Merge branch 'v6v7' into devel
[linux/fpc-iii.git] / drivers / media / video / ivtv / ivtv-i2c.c
blob9fb86a081c0fe43f9f0f891ba7b3c47eb009b377
1 /*
2 I2C functions
3 Copyright (C) 2003-2004 Kevin Thayer <nufan_wfk at yahoo.com>
4 Copyright (C) 2005-2007 Hans Verkuil <hverkuil@xs4all.nl>
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.
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.
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
18 Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
22 This file includes an i2c implementation that was reverse engineered
23 from the Hauppauge windows driver. Older ivtv versions used i2c-algo-bit,
24 which whilst fine under most circumstances, had trouble with the Zilog
25 CPU on the PVR-150 which handles IR functions (occasional inability to
26 communicate with the chip until it was reset) and also with the i2c
27 bus being completely unreachable when multiple PVR cards were present.
29 The implementation is very similar to i2c-algo-bit, but there are enough
30 subtle differences that the two are hard to merge. The general strategy
31 employed by i2c-algo-bit is to use udelay() to implement the timing
32 when putting out bits on the scl/sda lines. The general strategy taken
33 here is to poll the lines for state changes (see ivtv_waitscl and
34 ivtv_waitsda). In addition there are small delays at various locations
35 which poll the SCL line 5 times (ivtv_scldelay). I would guess that
36 since this is memory mapped I/O that the length of those delays is tied
37 to the PCI bus clock. There is some extra code to do with recovery
38 and retries. Since it is not known what causes the actual i2c problems
39 in the first place, the only goal if one was to attempt to use
40 i2c-algo-bit would be to try to make it follow the same code path.
41 This would be a lot of work, and I'm also not convinced that it would
42 provide a generic benefit to i2c-algo-bit. Therefore consider this
43 an engineering solution -- not pretty, but it works.
45 Some more general comments about what we are doing:
47 The i2c bus is a 2 wire serial bus, with clock (SCL) and data (SDA)
48 lines. To communicate on the bus (as a master, we don't act as a slave),
49 we first initiate a start condition (ivtv_start). We then write the
50 address of the device that we want to communicate with, along with a flag
51 that indicates whether this is a read or a write. The slave then issues
52 an ACK signal (ivtv_ack), which tells us that it is ready for reading /
53 writing. We then proceed with reading or writing (ivtv_read/ivtv_write),
54 and finally issue a stop condition (ivtv_stop) to make the bus available
55 to other masters.
57 There is an additional form of transaction where a write may be
58 immediately followed by a read. In this case, there is no intervening
59 stop condition. (Only the msp3400 chip uses this method of data transfer).
62 #include "ivtv-driver.h"
63 #include "ivtv-cards.h"
64 #include "ivtv-gpio.h"
65 #include "ivtv-i2c.h"
66 #include <media/cx25840.h>
68 /* i2c implementation for cx23415/6 chip, ivtv project.
69 * Author: Kevin Thayer (nufan_wfk at yahoo.com)
71 /* i2c stuff */
72 #define IVTV_REG_I2C_SETSCL_OFFSET 0x7000
73 #define IVTV_REG_I2C_SETSDA_OFFSET 0x7004
74 #define IVTV_REG_I2C_GETSCL_OFFSET 0x7008
75 #define IVTV_REG_I2C_GETSDA_OFFSET 0x700c
77 #define IVTV_CS53L32A_I2C_ADDR 0x11
78 #define IVTV_M52790_I2C_ADDR 0x48
79 #define IVTV_CX25840_I2C_ADDR 0x44
80 #define IVTV_SAA7115_I2C_ADDR 0x21
81 #define IVTV_SAA7127_I2C_ADDR 0x44
82 #define IVTV_SAA717x_I2C_ADDR 0x21
83 #define IVTV_MSP3400_I2C_ADDR 0x40
84 #define IVTV_HAUPPAUGE_I2C_ADDR 0x50
85 #define IVTV_WM8739_I2C_ADDR 0x1a
86 #define IVTV_WM8775_I2C_ADDR 0x1b
87 #define IVTV_TEA5767_I2C_ADDR 0x60
88 #define IVTV_UPD64031A_I2C_ADDR 0x12
89 #define IVTV_UPD64083_I2C_ADDR 0x5c
90 #define IVTV_VP27SMPX_I2C_ADDR 0x5b
91 #define IVTV_M52790_I2C_ADDR 0x48
92 #define IVTV_AVERMEDIA_IR_RX_I2C_ADDR 0x40
93 #define IVTV_HAUP_EXT_IR_RX_I2C_ADDR 0x1a
94 #define IVTV_HAUP_INT_IR_RX_I2C_ADDR 0x18
95 #define IVTV_Z8F0811_IR_TX_I2C_ADDR 0x70
96 #define IVTV_Z8F0811_IR_RX_I2C_ADDR 0x71
97 #define IVTV_ADAPTEC_IR_ADDR 0x6b
99 /* This array should match the IVTV_HW_ defines */
100 static const u8 hw_addrs[] = {
101 IVTV_CX25840_I2C_ADDR,
102 IVTV_SAA7115_I2C_ADDR,
103 IVTV_SAA7127_I2C_ADDR,
104 IVTV_MSP3400_I2C_ADDR,
106 IVTV_WM8775_I2C_ADDR,
107 IVTV_CS53L32A_I2C_ADDR,
109 IVTV_SAA7115_I2C_ADDR,
110 IVTV_UPD64031A_I2C_ADDR,
111 IVTV_UPD64083_I2C_ADDR,
112 IVTV_SAA717x_I2C_ADDR,
113 IVTV_WM8739_I2C_ADDR,
114 IVTV_VP27SMPX_I2C_ADDR,
115 IVTV_M52790_I2C_ADDR,
116 0, /* IVTV_HW_GPIO dummy driver ID */
117 IVTV_AVERMEDIA_IR_RX_I2C_ADDR, /* IVTV_HW_I2C_IR_RX_AVER */
118 IVTV_HAUP_EXT_IR_RX_I2C_ADDR, /* IVTV_HW_I2C_IR_RX_HAUP_EXT */
119 IVTV_HAUP_INT_IR_RX_I2C_ADDR, /* IVTV_HW_I2C_IR_RX_HAUP_INT */
120 IVTV_Z8F0811_IR_TX_I2C_ADDR, /* IVTV_HW_Z8F0811_IR_TX_HAUP */
121 IVTV_Z8F0811_IR_RX_I2C_ADDR, /* IVTV_HW_Z8F0811_IR_RX_HAUP */
122 IVTV_ADAPTEC_IR_ADDR, /* IVTV_HW_I2C_IR_RX_ADAPTEC */
125 /* This array should match the IVTV_HW_ defines */
126 static const char * const hw_devicenames[] = {
127 "cx25840",
128 "saa7115",
129 "saa7127_auto", /* saa7127 or saa7129 */
130 "msp3400",
131 "tuner",
132 "wm8775",
133 "cs53l32a",
134 "tveeprom",
135 "saa7114",
136 "upd64031a",
137 "upd64083",
138 "saa717x",
139 "wm8739",
140 "vp27smpx",
141 "m52790",
142 "gpio",
143 "ir_video", /* IVTV_HW_I2C_IR_RX_AVER */
144 "ir_video", /* IVTV_HW_I2C_IR_RX_HAUP_EXT */
145 "ir_video", /* IVTV_HW_I2C_IR_RX_HAUP_INT */
146 "ir_tx_z8f0811_haup", /* IVTV_HW_Z8F0811_IR_TX_HAUP */
147 "ir_rx_z8f0811_haup", /* IVTV_HW_Z8F0811_IR_RX_HAUP */
148 "ir_video", /* IVTV_HW_I2C_IR_RX_ADAPTEC */
151 static int get_key_adaptec(struct IR_i2c *ir, u32 *ir_key, u32 *ir_raw)
153 unsigned char keybuf[4];
155 keybuf[0] = 0x00;
156 i2c_master_send(ir->c, keybuf, 1);
157 /* poll IR chip */
158 if (i2c_master_recv(ir->c, keybuf, sizeof(keybuf)) != sizeof(keybuf)) {
159 return 0;
162 /* key pressed ? */
163 if (keybuf[2] == 0xff)
164 return 0;
166 /* remove repeat bit */
167 keybuf[2] &= 0x7f;
168 keybuf[3] |= 0x80;
170 *ir_key = keybuf[3] | keybuf[2] << 8 | keybuf[1] << 16 |keybuf[0] << 24;
171 *ir_raw = *ir_key;
173 return 1;
176 static int ivtv_i2c_new_ir(struct ivtv *itv, u32 hw, const char *type, u8 addr)
178 struct i2c_board_info info;
179 struct i2c_adapter *adap = &itv->i2c_adap;
180 struct IR_i2c_init_data *init_data = &itv->ir_i2c_init_data;
181 unsigned short addr_list[2] = { addr, I2C_CLIENT_END };
183 /* Only allow one IR transmitter to be registered per board */
184 if (hw & IVTV_HW_IR_TX_ANY) {
185 if (itv->hw_flags & IVTV_HW_IR_TX_ANY)
186 return -1;
187 memset(&info, 0, sizeof(struct i2c_board_info));
188 strlcpy(info.type, type, I2C_NAME_SIZE);
189 return i2c_new_probed_device(adap, &info, addr_list, NULL)
190 == NULL ? -1 : 0;
193 /* Only allow one IR receiver to be registered per board */
194 if (itv->hw_flags & IVTV_HW_IR_RX_ANY)
195 return -1;
197 /* Our default information for ir-kbd-i2c.c to use */
198 switch (hw) {
199 case IVTV_HW_I2C_IR_RX_AVER:
200 init_data->ir_codes = RC_MAP_AVERMEDIA_CARDBUS;
201 init_data->internal_get_key_func =
202 IR_KBD_GET_KEY_AVERMEDIA_CARDBUS;
203 init_data->type = RC_TYPE_OTHER;
204 init_data->name = "AVerMedia AVerTV card";
205 break;
206 case IVTV_HW_I2C_IR_RX_HAUP_EXT:
207 case IVTV_HW_I2C_IR_RX_HAUP_INT:
208 /* Default to old black remote */
209 init_data->ir_codes = RC_MAP_RC5_TV;
210 init_data->internal_get_key_func = IR_KBD_GET_KEY_HAUP;
211 init_data->type = RC_TYPE_RC5;
212 init_data->name = itv->card_name;
213 break;
214 case IVTV_HW_Z8F0811_IR_RX_HAUP:
215 /* Default to grey remote */
216 init_data->ir_codes = RC_MAP_HAUPPAUGE_NEW;
217 init_data->internal_get_key_func = IR_KBD_GET_KEY_HAUP_XVR;
218 init_data->type = RC_TYPE_RC5;
219 init_data->name = itv->card_name;
220 break;
221 case IVTV_HW_I2C_IR_RX_ADAPTEC:
222 init_data->get_key = get_key_adaptec;
223 init_data->name = itv->card_name;
224 /* FIXME: The protocol and RC_MAP needs to be corrected */
225 init_data->ir_codes = RC_MAP_EMPTY;
226 init_data->type = RC_TYPE_UNKNOWN;
227 break;
230 memset(&info, 0, sizeof(struct i2c_board_info));
231 info.platform_data = init_data;
232 strlcpy(info.type, type, I2C_NAME_SIZE);
234 return i2c_new_probed_device(adap, &info, addr_list, NULL) == NULL ?
235 -1 : 0;
238 /* Instantiate the IR receiver device using probing -- undesirable */
239 struct i2c_client *ivtv_i2c_new_ir_legacy(struct ivtv *itv)
241 struct i2c_board_info info;
243 * The external IR receiver is at i2c address 0x34.
244 * The internal IR receiver is at i2c address 0x30.
246 * In theory, both can be fitted, and Hauppauge suggests an external
247 * overrides an internal. That's why we probe 0x1a (~0x34) first. CB
249 * Some of these addresses we probe may collide with other i2c address
250 * allocations, so this function must be called after all other i2c
251 * devices we care about are registered.
253 const unsigned short addr_list[] = {
254 0x1a, /* Hauppauge IR external - collides with WM8739 */
255 0x18, /* Hauppauge IR internal */
256 I2C_CLIENT_END
259 memset(&info, 0, sizeof(struct i2c_board_info));
260 strlcpy(info.type, "ir_video", I2C_NAME_SIZE);
261 return i2c_new_probed_device(&itv->i2c_adap, &info, addr_list, NULL);
264 int ivtv_i2c_register(struct ivtv *itv, unsigned idx)
266 struct v4l2_subdev *sd;
267 struct i2c_adapter *adap = &itv->i2c_adap;
268 const char *type = hw_devicenames[idx];
269 u32 hw = 1 << idx;
271 if (idx >= ARRAY_SIZE(hw_addrs))
272 return -1;
273 if (hw == IVTV_HW_TUNER) {
274 /* special tuner handling */
275 sd = v4l2_i2c_new_subdev(&itv->v4l2_dev, adap, type, 0,
276 itv->card_i2c->radio);
277 if (sd)
278 sd->grp_id = 1 << idx;
279 sd = v4l2_i2c_new_subdev(&itv->v4l2_dev, adap, type, 0,
280 itv->card_i2c->demod);
281 if (sd)
282 sd->grp_id = 1 << idx;
283 sd = v4l2_i2c_new_subdev(&itv->v4l2_dev, adap, type, 0,
284 itv->card_i2c->tv);
285 if (sd)
286 sd->grp_id = 1 << idx;
287 return sd ? 0 : -1;
290 if (hw & IVTV_HW_IR_ANY)
291 return ivtv_i2c_new_ir(itv, hw, type, hw_addrs[idx]);
293 /* Is it not an I2C device or one we do not wish to register? */
294 if (!hw_addrs[idx])
295 return -1;
297 /* It's an I2C device other than an analog tuner or IR chip */
298 if (hw == IVTV_HW_UPD64031A || hw == IVTV_HW_UPD6408X) {
299 sd = v4l2_i2c_new_subdev(&itv->v4l2_dev,
300 adap, type, 0, I2C_ADDRS(hw_addrs[idx]));
301 } else if (hw == IVTV_HW_CX25840) {
302 struct cx25840_platform_data pdata;
303 struct i2c_board_info cx25840_info = {
304 .type = "cx25840",
305 .addr = hw_addrs[idx],
306 .platform_data = &pdata,
309 pdata.pvr150_workaround = itv->pvr150_workaround;
310 sd = v4l2_i2c_new_subdev_board(&itv->v4l2_dev, adap,
311 &cx25840_info, NULL);
312 } else {
313 sd = v4l2_i2c_new_subdev(&itv->v4l2_dev,
314 adap, type, hw_addrs[idx], NULL);
316 if (sd)
317 sd->grp_id = 1 << idx;
318 return sd ? 0 : -1;
321 struct v4l2_subdev *ivtv_find_hw(struct ivtv *itv, u32 hw)
323 struct v4l2_subdev *result = NULL;
324 struct v4l2_subdev *sd;
326 spin_lock(&itv->v4l2_dev.lock);
327 v4l2_device_for_each_subdev(sd, &itv->v4l2_dev) {
328 if (sd->grp_id == hw) {
329 result = sd;
330 break;
333 spin_unlock(&itv->v4l2_dev.lock);
334 return result;
337 /* Set the serial clock line to the desired state */
338 static void ivtv_setscl(struct ivtv *itv, int state)
340 /* write them out */
341 /* write bits are inverted */
342 write_reg(~state, IVTV_REG_I2C_SETSCL_OFFSET);
345 /* Set the serial data line to the desired state */
346 static void ivtv_setsda(struct ivtv *itv, int state)
348 /* write them out */
349 /* write bits are inverted */
350 write_reg(~state & 1, IVTV_REG_I2C_SETSDA_OFFSET);
353 /* Read the serial clock line */
354 static int ivtv_getscl(struct ivtv *itv)
356 return read_reg(IVTV_REG_I2C_GETSCL_OFFSET) & 1;
359 /* Read the serial data line */
360 static int ivtv_getsda(struct ivtv *itv)
362 return read_reg(IVTV_REG_I2C_GETSDA_OFFSET) & 1;
365 /* Implement a short delay by polling the serial clock line */
366 static void ivtv_scldelay(struct ivtv *itv)
368 int i;
370 for (i = 0; i < 5; ++i)
371 ivtv_getscl(itv);
374 /* Wait for the serial clock line to become set to a specific value */
375 static int ivtv_waitscl(struct ivtv *itv, int val)
377 int i;
379 ivtv_scldelay(itv);
380 for (i = 0; i < 1000; ++i) {
381 if (ivtv_getscl(itv) == val)
382 return 1;
384 return 0;
387 /* Wait for the serial data line to become set to a specific value */
388 static int ivtv_waitsda(struct ivtv *itv, int val)
390 int i;
392 ivtv_scldelay(itv);
393 for (i = 0; i < 1000; ++i) {
394 if (ivtv_getsda(itv) == val)
395 return 1;
397 return 0;
400 /* Wait for the slave to issue an ACK */
401 static int ivtv_ack(struct ivtv *itv)
403 int ret = 0;
405 if (ivtv_getscl(itv) == 1) {
406 IVTV_DEBUG_HI_I2C("SCL was high starting an ack\n");
407 ivtv_setscl(itv, 0);
408 if (!ivtv_waitscl(itv, 0)) {
409 IVTV_DEBUG_I2C("Could not set SCL low starting an ack\n");
410 return -EREMOTEIO;
413 ivtv_setsda(itv, 1);
414 ivtv_scldelay(itv);
415 ivtv_setscl(itv, 1);
416 if (!ivtv_waitsda(itv, 0)) {
417 IVTV_DEBUG_I2C("Slave did not ack\n");
418 ret = -EREMOTEIO;
420 ivtv_setscl(itv, 0);
421 if (!ivtv_waitscl(itv, 0)) {
422 IVTV_DEBUG_I2C("Failed to set SCL low after ACK\n");
423 ret = -EREMOTEIO;
425 return ret;
428 /* Write a single byte to the i2c bus and wait for the slave to ACK */
429 static int ivtv_sendbyte(struct ivtv *itv, unsigned char byte)
431 int i, bit;
433 IVTV_DEBUG_HI_I2C("write %x\n",byte);
434 for (i = 0; i < 8; ++i, byte<<=1) {
435 ivtv_setscl(itv, 0);
436 if (!ivtv_waitscl(itv, 0)) {
437 IVTV_DEBUG_I2C("Error setting SCL low\n");
438 return -EREMOTEIO;
440 bit = (byte>>7)&1;
441 ivtv_setsda(itv, bit);
442 if (!ivtv_waitsda(itv, bit)) {
443 IVTV_DEBUG_I2C("Error setting SDA\n");
444 return -EREMOTEIO;
446 ivtv_setscl(itv, 1);
447 if (!ivtv_waitscl(itv, 1)) {
448 IVTV_DEBUG_I2C("Slave not ready for bit\n");
449 return -EREMOTEIO;
452 ivtv_setscl(itv, 0);
453 if (!ivtv_waitscl(itv, 0)) {
454 IVTV_DEBUG_I2C("Error setting SCL low\n");
455 return -EREMOTEIO;
457 return ivtv_ack(itv);
460 /* Read a byte from the i2c bus and send a NACK if applicable (i.e. for the
461 final byte) */
462 static int ivtv_readbyte(struct ivtv *itv, unsigned char *byte, int nack)
464 int i;
466 *byte = 0;
468 ivtv_setsda(itv, 1);
469 ivtv_scldelay(itv);
470 for (i = 0; i < 8; ++i) {
471 ivtv_setscl(itv, 0);
472 ivtv_scldelay(itv);
473 ivtv_setscl(itv, 1);
474 if (!ivtv_waitscl(itv, 1)) {
475 IVTV_DEBUG_I2C("Error setting SCL high\n");
476 return -EREMOTEIO;
478 *byte = ((*byte)<<1)|ivtv_getsda(itv);
480 ivtv_setscl(itv, 0);
481 ivtv_scldelay(itv);
482 ivtv_setsda(itv, nack);
483 ivtv_scldelay(itv);
484 ivtv_setscl(itv, 1);
485 ivtv_scldelay(itv);
486 ivtv_setscl(itv, 0);
487 ivtv_scldelay(itv);
488 IVTV_DEBUG_HI_I2C("read %x\n",*byte);
489 return 0;
492 /* Issue a start condition on the i2c bus to alert slaves to prepare for
493 an address write */
494 static int ivtv_start(struct ivtv *itv)
496 int sda;
498 sda = ivtv_getsda(itv);
499 if (sda != 1) {
500 IVTV_DEBUG_HI_I2C("SDA was low at start\n");
501 ivtv_setsda(itv, 1);
502 if (!ivtv_waitsda(itv, 1)) {
503 IVTV_DEBUG_I2C("SDA stuck low\n");
504 return -EREMOTEIO;
507 if (ivtv_getscl(itv) != 1) {
508 ivtv_setscl(itv, 1);
509 if (!ivtv_waitscl(itv, 1)) {
510 IVTV_DEBUG_I2C("SCL stuck low at start\n");
511 return -EREMOTEIO;
514 ivtv_setsda(itv, 0);
515 ivtv_scldelay(itv);
516 return 0;
519 /* Issue a stop condition on the i2c bus to release it */
520 static int ivtv_stop(struct ivtv *itv)
522 int i;
524 if (ivtv_getscl(itv) != 0) {
525 IVTV_DEBUG_HI_I2C("SCL not low when stopping\n");
526 ivtv_setscl(itv, 0);
527 if (!ivtv_waitscl(itv, 0)) {
528 IVTV_DEBUG_I2C("SCL could not be set low\n");
531 ivtv_setsda(itv, 0);
532 ivtv_scldelay(itv);
533 ivtv_setscl(itv, 1);
534 if (!ivtv_waitscl(itv, 1)) {
535 IVTV_DEBUG_I2C("SCL could not be set high\n");
536 return -EREMOTEIO;
538 ivtv_scldelay(itv);
539 ivtv_setsda(itv, 1);
540 if (!ivtv_waitsda(itv, 1)) {
541 IVTV_DEBUG_I2C("resetting I2C\n");
542 for (i = 0; i < 16; ++i) {
543 ivtv_setscl(itv, 0);
544 ivtv_scldelay(itv);
545 ivtv_setscl(itv, 1);
546 ivtv_scldelay(itv);
547 ivtv_setsda(itv, 1);
549 ivtv_waitsda(itv, 1);
550 return -EREMOTEIO;
552 return 0;
555 /* Write a message to the given i2c slave. do_stop may be 0 to prevent
556 issuing the i2c stop condition (when following with a read) */
557 static int ivtv_write(struct ivtv *itv, unsigned char addr, unsigned char *data, u32 len, int do_stop)
559 int retry, ret = -EREMOTEIO;
560 u32 i;
562 for (retry = 0; ret != 0 && retry < 8; ++retry) {
563 ret = ivtv_start(itv);
565 if (ret == 0) {
566 ret = ivtv_sendbyte(itv, addr<<1);
567 for (i = 0; ret == 0 && i < len; ++i)
568 ret = ivtv_sendbyte(itv, data[i]);
570 if (ret != 0 || do_stop) {
571 ivtv_stop(itv);
574 if (ret)
575 IVTV_DEBUG_I2C("i2c write to %x failed\n", addr);
576 return ret;
579 /* Read data from the given i2c slave. A stop condition is always issued. */
580 static int ivtv_read(struct ivtv *itv, unsigned char addr, unsigned char *data, u32 len)
582 int retry, ret = -EREMOTEIO;
583 u32 i;
585 for (retry = 0; ret != 0 && retry < 8; ++retry) {
586 ret = ivtv_start(itv);
587 if (ret == 0)
588 ret = ivtv_sendbyte(itv, (addr << 1) | 1);
589 for (i = 0; ret == 0 && i < len; ++i) {
590 ret = ivtv_readbyte(itv, &data[i], i == len - 1);
592 ivtv_stop(itv);
594 if (ret)
595 IVTV_DEBUG_I2C("i2c read from %x failed\n", addr);
596 return ret;
599 /* Kernel i2c transfer implementation. Takes a number of messages to be read
600 or written. If a read follows a write, this will occur without an
601 intervening stop condition */
602 static int ivtv_xfer(struct i2c_adapter *i2c_adap, struct i2c_msg *msgs, int num)
604 struct v4l2_device *v4l2_dev = i2c_get_adapdata(i2c_adap);
605 struct ivtv *itv = to_ivtv(v4l2_dev);
606 int retval;
607 int i;
609 mutex_lock(&itv->i2c_bus_lock);
610 for (i = retval = 0; retval == 0 && i < num; i++) {
611 if (msgs[i].flags & I2C_M_RD)
612 retval = ivtv_read(itv, msgs[i].addr, msgs[i].buf, msgs[i].len);
613 else {
614 /* if followed by a read, don't stop */
615 int stop = !(i + 1 < num && msgs[i + 1].flags == I2C_M_RD);
617 retval = ivtv_write(itv, msgs[i].addr, msgs[i].buf, msgs[i].len, stop);
620 mutex_unlock(&itv->i2c_bus_lock);
621 return retval ? retval : num;
624 /* Kernel i2c capabilities */
625 static u32 ivtv_functionality(struct i2c_adapter *adap)
627 return I2C_FUNC_I2C | I2C_FUNC_SMBUS_EMUL;
630 static struct i2c_algorithm ivtv_algo = {
631 .master_xfer = ivtv_xfer,
632 .functionality = ivtv_functionality,
635 /* template for our-bit banger */
636 static struct i2c_adapter ivtv_i2c_adap_hw_template = {
637 .name = "ivtv i2c driver",
638 .algo = &ivtv_algo,
639 .algo_data = NULL, /* filled from template */
640 .owner = THIS_MODULE,
643 static void ivtv_setscl_old(void *data, int state)
645 struct ivtv *itv = (struct ivtv *)data;
647 if (state)
648 itv->i2c_state |= 0x01;
649 else
650 itv->i2c_state &= ~0x01;
652 /* write them out */
653 /* write bits are inverted */
654 write_reg(~itv->i2c_state, IVTV_REG_I2C_SETSCL_OFFSET);
657 static void ivtv_setsda_old(void *data, int state)
659 struct ivtv *itv = (struct ivtv *)data;
661 if (state)
662 itv->i2c_state |= 0x01;
663 else
664 itv->i2c_state &= ~0x01;
666 /* write them out */
667 /* write bits are inverted */
668 write_reg(~itv->i2c_state, IVTV_REG_I2C_SETSDA_OFFSET);
671 static int ivtv_getscl_old(void *data)
673 struct ivtv *itv = (struct ivtv *)data;
675 return read_reg(IVTV_REG_I2C_GETSCL_OFFSET) & 1;
678 static int ivtv_getsda_old(void *data)
680 struct ivtv *itv = (struct ivtv *)data;
682 return read_reg(IVTV_REG_I2C_GETSDA_OFFSET) & 1;
685 /* template for i2c-bit-algo */
686 static struct i2c_adapter ivtv_i2c_adap_template = {
687 .name = "ivtv i2c driver",
688 .algo = NULL, /* set by i2c-algo-bit */
689 .algo_data = NULL, /* filled from template */
690 .owner = THIS_MODULE,
693 #define IVTV_ALGO_BIT_TIMEOUT (2) /* seconds */
695 static const struct i2c_algo_bit_data ivtv_i2c_algo_template = {
696 .setsda = ivtv_setsda_old,
697 .setscl = ivtv_setscl_old,
698 .getsda = ivtv_getsda_old,
699 .getscl = ivtv_getscl_old,
700 .udelay = IVTV_DEFAULT_I2C_CLOCK_PERIOD / 2, /* microseconds */
701 .timeout = IVTV_ALGO_BIT_TIMEOUT * HZ, /* jiffies */
704 static struct i2c_client ivtv_i2c_client_template = {
705 .name = "ivtv internal",
708 /* init + register i2c adapter */
709 int init_ivtv_i2c(struct ivtv *itv)
711 int retval;
713 IVTV_DEBUG_I2C("i2c init\n");
715 /* Sanity checks for the I2C hardware arrays. They must be the
716 * same size.
718 if (ARRAY_SIZE(hw_devicenames) != ARRAY_SIZE(hw_addrs)) {
719 IVTV_ERR("Mismatched I2C hardware arrays\n");
720 return -ENODEV;
722 if (itv->options.newi2c > 0) {
723 memcpy(&itv->i2c_adap, &ivtv_i2c_adap_hw_template,
724 sizeof(struct i2c_adapter));
725 } else {
726 memcpy(&itv->i2c_adap, &ivtv_i2c_adap_template,
727 sizeof(struct i2c_adapter));
728 memcpy(&itv->i2c_algo, &ivtv_i2c_algo_template,
729 sizeof(struct i2c_algo_bit_data));
731 itv->i2c_algo.udelay = itv->options.i2c_clock_period / 2;
732 itv->i2c_algo.data = itv;
733 itv->i2c_adap.algo_data = &itv->i2c_algo;
735 sprintf(itv->i2c_adap.name + strlen(itv->i2c_adap.name), " #%d",
736 itv->instance);
737 i2c_set_adapdata(&itv->i2c_adap, &itv->v4l2_dev);
739 memcpy(&itv->i2c_client, &ivtv_i2c_client_template,
740 sizeof(struct i2c_client));
741 itv->i2c_client.adapter = &itv->i2c_adap;
742 itv->i2c_adap.dev.parent = &itv->pdev->dev;
744 IVTV_DEBUG_I2C("setting scl and sda to 1\n");
745 ivtv_setscl(itv, 1);
746 ivtv_setsda(itv, 1);
748 if (itv->options.newi2c > 0)
749 retval = i2c_add_adapter(&itv->i2c_adap);
750 else
751 retval = i2c_bit_add_bus(&itv->i2c_adap);
753 return retval;
756 void exit_ivtv_i2c(struct ivtv *itv)
758 IVTV_DEBUG_I2C("i2c exit\n");
760 i2c_del_adapter(&itv->i2c_adap);