blob: 81b983c7a7d0d95200bdfbc1caf2c37541375c4d [file] [log] [blame]
Linus Torvalds1da177e2005-04-16 15:20:36 -07001/*
2 * IEEE 1394 for Linux
3 *
4 * Transaction support.
5 *
6 * Copyright (C) 1999 Andreas E. Bombe
7 *
8 * This code is licensed under the GPL. See the file COPYING in the root
9 * directory of the kernel sources for details.
10 */
11
12#include <linux/sched.h>
13#include <linux/bitops.h>
14#include <linux/smp_lock.h>
15#include <linux/interrupt.h>
16
17#include <asm/errno.h>
18
19#include "ieee1394.h"
20#include "ieee1394_types.h"
21#include "hosts.h"
22#include "ieee1394_core.h"
23#include "highlevel.h"
24#include "nodemgr.h"
Adrian Bunke27d3012005-11-19 21:23:48 -050025#include "ieee1394_transactions.h"
Linus Torvalds1da177e2005-04-16 15:20:36 -070026
27
28#define PREP_ASYNC_HEAD_ADDRESS(tc) \
29 packet->tcode = tc; \
30 packet->header[0] = (packet->node_id << 16) | (packet->tlabel << 10) \
31 | (1 << 8) | (tc << 4); \
32 packet->header[1] = (packet->host->node_id << 16) | (addr >> 32); \
33 packet->header[2] = addr & 0xffffffff
34
35
36static void fill_async_readquad(struct hpsb_packet *packet, u64 addr)
37{
38 PREP_ASYNC_HEAD_ADDRESS(TCODE_READQ);
39 packet->header_size = 12;
40 packet->data_size = 0;
41 packet->expect_response = 1;
42}
43
44static void fill_async_readblock(struct hpsb_packet *packet, u64 addr, int length)
45{
46 PREP_ASYNC_HEAD_ADDRESS(TCODE_READB);
47 packet->header[3] = length << 16;
48 packet->header_size = 16;
49 packet->data_size = 0;
50 packet->expect_response = 1;
51}
52
53static void fill_async_writequad(struct hpsb_packet *packet, u64 addr, quadlet_t data)
54{
55 PREP_ASYNC_HEAD_ADDRESS(TCODE_WRITEQ);
56 packet->header[3] = data;
57 packet->header_size = 16;
58 packet->data_size = 0;
59 packet->expect_response = 1;
60}
61
62static void fill_async_writeblock(struct hpsb_packet *packet, u64 addr, int length)
63{
64 PREP_ASYNC_HEAD_ADDRESS(TCODE_WRITEB);
65 packet->header[3] = length << 16;
66 packet->header_size = 16;
67 packet->expect_response = 1;
68 packet->data_size = length + (length % 4 ? 4 - (length % 4) : 0);
69}
70
71static void fill_async_lock(struct hpsb_packet *packet, u64 addr, int extcode,
72 int length)
73{
74 PREP_ASYNC_HEAD_ADDRESS(TCODE_LOCK_REQUEST);
75 packet->header[3] = (length << 16) | extcode;
76 packet->header_size = 16;
77 packet->data_size = length;
78 packet->expect_response = 1;
79}
80
81static void fill_iso_packet(struct hpsb_packet *packet, int length, int channel,
82 int tag, int sync)
83{
84 packet->header[0] = (length << 16) | (tag << 14) | (channel << 8)
85 | (TCODE_ISO_DATA << 4) | sync;
86
87 packet->header_size = 4;
88 packet->data_size = length;
89 packet->type = hpsb_iso;
90 packet->tcode = TCODE_ISO_DATA;
91}
92
93static void fill_phy_packet(struct hpsb_packet *packet, quadlet_t data)
94{
95 packet->header[0] = data;
96 packet->header[1] = ~data;
97 packet->header_size = 8;
98 packet->data_size = 0;
99 packet->expect_response = 0;
100 packet->type = hpsb_raw; /* No CRC added */
101 packet->speed_code = IEEE1394_SPEED_100; /* Force speed to be 100Mbps */
102}
103
104static void fill_async_stream_packet(struct hpsb_packet *packet, int length,
105 int channel, int tag, int sync)
106{
107 packet->header[0] = (length << 16) | (tag << 14) | (channel << 8)
108 | (TCODE_STREAM_DATA << 4) | sync;
109
110 packet->header_size = 4;
111 packet->data_size = length;
112 packet->type = hpsb_async;
113 packet->tcode = TCODE_ISO_DATA;
114}
115
116/**
117 * hpsb_get_tlabel - allocate a transaction label
118 * @packet: the packet who's tlabel/tpool we set
119 *
120 * Every asynchronous transaction on the 1394 bus needs a transaction
121 * label to match the response to the request. This label has to be
122 * different from any other transaction label in an outstanding request to
123 * the same node to make matching possible without ambiguity.
124 *
125 * There are 64 different tlabels, so an allocated tlabel has to be freed
126 * with hpsb_free_tlabel() after the transaction is complete (unless it's
127 * reused again for the same target node).
128 *
129 * Return value: Zero on success, otherwise non-zero. A non-zero return
130 * generally means there are no available tlabels. If this is called out
131 * of interrupt or atomic context, then it will sleep until can return a
132 * tlabel.
133 */
134int hpsb_get_tlabel(struct hpsb_packet *packet)
135{
136 unsigned long flags;
137 struct hpsb_tlabel_pool *tp;
138
139 tp = &packet->host->tpool[packet->node_id & NODE_MASK];
140
141 if (irqs_disabled() || in_atomic()) {
142 if (down_trylock(&tp->count))
143 return 1;
144 } else {
145 down(&tp->count);
146 }
147
148 spin_lock_irqsave(&tp->lock, flags);
149
150 packet->tlabel = find_next_zero_bit(tp->pool, 64, tp->next);
151 if (packet->tlabel > 63)
152 packet->tlabel = find_first_zero_bit(tp->pool, 64);
153 tp->next = (packet->tlabel + 1) % 64;
154 /* Should _never_ happen */
155 BUG_ON(test_and_set_bit(packet->tlabel, tp->pool));
156 tp->allocations++;
157 spin_unlock_irqrestore(&tp->lock, flags);
158
159 return 0;
160}
161
162/**
163 * hpsb_free_tlabel - free an allocated transaction label
164 * @packet: packet whos tlabel/tpool needs to be cleared
165 *
166 * Frees the transaction label allocated with hpsb_get_tlabel(). The
167 * tlabel has to be freed after the transaction is complete (i.e. response
168 * was received for a split transaction or packet was sent for a unified
169 * transaction).
170 *
171 * A tlabel must not be freed twice.
172 */
173void hpsb_free_tlabel(struct hpsb_packet *packet)
174{
175 unsigned long flags;
176 struct hpsb_tlabel_pool *tp;
177
178 tp = &packet->host->tpool[packet->node_id & NODE_MASK];
179
180 BUG_ON(packet->tlabel > 63 || packet->tlabel < 0);
181
182 spin_lock_irqsave(&tp->lock, flags);
183 BUG_ON(!test_and_clear_bit(packet->tlabel, tp->pool));
184 spin_unlock_irqrestore(&tp->lock, flags);
185
186 up(&tp->count);
187}
188
189
190
191int hpsb_packet_success(struct hpsb_packet *packet)
192{
193 switch (packet->ack_code) {
194 case ACK_PENDING:
195 switch ((packet->header[1] >> 12) & 0xf) {
196 case RCODE_COMPLETE:
197 return 0;
198 case RCODE_CONFLICT_ERROR:
199 return -EAGAIN;
200 case RCODE_DATA_ERROR:
201 return -EREMOTEIO;
202 case RCODE_TYPE_ERROR:
203 return -EACCES;
204 case RCODE_ADDRESS_ERROR:
205 return -EINVAL;
206 default:
207 HPSB_ERR("received reserved rcode %d from node %d",
208 (packet->header[1] >> 12) & 0xf,
209 packet->node_id);
210 return -EAGAIN;
211 }
212 HPSB_PANIC("reached unreachable code 1 in %s", __FUNCTION__);
213
214 case ACK_BUSY_X:
215 case ACK_BUSY_A:
216 case ACK_BUSY_B:
217 return -EBUSY;
218
219 case ACK_TYPE_ERROR:
220 return -EACCES;
221
222 case ACK_COMPLETE:
223 if (packet->tcode == TCODE_WRITEQ
224 || packet->tcode == TCODE_WRITEB) {
225 return 0;
226 } else {
227 HPSB_ERR("impossible ack_complete from node %d "
228 "(tcode %d)", packet->node_id, packet->tcode);
229 return -EAGAIN;
230 }
231
232
233 case ACK_DATA_ERROR:
234 if (packet->tcode == TCODE_WRITEB
235 || packet->tcode == TCODE_LOCK_REQUEST) {
236 return -EAGAIN;
237 } else {
238 HPSB_ERR("impossible ack_data_error from node %d "
239 "(tcode %d)", packet->node_id, packet->tcode);
240 return -EAGAIN;
241 }
242
243 case ACK_ADDRESS_ERROR:
244 return -EINVAL;
245
246 case ACK_TARDY:
247 case ACK_CONFLICT_ERROR:
248 case ACKX_NONE:
249 case ACKX_SEND_ERROR:
250 case ACKX_ABORTED:
251 case ACKX_TIMEOUT:
252 /* error while sending */
253 return -EAGAIN;
254
255 default:
256 HPSB_ERR("got invalid ack %d from node %d (tcode %d)",
257 packet->ack_code, packet->node_id, packet->tcode);
258 return -EAGAIN;
259 }
260
261 HPSB_PANIC("reached unreachable code 2 in %s", __FUNCTION__);
262}
263
264struct hpsb_packet *hpsb_make_readpacket(struct hpsb_host *host, nodeid_t node,
265 u64 addr, size_t length)
266{
267 struct hpsb_packet *packet;
268
269 if (length == 0)
270 return NULL;
271
272 packet = hpsb_alloc_packet(length);
273 if (!packet)
274 return NULL;
275
276 packet->host = host;
277 packet->node_id = node;
278
279 if (hpsb_get_tlabel(packet)) {
280 hpsb_free_packet(packet);
281 return NULL;
282 }
283
284 if (length == 4)
285 fill_async_readquad(packet, addr);
286 else
287 fill_async_readblock(packet, addr, length);
288
289 return packet;
290}
291
292struct hpsb_packet *hpsb_make_writepacket (struct hpsb_host *host, nodeid_t node,
293 u64 addr, quadlet_t *buffer, size_t length)
294{
295 struct hpsb_packet *packet;
296
297 if (length == 0)
298 return NULL;
299
300 packet = hpsb_alloc_packet(length);
301 if (!packet)
302 return NULL;
303
304 if (length % 4) { /* zero padding bytes */
305 packet->data[length >> 2] = 0;
306 }
307 packet->host = host;
308 packet->node_id = node;
309
310 if (hpsb_get_tlabel(packet)) {
311 hpsb_free_packet(packet);
312 return NULL;
313 }
314
315 if (length == 4) {
316 fill_async_writequad(packet, addr, buffer ? *buffer : 0);
317 } else {
318 fill_async_writeblock(packet, addr, length);
319 if (buffer)
320 memcpy(packet->data, buffer, length);
321 }
322
323 return packet;
324}
325
326struct hpsb_packet *hpsb_make_streampacket(struct hpsb_host *host, u8 *buffer, int length,
327 int channel, int tag, int sync)
328{
329 struct hpsb_packet *packet;
330
331 if (length == 0)
332 return NULL;
333
334 packet = hpsb_alloc_packet(length);
335 if (!packet)
336 return NULL;
337
338 if (length % 4) { /* zero padding bytes */
339 packet->data[length >> 2] = 0;
340 }
341 packet->host = host;
342
343 if (hpsb_get_tlabel(packet)) {
344 hpsb_free_packet(packet);
345 return NULL;
346 }
347
348 fill_async_stream_packet(packet, length, channel, tag, sync);
349 if (buffer)
350 memcpy(packet->data, buffer, length);
351
352 return packet;
353}
354
355struct hpsb_packet *hpsb_make_lockpacket(struct hpsb_host *host, nodeid_t node,
356 u64 addr, int extcode, quadlet_t *data,
357 quadlet_t arg)
358{
359 struct hpsb_packet *p;
360 u32 length;
361
362 p = hpsb_alloc_packet(8);
363 if (!p) return NULL;
364
365 p->host = host;
366 p->node_id = node;
367 if (hpsb_get_tlabel(p)) {
368 hpsb_free_packet(p);
369 return NULL;
370 }
371
372 switch (extcode) {
373 case EXTCODE_FETCH_ADD:
374 case EXTCODE_LITTLE_ADD:
375 length = 4;
376 if (data)
377 p->data[0] = *data;
378 break;
379 default:
380 length = 8;
381 if (data) {
382 p->data[0] = arg;
383 p->data[1] = *data;
384 }
385 break;
386 }
387 fill_async_lock(p, addr, extcode, length);
388
389 return p;
390}
391
392struct hpsb_packet *hpsb_make_lock64packet(struct hpsb_host *host, nodeid_t node,
393 u64 addr, int extcode, octlet_t *data,
394 octlet_t arg)
395{
396 struct hpsb_packet *p;
397 u32 length;
398
399 p = hpsb_alloc_packet(16);
400 if (!p) return NULL;
401
402 p->host = host;
403 p->node_id = node;
404 if (hpsb_get_tlabel(p)) {
405 hpsb_free_packet(p);
406 return NULL;
407 }
408
409 switch (extcode) {
410 case EXTCODE_FETCH_ADD:
411 case EXTCODE_LITTLE_ADD:
412 length = 8;
413 if (data) {
414 p->data[0] = *data >> 32;
415 p->data[1] = *data & 0xffffffff;
416 }
417 break;
418 default:
419 length = 16;
420 if (data) {
421 p->data[0] = arg >> 32;
422 p->data[1] = arg & 0xffffffff;
423 p->data[2] = *data >> 32;
424 p->data[3] = *data & 0xffffffff;
425 }
426 break;
427 }
428 fill_async_lock(p, addr, extcode, length);
429
430 return p;
431}
432
433struct hpsb_packet *hpsb_make_phypacket(struct hpsb_host *host,
434 quadlet_t data)
435{
436 struct hpsb_packet *p;
437
438 p = hpsb_alloc_packet(0);
439 if (!p) return NULL;
440
441 p->host = host;
442 fill_phy_packet(p, data);
443
444 return p;
445}
446
447struct hpsb_packet *hpsb_make_isopacket(struct hpsb_host *host,
448 int length, int channel,
449 int tag, int sync)
450{
451 struct hpsb_packet *p;
452
453 p = hpsb_alloc_packet(length);
454 if (!p) return NULL;
455
456 p->host = host;
457 fill_iso_packet(p, length, channel, tag, sync);
458
459 p->generation = get_hpsb_generation(host);
460
461 return p;
462}
463
464/*
465 * FIXME - these functions should probably read from / write to user space to
466 * avoid in kernel buffers for user space callers
467 */
468
469int hpsb_read(struct hpsb_host *host, nodeid_t node, unsigned int generation,
470 u64 addr, quadlet_t *buffer, size_t length)
471{
472 struct hpsb_packet *packet;
473 int retval = 0;
474
475 if (length == 0)
476 return -EINVAL;
477
478 BUG_ON(in_interrupt()); // We can't be called in an interrupt, yet
479
480 packet = hpsb_make_readpacket(host, node, addr, length);
481
482 if (!packet) {
483 return -ENOMEM;
484 }
485
486 packet->generation = generation;
487 retval = hpsb_send_packet_and_wait(packet);
488 if (retval < 0)
489 goto hpsb_read_fail;
490
491 retval = hpsb_packet_success(packet);
492
493 if (retval == 0) {
494 if (length == 4) {
495 *buffer = packet->header[3];
496 } else {
497 memcpy(buffer, packet->data, length);
498 }
499 }
500
501hpsb_read_fail:
502 hpsb_free_tlabel(packet);
503 hpsb_free_packet(packet);
504
505 return retval;
506}
507
508
509int hpsb_write(struct hpsb_host *host, nodeid_t node, unsigned int generation,
510 u64 addr, quadlet_t *buffer, size_t length)
511{
512 struct hpsb_packet *packet;
513 int retval;
514
515 if (length == 0)
516 return -EINVAL;
517
518 BUG_ON(in_interrupt()); // We can't be called in an interrupt, yet
519
520 packet = hpsb_make_writepacket (host, node, addr, buffer, length);
521
522 if (!packet)
523 return -ENOMEM;
524
525 packet->generation = generation;
526 retval = hpsb_send_packet_and_wait(packet);
527 if (retval < 0)
528 goto hpsb_write_fail;
529
530 retval = hpsb_packet_success(packet);
531
532hpsb_write_fail:
533 hpsb_free_tlabel(packet);
534 hpsb_free_packet(packet);
535
536 return retval;
537}
538
Jody McIntyre9ac485d2005-05-16 21:54:00 -0700539#if 0
Linus Torvalds1da177e2005-04-16 15:20:36 -0700540
541int hpsb_lock(struct hpsb_host *host, nodeid_t node, unsigned int generation,
542 u64 addr, int extcode, quadlet_t *data, quadlet_t arg)
543{
544 struct hpsb_packet *packet;
545 int retval = 0;
546
547 BUG_ON(in_interrupt()); // We can't be called in an interrupt, yet
548
549 packet = hpsb_make_lockpacket(host, node, addr, extcode, data, arg);
550 if (!packet)
551 return -ENOMEM;
552
553 packet->generation = generation;
554 retval = hpsb_send_packet_and_wait(packet);
555 if (retval < 0)
556 goto hpsb_lock_fail;
557
558 retval = hpsb_packet_success(packet);
559
560 if (retval == 0) {
561 *data = packet->data[0];
562 }
563
564hpsb_lock_fail:
565 hpsb_free_tlabel(packet);
566 hpsb_free_packet(packet);
567
568 return retval;
569}
570
571
572int hpsb_send_gasp(struct hpsb_host *host, int channel, unsigned int generation,
573 quadlet_t *buffer, size_t length, u32 specifier_id,
574 unsigned int version)
575{
576 struct hpsb_packet *packet;
577 int retval = 0;
578 u16 specifier_id_hi = (specifier_id & 0x00ffff00) >> 8;
579 u8 specifier_id_lo = specifier_id & 0xff;
580
581 HPSB_VERBOSE("Send GASP: channel = %d, length = %Zd", channel, length);
582
583 length += 8;
584
585 packet = hpsb_make_streampacket(host, NULL, length, channel, 3, 0);
586 if (!packet)
587 return -ENOMEM;
588
589 packet->data[0] = cpu_to_be32((host->node_id << 16) | specifier_id_hi);
590 packet->data[1] = cpu_to_be32((specifier_id_lo << 24) | (version & 0x00ffffff));
591
592 memcpy(&(packet->data[2]), buffer, length - 8);
593
594 packet->generation = generation;
595
596 packet->no_waiter = 1;
597
598 retval = hpsb_send_packet(packet);
599 if (retval < 0)
600 hpsb_free_packet(packet);
601
602 return retval;
603}
Jody McIntyre9ac485d2005-05-16 21:54:00 -0700604
605#endif /* 0 */