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| Getting Perfect Squares With 4 And 9? (Posted on 2007-09-03) |
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Can 4*10p + 9 be a perfect square whenever p is an integer ≥ 2?
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Submitted by K Sengupta
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Rating: 4.0000 (6 votes)
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Solution:
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If possible, let us suppose:
4*10^p + 9 = q^2
or, 4*10^p = (q+3)(q-3)
Let us substitute (P, Q) = (q+3, q-3) such that r = gcd( P, Q)
Now, P- Q = 6, and so that r must divide 6.
However, PQ = 4*10^p is not divisible by 3 for integer p.
Since P and Q possess the same parity, this is feasible iff both P and Q are even. Consequently, r=2
Accordingly, PQ = 2^(p+2)*5^p with gcd(P, Q) = 2 and P> Q
Therefore, we must have the following cases:
Case (i):
P = 2^(p+1)*5^p; Q = 2
This gives, P- Q = 6 = 2(10^p -1)
Or, 3 = 10^p – 1, which is a contradiction.
Case (ii):
P = 2*5^p; Q = 2^(p+1)
This gives,
6 = P-Q
Or, 6 = 2(5^p – 2^p)
Or, 3 = 5^p – 2^p
This is feasible only when p=1, which is a contradiction since p ≥ 2
Consequently, 4*10p + 9 can never be a perfect square for integers p ≥ 2
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