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Can anyone explain me why the following code doesn't stop? I mean, when I run it shows the output but, after that, it doesn't stop(the prompter doesn't appear). I am trying to launch parallel children who are supposed to execute some command (e.g. "ls -l").

int main()
{
    int n; 
    scanf("%d",&n);
    int i;
    for (i = 0; i < n; i++)
    {
        if (!fork()){
            printf("CHILD:\n");
            execlp("ls","ls","-l",".",NULL);
        }
        printf("\n %d \n",i);
    }
    printf("THE END\n");
    return 0;
}

Thanks!

  • How about some error checking? fork() can return -1 to indicate failure. And if any member of the exec family returns, it is a failure. – Jonathon Reinhart Feb 5 '15 at 3:59
  • I tried to check for errors but the problem is still there. – Andrei Feb 5 '15 at 4:03
  • I don't see any such problem here. You are probably not seeing the prompt because the output of the child processes come after the output of the parent process. If you just press Enter, you'll probably see the prompt. – R Sahu Feb 5 '15 at 4:09
  • 1
    It's because you don't wait() on your child processes. The parent returns, and shows the prompt, and then your child runs. Your shell wouldn't show the prompt twice under normal circumstances, and it won't here. Add a wait(NULL); before printf("\n %d \n",i); and you'll see your prompt as you expect. If you examine the output you get right now, chances are high you'll see a prompt just before the first ls output, which you wouldn't otherwise see, but not before any additional ls outputs. – Crowman Feb 5 '15 at 4:11
  • That is right, @RSahu . Thanks for helping me! – Andrei Feb 5 '15 at 4:13

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