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I am writing a program in java which works to calculate the sqrt of a given value up to 10^100 . For this, I know I have to use a BigInteger but the process I am dealing with is not so efficient as it takes a lot of time. What is the fastest process to factorize a number to deal with the program? What is the faster algorithm?

Thanks in advance.

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closed as not constructive by NINCOMPOOP, Tom Seidel, syb0rg, CanSpice, qJake May 17 '13 at 20:55

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Did you try any algorithm at all ? If yes, then can you post what you tried ? – NINCOMPOOP May 17 '13 at 16:23
    
Yeah... I tried general divide process for(i=0;i<n;i++) if(number/i==i) {printf("%d",i); break;} – dedicatedtolearn May 17 '13 at 16:25
    
What is n and printf() is C , not Java, though its immaterial !!! – NINCOMPOOP May 17 '13 at 16:36
    
Possible duplicate :stackoverflow.com/questions/2844703/… – NINCOMPOOP May 17 '13 at 16:38
    
So you don't want a general factorization algorithm, just a square root? – pjs May 17 '13 at 16:40

First, I hope you realize that most input values won't have an exact integer answer for square root! Are you sure you want to do this with BigInteger rather than BigDecimal?

You sure as heck don't want to iterate through each value up to n. You need a way to improve your answers much more rapidly. A simple way to do so is to make an initial guess for a value of the square root (I recommend n/2), and find its co-factor (n / guess). If they're equal you're done, if they're not equal update your guess to be the average of the guess and its co-factor -- one of them will be greater than the actual square root, and the other will be smaller, so averaging will produce a value closer to the actual square root. Lather, rinse, repeat. If there isn't an exact square root, stop when the factor and the cofactor are within 1 of each other.

Addendum: Here it is in pseudo-code (actually Ruby, but that's pretty much the same thing):

def sqrt(n)
  guess = n / 2
  cofactor = 2
  loop do
    cofactor = n / guess
    break if (guess - cofactor).abs <= 1
    guess = (guess + cofactor) / 2
  end
  return [guess, cofactor].min
end

Translation to Java should be pretty straightforward.

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Great idea... Could you borrow me some implementations?? Whatever, the ans will be always Integer/BigInteger – dedicatedtolearn May 17 '13 at 17:00

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