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I have the following piece of code:

#include <stdio.h>

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

    M = 1;
    N = 1;
    curr = 1;

    if ( argv[1][0] == '-' )
    {
        curr = 2;

        char *a = argv[1][1];
        char *b = argv[1][3];

        M = atoi(a);
        N = atoi(b);
    }

    printf("%d\n%d", M, N);
}

So, I pass this program something like this:

a.out -1,2

and instead of getting expected output

1
2

I get a segmentation fault. What gives?

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7  
What broken compiler are you using? char *a = argv[1][1]; should give a compiler error. C has no implicit conversions from int to pointer types. –  R.. Nov 5 '10 at 17:18

3 Answers 3

up vote 7 down vote accepted

That compiles?!

char argv*[] is an array of char pointers.

char *a = argv[1][1] will

  • Get the second char pointer, so now you have a char *.
  • Get the second element in that pointer, which will be a char.

So now you are assigning a char to a char pointer (which should be a compile error).

I can only assume you meant to say char *a = &argv[1][1]. Btw, const-correctness would be nice too, so const char *a = &argv[1][1].

Btw, your code is still very unsafe - you don't even check the size of the string. Imagine what &argv[1][3] does if your string only has two characters.

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1  
Without the header file the default assumption is that the function exists (implicit declaration) as called and returns an int. It's a good argument for warnings as errors and high warning settings on your compiler. –  Flexo Nov 5 '10 at 17:18
2  
This is not about the function, it's about the assignment of a char to a char *. –  EboMike Nov 5 '10 at 17:20
    
I'd assumed he meant char *a = argv[1] + 1; or &(argv[1][1]); –  Rup Nov 5 '10 at 17:29

#include <stdlib.h> and it should become apparent.

To elaborate: you're passing an integer to a function which expects a pointer, and the compiler could not warn you because you forgot to declare the function with a prototype. This is the cause of the crash.

Moreover, you're simply misusing atoi. The atoi parses strings, not individual characters. If you want the value of a character as a digit, simply subtract '0':

M = argv[1][1]-'0';
N = argv[1][3]-'0';

In practice you should also check that the character is actually a digit.

Edit: I don't recall char *a = argv[1][1]; being in the original post (maybe early edits don't show up as edits?), but any sane compiler should give a compile-time error on that line. Integers do not implicitly convert to pointers in C. If the compiler does let this get by, then including a prototype for atoi will no longer help, since the type error occurred earlier.

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I've seen magical changes to questions myself without them being marked as edited. Spooky. –  EboMike Nov 5 '10 at 17:32

atoi takes a string, not a character.

Also, atoi is not good in general as it has basically no error reporting. You should investigate strtol for most cases.

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