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Why it doesn't return any value? The output should be 155 but it always display 0. why?

int main()
{
    int i=5;
    printf("%d",fun(fun(fun(fun( fun(i))))));
    return 0;
}

void fun(int i)
{
    if(i%2) return (i+(7*4)-(5/2)+(2*2));
    else return (i+(17/5)-(34/15)+(5/2));
}

But if I change

void fun(int i) // It doesn't work, case 1
    to
int fun(int i) //It works fine, case 2

If fun doesn't return any value in case 1 ( void fun(int i) ), then how come

fun(fun(fun(fun( fun(i)))))); this statement is working?
share|improve this question
    
Void doesn't return values –  CAO Sep 19 '13 at 18:03
    
@CAO....thanks, but that is not my ques. I am asking why fun(fun(fun(fun( fun(i)))))); this statement is working? –  user2322888 Sep 19 '13 at 18:04

3 Answers 3

up vote 2 down vote accepted

Case 1 is undefined behavior, if we look at the C99 draft standard section 6.8.6.4 The return statement says(emphasis mine):

A return statement with an expression shall not appear in a function whose return type is void. A return statement without an expression shall only appear in a function whose return type is void

but if you do not have a declaration then most likely the compiler is implying the return type as int but then there is a mismatch between the declaration and implementation, this as far as I can tell then become undefined behavior again. I am able to run this on the latest gcc with the same result but I do receive the following warnings:

warning: implicit declaration of function 'fun' [-Wimplicit-function-declaration]
warning: conflicting types for 'fun' [enabled by default]
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You have no declaration for your fun function at the time it is called so the compiler implicitly put a declaration with int return value.

In C89 if there is no visible declaration, it is as if the declaration:

extern int fun();

appeared before the function call. But as your function definition actually has void return value, your program invokes undefined behavior.

In C99, the rule for implicit function declaration has been removed and a diagnostic has to be issued.

EDIT: Actually as stated by @Shafik Yaghmour you are also having a return statement in a void function. This is a constraint violation in C89 (and C99 / C11) and the compiler has the right to stop the translation.

share|improve this answer
    
ok, But why its printing 0? Why its not returning any value as a argument for printf? –  user2322888 Sep 19 '13 at 18:03
1  
@user2322888 undefined behavior is undefined, tomorrow it could return 42. –  ouah Sep 19 '13 at 18:04
    
@user2322888: The only way to answer the question for sure is to look at the generated machine code; most likely, the 0 value is simply an accident of how the undefined behavior was handled. You will most likely get a different result (maybe even a crash) if you compile with different optimization settings, or add an extra print statement to fun, etc. –  John Bode Sep 19 '13 at 18:19

Both answers provided so far (by Shafik and ouah) are correct and complementary (and +1). But I want to stress something once more: do not ignore the warnings that a compiler gives you. Warnings in C can often save you from a lot of trouble.

When you compile your code (e.g. in gcc), you will see:

warning: ‘return’ with a value, in function returning void

This plainly says that you have a function that shouldn't return anything and, still, you're trying to return an integer from it. As the result type is explicitly declared to be void, the compiler chooses simply to ignore whatever you return; this appears as if you always return zero. This may seem strange but, as what you're doing is undefined behavior, the compiler is entitled to do so.

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