2e491c2c3d6fca0f82706ffe84e33250260325f8
[fw/openocd] / src / ecosboard.c
1 /***************************************************************************
2  *   Copyright (C) 2007-2009 by Ã˜yvind Harboe                              *
3  *                                                                         *
4  *   This program is free software; you can redistribute it and/or modify  *
5  *   it under the terms of the GNU General Public License as published by  *
6  *   the Free Software Foundation; either version 2 of the License, or     *
7  *   (at your option) any later version.                                   *
8  *                                                                         *
9  *   This program is distributed in the hope that it will be useful,       *
10  *   but WITHOUT ANY WARRANTY; without even the implied warranty of        *
11  *   MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the         *
12  *   GNU General Public License for more details.                          *
13  *                                                                         *
14  *   You should have received a copy of the GNU General Public License     *
15  *   along with this program; if not, write to the                         *
16  *   Free Software Foundation, Inc.,                                       *
17  *   59 Temple Place - Suite 330, Boston, MA  02111-1307, USA.             *
18  ***************************************************************************/
19
20 #ifdef HAVE_CONFIG_H
21 #include "config.h"
22 #endif
23
24 #include <helper/types.h>
25 #include <jtag/jtag.h>
26 #include <helper/ioutil.h>
27 #include <helper/configuration.h>
28
29 #include <server/server.h>
30 #include <server/telnet_server.h>
31 #include <server/gdb_server.h>
32 #include <openocd.h>
33
34 #include <helper/time_support.h>
35 #include <sys/time.h>
36 #include <stdio.h>
37 #include <stdlib.h>
38 #include <string.h>
39 #include <unistd.h>
40 #include <errno.h>
41
42 #include <cyg/io/flash.h>
43 #include <pkgconf/fs_jffs2.h>   // Address of JFFS2
44 #include <network.h>
45
46 #include <fcntl.h>
47 #include <sys/stat.h>
48 #include <cyg/fileio/fileio.h>
49 #include <dirent.h>
50 #include <cyg/athttpd/http.h>
51 #include <cyg/athttpd/socket.h>
52 #include <cyg/athttpd/handler.h>
53 #include <cyg/athttpd/cgi.h>
54 #include <cyg/athttpd/forms.h>
55 #include <cyg/discover/discover.h>
56 #include <cyg/hal/hal_diag.h>
57 #include <cyg/kernel/kapi.h>
58 #include <cyg/io/serialio.h>
59 #include <cyg/io/io.h>
60 #include <netinet/tcp.h>
61 #include "rom.h"
62 #include <sys/ioctl.h>
63 #include <sys/socket.h>
64 #include <netinet/in.h>
65 #include <net/if.h>
66 #include <arpa/inet.h>
67 #include <sys/types.h>
68 #include <sys/socket.h>
69 #include <netdb.h>
70 #include <netinet/in.h>
71 #include <unistd.h>
72 #include <arpa/inet.h>
73 #include <stdio.h>
74 #include <ifaddrs.h>
75 #include <string.h>
76
77 #include <unistd.h>
78 #include <stdio.h>
79
80 #include <openocd.h>
81
82 #ifdef CYGPKG_HAL_NIOS2
83 #define ZY1000_SER_DEV "/dev/uart_0"
84 #else
85 #define ZY1000_SER_DEV "/dev/ser0"
86
87 #endif
88
89
90 #define MAX_IFS 64
91 #if defined(CYGPKG_NET_FREEBSD_STACK)
92 #include <tftp_support.h>
93 /* posix compatibility broken*/
94 struct tftpd_fileops fileops =
95 {
96         (int (*)(const char *, int))open,
97         close,
98         (int (*)(int, const void *, int))write,
99         (int (*)(int, void *, int))read
100 };
101
102 #endif
103
104
105 void diag_write(char *buf, int len)
106 {
107         int j;
108         for (j = 0; j < len; j++)
109         {
110                 diag_printf("%c", buf[j]);
111         }
112 }
113
114 static bool serialLog = true;
115 static bool writeLog = true;
116
117 char hwaddr[512];
118
119
120 extern struct flash_driver *flash_drivers[];
121 extern struct target_type *target_types[];
122
123 #ifdef CYGPKG_PROFILE_GPROF
124 #include <cyg/profile/profile.h>
125
126 extern char _stext, _etext; // Defined by the linker
127
128 static char *start_of_code=&_stext;
129 static char *end_of_code=&_etext;
130
131 void start_profile(void)
132 {
133         // This starts up the system-wide profiling, gathering
134         // profile information on all of the code, with a 16 byte
135         // "bucket" size, at a rate of 100us/profile hit.
136         // Note: a bucket size of 16 will give pretty good function
137         //       resolution.  Much smaller and the buffer becomes
138         //       much too large for very little gain.
139         // Note: a timer period of 100us is also a reasonable
140         //       compromise.  Any smaller and the overhead of
141         //       handling the timter (profile) interrupt could
142         //       swamp the system.  A fast processor might get
143         //       by with a smaller value, but a slow one could
144         //       even be swamped by this value.  If the value is
145         //       too large, the usefulness of the profile is reduced.
146
147         // no more interrupts than 1/10ms.
148         //profile_on((void *)0, (void *)0x40000, 16, 10000); // SRAM
149         //      profile_on(0, &_etext, 16, 10000); // SRAM & DRAM
150         profile_on(start_of_code, end_of_code, 16, 10000); // Nios DRAM
151 }
152 #endif
153
154 static FILE *log;
155
156 static char reboot_stack[2048];
157
158 static void zylinjtag_reboot(cyg_addrword_t data)
159 {
160         serialLog = true;
161         diag_printf("Rebooting in 500 ticks..\n");
162         cyg_thread_delay(500);
163         diag_printf("Unmounting /config..\n");
164         umount("/config");
165         diag_printf("Rebooting..\n");
166         HAL_PLATFORM_RESET();
167 }
168 static cyg_thread zylinjtag_thread_object;
169 static cyg_handle_t zylinjtag_thread_handle;
170
171 void reboot(void)
172 {
173         cyg_thread_create(1, zylinjtag_reboot, (cyg_addrword_t) 0, "reboot Thread",
174                         (void *) reboot_stack, sizeof(reboot_stack),
175                         &zylinjtag_thread_handle, &zylinjtag_thread_object);
176         cyg_thread_resume(zylinjtag_thread_handle);
177 }
178
179 static char zylinjtag_reboot_port_stack[2048];
180 static cyg_thread zylinjtag_reboot_port_thread_object;
181 static cyg_handle_t zylinjtag_reboot_port_thread_handle;
182
183 static void zylinjtag_reboot_port_task(cyg_addrword_t data)
184 {
185         int so_reuseaddr_option = 1;
186
187         int fd;
188         if ((fd = socket(AF_INET, SOCK_STREAM, 0)) == -1)
189         {
190                 LOG_ERROR("error creating socket: %s", strerror(errno));
191                 exit(-1);
192         }
193
194         setsockopt(fd, SOL_SOCKET, SO_REUSEADDR, (void*) &so_reuseaddr_option,
195                         sizeof(int));
196
197         struct sockaddr_in sin;
198         unsigned int address_size;
199         address_size = sizeof(sin);
200         memset(&sin, 0, sizeof(sin));
201         sin.sin_family = AF_INET;
202         sin.sin_addr.s_addr = INADDR_ANY;
203         sin.sin_port = htons(1234);
204
205         if (bind(fd, (struct sockaddr *) &sin, sizeof(sin)) == -1)
206         {
207                 LOG_ERROR("couldn't bind to socket: %s", strerror(errno));
208                 exit(-1);
209         }
210
211         if (listen(fd, 1) == -1)
212         {
213                 LOG_ERROR("couldn't listen on socket: %s", strerror(errno));
214                 exit(-1);
215         }
216         //      socket_nonblock(fd);
217
218
219         accept(fd, (struct sockaddr *) &sin, &address_size);
220
221         diag_printf("Got reboot signal on port 1234");
222
223         reboot();
224
225 }
226
227 void reboot_port(void)
228 {
229         cyg_thread_create(1, zylinjtag_reboot_port_task, (cyg_addrword_t) 0, "wait for reboot signal on port 1234",
230                         (void *) zylinjtag_reboot_port_stack, sizeof(zylinjtag_reboot_port_stack),
231                         &zylinjtag_reboot_port_thread_handle, &zylinjtag_reboot_port_thread_object);
232         cyg_thread_resume(zylinjtag_reboot_port_thread_handle);
233 }
234
235 int configuration_output_handler(struct command_context *context,
236                 const char* line)
237 {
238         diag_printf("%s", line);
239
240         return ERROR_OK;
241 }
242
243 int zy1000_configuration_output_handler_log(struct command_context *context,
244                 const char* line)
245 {
246         LOG_USER_N("%s", line);
247
248         return ERROR_OK;
249 }
250
251 #ifdef CYGPKG_PROFILE_GPROF
252
253 int eCosBoard_handle_eCosBoard_profile_command(struct command_context *cmd_ctx, char *cmd, char **args, int argc)
254 {
255         command_print(cmd_ctx, "Profiling started");
256         start_profile();
257         return ERROR_OK;
258 }
259
260 #endif
261
262 externC void phi_init_all_network_interfaces(void);
263
264 struct command_context *cmd_ctx;
265
266 static bool webRunning = false;
267
268 void keep_webserver(void)
269 {
270         // Target initialisation is only attempted at startup, so we sleep forever and
271         // let the http server bail us out(i.e. get config files set up).
272         diag_printf("OpenOCD has invoked exit().\n"
273                 "Use web server to correct any configuration settings and reboot.\n");
274         if (!webRunning)
275                 reboot();
276
277         // exit() will terminate the current thread and we we'll then sleep eternally or
278         // we'll have a reboot scheduled.
279 }
280
281 extern void printDccChar(char c);
282
283 static char logBuffer[128 * 1024];
284 static const int logSize = sizeof(logBuffer);
285 int writePtr = 0;
286 int logCount = 0;
287
288 void _zylinjtag_diag_write_char(char c, void **param)
289 {
290         if (writeLog)
291         {
292                 logBuffer[writePtr] = c;
293                 writePtr = (writePtr + 1) % logSize;
294                 logCount++;
295         }
296         if (serialLog)
297         {
298                 if (c == '\n')
299                 {
300                         HAL_DIAG_WRITE_CHAR('\r');
301                 }
302                 HAL_DIAG_WRITE_CHAR(c);
303         }
304
305 #ifdef CYGPKG_HAL_ZYLIN_PHI
306         printDccChar(c);
307 #endif
308 }
309
310 void copyfile(char *name2, char *name1);
311
312 void copydir(char *name, char *destdir);
313
314 #if 0
315 MTAB_ENTRY(romfs_mte1,
316                 "/rom",
317                 "romfs",
318                 "",
319                 (CYG_ADDRWORD) &filedata[0]);
320 #endif
321
322 void openocd_sleep_prelude(void)
323 {
324         cyg_mutex_unlock(&httpstate.jim_lock);
325 }
326
327 void openocd_sleep_postlude(void)
328 {
329         cyg_mutex_lock(&httpstate.jim_lock);
330 }
331
332 void format(void)
333 {
334 #ifdef CYGDAT_IO_FLASH_BLOCK_DEVICE_NAME_1
335         diag_printf("Formatting JFFS2...\n");
336
337         cyg_io_handle_t handle;
338
339         Cyg_ErrNo err;
340         err = cyg_io_lookup(CYGDAT_IO_FLASH_BLOCK_DEVICE_NAME_1, &handle);
341         if (err != ENOERR)
342         {
343                 diag_printf("Flash Error cyg_io_lookup: %d\n", err);
344                 reboot();
345         }
346
347         cyg_uint32 len;
348         cyg_io_flash_getconfig_devsize_t ds;
349         len = sizeof(ds);
350         err = cyg_io_get_config(handle, CYG_IO_GET_CONFIG_FLASH_DEVSIZE, &ds, &len);
351         if (err != ENOERR)
352         {
353                 diag_printf("Flash error cyg_io_get_config %d\n", err);
354                 reboot();
355         }
356
357         cyg_io_flash_getconfig_erase_t e;
358         len = sizeof(e);
359
360         e.offset = 0;
361         e.len = ds.dev_size;
362
363         diag_printf("Formatting 0x%08x bytes\n", (int)ds.dev_size);
364         err = cyg_io_get_config(handle, CYG_IO_GET_CONFIG_FLASH_ERASE, &e, &len);
365         if (err != ENOERR)
366         {
367                 diag_printf("Flash erase error %d offset 0x%08x\n", err, e.err_address);
368                 reboot();
369         }
370
371         diag_printf("Flash formatted successfully\n");
372 #endif
373
374         reboot();
375 }
376
377 static int zylinjtag_Jim_Command_format_jffs2(Jim_Interp *interp, int argc,
378                 Jim_Obj * const *argv)
379 {
380         if (argc != 1)
381         {
382                 return JIM_ERR;
383         }
384
385         format();
386         for (;;)
387                 ;
388 }
389
390 static int zylinjtag_Jim_Command_threads(Jim_Interp *interp, int argc,
391                 Jim_Obj * const *argv)
392 {
393         cyg_handle_t thread = 0;
394         cyg_uint16 id = 0;
395         Jim_Obj *threads = Jim_NewListObj(interp, NULL, 0);
396
397         /* Loop over the threads, and generate a table row for
398          * each.
399          */
400         while (cyg_thread_get_next(&thread, &id))
401         {
402                 Jim_Obj *threadObj = Jim_NewListObj(interp, NULL, 0);
403
404                 cyg_thread_info info;
405                 char *state_string;
406
407                 cyg_thread_get_info(thread, id, &info);
408
409                 if (info.name == NULL)
410                         info.name = "<no name>";
411
412                 Jim_ListAppendElement(interp, threadObj, Jim_NewStringObj(interp,
413                                 info.name, strlen(info.name)));
414
415                 /* Translate the state into a string.
416                  */
417                 if (info.state == 0)
418                         state_string = "RUN";
419                 else if (info.state & 0x04)
420                         state_string = "SUSP";
421                 else
422                         switch (info.state & 0x1b)
423                         {
424                         case 0x01:
425                                 state_string = "SLEEP";
426                                 break;
427                         case 0x02:
428                                 state_string = "CNTSLEEP";
429                                 break;
430                         case 0x08:
431                                 state_string = "CREATE";
432                                 break;
433                         case 0x10:
434                                 state_string = "EXIT";
435                                 break;
436                         default:
437                                 state_string = "????";
438                                 break;
439                         }
440
441                 Jim_ListAppendElement(interp, threadObj, Jim_NewStringObj(interp,
442                                 state_string, strlen(state_string)));
443
444                 Jim_ListAppendElement(interp, threadObj, Jim_NewIntObj(interp, id));
445                 Jim_ListAppendElement(interp, threadObj, Jim_NewIntObj(interp,
446                                 info.set_pri));
447                 Jim_ListAppendElement(interp, threadObj, Jim_NewIntObj(interp,
448                                 info.cur_pri));
449
450                 Jim_ListAppendElement(interp, threads, threadObj);
451         }
452         Jim_SetResult(interp, threads);
453
454         return JIM_OK;
455 }
456
457 static int zylinjtag_Jim_Command_log(Jim_Interp *interp, int argc,
458                 Jim_Obj * const *argv)
459 {
460         Jim_Obj *tclOutput = Jim_NewStringObj(interp, "", 0);
461
462         if (logCount >= logSize)
463         {
464                 Jim_AppendString(httpstate.jim_interp, tclOutput, logBuffer + logCount
465                                 % logSize, logSize - logCount % logSize);
466         }
467         Jim_AppendString(httpstate.jim_interp, tclOutput, logBuffer, writePtr);
468
469         Jim_SetResult(interp, tclOutput);
470         return JIM_OK;
471 }
472
473 static int zylinjtag_Jim_Command_reboot(Jim_Interp *interp, int argc,
474                 Jim_Obj * const *argv)
475 {
476         reboot();
477         return JIM_OK;
478 }
479
480 static void zylinjtag_startNetwork(void)
481 {
482         // Bring TCP/IP up immediately before we're ready to accept commands.
483         //
484         // That is as soon as a PING responds, we're accepting telnet sessions.
485 #if defined(CYGPKG_NET_FREEBSD_STACK)
486         phi_init_all_network_interfaces();
487 #else
488         lwip_init();
489 #endif
490         if (!eth0_up)
491         {
492                 diag_printf("Network not up and running\n");
493                 exit(-1);
494         }
495
496         /* very first thing we want is a reboot capability */
497         reboot_port();
498
499 #if defined(CYGPKG_NET_FREEBSD_STACK)
500         /*start TFTP*/
501         tftpd_start(69, &fileops);
502 #endif
503
504         cyg_httpd_init_tcl_interpreter();
505
506         Jim_CreateCommand(httpstate.jim_interp, "log", zylinjtag_Jim_Command_log,
507                         NULL, NULL);
508         Jim_CreateCommand(httpstate.jim_interp, "zy1000_reboot",
509                         zylinjtag_Jim_Command_reboot, NULL, NULL);
510         Jim_CreateCommand(httpstate.jim_interp, "threads",
511                         zylinjtag_Jim_Command_threads, NULL, NULL);
512         Jim_CreateCommand(httpstate.jim_interp, "format_jffs2",
513                         zylinjtag_Jim_Command_format_jffs2, NULL, NULL);
514
515         cyg_httpd_start();
516
517         webRunning = true;
518
519         diag_printf("Web server running\n");
520
521         int s;
522         struct ifreq ifr;
523         s = socket(AF_INET, SOCK_DGRAM, 0);
524         if (s >= 0)
525         {
526                 strcpy(ifr.ifr_name, "eth0");
527                 int res;
528                 res = ioctl(s, SIOCGIFHWADDR, &ifr);
529                 close(s);
530
531                 if (res < 0)
532                 {
533                         diag_printf("Can't obtain MAC address\n");
534                         reboot();
535                 }
536         }
537
538         sprintf(hwaddr, "%02x:%02x:%02x:%02x:%02x:%02x",
539                         (int) ((unsigned char *) &ifr.ifr_hwaddr.sa_data)[0],
540                         (int) ((unsigned char *) &ifr.ifr_hwaddr.sa_data)[1],
541                         (int) ((unsigned char *) &ifr.ifr_hwaddr.sa_data)[2],
542                         (int) ((unsigned char *) &ifr.ifr_hwaddr.sa_data)[3],
543                         (int) ((unsigned char *) &ifr.ifr_hwaddr.sa_data)[4],
544                         (int) ((unsigned char *) &ifr.ifr_hwaddr.sa_data)[5]);
545
546         discover_message
547                         = alloc_printf("ZY1000 Zylin JTAG debugger MAC %s", hwaddr);
548
549         discover_launch();
550 }
551
552 static void print_exception_handler(cyg_addrword_t data, cyg_code_t exception,
553                 cyg_addrword_t info)
554 {
555         writeLog = false;
556         serialLog = true;
557         char *infoStr = "unknown";
558         switch (exception)
559         {
560 #ifdef CYGNUM_HAL_VECTOR_UNDEF_INSTRUCTION
561         case CYGNUM_HAL_VECTOR_UNDEF_INSTRUCTION:
562         infoStr = "undefined instruction";
563         break;
564         case CYGNUM_HAL_VECTOR_SOFTWARE_INTERRUPT:
565         infoStr = "software interrupt";
566         break;
567         case CYGNUM_HAL_VECTOR_ABORT_PREFETCH:
568         infoStr = "abort prefetch";
569         break;
570         case CYGNUM_HAL_VECTOR_ABORT_DATA:
571         infoStr = "abort data";
572         break;
573 #endif
574         default:
575                 break;
576         }
577
578         diag_printf("Exception: %08x(%s) %08x\n", exception, infoStr, info);
579
580         diag_printf("Dumping log\n---\n");
581         if (logCount >= logSize)
582         {
583                 diag_write(logBuffer + logCount % logSize, logSize - logCount % logSize);
584         }
585         diag_write(logBuffer, writePtr);
586
587         diag_printf("---\nLogdump complete.\n");
588         diag_printf("Exception: %08x(%s) %08x\n", exception, infoStr, info);
589         diag_printf("\n---\nRebooting\n");
590         HAL_PLATFORM_RESET();
591
592 }
593
594 #ifdef CYGNUM_HAL_VECTOR_UNDEF_INSTRUCTION
595 static void setHandler(cyg_code_t exception)
596 {
597         cyg_exception_handler_t *old_handler;
598         cyg_addrword_t old_data;
599
600         cyg_exception_set_handler(exception, print_exception_handler, 0,
601                         &old_handler, &old_data);
602 }
603 #endif
604
605 static cyg_thread zylinjtag_uart_thread_object;
606 static cyg_handle_t zylinjtag_uart_thread_handle;
607 static char uart_stack[4096];
608
609 static char forwardBuffer[1024]; // NB! must be smaller than a TCP/IP packet!!!!!
610 static char backwardBuffer[1024];
611
612 void setNoDelay(int session, int flag)
613 {
614 #if 1
615         // This decreases latency dramatically for e.g. GDB load which
616         // does not have a sliding window protocol
617         //
618         // Can cause *lots* of TCP/IP packets to be sent and it would have
619         // to be enabled/disabled on the fly to avoid the CPU being
620         // overloaded...
621         setsockopt(session, /* socket affected */
622         IPPROTO_TCP, /* set option at TCP level */
623         TCP_NODELAY, /* name of option */
624         (char *) &flag, /* the cast is historical
625          cruft */
626         sizeof(int)); /* length of option value */
627 #endif
628 }
629
630 #define TEST_TCPIP() 0
631
632 #if TEST_TCPIP
633 struct
634 {
635         int req;
636         int actual;
637         int req2;
638         int actual2;
639 } tcpipSent[512 * 1024];
640 int cur;
641 #endif
642
643 static void zylinjtag_uart(cyg_addrword_t data)
644 {
645         int so_reuseaddr_option = 1;
646
647         int fd;
648         if ((fd = socket(AF_INET, SOCK_STREAM, 0)) == -1)
649         {
650                 LOG_ERROR("error creating socket: %s", strerror(errno));
651                 exit(-1);
652         }
653
654         setsockopt(fd, SOL_SOCKET, SO_REUSEADDR, (void*) &so_reuseaddr_option,
655                         sizeof(int));
656
657         struct sockaddr_in sin;
658         unsigned int address_size;
659         address_size = sizeof(sin);
660         memset(&sin, 0, sizeof(sin));
661         sin.sin_family = AF_INET;
662         sin.sin_addr.s_addr = INADDR_ANY;
663         sin.sin_port = htons(5555);
664
665         if (bind(fd, (struct sockaddr *) &sin, sizeof(sin)) == -1)
666         {
667                 LOG_ERROR("couldn't bind to socket: %s", strerror(errno));
668                 exit(-1);
669         }
670
671         if (listen(fd, 1) == -1)
672         {
673                 LOG_ERROR("couldn't listen on socket: %s", strerror(errno));
674                 exit(-1);
675         }
676         //      socket_nonblock(fd);
677
678
679         for (;;)
680         {
681                 int session = accept(fd, (struct sockaddr *) &sin, &address_size);
682                 if (session < 0)
683                 {
684                         continue;
685                 }
686
687                 setNoDelay(session, 1);
688                 int oldopts = fcntl(session, F_GETFL, 0);
689                 fcntl(session, F_SETFL, oldopts | O_NONBLOCK); //
690
691                 int serHandle = open(ZY1000_SER_DEV, O_RDWR | O_NONBLOCK);
692                 if (serHandle < 0)
693                 {
694                         close(session);
695                         continue;
696                 }
697
698 #ifdef CYGPKG_PROFILE_GPROF
699                 start_profile();
700 #endif
701                 size_t actual = 0;
702                 size_t actual2 = 0;
703                 size_t pos, pos2;
704                 pos = 0;
705                 pos2 = 0;
706 #if TEST_TCPIP
707                 cur = 0;
708 #endif
709                 for (;;)
710                 {
711                         fd_set write_fds;
712                         fd_set read_fds;
713                         FD_ZERO(&write_fds);
714                         FD_ZERO(&read_fds);
715                         int fd_max = -1;
716                         FD_SET(session, &read_fds);
717                         fd_max = session;
718                         FD_SET(serHandle, &read_fds);
719                         if (serHandle > fd_max)
720                         {
721                                 fd_max = serHandle;
722                         }
723                         /* Wait... */
724
725                         cyg_thread_delay(5); // 50ms fixed delay to wait for data to be sent/received
726                         if ((actual == 0) && (actual2 == 0))
727                         {
728                                 int retval = select(fd_max + 1, &read_fds, NULL, NULL, NULL);
729                                 if (retval <= 0)
730                                 {
731                                         break;
732                                 }
733                         }
734
735                         if (actual2 <= 0)
736                         {
737                                 memset(backwardBuffer, 's', sizeof(backwardBuffer));
738                                 int t;
739                                 t = read(serHandle, backwardBuffer,
740                                                 sizeof(backwardBuffer));
741                                 actual2 = t;
742                                 if (t < 0)
743                                 {
744                                         if (errno != EAGAIN)
745                                         {
746                                                 goto closeSession;
747                                         }
748                                         actual2 = 0;
749                                 }
750                                 pos2 = 0;
751                         }
752
753                         size_t y = 0;
754                         if (actual2 > 0)
755                         {
756                                 int written = write(session, backwardBuffer + pos2, actual2);
757                                 if (written <= 0)
758                                         goto closeSession;
759                                 actual2 -= written;
760                                 pos2 += written;
761                                 y = written;
762                         }
763
764                         if (FD_ISSET(session, &read_fds)
765                                         && (sizeof(forwardBuffer) > actual))
766                         {
767                                 // NB! Here it is important that we empty the TCP/IP read buffer
768                                 // to make transmission tick right
769                                 memmove(forwardBuffer, forwardBuffer + pos, actual);
770                                 pos = 0;
771                                 int t;
772                                 // this will block if there is no data at all
773                                 t = read_socket(session, forwardBuffer + actual,
774                                                 sizeof(forwardBuffer) - actual);
775                                 if (t <= 0)
776                                 {
777                                         goto closeSession;
778                                 }
779                                 actual += t;
780                         }
781
782                         int y2 = 0;
783                         if (actual > 0)
784                         {
785                                 /* Do not put things into the serial buffer if it has something to send
786                                  * as that can cause a single byte to be sent at the time.
787                                  *
788                                  *
789                                  */
790                                 int written = write(serHandle, forwardBuffer + pos, actual);
791                                 if (written < 0)
792                                 {
793                                         if (errno != EAGAIN)
794                                         {
795                                                 goto closeSession;
796                                         }
797                                         // The serial buffer is full
798                                         written = 0;
799                                 }
800                                 else
801                                 {
802                                         actual -= written;
803                                         pos += written;
804                                 }
805                                 y2 = written;
806                         }
807 #if TEST_TCPIP
808                         if (cur < 1024)
809                         {
810                                 tcpipSent[cur].req = x;
811                                 tcpipSent[cur].actual = y;
812                                 tcpipSent[cur].req2 = x2;
813                                 tcpipSent[cur].actual2 = y2;
814                                 cur++;
815                         }
816 #endif
817                 }
818                 closeSession: close(session);
819                 close(serHandle);
820
821 #if TEST_TCPIP
822                 int i;
823                 for (i = 0; i < 1024; i++)
824                 {
825                         diag_printf("%d %d %d %d\n", tcpipSent[i].req, tcpipSent[i].actual,
826                                         tcpipSent[i].req2, tcpipSent[i].actual2);
827
828                 }
829 #endif
830         }
831         close(fd);
832
833 }
834
835 void startUart(void)
836 {
837         cyg_thread_create(1, zylinjtag_uart, (cyg_addrword_t) 0, "uart thread",
838                         (void *) uart_stack, sizeof(uart_stack),
839                         &zylinjtag_uart_thread_handle, &zylinjtag_uart_thread_object);
840         cyg_thread_set_priority(zylinjtag_uart_thread_handle, 1); // low priority as it sits in a busy loop
841         cyg_thread_resume(zylinjtag_uart_thread_handle);
842 }
843
844 static int zylinjtag_Jim_Command_uart(Jim_Interp *interp, int argc,
845                 Jim_Obj * const *argv)
846 {
847         static int current_baud = 38400;
848         if (argc == 1)
849         {
850                 command_print(cmd_ctx, "%d", current_baud);
851                 return JIM_OK;
852         }
853         else if (argc != 2)
854         {
855                 return JIM_ERR;
856         }
857
858         long new_baudrate;
859         if (Jim_GetLong(interp, argv[1], &new_baudrate) != JIM_OK)
860                 return JIM_ERR;
861
862         current_baud = new_baudrate;
863
864         int baud;
865         switch (current_baud)
866         {
867         case 9600:
868                 baud = CYGNUM_SERIAL_BAUD_9600;
869                 break;
870         case 19200:
871                 baud = CYGNUM_SERIAL_BAUD_19200;
872                 break;
873         case 38400:
874                 baud = CYGNUM_SERIAL_BAUD_38400;
875                 break;
876         case 57600:
877                 baud = CYGNUM_SERIAL_BAUD_57600;
878                 break;
879         case 115200:
880                 baud = CYGNUM_SERIAL_BAUD_115200;
881                 break;
882         case 230400:
883                 baud = CYGNUM_SERIAL_BAUD_230400;
884                 break;
885         default:
886                 command_print(cmd_ctx, "unsupported baudrate");
887                 return ERROR_INVALID_ARGUMENTS;
888         }
889
890         cyg_serial_info_t buf;
891         cyg_uint32 len = 1;
892         //get existing serial configuration
893         len = sizeof(cyg_serial_info_t);
894         int err;
895         cyg_io_handle_t serial_handle;
896
897         err = cyg_io_lookup(ZY1000_SER_DEV, &serial_handle);
898         if (err != ENOERR)
899         {
900                 LOG_ERROR("Could not open serial port\n");
901                 return JIM_ERR;
902         }
903
904         err = cyg_io_get_config(serial_handle,
905                         CYG_IO_GET_CONFIG_SERIAL_OUTPUT_DRAIN, &buf, &len);
906         err = cyg_io_get_config(serial_handle, CYG_IO_GET_CONFIG_SERIAL_INFO, &buf,
907                         &len);
908         if (err != ENOERR)
909         {
910                 LOG_ERROR("Failed to get serial port settings %d", err);
911                 return JIM_ERR;
912         }
913         buf.baud = baud;
914
915         err = cyg_io_set_config(serial_handle, CYG_IO_SET_CONFIG_SERIAL_INFO, &buf,
916                         &len);
917         if (err != ENOERR)
918         {
919                 LOG_ERROR("Failed to set serial port settings %d", err);
920                 return JIM_ERR;
921         }
922
923         return JIM_OK;
924 }
925
926 bool logAllToSerial = false;
927
928
929 int boolParam(char *var);
930
931
932 static const char *zylin_config_dir="/config/settings";
933
934 static int add_default_dirs(void)
935 {
936         add_script_search_dir(zylin_config_dir);
937         add_script_search_dir("/rom/lib/openocd");
938         add_script_search_dir("/rom");
939         return ERROR_OK;
940 }
941
942 int main(int argc, char *argv[])
943 {
944         /* ramblockdevice will be the same address every time. The deflate app uses a buffer 16mBytes out, so we
945          * need to allocate towards the end of the heap.  */
946
947 #ifdef CYGNUM_HAL_VECTOR_UNDEF_INSTRUCTION
948         setHandler(CYGNUM_HAL_VECTOR_UNDEF_INSTRUCTION);
949         setHandler(CYGNUM_HAL_VECTOR_ABORT_PREFETCH);
950         setHandler(CYGNUM_HAL_VECTOR_ABORT_DATA);
951 #endif
952
953         int err;
954
955         atexit(keep_webserver);
956
957         diag_init_putc(_zylinjtag_diag_write_char);
958         // We want this in the log.
959         diag_printf("Zylin ZY1000.\n");
960
961         err = mount("", "/ram", "ramfs");
962         if (err < 0)
963         {
964                 diag_printf("unable to mount ramfs\n");
965         }
966         chdir("/ram");
967
968         char address[16];
969         sprintf(address, "%p", &filedata[0]);
970         err = mount(address, "/rom", "romfs");
971         if (err < 0)
972         {
973                 diag_printf("unable to mount /rom\n");
974         }
975
976         err = mount("", "/log", "logfs");
977         if (err < 0)
978         {
979                 diag_printf("unable to mount logfs\n");
980         }
981
982         err = mount("", "/tftp", "tftpfs");
983         if (err < 0)
984         {
985                 diag_printf("unable to mount logfs\n");
986         }
987
988         log = fopen("/log/log", "w");
989         if (log == NULL)
990         {
991                 diag_printf("Could not open log file /ram/log\n");
992                 exit(-1);
993         }
994
995
996         copydir("/rom", "/ram/cgi");
997
998         err = mount("/dev/flash1", "/config", "jffs2");
999         if (err < 0)
1000         {
1001                 diag_printf("unable to mount jffs2, falling back to ram disk..\n");
1002                 err = mount("", "/config", "ramfs");
1003                 if (err < 0)
1004                 {
1005                         diag_printf("unable to mount /config as ramdisk.\n");
1006                         reboot();
1007                 }
1008         }
1009         else
1010         {
1011                 /* are we using a ram disk instead of a flash disk? This is used
1012                  * for ZY1000 live demo...
1013                  *
1014                  * copy over flash disk to ram block device
1015                  */
1016                 if (boolParam("ramdisk"))
1017                 {
1018                         diag_printf("Unmounting /config from flash and using ram instead\n");
1019                         err = umount("/config");
1020                         if (err < 0)
1021                         {
1022                                 diag_printf("unable to unmount jffs\n");
1023                                 reboot();
1024                         }
1025
1026                         err = mount("/dev/flash1", "/config2", "jffs2");
1027                         if (err < 0)
1028                         {
1029                                 diag_printf("unable to mount jffs\n");
1030                                 reboot();
1031                         }
1032
1033                         err = mount("", "/config", "ramfs");
1034                         if (err < 0)
1035                         {
1036                                 diag_printf("unable to mount ram block device\n");
1037                                 reboot();
1038                         }
1039
1040                         //              copydir("/config2", "/config");
1041                         copyfile("/config2/ip", "/config/ip");
1042                         copydir("/config2/settings", "/config/settings");
1043
1044                         umount("/config2");
1045                 }
1046         }
1047
1048         mkdir(zylin_config_dir, 0777);
1049         char *dirname = alloc_printf("%s/target", zylin_config_dir);
1050         mkdir(dirname, 0777);
1051         free(dirname);
1052         dirname = alloc_printf("%s/board", zylin_config_dir);
1053         mkdir(dirname, 0777);
1054         free(dirname);
1055         dirname = alloc_printf("%s/event", zylin_config_dir);
1056         mkdir(dirname, 0777);
1057         free(dirname);
1058
1059         logAllToSerial = boolParam("logserial");
1060
1061         // We need the network & web server in case there is something wrong with
1062         // the config files that invoke exit()
1063         zylinjtag_startNetwork();
1064
1065         /* we're going to access the jim interpreter from here on... */
1066         openocd_sleep_postlude();
1067         startUart();
1068
1069         add_default_dirs();
1070
1071         /* initialize commandline interface */
1072         struct command_context * cmd_ctx;
1073         struct command_context *setup_command_handler(Jim_Interp *interp);
1074         cmd_ctx = setup_command_handler(httpstate.jim_interp);
1075         command_set_output_handler(cmd_ctx, configuration_output_handler, NULL);
1076         command_context_mode(cmd_ctx, COMMAND_CONFIG);
1077
1078         if (ioutil_init(cmd_ctx) != ERROR_OK)
1079                 return EXIT_FAILURE;
1080
1081 #ifdef CYGPKG_PROFILE_GPROF
1082         COMMAND_REGISTER(cmd_ctx, NULL, "ecosboard_profile", eCosBoard_handle_eCosBoard_profile_command,
1083                         COMMAND_ANY, NULL);
1084 #endif
1085
1086         Jim_CreateCommand(httpstate.jim_interp, "uart", zylinjtag_Jim_Command_uart, NULL, NULL);
1087
1088
1089         log_init();
1090
1091         set_log_output(cmd_ctx, log);
1092
1093         LOG_DEBUG("log init complete");
1094
1095         //      diag_printf("Executing config files\n");
1096
1097         if (logAllToSerial)
1098         {
1099                 diag_printf(
1100                                  "%s/logserial = 1 => sending log output to serial port using \"debug_level 3\" as default.\n", zylin_config_dir);
1101                 command_run_line(cmd_ctx, "debug_level 3");
1102         }
1103
1104         command_run_linef(cmd_ctx, "script /rom/openocd.cfg");
1105
1106         int ret;
1107         ret = server_init(cmd_ctx);
1108         if (ERROR_OK != ret)
1109                 return EXIT_FAILURE;
1110
1111         /* we MUST always run the init command as it will launch telnet sessions */
1112         command_run_line(cmd_ctx, "init");
1113
1114         // FIX!!!  Yuk!
1115         // diag_printf() is really invoked from many more places than we trust it
1116         // not to cause instabilities(e.g. invoking fputc() from an interrupt is *BAD*).
1117         //
1118         // Disabling it here is safe and gives us enough logged debug output for now. Crossing
1119         // fingers that it doesn't cause any crashes.
1120         diag_printf("Init complete, GDB & telnet servers launched.\n");
1121         command_set_output_handler(cmd_ctx,
1122                         zy1000_configuration_output_handler_log, NULL);
1123         if (!logAllToSerial)
1124         {
1125                 serialLog = false;
1126         }
1127
1128         /* handle network connections */
1129         server_loop(cmd_ctx);
1130         openocd_sleep_prelude();
1131
1132         /* shut server down */
1133         server_quit();
1134
1135         /* free commandline interface */
1136         command_done(cmd_ctx);
1137         umount("/config");
1138
1139         exit(0);
1140         for (;;)
1141                 ;
1142 }
1143
1144 cyg_int32 cyg_httpd_exec_cgi_tcl(char *file_name);
1145 cyg_int32 homeForm(CYG_HTTPD_STATE *p)
1146 {
1147         cyg_httpd_exec_cgi_tcl("/ram/cgi/index.tcl");
1148         return 0;
1149 }
1150
1151 CYG_HTTPD_HANDLER_TABLE_ENTRY(root_label, "/", homeForm);
1152
1153 CYG_HTTPD_MIME_TABLE_ENTRY(text_mime_label, "text", "text/plain");
1154 CYG_HTTPD_MIME_TABLE_ENTRY(bin_mime_label, "bin", "application/octet-stream");
1155
1156 #include <pkgconf/system.h>
1157 #include <pkgconf/hal.h>
1158 #include <pkgconf/kernel.h>
1159 #include <pkgconf/io_fileio.h>
1160 #include <pkgconf/fs_rom.h>
1161
1162 #include <cyg/kernel/ktypes.h>         // base kernel types
1163 #include <cyg/infra/cyg_trac.h>        // tracing macros
1164 #include <cyg/infra/cyg_ass.h>         // assertion macros
1165 #include <cyg/fileio/fileio.h>
1166 #include <cyg/kernel/kapi.h>
1167 #include <cyg/infra/diag.h>
1168
1169 //==========================================================================
1170 // Eventually we want to eXecute In Place from the ROM in a protected
1171 // environment, so we'll need executables to be aligned to a boundary
1172 // suitable for MMU protection. A suitable boundary would be the 4k
1173 // boundary in all the CPU architectures I am currently aware of.
1174
1175 // Forward definitions
1176
1177 // Filesystem operations
1178 static int tftpfs_mount(cyg_fstab_entry *fste, cyg_mtab_entry *mte);
1179 static int tftpfs_umount(cyg_mtab_entry *mte);
1180 static int tftpfs_open(cyg_mtab_entry *mte, cyg_dir dir, const char *name,
1181                 int mode, cyg_file *fte);
1182 static int tftpfs_fo_read(struct CYG_FILE_TAG *fp, struct CYG_UIO_TAG *uio);
1183 static int tftpfs_fo_write(struct CYG_FILE_TAG *fp, struct CYG_UIO_TAG *uio);
1184
1185 // File operations
1186 static int tftpfs_fo_fsync(struct CYG_FILE_TAG *fp, int mode);
1187 static int tftpfs_fo_close(struct CYG_FILE_TAG *fp);
1188 static int tftpfs_fo_lseek(struct CYG_FILE_TAG *fp, off_t *apos, int whence);
1189
1190 //==========================================================================
1191 // Filesystem table entries
1192
1193 // -------------------------------------------------------------------------
1194 // Fstab entry.
1195 // This defines the entry in the filesystem table.
1196 // For simplicity we use _FILESYSTEM synchronization for all accesses since
1197 // we should never block in any filesystem operations.
1198 #if 1
1199 FSTAB_ENTRY(tftpfs_fste, "tftpfs", 0,
1200                 CYG_SYNCMODE_NONE,
1201                 tftpfs_mount,
1202                 tftpfs_umount,
1203                 tftpfs_open,
1204                 (cyg_fsop_unlink *)cyg_fileio_erofs,
1205                 (cyg_fsop_mkdir *)cyg_fileio_erofs,
1206                 (cyg_fsop_rmdir *)cyg_fileio_erofs,
1207                 (cyg_fsop_rename *)cyg_fileio_erofs,
1208                 (cyg_fsop_link *)cyg_fileio_erofs,
1209                 (cyg_fsop_opendir *)cyg_fileio_erofs,
1210                 (cyg_fsop_chdir *)cyg_fileio_erofs,
1211                 (cyg_fsop_stat *)cyg_fileio_erofs,
1212                 (cyg_fsop_getinfo *)cyg_fileio_erofs,
1213                 (cyg_fsop_setinfo *)cyg_fileio_erofs);
1214 #endif
1215
1216 // -------------------------------------------------------------------------
1217 // mtab entry.
1218 // This defines a single ROMFS loaded into ROM at the configured address
1219 //
1220 // MTAB_ENTRY(rom_mte,  // structure name
1221 //              "/rom",         // mount point
1222 //              "romfs",        // FIlesystem type
1223 //              "",             // hardware device
1224 //  (CYG_ADDRWORD) CYGNUM_FS_ROM_BASE_ADDRESS   // Address in ROM
1225 //);
1226
1227
1228 // -------------------------------------------------------------------------
1229 // File operations.
1230 // This set of file operations are used for normal open files.
1231
1232 static cyg_fileops tftpfs_fileops =
1233 { tftpfs_fo_read, tftpfs_fo_write, tftpfs_fo_lseek,
1234                 (cyg_fileop_ioctl *) cyg_fileio_erofs, cyg_fileio_seltrue,
1235                 tftpfs_fo_fsync, tftpfs_fo_close,
1236                 (cyg_fileop_fstat *) cyg_fileio_erofs,
1237                 (cyg_fileop_getinfo *) cyg_fileio_erofs,
1238                 (cyg_fileop_setinfo *) cyg_fileio_erofs, };
1239
1240 // -------------------------------------------------------------------------
1241 // tftpfs_mount()
1242 // Process a mount request. This mainly finds root for the
1243 // filesystem.
1244
1245 static int tftpfs_mount(cyg_fstab_entry *fste, cyg_mtab_entry *mte)
1246 {
1247         return ENOERR;
1248 }
1249
1250 static int tftpfs_umount(cyg_mtab_entry *mte)
1251 {
1252         return ENOERR;
1253 }
1254
1255 struct Tftp
1256 {
1257         int write;
1258         int readFile;
1259         cyg_uint8 *mem;
1260         int actual;
1261         char *server;
1262         char *file;
1263 };
1264
1265 static void freeTftp(struct Tftp *t)
1266 {
1267         if (t == NULL)
1268                 return;
1269         if (t->mem)
1270                 free(t->mem);
1271         if (t->server)
1272                 free(t->server);
1273         if (t->file)
1274                 free(t->file);
1275         free(t);
1276 }
1277
1278 static const int tftpMaxSize = 8192 * 1024;
1279 static int tftpfs_open(cyg_mtab_entry *mte, cyg_dir dir, const char *name,
1280                 int mode, cyg_file *file)
1281 {
1282         struct Tftp *tftp;
1283         tftp = malloc(sizeof(struct Tftp));
1284         if (tftp == NULL)
1285                 return EMFILE;
1286         memset(tftp, 0, sizeof(struct Tftp));
1287
1288         file->f_flag |= mode & CYG_FILE_MODE_MASK;
1289         file->f_type = CYG_FILE_TYPE_FILE;
1290         file->f_ops = &tftpfs_fileops;
1291         file->f_offset = 0;
1292         file->f_data = 0;
1293         file->f_xops = 0;
1294
1295         tftp->mem = malloc(tftpMaxSize);
1296         if (tftp->mem == NULL)
1297         {
1298                 freeTftp(tftp);
1299                 return EMFILE;
1300         }
1301
1302         char *server = strchr(name, '/');
1303         if (server == NULL)
1304         {
1305                 freeTftp(tftp);
1306                 return EMFILE;
1307         }
1308
1309         tftp->server = malloc(server - name + 1);
1310         if (tftp->server == NULL)
1311         {
1312                 freeTftp(tftp);
1313                 return EMFILE;
1314         }
1315         strncpy(tftp->server, name, server - name);
1316         tftp->server[server - name] = 0;
1317
1318         tftp->file = strdup(server + 1);
1319         if (tftp->file == NULL)
1320         {
1321                 freeTftp(tftp);
1322                 return EMFILE;
1323         }
1324
1325         file->f_data = (CYG_ADDRWORD) tftp;
1326
1327         return ENOERR;
1328 }
1329
1330 static int fetchTftp(struct Tftp *tftp)
1331 {
1332         if (!tftp->readFile)
1333         {
1334                 int err;
1335                 tftp->actual = tftp_client_get(tftp->file, tftp->server, 0, tftp->mem,
1336                                 tftpMaxSize, TFTP_OCTET, &err);
1337
1338                 if (tftp->actual < 0)
1339                 {
1340                         return EMFILE;
1341                 }
1342                 tftp->readFile = 1;
1343         }
1344         return ENOERR;
1345 }
1346
1347 // -------------------------------------------------------------------------
1348 // tftpfs_fo_write()
1349 // Read data from file.
1350
1351 static int tftpfs_fo_read(struct CYG_FILE_TAG *fp, struct CYG_UIO_TAG *uio)
1352 {
1353         struct Tftp *tftp = (struct Tftp *) fp->f_data;
1354
1355         if (fetchTftp(tftp) != ENOERR)
1356                 return EMFILE;
1357
1358         int i;
1359         off_t pos = fp->f_offset;
1360         int resid = 0;
1361         for (i = 0; i < uio->uio_iovcnt; i++)
1362         {
1363                 cyg_iovec *iov = &uio->uio_iov[i];
1364                 char *buf = (char *) iov->iov_base;
1365                 off_t len = iov->iov_len;
1366
1367                 if (len + pos > tftp->actual)
1368                 {
1369                         len = tftp->actual - pos;
1370                 }
1371                 resid += iov->iov_len - len;
1372
1373                 memcpy(buf, tftp->mem + pos, len);
1374                 pos += len;
1375
1376         }
1377         uio->uio_resid = resid;
1378         fp->f_offset = pos;
1379
1380         return ENOERR;
1381 }
1382
1383 static int tftpfs_fo_write(struct CYG_FILE_TAG *fp, struct CYG_UIO_TAG *uio)
1384 {
1385         struct Tftp *tftp = (struct Tftp *) fp->f_data;
1386
1387         int i;
1388         off_t pos = fp->f_offset;
1389         int resid = 0;
1390         for (i = 0; i < uio->uio_iovcnt; i++)
1391         {
1392                 cyg_iovec *iov = &uio->uio_iov[i];
1393                 char *buf = (char *) iov->iov_base;
1394                 off_t len = iov->iov_len;
1395
1396                 if (len + pos > tftpMaxSize)
1397                 {
1398                         len = tftpMaxSize - pos;
1399                 }
1400                 resid += iov->iov_len - len;
1401
1402                 memcpy(tftp->mem + pos, buf, len);
1403                 pos += len;
1404
1405         }
1406         uio->uio_resid = resid;
1407         fp->f_offset = pos;
1408
1409         tftp->write = 1;
1410
1411         return ENOERR;
1412 }
1413
1414 static int tftpfs_fo_fsync(struct CYG_FILE_TAG *fp, int mode)
1415 {
1416         int error = ENOERR;
1417         return error;
1418 }
1419
1420 // -------------------------------------------------------------------------
1421 // romfs_fo_close()
1422 // Close a file. We just clear out the data pointer.
1423
1424 static int tftpfs_fo_close(struct CYG_FILE_TAG *fp)
1425 {
1426         struct Tftp *tftp = (struct Tftp *) fp->f_data;
1427         int error = ENOERR;
1428
1429         if (tftp->write)
1430         {
1431                 tftp_client_put(tftp->file, tftp->server, 0, tftp->mem, fp->f_offset,
1432                                 TFTP_OCTET, &error);
1433         }
1434
1435         freeTftp(tftp);
1436         fp->f_data = 0;
1437         return error;
1438 }
1439
1440 // -------------------------------------------------------------------------
1441 // romfs_fo_lseek()
1442 // Seek to a new file position.
1443
1444 static int tftpfs_fo_lseek(struct CYG_FILE_TAG *fp, off_t *apos, int whence)
1445 {
1446         struct Tftp *tftp = (struct Tftp *) fp->f_data;
1447         off_t pos = *apos;
1448
1449         if (fetchTftp(tftp) != ENOERR)
1450                 return EMFILE;
1451
1452         switch (whence)
1453         {
1454         case SEEK_SET:
1455                 // Pos is already where we want to be.
1456                 break;
1457
1458         case SEEK_CUR:
1459                 // Add pos to current offset.
1460                 pos += fp->f_offset;
1461                 break;
1462
1463         case SEEK_END:
1464                 // Add pos to file size.
1465                 pos += tftp->actual;
1466                 break;
1467
1468         default:
1469                 return EINVAL;
1470         }
1471
1472         // Check that pos is still within current file size, or at the
1473         // very end.
1474         if (pos < 0 || pos > tftp->actual)
1475                 return EINVAL;
1476
1477         // All OK, set fp offset and return new position.
1478         *apos = fp->f_offset = pos;
1479
1480         return ENOERR;
1481 }
1482
1483 void usleep(int us)
1484 {
1485         if (us > 10000)
1486                 cyg_thread_delay(us / 10000 + 1);
1487         else
1488                 HAL_DELAY_US(us);
1489 }
1490
1491 // Chunked version.
1492 cyg_int32 show_log_entry(CYG_HTTPD_STATE *phttpstate)
1493 {
1494         cyg_httpd_start_chunked("text");
1495         if (logCount >= logSize)
1496         {
1497                 cyg_httpd_write_chunked(logBuffer + logCount % logSize, logSize
1498                                 - logCount % logSize);
1499         }
1500         cyg_httpd_write_chunked(logBuffer, writePtr);
1501         cyg_httpd_end_chunked();
1502         return -1;
1503 }
1504
1505 CYG_HTTPD_HANDLER_TABLE_ENTRY(show_log, "/ram/log", show_log_entry);
1506
1507 // Filesystem operations
1508 static int logfs_mount(cyg_fstab_entry *fste, cyg_mtab_entry *mte);
1509 static int logfs_umount(cyg_mtab_entry *mte);
1510 static int logfs_open(cyg_mtab_entry *mte, cyg_dir dir, const char *name,
1511                 int mode, cyg_file *fte);
1512 static int logfs_fo_write(struct CYG_FILE_TAG *fp, struct CYG_UIO_TAG *uio);
1513
1514 // File operations
1515 static int logfs_fo_fsync(struct CYG_FILE_TAG *fp, int mode);
1516 static int logfs_fo_close(struct CYG_FILE_TAG *fp);
1517
1518 #include <cyg/io/devtab.h>
1519
1520 //==========================================================================
1521 // Filesystem table entries
1522
1523 // -------------------------------------------------------------------------
1524 // Fstab entry.
1525 // This defines the entry in the filesystem table.
1526 // For simplicity we use _FILESYSTEM synchronization for all accesses since
1527 // we should never block in any filesystem operations.
1528 FSTAB_ENTRY(logfs_fste, "logfs", 0,
1529                 CYG_SYNCMODE_FILE_FILESYSTEM | CYG_SYNCMODE_IO_FILESYSTEM,
1530                 logfs_mount,
1531                 logfs_umount,
1532                 logfs_open,
1533                 (cyg_fsop_unlink *)cyg_fileio_erofs,
1534                 (cyg_fsop_mkdir *)cyg_fileio_erofs,
1535                 (cyg_fsop_rmdir *)cyg_fileio_erofs,
1536                 (cyg_fsop_rename *)cyg_fileio_erofs,
1537                 (cyg_fsop_link *)cyg_fileio_erofs,
1538                 (cyg_fsop_opendir *)cyg_fileio_erofs,
1539                 (cyg_fsop_chdir *)cyg_fileio_erofs,
1540                 (cyg_fsop_stat *)cyg_fileio_erofs,
1541                 (cyg_fsop_getinfo *)cyg_fileio_erofs,
1542                 (cyg_fsop_setinfo *)cyg_fileio_erofs);
1543
1544 // -------------------------------------------------------------------------
1545 // File operations.
1546 // This set of file operations are used for normal open files.
1547
1548 static cyg_fileops logfs_fileops =
1549 { (cyg_fileop_read *) cyg_fileio_erofs, (cyg_fileop_write *) logfs_fo_write,
1550                 (cyg_fileop_lseek *) cyg_fileio_erofs,
1551                 (cyg_fileop_ioctl *) cyg_fileio_erofs, cyg_fileio_seltrue,
1552                 logfs_fo_fsync, logfs_fo_close, (cyg_fileop_fstat *) cyg_fileio_erofs,
1553                 (cyg_fileop_getinfo *) cyg_fileio_erofs,
1554                 (cyg_fileop_setinfo *) cyg_fileio_erofs, };
1555
1556 // -------------------------------------------------------------------------
1557 // logfs_mount()
1558 // Process a mount request. This mainly finds root for the
1559 // filesystem.
1560
1561 static int logfs_mount(cyg_fstab_entry *fste, cyg_mtab_entry *mte)
1562 {
1563         return ENOERR;
1564 }
1565
1566 static int logfs_umount(cyg_mtab_entry *mte)
1567 {
1568         return ENOERR;
1569 }
1570
1571 static int logfs_open(cyg_mtab_entry *mte, cyg_dir dir, const char *name,
1572                 int mode, cyg_file *file)
1573 {
1574         file->f_flag |= mode & CYG_FILE_MODE_MASK;
1575         file->f_type = CYG_FILE_TYPE_FILE;
1576         file->f_ops = &logfs_fileops;
1577         file->f_offset = 0;
1578         file->f_data = 0;
1579         file->f_xops = 0;
1580         return ENOERR;
1581 }
1582
1583 // -------------------------------------------------------------------------
1584 // logfs_fo_write()
1585 // Write data to file.
1586
1587 static int logfs_fo_write(struct CYG_FILE_TAG *fp, struct CYG_UIO_TAG *uio)
1588 {
1589         int i;
1590         for (i = 0; i < uio->uio_iovcnt; i++)
1591         {
1592                 cyg_iovec *iov = &uio->uio_iov[i];
1593                 char *buf = (char *) iov->iov_base;
1594                 off_t len = iov->iov_len;
1595
1596                 diag_write(buf, len);
1597         }
1598         uio->uio_resid = 0;
1599
1600         return ENOERR;
1601 }
1602 static int logfs_fo_fsync(struct CYG_FILE_TAG *fp, int mode)
1603 {
1604         return ENOERR;
1605 }
1606
1607 // -------------------------------------------------------------------------
1608 // romfs_fo_close()
1609 // Close a file. We just clear out the data pointer.
1610
1611 static int logfs_fo_close(struct CYG_FILE_TAG *fp)
1612 {
1613         return ENOERR;
1614 }
1615
1616 int loadFile(const char *fileName, void **data, int *len);
1617
1618 /* boolean parameter stored on config */
1619 int boolParam(char *var)
1620 {
1621         bool result = false;
1622         char *name = alloc_printf("%s/%s", zylin_config_dir, var);
1623         if (name == NULL)
1624                 return result;
1625
1626         void *data;
1627         int len;
1628         if (loadFile(name, &data, &len) == ERROR_OK)
1629         {
1630                 if (len > 1)
1631                         len = 1;
1632                 result = strncmp((char *) data, "1", len) == 0;
1633                 free(data);
1634         }
1635         free(name);
1636         return result;
1637 }
1638