Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

So basically I am trying to do a fraction class. It will take in the fraction from user input and perform an addition. For example, I type in 1 5 and 1 7 , for the addition it will print out 12/35.
Here is my .h class:

#include <string>
#ifndef _FRACTION_H_
#define _FRACTION_H_

using namespace std;

class Fraction
{
    public:
        Fraction();
        Fraction(int n, int d);
        int getNumerator() const;
        int getDenominator() const;
        void display();
        string to_string();
        Fraction operator+(Fraction &second);
    private:
        int numerator;
        int denominator;
};

And this is my .cpp file:

#include "Fraction.h"
#include <string>
include <iostream>

using namespace std;

Fraction::Fraction(){}

Fraction::Fraction(int n, int d)
{
    this->numerator = n;
    this->denominator = d;
}

int Fraction::getNumerator() const
{
    return numerator;
}

int Fraction::getDenominator() const
{
    return denominator;
}

Fraction Fraction::operator+(Fraction &second)
{
    int n1 = getNumerator() * second.getDenominator();
    int n2 = second.getNumerator() * getDenominator();
    int d = getDenominator() * second.getDenominator();
    return Fraction(n1+n2, d);
}
string Fraction::to_string()
{
    return  (getNumerator() + "/" + getDenominator()) ;
}

And this is my main method:

bool get_input(Fraction &fract);

int main()
{
    Fraction fraction1, fraction2;
    if (((!get_input(fraction1)) || (!get_input(fraction2))))
    cout << "Invalid Input!" << endl;
    else 
    {
        // Test harness for Arithmetic Operator Overloading
        Fraction result = fraction1 + fraction2;
        cout << "Addition = " << result.to_string() << endl;
    }

    bool get_input(Fraction& fract)
    {
        int num, den;
        cout << "Enter numerator & denominator (separated by space)" << endl;
        cin >> num >> den;
        if (cin.fail())
        return false;
        Fraction f(num,den);
        fract = f;
        return true;
    }
}

It's managed to take in the user input. But however, it does not print out the result. Thanks in advance.

share|improve this question
2  
You're using a reserved identifier. And please, for the sake of everyone, never put using namespace ...; in a header. Also, your operator+ won't work with a temporary or const objects, which is unexpected. –  chris Jul 12 '13 at 8:18
3  
It does not print out the result? What does it do? Have you stepped through it with your debugger? –  Daniel Daranas Jul 12 '13 at 8:19
3  
Don't put using namespace std into header files. Use it in your cpp-files if you like, but under no circumstances in header files. –  Oswald Jul 12 '13 at 8:21
3  
You're right, there is definitely something wrong with your to_string function. You're just advancing where the string literal begins, most likely past the end of it. Addition as concatenation does not work with C strings and integers, string literal or not. –  chris Jul 12 '13 at 8:23
2  
@DanielDaranas, The website filter can be put anywhere in the query :) –  chris Jul 12 '13 at 8:30

2 Answers 2

up vote 6 down vote accepted

There maybe other problems, but the Fraction::to_string() function is clearly wrong: the types in the return expression are int, char const* and int. The result of adding these is a char const*, but given that the string literal is only two characters long, if the sum of the two int is greater than two, you have undefined behavior. You need to convert the int to strings first; the simplest way to do this is to use std::ostringstream:

std::string
Fraction::to_string()
{
    std::ostringstream results;
    results << numerator << '/' << denominator;
    return results.str();
}

Normally, one would expect a compiler error when you misuse types like this, but for historical reasons: string literals have type char const[], not std::string; char const[] converts almost everywhere to char const*; C++ supports adding integral values to pointers; and std::string has a constructor which does an implicit conversion from char const*.

share|improve this answer
    
but it told me incomplete type is not allowed –  I Was So Lost Jul 12 '13 at 8:31
1  
@Gwen, #include <sstream>. –  chris Jul 12 '13 at 8:32
    
I feel much relieved by the s suffix for string literals coming soon. –  chris Jul 12 '13 at 8:34
    
So basically it's my method type is giving an error? Let's say I take in int but I store it as string. Am I explained in the correct way? –  I Was So Lost Jul 12 '13 at 8:35
2  
@Gwen int and std::string (and char const[]) are distinct types. Each has rules concerning their use, and normally, if you violate the rules, you get an error from the compiler. You cannot assign an int to a std::string, for example. For historical reasons, however, C++ has a lot of implicit conversions, string literals don't have the type you'd expect, and the type they do have is more or less broken. So you don't get the compiler error. But that doesn't mean that the code is correct, nor that it does what you want. –  James Kanze Jul 12 '13 at 8:50

You use "+" operator between literals ("/") and int in your to_string method The compiler is trying to do some implicit conversion and it ends up with a point (int + int + char*, best guess is a char*), which is then transformed into a std::string using the correct constructor

Change your method to use stringstream (and you'll have finer control on formatting):

string Fraction::to_string()
{
    std::stringstream s;
    s << getNumerator() << "/" << getDenominator();
    return s.str();
}

reference : http://www.cplusplus.com/reference/sstream/stringstream/

share|improve this answer
    
oups, looks like I'm too slow –  Bruce Jul 12 '13 at 8:41

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.