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Like the title said, i'm trying to implement an operator^(int n) which will calculate a complex number to the nth power. I know that this is a pointer that point to the current class object so i came up with this code:

    class Complex{
    protected:
      float a,b;
    public:
      Complex() {a=0;b=0;}
      Complex(float x, float y){a=x;b=y;}
      void set(float x, float y){a=x;b=y;}
      Complex operator*(Complex C){
                Complex temp;
                temp.a=a*C.a-b*C.b;
                temp.b=a*C.b+b*C.a;
                return temp;
      }
      Complex operator^(int n){
                Complex ONE=Complex(1,0);
                if (n<=0) return ONE;
                return ((*this)*((*this)^(n-1)));
      }
      void Display(){
                cout<<a<<' '<<b<<endl;
      }
      };
      int main() {
          Complex C;
          C.set(2,0);
          C=C^3;
          C.Display();
      }

The C.Display() is supposed to print 8 0 but when i ran in eclipse it display 2 0. Please tell me why this happens. Also really appreciate if anyone could tell me how to make ONE at line 15 a constant class object like BigInteger.ONE in Java.

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9  
Even though it's tempting – please don't use ^ as a power operator in C++, it has the wrong precedence. –  leftaroundabout May 21 '12 at 15:30
2  
What's wrong with std::complex and std::pow? –  Fanael May 21 '12 at 15:33
4  
@minhnhat93: So use a named function, instead of an operator. No C++ (or C#, or Java) programmer expects power to be an operator. –  Ben Voigt May 21 '12 at 15:36
1  
@minhnhat93, then you should change place where you are taking lectures; no sane lecturer will tell you to use operator^() as power in C++. –  Griwes May 21 '12 at 15:43
1  
@Griwes: Changing course might not be an option, but he should do it the right way (a function named pow) and be prepared to defend that by pointing out that the C++ Standard Committee, who are no fools, decided that was the better approach. –  Ben Voigt May 21 '12 at 15:49

2 Answers 2

Are you aware that there is an std::complex template type, with its own std::pow specialization?

#include <complex>
#include <iostream>

int main() {

  std::complex<double> c(2,0);
  std::complex<double> c3 = pow(c, 3);
  std::cout << c3 << "\n";
}

produces

(8,0)

furthermore, operator^ is bitwise XOR. Reusing this as a power operator will result in very confusing code.

Other than that, your code produces the result you expect, so the problem must lie elsewhere.

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No need to qualify pow with std::, because ADL will find the right function. –  Ben Voigt May 21 '12 at 15:37
    
@BenVoigt correct, thanks. –  juanchopanza May 21 '12 at 15:40
    
yeah, i searched but i NEED to implement operator^ for this is homework –  minhnhat93 May 21 '12 at 15:42
    
@minhnhat93 well, your code has many problems, but at least it produces the result you expect, so I don't know what is going on. –  juanchopanza May 21 '12 at 16:32

Also really appreciate if anyone could tell me how to make ONE at line 15 a constant class object like BigInteger.ONE in Java.

Put this inside your Complex declaration:

class Complex {
   ...
   const static Complex ONE;
};

And, put this outside your Complex declaration:

const Complex Complex::ONE(1,0);

If you put your Complex declaration inside a header file (e.g., Complex.hpp), you should the 2nd line (the Complex::ONE definition) inside exactly one source-code file (e.g. Complex.cpp).

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Outside of Complex declaration - but not in (included multiple times) header... –  Griwes May 21 '12 at 15:44
    
This kills optimization though... therefore not recommended. Better is class Complex { /*...*/ public: static Complex ONE() { return Complex(1,0); } }; which will be inlined and optimized away. –  Ben Voigt May 21 '12 at 15:45
    
thanks Rob :D but can you please tell me why we need to write const static and not const only? –  minhnhat93 May 21 '12 at 15:48
    
The static keyword in this context specifies a static data member. A static data member is not part of any object, but exists once for all objects of that class. This is similar to what Java calls a class variable. If that is not the behavior you asked for, disregard my answer. –  Robᵩ May 21 '12 at 16:16
    
it worked perfectly, i asked because i want to understand things clearly. thank you! –  minhnhat93 May 21 '12 at 16:22

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