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Question

The value of 1222+3242+5262+n terms is/are

A
n2, when n is odd
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B
(n+1)2, when n is even
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C
n(n+1)2, when n is even
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D
n(n+1)2, when n is odd
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Solution

The correct options are
C n(n+1)2, when n is even
D n(n+1)2, when n is odd
Clearly, nth term of the given series is negative or positive accordingly as n is even or odd, respectively.

Case 1:n is even
1222+3242+5262++(n1)2n2
=(1222)+(3242)+(5262)++((n1)2n2)=(12)(1+2)+(34)(3+4)+(56)(5+6)++((n1)n)(n1+n)
=(1+2+3+4++(n1)+n)
=n(n+1)2

Case 2:n is odd
(1222)+(3242)++{(n2)2(n1)2}+n2
=(12)(1+2)+(34)(3+4)++[(n2)(n1)][(n2)+(n1)]+n2
=(1+2+3+4++(n2)+(n1))+n2
=n(n+1)2

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