5

All of you know this function:

int main(int argc, char* argv[])
{

}

I want to write a command line interface in Linux for my program, which is usually done by getopt_long()

My program would be executed from command line like this:

pop3 get --limit 25 --recent 

Hence, the argv[] would include pop3 as its program name, and the rest are treated as options. I want to delete pop3 from my string and set the first token after it as the first element of the array. Is there a way to do that other than looping through?

  • 15
    Easy solution: slice it off: argv++; argc--; – Colonel Thirty Two Sep 2 '15 at 13:15
  • Trick: You cannot modify the strings belonging to read only memory, just stop pointing to them. – Asim Sep 2 '15 at 13:34
  • "usually done by getopt_long()". What did you mean by that. Are you going to use getopt_long() or not? – user3386109 Sep 3 '15 at 2:54
  • @user3386109 I am going to use it. What I have done is using a loop and simply creating a new array. – Mostafa Talebi Sep 3 '15 at 13:26
  • 3
    If you're going to use getopt_long, then the correct answer is, "You don't have to do anything, getopt_long automatically skips the first argument." – user3386109 Sep 3 '15 at 17:38
12

Increment the argv pointer, and decrement the argc. Example:

int main(int argc, char *argv[])
{
    argc--;
    argv++;

    return 0;
}

This works, because when you increment argv, you still have the previous data in memory, it's just that the base address of the argv has increased. And you decrement argc, because you now have one less argument.

  • Wow! Such a simple solution. Thank you so much! – AntumDeluge Sep 11 '19 at 20:45

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