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So this is a snippet of my code:

pid_t children[MAX_PIPES];
for (i = 0; i < numPipes; i++)
    pid_t child_pid = fork();
    children[i] = child_pid;

        case 0:
            // Some code thats executed in the child that executes execv()
        case -1: // Unable to create child
// Wait for children 
for (j = 0; j < numPipes && children[j] != 0; j++)
    if (background)
        waitpid(children[j], &status, WNOHANG);
        waitpid(children[j], &status, 0);

Currently it works fine when I only call execv() once, but I am trying to execute multiple commands using execv() one after the other inside the already forked child process.

How do I go about adding that functionality? I have tried to add another fork() inside a loop inside the child but it wasnt successful.

Any ideas would be greatly appreciated. Thanks

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You could review the code in What is the proper way to pipe when making a shell or Pipe stream and child processes or Pipe communication in C or Multiple processes and pipes or no doubt many others; those are simply a few of the ones I've seen in the past couple of months. – Jonathan Leffler Apr 10 '13 at 21:07

2 Answers 2

up vote 0 down vote accepted

Your problems is that execv replaces the entire child process with the command being called, so you can't put more than one execv command into the child process.

If you want to have multiple commands, you have to fork(), execv() each one. You're could use system(), but it doesn't process parameters in the same manner as execv() (it launches a shell).

If you want to run multiple commands, then you should do a second fork() ... execv() using a wrapper akin to:

subv(char *path, char * const argv[])
  int ret;
  pid_t a_pid = fork();
  if (a_pid == -1) return -1;
  if (a_pid != 0) { wait(&ret); return ret; }
  return execv(path, argv);

The you replace all the execv calls with subv() and deal with the return code appropriately.

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I'm sorry, but this is wrong. Your subv() command does not return in the parent until the child has completed, but you can't rely on the processes in a pipeline completing before the next process is started. In general, the first process in the pipeline will generate too much data for the pipe, and will block waiting for the second process to read the data from the pipe, but with this code, the second process won't be started, so you'll have a deadlock. – Jonathan Leffler Apr 10 '13 at 21:10
@JonathanLeffler In this case, he does not look to be using pipes to process input/output which is why I proposed this simple solution. – Petesh Apr 10 '13 at 21:23
Hmmm...i < numPipes might be taken to indicate otherwise, though I grant you there is no sign of the pipe() call or any of the close() calls that would be necessary. – Jonathan Leffler Apr 10 '13 at 22:07

execv, like the other exec() commands, doesn't return except on failure. The context for the new program is loaded in place of the current program.

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