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I happened to stumble across this piece of code.

int x(int a){
    std::cout<<a<<std::endl;
    return a + 1;
}

int main()
{
    std::cout<<sizeof(x(20))<<std::endl;
    return 0;
}

I expected it to print 20 followed 4. But it just prints 4. Why does it happen so? Isn't it incorrect to optimize out a function, that has a side effect (printing to IO/file etc)?

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The code does not call the function&mdash;it does not even manipulate a pointer to the function. –  wallyk Apr 26 '12 at 6:59

5 Answers 5

up vote 11 down vote accepted

sizeof is a compile-time operator, and the operand is never evaluated.

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Thanks! But as we can see x() has a side effect of printing to the IO stream. Wouldn't it be wrong to not call the function because we just know the sizeof's value at compile time? –  Chethan Ravindranath Apr 26 '12 at 6:59
    
@ChethanRavindranath: It doesn't matter what the function does. sizeof is specifically designed to avoid any and all side-effects the expression might have. –  Cat Plus Plus Apr 26 '12 at 7:01
2  
More importantly, the language standard expressedly says that the operand of sizeof is not evaluated. (This is very important in some metaprogramming techniques, where the "called" function doesn't even exist.) –  James Kanze Apr 26 '12 at 7:48

sizeof is actually an operator and it is evaluated in compile-time.

The compiler can evaluate it because the size of the return type of x is fixed; it cannot change during program execution.

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result of sizeof is computed in compiling time in C++. so there has of function call to x(20)

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sizeof() gives the size of the datatype. In your case it doesn't need to call the function to obtain the datatype.

I suspect sizeof also does it's business at compile time rather than runtime...

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Let me quote c++03 standard, #5.3.3.

The sizeof operator yields the number of bytes in the object representation of its operand. The operand is either an expression, which is not evaluated, or a parenthesized type-id.

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