Sum up to 16 terms of the series 131-13-231-2-13-23-331-2-3- is

T_n = 1^3 + 2^3 + 3^3 + … +n^31+2+3+⋯+n = {n(n+1)2}^2n2(n+1) = n(n+1)2 =n^22+n2 ∴ S_n = ∑ t_n =12∑ n^2 + 12∑ n =12×n(n+1)(2n+1)6 + 12 ...

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Sigma n2

Sum up to 16 ...

Question

Sum up to $16$ terms of the series $\frac{1^{3}}{1} + \frac{1^{3} + 2^{3}}{1 + 2} + \frac{1^{3} + 2^{3} + 3^{3}}{1 + 2 + 3} + \dots \dots$ is

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16

\frac{1^{3}}{1} + \frac{1^{3} + 2^{3}}{1 + 2} + \frac{1^{3} + 2^{3} + 3^{3}}{1 + 2 + 3} + \dots \dots

n

\frac{1^{3}}{1} + \frac{1^{3} + 2^{3}}{1 + 3} + \frac{1^{3} + 2^{3} + 3^{3}}{1 + 3 + 5} + . . . .

\frac{1^{3}}{1} + \frac{1^{3} + 2^{3}}{1 + 3} + \frac{1^{3} + 2^{3} + 3^{3}}{1 + 3 + 5} + \dots \dots

16

\frac{\frac{1}{2} \cdot \frac{2}{2}}{1^{3}} + \frac{\frac{2}{2} \cdot \frac{3}{2}}{1^{3} + 2^{3}} + \frac{\frac{3}{4} \cdot \frac{4}{2}}{1^{3} + 2^{3} + 3^{3}} + \dots

n

\frac{1^{3}}{1} + \frac{1^{3} + 2^{3}}{1 + 3} + \frac{1^{3} + 2^{3} + 3^{3}}{1 + 3 + 5} + . . . . .

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