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1 // SPDX-License-Identifier: GPL-2.0
2 /* Serialport functions for debugging
3 *
4 * Copyright (c) 2000-2007 Axis Communications AB
5 *
6 * Authors: Bjorn Wesen
7 *
8 * Exports:
9 * console_print_etrax(char *buf)
10 * int getDebugChar()
11 * putDebugChar(int)
12 * enableDebugIRQ()
13 * init_etrax_debug()
14 *
15 */
16
17 #include <linux/console.h>
18 #include <linux/init.h>
19 #include <linux/major.h>
20 #include <linux/delay.h>
21 #include <linux/tty.h>
22 #include <arch/svinto.h>
23
24 extern void reset_watchdog(void);
25
26 struct dbg_port
27 {
28 unsigned int index;
29 const volatile unsigned* read;
30 volatile char* write;
31 volatile unsigned* xoff;
32 volatile char* baud;
33 volatile char* tr_ctrl;
34 volatile char* rec_ctrl;
35 unsigned long irq;
36 unsigned int started;
37 unsigned long baudrate;
38 unsigned char parity;
39 unsigned int bits;
40 };
41
42 struct dbg_port ports[]=
43 {
44 {
45 0,
46 R_SERIAL0_READ,
47 R_SERIAL0_TR_DATA,
48 R_SERIAL0_XOFF,
49 R_SERIAL0_BAUD,
50 R_SERIAL0_TR_CTRL,
51 R_SERIAL0_REC_CTRL,
52 IO_STATE(R_IRQ_MASK1_SET, ser0_data, set),
53 0,
54 115200,
55 'N',
56 8
57 },
58 {
59 1,
60 R_SERIAL1_READ,
61 R_SERIAL1_TR_DATA,
62 R_SERIAL1_XOFF,
63 R_SERIAL1_BAUD,
64 R_SERIAL1_TR_CTRL,
65 R_SERIAL1_REC_CTRL,
66 IO_STATE(R_IRQ_MASK1_SET, ser1_data, set),
67 0,
68 115200,
69 'N',
70 8
71 },
72 {
73 2,
74 R_SERIAL2_READ,
75 R_SERIAL2_TR_DATA,
76 R_SERIAL2_XOFF,
77 R_SERIAL2_BAUD,
78 R_SERIAL2_TR_CTRL,
79 R_SERIAL2_REC_CTRL,
80 IO_STATE(R_IRQ_MASK1_SET, ser2_data, set),
81 0,
82 115200,
83 'N',
84 8
85 },
86 {
87 3,
88 R_SERIAL3_READ,
89 R_SERIAL3_TR_DATA,
90 R_SERIAL3_XOFF,
91 R_SERIAL3_BAUD,
92 R_SERIAL3_TR_CTRL,
93 R_SERIAL3_REC_CTRL,
94 IO_STATE(R_IRQ_MASK1_SET, ser3_data, set),
95 0,
96 115200,
97 'N',
98 8
99 }
100 };
101
102 #ifdef CONFIG_ETRAX_SERIAL
103 extern struct tty_driver *serial_driver;
104 #endif
105
106 struct dbg_port* port =
107 #if defined(CONFIG_ETRAX_DEBUG_PORT0)
108 &ports[0];
109 #elif defined(CONFIG_ETRAX_DEBUG_PORT1)
110 &ports[1];
111 #elif defined(CONFIG_ETRAX_DEBUG_PORT2)
112 &ports[2];
113 #elif defined(CONFIG_ETRAX_DEBUG_PORT3)
114 &ports[3];
115 #else
116 NULL;
117 #endif
118
119 static struct dbg_port* kgdb_port =
120 #if defined(CONFIG_ETRAX_KGDB_PORT0)
121 &ports[0];
122 #elif defined(CONFIG_ETRAX_KGDB_PORT1)
123 &ports[1];
124 #elif defined(CONFIG_ETRAX_KGDB_PORT2)
125 &ports[2];
126 #elif defined(CONFIG_ETRAX_KGDB_PORT3)
127 &ports[3];
128 #else
129 NULL;
130 #endif
131
132 static void
133 start_port(struct dbg_port* p)
134 {
135 unsigned long rec_ctrl = 0;
136 unsigned long tr_ctrl = 0;
137
138 if (!p)
139 return;
140
141 if (p->started)
142 return;
143 p->started = 1;
144
145 if (p->index == 0)
146 {
147 genconfig_shadow &= ~IO_MASK(R_GEN_CONFIG, dma6);
148 genconfig_shadow |= IO_STATE(R_GEN_CONFIG, dma6, unused);
149 }
150 else if (p->index == 1)
151 {
152 genconfig_shadow &= ~IO_MASK(R_GEN_CONFIG, dma8);
153 genconfig_shadow |= IO_STATE(R_GEN_CONFIG, dma8, usb);
154 }
155 else if (p->index == 2)
156 {
157 genconfig_shadow &= ~IO_MASK(R_GEN_CONFIG, dma2);
158 genconfig_shadow |= IO_STATE(R_GEN_CONFIG, dma2, par0);
159 genconfig_shadow &= ~IO_MASK(R_GEN_CONFIG, dma3);
160 genconfig_shadow |= IO_STATE(R_GEN_CONFIG, dma3, par0);
161 genconfig_shadow |= IO_STATE(R_GEN_CONFIG, ser2, select);
162 }
163 else
164 {
165 genconfig_shadow &= ~IO_MASK(R_GEN_CONFIG, dma4);
166 genconfig_shadow |= IO_STATE(R_GEN_CONFIG, dma4, par1);
167 genconfig_shadow &= ~IO_MASK(R_GEN_CONFIG, dma5);
168 genconfig_shadow |= IO_STATE(R_GEN_CONFIG, dma5, par1);
169 genconfig_shadow |= IO_STATE(R_GEN_CONFIG, ser3, select);
170 }
171
172 *R_GEN_CONFIG = genconfig_shadow;
173
174 *p->xoff =
175 IO_STATE(R_SERIAL0_XOFF, tx_stop, enable) |
176 IO_STATE(R_SERIAL0_XOFF, auto_xoff, disable) |
177 IO_FIELD(R_SERIAL0_XOFF, xoff_char, 0);
178
179 switch (p->baudrate)
180 {
181 case 0:
182 case 115200:
183 *p->baud =
184 IO_STATE(R_SERIAL0_BAUD, tr_baud, c115k2Hz) |
185 IO_STATE(R_SERIAL0_BAUD, rec_baud, c115k2Hz);
186 break;
187 case 1200:
188 *p->baud =
189 IO_STATE(R_SERIAL0_BAUD, tr_baud, c1200Hz) |
190 IO_STATE(R_SERIAL0_BAUD, rec_baud, c1200Hz);
191 break;
192 case 2400:
193 *p->baud =
194 IO_STATE(R_SERIAL0_BAUD, tr_baud, c2400Hz) |
195 IO_STATE(R_SERIAL0_BAUD, rec_baud, c2400Hz);
196 break;
197 case 4800:
198 *p->baud =
199 IO_STATE(R_SERIAL0_BAUD, tr_baud, c4800Hz) |
200 IO_STATE(R_SERIAL0_BAUD, rec_baud, c4800Hz);
201 break;
202 case 9600:
203 *p->baud =
204 IO_STATE(R_SERIAL0_BAUD, tr_baud, c9600Hz) |
205 IO_STATE(R_SERIAL0_BAUD, rec_baud, c9600Hz);
206 break;
207 case 19200:
208 *p->baud =
209 IO_STATE(R_SERIAL0_BAUD, tr_baud, c19k2Hz) |
210 IO_STATE(R_SERIAL0_BAUD, rec_baud, c19k2Hz);
211 break;
212 case 38400:
213 *p->baud =
214 IO_STATE(R_SERIAL0_BAUD, tr_baud, c38k4Hz) |
215 IO_STATE(R_SERIAL0_BAUD, rec_baud, c38k4Hz);
216 break;
217 case 57600:
218 *p->baud =
219 IO_STATE(R_SERIAL0_BAUD, tr_baud, c57k6Hz) |
220 IO_STATE(R_SERIAL0_BAUD, rec_baud, c57k6Hz);
221 break;
222 default:
223 *p->baud =
224 IO_STATE(R_SERIAL0_BAUD, tr_baud, c115k2Hz) |
225 IO_STATE(R_SERIAL0_BAUD, rec_baud, c115k2Hz);
226 break;
227 }
228
229 if (p->parity == 'E') {
230 rec_ctrl =
231 IO_STATE(R_SERIAL0_REC_CTRL, rec_par, even) |
232 IO_STATE(R_SERIAL0_REC_CTRL, rec_par_en, enable);
233 tr_ctrl =
234 IO_STATE(R_SERIAL0_TR_CTRL, tr_par, even) |
235 IO_STATE(R_SERIAL0_TR_CTRL, tr_par_en, enable);
236 } else if (p->parity == 'O') {
237 rec_ctrl =
238 IO_STATE(R_SERIAL0_REC_CTRL, rec_par, odd) |
239 IO_STATE(R_SERIAL0_REC_CTRL, rec_par_en, enable);
240 tr_ctrl =
241 IO_STATE(R_SERIAL0_TR_CTRL, tr_par, odd) |
242 IO_STATE(R_SERIAL0_TR_CTRL, tr_par_en, enable);
243 } else {
244 rec_ctrl =
245 IO_STATE(R_SERIAL0_REC_CTRL, rec_par, even) |
246 IO_STATE(R_SERIAL0_REC_CTRL, rec_par_en, disable);
247 tr_ctrl =
248 IO_STATE(R_SERIAL0_TR_CTRL, tr_par, even) |
249 IO_STATE(R_SERIAL0_TR_CTRL, tr_par_en, disable);
250 }
251 if (p->bits == 7)
252 {
253 rec_ctrl |= IO_STATE(R_SERIAL0_REC_CTRL, rec_bitnr, rec_7bit);
254 tr_ctrl |= IO_STATE(R_SERIAL0_TR_CTRL, tr_bitnr, tr_7bit);
255 }
256 else
257 {
258 rec_ctrl |= IO_STATE(R_SERIAL0_REC_CTRL, rec_bitnr, rec_8bit);
259 tr_ctrl |= IO_STATE(R_SERIAL0_TR_CTRL, tr_bitnr, tr_8bit);
260 }
261
262 *p->rec_ctrl =
263 IO_STATE(R_SERIAL0_REC_CTRL, dma_err, stop) |
264 IO_STATE(R_SERIAL0_REC_CTRL, rec_enable, enable) |
265 IO_STATE(R_SERIAL0_REC_CTRL, rts_, active) |
266 IO_STATE(R_SERIAL0_REC_CTRL, sampling, middle) |
267 IO_STATE(R_SERIAL0_REC_CTRL, rec_stick_par, normal) |
268 rec_ctrl;
269
270 *p->tr_ctrl =
271 IO_FIELD(R_SERIAL0_TR_CTRL, txd, 0) |
272 IO_STATE(R_SERIAL0_TR_CTRL, tr_enable, enable) |
273 IO_STATE(R_SERIAL0_TR_CTRL, auto_cts, disabled) |
274 IO_STATE(R_SERIAL0_TR_CTRL, stop_bits, one_bit) |
275 IO_STATE(R_SERIAL0_TR_CTRL, tr_stick_par, normal) |
276 tr_ctrl;
277 }
278
279 static void
280 console_write_direct(struct console *co, const char *buf, unsigned int len)
281 {
282 int i;
283 unsigned long flags;
284
285 if (!port)
286 return;
287
288 local_irq_save(flags);
289
290 /* Send data */
291 for (i = 0; i < len; i++) {
292 /* LF -> CRLF */
293 if (buf[i] == '\n') {
294 while (!(*port->read & IO_MASK(R_SERIAL0_READ, tr_ready)))
295 ;
296 *port->write = '\r';
297 }
298 /* Wait until transmitter is ready and send.*/
299 while (!(*port->read & IO_MASK(R_SERIAL0_READ, tr_ready)))
300 ;
301 *port->write = buf[i];
302 }
303
304 /*
305 * Feed the watchdog, otherwise it will reset the chip during boot.
306 * The time to send an ordinary boot message line (10-90 chars)
307 * varies between 1-8ms at 115200. What makes up for the additional
308 * 90ms that allows the watchdog to bite?
309 */
310 reset_watchdog();
311
312 local_irq_restore(flags);
313 }
314
315 static void
316 console_write(struct console *co, const char *buf, unsigned int len)
317 {
318 if (!port)
319 return;
320
321 console_write_direct(co, buf, len);
322 }
323
324 /* legacy function */
325
326 void
327 console_print_etrax(const char *buf)
328 {
329 console_write(NULL, buf, strlen(buf));
330 }
331
332 /* Use polling to get a single character FROM the debug port */
333
334 int
335 getDebugChar(void)
336 {
337 unsigned long readval;
338
339 if (!kgdb_port)
340 return 0;
341
342 do {
343 readval = *kgdb_port->read;
344 } while (!(readval & IO_MASK(R_SERIAL0_READ, data_avail)));
345
346 return (readval & IO_MASK(R_SERIAL0_READ, data_in));
347 }
348
349 /* Use polling to put a single character to the debug port */
350
351 void
352 putDebugChar(int val)
353 {
354 if (!kgdb_port)
355 return;
356
357 while (!(*kgdb_port->read & IO_MASK(R_SERIAL0_READ, tr_ready)))
358 ;
359 *kgdb_port->write = val;
360 }
361
362 /* Enable irq for receiving chars on the debug port, used by kgdb */
363
364 void
365 enableDebugIRQ(void)
366 {
367 if (!kgdb_port)
368 return;
369
370 *R_IRQ_MASK1_SET = kgdb_port->irq;
371 /* use R_VECT_MASK directly, since we really bypass Linux normal
372 * IRQ handling in kgdb anyway, we don't need to use enable_irq
373 */
374 *R_VECT_MASK_SET = IO_STATE(R_VECT_MASK_SET, serial, set);
375
376 *kgdb_port->rec_ctrl = IO_STATE(R_SERIAL0_REC_CTRL, rec_enable, enable);
377 }
378
379 static int __init
380 console_setup(struct console *co, char *options)
381 {
382 char* s;
383
384 if (options) {
385 port = &ports[co->index];
386 port->baudrate = 115200;
387 port->parity = 'N';
388 port->bits = 8;
389 port->baudrate = simple_strtoul(options, NULL, 10);
390 s = options;
391 while(*s >= '0' && *s <= '9')
392 s++;
393 if (*s) port->parity = *s++;
394 if (*s) port->bits = *s++ - '0';
395 port->started = 0;
396 start_port(0);
397 }
398 return 0;
399 }
400
401
402 /* This is a dummy serial device that throws away anything written to it.
403 * This is used when no debug output is wanted.
404 */
405 static struct tty_driver dummy_driver;
406
407 static int dummy_open(struct tty_struct *tty, struct file * filp)
408 {
409 return 0;
410 }
411
412 static void dummy_close(struct tty_struct *tty, struct file * filp)
413 {
414 }
415
416 static int dummy_write(struct tty_struct * tty,
417 const unsigned char *buf, int count)
418 {
419 return count;
420 }
421
422 static int dummy_write_room(struct tty_struct *tty)
423 {
424 return 8192;
425 }
426
427 static const struct tty_operations dummy_ops = {
428 .open = dummy_open,
429 .close = dummy_close,
430 .write = dummy_write,
431 .write_room = dummy_write_room,
432 };
433
434 void __init
435 init_dummy_console(void)
436 {
437 memset(&dummy_driver, 0, sizeof(struct tty_driver));
438 dummy_driver.driver_name = "serial";
439 dummy_driver.name = "ttyS";
440 dummy_driver.major = TTY_MAJOR;
441 dummy_driver.minor_start = 68;
442 dummy_driver.num = 1; /* etrax100 has 4 serial ports */
443 dummy_driver.type = TTY_DRIVER_TYPE_SERIAL;
444 dummy_driver.subtype = SERIAL_TYPE_NORMAL;
445 dummy_driver.init_termios = tty_std_termios;
446 /* Normally B9600 default... */
447 dummy_driver.init_termios.c_cflag =
448 B115200 | CS8 | CREAD | HUPCL | CLOCAL;
449 dummy_driver.flags = TTY_DRIVER_REAL_RAW | TTY_DRIVER_DYNAMIC_DEV;
450 dummy_driver.init_termios.c_ispeed = 115200;
451 dummy_driver.init_termios.c_ospeed = 115200;
452
453 dummy_driver.ops = &dummy_ops;
454 if (tty_register_driver(&dummy_driver))
455 panic("Couldn't register dummy serial driver\n");
456 }
457
458 static struct tty_driver*
459 etrax_console_device(struct console* co, int *index)
460 {
461 if (port)
462 *index = port->index;
463 else
464 *index = 0;
465 #ifdef CONFIG_ETRAX_SERIAL
466 return port ? serial_driver : &dummy_driver;
467 #else
468 return &dummy_driver;
469 #endif
470 }
471
472 static struct console ser_console = {
473 name : "ttyS",
474 write: console_write,
475 read : NULL,
476 device : etrax_console_device,
477 unblank : NULL,
478 setup : console_setup,
479 flags : CON_PRINTBUFFER,
480 index : -1,
481 cflag : 0,
482 next : NULL
483 };
484 static struct console ser0_console = {
485 name : "ttyS",
486 write: console_write,
487 read : NULL,
488 device : etrax_console_device,
489 unblank : NULL,
490 setup : console_setup,
491 flags : CON_PRINTBUFFER,
492 index : 0,
493 cflag : 0,
494 next : NULL
495 };
496
497 static struct console ser1_console = {
498 name : "ttyS",
499 write: console_write,
500 read : NULL,
501 device : etrax_console_device,
502 unblank : NULL,
503 setup : console_setup,
504 flags : CON_PRINTBUFFER,
505 index : 1,
506 cflag : 0,
507 next : NULL
508 };
509 static struct console ser2_console = {
510 name : "ttyS",
511 write: console_write,
512 read : NULL,
513 device : etrax_console_device,
514 unblank : NULL,
515 setup : console_setup,
516 flags : CON_PRINTBUFFER,
517 index : 2,
518 cflag : 0,
519 next : NULL
520 };
521 static struct console ser3_console = {
522 name : "ttyS",
523 write: console_write,
524 read : NULL,
525 device : etrax_console_device,
526 unblank : NULL,
527 setup : console_setup,
528 flags : CON_PRINTBUFFER,
529 index : 3,
530 cflag : 0,
531 next : NULL
532 };
533 /*
534 * Register console (for printk's etc)
535 */
536
537 int __init
538 init_etrax_debug(void)
539 {
540 static int first = 1;
541
542 if (!first) {
543 unregister_console(&ser_console);
544 register_console(&ser0_console);
545 register_console(&ser1_console);
546 register_console(&ser2_console);
547 register_console(&ser3_console);
548 init_dummy_console();
549 return 0;
550 }
551
552 first = 0;
553 register_console(&ser_console);
554 start_port(port);
555 #ifdef CONFIG_ETRAX_KGDB
556 start_port(kgdb_port);
557 #endif
558 return 0;
559 }
560 __initcall(init_etrax_debug);