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I'm trying to use execv() to allow me to read into an output file, outputfile.txt, from the terminal. The problem I'm having is that it won't work at all and I don't know if I'm using it correctly.

My code so far:

void my_shell() {
    char* args[2];
    args[0] = "/usr/bin/tee";
    args[1] = "outputfile.txt";
    execv(args[0], &args[0]);   
}

int main() {

    cout << "%";
    //string input;
    pid_t pid, waitPID;
    int status = 0;
    pid = fork();
    if (pid == 0) {
        my_shell();
    }
    else if (pid < 0) {
        cout << "Unable to fork" << endl;
        exit(-1);
    }

    while ((waitPID = wait(&status)) > 0) {
    }

    return 0;
}

What it's doing right now is that nothing is happening at all. The program forks fine, but what's in my_shell isn't doing anything at all. What am I doing wrong?

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2  
You forgot the null terminator. Read the manual again, carefully. – Kerrek SB Feb 7 '14 at 3:17
up vote 4 down vote accepted

You're missing the NULL terminator to args.

void my_shell() {
    char* args[3];
    args[0] = "/usr/bin/tee";
    args[1] = "outputfile.txt";
    args[2] = NULL;
    execv(args[0], args);   
}
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