Threads.cpp revision e71b9147756ab4da306e4c16461ad23936769603
1/*
2 * Copyright (C) 2007 The Android Open Source Project
3 *
4 * Licensed under the Apache License, Version 2.0 (the "License");
5 * you may not use this file except in compliance with the License.
6 * You may obtain a copy of the License at
7 *
8 *      http://www.apache.org/licenses/LICENSE-2.0
9 *
10 * Unless required by applicable law or agreed to in writing, software
11 * distributed under the License is distributed on an "AS IS" BASIS,
12 * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
13 * See the License for the specific language governing permissions and
14 * limitations under the License.
15 */
16
17// #define LOG_NDEBUG 0
18#define LOG_TAG "libutils.threads"
19
20#include <assert.h>
21#include <errno.h>
22#include <memory.h>
23#include <stdio.h>
24#include <stdlib.h>
25#include <string.h>
26#include <unistd.h>
27
28#if !defined(_WIN32)
29# include <pthread.h>
30# include <sched.h>
31# include <sys/resource.h>
32#else
33# include <windows.h>
34# include <stdint.h>
35# include <process.h>
36# define HAVE_CREATETHREAD  // Cygwin, vs. HAVE__BEGINTHREADEX for MinGW
37#endif
38
39#if defined(__linux__)
40#include <sys/prctl.h>
41#endif
42
43#include <utils/threads.h>
44#include <utils/Log.h>
45
46#include <cutils/sched_policy.h>
47
48#if defined(__ANDROID__)
49# define __android_unused
50#else
51# define __android_unused __attribute__((__unused__))
52#endif
53
54/*
55 * ===========================================================================
56 *      Thread wrappers
57 * ===========================================================================
58 */
59
60using namespace android;
61
62// ----------------------------------------------------------------------------
63#if !defined(_WIN32)
64// ----------------------------------------------------------------------------
65
66/*
67 * Create and run a new thread.
68 *
69 * We create it "detached", so it cleans up after itself.
70 */
71
72typedef void* (*android_pthread_entry)(void*);
73
74struct thread_data_t {
75    thread_func_t   entryFunction;
76    void*           userData;
77    int             priority;
78    char *          threadName;
79
80    // we use this trampoline when we need to set the priority with
81    // nice/setpriority, and name with prctl.
82    static int trampoline(const thread_data_t* t) {
83        thread_func_t f = t->entryFunction;
84        void* u = t->userData;
85        int prio = t->priority;
86        char * name = t->threadName;
87        delete t;
88        setpriority(PRIO_PROCESS, 0, prio);
89        if (prio >= ANDROID_PRIORITY_BACKGROUND) {
90            set_sched_policy(0, SP_BACKGROUND);
91        } else {
92            set_sched_policy(0, SP_FOREGROUND);
93        }
94
95        if (name) {
96            androidSetThreadName(name);
97            free(name);
98        }
99        return f(u);
100    }
101};
102
103void androidSetThreadName(const char* name) {
104#if defined(__linux__)
105    // Mac OS doesn't have this, and we build libutil for the host too
106    int hasAt = 0;
107    int hasDot = 0;
108    const char *s = name;
109    while (*s) {
110        if (*s == '.') hasDot = 1;
111        else if (*s == '@') hasAt = 1;
112        s++;
113    }
114    int len = s - name;
115    if (len < 15 || hasAt || !hasDot) {
116        s = name;
117    } else {
118        s = name + len - 15;
119    }
120    prctl(PR_SET_NAME, (unsigned long) s, 0, 0, 0);
121#endif
122}
123
124int androidCreateRawThreadEtc(android_thread_func_t entryFunction,
125                               void *userData,
126                               const char* threadName __android_unused,
127                               int32_t threadPriority,
128                               size_t threadStackSize,
129                               android_thread_id_t *threadId)
130{
131    pthread_attr_t attr;
132    pthread_attr_init(&attr);
133    pthread_attr_setdetachstate(&attr, PTHREAD_CREATE_DETACHED);
134
135#if defined(__ANDROID__)  /* valgrind is rejecting RT-priority create reqs */
136    if (threadPriority != PRIORITY_DEFAULT || threadName != NULL) {
137        // Now that the pthread_t has a method to find the associated
138        // android_thread_id_t (pid) from pthread_t, it would be possible to avoid
139        // this trampoline in some cases as the parent could set the properties
140        // for the child.  However, there would be a race condition because the
141        // child becomes ready immediately, and it doesn't work for the name.
142        // prctl(PR_SET_NAME) only works for self; prctl(PR_SET_THREAD_NAME) was
143        // proposed but not yet accepted.
144        thread_data_t* t = new thread_data_t;
145        t->priority = threadPriority;
146        t->threadName = threadName ? strdup(threadName) : NULL;
147        t->entryFunction = entryFunction;
148        t->userData = userData;
149        entryFunction = (android_thread_func_t)&thread_data_t::trampoline;
150        userData = t;
151    }
152#endif
153
154    if (threadStackSize) {
155        pthread_attr_setstacksize(&attr, threadStackSize);
156    }
157
158    errno = 0;
159    pthread_t thread;
160    int result = pthread_create(&thread, &attr,
161                    (android_pthread_entry)entryFunction, userData);
162    pthread_attr_destroy(&attr);
163    if (result != 0) {
164        ALOGE("androidCreateRawThreadEtc failed (entry=%p, res=%d, %s)\n"
165             "(android threadPriority=%d)",
166            entryFunction, result, strerror(errno), threadPriority);
167        return 0;
168    }
169
170    // Note that *threadID is directly available to the parent only, as it is
171    // assigned after the child starts.  Use memory barrier / lock if the child
172    // or other threads also need access.
173    if (threadId != NULL) {
174        *threadId = (android_thread_id_t)thread; // XXX: this is not portable
175    }
176    return 1;
177}
178
179#if defined(__ANDROID__)
180static pthread_t android_thread_id_t_to_pthread(android_thread_id_t thread)
181{
182    return (pthread_t) thread;
183}
184#endif
185
186android_thread_id_t androidGetThreadId()
187{
188    return (android_thread_id_t)pthread_self();
189}
190
191// ----------------------------------------------------------------------------
192#else // !defined(_WIN32)
193// ----------------------------------------------------------------------------
194
195/*
196 * Trampoline to make us __stdcall-compliant.
197 *
198 * We're expected to delete "vDetails" when we're done.
199 */
200struct threadDetails {
201    int (*func)(void*);
202    void* arg;
203};
204static __stdcall unsigned int threadIntermediary(void* vDetails)
205{
206    struct threadDetails* pDetails = (struct threadDetails*) vDetails;
207    int result;
208
209    result = (*(pDetails->func))(pDetails->arg);
210
211    delete pDetails;
212
213    ALOG(LOG_VERBOSE, "thread", "thread exiting\n");
214    return (unsigned int) result;
215}
216
217/*
218 * Create and run a new thread.
219 */
220static bool doCreateThread(android_thread_func_t fn, void* arg, android_thread_id_t *id)
221{
222    HANDLE hThread;
223    struct threadDetails* pDetails = new threadDetails; // must be on heap
224    unsigned int thrdaddr;
225
226    pDetails->func = fn;
227    pDetails->arg = arg;
228
229#if defined(HAVE__BEGINTHREADEX)
230    hThread = (HANDLE) _beginthreadex(NULL, 0, threadIntermediary, pDetails, 0,
231                    &thrdaddr);
232    if (hThread == 0)
233#elif defined(HAVE_CREATETHREAD)
234    hThread = CreateThread(NULL, 0,
235                    (LPTHREAD_START_ROUTINE) threadIntermediary,
236                    (void*) pDetails, 0, (DWORD*) &thrdaddr);
237    if (hThread == NULL)
238#endif
239    {
240        ALOG(LOG_WARN, "thread", "WARNING: thread create failed\n");
241        return false;
242    }
243
244#if defined(HAVE_CREATETHREAD)
245    /* close the management handle */
246    CloseHandle(hThread);
247#endif
248
249    if (id != NULL) {
250      	*id = (android_thread_id_t)thrdaddr;
251    }
252
253    return true;
254}
255
256int androidCreateRawThreadEtc(android_thread_func_t fn,
257                               void *userData,
258                               const char* /*threadName*/,
259                               int32_t /*threadPriority*/,
260                               size_t /*threadStackSize*/,
261                               android_thread_id_t *threadId)
262{
263    return doCreateThread(  fn, userData, threadId);
264}
265
266android_thread_id_t androidGetThreadId()
267{
268    return (android_thread_id_t)GetCurrentThreadId();
269}
270
271// ----------------------------------------------------------------------------
272#endif // !defined(_WIN32)
273
274// ----------------------------------------------------------------------------
275
276int androidCreateThread(android_thread_func_t fn, void* arg)
277{
278    return createThreadEtc(fn, arg);
279}
280
281int androidCreateThreadGetID(android_thread_func_t fn, void *arg, android_thread_id_t *id)
282{
283    return createThreadEtc(fn, arg, "android:unnamed_thread",
284                           PRIORITY_DEFAULT, 0, id);
285}
286
287static android_create_thread_fn gCreateThreadFn = androidCreateRawThreadEtc;
288
289int androidCreateThreadEtc(android_thread_func_t entryFunction,
290                            void *userData,
291                            const char* threadName,
292                            int32_t threadPriority,
293                            size_t threadStackSize,
294                            android_thread_id_t *threadId)
295{
296    return gCreateThreadFn(entryFunction, userData, threadName,
297        threadPriority, threadStackSize, threadId);
298}
299
300void androidSetCreateThreadFunc(android_create_thread_fn func)
301{
302    gCreateThreadFn = func;
303}
304
305#if defined(__ANDROID__)
306int androidSetThreadPriority(pid_t tid, int pri)
307{
308    int rc = 0;
309    int lasterr = 0;
310
311    if (pri >= ANDROID_PRIORITY_BACKGROUND) {
312        rc = set_sched_policy(tid, SP_BACKGROUND);
313    } else if (getpriority(PRIO_PROCESS, tid) >= ANDROID_PRIORITY_BACKGROUND) {
314        rc = set_sched_policy(tid, SP_FOREGROUND);
315    }
316
317    if (rc) {
318        lasterr = errno;
319    }
320
321    if (setpriority(PRIO_PROCESS, tid, pri) < 0) {
322        rc = INVALID_OPERATION;
323    } else {
324        errno = lasterr;
325    }
326
327    return rc;
328}
329
330int androidGetThreadPriority(pid_t tid) {
331    return getpriority(PRIO_PROCESS, tid);
332}
333
334#endif
335
336namespace android {
337
338/*
339 * ===========================================================================
340 *      Mutex class
341 * ===========================================================================
342 */
343
344#if !defined(_WIN32)
345// implemented as inlines in threads.h
346#else
347
348Mutex::Mutex()
349{
350    HANDLE hMutex;
351
352    assert(sizeof(hMutex) == sizeof(mState));
353
354    hMutex = CreateMutex(NULL, FALSE, NULL);
355    mState = (void*) hMutex;
356}
357
358Mutex::Mutex(const char* name)
359{
360    // XXX: name not used for now
361    HANDLE hMutex;
362
363    assert(sizeof(hMutex) == sizeof(mState));
364
365    hMutex = CreateMutex(NULL, FALSE, NULL);
366    mState = (void*) hMutex;
367}
368
369Mutex::Mutex(int type, const char* name)
370{
371    // XXX: type and name not used for now
372    HANDLE hMutex;
373
374    assert(sizeof(hMutex) == sizeof(mState));
375
376    hMutex = CreateMutex(NULL, FALSE, NULL);
377    mState = (void*) hMutex;
378}
379
380Mutex::~Mutex()
381{
382    CloseHandle((HANDLE) mState);
383}
384
385status_t Mutex::lock()
386{
387    DWORD dwWaitResult;
388    dwWaitResult = WaitForSingleObject((HANDLE) mState, INFINITE);
389    return dwWaitResult != WAIT_OBJECT_0 ? -1 : NO_ERROR;
390}
391
392void Mutex::unlock()
393{
394    if (!ReleaseMutex((HANDLE) mState))
395        ALOG(LOG_WARN, "thread", "WARNING: bad result from unlocking mutex\n");
396}
397
398status_t Mutex::tryLock()
399{
400    DWORD dwWaitResult;
401
402    dwWaitResult = WaitForSingleObject((HANDLE) mState, 0);
403    if (dwWaitResult != WAIT_OBJECT_0 && dwWaitResult != WAIT_TIMEOUT)
404        ALOG(LOG_WARN, "thread", "WARNING: bad result from try-locking mutex\n");
405    return (dwWaitResult == WAIT_OBJECT_0) ? 0 : -1;
406}
407
408#endif // !defined(_WIN32)
409
410
411/*
412 * ===========================================================================
413 *      Condition class
414 * ===========================================================================
415 */
416
417#if !defined(_WIN32)
418// implemented as inlines in threads.h
419#else
420
421/*
422 * Windows doesn't have a condition variable solution.  It's possible
423 * to create one, but it's easy to get it wrong.  For a discussion, and
424 * the origin of this implementation, see:
425 *
426 *  http://www.cs.wustl.edu/~schmidt/win32-cv-1.html
427 *
428 * The implementation shown on the page does NOT follow POSIX semantics.
429 * As an optimization they require acquiring the external mutex before
430 * calling signal() and broadcast(), whereas POSIX only requires grabbing
431 * it before calling wait().  The implementation here has been un-optimized
432 * to have the correct behavior.
433 */
434typedef struct WinCondition {
435    // Number of waiting threads.
436    int                 waitersCount;
437
438    // Serialize access to waitersCount.
439    CRITICAL_SECTION    waitersCountLock;
440
441    // Semaphore used to queue up threads waiting for the condition to
442    // become signaled.
443    HANDLE              sema;
444
445    // An auto-reset event used by the broadcast/signal thread to wait
446    // for all the waiting thread(s) to wake up and be released from
447    // the semaphore.
448    HANDLE              waitersDone;
449
450    // This mutex wouldn't be necessary if we required that the caller
451    // lock the external mutex before calling signal() and broadcast().
452    // I'm trying to mimic pthread semantics though.
453    HANDLE              internalMutex;
454
455    // Keeps track of whether we were broadcasting or signaling.  This
456    // allows us to optimize the code if we're just signaling.
457    bool                wasBroadcast;
458
459    status_t wait(WinCondition* condState, HANDLE hMutex, nsecs_t* abstime)
460    {
461        // Increment the wait count, avoiding race conditions.
462        EnterCriticalSection(&condState->waitersCountLock);
463        condState->waitersCount++;
464        //printf("+++ wait: incr waitersCount to %d (tid=%ld)\n",
465        //    condState->waitersCount, getThreadId());
466        LeaveCriticalSection(&condState->waitersCountLock);
467
468        DWORD timeout = INFINITE;
469        if (abstime) {
470            nsecs_t reltime = *abstime - systemTime();
471            if (reltime < 0)
472                reltime = 0;
473            timeout = reltime/1000000;
474        }
475
476        // Atomically release the external mutex and wait on the semaphore.
477        DWORD res =
478            SignalObjectAndWait(hMutex, condState->sema, timeout, FALSE);
479
480        //printf("+++ wait: awake (tid=%ld)\n", getThreadId());
481
482        // Reacquire lock to avoid race conditions.
483        EnterCriticalSection(&condState->waitersCountLock);
484
485        // No longer waiting.
486        condState->waitersCount--;
487
488        // Check to see if we're the last waiter after a broadcast.
489        bool lastWaiter = (condState->wasBroadcast && condState->waitersCount == 0);
490
491        //printf("+++ wait: lastWaiter=%d (wasBc=%d wc=%d)\n",
492        //    lastWaiter, condState->wasBroadcast, condState->waitersCount);
493
494        LeaveCriticalSection(&condState->waitersCountLock);
495
496        // If we're the last waiter thread during this particular broadcast
497        // then signal broadcast() that we're all awake.  It'll drop the
498        // internal mutex.
499        if (lastWaiter) {
500            // Atomically signal the "waitersDone" event and wait until we
501            // can acquire the internal mutex.  We want to do this in one step
502            // because it ensures that everybody is in the mutex FIFO before
503            // any thread has a chance to run.  Without it, another thread
504            // could wake up, do work, and hop back in ahead of us.
505            SignalObjectAndWait(condState->waitersDone, condState->internalMutex,
506                INFINITE, FALSE);
507        } else {
508            // Grab the internal mutex.
509            WaitForSingleObject(condState->internalMutex, INFINITE);
510        }
511
512        // Release the internal and grab the external.
513        ReleaseMutex(condState->internalMutex);
514        WaitForSingleObject(hMutex, INFINITE);
515
516        return res == WAIT_OBJECT_0 ? NO_ERROR : -1;
517    }
518} WinCondition;
519
520/*
521 * Constructor.  Set up the WinCondition stuff.
522 */
523Condition::Condition()
524{
525    WinCondition* condState = new WinCondition;
526
527    condState->waitersCount = 0;
528    condState->wasBroadcast = false;
529    // semaphore: no security, initial value of 0
530    condState->sema = CreateSemaphore(NULL, 0, 0x7fffffff, NULL);
531    InitializeCriticalSection(&condState->waitersCountLock);
532    // auto-reset event, not signaled initially
533    condState->waitersDone = CreateEvent(NULL, FALSE, FALSE, NULL);
534    // used so we don't have to lock external mutex on signal/broadcast
535    condState->internalMutex = CreateMutex(NULL, FALSE, NULL);
536
537    mState = condState;
538}
539
540/*
541 * Destructor.  Free Windows resources as well as our allocated storage.
542 */
543Condition::~Condition()
544{
545    WinCondition* condState = (WinCondition*) mState;
546    if (condState != NULL) {
547        CloseHandle(condState->sema);
548        CloseHandle(condState->waitersDone);
549        delete condState;
550    }
551}
552
553
554status_t Condition::wait(Mutex& mutex)
555{
556    WinCondition* condState = (WinCondition*) mState;
557    HANDLE hMutex = (HANDLE) mutex.mState;
558
559    return ((WinCondition*)mState)->wait(condState, hMutex, NULL);
560}
561
562status_t Condition::waitRelative(Mutex& mutex, nsecs_t reltime)
563{
564    WinCondition* condState = (WinCondition*) mState;
565    HANDLE hMutex = (HANDLE) mutex.mState;
566    nsecs_t absTime = systemTime()+reltime;
567
568    return ((WinCondition*)mState)->wait(condState, hMutex, &absTime);
569}
570
571/*
572 * Signal the condition variable, allowing one thread to continue.
573 */
574void Condition::signal()
575{
576    WinCondition* condState = (WinCondition*) mState;
577
578    // Lock the internal mutex.  This ensures that we don't clash with
579    // broadcast().
580    WaitForSingleObject(condState->internalMutex, INFINITE);
581
582    EnterCriticalSection(&condState->waitersCountLock);
583    bool haveWaiters = (condState->waitersCount > 0);
584    LeaveCriticalSection(&condState->waitersCountLock);
585
586    // If no waiters, then this is a no-op.  Otherwise, knock the semaphore
587    // down a notch.
588    if (haveWaiters)
589        ReleaseSemaphore(condState->sema, 1, 0);
590
591    // Release internal mutex.
592    ReleaseMutex(condState->internalMutex);
593}
594
595/*
596 * Signal the condition variable, allowing all threads to continue.
597 *
598 * First we have to wake up all threads waiting on the semaphore, then
599 * we wait until all of the threads have actually been woken before
600 * releasing the internal mutex.  This ensures that all threads are woken.
601 */
602void Condition::broadcast()
603{
604    WinCondition* condState = (WinCondition*) mState;
605
606    // Lock the internal mutex.  This keeps the guys we're waking up
607    // from getting too far.
608    WaitForSingleObject(condState->internalMutex, INFINITE);
609
610    EnterCriticalSection(&condState->waitersCountLock);
611    bool haveWaiters = false;
612
613    if (condState->waitersCount > 0) {
614        haveWaiters = true;
615        condState->wasBroadcast = true;
616    }
617
618    if (haveWaiters) {
619        // Wake up all the waiters.
620        ReleaseSemaphore(condState->sema, condState->waitersCount, 0);
621
622        LeaveCriticalSection(&condState->waitersCountLock);
623
624        // Wait for all awakened threads to acquire the counting semaphore.
625        // The last guy who was waiting sets this.
626        WaitForSingleObject(condState->waitersDone, INFINITE);
627
628        // Reset wasBroadcast.  (No crit section needed because nobody
629        // else can wake up to poke at it.)
630        condState->wasBroadcast = 0;
631    } else {
632        // nothing to do
633        LeaveCriticalSection(&condState->waitersCountLock);
634    }
635
636    // Release internal mutex.
637    ReleaseMutex(condState->internalMutex);
638}
639
640#endif // !defined(_WIN32)
641
642// ----------------------------------------------------------------------------
643
644/*
645 * This is our thread object!
646 */
647
648Thread::Thread(bool canCallJava)
649    :   mCanCallJava(canCallJava),
650        mThread(thread_id_t(-1)),
651        mLock("Thread::mLock"),
652        mStatus(NO_ERROR),
653        mExitPending(false), mRunning(false)
654#if defined(__ANDROID__)
655        , mTid(-1)
656#endif
657{
658}
659
660Thread::~Thread()
661{
662}
663
664status_t Thread::readyToRun()
665{
666    return NO_ERROR;
667}
668
669status_t Thread::run(const char* name, int32_t priority, size_t stack)
670{
671    LOG_ALWAYS_FATAL_IF(name == nullptr, "thread name not provided to Thread::run");
672
673    Mutex::Autolock _l(mLock);
674
675    if (mRunning) {
676        // thread already started
677        return INVALID_OPERATION;
678    }
679
680    // reset status and exitPending to their default value, so we can
681    // try again after an error happened (either below, or in readyToRun())
682    mStatus = NO_ERROR;
683    mExitPending = false;
684    mThread = thread_id_t(-1);
685
686    // hold a strong reference on ourself
687    mHoldSelf = this;
688
689    mRunning = true;
690
691    bool res;
692    if (mCanCallJava) {
693        res = createThreadEtc(_threadLoop,
694                this, name, priority, stack, &mThread);
695    } else {
696        res = androidCreateRawThreadEtc(_threadLoop,
697                this, name, priority, stack, &mThread);
698    }
699
700    if (res == false) {
701        mStatus = UNKNOWN_ERROR;   // something happened!
702        mRunning = false;
703        mThread = thread_id_t(-1);
704        mHoldSelf.clear();  // "this" may have gone away after this.
705
706        return UNKNOWN_ERROR;
707    }
708
709    // Do not refer to mStatus here: The thread is already running (may, in fact
710    // already have exited with a valid mStatus result). The NO_ERROR indication
711    // here merely indicates successfully starting the thread and does not
712    // imply successful termination/execution.
713    return NO_ERROR;
714
715    // Exiting scope of mLock is a memory barrier and allows new thread to run
716}
717
718int Thread::_threadLoop(void* user)
719{
720    Thread* const self = static_cast<Thread*>(user);
721
722    sp<Thread> strong(self->mHoldSelf);
723    wp<Thread> weak(strong);
724    self->mHoldSelf.clear();
725
726#if defined(__ANDROID__)
727    // this is very useful for debugging with gdb
728    self->mTid = gettid();
729#endif
730
731    bool first = true;
732
733    do {
734        bool result;
735        if (first) {
736            first = false;
737            self->mStatus = self->readyToRun();
738            result = (self->mStatus == NO_ERROR);
739
740            if (result && !self->exitPending()) {
741                // Binder threads (and maybe others) rely on threadLoop
742                // running at least once after a successful ::readyToRun()
743                // (unless, of course, the thread has already been asked to exit
744                // at that point).
745                // This is because threads are essentially used like this:
746                //   (new ThreadSubclass())->run();
747                // The caller therefore does not retain a strong reference to
748                // the thread and the thread would simply disappear after the
749                // successful ::readyToRun() call instead of entering the
750                // threadLoop at least once.
751                result = self->threadLoop();
752            }
753        } else {
754            result = self->threadLoop();
755        }
756
757        // establish a scope for mLock
758        {
759        Mutex::Autolock _l(self->mLock);
760        if (result == false || self->mExitPending) {
761            self->mExitPending = true;
762            self->mRunning = false;
763            // clear thread ID so that requestExitAndWait() does not exit if
764            // called by a new thread using the same thread ID as this one.
765            self->mThread = thread_id_t(-1);
766            // note that interested observers blocked in requestExitAndWait are
767            // awoken by broadcast, but blocked on mLock until break exits scope
768            self->mThreadExitedCondition.broadcast();
769            break;
770        }
771        }
772
773        // Release our strong reference, to let a chance to the thread
774        // to die a peaceful death.
775        strong.clear();
776        // And immediately, re-acquire a strong reference for the next loop
777        strong = weak.promote();
778    } while(strong != 0);
779
780    return 0;
781}
782
783void Thread::requestExit()
784{
785    Mutex::Autolock _l(mLock);
786    mExitPending = true;
787}
788
789status_t Thread::requestExitAndWait()
790{
791    Mutex::Autolock _l(mLock);
792    if (mThread == getThreadId()) {
793        ALOGW(
794        "Thread (this=%p): don't call waitForExit() from this "
795        "Thread object's thread. It's a guaranteed deadlock!",
796        this);
797
798        return WOULD_BLOCK;
799    }
800
801    mExitPending = true;
802
803    while (mRunning == true) {
804        mThreadExitedCondition.wait(mLock);
805    }
806    // This next line is probably not needed any more, but is being left for
807    // historical reference. Note that each interested party will clear flag.
808    mExitPending = false;
809
810    return mStatus;
811}
812
813status_t Thread::join()
814{
815    Mutex::Autolock _l(mLock);
816    if (mThread == getThreadId()) {
817        ALOGW(
818        "Thread (this=%p): don't call join() from this "
819        "Thread object's thread. It's a guaranteed deadlock!",
820        this);
821
822        return WOULD_BLOCK;
823    }
824
825    while (mRunning == true) {
826        mThreadExitedCondition.wait(mLock);
827    }
828
829    return mStatus;
830}
831
832bool Thread::isRunning() const {
833    Mutex::Autolock _l(mLock);
834    return mRunning;
835}
836
837#if defined(__ANDROID__)
838pid_t Thread::getTid() const
839{
840    // mTid is not defined until the child initializes it, and the caller may need it earlier
841    Mutex::Autolock _l(mLock);
842    pid_t tid;
843    if (mRunning) {
844        pthread_t pthread = android_thread_id_t_to_pthread(mThread);
845        tid = pthread_gettid_np(pthread);
846    } else {
847        ALOGW("Thread (this=%p): getTid() is undefined before run()", this);
848        tid = -1;
849    }
850    return tid;
851}
852#endif
853
854bool Thread::exitPending() const
855{
856    Mutex::Autolock _l(mLock);
857    return mExitPending;
858}
859
860
861
862};  // namespace android
863