blob: 58e71ede133048cf3507b581f13114432b849ebb [file] [log] [blame]
sewardje663cb92002-04-12 10:26:32 +00001
2/*--------------------------------------------------------------------*/
3/*--- A user-space pthreads implementation. vg_scheduler.c ---*/
4/*--------------------------------------------------------------------*/
5
6/*
7 This file is part of Valgrind, an x86 protected-mode emulator
8 designed for debugging and profiling binaries on x86-Unixes.
9
10 Copyright (C) 2000-2002 Julian Seward
11 jseward@acm.org
sewardje663cb92002-04-12 10:26:32 +000012
13 This program is free software; you can redistribute it and/or
14 modify it under the terms of the GNU General Public License as
15 published by the Free Software Foundation; either version 2 of the
16 License, or (at your option) any later version.
17
18 This program is distributed in the hope that it will be useful, but
19 WITHOUT ANY WARRANTY; without even the implied warranty of
20 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
21 General Public License for more details.
22
23 You should have received a copy of the GNU General Public License
24 along with this program; if not, write to the Free Software
25 Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA
26 02111-1307, USA.
27
28 The GNU General Public License is contained in the file LICENSE.
29*/
30
31#include "vg_include.h"
32#include "vg_constants.h"
33
34#include "valgrind.h" /* for VG_USERREQ__MAKE_NOACCESS and
35 VG_USERREQ__DO_LEAK_CHECK */
36
sewardj77e466c2002-04-14 02:29:29 +000037/* BORKAGE/ISSUES as of 14 Apr 02
sewardje663cb92002-04-12 10:26:32 +000038
sewardj77e466c2002-04-14 02:29:29 +000039Note! This pthreads implementation is so poor as to not be
40suitable for use by anyone at all!
sewardje663cb92002-04-12 10:26:32 +000041
sewardj77e466c2002-04-14 02:29:29 +000042- Currently, when a signal is run, just the ThreadStatus.status fields
43 are saved in the signal frame, along with the CPU state. Question:
44 should I also save and restore:
45 ThreadStatus.joiner
46 ThreadStatus.waited_on_mid
47 ThreadStatus.awaken_at
48 ThreadStatus.retval
49 Currently unsure, and so am not doing so.
sewardje663cb92002-04-12 10:26:32 +000050
sewardj77e466c2002-04-14 02:29:29 +000051- Signals interrupting read/write and nanosleep: SA_RESTART settings.
52 Read/write correctly return with EINTR when SA_RESTART isn't
53 specified and they are interrupted by a signal. nanosleep just
54 pretends signals don't exist -- should be fixed.
sewardje663cb92002-04-12 10:26:32 +000055
sewardj75fe1892002-04-14 02:46:33 +000056- Read/write syscall starts: don't crap out when the initial
57 nonblocking read/write returns an error.
sewardj8937c812002-04-12 20:12:20 +000058
sewardj9a199dc2002-04-14 13:01:38 +000059- Get rid of restrictions re use of sigaltstack; they are no longer
60 needed.
61
sewardj6072c362002-04-19 14:40:57 +000062- Fix signals properly, so that each thread has its own blocking mask.
63 Currently this isn't done, and (worse?) signals are delivered to
64 Thread 1 (the root thread) regardless.
65
66 So, what's the deal with signals and mutexes? If a thread is
67 blocked on a mutex, or for a condition variable for that matter, can
68 signals still be delivered to it? This has serious consequences --
69 deadlocks, etc.
70
sewardje462e202002-04-13 04:09:07 +000071*/
sewardje663cb92002-04-12 10:26:32 +000072
73
74/* ---------------------------------------------------------------------
75 Types and globals for the scheduler.
76 ------------------------------------------------------------------ */
77
78/* type ThreadId is defined in vg_include.h. */
79
80/* struct ThreadState is defined in vg_include.h. */
81
sewardj6072c362002-04-19 14:40:57 +000082/* Private globals. A statically allocated array of threads. NOTE:
83 [0] is never used, to simplify the simulation of initialisers for
84 LinuxThreads. */
sewardje663cb92002-04-12 10:26:32 +000085static ThreadState vg_threads[VG_N_THREADS];
86
sewardj1e8cdc92002-04-18 11:37:52 +000087/* The tid of the thread currently in VG_(baseBlock). */
88static Int vg_tid_currently_in_baseBlock = VG_INVALID_THREADID;
89
sewardje663cb92002-04-12 10:26:32 +000090
91/* vg_oursignalhandler() might longjmp(). Here's the jmp_buf. */
92jmp_buf VG_(scheduler_jmpbuf);
93/* ... and if so, here's the signal which caused it to do so. */
94Int VG_(longjmpd_on_signal);
95
96
97/* Machinery to keep track of which threads are waiting on which
98 fds. */
99typedef
100 struct {
101 /* The thread which made the request. */
102 ThreadId tid;
103
104 /* The next two fields describe the request. */
105 /* File descriptor waited for. -1 means this slot is not in use */
106 Int fd;
107 /* The syscall number the fd is used in. */
108 Int syscall_no;
109
110 /* False => still waiting for select to tell us the fd is ready
111 to go. True => the fd is ready, but the results have not yet
112 been delivered back to the calling thread. Once the latter
113 happens, this entire record is marked as no longer in use, by
114 making the fd field be -1. */
115 Bool ready;
116 }
117 VgWaitedOnFd;
118
119static VgWaitedOnFd vg_waiting_fds[VG_N_WAITING_FDS];
120
121
sewardj5f07b662002-04-23 16:52:51 +0000122/* Keeping track of keys. */
123typedef
124 struct {
125 /* Has this key been allocated ? */
126 Bool inuse;
127 /* If .inuse==True, records the address of the associated
128 destructor, or NULL if none. */
129 void (*destructor)(void*);
130 }
131 ThreadKeyState;
132
133/* And our array of thread keys. */
134static ThreadKeyState vg_thread_keys[VG_N_THREAD_KEYS];
135
136typedef UInt ThreadKey;
137
138
sewardje663cb92002-04-12 10:26:32 +0000139/* Forwards */
sewardj5f07b662002-04-23 16:52:51 +0000140static void do_pthread_cond_timedwait_TIMEOUT ( ThreadId tid );
141
sewardje663cb92002-04-12 10:26:32 +0000142static void do_nontrivial_clientreq ( ThreadId tid );
143
sewardj6072c362002-04-19 14:40:57 +0000144static void scheduler_sanity ( void );
145
sewardjd7fd4d22002-04-24 01:57:27 +0000146static void do_pthread_mutex_unlock ( ThreadId,
147 void* /* pthread_cond_t* */ );
148static void do_pthread_mutex_lock ( ThreadId, Bool,
149 void* /* pthread_cond_t* */ );
150
sewardj51c0aaf2002-04-25 01:32:10 +0000151static void do_pthread_getspecific ( ThreadId,
152 UInt /* pthread_key_t */ );
153
sewardje663cb92002-04-12 10:26:32 +0000154
155/* ---------------------------------------------------------------------
156 Helper functions for the scheduler.
157 ------------------------------------------------------------------ */
158
sewardj604ec3c2002-04-18 22:38:41 +0000159static __inline__
160Bool is_valid_tid ( ThreadId tid )
161{
162 /* tid is unsigned, hence no < 0 test. */
sewardj6072c362002-04-19 14:40:57 +0000163 if (tid == 0) return False;
sewardj604ec3c2002-04-18 22:38:41 +0000164 if (tid >= VG_N_THREADS) return False;
sewardj604ec3c2002-04-18 22:38:41 +0000165 return True;
166}
167
168
sewardj1e8cdc92002-04-18 11:37:52 +0000169/* For constructing error messages only: try and identify a thread
170 whose stack this address currently falls within, or return
171 VG_INVALID_THREADID if it doesn't. A small complication is dealing
172 with any currently VG_(baseBlock)-resident thread.
173*/
174ThreadId VG_(identify_stack_addr)( Addr a )
175{
176 ThreadId tid, tid_to_skip;
177
178 tid_to_skip = VG_INVALID_THREADID;
179
180 /* First check to see if there's a currently-loaded thread in
181 VG_(baseBlock). */
182 if (vg_tid_currently_in_baseBlock != VG_INVALID_THREADID) {
183 tid = vg_tid_currently_in_baseBlock;
184 if (VG_(baseBlock)[VGOFF_(m_esp)] <= a
185 && a <= vg_threads[tid].stack_highest_word)
186 return tid;
187 else
188 tid_to_skip = tid;
189 }
190
sewardj6072c362002-04-19 14:40:57 +0000191 for (tid = 1; tid < VG_N_THREADS; tid++) {
sewardj1e8cdc92002-04-18 11:37:52 +0000192 if (vg_threads[tid].status == VgTs_Empty) continue;
193 if (tid == tid_to_skip) continue;
194 if (vg_threads[tid].m_esp <= a
195 && a <= vg_threads[tid].stack_highest_word)
196 return tid;
197 }
198 return VG_INVALID_THREADID;
199}
200
201
sewardj15a43e12002-04-17 19:35:12 +0000202/* Print the scheduler status. */
203void VG_(pp_sched_status) ( void )
sewardje663cb92002-04-12 10:26:32 +0000204{
205 Int i;
206 VG_(printf)("\nsched status:\n");
sewardj6072c362002-04-19 14:40:57 +0000207 for (i = 1; i < VG_N_THREADS; i++) {
sewardje663cb92002-04-12 10:26:32 +0000208 if (vg_threads[i].status == VgTs_Empty) continue;
sewardj15a43e12002-04-17 19:35:12 +0000209 VG_(printf)("\nThread %d: status = ", i);
sewardje663cb92002-04-12 10:26:32 +0000210 switch (vg_threads[i].status) {
sewardj6072c362002-04-19 14:40:57 +0000211 case VgTs_Runnable: VG_(printf)("Runnable"); break;
212 case VgTs_WaitFD: VG_(printf)("WaitFD"); break;
213 case VgTs_WaitJoiner: VG_(printf)("WaitJoiner(%d)",
sewardje663cb92002-04-12 10:26:32 +0000214 vg_threads[i].joiner); break;
sewardj6072c362002-04-19 14:40:57 +0000215 case VgTs_WaitJoinee: VG_(printf)("WaitJoinee"); break;
216 case VgTs_Sleeping: VG_(printf)("Sleeping"); break;
217 case VgTs_WaitMX: VG_(printf)("WaitMX"); break;
sewardj3b5d8862002-04-20 13:53:23 +0000218 case VgTs_WaitCV: VG_(printf)("WaitCV"); break;
sewardje663cb92002-04-12 10:26:32 +0000219 default: VG_(printf)("???"); break;
220 }
sewardj3b5d8862002-04-20 13:53:23 +0000221 VG_(printf)(", associated_mx = %p, associated_cv = %p\n",
222 vg_threads[i].associated_mx,
223 vg_threads[i].associated_cv );
sewardj15a43e12002-04-17 19:35:12 +0000224 VG_(pp_ExeContext)(
225 VG_(get_ExeContext)( False, vg_threads[i].m_eip,
226 vg_threads[i].m_ebp ));
sewardje663cb92002-04-12 10:26:32 +0000227 }
228 VG_(printf)("\n");
229}
230
231static
232void add_waiting_fd ( ThreadId tid, Int fd, Int syscall_no )
233{
234 Int i;
235
236 vg_assert(fd != -1); /* avoid total chaos */
237
238 for (i = 0; i < VG_N_WAITING_FDS; i++)
239 if (vg_waiting_fds[i].fd == -1)
240 break;
241
242 if (i == VG_N_WAITING_FDS)
243 VG_(panic)("add_waiting_fd: VG_N_WAITING_FDS is too low");
244 /*
245 VG_(printf)("add_waiting_fd: add (tid %d, fd %d) at slot %d\n",
246 tid, fd, i);
247 */
248 vg_waiting_fds[i].fd = fd;
249 vg_waiting_fds[i].tid = tid;
250 vg_waiting_fds[i].ready = False;
251 vg_waiting_fds[i].syscall_no = syscall_no;
252}
253
254
255
256static
257void print_sched_event ( ThreadId tid, Char* what )
258{
sewardj45b4b372002-04-16 22:50:32 +0000259 VG_(message)(Vg_DebugMsg, " SCHED[%d]: %s", tid, what );
sewardj8937c812002-04-12 20:12:20 +0000260}
261
262
263static
264void print_pthread_event ( ThreadId tid, Char* what )
265{
266 VG_(message)(Vg_DebugMsg, "PTHREAD[%d]: %s", tid, what );
sewardje663cb92002-04-12 10:26:32 +0000267}
268
269
270static
271Char* name_of_sched_event ( UInt event )
272{
273 switch (event) {
sewardje663cb92002-04-12 10:26:32 +0000274 case VG_TRC_EBP_JMP_SYSCALL: return "SYSCALL";
275 case VG_TRC_EBP_JMP_CLIENTREQ: return "CLIENTREQ";
276 case VG_TRC_INNER_COUNTERZERO: return "COUNTERZERO";
277 case VG_TRC_INNER_FASTMISS: return "FASTMISS";
278 case VG_TRC_UNRESUMABLE_SIGNAL: return "FATALSIGNAL";
279 default: return "??UNKNOWN??";
280 }
281}
282
283
284/* Create a translation of the client basic block beginning at
285 orig_addr, and add it to the translation cache & translation table.
286 This probably doesn't really belong here, but, hey ...
287*/
sewardj1e8cdc92002-04-18 11:37:52 +0000288static
289void create_translation_for ( ThreadId tid, Addr orig_addr )
sewardje663cb92002-04-12 10:26:32 +0000290{
291 Addr trans_addr;
292 TTEntry tte;
293 Int orig_size, trans_size;
294 /* Ensure there is space to hold a translation. */
295 VG_(maybe_do_lru_pass)();
sewardj1e8cdc92002-04-18 11:37:52 +0000296 VG_(translate)( &vg_threads[tid],
297 orig_addr, &orig_size, &trans_addr, &trans_size );
sewardje663cb92002-04-12 10:26:32 +0000298 /* Copy data at trans_addr into the translation cache.
299 Returned pointer is to the code, not to the 4-byte
300 header. */
301 /* Since the .orig_size and .trans_size fields are
302 UShort, be paranoid. */
303 vg_assert(orig_size > 0 && orig_size < 65536);
304 vg_assert(trans_size > 0 && trans_size < 65536);
305 tte.orig_size = orig_size;
306 tte.orig_addr = orig_addr;
307 tte.trans_size = trans_size;
308 tte.trans_addr = VG_(copy_to_transcache)
309 ( trans_addr, trans_size );
310 tte.mru_epoch = VG_(current_epoch);
311 /* Free the intermediary -- was allocated by VG_(emit_code). */
312 VG_(jitfree)( (void*)trans_addr );
313 /* Add to trans tab and set back pointer. */
314 VG_(add_to_trans_tab) ( &tte );
315 /* Update stats. */
316 VG_(this_epoch_in_count) ++;
317 VG_(this_epoch_in_osize) += orig_size;
318 VG_(this_epoch_in_tsize) += trans_size;
319 VG_(overall_in_count) ++;
320 VG_(overall_in_osize) += orig_size;
321 VG_(overall_in_tsize) += trans_size;
322 /* Record translated area for SMC detection. */
323 VG_(smc_mark_original) ( orig_addr, orig_size );
324}
325
326
327/* Allocate a completely empty ThreadState record. */
328static
329ThreadId vg_alloc_ThreadState ( void )
330{
331 Int i;
sewardj6072c362002-04-19 14:40:57 +0000332 for (i = 1; i < VG_N_THREADS; i++) {
sewardje663cb92002-04-12 10:26:32 +0000333 if (vg_threads[i].status == VgTs_Empty)
334 return i;
335 }
336 VG_(printf)("vg_alloc_ThreadState: no free slots available\n");
337 VG_(printf)("Increase VG_N_THREADS, rebuild and try again.\n");
338 VG_(panic)("VG_N_THREADS is too low");
339 /*NOTREACHED*/
340}
341
342
343ThreadState* VG_(get_thread_state) ( ThreadId tid )
344{
sewardj6072c362002-04-19 14:40:57 +0000345 vg_assert(is_valid_tid(tid));
sewardje663cb92002-04-12 10:26:32 +0000346 vg_assert(vg_threads[tid].status != VgTs_Empty);
347 return & vg_threads[tid];
348}
349
350
sewardj1e8cdc92002-04-18 11:37:52 +0000351ThreadState* VG_(get_current_thread_state) ( void )
352{
353 vg_assert(vg_tid_currently_in_baseBlock != VG_INVALID_THREADID);
sewardj6072c362002-04-19 14:40:57 +0000354 return VG_(get_thread_state) ( vg_tid_currently_in_baseBlock );
sewardj1e8cdc92002-04-18 11:37:52 +0000355}
356
357
358ThreadId VG_(get_current_tid) ( void )
359{
360 vg_assert(vg_tid_currently_in_baseBlock != VG_INVALID_THREADID);
361 return vg_tid_currently_in_baseBlock;
362}
363
364
sewardje663cb92002-04-12 10:26:32 +0000365/* Copy the saved state of a thread into VG_(baseBlock), ready for it
366 to be run. */
367__inline__
368void VG_(load_thread_state) ( ThreadId tid )
369{
370 Int i;
sewardj1e8cdc92002-04-18 11:37:52 +0000371 vg_assert(vg_tid_currently_in_baseBlock == VG_INVALID_THREADID);
372
sewardje663cb92002-04-12 10:26:32 +0000373 VG_(baseBlock)[VGOFF_(m_eax)] = vg_threads[tid].m_eax;
374 VG_(baseBlock)[VGOFF_(m_ebx)] = vg_threads[tid].m_ebx;
375 VG_(baseBlock)[VGOFF_(m_ecx)] = vg_threads[tid].m_ecx;
376 VG_(baseBlock)[VGOFF_(m_edx)] = vg_threads[tid].m_edx;
377 VG_(baseBlock)[VGOFF_(m_esi)] = vg_threads[tid].m_esi;
378 VG_(baseBlock)[VGOFF_(m_edi)] = vg_threads[tid].m_edi;
379 VG_(baseBlock)[VGOFF_(m_ebp)] = vg_threads[tid].m_ebp;
380 VG_(baseBlock)[VGOFF_(m_esp)] = vg_threads[tid].m_esp;
381 VG_(baseBlock)[VGOFF_(m_eflags)] = vg_threads[tid].m_eflags;
382 VG_(baseBlock)[VGOFF_(m_eip)] = vg_threads[tid].m_eip;
383
384 for (i = 0; i < VG_SIZE_OF_FPUSTATE_W; i++)
385 VG_(baseBlock)[VGOFF_(m_fpustate) + i] = vg_threads[tid].m_fpu[i];
386
387 VG_(baseBlock)[VGOFF_(sh_eax)] = vg_threads[tid].sh_eax;
388 VG_(baseBlock)[VGOFF_(sh_ebx)] = vg_threads[tid].sh_ebx;
389 VG_(baseBlock)[VGOFF_(sh_ecx)] = vg_threads[tid].sh_ecx;
390 VG_(baseBlock)[VGOFF_(sh_edx)] = vg_threads[tid].sh_edx;
391 VG_(baseBlock)[VGOFF_(sh_esi)] = vg_threads[tid].sh_esi;
392 VG_(baseBlock)[VGOFF_(sh_edi)] = vg_threads[tid].sh_edi;
393 VG_(baseBlock)[VGOFF_(sh_ebp)] = vg_threads[tid].sh_ebp;
394 VG_(baseBlock)[VGOFF_(sh_esp)] = vg_threads[tid].sh_esp;
395 VG_(baseBlock)[VGOFF_(sh_eflags)] = vg_threads[tid].sh_eflags;
sewardj1e8cdc92002-04-18 11:37:52 +0000396
397 vg_tid_currently_in_baseBlock = tid;
sewardje663cb92002-04-12 10:26:32 +0000398}
399
400
401/* Copy the state of a thread from VG_(baseBlock), presumably after it
402 has been descheduled. For sanity-check purposes, fill the vacated
403 VG_(baseBlock) with garbage so as to make the system more likely to
404 fail quickly if we erroneously continue to poke around inside
405 VG_(baseBlock) without first doing a load_thread_state().
406*/
407__inline__
408void VG_(save_thread_state) ( ThreadId tid )
409{
410 Int i;
411 const UInt junk = 0xDEADBEEF;
412
sewardj1e8cdc92002-04-18 11:37:52 +0000413 vg_assert(vg_tid_currently_in_baseBlock != VG_INVALID_THREADID);
414
sewardje663cb92002-04-12 10:26:32 +0000415 vg_threads[tid].m_eax = VG_(baseBlock)[VGOFF_(m_eax)];
416 vg_threads[tid].m_ebx = VG_(baseBlock)[VGOFF_(m_ebx)];
417 vg_threads[tid].m_ecx = VG_(baseBlock)[VGOFF_(m_ecx)];
418 vg_threads[tid].m_edx = VG_(baseBlock)[VGOFF_(m_edx)];
419 vg_threads[tid].m_esi = VG_(baseBlock)[VGOFF_(m_esi)];
420 vg_threads[tid].m_edi = VG_(baseBlock)[VGOFF_(m_edi)];
421 vg_threads[tid].m_ebp = VG_(baseBlock)[VGOFF_(m_ebp)];
422 vg_threads[tid].m_esp = VG_(baseBlock)[VGOFF_(m_esp)];
423 vg_threads[tid].m_eflags = VG_(baseBlock)[VGOFF_(m_eflags)];
424 vg_threads[tid].m_eip = VG_(baseBlock)[VGOFF_(m_eip)];
425
426 for (i = 0; i < VG_SIZE_OF_FPUSTATE_W; i++)
427 vg_threads[tid].m_fpu[i] = VG_(baseBlock)[VGOFF_(m_fpustate) + i];
428
429 vg_threads[tid].sh_eax = VG_(baseBlock)[VGOFF_(sh_eax)];
430 vg_threads[tid].sh_ebx = VG_(baseBlock)[VGOFF_(sh_ebx)];
431 vg_threads[tid].sh_ecx = VG_(baseBlock)[VGOFF_(sh_ecx)];
432 vg_threads[tid].sh_edx = VG_(baseBlock)[VGOFF_(sh_edx)];
433 vg_threads[tid].sh_esi = VG_(baseBlock)[VGOFF_(sh_esi)];
434 vg_threads[tid].sh_edi = VG_(baseBlock)[VGOFF_(sh_edi)];
435 vg_threads[tid].sh_ebp = VG_(baseBlock)[VGOFF_(sh_ebp)];
436 vg_threads[tid].sh_esp = VG_(baseBlock)[VGOFF_(sh_esp)];
437 vg_threads[tid].sh_eflags = VG_(baseBlock)[VGOFF_(sh_eflags)];
438
439 /* Fill it up with junk. */
440 VG_(baseBlock)[VGOFF_(m_eax)] = junk;
441 VG_(baseBlock)[VGOFF_(m_ebx)] = junk;
442 VG_(baseBlock)[VGOFF_(m_ecx)] = junk;
443 VG_(baseBlock)[VGOFF_(m_edx)] = junk;
444 VG_(baseBlock)[VGOFF_(m_esi)] = junk;
445 VG_(baseBlock)[VGOFF_(m_edi)] = junk;
446 VG_(baseBlock)[VGOFF_(m_ebp)] = junk;
447 VG_(baseBlock)[VGOFF_(m_esp)] = junk;
448 VG_(baseBlock)[VGOFF_(m_eflags)] = junk;
449 VG_(baseBlock)[VGOFF_(m_eip)] = junk;
450
451 for (i = 0; i < VG_SIZE_OF_FPUSTATE_W; i++)
452 VG_(baseBlock)[VGOFF_(m_fpustate) + i] = junk;
sewardj1e8cdc92002-04-18 11:37:52 +0000453
454 vg_tid_currently_in_baseBlock = VG_INVALID_THREADID;
sewardje663cb92002-04-12 10:26:32 +0000455}
456
457
458/* Run the thread tid for a while, and return a VG_TRC_* value to the
459 scheduler indicating what happened. */
sewardj6072c362002-04-19 14:40:57 +0000460static
sewardje663cb92002-04-12 10:26:32 +0000461UInt run_thread_for_a_while ( ThreadId tid )
462{
sewardj7ccc5c22002-04-24 21:39:11 +0000463 volatile UInt trc = 0;
sewardj6072c362002-04-19 14:40:57 +0000464 vg_assert(is_valid_tid(tid));
465 vg_assert(vg_threads[tid].status == VgTs_Runnable);
sewardje663cb92002-04-12 10:26:32 +0000466 vg_assert(VG_(bbs_to_go) > 0);
467
468 VG_(load_thread_state) ( tid );
469 if (__builtin_setjmp(VG_(scheduler_jmpbuf)) == 0) {
470 /* try this ... */
471 trc = VG_(run_innerloop)();
472 /* We get here if the client didn't take a fault. */
473 } else {
474 /* We get here if the client took a fault, which caused our
475 signal handler to longjmp. */
476 vg_assert(trc == 0);
477 trc = VG_TRC_UNRESUMABLE_SIGNAL;
478 }
479 VG_(save_thread_state) ( tid );
480 return trc;
481}
482
483
484/* Increment the LRU epoch counter. */
485static
486void increment_epoch ( void )
487{
488 VG_(current_epoch)++;
489 if (VG_(clo_verbosity) > 2) {
490 UInt tt_used, tc_used;
491 VG_(get_tt_tc_used) ( &tt_used, &tc_used );
492 VG_(message)(Vg_UserMsg,
493 "%lu bbs, in: %d (%d -> %d), out %d (%d -> %d), TT %d, TC %d",
494 VG_(bbs_done),
495 VG_(this_epoch_in_count),
496 VG_(this_epoch_in_osize),
497 VG_(this_epoch_in_tsize),
498 VG_(this_epoch_out_count),
499 VG_(this_epoch_out_osize),
500 VG_(this_epoch_out_tsize),
501 tt_used, tc_used
502 );
503 }
504 VG_(this_epoch_in_count) = 0;
505 VG_(this_epoch_in_osize) = 0;
506 VG_(this_epoch_in_tsize) = 0;
507 VG_(this_epoch_out_count) = 0;
508 VG_(this_epoch_out_osize) = 0;
509 VG_(this_epoch_out_tsize) = 0;
510}
511
512
513/* Initialise the scheduler. Create a single "main" thread ready to
sewardj6072c362002-04-19 14:40:57 +0000514 run, with special ThreadId of one. This is called at startup; the
sewardje663cb92002-04-12 10:26:32 +0000515 caller takes care to park the client's state is parked in
516 VG_(baseBlock).
517*/
518void VG_(scheduler_init) ( void )
519{
520 Int i;
521 Addr startup_esp;
522 ThreadId tid_main;
523
524 startup_esp = VG_(baseBlock)[VGOFF_(m_esp)];
525 if ((startup_esp & VG_STARTUP_STACK_MASK) != VG_STARTUP_STACK_MASK) {
sewardj9a199dc2002-04-14 13:01:38 +0000526 VG_(printf)("%%esp at startup = %p is not near %p; aborting\n",
527 (void*)startup_esp, (void*)VG_STARTUP_STACK_MASK);
sewardje663cb92002-04-12 10:26:32 +0000528 VG_(panic)("unexpected %esp at startup");
529 }
530
sewardj6072c362002-04-19 14:40:57 +0000531 for (i = 0 /* NB; not 1 */; i < VG_N_THREADS; i++) {
532 vg_threads[i].status = VgTs_Empty;
sewardje663cb92002-04-12 10:26:32 +0000533 vg_threads[i].stack_size = 0;
534 vg_threads[i].stack_base = (Addr)NULL;
sewardj1e8cdc92002-04-18 11:37:52 +0000535 vg_threads[i].tid = i;
sewardje663cb92002-04-12 10:26:32 +0000536 }
537
538 for (i = 0; i < VG_N_WAITING_FDS; i++)
539 vg_waiting_fds[i].fd = -1; /* not in use */
540
sewardj5f07b662002-04-23 16:52:51 +0000541 for (i = 0; i < VG_N_THREAD_KEYS; i++) {
542 vg_thread_keys[i].inuse = False;
543 vg_thread_keys[i].destructor = NULL;
544 }
545
sewardje663cb92002-04-12 10:26:32 +0000546 /* Assert this is thread zero, which has certain magic
547 properties. */
548 tid_main = vg_alloc_ThreadState();
sewardj6072c362002-04-19 14:40:57 +0000549 vg_assert(tid_main == 1);
sewardje663cb92002-04-12 10:26:32 +0000550
sewardj3b5d8862002-04-20 13:53:23 +0000551 vg_threads[tid_main].status = VgTs_Runnable;
552 vg_threads[tid_main].joiner = VG_INVALID_THREADID;
553 vg_threads[tid_main].associated_mx = NULL;
554 vg_threads[tid_main].associated_cv = NULL;
555 vg_threads[tid_main].retval = NULL; /* not important */
sewardj1e8cdc92002-04-18 11:37:52 +0000556 vg_threads[tid_main].stack_highest_word
557 = vg_threads[tid_main].m_esp /* -4 ??? */;
sewardj5f07b662002-04-23 16:52:51 +0000558 for (i = 0; i < VG_N_THREAD_KEYS; i++)
559 vg_threads[tid_main].specifics[i] = NULL;
sewardje663cb92002-04-12 10:26:32 +0000560
561 /* Copy VG_(baseBlock) state to tid_main's slot. */
sewardj1e8cdc92002-04-18 11:37:52 +0000562 vg_tid_currently_in_baseBlock = tid_main;
sewardje663cb92002-04-12 10:26:32 +0000563 VG_(save_thread_state) ( tid_main );
sewardj1e8cdc92002-04-18 11:37:52 +0000564
565 /* So now ... */
566 vg_assert(vg_tid_currently_in_baseBlock == VG_INVALID_THREADID);
sewardje663cb92002-04-12 10:26:32 +0000567}
568
569
570/* What if fd isn't a valid fd? */
571static
572void set_fd_nonblocking ( Int fd )
573{
574 Int res = VG_(fcntl)( fd, VKI_F_GETFL, 0 );
575 vg_assert(!VG_(is_kerror)(res));
576 res |= VKI_O_NONBLOCK;
577 res = VG_(fcntl)( fd, VKI_F_SETFL, res );
578 vg_assert(!VG_(is_kerror)(res));
579}
580
581static
582void set_fd_blocking ( Int fd )
583{
584 Int res = VG_(fcntl)( fd, VKI_F_GETFL, 0 );
585 vg_assert(!VG_(is_kerror)(res));
586 res &= ~VKI_O_NONBLOCK;
587 res = VG_(fcntl)( fd, VKI_F_SETFL, res );
588 vg_assert(!VG_(is_kerror)(res));
589}
590
591static
592Bool fd_is_blockful ( Int fd )
593{
594 Int res = VG_(fcntl)( fd, VKI_F_GETFL, 0 );
595 vg_assert(!VG_(is_kerror)(res));
596 return (res & VKI_O_NONBLOCK) ? False : True;
597}
598
599
600
sewardjd7fd4d22002-04-24 01:57:27 +0000601/* Possibly do a for tid. Return values are:
sewardje663cb92002-04-12 10:26:32 +0000602
sewardjd7fd4d22002-04-24 01:57:27 +0000603 True = request done. Thread may or may not be still runnable;
604 caller must check. If it is still runnable, the result will be in
605 the thread's %EDX as expected.
606
607 False = request not done. A more capable but slower mechanism will
608 deal with it.
sewardje663cb92002-04-12 10:26:32 +0000609*/
sewardjd7fd4d22002-04-24 01:57:27 +0000610static
sewardje663cb92002-04-12 10:26:32 +0000611Bool maybe_do_trivial_clientreq ( ThreadId tid )
612{
613# define SIMPLE_RETURN(vvv) \
sewardj8c824512002-04-14 04:16:48 +0000614 { tst->m_edx = (vvv); \
sewardje663cb92002-04-12 10:26:32 +0000615 return True; \
616 }
617
sewardj8c824512002-04-14 04:16:48 +0000618 ThreadState* tst = &vg_threads[tid];
619 UInt* arg = (UInt*)(tst->m_eax);
620 UInt req_no = arg[0];
621
sewardje663cb92002-04-12 10:26:32 +0000622 switch (req_no) {
623 case VG_USERREQ__MALLOC:
624 SIMPLE_RETURN(
sewardj8c824512002-04-14 04:16:48 +0000625 (UInt)VG_(client_malloc) ( tst, arg[1], Vg_AllocMalloc )
sewardje663cb92002-04-12 10:26:32 +0000626 );
627 case VG_USERREQ__BUILTIN_NEW:
628 SIMPLE_RETURN(
sewardj8c824512002-04-14 04:16:48 +0000629 (UInt)VG_(client_malloc) ( tst, arg[1], Vg_AllocNew )
sewardje663cb92002-04-12 10:26:32 +0000630 );
631 case VG_USERREQ__BUILTIN_VEC_NEW:
632 SIMPLE_RETURN(
sewardj8c824512002-04-14 04:16:48 +0000633 (UInt)VG_(client_malloc) ( tst, arg[1], Vg_AllocNewVec )
sewardje663cb92002-04-12 10:26:32 +0000634 );
635 case VG_USERREQ__FREE:
sewardj8c824512002-04-14 04:16:48 +0000636 VG_(client_free) ( tst, (void*)arg[1], Vg_AllocMalloc );
sewardje663cb92002-04-12 10:26:32 +0000637 SIMPLE_RETURN(0); /* irrelevant */
638 case VG_USERREQ__BUILTIN_DELETE:
sewardj8c824512002-04-14 04:16:48 +0000639 VG_(client_free) ( tst, (void*)arg[1], Vg_AllocNew );
sewardje663cb92002-04-12 10:26:32 +0000640 SIMPLE_RETURN(0); /* irrelevant */
641 case VG_USERREQ__BUILTIN_VEC_DELETE:
sewardj8c824512002-04-14 04:16:48 +0000642 VG_(client_free) ( tst, (void*)arg[1], Vg_AllocNewVec );
sewardje663cb92002-04-12 10:26:32 +0000643 SIMPLE_RETURN(0); /* irrelevant */
644 case VG_USERREQ__CALLOC:
645 SIMPLE_RETURN(
sewardj8c824512002-04-14 04:16:48 +0000646 (UInt)VG_(client_calloc) ( tst, arg[1], arg[2] )
sewardje663cb92002-04-12 10:26:32 +0000647 );
648 case VG_USERREQ__REALLOC:
649 SIMPLE_RETURN(
sewardj8c824512002-04-14 04:16:48 +0000650 (UInt)VG_(client_realloc) ( tst, (void*)arg[1], arg[2] )
sewardje663cb92002-04-12 10:26:32 +0000651 );
652 case VG_USERREQ__MEMALIGN:
653 SIMPLE_RETURN(
sewardj8c824512002-04-14 04:16:48 +0000654 (UInt)VG_(client_memalign) ( tst, arg[1], arg[2] )
sewardje663cb92002-04-12 10:26:32 +0000655 );
sewardj9650c992002-04-16 03:44:31 +0000656
sewardj5f07b662002-04-23 16:52:51 +0000657 /* These are heavily used -- or at least we want them to be
658 cheap. */
sewardj9650c992002-04-16 03:44:31 +0000659 case VG_USERREQ__PTHREAD_GET_THREADID:
660 SIMPLE_RETURN(tid);
661 case VG_USERREQ__RUNNING_ON_VALGRIND:
662 SIMPLE_RETURN(1);
sewardj45b4b372002-04-16 22:50:32 +0000663 case VG_USERREQ__GET_PTHREAD_TRACE_LEVEL:
664 SIMPLE_RETURN(VG_(clo_trace_pthread_level));
sewardj5f07b662002-04-23 16:52:51 +0000665 case VG_USERREQ__READ_MILLISECOND_TIMER:
666 SIMPLE_RETURN(VG_(read_millisecond_timer)());
sewardj9650c992002-04-16 03:44:31 +0000667
sewardjd7fd4d22002-04-24 01:57:27 +0000668 case VG_USERREQ__PTHREAD_MUTEX_UNLOCK:
669 do_pthread_mutex_unlock( tid, (void *)(arg[1]) );
670 return True;
671
672 /* This may make thread tid non-runnable, but the scheduler
673 checks for that on return from this function. */
674 case VG_USERREQ__PTHREAD_MUTEX_LOCK:
675 do_pthread_mutex_lock( tid, False, (void *)(arg[1]) );
676 return True;
677
sewardj14e03422002-04-24 19:51:31 +0000678 case VG_USERREQ__PTHREAD_MUTEX_TRYLOCK:
679 do_pthread_mutex_lock( tid, True, (void *)(arg[1]) );
680 return True;
681
sewardj51c0aaf2002-04-25 01:32:10 +0000682 case VG_USERREQ__PTHREAD_GETSPECIFIC:
683 do_pthread_getspecific ( tid, (UInt)(arg[1]) );
684 return True;
685
sewardje663cb92002-04-12 10:26:32 +0000686 default:
687 /* Too hard; wimp out. */
688 return False;
689 }
690# undef SIMPLE_RETURN
691}
692
693
sewardj6072c362002-04-19 14:40:57 +0000694/* vthread tid is returning from a signal handler; modify its
695 stack/regs accordingly. */
sewardj1ffa8da2002-04-26 22:47:57 +0000696
697/* [Helper fn for handle_signal_return] tid, assumed to be in WaitFD
698 for read or write, has been interrupted by a signal. Find and
699 clear the relevant vg_waiting_fd[] entry. Most of the code in this
700 procedure is total paranoia, if you look closely. */
701static
702void cleanup_waiting_fd_table ( ThreadId tid )
703{
704 Int i, waiters;
705
706 vg_assert(is_valid_tid(tid));
707 vg_assert(vg_threads[tid].status == VgTs_WaitFD);
708 vg_assert(vg_threads[tid].m_eax == __NR_read
709 || vg_threads[tid].m_eax == __NR_write);
710
711 /* Excessively paranoidly ... find the fd this op was waiting
712 for, and mark it as not being waited on. */
713 waiters = 0;
714 for (i = 0; i < VG_N_WAITING_FDS; i++) {
715 if (vg_waiting_fds[i].tid == tid) {
716 waiters++;
717 vg_assert(vg_waiting_fds[i].syscall_no == vg_threads[tid].m_eax);
718 }
719 }
720 vg_assert(waiters == 1);
721 for (i = 0; i < VG_N_WAITING_FDS; i++)
722 if (vg_waiting_fds[i].tid == tid)
723 break;
724 vg_assert(i < VG_N_WAITING_FDS);
725 vg_assert(vg_waiting_fds[i].fd != -1);
726 vg_waiting_fds[i].fd = -1; /* not in use */
727}
728
729
sewardj6072c362002-04-19 14:40:57 +0000730static
731void handle_signal_return ( ThreadId tid )
732{
733 Char msg_buf[100];
734 Bool restart_blocked_syscalls;
735
736 vg_assert(is_valid_tid(tid));
737
738 restart_blocked_syscalls = VG_(signal_returns)(tid);
739
740 if (restart_blocked_syscalls)
741 /* Easy; we don't have to do anything. */
742 return;
743
sewardj1ffa8da2002-04-26 22:47:57 +0000744 if (vg_threads[tid].status == VgTs_WaitFD
745 && (vg_threads[tid].m_eax == __NR_read
746 || vg_threads[tid].m_eax == __NR_write)) {
sewardj6072c362002-04-19 14:40:57 +0000747 /* read() or write() interrupted. Force a return with EINTR. */
sewardj1ffa8da2002-04-26 22:47:57 +0000748 cleanup_waiting_fd_table(tid);
sewardj6072c362002-04-19 14:40:57 +0000749 vg_threads[tid].m_eax = -VKI_EINTR;
750 vg_threads[tid].status = VgTs_Runnable;
sewardj1ffa8da2002-04-26 22:47:57 +0000751
sewardj6072c362002-04-19 14:40:57 +0000752 if (VG_(clo_trace_sched)) {
753 VG_(sprintf)(msg_buf,
754 "read() / write() interrupted by signal; return EINTR" );
755 print_sched_event(tid, msg_buf);
756 }
757 return;
758 }
759
sewardj1ffa8da2002-04-26 22:47:57 +0000760 if (vg_threads[tid].status == VgTs_WaitFD
761 && vg_threads[tid].m_eax == __NR_nanosleep) {
sewardj6072c362002-04-19 14:40:57 +0000762 /* We interrupted a nanosleep(). The right thing to do is to
763 write the unused time to nanosleep's second param and return
764 EINTR, but I'm too lazy for that. */
765 return;
766 }
767
sewardj1ffa8da2002-04-26 22:47:57 +0000768 if (vg_threads[tid].status == VgTs_WaitFD) {
769 VG_(panic)("handle_signal_return: unknown interrupted syscall");
770 }
771
sewardj6072c362002-04-19 14:40:57 +0000772 /* All other cases? Just return. */
773}
774
775
sewardje663cb92002-04-12 10:26:32 +0000776static
777void sched_do_syscall ( ThreadId tid )
778{
779 UInt saved_eax;
780 UInt res, syscall_no;
781 UInt fd;
sewardje663cb92002-04-12 10:26:32 +0000782 Bool orig_fd_blockness;
783 Char msg_buf[100];
784
sewardj6072c362002-04-19 14:40:57 +0000785 vg_assert(is_valid_tid(tid));
sewardje663cb92002-04-12 10:26:32 +0000786 vg_assert(vg_threads[tid].status == VgTs_Runnable);
787
788 syscall_no = vg_threads[tid].m_eax; /* syscall number */
789
790 if (syscall_no == __NR_nanosleep) {
sewardj5f07b662002-04-23 16:52:51 +0000791 UInt t_now, t_awaken;
sewardje663cb92002-04-12 10:26:32 +0000792 struct vki_timespec* req;
793 req = (struct vki_timespec*)vg_threads[tid].m_ebx; /* arg1 */
sewardj5f07b662002-04-23 16:52:51 +0000794 t_now = VG_(read_millisecond_timer)();
sewardje663cb92002-04-12 10:26:32 +0000795 t_awaken
796 = t_now
sewardj5f07b662002-04-23 16:52:51 +0000797 + (UInt)1000ULL * (UInt)(req->tv_sec)
798 + (UInt)(req->tv_nsec) / 1000000;
sewardje663cb92002-04-12 10:26:32 +0000799 vg_threads[tid].status = VgTs_Sleeping;
800 vg_threads[tid].awaken_at = t_awaken;
sewardj8937c812002-04-12 20:12:20 +0000801 if (VG_(clo_trace_sched)) {
sewardj5f07b662002-04-23 16:52:51 +0000802 VG_(sprintf)(msg_buf, "at %d: nanosleep for %d",
sewardje663cb92002-04-12 10:26:32 +0000803 t_now, t_awaken-t_now);
804 print_sched_event(tid, msg_buf);
805 }
806 /* Force the scheduler to run something else for a while. */
807 return;
808 }
809
sewardjaec22c02002-04-29 01:58:08 +0000810 if (syscall_no != __NR_read && syscall_no != __NR_write) {
sewardje663cb92002-04-12 10:26:32 +0000811 /* We think it's non-blocking. Just do it in the normal way. */
812 VG_(perform_assumed_nonblocking_syscall)(tid);
813 /* The thread is still runnable. */
814 return;
815 }
816
sewardje663cb92002-04-12 10:26:32 +0000817 /* Set the fd to nonblocking, and do the syscall, which will return
818 immediately, in order to lodge a request with the Linux kernel.
819 We later poll for I/O completion using select(). */
820
sewardjaec22c02002-04-29 01:58:08 +0000821 fd = vg_threads[tid].m_ebx /* arg1 */;
sewardje663cb92002-04-12 10:26:32 +0000822 orig_fd_blockness = fd_is_blockful(fd);
823 set_fd_nonblocking(fd);
824 vg_assert(!fd_is_blockful(fd));
825 VG_(check_known_blocking_syscall)(tid, syscall_no, NULL /* PRE */);
826
827 /* This trashes the thread's %eax; we have to preserve it. */
828 saved_eax = vg_threads[tid].m_eax;
829 KERNEL_DO_SYSCALL(tid,res);
830
831 /* Restore original blockfulness of the fd. */
832 if (orig_fd_blockness)
833 set_fd_blocking(fd);
834 else
835 set_fd_nonblocking(fd);
836
sewardjaec22c02002-04-29 01:58:08 +0000837 if (res != -VKI_EWOULDBLOCK || !orig_fd_blockness) {
838 /* Finish off in the normal way. Don't restore %EAX, since that
839 now (correctly) holds the result of the call. We get here if either:
840 1. The call didn't block, or
841 2. The fd was already in nonblocking mode before we started to
842 mess with it. In this case, we're not expecting to handle
843 the I/O completion -- the client is. So don't file a
844 completion-wait entry.
845 */
sewardje663cb92002-04-12 10:26:32 +0000846 VG_(check_known_blocking_syscall)(tid, syscall_no, &res /* POST */);
847 /* We're still runnable. */
848 vg_assert(vg_threads[tid].status == VgTs_Runnable);
849
850 } else {
851
sewardjaec22c02002-04-29 01:58:08 +0000852 vg_assert(res == -VKI_EWOULDBLOCK && orig_fd_blockness);
853
sewardje663cb92002-04-12 10:26:32 +0000854 /* It would have blocked. First, restore %EAX to what it was
855 before our speculative call. */
856 vg_threads[tid].m_eax = saved_eax;
857 /* Put this fd in a table of fds on which we are waiting for
858 completion. The arguments for select() later are constructed
859 from this table. */
860 add_waiting_fd(tid, fd, saved_eax /* which holds the syscall # */);
861 /* Deschedule thread until an I/O completion happens. */
862 vg_threads[tid].status = VgTs_WaitFD;
sewardj8937c812002-04-12 20:12:20 +0000863 if (VG_(clo_trace_sched)) {
sewardje663cb92002-04-12 10:26:32 +0000864 VG_(sprintf)(msg_buf,"block until I/O ready on fd %d", fd);
865 print_sched_event(tid, msg_buf);
866 }
867
868 }
869}
870
871
872/* Find out which of the fds in vg_waiting_fds are now ready to go, by
873 making enquiries with select(), and mark them as ready. We have to
874 wait for the requesting threads to fall into the the WaitFD state
875 before we can actually finally deliver the results, so this
876 procedure doesn't do that; complete_blocked_syscalls() does it.
877
878 It might seem odd that a thread which has done a blocking syscall
879 is not in WaitFD state; the way this can happen is if it initially
880 becomes WaitFD, but then a signal is delivered to it, so it becomes
881 Runnable for a while. In this case we have to wait for the
882 sighandler to return, whereupon the WaitFD state is resumed, and
883 only at that point can the I/O result be delivered to it. However,
884 this point may be long after the fd is actually ready.
885
886 So, poll_for_ready_fds() merely detects fds which are ready.
887 complete_blocked_syscalls() does the second half of the trick,
888 possibly much later: it delivers the results from ready fds to
889 threads in WaitFD state.
890*/
sewardj9a199dc2002-04-14 13:01:38 +0000891static
sewardje663cb92002-04-12 10:26:32 +0000892void poll_for_ready_fds ( void )
893{
894 vki_ksigset_t saved_procmask;
895 vki_fd_set readfds;
896 vki_fd_set writefds;
897 vki_fd_set exceptfds;
898 struct vki_timeval timeout;
899 Int fd, fd_max, i, n_ready, syscall_no, n_ok;
900 ThreadId tid;
901 Bool rd_ok, wr_ok, ex_ok;
902 Char msg_buf[100];
903
sewardje462e202002-04-13 04:09:07 +0000904 struct vki_timespec* rem;
sewardj5f07b662002-04-23 16:52:51 +0000905 UInt t_now;
sewardje462e202002-04-13 04:09:07 +0000906
sewardje663cb92002-04-12 10:26:32 +0000907 /* Awaken any sleeping threads whose sleep has expired. */
sewardj6072c362002-04-19 14:40:57 +0000908 for (tid = 1; tid < VG_N_THREADS; tid++)
sewardj853f55d2002-04-26 00:27:53 +0000909 if (vg_threads[tid].status == VgTs_Sleeping)
910 break;
sewardj6072c362002-04-19 14:40:57 +0000911
sewardj5f07b662002-04-23 16:52:51 +0000912 /* Avoid pointless calls to VG_(read_millisecond_timer). */
sewardj6072c362002-04-19 14:40:57 +0000913 if (tid < VG_N_THREADS) {
sewardj5f07b662002-04-23 16:52:51 +0000914 t_now = VG_(read_millisecond_timer)();
sewardj6072c362002-04-19 14:40:57 +0000915 for (tid = 1; tid < VG_N_THREADS; tid++) {
916 if (vg_threads[tid].status != VgTs_Sleeping)
917 continue;
918 if (t_now >= vg_threads[tid].awaken_at) {
919 /* Resume this thread. Set to zero the remaining-time
920 (second) arg of nanosleep, since it's used up all its
921 time. */
922 vg_assert(vg_threads[tid].m_eax == __NR_nanosleep);
923 rem = (struct vki_timespec *)vg_threads[tid].m_ecx; /* arg2 */
924 if (rem != NULL) {
925 rem->tv_sec = 0;
926 rem->tv_nsec = 0;
927 }
928 /* Make the syscall return 0 (success). */
929 vg_threads[tid].m_eax = 0;
930 /* Reschedule this thread. */
931 vg_threads[tid].status = VgTs_Runnable;
932 if (VG_(clo_trace_sched)) {
sewardj5f07b662002-04-23 16:52:51 +0000933 VG_(sprintf)(msg_buf, "at %d: nanosleep done",
sewardj6072c362002-04-19 14:40:57 +0000934 t_now);
935 print_sched_event(tid, msg_buf);
936 }
sewardje663cb92002-04-12 10:26:32 +0000937 }
938 }
939 }
sewardje663cb92002-04-12 10:26:32 +0000940
sewardje462e202002-04-13 04:09:07 +0000941 /* And look for threads waiting on file descriptors which are now
942 ready for I/O.*/
sewardje663cb92002-04-12 10:26:32 +0000943 timeout.tv_sec = 0;
944 timeout.tv_usec = 0;
945
946 VKI_FD_ZERO(&readfds);
947 VKI_FD_ZERO(&writefds);
948 VKI_FD_ZERO(&exceptfds);
949 fd_max = -1;
950 for (i = 0; i < VG_N_WAITING_FDS; i++) {
951 if (vg_waiting_fds[i].fd == -1 /* not in use */)
952 continue;
953 if (vg_waiting_fds[i].ready /* already ready? */)
954 continue;
955 fd = vg_waiting_fds[i].fd;
956 /* VG_(printf)("adding QUERY for fd %d\n", fd); */
sewardje462e202002-04-13 04:09:07 +0000957 vg_assert(fd >= 0);
sewardje663cb92002-04-12 10:26:32 +0000958 if (fd > fd_max)
959 fd_max = fd;
960 tid = vg_waiting_fds[i].tid;
sewardj6072c362002-04-19 14:40:57 +0000961 vg_assert(is_valid_tid(tid));
sewardje663cb92002-04-12 10:26:32 +0000962 syscall_no = vg_waiting_fds[i].syscall_no;
963 switch (syscall_no) {
964 case __NR_read:
965 VKI_FD_SET(fd, &readfds); break;
966 case __NR_write:
967 VKI_FD_SET(fd, &writefds); break;
968 default:
969 VG_(panic)("poll_for_ready_fds: unexpected syscall");
970 /*NOTREACHED*/
971 break;
972 }
973 }
974
sewardje462e202002-04-13 04:09:07 +0000975 /* Short cut: if no fds are waiting, give up now. */
976 if (fd_max == -1)
977 return;
978
sewardje663cb92002-04-12 10:26:32 +0000979 /* BLOCK ALL SIGNALS. We don't want the complication of select()
980 getting interrupted. */
981 VG_(block_all_host_signals)( &saved_procmask );
982
983 n_ready = VG_(select)
984 ( fd_max+1, &readfds, &writefds, &exceptfds, &timeout);
985 if (VG_(is_kerror)(n_ready)) {
986 VG_(printf)("poll_for_ready_fds: select returned %d\n", n_ready);
987 VG_(panic)("poll_for_ready_fds: select failed?!");
988 /*NOTREACHED*/
989 }
990
991 /* UNBLOCK ALL SIGNALS */
992 VG_(restore_host_signals)( &saved_procmask );
993
994 /* VG_(printf)("poll_for_io_completions: %d fs ready\n", n_ready); */
995
996 if (n_ready == 0)
997 return;
998
999 /* Inspect all the fds we know about, and handle any completions that
1000 have happened. */
1001 /*
1002 VG_(printf)("\n\n");
1003 for (fd = 0; fd < 100; fd++)
1004 if (VKI_FD_ISSET(fd, &writefds) || VKI_FD_ISSET(fd, &readfds)) {
1005 VG_(printf)("X"); } else { VG_(printf)("."); };
1006 VG_(printf)("\n\nfd_max = %d\n", fd_max);
1007 */
1008
1009 for (fd = 0; fd <= fd_max; fd++) {
1010 rd_ok = VKI_FD_ISSET(fd, &readfds);
1011 wr_ok = VKI_FD_ISSET(fd, &writefds);
1012 ex_ok = VKI_FD_ISSET(fd, &exceptfds);
1013
1014 n_ok = (rd_ok ? 1 : 0) + (wr_ok ? 1 : 0) + (ex_ok ? 1 : 0);
1015 if (n_ok == 0)
1016 continue;
1017 if (n_ok > 1) {
1018 VG_(printf)("offending fd = %d\n", fd);
1019 VG_(panic)("poll_for_ready_fds: multiple events on fd");
1020 }
1021
1022 /* An I/O event completed for fd. Find the thread which
1023 requested this. */
1024 for (i = 0; i < VG_N_WAITING_FDS; i++) {
1025 if (vg_waiting_fds[i].fd == -1 /* not in use */)
1026 continue;
1027 if (vg_waiting_fds[i].fd == fd)
1028 break;
1029 }
1030
1031 /* And a bit more paranoia ... */
1032 vg_assert(i >= 0 && i < VG_N_WAITING_FDS);
1033
1034 /* Mark the fd as ready. */
1035 vg_assert(! vg_waiting_fds[i].ready);
1036 vg_waiting_fds[i].ready = True;
1037 }
1038}
1039
1040
1041/* See comment attached to poll_for_ready_fds() for explaination. */
sewardj9a199dc2002-04-14 13:01:38 +00001042static
sewardje663cb92002-04-12 10:26:32 +00001043void complete_blocked_syscalls ( void )
1044{
1045 Int fd, i, res, syscall_no;
1046 ThreadId tid;
1047 Char msg_buf[100];
1048
1049 /* Inspect all the outstanding fds we know about. */
1050
1051 for (i = 0; i < VG_N_WAITING_FDS; i++) {
1052 if (vg_waiting_fds[i].fd == -1 /* not in use */)
1053 continue;
1054 if (! vg_waiting_fds[i].ready)
1055 continue;
1056
1057 fd = vg_waiting_fds[i].fd;
1058 tid = vg_waiting_fds[i].tid;
sewardj6072c362002-04-19 14:40:57 +00001059 vg_assert(is_valid_tid(tid));
sewardje663cb92002-04-12 10:26:32 +00001060
1061 /* The thread actually has to be waiting for the I/O event it
1062 requested before we can deliver the result! */
1063 if (vg_threads[tid].status != VgTs_WaitFD)
1064 continue;
1065
1066 /* Ok, actually do it! We can safely use %EAX as the syscall
1067 number, because the speculative call made by
1068 sched_do_syscall() doesn't change %EAX in the case where the
1069 call would have blocked. */
1070
1071 syscall_no = vg_waiting_fds[i].syscall_no;
1072 vg_assert(syscall_no == vg_threads[tid].m_eax);
1073 KERNEL_DO_SYSCALL(tid,res);
1074 VG_(check_known_blocking_syscall)(tid, syscall_no, &res /* POST */);
1075
1076 /* Reschedule. */
1077 vg_threads[tid].status = VgTs_Runnable;
1078 /* Mark slot as no longer in use. */
1079 vg_waiting_fds[i].fd = -1;
1080 /* pp_sched_status(); */
sewardj8937c812002-04-12 20:12:20 +00001081 if (VG_(clo_trace_sched)) {
sewardje663cb92002-04-12 10:26:32 +00001082 VG_(sprintf)(msg_buf,"resume due to I/O completion on fd %d", fd);
1083 print_sched_event(tid, msg_buf);
1084 }
1085 }
1086}
1087
1088
1089static
sewardj5f07b662002-04-23 16:52:51 +00001090void check_for_pthread_cond_timedwait ( void )
1091{
sewardj51c0aaf2002-04-25 01:32:10 +00001092 Int i, now;
sewardj5f07b662002-04-23 16:52:51 +00001093 for (i = 1; i < VG_N_THREADS; i++) {
1094 if (vg_threads[i].status != VgTs_WaitCV)
1095 continue;
1096 if (vg_threads[i].awaken_at == 0xFFFFFFFF /* no timeout */)
1097 continue;
sewardj51c0aaf2002-04-25 01:32:10 +00001098 now = VG_(read_millisecond_timer)();
1099 if (now >= vg_threads[i].awaken_at) {
sewardj5f07b662002-04-23 16:52:51 +00001100 do_pthread_cond_timedwait_TIMEOUT(i);
sewardj51c0aaf2002-04-25 01:32:10 +00001101 }
sewardj5f07b662002-04-23 16:52:51 +00001102 }
1103}
1104
1105
1106static
sewardje663cb92002-04-12 10:26:32 +00001107void nanosleep_for_a_while ( void )
1108{
1109 Int res;
1110 struct vki_timespec req;
1111 struct vki_timespec rem;
1112 req.tv_sec = 0;
sewardj51c0aaf2002-04-25 01:32:10 +00001113 req.tv_nsec = 20 * 1000 * 1000;
sewardje663cb92002-04-12 10:26:32 +00001114 res = VG_(nanosleep)( &req, &rem );
sewardj5f07b662002-04-23 16:52:51 +00001115 vg_assert(res == 0 /* ok */ || res == 1 /* interrupted by signal */);
sewardje663cb92002-04-12 10:26:32 +00001116}
1117
1118
1119/* ---------------------------------------------------------------------
1120 The scheduler proper.
1121 ------------------------------------------------------------------ */
1122
1123/* Run user-space threads until either
1124 * Deadlock occurs
1125 * One thread asks to shutdown Valgrind
1126 * The specified number of basic blocks has gone by.
1127*/
1128VgSchedReturnCode VG_(scheduler) ( void )
1129{
1130 ThreadId tid, tid_next;
1131 UInt trc;
1132 UInt dispatch_ctr_SAVED;
sewardj51c0aaf2002-04-25 01:32:10 +00001133 Int request_code, done_this_time, n_in_bounded_wait;
sewardje663cb92002-04-12 10:26:32 +00001134 Char msg_buf[100];
1135 Addr trans_addr;
sewardj14e03422002-04-24 19:51:31 +00001136 Bool sigs_delivered;
sewardje663cb92002-04-12 10:26:32 +00001137
1138 /* For the LRU structures, records when the epoch began. */
1139 ULong lru_epoch_started_at = 0;
1140
1141 /* Start with the root thread. tid in general indicates the
1142 currently runnable/just-finished-running thread. */
sewardj6072c362002-04-19 14:40:57 +00001143 tid = 1;
sewardje663cb92002-04-12 10:26:32 +00001144
1145 /* This is the top level scheduler loop. It falls into three
1146 phases. */
1147 while (True) {
1148
sewardj6072c362002-04-19 14:40:57 +00001149 /* ======================= Phase 0 of 3 =======================
1150 Be paranoid. Always a good idea. */
sewardjd7fd4d22002-04-24 01:57:27 +00001151 stage1:
sewardj6072c362002-04-19 14:40:57 +00001152 scheduler_sanity();
1153
sewardje663cb92002-04-12 10:26:32 +00001154 /* ======================= Phase 1 of 3 =======================
1155 Handle I/O completions and signals. This may change the
1156 status of various threads. Then select a new thread to run,
1157 or declare deadlock, or sleep if there are no runnable
1158 threads but some are blocked on I/O. */
1159
1160 /* Age the LRU structures if an epoch has been completed. */
1161 if (VG_(bbs_done) - lru_epoch_started_at >= VG_BBS_PER_EPOCH) {
1162 lru_epoch_started_at = VG_(bbs_done);
1163 increment_epoch();
1164 }
1165
1166 /* Was a debug-stop requested? */
1167 if (VG_(bbs_to_go) == 0)
1168 goto debug_stop;
1169
1170 /* Do the following loop until a runnable thread is found, or
1171 deadlock is detected. */
1172 while (True) {
1173
1174 /* For stats purposes only. */
1175 VG_(num_scheduling_events_MAJOR) ++;
1176
1177 /* See if any I/O operations which we were waiting for have
1178 completed, and, if so, make runnable the relevant waiting
1179 threads. */
1180 poll_for_ready_fds();
1181 complete_blocked_syscalls();
sewardj5f07b662002-04-23 16:52:51 +00001182 check_for_pthread_cond_timedwait();
sewardje663cb92002-04-12 10:26:32 +00001183
1184 /* See if there are any signals which need to be delivered. If
1185 so, choose thread(s) to deliver them to, and build signal
1186 delivery frames on those thread(s) stacks. */
sewardj6072c362002-04-19 14:40:57 +00001187
1188 /* Be careful about delivering signals to a thread waiting
1189 for a mutex. In particular, when the handler is running,
1190 that thread is temporarily apparently-not-waiting for the
1191 mutex, so if it is unlocked by another thread whilst the
1192 handler is running, this thread is not informed. When the
1193 handler returns, the thread resumes waiting on the mutex,
1194 even if, as a result, it has missed the unlocking of it.
1195 Potential deadlock. This sounds all very strange, but the
1196 POSIX standard appears to require this behaviour. */
sewardj14e03422002-04-24 19:51:31 +00001197 sigs_delivered = VG_(deliver_signals)( 1 /*HACK*/ );
1198 if (sigs_delivered)
1199 VG_(do_sanity_checks)( 1 /*HACK*/, False );
sewardje663cb92002-04-12 10:26:32 +00001200
1201 /* Try and find a thread (tid) to run. */
1202 tid_next = tid;
sewardj51c0aaf2002-04-25 01:32:10 +00001203 n_in_bounded_wait = 0;
sewardje663cb92002-04-12 10:26:32 +00001204 while (True) {
1205 tid_next++;
sewardj6072c362002-04-19 14:40:57 +00001206 if (tid_next >= VG_N_THREADS) tid_next = 1;
sewardj54cacf02002-04-12 23:24:59 +00001207 if (vg_threads[tid_next].status == VgTs_WaitFD
sewardj51c0aaf2002-04-25 01:32:10 +00001208 || vg_threads[tid_next].status == VgTs_Sleeping
1209 || (vg_threads[tid_next].status == VgTs_WaitCV
1210 && vg_threads[tid_next].awaken_at != 0xFFFFFFFF))
1211 n_in_bounded_wait ++;
sewardje663cb92002-04-12 10:26:32 +00001212 if (vg_threads[tid_next].status == VgTs_Runnable)
1213 break; /* We can run this one. */
1214 if (tid_next == tid)
1215 break; /* been all the way round */
1216 }
1217 tid = tid_next;
1218
1219 if (vg_threads[tid].status == VgTs_Runnable) {
1220 /* Found a suitable candidate. Fall out of this loop, so
1221 we can advance to stage 2 of the scheduler: actually
1222 running the thread. */
1223 break;
1224 }
1225
1226 /* We didn't find a runnable thread. Now what? */
sewardj51c0aaf2002-04-25 01:32:10 +00001227 if (n_in_bounded_wait == 0) {
sewardj54cacf02002-04-12 23:24:59 +00001228 /* No runnable threads and no prospect of any appearing
1229 even if we wait for an arbitrary length of time. In
1230 short, we have a deadlock. */
sewardj15a43e12002-04-17 19:35:12 +00001231 VG_(pp_sched_status)();
sewardje663cb92002-04-12 10:26:32 +00001232 return VgSrc_Deadlock;
1233 }
1234
1235 /* At least one thread is in a fd-wait state. Delay for a
1236 while, and go round again, in the hope that eventually a
1237 thread becomes runnable. */
1238 nanosleep_for_a_while();
1239 // pp_sched_status();
1240 // VG_(printf)(".\n");
1241 }
1242
1243
1244 /* ======================= Phase 2 of 3 =======================
1245 Wahey! We've finally decided that thread tid is runnable, so
1246 we now do that. Run it for as much of a quanta as possible.
1247 Trivial requests are handled and the thread continues. The
1248 aim is not to do too many of Phase 1 since it is expensive. */
1249
1250 if (0)
sewardj3b5d8862002-04-20 13:53:23 +00001251 VG_(printf)("SCHED: tid %d\n", tid);
sewardje663cb92002-04-12 10:26:32 +00001252
1253 /* Figure out how many bbs to ask vg_run_innerloop to do. Note
1254 that it decrements the counter before testing it for zero, so
1255 that if VG_(dispatch_ctr) is set to N you get at most N-1
1256 iterations. Also this means that VG_(dispatch_ctr) must
1257 exceed zero before entering the innerloop. Also also, the
1258 decrement is done before the bb is actually run, so you
1259 always get at least one decrement even if nothing happens.
1260 */
1261 if (VG_(bbs_to_go) >= VG_SCHEDULING_QUANTUM)
1262 VG_(dispatch_ctr) = VG_SCHEDULING_QUANTUM + 1;
1263 else
1264 VG_(dispatch_ctr) = (UInt)VG_(bbs_to_go) + 1;
1265
1266 /* ... and remember what we asked for. */
1267 dispatch_ctr_SAVED = VG_(dispatch_ctr);
1268
sewardj1e8cdc92002-04-18 11:37:52 +00001269 /* paranoia ... */
1270 vg_assert(vg_threads[tid].tid == tid);
1271
sewardje663cb92002-04-12 10:26:32 +00001272 /* Actually run thread tid. */
1273 while (True) {
1274
1275 /* For stats purposes only. */
1276 VG_(num_scheduling_events_MINOR) ++;
1277
1278 if (0)
1279 VG_(message)(Vg_DebugMsg, "thread %d: running for %d bbs",
1280 tid, VG_(dispatch_ctr) - 1 );
1281
1282 trc = run_thread_for_a_while ( tid );
1283
1284 /* Deal quickly with trivial scheduling events, and resume the
1285 thread. */
1286
1287 if (trc == VG_TRC_INNER_FASTMISS) {
1288 vg_assert(VG_(dispatch_ctr) > 0);
1289
1290 /* Trivial event. Miss in the fast-cache. Do a full
1291 lookup for it. */
1292 trans_addr
1293 = VG_(search_transtab) ( vg_threads[tid].m_eip );
1294 if (trans_addr == (Addr)0) {
1295 /* Not found; we need to request a translation. */
sewardj1e8cdc92002-04-18 11:37:52 +00001296 create_translation_for( tid, vg_threads[tid].m_eip );
sewardje663cb92002-04-12 10:26:32 +00001297 trans_addr = VG_(search_transtab) ( vg_threads[tid].m_eip );
1298 if (trans_addr == (Addr)0)
1299 VG_(panic)("VG_TRC_INNER_FASTMISS: missing tt_fast entry");
1300 }
1301 continue; /* with this thread */
1302 }
1303
1304 if (trc == VG_TRC_EBP_JMP_CLIENTREQ) {
sewardjd7fd4d22002-04-24 01:57:27 +00001305 Bool done = maybe_do_trivial_clientreq(tid);
1306 if (done) {
1307 /* The request is done. We try and continue with the
1308 same thread if still runnable. If not, go back to
1309 Stage 1 to select a new thread to run. */
1310 if (vg_threads[tid].status == VgTs_Runnable)
1311 continue; /* with this thread */
1312 else
1313 goto stage1;
sewardje663cb92002-04-12 10:26:32 +00001314 }
1315 }
1316
sewardj51c0aaf2002-04-25 01:32:10 +00001317 if (trc == VG_TRC_EBP_JMP_SYSCALL) {
1318 /* Do a syscall for the vthread tid. This could cause it
1319 to become non-runnable. */
1320 sched_do_syscall(tid);
1321 if (vg_threads[tid].status == VgTs_Runnable)
1322 continue; /* with this thread */
1323 else
1324 goto stage1;
1325 }
1326
sewardjd7fd4d22002-04-24 01:57:27 +00001327 /* It's an event we can't quickly deal with. Give up running
1328 this thread and handle things the expensive way. */
sewardje663cb92002-04-12 10:26:32 +00001329 break;
1330 }
1331
1332 /* ======================= Phase 3 of 3 =======================
1333 Handle non-trivial thread requests, mostly pthread stuff. */
1334
1335 /* Ok, we've fallen out of the dispatcher for a
1336 non-completely-trivial reason. First, update basic-block
1337 counters. */
1338
1339 done_this_time = (Int)dispatch_ctr_SAVED - (Int)VG_(dispatch_ctr) - 1;
1340 vg_assert(done_this_time >= 0);
1341 VG_(bbs_to_go) -= (ULong)done_this_time;
1342 VG_(bbs_done) += (ULong)done_this_time;
1343
1344 if (0 && trc != VG_TRC_INNER_FASTMISS)
1345 VG_(message)(Vg_DebugMsg, "thread %d: completed %d bbs, trc %d",
1346 tid, done_this_time, (Int)trc );
1347
1348 if (0 && trc != VG_TRC_INNER_FASTMISS)
1349 VG_(message)(Vg_DebugMsg, "thread %d: %ld bbs, event %s",
1350 tid, VG_(bbs_done),
1351 name_of_sched_event(trc) );
sewardj9d1b5d32002-04-17 19:40:49 +00001352
sewardje663cb92002-04-12 10:26:32 +00001353 /* Examine the thread's return code to figure out why it
1354 stopped, and handle requests. */
1355
1356 switch (trc) {
1357
1358 case VG_TRC_INNER_FASTMISS:
1359 VG_(panic)("VG_(scheduler): VG_TRC_INNER_FASTMISS");
1360 /*NOTREACHED*/
1361 break;
1362
1363 case VG_TRC_INNER_COUNTERZERO:
1364 /* Timeslice is out. Let a new thread be scheduled,
1365 simply by doing nothing, causing us to arrive back at
1366 Phase 1. */
1367 if (VG_(bbs_to_go) == 0) {
1368 goto debug_stop;
1369 }
1370 vg_assert(VG_(dispatch_ctr) == 0);
1371 break;
1372
1373 case VG_TRC_UNRESUMABLE_SIGNAL:
1374 /* It got a SIGSEGV/SIGBUS, which we need to deliver right
1375 away. Again, do nothing, so we wind up back at Phase
1376 1, whereupon the signal will be "delivered". */
1377 break;
1378
sewardj51c0aaf2002-04-25 01:32:10 +00001379#if 0
sewardje663cb92002-04-12 10:26:32 +00001380 case VG_TRC_EBP_JMP_SYSCALL:
1381 /* Do a syscall for the vthread tid. This could cause it
1382 to become non-runnable. */
1383 sched_do_syscall(tid);
1384 break;
sewardj51c0aaf2002-04-25 01:32:10 +00001385#endif
sewardje663cb92002-04-12 10:26:32 +00001386
1387 case VG_TRC_EBP_JMP_CLIENTREQ:
1388 /* Do a client request for the vthread tid. Note that
1389 some requests will have been handled by
1390 maybe_do_trivial_clientreq(), so we don't expect to see
1391 those here.
1392 */
sewardj54cacf02002-04-12 23:24:59 +00001393 /* The thread's %EAX points at an arg block, the first
1394 word of which is the request code. */
1395 request_code = ((UInt*)(vg_threads[tid].m_eax))[0];
sewardje663cb92002-04-12 10:26:32 +00001396 if (0) {
sewardj54cacf02002-04-12 23:24:59 +00001397 VG_(sprintf)(msg_buf, "request 0x%x", request_code );
sewardje663cb92002-04-12 10:26:32 +00001398 print_sched_event(tid, msg_buf);
1399 }
1400 /* Do a non-trivial client request for thread tid. tid's
1401 %EAX points to a short vector of argument words, the
1402 first of which is the request code. The result of the
1403 request is put in tid's %EDX. Alternatively, perhaps
1404 the request causes tid to become non-runnable and/or
1405 other blocked threads become runnable. In general we
1406 can and often do mess with the state of arbitrary
1407 threads at this point. */
sewardj54cacf02002-04-12 23:24:59 +00001408 if (request_code == VG_USERREQ__SHUTDOWN_VALGRIND) {
1409 return VgSrc_Shutdown;
1410 } else {
1411 do_nontrivial_clientreq(tid);
1412 }
sewardje663cb92002-04-12 10:26:32 +00001413 break;
1414
1415 default:
1416 VG_(printf)("\ntrc = %d\n", trc);
1417 VG_(panic)("VG_(scheduler), phase 3: "
1418 "unexpected thread return code");
1419 /* NOTREACHED */
1420 break;
1421
1422 } /* switch (trc) */
1423
1424 /* That completes Phase 3 of 3. Return now to the top of the
1425 main scheduler loop, to Phase 1 of 3. */
1426
1427 } /* top-level scheduler loop */
1428
1429
1430 /* NOTREACHED */
1431 VG_(panic)("scheduler: post-main-loop ?!");
1432 /* NOTREACHED */
1433
1434 debug_stop:
1435 /* If we exited because of a debug stop, print the translation
1436 of the last block executed -- by translating it again, and
1437 throwing away the result. */
1438 VG_(printf)(
1439 "======vvvvvvvv====== LAST TRANSLATION ======vvvvvvvv======\n");
sewardj1e8cdc92002-04-18 11:37:52 +00001440 VG_(translate)( &vg_threads[tid], vg_threads[tid].m_eip, NULL, NULL, NULL );
sewardje663cb92002-04-12 10:26:32 +00001441 VG_(printf)("\n");
1442 VG_(printf)(
1443 "======^^^^^^^^====== LAST TRANSLATION ======^^^^^^^^======\n");
1444
1445 return VgSrc_BbsDone;
1446}
1447
1448
1449/* ---------------------------------------------------------------------
1450 The pthread implementation.
1451 ------------------------------------------------------------------ */
1452
1453#include <pthread.h>
1454#include <errno.h>
1455
1456#if !defined(PTHREAD_STACK_MIN)
1457# define PTHREAD_STACK_MIN (16384 - VG_AR_CLIENT_STACKBASE_REDZONE_SZB)
1458#endif
1459
1460/* /usr/include/bits/pthreadtypes.h:
1461 typedef unsigned long int pthread_t;
1462*/
1463
sewardje663cb92002-04-12 10:26:32 +00001464
sewardj604ec3c2002-04-18 22:38:41 +00001465/* -----------------------------------------------------------
1466 Thread CREATION, JOINAGE and CANCELLATION.
1467 -------------------------------------------------------- */
1468
sewardje663cb92002-04-12 10:26:32 +00001469static
sewardj853f55d2002-04-26 00:27:53 +00001470void do_pthread_cancel ( ThreadId tid,
sewardje663cb92002-04-12 10:26:32 +00001471 pthread_t tid_cancellee )
1472{
1473 Char msg_buf[100];
sewardj853f55d2002-04-26 00:27:53 +00001474
1475 vg_assert(is_valid_tid(tid));
1476 vg_assert(vg_threads[tid].status != VgTs_Empty);
1477
1478 if (!is_valid_tid(tid_cancellee)
1479 || vg_threads[tid_cancellee].status == VgTs_Empty) {
1480 vg_threads[tid].m_edx = ESRCH;
1481 return;
1482 }
1483
sewardje663cb92002-04-12 10:26:32 +00001484 /* We want make is appear that this thread has returned to
1485 do_pthread_create_bogusRA with PTHREAD_CANCELED as the
1486 return value. So: simple: put PTHREAD_CANCELED into %EAX
1487 and &do_pthread_create_bogusRA into %EIP and keep going! */
sewardj8937c812002-04-12 20:12:20 +00001488 if (VG_(clo_trace_sched)) {
sewardj853f55d2002-04-26 00:27:53 +00001489 VG_(sprintf)(msg_buf, "cancelled by %d", tid);
sewardje663cb92002-04-12 10:26:32 +00001490 print_sched_event(tid_cancellee, msg_buf);
1491 }
1492 vg_threads[tid_cancellee].m_eax = (UInt)PTHREAD_CANCELED;
sewardjbc5b99f2002-04-13 00:08:51 +00001493 vg_threads[tid_cancellee].m_eip = (UInt)&VG_(pthreadreturn_bogusRA);
sewardje663cb92002-04-12 10:26:32 +00001494 vg_threads[tid_cancellee].status = VgTs_Runnable;
sewardj853f55d2002-04-26 00:27:53 +00001495
1496 /* We return with success (0). */
1497 vg_threads[tid].m_edx = 0;
sewardje663cb92002-04-12 10:26:32 +00001498}
1499
1500
sewardj3b5d8862002-04-20 13:53:23 +00001501static
1502void do_pthread_exit ( ThreadId tid, void* retval )
1503{
1504 Char msg_buf[100];
1505 /* We want make is appear that this thread has returned to
1506 do_pthread_create_bogusRA with retval as the
1507 return value. So: simple: put retval into %EAX
1508 and &do_pthread_create_bogusRA into %EIP and keep going! */
1509 if (VG_(clo_trace_sched)) {
1510 VG_(sprintf)(msg_buf, "exiting with %p", retval);
1511 print_sched_event(tid, msg_buf);
1512 }
1513 vg_threads[tid].m_eax = (UInt)retval;
1514 vg_threads[tid].m_eip = (UInt)&VG_(pthreadreturn_bogusRA);
1515 vg_threads[tid].status = VgTs_Runnable;
1516}
1517
sewardje663cb92002-04-12 10:26:32 +00001518
1519/* Thread tid is exiting, by returning from the function it was
sewardjbc5b99f2002-04-13 00:08:51 +00001520 created with. Or possibly due to pthread_exit or cancellation.
1521 The main complication here is to resume any thread waiting to join
1522 with this one. */
sewardje663cb92002-04-12 10:26:32 +00001523static
sewardjbc5b99f2002-04-13 00:08:51 +00001524void handle_pthread_return ( ThreadId tid, void* retval )
sewardje663cb92002-04-12 10:26:32 +00001525{
1526 ThreadId jnr; /* joiner, the thread calling pthread_join. */
1527 UInt* jnr_args;
1528 void** jnr_thread_return;
1529 Char msg_buf[100];
1530
1531 /* Mark it as not in use. Leave the stack in place so the next
1532 user of this slot doesn't reallocate it. */
sewardj6072c362002-04-19 14:40:57 +00001533 vg_assert(is_valid_tid(tid));
sewardje663cb92002-04-12 10:26:32 +00001534 vg_assert(vg_threads[tid].status != VgTs_Empty);
1535
sewardjbc5b99f2002-04-13 00:08:51 +00001536 vg_threads[tid].retval = retval;
sewardje663cb92002-04-12 10:26:32 +00001537
1538 if (vg_threads[tid].joiner == VG_INVALID_THREADID) {
1539 /* No one has yet done a join on me */
1540 vg_threads[tid].status = VgTs_WaitJoiner;
sewardj8937c812002-04-12 20:12:20 +00001541 if (VG_(clo_trace_sched)) {
sewardje663cb92002-04-12 10:26:32 +00001542 VG_(sprintf)(msg_buf,
1543 "root fn returns, waiting for a call pthread_join(%d)",
1544 tid);
1545 print_sched_event(tid, msg_buf);
1546 }
1547 } else {
1548 /* Some is waiting; make their join call return with success,
1549 putting my exit code in the place specified by the caller's
1550 thread_return param. This is all very horrible, since we
1551 need to consult the joiner's arg block -- pointed to by its
1552 %EAX -- in order to extract the 2nd param of its pthread_join
1553 call. TODO: free properly the slot (also below).
1554 */
1555 jnr = vg_threads[tid].joiner;
sewardj6072c362002-04-19 14:40:57 +00001556 vg_assert(is_valid_tid(jnr));
sewardje663cb92002-04-12 10:26:32 +00001557 vg_assert(vg_threads[jnr].status == VgTs_WaitJoinee);
1558 jnr_args = (UInt*)vg_threads[jnr].m_eax;
1559 jnr_thread_return = (void**)(jnr_args[2]);
1560 if (jnr_thread_return != NULL)
1561 *jnr_thread_return = vg_threads[tid].retval;
1562 vg_threads[jnr].m_edx = 0; /* success */
1563 vg_threads[jnr].status = VgTs_Runnable;
1564 vg_threads[tid].status = VgTs_Empty; /* bye! */
sewardj75fe1892002-04-14 02:46:33 +00001565 if (VG_(clo_instrument) && tid != 0)
1566 VGM_(make_noaccess)( vg_threads[tid].stack_base,
1567 vg_threads[tid].stack_size );
sewardj8937c812002-04-12 20:12:20 +00001568 if (VG_(clo_trace_sched)) {
sewardje663cb92002-04-12 10:26:32 +00001569 VG_(sprintf)(msg_buf,
1570 "root fn returns, to find a waiting pthread_join(%d)", tid);
1571 print_sched_event(tid, msg_buf);
1572 VG_(sprintf)(msg_buf,
1573 "my pthread_join(%d) returned; resuming", tid);
1574 print_sched_event(jnr, msg_buf);
1575 }
1576 }
1577
1578 /* Return value is irrelevant; this thread will not get
1579 rescheduled. */
1580}
1581
1582
1583static
1584void do_pthread_join ( ThreadId tid, ThreadId jee, void** thread_return )
1585{
1586 Char msg_buf[100];
1587
1588 /* jee, the joinee, is the thread specified as an arg in thread
1589 tid's call to pthread_join. So tid is the join-er. */
sewardj6072c362002-04-19 14:40:57 +00001590 vg_assert(is_valid_tid(tid));
sewardje663cb92002-04-12 10:26:32 +00001591 vg_assert(vg_threads[tid].status == VgTs_Runnable);
1592
1593 if (jee == tid) {
1594 vg_threads[tid].m_edx = EDEADLK; /* libc constant, not a kernel one */
1595 vg_threads[tid].status = VgTs_Runnable;
1596 return;
1597 }
1598
1599 if (jee < 0
1600 || jee >= VG_N_THREADS
1601 || vg_threads[jee].status == VgTs_Empty) {
1602 /* Invalid thread to join to. */
1603 vg_threads[tid].m_edx = EINVAL;
1604 vg_threads[tid].status = VgTs_Runnable;
1605 return;
1606 }
1607
1608 if (vg_threads[jee].joiner != VG_INVALID_THREADID) {
1609 /* Someone already did join on this thread */
1610 vg_threads[tid].m_edx = EINVAL;
1611 vg_threads[tid].status = VgTs_Runnable;
1612 return;
1613 }
1614
1615 /* if (vg_threads[jee].detached) ... */
1616
1617 /* Perhaps the joinee has already finished? If so return
1618 immediately with its return code, and free up the slot. TODO:
1619 free it properly (also above). */
1620 if (vg_threads[jee].status == VgTs_WaitJoiner) {
1621 vg_assert(vg_threads[jee].joiner == VG_INVALID_THREADID);
1622 vg_threads[tid].m_edx = 0; /* success */
1623 if (thread_return != NULL)
1624 *thread_return = vg_threads[jee].retval;
1625 vg_threads[tid].status = VgTs_Runnable;
1626 vg_threads[jee].status = VgTs_Empty; /* bye! */
sewardj75fe1892002-04-14 02:46:33 +00001627 if (VG_(clo_instrument) && jee != 0)
1628 VGM_(make_noaccess)( vg_threads[jee].stack_base,
1629 vg_threads[jee].stack_size );
sewardj8937c812002-04-12 20:12:20 +00001630 if (VG_(clo_trace_sched)) {
sewardje663cb92002-04-12 10:26:32 +00001631 VG_(sprintf)(msg_buf,
1632 "someone called pthread_join() on me; bye!");
1633 print_sched_event(jee, msg_buf);
1634 VG_(sprintf)(msg_buf,
1635 "my pthread_join(%d) returned immediately",
1636 jee );
1637 print_sched_event(tid, msg_buf);
1638 }
1639 return;
1640 }
1641
1642 /* Ok, so we'll have to wait on jee. */
1643 vg_threads[jee].joiner = tid;
1644 vg_threads[tid].status = VgTs_WaitJoinee;
sewardj8937c812002-04-12 20:12:20 +00001645 if (VG_(clo_trace_sched)) {
sewardje663cb92002-04-12 10:26:32 +00001646 VG_(sprintf)(msg_buf,
1647 "blocking on call of pthread_join(%d)", jee );
1648 print_sched_event(tid, msg_buf);
1649 }
1650 /* So tid's join call does not return just now. */
1651}
1652
1653
1654static
1655void do_pthread_create ( ThreadId parent_tid,
1656 pthread_t* thread,
1657 pthread_attr_t* attr,
1658 void* (*start_routine)(void *),
1659 void* arg )
1660{
sewardj5f07b662002-04-23 16:52:51 +00001661 Int i;
sewardje663cb92002-04-12 10:26:32 +00001662 Addr new_stack;
1663 UInt new_stk_szb;
1664 ThreadId tid;
1665 Char msg_buf[100];
1666
1667 /* Paranoia ... */
1668 vg_assert(sizeof(pthread_t) == sizeof(UInt));
1669
1670 vg_assert(vg_threads[parent_tid].status != VgTs_Empty);
1671
sewardj1e8cdc92002-04-18 11:37:52 +00001672 tid = vg_alloc_ThreadState();
sewardje663cb92002-04-12 10:26:32 +00001673
1674 /* If we've created the main thread's tid, we're in deep trouble :) */
sewardj6072c362002-04-19 14:40:57 +00001675 vg_assert(tid != 1);
1676 vg_assert(is_valid_tid(tid));
sewardje663cb92002-04-12 10:26:32 +00001677
1678 /* Copy the parent's CPU state into the child's, in a roundabout
1679 way (via baseBlock). */
1680 VG_(load_thread_state)(parent_tid);
1681 VG_(save_thread_state)(tid);
1682
1683 /* Consider allocating the child a stack, if the one it already has
1684 is inadequate. */
1685 new_stk_szb = PTHREAD_STACK_MIN;
1686
1687 if (new_stk_szb > vg_threads[tid].stack_size) {
1688 /* Again, for good measure :) We definitely don't want to be
1689 allocating a stack for the main thread. */
sewardj6072c362002-04-19 14:40:57 +00001690 vg_assert(tid != 1);
sewardje663cb92002-04-12 10:26:32 +00001691 /* for now, we don't handle the case of anything other than
1692 assigning it for the first time. */
1693 vg_assert(vg_threads[tid].stack_size == 0);
1694 vg_assert(vg_threads[tid].stack_base == (Addr)NULL);
1695 new_stack = (Addr)VG_(get_memory_from_mmap)( new_stk_szb );
1696 vg_threads[tid].stack_base = new_stack;
1697 vg_threads[tid].stack_size = new_stk_szb;
sewardj1e8cdc92002-04-18 11:37:52 +00001698 vg_threads[tid].stack_highest_word
sewardje663cb92002-04-12 10:26:32 +00001699 = new_stack + new_stk_szb
sewardj1e8cdc92002-04-18 11:37:52 +00001700 - VG_AR_CLIENT_STACKBASE_REDZONE_SZB; /* -4 ??? */;
sewardje663cb92002-04-12 10:26:32 +00001701 }
sewardj1e8cdc92002-04-18 11:37:52 +00001702
1703 vg_threads[tid].m_esp
1704 = vg_threads[tid].stack_base
1705 + vg_threads[tid].stack_size
1706 - VG_AR_CLIENT_STACKBASE_REDZONE_SZB;
1707
sewardje663cb92002-04-12 10:26:32 +00001708 if (VG_(clo_instrument))
1709 VGM_(make_noaccess)( vg_threads[tid].m_esp,
1710 VG_AR_CLIENT_STACKBASE_REDZONE_SZB );
1711
1712 /* push arg */
1713 vg_threads[tid].m_esp -= 4;
1714 * (UInt*)(vg_threads[tid].m_esp) = (UInt)arg;
1715
1716 /* push (magical) return address */
1717 vg_threads[tid].m_esp -= 4;
sewardjbc5b99f2002-04-13 00:08:51 +00001718 * (UInt*)(vg_threads[tid].m_esp) = (UInt)VG_(pthreadreturn_bogusRA);
sewardje663cb92002-04-12 10:26:32 +00001719
1720 if (VG_(clo_instrument))
1721 VGM_(make_readable)( vg_threads[tid].m_esp, 2 * 4 );
1722
1723 /* this is where we start */
1724 vg_threads[tid].m_eip = (UInt)start_routine;
1725
sewardj8937c812002-04-12 20:12:20 +00001726 if (VG_(clo_trace_sched)) {
sewardje663cb92002-04-12 10:26:32 +00001727 VG_(sprintf)(msg_buf,
1728 "new thread, created by %d", parent_tid );
1729 print_sched_event(tid, msg_buf);
1730 }
1731
1732 /* store the thread id in *thread. */
1733 // if (VG_(clo_instrument))
1734 // ***** CHECK *thread is writable
1735 *thread = (pthread_t)tid;
1736
sewardj3b5d8862002-04-20 13:53:23 +00001737 vg_threads[tid].associated_mx = NULL;
1738 vg_threads[tid].associated_cv = NULL;
1739 vg_threads[tid].joiner = VG_INVALID_THREADID;
1740 vg_threads[tid].status = VgTs_Runnable;
sewardj604ec3c2002-04-18 22:38:41 +00001741
sewardj5f07b662002-04-23 16:52:51 +00001742 for (i = 0; i < VG_N_THREAD_KEYS; i++)
1743 vg_threads[tid].specifics[i] = NULL;
1744
sewardj604ec3c2002-04-18 22:38:41 +00001745 /* return zero */
sewardje663cb92002-04-12 10:26:32 +00001746 vg_threads[tid].m_edx = 0; /* success */
1747}
1748
1749
sewardj604ec3c2002-04-18 22:38:41 +00001750/* -----------------------------------------------------------
1751 MUTEXes
1752 -------------------------------------------------------- */
1753
sewardj604ec3c2002-04-18 22:38:41 +00001754/* pthread_mutex_t is a struct with at 5 words:
sewardje663cb92002-04-12 10:26:32 +00001755 typedef struct
1756 {
1757 int __m_reserved; -- Reserved for future use
1758 int __m_count; -- Depth of recursive locking
1759 _pthread_descr __m_owner; -- Owner thread (if recursive or errcheck)
1760 int __m_kind; -- Mutex kind: fast, recursive or errcheck
1761 struct _pthread_fastlock __m_lock; -- Underlying fast lock
1762 } pthread_mutex_t;
sewardj604ec3c2002-04-18 22:38:41 +00001763
sewardj6072c362002-04-19 14:40:57 +00001764 #define PTHREAD_MUTEX_INITIALIZER \
1765 {0, 0, 0, PTHREAD_MUTEX_TIMED_NP, __LOCK_INITIALIZER}
1766 # define PTHREAD_RECURSIVE_MUTEX_INITIALIZER_NP \
1767 {0, 0, 0, PTHREAD_MUTEX_RECURSIVE_NP, __LOCK_INITIALIZER}
1768 # define PTHREAD_ERRORCHECK_MUTEX_INITIALIZER_NP \
1769 {0, 0, 0, PTHREAD_MUTEX_ERRORCHECK_NP, __LOCK_INITIALIZER}
1770 # define PTHREAD_ADAPTIVE_MUTEX_INITIALIZER_NP \
1771 {0, 0, 0, PTHREAD_MUTEX_ADAPTIVE_NP, __LOCK_INITIALIZER}
sewardj604ec3c2002-04-18 22:38:41 +00001772
sewardj6072c362002-04-19 14:40:57 +00001773 How we use it:
sewardj604ec3c2002-04-18 22:38:41 +00001774
sewardj6072c362002-04-19 14:40:57 +00001775 __m_kind never changes and indicates whether or not it is recursive.
1776
1777 __m_count indicates the lock count; if 0, the mutex is not owned by
1778 anybody.
1779
1780 __m_owner has a ThreadId value stuffed into it. We carefully arrange
1781 that ThreadId == 0 is invalid (VG_INVALID_THREADID), so that
1782 statically initialised mutexes correctly appear
1783 to belong to nobody.
1784
1785 In summary, a not-in-use mutex is distinguised by having __m_owner
1786 == 0 (VG_INVALID_THREADID) and __m_count == 0 too. If one of those
1787 conditions holds, the other should too.
1788
1789 There is no linked list of threads waiting for this mutex. Instead
1790 a thread in WaitMX state points at the mutex with its waited_on_mx
1791 field. This makes _unlock() inefficient, but simple to implement the
1792 right semantics viz-a-viz signals.
sewardje663cb92002-04-12 10:26:32 +00001793
sewardj604ec3c2002-04-18 22:38:41 +00001794 We don't have to deal with mutex initialisation; the client side
sewardj6072c362002-04-19 14:40:57 +00001795 deals with that for us.
1796*/
sewardje663cb92002-04-12 10:26:32 +00001797
sewardj3b5d8862002-04-20 13:53:23 +00001798/* Helper fns ... */
1799static
1800void release_one_thread_waiting_on_mutex ( pthread_mutex_t* mutex,
1801 Char* caller )
1802{
1803 Int i;
1804 Char msg_buf[100];
1805
1806 /* Find some arbitrary thread waiting on this mutex, and make it
1807 runnable. If none are waiting, mark the mutex as not held. */
1808 for (i = 1; i < VG_N_THREADS; i++) {
1809 if (vg_threads[i].status == VgTs_Empty)
1810 continue;
1811 if (vg_threads[i].status == VgTs_WaitMX
1812 && vg_threads[i].associated_mx == mutex)
1813 break;
1814 }
1815
1816 vg_assert(i <= VG_N_THREADS);
1817 if (i == VG_N_THREADS) {
1818 /* Nobody else is waiting on it. */
1819 mutex->__m_count = 0;
1820 mutex->__m_owner = VG_INVALID_THREADID;
1821 } else {
1822 /* Notionally transfer the hold to thread i, whose
1823 pthread_mutex_lock() call now returns with 0 (success). */
1824 /* The .count is already == 1. */
1825 vg_assert(vg_threads[i].associated_mx == mutex);
1826 mutex->__m_owner = (_pthread_descr)i;
1827 vg_threads[i].status = VgTs_Runnable;
1828 vg_threads[i].associated_mx = NULL;
sewardj5f07b662002-04-23 16:52:51 +00001829 /* m_edx already holds pth_mx_lock() success (0) */
sewardj3b5d8862002-04-20 13:53:23 +00001830
1831 if (VG_(clo_trace_pthread_level) >= 1) {
1832 VG_(sprintf)(msg_buf, "%s mx %p: RESUME",
1833 caller, mutex );
1834 print_pthread_event(i, msg_buf);
1835 }
1836 }
1837}
1838
sewardje663cb92002-04-12 10:26:32 +00001839
1840static
sewardj30671ff2002-04-21 00:13:57 +00001841void do_pthread_mutex_lock( ThreadId tid,
1842 Bool is_trylock,
sewardjd7fd4d22002-04-24 01:57:27 +00001843 void* /* pthread_mutex_t* */ mutexV )
sewardje663cb92002-04-12 10:26:32 +00001844{
sewardj30671ff2002-04-21 00:13:57 +00001845 Char msg_buf[100];
1846 Char* caller
1847 = is_trylock ? "pthread_mutex_lock "
1848 : "pthread_mutex_trylock";
sewardje663cb92002-04-12 10:26:32 +00001849
sewardjd7fd4d22002-04-24 01:57:27 +00001850 pthread_mutex_t* mutex = (pthread_mutex_t*)mutexV;
1851
sewardj604ec3c2002-04-18 22:38:41 +00001852 if (VG_(clo_trace_pthread_level) >= 2) {
sewardj30671ff2002-04-21 00:13:57 +00001853 VG_(sprintf)(msg_buf, "%s mx %p ...", caller, mutex );
sewardj604ec3c2002-04-18 22:38:41 +00001854 print_pthread_event(tid, msg_buf);
1855 }
1856
1857 /* Paranoia ... */
1858 vg_assert(is_valid_tid(tid)
1859 && vg_threads[tid].status == VgTs_Runnable);
sewardje663cb92002-04-12 10:26:32 +00001860
1861 /* POSIX doesn't mandate this, but for sanity ... */
1862 if (mutex == NULL) {
1863 vg_threads[tid].m_edx = EINVAL;
1864 return;
1865 }
1866
sewardj604ec3c2002-04-18 22:38:41 +00001867 /* More paranoia ... */
1868 switch (mutex->__m_kind) {
sewardj2a1dcce2002-04-22 12:45:25 +00001869# ifndef GLIBC_2_1
sewardj604ec3c2002-04-18 22:38:41 +00001870 case PTHREAD_MUTEX_TIMED_NP:
sewardj2a1dcce2002-04-22 12:45:25 +00001871 case PTHREAD_MUTEX_ADAPTIVE_NP:
1872# endif
sewardj604ec3c2002-04-18 22:38:41 +00001873 case PTHREAD_MUTEX_RECURSIVE_NP:
1874 case PTHREAD_MUTEX_ERRORCHECK_NP:
sewardj604ec3c2002-04-18 22:38:41 +00001875 if (mutex->__m_count >= 0) break;
1876 /* else fall thru */
1877 default:
1878 vg_threads[tid].m_edx = EINVAL;
1879 return;
sewardje663cb92002-04-12 10:26:32 +00001880 }
1881
sewardj604ec3c2002-04-18 22:38:41 +00001882 if (mutex->__m_count > 0) {
sewardje663cb92002-04-12 10:26:32 +00001883
sewardj604ec3c2002-04-18 22:38:41 +00001884 vg_assert(is_valid_tid((ThreadId)mutex->__m_owner));
sewardjf8f819e2002-04-17 23:21:37 +00001885
1886 /* Someone has it already. */
sewardj604ec3c2002-04-18 22:38:41 +00001887 if ((ThreadId)mutex->__m_owner == tid) {
sewardjf8f819e2002-04-17 23:21:37 +00001888 /* It's locked -- by me! */
sewardj604ec3c2002-04-18 22:38:41 +00001889 if (mutex->__m_kind == PTHREAD_MUTEX_RECURSIVE_NP) {
sewardjf8f819e2002-04-17 23:21:37 +00001890 /* return 0 (success). */
sewardj604ec3c2002-04-18 22:38:41 +00001891 mutex->__m_count++;
sewardjf8f819e2002-04-17 23:21:37 +00001892 vg_threads[tid].m_edx = 0;
sewardj853f55d2002-04-26 00:27:53 +00001893 if (0)
1894 VG_(printf)("!!!!!! tid %d, mx %p -> locked %d\n",
1895 tid, mutex, mutex->__m_count);
sewardjf8f819e2002-04-17 23:21:37 +00001896 return;
1897 } else {
sewardj30671ff2002-04-21 00:13:57 +00001898 if (is_trylock)
1899 vg_threads[tid].m_edx = EBUSY;
1900 else
1901 vg_threads[tid].m_edx = EDEADLK;
sewardjf8f819e2002-04-17 23:21:37 +00001902 return;
1903 }
1904 } else {
sewardj6072c362002-04-19 14:40:57 +00001905 /* Someone else has it; we have to wait. Mark ourselves
1906 thusly. */
sewardj05553872002-04-20 20:53:17 +00001907 /* GUARD: __m_count > 0 && __m_owner is valid */
sewardj30671ff2002-04-21 00:13:57 +00001908 if (is_trylock) {
1909 /* caller is polling; so return immediately. */
1910 vg_threads[tid].m_edx = EBUSY;
1911 } else {
1912 vg_threads[tid].status = VgTs_WaitMX;
1913 vg_threads[tid].associated_mx = mutex;
sewardj5f07b662002-04-23 16:52:51 +00001914 vg_threads[tid].m_edx = 0; /* pth_mx_lock success value */
sewardj30671ff2002-04-21 00:13:57 +00001915 if (VG_(clo_trace_pthread_level) >= 1) {
1916 VG_(sprintf)(msg_buf, "%s mx %p: BLOCK",
1917 caller, mutex );
1918 print_pthread_event(tid, msg_buf);
1919 }
1920 }
sewardje663cb92002-04-12 10:26:32 +00001921 return;
1922 }
sewardjf8f819e2002-04-17 23:21:37 +00001923
sewardje663cb92002-04-12 10:26:32 +00001924 } else {
sewardj6072c362002-04-19 14:40:57 +00001925 /* Nobody owns it. Sanity check ... */
1926 vg_assert(mutex->__m_owner == VG_INVALID_THREADID);
sewardjf8f819e2002-04-17 23:21:37 +00001927 /* We get it! [for the first time]. */
sewardj604ec3c2002-04-18 22:38:41 +00001928 mutex->__m_count = 1;
1929 mutex->__m_owner = (_pthread_descr)tid;
sewardj3b5d8862002-04-20 13:53:23 +00001930 vg_assert(vg_threads[tid].associated_mx == NULL);
sewardje663cb92002-04-12 10:26:32 +00001931 /* return 0 (success). */
1932 vg_threads[tid].m_edx = 0;
1933 }
sewardjf8f819e2002-04-17 23:21:37 +00001934
sewardje663cb92002-04-12 10:26:32 +00001935}
1936
1937
1938static
1939void do_pthread_mutex_unlock ( ThreadId tid,
sewardjd7fd4d22002-04-24 01:57:27 +00001940 void* /* pthread_mutex_t* */ mutexV )
sewardje663cb92002-04-12 10:26:32 +00001941{
sewardj3b5d8862002-04-20 13:53:23 +00001942 Char msg_buf[100];
sewardjd7fd4d22002-04-24 01:57:27 +00001943 pthread_mutex_t* mutex = (pthread_mutex_t*)mutexV;
sewardje663cb92002-04-12 10:26:32 +00001944
sewardj45b4b372002-04-16 22:50:32 +00001945 if (VG_(clo_trace_pthread_level) >= 2) {
sewardj3b5d8862002-04-20 13:53:23 +00001946 VG_(sprintf)(msg_buf, "pthread_mutex_unlock mx %p ...", mutex );
sewardj8937c812002-04-12 20:12:20 +00001947 print_pthread_event(tid, msg_buf);
1948 }
1949
sewardj604ec3c2002-04-18 22:38:41 +00001950 /* Paranoia ... */
1951 vg_assert(is_valid_tid(tid)
1952 && vg_threads[tid].status == VgTs_Runnable);
1953
1954 if (mutex == NULL) {
1955 vg_threads[tid].m_edx = EINVAL;
1956 return;
1957 }
1958
1959 /* More paranoia ... */
1960 switch (mutex->__m_kind) {
sewardj2a1dcce2002-04-22 12:45:25 +00001961# ifndef GLIBC_2_1
sewardj604ec3c2002-04-18 22:38:41 +00001962 case PTHREAD_MUTEX_TIMED_NP:
sewardj2a1dcce2002-04-22 12:45:25 +00001963 case PTHREAD_MUTEX_ADAPTIVE_NP:
1964# endif
sewardj604ec3c2002-04-18 22:38:41 +00001965 case PTHREAD_MUTEX_RECURSIVE_NP:
1966 case PTHREAD_MUTEX_ERRORCHECK_NP:
sewardj604ec3c2002-04-18 22:38:41 +00001967 if (mutex->__m_count >= 0) break;
1968 /* else fall thru */
1969 default:
1970 vg_threads[tid].m_edx = EINVAL;
1971 return;
1972 }
sewardje663cb92002-04-12 10:26:32 +00001973
1974 /* Barf if we don't currently hold the mutex. */
sewardj604ec3c2002-04-18 22:38:41 +00001975 if (mutex->__m_count == 0 /* nobody holds it */
1976 || (ThreadId)mutex->__m_owner != tid /* we don't hold it */) {
sewardje663cb92002-04-12 10:26:32 +00001977 vg_threads[tid].m_edx = EPERM;
1978 return;
1979 }
1980
sewardjf8f819e2002-04-17 23:21:37 +00001981 /* If it's a multiply-locked recursive mutex, just decrement the
1982 lock count and return. */
sewardj604ec3c2002-04-18 22:38:41 +00001983 if (mutex->__m_count > 1) {
1984 vg_assert(mutex->__m_kind == PTHREAD_MUTEX_RECURSIVE_NP);
1985 mutex->__m_count --;
sewardjf8f819e2002-04-17 23:21:37 +00001986 vg_threads[tid].m_edx = 0; /* success */
1987 return;
1988 }
1989
sewardj604ec3c2002-04-18 22:38:41 +00001990 /* Now we're sure it is locked exactly once, and by the thread who
sewardjf8f819e2002-04-17 23:21:37 +00001991 is now doing an unlock on it. */
sewardj604ec3c2002-04-18 22:38:41 +00001992 vg_assert(mutex->__m_count == 1);
sewardj6072c362002-04-19 14:40:57 +00001993 vg_assert((ThreadId)mutex->__m_owner == tid);
sewardjf8f819e2002-04-17 23:21:37 +00001994
sewardj3b5d8862002-04-20 13:53:23 +00001995 /* Release at max one thread waiting on this mutex. */
1996 release_one_thread_waiting_on_mutex ( mutex, "pthread_mutex_lock" );
sewardje663cb92002-04-12 10:26:32 +00001997
sewardj3b5d8862002-04-20 13:53:23 +00001998 /* Our (tid's) pth_unlock() returns with 0 (success). */
sewardje663cb92002-04-12 10:26:32 +00001999 vg_threads[tid].m_edx = 0; /* Success. */
2000}
2001
2002
sewardj6072c362002-04-19 14:40:57 +00002003/* -----------------------------------------------------------
2004 CONDITION VARIABLES
2005 -------------------------------------------------------- */
sewardje663cb92002-04-12 10:26:32 +00002006
sewardj6072c362002-04-19 14:40:57 +00002007/* The relevant native types are as follows:
2008 (copied from /usr/include/bits/pthreadtypes.h)
sewardj77e466c2002-04-14 02:29:29 +00002009
sewardj6072c362002-04-19 14:40:57 +00002010 -- Conditions (not abstract because of PTHREAD_COND_INITIALIZER
2011 typedef struct
2012 {
2013 struct _pthread_fastlock __c_lock; -- Protect against concurrent access
2014 _pthread_descr __c_waiting; -- Threads waiting on this condition
2015 } pthread_cond_t;
sewardj77e466c2002-04-14 02:29:29 +00002016
sewardj6072c362002-04-19 14:40:57 +00002017 -- Attribute for conditionally variables.
2018 typedef struct
2019 {
2020 int __dummy;
2021 } pthread_condattr_t;
sewardj77e466c2002-04-14 02:29:29 +00002022
sewardj6072c362002-04-19 14:40:57 +00002023 #define PTHREAD_COND_INITIALIZER {__LOCK_INITIALIZER, 0}
sewardj77e466c2002-04-14 02:29:29 +00002024
sewardj3b5d8862002-04-20 13:53:23 +00002025 We don't use any fields of pthread_cond_t for anything at all.
2026 Only the identity of the CVs is important.
sewardj6072c362002-04-19 14:40:57 +00002027
2028 Linux pthreads supports no attributes on condition variables, so we
sewardj3b5d8862002-04-20 13:53:23 +00002029 don't need to think too hard there. */
sewardj6072c362002-04-19 14:40:57 +00002030
sewardj77e466c2002-04-14 02:29:29 +00002031
sewardj5f07b662002-04-23 16:52:51 +00002032static
2033void do_pthread_cond_timedwait_TIMEOUT ( ThreadId tid )
2034{
2035 Char msg_buf[100];
2036 pthread_mutex_t* mx;
2037 pthread_cond_t* cv;
2038
2039 vg_assert(is_valid_tid(tid)
2040 && vg_threads[tid].status == VgTs_WaitCV
2041 && vg_threads[tid].awaken_at != 0xFFFFFFFF);
2042 mx = vg_threads[tid].associated_mx;
2043 vg_assert(mx != NULL);
2044 cv = vg_threads[tid].associated_cv;
2045 vg_assert(cv != NULL);
2046
2047 if (mx->__m_owner == VG_INVALID_THREADID) {
2048 /* Currently unheld; hand it out to thread tid. */
2049 vg_assert(mx->__m_count == 0);
2050 vg_threads[tid].status = VgTs_Runnable;
2051 vg_threads[tid].m_edx = ETIMEDOUT;
2052 /* pthread_cond_wait return value */
2053 vg_threads[tid].associated_cv = NULL;
2054 vg_threads[tid].associated_mx = NULL;
2055 mx->__m_owner = (_pthread_descr)tid;
2056 mx->__m_count = 1;
2057
2058 if (VG_(clo_trace_pthread_level) >= 1) {
2059 VG_(sprintf)(msg_buf, "pthread_cond_timedwai cv %p: TIMEOUT with mx %p",
2060 cv, mx );
2061 print_pthread_event(tid, msg_buf);
2062 }
2063 } else {
2064 /* Currently held. Make thread tid be blocked on it. */
2065 vg_assert(mx->__m_count > 0);
2066 vg_threads[tid].status = VgTs_WaitMX;
2067 vg_threads[tid].m_edx = ETIMEDOUT;
2068 /* pthread_cond_wait return value */
2069 vg_threads[tid].associated_cv = NULL;
2070 vg_threads[tid].associated_mx = mx;
2071 if (VG_(clo_trace_pthread_level) >= 1) {
2072 VG_(sprintf)(msg_buf,
2073 "pthread_cond_timedwai cv %p: TIMEOUT -> BLOCK for mx %p",
2074 cv, mx );
2075 print_pthread_event(tid, msg_buf);
2076 }
2077
2078 }
2079}
2080
2081
sewardj3b5d8862002-04-20 13:53:23 +00002082static
2083void release_N_threads_waiting_on_cond ( pthread_cond_t* cond,
2084 Int n_to_release,
2085 Char* caller )
2086{
2087 Int i;
2088 Char msg_buf[100];
2089 pthread_mutex_t* mx;
2090
2091 while (True) {
2092 if (n_to_release == 0)
2093 return;
2094
2095 /* Find a thread waiting on this CV. */
2096 for (i = 1; i < VG_N_THREADS; i++) {
2097 if (vg_threads[i].status == VgTs_Empty)
2098 continue;
2099 if (vg_threads[i].status == VgTs_WaitCV
2100 && vg_threads[i].associated_cv == cond)
2101 break;
2102 }
2103 vg_assert(i <= VG_N_THREADS);
2104
2105 if (i == VG_N_THREADS) {
2106 /* Nobody else is waiting on it. */
2107 return;
2108 }
2109
2110 mx = vg_threads[i].associated_mx;
2111 vg_assert(mx != NULL);
2112
2113 if (mx->__m_owner == VG_INVALID_THREADID) {
2114 /* Currently unheld; hand it out to thread i. */
2115 vg_assert(mx->__m_count == 0);
2116 vg_threads[i].status = VgTs_Runnable;
2117 vg_threads[i].associated_cv = NULL;
2118 vg_threads[i].associated_mx = NULL;
2119 mx->__m_owner = (_pthread_descr)i;
2120 mx->__m_count = 1;
sewardj5f07b662002-04-23 16:52:51 +00002121 /* .m_edx already holds pth_cond_wait success value (0) */
sewardj3b5d8862002-04-20 13:53:23 +00002122
2123 if (VG_(clo_trace_pthread_level) >= 1) {
2124 VG_(sprintf)(msg_buf, "%s cv %p: RESUME with mx %p",
2125 caller, cond, mx );
2126 print_pthread_event(i, msg_buf);
2127 }
2128
2129 } else {
2130 /* Currently held. Make thread i be blocked on it. */
sewardj5f07b662002-04-23 16:52:51 +00002131 vg_assert(mx->__m_count > 0);
sewardj3b5d8862002-04-20 13:53:23 +00002132 vg_threads[i].status = VgTs_WaitMX;
2133 vg_threads[i].associated_cv = NULL;
2134 vg_threads[i].associated_mx = mx;
sewardj5f07b662002-04-23 16:52:51 +00002135 vg_threads[i].m_edx = 0; /* pth_cond_wait success value */
sewardj3b5d8862002-04-20 13:53:23 +00002136
2137 if (VG_(clo_trace_pthread_level) >= 1) {
2138 VG_(sprintf)(msg_buf, "%s cv %p: BLOCK for mx %p",
2139 caller, cond, mx );
2140 print_pthread_event(i, msg_buf);
2141 }
2142
2143 }
2144
2145 n_to_release--;
2146 }
2147}
2148
2149
2150static
2151void do_pthread_cond_wait ( ThreadId tid,
2152 pthread_cond_t *cond,
sewardj5f07b662002-04-23 16:52:51 +00002153 pthread_mutex_t *mutex,
2154 UInt ms_end )
sewardj3b5d8862002-04-20 13:53:23 +00002155{
2156 Char msg_buf[100];
2157
sewardj5f07b662002-04-23 16:52:51 +00002158 /* If ms_end == 0xFFFFFFFF, wait forever (no timeout). Otherwise,
2159 ms_end is the ending millisecond. */
2160
sewardj3b5d8862002-04-20 13:53:23 +00002161 /* pre: mutex should be a valid mutex and owned by tid. */
2162 if (VG_(clo_trace_pthread_level) >= 2) {
sewardj5f07b662002-04-23 16:52:51 +00002163 VG_(sprintf)(msg_buf, "pthread_cond_wait cv %p, mx %p, end %d ...",
2164 cond, mutex, ms_end );
sewardj3b5d8862002-04-20 13:53:23 +00002165 print_pthread_event(tid, msg_buf);
2166 }
2167
2168 /* Paranoia ... */
2169 vg_assert(is_valid_tid(tid)
2170 && vg_threads[tid].status == VgTs_Runnable);
2171
2172 if (mutex == NULL || cond == NULL) {
2173 vg_threads[tid].m_edx = EINVAL;
2174 return;
2175 }
2176
2177 /* More paranoia ... */
2178 switch (mutex->__m_kind) {
sewardj2a1dcce2002-04-22 12:45:25 +00002179# ifndef GLIBC_2_1
sewardj3b5d8862002-04-20 13:53:23 +00002180 case PTHREAD_MUTEX_TIMED_NP:
sewardj2a1dcce2002-04-22 12:45:25 +00002181 case PTHREAD_MUTEX_ADAPTIVE_NP:
2182# endif
sewardj3b5d8862002-04-20 13:53:23 +00002183 case PTHREAD_MUTEX_RECURSIVE_NP:
2184 case PTHREAD_MUTEX_ERRORCHECK_NP:
sewardj3b5d8862002-04-20 13:53:23 +00002185 if (mutex->__m_count >= 0) break;
2186 /* else fall thru */
2187 default:
2188 vg_threads[tid].m_edx = EINVAL;
2189 return;
2190 }
2191
2192 /* Barf if we don't currently hold the mutex. */
2193 if (mutex->__m_count == 0 /* nobody holds it */
2194 || (ThreadId)mutex->__m_owner != tid /* we don't hold it */) {
2195 vg_threads[tid].m_edx = EINVAL;
2196 return;
2197 }
2198
2199 /* Queue ourselves on the condition. */
2200 vg_threads[tid].status = VgTs_WaitCV;
2201 vg_threads[tid].associated_cv = cond;
2202 vg_threads[tid].associated_mx = mutex;
sewardj5f07b662002-04-23 16:52:51 +00002203 vg_threads[tid].awaken_at = ms_end;
sewardj3b5d8862002-04-20 13:53:23 +00002204
2205 if (VG_(clo_trace_pthread_level) >= 1) {
2206 VG_(sprintf)(msg_buf,
2207 "pthread_cond_wait cv %p, mx %p: BLOCK",
2208 cond, mutex );
2209 print_pthread_event(tid, msg_buf);
2210 }
2211
2212 /* Release the mutex. */
2213 release_one_thread_waiting_on_mutex ( mutex, "pthread_cond_wait " );
2214}
2215
2216
2217static
2218void do_pthread_cond_signal_or_broadcast ( ThreadId tid,
2219 Bool broadcast,
2220 pthread_cond_t *cond )
2221{
2222 Char msg_buf[100];
2223 Char* caller
2224 = broadcast ? "pthread_cond_broadcast"
2225 : "pthread_cond_signal ";
2226
2227 if (VG_(clo_trace_pthread_level) >= 2) {
2228 VG_(sprintf)(msg_buf, "%s cv %p ...",
2229 caller, cond );
2230 print_pthread_event(tid, msg_buf);
2231 }
2232
2233 /* Paranoia ... */
2234 vg_assert(is_valid_tid(tid)
2235 && vg_threads[tid].status == VgTs_Runnable);
2236
2237 if (cond == NULL) {
2238 vg_threads[tid].m_edx = EINVAL;
2239 return;
2240 }
2241
2242 release_N_threads_waiting_on_cond (
2243 cond,
2244 broadcast ? VG_N_THREADS : 1,
2245 caller
2246 );
2247
2248 vg_threads[tid].m_edx = 0; /* success */
2249}
2250
sewardj77e466c2002-04-14 02:29:29 +00002251
sewardj5f07b662002-04-23 16:52:51 +00002252/* -----------------------------------------------------------
2253 THREAD SPECIFIC DATA
2254 -------------------------------------------------------- */
2255
2256static __inline__
2257Bool is_valid_key ( ThreadKey k )
2258{
2259 /* k unsigned; hence no < 0 check */
2260 if (k >= VG_N_THREAD_KEYS) return False;
2261 if (!vg_thread_keys[k].inuse) return False;
2262 return True;
2263}
2264
2265static
2266void do_pthread_key_create ( ThreadId tid,
2267 pthread_key_t* key,
2268 void (*destructor)(void*) )
2269{
2270 Int i;
2271 Char msg_buf[100];
2272
2273 if (VG_(clo_trace_pthread_level) >= 1) {
2274 VG_(sprintf)(msg_buf, "pthread_key_create *key %p, destr %p",
2275 key, destructor );
2276 print_pthread_event(tid, msg_buf);
2277 }
2278
2279 vg_assert(sizeof(pthread_key_t) == sizeof(ThreadKey));
2280 vg_assert(is_valid_tid(tid)
2281 && vg_threads[tid].status == VgTs_Runnable);
2282
2283 for (i = 0; i < VG_N_THREAD_KEYS; i++)
2284 if (!vg_thread_keys[i].inuse)
2285 break;
2286
2287 if (i == VG_N_THREAD_KEYS) {
2288 /* vg_threads[tid].m_edx = EAGAIN;
2289 return;
2290 */
2291 VG_(panic)("pthread_key_create: VG_N_THREAD_KEYS is too low;"
2292 " increase and recompile");
2293 }
2294
2295 vg_thread_keys[i].inuse = True;
2296 /* TODO: check key for addressibility */
2297 *key = i;
2298 vg_threads[tid].m_edx = 0;
2299}
2300
2301
2302static
2303void do_pthread_key_delete ( ThreadId tid, pthread_key_t key )
2304{
2305 Char msg_buf[100];
2306 if (VG_(clo_trace_pthread_level) >= 1) {
2307 VG_(sprintf)(msg_buf, "pthread_key_delete key %d",
2308 key );
2309 print_pthread_event(tid, msg_buf);
2310 }
2311
2312 vg_assert(is_valid_tid(tid)
2313 && vg_threads[tid].status == VgTs_Runnable);
2314
2315 if (!is_valid_key(key)) {
2316 vg_threads[tid].m_edx = EINVAL;
2317 return;
2318 }
2319
2320 vg_thread_keys[key].inuse = False;
2321
2322 /* Optional. We're not required to do this, although it shouldn't
2323 make any difference to programs which use the key/specifics
2324 functions correctly. */
sewardj3b13f0e2002-04-25 20:17:29 +00002325# if 1
sewardj5f07b662002-04-23 16:52:51 +00002326 for (tid = 1; tid < VG_N_THREADS; tid++) {
2327 if (vg_threads[tid].status != VgTs_Empty)
2328 vg_threads[tid].specifics[key] = NULL;
2329 }
sewardj3b13f0e2002-04-25 20:17:29 +00002330# endif
sewardj5f07b662002-04-23 16:52:51 +00002331}
2332
2333
2334static
2335void do_pthread_getspecific ( ThreadId tid, pthread_key_t key )
2336{
2337 Char msg_buf[100];
2338 if (VG_(clo_trace_pthread_level) >= 1) {
2339 VG_(sprintf)(msg_buf, "pthread_getspecific key %d",
2340 key );
2341 print_pthread_event(tid, msg_buf);
2342 }
2343
2344 vg_assert(is_valid_tid(tid)
2345 && vg_threads[tid].status == VgTs_Runnable);
2346
2347 if (!is_valid_key(key)) {
2348 vg_threads[tid].m_edx = (UInt)NULL;
2349 return;
2350 }
2351
2352 vg_threads[tid].m_edx = (UInt)vg_threads[tid].specifics[key];
2353}
2354
2355
2356static
2357void do_pthread_setspecific ( ThreadId tid,
2358 pthread_key_t key,
2359 void *pointer )
2360{
2361 Char msg_buf[100];
2362 if (VG_(clo_trace_pthread_level) >= 1) {
2363 VG_(sprintf)(msg_buf, "pthread_setspecific key %d, ptr %p",
2364 key, pointer );
2365 print_pthread_event(tid, msg_buf);
2366 }
2367
2368 vg_assert(is_valid_tid(tid)
2369 && vg_threads[tid].status == VgTs_Runnable);
2370
2371 if (!is_valid_key(key)) {
2372 vg_threads[tid].m_edx = EINVAL;
2373 return;
2374 }
2375
2376 vg_threads[tid].specifics[key] = pointer;
2377 vg_threads[tid].m_edx = 0;
2378}
2379
2380
sewardje663cb92002-04-12 10:26:32 +00002381/* ---------------------------------------------------------------------
2382 Handle non-trivial client requests.
2383 ------------------------------------------------------------------ */
2384
2385static
2386void do_nontrivial_clientreq ( ThreadId tid )
2387{
2388 UInt* arg = (UInt*)(vg_threads[tid].m_eax);
2389 UInt req_no = arg[0];
2390 switch (req_no) {
2391
2392 case VG_USERREQ__PTHREAD_CREATE:
2393 do_pthread_create( tid,
2394 (pthread_t*)arg[1],
2395 (pthread_attr_t*)arg[2],
2396 (void*(*)(void*))arg[3],
2397 (void*)arg[4] );
2398 break;
2399
sewardjbc5b99f2002-04-13 00:08:51 +00002400 case VG_USERREQ__PTHREAD_RETURNS:
2401 handle_pthread_return( tid, (void*)arg[1] );
sewardje663cb92002-04-12 10:26:32 +00002402 break;
2403
2404 case VG_USERREQ__PTHREAD_JOIN:
2405 do_pthread_join( tid, arg[1], (void**)(arg[2]) );
2406 break;
2407
sewardje663cb92002-04-12 10:26:32 +00002408 case VG_USERREQ__PTHREAD_CANCEL:
2409 do_pthread_cancel( tid, (pthread_t)(arg[1]) );
2410 break;
2411
sewardj3b5d8862002-04-20 13:53:23 +00002412 case VG_USERREQ__PTHREAD_EXIT:
2413 do_pthread_exit( tid, (void*)(arg[1]) );
2414 break;
2415
2416 case VG_USERREQ__PTHREAD_COND_WAIT:
2417 do_pthread_cond_wait( tid,
2418 (pthread_cond_t *)(arg[1]),
sewardj5f07b662002-04-23 16:52:51 +00002419 (pthread_mutex_t *)(arg[2]),
2420 0xFFFFFFFF /* no timeout */ );
2421 break;
2422
2423 case VG_USERREQ__PTHREAD_COND_TIMEDWAIT:
2424 do_pthread_cond_wait( tid,
2425 (pthread_cond_t *)(arg[1]),
2426 (pthread_mutex_t *)(arg[2]),
2427 arg[3] /* timeout millisecond point */ );
sewardj3b5d8862002-04-20 13:53:23 +00002428 break;
2429
2430 case VG_USERREQ__PTHREAD_COND_SIGNAL:
2431 do_pthread_cond_signal_or_broadcast(
2432 tid,
2433 False, /* signal, not broadcast */
2434 (pthread_cond_t *)(arg[1]) );
2435 break;
2436
2437 case VG_USERREQ__PTHREAD_COND_BROADCAST:
2438 do_pthread_cond_signal_or_broadcast(
2439 tid,
2440 True, /* broadcast, not signal */
2441 (pthread_cond_t *)(arg[1]) );
2442 break;
2443
sewardj5f07b662002-04-23 16:52:51 +00002444 case VG_USERREQ__PTHREAD_KEY_CREATE:
2445 do_pthread_key_create ( tid,
2446 (pthread_key_t*)(arg[1]),
2447 (void(*)(void*))(arg[2]) );
2448 break;
2449
2450 case VG_USERREQ__PTHREAD_KEY_DELETE:
2451 do_pthread_key_delete ( tid,
2452 (pthread_key_t)(arg[1]) );
2453 break;
2454
sewardj5f07b662002-04-23 16:52:51 +00002455 case VG_USERREQ__PTHREAD_SETSPECIFIC:
2456 do_pthread_setspecific ( tid,
2457 (pthread_key_t)(arg[1]),
2458 (void*)(arg[2]) );
2459 break;
2460
sewardje663cb92002-04-12 10:26:32 +00002461 case VG_USERREQ__MAKE_NOACCESS:
2462 case VG_USERREQ__MAKE_WRITABLE:
2463 case VG_USERREQ__MAKE_READABLE:
2464 case VG_USERREQ__DISCARD:
2465 case VG_USERREQ__CHECK_WRITABLE:
2466 case VG_USERREQ__CHECK_READABLE:
2467 case VG_USERREQ__MAKE_NOACCESS_STACK:
2468 case VG_USERREQ__RUNNING_ON_VALGRIND:
2469 case VG_USERREQ__DO_LEAK_CHECK:
sewardj8c824512002-04-14 04:16:48 +00002470 vg_threads[tid].m_edx
2471 = VG_(handle_client_request) ( &vg_threads[tid], arg );
sewardje663cb92002-04-12 10:26:32 +00002472 break;
2473
sewardj77e466c2002-04-14 02:29:29 +00002474 case VG_USERREQ__SIGNAL_RETURNS:
2475 handle_signal_return(tid);
2476 break;
sewardj54cacf02002-04-12 23:24:59 +00002477
sewardje663cb92002-04-12 10:26:32 +00002478 default:
2479 VG_(printf)("panic'd on private request = 0x%x\n", arg[0] );
2480 VG_(panic)("handle_private_client_pthread_request: "
2481 "unknown request");
2482 /*NOTREACHED*/
2483 break;
2484 }
2485}
2486
2487
sewardj6072c362002-04-19 14:40:57 +00002488/* ---------------------------------------------------------------------
2489 Sanity checking.
2490 ------------------------------------------------------------------ */
2491
2492/* Internal consistency checks on the sched/pthread structures. */
2493static
2494void scheduler_sanity ( void )
2495{
sewardj3b5d8862002-04-20 13:53:23 +00002496 pthread_mutex_t* mx;
2497 pthread_cond_t* cv;
sewardj6072c362002-04-19 14:40:57 +00002498 Int i;
sewardj5f07b662002-04-23 16:52:51 +00002499
sewardj6072c362002-04-19 14:40:57 +00002500 /* VG_(printf)("scheduler_sanity\n"); */
2501 for (i = 1; i < VG_N_THREADS; i++) {
sewardj3b5d8862002-04-20 13:53:23 +00002502 mx = vg_threads[i].associated_mx;
2503 cv = vg_threads[i].associated_cv;
sewardj6072c362002-04-19 14:40:57 +00002504 if (vg_threads[i].status == VgTs_WaitMX) {
sewardj05553872002-04-20 20:53:17 +00002505 /* If we're waiting on a MX: (1) the mx is not null, (2, 3)
2506 it's actually held by someone, since otherwise this thread
2507 is deadlocked, (4) the mutex's owner is not us, since
2508 otherwise this thread is also deadlocked. The logic in
2509 do_pthread_mutex_lock rejects attempts by a thread to lock
2510 a (non-recursive) mutex which it already owns.
2511
2512 (2) has been seen to fail sometimes. I don't know why.
2513 Possibly to do with signals. */
sewardj3b5d8862002-04-20 13:53:23 +00002514 vg_assert(cv == NULL);
sewardj05553872002-04-20 20:53:17 +00002515 /* 1 */ vg_assert(mx != NULL);
2516 /* 2 */ vg_assert(mx->__m_count > 0);
2517 /* 3 */ vg_assert(is_valid_tid((ThreadId)mx->__m_owner));
2518 /* 4 */ vg_assert(i != (ThreadId)mx->__m_owner);
sewardj3b5d8862002-04-20 13:53:23 +00002519 } else
2520 if (vg_threads[i].status == VgTs_WaitCV) {
2521 vg_assert(cv != NULL);
2522 vg_assert(mx != NULL);
sewardj6072c362002-04-19 14:40:57 +00002523 } else {
sewardj05553872002-04-20 20:53:17 +00002524 /* Unfortunately these don't hold true when a sighandler is
2525 running. To be fixed. */
2526 /* vg_assert(cv == NULL); */
2527 /* vg_assert(mx == NULL); */
sewardj6072c362002-04-19 14:40:57 +00002528 }
2529 }
sewardj5f07b662002-04-23 16:52:51 +00002530
2531 for (i = 0; i < VG_N_THREAD_KEYS; i++) {
2532 if (!vg_thread_keys[i].inuse)
2533 vg_assert(vg_thread_keys[i].destructor == NULL);
2534 }
sewardj6072c362002-04-19 14:40:57 +00002535}
2536
2537
sewardje663cb92002-04-12 10:26:32 +00002538/*--------------------------------------------------------------------*/
2539/*--- end vg_scheduler.c ---*/
2540/*--------------------------------------------------------------------*/