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So, I have gotten intra-class operator overloading working for obj1 + obj2:

fraction operator+ (fraction op);

Similarly, cout << obj is working by overloading operator overloading ostream:

ostream& operator<< (ostream& os, fraction& frac);

However, if I try to combine the two, all hell breaks loose.

fraction.cpp:77:27: error: no match for ‘operator<<’ in 
‘std::operator<< [with _Traits = std::char_traits<char>]((* & std::cout), ((const char*)"Sum: ")) 
<< f1.fraction::operator+(f2)’

Here is the code:

#include <iostream>
using namespace std;

class fraction
{
    private:
        int n, d;

    public:
        fraction ()
        {
            this->n = 1;
            this->d = 0;
        }

        fraction (int n, int d)
        {
            this->n = n;
            this->d = d;
        }

        int getNumerator ()
        {
            return n;
        }

        int getDenominator ()
        {
            return d;
        }

        fraction operator+ (fraction op)
        {
            return *(new fraction(this->n*op.d + op.n*this->d, this->d*op.d));
        }

        fraction operator- (fraction op)
        {

            return *(new fraction(this->n*op.d - op.n*this->d, this->d*op.d));
        }

        fraction operator* (fraction op)
        {
            return *(new fraction(this->n*op.n, this->d*op.d));
        }

        fraction operator/ (fraction op)
        {
            return *(new fraction(this->n*op.d, this->d*op.n));
        }
};

ostream& operator<< (ostream& os, fraction& frac)
{
    int n = frac.getNumerator();
    int d = frac.getDenominator();

    if(d == 0 && n == 0)
        os << "NaN";
    else if(d == 0 && n != 0)
        os << "Inf";
    else if(d == 1)
        os << n;
    else
        os << n << "/" << d;
}

int main ()
{
    fraction f1(2, 3);
    fraction f2(1, 3);

    cout << f1 << " " << f2 << endl;

    /*
    cout << "Sum: " << f1+f2 << endl;
    cout << "Difference: " << f1-f2 << endl;
    cout << "Product: " << f1*f2 << endl;
    cout << "Quotient: " << f1/f2 << endl;
    */

    return 0;
}

Help. D:

share|improve this question
3  
You are leaking memory like crazy! Replace return *(new fraction(...)); with return fraction(...);. –  BoBTFish Jul 29 '13 at 15:23
4  
Stop using new. Possibly get rid of your current learning material in favour of a decent one. –  R. Martinho Fernandes Jul 29 '13 at 15:23
2  
Don't do return *(new T()) if you're trying to get an object, just do return T(). –  0x499602D2 Jul 29 '13 at 15:23
2  
Your ostream& operator<< doesn't return os. –  Rapptz Jul 29 '13 at 15:23
3  
C++ isn't java. As others have pointed out, this is leaking like a boat with a screen-door-hull. –  WhozCraig Jul 29 '13 at 15:25
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1 Answer

up vote 9 down vote accepted

The immediate problem is that

ostream& operator<< (ostream& os, fraction& frac)

won't accept a temporary because frac isn't a const reference - change it to

ostream& operator<< (ostream& os, const fraction& frac)

operator+ between two fractions will return a temporary which can't bind to a non-const reference.

There's also a very serious memory leak in these cases:

fraction operator+ (fraction )
{
   return *(new fraction(this->n*op.d + op.n*this->d, this->d*op.d)); 
}

new will return a dynamically allocated object which you then copy and return from the function.

Just do it like most people:

fraction operator+ (const fraction& op) const
{
   return fraction(this->n*op.d + op.n*this->d, this->d*op.d); 
}

(note the two extra consts and the pass by reference)

share|improve this answer
3  
That's the immediate problem, but you should probably also point out that operator+ et al. should be const, and that the usual convention would have all of the fraction arguements passed by reference to const (even though it probably doesn't make a difference with this class). –  James Kanze Jul 29 '13 at 15:24
    
You should probably mention how his stream operator isn't returning anything. –  Rapptz Jul 29 '13 at 15:27
3  
As for "Just do like most people": I don't know of anyone who makes operator+ a member. Most of the time, you just inherit from something like ArithmeticOperators<fraction>, and get it for free. If not, it's usually a free function using += in its implementation. (But of course, your version is perfectly fine too, and for a class this simple, maybe preferable.) –  James Kanze Jul 29 '13 at 15:27
    
I make it a member as I didn't know any different. I've never used a language that gives you so many ways to do the same thing and most of them are wrong most of the time. –  Neil Kirk Jul 29 '13 at 15:31
    
@NeilKirk No truer words have been spoken than the last sentence in your prior comment, save to say that by-definition, something that is "wrong" is not a way to do something. C++ isn't easy. But you have an enormous wealth of people here that will help you if you truly put effort into it on your side. The payoff is worth it, so stick to it. –  WhozCraig Jul 29 '13 at 15:35
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