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I don't get why does this code compile?

#include <stdio.h>
void foo() {
    printf("Hello\n");
}

int main() {
    const char *str = "bar";
    foo(str);
    return 0;
}

gcc doesn't even throw a warning that I am passing too many arguments to foo(). Is this expected behavior?

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Are you using any flags when executing gcc? –  Colin D Sep 28 '12 at 15:48
18  
Welcome to the C language, this is part of the legacy standard. FYI it is not supported in C++. –  Steve-o Sep 28 '12 at 15:50
5  
You can typically inspire the compiler to generate a warning if you declare the function as void foo(void) –  Hans Passant Sep 28 '12 at 15:53
5  
@HansPassant: If you declare it as void foo(void), the compiler should normally give an error, not just a warning (though the official wording simply requires a "diagnostic"). –  Jerry Coffin Sep 28 '12 at 15:57
3  
add -Wall when you compile it –  pyCthon Sep 28 '12 at 16:08
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3 Answers

up vote 71 down vote accepted

In C, a function declared with an empty parameter list accepts an arbitrary number of arguments when being called, which are subject to the usual arithmetic promotions. It is the responsibility of the caller to ensure that the arguments supplied are appropriate for the definition of the function.

To declare a function taking zero arguments, you need to write void foo(void);.

This is for historic reasons; originally, C functions didn't have prototypes, as C evolved from B, a typeless language. When prototypes were added, the original typeless declarations were left in the language for backwards compatibility.

To get gcc to warn about empty parameter lists, use -Wstrict-prototypes:

Warn if a function is declared or defined without specifying the argument types. (An old-style function definition is permitted without a warning if preceded by a declaration which specifies the argument types.)

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For legacy reasons, declaring a function with () for a parameter list essentially means “figure out the parameters when the function is called”. To specify that a function has no parameters, use (void).

Edit: I feel like I am racking up reputation in this problem for being old. Just so you kids know what programming used to be like, here is my first program. (Not C; it shows you what we had to work with before that.)

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2  
Wait, are you serious? Why would you ever do that? –  Drise Sep 28 '12 at 15:55
4  
Type rules, object orientation, encapsulation, overloading, and other modern language features did not develop overnight. Decades ago, programming languages were much more primitive. And experimental. C was an advance over what came before it, and reasons for strong typing of function parameters or how you would implement them were not clear. A primary motivation at the time was giving programmers easy ways to do powerful things. The need for using strong typing to reduce bugs was not as big a motivation then. –  Eric Postpischil Sep 28 '12 at 15:59
4  
@Drise: you wouldn't, not anymore. However, prior to the 1989 standard, the C language didn't support prototype declarations (where the number and types of the parameters are declared); you could only specify the function's return type in a declaration. There's a lot of legacy code out there that would break if you changed the rules for empty parameter lists in declarations, so it's still supported, but new code should always use prototype syntax when declaring functions. –  John Bode Sep 28 '12 at 16:12
3  
In terms of type safety, early C was an advance only over B. There were plenty of safely typed languages (Simula, Pascal, even Algol) that had no problem enforcing strong typing of function parameters. C won by being more efficient and easier to implement on resource-constrained minicomputers, but the trade-offs involved were apparent at the time. –  ecatmur Sep 28 '12 at 17:26
1  
@John Bode is correct about pre-1989 C. IIRC it is also referred to as Traditional C. Another great 'feature' allowed using int for char. My first C compiler was traditional C and it taught me to love ANSI C. –  james Sep 28 '12 at 17:33
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void foo() {
    printf("Hello\n");
}

foo(str);

in C, this code does not violates a constraint (it would if it was defined in its prototype-form with void foo(void) {/*...*/}) and as there is no constraint violation, the compiler is not required to issue a diagnostic.

But this program has undefined behavior according to the following C rules:

From:

(C99, 6.9.1p7) "If the declarator includes a parameter type list, the list also specifies the types of all the parameters; such a declarator also serves as a function prototype for later calls to the same function in the same translation unit. If the declarator includes an identifier list,142) the types of the parameters shall be declared in a following declaration list."

the foo function does not provide a prototype.

From:

(C99, 6.5.2.2p6) "If the expression that denotes the called function has a type that does not include a prototype [...] If the number of arguments does not equal the number of parameters, the behavior is undefined."

the foo(str) function call is undefined behavior.

C does not mandate the implementation to issue a diagnostic for a program that invokes undefined behavior but your program is still an erroneous program.

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