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Question

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


A

n2(n+1)2

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B

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

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C

[n(n+1)2]2

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D

None of these

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Solution

The correct option is C

[n(n+1)2]2


We know that,

r4(r1)4=4r36r2+4r1
Taking summation on both sides, then
nr=1[r4(r1)4]=4nr=1r36nr=1r2+4nr=1rnr=11

n404=4n36n2+4rn

Substituting values of n2 and n in the above equation, we get

n4=4n36n(n+1)(2n+1)6+4n(n+1)6n

4n3=n4+1(n+1)(2n+1)2n(n+1)+n

=n[n3+(n+1)(2n+1)2(n+1)+1]

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

4n3=n2(n+1)24=[n(n+1)2]2


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