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I am trying to write the following C assignment: a program my-if taking two arguments, that will run the first argument, then run the second argument on success. Here is what I came up with:

#include <stdio.h>
#include <unistd.h>
#include <assert.h>
#include <stdlib.h>
#include <string.h>
#include <sys/wait.h>

char ** split(char * s) {
  char ** words = malloc(sizeof(char *));
  int i = 0;
  char * word = strtok(strdup(s), " ");
  while (word) {
    words = realloc(words, sizeof(char *) * (i + 1));
    words[i] = malloc(strlen(word) + 1);
    strcpy(words[i++], word);
    word = strtok(NULL, " ");
  }
  words[i] = NULL;
  return words;
}


int main(int argc, char * argv[]) {
  char ** argv1 = split(argv[1]);
  char ** argv2 = split(argv[2]);

  int t = fork();
  if (t == -1)
    exit(1);
  else if (t == 0) 
    execvp(argv1[0], argv1);
  else {
    int status;
    wait(&status);
    if (WIFEXITED(status))
      printf("exit status %d\n", WEXITSTATUS(status));
  }
  return 0;
}

My problem is to figure how to catch an error in the child process. WIFEXITSTATUS is always 0, even if running the same command in the shell then doing 'echo $?' will print 127. for example my-if 'toto' 'tutu' will give me a WEXITSTATUS = 0, even though

$ toto
$ echo $?
$ 127

I tried WSIGNALED, WSTOPPED, but I really don't figure how to catch an error. Am I searching in the right direction, or is it something entirely different, for example launching a shell that then executes my command, and the error is inherent to the shell, not to the command?

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Check your return values. Is execvp successful, or is it returning? –  William Pursell Oct 22 '13 at 11:33
1  
And turn up your compiler warnings. –  William Pursell Oct 22 '13 at 11:42
    
I use gcc -Wall . Can I do more? –  pouzzler Oct 22 '13 at 11:43
    
And the puzzling thing is that whether I try something like "my-if ls ls" or "my-if toto toto", execvp never returns. –  pouzzler Oct 22 '13 at 11:44
    
If you include <unistd.h>, you should get a warning with -Wall. "Puzzling" is different than invoking unspecified behavior. argv [1] is the wrong type for the second argument. –  William Pursell Oct 22 '13 at 11:45

3 Answers 3

Change your call to execvp. Try:

execvp( argv[1], argv + 1 );
share|improve this answer
    
My mistake, the program is actually a little more complex, and I wished to simplify it for the question, yet the execvp call is correct. I will update the question to reflect this. –  pouzzler Oct 22 '13 at 11:46
up vote 0 down vote accepted

Thank you very much everyone for your input. I simply needed to return the potential return of execv() which then becomes the WEXITSTATUS of the original fork()'s wait().

else if (t == 0) 
**return** execvp(argv1[0], argv1);
share|improve this answer
    
This will only return if your execvp couldn't be started. Is this what you meant? To return an error, if the command fails? –  Devolus Oct 22 '13 at 12:14
    
As I clearly stated to not get undue help, this is an assignment, which means I am a beginner. So I don't pretend to understand, but now the programs works - for example: my-if "toto" "echo success" and my-if "ls fakestring" "echo success" don't echo success, while: my-if "ls -l" "echo success" does. –  pouzzler Oct 22 '13 at 12:21
    
No, your program does not work. execvp only returns if there is an error. You are not calling the external program at all. –  William Pursell Oct 22 '13 at 12:27
    
I apologize for my rudeness, but yes it works. The three examples in the comment do exactly what they should. Except the second part of it which I forgot to correct in the original post: if(WEXITSTATUS(status) == 0) execvp(argv2[0], argv2); –  pouzzler Oct 22 '13 at 12:29
    
return execvp(...) is wrong, unless your intent is to fail to notice when you do not successfully exec the external program. It is coincidental that you are returning an error in that case, but an error message should be emitted. You are an acknowledged beginner, so try listening to those of us who are not. If you submit an assignment with return execvp(...), it indicates that you do not understand how execvp works. It is not returning the exit status of the external program. –  William Pursell Oct 22 '13 at 12:44

You should check if wait really returned something. If the return value is not your childpid, then you can not interpret the status.

    if(wait(&status) != child)
    {
        printf("Error in wait\n");
        return -1;
    }

I use this code to interpret the various states. I think the code is easily enough to understand with the logging comments that I use.

If your child crashed, it will have termainted with a SINGAL instead of exit, and in this case you must check the appropriate macro as well.

    if(WIFEXITED(status) == 0 && WIFSIGNALED(status) == 0)
    {
        LOGGER(MODULE_TAG, DEBUG2) << "Child: " << pid << " still running";
        setRunning(true);
        setTerminated(false);
        setTerminationSignal(0);
        setExitStatus(-1);
    }
    else if(WIFSTOPPED(status))
    {
        LOGGER(MODULE_TAG, DEBUG2) << "Child: " << pid << " stopped";
        setRunning(false);
    }
    else if(WIFCONTINUED(status))
    {
        LOGGER(MODULE_TAG, DEBUG2) << "Child: " << pid << " continued";
        setRunning(true);
    }
    else
    {
        setRunning(false);
        setTerminated(true);
        if(WIFEXITED(status))
        {
            LOGGER(MODULE_TAG, DEBUG2) << "Child: " << pid << " terminated normally";
            setTerminationSignal(0);
            setExitStatus(WEXITSTATUS(status));   // Exitcode from the child
        }
        else
        {
            LOGGER(MODULE_TAG, DEBUG2) << "Child: " << pid << " terminated by signal";
            setTerminationSignal(WTERMSIG(status));
            setExitStatus(-1);
        }
    }
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