The sum 1(1!) + 2(2!) + 3(3!) + ....+n (n!) equals
[AMU 1999; DCE 2005]

3(n!) + n - 3

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(n + 1)! - (n - 1)!

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(n + 1)! - 1

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2(n!) - 2n - 1

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Solution

The correct option is C (n + 1)! - 1
$S_{n}$ = 1(1!) + 2(2!) + 3(3!) + ...... + n(n!)
= (2 - 1)(1!) + (3 - 1)(2!) + (4 - 1)(3!) + .... +[(n + 1) -1] (n!)
= (2.1! - 1!) + (3.2! - 2!) + (4.3! - 3!) + .... +[(n + 1)(n!) -(n!)]
= (2! - 1!) + (3! - 2!) + (4! - 3!) + ....+ [(n + 1)! - (n)!]
= (n + 1)! - 1!.

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Similar questions

[AMU 1999; DCE 2005]

The sum 1(1!) + 2(2!) + 3(3!) + ........ + n(n!) equals

lim n \to \infty {(\frac{1^{1} \cdot 2^{2} \cdot 3^{3} . . . . . (n - 1)^{n - 1} \cdot n^{n}}{n^{1 + 2 + 3 + . . . . + n}})}^{\frac{1}{n^{2}}}

lim n \to \infty \frac{1^{1} + 2^{2} + 3^{3} + \dots + n^{n}}{1^{n} + 2^{n} + 3^{n} + \dots + n^{n}}

\frac{1}{1.2} + \frac{1}{2.3} + \frac{1}{3.4} + . . . . + . . . . \frac{1}{n (n + 1)}

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