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firewire: ohci: prevent aliasing of locally handled register addresses
[net-next-2.6.git] / drivers / firewire / ohci.c
CommitLineData
c781c06d
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1/*
2 * Driver for OHCI 1394 controllers
ed568912 3 *
ed568912
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4 * Copyright (C) 2003-2006 Kristian Hoegsberg <krh@bitplanet.net>
5 *
6 * This program is free software; you can redistribute it and/or modify
7 * it under the terms of the GNU General Public License as published by
8 * the Free Software Foundation; either version 2 of the License, or
9 * (at your option) any later version.
10 *
11 * This program is distributed in the hope that it will be useful,
12 * but WITHOUT ANY WARRANTY; without even the implied warranty of
13 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14 * GNU General Public License for more details.
15 *
16 * You should have received a copy of the GNU General Public License
17 * along with this program; if not, write to the Free Software Foundation,
18 * Inc., 59 Temple Place - Suite 330, Boston, MA 02111-1307, USA.
19 */
20
e524f616 21#include <linux/compiler.h>
ed568912 22#include <linux/delay.h>
e8ca9702 23#include <linux/device.h>
cf3e72fd 24#include <linux/dma-mapping.h>
77c9a5da 25#include <linux/firewire.h>
e8ca9702 26#include <linux/firewire-constants.h>
c26f0234 27#include <linux/gfp.h>
a7fb60db
SR
28#include <linux/init.h>
29#include <linux/interrupt.h>
e8ca9702 30#include <linux/io.h>
a7fb60db 31#include <linux/kernel.h>
e8ca9702 32#include <linux/list.h>
faa2fb4e 33#include <linux/mm.h>
a7fb60db 34#include <linux/module.h>
ad3c0fe8 35#include <linux/moduleparam.h>
a7fb60db 36#include <linux/pci.h>
fc383796 37#include <linux/pci_ids.h>
c26f0234 38#include <linux/spinlock.h>
e8ca9702 39#include <linux/string.h>
cf3e72fd 40
e8ca9702 41#include <asm/byteorder.h>
c26f0234 42#include <asm/page.h>
ee71c2f9 43#include <asm/system.h>
ed568912 44
ea8d006b
SR
45#ifdef CONFIG_PPC_PMAC
46#include <asm/pmac_feature.h>
47#endif
48
77c9a5da
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49#include "core.h"
50#include "ohci.h"
ed568912 51
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52#define DESCRIPTOR_OUTPUT_MORE 0
53#define DESCRIPTOR_OUTPUT_LAST (1 << 12)
54#define DESCRIPTOR_INPUT_MORE (2 << 12)
55#define DESCRIPTOR_INPUT_LAST (3 << 12)
56#define DESCRIPTOR_STATUS (1 << 11)
57#define DESCRIPTOR_KEY_IMMEDIATE (2 << 8)
58#define DESCRIPTOR_PING (1 << 7)
59#define DESCRIPTOR_YY (1 << 6)
60#define DESCRIPTOR_NO_IRQ (0 << 4)
61#define DESCRIPTOR_IRQ_ERROR (1 << 4)
62#define DESCRIPTOR_IRQ_ALWAYS (3 << 4)
63#define DESCRIPTOR_BRANCH_ALWAYS (3 << 2)
64#define DESCRIPTOR_WAIT (3 << 0)
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65
66struct descriptor {
67 __le16 req_count;
68 __le16 control;
69 __le32 data_address;
70 __le32 branch_address;
71 __le16 res_count;
72 __le16 transfer_status;
73} __attribute__((aligned(16)));
74
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75#define CONTROL_SET(regs) (regs)
76#define CONTROL_CLEAR(regs) ((regs) + 4)
77#define COMMAND_PTR(regs) ((regs) + 12)
78#define CONTEXT_MATCH(regs) ((regs) + 16)
72e318e0 79
32b46093 80struct ar_buffer {
ed568912 81 struct descriptor descriptor;
32b46093
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82 struct ar_buffer *next;
83 __le32 data[0];
84};
ed568912 85
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86struct ar_context {
87 struct fw_ohci *ohci;
88 struct ar_buffer *current_buffer;
89 struct ar_buffer *last_buffer;
90 void *pointer;
72e318e0 91 u32 regs;
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92 struct tasklet_struct tasklet;
93};
94
30200739
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95struct context;
96
97typedef int (*descriptor_callback_t)(struct context *ctx,
98 struct descriptor *d,
99 struct descriptor *last);
fe5ca634
DM
100
101/*
102 * A buffer that contains a block of DMA-able coherent memory used for
103 * storing a portion of a DMA descriptor program.
104 */
105struct descriptor_buffer {
106 struct list_head list;
107 dma_addr_t buffer_bus;
108 size_t buffer_size;
109 size_t used;
110 struct descriptor buffer[0];
111};
112
30200739 113struct context {
373b2edd 114 struct fw_ohci *ohci;
30200739 115 u32 regs;
fe5ca634 116 int total_allocation;
373b2edd 117
fe5ca634
DM
118 /*
119 * List of page-sized buffers for storing DMA descriptors.
120 * Head of list contains buffers in use and tail of list contains
121 * free buffers.
122 */
123 struct list_head buffer_list;
124
125 /*
126 * Pointer to a buffer inside buffer_list that contains the tail
127 * end of the current DMA program.
128 */
129 struct descriptor_buffer *buffer_tail;
130
131 /*
132 * The descriptor containing the branch address of the first
133 * descriptor that has not yet been filled by the device.
134 */
135 struct descriptor *last;
136
137 /*
138 * The last descriptor in the DMA program. It contains the branch
139 * address that must be updated upon appending a new descriptor.
140 */
141 struct descriptor *prev;
30200739
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142
143 descriptor_callback_t callback;
144
373b2edd 145 struct tasklet_struct tasklet;
30200739 146};
30200739 147
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148#define IT_HEADER_SY(v) ((v) << 0)
149#define IT_HEADER_TCODE(v) ((v) << 4)
150#define IT_HEADER_CHANNEL(v) ((v) << 8)
151#define IT_HEADER_TAG(v) ((v) << 14)
152#define IT_HEADER_SPEED(v) ((v) << 16)
153#define IT_HEADER_DATA_LENGTH(v) ((v) << 16)
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154
155struct iso_context {
156 struct fw_iso_context base;
30200739 157 struct context context;
0642b657 158 int excess_bytes;
9b32d5f3
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159 void *header;
160 size_t header_length;
ed568912
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161};
162
163#define CONFIG_ROM_SIZE 1024
164
165struct fw_ohci {
166 struct fw_card card;
167
168 __iomem char *registers;
e636fe25 169 int node_id;
ed568912 170 int generation;
e09770db 171 int request_generation; /* for timestamping incoming requests */
4a635593 172 unsigned quirks;
ed568912 173
c781c06d
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174 /*
175 * Spinlock for accessing fw_ohci data. Never call out of
176 * this driver with this lock held.
177 */
ed568912 178 spinlock_t lock;
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179
180 struct ar_context ar_request_ctx;
181 struct ar_context ar_response_ctx;
f319b6a0
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182 struct context at_request_ctx;
183 struct context at_response_ctx;
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184
185 u32 it_context_mask;
186 struct iso_context *it_context_list;
4817ed24 187 u64 ir_context_channels;
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188 u32 ir_context_mask;
189 struct iso_context *ir_context_list;
ecb1cf9c
SR
190
191 __be32 *config_rom;
192 dma_addr_t config_rom_bus;
193 __be32 *next_config_rom;
194 dma_addr_t next_config_rom_bus;
195 __be32 next_header;
196
197 __le32 *self_id_cpu;
198 dma_addr_t self_id_bus;
199 struct tasklet_struct bus_reset_tasklet;
200
201 u32 self_id_buffer[512];
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202};
203
95688e97 204static inline struct fw_ohci *fw_ohci(struct fw_card *card)
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205{
206 return container_of(card, struct fw_ohci, card);
207}
208
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209#define IT_CONTEXT_CYCLE_MATCH_ENABLE 0x80000000
210#define IR_CONTEXT_BUFFER_FILL 0x80000000
211#define IR_CONTEXT_ISOCH_HEADER 0x40000000
212#define IR_CONTEXT_CYCLE_MATCH_ENABLE 0x20000000
213#define IR_CONTEXT_MULTI_CHANNEL_MODE 0x10000000
214#define IR_CONTEXT_DUAL_BUFFER_MODE 0x08000000
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215
216#define CONTEXT_RUN 0x8000
217#define CONTEXT_WAKE 0x1000
218#define CONTEXT_DEAD 0x0800
219#define CONTEXT_ACTIVE 0x0400
220
8b7b6afa 221#define OHCI1394_MAX_AT_REQ_RETRIES 0xf
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222#define OHCI1394_MAX_AT_RESP_RETRIES 0x2
223#define OHCI1394_MAX_PHYS_RESP_RETRIES 0x8
224
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225#define OHCI1394_REGISTER_SIZE 0x800
226#define OHCI_LOOP_COUNT 500
227#define OHCI1394_PCI_HCI_Control 0x40
228#define SELF_ID_BUF_SIZE 0x800
32b46093 229#define OHCI_TCODE_PHY_PACKET 0x0e
e364cf4e 230#define OHCI_VERSION_1_1 0x010010
0edeefd9 231
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232static char ohci_driver_name[] = KBUILD_MODNAME;
233
8301b91b
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234#define PCI_DEVICE_ID_TI_TSB12LV22 0x8009
235
4a635593
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236#define QUIRK_CYCLE_TIMER 1
237#define QUIRK_RESET_PACKET 2
238#define QUIRK_BE_HEADERS 4
239
240/* In case of multiple matches in ohci_quirks[], only the first one is used. */
241static const struct {
242 unsigned short vendor, device, flags;
243} ohci_quirks[] = {
8301b91b
CL
244 {PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_TSB12LV22, QUIRK_CYCLE_TIMER |
245 QUIRK_RESET_PACKET},
4a635593
SR
246 {PCI_VENDOR_ID_TI, PCI_ANY_ID, QUIRK_RESET_PACKET},
247 {PCI_VENDOR_ID_AL, PCI_ANY_ID, QUIRK_CYCLE_TIMER},
248 {PCI_VENDOR_ID_NEC, PCI_ANY_ID, QUIRK_CYCLE_TIMER},
249 {PCI_VENDOR_ID_VIA, PCI_ANY_ID, QUIRK_CYCLE_TIMER},
250 {PCI_VENDOR_ID_APPLE, PCI_DEVICE_ID_APPLE_UNI_N_FW, QUIRK_BE_HEADERS},
251};
252
3e9cc2f3
SR
253/* This overrides anything that was found in ohci_quirks[]. */
254static int param_quirks;
255module_param_named(quirks, param_quirks, int, 0644);
256MODULE_PARM_DESC(quirks, "Chip quirks (default = 0"
257 ", nonatomic cycle timer = " __stringify(QUIRK_CYCLE_TIMER)
258 ", reset packet generation = " __stringify(QUIRK_RESET_PACKET)
259 ", AR/selfID endianess = " __stringify(QUIRK_BE_HEADERS)
260 ")");
261
ad3c0fe8
SR
262#ifdef CONFIG_FIREWIRE_OHCI_DEBUG
263
a007bb85 264#define OHCI_PARAM_DEBUG_AT_AR 1
ad3c0fe8 265#define OHCI_PARAM_DEBUG_SELFIDS 2
a007bb85
SR
266#define OHCI_PARAM_DEBUG_IRQS 4
267#define OHCI_PARAM_DEBUG_BUSRESETS 8 /* only effective before chip init */
ad3c0fe8
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268
269static int param_debug;
270module_param_named(debug, param_debug, int, 0644);
271MODULE_PARM_DESC(debug, "Verbose logging (default = 0"
ad3c0fe8 272 ", AT/AR events = " __stringify(OHCI_PARAM_DEBUG_AT_AR)
a007bb85
SR
273 ", self-IDs = " __stringify(OHCI_PARAM_DEBUG_SELFIDS)
274 ", IRQs = " __stringify(OHCI_PARAM_DEBUG_IRQS)
275 ", busReset events = " __stringify(OHCI_PARAM_DEBUG_BUSRESETS)
ad3c0fe8
SR
276 ", or a combination, or all = -1)");
277
278static void log_irqs(u32 evt)
279{
a007bb85
SR
280 if (likely(!(param_debug &
281 (OHCI_PARAM_DEBUG_IRQS | OHCI_PARAM_DEBUG_BUSRESETS))))
282 return;
283
284 if (!(param_debug & OHCI_PARAM_DEBUG_IRQS) &&
285 !(evt & OHCI1394_busReset))
ad3c0fe8
SR
286 return;
287
168cf9af 288 fw_notify("IRQ %08x%s%s%s%s%s%s%s%s%s%s%s%s%s\n", evt,
161b96e7
SR
289 evt & OHCI1394_selfIDComplete ? " selfID" : "",
290 evt & OHCI1394_RQPkt ? " AR_req" : "",
291 evt & OHCI1394_RSPkt ? " AR_resp" : "",
292 evt & OHCI1394_reqTxComplete ? " AT_req" : "",
293 evt & OHCI1394_respTxComplete ? " AT_resp" : "",
294 evt & OHCI1394_isochRx ? " IR" : "",
295 evt & OHCI1394_isochTx ? " IT" : "",
296 evt & OHCI1394_postedWriteErr ? " postedWriteErr" : "",
297 evt & OHCI1394_cycleTooLong ? " cycleTooLong" : "",
5ed1f321 298 evt & OHCI1394_cycleInconsistent ? " cycleInconsistent" : "",
161b96e7
SR
299 evt & OHCI1394_regAccessFail ? " regAccessFail" : "",
300 evt & OHCI1394_busReset ? " busReset" : "",
301 evt & ~(OHCI1394_selfIDComplete | OHCI1394_RQPkt |
302 OHCI1394_RSPkt | OHCI1394_reqTxComplete |
303 OHCI1394_respTxComplete | OHCI1394_isochRx |
304 OHCI1394_isochTx | OHCI1394_postedWriteErr |
168cf9af 305 OHCI1394_cycleTooLong | OHCI1394_cycleInconsistent |
161b96e7 306 OHCI1394_regAccessFail | OHCI1394_busReset)
ad3c0fe8
SR
307 ? " ?" : "");
308}
309
310static const char *speed[] = {
311 [0] = "S100", [1] = "S200", [2] = "S400", [3] = "beta",
312};
313static const char *power[] = {
314 [0] = "+0W", [1] = "+15W", [2] = "+30W", [3] = "+45W",
315 [4] = "-3W", [5] = " ?W", [6] = "-3..-6W", [7] = "-3..-10W",
316};
317static const char port[] = { '.', '-', 'p', 'c', };
318
319static char _p(u32 *s, int shift)
320{
321 return port[*s >> shift & 3];
322}
323
08ddb2f4 324static void log_selfids(int node_id, int generation, int self_id_count, u32 *s)
ad3c0fe8
SR
325{
326 if (likely(!(param_debug & OHCI_PARAM_DEBUG_SELFIDS)))
327 return;
328
161b96e7
SR
329 fw_notify("%d selfIDs, generation %d, local node ID %04x\n",
330 self_id_count, generation, node_id);
ad3c0fe8
SR
331
332 for (; self_id_count--; ++s)
333 if ((*s & 1 << 23) == 0)
161b96e7
SR
334 fw_notify("selfID 0: %08x, phy %d [%c%c%c] "
335 "%s gc=%d %s %s%s%s\n",
336 *s, *s >> 24 & 63, _p(s, 6), _p(s, 4), _p(s, 2),
337 speed[*s >> 14 & 3], *s >> 16 & 63,
338 power[*s >> 8 & 7], *s >> 22 & 1 ? "L" : "",
339 *s >> 11 & 1 ? "c" : "", *s & 2 ? "i" : "");
ad3c0fe8 340 else
161b96e7
SR
341 fw_notify("selfID n: %08x, phy %d [%c%c%c%c%c%c%c%c]\n",
342 *s, *s >> 24 & 63,
343 _p(s, 16), _p(s, 14), _p(s, 12), _p(s, 10),
344 _p(s, 8), _p(s, 6), _p(s, 4), _p(s, 2));
ad3c0fe8
SR
345}
346
347static const char *evts[] = {
348 [0x00] = "evt_no_status", [0x01] = "-reserved-",
349 [0x02] = "evt_long_packet", [0x03] = "evt_missing_ack",
350 [0x04] = "evt_underrun", [0x05] = "evt_overrun",
351 [0x06] = "evt_descriptor_read", [0x07] = "evt_data_read",
352 [0x08] = "evt_data_write", [0x09] = "evt_bus_reset",
353 [0x0a] = "evt_timeout", [0x0b] = "evt_tcode_err",
354 [0x0c] = "-reserved-", [0x0d] = "-reserved-",
355 [0x0e] = "evt_unknown", [0x0f] = "evt_flushed",
356 [0x10] = "-reserved-", [0x11] = "ack_complete",
357 [0x12] = "ack_pending ", [0x13] = "-reserved-",
358 [0x14] = "ack_busy_X", [0x15] = "ack_busy_A",
359 [0x16] = "ack_busy_B", [0x17] = "-reserved-",
360 [0x18] = "-reserved-", [0x19] = "-reserved-",
361 [0x1a] = "-reserved-", [0x1b] = "ack_tardy",
362 [0x1c] = "-reserved-", [0x1d] = "ack_data_error",
363 [0x1e] = "ack_type_error", [0x1f] = "-reserved-",
364 [0x20] = "pending/cancelled",
365};
366static const char *tcodes[] = {
367 [0x0] = "QW req", [0x1] = "BW req",
368 [0x2] = "W resp", [0x3] = "-reserved-",
369 [0x4] = "QR req", [0x5] = "BR req",
370 [0x6] = "QR resp", [0x7] = "BR resp",
371 [0x8] = "cycle start", [0x9] = "Lk req",
372 [0xa] = "async stream packet", [0xb] = "Lk resp",
373 [0xc] = "-reserved-", [0xd] = "-reserved-",
374 [0xe] = "link internal", [0xf] = "-reserved-",
375};
376static const char *phys[] = {
377 [0x0] = "phy config packet", [0x1] = "link-on packet",
378 [0x2] = "self-id packet", [0x3] = "-reserved-",
379};
380
381static void log_ar_at_event(char dir, int speed, u32 *header, int evt)
382{
383 int tcode = header[0] >> 4 & 0xf;
384 char specific[12];
385
386 if (likely(!(param_debug & OHCI_PARAM_DEBUG_AT_AR)))
387 return;
388
389 if (unlikely(evt >= ARRAY_SIZE(evts)))
390 evt = 0x1f;
391
08ddb2f4 392 if (evt == OHCI1394_evt_bus_reset) {
161b96e7
SR
393 fw_notify("A%c evt_bus_reset, generation %d\n",
394 dir, (header[2] >> 16) & 0xff);
08ddb2f4
SR
395 return;
396 }
397
ad3c0fe8 398 if (header[0] == ~header[1]) {
161b96e7
SR
399 fw_notify("A%c %s, %s, %08x\n",
400 dir, evts[evt], phys[header[0] >> 30 & 0x3], header[0]);
ad3c0fe8
SR
401 return;
402 }
403
404 switch (tcode) {
405 case 0x0: case 0x6: case 0x8:
406 snprintf(specific, sizeof(specific), " = %08x",
407 be32_to_cpu((__force __be32)header[3]));
408 break;
409 case 0x1: case 0x5: case 0x7: case 0x9: case 0xb:
410 snprintf(specific, sizeof(specific), " %x,%x",
411 header[3] >> 16, header[3] & 0xffff);
412 break;
413 default:
414 specific[0] = '\0';
415 }
416
417 switch (tcode) {
418 case 0xe: case 0xa:
161b96e7 419 fw_notify("A%c %s, %s\n", dir, evts[evt], tcodes[tcode]);
ad3c0fe8
SR
420 break;
421 case 0x0: case 0x1: case 0x4: case 0x5: case 0x9:
161b96e7
SR
422 fw_notify("A%c spd %x tl %02x, "
423 "%04x -> %04x, %s, "
424 "%s, %04x%08x%s\n",
425 dir, speed, header[0] >> 10 & 0x3f,
426 header[1] >> 16, header[0] >> 16, evts[evt],
427 tcodes[tcode], header[1] & 0xffff, header[2], specific);
ad3c0fe8
SR
428 break;
429 default:
161b96e7
SR
430 fw_notify("A%c spd %x tl %02x, "
431 "%04x -> %04x, %s, "
432 "%s%s\n",
433 dir, speed, header[0] >> 10 & 0x3f,
434 header[1] >> 16, header[0] >> 16, evts[evt],
435 tcodes[tcode], specific);
ad3c0fe8
SR
436 }
437}
438
439#else
440
441#define log_irqs(evt)
08ddb2f4 442#define log_selfids(node_id, generation, self_id_count, sid)
ad3c0fe8
SR
443#define log_ar_at_event(dir, speed, header, evt)
444
445#endif /* CONFIG_FIREWIRE_OHCI_DEBUG */
446
95688e97 447static inline void reg_write(const struct fw_ohci *ohci, int offset, u32 data)
ed568912
KH
448{
449 writel(data, ohci->registers + offset);
450}
451
95688e97 452static inline u32 reg_read(const struct fw_ohci *ohci, int offset)
ed568912
KH
453{
454 return readl(ohci->registers + offset);
455}
456
95688e97 457static inline void flush_writes(const struct fw_ohci *ohci)
ed568912
KH
458{
459 /* Do a dummy read to flush writes. */
460 reg_read(ohci, OHCI1394_Version);
461}
462
53dca511
SR
463static int ohci_update_phy_reg(struct fw_card *card, int addr,
464 int clear_bits, int set_bits)
ed568912
KH
465{
466 struct fw_ohci *ohci = fw_ohci(card);
467 u32 val, old;
468
469 reg_write(ohci, OHCI1394_PhyControl, OHCI1394_PhyControl_Read(addr));
362e901c 470 flush_writes(ohci);
ed568912
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471 msleep(2);
472 val = reg_read(ohci, OHCI1394_PhyControl);
473 if ((val & OHCI1394_PhyControl_ReadDone) == 0) {
474 fw_error("failed to set phy reg bits.\n");
475 return -EBUSY;
476 }
477
478 old = OHCI1394_PhyControl_ReadData(val);
479 old = (old & ~clear_bits) | set_bits;
480 reg_write(ohci, OHCI1394_PhyControl,
481 OHCI1394_PhyControl_Write(addr, old));
482
483 return 0;
484}
485
32b46093 486static int ar_context_add_page(struct ar_context *ctx)
ed568912 487{
32b46093
KH
488 struct device *dev = ctx->ohci->card.device;
489 struct ar_buffer *ab;
f5101d58 490 dma_addr_t uninitialized_var(ab_bus);
32b46093
KH
491 size_t offset;
492
bde1709a 493 ab = dma_alloc_coherent(dev, PAGE_SIZE, &ab_bus, GFP_ATOMIC);
32b46093
KH
494 if (ab == NULL)
495 return -ENOMEM;
496
a55709ba 497 ab->next = NULL;
2d826cc5 498 memset(&ab->descriptor, 0, sizeof(ab->descriptor));
a77754a7
KH
499 ab->descriptor.control = cpu_to_le16(DESCRIPTOR_INPUT_MORE |
500 DESCRIPTOR_STATUS |
501 DESCRIPTOR_BRANCH_ALWAYS);
32b46093
KH
502 offset = offsetof(struct ar_buffer, data);
503 ab->descriptor.req_count = cpu_to_le16(PAGE_SIZE - offset);
504 ab->descriptor.data_address = cpu_to_le32(ab_bus + offset);
505 ab->descriptor.res_count = cpu_to_le16(PAGE_SIZE - offset);
506 ab->descriptor.branch_address = 0;
507
ec839e43 508 ctx->last_buffer->descriptor.branch_address = cpu_to_le32(ab_bus | 1);
32b46093
KH
509 ctx->last_buffer->next = ab;
510 ctx->last_buffer = ab;
511
a77754a7 512 reg_write(ctx->ohci, CONTROL_SET(ctx->regs), CONTEXT_WAKE);
ed568912 513 flush_writes(ctx->ohci);
32b46093
KH
514
515 return 0;
ed568912
KH
516}
517
a55709ba
JF
518static void ar_context_release(struct ar_context *ctx)
519{
520 struct ar_buffer *ab, *ab_next;
521 size_t offset;
522 dma_addr_t ab_bus;
523
524 for (ab = ctx->current_buffer; ab; ab = ab_next) {
525 ab_next = ab->next;
526 offset = offsetof(struct ar_buffer, data);
527 ab_bus = le32_to_cpu(ab->descriptor.data_address) - offset;
528 dma_free_coherent(ctx->ohci->card.device, PAGE_SIZE,
529 ab, ab_bus);
530 }
531}
532
11bf20ad
SR
533#if defined(CONFIG_PPC_PMAC) && defined(CONFIG_PPC32)
534#define cond_le32_to_cpu(v) \
4a635593 535 (ohci->quirks & QUIRK_BE_HEADERS ? (__force __u32)(v) : le32_to_cpu(v))
11bf20ad
SR
536#else
537#define cond_le32_to_cpu(v) le32_to_cpu(v)
538#endif
539
32b46093 540static __le32 *handle_ar_packet(struct ar_context *ctx, __le32 *buffer)
ed568912 541{
ed568912 542 struct fw_ohci *ohci = ctx->ohci;
2639a6fb
KH
543 struct fw_packet p;
544 u32 status, length, tcode;
43286568 545 int evt;
2639a6fb 546
11bf20ad
SR
547 p.header[0] = cond_le32_to_cpu(buffer[0]);
548 p.header[1] = cond_le32_to_cpu(buffer[1]);
549 p.header[2] = cond_le32_to_cpu(buffer[2]);
2639a6fb
KH
550
551 tcode = (p.header[0] >> 4) & 0x0f;
552 switch (tcode) {
553 case TCODE_WRITE_QUADLET_REQUEST:
554 case TCODE_READ_QUADLET_RESPONSE:
32b46093 555 p.header[3] = (__force __u32) buffer[3];
2639a6fb 556 p.header_length = 16;
32b46093 557 p.payload_length = 0;
2639a6fb
KH
558 break;
559
2639a6fb 560 case TCODE_READ_BLOCK_REQUEST :
11bf20ad 561 p.header[3] = cond_le32_to_cpu(buffer[3]);
32b46093
KH
562 p.header_length = 16;
563 p.payload_length = 0;
564 break;
565
566 case TCODE_WRITE_BLOCK_REQUEST:
2639a6fb
KH
567 case TCODE_READ_BLOCK_RESPONSE:
568 case TCODE_LOCK_REQUEST:
569 case TCODE_LOCK_RESPONSE:
11bf20ad 570 p.header[3] = cond_le32_to_cpu(buffer[3]);
2639a6fb 571 p.header_length = 16;
32b46093 572 p.payload_length = p.header[3] >> 16;
2639a6fb
KH
573 break;
574
575 case TCODE_WRITE_RESPONSE:
576 case TCODE_READ_QUADLET_REQUEST:
32b46093 577 case OHCI_TCODE_PHY_PACKET:
2639a6fb 578 p.header_length = 12;
32b46093 579 p.payload_length = 0;
2639a6fb 580 break;
ccff9629
SR
581
582 default:
583 /* FIXME: Stop context, discard everything, and restart? */
584 p.header_length = 0;
585 p.payload_length = 0;
2639a6fb 586 }
ed568912 587
32b46093
KH
588 p.payload = (void *) buffer + p.header_length;
589
590 /* FIXME: What to do about evt_* errors? */
591 length = (p.header_length + p.payload_length + 3) / 4;
11bf20ad 592 status = cond_le32_to_cpu(buffer[length]);
43286568 593 evt = (status >> 16) & 0x1f;
32b46093 594
43286568 595 p.ack = evt - 16;
32b46093
KH
596 p.speed = (status >> 21) & 0x7;
597 p.timestamp = status & 0xffff;
598 p.generation = ohci->request_generation;
ed568912 599
43286568 600 log_ar_at_event('R', p.speed, p.header, evt);
ad3c0fe8 601
c781c06d
KH
602 /*
603 * The OHCI bus reset handler synthesizes a phy packet with
ed568912
KH
604 * the new generation number when a bus reset happens (see
605 * section 8.4.2.3). This helps us determine when a request
606 * was received and make sure we send the response in the same
607 * generation. We only need this for requests; for responses
608 * we use the unique tlabel for finding the matching
c781c06d 609 * request.
d34316a4
SR
610 *
611 * Alas some chips sometimes emit bus reset packets with a
612 * wrong generation. We set the correct generation for these
613 * at a slightly incorrect time (in bus_reset_tasklet).
c781c06d 614 */
d34316a4 615 if (evt == OHCI1394_evt_bus_reset) {
4a635593 616 if (!(ohci->quirks & QUIRK_RESET_PACKET))
d34316a4
SR
617 ohci->request_generation = (p.header[2] >> 16) & 0xff;
618 } else if (ctx == &ohci->ar_request_ctx) {
2639a6fb 619 fw_core_handle_request(&ohci->card, &p);
d34316a4 620 } else {
2639a6fb 621 fw_core_handle_response(&ohci->card, &p);
d34316a4 622 }
ed568912 623
32b46093
KH
624 return buffer + length + 1;
625}
ed568912 626
32b46093
KH
627static void ar_context_tasklet(unsigned long data)
628{
629 struct ar_context *ctx = (struct ar_context *)data;
630 struct fw_ohci *ohci = ctx->ohci;
631 struct ar_buffer *ab;
632 struct descriptor *d;
633 void *buffer, *end;
634
635 ab = ctx->current_buffer;
636 d = &ab->descriptor;
637
638 if (d->res_count == 0) {
639 size_t size, rest, offset;
6b84236d
JW
640 dma_addr_t start_bus;
641 void *start;
32b46093 642
c781c06d
KH
643 /*
644 * This descriptor is finished and we may have a
32b46093 645 * packet split across this and the next buffer. We
c781c06d
KH
646 * reuse the page for reassembling the split packet.
647 */
32b46093
KH
648
649 offset = offsetof(struct ar_buffer, data);
6b84236d
JW
650 start = buffer = ab;
651 start_bus = le32_to_cpu(ab->descriptor.data_address) - offset;
32b46093 652
32b46093
KH
653 ab = ab->next;
654 d = &ab->descriptor;
655 size = buffer + PAGE_SIZE - ctx->pointer;
656 rest = le16_to_cpu(d->req_count) - le16_to_cpu(d->res_count);
657 memmove(buffer, ctx->pointer, size);
658 memcpy(buffer + size, ab->data, rest);
659 ctx->current_buffer = ab;
660 ctx->pointer = (void *) ab->data + rest;
661 end = buffer + size + rest;
662
663 while (buffer < end)
664 buffer = handle_ar_packet(ctx, buffer);
665
bde1709a 666 dma_free_coherent(ohci->card.device, PAGE_SIZE,
6b84236d 667 start, start_bus);
32b46093
KH
668 ar_context_add_page(ctx);
669 } else {
670 buffer = ctx->pointer;
671 ctx->pointer = end =
672 (void *) ab + PAGE_SIZE - le16_to_cpu(d->res_count);
673
674 while (buffer < end)
675 buffer = handle_ar_packet(ctx, buffer);
676 }
ed568912
KH
677}
678
53dca511
SR
679static int ar_context_init(struct ar_context *ctx,
680 struct fw_ohci *ohci, u32 regs)
ed568912 681{
32b46093 682 struct ar_buffer ab;
ed568912 683
72e318e0
KH
684 ctx->regs = regs;
685 ctx->ohci = ohci;
686 ctx->last_buffer = &ab;
ed568912
KH
687 tasklet_init(&ctx->tasklet, ar_context_tasklet, (unsigned long)ctx);
688
32b46093
KH
689 ar_context_add_page(ctx);
690 ar_context_add_page(ctx);
691 ctx->current_buffer = ab.next;
692 ctx->pointer = ctx->current_buffer->data;
693
2aef469a
KH
694 return 0;
695}
696
697static void ar_context_run(struct ar_context *ctx)
698{
699 struct ar_buffer *ab = ctx->current_buffer;
700 dma_addr_t ab_bus;
701 size_t offset;
702
703 offset = offsetof(struct ar_buffer, data);
0a9972ba 704 ab_bus = le32_to_cpu(ab->descriptor.data_address) - offset;
2aef469a
KH
705
706 reg_write(ctx->ohci, COMMAND_PTR(ctx->regs), ab_bus | 1);
a77754a7 707 reg_write(ctx->ohci, CONTROL_SET(ctx->regs), CONTEXT_RUN);
32b46093 708 flush_writes(ctx->ohci);
ed568912 709}
373b2edd 710
53dca511 711static struct descriptor *find_branch_descriptor(struct descriptor *d, int z)
a186b4a6
JW
712{
713 int b, key;
714
715 b = (le16_to_cpu(d->control) & DESCRIPTOR_BRANCH_ALWAYS) >> 2;
716 key = (le16_to_cpu(d->control) & DESCRIPTOR_KEY_IMMEDIATE) >> 8;
717
718 /* figure out which descriptor the branch address goes in */
719 if (z == 2 && (b == 3 || key == 2))
720 return d;
721 else
722 return d + z - 1;
723}
724
30200739
KH
725static void context_tasklet(unsigned long data)
726{
727 struct context *ctx = (struct context *) data;
30200739
KH
728 struct descriptor *d, *last;
729 u32 address;
730 int z;
fe5ca634 731 struct descriptor_buffer *desc;
30200739 732
fe5ca634
DM
733 desc = list_entry(ctx->buffer_list.next,
734 struct descriptor_buffer, list);
735 last = ctx->last;
30200739 736 while (last->branch_address != 0) {
fe5ca634 737 struct descriptor_buffer *old_desc = desc;
30200739
KH
738 address = le32_to_cpu(last->branch_address);
739 z = address & 0xf;
fe5ca634
DM
740 address &= ~0xf;
741
742 /* If the branch address points to a buffer outside of the
743 * current buffer, advance to the next buffer. */
744 if (address < desc->buffer_bus ||
745 address >= desc->buffer_bus + desc->used)
746 desc = list_entry(desc->list.next,
747 struct descriptor_buffer, list);
748 d = desc->buffer + (address - desc->buffer_bus) / sizeof(*d);
a186b4a6 749 last = find_branch_descriptor(d, z);
30200739
KH
750
751 if (!ctx->callback(ctx, d, last))
752 break;
753
fe5ca634
DM
754 if (old_desc != desc) {
755 /* If we've advanced to the next buffer, move the
756 * previous buffer to the free list. */
757 unsigned long flags;
758 old_desc->used = 0;
759 spin_lock_irqsave(&ctx->ohci->lock, flags);
760 list_move_tail(&old_desc->list, &ctx->buffer_list);
761 spin_unlock_irqrestore(&ctx->ohci->lock, flags);
762 }
763 ctx->last = last;
30200739
KH
764 }
765}
766
fe5ca634
DM
767/*
768 * Allocate a new buffer and add it to the list of free buffers for this
769 * context. Must be called with ohci->lock held.
770 */
53dca511 771static int context_add_buffer(struct context *ctx)
fe5ca634
DM
772{
773 struct descriptor_buffer *desc;
f5101d58 774 dma_addr_t uninitialized_var(bus_addr);
fe5ca634
DM
775 int offset;
776
777 /*
778 * 16MB of descriptors should be far more than enough for any DMA
779 * program. This will catch run-away userspace or DoS attacks.
780 */
781 if (ctx->total_allocation >= 16*1024*1024)
782 return -ENOMEM;
783
784 desc = dma_alloc_coherent(ctx->ohci->card.device, PAGE_SIZE,
785 &bus_addr, GFP_ATOMIC);
786 if (!desc)
787 return -ENOMEM;
788
789 offset = (void *)&desc->buffer - (void *)desc;
790 desc->buffer_size = PAGE_SIZE - offset;
791 desc->buffer_bus = bus_addr + offset;
792 desc->used = 0;
793
794 list_add_tail(&desc->list, &ctx->buffer_list);
795 ctx->total_allocation += PAGE_SIZE;
796
797 return 0;
798}
799
53dca511
SR
800static int context_init(struct context *ctx, struct fw_ohci *ohci,
801 u32 regs, descriptor_callback_t callback)
30200739
KH
802{
803 ctx->ohci = ohci;
804 ctx->regs = regs;
fe5ca634
DM
805 ctx->total_allocation = 0;
806
807 INIT_LIST_HEAD(&ctx->buffer_list);
808 if (context_add_buffer(ctx) < 0)
30200739
KH
809 return -ENOMEM;
810
fe5ca634
DM
811 ctx->buffer_tail = list_entry(ctx->buffer_list.next,
812 struct descriptor_buffer, list);
813
30200739
KH
814 tasklet_init(&ctx->tasklet, context_tasklet, (unsigned long)ctx);
815 ctx->callback = callback;
816
c781c06d
KH
817 /*
818 * We put a dummy descriptor in the buffer that has a NULL
30200739 819 * branch address and looks like it's been sent. That way we
fe5ca634 820 * have a descriptor to append DMA programs to.
c781c06d 821 */
fe5ca634
DM
822 memset(ctx->buffer_tail->buffer, 0, sizeof(*ctx->buffer_tail->buffer));
823 ctx->buffer_tail->buffer->control = cpu_to_le16(DESCRIPTOR_OUTPUT_LAST);
824 ctx->buffer_tail->buffer->transfer_status = cpu_to_le16(0x8011);
825 ctx->buffer_tail->used += sizeof(*ctx->buffer_tail->buffer);
826 ctx->last = ctx->buffer_tail->buffer;
827 ctx->prev = ctx->buffer_tail->buffer;
30200739
KH
828
829 return 0;
830}
831
53dca511 832static void context_release(struct context *ctx)
30200739
KH
833{
834 struct fw_card *card = &ctx->ohci->card;
fe5ca634 835 struct descriptor_buffer *desc, *tmp;
30200739 836
fe5ca634
DM
837 list_for_each_entry_safe(desc, tmp, &ctx->buffer_list, list)
838 dma_free_coherent(card->device, PAGE_SIZE, desc,
839 desc->buffer_bus -
840 ((void *)&desc->buffer - (void *)desc));
30200739
KH
841}
842
fe5ca634 843/* Must be called with ohci->lock held */
53dca511
SR
844static struct descriptor *context_get_descriptors(struct context *ctx,
845 int z, dma_addr_t *d_bus)
30200739 846{
fe5ca634
DM
847 struct descriptor *d = NULL;
848 struct descriptor_buffer *desc = ctx->buffer_tail;
849
850 if (z * sizeof(*d) > desc->buffer_size)
851 return NULL;
852
853 if (z * sizeof(*d) > desc->buffer_size - desc->used) {
854 /* No room for the descriptor in this buffer, so advance to the
855 * next one. */
30200739 856
fe5ca634
DM
857 if (desc->list.next == &ctx->buffer_list) {
858 /* If there is no free buffer next in the list,
859 * allocate one. */
860 if (context_add_buffer(ctx) < 0)
861 return NULL;
862 }
863 desc = list_entry(desc->list.next,
864 struct descriptor_buffer, list);
865 ctx->buffer_tail = desc;
866 }
30200739 867
fe5ca634 868 d = desc->buffer + desc->used / sizeof(*d);
2d826cc5 869 memset(d, 0, z * sizeof(*d));
fe5ca634 870 *d_bus = desc->buffer_bus + desc->used;
30200739
KH
871
872 return d;
873}
874
295e3feb 875static void context_run(struct context *ctx, u32 extra)
30200739
KH
876{
877 struct fw_ohci *ohci = ctx->ohci;
878
a77754a7 879 reg_write(ohci, COMMAND_PTR(ctx->regs),
fe5ca634 880 le32_to_cpu(ctx->last->branch_address));
a77754a7
KH
881 reg_write(ohci, CONTROL_CLEAR(ctx->regs), ~0);
882 reg_write(ohci, CONTROL_SET(ctx->regs), CONTEXT_RUN | extra);
30200739
KH
883 flush_writes(ohci);
884}
885
886static void context_append(struct context *ctx,
887 struct descriptor *d, int z, int extra)
888{
889 dma_addr_t d_bus;
fe5ca634 890 struct descriptor_buffer *desc = ctx->buffer_tail;
30200739 891
fe5ca634 892 d_bus = desc->buffer_bus + (d - desc->buffer) * sizeof(*d);
30200739 893
fe5ca634
DM
894 desc->used += (z + extra) * sizeof(*d);
895 ctx->prev->branch_address = cpu_to_le32(d_bus | z);
896 ctx->prev = find_branch_descriptor(d, z);
30200739 897
a77754a7 898 reg_write(ctx->ohci, CONTROL_SET(ctx->regs), CONTEXT_WAKE);
30200739
KH
899 flush_writes(ctx->ohci);
900}
901
902static void context_stop(struct context *ctx)
903{
904 u32 reg;
b8295668 905 int i;
30200739 906
a77754a7 907 reg_write(ctx->ohci, CONTROL_CLEAR(ctx->regs), CONTEXT_RUN);
b8295668 908 flush_writes(ctx->ohci);
30200739 909
b8295668 910 for (i = 0; i < 10; i++) {
a77754a7 911 reg = reg_read(ctx->ohci, CONTROL_SET(ctx->regs));
b8295668 912 if ((reg & CONTEXT_ACTIVE) == 0)
b0068549 913 return;
b8295668 914
b980f5a2 915 mdelay(1);
b8295668 916 }
b0068549 917 fw_error("Error: DMA context still active (0x%08x)\n", reg);
30200739 918}
ed568912 919
f319b6a0
KH
920struct driver_data {
921 struct fw_packet *packet;
922};
ed568912 923
c781c06d
KH
924/*
925 * This function apppends a packet to the DMA queue for transmission.
f319b6a0 926 * Must always be called with the ochi->lock held to ensure proper
c781c06d
KH
927 * generation handling and locking around packet queue manipulation.
928 */
53dca511
SR
929static int at_context_queue_packet(struct context *ctx,
930 struct fw_packet *packet)
ed568912 931{
ed568912 932 struct fw_ohci *ohci = ctx->ohci;
4b6d51ec 933 dma_addr_t d_bus, uninitialized_var(payload_bus);
f319b6a0
KH
934 struct driver_data *driver_data;
935 struct descriptor *d, *last;
936 __le32 *header;
ed568912 937 int z, tcode;
f319b6a0 938 u32 reg;
ed568912 939
f319b6a0
KH
940 d = context_get_descriptors(ctx, 4, &d_bus);
941 if (d == NULL) {
942 packet->ack = RCODE_SEND_ERROR;
943 return -1;
ed568912
KH
944 }
945
a77754a7 946 d[0].control = cpu_to_le16(DESCRIPTOR_KEY_IMMEDIATE);
f319b6a0
KH
947 d[0].res_count = cpu_to_le16(packet->timestamp);
948
c781c06d
KH
949 /*
950 * The DMA format for asyncronous link packets is different
ed568912
KH
951 * from the IEEE1394 layout, so shift the fields around
952 * accordingly. If header_length is 8, it's a PHY packet, to
c781c06d
KH
953 * which we need to prepend an extra quadlet.
954 */
f319b6a0
KH
955
956 header = (__le32 *) &d[1];
f8c2287c
JF
957 switch (packet->header_length) {
958 case 16:
959 case 12:
f319b6a0
KH
960 header[0] = cpu_to_le32((packet->header[0] & 0xffff) |
961 (packet->speed << 16));
962 header[1] = cpu_to_le32((packet->header[1] & 0xffff) |
963 (packet->header[0] & 0xffff0000));
964 header[2] = cpu_to_le32(packet->header[2]);
ed568912
KH
965
966 tcode = (packet->header[0] >> 4) & 0x0f;
967 if (TCODE_IS_BLOCK_PACKET(tcode))
f319b6a0 968 header[3] = cpu_to_le32(packet->header[3]);
ed568912 969 else
f319b6a0
KH
970 header[3] = (__force __le32) packet->header[3];
971
972 d[0].req_count = cpu_to_le16(packet->header_length);
f8c2287c
JF
973 break;
974
975 case 8:
f319b6a0
KH
976 header[0] = cpu_to_le32((OHCI1394_phy_tcode << 4) |
977 (packet->speed << 16));
978 header[1] = cpu_to_le32(packet->header[0]);
979 header[2] = cpu_to_le32(packet->header[1]);
980 d[0].req_count = cpu_to_le16(12);
f8c2287c
JF
981 break;
982
983 case 4:
984 header[0] = cpu_to_le32((packet->header[0] & 0xffff) |
985 (packet->speed << 16));
986 header[1] = cpu_to_le32(packet->header[0] & 0xffff0000);
987 d[0].req_count = cpu_to_le16(8);
988 break;
989
990 default:
991 /* BUG(); */
992 packet->ack = RCODE_SEND_ERROR;
993 return -1;
ed568912
KH
994 }
995
f319b6a0
KH
996 driver_data = (struct driver_data *) &d[3];
997 driver_data->packet = packet;
20d11673 998 packet->driver_data = driver_data;
a186b4a6 999
f319b6a0
KH
1000 if (packet->payload_length > 0) {
1001 payload_bus =
1002 dma_map_single(ohci->card.device, packet->payload,
1003 packet->payload_length, DMA_TO_DEVICE);
8d8bb39b 1004 if (dma_mapping_error(ohci->card.device, payload_bus)) {
f319b6a0
KH
1005 packet->ack = RCODE_SEND_ERROR;
1006 return -1;
1007 }
19593ffd
SR
1008 packet->payload_bus = payload_bus;
1009 packet->payload_mapped = true;
f319b6a0
KH
1010
1011 d[2].req_count = cpu_to_le16(packet->payload_length);
1012 d[2].data_address = cpu_to_le32(payload_bus);
1013 last = &d[2];
1014 z = 3;
ed568912 1015 } else {
f319b6a0
KH
1016 last = &d[0];
1017 z = 2;
ed568912 1018 }
ed568912 1019
a77754a7
KH
1020 last->control |= cpu_to_le16(DESCRIPTOR_OUTPUT_LAST |
1021 DESCRIPTOR_IRQ_ALWAYS |
1022 DESCRIPTOR_BRANCH_ALWAYS);
ed568912 1023
76f73ca1
JW
1024 /*
1025 * If the controller and packet generations don't match, we need to
1026 * bail out and try again. If IntEvent.busReset is set, the AT context
1027 * is halted, so appending to the context and trying to run it is
1028 * futile. Most controllers do the right thing and just flush the AT
1029 * queue (per section 7.2.3.2 of the OHCI 1.1 specification), but
1030 * some controllers (like a JMicron JMB381 PCI-e) misbehave and wind
1031 * up stalling out. So we just bail out in software and try again
1032 * later, and everyone is happy.
1033 * FIXME: Document how the locking works.
1034 */
1035 if (ohci->generation != packet->generation ||
1036 reg_read(ohci, OHCI1394_IntEventSet) & OHCI1394_busReset) {
19593ffd 1037 if (packet->payload_mapped)
ab88ca48
SR
1038 dma_unmap_single(ohci->card.device, payload_bus,
1039 packet->payload_length, DMA_TO_DEVICE);
f319b6a0
KH
1040 packet->ack = RCODE_GENERATION;
1041 return -1;
1042 }
1043
1044 context_append(ctx, d, z, 4 - z);
ed568912 1045
f319b6a0 1046 /* If the context isn't already running, start it up. */
a77754a7 1047 reg = reg_read(ctx->ohci, CONTROL_SET(ctx->regs));
053b3080 1048 if ((reg & CONTEXT_RUN) == 0)
f319b6a0
KH
1049 context_run(ctx, 0);
1050
1051 return 0;
ed568912
KH
1052}
1053
f319b6a0
KH
1054static int handle_at_packet(struct context *context,
1055 struct descriptor *d,
1056 struct descriptor *last)
ed568912 1057{
f319b6a0 1058 struct driver_data *driver_data;
ed568912 1059 struct fw_packet *packet;
f319b6a0 1060 struct fw_ohci *ohci = context->ohci;
ed568912
KH
1061 int evt;
1062
f319b6a0
KH
1063 if (last->transfer_status == 0)
1064 /* This descriptor isn't done yet, stop iteration. */
1065 return 0;
ed568912 1066
f319b6a0
KH
1067 driver_data = (struct driver_data *) &d[3];
1068 packet = driver_data->packet;
1069 if (packet == NULL)
1070 /* This packet was cancelled, just continue. */
1071 return 1;
730c32f5 1072
19593ffd 1073 if (packet->payload_mapped)
1d1dc5e8 1074 dma_unmap_single(ohci->card.device, packet->payload_bus,
ed568912 1075 packet->payload_length, DMA_TO_DEVICE);
ed568912 1076
f319b6a0
KH
1077 evt = le16_to_cpu(last->transfer_status) & 0x1f;
1078 packet->timestamp = le16_to_cpu(last->res_count);
ed568912 1079
ad3c0fe8
SR
1080 log_ar_at_event('T', packet->speed, packet->header, evt);
1081
f319b6a0
KH
1082 switch (evt) {
1083 case OHCI1394_evt_timeout:
1084 /* Async response transmit timed out. */
1085 packet->ack = RCODE_CANCELLED;
1086 break;
ed568912 1087
f319b6a0 1088 case OHCI1394_evt_flushed:
c781c06d
KH
1089 /*
1090 * The packet was flushed should give same error as
1091 * when we try to use a stale generation count.
1092 */
f319b6a0
KH
1093 packet->ack = RCODE_GENERATION;
1094 break;
ed568912 1095
f319b6a0 1096 case OHCI1394_evt_missing_ack:
c781c06d
KH
1097 /*
1098 * Using a valid (current) generation count, but the
1099 * node is not on the bus or not sending acks.
1100 */
f319b6a0
KH
1101 packet->ack = RCODE_NO_ACK;
1102 break;
ed568912 1103
f319b6a0
KH
1104 case ACK_COMPLETE + 0x10:
1105 case ACK_PENDING + 0x10:
1106 case ACK_BUSY_X + 0x10:
1107 case ACK_BUSY_A + 0x10:
1108 case ACK_BUSY_B + 0x10:
1109 case ACK_DATA_ERROR + 0x10:
1110 case ACK_TYPE_ERROR + 0x10:
1111 packet->ack = evt - 0x10;
1112 break;
ed568912 1113
f319b6a0
KH
1114 default:
1115 packet->ack = RCODE_SEND_ERROR;
1116 break;
1117 }
ed568912 1118
f319b6a0 1119 packet->callback(packet, &ohci->card, packet->ack);
ed568912 1120
f319b6a0 1121 return 1;
ed568912
KH
1122}
1123
a77754a7
KH
1124#define HEADER_GET_DESTINATION(q) (((q) >> 16) & 0xffff)
1125#define HEADER_GET_TCODE(q) (((q) >> 4) & 0x0f)
1126#define HEADER_GET_OFFSET_HIGH(q) (((q) >> 0) & 0xffff)
1127#define HEADER_GET_DATA_LENGTH(q) (((q) >> 16) & 0xffff)
1128#define HEADER_GET_EXTENDED_TCODE(q) (((q) >> 0) & 0xffff)
93c4cceb 1129
53dca511
SR
1130static void handle_local_rom(struct fw_ohci *ohci,
1131 struct fw_packet *packet, u32 csr)
93c4cceb
KH
1132{
1133 struct fw_packet response;
1134 int tcode, length, i;
1135
a77754a7 1136 tcode = HEADER_GET_TCODE(packet->header[0]);
93c4cceb 1137 if (TCODE_IS_BLOCK_PACKET(tcode))
a77754a7 1138 length = HEADER_GET_DATA_LENGTH(packet->header[3]);
93c4cceb
KH
1139 else
1140 length = 4;
1141
1142 i = csr - CSR_CONFIG_ROM;
1143 if (i + length > CONFIG_ROM_SIZE) {
1144 fw_fill_response(&response, packet->header,
1145 RCODE_ADDRESS_ERROR, NULL, 0);
1146 } else if (!TCODE_IS_READ_REQUEST(tcode)) {
1147 fw_fill_response(&response, packet->header,
1148 RCODE_TYPE_ERROR, NULL, 0);
1149 } else {
1150 fw_fill_response(&response, packet->header, RCODE_COMPLETE,
1151 (void *) ohci->config_rom + i, length);
1152 }
1153
1154 fw_core_handle_response(&ohci->card, &response);
1155}
1156
53dca511
SR
1157static void handle_local_lock(struct fw_ohci *ohci,
1158 struct fw_packet *packet, u32 csr)
93c4cceb
KH
1159{
1160 struct fw_packet response;
1161 int tcode, length, ext_tcode, sel;
1162 __be32 *payload, lock_old;
1163 u32 lock_arg, lock_data;
1164
a77754a7
KH
1165 tcode = HEADER_GET_TCODE(packet->header[0]);
1166 length = HEADER_GET_DATA_LENGTH(packet->header[3]);
93c4cceb 1167 payload = packet->payload;
a77754a7 1168 ext_tcode = HEADER_GET_EXTENDED_TCODE(packet->header[3]);
93c4cceb
KH
1169
1170 if (tcode == TCODE_LOCK_REQUEST &&
1171 ext_tcode == EXTCODE_COMPARE_SWAP && length == 8) {
1172 lock_arg = be32_to_cpu(payload[0]);
1173 lock_data = be32_to_cpu(payload[1]);
1174 } else if (tcode == TCODE_READ_QUADLET_REQUEST) {
1175 lock_arg = 0;
1176 lock_data = 0;
1177 } else {
1178 fw_fill_response(&response, packet->header,
1179 RCODE_TYPE_ERROR, NULL, 0);
1180 goto out;
1181 }
1182
1183 sel = (csr - CSR_BUS_MANAGER_ID) / 4;
1184 reg_write(ohci, OHCI1394_CSRData, lock_data);
1185 reg_write(ohci, OHCI1394_CSRCompareData, lock_arg);
1186 reg_write(ohci, OHCI1394_CSRControl, sel);
1187
1188 if (reg_read(ohci, OHCI1394_CSRControl) & 0x80000000)
1189 lock_old = cpu_to_be32(reg_read(ohci, OHCI1394_CSRData));
1190 else
1191 fw_notify("swap not done yet\n");
1192
1193 fw_fill_response(&response, packet->header,
2d826cc5 1194 RCODE_COMPLETE, &lock_old, sizeof(lock_old));
93c4cceb
KH
1195 out:
1196 fw_core_handle_response(&ohci->card, &response);
1197}
1198
53dca511 1199static void handle_local_request(struct context *ctx, struct fw_packet *packet)
93c4cceb 1200{
2608203d 1201 u64 offset, csr;
93c4cceb 1202
473d28c7
KH
1203 if (ctx == &ctx->ohci->at_request_ctx) {
1204 packet->ack = ACK_PENDING;
1205 packet->callback(packet, &ctx->ohci->card, packet->ack);
1206 }
93c4cceb
KH
1207
1208 offset =
1209 ((unsigned long long)
a77754a7 1210 HEADER_GET_OFFSET_HIGH(packet->header[1]) << 32) |
93c4cceb
KH
1211 packet->header[2];
1212 csr = offset - CSR_REGISTER_BASE;
1213
1214 /* Handle config rom reads. */
1215 if (csr >= CSR_CONFIG_ROM && csr < CSR_CONFIG_ROM_END)
1216 handle_local_rom(ctx->ohci, packet, csr);
1217 else switch (csr) {
1218 case CSR_BUS_MANAGER_ID:
1219 case CSR_BANDWIDTH_AVAILABLE:
1220 case CSR_CHANNELS_AVAILABLE_HI:
1221 case CSR_CHANNELS_AVAILABLE_LO:
1222 handle_local_lock(ctx->ohci, packet, csr);
1223 break;
1224 default:
1225 if (ctx == &ctx->ohci->at_request_ctx)
1226 fw_core_handle_request(&ctx->ohci->card, packet);
1227 else
1228 fw_core_handle_response(&ctx->ohci->card, packet);
1229 break;
1230 }
473d28c7
KH
1231
1232 if (ctx == &ctx->ohci->at_response_ctx) {
1233 packet->ack = ACK_COMPLETE;
1234 packet->callback(packet, &ctx->ohci->card, packet->ack);
1235 }
93c4cceb 1236}
e636fe25 1237
53dca511 1238static void at_context_transmit(struct context *ctx, struct fw_packet *packet)
ed568912 1239{
ed568912 1240 unsigned long flags;
2dbd7d7e 1241 int ret;
ed568912
KH
1242
1243 spin_lock_irqsave(&ctx->ohci->lock, flags);
1244
a77754a7 1245 if (HEADER_GET_DESTINATION(packet->header[0]) == ctx->ohci->node_id &&
e636fe25 1246 ctx->ohci->generation == packet->generation) {
93c4cceb
KH
1247 spin_unlock_irqrestore(&ctx->ohci->lock, flags);
1248 handle_local_request(ctx, packet);
1249 return;
e636fe25 1250 }
ed568912 1251
2dbd7d7e 1252 ret = at_context_queue_packet(ctx, packet);
ed568912
KH
1253 spin_unlock_irqrestore(&ctx->ohci->lock, flags);
1254
2dbd7d7e 1255 if (ret < 0)
f319b6a0 1256 packet->callback(packet, &ctx->ohci->card, packet->ack);
a186b4a6 1257
ed568912
KH
1258}
1259
1260static void bus_reset_tasklet(unsigned long data)
1261{
1262 struct fw_ohci *ohci = (struct fw_ohci *)data;
e636fe25 1263 int self_id_count, i, j, reg;
ed568912
KH
1264 int generation, new_generation;
1265 unsigned long flags;
4eaff7d6
SR
1266 void *free_rom = NULL;
1267 dma_addr_t free_rom_bus = 0;
ed568912
KH
1268
1269 reg = reg_read(ohci, OHCI1394_NodeID);
1270 if (!(reg & OHCI1394_NodeID_idValid)) {
02ff8f8e 1271 fw_notify("node ID not valid, new bus reset in progress\n");
ed568912
KH
1272 return;
1273 }
02ff8f8e
SR
1274 if ((reg & OHCI1394_NodeID_nodeNumber) == 63) {
1275 fw_notify("malconfigured bus\n");
1276 return;
1277 }
1278 ohci->node_id = reg & (OHCI1394_NodeID_busNumber |
1279 OHCI1394_NodeID_nodeNumber);
ed568912 1280
c8a9a498
SR
1281 reg = reg_read(ohci, OHCI1394_SelfIDCount);
1282 if (reg & OHCI1394_SelfIDCount_selfIDError) {
1283 fw_notify("inconsistent self IDs\n");
1284 return;
1285 }
c781c06d
KH
1286 /*
1287 * The count in the SelfIDCount register is the number of
ed568912
KH
1288 * bytes in the self ID receive buffer. Since we also receive
1289 * the inverted quadlets and a header quadlet, we shift one
c781c06d
KH
1290 * bit extra to get the actual number of self IDs.
1291 */
928ec5f1
SR
1292 self_id_count = (reg >> 3) & 0xff;
1293 if (self_id_count == 0 || self_id_count > 252) {
016bf3df
SR
1294 fw_notify("inconsistent self IDs\n");
1295 return;
1296 }
11bf20ad 1297 generation = (cond_le32_to_cpu(ohci->self_id_cpu[0]) >> 16) & 0xff;
ee71c2f9 1298 rmb();
ed568912
KH
1299
1300 for (i = 1, j = 0; j < self_id_count; i += 2, j++) {
c8a9a498
SR
1301 if (ohci->self_id_cpu[i] != ~ohci->self_id_cpu[i + 1]) {
1302 fw_notify("inconsistent self IDs\n");
1303 return;
1304 }
11bf20ad
SR
1305 ohci->self_id_buffer[j] =
1306 cond_le32_to_cpu(ohci->self_id_cpu[i]);
ed568912 1307 }
ee71c2f9 1308 rmb();
ed568912 1309
c781c06d
KH
1310 /*
1311 * Check the consistency of the self IDs we just read. The
ed568912
KH
1312 * problem we face is that a new bus reset can start while we
1313 * read out the self IDs from the DMA buffer. If this happens,
1314 * the DMA buffer will be overwritten with new self IDs and we
1315 * will read out inconsistent data. The OHCI specification
1316 * (section 11.2) recommends a technique similar to
1317 * linux/seqlock.h, where we remember the generation of the
1318 * self IDs in the buffer before reading them out and compare
1319 * it to the current generation after reading them out. If
1320 * the two generations match we know we have a consistent set
c781c06d
KH
1321 * of self IDs.
1322 */
ed568912
KH
1323
1324 new_generation = (reg_read(ohci, OHCI1394_SelfIDCount) >> 16) & 0xff;
1325 if (new_generation != generation) {
1326 fw_notify("recursive bus reset detected, "
1327 "discarding self ids\n");
1328 return;
1329 }
1330
1331 /* FIXME: Document how the locking works. */
1332 spin_lock_irqsave(&ohci->lock, flags);
1333
1334 ohci->generation = generation;
f319b6a0
KH
1335 context_stop(&ohci->at_request_ctx);
1336 context_stop(&ohci->at_response_ctx);
ed568912
KH
1337 reg_write(ohci, OHCI1394_IntEventClear, OHCI1394_busReset);
1338
4a635593 1339 if (ohci->quirks & QUIRK_RESET_PACKET)
d34316a4
SR
1340 ohci->request_generation = generation;
1341
c781c06d
KH
1342 /*
1343 * This next bit is unrelated to the AT context stuff but we
ed568912
KH
1344 * have to do it under the spinlock also. If a new config rom
1345 * was set up before this reset, the old one is now no longer
1346 * in use and we can free it. Update the config rom pointers
1347 * to point to the current config rom and clear the
c781c06d
KH
1348 * next_config_rom pointer so a new udpate can take place.
1349 */
ed568912
KH
1350
1351 if (ohci->next_config_rom != NULL) {
0bd243c4
KH
1352 if (ohci->next_config_rom != ohci->config_rom) {
1353 free_rom = ohci->config_rom;
1354 free_rom_bus = ohci->config_rom_bus;
1355 }
ed568912
KH
1356 ohci->config_rom = ohci->next_config_rom;
1357 ohci->config_rom_bus = ohci->next_config_rom_bus;
1358 ohci->next_config_rom = NULL;
1359
c781c06d
KH
1360 /*
1361 * Restore config_rom image and manually update
ed568912
KH
1362 * config_rom registers. Writing the header quadlet
1363 * will indicate that the config rom is ready, so we
c781c06d
KH
1364 * do that last.
1365 */
ed568912
KH
1366 reg_write(ohci, OHCI1394_BusOptions,
1367 be32_to_cpu(ohci->config_rom[2]));
8e85973e
SR
1368 ohci->config_rom[0] = ohci->next_header;
1369 reg_write(ohci, OHCI1394_ConfigROMhdr,
1370 be32_to_cpu(ohci->next_header));
ed568912
KH
1371 }
1372
080de8c2
SR
1373#ifdef CONFIG_FIREWIRE_OHCI_REMOTE_DMA
1374 reg_write(ohci, OHCI1394_PhyReqFilterHiSet, ~0);
1375 reg_write(ohci, OHCI1394_PhyReqFilterLoSet, ~0);
1376#endif
1377
ed568912
KH
1378 spin_unlock_irqrestore(&ohci->lock, flags);
1379
4eaff7d6
SR
1380 if (free_rom)
1381 dma_free_coherent(ohci->card.device, CONFIG_ROM_SIZE,
1382 free_rom, free_rom_bus);
1383
08ddb2f4
SR
1384 log_selfids(ohci->node_id, generation,
1385 self_id_count, ohci->self_id_buffer);
ad3c0fe8 1386
e636fe25 1387 fw_core_handle_bus_reset(&ohci->card, ohci->node_id, generation,
ed568912
KH
1388 self_id_count, ohci->self_id_buffer);
1389}
1390
1391static irqreturn_t irq_handler(int irq, void *data)
1392{
1393 struct fw_ohci *ohci = data;
168cf9af 1394 u32 event, iso_event;
ed568912
KH
1395 int i;
1396
1397 event = reg_read(ohci, OHCI1394_IntEventClear);
1398
a515958d 1399 if (!event || !~event)
ed568912
KH
1400 return IRQ_NONE;
1401
a007bb85
SR
1402 /* busReset must not be cleared yet, see OHCI 1.1 clause 7.2.3.2 */
1403 reg_write(ohci, OHCI1394_IntEventClear, event & ~OHCI1394_busReset);
ad3c0fe8 1404 log_irqs(event);
ed568912
KH
1405
1406 if (event & OHCI1394_selfIDComplete)
1407 tasklet_schedule(&ohci->bus_reset_tasklet);
1408
1409 if (event & OHCI1394_RQPkt)
1410 tasklet_schedule(&ohci->ar_request_ctx.tasklet);
1411
1412 if (event & OHCI1394_RSPkt)
1413 tasklet_schedule(&ohci->ar_response_ctx.tasklet);
1414
1415 if (event & OHCI1394_reqTxComplete)
1416 tasklet_schedule(&ohci->at_request_ctx.tasklet);
1417
1418 if (event & OHCI1394_respTxComplete)
1419 tasklet_schedule(&ohci->at_response_ctx.tasklet);
1420
c889475f 1421 iso_event = reg_read(ohci, OHCI1394_IsoRecvIntEventClear);
ed568912
KH
1422 reg_write(ohci, OHCI1394_IsoRecvIntEventClear, iso_event);
1423
1424 while (iso_event) {
1425 i = ffs(iso_event) - 1;
30200739 1426 tasklet_schedule(&ohci->ir_context_list[i].context.tasklet);
ed568912
KH
1427 iso_event &= ~(1 << i);
1428 }
1429
c889475f 1430 iso_event = reg_read(ohci, OHCI1394_IsoXmitIntEventClear);
ed568912
KH
1431 reg_write(ohci, OHCI1394_IsoXmitIntEventClear, iso_event);
1432
1433 while (iso_event) {
1434 i = ffs(iso_event) - 1;
30200739 1435 tasklet_schedule(&ohci->it_context_list[i].context.tasklet);
ed568912
KH
1436 iso_event &= ~(1 << i);
1437 }
1438
75f7832e
JW
1439 if (unlikely(event & OHCI1394_regAccessFail))
1440 fw_error("Register access failure - "
1441 "please notify linux1394-devel@lists.sf.net\n");
1442
e524f616
SR
1443 if (unlikely(event & OHCI1394_postedWriteErr))
1444 fw_error("PCI posted write error\n");
1445
bb9f2206
SR
1446 if (unlikely(event & OHCI1394_cycleTooLong)) {
1447 if (printk_ratelimit())
1448 fw_notify("isochronous cycle too long\n");
1449 reg_write(ohci, OHCI1394_LinkControlSet,
1450 OHCI1394_LinkControl_cycleMaster);
1451 }
1452
5ed1f321
JF
1453 if (unlikely(event & OHCI1394_cycleInconsistent)) {
1454 /*
1455 * We need to clear this event bit in order to make
1456 * cycleMatch isochronous I/O work. In theory we should
1457 * stop active cycleMatch iso contexts now and restart
1458 * them at least two cycles later. (FIXME?)
1459 */
1460 if (printk_ratelimit())
1461 fw_notify("isochronous cycle inconsistent\n");
1462 }
1463
ed568912
KH
1464 return IRQ_HANDLED;
1465}
1466
2aef469a
KH
1467static int software_reset(struct fw_ohci *ohci)
1468{
1469 int i;
1470
1471 reg_write(ohci, OHCI1394_HCControlSet, OHCI1394_HCControl_softReset);
1472
1473 for (i = 0; i < OHCI_LOOP_COUNT; i++) {
1474 if ((reg_read(ohci, OHCI1394_HCControlSet) &
1475 OHCI1394_HCControl_softReset) == 0)
1476 return 0;
1477 msleep(1);
1478 }
1479
1480 return -EBUSY;
1481}
1482
8e85973e
SR
1483static void copy_config_rom(__be32 *dest, const __be32 *src, size_t length)
1484{
1485 size_t size = length * 4;
1486
1487 memcpy(dest, src, size);
1488 if (size < CONFIG_ROM_SIZE)
1489 memset(&dest[length], 0, CONFIG_ROM_SIZE - size);
1490}
1491
1492static int ohci_enable(struct fw_card *card,
1493 const __be32 *config_rom, size_t length)
ed568912
KH
1494{
1495 struct fw_ohci *ohci = fw_ohci(card);
1496 struct pci_dev *dev = to_pci_dev(card->device);
02214724
JW
1497 u32 lps;
1498 int i;
ed568912 1499
2aef469a
KH
1500 if (software_reset(ohci)) {
1501 fw_error("Failed to reset ohci card.\n");
1502 return -EBUSY;
1503 }
1504
1505 /*
1506 * Now enable LPS, which we need in order to start accessing
1507 * most of the registers. In fact, on some cards (ALI M5251),
1508 * accessing registers in the SClk domain without LPS enabled
1509 * will lock up the machine. Wait 50msec to make sure we have
02214724
JW
1510 * full link enabled. However, with some cards (well, at least
1511 * a JMicron PCIe card), we have to try again sometimes.
2aef469a
KH
1512 */
1513 reg_write(ohci, OHCI1394_HCControlSet,
1514 OHCI1394_HCControl_LPS |
1515 OHCI1394_HCControl_postedWriteEnable);
1516 flush_writes(ohci);
02214724
JW
1517
1518 for (lps = 0, i = 0; !lps && i < 3; i++) {
1519 msleep(50);
1520 lps = reg_read(ohci, OHCI1394_HCControlSet) &
1521 OHCI1394_HCControl_LPS;
1522 }
1523
1524 if (!lps) {
1525 fw_error("Failed to set Link Power Status\n");
1526 return -EIO;
1527 }
2aef469a
KH
1528
1529 reg_write(ohci, OHCI1394_HCControlClear,
1530 OHCI1394_HCControl_noByteSwapData);
1531
affc9c24 1532 reg_write(ohci, OHCI1394_SelfIDBuffer, ohci->self_id_bus);
e896ec43
SR
1533 reg_write(ohci, OHCI1394_LinkControlClear,
1534 OHCI1394_LinkControl_rcvPhyPkt);
2aef469a
KH
1535 reg_write(ohci, OHCI1394_LinkControlSet,
1536 OHCI1394_LinkControl_rcvSelfID |
1537 OHCI1394_LinkControl_cycleTimerEnable |
1538 OHCI1394_LinkControl_cycleMaster);
1539
1540 reg_write(ohci, OHCI1394_ATRetries,
1541 OHCI1394_MAX_AT_REQ_RETRIES |
1542 (OHCI1394_MAX_AT_RESP_RETRIES << 4) |
1543 (OHCI1394_MAX_PHYS_RESP_RETRIES << 8));
1544
1545 ar_context_run(&ohci->ar_request_ctx);
1546 ar_context_run(&ohci->ar_response_ctx);
1547
2aef469a
KH
1548 reg_write(ohci, OHCI1394_PhyUpperBound, 0x00010000);
1549 reg_write(ohci, OHCI1394_IntEventClear, ~0);
1550 reg_write(ohci, OHCI1394_IntMaskClear, ~0);
1551 reg_write(ohci, OHCI1394_IntMaskSet,
1552 OHCI1394_selfIDComplete |
1553 OHCI1394_RQPkt | OHCI1394_RSPkt |
1554 OHCI1394_reqTxComplete | OHCI1394_respTxComplete |
1555 OHCI1394_isochRx | OHCI1394_isochTx |
bb9f2206 1556 OHCI1394_postedWriteErr | OHCI1394_cycleTooLong |
168cf9af 1557 OHCI1394_cycleInconsistent | OHCI1394_regAccessFail |
75f7832e 1558 OHCI1394_masterIntEnable);
a007bb85
SR
1559 if (param_debug & OHCI_PARAM_DEBUG_BUSRESETS)
1560 reg_write(ohci, OHCI1394_IntMaskSet, OHCI1394_busReset);
2aef469a
KH
1561
1562 /* Activate link_on bit and contender bit in our self ID packets.*/
1563 if (ohci_update_phy_reg(card, 4, 0,
1564 PHY_LINK_ACTIVE | PHY_CONTENDER) < 0)
1565 return -EIO;
1566
c781c06d
KH
1567 /*
1568 * When the link is not yet enabled, the atomic config rom
ed568912
KH
1569 * update mechanism described below in ohci_set_config_rom()
1570 * is not active. We have to update ConfigRomHeader and
1571 * BusOptions manually, and the write to ConfigROMmap takes
1572 * effect immediately. We tie this to the enabling of the
1573 * link, so we have a valid config rom before enabling - the
1574 * OHCI requires that ConfigROMhdr and BusOptions have valid
1575 * values before enabling.
1576 *
1577 * However, when the ConfigROMmap is written, some controllers
1578 * always read back quadlets 0 and 2 from the config rom to
1579 * the ConfigRomHeader and BusOptions registers on bus reset.
1580 * They shouldn't do that in this initial case where the link
1581 * isn't enabled. This means we have to use the same
1582 * workaround here, setting the bus header to 0 and then write
1583 * the right values in the bus reset tasklet.
1584 */
1585
0bd243c4
KH
1586 if (config_rom) {
1587 ohci->next_config_rom =
1588 dma_alloc_coherent(ohci->card.device, CONFIG_ROM_SIZE,
1589 &ohci->next_config_rom_bus,
1590 GFP_KERNEL);
1591 if (ohci->next_config_rom == NULL)
1592 return -ENOMEM;
ed568912 1593
8e85973e 1594 copy_config_rom(ohci->next_config_rom, config_rom, length);
0bd243c4
KH
1595 } else {
1596 /*
1597 * In the suspend case, config_rom is NULL, which
1598 * means that we just reuse the old config rom.
1599 */
1600 ohci->next_config_rom = ohci->config_rom;
1601 ohci->next_config_rom_bus = ohci->config_rom_bus;
1602 }
ed568912 1603
8e85973e 1604 ohci->next_header = ohci->next_config_rom[0];
ed568912
KH
1605 ohci->next_config_rom[0] = 0;
1606 reg_write(ohci, OHCI1394_ConfigROMhdr, 0);
0bd243c4
KH
1607 reg_write(ohci, OHCI1394_BusOptions,
1608 be32_to_cpu(ohci->next_config_rom[2]));
ed568912
KH
1609 reg_write(ohci, OHCI1394_ConfigROMmap, ohci->next_config_rom_bus);
1610
1611 reg_write(ohci, OHCI1394_AsReqFilterHiSet, 0x80000000);
1612
1613 if (request_irq(dev->irq, irq_handler,
65efffa8 1614 IRQF_SHARED, ohci_driver_name, ohci)) {
ed568912
KH
1615 fw_error("Failed to allocate shared interrupt %d.\n",
1616 dev->irq);
1617 dma_free_coherent(ohci->card.device, CONFIG_ROM_SIZE,
1618 ohci->config_rom, ohci->config_rom_bus);
1619 return -EIO;
1620 }
1621
1622 reg_write(ohci, OHCI1394_HCControlSet,
1623 OHCI1394_HCControl_linkEnable |
1624 OHCI1394_HCControl_BIBimageValid);
1625 flush_writes(ohci);
1626
c781c06d
KH
1627 /*
1628 * We are ready to go, initiate bus reset to finish the
1629 * initialization.
1630 */
ed568912
KH
1631
1632 fw_core_initiate_bus_reset(&ohci->card, 1);
1633
1634 return 0;
1635}
1636
53dca511 1637static int ohci_set_config_rom(struct fw_card *card,
8e85973e 1638 const __be32 *config_rom, size_t length)
ed568912
KH
1639{
1640 struct fw_ohci *ohci;
1641 unsigned long flags;
2dbd7d7e 1642 int ret = -EBUSY;
ed568912 1643 __be32 *next_config_rom;
f5101d58 1644 dma_addr_t uninitialized_var(next_config_rom_bus);
ed568912
KH
1645
1646 ohci = fw_ohci(card);
1647
c781c06d
KH
1648 /*
1649 * When the OHCI controller is enabled, the config rom update
ed568912
KH
1650 * mechanism is a bit tricky, but easy enough to use. See
1651 * section 5.5.6 in the OHCI specification.
1652 *
1653 * The OHCI controller caches the new config rom address in a
1654 * shadow register (ConfigROMmapNext) and needs a bus reset
1655 * for the changes to take place. When the bus reset is
1656 * detected, the controller loads the new values for the
1657 * ConfigRomHeader and BusOptions registers from the specified
1658 * config rom and loads ConfigROMmap from the ConfigROMmapNext
1659 * shadow register. All automatically and atomically.
1660 *
1661 * Now, there's a twist to this story. The automatic load of
1662 * ConfigRomHeader and BusOptions doesn't honor the
1663 * noByteSwapData bit, so with a be32 config rom, the
1664 * controller will load be32 values in to these registers
1665 * during the atomic update, even on litte endian
1666 * architectures. The workaround we use is to put a 0 in the
1667 * header quadlet; 0 is endian agnostic and means that the
1668 * config rom isn't ready yet. In the bus reset tasklet we
1669 * then set up the real values for the two registers.
1670 *
1671 * We use ohci->lock to avoid racing with the code that sets
1672 * ohci->next_config_rom to NULL (see bus_reset_tasklet).
1673 */
1674
1675 next_config_rom =
1676 dma_alloc_coherent(ohci->card.device, CONFIG_ROM_SIZE,
1677 &next_config_rom_bus, GFP_KERNEL);
1678 if (next_config_rom == NULL)
1679 return -ENOMEM;
1680
1681 spin_lock_irqsave(&ohci->lock, flags);
1682
1683 if (ohci->next_config_rom == NULL) {
1684 ohci->next_config_rom = next_config_rom;
1685 ohci->next_config_rom_bus = next_config_rom_bus;
1686
8e85973e 1687 copy_config_rom(ohci->next_config_rom, config_rom, length);
ed568912
KH
1688
1689 ohci->next_header = config_rom[0];
1690 ohci->next_config_rom[0] = 0;
1691
1692 reg_write(ohci, OHCI1394_ConfigROMmap,
1693 ohci->next_config_rom_bus);
2dbd7d7e 1694 ret = 0;
ed568912
KH
1695 }
1696
1697 spin_unlock_irqrestore(&ohci->lock, flags);
1698
c781c06d
KH
1699 /*
1700 * Now initiate a bus reset to have the changes take
ed568912
KH
1701 * effect. We clean up the old config rom memory and DMA
1702 * mappings in the bus reset tasklet, since the OHCI
1703 * controller could need to access it before the bus reset
c781c06d
KH
1704 * takes effect.
1705 */
2dbd7d7e 1706 if (ret == 0)
ed568912 1707 fw_core_initiate_bus_reset(&ohci->card, 1);
4eaff7d6
SR
1708 else
1709 dma_free_coherent(ohci->card.device, CONFIG_ROM_SIZE,
1710 next_config_rom, next_config_rom_bus);
ed568912 1711
2dbd7d7e 1712 return ret;
ed568912
KH
1713}
1714
1715static void ohci_send_request(struct fw_card *card, struct fw_packet *packet)
1716{
1717 struct fw_ohci *ohci = fw_ohci(card);
1718
1719 at_context_transmit(&ohci->at_request_ctx, packet);
1720}
1721
1722static void ohci_send_response(struct fw_card *card, struct fw_packet *packet)
1723{
1724 struct fw_ohci *ohci = fw_ohci(card);
1725
1726 at_context_transmit(&ohci->at_response_ctx, packet);
1727}
1728
730c32f5
KH
1729static int ohci_cancel_packet(struct fw_card *card, struct fw_packet *packet)
1730{
1731 struct fw_ohci *ohci = fw_ohci(card);
f319b6a0
KH
1732 struct context *ctx = &ohci->at_request_ctx;
1733 struct driver_data *driver_data = packet->driver_data;
2dbd7d7e 1734 int ret = -ENOENT;
730c32f5 1735
f319b6a0 1736 tasklet_disable(&ctx->tasklet);
730c32f5 1737
f319b6a0
KH
1738 if (packet->ack != 0)
1739 goto out;
730c32f5 1740
19593ffd 1741 if (packet->payload_mapped)
1d1dc5e8
SR
1742 dma_unmap_single(ohci->card.device, packet->payload_bus,
1743 packet->payload_length, DMA_TO_DEVICE);
1744
ad3c0fe8 1745 log_ar_at_event('T', packet->speed, packet->header, 0x20);
f319b6a0
KH
1746 driver_data->packet = NULL;
1747 packet->ack = RCODE_CANCELLED;
1748 packet->callback(packet, &ohci->card, packet->ack);
2dbd7d7e 1749 ret = 0;
f319b6a0
KH
1750 out:
1751 tasklet_enable(&ctx->tasklet);
730c32f5 1752
2dbd7d7e 1753 return ret;
730c32f5
KH
1754}
1755
53dca511
SR
1756static int ohci_enable_phys_dma(struct fw_card *card,
1757 int node_id, int generation)
ed568912 1758{
080de8c2
SR
1759#ifdef CONFIG_FIREWIRE_OHCI_REMOTE_DMA
1760 return 0;
1761#else
ed568912
KH
1762 struct fw_ohci *ohci = fw_ohci(card);
1763 unsigned long flags;
2dbd7d7e 1764 int n, ret = 0;
ed568912 1765
c781c06d
KH
1766 /*
1767 * FIXME: Make sure this bitmask is cleared when we clear the busReset
1768 * interrupt bit. Clear physReqResourceAllBuses on bus reset.
1769 */
ed568912
KH
1770
1771 spin_lock_irqsave(&ohci->lock, flags);
1772
1773 if (ohci->generation != generation) {
2dbd7d7e 1774 ret = -ESTALE;
ed568912
KH
1775 goto out;
1776 }
1777
c781c06d
KH
1778 /*
1779 * Note, if the node ID contains a non-local bus ID, physical DMA is
1780 * enabled for _all_ nodes on remote buses.
1781 */
907293d7
SR
1782
1783 n = (node_id & 0xffc0) == LOCAL_BUS ? node_id & 0x3f : 63;
1784 if (n < 32)
1785 reg_write(ohci, OHCI1394_PhyReqFilterLoSet, 1 << n);
1786 else
1787 reg_write(ohci, OHCI1394_PhyReqFilterHiSet, 1 << (n - 32));
1788
ed568912 1789 flush_writes(ohci);
ed568912 1790 out:
6cad95fe 1791 spin_unlock_irqrestore(&ohci->lock, flags);
2dbd7d7e
SR
1792
1793 return ret;
080de8c2 1794#endif /* CONFIG_FIREWIRE_OHCI_REMOTE_DMA */
ed568912 1795}
373b2edd 1796
4a9bde9b 1797static u32 cycle_timer_ticks(u32 cycle_timer)
b677532b
CL
1798{
1799 u32 ticks;
1800
1801 ticks = cycle_timer & 0xfff;
1802 ticks += 3072 * ((cycle_timer >> 12) & 0x1fff);
1803 ticks += (3072 * 8000) * (cycle_timer >> 25);
4a9bde9b 1804
b677532b
CL
1805 return ticks;
1806}
1807
4a9bde9b
SR
1808/*
1809 * Some controllers exhibit one or more of the following bugs when updating the
1810 * iso cycle timer register:
1811 * - When the lowest six bits are wrapping around to zero, a read that happens
1812 * at the same time will return garbage in the lowest ten bits.
1813 * - When the cycleOffset field wraps around to zero, the cycleCount field is
1814 * not incremented for about 60 ns.
1815 * - Occasionally, the entire register reads zero.
1816 *
1817 * To catch these, we read the register three times and ensure that the
1818 * difference between each two consecutive reads is approximately the same, i.e.
1819 * less than twice the other. Furthermore, any negative difference indicates an
1820 * error. (A PCI read should take at least 20 ticks of the 24.576 MHz timer to
1821 * execute, so we have enough precision to compute the ratio of the differences.)
1822 */
168cf9af 1823static u32 ohci_get_cycle_time(struct fw_card *card)
d60d7f1d
KH
1824{
1825 struct fw_ohci *ohci = fw_ohci(card);
b677532b
CL
1826 u32 c0, c1, c2;
1827 u32 t0, t1, t2;
1828 s32 diff01, diff12;
4a9bde9b 1829 int i;
d60d7f1d 1830
4a9bde9b
SR
1831 c2 = reg_read(ohci, OHCI1394_IsochronousCycleTimer);
1832
4a635593 1833 if (ohci->quirks & QUIRK_CYCLE_TIMER) {
4a9bde9b
SR
1834 i = 0;
1835 c1 = c2;
b677532b 1836 c2 = reg_read(ohci, OHCI1394_IsochronousCycleTimer);
b677532b 1837 do {
4a9bde9b
SR
1838 c0 = c1;
1839 c1 = c2;
b677532b
CL
1840 c2 = reg_read(ohci, OHCI1394_IsochronousCycleTimer);
1841 t0 = cycle_timer_ticks(c0);
1842 t1 = cycle_timer_ticks(c1);
1843 t2 = cycle_timer_ticks(c2);
1844 diff01 = t1 - t0;
1845 diff12 = t2 - t1;
4a9bde9b
SR
1846 } while ((diff01 <= 0 || diff12 <= 0 ||
1847 diff01 / diff12 >= 2 || diff12 / diff01 >= 2)
1848 && i++ < 20);
b677532b 1849 }
d60d7f1d 1850
168cf9af 1851 return c2;
d60d7f1d
KH
1852}
1853
1aa292bb
DM
1854static void copy_iso_headers(struct iso_context *ctx, void *p)
1855{
1856 int i = ctx->header_length;
1857
1858 if (i + ctx->base.header_size > PAGE_SIZE)
1859 return;
1860
1861 /*
1862 * The iso header is byteswapped to little endian by
1863 * the controller, but the remaining header quadlets
1864 * are big endian. We want to present all the headers
1865 * as big endian, so we have to swap the first quadlet.
1866 */
1867 if (ctx->base.header_size > 0)
1868 *(u32 *) (ctx->header + i) = __swab32(*(u32 *) (p + 4));
1869 if (ctx->base.header_size > 4)
1870 *(u32 *) (ctx->header + i + 4) = __swab32(*(u32 *) p);
1871 if (ctx->base.header_size > 8)
1872 memcpy(ctx->header + i + 8, p + 8, ctx->base.header_size - 8);
1873 ctx->header_length += ctx->base.header_size;
1874}
1875
a186b4a6
JW
1876static int handle_ir_packet_per_buffer(struct context *context,
1877 struct descriptor *d,
1878 struct descriptor *last)
1879{
1880 struct iso_context *ctx =
1881 container_of(context, struct iso_context, context);
bcee893c 1882 struct descriptor *pd;
a186b4a6 1883 __le32 *ir_header;
bcee893c 1884 void *p;
a186b4a6 1885
bcee893c
DM
1886 for (pd = d; pd <= last; pd++) {
1887 if (pd->transfer_status)
1888 break;
1889 }
1890 if (pd > last)
a186b4a6
JW
1891 /* Descriptor(s) not done yet, stop iteration */
1892 return 0;
1893
1aa292bb
DM
1894 p = last + 1;
1895 copy_iso_headers(ctx, p);
a186b4a6 1896
bcee893c
DM
1897 if (le16_to_cpu(last->control) & DESCRIPTOR_IRQ_ALWAYS) {
1898 ir_header = (__le32 *) p;
a186b4a6
JW
1899 ctx->base.callback(&ctx->base,
1900 le32_to_cpu(ir_header[0]) & 0xffff,
1901 ctx->header_length, ctx->header,
1902 ctx->base.callback_data);
1903 ctx->header_length = 0;
1904 }
1905
a186b4a6
JW
1906 return 1;
1907}
1908
30200739
KH
1909static int handle_it_packet(struct context *context,
1910 struct descriptor *d,
1911 struct descriptor *last)
ed568912 1912{
30200739
KH
1913 struct iso_context *ctx =
1914 container_of(context, struct iso_context, context);
31769cef
JF
1915 int i;
1916 struct descriptor *pd;
373b2edd 1917
31769cef
JF
1918 for (pd = d; pd <= last; pd++)
1919 if (pd->transfer_status)
1920 break;
1921 if (pd > last)
1922 /* Descriptor(s) not done yet, stop iteration */
30200739
KH
1923 return 0;
1924
31769cef
JF
1925 i = ctx->header_length;
1926 if (i + 4 < PAGE_SIZE) {
1927 /* Present this value as big-endian to match the receive code */
1928 *(__be32 *)(ctx->header + i) = cpu_to_be32(
1929 ((u32)le16_to_cpu(pd->transfer_status) << 16) |
1930 le16_to_cpu(pd->res_count));
1931 ctx->header_length += 4;
1932 }
1933 if (le16_to_cpu(last->control) & DESCRIPTOR_IRQ_ALWAYS) {
9b32d5f3 1934 ctx->base.callback(&ctx->base, le16_to_cpu(last->res_count),
31769cef
JF
1935 ctx->header_length, ctx->header,
1936 ctx->base.callback_data);
1937 ctx->header_length = 0;
1938 }
30200739 1939 return 1;
ed568912
KH
1940}
1941
53dca511 1942static struct fw_iso_context *ohci_allocate_iso_context(struct fw_card *card,
4817ed24 1943 int type, int channel, size_t header_size)
ed568912
KH
1944{
1945 struct fw_ohci *ohci = fw_ohci(card);
1946 struct iso_context *ctx, *list;
30200739 1947 descriptor_callback_t callback;
4817ed24 1948 u64 *channels, dont_care = ~0ULL;
295e3feb 1949 u32 *mask, regs;
ed568912 1950 unsigned long flags;
2dbd7d7e 1951 int index, ret = -ENOMEM;
ed568912
KH
1952
1953 if (type == FW_ISO_CONTEXT_TRANSMIT) {
4817ed24 1954 channels = &dont_care;
ed568912
KH
1955 mask = &ohci->it_context_mask;
1956 list = ohci->it_context_list;
30200739 1957 callback = handle_it_packet;
ed568912 1958 } else {
4817ed24 1959 channels = &ohci->ir_context_channels;
373b2edd
SR
1960 mask = &ohci->ir_context_mask;
1961 list = ohci->ir_context_list;
6498ba04 1962 callback = handle_ir_packet_per_buffer;
ed568912
KH
1963 }
1964
1965 spin_lock_irqsave(&ohci->lock, flags);
4817ed24
SR
1966 index = *channels & 1ULL << channel ? ffs(*mask) - 1 : -1;
1967 if (index >= 0) {
1968 *channels &= ~(1ULL << channel);
ed568912 1969 *mask &= ~(1 << index);
4817ed24 1970 }
ed568912
KH
1971 spin_unlock_irqrestore(&ohci->lock, flags);
1972
1973 if (index < 0)
1974 return ERR_PTR(-EBUSY);
1975
373b2edd
SR
1976 if (type == FW_ISO_CONTEXT_TRANSMIT)
1977 regs = OHCI1394_IsoXmitContextBase(index);
1978 else
1979 regs = OHCI1394_IsoRcvContextBase(index);
1980
ed568912 1981 ctx = &list[index];
2d826cc5 1982 memset(ctx, 0, sizeof(*ctx));
9b32d5f3
KH
1983 ctx->header_length = 0;
1984 ctx->header = (void *) __get_free_page(GFP_KERNEL);
1985 if (ctx->header == NULL)
1986 goto out;
1987
2dbd7d7e
SR
1988 ret = context_init(&ctx->context, ohci, regs, callback);
1989 if (ret < 0)
9b32d5f3 1990 goto out_with_header;
ed568912
KH
1991
1992 return &ctx->base;
9b32d5f3
KH
1993
1994 out_with_header:
1995 free_page((unsigned long)ctx->header);
1996 out:
1997 spin_lock_irqsave(&ohci->lock, flags);
1998 *mask |= 1 << index;
1999 spin_unlock_irqrestore(&ohci->lock, flags);
2000
2dbd7d7e 2001 return ERR_PTR(ret);
ed568912
KH
2002}
2003
eb0306ea
KH
2004static int ohci_start_iso(struct fw_iso_context *base,
2005 s32 cycle, u32 sync, u32 tags)
ed568912 2006{
373b2edd 2007 struct iso_context *ctx = container_of(base, struct iso_context, base);
30200739 2008 struct fw_ohci *ohci = ctx->context.ohci;
8a2f7d93 2009 u32 control, match;
ed568912
KH
2010 int index;
2011
295e3feb
KH
2012 if (ctx->base.type == FW_ISO_CONTEXT_TRANSMIT) {
2013 index = ctx - ohci->it_context_list;
8a2f7d93
KH
2014 match = 0;
2015 if (cycle >= 0)
2016 match = IT_CONTEXT_CYCLE_MATCH_ENABLE |
295e3feb 2017 (cycle & 0x7fff) << 16;
21efb3cf 2018
295e3feb
KH
2019 reg_write(ohci, OHCI1394_IsoXmitIntEventClear, 1 << index);
2020 reg_write(ohci, OHCI1394_IsoXmitIntMaskSet, 1 << index);
8a2f7d93 2021 context_run(&ctx->context, match);
295e3feb
KH
2022 } else {
2023 index = ctx - ohci->ir_context_list;
a186b4a6 2024 control = IR_CONTEXT_ISOCH_HEADER;
8a2f7d93
KH
2025 match = (tags << 28) | (sync << 8) | ctx->base.channel;
2026 if (cycle >= 0) {
2027 match |= (cycle & 0x07fff) << 12;
2028 control |= IR_CONTEXT_CYCLE_MATCH_ENABLE;
2029 }
ed568912 2030
295e3feb
KH
2031 reg_write(ohci, OHCI1394_IsoRecvIntEventClear, 1 << index);
2032 reg_write(ohci, OHCI1394_IsoRecvIntMaskSet, 1 << index);
a77754a7 2033 reg_write(ohci, CONTEXT_MATCH(ctx->context.regs), match);
8a2f7d93 2034 context_run(&ctx->context, control);
295e3feb 2035 }
ed568912
KH
2036
2037 return 0;
2038}
2039
b8295668
KH
2040static int ohci_stop_iso(struct fw_iso_context *base)
2041{
2042 struct fw_ohci *ohci = fw_ohci(base->card);
373b2edd 2043 struct iso_context *ctx = container_of(base, struct iso_context, base);
b8295668
KH
2044 int index;
2045
2046 if (ctx->base.type == FW_ISO_CONTEXT_TRANSMIT) {
2047 index = ctx - ohci->it_context_list;
2048 reg_write(ohci, OHCI1394_IsoXmitIntMaskClear, 1 << index);
2049 } else {
2050 index = ctx - ohci->ir_context_list;
2051 reg_write(ohci, OHCI1394_IsoRecvIntMaskClear, 1 << index);
2052 }
2053 flush_writes(ohci);
2054 context_stop(&ctx->context);
2055
2056 return 0;
2057}
2058
ed568912
KH
2059static void ohci_free_iso_context(struct fw_iso_context *base)
2060{
2061 struct fw_ohci *ohci = fw_ohci(base->card);
373b2edd 2062 struct iso_context *ctx = container_of(base, struct iso_context, base);
ed568912
KH
2063 unsigned long flags;
2064 int index;
2065
b8295668
KH
2066 ohci_stop_iso(base);
2067 context_release(&ctx->context);
9b32d5f3 2068 free_page((unsigned long)ctx->header);
b8295668 2069
ed568912
KH
2070 spin_lock_irqsave(&ohci->lock, flags);
2071
2072 if (ctx->base.type == FW_ISO_CONTEXT_TRANSMIT) {
2073 index = ctx - ohci->it_context_list;
ed568912
KH
2074 ohci->it_context_mask |= 1 << index;
2075 } else {
2076 index = ctx - ohci->ir_context_list;
ed568912 2077 ohci->ir_context_mask |= 1 << index;
4817ed24 2078 ohci->ir_context_channels |= 1ULL << base->channel;
ed568912 2079 }
ed568912
KH
2080
2081 spin_unlock_irqrestore(&ohci->lock, flags);
2082}
2083
53dca511
SR
2084static int ohci_queue_iso_transmit(struct fw_iso_context *base,
2085 struct fw_iso_packet *packet,
2086 struct fw_iso_buffer *buffer,
2087 unsigned long payload)
ed568912 2088{
373b2edd 2089 struct iso_context *ctx = container_of(base, struct iso_context, base);
30200739 2090 struct descriptor *d, *last, *pd;
ed568912
KH
2091 struct fw_iso_packet *p;
2092 __le32 *header;
9aad8125 2093 dma_addr_t d_bus, page_bus;
ed568912
KH
2094 u32 z, header_z, payload_z, irq;
2095 u32 payload_index, payload_end_index, next_page_index;
30200739 2096 int page, end_page, i, length, offset;
ed568912 2097
ed568912 2098 p = packet;
9aad8125 2099 payload_index = payload;
ed568912
KH
2100
2101 if (p->skip)
2102 z = 1;
2103 else
2104 z = 2;
2105 if (p->header_length > 0)
2106 z++;
2107
2108 /* Determine the first page the payload isn't contained in. */
2109 end_page = PAGE_ALIGN(payload_index + p->payload_length) >> PAGE_SHIFT;
2110 if (p->payload_length > 0)
2111 payload_z = end_page - (payload_index >> PAGE_SHIFT);
2112 else
2113 payload_z = 0;
2114
2115 z += payload_z;
2116
2117 /* Get header size in number of descriptors. */
2d826cc5 2118 header_z = DIV_ROUND_UP(p->header_length, sizeof(*d));
ed568912 2119
30200739
KH
2120 d = context_get_descriptors(&ctx->context, z + header_z, &d_bus);
2121 if (d == NULL)
2122 return -ENOMEM;
ed568912
KH
2123
2124 if (!p->skip) {
a77754a7 2125 d[0].control = cpu_to_le16(DESCRIPTOR_KEY_IMMEDIATE);
ed568912 2126 d[0].req_count = cpu_to_le16(8);
7f51a100
CL
2127 /*
2128 * Link the skip address to this descriptor itself. This causes
2129 * a context to skip a cycle whenever lost cycles or FIFO
2130 * overruns occur, without dropping the data. The application
2131 * should then decide whether this is an error condition or not.
2132 * FIXME: Make the context's cycle-lost behaviour configurable?
2133 */
2134 d[0].branch_address = cpu_to_le32(d_bus | z);
ed568912
KH
2135
2136 header = (__le32 *) &d[1];
a77754a7
KH
2137 header[0] = cpu_to_le32(IT_HEADER_SY(p->sy) |
2138 IT_HEADER_TAG(p->tag) |
2139 IT_HEADER_TCODE(TCODE_STREAM_DATA) |
2140 IT_HEADER_CHANNEL(ctx->base.channel) |
2141 IT_HEADER_SPEED(ctx->base.speed));
ed568912 2142 header[1] =
a77754a7 2143 cpu_to_le32(IT_HEADER_DATA_LENGTH(p->header_length +
ed568912
KH
2144 p->payload_length));
2145 }
2146
2147 if (p->header_length > 0) {
2148 d[2].req_count = cpu_to_le16(p->header_length);
2d826cc5 2149 d[2].data_address = cpu_to_le32(d_bus + z * sizeof(*d));
ed568912
KH
2150 memcpy(&d[z], p->header, p->header_length);
2151 }
2152
2153 pd = d + z - payload_z;
2154 payload_end_index = payload_index + p->payload_length;
2155 for (i = 0; i < payload_z; i++) {
2156 page = payload_index >> PAGE_SHIFT;
2157 offset = payload_index & ~PAGE_MASK;
2158 next_page_index = (page + 1) << PAGE_SHIFT;
2159 length =
2160 min(next_page_index, payload_end_index) - payload_index;
2161 pd[i].req_count = cpu_to_le16(length);
9aad8125
KH
2162
2163 page_bus = page_private(buffer->pages[page]);
2164 pd[i].data_address = cpu_to_le32(page_bus + offset);
ed568912
KH
2165
2166 payload_index += length;
2167 }
2168
ed568912 2169 if (p->interrupt)
a77754a7 2170 irq = DESCRIPTOR_IRQ_ALWAYS;
ed568912 2171 else
a77754a7 2172 irq = DESCRIPTOR_NO_IRQ;
ed568912 2173
30200739 2174 last = z == 2 ? d : d + z - 1;
a77754a7
KH
2175 last->control |= cpu_to_le16(DESCRIPTOR_OUTPUT_LAST |
2176 DESCRIPTOR_STATUS |
2177 DESCRIPTOR_BRANCH_ALWAYS |
cbb59da7 2178 irq);
ed568912 2179
30200739 2180 context_append(&ctx->context, d, z, header_z);
ed568912
KH
2181
2182 return 0;
2183}
373b2edd 2184
53dca511
SR
2185static int ohci_queue_iso_receive_packet_per_buffer(struct fw_iso_context *base,
2186 struct fw_iso_packet *packet,
2187 struct fw_iso_buffer *buffer,
2188 unsigned long payload)
a186b4a6
JW
2189{
2190 struct iso_context *ctx = container_of(base, struct iso_context, base);
8c0c0cc2 2191 struct descriptor *d, *pd;
bcee893c 2192 struct fw_iso_packet *p = packet;
a186b4a6
JW
2193 dma_addr_t d_bus, page_bus;
2194 u32 z, header_z, rest;
bcee893c
DM
2195 int i, j, length;
2196 int page, offset, packet_count, header_size, payload_per_buffer;
a186b4a6
JW
2197
2198 /*
1aa292bb
DM
2199 * The OHCI controller puts the isochronous header and trailer in the
2200 * buffer, so we need at least 8 bytes.
a186b4a6
JW
2201 */
2202 packet_count = p->header_length / ctx->base.header_size;
1aa292bb 2203 header_size = max(ctx->base.header_size, (size_t)8);
a186b4a6
JW
2204
2205 /* Get header size in number of descriptors. */
2206 header_z = DIV_ROUND_UP(header_size, sizeof(*d));
2207 page = payload >> PAGE_SHIFT;
2208 offset = payload & ~PAGE_MASK;
bcee893c 2209 payload_per_buffer = p->payload_length / packet_count;
a186b4a6
JW
2210
2211 for (i = 0; i < packet_count; i++) {
2212 /* d points to the header descriptor */
bcee893c 2213 z = DIV_ROUND_UP(payload_per_buffer + offset, PAGE_SIZE) + 1;
a186b4a6 2214 d = context_get_descriptors(&ctx->context,
bcee893c 2215 z + header_z, &d_bus);
a186b4a6
JW
2216 if (d == NULL)
2217 return -ENOMEM;
2218
bcee893c
DM
2219 d->control = cpu_to_le16(DESCRIPTOR_STATUS |
2220 DESCRIPTOR_INPUT_MORE);
2221 if (p->skip && i == 0)
2222 d->control |= cpu_to_le16(DESCRIPTOR_WAIT);
a186b4a6
JW
2223 d->req_count = cpu_to_le16(header_size);
2224 d->res_count = d->req_count;
bcee893c 2225 d->transfer_status = 0;
a186b4a6
JW
2226 d->data_address = cpu_to_le32(d_bus + (z * sizeof(*d)));
2227
bcee893c 2228 rest = payload_per_buffer;
8c0c0cc2 2229 pd = d;
bcee893c 2230 for (j = 1; j < z; j++) {
8c0c0cc2 2231 pd++;
bcee893c
DM
2232 pd->control = cpu_to_le16(DESCRIPTOR_STATUS |
2233 DESCRIPTOR_INPUT_MORE);
2234
2235 if (offset + rest < PAGE_SIZE)
2236 length = rest;
2237 else
2238 length = PAGE_SIZE - offset;
2239 pd->req_count = cpu_to_le16(length);
2240 pd->res_count = pd->req_count;
2241 pd->transfer_status = 0;
2242
2243 page_bus = page_private(buffer->pages[page]);
2244 pd->data_address = cpu_to_le32(page_bus + offset);
2245
2246 offset = (offset + length) & ~PAGE_MASK;
2247 rest -= length;
2248 if (offset == 0)
2249 page++;
2250 }
a186b4a6
JW
2251 pd->control = cpu_to_le16(DESCRIPTOR_STATUS |
2252 DESCRIPTOR_INPUT_LAST |
2253 DESCRIPTOR_BRANCH_ALWAYS);
bcee893c 2254 if (p->interrupt && i == packet_count - 1)
a186b4a6
JW
2255 pd->control |= cpu_to_le16(DESCRIPTOR_IRQ_ALWAYS);
2256
a186b4a6
JW
2257 context_append(&ctx->context, d, z, header_z);
2258 }
2259
2260 return 0;
2261}
2262
53dca511
SR
2263static int ohci_queue_iso(struct fw_iso_context *base,
2264 struct fw_iso_packet *packet,
2265 struct fw_iso_buffer *buffer,
2266 unsigned long payload)
295e3feb 2267{
e364cf4e 2268 struct iso_context *ctx = container_of(base, struct iso_context, base);
fe5ca634 2269 unsigned long flags;
2dbd7d7e 2270 int ret;
e364cf4e 2271
fe5ca634 2272 spin_lock_irqsave(&ctx->context.ohci->lock, flags);
295e3feb 2273 if (base->type == FW_ISO_CONTEXT_TRANSMIT)
2dbd7d7e 2274 ret = ohci_queue_iso_transmit(base, packet, buffer, payload);
e364cf4e 2275 else
2dbd7d7e
SR
2276 ret = ohci_queue_iso_receive_packet_per_buffer(base, packet,
2277 buffer, payload);
fe5ca634
DM
2278 spin_unlock_irqrestore(&ctx->context.ohci->lock, flags);
2279
2dbd7d7e 2280 return ret;
295e3feb
KH
2281}
2282
21ebcd12 2283static const struct fw_card_driver ohci_driver = {
ed568912
KH
2284 .enable = ohci_enable,
2285 .update_phy_reg = ohci_update_phy_reg,
2286 .set_config_rom = ohci_set_config_rom,
2287 .send_request = ohci_send_request,
2288 .send_response = ohci_send_response,
730c32f5 2289 .cancel_packet = ohci_cancel_packet,
ed568912 2290 .enable_phys_dma = ohci_enable_phys_dma,
168cf9af 2291 .get_cycle_time = ohci_get_cycle_time,
ed568912
KH
2292
2293 .allocate_iso_context = ohci_allocate_iso_context,
2294 .free_iso_context = ohci_free_iso_context,
2295 .queue_iso = ohci_queue_iso,
69cdb726 2296 .start_iso = ohci_start_iso,
b8295668 2297 .stop_iso = ohci_stop_iso,
ed568912
KH
2298};
2299
ea8d006b 2300#ifdef CONFIG_PPC_PMAC
2ed0f181
SR
2301static void ohci_pmac_on(struct pci_dev *dev)
2302{
ea8d006b
SR
2303 if (machine_is(powermac)) {
2304 struct device_node *ofn = pci_device_to_OF_node(dev);
2305
2306 if (ofn) {
2307 pmac_call_feature(PMAC_FTR_1394_CABLE_POWER, ofn, 0, 1);
2308 pmac_call_feature(PMAC_FTR_1394_ENABLE, ofn, 0, 1);
2309 }
2310 }
2ed0f181
SR
2311}
2312
2313static void ohci_pmac_off(struct pci_dev *dev)
2314{
2315 if (machine_is(powermac)) {
2316 struct device_node *ofn = pci_device_to_OF_node(dev);
2317
2318 if (ofn) {
2319 pmac_call_feature(PMAC_FTR_1394_ENABLE, ofn, 0, 0);
2320 pmac_call_feature(PMAC_FTR_1394_CABLE_POWER, ofn, 0, 0);
2321 }
2322 }
2323}
2324#else
2325#define ohci_pmac_on(dev)
2326#define ohci_pmac_off(dev)
ea8d006b
SR
2327#endif /* CONFIG_PPC_PMAC */
2328
53dca511
SR
2329static int __devinit pci_probe(struct pci_dev *dev,
2330 const struct pci_device_id *ent)
2ed0f181
SR
2331{
2332 struct fw_ohci *ohci;
95984f62 2333 u32 bus_options, max_receive, link_speed, version;
2ed0f181 2334 u64 guid;
6fdb2ee2 2335 int i, err, n_ir, n_it;
2ed0f181
SR
2336 size_t size;
2337
2d826cc5 2338 ohci = kzalloc(sizeof(*ohci), GFP_KERNEL);
ed568912 2339 if (ohci == NULL) {
7007a076
SR
2340 err = -ENOMEM;
2341 goto fail;
ed568912
KH
2342 }
2343
2344 fw_card_initialize(&ohci->card, &ohci_driver, &dev->dev);
2345
130d5496
SR
2346 ohci_pmac_on(dev);
2347
d79406dd
KH
2348 err = pci_enable_device(dev);
2349 if (err) {
7007a076 2350 fw_error("Failed to enable OHCI hardware\n");
bd7dee63 2351 goto fail_free;
ed568912
KH
2352 }
2353
2354 pci_set_master(dev);
2355 pci_write_config_dword(dev, OHCI1394_PCI_HCI_Control, 0);
2356 pci_set_drvdata(dev, ohci);
2357
2358 spin_lock_init(&ohci->lock);
2359
2360 tasklet_init(&ohci->bus_reset_tasklet,
2361 bus_reset_tasklet, (unsigned long)ohci);
2362
d79406dd
KH
2363 err = pci_request_region(dev, 0, ohci_driver_name);
2364 if (err) {
ed568912 2365 fw_error("MMIO resource unavailable\n");
d79406dd 2366 goto fail_disable;
ed568912
KH
2367 }
2368
2369 ohci->registers = pci_iomap(dev, 0, OHCI1394_REGISTER_SIZE);
2370 if (ohci->registers == NULL) {
2371 fw_error("Failed to remap registers\n");
d79406dd
KH
2372 err = -ENXIO;
2373 goto fail_iomem;
ed568912
KH
2374 }
2375
4a635593
SR
2376 for (i = 0; i < ARRAY_SIZE(ohci_quirks); i++)
2377 if (ohci_quirks[i].vendor == dev->vendor &&
2378 (ohci_quirks[i].device == dev->device ||
2379 ohci_quirks[i].device == (unsigned short)PCI_ANY_ID)) {
2380 ohci->quirks = ohci_quirks[i].flags;
2381 break;
2382 }
3e9cc2f3
SR
2383 if (param_quirks)
2384 ohci->quirks = param_quirks;
b677532b 2385
ed568912
KH
2386 ar_context_init(&ohci->ar_request_ctx, ohci,
2387 OHCI1394_AsReqRcvContextControlSet);
2388
2389 ar_context_init(&ohci->ar_response_ctx, ohci,
2390 OHCI1394_AsRspRcvContextControlSet);
2391
fe5ca634 2392 context_init(&ohci->at_request_ctx, ohci,
f319b6a0 2393 OHCI1394_AsReqTrContextControlSet, handle_at_packet);
ed568912 2394
fe5ca634 2395 context_init(&ohci->at_response_ctx, ohci,
f319b6a0 2396 OHCI1394_AsRspTrContextControlSet, handle_at_packet);
ed568912 2397
ed568912 2398 reg_write(ohci, OHCI1394_IsoRecvIntMaskSet, ~0);
4802f16d
SR
2399 ohci->ir_context_channels = ~0ULL;
2400 ohci->ir_context_mask = reg_read(ohci, OHCI1394_IsoRecvIntMaskSet);
ed568912 2401 reg_write(ohci, OHCI1394_IsoRecvIntMaskClear, ~0);
6fdb2ee2
SR
2402 n_ir = hweight32(ohci->ir_context_mask);
2403 size = sizeof(struct iso_context) * n_ir;
4802f16d 2404 ohci->ir_context_list = kzalloc(size, GFP_KERNEL);
ed568912
KH
2405
2406 reg_write(ohci, OHCI1394_IsoXmitIntMaskSet, ~0);
4802f16d 2407 ohci->it_context_mask = reg_read(ohci, OHCI1394_IsoXmitIntMaskSet);
ed568912 2408 reg_write(ohci, OHCI1394_IsoXmitIntMaskClear, ~0);
6fdb2ee2
SR
2409 n_it = hweight32(ohci->it_context_mask);
2410 size = sizeof(struct iso_context) * n_it;
4802f16d 2411 ohci->it_context_list = kzalloc(size, GFP_KERNEL);
ed568912
KH
2412
2413 if (ohci->it_context_list == NULL || ohci->ir_context_list == NULL) {
d79406dd 2414 err = -ENOMEM;
7007a076 2415 goto fail_contexts;
ed568912
KH
2416 }
2417
2418 /* self-id dma buffer allocation */
2419 ohci->self_id_cpu = dma_alloc_coherent(ohci->card.device,
2420 SELF_ID_BUF_SIZE,
2421 &ohci->self_id_bus,
2422 GFP_KERNEL);
2423 if (ohci->self_id_cpu == NULL) {
d79406dd 2424 err = -ENOMEM;
7007a076 2425 goto fail_contexts;
ed568912
KH
2426 }
2427
ed568912
KH
2428 bus_options = reg_read(ohci, OHCI1394_BusOptions);
2429 max_receive = (bus_options >> 12) & 0xf;
2430 link_speed = bus_options & 0x7;
2431 guid = ((u64) reg_read(ohci, OHCI1394_GUIDHi) << 32) |
2432 reg_read(ohci, OHCI1394_GUIDLo);
2433
d79406dd 2434 err = fw_card_add(&ohci->card, max_receive, link_speed, guid);
e1eff7a3 2435 if (err)
d79406dd 2436 goto fail_self_id;
ed568912 2437
6fdb2ee2
SR
2438 version = reg_read(ohci, OHCI1394_Version) & 0x00ff00ff;
2439 fw_notify("Added fw-ohci device %s, OHCI v%x.%x, "
2440 "%d IR + %d IT contexts, quirks 0x%x\n",
2441 dev_name(&dev->dev), version >> 16, version & 0xff,
2442 n_ir, n_it, ohci->quirks);
e1eff7a3 2443
ed568912 2444 return 0;
d79406dd
KH
2445
2446 fail_self_id:
2447 dma_free_coherent(ohci->card.device, SELF_ID_BUF_SIZE,
2448 ohci->self_id_cpu, ohci->self_id_bus);
7007a076 2449 fail_contexts:
d79406dd 2450 kfree(ohci->ir_context_list);
7007a076
SR
2451 kfree(ohci->it_context_list);
2452 context_release(&ohci->at_response_ctx);
2453 context_release(&ohci->at_request_ctx);
2454 ar_context_release(&ohci->ar_response_ctx);
2455 ar_context_release(&ohci->ar_request_ctx);
d79406dd
KH
2456 pci_iounmap(dev, ohci->registers);
2457 fail_iomem:
2458 pci_release_region(dev, 0);
2459 fail_disable:
2460 pci_disable_device(dev);
bd7dee63
SR
2461 fail_free:
2462 kfree(&ohci->card);
130d5496 2463 ohci_pmac_off(dev);
7007a076
SR
2464 fail:
2465 if (err == -ENOMEM)
2466 fw_error("Out of memory\n");
d79406dd
KH
2467
2468 return err;
ed568912
KH
2469}
2470
2471static void pci_remove(struct pci_dev *dev)
2472{
2473 struct fw_ohci *ohci;
2474
2475 ohci = pci_get_drvdata(dev);
e254a4b4
KH
2476 reg_write(ohci, OHCI1394_IntMaskClear, ~0);
2477 flush_writes(ohci);
ed568912
KH
2478 fw_core_remove_card(&ohci->card);
2479
c781c06d
KH
2480 /*
2481 * FIXME: Fail all pending packets here, now that the upper
2482 * layers can't queue any more.
2483 */
ed568912
KH
2484
2485 software_reset(ohci);
2486 free_irq(dev->irq, ohci);
a55709ba
JF
2487
2488 if (ohci->next_config_rom && ohci->next_config_rom != ohci->config_rom)
2489 dma_free_coherent(ohci->card.device, CONFIG_ROM_SIZE,
2490 ohci->next_config_rom, ohci->next_config_rom_bus);
2491 if (ohci->config_rom)
2492 dma_free_coherent(ohci->card.device, CONFIG_ROM_SIZE,
2493 ohci->config_rom, ohci->config_rom_bus);
d79406dd
KH
2494 dma_free_coherent(ohci->card.device, SELF_ID_BUF_SIZE,
2495 ohci->self_id_cpu, ohci->self_id_bus);
a55709ba
JF
2496 ar_context_release(&ohci->ar_request_ctx);
2497 ar_context_release(&ohci->ar_response_ctx);
2498 context_release(&ohci->at_request_ctx);
2499 context_release(&ohci->at_response_ctx);
d79406dd
KH
2500 kfree(ohci->it_context_list);
2501 kfree(ohci->ir_context_list);
2502 pci_iounmap(dev, ohci->registers);
2503 pci_release_region(dev, 0);
2504 pci_disable_device(dev);
bd7dee63 2505 kfree(&ohci->card);
2ed0f181 2506 ohci_pmac_off(dev);
ea8d006b 2507
ed568912
KH
2508 fw_notify("Removed fw-ohci device.\n");
2509}
2510
2aef469a 2511#ifdef CONFIG_PM
2ed0f181 2512static int pci_suspend(struct pci_dev *dev, pm_message_t state)
2aef469a 2513{
2ed0f181 2514 struct fw_ohci *ohci = pci_get_drvdata(dev);
2aef469a
KH
2515 int err;
2516
2517 software_reset(ohci);
2ed0f181
SR
2518 free_irq(dev->irq, ohci);
2519 err = pci_save_state(dev);
2aef469a 2520 if (err) {
8a8cea27 2521 fw_error("pci_save_state failed\n");
2aef469a
KH
2522 return err;
2523 }
2ed0f181 2524 err = pci_set_power_state(dev, pci_choose_state(dev, state));
55111428
SR
2525 if (err)
2526 fw_error("pci_set_power_state failed with %d\n", err);
2ed0f181 2527 ohci_pmac_off(dev);
ea8d006b 2528
2aef469a
KH
2529 return 0;
2530}
2531
2ed0f181 2532static int pci_resume(struct pci_dev *dev)
2aef469a 2533{
2ed0f181 2534 struct fw_ohci *ohci = pci_get_drvdata(dev);
2aef469a
KH
2535 int err;
2536
2ed0f181
SR
2537 ohci_pmac_on(dev);
2538 pci_set_power_state(dev, PCI_D0);
2539 pci_restore_state(dev);
2540 err = pci_enable_device(dev);
2aef469a 2541 if (err) {
8a8cea27 2542 fw_error("pci_enable_device failed\n");
2aef469a
KH
2543 return err;
2544 }
2545
0bd243c4 2546 return ohci_enable(&ohci->card, NULL, 0);
2aef469a
KH
2547}
2548#endif
2549
a67483d2 2550static const struct pci_device_id pci_table[] = {
ed568912
KH
2551 { PCI_DEVICE_CLASS(PCI_CLASS_SERIAL_FIREWIRE_OHCI, ~0) },
2552 { }
2553};
2554
2555MODULE_DEVICE_TABLE(pci, pci_table);
2556
2557static struct pci_driver fw_ohci_pci_driver = {
2558 .name = ohci_driver_name,
2559 .id_table = pci_table,
2560 .probe = pci_probe,
2561 .remove = pci_remove,
2aef469a
KH
2562#ifdef CONFIG_PM
2563 .resume = pci_resume,
2564 .suspend = pci_suspend,
2565#endif
ed568912
KH
2566};
2567
2568MODULE_AUTHOR("Kristian Hoegsberg <krh@bitplanet.net>");
2569MODULE_DESCRIPTION("Driver for PCI OHCI IEEE1394 controllers");
2570MODULE_LICENSE("GPL");
2571
1e4c7b0d
OH
2572/* Provide a module alias so root-on-sbp2 initrds don't break. */
2573#ifndef CONFIG_IEEE1394_OHCI1394_MODULE
2574MODULE_ALIAS("ohci1394");
2575#endif
2576
ed568912
KH
2577static int __init fw_ohci_init(void)
2578{
2579 return pci_register_driver(&fw_ohci_pci_driver);
2580}
2581
2582static void __exit fw_ohci_cleanup(void)
2583{
2584 pci_unregister_driver(&fw_ohci_pci_driver);
2585}
2586
2587module_init(fw_ohci_init);
2588module_exit(fw_ohci_cleanup);