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I have the following code:

#include<stdio.h>
#include<semaphore.h>
#include<pthread.h>

sem_t semr;

void* func(void* i)
{
    sem_wait(&semr);
    printf("\nInstance %d running",*(int*)i);
    //sem_post(&semr);
    return NULL;
}


int main(void)
{
    sem_init(&semr,0,1);
    void* (*fp)(void*);
    int s1,s2,s3,val=0;
    pthread_t t1,t2,t3;
    fp=&func;
    val=1;
    s1=pthread_create(&t1,NULL,fp,(void*)&val);
    val=2;
    s2=pthread_create(&t2,NULL,fp,(void*)&val);
    val=3;
    s3=pthread_create(&t3,NULL,fp,(void*)&val);
    pthread_join(t1,NULL);
    pthread_join(t2,NULL);
    pthread_join(t3,NULL);  
    return 0;
}

This is my understanding of what happens:

The first thread(t1) executes successfully. The subsequent threads(t2 and t3) though, are blocked, since I never sem_post the semaphore. The pthread_joins will make main() wait for all 3 threads to terminate.

This is what happens:

Neither thread will output anything. Not even t1s output(see question 1 below)

However,

removing all pthread_joins has a better effect in terms of what I expect: t1 executes successfully and the command prompt is returned.

My questions:

  1. According to the sample code on this page, main() should wait for t2 and t3 to terminate (in addition to successfully executing t1 and outputting something). Am I using pthread_join incorrectly here? What's happening?

  2. Why happens to the blocked threads(t2 and t3)? Are the threads forced to terminate due to main() returning?

share|improve this question
    
Your program (once you've fixed var not being undeclared) does not do what you say it does. It does output something (a newline). –  Mat Oct 20 '12 at 9:01
    
This code won't compile. val is never declared. Please post a complete example that exhibits your problems. –  Charles Bailey Oct 20 '12 at 9:02
    
@black_station : I edited you code - added \n ..now copy this code and execute --will work fine. –  Grijesh Chauhan Oct 20 '12 at 9:06
    
@CharlesBailey: Yeah, sorry made the change! –  black_stallion Oct 20 '12 at 9:23
    
Don't cast to void*, this is superfluous and just adding noise. –  Jens Gustedt Oct 20 '12 at 10:09

1 Answer 1

up vote 3 down vote accepted

You should ensure that anything you print is terminated (not followed) with a newline. stdout won't be flushed while main is blocked waiting to join your threads. When you explicitly cancel the program, again, stdout won't be flushed.

share|improve this answer
    
When I added a \n at the end of printf its work correctly, Why so ? –  Grijesh Chauhan Oct 20 '12 at 9:09
    
@GrijeshChauhan: What do you mean correctly? My test printed "Instance 3 running" which (from the text) doesn't sound like what was intended. –  Charles Bailey Oct 20 '12 at 9:13
    
The above code doesn't prints "Instance 3 running", but if I add '\n' at end of printf() in funtc() then recompile and executes it prints "Instance 3 running". -- in my system..Why its so? –  Grijesh Chauhan Oct 20 '12 at 9:20
1  
@CharlesBailey/Grijesh: note that thread t1 will likely see its thread parameter have the value 3 (and therefore it will print "Instance 3 running") since it may not be scheduled for execution until after the third thread has been created and val will have been set to 3 by then. –  Michael Burr Oct 20 '12 at 9:20
1  
@GrijeshChauhan: adding a '\n' to the end of the string causes printf() to flush stdio. Without the '\n' the line of text just remains in the buffer. –  Michael Burr Oct 20 '12 at 9:23

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