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.

Is there any shorter and efficient way to find
if a number can be formed by the product of two distinct square numbers
for example

  • 36=4*9
  • 144=16*9

help me with an algorithm or the logic

share|improve this question

closed as off topic by nawfal, Barmar, Tyler Carter, Sameer, the Tin Man Dec 27 '12 at 6:23

Questions on Stack Overflow are expected to relate to programming within the scope defined by the community. Consider editing the question or leaving comments for improvement if you believe the question can be reworded to fit within the scope. Read more about reopening questions here.If this question can be reworded to fit the rules in the help center, please edit the question.

2  
you should ask this here math.stackexchange.com u get more better soluction –  CRDave Dec 26 '12 at 13:34
2  
you mean "by the product"? –  mprivat Dec 26 '12 at 13:37
    
You say "shorter," but you haven't provided us with an algorithm. –  irrelephant Dec 26 '12 at 13:38
    
@mprivat: sorry, editted –  yuv60 Dec 26 '12 at 13:38
    
@irrelephant: I cannot find better solution.I can do it by itterating from 1 to sqrt(n). –  yuv60 Dec 26 '12 at 13:43

4 Answers 4

Should be fairly easy. Take your number and decompose it in prime factors. Algorithm and implementations in various languages are available here.

Once you got your prime factors, then it's easy. Go through them and look to see if you have two pairs of identical numbers.

For example:

36 = 2 * 2 * 3 * 3. Two pairs (2 and 3). It works.

144 = 2 * 2 * 2 * 2 * 3 * 3 => Two pairs (2*2 and 3). It works

The only tricky part is to recombine your prime factor so that you wind up with X = A * A * B * B. But that's not very hard either.

share|improve this answer
    
@mpvirat: nice one :) –  yuv60 Dec 26 '12 at 13:54

I'd advise you to consider the following:

If a number is a product of two distinct square numbers, then it is of the form n, where n = a^2 * b^2 for some values a and b. However, we know that a^2 * b^2 = (a*b)^2 (you can check this through for yourself in the two examples above). Therefore, to know if a number is the sum of two squares, that number itself must be a square number.

Then all that remains is to work out that it's the product of two distinct square numbers - this can be done by simply as follows:

If n = a^2 * b^2, then for a <> b, n cannot equal a^4. If n = a^4 then a^2 * b^2 = a^4, which in turn means that b^2 = a^2, which ultimately means that b = a or -a (you don't say whether you count a value and it's negative as "distinct" for purposes of this test).

share|improve this answer

How about this?

package Math;
public class NearestNumber {
    public static void main(String[] args) {

        int myNumber = 144;
        int min = (int) Math.sqrt(myNumber);
        int i, j, counter = 0;

        for (i=2;i<min;i++) {
            for (j=i+1;j<=min;j++) {
                if (myNumber == (i*i*j*j)) {
                    System.out.println("Possible combination are " + (i*i) + " and " + (j*j));
                    counter++;
                }
            }
        }
        if (counter==0) {
            System.out.println("No possible combination found!!!");
        }
    }
}

Note: This is printing all possible combinations and not the closest. I believe first is closest...

Output for above is

Possible combination are 4 and 36
Possible combination are 9 and 16

Demo

share|improve this answer

You asked for the logic, so here goes. The implementation is straightforward.

Get the number and extract its square root. If it is not integer, then there is no number A such that A*A = N, therefore there can't be two numbers such that B*C = A and you stop right there.

If the root A is integer, then extract its root again; let its integer part be R. Loop all primes between 2 and R and use them to factor A. Every time you find a prime factor of A (it divides A with no remainder), keep dividing by that prime number until you would get a remainder. The number of times you divided without a remainder is the power of that prime. Put that prime in a list, as many times as its power. If, when dividing, you come up with 1, then you stop; if you come up with a number greater than R, you add it to the list and exit the loop.

At the end, you will have a list such as [ 3, 3, 5, 5, 5, 7 ].

If your set has only one member, then the problem has no solution. You can check this quickly because when you calculate R, you will see that it is integer. If it is also prime, then there are no divisors less than R and your set will be [ R ], which can not be partitioned in two non-empty sets.

In your example you will have:

144 -- root is 12
Root of 12 is 3.4, so you need only check from 2 to 3 to fill [ ]
2 divides 12 and you get 6: [ 2 ]
2 divides 6 and you get 3 [ 2 2 ]
2 does not divide 3
3 divides 3 and you get 1 [ 2 2 3 ], so exit.
Factors of 12: [ 2, 2, 3 ]

Now, each 2-partition of the dictionary represents a suitable couple of numbers. For example you can have: [ [ 3 2 ], [ 2 ] ] which means that 2^2 and (2*3)^2 are suitable candidates, or [ [ 2 2 ] [ 3 ] ], which means that (2*2)^2 and 3^2 are suitable candidates.

Using a table with the first 1,000 primes you can efficiently check numbers up to almost 500 billion; even if you may need BigNum libraries (libgmp, NumPy, ...) to arrive to that.

share|improve this answer

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