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While trying to compute the square root of a BigInteger using BINARY SEARCH method,I was stuck in between as to how to comapre two BigIntegers for satisfying comparison operation. Like, I wanted to check for equality,greater than or lesser than conditions between two BigInteger variables.

Here is the wrong piece of code with rough idea of as to what I want to perform.Any efforts to resolve the issue would be appreciated.

public static BigInteger squareroot(BigInteger bi){
    //BigInteger bkl;
    BigInteger low,high,mid;
low=ONE;
high=bi.add(ZERO);
while(low<=high)
{
    mid =(low.add(high)).divide(new BigInteger("2"));
    if(mid.multiply(mid).equals(bi))
        return mid;
    if(mid.multiply(mid) > bi)
        high = mid -1 ;
    else
        low = mid + 1;
}
return mid;
}
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Binary search for square root? How does that work? –  Elliott Frisch Apr 29 at 18:34
    
@ElliottFrisch it performs a binary search with high being the square and low being 0, returning when the binary search finds the integer that is the square root. –  Matthew Apr 29 at 18:36
    
@Human I don't see an array (contiguous or otherwise) in OP's post. Also, what if I pass in 10. –  Elliott Frisch Apr 29 at 18:37
    
@ElliottFrisch I stated it incorrectly, it starts with the high number being the square + 1 and the low being 0. It converges on the square root as a binary search would when searching for an integer in an array. –  Matthew Apr 29 at 18:38
    
You can just get the rough estimate of getting square root of 10 as 3 approximately when you will run this piece of code. –  shekhar suman Apr 29 at 18:39

2 Answers 2

up vote 4 down vote accepted

BigIntegers are Objects so you cannot compare their contents with relational operators such as >, and == won't compare contents; it will compare object references.

However, BigInteger does implement Comparable<BigInteger>, so call compareTo instead.

  • For equality, use left.compareTo(right) == 0.
  • For less than, use left.compareTo(right) < 0.
  • For greater than, use left.compareTo(right) > 0.
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But this is not my question.What will I receive after performing this??? I want to compare two BigIntegers for the greater than or lesser than relation. How will I use this Comparable interface to help me achieve this? –  shekhar suman Apr 29 at 18:42
    
Calling compareTo will certainly help you. You will be able to compare the values of two BigIntegers by calling compareTo. You "use" Comparable by calling compareTo which is defined by Comparable. The compareTo method must be defined because BigInteger declares that it implements Comparable. –  rgettman Apr 29 at 18:47
    
Sorry,I got your point. Can I post this as answer to my own question? –  shekhar suman Apr 29 at 18:59
    
While you are always welcome to answer your own question, I don't see what the repetition will gain. –  rgettman Apr 29 at 19:01

You are not using the BigInteger class correctly:

  1. You can replace high = bi.add(ZERO) with a simple high = bi.
  2. The comparison low <= high will not compile for BigInteger operands.
  3. The comparison mid.multiply(mid) > bi will not compile for BigInteger operands.
  4. The arithmetic operations mid-1 and mid+1 will not compile for a BigInteger operand.
  5. Using divide(new BigInteger("2")) is not very efficient; use shiftRight(1) instead.

Try this method instead:

public static BigInteger squareroot(BigInteger bi)
{
    BigInteger low  = BigInteger.ZERO;
    BigInteger high = bi;
    while (true)
    {
        BigInteger mid0 = low.add(high).shiftRight(1);
        BigInteger mid1 = mid0.add(BigInteger.ONE);
        BigInteger square0 = mid0.multiply(mid0);
        BigInteger square1 = mid1.multiply(mid1);
        if (square0.compareTo(bi) > 0)
            high = mid0;
        else if (square1.compareTo(bi) <= 0)
            low = mid1;
        else
            return mid0;
    }
}
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@shekhar: Well, you've changed the code in your question, so I'm gonna remove this answer in a few minutes... –  barak manos Apr 29 at 19:18
    
My purpose will not be solved if I will assign high=bi. Please correctify it! –  shekhar suman Apr 29 at 19:20
    
@shekhar: You are wrong. high=bi.add(ZERO) in your code is equivalent to high=bi in my code. In addition to that, you have several errors in your code: 1. while(low<=high). 2. if(mid.multiply(mid) > bi). And finally, your use of divide(new BigInteger("2") is not very efficient, and you can improve it by replacing it with shiftRight(1). –  barak manos Apr 29 at 19:25
    
So,you should have probably read the question in a hurried state.I had already mentioned that I am presenting my wrong code,only to give a fair idea as to what I wanted to achieve. And,moreover,your take over high=bi is wrong as in this program,there is no need to reference to bi's address,rather,it was only intended to provide an instantiation in the beginning! –  shekhar suman Apr 29 at 19:53
1  
@shekhar: I think that your perception of Java is wrong! When you instantiate high=bi, it does not mean that bi changes whenever high changes. Creating a new instance with high=bi.add(ZERO) has no effect different than high=bi (except for the duplicate instance, so if anything, it makes the performance of your code worse)! –  barak manos Apr 29 at 19:58

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