrupt(int irq, void *dev_id)
1413 {
1414 struct AdapterCtlBlk *acb = dev_id;
1415 u16 scsi_status;
1416 u8 dma_status;
1417 irqreturn_t handled = IRQ_NONE;
1418
1419 /*
1420 * Check for pending interrupt
1421 */
1422 scsi_status = DC395x_read16(acb, TRM_S1040_SCSI_STATUS);
1423 dma_status = DC395x_read8(acb, TRM_S1040_DMA_STATUS);
1424 if (scsi_status & SCSIINTERRUPT) {
1425 /* interrupt pending - let's process it! */
1426 dc395x_handle_interrupt(acb, scsi_status);
1427 handled = IRQ_HANDLED;
1428 }
1429 else if (dma_status & 0x20) {
1430 /* Error from the DMA engine */
1431 #if 0
1432 if (acb->active_dcb) {
1433 acb->active_dcb-> flag |= ABORT_DEV_;
1434 if (acb->active_dcb->active_srb)
1435 enable_msgout_abort(acb, acb->active_dcb->active_srb);
1436 }
1437 DC395x_write8(acb, TRM_S1040_DMA_CONTROL, ABORTXFER | CLRXFIFO);
1438 #else
1439 acb = NULL;
1440 #endif
1441 handled = IRQ_HANDLED;
1442 }
1443
1444 return handled;
1445 }
1446
1447
msgout_phase0(struct AdapterCtlBlk * acb,struct ScsiReqBlk * srb,u16 * pscsi_status)1448 static void msgout_phase0(struct AdapterCtlBlk *acb, struct ScsiReqBlk *srb,
1449 u16 *pscsi_status)
1450 {
1451 if (srb->state & (SRB_UNEXPECT_RESEL + SRB_ABORT_SENT))
1452 *pscsi_status = PH_BUS_FREE; /*.. initial phase */
1453
1454 DC395x_write16(acb, TRM_S1040_SCSI_CONTROL, DO_DATALATCH); /* it's important for atn stop */
1455 srb->state &= ~SRB_MSGOUT;
1456 }
1457
1458
msgout_phase1(struct AdapterCtlBlk * acb,struct ScsiReqBlk * srb,u16 * pscsi_status)1459 static void msgout_phase1(struct AdapterCtlBlk *acb, struct ScsiReqBlk *srb,
1460 u16 *pscsi_status)
1461 {
1462 u16 i;
1463 u8 *ptr;
1464
1465 clear_fifo(acb, "msgout_phase1");
1466 if (!(srb->state & SRB_MSGOUT))
1467 srb->state |= SRB_MSGOUT;
1468
1469 if (!srb->msg_count) {
1470 DC395x_write8(acb, TRM_S1040_SCSI_FIFO, NOP);
1471 DC395x_write16(acb, TRM_S1040_SCSI_CONTROL, DO_DATALATCH);
1472 /* it's important for atn stop */
1473 DC395x_write8(acb, TRM_S1040_SCSI_COMMAND, SCMD_FIFO_OUT);
1474 return;
1475 }
1476 ptr = (u8 *)srb->msgout_buf;
1477 for (i = 0; i < srb->msg_count; i++)
1478 DC395x_write8(acb, TRM_S1040_SCSI_FIFO, *ptr++);
1479 srb->msg_count = 0;
1480 if (srb->msgout_buf[0] == ABORT_TASK_SET)
1481 srb->state = SRB_ABORT_SENT;
1482
1483 DC395x_write8(acb, TRM_S1040_SCSI_COMMAND, SCMD_FIFO_OUT);
1484 }
1485
1486
command_phase0(struct AdapterCtlBlk * acb,struct ScsiReqBlk * srb,u16 * pscsi_status)1487 static void command_phase0(struct AdapterCtlBlk *acb, struct ScsiReqBlk *srb,
1488 u16 *pscsi_status)
1489 {
1490 DC395x_write16(acb, TRM_S1040_SCSI_CONTROL, DO_DATALATCH);
1491 }
1492
1493
command_phase1(struct AdapterCtlBlk * acb,struct ScsiReqBlk * srb,u16 * pscsi_status)1494 static void command_phase1(struct AdapterCtlBlk *acb, struct ScsiReqBlk *srb,
1495 u16 *pscsi_status)
1496 {
1497 struct DeviceCtlBlk *dcb;
1498 u8 *ptr;
1499 u16 i;
1500
1501 clear_fifo(acb, "command_phase1");
1502 DC395x_write16(acb, TRM_S1040_SCSI_CONTROL, DO_CLRATN);
1503 if (!(srb->flag & AUTO_REQSENSE)) {
1504 ptr = (u8 *)srb->cmd->cmnd;
1505 for (i = 0; i < srb->cmd->cmd_len; i++) {
1506 DC395x_write8(acb, TRM_S1040_SCSI_FIFO, *ptr);
1507 ptr++;
1508 }
1509 } else {
1510 DC395x_write8(acb, TRM_S1040_SCSI_FIFO, REQUEST_SENSE);
1511 dcb = acb->active_dcb;
1512 /* target id */
1513 DC395x_write8(acb, TRM_S1040_SCSI_FIFO, (dcb->target_lun << 5));
1514 DC395x_write8(acb, TRM_S1040_SCSI_FIFO, 0);
1515 DC395x_write8(acb, TRM_S1040_SCSI_FIFO, 0);
1516 DC395x_write8(acb, TRM_S1040_SCSI_FIFO, SCSI_SENSE_BUFFERSIZE);
1517 DC395x_write8(acb, TRM_S1040_SCSI_FIFO, 0);
1518 }
1519 srb->state |= SRB_COMMAND;
1520 /* it's important for atn stop */
1521 DC395x_write16(acb, TRM_S1040_SCSI_CONTROL, DO_DATALATCH);
1522 /* SCSI command */
1523 DC395x_write8(acb, TRM_S1040_SCSI_COMMAND, SCMD_FIFO_OUT);
1524 }
1525
1526
1527 /*
1528 * Compute the next Scatter Gather list index and adjust its length
1529 * and address if necessary
1530 */
sg_update_list(struct ScsiReqBlk * srb,u32 left)1531 static void sg_update_list(struct ScsiReqBlk *srb, u32 left)
1532 {
1533 u8 idx;
1534 u32 xferred = srb->total_xfer_length - left; /* bytes transferred */
1535 struct SGentry *psge = srb->segment_x + srb->sg_index;
1536
1537 if (xferred == 0) {
1538 /* nothing to update since we did not transfer any data */
1539 return;
1540 }
1541
1542 srb->total_xfer_length = left; /* update remaining count */
1543 for (idx = srb->sg_index; idx < srb->sg_count; idx++) {
1544 if (xferred >= psge->length) {
1545 /* Complete SG entries done */
1546 xferred -= psge->length;
1547 } else {
1548 /* Partial SG entry done */
1549 dma_sync_single_for_cpu(&srb->dcb->acb->dev->dev,
1550 srb->sg_bus_addr, SEGMENTX_LEN,
1551 DMA_TO_DEVICE);
1552 psge->length -= xferred;
1553 psge->address += xferred;
1554 srb->sg_index = idx;
1555 dma_sync_single_for_device(&srb->dcb->acb->dev->dev,
1556 srb->sg_bus_addr, SEGMENTX_LEN,
1557 DMA_TO_DEVICE);
1558 break;
1559 }
1560 psge++;
1561 }
1562 }
1563
1564
1565 /*
1566 * We have transferred a single byte (PIO mode?) and need to update
1567 * the count of bytes remaining (total_xfer_length) and update the sg
1568 * entry to either point to next byte in the current sg entry, or of
1569 * already at the end to point to the start of the next sg entry
1570 */
sg_subtract_one(struct ScsiReqBlk * srb)1571 static void sg_subtract_one(struct ScsiReqBlk *srb)
1572 {
1573 sg_update_list(srb, srb->total_xfer_length - 1);
1574 }
1575
1576
1577 /*
1578 * cleanup_after_transfer
1579 *
1580 * Makes sure, DMA and SCSI engine are empty, after the transfer has finished
1581 * KG: Currently called from StatusPhase1 ()
1582 * Should probably also be called from other places
1583 * Best might be to call it in DataXXPhase0, if new phase will differ
1584 */
cleanup_after_transfer(struct AdapterCtlBlk * acb,struct ScsiReqBlk * srb)1585 static void cleanup_after_transfer(struct AdapterCtlBlk *acb,
1586 struct ScsiReqBlk *srb)
1587 {
1588 /*DC395x_write8 (TRM_S1040_DMA_STATUS, FORCEDMACOMP); */
1589 if (DC395x_read16(acb, TRM_S1040_DMA_COMMAND) & 0x0001) { /* read */
1590 if (!(DC395x_read8(acb, TRM_S1040_SCSI_FIFOCNT) & 0x40))
1591 clear_fifo(acb, "cleanup/in");
1592 if (!(DC395x_read8(acb, TRM_S1040_DMA_FIFOSTAT) & 0x80))
1593 DC395x_write8(acb, TRM_S1040_DMA_CONTROL, CLRXFIFO);
1594 } else { /* write */
1595 if (!(DC395x_read8(acb, TRM_S1040_DMA_FIFOSTAT) & 0x80))
1596 DC395x_write8(acb, TRM_S1040_DMA_CONTROL, CLRXFIFO);
1597 if (!(DC395x_read8(acb, TRM_S1040_SCSI_FIFOCNT) & 0x40))
1598 clear_fifo(acb, "cleanup/out");
1599 }
1600 DC395x_write16(acb, TRM_S1040_SCSI_CONTROL, DO_DATALATCH);
1601 }
1602
1603
1604 /*
1605 * Those no of bytes will be transferred w/ PIO through the SCSI FIFO
1606 * Seems to be needed for unknown reasons; could be a hardware bug :-(
1607 */
1608 #define DC395x_LASTPIO 4
1609
1610
data_out_phase0(struct AdapterCtlBlk * acb,struct ScsiReqBlk * srb,u16 * pscsi_status)1611 static void data_out_phase0(struct AdapterCtlBlk *acb, struct ScsiReqBlk *srb,
1612 u16 *pscsi_status)
1613 {
1614 struct DeviceCtlBlk *dcb = srb->dcb;
1615 u16 scsi_status = *pscsi_status;
1616 u32 d_left_counter = 0;
1617
1618 /*
1619 * KG: We need to drain the buffers before we draw any conclusions!
1620 * This means telling the DMA to push the rest into SCSI, telling
1621 * SCSI to push the rest to the bus.
1622 * However, the device might have been the one to stop us (phase
1623 * change), and the data in transit just needs to be accounted so
1624 * it can be retransmitted.)
1625 */
1626 /*
1627 * KG: Stop DMA engine pushing more data into the SCSI FIFO
1628 * If we need more data, the DMA SG list will be freshly set up, anyway
1629 */
1630 DC395x_write8(acb, TRM_S1040_DMA_CONTROL, STOPDMAXFER | CLRXFIFO);
1631
1632 if (!(srb->state & SRB_XFERPAD)) {
1633 if (scsi_status & PARITYERROR)
1634 srb->status |= PARITY_ERROR;
1635
1636 /*
1637 * KG: Right, we can't just rely on the SCSI_COUNTER, because this
1638 * is the no of bytes it got from the DMA engine not the no it
1639 * transferred successfully to the device. (And the difference could
1640 * be as much as the FIFO size, I guess ...)
1641 */
1642 if (!(scsi_status & SCSIXFERDONE)) {
1643 /*
1644 * when data transfer from DMA FIFO to SCSI FIFO
1645 * if there was some data left in SCSI FIFO
1646 */
1647 d_left_counter =
1648 (u32)(DC395x_read8(acb, TRM_S1040_SCSI_FIFOCNT) &
1649 0x1F);
1650 if (dcb->sync_period & WIDE_SYNC)
1651 d_left_counter <<= 1;
1652
1653 }
1654 /*
1655 * calculate all the residue data that not yet tranfered
1656 * SCSI transfer counter + left in SCSI FIFO data
1657 *
1658 * .....TRM_S1040_SCSI_COUNTER (24bits)
1659 * The counter always decrement by one for every SCSI byte transfer.
1660 * .....TRM_S1040_SCSI_FIFOCNT ( 5bits)
1661 * The counter is SCSI FIFO offset counter (in units of bytes or! words)
1662 */
1663 if (srb->total_xfer_length > DC395x_LASTPIO)
1664 d_left_counter +=
1665 DC395x_read32(acb, TRM_S1040_SCSI_COUNTER);
1666
1667 /* Is this a good idea? */
1668 /*clear_fifo(acb, "DOP1"); */
1669 /* KG: What is this supposed to be useful for? WIDE padding stuff? */
1670 if (d_left_counter == 1 && dcb->sync_period & WIDE_SYNC
1671 && scsi_bufflen(srb->cmd) % 2) {
1672 d_left_counter = 0;
1673 }
1674 /*
1675 * KG: Oops again. Same thinko as above: The SCSI might have been
1676 * faster than the DMA engine, so that it ran out of data.
1677 * In that case, we have to do just nothing!
1678 * But: Why the interrupt: No phase change. No XFERCNT_2_ZERO. Or?
1679 */
1680 /*
1681 * KG: This is nonsense: We have been WRITING data to the bus
1682 * If the SCSI engine has no bytes left, how should the DMA engine?
1683 */
1684 if (d_left_counter == 0) {
1685 srb->total_xfer_length = 0;
1686 } else {
1687 /*
1688 * if transfer not yet complete
1689 * there were some data residue in SCSI FIFO or
1690 * SCSI transfer counter not empty
1691 */
1692 long oldxferred =
1693 srb->total_xfer_length - d_left_counter;
1694 const int diff =
1695 (dcb->sync_period & WIDE_SYNC) ? 2 : 1;
1696 sg_update_list(srb, d_left_counter);
1697 /* KG: Most ugly hack! Apparently, this works around a chip bug */
1698 if ((srb->segment_x[srb->sg_index].length ==
1699 diff && scsi_sg_count(srb->cmd))
1700 || ((oldxferred & ~PAGE_MASK) ==
1701 (PAGE_SIZE - diff))
1702 ) {
1703 d_left_counter =
1704 srb->total_xfer_length - diff;
1705 sg_update_list(srb, d_left_counter);
1706 /*srb->total_xfer_length -= diff; */
1707 /*srb->virt_addr += diff; */
1708 /*if (srb->cmd->use_sg) */
1709 /* srb->sg_index++; */
1710 }
1711 }
1712 }
1713 if ((*pscsi_status & PHASEMASK) != PH_DATA_OUT)
1714 cleanup_after_transfer(acb, srb);
1715 }
1716
1717
data_out_phase1(struct AdapterCtlBlk * acb,struct ScsiReqBlk * srb,u16 * pscsi_status)1718 static void data_out_phase1(struct AdapterCtlBlk *acb, struct ScsiReqBlk *srb,
1719 u16 *pscsi_status)
1720 {
1721 clear_fifo(acb, "data_out_phase1");
1722 /* do prepare before transfer when data out phase */
1723 data_io_transfer(acb, srb, XFERDATAOUT);
1724 }
1725
data_in_phase0(struct AdapterCtlBlk * acb,struct ScsiReqBlk * srb,u16 * pscsi_status)1726 static void data_in_phase0(struct AdapterCtlBlk *acb, struct ScsiReqBlk *srb,
1727 u16 *pscsi_status)
1728 {
1729 u16 scsi_status = *pscsi_status;
1730
1731
1732 /*
1733 * KG: DataIn is much more tricky than DataOut. When the device is finished
1734 * and switches to another phase, the SCSI engine should be finished too.
1735 * But: There might still be bytes left in its FIFO to be fetched by the DMA
1736 * engine and transferred to memory.
1737 * We should wait for the FIFOs to be emptied by that (is there any way to
1738 * enforce this?) and then stop the DMA engine, because it might think, that
1739 * there are more bytes to follow. Yes, the device might disconnect prior to
1740 * having all bytes transferred!
1741 * Also we should make sure that all data from the DMA engine buffer's really
1742 * made its way to the system memory! Some documentation on this would not
1743 * seem to be a bad idea, actually.
1744 */
1745 if (!(srb->state & SRB_XFERPAD)) {
1746 u32 d_left_counter;
1747 unsigned int sc, fc;
1748
1749 if (scsi_status & PARITYERROR) {
1750 srb->status |= PARITY_ERROR;
1751 }
1752 /*
1753 * KG: We should wait for the DMA FIFO to be empty ...
1754 * but: it would be better to wait first for the SCSI FIFO and then the
1755 * the DMA FIFO to become empty? How do we know, that the device not already
1756 * sent data to the FIFO in a MsgIn phase, eg.?
1757 */
1758 if (!(DC395x_read8(acb, TRM_S1040_DMA_FIFOSTAT) & 0x80)) {
1759 #if 0
1760 int ctr = 6000000;
1761 /*DC395x_write8 (TRM_S1040_DMA_CONTROL, STOPDMAXFER); */
1762 /*DC395x_write32 (TRM_S1040_SCSI_COUNTER, 7); */
1763 /*DC395x_write8 (TRM_S1040_SCSI_COMMAND, SCMD_DMA_IN); */
1764 while (!
1765 (DC395x_read16(acb, TRM_S1040_DMA_FIFOSTAT) &
1766 0x80) && --ctr);
1767 /*DC395x_write32 (TRM_S1040_SCSI_COUNTER, 0); */
1768 #endif
1769 }
1770 /* Now: Check remainig data: The SCSI counters should tell us ... */
1771 sc = DC395x_read32(acb, TRM_S1040_SCSI_COUNTER);
1772 fc = DC395x_read8(acb, TRM_S1040_SCSI_FIFOCNT);
1773 d_left_counter = sc + ((fc & 0x1f)
1774 << ((srb->dcb->sync_period & WIDE_SYNC) ? 1 :
1775 0));
1776 #if DC395x_LASTPIO
1777 /* KG: Less than or equal to 4 bytes can not be transferred via DMA, it seems. */
1778 if (d_left_counter
1779 && srb->total_xfer_length <= DC395x_LASTPIO) {
1780 size_t left_io = srb->total_xfer_length;
1781
1782 /*u32 addr = (srb->segment_x[srb->sg_index].address); */
1783 /*sg_update_list (srb, d_left_counter); */
1784 if (srb->dcb->sync_period & WIDE_SYNC)
1785 DC395x_write8(acb, TRM_S1040_SCSI_CONFIG2,
1786 CFG2_WIDEFIFO);
1787 while (left_io) {
1788 unsigned char *virt, *base = NULL;
1789 unsigned long flags = 0;
1790 size_t len = left_io;
1791 size_t offset = srb->request_length - left_io;
1792
1793 local_irq_save(flags);
1794 /* Assumption: it's inside one page as it's at most 4 bytes and
1795 I just assume it's on a 4-byte boundary */
1796 base = scsi_kmap_atomic_sg(scsi_sglist(srb->cmd),
1797 srb->sg_count, &offset, &len);
1798 virt = base + offset;
1799
1800 left_io -= len;
1801
1802 while (len) {
1803 u8 byte;
1804 byte = DC395x_read8(acb, TRM_S1040_SCSI_FIFO);
1805 *virt++ = byte;
1806
1807 d_left_counter--;
1808 sg_subtract_one(srb);
1809
1810 len--;
1811
1812 fc = DC395x_read8(acb, TRM_S1040_SCSI_FIFOCNT);
1813
1814 if (fc == 0x40) {
1815 left_io = 0;
1816 break;
1817 }
1818 }
1819
1820 WARN_ON((fc != 0x40) == !d_left_counter);
1821
1822 if (fc == 0x40 && (srb->dcb->sync_period & WIDE_SYNC)) {
1823 /* Read the last byte ... */
1824 if (srb->total_xfer_length > 0) {
1825 u8 byte = DC395x_read8(acb, TRM_S1040_SCSI_FIFO);
1826
1827 *virt++ = byte;
1828 srb->total_xfer_length--;
1829 }
1830
1831 DC395x_write8(acb, TRM_S1040_SCSI_CONFIG2, 0);
1832 }
1833
1834 scsi_kunmap_atomic_sg(base);
1835 local_irq_restore(flags);
1836 }
1837 /*srb->total_xfer_length = 0; */
1838 }
1839 #endif /* DC395x_LASTPIO */
1840
1841 #if 0
1842 /*
1843 * KG: This was in DATAOUT. Does it also belong here?
1844 * Nobody seems to know what counter and fifo_cnt count exactly ...
1845 */
1846 if (!(scsi_status & SCSIXFERDONE)) {
1847 /*
1848 * when data transfer from DMA FIFO to SCSI FIFO
1849 * if there was some data left in SCSI FIFO
1850 */
1851 d_left_counter =
1852 (u32)(DC395x_read8(acb, TRM_S1040_SCSI_FIFOCNT) &
1853 0x1F);
1854 if (srb->dcb->sync_period & WIDE_SYNC)
1855 d_left_counter <<= 1;
1856 /*
1857 * if WIDE scsi SCSI FIFOCNT unit is word !!!
1858 * so need to *= 2
1859 * KG: Seems to be correct ...
1860 */
1861 }
1862 #endif
1863 /* KG: This should not be needed any more! */
1864 if (d_left_counter == 0
1865 || (scsi_status & SCSIXFERCNT_2_ZERO)) {
1866 #if 0
1867 int ctr = 6000000;
1868 u8 TempDMAstatus;
1869 do {
1870 TempDMAstatus =
1871 DC395x_read8(acb, TRM_S1040_DMA_STATUS);
1872 } while (!(TempDMAstatus & DMAXFERCOMP) && --ctr);
1873 srb->total_xfer_length = 0;
1874 #endif
1875 srb->total_xfer_length = d_left_counter;
1876 } else { /* phase changed */
1877 /*
1878 * parsing the case:
1879 * when a transfer not yet complete
1880 * but be disconnected by target
1881 * if transfer not yet complete
1882 * there were some data residue in SCSI FIFO or
1883 * SCSI transfer counter not empty
1884 */
1885 sg_update_list(srb, d_left_counter);
1886 }
1887 }
1888 /* KG: The target may decide to disconnect: Empty FIFO before! */
1889 if ((*pscsi_status & PHASEMASK) != PH_DATA_IN)
1890 cleanup_after_transfer(acb, srb);
1891 }
1892
1893
data_in_phase1(struct AdapterCtlBlk * acb,struct ScsiReqBlk * srb,u16 * pscsi_status)1894 static void data_in_phase1(struct AdapterCtlBlk *acb, struct ScsiReqBlk *srb,
1895 u16 *pscsi_status)
1896 {
1897 data_io_transfer(acb, srb, XFERDATAIN);
1898 }
1899
1900
data_io_transfer(struct AdapterCtlBlk * acb,struct ScsiReqBlk * srb,u16 io_dir)1901 static void data_io_transfer(struct AdapterCtlBlk *acb,
1902 struct ScsiReqBlk *srb, u16 io_dir)
1903 {
1904 struct DeviceCtlBlk *dcb = srb->dcb;
1905 u8 bval;
1906
1907 if (srb->sg_index >= srb->sg_count) {
1908 /* can't happen? out of bounds error */
1909 return;
1910 }
1911
1912 if (srb->total_xfer_length > DC395x_LASTPIO) {
1913 u8 dma_status = DC395x_read8(acb, TRM_S1040_DMA_STATUS);
1914 /*
1915 * KG: What should we do: Use SCSI Cmd 0x90/0x92?
1916 * Maybe, even ABORTXFER would be appropriate
1917 */
1918 if (dma_status & XFERPENDING) {
1919 DC395x_write8(acb, TRM_S1040_DMA_CONTROL, CLRXFIFO);
1920 }
1921 /* clear_fifo(acb, "IO"); */
1922 /*
1923 * load what physical address of Scatter/Gather list table
1924 * want to be transfer
1925 */
1926 srb->state |= SRB_DATA_XFER;
1927 DC395x_write32(acb, TRM_S1040_DMA_XHIGHADDR, 0);
1928 if (scsi_sg_count(srb->cmd)) { /* with S/G */
1929 io_dir |= DMACMD_SG;
1930 DC395x_write32(acb, TRM_S1040_DMA_XLOWADDR,
1931 srb->sg_bus_addr +
1932 sizeof(struct SGentry) *
1933 srb->sg_index);
1934 /* load how many bytes in the sg list table */
1935 DC395x_write32(acb, TRM_S1040_DMA_XCNT,
1936 ((u32)(srb->sg_count -
1937 srb->sg_index) << 3));
1938 } else { /* without S/G */
1939 io_dir &= ~DMACMD_SG;
1940 DC395x_write32(acb, TRM_S1040_DMA_XLOWADDR,
1941 srb->segment_x[0].address);
1942 DC395x_write32(acb, TRM_S1040_DMA_XCNT,
1943 srb->segment_x[0].length);
1944 }
1945 /* load total transfer length (24bits) max value 16Mbyte */
1946 DC395x_write32(acb, TRM_S1040_SCSI_COUNTER,
1947 srb->total_xfer_length);
1948 DC395x_write16(acb, TRM_S1040_SCSI_CONTROL, DO_DATALATCH); /* it's important for atn stop */
1949 if (io_dir & DMACMD_DIR) { /* read */
1950 DC395x_write8(acb, TRM_S1040_SCSI_COMMAND,
1951 SCMD_DMA_IN);
1952 DC395x_write16(acb, TRM_S1040_DMA_COMMAND, io_dir);
1953 } else {
1954 DC395x_write16(acb, TRM_S1040_DMA_COMMAND, io_dir);
1955 DC395x_write8(acb, TRM_S1040_SCSI_COMMAND,
1956 SCMD_DMA_OUT);
1957 }
1958
1959 }
1960 #if DC395x_LASTPIO
1961 else if (srb->total_xfer_length > 0) { /* The last four bytes: Do PIO */
1962 /*
1963 * load what physical address of Scatter/Gather list table
1964 * want to be transfer
1965 */
1966 srb->state |= SRB_DATA_XFER;
1967 /* load total transfer length (24bits) max value 16Mbyte */
1968 DC395x_write32(acb, TRM_S1040_SCSI_COUNTER,
1969 srb->total_xfer_length);
1970 DC395x_write16(acb, TRM_S1040_SCSI_CONTROL, DO_DATALATCH); /* it's important for atn stop */
1971 if (io_dir & DMACMD_DIR) { /* read */
1972 DC395x_write8(acb, TRM_S1040_SCSI_COMMAND,
1973 SCMD_FIFO_IN);
1974 } else { /* write */
1975 int ln = srb->total_xfer_length;
1976 size_t left_io = srb->total_xfer_length;
1977
1978 if (srb->dcb->sync_period & WIDE_SYNC)
1979 DC395x_write8(acb, TRM_S1040_SCSI_CONFIG2,
1980 CFG2_WIDEFIFO);
1981
1982 while (left_io) {
1983 unsigned char *virt, *base = NULL;
1984 unsigned long flags = 0;
1985 size_t len = left_io;
1986 size_t offset = srb->request_length - left_io;
1987
1988 local_irq_save(flags);
1989 /* Again, max 4 bytes */
1990 base = scsi_kmap_atomic_sg(scsi_sglist(srb->cmd),
1991 srb->sg_count, &offset, &len);
1992 virt = base + offset;
1993
1994 left_io -= len;
1995
1996 while (len--) {
1997 DC395x_write8(acb, TRM_S1040_SCSI_FIFO, *virt++);
1998
1999 sg_subtract_one(srb);
2000 }
2001
2002 scsi_kunmap_atomic_sg(base);
2003 local_irq_restore(flags);
2004 }
2005 if (srb->dcb->sync_period & WIDE_SYNC) {
2006 if (ln % 2) {
2007 DC395x_write8(acb, TRM_S1040_SCSI_FIFO, 0);
2008 }
2009 DC395x_write8(acb, TRM_S1040_SCSI_CONFIG2, 0);
2010 }
2011 /*DC395x_write32(acb, TRM_S1040_SCSI_COUNTER, ln); */
2012 DC395x_write8(acb, TRM_S1040_SCSI_COMMAND,
2013 SCMD_FIFO_OUT);
2014 }
2015 }
2016 #endif /* DC395x_LASTPIO */
2017 else { /* xfer pad */
2018 if (srb->sg_count) {
2019 srb->adapter_status = H_OVER_UNDER_RUN;
2020 srb->status |= OVER_RUN;
2021 }
2022 /*
2023 * KG: despite the fact that we are using 16 bits I/O ops
2024 * the SCSI FIFO is only 8 bits according to the docs
2025 * (we can set bit 1 in 0x8f to serialize FIFO access ...)
2026 */
2027 if (dcb->sync_period & WIDE_SYNC) {
2028 DC395x_write32(acb, TRM_S1040_SCSI_COUNTER, 2);
2029 DC395x_write8(acb, TRM_S1040_SCSI_CONFIG2,
2030 CFG2_WIDEFIFO);
2031 if (io_dir & DMACMD_DIR) {
2032 DC395x_read8(acb, TRM_S1040_SCSI_FIFO);
2033 DC395x_read8(acb, TRM_S1040_SCSI_FIFO);
2034 } else {
2035 /* Danger, Robinson: If you find KGs
2036 * scattered over the wide disk, the driver
2037 * or chip is to blame :-( */
2038 DC395x_write8(acb, TRM_S1040_SCSI_FIFO, 'K');
2039 DC395x_write8(acb, TRM_S1040_SCSI_FIFO, 'G');
2040 }
2041 DC395x_write8(acb, TRM_S1040_SCSI_CONFIG2, 0);
2042 } else {
2043 DC395x_write32(acb, TRM_S1040_SCSI_COUNTER, 1);
2044 /* Danger, Robinson: If you find a collection of Ks on your disk
2045 * something broke :-( */
2046 if (io_dir & DMACMD_DIR)
2047 DC395x_read8(acb, TRM_S1040_SCSI_FIFO);
2048 else
2049 DC395x_write8(acb, TRM_S1040_SCSI_FIFO, 'K');
2050 }
2051 srb->state |= SRB_XFERPAD;
2052 DC395x_write16(acb, TRM_S1040_SCSI_CONTROL, DO_DATALATCH); /* it's important for atn stop */
2053 /* SCSI command */
2054 bval = (io_dir & DMACMD_DIR) ? SCMD_FIFO_IN : SCMD_FIFO_OUT;
2055 DC395x_write8(acb, TRM_S1040_SCSI_COMMAND, bval);
2056 }
2057 }
2058
2059
status_phase0(struct AdapterCtlBlk * acb,struct ScsiReqBlk * srb,u16 * pscsi_status)2060 static void status_phase0(struct AdapterCtlBlk *acb, struct ScsiReqBlk *srb,
2061 u16 *pscsi_status)
2062 {
2063 srb->target_status = DC395x_read8(acb, TRM_S1040_SCSI_FIFO);
2064 srb->end_message = DC395x_read8(acb, TRM_S1040_SCSI_FIFO); /* get message */
2065 srb->state = SRB_COMPLETED;
2066 *pscsi_status = PH_BUS_FREE; /*.. initial phase */
2067 DC395x_write16(acb, TRM_S1040_SCSI_CONTROL, DO_DATALATCH); /* it's important for atn stop */
2068 DC395x_write8(acb, TRM_S1040_SCSI_COMMAND, SCMD_MSGACCEPT);
2069 }
2070
2071
status_phase1(struct AdapterCtlBlk * acb,struct ScsiReqBlk * srb,u16 * pscsi_status)2072 static void status_phase1(struct AdapterCtlBlk *acb, struct ScsiReqBlk *srb,
2073 u16 *pscsi_status)
2074 {
2075 srb->state = SRB_STATUS;
2076 DC395x_write16(acb, TRM_S1040_SCSI_CONTROL, DO_DATALATCH); /* it's important for atn stop */
2077 DC395x_write8(acb, TRM_S1040_SCSI_COMMAND, SCMD_COMP);
2078 }
2079
2080
2081 /* Check if the message is complete */
msgin_completed(u8 * msgbuf,u32 len)2082 static inline u8 msgin_completed(u8 * msgbuf, u32 len)
2083 {
2084 if (*msgbuf == EXTENDED_MESSAGE) {
2085 if (len < 2)
2086 return 0;
2087 if (len < msgbuf[1] + 2)
2088 return 0;
2089 } else if (*msgbuf >= 0x20 && *msgbuf <= 0x2f) /* two byte messages */
2090 if (len < 2)
2091 return 0;
2092 return 1;
2093 }
2094
2095 /* reject_msg */
msgin_reject(struct AdapterCtlBlk * acb,struct ScsiReqBlk * srb)2096 static inline void msgin_reject(struct AdapterCtlBlk *acb,
2097 struct ScsiReqBlk *srb)
2098 {
2099 srb->msgout_buf[0] = MESSAGE_REJECT;
2100 srb->msg_count = 1;
2101 DC395x_ENABLE_MSGOUT;
2102 srb->state &= ~SRB_MSGIN;
2103 srb->state |= SRB_MSGOUT;
2104 }
2105
2106
msgin_qtag(struct AdapterCtlBlk * acb,struct DeviceCtlBlk * dcb,u8 tag)2107 static struct ScsiReqBlk *msgin_qtag(struct AdapterCtlBlk *acb,
2108 struct DeviceCtlBlk *dcb, u8 tag)
2109 {
2110 struct ScsiReqBlk *srb = NULL;
2111 struct ScsiReqBlk *i;
2112
2113 if (list_empty(&dcb->srb_going_list))
2114 goto mingx0;
2115 list_for_each_entry(i, &dcb->srb_going_list, list) {
2116 if (i->tag_number == tag) {
2117 srb = i;
2118 break;
2119 }
2120 }
2121 if (!srb)
2122 goto mingx0;
2123
2124 if (dcb->flag & ABORT_DEV_) {
2125 /*srb->state = SRB_ABORT_SENT; */
2126 enable_msgout_abort(acb, srb);
2127 }
2128
2129 if (!(srb->state & SRB_DISCONNECT))
2130 goto mingx0;
2131
2132 memcpy(srb->msgin_buf, dcb->active_srb->msgin_buf, acb->msg_len);
2133 srb->state |= dcb->active_srb->state;
2134 srb->state |= SRB_DATA_XFER;
2135 dcb->active_srb = srb;
2136 /* How can we make the DORS happy? */
2137 return srb;
2138
2139 mingx0:
2140 srb = acb->tmp_srb;
2141 srb->state = SRB_UNEXPECT_RESEL;
2142 dcb->active_srb = srb;
2143 srb->msgout_buf[0] = ABORT_TASK;
2144 srb->msg_count = 1;
2145 DC395x_ENABLE_MSGOUT;
2146 return srb;
2147 }
2148
2149
reprogram_regs(struct AdapterCtlBlk * acb,struct DeviceCtlBlk * dcb)2150 static inline void reprogram_regs(struct AdapterCtlBlk *acb,
2151 struct DeviceCtlBlk *dcb)
2152 {
2153 DC395x_write8(acb, TRM_S1040_SCSI_TARGETID, dcb->target_id);
2154 DC395x_write8(acb, TRM_S1040_SCSI_SYNC, dcb->sync_period);
2155 DC395x_write8(acb, TRM_S1040_SCSI_OFFSET, dcb->sync_offset);
2156 set_xfer_rate(acb, dcb);
2157 }
2158
2159
2160 /* set async transfer mode */
msgin_set_async(struct AdapterCtlBlk * acb,struct ScsiReqBlk * srb)2161 static void msgin_set_async(struct AdapterCtlBlk *acb, struct ScsiReqBlk *srb)
2162 {
2163 struct DeviceCtlBlk *dcb = srb->dcb;
2164
2165 dcb->sync_mode &= ~(SYNC_NEGO_ENABLE);
2166 dcb->sync_mode |= SYNC_NEGO_DONE;
2167 /*dcb->sync_period &= 0; */
2168 dcb->sync_offset = 0;
2169 dcb->min_nego_period = 200 >> 2; /* 200ns <=> 5 MHz */
2170 srb->state &= ~SRB_DO_SYNC_NEGO;
2171 reprogram_regs(acb, dcb);
2172 if ((dcb->sync_mode & WIDE_NEGO_ENABLE)
2173 && !(dcb->sync_mode & WIDE_NEGO_DONE)) {
2174 build_wdtr(acb, dcb, srb);
2175 DC395x_ENABLE_MSGOUT;
2176 }
2177 }
2178
2179
2180 /* set sync transfer mode */
msgin_set_sync(struct AdapterCtlBlk * acb,struct ScsiReqBlk * srb)2181 static void msgin_set_sync(struct AdapterCtlBlk *acb, struct ScsiReqBlk *srb)
2182 {
2183 struct DeviceCtlBlk *dcb = srb->dcb;
2184 u8 bval;
2185 int fact;
2186
2187 if (srb->msgin_buf[4] > 15)
2188 srb->msgin_buf[4] = 15;
2189 if (!(dcb->dev_mode & NTC_DO_SYNC_NEGO))
2190 dcb->sync_offset = 0;
2191 else if (dcb->sync_offset == 0)
2192 dcb->sync_offset = srb->msgin_buf[4];
2193 if (srb->msgin_buf[4] > dcb->sync_offset)
2194 srb->msgin_buf[4] = dcb->sync_offset;
2195 else
2196 dcb->sync_offset = srb->msgin_buf[4];
2197 bval = 0;
2198 while (bval < 7 && (srb->msgin_buf[3] > clock_period[bval]
2199 || dcb->min_nego_period >
2200 clock_period[bval]))
2201 bval++;
2202
2203 srb->msgin_buf[3] = clock_period[bval];
2204 dcb->sync_period &= 0xf0;
2205 dcb->sync_period |= ALT_SYNC | bval;
2206 dcb->min_nego_period = srb->msgin_buf[3];
2207
2208 if (dcb->sync_period & WIDE_SYNC)
2209 fact = 500;
2210 else
2211 fact = 250;
2212
2213 if (!(srb->state & SRB_DO_SYNC_NEGO)) {
2214 /* Reply with corrected SDTR Message */
2215
2216 memcpy(srb->msgout_buf, srb->msgin_buf, 5);
2217 srb->msg_count = 5;
2218 DC395x_ENABLE_MSGOUT;
2219 dcb->sync_mode |= SYNC_NEGO_DONE;
2220 } else {
2221 if ((dcb->sync_mode & WIDE_NEGO_ENABLE)
2222 && !(dcb->sync_mode & WIDE_NEGO_DONE)) {
2223 build_wdtr(acb, dcb, srb);
2224 DC395x_ENABLE_MSGOUT;
2225 }
2226 }
2227 srb->state &= ~SRB_DO_SYNC_NEGO;
2228 dcb->sync_mode |= SYNC_NEGO_DONE | SYNC_NEGO_ENABLE;
2229
2230 reprogram_regs(acb, dcb);
2231 }
2232
2233
msgin_set_nowide(struct AdapterCtlBlk * acb,struct ScsiReqBlk * srb)2234 static inline void msgin_set_nowide(struct AdapterCtlBlk *acb,
2235 struct ScsiReqBlk *srb)
2236 {
2237 struct DeviceCtlBlk *dcb = srb->dcb;
2238
2239 dcb->sync_period &= ~WIDE_SYNC;
2240 dcb->sync_mode &= ~(WIDE_NEGO_ENABLE);
2241 dcb->sync_mode |= WIDE_NEGO_DONE;
2242 srb->state &= ~SRB_DO_WIDE_NEGO;
2243 reprogram_regs(acb, dcb);
2244 if ((dcb->sync_mode & SYNC_NEGO_ENABLE)
2245 && !(dcb->sync_mode & SYNC_NEGO_DONE)) {
2246 build_sdtr(acb, dcb, srb);
2247 DC395x_ENABLE_MSGOUT;
2248 }
2249 }
2250
msgin_set_wide(struct AdapterCtlBlk * acb,struct ScsiReqBlk * srb)2251 static void msgin_set_wide(struct AdapterCtlBlk *acb, struct ScsiReqBlk *srb)
2252 {
2253 struct DeviceCtlBlk *dcb = srb->dcb;
2254 u8 wide = (dcb->dev_mode & NTC_DO_WIDE_NEGO
2255 && acb->config & HCC_WIDE_CARD) ? 1 : 0;
2256
2257 if (srb->msgin_buf[3] > wide)
2258 srb->msgin_buf[3] = wide;
2259 /* Completed */
2260 if (!(srb->state & SRB_DO_WIDE_NEGO)) {
2261 memcpy(srb->msgout_buf, srb->msgin_buf, 4);
2262 srb->msg_count = 4;
2263 srb->state |= SRB_DO_WIDE_NEGO;
2264 DC395x_ENABLE_MSGOUT;
2265 }
2266
2267 dcb->sync_mode |= (WIDE_NEGO_ENABLE | WIDE_NEGO_DONE);
2268 if (srb->msgin_buf[3] > 0)
2269 dcb->sync_period |= WIDE_SYNC;
2270 else
2271 dcb->sync_period &= ~WIDE_SYNC;
2272 srb->state &= ~SRB_DO_WIDE_NEGO;
2273 /*dcb->sync_mode &= ~(WIDE_NEGO_ENABLE+WIDE_NEGO_DONE); */
2274 reprogram_regs(acb, dcb);
2275 if ((dcb->sync_mode & SYNC_NEGO_ENABLE)
2276 && !(dcb->sync_mode & SYNC_NEGO_DONE)) {
2277 build_sdtr(acb, dcb, srb);
2278 DC395x_ENABLE_MSGOUT;
2279 }
2280 }
2281
2282
2283 /*
2284 * extended message codes:
2285 *
2286 * code description
2287 *
2288 * 02h Reserved
2289 * 00h MODIFY DATA POINTER
2290 * 01h SYNCHRONOUS DATA TRANSFER REQUEST
2291 * 03h WIDE DATA TRANSFER REQUEST
2292 * 04h - 7Fh Reserved
2293 * 80h - FFh Vendor specific
2294 */
msgin_phase0(struct AdapterCtlBlk * acb,struct ScsiReqBlk * srb,u16 * pscsi_status)2295 static void msgin_phase0(struct AdapterCtlBlk *acb, struct ScsiReqBlk *srb,
2296 u16 *pscsi_status)
2297 {
2298 struct DeviceCtlBlk *dcb = acb->active_dcb;
2299
2300 srb->msgin_buf[acb->msg_len++] = DC395x_read8(acb, TRM_S1040_SCSI_FIFO);
2301 if (msgin_completed(srb->msgin_buf, acb->msg_len)) {
2302 /* Now eval the msg */
2303 switch (srb->msgin_buf[0]) {
2304 case DISCONNECT:
2305 srb->state = SRB_DISCONNECT;
2306 break;
2307
2308 case SIMPLE_QUEUE_TAG:
2309 case HEAD_OF_QUEUE_TAG:
2310 case ORDERED_QUEUE_TAG:
2311 srb =
2312 msgin_qtag(acb, dcb,
2313 srb->msgin_buf[1]);
2314 break;
2315
2316 case MESSAGE_REJECT:
2317 DC395x_write16(acb, TRM_S1040_SCSI_CONTROL,
2318 DO_CLRATN | DO_DATALATCH);
2319 /* A sync nego message was rejected ! */
2320 if (srb->state & SRB_DO_SYNC_NEGO) {
2321 msgin_set_async(acb, srb);
2322 break;
2323 }
2324 /* A wide nego message was rejected ! */
2325 if (srb->state & SRB_DO_WIDE_NEGO) {
2326 msgin_set_nowide(acb, srb);
2327 break;
2328 }
2329 enable_msgout_abort(acb, srb);
2330 /*srb->state |= SRB_ABORT_SENT */
2331 break;
2332
2333 case EXTENDED_MESSAGE:
2334 /* SDTR */
2335 if (srb->msgin_buf[1] == 3
2336 && srb->msgin_buf[2] == EXTENDED_SDTR) {
2337 msgin_set_sync(acb, srb);
2338 break;
2339 }
2340 /* WDTR */
2341 if (srb->msgin_buf[1] == 2
2342 && srb->msgin_buf[2] == EXTENDED_WDTR
2343 && srb->msgin_buf[3] <= 2) { /* sanity check ... */
2344 msgin_set_wide(acb, srb);
2345 break;
2346 }
2347 msgin_reject(acb, srb);
2348 break;
2349
2350 case IGNORE_WIDE_RESIDUE:
2351 /* Discard wide residual */
2352 break;
2353
2354 case COMMAND_COMPLETE:
2355 /* nothing has to be done */
2356 break;
2357
2358 case SAVE_POINTERS:
2359 /*
2360 * SAVE POINTER may be ignored as we have the struct
2361 * ScsiReqBlk* associated with the scsi command.
2362 */
2363 break;
2364
2365 case RESTORE_POINTERS:
2366 break;
2367
2368 case ABORT:
2369 dcb->flag |= ABORT_DEV_;
2370 enable_msgout_abort(acb, srb);
2371 break;
2372
2373 default:
2374 /* reject unknown messages */
2375 if (srb->msgin_buf[0] & IDENTIFY_BASE) {
2376 srb->msg_count = 1;
2377 srb->msgout_buf[0] = dcb->identify_msg;
2378 DC395x_ENABLE_MSGOUT;
2379 srb->state |= SRB_MSGOUT;
2380 /*break; */
2381 }
2382 msgin_reject(acb, srb);
2383 }
2384
2385 /* Clear counter and MsgIn state */
2386 srb->state &= ~SRB_MSGIN;
2387 acb->msg_len = 0;
2388 }
2389 *pscsi_status = PH_BUS_FREE;
2390 DC395x_write16(acb, TRM_S1040_SCSI_CONTROL, DO_DATALATCH); /* it's important ... you know! */
2391 DC395x_write8(acb, TRM_S1040_SCSI_COMMAND, SCMD_MSGACCEPT);
2392 }
2393
2394
msgin_phase1(struct AdapterCtlBlk * acb,struct ScsiReqBlk * srb,u16 * pscsi_status)2395 static void msgin_phase1(struct AdapterCtlBlk *acb, struct ScsiReqBlk *srb,
2396 u16 *pscsi_status)
2397 {
2398 clear_fifo(acb, "msgin_phase1");
2399 DC395x_write32(acb, TRM_S1040_SCSI_COUNTER, 1);
2400 if (!(srb->state & SRB_MSGIN)) {
2401 srb->state &= ~SRB_DISCONNECT;
2402 srb->state |= SRB_MSGIN;
2403 }
2404 DC395x_write16(acb, TRM_S1040_SCSI_CONTROL, DO_DATALATCH); /* it's important for atn stop */
2405 /* SCSI command */
2406 DC395x_write8(acb, TRM_S1040_SCSI_COMMAND, SCMD_FIFO_IN);
2407 }
2408
2409
nop0(struct AdapterCtlBlk * acb,struct ScsiReqBlk * srb,u16 * pscsi_status)2410 static void nop0(struct AdapterCtlBlk *acb, struct ScsiReqBlk *srb,
2411 u16 *pscsi_status)
2412 {
2413 }
2414
2415
nop1(struct AdapterCtlBlk * acb,struct ScsiReqBlk * srb,u16 * pscsi_status)2416 static void nop1(struct AdapterCtlBlk *acb, struct ScsiReqBlk *srb,
2417 u16 *pscsi_status)
2418 {
2419 }
2420
2421
set_xfer_rate(struct AdapterCtlBlk * acb,struct DeviceCtlBlk * dcb)2422 static void set_xfer_rate(struct AdapterCtlBlk *acb, struct DeviceCtlBlk *dcb)
2423 {
2424 struct DeviceCtlBlk *i;
2425
2426 /* set all lun device's period, offset */
2427 if (dcb->identify_msg & 0x07)
2428 return;
2429
2430 if (acb->scan_devices) {
2431 current_sync_offset = dcb->sync_offset;
2432 return;
2433 }
2434
2435 list_for_each_entry(i, &acb->dcb_list, list)
2436 if (i->target_id == dcb->target_id) {
2437 i->sync_period = dcb->sync_period;
2438 i->sync_offset = dcb->sync_offset;
2439 i->sync_mode = dcb->sync_mode;
2440 i->min_nego_period = dcb->min_nego_period;
2441 }
2442 }
2443
2444
disconnect(struct AdapterCtlBlk * acb)2445 static void disconnect(struct AdapterCtlBlk *acb)
2446 {
2447 struct DeviceCtlBlk *dcb = acb->active_dcb;
2448 struct ScsiReqBlk *srb;
2449
2450 if (!dcb) {
2451 udelay(500);
2452 /* Suspend queue for a while */
2453 acb->last_reset =
2454 jiffies + HZ / 2 +
2455 HZ * acb->eeprom.delay_time;
2456 clear_fifo(acb, "disconnectEx");
2457 DC395x_write16(acb, TRM_S1040_SCSI_CONTROL, DO_HWRESELECT);
2458 return;
2459 }
2460 srb = dcb->active_srb;
2461 acb->active_dcb = NULL;
2462
2463 srb->scsi_phase = PH_BUS_FREE; /* initial phase */
2464 clear_fifo(acb, "disconnect");
2465 DC395x_write16(acb, TRM_S1040_SCSI_CONTROL, DO_HWRESELECT);
2466 if (srb->state & SRB_UNEXPECT_RESEL) {
2467 srb->state = 0;
2468 waiting_process_next(acb);
2469 } else if (srb->state & SRB_ABORT_SENT) {
2470 dcb->flag &= ~ABORT_DEV_;
2471 acb->last_reset = jiffies + HZ / 2 + 1;
2472 doing_srb_done(acb, DID_ABORT, srb->cmd, 1);
2473 waiting_process_next(acb);
2474 } else {
2475 if ((srb->state & (SRB_START_ + SRB_MSGOUT))
2476 || !(srb->
2477 state & (SRB_DISCONNECT | SRB_COMPLETED))) {
2478 /*
2479 * Selection time out
2480 * SRB_START_ || SRB_MSGOUT || (!SRB_DISCONNECT && !SRB_COMPLETED)
2481 */
2482 /* Unexp. Disc / Sel Timeout */
2483 if (srb->state != SRB_START_
2484 && srb->state != SRB_MSGOUT) {
2485 srb->state = SRB_READY;
2486 srb->target_status = SCSI_STAT_SEL_TIMEOUT;
2487 goto disc1;
2488 } else {
2489 /* Normal selection timeout */
2490 if (srb->retry_count++ > DC395x_MAX_RETRIES
2491 || acb->scan_devices) {
2492 srb->target_status =
2493 SCSI_STAT_SEL_TIMEOUT;
2494 goto disc1;
2495 }
2496 free_tag(dcb, srb);
2497 list_move(&srb->list, &dcb->srb_waiting_list);
2498 waiting_set_timer(acb, HZ / 20);
2499 }
2500 } else if (srb->state & SRB_DISCONNECT) {
2501 u8 bval = DC395x_read8(acb, TRM_S1040_SCSI_SIGNAL);
2502 /*
2503 * SRB_DISCONNECT (This is what we expect!)
2504 */
2505 if (bval & 0x40) {
2506 /* It could come from another initiator, therefore don't do much ! */
2507 } else
2508 waiting_process_next(acb);
2509 } else if (srb->state & SRB_COMPLETED) {
2510 disc1:
2511 /*
2512 ** SRB_COMPLETED
2513 */
2514 free_tag(dcb, srb);
2515 dcb->active_srb = NULL;
2516 srb->state = SRB_FREE;
2517 srb_done(acb, dcb, srb);
2518 }
2519 }
2520 }
2521
2522
reselect(struct AdapterCtlBlk * acb)2523 static void reselect(struct AdapterCtlBlk *acb)
2524 {
2525 struct DeviceCtlBlk *dcb = acb->active_dcb;
2526 struct ScsiReqBlk *srb = NULL;
2527 u16 rsel_tar_lun_id;
2528 u8 id, lun;
2529
2530 clear_fifo(acb, "reselect");
2531 /*DC395x_write16(acb, TRM_S1040_SCSI_CONTROL, DO_HWRESELECT | DO_DATALATCH); */
2532 /* Read Reselected Target ID and LUN */
2533 rsel_tar_lun_id = DC395x_read16(acb, TRM_S1040_SCSI_TARGETID);
2534 if (dcb) { /* Arbitration lost but Reselection win */
2535 srb = dcb->active_srb;
2536 if (!srb) {
2537 DC395x_write16(acb, TRM_S1040_SCSI_CONTROL, DO_DATALATCH); /* it's important for atn stop */
2538 return;
2539 }
2540 /* Why the if ? */
2541 if (!acb->scan_devices) {
2542 /*srb->state |= SRB_DISCONNECT; */
2543
2544 srb->state = SRB_READY;
2545 free_tag(dcb, srb);
2546 list_move(&srb->list, &dcb->srb_waiting_list);
2547 waiting_set_timer(acb, HZ / 20);
2548
2549 /* return; */
2550 }
2551 }
2552 /* Read Reselected Target Id and LUN */
2553 id = rsel_tar_lun_id & 0xff;
2554 lun = (rsel_tar_lun_id >> 8) & 7;
2555 dcb = find_dcb(acb, id, lun);
2556 if (!dcb) {
2557 DC395x_write16(acb, TRM_S1040_SCSI_CONTROL, DO_DATALATCH); /* it's important for atn stop */
2558 return;
2559 }
2560 acb->active_dcb = dcb;
2561
2562 if (dcb->sync_mode & EN_TAG_QUEUEING) {
2563 srb = acb->tmp_srb;
2564 dcb->active_srb = srb;
2565 } else {
2566 /* There can be only one! */
2567 srb = dcb->active_srb;
2568 if (!srb || !(srb->state & SRB_DISCONNECT)) {
2569 /*
2570 * abort command
2571 */
2572 srb = acb->tmp_srb;
2573 srb->state = SRB_UNEXPECT_RESEL;
2574 dcb->active_srb = srb;
2575 enable_msgout_abort(acb, srb);
2576 } else {
2577 if (dcb->flag & ABORT_DEV_) {
2578 /*srb->state = SRB_ABORT_SENT; */
2579 enable_msgout_abort(acb, srb);
2580 } else
2581 srb->state = SRB_DATA_XFER;
2582
2583 }
2584 }
2585 srb->scsi_phase = PH_BUS_FREE; /* initial phase */
2586
2587 /* Program HA ID, target ID, period and offset */
2588 DC395x_write8(acb, TRM_S1040_SCSI_HOSTID, acb->scsi_host->this_id); /* host ID */
2589 DC395x_write8(acb, TRM_S1040_SCSI_TARGETID, dcb->target_id); /* target ID */
2590 DC395x_write8(acb, TRM_S1040_SCSI_OFFSET, dcb->sync_offset); /* offset */
2591 DC395x_write8(acb, TRM_S1040_SCSI_SYNC, dcb->sync_period); /* sync period, wide */
2592 DC395x_write16(acb, TRM_S1040_SCSI_CONTROL, DO_DATALATCH); /* it's important for atn stop */
2593 /* SCSI command */
2594 DC395x_write8(acb, TRM_S1040_SCSI_COMMAND, SCMD_MSGACCEPT);
2595 }
2596
2597
tagq_blacklist(char * name)2598 static inline u8 tagq_blacklist(char *name)
2599 {
2600 #ifndef DC395x_NO_TAGQ
2601 #if 0
2602 u8 i;
2603 for (i = 0; i < BADDEVCNT; i++)
2604 if (memcmp(name, DC395x_baddevname1[i], 28) == 0)
2605 return 1;
2606 #endif
2607 return 0;
2608 #else
2609 return 1;
2610 #endif
2611 }
2612
2613
disc_tagq_set(struct DeviceCtlBlk * dcb,struct ScsiInqData * ptr)2614 static void disc_tagq_set(struct DeviceCtlBlk *dcb, struct ScsiInqData *ptr)
2615 {
2616 /* Check for SCSI format (ANSI and Response data format) */
2617 if ((ptr->Vers & 0x07) >= 2 || (ptr->RDF & 0x0F) == 2) {
2618 if ((ptr->Flags & SCSI_INQ_CMDQUEUE)
2619 && (dcb->dev_mode & NTC_DO_TAG_QUEUEING) &&
2620 /*(dcb->dev_mode & NTC_DO_DISCONNECT) */
2621 /* ((dcb->dev_type == TYPE_DISK)
2622 || (dcb->dev_type == TYPE_MOD)) && */
2623 !tagq_blacklist(((char *)ptr) + 8)) {
2624 if (dcb->max_command == 1)
2625 dcb->max_command =
2626 dcb->acb->tag_max_num;
2627 dcb->sync_mode |= EN_TAG_QUEUEING;
2628 /*dcb->tag_mask = 0; */
2629 } else
2630 dcb->max_command = 1;
2631 }
2632 }
2633
2634
add_dev(struct AdapterCtlBlk * acb,struct DeviceCtlBlk * dcb,struct ScsiInqData * ptr)2635 static void add_dev(struct AdapterCtlBlk *acb, struct DeviceCtlBlk *dcb,
2636 struct ScsiInqData *ptr)
2637 {
2638 u8 bval1 = ptr->DevType & SCSI_DEVTYPE;
2639 dcb->dev_type = bval1;
2640 /* if (bval1 == TYPE_DISK || bval1 == TYPE_MOD) */
2641 disc_tagq_set(dcb, ptr);
2642 }
2643
2644
2645 /* unmap mapped pci regions from SRB */
pci_unmap_srb(struct AdapterCtlBlk * acb,struct ScsiReqBlk * srb)2646 static void pci_unmap_srb(struct AdapterCtlBlk *acb, struct ScsiReqBlk *srb)
2647 {
2648 struct scsi_cmnd *cmd = srb->cmd;
2649 enum dma_data_direction dir = cmd->sc_data_direction;
2650
2651 if (scsi_sg_count(cmd) && dir != DMA_NONE) {
2652 /* unmap DC395x SG list */
2653 dma_unmap_single(&acb->dev->dev, srb->sg_bus_addr, SEGMENTX_LEN,
2654 DMA_TO_DEVICE);
2655 /* unmap the sg segments */
2656 scsi_dma_unmap(cmd);
2657 }
2658 }
2659
2660
2661 /* unmap mapped pci sense buffer from SRB */
pci_unmap_srb_sense(struct AdapterCtlBlk * acb,struct ScsiReqBlk * srb)2662 static void pci_unmap_srb_sense(struct AdapterCtlBlk *acb,
2663 struct ScsiReqBlk *srb)
2664 {
2665 if (!(srb->flag & AUTO_REQSENSE))
2666 return;
2667 /* Unmap sense buffer */
2668 dma_unmap_single(&acb->dev->dev, srb->segment_x[0].address,
2669 srb->segment_x[0].length, DMA_FROM_DEVICE);
2670 /* Restore SG stuff */
2671 srb->total_xfer_length = srb->xferred;
2672 srb->segment_x[0].address =
2673 srb->segment_x[DC395x_MAX_SG_LISTENTRY - 1].address;
2674 srb->segment_x[0].length =
2675 srb->segment_x[DC395x_MAX_SG_LISTENTRY - 1].length;
2676 }
2677
2678
2679 /*
2680 * Complete execution of a SCSI command
2681 * Signal completion to the generic SCSI driver
2682 */
srb_done(struct AdapterCtlBlk * acb,struct DeviceCtlBlk * dcb,struct ScsiReqBlk * srb)2683 static void srb_done(struct AdapterCtlBlk *acb, struct DeviceCtlBlk *dcb,
2684 struct ScsiReqBlk *srb)
2685 {
2686 u8 tempcnt, status;
2687 struct scsi_cmnd *cmd = srb->cmd;
2688 enum dma_data_direction dir = cmd->sc_data_direction;
2689 int ckc_only = 1;
2690
2691 status = srb->target_status;
2692 set_host_byte(cmd, DID_OK);
2693 set_status_byte(cmd, SAM_STAT_GOOD);
2694 if (srb->flag & AUTO_REQSENSE) {
2695 pci_unmap_srb_sense(acb, srb);
2696 /*
2697 ** target status..........................
2698 */
2699 srb->flag &= ~AUTO_REQSENSE;
2700 srb->adapter_status = 0;
2701 srb->target_status = SAM_STAT_CHECK_CONDITION;
2702
2703 if (status == SAM_STAT_CHECK_CONDITION) {
2704 set_host_byte(cmd, DID_BAD_TARGET);
2705 goto ckc_e;
2706 }
2707
2708 set_status_byte(cmd, SAM_STAT_CHECK_CONDITION);
2709
2710 goto ckc_e;
2711 }
2712
2713 /*************************************************************/
2714 if (status) {
2715 /*
2716 * target status..........................
2717 */
2718 if (status == SAM_STAT_CHECK_CONDITION) {
2719 request_sense(acb, dcb, srb);
2720 return;
2721 } else if (status == SAM_STAT_TASK_SET_FULL) {
2722 tempcnt = (u8)list_size(&dcb->srb_going_list);
2723 if (tempcnt > 1)
2724 tempcnt--;
2725 dcb->max_command = tempcnt;
2726 free_tag(dcb, srb);
2727 list_move(&srb->list, &dcb->srb_waiting_list);
2728 waiting_set_timer(acb, HZ / 20);
2729 srb->adapter_status = 0;
2730 srb->target_status = 0;
2731 return;
2732 } else if (status == SCSI_STAT_SEL_TIMEOUT) {
2733 srb->adapter_status = H_SEL_TIMEOUT;
2734 srb->target_status = 0;
2735 set_host_byte(cmd, DID_NO_CONNECT);
2736 } else {
2737 srb->adapter_status = 0;
2738 set_host_byte(cmd, DID_ERROR);
2739 set_status_byte(cmd, status);
2740 }
2741 } else {
2742 /*
2743 ** process initiator status..........................
2744 */
2745 status = srb->adapter_status;
2746 if (status & H_OVER_UNDER_RUN) {
2747 srb->target_status = 0;
2748 scsi_msg_to_host_byte(cmd, srb->end_message);
2749 } else if (srb->status & PARITY_ERROR) {
2750 set_host_byte(cmd, DID_PARITY);
2751 } else { /* No error */
2752
2753 srb->adapter_status = 0;
2754 srb->target_status = 0;
2755 }
2756 }
2757
2758 ckc_only = 0;
2759 /* Check Error Conditions */
2760 ckc_e:
2761
2762 pci_unmap_srb(acb, srb);
2763
2764 if (cmd->cmnd[0] == INQUIRY) {
2765 unsigned char *base = NULL;
2766 struct ScsiInqData *ptr;
2767 unsigned long flags = 0;
2768 struct scatterlist* sg = scsi_sglist(cmd);
2769 size_t offset = 0, len = sizeof(struct ScsiInqData);
2770
2771 local_irq_save(flags);
2772 base = scsi_kmap_atomic_sg(sg, scsi_sg_count(cmd), &offset, &len);
2773 ptr = (struct ScsiInqData *)(base + offset);
2774
2775 if (!ckc_only && get_host_byte(cmd) == DID_OK
2776 && cmd->cmnd[2] == 0 && scsi_bufflen(cmd) >= 8
2777 && dir != DMA_NONE && ptr && (ptr->Vers & 0x07) >= 2)
2778 dcb->inquiry7 = ptr->Flags;
2779
2780 /*if( srb->cmd->cmnd[0] == INQUIRY && */
2781 /* (host_byte(cmd->result) == DID_OK || status_byte(cmd->result) & CHECK_CONDITION) ) */
2782 if ((get_host_byte(cmd) == DID_OK) ||
2783 (get_status_byte(cmd) == SAM_STAT_CHECK_CONDITION)) {
2784 if (!dcb->init_tcq_flag) {
2785 add_dev(acb, dcb, ptr);
2786 dcb->init_tcq_flag = 1;
2787 }
2788 }
2789
2790 scsi_kunmap_atomic_sg(base);
2791 local_irq_restore(flags);
2792 }
2793
2794 /* Here is the info for Doug Gilbert's sg3 ... */
2795 scsi_set_resid(cmd, srb->total_xfer_length);
2796
2797 if (srb != acb->tmp_srb) {
2798 /* Add to free list */
2799 list_move_tail(&srb->list, &acb->srb_free_list);
2800 }
2801
2802 scsi_done(cmd);
2803 waiting_process_next(acb);
2804 }
2805
2806
2807 /* abort all cmds in our queues */
doing_srb_done(struct AdapterCtlBlk * acb,u8 did_flag,struct scsi_cmnd * cmd,u8 force)2808 static void doing_srb_done(struct AdapterCtlBlk *acb, u8 did_flag,
2809 struct scsi_cmnd *cmd, u8 force)
2810 {
2811 struct DeviceCtlBlk *dcb;
2812
2813 list_for_each_entry(dcb, &acb->dcb_list, list) {
2814 struct ScsiReqBlk *srb;
2815 struct ScsiReqBlk *tmp;
2816 struct scsi_cmnd *p;
2817
2818 list_for_each_entry_safe(srb, tmp, &dcb->srb_going_list, list) {
2819 p = srb->cmd;
2820 printk("G:%p(%02i-%i) ", p,
2821 p->device->id, (u8)p->device->lun);
2822 list_del(&srb->list);
2823 free_tag(dcb, srb);
2824 list_add_tail(&srb->list, &acb->srb_free_list);
2825 set_host_byte(p, did_flag);
2826 set_status_byte(p, SAM_STAT_GOOD);
2827 pci_unmap_srb_sense(acb, srb);
2828 pci_unmap_srb(acb, srb);
2829 if (force) {
2830 /* For new EH, we normally don't need to give commands back,
2831 * as they all complete or all time out */
2832 scsi_done(p);
2833 }
2834 }
2835
2836 /* Waiting queue */
2837 list_for_each_entry_safe(srb, tmp, &dcb->srb_waiting_list, list) {
2838 p = srb->cmd;
2839
2840 printk("W:%p<%02i-%i>", p, p->device->id,
2841 (u8)p->device->lun);
2842 list_move_tail(&srb->list, &acb->srb_free_list);
2843 set_host_byte(p, did_flag);
2844 set_status_byte(p, SAM_STAT_GOOD);
2845 pci_unmap_srb_sense(acb, srb);
2846 pci_unmap_srb(acb, srb);
2847 if (force) {
2848 /* For new EH, we normally don't need to give commands back,
2849 * as they all complete or all time out */
2850 scsi_done(cmd);
2851 }
2852 }
2853 dcb->flag &= ~ABORT_DEV_;
2854 }
2855 }
2856
2857
reset_scsi_bus(struct AdapterCtlBlk * acb)2858 static void reset_scsi_bus(struct AdapterCtlBlk *acb)
2859 {
2860 acb->acb_flag |= RESET_DEV; /* RESET_DETECT, RESET_DONE, RESET_DEV */
2861 DC395x_write16(acb, TRM_S1040_SCSI_CONTROL, DO_RSTSCSI);
2862
2863 while (!(DC395x_read8(acb, TRM_S1040_SCSI_INTSTATUS) & INT_SCSIRESET))
2864 /* nothing */;
2865 }
2866
2867
set_basic_config(struct AdapterCtlBlk * acb)2868 static void set_basic_config(struct AdapterCtlBlk *acb)
2869 {
2870 u8 bval;
2871 u16 wval;
2872 DC395x_write8(acb, TRM_S1040_SCSI_TIMEOUT, acb->sel_timeout);
2873 if (acb->config & HCC_PARITY)
2874 bval = PHASELATCH | INITIATOR | BLOCKRST | PARITYCHECK;
2875 else
2876 bval = PHASELATCH | INITIATOR | BLOCKRST;
2877
2878 DC395x_write8(acb, TRM_S1040_SCSI_CONFIG0, bval);
2879
2880 /* program configuration 1: Act_Neg (+ Act_Neg_Enh? + Fast_Filter? + DataDis?) */
2881 DC395x_write8(acb, TRM_S1040_SCSI_CONFIG1, 0x03); /* was 0x13: default */
2882 /* program Host ID */
2883 DC395x_write8(acb, TRM_S1040_SCSI_HOSTID, acb->scsi_host->this_id);
2884 /* set ansynchronous transfer */
2885 DC395x_write8(acb, TRM_S1040_SCSI_OFFSET, 0x00);
2886 /* Turn LED control off */
2887 wval = DC395x_read16(acb, TRM_S1040_GEN_CONTROL) & 0x7F;
2888 DC395x_write16(acb, TRM_S1040_GEN_CONTROL, wval);
2889 /* DMA config */
2890 wval = DC395x_read16(acb, TRM_S1040_DMA_CONFIG) & ~DMA_FIFO_CTRL;
2891 wval |=
2892 DMA_FIFO_HALF_HALF | DMA_ENHANCE /*| DMA_MEM_MULTI_READ */ ;
2893 DC395x_write16(acb, TRM_S1040_DMA_CONFIG, wval);
2894 /* Clear pending interrupt status */
2895 DC395x_read8(acb, TRM_S1040_SCSI_INTSTATUS);
2896 /* Enable SCSI interrupt */
2897 DC395x_write8(acb, TRM_S1040_SCSI_INTEN, 0x7F);
2898 DC395x_write8(acb, TRM_S1040_DMA_INTEN, EN_SCSIINTR | EN_DMAXFERERROR
2899 /*| EN_DMAXFERABORT | EN_DMAXFERCOMP | EN_FORCEDMACOMP */
2900 );
2901 }
2902
2903
scsi_reset_detect(struct AdapterCtlBlk * acb)2904 static void scsi_reset_detect(struct AdapterCtlBlk *acb)
2905 {
2906 /* delay half a second */
2907 if (timer_pending(&acb->waiting_timer))
2908 timer_delete(&acb->waiting_timer);
2909
2910 DC395x_write8(acb, TRM_S1040_SCSI_CONTROL, DO_RSTMODULE);
2911 DC395x_write8(acb, TRM_S1040_DMA_CONTROL, DMARESETMODULE);
2912 /*DC395x_write8(acb, TRM_S1040_DMA_CONTROL,STOPDMAXFER); */
2913 udelay(500);
2914 /* Maybe we locked up the bus? Then lets wait even longer ... */
2915 acb->last_reset =
2916 jiffies + 5 * HZ / 2 +
2917 HZ * acb->eeprom.delay_time;
2918
2919 clear_fifo(acb, "scsi_reset_detect");
2920 set_basic_config(acb);
2921 /*1.25 */
2922 /*DC395x_write16(acb, TRM_S1040_SCSI_CONTROL, DO_HWRESELECT); */
2923
2924 if (acb->acb_flag & RESET_DEV) { /* RESET_DETECT, RESET_DONE, RESET_DEV */
2925 acb->acb_flag |= RESET_DONE;
2926 } else {
2927 acb->acb_flag |= RESET_DETECT;
2928 reset_dev_param(acb);
2929 doing_srb_done(acb, DID_RESET, NULL, 1);
2930 /*DC395x_RecoverSRB( acb ); */
2931 acb->active_dcb = NULL;
2932 acb->acb_flag = 0;
2933 waiting_process_next(acb);
2934 }
2935 }
2936
2937
request_sense(struct AdapterCtlBlk * acb,struct DeviceCtlBlk * dcb,struct ScsiReqBlk * srb)2938 static void request_sense(struct AdapterCtlBlk *acb, struct DeviceCtlBlk *dcb,
2939 struct ScsiReqBlk *srb)
2940 {
2941 struct scsi_cmnd *cmd = srb->cmd;
2942
2943 srb->flag |= AUTO_REQSENSE;
2944 srb->adapter_status = 0;
2945 srb->target_status = 0;
2946
2947 /* KG: Can this prevent crap sense data ? */
2948 memset(cmd->sense_buffer, 0, SCSI_SENSE_BUFFERSIZE);
2949
2950 /* Save some data */
2951 srb->segment_x[DC395x_MAX_SG_LISTENTRY - 1].address =
2952 srb->segment_x[0].address;
2953 srb->segment_x[DC395x_MAX_SG_LISTENTRY - 1].length =
2954 srb->segment_x[0].length;
2955 srb->xferred = srb->total_xfer_length;
2956 /* srb->segment_x : a one entry of S/G list table */
2957 srb->total_xfer_length = SCSI_SENSE_BUFFERSIZE;
2958 srb->segment_x[0].length = SCSI_SENSE_BUFFERSIZE;
2959 /* Map sense buffer */
2960 srb->segment_x[0].address = dma_map_single(&acb->dev->dev,
2961 cmd->sense_buffer, SCSI_SENSE_BUFFERSIZE,
2962 DMA_FROM_DEVICE);
2963 srb->sg_count = 1;
2964 srb->sg_index = 0;
2965
2966 if (start_scsi(acb, dcb, srb)) { /* Should only happen, if sb. else grabs the bus */
2967 list_move(&srb->list, &dcb->srb_waiting_list);
2968 waiting_set_timer(acb, HZ / 100);
2969 }
2970 }
2971
2972
2973 /**
2974 * device_alloc - Allocate a new device instance. This create the
2975 * devices instance and sets up all the data items. The adapter
2976 * instance is required to obtain confiuration information for this
2977 * device. This does *not* add this device to the adapters device
2978 * list.
2979 *
2980 * @acb: The adapter to obtain configuration information from.
2981 * @target: The target for the new device.
2982 * @lun: The lun for the new device.
2983 *
2984 * Return the new device if successful or NULL on failure.
2985 **/
device_alloc(struct AdapterCtlBlk * acb,u8 target,u8 lun)2986 static struct DeviceCtlBlk *device_alloc(struct AdapterCtlBlk *acb,
2987 u8 target, u8 lun)
2988 {
2989 struct NvRamType *eeprom = &acb->eeprom;
2990 u8 period_index = eeprom->target[target].period & 0x07;
2991 struct DeviceCtlBlk *dcb;
2992
2993 dcb = kmalloc(sizeof(struct DeviceCtlBlk), GFP_ATOMIC);
2994 if (!dcb)
2995 return NULL;
2996 dcb->acb = NULL;
2997 INIT_LIST_HEAD(&dcb->srb_going_list);
2998 INIT_LIST_HEAD(&dcb->srb_waiting_list);
2999 dcb->active_srb = NULL;
3000 dcb->tag_mask = 0;
3001 dcb->max_command = 1;
3002 dcb->target_id = target;
3003 dcb->target_lun = lun;
3004 dcb->dev_mode = eeprom->target[target].cfg0;
3005 #ifndef DC395x_NO_DISCONNECT
3006 dcb->identify_msg =
3007 IDENTIFY(dcb->dev_mode & NTC_DO_DISCONNECT, lun);
3008 #else
3009 dcb->identify_msg = IDENTIFY(0, lun);
3010 #endif
3011 dcb->inquiry7 = 0;
3012 dcb->sync_mode = 0;
3013 dcb->min_nego_period = clock_period[period_index];
3014 dcb->sync_period = 0;
3015 dcb->sync_offset = 0;
3016 dcb->flag = 0;
3017
3018 #ifndef DC395x_NO_WIDE
3019 if ((dcb->dev_mode & NTC_DO_WIDE_NEGO)
3020 && (acb->config & HCC_WIDE_CARD))
3021 dcb->sync_mode |= WIDE_NEGO_ENABLE;
3022 #endif
3023 #ifndef DC395x_NO_SYNC
3024 if (dcb->dev_mode & NTC_DO_SYNC_NEGO)
3025 if (!(lun) || current_sync_offset)
3026 dcb->sync_mode |= SYNC_NEGO_ENABLE;
3027 #endif
3028 if (dcb->target_lun != 0) {
3029 /* Copy settings */
3030 struct DeviceCtlBlk *p = NULL, *iter;
3031
3032 list_for_each_entry(iter, &acb->dcb_list, list)
3033 if (iter->target_id == dcb->target_id) {
3034 p = iter;
3035 break;
3036 }
3037
3038 if (!p) {
3039 kfree(dcb);
3040 return NULL;
3041 }
3042
3043 dcb->sync_mode = p->sync_mode;
3044 dcb->sync_period = p->sync_period;
3045 dcb->min_nego_period = p->min_nego_period;
3046 dcb->sync_offset = p->sync_offset;
3047 dcb->inquiry7 = p->inquiry7;
3048 }
3049 return dcb;
3050 }
3051
3052
3053 /**
3054 * adapter_add_device - Adds the device instance to the adaptor instance.
3055 *
3056 * @acb: The adapter device to be updated
3057 * @dcb: A newly created and initialised device instance to add.
3058 **/
adapter_add_device(struct AdapterCtlBlk * acb,struct DeviceCtlBlk * dcb)3059 static void adapter_add_device(struct AdapterCtlBlk *acb,
3060 struct DeviceCtlBlk *dcb)
3061 {
3062 /* backpointer to adapter */
3063 dcb->acb = acb;
3064
3065 /* set run_robin to this device if it is currently empty */
3066 if (list_empty(&acb->dcb_list))
3067 acb->dcb_run_robin = dcb;
3068
3069 /* add device to list */
3070 list_add_tail(&dcb->list, &acb->dcb_list);
3071
3072 /* update device maps */
3073 acb->dcb_map[dcb->target_id] |= (1 << dcb->target_lun);
3074 acb->children[dcb->target_id][dcb->target_lun] = dcb;
3075 }
3076
3077
3078 /**
3079 * adapter_remove_device - Removes the device instance from the adaptor
3080 * instance. The device instance is not check in any way or freed by this.
3081 * The caller is expected to take care of that. This will simply remove the
3082 * device from the adapters data strcutures.
3083 *
3084 * @acb: The adapter device to be updated
3085 * @dcb: A device that has previously been added to the adapter.
3086 **/
adapter_remove_device(struct AdapterCtlBlk * acb,struct DeviceCtlBlk * dcb)3087 static void adapter_remove_device(struct AdapterCtlBlk *acb,
3088 struct DeviceCtlBlk *dcb)
3089 {
3090 struct DeviceCtlBlk *i;
3091 struct DeviceCtlBlk *tmp;
3092
3093 /* fix up any pointers to this device that we have in the adapter */
3094 if (acb->active_dcb == dcb)
3095 acb->active_dcb = NULL;
3096 if (acb->dcb_run_robin == dcb)
3097 acb->dcb_run_robin = dcb_get_next(&acb->dcb_list, dcb);
3098
3099 /* unlink from list */
3100 list_for_each_entry_safe(i, tmp, &acb->dcb_list, list)
3101 if (dcb == i) {
3102 list_del(&i->list);
3103 break;
3104 }
3105
3106 /* clear map and children */
3107 acb->dcb_map[dcb->target_id] &= ~(1 << dcb->target_lun);
3108 acb->children[dcb->target_id][dcb->target_lun] = NULL;
3109 dcb->acb = NULL;
3110 }
3111
3112
3113 /**
3114 * adapter_remove_and_free_device - Removes a single device from the adapter
3115 * and then frees the device information.
3116 *
3117 * @acb: The adapter device to be updated
3118 * @dcb: A device that has previously been added to the adapter.
3119 */
adapter_remove_and_free_device(struct AdapterCtlBlk * acb,struct DeviceCtlBlk * dcb)3120 static void adapter_remove_and_free_device(struct AdapterCtlBlk *acb,
3121 struct DeviceCtlBlk *dcb)
3122 {
3123 if (list_size(&dcb->srb_going_list) > 1) {
3124 return;
3125 }
3126 adapter_remove_device(acb, dcb);
3127 kfree(dcb);
3128 }
3129
3130
3131 /**
3132 * adapter_remove_and_free_all_devices - Removes and frees all of the
3133 * devices associated with the specified adapter.
3134 *
3135 * @acb: The adapter from which all devices should be removed.
3136 **/
adapter_remove_and_free_all_devices(struct AdapterCtlBlk * acb)3137 static void adapter_remove_and_free_all_devices(struct AdapterCtlBlk* acb)
3138 {
3139 struct DeviceCtlBlk *dcb;
3140 struct DeviceCtlBlk *tmp;
3141
3142 list_for_each_entry_safe(dcb, tmp, &acb->dcb_list, list)
3143 adapter_remove_and_free_device(acb, dcb);
3144 }
3145
3146
3147 /**
3148 * dc395x_sdev_init - Called by the scsi mid layer to tell us about a new
3149 * scsi device that we need to deal with. We allocate a new device and then
3150 * insert that device into the adapters device list.
3151 *
3152 * @scsi_device: The new scsi device that we need to handle.
3153 **/
dc395x_sdev_init(struct scsi_device * scsi_device)3154 static int dc395x_sdev_init(struct scsi_device *scsi_device)
3155 {
3156 struct AdapterCtlBlk *acb = (struct AdapterCtlBlk *)scsi_device->host->hostdata;
3157 struct DeviceCtlBlk *dcb;
3158
3159 dcb = device_alloc(acb, scsi_device->id, scsi_device->lun);
3160 if (!dcb)
3161 return -ENOMEM;
3162 adapter_add_device(acb, dcb);
3163
3164 return 0;
3165 }
3166
3167
3168 /**
3169 * dc395x_sdev_destroy - Called by the scsi mid layer to tell us about a
3170 * device that is going away.
3171 *
3172 * @scsi_device: The new scsi device that we need to handle.
3173 **/
dc395x_sdev_destroy(struct scsi_device * scsi_device)3174 static void dc395x_sdev_destroy(struct scsi_device *scsi_device)
3175 {
3176 struct AdapterCtlBlk *acb = (struct AdapterCtlBlk *)scsi_device->host->hostdata;
3177 struct DeviceCtlBlk *dcb = find_dcb(acb, scsi_device->id, scsi_device->lun);
3178 if (dcb)
3179 adapter_remove_and_free_device(acb, dcb);
3180 }
3181
3182
3183
3184
3185 /**
3186 * trms1040_wait_30us: wait for 30 us
3187 *
3188 * Waits for 30us (using the chip by the looks of it..)
3189 *
3190 * @io_port: base I/O address
3191 **/
trms1040_wait_30us(unsigned long io_port)3192 static void trms1040_wait_30us(unsigned long io_port)
3193 {
3194 /* ScsiPortStallExecution(30); wait 30 us */
3195 outb(5, io_port + TRM_S1040_GEN_TIMER);
3196 while (!(inb(io_port + TRM_S1040_GEN_STATUS) & GTIMEOUT))
3197 /* nothing */ ;
3198 }
3199
3200
3201 /**
3202 * trms1040_write_cmd - write the secified command and address to
3203 * chip
3204 *
3205 * @io_port: base I/O address
3206 * @cmd: SB + op code (command) to send
3207 * @addr: address to send
3208 **/
trms1040_write_cmd(unsigned long io_port,u8 cmd,u8 addr)3209 static void trms1040_write_cmd(unsigned long io_port, u8 cmd, u8 addr)
3210 {
3211 int i;
3212 u8 send_data;
3213
3214 /* program SB + OP code */
3215 for (i = 0; i < 3; i++, cmd <<= 1) {
3216 send_data = NVR_SELECT;
3217 if (cmd & 0x04) /* Start from bit 2 */
3218 send_data |= NVR_BITOUT;
3219
3220 outb(send_data, io_port + TRM_S1040_GEN_NVRAM);
3221 trms1040_wait_30us(io_port);
3222 outb((send_data | NVR_CLOCK),
3223 io_port + TRM_S1040_GEN_NVRAM);
3224 trms1040_wait_30us(io_port);
3225 }
3226
3227 /* send address */
3228 for (i = 0; i < 7; i++, addr <<= 1) {
3229 send_data = NVR_SELECT;
3230 if (addr & 0x40) /* Start from bit 6 */
3231 send_data |= NVR_BITOUT;
3232
3233 outb(send_data, io_port + TRM_S1040_GEN_NVRAM);
3234 trms1040_wait_30us(io_port);
3235 outb((send_data | NVR_CLOCK),
3236 io_port + TRM_S1040_GEN_NVRAM);
3237 trms1040_wait_30us(io_port);
3238 }
3239 outb(NVR_SELECT, io_port + TRM_S1040_GEN_NVRAM);
3240 trms1040_wait_30us(io_port);
3241 }
3242
3243
3244 /**
3245 * trms1040_set_data - store a single byte in the eeprom
3246 *
3247 * Called from write all to write a single byte into the SSEEPROM
3248 * Which is done one bit at a time.
3249 *
3250 * @io_port: base I/O address
3251 * @addr: offset into EEPROM
3252 * @byte: bytes to write
3253 **/
trms1040_set_data(unsigned long io_port,u8 addr,u8 byte)3254 static void trms1040_set_data(unsigned long io_port, u8 addr, u8 byte)
3255 {
3256 int i;
3257 u8 send_data;
3258
3259 /* Send write command & address */
3260 trms1040_write_cmd(io_port, 0x05, addr);
3261
3262 /* Write data */
3263 for (i = 0; i < 8; i++, byte <<= 1) {
3264 send_data = NVR_SELECT;
3265 if (byte & 0x80) /* Start from bit 7 */
3266 send_data |= NVR_BITOUT;
3267
3268 outb(send_data, io_port + TRM_S1040_GEN_NVRAM);
3269 trms1040_wait_30us(io_port);
3270 outb((send_data | NVR_CLOCK), io_port + TRM_S1040_GEN_NVRAM);
3271 trms1040_wait_30us(io_port);
3272 }
3273 outb(NVR_SELECT, io_port + TRM_S1040_GEN_NVRAM);
3274 trms1040_wait_30us(io_port);
3275
3276 /* Disable chip select */
3277 outb(0, io_port + TRM_S1040_GEN_NVRAM);
3278 trms1040_wait_30us(io_port);
3279
3280 outb(NVR_SELECT, io_port + TRM_S1040_GEN_NVRAM);
3281 trms1040_wait_30us(io_port);
3282
3283 /* Wait for write ready */
3284 while (1) {
3285 outb((NVR_SELECT | NVR_CLOCK), io_port + TRM_S1040_GEN_NVRAM);
3286 trms1040_wait_30us(io_port);
3287
3288 outb(NVR_SELECT, io_port + TRM_S1040_GEN_NVRAM);
3289 trms1040_wait_30us(io_port);
3290
3291 if (inb(io_port + TRM_S1040_GEN_NVRAM) & NVR_BITIN)
3292 break;
3293 }
3294
3295 /* Disable chip select */
3296 outb(0, io_port + TRM_S1040_GEN_NVRAM);
3297 }
3298
3299
3300 /**
3301 * trms1040_write_all - write 128 bytes to the eeprom
3302 *
3303 * Write the supplied 128 bytes to the chips SEEPROM
3304 *
3305 * @eeprom: the data to write
3306 * @io_port: the base io port
3307 **/
trms1040_write_all(struct NvRamType * eeprom,unsigned long io_port)3308 static void trms1040_write_all(struct NvRamType *eeprom, unsigned long io_port)
3309 {
3310 u8 *b_eeprom = (u8 *)eeprom;
3311 u8 addr;
3312
3313 /* Enable SEEPROM */
3314 outb((inb(io_port + TRM_S1040_GEN_CONTROL) | EN_EEPROM),
3315 io_port + TRM_S1040_GEN_CONTROL);
3316
3317 /* write enable */
3318 trms1040_write_cmd(io_port, 0x04, 0xFF);
3319 outb(0, io_port + TRM_S1040_GEN_NVRAM);
3320 trms1040_wait_30us(io_port);
3321
3322 /* write */
3323 for (addr = 0; addr < 128; addr++, b_eeprom++)
3324 trms1040_set_data(io_port, addr, *b_eeprom);
3325
3326 /* write disable */
3327 trms1040_write_cmd(io_port, 0x04, 0x00);
3328 outb(0, io_port + TRM_S1040_GEN_NVRAM);
3329 trms1040_wait_30us(io_port);
3330
3331 /* Disable SEEPROM */
3332 outb((inb(io_port + TRM_S1040_GEN_CONTROL) & ~EN_EEPROM),
3333 io_port + TRM_S1040_GEN_CONTROL);
3334 }
3335
3336
3337 /**
3338 * trms1040_get_data - get a single byte from the eeprom
3339 *
3340 * Called from read all to read a single byte into the SSEEPROM
3341 * Which is done one bit at a time.
3342 *
3343 * @io_port: base I/O address
3344 * @addr: offset into SEEPROM
3345 *
3346 * Returns the byte read.
3347 **/
trms1040_get_data(unsigned long io_port,u8 addr)3348 static u8 trms1040_get_data(unsigned long io_port, u8 addr)
3349 {
3350 int i;
3351 u8 read_byte;
3352 u8 result = 0;
3353
3354 /* Send read command & address */
3355 trms1040_write_cmd(io_port, 0x06, addr);
3356
3357 /* read data */
3358 for (i = 0; i < 8; i++) {
3359 outb((NVR_SELECT | NVR_CLOCK), io_port + TRM_S1040_GEN_NVRAM);
3360 trms1040_wait_30us(io_port);
3361 outb(NVR_SELECT, io_port + TRM_S1040_GEN_NVRAM);
3362
3363 /* Get data bit while falling edge */
3364 read_byte = inb(io_port + TRM_S1040_GEN_NVRAM);
3365 result <<= 1;
3366 if (read_byte & NVR_BITIN)
3367 result |= 1;
3368
3369 trms1040_wait_30us(io_port);
3370 }
3371
3372 /* Disable chip select */
3373 outb(0, io_port + TRM_S1040_GEN_NVRAM);
3374 return result;
3375 }
3376
3377
3378 /**
3379 * trms1040_read_all - read all bytes from the eeprom
3380 *
3381 * Read the 128 bytes from the SEEPROM.
3382 *
3383 * @eeprom: where to store the data
3384 * @io_port: the base io port
3385 **/
trms1040_read_all(struct NvRamType * eeprom,unsigned long io_port)3386 static void trms1040_read_all(struct NvRamType *eeprom, unsigned long io_port)
3387 {
3388 u8 *b_eeprom = (u8 *)eeprom;
3389 u8 addr;
3390
3391 /* Enable SEEPROM */
3392 outb((inb(io_port + TRM_S1040_GEN_CONTROL) | EN_EEPROM),
3393 io_port + TRM_S1040_GEN_CONTROL);
3394
3395 /* read details */
3396 for (addr = 0; addr < 128; addr++, b_eeprom++)
3397 *b_eeprom = trms1040_get_data(io_port, addr);
3398
3399 /* Disable SEEPROM */
3400 outb((inb(io_port + TRM_S1040_GEN_CONTROL) & ~EN_EEPROM),
3401 io_port + TRM_S1040_GEN_CONTROL);
3402 }
3403
3404
3405
3406 /**
3407 * check_eeprom - get and check contents of the eeprom
3408 *
3409 * Read seeprom 128 bytes into the memory provider in eeprom.
3410 * Checks the checksum and if it's not correct it uses a set of default
3411 * values.
3412 *
3413 * @eeprom: caller allocated strcuture to read the eeprom data into
3414 * @io_port: io port to read from
3415 **/
check_eeprom(struct NvRamType * eeprom,unsigned long io_port)3416 static void check_eeprom(struct NvRamType *eeprom, unsigned long io_port)
3417 {
3418 u16 *w_eeprom = (u16 *)eeprom;
3419 u16 w_addr;
3420 u16 cksum;
3421 u32 d_addr;
3422 u32 *d_eeprom;
3423
3424 trms1040_read_all(eeprom, io_port); /* read eeprom */
3425
3426 cksum = 0;
3427 for (w_addr = 0, w_eeprom = (u16 *)eeprom; w_addr < 64;
3428 w_addr++, w_eeprom++)
3429 cksum += *w_eeprom;
3430 if (cksum != 0x1234) {
3431 /*
3432 * Checksum is wrong.
3433 * Load a set of defaults into the eeprom buffer
3434 */
3435 eeprom->sub_vendor_id[0] = (u8)PCI_VENDOR_ID_TEKRAM;
3436 eeprom->sub_vendor_id[1] = (u8)(PCI_VENDOR_ID_TEKRAM >> 8);
3437 eeprom->sub_sys_id[0] = (u8)PCI_DEVICE_ID_TEKRAM_TRMS1040;
3438 eeprom->sub_sys_id[1] =
3439 (u8)(PCI_DEVICE_ID_TEKRAM_TRMS1040 >> 8);
3440 eeprom->sub_class = 0x00;
3441 eeprom->vendor_id[0] = (u8)PCI_VENDOR_ID_TEKRAM;
3442 eeprom->vendor_id[1] = (u8)(PCI_VENDOR_ID_TEKRAM >> 8);
3443 eeprom->device_id[0] = (u8)PCI_DEVICE_ID_TEKRAM_TRMS1040;
3444 eeprom->device_id[1] =
3445 (u8)(PCI_DEVICE_ID_TEKRAM_TRMS1040 >> 8);
3446 eeprom->reserved = 0x00;
3447
3448 for (d_addr = 0, d_eeprom = (u32 *)eeprom->target;
3449 d_addr < 16; d_addr++, d_eeprom++)
3450 *d_eeprom = 0x00000077; /* cfg3,cfg2,period,cfg0 */
3451
3452 *d_eeprom++ = 0x04000F07; /* max_tag,delay_time,channel_cfg,scsi_id */
3453 *d_eeprom++ = 0x00000015; /* reserved1,boot_lun,boot_target,reserved0 */
3454 for (d_addr = 0; d_addr < 12; d_addr++, d_eeprom++)
3455 *d_eeprom = 0x00;
3456
3457 /* Now load defaults (maybe set by boot/module params) */
3458 set_safe_settings();
3459 fix_settings();
3460 eeprom_override(eeprom);
3461
3462 eeprom->cksum = 0x00;
3463 for (w_addr = 0, cksum = 0, w_eeprom = (u16 *)eeprom;
3464 w_addr < 63; w_addr++, w_eeprom++)
3465 cksum += *w_eeprom;
3466
3467 *w_eeprom = 0x1234 - cksum;
3468 trms1040_write_all(eeprom, io_port);
3469 eeprom->delay_time = cfg_data[CFG_RESET_DELAY].value;
3470 } else {
3471 set_safe_settings();
3472 eeprom_index_to_delay(eeprom);
3473 eeprom_override(eeprom);
3474 }
3475 }
3476
3477
3478 /**
3479 * print_eeprom_settings - output the eeprom settings
3480 * to the kernel log so people can see what they were.
3481 *
3482 * @eeprom: The eeprom data strucutre to show details for.
3483 **/
print_eeprom_settings(struct NvRamType * eeprom)3484 static void print_eeprom_settings(struct NvRamType *eeprom)
3485 {
3486 }
3487
3488
3489 /* Free SG tables */
adapter_sg_tables_free(struct AdapterCtlBlk * acb)3490 static void adapter_sg_tables_free(struct AdapterCtlBlk *acb)
3491 {
3492 int i;
3493 const unsigned srbs_per_page = PAGE_SIZE/SEGMENTX_LEN;
3494
3495 for (i = 0; i < DC395x_MAX_SRB_CNT; i += srbs_per_page)
3496 kfree(acb->srb_array[i].segment_x);
3497 }
3498
3499
3500 /*
3501 * Allocate SG tables; as we have to pci_map them, an SG list (struct SGentry*)
3502 * should never cross a page boundary */
adapter_sg_tables_alloc(struct AdapterCtlBlk * acb)3503 static int adapter_sg_tables_alloc(struct AdapterCtlBlk *acb)
3504 {
3505 const unsigned mem_needed = (DC395x_MAX_SRB_CNT+1)
3506 *SEGMENTX_LEN;
3507 int pages = (mem_needed+(PAGE_SIZE-1))/PAGE_SIZE;
3508 const unsigned srbs_per_page = PAGE_SIZE/SEGMENTX_LEN;
3509 int srb_idx = 0;
3510 unsigned i = 0;
3511 struct SGentry *ptr;
3512
3513 for (i = 0; i < DC395x_MAX_SRB_CNT; i++)
3514 acb->srb_array[i].segment_x = NULL;
3515
3516 while (pages--) {
3517 ptr = kmalloc(PAGE_SIZE, GFP_KERNEL);
3518 if (!ptr) {
3519 adapter_sg_tables_free(acb);
3520 return 1;
3521 }
3522 i = 0;
3523 while (i < srbs_per_page && srb_idx < DC395x_MAX_SRB_CNT)
3524 acb->srb_array[srb_idx++].segment_x =
3525 ptr + (i++ * DC395x_MAX_SG_LISTENTRY);
3526 }
3527 if (i < srbs_per_page)
3528 acb->srb.segment_x =
3529 ptr + (i * DC395x_MAX_SG_LISTENTRY);
3530 return 0;
3531 }
3532
3533
3534
3535 /**
3536 * adapter_print_config - print adapter connection and termination
3537 * config
3538 *
3539 * The io port in the adapter needs to have been set before calling
3540 * this function.
3541 *
3542 * @acb: The adapter to print the information for.
3543 **/
adapter_print_config(struct AdapterCtlBlk * acb)3544 static void adapter_print_config(struct AdapterCtlBlk *acb)
3545 {
3546 u8 bval;
3547
3548 bval = DC395x_read8(acb, TRM_S1040_GEN_STATUS);
3549 if (!(bval & CON5068))
3550 printk("ext%s ", !(bval & EXT68HIGH) ? "68" : "50");
3551 if (!(bval & CON68))
3552 printk("int68%s ", !(bval & INT68HIGH) ? "" : "(50)");
3553 if (!(bval & CON50))
3554 printk("int50 ");
3555 if ((bval & (CON5068 | CON50 | CON68)) ==
3556 0 /*(CON5068 | CON50 | CON68) */ )
3557 printk(" Oops! (All 3?) ");
3558 bval = DC395x_read8(acb, TRM_S1040_GEN_CONTROL);
3559 printk(" Termination: ");
3560 if (bval & DIS_TERM)
3561 printk("Disabled\n");
3562 else {
3563 if (bval & AUTOTERM)
3564 printk("Auto ");
3565 if (bval & LOW8TERM)
3566 printk("Low ");
3567 if (bval & UP8TERM)
3568 printk("High ");
3569 printk("\n");
3570 }
3571 }
3572
3573
3574 /**
3575 * adapter_init_params - Initialize the various parameters in the
3576 * adapter structure. Note that the pointer to the scsi_host is set
3577 * early (when this instance is created) and the io_port and irq
3578 * values are set later after they have been reserved. This just gets
3579 * everything set to a good starting position.
3580 *
3581 * The eeprom structure in the adapter needs to have been set before
3582 * calling this function.
3583 *
3584 * @acb: The adapter to initialize.
3585 **/
adapter_init_params(struct AdapterCtlBlk * acb)3586 static void adapter_init_params(struct AdapterCtlBlk *acb)
3587 {
3588 struct NvRamType *eeprom = &acb->eeprom;
3589 int i;
3590
3591 /* NOTE: acb->scsi_host is set at scsi_host/acb creation time */
3592 /* NOTE: acb->io_port_base is set at port registration time */
3593 /* NOTE: acb->io_port_len is set at port registration time */
3594
3595 INIT_LIST_HEAD(&acb->dcb_list);
3596 acb->dcb_run_robin = NULL;
3597 acb->active_dcb = NULL;
3598
3599 INIT_LIST_HEAD(&acb->srb_free_list);
3600 /* temp SRB for Q tag used or abort command used */
3601 acb->tmp_srb = &acb->srb;
3602 timer_setup(&acb->waiting_timer, waiting_timeout, 0);
3603 timer_setup(&acb->selto_timer, NULL, 0);
3604
3605 acb->srb_count = DC395x_MAX_SRB_CNT;
3606
3607 acb->sel_timeout = DC395x_SEL_TIMEOUT; /* timeout=250ms */
3608 /* NOTE: acb->irq_level is set at IRQ registration time */
3609
3610 acb->tag_max_num = 1 << eeprom->max_tag;
3611 if (acb->tag_max_num > 30)
3612 acb->tag_max_num = 30;
3613
3614 acb->acb_flag = 0; /* RESET_DETECT, RESET_DONE, RESET_DEV */
3615 acb->gmode2 = eeprom->channel_cfg;
3616 acb->config = 0; /* NOTE: actually set in adapter_init_chip */
3617
3618 if (eeprom->channel_cfg & NAC_SCANLUN)
3619 acb->lun_chk = 1;
3620 acb->scan_devices = 1;
3621
3622 acb->scsi_host->this_id = eeprom->scsi_id;
3623 acb->hostid_bit = (1 << acb->scsi_host->this_id);
3624
3625 for (i = 0; i < DC395x_MAX_SCSI_ID; i++)
3626 acb->dcb_map[i] = 0;
3627
3628 acb->msg_len = 0;
3629
3630 /* link static array of srbs into the srb free list */
3631 for (i = 0; i < acb->srb_count - 1; i++)
3632 list_add_tail(&acb->srb_array[i].list, &acb->srb_free_list);
3633 }
3634
3635
3636 /**
3637 * adapter_init_scsi_host - Initialize the scsi host instance based on
3638 * values that we have already stored in the adapter instance. There's
3639 * some mention that a lot of these are deprecated, so we won't use
3640 * them (we'll use the ones in the adapter instance) but we'll fill
3641 * them in in case something else needs them.
3642 *
3643 * The eeprom structure, irq and io ports in the adapter need to have
3644 * been set before calling this function.
3645 *
3646 * @host: The scsi host instance to fill in the values for.
3647 **/
adapter_init_scsi_host(struct Scsi_Host * host)3648 static void adapter_init_scsi_host(struct Scsi_Host *host)
3649 {
3650 struct AdapterCtlBlk *acb = (struct AdapterCtlBlk *)host->hostdata;
3651 struct NvRamType *eeprom = &acb->eeprom;
3652
3653 host->max_cmd_len = 24;
3654 host->can_queue = DC395x_MAX_CMD_QUEUE;
3655 host->cmd_per_lun = DC395x_MAX_CMD_PER_LUN;
3656 host->this_id = (int)eeprom->scsi_id;
3657 host->io_port = acb->io_port_base;
3658 host->n_io_port = acb->io_port_len;
3659 host->dma_channel = -1;
3660 host->unique_id = acb->io_port_base;
3661 host->irq = acb->irq_level;
3662 acb->last_reset = jiffies;
3663
3664 host->max_id = 16;
3665 if (host->max_id - 1 == eeprom->scsi_id)
3666 host->max_id--;
3667
3668 if (eeprom->channel_cfg & NAC_SCANLUN)
3669 host->max_lun = 8;
3670 else
3671 host->max_lun = 1;
3672 }
3673
3674
3675 /**
3676 * adapter_init_chip - Get the chip into a know state and figure out
3677 * some of the settings that apply to this adapter.
3678 *
3679 * The io port in the adapter needs to have been set before calling
3680 * this function. The config will be configured correctly on return.
3681 *
3682 * @acb: The adapter which we are to init.
3683 **/
adapter_init_chip(struct AdapterCtlBlk * acb)3684 static void adapter_init_chip(struct AdapterCtlBlk *acb)
3685 {
3686 struct NvRamType *eeprom = &acb->eeprom;
3687
3688 /* Mask all the interrupt */
3689 DC395x_write8(acb, TRM_S1040_DMA_INTEN, 0x00);
3690 DC395x_write8(acb, TRM_S1040_SCSI_INTEN, 0x00);
3691
3692 /* Reset SCSI module */
3693 DC395x_write16(acb, TRM_S1040_SCSI_CONTROL, DO_RSTMODULE);
3694
3695 /* Reset PCI/DMA module */
3696 DC395x_write8(acb, TRM_S1040_DMA_CONTROL, DMARESETMODULE);
3697 udelay(20);
3698
3699 /* program configuration 0 */
3700 acb->config = HCC_AUTOTERM | HCC_PARITY;
3701 if (DC395x_read8(acb, TRM_S1040_GEN_STATUS) & WIDESCSI)
3702 acb->config |= HCC_WIDE_CARD;
3703
3704 if (eeprom->channel_cfg & NAC_POWERON_SCSI_RESET)
3705 acb->config |= HCC_SCSI_RESET;
3706
3707 if (acb->config & HCC_SCSI_RESET) {
3708 DC395x_write8(acb, TRM_S1040_SCSI_CONTROL, DO_RSTSCSI);
3709
3710 /*while (!( DC395x_read8(acb, TRM_S1040_SCSI_INTSTATUS) & INT_SCSIRESET )); */
3711 /*spin_unlock_irq (&io_request_lock); */
3712 udelay(500);
3713
3714 acb->last_reset =
3715 jiffies + HZ / 2 +
3716 HZ * acb->eeprom.delay_time;
3717
3718 /*spin_lock_irq (&io_request_lock); */
3719 }
3720 }
3721
3722
3723 /**
3724 * adapter_init - Grab the resource for the card, setup the adapter
3725 * information, set the card into a known state, create the various
3726 * tables etc etc. This basically gets all adapter information all up
3727 * to date, initialised and gets the chip in sync with it.
3728 *
3729 * @acb: The adapter which we are to init.
3730 * @io_port: The base I/O port
3731 * @io_port_len: The I/O port size
3732 * @irq: IRQ
3733 *
3734 * Returns 0 if the initialization succeeds, any other value on
3735 * failure.
3736 **/
adapter_init(struct AdapterCtlBlk * acb,unsigned long io_port,u32 io_port_len,unsigned int irq)3737 static int adapter_init(struct AdapterCtlBlk *acb, unsigned long io_port,
3738 u32 io_port_len, unsigned int irq)
3739 {
3740 if (!request_region(io_port, io_port_len, DC395X_NAME)) {
3741 goto failed;
3742 }
3743 /* store port base to indicate we have registered it */
3744 acb->io_port_base = io_port;
3745 acb->io_port_len = io_port_len;
3746
3747 if (request_irq(irq, dc395x_interrupt, IRQF_SHARED, DC395X_NAME, acb)) {
3748 /* release the region we just claimed */
3749 goto failed;
3750 }
3751 /* store irq to indicate we have registered it */
3752 acb->irq_level = irq;
3753
3754 /* get eeprom configuration information and command line settings etc */
3755 check_eeprom(&acb->eeprom, io_port);
3756 print_eeprom_settings(&acb->eeprom);
3757
3758 /* setup adapter control block */
3759 adapter_init_params(acb);
3760
3761 /* display card connectors/termination settings */
3762 adapter_print_config(acb);
3763
3764 if (adapter_sg_tables_alloc(acb)) {
3765 goto failed;
3766 }
3767 adapter_init_scsi_host(acb->scsi_host);
3768 adapter_init_chip(acb);
3769 set_basic_config(acb);
3770
3771 return 0;
3772
3773 failed:
3774 if (acb->irq_level)
3775 free_irq(acb->irq_level, acb);
3776 if (acb->io_port_base)
3777 release_region(acb->io_port_base, acb->io_port_len);
3778 adapter_sg_tables_free(acb);
3779
3780 return 1;
3781 }
3782
3783
3784 /**
3785 * adapter_uninit_chip - cleanly shut down the scsi controller chip,
3786 * stopping all operations and disabling interrupt generation on the
3787 * card.
3788 *
3789 * @acb: The adapter which we are to shutdown.
3790 **/
adapter_uninit_chip(struct AdapterCtlBlk * acb)3791 static void adapter_uninit_chip(struct AdapterCtlBlk *acb)
3792 {
3793 /* disable interrupts */
3794 DC395x_write8(acb, TRM_S1040_DMA_INTEN, 0);
3795 DC395x_write8(acb, TRM_S1040_SCSI_INTEN, 0);
3796
3797 /* reset the scsi bus */
3798 if (acb->config & HCC_SCSI_RESET)
3799 reset_scsi_bus(acb);
3800
3801 /* clear any pending interrupt state */
3802 DC395x_read8(acb, TRM_S1040_SCSI_INTSTATUS);
3803 }
3804
3805
3806
3807 /**
3808 * adapter_uninit - Shut down the chip and release any resources that
3809 * we had allocated. Once this returns the adapter should not be used
3810 * anymore.
3811 *
3812 * @acb: The adapter which we are to un-initialize.
3813 **/
adapter_uninit(struct AdapterCtlBlk * acb)3814 static void adapter_uninit(struct AdapterCtlBlk *acb)
3815 {
3816 unsigned long flags;
3817 DC395x_LOCK_IO(acb->scsi_host, flags);
3818
3819 /* remove timers */
3820 if (timer_pending(&acb->waiting_timer))
3821 timer_delete(&acb->waiting_timer);
3822 if (timer_pending(&acb->selto_timer))
3823 timer_delete(&acb->selto_timer);
3824
3825 adapter_uninit_chip(acb);
3826 adapter_remove_and_free_all_devices(acb);
3827 DC395x_UNLOCK_IO(acb->scsi_host, flags);
3828
3829 if (acb->irq_level)
3830 free_irq(acb->irq_level, acb);
3831 if (acb->io_port_base)
3832 release_region(acb->io_port_base, acb->io_port_len);
3833
3834 adapter_sg_tables_free(acb);
3835 }
3836
3837
3838 #undef YESNO
3839 #define YESNO(YN) \
3840 if (YN) seq_printf(m, " Yes ");\
3841 else seq_printf(m, " No ")
3842
dc395x_show_info(struct seq_file * m,struct Scsi_Host * host)3843 static int dc395x_show_info(struct seq_file *m, struct Scsi_Host *host)
3844 {
3845 struct AdapterCtlBlk *acb = (struct AdapterCtlBlk *)host->hostdata;
3846 int spd, spd1;
3847 struct DeviceCtlBlk *dcb;
3848 unsigned long flags;
3849 int dev;
3850
3851 seq_puts(m, DC395X_BANNER " PCI SCSI Host Adapter\n"
3852 " Driver Version " DC395X_VERSION "\n");
3853
3854 DC395x_LOCK_IO(acb->scsi_host, flags);
3855
3856 seq_printf(m, "SCSI Host Nr %i, ", host->host_no);
3857 seq_printf(m, "DC395U/UW/F DC315/U %s\n",
3858 (acb->config & HCC_WIDE_CARD) ? "Wide" : "");
3859 seq_printf(m, "io_port_base 0x%04lx, ", acb->io_port_base);
3860 seq_printf(m, "irq_level 0x%04x, ", acb->irq_level);
3861 seq_printf(m, " SelTimeout %ims\n", (1638 * acb->sel_timeout) / 1000);
3862
3863 seq_printf(m, "MaxID %i, MaxLUN %llu, ", host->max_id, host->max_lun);
3864 seq_printf(m, "AdapterID %i\n", host->this_id);
3865
3866 seq_printf(m, "tag_max_num %i", acb->tag_max_num);
3867 /*seq_printf(m, ", DMA_Status %i\n", DC395x_read8(acb, TRM_S1040_DMA_STATUS)); */
3868 seq_printf(m, ", FilterCfg 0x%02x",
3869 DC395x_read8(acb, TRM_S1040_SCSI_CONFIG1));
3870 seq_printf(m, ", DelayReset %is\n", acb->eeprom.delay_time);
3871 /*seq_printf(m, "\n"); */
3872
3873 seq_printf(m, "Nr of DCBs: %i\n", list_size(&acb->dcb_list));
3874 seq_printf(m, "Map of attached LUNs: %8ph\n", &acb->dcb_map[0]);
3875 seq_printf(m, " %8ph\n", &acb->dcb_map[8]);
3876
3877 seq_puts(m,
3878 "Un ID LUN Prty Sync Wide DsCn SndS TagQ nego_period SyncFreq SyncOffs MaxCmd\n");
3879
3880 dev = 0;
3881 list_for_each_entry(dcb, &acb->dcb_list, list) {
3882 int nego_period;
3883 seq_printf(m, "%02i %02i %02i ", dev, dcb->target_id,
3884 dcb->target_lun);
3885 YESNO(dcb->dev_mode & NTC_DO_PARITY_CHK);
3886 YESNO(dcb->sync_offset);
3887 YESNO(dcb->sync_period & WIDE_SYNC);
3888 YESNO(dcb->dev_mode & NTC_DO_DISCONNECT);
3889 YESNO(dcb->dev_mode & NTC_DO_SEND_START);
3890 YESNO(dcb->sync_mode & EN_TAG_QUEUEING);
3891 nego_period = clock_period[dcb->sync_period & 0x07] << 2;
3892 if (dcb->sync_offset)
3893 seq_printf(m, " %03i ns ", nego_period);
3894 else
3895 seq_printf(m, " (%03i ns)", (dcb->min_nego_period << 2));
3896
3897 if (dcb->sync_offset & 0x0f) {
3898 spd = 1000 / (nego_period);
3899 spd1 = 1000 % (nego_period);
3900 spd1 = (spd1 * 10 + nego_period / 2) / (nego_period);
3901 seq_printf(m, " %2i.%1i M %02i ", spd, spd1,
3902 (dcb->sync_offset & 0x0f));
3903 } else
3904 seq_puts(m, " ");
3905
3906 /* Add more info ... */
3907 seq_printf(m, " %02i\n", dcb->max_command);
3908 dev++;
3909 }
3910
3911 if (timer_pending(&acb->waiting_timer))
3912 seq_puts(m, "Waiting queue timer running\n");
3913 else
3914 seq_putc(m, '\n');
3915
3916 list_for_each_entry(dcb, &acb->dcb_list, list) {
3917 struct ScsiReqBlk *srb;
3918 if (!list_empty(&dcb->srb_waiting_list))
3919 seq_printf(m, "DCB (%02i-%i): Waiting: %i:",
3920 dcb->target_id, dcb->target_lun,
3921 list_size(&dcb->srb_waiting_list));
3922 list_for_each_entry(srb, &dcb->srb_waiting_list, list)
3923 seq_printf(m, " %p", srb->cmd);
3924 if (!list_empty(&dcb->srb_going_list))
3925 seq_printf(m, "\nDCB (%02i-%i): Going : %i:",
3926 dcb->target_id, dcb->target_lun,
3927 list_size(&dcb->srb_going_list));
3928 list_for_each_entry(srb, &dcb->srb_going_list, list)
3929 seq_printf(m, " %p", srb->cmd);
3930 if (!list_empty(&dcb->srb_waiting_list) || !list_empty(&dcb->srb_going_list))
3931 seq_putc(m, '\n');
3932 }
3933
3934 DC395x_UNLOCK_IO(acb->scsi_host, flags);
3935 return 0;
3936 }
3937
3938
3939 static const struct scsi_host_template dc395x_driver_template = {
3940 .module = THIS_MODULE,
3941 .proc_name = DC395X_NAME,
3942 .show_info = dc395x_show_info,
3943 .name = DC395X_BANNER " " DC395X_VERSION,
3944 .queuecommand = dc395x_queue_command,
3945 .sdev_init = dc395x_sdev_init,
3946 .sdev_destroy = dc395x_sdev_destroy,
3947 .can_queue = DC395x_MAX_CAN_QUEUE,
3948 .this_id = 7,
3949 .sg_tablesize = DC395x_MAX_SG_TABLESIZE,
3950 .cmd_per_lun = DC395x_MAX_CMD_PER_LUN,
3951 .eh_abort_handler = dc395x_eh_abort,
3952 .eh_bus_reset_handler = dc395x_eh_bus_reset,
3953 .dma_boundary = PAGE_SIZE - 1,
3954 };
3955
3956
3957 /**
3958 * dc395x_init_one - Initialise a single instance of the adapter.
3959 *
3960 * The PCI layer will call this once for each instance of the adapter
3961 * that it finds in the system. The pci_dev strcuture indicates which
3962 * instance we are being called from.
3963 *
3964 * @dev: The PCI device to initialize.
3965 * @id: Looks like a pointer to the entry in our pci device table
3966 * that was actually matched by the PCI subsystem.
3967 *
3968 * Returns 0 on success, or an error code (-ve) on failure.
3969 **/
dc395x_init_one(struct pci_dev * dev,const struct pci_device_id * id)3970 static int dc395x_init_one(struct pci_dev *dev, const struct pci_device_id *id)
3971 {
3972 struct Scsi_Host *scsi_host = NULL;
3973 struct AdapterCtlBlk *acb = NULL;
3974 unsigned long io_port_base;
3975 unsigned int io_port_len;
3976 unsigned int irq;
3977
3978 if (pci_enable_device(dev))
3979 return -ENODEV;
3980
3981 io_port_base = pci_resource_start(dev, 0) & PCI_BASE_ADDRESS_IO_MASK;
3982 io_port_len = pci_resource_len(dev, 0);
3983 irq = dev->irq;
3984
3985 /* allocate scsi host information (includes out adapter) */
3986 scsi_host = scsi_host_alloc(&dc395x_driver_template,
3987 sizeof(struct AdapterCtlBlk));
3988 if (!scsi_host)
3989 goto fail;
3990
3991 acb = (struct AdapterCtlBlk*)scsi_host->hostdata;
3992 acb->scsi_host = scsi_host;
3993 acb->dev = dev;
3994
3995 /* initialise the adapter and everything we need */
3996 if (adapter_init(acb, io_port_base, io_port_len, irq)) {
3997 acb = NULL;
3998 goto fail;
3999 }
4000
4001 pci_set_master(dev);
4002
4003 /* get the scsi mid level to scan for new devices on the bus */
4004 if (scsi_add_host(scsi_host, &dev->dev))
4005 goto fail;
4006
4007 pci_set_drvdata(dev, scsi_host);
4008 scsi_scan_host(scsi_host);
4009
4010 return 0;
4011
4012 fail:
4013 if (acb != NULL)
4014 adapter_uninit(acb);
4015 if (scsi_host != NULL)
4016 scsi_host_put(scsi_host);
4017 pci_disable_device(dev);
4018 return -ENODEV;
4019 }
4020
4021
4022 /**
4023 * dc395x_remove_one - Called to remove a single instance of the
4024 * adapter.
4025 *
4026 * @dev: The PCI device to initialize.
4027 **/
dc395x_remove_one(struct pci_dev * dev)4028 static void dc395x_remove_one(struct pci_dev *dev)
4029 {
4030 struct Scsi_Host *scsi_host = pci_get_drvdata(dev);
4031 struct AdapterCtlBlk *acb = (struct AdapterCtlBlk *)(scsi_host->hostdata);
4032
4033 scsi_remove_host(scsi_host);
4034 adapter_uninit(acb);
4035 pci_disable_device(dev);
4036 scsi_host_put(scsi_host);
4037 }
4038
4039
4040 static const struct pci_device_id dc395x_pci_table[] = {
4041 {
4042 .vendor = PCI_VENDOR_ID_TEKRAM,
4043 .device = PCI_DEVICE_ID_TEKRAM_TRMS1040,
4044 .subvendor = PCI_ANY_ID,
4045 .subdevice = PCI_ANY_ID,
4046 },
4047 {} /* Terminating entry */
4048 };
4049 MODULE_DEVICE_TABLE(pci, dc395x_pci_table);
4050
4051
4052 static struct pci_driver dc395x_driver = {
4053 .name = DC395X_NAME,
4054 .id_table = dc395x_pci_table,
4055 .probe = dc395x_init_one,
4056 .remove = dc395x_remove_one,
4057 };
4058 module_pci_driver(dc395x_driver);
4059
4060 MODULE_AUTHOR("C.L. Huang / Erich Chen / Kurt Garloff");
4061 MODULE_DESCRIPTION("SCSI host adapter driver for Tekram TRM-S1040 based adapters: Tekram DC395 and DC315 series");
4062 MODULE_LICENSE("GPL");
4063