Overload Operators in C++ | HackerRank Solution

Hello there, today we are going to solve Overload Operators Hacker Rank Solution in C++.

Hello there, today we are going to solve Overload Operators Hacker Rank Solution in C++.

Overload Operators in C++
Table Of Contents 👊

Problem

You are given a class - Complex.

class Complex
{
public:
    int a,b;
};

Operators are overloaded by means of operator functions, which are regular functions with special names. Their name begins with the operator keyword followed by the operator sign that is overloaded. The syntax is:

type operator sign (parameters) { /*... body ...*/ }

You need to overload operators + and << for the Complex class.

The operator + should add complex numbers according to the rules of complex addition:

(a+ib)+(c+id) = (a+c) + i(b+d)

Overload the stream insertion operator << to add "a + ib" to the stream:

cout<<c<<endl;

The above statement should print "a + ib" followed by a newline where a = c.a and b = c.b.

Input Format

The overloaded operator + should receive two complex numbers (a + ib and c + ib) as parameters. It must return a single complex number.

The overloaded operator << should add "a + ib" to the stream where a is the real part and i is the imaginary part of the complex number which is then passed as a parameter to the overloaded operator.

Output Format

As per the problem statement, for the output, print "a + ib" followed by a newline where a = c.a and b = c.b.

Sample Input

3+i4
5+i6

Sample Output 

8+i10

Explanation 

Given output after performing required operations (overloading + operator) is 8+i10.

Solution - Overload Operators in C++

//Operator Overloading

#include<iostream>

using namespace std;

class Complex
{
public:
    int a,b;
    void input(string s)
    {
        int v1=0;
        int i=0;
        while(s[i]!='+')
        {
            v1=v1*10+s[i]-'0';
            i++;
        }
        while(s[i]==' ' || s[i]=='+'||s[i]=='i')
        {
            i++;
        }
        int v2=0;
        while(i<s.length())
        {
            v2=v2*10+s[i]-'0';
            i++;
        }
        a=v1;
        b=v2;
    }
};

Complex operator+(const Complex & X, const Complex & Y) {
    Complex Z {X.a + Y.a, X.b + Y.b};
    return Z;
}

ostream & operator<< (ostream & out, const Complex & X) {
    if (X.b < 0) {
        out << X.a << "-i" << -X.b;
    } else if(X.b > 0) {
        out << X.a << "+i" << X.b;
    } else {
        out << X.a;
    }
    return out;
}
int main()
{
    Complex x,y;
    string s1,s2;
    cin>>s1;
    cin>>s2;
    x.input(s1);
    y.input(s2);
    Complex z=x+y;
    cout<<z<<endl;
}

Disclaimer: The above Problem (Overload Operators) is generated by Hacker Rank but the Solution is Provided by Sloth Coders. This tutorial is only for Educational and Learning Purpose.

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