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Please have a look at the following code

#include <iostream>
#include <iomanip>
#include <cmath>

using namespace std;

int main()
{
    //int side1 = 0;
    //int side2 = 0;
    //int rightSide = 0;

    cout << "Right Side" << setw(10) << "Side1" << setw(10) << "Side2" << endl;

    for(int i=1;i<=500;i++)
    {
        //side1++;
        //cout << side1 << endl;

        for(int a=1;a<=500;a++)
        {
            //side2++;
            //cout << "side 2 " << side2 << endl;

            for(int c=1;c<=500;c++)
            {
                //rightSide++;
                int rightSideSqr = pow(c,c);
                int side1Sqr = pow(i,i);
                int side2Sqr = pow(a,a);

                if(rightSideSqr == (side1Sqr+side2Sqr))
                {
                    cout << rightSideSqr << setw(15) << i << setw(10) << a << endl;
                 }


            }
        }
    }
}

This gives an error "PythagorialTriples.cpp:28: error: call of overloaded `pow(int&, int&)' is ambiguous". This doesn't happen if I simply used manual power like i*i, instead of the method. Can someone please explain me why this is happening? I am new to C++ anyway. Thanks

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1  
Power is causing problems again? That is because the hearts of men are easily corrupted. –  Xeoncross Sep 19 '12 at 18:56
    
okay..LOL......... –  Sniper Sep 19 '12 at 19:02

4 Answers 4

up vote 6 down vote accepted

There are multiple overloads for pow defined in <cmath>. In your code, these 3 are all equally valid, therefore the compiler is having trouble choosing the right one:

        pow(float, int);
        pow(double, int);
        pow(long double, int);

The simplest solution is to use static_cast on the first argument, to remove any ambiguity. e.g.

int side1Sqr = pow( static_cast<double>(i) ,i );
int side2Sqr = pow( static_cast<double>(a) ,a );
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1  
Actually there are more than 3, but those are the only ones considered in this particular case. –  Mark Ransom Sep 19 '12 at 18:33
    
@MarkRansom good point, thanks for that. I've edited the answer accordingly! –  Ben Cottrell Sep 19 '12 at 18:34
    
Thanks a lot for the reply, I really appreciate it. However, I thought of using pow() thinking it will speed of the operation...But, it took 14 seconds while i*i took 1 seconds :( –  Sniper Sep 19 '12 at 18:41
1  
i*i will be faster than pow(i,2) because: 1. i*i is integer math. 2. pow(i,2) does conversion and double math. FWIW, pow(int, int) works in g++. –  dadinck Sep 19 '12 at 18:51

Whoa! Pow(x,y) is x raised to the yth power (in mathematical terms - xy)!! NOT x*y

So you're trying to take iith power in a 5003 nested loop. Probably not what you want. Replace with pow(i,2) for your desired behavior.

Note, @Mooing Duck raises an excellent point about x^y in c++ which is the XOR operator. But I think you sort of figured that out if you're already using pow anyway.

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7  
Careful, as x^y is valid C++ and means something very different than what you say here. –  Mooing Duck Sep 19 '12 at 18:29
    
Excellent point, especially with new C++ programmer. Fixing now. –  im so confused Sep 19 '12 at 18:30
    
Thanks for the point! Much appreciated! –  Sniper Sep 19 '12 at 18:42
    
I updated your question to use the <sup>blah</sup> tags to remove the ^ confusion issue. –  Scott Chamberlain Sep 19 '12 at 18:53
    
Ah good call, I've gotta learn how to use the formatting tags better lol –  im so confused Sep 19 '12 at 20:11

It cannot figure out which overloaded function to use. Try

pow(double(i), i);

or

pow(double(i), 2);

Since that looks like what you want.

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1  
C-style casts should be avoided in C++. –  David Titarenco Sep 19 '12 at 18:37
    
@DavidTitarenco: Hi, this is interesting. Why that "easy" cast should be avoided? –  Sniper Sep 19 '12 at 18:48
    
*_cast<type> casts were specifically added to the C++ standard to avoid C-style (weak, unchecked) cast mistakes which are incredibly prevalent and have historically accounted for many, many bugs. The old-style cast remains in the standard mostly as a backward-compatibility, not as a language feature. –  David Titarenco Sep 19 '12 at 18:50
    
@DavidTitarenco: Thanks for the clarification :) –  Sniper Sep 20 '12 at 16:37

Are you sure that you can handle such a big pow?

Pow(x,y) is xy. Look at the

http://www.cplusplus.com/reference/clibrary/cmath/pow/

double pow ( double base, double exponent );

long double pow ( long double base, long double exponent );

float pow ( float base, float exponent );

double pow ( double base, int exponent );

long double pow ( long double base, int exponent );

There is no INT version. Your compiler didnt know which one is correct. You have to tell them by using static_cast like:

int side1Sqr = pow(static_cast<double>i,i);

for big precision calculate you can use:

http://gmplib.org/

There is also one solution from boost.

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