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This code compiles without an error in gcc 4.6.1 and 4.8.1 ( eclipse auto compilation says: Candidates are: float pow(float, int) long double pow(long double, int) double pow(double, int) ):

#include <iostream>
#include <cmath>
#include <vector>
using namespace std;

int main(void) {
    const int i = 0, x = 2;
    double y = pow( i, x );
    y = log( i ) / log( x );
    cout << y;
return 0;
}

Thank you very much. This code has performed some nice confusing at work. The compiler can be trusted?

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3  
What is the question here? –  catfood Jun 23 '13 at 20:06
    
When in doubt, trust the compiler and forget eclipse –  djf Jun 23 '13 at 20:08
    
What is the (intermediate) goal of your program, to please eclipse, or to be compiled? –  PlasmaHH Jun 23 '13 at 20:09
    
The goal of this program is to understand the implicit conversion. Of course is only a absurd simplification of a concrete problem. I found it hyperbolic to post thousand lines of code. The question is: Why get this code compiled? –  shaze86 Jun 23 '13 at 20:17

3 Answers 3

up vote 3 down vote accepted

You do not get any compilation errors, since the C++ standards says that your integer type is to be accepted and converted to double.

From the standard §26.8/11:

Moreover, there shall be additional overloads sufficient to ensure:
[...]
3. Otherwise, if any argument corresponding to a double parameter has type double or an integer type, then all arguments corresponding to double parameters are effectively cast to double.

Also see cppreference.com/.../pow where it says:

If any argument has integral type, it is cast to double.

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I believe this is actually the subject of a Defect Report. –  Ben Voigt Jun 23 '13 at 20:36
    
@BenVoigt You mean in eclipse? –  Pixelchemist Jun 23 '13 at 20:40
    
No, I mean the rule. Actually implementing it turned out to be an unmaintainable template disaster, if I understand correctly. Also very unintuitive, because the rules weren't consistent with the normal built-in conversions. –  Ben Voigt Jun 23 '13 at 20:46
    
That's right and probably also the reason why questions like this arise. –  Pixelchemist Jun 23 '13 at 20:49
    
Oh, now I think I remember. Because following the rule requires templates to actually implement, it becomes a perfect match to user-defined types, and user-defined conversion operators aren't called correctly. –  Ben Voigt Jun 23 '13 at 22:31

I assume that the question is: "Why does function overloading cause ambiguity error?".

The answer is very clear in your case: There is not any version of pow(a, b) that accepts the parameter a as integer. Rather than displaying an error, the compiler tries to find a version of pow where there is a built-in (or custom) type conversion operator that can cast int into the type pow expects. It happens that there are 3 such functions and there is a conversion operator for each such function. That is why the compiler finds it ambiguous.

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1  
The compiler does not find it is ambiguous... –  PlasmaHH Jun 23 '13 at 21:09

Because pow acceptes a double or a float as second parameter (your x). Here is the description for pow in C++11.

If your run the same code on VS2010 in will too issue an error.

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