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I have this piece of code in C:

int x = 52706108;

 if(argc >= 2){
  int val = *argv[1];
  int xor = x^val;
  printf("The xor value between %d and %d is %d in decimal\n",x,val,xor);
 }

I'm compiling it like this:

gcc -m32 -g -o a5_1 a5_1.c

Running it like this:

./a5_1 12

And this is my output:

The xor value between 52706108 and 49 is 52706061 in decimal

I can't understand why I'm passing the parameter "12" but the machine is reading 49 instead.

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1 Answer 1

up vote 7 down vote accepted

That 49 is the ASCII code point of the 1 in your string argument 12. That's because argv is an array of char pointers, each of which points to a C string containing the argument. So, it's as if you've defined argv[1] to be {'1', '2', '\0').

If you want to convert the argument to an integer, use something like:

int num = atoi (argv[1]);

or, preferably with error checking and to avoid undefined behaviour in the event the number is out of range:

char *nextChar;
long num = strtol (argv[1], &nextChar, 10);
if ((nextChar == argv[1]) || (*nextChar != '\0')) {
    // Is either empty or has invalid characters.
    return -1;
}

// String was non-empty and all-numeric.

Full example:

#include <stdio.h>
#include <stdlib.h>
int main (int argc, char *argv[]) {
    long x = 52706108;
    if (argc >= 2) {
        char *nextChar;
        long val = strtol (argv[1], &nextChar, 10);
        if ((nextChar == argv[1]) || (*nextChar != '\0')) {
            printf ("Invalid input '%s'\n", argv[1]);
            return -1;
        }
        long xor = x^val;
        printf("Xor between %ld and %ld is %ld in decimal\n",x,val,xor);
    }
    return 0;
}

The output of that program (when given 12 as an argument) is:

Xor between 52706108 and 12 is 52706096 in decimal
share|improve this answer
    
Care to expand? –  Patricio Jerí Oct 23 '12 at 5:06
    
@PatricioJerí, expansion achieved :-) –  paxdiablo Oct 23 '12 at 5:08
1  
Elements of ARGV are character pointers, not integers. You need to convert the string to an integer, before using it as an integer. –  Alex Reynolds Oct 23 '12 at 5:08
1  
atoi should never be used with user input. Even if you're not going to do any explicit error checking strtol is still "safer". –  Charles Bailey Oct 23 '12 at 5:30
1  
@user4815162342: It's just as unsafe. If you pass it something that is out of range it causes undefined behavior. Unless the input is controlled it should never be used. Even then why not use strtol? –  Charles Bailey Oct 23 '12 at 5:38

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