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1 /* Serial interface for local (hardwired) serial ports on Windows systems
2
3 Copyright (C) 2006, 2007, 2008 Free Software Foundation, Inc.
4
5 This file is part of GDB.
6
7 This program is free software; you can redistribute it and/or modify
8 it under the terms of the GNU General Public License as published by
9 the Free Software Foundation; either version 3 of the License, or
10 (at your option) any later version.
11
12 This program is distributed in the hope that it will be useful,
13 but WITHOUT ANY WARRANTY; without even the implied warranty of
14 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
15 GNU General Public License for more details.
16
17 You should have received a copy of the GNU General Public License
18 along with this program. If not, see <http://www.gnu.org/licenses/>. */
19
20 #include "defs.h"
21 #include "serial.h"
22 #include "ser-base.h"
23 #include "ser-tcp.h"
24
25 #include <windows.h>
26 #include <conio.h>
27
28 #include <fcntl.h>
29 #include <unistd.h>
30 #include <sys/types.h>
31
32 #include "gdb_assert.h"
33 #include "gdb_string.h"
34
35 #include "command.h"
36
37 void _initialize_ser_windows (void);
38
39 struct ser_windows_state
40 {
41 int in_progress;
42 OVERLAPPED ov;
43 DWORD lastCommMask;
44 HANDLE except_event;
45 };
46
47 /* Open up a real live device for serial I/O. */
48
49 static int
50 ser_windows_open (struct serial *scb, const char *name)
51 {
52 HANDLE h;
53 struct ser_windows_state *state;
54 COMMTIMEOUTS timeouts;
55
56 h = CreateFile (name, GENERIC_READ | GENERIC_WRITE, 0, NULL,
57 OPEN_EXISTING, FILE_FLAG_OVERLAPPED, NULL);
58 if (h == INVALID_HANDLE_VALUE)
59 {
60 errno = ENOENT;
61 return -1;
62 }
63
64 scb->fd = _open_osfhandle ((long) h, O_RDWR);
65 if (scb->fd < 0)
66 {
67 errno = ENOENT;
68 return -1;
69 }
70
71 if (!SetCommMask (h, EV_RXCHAR))
72 {
73 errno = EINVAL;
74 return -1;
75 }
76
77 timeouts.ReadIntervalTimeout = MAXDWORD;
78 timeouts.ReadTotalTimeoutConstant = 0;
79 timeouts.ReadTotalTimeoutMultiplier = 0;
80 timeouts.WriteTotalTimeoutConstant = 0;
81 timeouts.WriteTotalTimeoutMultiplier = 0;
82 if (!SetCommTimeouts (h, &timeouts))
83 {
84 errno = EINVAL;
85 return -1;
86 }
87
88 state = xmalloc (sizeof (struct ser_windows_state));
89 memset (state, 0, sizeof (struct ser_windows_state));
90 scb->state = state;
91
92 /* Create a manual reset event to watch the input buffer. */
93 state->ov.hEvent = CreateEvent (0, TRUE, FALSE, 0);
94
95 /* Create a (currently unused) handle to record exceptions. */
96 state->except_event = CreateEvent (0, TRUE, FALSE, 0);
97
98 return 0;
99 }
100
101 /* Wait for the output to drain away, as opposed to flushing (discarding)
102 it. */
103
104 static int
105 ser_windows_drain_output (struct serial *scb)
106 {
107 HANDLE h = (HANDLE) _get_osfhandle (scb->fd);
108
109 return (FlushFileBuffers (h) != 0) ? 0 : -1;
110 }
111
112 static int
113 ser_windows_flush_output (struct serial *scb)
114 {
115 HANDLE h = (HANDLE) _get_osfhandle (scb->fd);
116
117 return (PurgeComm (h, PURGE_TXCLEAR) != 0) ? 0 : -1;
118 }
119
120 static int
121 ser_windows_flush_input (struct serial *scb)
122 {
123 HANDLE h = (HANDLE) _get_osfhandle (scb->fd);
124
125 return (PurgeComm (h, PURGE_RXCLEAR) != 0) ? 0 : -1;
126 }
127
128 static int
129 ser_windows_send_break (struct serial *scb)
130 {
131 HANDLE h = (HANDLE) _get_osfhandle (scb->fd);
132
133 if (SetCommBreak (h) == 0)
134 return -1;
135
136 /* Delay for 250 milliseconds. */
137 Sleep (250);
138
139 if (ClearCommBreak (h))
140 return -1;
141
142 return 0;
143 }
144
145 static void
146 ser_windows_raw (struct serial *scb)
147 {
148 HANDLE h = (HANDLE) _get_osfhandle (scb->fd);
149 DCB state;
150
151 if (GetCommState (h, &state) == 0)
152 return;
153
154 state.fParity = FALSE;
155 state.fOutxCtsFlow = FALSE;
156 state.fOutxDsrFlow = FALSE;
157 state.fDtrControl = DTR_CONTROL_ENABLE;
158 state.fDsrSensitivity = FALSE;
159 state.fOutX = FALSE;
160 state.fInX = FALSE;
161 state.fNull = FALSE;
162 state.fAbortOnError = FALSE;
163 state.ByteSize = 8;
164 state.Parity = NOPARITY;
165
166 scb->current_timeout = 0;
167
168 if (SetCommState (h, &state) == 0)
169 warning (_("SetCommState failed\n"));
170 }
171
172 static int
173 ser_windows_setstopbits (struct serial *scb, int num)
174 {
175 HANDLE h = (HANDLE) _get_osfhandle (scb->fd);
176 DCB state;
177
178 if (GetCommState (h, &state) == 0)
179 return -1;
180
181 switch (num)
182 {
183 case SERIAL_1_STOPBITS:
184 state.StopBits = ONESTOPBIT;
185 break;
186 case SERIAL_1_AND_A_HALF_STOPBITS:
187 state.StopBits = ONE5STOPBITS;
188 break;
189 case SERIAL_2_STOPBITS:
190 state.StopBits = TWOSTOPBITS;
191 break;
192 default:
193 return 1;
194 }
195
196 return (SetCommState (h, &state) != 0) ? 0 : -1;
197 }
198
199 static int
200 ser_windows_setbaudrate (struct serial *scb, int rate)
201 {
202 HANDLE h = (HANDLE) _get_osfhandle (scb->fd);
203 DCB state;
204
205 if (GetCommState (h, &state) == 0)
206 return -1;
207
208 state.BaudRate = rate;
209
210 return (SetCommState (h, &state) != 0) ? 0 : -1;
211 }
212
213 static void
214 ser_windows_close (struct serial *scb)
215 {
216 struct ser_windows_state *state;
217
218 /* Stop any pending selects. */
219 CancelIo ((HANDLE) _get_osfhandle (scb->fd));
220 state = scb->state;
221 CloseHandle (state->ov.hEvent);
222 CloseHandle (state->except_event);
223
224 if (scb->fd < 0)
225 return;
226
227 close (scb->fd);
228 scb->fd = -1;
229
230 xfree (scb->state);
231 }
232
233 static void
234 ser_windows_wait_handle (struct serial *scb, HANDLE *read, HANDLE *except)
235 {
236 struct ser_windows_state *state;
237 COMSTAT status;
238 DWORD errors;
239 HANDLE h = (HANDLE) _get_osfhandle (scb->fd);
240
241 state = scb->state;
242
243 *except = state->except_event;
244 *read = state->ov.hEvent;
245
246 if (state->in_progress)
247 return;
248
249 /* Reset the mask - we are only interested in any characters which
250 arrive after this point, not characters which might have arrived
251 and already been read. */
252
253 /* This really, really shouldn't be necessary - just the second one.
254 But otherwise an internal flag for EV_RXCHAR does not get
255 cleared, and we get a duplicated event, if the last batch
256 of characters included at least two arriving close together. */
257 if (!SetCommMask (h, 0))
258 warning (_("ser_windows_wait_handle: reseting mask failed"));
259
260 if (!SetCommMask (h, EV_RXCHAR))
261 warning (_("ser_windows_wait_handle: reseting mask failed (2)"));
262
263 /* There's a potential race condition here; we must check cbInQue
264 and not wait if that's nonzero. */
265
266 ClearCommError (h, &errors, &status);
267 if (status.cbInQue > 0)
268 {
269 SetEvent (state->ov.hEvent);
270 return;
271 }
272
273 state->in_progress = 1;
274 ResetEvent (state->ov.hEvent);
275 state->lastCommMask = -2;
276 if (WaitCommEvent (h, &state->lastCommMask, &state->ov))
277 {
278 gdb_assert (state->lastCommMask & EV_RXCHAR);
279 SetEvent (state->ov.hEvent);
280 }
281 else
282 gdb_assert (GetLastError () == ERROR_IO_PENDING);
283 }
284
285 static int
286 ser_windows_read_prim (struct serial *scb, size_t count)
287 {
288 struct ser_windows_state *state;
289 OVERLAPPED ov;
290 DWORD bytes_read, bytes_read_tmp;
291 HANDLE h;
292 gdb_byte *p;
293
294 state = scb->state;
295 if (state->in_progress)
296 {
297 WaitForSingleObject (state->ov.hEvent, INFINITE);
298 state->in_progress = 0;
299 ResetEvent (state->ov.hEvent);
300 }
301
302 memset (&ov, 0, sizeof (OVERLAPPED));
303 ov.hEvent = CreateEvent (0, FALSE, FALSE, 0);
304 h = (HANDLE) _get_osfhandle (scb->fd);
305
306 if (!ReadFile (h, scb->buf, /* count */ 1, &bytes_read, &ov))
307 {
308 if (GetLastError () != ERROR_IO_PENDING
309 || !GetOverlappedResult (h, &ov, &bytes_read, TRUE))
310 bytes_read = -1;
311 }
312
313 CloseHandle (ov.hEvent);
314 return bytes_read;
315 }
316
317 static int
318 ser_windows_write_prim (struct serial *scb, const void *buf, size_t len)
319 {
320 struct ser_windows_state *state;
321 OVERLAPPED ov;
322 DWORD bytes_written;
323 HANDLE h;
324
325 memset (&ov, 0, sizeof (OVERLAPPED));
326 ov.hEvent = CreateEvent (0, FALSE, FALSE, 0);
327 h = (HANDLE) _get_osfhandle (scb->fd);
328 if (!WriteFile (h, buf, len, &bytes_written, &ov))
329 {
330 if (GetLastError () != ERROR_IO_PENDING
331 || !GetOverlappedResult (h, &ov, &bytes_written, TRUE))
332 bytes_written = -1;
333 }
334
335 CloseHandle (ov.hEvent);
336 return bytes_written;
337 }
338
339 /* On Windows, gdb_select is implemented using WaitForMulpleObjects.
340 A "select thread" is created for each file descriptor. These
341 threads looks for activity on the corresponding descriptor, using
342 whatever techniques are appropriate for the descriptor type. When
343 that activity occurs, the thread signals an appropriate event,
344 which wakes up WaitForMultipleObjects.
345
346 Each select thread is in one of two states: stopped or started.
347 Select threads begin in the stopped state. When gdb_select is
348 called, threads corresponding to the descriptors of interest are
349 started by calling a wait_handle function. Each thread that
350 notices activity signals the appropriate event and then reenters
351 the stopped state. Before gdb_select returns it calls the
352 wait_handle_done functions, which return the threads to the stopped
353 state. */
354
355 enum select_thread_state {
356 STS_STARTED,
357 STS_STOPPED
358 };
359
360 struct ser_console_state
361 {
362 /* Signaled by the select thread to indicate that data is available
363 on the file descriptor. */
364 HANDLE read_event;
365 /* Signaled by the select thread to indicate that an exception has
366 occurred on the file descriptor. */
367 HANDLE except_event;
368 /* Signaled by the select thread to indicate that it has entered the
369 started state. HAVE_STARTED and HAVE_STOPPED are never signaled
370 simultaneously. */
371 HANDLE have_started;
372 /* Signaled by the select thread to indicate that it has stopped,
373 either because data is available (and READ_EVENT is signaled),
374 because an exception has occurred (and EXCEPT_EVENT is signaled),
375 or because STOP_SELECT was signaled. */
376 HANDLE have_stopped;
377
378 /* Signaled by the main program to tell the select thread to enter
379 the started state. */
380 HANDLE start_select;
381 /* Signaled by the main program to tell the select thread to enter
382 the stopped state. */
383 HANDLE stop_select;
384 /* Signaled by the main program to tell the select thread to
385 exit. */
386 HANDLE exit_select;
387
388 /* The handle for the select thread. */
389 HANDLE thread;
390 /* The state of the select thread. This field is only accessed in
391 the main program, never by the select thread itself. */
392 enum select_thread_state thread_state;
393 };
394
395 /* Called by a select thread to enter the stopped state. This
396 function does not return until the thread has re-entered the
397 started state. */
398 static void
399 select_thread_wait (struct ser_console_state *state)
400 {
401 HANDLE wait_events[2];
402
403 /* There are two things that can wake us up: a request that we enter
404 the started state, or that we exit this thread. */
405 wait_events[0] = state->start_select;
406 wait_events[1] = state->exit_select;
407 if (WaitForMultipleObjects (2, wait_events, FALSE, INFINITE)
408 != WAIT_OBJECT_0)
409 /* Either the EXIT_SELECT event was signaled (requesting that the
410 thread exit) or an error has occurred. In either case, we exit
411 the thread. */
412 ExitThread (0);
413
414 /* We are now in the started state. */
415 SetEvent (state->have_started);
416 }
417
418 typedef DWORD WINAPI (*thread_fn_type)(void *);
419
420 /* Create a new select thread for SCB executing THREAD_FN. The STATE
421 will be filled in by this function before return. */
422 void
423 create_select_thread (thread_fn_type thread_fn,
424 struct serial *scb,
425 struct ser_console_state *state)
426 {
427 DWORD threadId;
428
429 /* Create all of the events. These are all auto-reset events. */
430 state->read_event = CreateEvent (NULL, FALSE, FALSE, NULL);
431 state->except_event = CreateEvent (NULL, FALSE, FALSE, NULL);
432 state->have_started = CreateEvent (NULL, FALSE, FALSE, NULL);
433 state->have_stopped = CreateEvent (NULL, FALSE, FALSE, NULL);
434 state->start_select = CreateEvent (NULL, FALSE, FALSE, NULL);
435 state->stop_select = CreateEvent (NULL, FALSE, FALSE, NULL);
436 state->exit_select = CreateEvent (NULL, FALSE, FALSE, NULL);
437
438 state->thread = CreateThread (NULL, 0, thread_fn, scb, 0, &threadId);
439 /* The thread begins in the stopped state. */
440 state->thread_state = STS_STOPPED;
441 }
442
443 /* Destroy the select thread indicated by STATE. */
444 static void
445 destroy_select_thread (struct ser_console_state *state)
446 {
447 /* Ask the thread to exit. */
448 SetEvent (state->exit_select);
449 /* Wait until it does. */
450 WaitForSingleObject (state->thread, INFINITE);
451
452 /* Destroy the events. */
453 CloseHandle (state->read_event);
454 CloseHandle (state->except_event);
455 CloseHandle (state->have_started);
456 CloseHandle (state->have_stopped);
457 CloseHandle (state->start_select);
458 CloseHandle (state->stop_select);
459 CloseHandle (state->exit_select);
460 }
461
462 /* Called by gdb_select to start the select thread indicated by STATE.
463 This function does not return until the thread has started. */
464 static void
465 start_select_thread (struct ser_console_state *state)
466 {
467 /* Ask the thread to start. */
468 SetEvent (state->start_select);
469 /* Wait until it does. */
470 WaitForSingleObject (state->have_started, INFINITE);
471 /* The thread is now started. */
472 state->thread_state = STS_STARTED;
473 }
474
475 /* Called by gdb_select to stop the select thread indicated by STATE.
476 This function does not return until the thread has stopped. */
477 static void
478 stop_select_thread (struct ser_console_state *state)
479 {
480 /* If the thread is already in the stopped state, we have nothing to
481 do. Some of the wait_handle functions avoid calling
482 start_select_thread if they notice activity on the relevant file
483 descriptors. The wait_handle_done functions still call
484 stop_select_thread -- but it is already stopped. */
485 if (state->thread_state != STS_STARTED)
486 return;
487 /* Ask the thread to stop. */
488 SetEvent (state->stop_select);
489 /* Wait until it does. */
490 WaitForSingleObject (state->have_stopped, INFINITE);
491 /* The thread is now stopped. */
492 state->thread_state = STS_STOPPED;
493 }
494
495 static DWORD WINAPI
496 console_select_thread (void *arg)
497 {
498 struct serial *scb = arg;
499 struct ser_console_state *state;
500 int event_index;
501 HANDLE h;
502
503 state = scb->state;
504 h = (HANDLE) _get_osfhandle (scb->fd);
505
506 while (1)
507 {
508 HANDLE wait_events[2];
509 INPUT_RECORD record;
510 DWORD n_records;
511
512 select_thread_wait (state);
513
514 while (1)
515 {
516 wait_events[0] = state->stop_select;
517 wait_events[1] = h;
518
519 event_index = WaitForMultipleObjects (2, wait_events, FALSE, INFINITE);
520
521 if (event_index == WAIT_OBJECT_0
522 || WaitForSingleObject (state->stop_select, 0) == WAIT_OBJECT_0)
523 break;
524
525 if (event_index != WAIT_OBJECT_0 + 1)
526 {
527 /* Wait must have failed; assume an error has occured, e.g.
528 the handle has been closed. */
529 SetEvent (state->except_event);
530 break;
531 }
532
533 /* We've got a pending event on the console. See if it's
534 of interest. */
535 if (!PeekConsoleInput (h, &record, 1, &n_records) || n_records != 1)
536 {
537 /* Something went wrong. Maybe the console is gone. */
538 SetEvent (state->except_event);
539 break;
540 }
541
542 if (record.EventType == KEY_EVENT && record.Event.KeyEvent.bKeyDown)
543 {
544 WORD keycode = record.Event.KeyEvent.wVirtualKeyCode;
545
546 /* Ignore events containing only control keys. We must
547 recognize "enhanced" keys which we are interested in
548 reading via getch, if they do not map to ASCII. But we
549 do not want to report input available for e.g. the
550 control key alone. */
551
552 if (record.Event.KeyEvent.uChar.AsciiChar != 0
553 || keycode == VK_PRIOR
554 || keycode == VK_NEXT
555 || keycode == VK_END
556 || keycode == VK_HOME
557 || keycode == VK_LEFT
558 || keycode == VK_UP
559 || keycode == VK_RIGHT
560 || keycode == VK_DOWN
561 || keycode == VK_INSERT
562 || keycode == VK_DELETE)
563 {
564 /* This is really a keypress. */
565 SetEvent (state->read_event);
566 break;
567 }
568 }
569
570 /* Otherwise discard it and wait again. */
571 ReadConsoleInput (h, &record, 1, &n_records);
572 }
573
574 SetEvent(state->have_stopped);
575 }
576 }
577
578 static int
579 fd_is_pipe (int fd)
580 {
581 if (PeekNamedPipe ((HANDLE) _get_osfhandle (fd), NULL, 0, NULL, NULL, NULL))
582 return 1;
583 else
584 return 0;
585 }
586
587 static int
588 fd_is_file (int fd)
589 {
590 if (GetFileType ((HANDLE) _get_osfhandle (fd)) == FILE_TYPE_DISK)
591 return 1;
592 else
593 return 0;
594 }
595
596 static DWORD WINAPI
597 pipe_select_thread (void *arg)
598 {
599 struct serial *scb = arg;
600 struct ser_console_state *state;
601 int event_index;
602 HANDLE h;
603
604 state = scb->state;
605 h = (HANDLE) _get_osfhandle (scb->fd);
606
607 while (1)
608 {
609 DWORD n_avail;
610
611 select_thread_wait (state);
612
613 /* Wait for something to happen on the pipe. */
614 while (1)
615 {
616 if (!PeekNamedPipe (h, NULL, 0, NULL, &n_avail, NULL))
617 {
618 SetEvent (state->except_event);
619 break;
620 }
621
622 if (n_avail > 0)
623 {
624 SetEvent (state->read_event);
625 break;
626 }
627
628 /* Delay 10ms before checking again, but allow the stop
629 event to wake us. */
630 if (WaitForSingleObject (state->stop_select, 10) == WAIT_OBJECT_0)
631 break;
632 }
633
634 SetEvent (state->have_stopped);
635 }
636 }
637
638 static DWORD WINAPI
639 file_select_thread (void *arg)
640 {
641 struct serial *scb = arg;
642 struct ser_console_state *state;
643 int event_index;
644 HANDLE h;
645
646 state = scb->state;
647 h = (HANDLE) _get_osfhandle (scb->fd);
648
649 while (1)
650 {
651 select_thread_wait (state);
652
653 if (SetFilePointer (h, 0, NULL, FILE_CURRENT) == INVALID_SET_FILE_POINTER)
654 SetEvent (state->except_event);
655 else
656 SetEvent (state->read_event);
657
658 SetEvent (state->have_stopped);
659 }
660 }
661
662 static void
663 ser_console_wait_handle (struct serial *scb, HANDLE *read, HANDLE *except)
664 {
665 struct ser_console_state *state = scb->state;
666
667 if (state == NULL)
668 {
669 thread_fn_type thread_fn;
670 int is_tty;
671
672 is_tty = isatty (scb->fd);
673 if (!is_tty && !fd_is_file (scb->fd) && !fd_is_pipe (scb->fd))
674 {
675 *read = NULL;
676 *except = NULL;
677 return;
678 }
679
680 state = xmalloc (sizeof (struct ser_console_state));
681 memset (state, 0, sizeof (struct ser_console_state));
682 scb->state = state;
683
684 if (is_tty)
685 thread_fn = console_select_thread;
686 else if (fd_is_pipe (scb->fd))
687 thread_fn = pipe_select_thread;
688 else
689 thread_fn = file_select_thread;
690
691 create_select_thread (thread_fn, scb, state);
692 }
693
694 *read = state->read_event;
695 *except = state->except_event;
696
697 /* Start from a blank state. */
698 ResetEvent (state->read_event);
699 ResetEvent (state->except_event);
700 ResetEvent (state->stop_select);
701
702 /* First check for a key already in the buffer. If there is one,
703 we don't need a thread. This also catches the second key of
704 multi-character returns from getch, for instance for arrow
705 keys. The second half is in a C library internal buffer,
706 and PeekConsoleInput will not find it. */
707 if (_kbhit ())
708 {
709 SetEvent (state->read_event);
710 return;
711 }
712
713 /* Otherwise, start the select thread. */
714 start_select_thread (state);
715 }
716
717 static void
718 ser_console_done_wait_handle (struct serial *scb)
719 {
720 struct ser_console_state *state = scb->state;
721
722 if (state == NULL)
723 return;
724
725 stop_select_thread (state);
726 }
727
728 static void
729 ser_console_close (struct serial *scb)
730 {
731 struct ser_console_state *state = scb->state;
732
733 if (scb->state)
734 {
735 destroy_select_thread (state);
736 xfree (scb->state);
737 }
738 }
739
740 struct ser_console_ttystate
741 {
742 int is_a_tty;
743 };
744
745 static serial_ttystate
746 ser_console_get_tty_state (struct serial *scb)
747 {
748 if (isatty (scb->fd))
749 {
750 struct ser_console_ttystate *state;
751 state = (struct ser_console_ttystate *) xmalloc (sizeof *state);
752 state->is_a_tty = 1;
753 return state;
754 }
755 else
756 return NULL;
757 }
758
759 struct pipe_state
760 {
761 /* Since we use the pipe_select_thread for our select emulation,
762 we need to place the state structure it requires at the front
763 of our state. */
764 struct ser_console_state wait;
765
766 /* The pex obj for our (one-stage) pipeline. */
767 struct pex_obj *pex;
768
769 /* Streams for the pipeline's input and output. */
770 FILE *input, *output;
771 };
772
773 static struct pipe_state *
774 make_pipe_state (void)
775 {
776 struct pipe_state *ps = XMALLOC (struct pipe_state);
777
778 memset (ps, 0, sizeof (*ps));
779 ps->wait.read_event = INVALID_HANDLE_VALUE;
780 ps->wait.except_event = INVALID_HANDLE_VALUE;
781 ps->wait.start_select = INVALID_HANDLE_VALUE;
782 ps->wait.stop_select = INVALID_HANDLE_VALUE;
783
784 return ps;
785 }
786
787 static void
788 free_pipe_state (struct pipe_state *ps)
789 {
790 int saved_errno = errno;
791
792 if (ps->wait.read_event != INVALID_HANDLE_VALUE)
793 destroy_select_thread (&ps->wait);
794
795 /* Close the pipe to the child. We must close the pipe before
796 calling pex_free because pex_free will wait for the child to exit
797 and the child will not exit until the pipe is closed. */
798 if (ps->input)
799 fclose (ps->input);
800 if (ps->pex)
801 pex_free (ps->pex);
802 /* pex_free closes ps->output. */
803
804 xfree (ps);
805
806 errno = saved_errno;
807 }
808
809 static void
810 cleanup_pipe_state (void *untyped)
811 {
812 struct pipe_state *ps = untyped;
813
814 free_pipe_state (ps);
815 }
816
817 static int
818 pipe_windows_open (struct serial *scb, const char *name)
819 {
820 struct pipe_state *ps;
821 FILE *pex_stderr;
822 char **argv;
823 struct cleanup *back_to;
824
825 if (name == NULL)
826 error_no_arg (_("child command"));
827
828 argv = gdb_buildargv (name);
829 back_to = make_cleanup_freeargv (argv);
830
831 if (! argv[0] || argv[0][0] == '\0')
832 error ("missing child command");
833
834 ps = make_pipe_state ();
835 make_cleanup (cleanup_pipe_state, ps);
836
837 ps->pex = pex_init (PEX_USE_PIPES, "target remote pipe", NULL);
838 if (! ps->pex)
839 goto fail;
840 ps->input = pex_input_pipe (ps->pex, 1);
841 if (! ps->input)
842 goto fail;
843
844 {
845 int err;
846 const char *err_msg
847 = pex_run (ps->pex, PEX_SEARCH | PEX_BINARY_INPUT | PEX_BINARY_OUTPUT
848 | PEX_STDERR_TO_PIPE,
849 argv[0], argv, NULL, NULL,
850 &err);
851
852 if (err_msg)
853 {
854 /* Our caller expects us to return -1, but all they'll do with
855 it generally is print the message based on errno. We have
856 all the same information here, plus err_msg provided by
857 pex_run, so we just raise the error here. */
858 if (err)
859 error ("error starting child process '%s': %s: %s",
860 name, err_msg, safe_strerror (err));
861 else
862 error ("error starting child process '%s': %s",
863 name, err_msg);
864 }
865 }
866
867 ps->output = pex_read_output (ps->pex, 1);
868 if (! ps->output)
869 goto fail;
870 scb->fd = fileno (ps->output);
871
872 pex_stderr = pex_read_err (ps->pex, 1);
873 if (! pex_stderr)
874 goto fail;
875 scb->error_fd = fileno (pex_stderr);
876
877 scb->state = (void *) ps;
878
879 discard_cleanups (back_to);
880 return 0;
881
882 fail:
883 do_cleanups (back_to);
884 return -1;
885 }
886
887
888 static void
889 pipe_windows_close (struct serial *scb)
890 {
891 struct pipe_state *ps = scb->state;
892
893 /* In theory, we should try to kill the subprocess here, but the pex
894 interface doesn't give us enough information to do that. Usually
895 closing the input pipe will get the message across. */
896
897 free_pipe_state (ps);
898 }
899
900
901 static int
902 pipe_windows_read (struct serial *scb, size_t count)
903 {
904 HANDLE pipeline_out = (HANDLE) _get_osfhandle (scb->fd);
905 DWORD available;
906 DWORD bytes_read;
907
908 if (pipeline_out == INVALID_HANDLE_VALUE)
909 return -1;
910
911 if (! PeekNamedPipe (pipeline_out, NULL, 0, NULL, &available, NULL))
912 return -1;
913
914 if (count > available)
915 count = available;
916
917 if (! ReadFile (pipeline_out, scb->buf, count, &bytes_read, NULL))
918 return -1;
919
920 return bytes_read;
921 }
922
923
924 static int
925 pipe_windows_write (struct serial *scb, const void *buf, size_t count)
926 {
927 struct pipe_state *ps = scb->state;
928 HANDLE pipeline_in;
929 DWORD written;
930
931 int pipeline_in_fd = fileno (ps->input);
932 if (pipeline_in_fd < 0)
933 return -1;
934
935 pipeline_in = (HANDLE) _get_osfhandle (pipeline_in_fd);
936 if (pipeline_in == INVALID_HANDLE_VALUE)
937 return -1;
938
939 if (! WriteFile (pipeline_in, buf, count, &written, NULL))
940 return -1;
941
942 return written;
943 }
944
945
946 static void
947 pipe_wait_handle (struct serial *scb, HANDLE *read, HANDLE *except)
948 {
949 struct pipe_state *ps = scb->state;
950
951 /* Have we allocated our events yet? */
952 if (ps->wait.read_event == INVALID_HANDLE_VALUE)
953 /* Start the thread. */
954 create_select_thread (pipe_select_thread, scb, &ps->wait);
955
956 *read = ps->wait.read_event;
957 *except = ps->wait.except_event;
958
959 /* Start from a blank state. */
960 ResetEvent (ps->wait.read_event);
961 ResetEvent (ps->wait.except_event);
962 ResetEvent (ps->wait.stop_select);
963
964 start_select_thread (&ps->wait);
965 }
966
967 static void
968 pipe_done_wait_handle (struct serial *scb)
969 {
970 struct pipe_state *ps = scb->state;
971
972 /* Have we allocated our events yet? */
973 if (ps->wait.read_event == INVALID_HANDLE_VALUE)
974 return;
975
976 stop_select_thread (&ps->wait);
977 }
978
979 static int
980 pipe_avail (struct serial *scb, int fd)
981 {
982 HANDLE h = (HANDLE) _get_osfhandle (fd);
983 DWORD numBytes;
984 BOOL r = PeekNamedPipe (h, NULL, 0, NULL, &numBytes, NULL);
985 if (r == FALSE)
986 numBytes = 0;
987 return numBytes;
988 }
989
990 struct net_windows_state
991 {
992 struct ser_console_state base;
993
994 HANDLE sock_event;
995 };
996
997 static DWORD WINAPI
998 net_windows_select_thread (void *arg)
999 {
1000 struct serial *scb = arg;
1001 struct net_windows_state *state;
1002 int event_index;
1003
1004 state = scb->state;
1005
1006 while (1)
1007 {
1008 HANDLE wait_events[2];
1009 WSANETWORKEVENTS events;
1010
1011 select_thread_wait (&state->base);
1012
1013 wait_events[0] = state->base.stop_select;
1014 wait_events[1] = state->sock_event;
1015
1016 event_index = WaitForMultipleObjects (2, wait_events, FALSE, INFINITE);
1017
1018 if (event_index == WAIT_OBJECT_0
1019 || WaitForSingleObject (state->base.stop_select, 0) == WAIT_OBJECT_0)
1020 /* We have been requested to stop. */
1021 ;
1022 else if (event_index != WAIT_OBJECT_0 + 1)
1023 /* Some error has occured. Assume that this is an error
1024 condition. */
1025 SetEvent (state->base.except_event);
1026 else
1027 {
1028 /* Enumerate the internal network events, and reset the
1029 object that signalled us to catch the next event. */
1030 WSAEnumNetworkEvents (scb->fd, state->sock_event, &events);
1031
1032 gdb_assert (events.lNetworkEvents & (FD_READ | FD_CLOSE));
1033
1034 if (events.lNetworkEvents & FD_READ)
1035 SetEvent (state->base.read_event);
1036
1037 if (events.lNetworkEvents & FD_CLOSE)
1038 SetEvent (state->base.except_event);
1039 }
1040
1041 SetEvent (state->base.have_stopped);
1042 }
1043 }
1044
1045 static void
1046 net_windows_wait_handle (struct serial *scb, HANDLE *read, HANDLE *except)
1047 {
1048 struct net_windows_state *state = scb->state;
1049
1050 /* Start from a clean slate. */
1051 ResetEvent (state->base.read_event);
1052 ResetEvent (state->base.except_event);
1053 ResetEvent (state->base.stop_select);
1054
1055 *read = state->base.read_event;
1056 *except = state->base.except_event;
1057
1058 /* Check any pending events. This both avoids starting the thread
1059 unnecessarily, and handles stray FD_READ events (see below). */
1060 if (WaitForSingleObject (state->sock_event, 0) == WAIT_OBJECT_0)
1061 {
1062 WSANETWORKEVENTS events;
1063 int any = 0;
1064
1065 /* Enumerate the internal network events, and reset the object that
1066 signalled us to catch the next event. */
1067 WSAEnumNetworkEvents (scb->fd, state->sock_event, &events);
1068
1069 /* You'd think that FD_READ or FD_CLOSE would be set here. But,
1070 sometimes, neither is. I suspect that the FD_READ is set and
1071 the corresponding event signalled while recv is running, and
1072 the FD_READ is then lowered when recv consumes all the data,
1073 but there's no way to un-signal the event. This isn't a
1074 problem for the call in net_select_thread, since any new
1075 events after this point will not have been drained by recv.
1076 It just means that we can't have the obvious assert here. */
1077
1078 /* If there is a read event, it might be still valid, or it might
1079 not be - it may have been signalled before we last called
1080 recv. Double-check that there is data. */
1081 if (events.lNetworkEvents & FD_READ)
1082 {
1083 unsigned long available;
1084
1085 if (ioctlsocket (scb->fd, FIONREAD, &available) == 0
1086 && available > 0)
1087 {
1088 SetEvent (state->base.read_event);
1089 any = 1;
1090 }
1091 else
1092 /* Oops, no data. This call to recv will cause future
1093 data to retrigger the event, e.g. while we are
1094 in net_select_thread. */
1095 recv (scb->fd, NULL, 0, 0);
1096 }
1097
1098 /* If there's a close event, then record it - it is obviously
1099 still valid, and it will not be resignalled. */
1100 if (events.lNetworkEvents & FD_CLOSE)
1101 {
1102 SetEvent (state->base.except_event);
1103 any = 1;
1104 }
1105
1106 /* If we set either handle, there's no need to wake the thread. */
1107 if (any)
1108 return;
1109 }
1110
1111 start_select_thread (&state->base);
1112 }
1113
1114 static void
1115 net_windows_done_wait_handle (struct serial *scb)
1116 {
1117 struct net_windows_state *state = scb->state;
1118
1119 stop_select_thread (&state->base);
1120 }
1121
1122 static int
1123 net_windows_open (struct serial *scb, const char *name)
1124 {
1125 struct net_windows_state *state;
1126 int ret;
1127 DWORD threadId;
1128
1129 ret = net_open (scb, name);
1130 if (ret != 0)
1131 return ret;
1132
1133 state = xmalloc (sizeof (struct net_windows_state));
1134 memset (state, 0, sizeof (struct net_windows_state));
1135 scb->state = state;
1136
1137 /* Associate an event with the socket. */
1138 state->sock_event = CreateEvent (0, TRUE, FALSE, 0);
1139 WSAEventSelect (scb->fd, state->sock_event, FD_READ | FD_CLOSE);
1140
1141 /* Start the thread. */
1142 create_select_thread (net_windows_select_thread, scb, &state->base);
1143
1144 return 0;
1145 }
1146
1147
1148 static void
1149 net_windows_close (struct serial *scb)
1150 {
1151 struct net_windows_state *state = scb->state;
1152
1153 destroy_select_thread (&state->base);
1154 CloseHandle (state->sock_event);
1155
1156 xfree (scb->state);
1157
1158 net_close (scb);
1159 }
1160
1161 void
1162 _initialize_ser_windows (void)
1163 {
1164 WSADATA wsa_data;
1165 struct serial_ops *ops;
1166
1167 /* First register the serial port driver. */
1168
1169 ops = XMALLOC (struct serial_ops);
1170 memset (ops, 0, sizeof (struct serial_ops));
1171 ops->name = "hardwire";
1172 ops->next = 0;
1173 ops->open = ser_windows_open;
1174 ops->close = ser_windows_close;
1175
1176 ops->flush_output = ser_windows_flush_output;
1177 ops->flush_input = ser_windows_flush_input;
1178 ops->send_break = ser_windows_send_break;
1179
1180 /* These are only used for stdin; we do not need them for serial
1181 ports, so supply the standard dummies. */
1182 ops->get_tty_state = ser_base_get_tty_state;
1183 ops->set_tty_state = ser_base_set_tty_state;
1184 ops->print_tty_state = ser_base_print_tty_state;
1185 ops->noflush_set_tty_state = ser_base_noflush_set_tty_state;
1186
1187 ops->go_raw = ser_windows_raw;
1188 ops->setbaudrate = ser_windows_setbaudrate;
1189 ops->setstopbits = ser_windows_setstopbits;
1190 ops->drain_output = ser_windows_drain_output;
1191 ops->readchar = ser_base_readchar;
1192 ops->write = ser_base_write;
1193 ops->async = ser_base_async;
1194 ops->read_prim = ser_windows_read_prim;
1195 ops->write_prim = ser_windows_write_prim;
1196 ops->wait_handle = ser_windows_wait_handle;
1197
1198 serial_add_interface (ops);
1199
1200 /* Next create the dummy serial driver used for terminals. We only
1201 provide the TTY-related methods. */
1202
1203 ops = XMALLOC (struct serial_ops);
1204 memset (ops, 0, sizeof (struct serial_ops));
1205
1206 ops->name = "terminal";
1207 ops->next = 0;
1208
1209 ops->close = ser_console_close;
1210 ops->get_tty_state = ser_console_get_tty_state;
1211 ops->set_tty_state = ser_base_set_tty_state;
1212 ops->print_tty_state = ser_base_print_tty_state;
1213 ops->noflush_set_tty_state = ser_base_noflush_set_tty_state;
1214 ops->drain_output = ser_base_drain_output;
1215 ops->wait_handle = ser_console_wait_handle;
1216 ops->done_wait_handle = ser_console_done_wait_handle;
1217
1218 serial_add_interface (ops);
1219
1220 /* The pipe interface. */
1221
1222 ops = XMALLOC (struct serial_ops);
1223 memset (ops, 0, sizeof (struct serial_ops));
1224 ops->name = "pipe";
1225 ops->next = 0;
1226 ops->open = pipe_windows_open;
1227 ops->close = pipe_windows_close;
1228 ops->readchar = ser_base_readchar;
1229 ops->write = ser_base_write;
1230 ops->flush_output = ser_base_flush_output;
1231 ops->flush_input = ser_base_flush_input;
1232 ops->send_break = ser_base_send_break;
1233 ops->go_raw = ser_base_raw;
1234 ops->get_tty_state = ser_base_get_tty_state;
1235 ops->set_tty_state = ser_base_set_tty_state;
1236 ops->print_tty_state = ser_base_print_tty_state;
1237 ops->noflush_set_tty_state = ser_base_noflush_set_tty_state;
1238 ops->setbaudrate = ser_base_setbaudrate;
1239 ops->setstopbits = ser_base_setstopbits;
1240 ops->drain_output = ser_base_drain_output;
1241 ops->async = ser_base_async;
1242 ops->read_prim = pipe_windows_read;
1243 ops->write_prim = pipe_windows_write;
1244 ops->wait_handle = pipe_wait_handle;
1245 ops->done_wait_handle = pipe_done_wait_handle;
1246 ops->avail = pipe_avail;
1247
1248 serial_add_interface (ops);
1249
1250 /* If WinSock works, register the TCP/UDP socket driver. */
1251
1252 if (WSAStartup (MAKEWORD (1, 0), &wsa_data) != 0)
1253 /* WinSock is unavailable. */
1254 return;
1255
1256 ops = XMALLOC (struct serial_ops);
1257 memset (ops, 0, sizeof (struct serial_ops));
1258 ops->name = "tcp";
1259 ops->next = 0;
1260 ops->open = net_windows_open;
1261 ops->close = net_windows_close;
1262 ops->readchar = ser_base_readchar;
1263 ops->write = ser_base_write;
1264 ops->flush_output = ser_base_flush_output;
1265 ops->flush_input = ser_base_flush_input;
1266 ops->send_break = ser_tcp_send_break;
1267 ops->go_raw = ser_base_raw;
1268 ops->get_tty_state = ser_base_get_tty_state;
1269 ops->set_tty_state = ser_base_set_tty_state;
1270 ops->print_tty_state = ser_base_print_tty_state;
1271 ops->noflush_set_tty_state = ser_base_noflush_set_tty_state;
1272 ops->setbaudrate = ser_base_setbaudrate;
1273 ops->setstopbits = ser_base_setstopbits;
1274 ops->drain_output = ser_base_drain_output;
1275 ops->async = ser_base_async;
1276 ops->read_prim = net_read_prim;
1277 ops->write_prim = net_write_prim;
1278 ops->wait_handle = net_windows_wait_handle;
1279 ops->done_wait_handle = net_windows_done_wait_handle;
1280 serial_add_interface (ops);
1281 }