libftdi: (tomj) removed (forbidden) USB reset code for kernel 2.6
[libftdi] / src / ftdi.c
CommitLineData
a3da1d95
GE
1/***************************************************************************
2 ftdi.c - description
3 -------------------
4 begin : Fri Apr 4 2003
5 copyright : (C) 2003 by Intra2net AG
5fdb1cb1 6 email : opensource@intra2net.com
a3da1d95
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7 ***************************************************************************/
8
9/***************************************************************************
10 * *
11 * This program is free software; you can redistribute it and/or modify *
12 * it under the terms of the GNU Lesser General Public License *
13 * version 2.1 as published by the Free Software Foundation; *
14 * *
15 ***************************************************************************/
d9f0cce7 16
98452d97 17#include <usb.h>
a8f46ddc 18#include <string.h>
0e302db6 19
98452d97 20#include "ftdi.h"
a3da1d95 21
21abaf2e
TJ
22#define ftdi_error_return(code, str) do { \
23 ftdi->error_str = str; \
24 return code; \
25 } while(0);
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26
27
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28/* ftdi_init return codes:
29 0: all fine
6d9aa99f 30 -1: couldn't allocate read buffer
948f9ada 31*/
a8f46ddc
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32int ftdi_init(struct ftdi_context *ftdi)
33{
98452d97 34 ftdi->usb_dev = NULL;
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35 ftdi->usb_read_timeout = 5000;
36 ftdi->usb_write_timeout = 5000;
a3da1d95 37
53ad271d 38 ftdi->type = TYPE_BM; /* chip type */
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39 ftdi->baudrate = -1;
40 ftdi->bitbang_enabled = 0;
41
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42 ftdi->readbuffer = NULL;
43 ftdi->readbuffer_offset = 0;
44 ftdi->readbuffer_remaining = 0;
45 ftdi->writebuffer_chunksize = 4096;
46
545820ce
TJ
47 ftdi->interface = 0;
48 ftdi->index = 0;
49 ftdi->in_ep = 0x02;
50 ftdi->out_ep = 0x81;
3119537f 51 ftdi->bitbang_mode = 1; /* 1: Normal bitbang mode, 2: SPI bitbang mode */
53ad271d 52
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GE
53 ftdi->error_str = NULL;
54
1c733d33
TJ
55 /* All fine. Now allocate the readbuffer */
56 return ftdi_read_data_set_chunksize(ftdi, 4096);
948f9ada 57}
46860c4c 58/* ftdi_set_interface
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59 Call after ftdi_init
60 Open selected channels on a chip, otherwise use first channel
0ce2f5fa
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61 0: all fine
62 -1: unknown interface
c4446c36 63*/
0ce2f5fa 64int ftdi_set_interface(struct ftdi_context *ftdi, enum ftdi_interface interface)
c4446c36
TJ
65{
66 switch (interface) {
67 case INTERFACE_ANY:
68 case INTERFACE_A:
0ce2f5fa 69 /* ftdi_usb_open_desc cares to set the right index, depending on the found chip */
c4446c36
TJ
70 break;
71 case INTERFACE_B:
72 ftdi->interface = 1;
73 ftdi->index = INTERFACE_B;
74 ftdi->in_ep = 0x04;
75 ftdi->out_ep = 0x83;
76 break;
77 default:
78 ftdi_error_return(-1, "Unknown interface");
79 }
80 return 0;
81}
948f9ada 82
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83void ftdi_deinit(struct ftdi_context *ftdi)
84{
948f9ada 85 if (ftdi->readbuffer != NULL) {
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86 free(ftdi->readbuffer);
87 ftdi->readbuffer = NULL;
948f9ada 88 }
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89}
90
98452d97 91
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92void ftdi_set_usbdev (struct ftdi_context *ftdi, usb_dev_handle *usb)
93{
98452d97
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94 ftdi->usb_dev = usb;
95}
96
97
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98/* ftdi_usb_open return codes:
99 0: all fine
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100 -1: usb_find_busses() failed
101 -2: usb_find_devices() failed
102 -3: usb device not found
103 -4: unable to open device
104 -5: unable to claim device
105 -6: reset failed
106 -7: set baudrate failed
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107 -8: get product description failed
108 -9: get serial number failed
109 -10: unable to close device
a3da1d95 110*/
a8f46ddc
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111int ftdi_usb_open(struct ftdi_context *ftdi, int vendor, int product)
112{
04e1ea0a 113 return ftdi_usb_open_desc(ftdi, vendor, product, NULL, NULL);
a8f46ddc
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114}
115
04e1ea0a 116int ftdi_usb_open_desc(struct ftdi_context *ftdi, int vendor, int product,
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117 const char* description, const char* serial)
118{
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119 struct usb_bus *bus;
120 struct usb_device *dev;
c3d95b87 121 char string[256];
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122
123 usb_init();
124
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125 if (usb_find_busses() < 0)
126 ftdi_error_return(-1, "usb_find_busses() failed");
98452d97 127
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128 if (usb_find_devices() < 0)
129 ftdi_error_return(-2,"usb_find_devices() failed");
a3da1d95 130
98452d97
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131 for (bus = usb_busses; bus; bus = bus->next) {
132 for (dev = bus->devices; dev; dev = dev->next) {
a8f46ddc 133 if (dev->descriptor.idVendor == vendor
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134 && dev->descriptor.idProduct == product) {
135 if (!(ftdi->usb_dev = usb_open(dev)))
136 ftdi_error_return(-4, "usb_open() failed");
137
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138 if (description != NULL) {
139 if (usb_get_string_simple(ftdi->usb_dev, dev->descriptor.iProduct, string, sizeof(string)) <= 0) {
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140 usb_close (ftdi->usb_dev);
141 ftdi_error_return(-8, "unable to fetch product description");
98452d97 142 }
a8f46ddc 143 if (strncmp(string, description, sizeof(string)) != 0) {
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144 if (usb_close (ftdi->usb_dev) < 0)
145 ftdi_error_return(-10, "product description not matching");
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146 continue;
147 }
148 }
149 if (serial != NULL) {
150 if (usb_get_string_simple(ftdi->usb_dev, dev->descriptor.iSerialNumber, string, sizeof(string)) <= 0) {
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151 usb_close (ftdi->usb_dev);
152 ftdi_error_return(-9, "unable to fetch serial number");
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153 }
154 if (strncmp(string, serial, sizeof(string)) != 0) {
155 ftdi->error_str = "serial number not matching\n";
156 if (usb_close (ftdi->usb_dev) != 0)
c3d95b87 157 ftdi_error_return(-10, "unable to fetch serial number");
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158 continue;
159 }
160 }
98452d97 161
a8f46ddc 162 if (usb_claim_interface(ftdi->usb_dev, ftdi->interface) != 0) {
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163 usb_close (ftdi->usb_dev);
164 ftdi_error_return(-5, "unable to claim usb device. Make sure ftdi_sio is unloaded!");
a8f46ddc 165 }
98452d97 166
a8f46ddc 167 if (ftdi_usb_reset (ftdi) != 0) {
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168 usb_close (ftdi->usb_dev);
169 ftdi_error_return(-6, "ftdi_usb_reset failed");
a8f46ddc 170 }
c3d95b87 171
a8f46ddc 172 if (ftdi_set_baudrate (ftdi, 9600) != 0) {
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173 usb_close (ftdi->usb_dev);
174 ftdi_error_return(-7, "set baudrate failed");
98452d97 175 }
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176
177 // Try to guess chip type
178 // Bug in the BM type chips: bcdDevice is 0x200 for serial == 0
179 if (dev->descriptor.bcdDevice == 0x400 || (dev->descriptor.bcdDevice == 0x200
180 && dev->descriptor.iSerialNumber == 0))
181 ftdi->type = TYPE_BM;
182 else if (dev->descriptor.bcdDevice == 0x200)
183 ftdi->type = TYPE_AM;
c4446c36 184 else if (dev->descriptor.bcdDevice == 0x500) {
a8f46ddc 185 ftdi->type = TYPE_2232C;
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186 if (!ftdi->index)
187 ftdi->index = INTERFACE_A;
188 }
c3d95b87 189 ftdi_error_return(0, "all fine");
98452d97
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190 }
191 }
98452d97 192 }
a3da1d95 193
98452d97 194 // device not found
c3d95b87 195 ftdi_error_return(-3, "device not found");
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196}
197
198
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199int ftdi_usb_reset(struct ftdi_context *ftdi)
200{
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201 if (usb_control_msg(ftdi->usb_dev, 0x40, 0, 0, ftdi->index, NULL, 0, ftdi->usb_write_timeout) != 0)
202 ftdi_error_return(-1,"FTDI reset failed");
203
545820ce 204 // Invalidate data in the readbuffer
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205 ftdi->readbuffer_offset = 0;
206 ftdi->readbuffer_remaining = 0;
207
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GE
208 return 0;
209}
210
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211int ftdi_usb_purge_buffers(struct ftdi_context *ftdi)
212{
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213 if (usb_control_msg(ftdi->usb_dev, 0x40, 0, 1, ftdi->index, NULL, 0, ftdi->usb_write_timeout) != 0)
214 ftdi_error_return(-1, "FTDI purge of RX buffer failed");
215
545820ce 216 // Invalidate data in the readbuffer
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217 ftdi->readbuffer_offset = 0;
218 ftdi->readbuffer_remaining = 0;
a60be878 219
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220 if (usb_control_msg(ftdi->usb_dev, 0x40, 0, 2, ftdi->index, NULL, 0, ftdi->usb_write_timeout) != 0)
221 ftdi_error_return(-2, "FTDI purge of TX buffer failed");
545820ce 222
a60be878
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223 return 0;
224}
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225
226/* ftdi_usb_close return codes
227 0: all fine
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228 -1: usb_release failed
229 -2: usb_close failed
a3da1d95 230*/
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231int ftdi_usb_close(struct ftdi_context *ftdi)
232{
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GE
233 int rtn = 0;
234
98452d97 235 if (usb_release_interface(ftdi->usb_dev, ftdi->interface) != 0)
a3da1d95 236 rtn = -1;
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TJ
237
238 if (usb_close (ftdi->usb_dev) != 0)
a3da1d95 239 rtn = -2;
98452d97 240
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GE
241 return rtn;
242}
243
244
245/*
53ad271d
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246 ftdi_convert_baudrate returns nearest supported baud rate to that requested.
247 Function is only used internally
248*/
0126d22e 249static int ftdi_convert_baudrate(int baudrate, struct ftdi_context *ftdi,
a8f46ddc
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250 unsigned short *value, unsigned short *index)
251{
53ad271d
TJ
252 static const char am_adjust_up[8] = {0, 0, 0, 1, 0, 3, 2, 1};
253 static const char am_adjust_dn[8] = {0, 0, 0, 1, 0, 1, 2, 3};
254 static const char frac_code[8] = {0, 3, 2, 4, 1, 5, 6, 7};
255 int divisor, best_divisor, best_baud, best_baud_diff;
256 unsigned long encoded_divisor;
257 int i;
258
259 if (baudrate <= 0) {
260 // Return error
261 return -1;
262 }
263
264 divisor = 24000000 / baudrate;
265
0126d22e 266 if (ftdi->type == TYPE_AM) {
53ad271d
TJ
267 // Round down to supported fraction (AM only)
268 divisor -= am_adjust_dn[divisor & 7];
269 }
270
271 // Try this divisor and the one above it (because division rounds down)
272 best_divisor = 0;
273 best_baud = 0;
274 best_baud_diff = 0;
275 for (i = 0; i < 2; i++) {
276 int try_divisor = divisor + i;
277 int baud_estimate;
278 int baud_diff;
279
280 // Round up to supported divisor value
df612d35 281 if (try_divisor <= 8) {
53ad271d
TJ
282 // Round up to minimum supported divisor
283 try_divisor = 8;
0126d22e 284 } else if (ftdi->type != TYPE_AM && try_divisor < 12) {
53ad271d
TJ
285 // BM doesn't support divisors 9 through 11 inclusive
286 try_divisor = 12;
287 } else if (divisor < 16) {
288 // AM doesn't support divisors 9 through 15 inclusive
289 try_divisor = 16;
290 } else {
0126d22e 291 if (ftdi->type == TYPE_AM) {
53ad271d
TJ
292 // Round up to supported fraction (AM only)
293 try_divisor += am_adjust_up[try_divisor & 7];
294 if (try_divisor > 0x1FFF8) {
295 // Round down to maximum supported divisor value (for AM)
296 try_divisor = 0x1FFF8;
297 }
298 } else {
299 if (try_divisor > 0x1FFFF) {
300 // Round down to maximum supported divisor value (for BM)
301 try_divisor = 0x1FFFF;
302 }
303 }
304 }
305 // Get estimated baud rate (to nearest integer)
306 baud_estimate = (24000000 + (try_divisor / 2)) / try_divisor;
307 // Get absolute difference from requested baud rate
308 if (baud_estimate < baudrate) {
309 baud_diff = baudrate - baud_estimate;
310 } else {
311 baud_diff = baud_estimate - baudrate;
312 }
313 if (i == 0 || baud_diff < best_baud_diff) {
314 // Closest to requested baud rate so far
315 best_divisor = try_divisor;
316 best_baud = baud_estimate;
317 best_baud_diff = baud_diff;
318 if (baud_diff == 0) {
319 // Spot on! No point trying
320 break;
321 }
322 }
323 }
324 // Encode the best divisor value
325 encoded_divisor = (best_divisor >> 3) | (frac_code[best_divisor & 7] << 14);
326 // Deal with special cases for encoded value
327 if (encoded_divisor == 1) {
328 encoded_divisor = 0; // 3000000 baud
329 } else if (encoded_divisor == 0x4001) {
330 encoded_divisor = 1; // 2000000 baud (BM only)
331 }
332 // Split into "value" and "index" values
333 *value = (unsigned short)(encoded_divisor & 0xFFFF);
de22df10 334 if(ftdi->type == TYPE_2232C) {
0126d22e
TJ
335 *index = (unsigned short)(encoded_divisor >> 8);
336 *index &= 0xFF00;
337 *index |= ftdi->interface;
338 }
339 else
340 *index = (unsigned short)(encoded_divisor >> 16);
c3d95b87 341
53ad271d
TJ
342 // Return the nearest baud rate
343 return best_baud;
344}
345
346/*
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GE
347 ftdi_set_baudrate return codes:
348 0: all fine
349 -1: invalid baudrate
350 -2: setting baudrate failed
351*/
a8f46ddc
TJ
352int ftdi_set_baudrate(struct ftdi_context *ftdi, int baudrate)
353{
53ad271d
TJ
354 unsigned short value, index;
355 int actual_baudrate;
a3da1d95
GE
356
357 if (ftdi->bitbang_enabled) {
358 baudrate = baudrate*4;
359 }
360
25707904 361 actual_baudrate = ftdi_convert_baudrate(baudrate, ftdi, &value, &index);
c3d95b87
TJ
362 if (actual_baudrate <= 0)
363 ftdi_error_return (-1, "Silly baudrate <= 0.");
a3da1d95 364
53ad271d
TJ
365 // Check within tolerance (about 5%)
366 if ((actual_baudrate * 2 < baudrate /* Catch overflows */ )
367 || ((actual_baudrate < baudrate)
368 ? (actual_baudrate * 21 < baudrate * 20)
c3d95b87
TJ
369 : (baudrate * 21 < actual_baudrate * 20)))
370 ftdi_error_return (-1, "Unsupported baudrate. Note: bitbang baudrates are automatically multiplied by 4");
545820ce 371
c3d95b87
TJ
372 if (usb_control_msg(ftdi->usb_dev, 0x40, 3, value, index, NULL, 0, ftdi->usb_write_timeout) != 0)
373 ftdi_error_return (-2, "Setting new baudrate failed");
a3da1d95
GE
374
375 ftdi->baudrate = baudrate;
376 return 0;
377}
378
379
a8f46ddc
TJ
380int ftdi_write_data(struct ftdi_context *ftdi, unsigned char *buf, int size)
381{
a3da1d95
GE
382 int ret;
383 int offset = 0;
545820ce 384 int total_written = 0;
c3d95b87 385
a3da1d95 386 while (offset < size) {
948f9ada 387 int write_size = ftdi->writebuffer_chunksize;
a3da1d95
GE
388
389 if (offset+write_size > size)
390 write_size = size-offset;
391
98452d97 392 ret = usb_bulk_write(ftdi->usb_dev, ftdi->in_ep, buf+offset, write_size, ftdi->usb_write_timeout);
c3d95b87
TJ
393 if (ret < 0)
394 ftdi_error_return(ret, "usb bulk write failed");
a3da1d95 395
c3d95b87 396 total_written += ret;
a3da1d95
GE
397 offset += write_size;
398 }
399
545820ce 400 return total_written;
a3da1d95
GE
401}
402
403
a8f46ddc
TJ
404int ftdi_write_data_set_chunksize(struct ftdi_context *ftdi, unsigned int chunksize)
405{
948f9ada
TJ
406 ftdi->writebuffer_chunksize = chunksize;
407 return 0;
408}
409
410
a8f46ddc
TJ
411int ftdi_write_data_get_chunksize(struct ftdi_context *ftdi, unsigned int *chunksize)
412{
948f9ada
TJ
413 *chunksize = ftdi->writebuffer_chunksize;
414 return 0;
415}
cbabb7d3 416
948f9ada 417
a8f46ddc
TJ
418int ftdi_read_data(struct ftdi_context *ftdi, unsigned char *buf, int size)
419{
1c733d33 420 int offset = 0, ret = 1, i, num_of_chunks, chunk_remains;
d9f0cce7 421
948f9ada
TJ
422 // everything we want is still in the readbuffer?
423 if (size <= ftdi->readbuffer_remaining) {
d9f0cce7
TJ
424 memcpy (buf, ftdi->readbuffer+ftdi->readbuffer_offset, size);
425
426 // Fix offsets
427 ftdi->readbuffer_remaining -= size;
428 ftdi->readbuffer_offset += size;
429
545820ce 430 /* printf("Returning bytes from buffer: %d - remaining: %d\n", size, ftdi->readbuffer_remaining); */
d9f0cce7
TJ
431
432 return size;
979a145c 433 }
948f9ada
TJ
434 // something still in the readbuffer, but not enough to satisfy 'size'?
435 if (ftdi->readbuffer_remaining != 0) {
d9f0cce7 436 memcpy (buf, ftdi->readbuffer+ftdi->readbuffer_offset, ftdi->readbuffer_remaining);
979a145c 437
d9f0cce7
TJ
438 // Fix offset
439 offset += ftdi->readbuffer_remaining;
948f9ada 440 }
948f9ada 441 // do the actual USB read
cbabb7d3 442 while (offset < size && ret > 0) {
d9f0cce7
TJ
443 ftdi->readbuffer_remaining = 0;
444 ftdi->readbuffer_offset = 0;
98452d97
TJ
445 /* returns how much received */
446 ret = usb_bulk_read (ftdi->usb_dev, ftdi->out_ep, ftdi->readbuffer, ftdi->readbuffer_chunksize, ftdi->usb_read_timeout);
c3d95b87
TJ
447 if (ret < 0)
448 ftdi_error_return(ret, "usb bulk read failed");
98452d97 449
d9f0cce7
TJ
450 if (ret > 2) {
451 // skip FTDI status bytes.
452 // Maybe stored in the future to enable modem use
1c733d33
TJ
453 num_of_chunks = ret / 64;
454 chunk_remains = ret % 64;
455 //printf("ret = %X, num_of_chunks = %X, chunk_remains = %X, readbuffer_offset = %X\n", ret, num_of_chunks, chunk_remains, ftdi->readbuffer_offset);
456
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TJ
457 ftdi->readbuffer_offset += 2;
458 ret -= 2;
1c733d33 459
fde0a89e 460 if (ret > 62) {
1c733d33
TJ
461 for (i = 1; i < num_of_chunks; i++)
462 memmove (ftdi->readbuffer+ftdi->readbuffer_offset+62*i,
463 ftdi->readbuffer+ftdi->readbuffer_offset+64*i,
464 62);
465 if (chunk_remains > 2) {
466 memmove (ftdi->readbuffer+ftdi->readbuffer_offset+62*i,
467 ftdi->readbuffer+ftdi->readbuffer_offset+64*i,
468 chunk_remains-2);
469 ret -= 2*num_of_chunks;
470 } else
471 ret -= 2*(num_of_chunks-1)+chunk_remains;
472 }
d9f0cce7
TJ
473 } else if (ret <= 2) {
474 // no more data to read?
475 return offset;
476 }
d9f0cce7
TJ
477 if (ret > 0) {
478 // data still fits in buf?
479 if (offset+ret <= size) {
480 memcpy (buf+offset, ftdi->readbuffer+ftdi->readbuffer_offset, ret);
545820ce 481 //printf("buf[0] = %X, buf[1] = %X\n", buf[0], buf[1]);
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TJ
482 offset += ret;
483
53ad271d 484 /* Did we read exactly the right amount of bytes? */
d9f0cce7 485 if (offset == size)
c4446c36
TJ
486 //printf("read_data exact rem %d offset %d\n",
487 //ftdi->readbuffer_remaining, offset);
d9f0cce7
TJ
488 return offset;
489 } else {
490 // only copy part of the data or size <= readbuffer_chunksize
491 int part_size = size-offset;
492 memcpy (buf+offset, ftdi->readbuffer+ftdi->readbuffer_offset, part_size);
98452d97 493
d9f0cce7
TJ
494 ftdi->readbuffer_offset += part_size;
495 ftdi->readbuffer_remaining = ret-part_size;
496 offset += part_size;
497
53ad271d
TJ
498 /* printf("Returning part: %d - size: %d - offset: %d - ret: %d - remaining: %d\n",
499 part_size, size, offset, ret, ftdi->readbuffer_remaining); */
d9f0cce7
TJ
500
501 return offset;
502 }
503 }
cbabb7d3 504 }
948f9ada 505 // never reached
29c4af7f 506 return -127;
a3da1d95
GE
507}
508
509
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TJ
510int ftdi_read_data_set_chunksize(struct ftdi_context *ftdi, unsigned int chunksize)
511{
29c4af7f
TJ
512 unsigned char *new_buf;
513
948f9ada
TJ
514 // Invalidate all remaining data
515 ftdi->readbuffer_offset = 0;
516 ftdi->readbuffer_remaining = 0;
517
c3d95b87
TJ
518 if ((new_buf = (unsigned char *)realloc(ftdi->readbuffer, chunksize)) == NULL)
519 ftdi_error_return(-1, "out of memory for readbuffer");
d9f0cce7 520
948f9ada
TJ
521 ftdi->readbuffer = new_buf;
522 ftdi->readbuffer_chunksize = chunksize;
523
524 return 0;
525}
526
527
a8f46ddc
TJ
528int ftdi_read_data_get_chunksize(struct ftdi_context *ftdi, unsigned int *chunksize)
529{
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530 *chunksize = ftdi->readbuffer_chunksize;
531 return 0;
532}
533
534
535
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536int ftdi_enable_bitbang(struct ftdi_context *ftdi, unsigned char bitmask)
537{
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538 unsigned short usb_val;
539
d9f0cce7 540 usb_val = bitmask; // low byte: bitmask
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541 /* FT2232C: Set bitbang_mode to 2 to enable SPI */
542 usb_val |= (ftdi->bitbang_mode << 8);
543
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544 if (usb_control_msg(ftdi->usb_dev, 0x40, 0x0B, usb_val, ftdi->index, NULL, 0, ftdi->usb_write_timeout) != 0)
545 ftdi_error_return(-1, "unable to enter bitbang mode. Perhaps not a BM type chip?");
546
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547 ftdi->bitbang_enabled = 1;
548 return 0;
549}
550
551
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552int ftdi_disable_bitbang(struct ftdi_context *ftdi)
553{
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554 if (usb_control_msg(ftdi->usb_dev, 0x40, 0x0B, 0, ftdi->index, NULL, 0, ftdi->usb_write_timeout) != 0)
555 ftdi_error_return(-1, "unable to leave bitbang mode. Perhaps not a BM type chip?");
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556
557 ftdi->bitbang_enabled = 0;
558 return 0;
559}
560
561
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562int ftdi_set_bitmode(struct ftdi_context *ftdi, unsigned char bitmask, unsigned char mode)
563{
564 unsigned short usb_val;
565
566 usb_val = bitmask; // low byte: bitmask
567 usb_val |= (mode << 8);
568 if (usb_control_msg(ftdi->usb_dev, 0x40, 0x0B, usb_val, ftdi->index, NULL, 0, ftdi->usb_write_timeout) != 0)
569 ftdi_error_return(-1, "unable to configure bitbang mode. Perhaps not a 2232C type chip?");
570
571 ftdi->bitbang_mode = mode;
572 ftdi->bitbang_enabled = (mode == BITMODE_BITBANG || mode == BITMODE_SYNCBB)?1:0;
573 return 0;
574}
575
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576int ftdi_read_pins(struct ftdi_context *ftdi, unsigned char *pins)
577{
a3da1d95 578 unsigned short usb_val;
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579 if (usb_control_msg(ftdi->usb_dev, 0xC0, 0x0C, 0, ftdi->index, (char *)&usb_val, 1, ftdi->usb_read_timeout) != 1)
580 ftdi_error_return(-1, "read pins failed");
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581
582 *pins = (unsigned char)usb_val;
583 return 0;
584}
585
586
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587int ftdi_set_latency_timer(struct ftdi_context *ftdi, unsigned char latency)
588{
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589 unsigned short usb_val;
590
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591 if (latency < 1)
592 ftdi_error_return(-1, "latency out of range. Only valid for 1-255");
a3da1d95 593
d79d2e68 594 usb_val = latency;
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595 if (usb_control_msg(ftdi->usb_dev, 0x40, 0x09, usb_val, ftdi->index, NULL, 0, ftdi->usb_write_timeout) != 0)
596 ftdi_error_return(-2, "unable to set latency timer");
597
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598 return 0;
599}
600
601
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602int ftdi_get_latency_timer(struct ftdi_context *ftdi, unsigned char *latency)
603{
a3da1d95 604 unsigned short usb_val;
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605 if (usb_control_msg(ftdi->usb_dev, 0xC0, 0x0A, 0, ftdi->index, (char *)&usb_val, 1, ftdi->usb_read_timeout) != 1)
606 ftdi_error_return(-1, "reading latency timer failed");
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607
608 *latency = (unsigned char)usb_val;
609 return 0;
610}
611
612
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613void ftdi_eeprom_initdefaults(struct ftdi_eeprom *eeprom)
614{
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615 eeprom->vendor_id = 0x0403;
616 eeprom->product_id = 0x6001;
d9f0cce7 617
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618 eeprom->self_powered = 1;
619 eeprom->remote_wakeup = 1;
620 eeprom->BM_type_chip = 1;
d9f0cce7 621
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622 eeprom->in_is_isochronous = 0;
623 eeprom->out_is_isochronous = 0;
624 eeprom->suspend_pull_downs = 0;
d9f0cce7 625
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626 eeprom->use_serial = 0;
627 eeprom->change_usb_version = 0;
f396dbad 628 eeprom->usb_version = 0x0200;
b8aa7b35 629 eeprom->max_power = 0;
d9f0cce7 630
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631 eeprom->manufacturer = NULL;
632 eeprom->product = NULL;
633 eeprom->serial = NULL;
634}
635
636
637/*
638 ftdi_eeprom_build return codes:
8ed61121 639 positive value: used eeprom size
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640 -1: eeprom size (128 bytes) exceeded by custom strings
641*/
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642int ftdi_eeprom_build(struct ftdi_eeprom *eeprom, unsigned char *output)
643{
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644 unsigned char i, j;
645 unsigned short checksum, value;
646 unsigned char manufacturer_size = 0, product_size = 0, serial_size = 0;
647 int size_check;
648
649 if (eeprom->manufacturer != NULL)
d9f0cce7 650 manufacturer_size = strlen(eeprom->manufacturer);
b8aa7b35 651 if (eeprom->product != NULL)
d9f0cce7 652 product_size = strlen(eeprom->product);
b8aa7b35 653 if (eeprom->serial != NULL)
d9f0cce7 654 serial_size = strlen(eeprom->serial);
b8aa7b35 655
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656 size_check = 128; // eeprom is 128 bytes
657 size_check -= 28; // 28 are always in use (fixed)
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658 size_check -= manufacturer_size*2;
659 size_check -= product_size*2;
660 size_check -= serial_size*2;
661
662 // eeprom size exceeded?
663 if (size_check < 0)
d9f0cce7 664 return (-1);
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665
666 // empty eeprom
667 memset (output, 0, 128);
668
669 // Addr 00: Stay 00 00
670 // Addr 02: Vendor ID
671 output[0x02] = eeprom->vendor_id;
672 output[0x03] = eeprom->vendor_id >> 8;
673
674 // Addr 04: Product ID
675 output[0x04] = eeprom->product_id;
676 output[0x05] = eeprom->product_id >> 8;
677
678 // Addr 06: Device release number (0400h for BM features)
679 output[0x06] = 0x00;
d9f0cce7 680
b8aa7b35 681 if (eeprom->BM_type_chip == 1)
d9f0cce7 682 output[0x07] = 0x04;
b8aa7b35 683 else
d9f0cce7 684 output[0x07] = 0x02;
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685
686 // Addr 08: Config descriptor
687 // Bit 1: remote wakeup if 1
688 // Bit 0: self powered if 1
689 //
690 j = 0;
691 if (eeprom->self_powered == 1)
d9f0cce7 692 j = j | 1;
b8aa7b35 693 if (eeprom->remote_wakeup == 1)
d9f0cce7 694 j = j | 2;
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695 output[0x08] = j;
696
697 // Addr 09: Max power consumption: max power = value * 2 mA
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698 output[0x09] = eeprom->max_power;
699 ;
700
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701 // Addr 0A: Chip configuration
702 // Bit 7: 0 - reserved
703 // Bit 6: 0 - reserved
704 // Bit 5: 0 - reserved
705 // Bit 4: 1 - Change USB version
706 // Bit 3: 1 - Use the serial number string
707 // Bit 2: 1 - Enable suspend pull downs for lower power
708 // Bit 1: 1 - Out EndPoint is Isochronous
709 // Bit 0: 1 - In EndPoint is Isochronous
710 //
711 j = 0;
712 if (eeprom->in_is_isochronous == 1)
d9f0cce7 713 j = j | 1;
b8aa7b35 714 if (eeprom->out_is_isochronous == 1)
d9f0cce7 715 j = j | 2;
b8aa7b35 716 if (eeprom->suspend_pull_downs == 1)
d9f0cce7 717 j = j | 4;
b8aa7b35 718 if (eeprom->use_serial == 1)
d9f0cce7 719 j = j | 8;
b8aa7b35 720 if (eeprom->change_usb_version == 1)
d9f0cce7 721 j = j | 16;
b8aa7b35 722 output[0x0A] = j;
d9f0cce7 723
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724 // Addr 0B: reserved
725 output[0x0B] = 0x00;
d9f0cce7 726
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727 // Addr 0C: USB version low byte when 0x0A bit 4 is set
728 // Addr 0D: USB version high byte when 0x0A bit 4 is set
729 if (eeprom->change_usb_version == 1) {
730 output[0x0C] = eeprom->usb_version;
d9f0cce7 731 output[0x0D] = eeprom->usb_version >> 8;
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732 }
733
734
735 // Addr 0E: Offset of the manufacturer string + 0x80
736 output[0x0E] = 0x14 + 0x80;
737
738 // Addr 0F: Length of manufacturer string
739 output[0x0F] = manufacturer_size*2 + 2;
740
741 // Addr 10: Offset of the product string + 0x80, calculated later
742 // Addr 11: Length of product string
743 output[0x11] = product_size*2 + 2;
744
745 // Addr 12: Offset of the serial string + 0x80, calculated later
746 // Addr 13: Length of serial string
747 output[0x13] = serial_size*2 + 2;
748
749 // Dynamic content
a862ddcf 750 output[0x14] = manufacturer_size*2 + 2;
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751 output[0x15] = 0x03; // type: string
752
b8aa7b35 753 i = 0x16, j = 0;
d9f0cce7 754
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755 // Output manufacturer
756 for (j = 0; j < manufacturer_size; j++) {
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757 output[i] = eeprom->manufacturer[j], i++;
758 output[i] = 0x00, i++;
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759 }
760
761 // Output product name
d9f0cce7 762 output[0x10] = i + 0x80; // calculate offset
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763 output[i] = product_size*2 + 2, i++;
764 output[i] = 0x03, i++;
765 for (j = 0; j < product_size; j++) {
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766 output[i] = eeprom->product[j], i++;
767 output[i] = 0x00, i++;
b8aa7b35 768 }
d9f0cce7 769
b8aa7b35 770 // Output serial
d9f0cce7 771 output[0x12] = i + 0x80; // calculate offset
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772 output[i] = serial_size*2 + 2, i++;
773 output[i] = 0x03, i++;
774 for (j = 0; j < serial_size; j++) {
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775 output[i] = eeprom->serial[j], i++;
776 output[i] = 0x00, i++;
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777 }
778
779 // calculate checksum
780 checksum = 0xAAAA;
d9f0cce7 781
b8aa7b35 782 for (i = 0; i < 63; i++) {
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783 value = output[i*2];
784 value += output[(i*2)+1] << 8;
b8aa7b35 785
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786 checksum = value^checksum;
787 checksum = (checksum << 1) | (checksum >> 15);
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788 }
789
790 output[0x7E] = checksum;
d9f0cce7 791 output[0x7F] = checksum >> 8;
b8aa7b35 792
8ed61121 793 return size_check;
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794}
795
796
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797int ftdi_read_eeprom(struct ftdi_context *ftdi, unsigned char *eeprom)
798{
a3da1d95
GE
799 int i;
800
801 for (i = 0; i < 64; i++) {
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TJ
802 if (usb_control_msg(ftdi->usb_dev, 0xC0, 0x90, 0, i, eeprom+(i*2), 2, ftdi->usb_read_timeout) != 2)
803 ftdi_error_return(-1, "reading eeprom failed");
a3da1d95
GE
804 }
805
806 return 0;
807}
808
809
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810int ftdi_write_eeprom(struct ftdi_context *ftdi, unsigned char *eeprom)
811{
a3da1d95
GE
812 unsigned short usb_val;
813 int i;
814
815 for (i = 0; i < 64; i++) {
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TJ
816 usb_val = eeprom[i*2];
817 usb_val += eeprom[(i*2)+1] << 8;
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818 if (usb_control_msg(ftdi->usb_dev, 0x40, 0x91, usb_val, i, NULL, 0, ftdi->usb_write_timeout) != 0)
819 ftdi_error_return(-1, "unable to write eeprom");
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GE
820 }
821
822 return 0;
823}
824
825
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826int ftdi_erase_eeprom(struct ftdi_context *ftdi)
827{
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TJ
828 if (usb_control_msg(ftdi->usb_dev, 0x40, 0x92, 0, 0, NULL, 0, ftdi->usb_write_timeout) != 0)
829 ftdi_error_return(-1, "unable to erase eeprom");
a3da1d95
GE
830
831 return 0;
832}
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833
834
835char *ftdi_get_error_string (struct ftdi_context *ftdi)
836{
837 return ftdi->error_str;
838}