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I run several programs using fork() followed by execve() from a third program. Everything these programs were meant to is done, but at the end the third program doesn't return... i.e the command prompt does not appear.

If I use a wait() command in the calling program then the execve's programs return only if the order of wait statements match the order of the end of the execve programs. Why could it be?

Here's the simplified code:

int main()
{
   int child1,child2,status;
   char*newargv1[] = {./xyz",NULL};
   char *newargv2[] = {./abc",NULL};

   if((child1 = fork())==0)
      execve(newargv1[0],newargv1,NULL);
   if((child2 = fork())==0)
      execve(newargv2[0],newargv2,NULL);

    while(wait(&status) != child1);
    while(wait(&status) != child2);
  }

It works fine if the child1 finishes first. ./xyz and ./abc has some simple processing and control reaches the end.

share|improve this question
3  
Show us the code. – cnicutar Jun 18 '11 at 7:33
    
@cnicular have added code – Lipika Deka Jun 18 '11 at 8:19
    
Use waitpid with non-blocking flag and poll, instead of wait. – Keith Jun 18 '11 at 8:32
    
Or waitpid with blocking. If the second process ends first, you won't have to wait very long for it. – luser droog Jun 18 '11 at 9:32
    
@Pavel thanks for the edit but the title of the question was not what I intended it to be. – Lipika Deka Jun 18 '11 at 17:22
up vote 6 down vote accepted
while(wait(&status) != child1);
while(wait(&status) != child2);

In this code - you'll wait until child1 finishes, but if child2 finishes first - you'll get the status and discard it. Then, when child1 finishes - you'll go to the next loop, but then you'll never get the status for child2 because you already discarded it.

Instead, keep an array of children, and loop on wait until you got status for each of the members of the array in a single while loop, then you won't be deadlocked.

share|improve this answer

That's sounds like the correct behavior for what you describe doing. wait() blocks until the thing it's waiting for happens. If the program waits for several things in a row, it'll have to wait for several things in a row. It sounds like you're using waitpid() instead of wait(). If you use the real wait(), you should just have to call it the same number of times as there are children to wait for.

If you don't care what the order is, make the program not depend on any particular order.

share|improve this answer
    
No, am using wait(). What I meant was that the order of wait has to match the order of return else it does not work. An wth such an implemetation the order of return cannot be controlled. – Lipika Deka Jun 18 '11 at 8:12
2  
What I'm saying is that this appears to be unnecessary. You don't appear to use the pid_t return value for anything other than this check which is the cause of your problem. So don't do that. Just call wait twice and ignore the return value. ...And get rid of the loops! Just do: (void)wait(&status); (void)wait(&status); – luser droog Jun 18 '11 at 9:17

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