6

I have a piece of code like this:

#include <stdio.h>

int add(const int x, const int y);

int main()
{
    printf("%d", add(9, 8));

    return 0;
}

int add(int x, int y)
{
    return x + y;
}

I forward declared the function "add" with const parameters after that i defined it without the const parameter, and when i compile it the compiler gives no complain.
The out put of the program is: 17. Why does this happen ?

12
  • 1
    MSVC says warning C4028: formal parameter 1 different from declaration and for parameter 2. Turn up the warnings level? Dec 15, 2021 at 19:44
  • 1
    Did you compile this with all the warnings on?
    – Ed Heal
    Dec 15, 2021 at 19:44
  • I compile it with gcc -Wall -o test test.c, nothing comes up
    – Kain
    Dec 15, 2021 at 19:50
  • 2
    What I mean is it's not a part of your prototype whether the parameter is const or not; it will be erased anyway. It's only important in the function block itself. So it gets ignored. Eg, int a(const int foo); is the same as int a(int);.
    – Neil
    Dec 15, 2021 at 20:10
  • 2
    If anything the reverse makes some sense. Declare int add(int x, int y); and define with int add(const int x, const int y) { ...}. The const serves no purpose in the declaration and without it, reduces clutter. As part of the definition, its useful to assure the values do not changes in the following code. Dec 15, 2021 at 20:16

1 Answer 1

6

Well, the function declaration and function definition have to be compatible, we all know that. So the same name and same return type and type of parameters. So we know from C11 6.7.6.3p15:

For two function types to be compatible, [...] corresponding parameters shall have compatible types. [...]

But, there is an explicit backdoor, later in that text:

(In the determination of type compatibility [...] each parameter declared with qualified type is taken as having the unqualified version of its declared type.)

The type-qualifier is for example const. And it is ignored. You can put any type-qualifier and it is just ignored when checking if the function declarations are the same with each other.

int func(int n);
int func(volatile int n);
int func(const int n);
int func(const volatile int n);
int func(int n) {
    return n;
}
2
  • Interesting. So MSVC produces an irrelevant warning?
    – tstanisl
    Dec 15, 2021 at 22:11
  • 1
    @tstanisl I don't think the warning is irrelevant. Even if the behavior is well defined by the standard, a difference between declaration and definition is at least suspicious and may be unintentional. (The programmer might have forgotten to add the qualifyer in the definition.)
    – Bodo
    Dec 16, 2021 at 12:34

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