Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Hopefully this is a very simple question. Following is the C pgm (test.c) I have.

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

int main (int argc, char *argv[]) {
    int intValue = atoi("1");
    double doubleValue = atof("2");
    fprintf(stdout,"The intValue is %d and the doubleValue is %g\n", intValue, doubleValue);
    return 0;
}

Note that I am using atoi() and atof() from stdlib.h, but I do not include that header file. I compile the pgm (gcc test.c) and get no compiler error!

I run the pgm (./a.out) and here is the output, which is wrong.

The intValue is 1 and the doubleValue is 0

Now I include stdlib.h (by removing the comments before the #include) and recompile it and run it again. This time I get the right output:

The intValue is 1 and the doubleValue is 2

How come the compiler did not complain about not including the stdlib.h and still let me use the atoi(), atof() functions?

My gcc info:

$ gcc --version
gcc (GCC) 4.1.2 20070925 (Red Hat 4.1.2-27)

Any thoughts appreciated!

share|improve this question
3  
Always turn on warnings when using GCC (-Wall please!) –  Billy ONeal Jan 25 '11 at 23:44
    
C++ doesn't specify which standard library header might include which others. Does C? (If not, <stdio.h> meight very well include <stdlib.h>.) –  sbi Jan 25 '11 at 23:55
3  
C, unlike C++, requires that all standard headers behave as-if they do not include each other. –  Zack Jan 26 '11 at 0:04
    
@Zack: Thanks for clarifying that! I really didn't know. –  sbi Jan 26 '11 at 0:17
1  
In principle -Werror is nice, in practice it causes your build to blow up when somebody tries to compile under slightly different conditions and the uninitialized-variable false positive set changes. :-( –  Zack Jan 26 '11 at 0:50

5 Answers 5

up vote 8 down vote accepted

For historical reasons -- specifically, compatibility with very old C programs (pre-C89) -- using a function without having declared it first only provokes a warning from GCC, not an error. But the return type of such a function is assumed to be int, not double, which is why the program executes incorrectly.

If you use -Wall on the command line, you get a diagnostic:

$ gcc -Wall test.c
test.c: In function ‘main’:
test.c:5: warning: implicit declaration of function ‘atoi’
test.c:6: warning: implicit declaration of function ‘atof’

You should use -Wall basically always. Other very useful warning options for new code are -Wextra, -Wstrict-prototypes, -Wmissing-prototypes, -pedantic, and -Wwrite-strings, but compared to -Wall they have much higher false positive rates.

Tangentially: never use atoi nor atof, they hide input errors. Use strtol and strtod instead.

share|improve this answer
    
Side note: Wwrite-strings is on by default for C++ code. It's off by default for C because most C code is still C89 (sigh), and C89 does not have const. –  Billy ONeal Jan 25 '11 at 23:46
1  
C89 does have const; it was "traditional" C that didn't have it. But C (even in the very latest draft standard, AFAIK) defines the type of string constants to be char *, unlike C++. -Wwrite-strings brings C in line with C++. I participated in the project to turn on -Wwrite-strings when compiling GCC itself; it was on the order of one man-year of work to flush out a tiny number of bugs. I can't really blame the committee for leaving this backward compatibility wart alone. –  Zack Jan 26 '11 at 0:04

If you don't specify otherwise, I believe a C compiler will just guess that undeclared functions take the form extern int foo(). Which is why atoi works and atof doesn't. Which compiler flags were you using? I suggest using -Wall to turn on a bunch of gcc warnings, which should include referencing undeclared functions.

share|improve this answer

C allows you to call a function without having a declaration for that function.

The function will be assumed to return an int and arguments will be passed using default promotions. If those don't match what the function actually expects, you'll get undefined behavior.

Compilers will often warn for this case, but not always (and that will also depend on compiler configuration).

share|improve this answer

In C, when you use a function that was not declared, it assumes that it has the default prototype:

int FUNCTION_NAME();

Note that in C using () as prototype means it accepts any arguments.

If you compile with the flag -Wall (I recommend you to always use this flag, since it enables all recommended warnings) you will get a warning (not an error) telling you that you are using an undeclared function.

share|improve this answer

C, unfortunately, does not require functions to be prototyped (or even declared) before use -- but without a prototype, it automatically makes certain assumptions about the function. One of those is that it returns an int. In your case, atoi does return an int, so it works correctly. atof doesn't, so it doesn't work correctly. Lacking a prototype/declaration, you get undefined behavior -- typically it'll end up retrieving whatever value happens to be in the register where an int would normally be returned, and using that. It appears that in your particular case, that happens to be a zero, but it could just as easily be something else.

This is one of the reasons many people push "C++ as a better C" -- C++ does require that all functions be declared before use, and further that you specify the types of all (non-variadic) parameters as well (i.e. a C++ function declaration is like a C prototype, not like a C declaration).

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.