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I'm having trouble working with BigIntegers. I'm having trouble with the add method in the Rational class. In the Rational(int x, int y) constructor I'm trying to convert the parameters datatype int into the instance variable datatype of BigInteger though the use of thetoString(int n) method.

  1. Am I doing the conversion correctly inside the Rational(int x, int y) constructor?
  2. They way the add method is written I'm getting an error under all of n.num and n.den. I don't understand why I'm getting that error. Am I not correctly using the add method from the BigInteger class? http://docs.oracle.com/javase/1.4.2/docs/api/java/math/BigInteger.html

Suppose one class has the following

Rational a = new Rational(1,2);
Rational b = new Rational(1,3);
Rational c = new Rational(1,6);
Rational sum = a.add(b).add(c);
println(sum);

and the Rational class includes

import acm.program.*;
import java.math.*;

public class Rational{

    public Rational(int x, int y) {
        num = new BigInteger(toString(x));
        den = new BigInteger(toString(y));
    }

    public toString(int n) {
        return toString(n); 
    }

    public BigInteger add(BigInteger n) {
        return new BigInteger(this.num * n.den + n.num * this.den, this.den *  n.den)
    }

    /*  private instance variables  */
    private BigInteger num; 
    private BigInteger den;
}
share|improve this question
up vote 1 down vote accepted

To convert an int to BigInteger I would use BigInteger.valueOf(int).

Also, you cannot use operators with BigIntegers, you must use its own methods. Your methos should be like this:

public Rational add(Rational n) {
    return new Rational(
             this.num.multiply(n.den).add(n.num.multiply(this.den)).intValue(),
             this.den.multiply(n.den).intValue());
}
share|improve this answer
    
Thanks! that works. – Jessica M. Aug 28 '13 at 2:19
2  
Be careful with this. If you're adding lots of Rationals together, the denominators can blow up exponentially. For example, 1/5 + 1/5 + 1/5 + 1/5 will give you 500/625, instead of 4/5. You really want to add a step to remove any common factors between the numerator and the denominator, before returning the new value. – David Wallace Aug 28 '13 at 2:26
    
@DavidWallace I'm still confused on one thing. If you look at the BigInteger javadoc page, BigInteger has a add method. Can't you use that method in this case? If not, when can you use the BigInteger add method with this + val on the Javadoc page?docs.oracle.com/javase/1.4.2/docs/api/java/math/… – Jessica M. Aug 28 '13 at 2:45
    
There is no + for BigInteger objects. Use + to add two ints and add() to add two BigIntegers. – David Wallace Aug 28 '13 at 2:57

A simple error:

public Rational add(Rational n) {
    return new Rational(
        this.num.multiply(n.den).add(n.num.multiply(this.den)),
        this.den.multiply(n.den));
}

Also, when creating a new BigInteger you should use the valueOf(int) method instead of converting to String

share|improve this answer
    
Is your code snippet compiling? – Jayamohan Aug 28 '13 at 2:15
    
@JimGerrison When I copy and paste your code into Eclispe there is a red error line under (this.num * n.den + n.num * this.den, this.den * n.den). The error reads - The operator * is undefined for the argument type(s) java.math.BigInteger, java.math.BigInteger - The operator * is undefined for the argument type(s) java.math.BigInteger, java.math.BigInteger – Jessica M. Aug 28 '13 at 2:16
1  
You would need to use the multiply and add methods of BigInteger... I've updated my answer. – Jim Garrison Aug 28 '13 at 2:18
    
@JessicaM -- use BigInteger.multiply().. Java doesn't have operator overloading, Garrison wrote "mental logic" or essentially pseudo-code. Java does not have operator overloading. – Thomas W Aug 28 '13 at 2:19
1  
No. As @ThomasW said, Java does not overload operators. You must explicitly invoke the add and multiply methods when working with BigInteger. – Jim Garrison Aug 28 '13 at 6:32

1) Am I doing the conversion correctly inside the Rational(int x, int y) constructor?

You can use

BigInteger num = BigInteger.valueOf(x);

Making a String first is is not required.

2. They way the add method is written I'm getting an error .....

Your add method is wrong and its not clear what your are trying to acheive in your add method. But if your want to do addition in BigInteger you should use BigInteger#add method and for multiplication between BigInteger you should use BigInteger#multiply method.

share|improve this answer
    
I think I will use BigInteger.valueOf(x). But if you did choose to use toString, is toString used correctly? – Jessica M. Aug 28 '13 at 2:10
    
No your toString method was wrong.... It should be public toString(int n) { return toString(n); } – Jayamohan Aug 28 '13 at 2:12
1  
You could get rid of your toString method and use the one in the Integer class - like num = new BigInteger(Integer.toString(x)); if you wanted to. But why not just use BigInteger.valueOf(x)? It's much tidier. – David Wallace Aug 28 '13 at 9:04
    
@Jayamohan Is my toString(int n) method and your toString method answer two posts above this the same? Is the toString method written correctly? In this circumstance, does toString(int n) return return (n) or return (int n)? – Jessica M. Aug 29 '13 at 1:31

To stop the denominators blowing up exponentially, I would use the lowest common multiple of the two denominators as the denominator of the result, not their product. This would look like this.

public Rational add(Rational rhs) {
    BigInteger commonFactor = den.gcd(rhs.den);
    BigInteger resultNumerator = 
        num.multiply(rhs.den).add(rhs.num.multiply(den)).divide(commonFactor);
    BigInteger resultDenominator = den.multiply(rhs.den).divide(commonFactor);

    return new Rational(resultNumerator, resultDenominator);
}

To use this exactly how I've written it, you'll need a new constructor that takes two BigInteger arguments; but you probably want that anyway.

share|improve this answer
    
It took me a little while to fully understand what you were trying to say but it this correct. You always want to reduce the two denominators you're working with at the moment in the program to their greatest common denominator when working with fractions and other type of rationals because there could potentially be a mess by multiplying the denominators instead of simply adding them? – Jessica M. Aug 28 '13 at 22:49
    
Err, kind of. It may be easiest to see with an example. If I add 1/8 + 1/12, and I use the approach in trogdor's solution and Jim Garrison's solution, I finish up with (1 x 12 + 1 x 8)/(8 x 12), which is 20/96. This is correct, but not in simplest form. With my approach, you start by finding the GCD of 8 and 12 (which is 4), and dividing through as you go. This gives 5/24, which is both correct and in simplest form. The difference might not seem significant when you add two rational numbers, but as you add more and more numbers, the denominators end up increasing exponentially. This ... – David Wallace Aug 28 '13 at 23:22
    
... is a particular problem in trogdor's solution, which uses intValue on the numerator and denominator. So it would fail, for example, to add 1/17 + 1/17 + 1/17 + 1/17 + 1/17 + 1/17 + 1/17 + 1/17. Here, instead of giving 8/17 as an answer (which my solution would), trogdor's solution will give you an arithmetic overflow, because both the numerator and the denominator end up being too big to store in an int. – David Wallace Aug 28 '13 at 23:24

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