C_0 1 + C_2 3 + C_4 5 + C_6 7 + ....= - Vidyadip

MCQ

$\frac{{{C_0}}}{1} + \frac{{{C_2}}}{3} + \frac{{{C_4}}}{5} + \frac{{{C_6}}}{7} + ....$=

A
$\frac{{{2^{n + 1}}}}{{n + 1}}$
B
$\frac{{{2^{n + 1}} - 1}}{{n + 1}}$
✓
$\frac{{{2^n}}}{{n + 1}}$
D
None of these

✓

Answer

Correct option: C.

$\frac{{{2^n}}}{{n + 1}}$

c
(c) Putting the values of ${C_0},{C_2},{C_4}....,$we get $ = 1 + \frac{{n(n - 1)}}{{3.2!}} + \frac{{n(n - 1)(n - 2)(n - 3)}}{{5.4!}} + ....$

=$\frac{1}{{n + 1}}\left[ {(n + 1) + \frac{{(n + 1)n(n - 1)}}{{3!}} + \frac{{(n + 1)n(n - 1)(n - 2)(n - 3)}}{{5!}} + ....} \right]$

Put $n + 1$=N = $\frac{1}{N}\left[ {N + \frac{{N(N - 1)(N - 2)}}{{3!}} + \frac{{N(N - 1)\,(N - 2)(N - 3)(N - 4)}}{{5!}} + ....} \right]$

$ = \frac{1}{N}\left\{ {{\,^N}{C_1} + {\,^N}{C_3} + {\,^N}{C_5} + ....} \right\}$

$ = \frac{1}{N}\left\{ {{2^{N - 1}}} \right\} = \frac{{{2^n}}}{{n + 1}}$ $\{ N = n + 1\} $

Trick : Put $n=1$, then ${S_1} = \frac{{^1{C_0}}}{1} = \frac{1}{1} = 1$

At $n=2$, ${S_2} = \frac{{^2{C_0}}}{1} + \frac{{^2{C_2}}}{3} = 1 + \frac{1}{3} = \frac{4}{3}$

Also $(c)$ $ \Rightarrow \,\,\,{S_1} = 1,{S_2} = \frac{4}{3}$

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