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Question

Find the sum of the squares of the first n natural numbers.


A

n2(n+1)6

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B

n(n+1)(n1)6

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C

n(2n+1)6

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D

n(n+1)(2n+1)6

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Solution

The correct option is D

n(n+1)(2n+1)6


Given series s=12+22+32+42++n2

We know,
n3(n1)3=3n23n+1
(n1)3(n2)3=3((n1)23(n1)+1
(n2)3(n3)3=3(n2)23(n2)+1
. .
. .
On adding both L.H.S and R.H.S, we get
n3=3ni=1n23ni=1n+n

n3=3ni=1n23(n)(n+1)2+n

n3=3ni=1n2(3n2+3n)+2n2

n3=3ni=1n23n23n+2n2

n3=3ni=1n23n2+n2

3ni=1n2=(2n3+3n2+n)6=n(2n2+3n+1)6

= n(n+1)(2n+1)6


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