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#include <stdio.h>
#include <stdlib.h>

int main(int argc, char **argv)
{
        if(argc != 2)
                return 1;
        if(!atoi(argv[1]))
                printf("Error.");
        else printf("Success.");
        return 0;
}

My code works when I enter an argument that is either below or above the value of zero.

[griffin@localhost programming]$ ./testx 1
Success.
[griffin@localhost programming]$ ./testx -1
Success.
[griffin@localhost programming]$ ./testx 0
Error.

Why doesn't it work?

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2  
What about it doesn't work? (!0) is true. The only problem is that you've spelled "atoi returns 0" incorrectly. –  William Pursell Jun 18 '12 at 12:54

3 Answers 3

up vote 14 down vote accepted

It's very simple, atoi returns the number converted which in your case is exactly 0 (as expected).

There is no standard method of checking whether the conversion actually succeeded or not when using atoi.

Since you are writing c++ you could get the same result with better error checking by using a std::istringstream, std::stoi (C++11) or strtol (which is a better interface when dealing with arbitrary numbers).


std::istringstream example

#include <sstream>

  ...

std::istringstream iss (argv[1]);
int res;

if (!(iss >> res))
  std::cerr << "error";

std::strtol example

#include <cstdlib>
#include <cstring>

  ...

char * end_ptr;

std::strtol (argv[1], &end_ptr, 10);

if ((end_ptr - argv[1]) != std::strlen (argv[1]))
  std::cerr << "error";

std::stoi (C++11)

#include <string>

  ...

int res;

try {
  res = std::stoi (argv[1]);

} catch (std::exception& e) {
  std::cerr << "error";
}
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+1 for strtol. –  Ben Voigt Jun 18 '12 at 12:56
    
Ah, yes. I should've read the documentation a bit more thoroughly, feeling a bit stupid now. Up vote for a good alternative solution, and marked as an accepted answer. Thanks! –  Griffin Jun 18 '12 at 12:58
1  
There's also stoi in C++11, which will throw an exception. –  chris Jun 18 '12 at 13:00
    
@chris I'll update my answer with relevant information, thanks for the reminder. –  Filip Roséen - refp Jun 18 '12 at 13:02

Because 0 in C means false and any non-zero value means true. And atoi("0") returns 0, so the if statement branches to the else clause.

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The man-page clearly states, that atoi() cannot detect errors. It always returns a number which in your case is 0.

so your code evaluates to if (!0) which is true and therefor it falsely indicates an error.

There is no option to do error-handling with atoi() so you should use strtoul()/strtol() instead. (see manpage for example).

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