0b380204a4
Former-commit-id: 7a84ce7d08c42c458ac8e74b27186ca863315d79
555 lines
14 KiB
C
555 lines
14 KiB
C
/*
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* <signal.h> wrapper functions.
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*
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* Authors:
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* Jonathan Pryor (jonpryor@vt.edu)
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* Jonathan Pryor (jpryor@novell.com)
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* Tim Jenks (tim.jenks@realtimeworlds.com)
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*
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* Copyright (C) 2004-2005 Jonathan Pryor
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* Copyright (C) 2008 Novell, Inc.
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*/
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#include <signal.h>
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#include "map.h"
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#include "mph.h"
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#ifndef HOST_WIN32
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#include <sys/time.h>
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#include <sys/types.h>
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#if defined(HAVE_POLL_H)
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#include <poll.h>
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#elif defined(HAVE_SYS_POLL_H)
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#include <sys/poll.h>
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#endif
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#include <unistd.h>
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#include <stdlib.h>
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#include <string.h>
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#include <pthread.h>
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#include <mono/utils/atomic.h>
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#include <mono/metadata/appdomain.h>
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#endif
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G_BEGIN_DECLS
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typedef void (*mph_sighandler_t)(int);
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typedef struct Mono_Unix_UnixSignal_SignalInfo signal_info;
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#ifndef HOST_WIN32
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static int count_handlers (int signum);
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#endif
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void*
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Mono_Posix_Stdlib_SIG_DFL (void)
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{
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return SIG_DFL;
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}
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void*
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Mono_Posix_Stdlib_SIG_ERR (void)
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{
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return SIG_ERR;
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}
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void*
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Mono_Posix_Stdlib_SIG_IGN (void)
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{
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return SIG_IGN;
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}
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void
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Mono_Posix_Stdlib_InvokeSignalHandler (int signum, void *handler)
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{
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mph_sighandler_t _h = (mph_sighandler_t) handler;
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_h (signum);
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}
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int Mono_Posix_SIGRTMIN (void)
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{
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#ifdef SIGRTMIN
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return SIGRTMIN;
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#else /* def SIGRTMIN */
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return -1;
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#endif /* ndef SIGRTMIN */
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}
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int Mono_Posix_SIGRTMAX (void)
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{
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#ifdef SIGRTMAX
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return SIGRTMAX;
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#else /* def SIGRTMAX */
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return -1;
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#endif /* ndef SIGRTMAX */
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}
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int Mono_Posix_FromRealTimeSignum (int offset, int *r)
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{
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if (NULL == r) {
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errno = EINVAL;
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return -1;
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}
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*r = 0;
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#if defined (SIGRTMIN) && defined (SIGRTMAX)
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if ((offset < 0) || (SIGRTMIN > SIGRTMAX - offset)) {
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errno = EINVAL;
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return -1;
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}
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*r = SIGRTMIN+offset;
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return 0;
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#else /* defined (SIGRTMIN) && defined (SIGRTMAX) */
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# ifdef ENOSYS
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errno = ENOSYS;
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# endif /* ENOSYS */
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return -1;
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#endif /* defined (SIGRTMIN) && defined (SIGRTMAX) */
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}
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#ifndef HOST_WIN32
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// Atomicity rules: Fields of signal_info read or written by the signal handler
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// (see UnixSignal.cs) should be read and written using atomic functions.
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// (For simplicity, we're protecting some things we don't strictly need to.)
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// Because we are in MonoPosixHelper, we are banned from linking mono.
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// We can still use atomic.h because that's all inline functions--
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// unless WAPI_NO_ATOMIC_ASM is defined, in which case atomic.h calls linked functions.
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#ifndef WAPI_NO_ATOMIC_ASM
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#define mph_int_get(p) mono_atomic_fetch_add_i32 ((p), 0)
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#define mph_int_inc(p) mono_atomic_inc_i32 ((p))
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#define mph_int_dec_test(p) (mono_atomic_dec_i32 ((p)) == 0)
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#define mph_int_set(p,n) mono_atomic_xchg_i32 ((p), (n))
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// Pointer, original, new
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#define mph_int_test_and_set(p,o,n) (o == mono_atomic_cas_i32 ((p), (n), (o)))
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#elif GLIB_CHECK_VERSION(2,4,0)
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#define mph_int_get(p) g_atomic_int_get ((p))
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#define mph_int_inc(p) do {g_atomic_int_inc ((p));} while (0)
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#define mph_int_dec_test(p) g_atomic_int_dec_and_test ((p))
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#define mph_int_set(p,n) g_atomic_int_set ((p),(n))
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#define mph_int_test_and_set(p,o,n) g_atomic_int_compare_and_exchange ((p), (o), (n))
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#else
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#error "GLIB 2.4 required because building without ASM atomics"
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#endif
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#if HAVE_PSIGNAL
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/*
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* HACK: similar to the mkdtemp one in glib; turns out gcc "helpfully"
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* shadows system headers with "fixed" versions that omit functions...
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* in any case, psignal is another victim of poor GNU decisions. Even
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* then, we may have to do this anyways, as psignal, while present in
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* libc, isn't in PASE headers - so do it anyways
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*/
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#if defined(_AIX)
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extern void psignal(int, const char *);
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#endif
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int
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Mono_Posix_Syscall_psignal (int sig, const char* s)
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{
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errno = 0;
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psignal (sig, s);
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return errno == 0 ? 0 : -1;
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}
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#endif /* def HAVE_PSIGNAL */
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#define NUM_SIGNALS 64
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static signal_info signals[NUM_SIGNALS];
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static int acquire_mutex (pthread_mutex_t *mutex)
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{
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int mr;
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while ((mr = pthread_mutex_lock (mutex)) == EAGAIN) {
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/* try to acquire again */
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}
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if ((mr != 0) && (mr != EDEADLK)) {
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errno = mr;
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return -1;
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}
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return 0;
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}
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static void release_mutex (pthread_mutex_t *mutex)
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{
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int mr;
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while ((mr = pthread_mutex_unlock (mutex)) == EAGAIN) {
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/* try to release mutex again */
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}
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}
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static int
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keep_trying (int r)
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{
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return r == -1 && errno == EINTR;
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}
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// This tiny ad-hoc read/write lock is needed because of the very specific
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// synchronization needed between default_handler and teardown_pipes:
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// - Many default_handlers can be running at once
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// - The signals_mutex already ensures only one teardown_pipes runs at once
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// - If teardown_pipes starts while a default_handler is ongoing, it must block
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// - If default_handler starts while a teardown_pipes is ongoing, it must *not* block
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// Locks are implemented as ints.
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// The lock is split into a teardown bit and a handler count (sign bit unused).
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// There is a teardown running or waiting to run if the teardown bit is set.
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// There is a handler running if the handler count is nonzero.
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#define PIPELOCK_TEARDOWN_BIT ( (int)0x40000000 )
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#define PIPELOCK_COUNT_MASK (~((int)0xC0000000))
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#define PIPELOCK_GET_COUNT(x) ((x) & PIPELOCK_COUNT_MASK)
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#define PIPELOCK_INCR_COUNT(x, by) (((x) & PIPELOCK_TEARDOWN_BIT) | (PIPELOCK_GET_COUNT (PIPELOCK_GET_COUNT (x) + (by))))
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static void
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acquire_pipelock_teardown (int *lock)
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{
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int lockvalue_draining;
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// First mark that a teardown is occurring, so handlers will stop entering the lock.
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while (1) {
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int lockvalue = mph_int_get (lock);
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lockvalue_draining = lockvalue | PIPELOCK_TEARDOWN_BIT;
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if (mph_int_test_and_set (lock, lockvalue, lockvalue_draining))
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break;
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}
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// Now wait for all handlers to complete.
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while (1) {
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if (0 == PIPELOCK_GET_COUNT (lockvalue_draining))
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break; // We now hold the lock.
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// Handler is still running, spin until it completes.
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sched_yield (); // We can call this because !defined(HOST_WIN32)
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lockvalue_draining = mph_int_get (lock);
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}
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}
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static void
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release_pipelock_teardown (int *lock)
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{
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while (1) {
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int lockvalue = mph_int_get (lock);
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int lockvalue_new = lockvalue & ~PIPELOCK_TEARDOWN_BIT;
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// Technically this can't fail, because we hold both the pipelock and the mutex, but
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if (mph_int_test_and_set (lock, lockvalue, lockvalue_new))
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return;
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}
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}
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// Return 1 for success
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static int
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acquire_pipelock_handler (int *lock)
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{
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while (1) {
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int lockvalue = mph_int_get (lock);
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if (lockvalue & PIPELOCK_TEARDOWN_BIT) // Final lock is being torn down
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return 0;
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int lockvalue_new = PIPELOCK_INCR_COUNT (lockvalue, 1);
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if (mph_int_test_and_set (lock, lockvalue, lockvalue_new))
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return 1;
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}
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}
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static void
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release_pipelock_handler (int *lock)
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{
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while (1) {
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int lockvalue = mph_int_get (lock);
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int lockvalue_new = PIPELOCK_INCR_COUNT (lockvalue, -1);
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if (mph_int_test_and_set (lock, lockvalue, lockvalue_new))
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return;
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}
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}
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// This handler is registered once for each UnixSignal object. A pipe is maintained
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// for each one; Wait users read at one end of this pipe, and default_handler sends
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// a write on the pipe for each signal received while the Wait is ongoing.
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//
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// Notice a fairly unlikely race condition exists here: Because we synchronize with
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// pipe teardown, but not install/uninstall (in other words, we are only trying to
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// protect against writing on a closed pipe) it is technically possible a full
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// uninstall and then an install could complete after signum is checked but before
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// the remaining instructions execute. In this unlikely case count could be
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// incremented or a byte written on the wrong signal handler.
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static void
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default_handler (int signum)
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{
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int i;
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for (i = 0; i < NUM_SIGNALS; ++i) {
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int fd;
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signal_info* h = &signals [i];
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if (mph_int_get (&h->signum) != signum)
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continue;
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mph_int_inc (&h->count);
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if (!acquire_pipelock_handler (&h->pipelock))
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continue; // Teardown is occurring on this object, no one to send to.
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fd = mph_int_get (&h->write_fd);
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if (fd > 0) { // If any listener exists to write to
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int j,pipecounter;
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char c = signum; // (Value is meaningless)
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pipecounter = mph_int_get (&h->pipecnt); // Write one byte per pipe listener
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for (j = 0; j < pipecounter; ++j) {
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int r;
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do { r = write (fd, &c, 1); } while (keep_trying (r));
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}
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}
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release_pipelock_handler (&h->pipelock);
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}
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}
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static pthread_mutex_t signals_mutex = PTHREAD_MUTEX_INITIALIZER;
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// A UnixSignal object is being constructed
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void*
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Mono_Unix_UnixSignal_install (int sig)
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{
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#if defined(HAVE_SIGNAL)
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int i;
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signal_info* h = NULL; // signals[] slot to install to
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int have_handler = 0; // Candidates for signal_info handler fields
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void* handler = NULL;
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if (acquire_mutex (&signals_mutex) == -1)
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return NULL;
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#if defined (SIGRTMIN) && defined (SIGRTMAX)
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/*The runtime uses some rt signals for itself so it's important to not override them.*/
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if (sig >= SIGRTMIN && sig <= SIGRTMAX && count_handlers (sig) == 0) {
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struct sigaction sinfo;
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sigaction (sig, NULL, &sinfo);
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if (sinfo.sa_handler != SIG_DFL || (void*)sinfo.sa_sigaction != (void*)SIG_DFL) {
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pthread_mutex_unlock (&signals_mutex);
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errno = EADDRINUSE;
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return NULL; // This is an rt signal with an existing handler. Bail out.
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}
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}
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#endif /*defined (SIGRTMIN) && defined (SIGRTMAX)*/
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// Scan through signals list looking for (1) an unused spot (2) a usable value for handler
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for (i = 0; i < NUM_SIGNALS; ++i) {
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int just_installed = 0;
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// We're still looking for a signal_info spot, and this one is available:
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if (h == NULL && mph_int_get (&signals [i].signum) == 0) {
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h = &signals [i];
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h->handler = signal (sig, default_handler);
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if (h->handler == SIG_ERR) {
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h->handler = NULL;
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h = NULL;
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break;
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}
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else {
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just_installed = 1;
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}
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}
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// Check if this slot has a "usable" (not installed by this file) handler-to-restore-later:
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// (On the first signal to be installed, signals [i] will be == h when this happens.)
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if (!have_handler && (just_installed || mph_int_get (&signals [i].signum) == sig) &&
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signals [i].handler != default_handler) {
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have_handler = 1;
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handler = signals [i].handler;
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}
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if (h && have_handler) // We have everything we need
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break;
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}
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if (h) {
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// If we reached here without have_handler, this means that default_handler
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// was set as the signal handler before the first UnixSignal object was installed.
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g_assert (have_handler);
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// Overwrite the tenative handler we set a moment ago with a known-usable one
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h->handler = handler;
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h->have_handler = 1;
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mph_int_set (&h->count, 0);
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mph_int_set (&h->pipecnt, 0);
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mph_int_set (&h->signum, sig);
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}
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release_mutex (&signals_mutex);
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return h;
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#else
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g_error ("signal() is not supported by this platform");
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return 0;
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#endif
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}
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static int
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count_handlers (int signum)
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{
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int i;
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int count = 0;
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for (i = 0; i < NUM_SIGNALS; ++i) {
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if (mph_int_get (&signals [i].signum) == signum)
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++count;
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}
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return count;
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}
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// A UnixSignal object is being Disposed
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int
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Mono_Unix_UnixSignal_uninstall (void* info)
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{
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#if defined(HAVE_SIGNAL)
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signal_info* h;
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int r = -1;
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if (acquire_mutex (&signals_mutex) == -1)
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return -1;
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h = info;
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if (h == NULL || h < signals || h > &signals [NUM_SIGNALS])
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errno = EINVAL;
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else {
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/* last UnixSignal -- we can unregister */
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int signum = mph_int_get (&h->signum);
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if (h->have_handler && count_handlers (signum) == 1) {
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mph_sighandler_t p = signal (signum, h->handler);
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if (p != SIG_ERR)
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r = 0;
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h->handler = NULL;
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h->have_handler = 0;
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}
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mph_int_set (&h->signum, 0);
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}
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release_mutex (&signals_mutex);
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return r;
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#else
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g_error ("signal() is not supported by this platform");
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return 0;
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#endif
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}
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// Set up a signal_info to begin waiting for signal
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static int
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setup_pipes (signal_info** signals, int count, struct pollfd *fd_structs, int *currfd)
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{
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int i;
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int r = 0;
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for (i = 0; i < count; ++i) {
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signal_info* h;
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int filedes[2];
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h = signals [i];
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if (mph_int_get (&h->pipecnt) == 0) { // First listener for this signal_info
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if ((r = pipe (filedes)) != 0) {
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break;
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}
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mph_int_set (&h->read_fd, filedes [0]);
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mph_int_set (&h->write_fd, filedes [1]);
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}
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mph_int_inc (&h->pipecnt);
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fd_structs[*currfd].fd = mph_int_get (&h->read_fd);
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fd_structs[*currfd].events = POLLIN;
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++(*currfd); // count is verified less than NUM_SIGNALS by caller
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}
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return r;
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}
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// Cleanup a signal_info after waiting for signal
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static void
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teardown_pipes (signal_info** signals, int count)
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{
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int i;
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for (i = 0; i < count; ++i) {
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signal_info* h = signals [i];
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if (mph_int_dec_test (&h->pipecnt)) { // Final listener for this signal_info
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acquire_pipelock_teardown (&h->pipelock);
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int read_fd = mph_int_get (&h->read_fd);
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int write_fd = mph_int_get (&h->write_fd);
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if (read_fd != 0)
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close (read_fd);
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if (write_fd != 0)
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close (write_fd);
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mph_int_set (&h->read_fd, 0);
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mph_int_set (&h->write_fd, 0);
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release_pipelock_teardown (&h->pipelock);
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}
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}
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}
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// Given pipes set up, wait for a byte to arrive on one of them
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static int
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wait_for_any (signal_info** signals, int count, int *currfd, struct pollfd* fd_structs, int timeout, Mono_Posix_RuntimeIsShuttingDown shutting_down)
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{
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int r, idx;
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// Poll until one of this signal_info's pipes is ready to read.
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// Once a second, stop to check if the VM is shutting down.
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do {
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r = poll (fd_structs, count, timeout);
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} while (keep_trying (r) && !shutting_down ());
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idx = -1;
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if (r == 0)
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idx = timeout;
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else if (r > 0) { // The pipe[s] are ready to read.
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int i;
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for (i = 0; i < count; ++i) {
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signal_info* h = signals [i];
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if (fd_structs[i].revents & POLLIN) {
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int r;
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char c;
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do {
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|
r = read (mph_int_get (&h->read_fd), &c, 1);
|
|
} while (keep_trying (r) && !shutting_down ());
|
|
if (idx == -1)
|
|
idx = i;
|
|
}
|
|
}
|
|
}
|
|
|
|
return idx;
|
|
}
|
|
|
|
/*
|
|
* returns: -1 on error:
|
|
* timeout on timeout
|
|
* index into _signals array of signal that was generated on success
|
|
*/
|
|
int
|
|
Mono_Unix_UnixSignal_WaitAny (void** _signals, int count, int timeout /* milliseconds */, Mono_Posix_RuntimeIsShuttingDown shutting_down)
|
|
{
|
|
int r;
|
|
int currfd = 0;
|
|
struct pollfd fd_structs[NUM_SIGNALS];
|
|
|
|
signal_info** signals = (signal_info**) _signals;
|
|
|
|
if (count > NUM_SIGNALS)
|
|
return -1;
|
|
|
|
if (acquire_mutex (&signals_mutex) == -1)
|
|
return -1;
|
|
|
|
r = setup_pipes (signals, count, &fd_structs[0], &currfd);
|
|
|
|
release_mutex (&signals_mutex);
|
|
|
|
if (r == 0) {
|
|
r = wait_for_any (signals, count, &currfd, &fd_structs[0], timeout, shutting_down);
|
|
}
|
|
|
|
if (acquire_mutex (&signals_mutex) == -1)
|
|
return -1;
|
|
|
|
teardown_pipes (signals, count);
|
|
|
|
release_mutex (&signals_mutex);
|
|
|
|
return r;
|
|
}
|
|
|
|
#endif /* ndef HOST_WIN32 */
|
|
|
|
|
|
G_END_DECLS
|
|
|
|
/*
|
|
* vim: noexpandtab
|
|
*/
|