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say I have this function:

int func2()
{
    printf("func2\n");
    return 0;
}

Now I declare a pointer:

int (*fp)(double);

This should point to a function that returns int and receives double as an argument. func2 does NOT have any arguments, but still when I write

fp = func2;
fp(2);

func2 is invoked correctly. 2 is just a random number. So my question is - how is it? Is there no meaning to arguments when I declare a function pointer? Thanks

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The short answer is "declaring a function with no arguments... and then deliberately passing an argument... is just wrong". –  paulsm4 Aug 21 '11 at 23:37

2 Answers 2

up vote 31 down vote accepted

Yes, there is a meaning. In C (but not in C++), a function declared with an empty set of parentheses means it takes an unspecified number of parameters. When you do this, you're preventing the compiler from checking the number and types of arguments; it's a holdover from before the C language was standardized by ANSI and ISO.

Failing to call a function with the proper number and types of arguments results in undefined behavior. If you instead explicitly declare your function to take zero parameters by using a parameter list of void, then the compiler will give you a warning when you assign a function pointer of the wrong type:

int func1();  // declare function taking unspecified parameters
int func2(void);  // declare function taking zero parameters
...
// No warning, since parameters are potentially compatible; calling will lead
// to undefined behavior
int (*fp1)(double) = func1;
...
// warning: assignment from incompatible pointer type
int (*fp2)(double) = func2;
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You need to explicitly declare the parameter, otherwise you'll get undefined behavior :)

int func2(double x)
{
    printf("func2(%lf)\n", x);
    return 0;
}
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