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Re: If n and k are integers and n^2 – kn is even, which of the following m [#permalink]
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For me, the cleanest solution here is to factor out an n:

n(n-k) = even

In order to get an even product one or both of n and n-k must be even.

So, either n is even or both n and k are odd. At this point you can quickly check the choices and D is the only one that is true under both scenarios.

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Re: If n and k are integers and n^2 – kn is even, which of the following m [#permalink]
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GeminiHeat wrote:
If n and k are integers and n^2 – kn is even, which of the following must be even?

A) n^2
B) k^2
C) 2n + k^2
D) n(k + 1)
E) k(k + n)


n and k are integers.

We have no info about individual terms n and k (even or odd). That eliminates options A and B.

In option C, 2n is even for sure. Again, we have no info about the individual term k - hence eliminated

Option D: n(k + 1) = nk + n
We know that n^2 – kn is even

Note: if A-B is even, A+B is also even
Also: if A-B is odd, A+B is also odd
(Try to think why that is true)

=> Thus, n² + kn is also even

Again, if n is even, n² will be even. Similarly, if n is odd, n² will be odd.

=> Thus: n + kn is also even
[we simply replace n² by n]

Thus, answer is option D.

Option E: k(k + n) = k² + kn
However, we have no individual info about k (for k²) and hence cannot determine even or odd.


Answer D.

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Re: If n and k are integers and n^2 kn is even, which of the following m [#permalink]
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Re: If n and k are integers and n^2 kn is even, which of the following m [#permalink]
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