Show that
Taking L.H.S
first we will solve the numerator & denominator separately
Let numerator be
S1 = 1 × 22 + 2 × 32 + 3 × 42 + … + n × (n + 1)2
nth term is n × (n + 1)2
Let an = n(n + 1)2
= n(n2 + 2n + 1)
= n3 + 2n2 + n
Now, S1
Let denominator be
S2 = 12 × 2 + 22 × 3 + … + n2 × (n + 1)
nth term is n2 × (n + 1)
Let bn = n2(n + 1) = n3 + n2
Now,
S2
Now,
L.H.S 
= R.H.S
Hence, L.H.S = R.H.S
Hence Proved.
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