我一直试图围绕C语言中的信号量概念,我取得了一些有限的成功。根据我的理解,在C中,如果信号量的值为0,则sem_wait()应该导致该线程阻塞,直到该信号量的值不再为0。
我的问题是:我已经编写了一些非常快速的示例代码(下面),我不知道为什么,但是一旦创建了线程,它们似乎执行sem_wait()之外的代码,即使信号量的值似乎是0.我不确定为什么会这样。
编辑:根据Perception的建议,我检查了sem_wait()的返回值,似乎将errno设置为“Operation Timed Out”。据我所知,除非我使用sem_timedwait(),否则不应该发生这种情况。还在挖......
编辑2:Oop。应该更仔细地阅读我的输出。它实际上将其设置为“功能未实现。”
#include <stdio.h>
#include <unistd.h>
#include <pthread.h>
#include <semaphore.h>
#include <errno.h>
// vars
int jobsInQueue, currentJob;
sem_t *semaphore;
pthread_t threads[10];
int runningThreads = 0;
// prototypes
void *do_work(void *arg);
void add_job();
int main()
{
// i for the for loop used to create the threads
int i;
// counter for jobs in the queue
jobsInQueue = 0;
// indicator for the current job
currentJob = 0;
// indicator for whether we have reached the limit imposed in the while loop used for adding jobs
int reachedlimit = 0;
// create the semaphore
semaphore = sem_open("semaphore", O_CREAT, 0600, 0);
// get the value of the semaphore and temporarily store it in reachedlimit
sem_getvalue(semaphore, &reachedlimit);
// print off the value of the semaphore. I think I'm crazy because the threads are executing code
// before the semaphore is posted to, but this appears to be zero...
fprintf(stderr, "semaphore: %d", reachedlimit);
fflush(stderr);
// set reachedlimit back to zero because we expect it to be zero below
reachedlimit = 0;
for(i = 0; i < 10; ++i)
{
// create a pthread
pthread_create(&threads[i], NULL, &do_work, (void *)i);
// increment the number of running threads
runningThreads++;
}
// sleep for a couple of seconds just as separator space
sleep(2);
// while there are threads running
while(runningThreads > 0)
{
// sleep for a tenth of a second
usleep(100000);
// after that, if there are 1000 or more jobs in the queue, we've reached the number of total jobs we want
if(jobsInQueue >= 1000) reachedlimit = 1;
// if we haven't reached that, then add another job
if(reachedlimit == 0) add_job();
// print that we're still sleeping and the number of jobs in the queue.
fprintf(stderr, "Still sleeping. Jobs in queue: %d\n", jobsInQueue);
fflush(stderr);
}
}
void *do_work(void *arg)
{
// when the thread is created, print this thread's number to the console
fprintf(stderr, "I am thread %d.\n", (int)arg);
fflush(stderr);
// then loop infinitely doing the following...
while(1)
{
// wait until the semaphore's value is no longer zero <-- doesn't seem to do this
sem_wait(semaphore);
// if we are on the 1000th job, terminate the thread
if (currentJob >= 1000) {
runningThreads--;
fprintf(stderr, "Thread %d terminated", (int)arg);
fflush(stderr);
pthread_exit((void *)1);
}
// otherwise, increment the current job counter
currentJob++;
// tell the console that this thread took a job
fprintf(stderr, "Thread %d: I took a job.: %d\n", (int)arg, currentJob);
fflush(stderr);
// subtract one from the count of jobs in the queue
jobsInQueue--;
// sleep for at least one second before taking another job
sleep(1);
}
// this will never happen because the while loop will never be broken
runningThreads--;
return NULL;
}
void add_job()
{
// increment the count of jobs in the queue
jobsInQueue++;
// print that a job has been added
fprintf(stderr, "Job added\n");
fflush(stderr);
// post to the semaphore, which should essentially release the job for "processing" if I understand correctly.
sem_post(semaphore);
}
一些示例输出:
semaphore: 0
I am thread 0.
I am thread 1.
Thread 0: I took a job.: 1
I am thread 2.
I am thread 3.
Thread 1: I took a job.: 2
I am thread 4.
I am thread 5.
I am thread 6.
Thread 2: I took a job.: 3
I am thread 7.
I am thread 8.
Thread 3: I took a job.: 4
I am thread 9.
Thread 4: I took a job.: 5
Thread 5: I took a job.: 6
Thread 6: I took a job.: 7
Thread 7: I took a job.: 8
Thread 8: I took a job.: 9
Thread 9: I took a job.: 10
Thread 0: I took a job.: 12
Thread 4: I took a job.: 11
Thread 5: I took a job.: 13
Thread 6: I took a job.: 14
Thread 1: I took a job.: 15
Thread 8: I took a job.: 17
Thread 3: I took a job.: 16
Thread 7: I took a job.: 18
Thread 2: I took a job.: 19
Thread 9: I took a job.: 20
Thread 0: I took a job.: 21
Thread 1: I took a job.: 22
Thread 8: I took a job.: 23
Thread 3: I took a job.: 24
Thread 5: I took a job.: 25
Thread 7: I took a job.: 26
Thread 6: I took a job.: 27
Thread 2: I took a job.: 29
Thread 4: I took a job.: 28
Thread 9: I took a job.: 30
Job added
Still sleeping. Jobs in queue: -29
Job added
Still sleeping. Jobs in queue: -28
Job added
Still sleeping. Jobs in queue: -27
Job added
Still sleeping. Jobs in queue: -26
Job added
Still sleeping. Jobs in queue: -25
Job added
Still sleeping. Jobs in queue: -24
Job added
Still sleeping. Jobs in queue: -23
Job added
Still sleeping. Jobs in queue: -22
Job added
Still sleeping. Jobs in queue: -21
Thread 3: I took a job.: 31
Thread 0: I took a job.: 32
Thread 5: I took a job.: 33
Thread 2: I took a job.: 34
Thread 1: I took a job.: 35
Thread 7: I took a job.: 36
Thread 9: I took a job.: 37
Thread 8: I took a job.: 38
Thread 6: I took a job.: 39
Thread 4: I took a job.: 40
Job added
Still sleeping. Jobs in queue: -30
Job added
Still sleeping. Jobs in queue: -29
Job added
Still sleeping. Jobs in queue: -28
Job added
Still sleeping. Jobs in queue: -27
Job added
Still sleeping. Jobs in queue: -26
Job added
Still sleeping. Jobs in queue: -25
答案 0 :(得分:3)
信号量在进程终止后仍然存在,除非您明确取消链接。您看到的行为是由于线程通过前一个进程将旧作业sem_post'拉到信号量。如果呼叫实际有效,您的sem_getvalue呼叫将显示这些旧作业的存在,但是它失败并且您没有注意到,因为您没有检查sem_getvalue的返回值。 “功能未实现”错误值实际上来自sem_getvalue,而不是sem_wait。
添加
sem_unlink("semaphore");
在致电sem_open之前,奇怪的行为将会消失。