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| Getting Primed With Squares (Posted on 2008-07-27) |
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Determine all possible pair(s) of primes (M, N) such that each of M+N and M-N is a perfect square.
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Submitted by K Sengupta
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Rating: 3.5000 (2 votes)
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Solution:
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Jonathan Lindgren has provided a solution here.
I solved this problem in the following manner:
Suppose that each of M+N and M-N are perfect squares. If so, then (M+N, M-N) = (x^2, y^2), for some integers x and y.
Thus, 2N = x^2 - y^2 ........(i)
Hence, each of x any y must have the same parity. Therefore, each of (x+y) and (x-y) must be even, so that the rhs of (i) is always divisible by 4.
Accordingly, N is divisible by 2. Since N is prime, this is possible only when N=2.
Therefore, x^2 - y^2 = 4, giving: (x^2, y^2) = (4, 0) as the only possiblility, so that:
M+2 = 4, giving: M = 2.
Consequently, (M, N) = (2,2) is the only possible solution to the given problem.
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Subject |
Author |
Date |
 | re: Solution | K Sengupta | 2008-08-10 06:29:20 |
| Solution | Jonathan Lindgren | 2008-07-27 17:06:59 |
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