The value of -r-050-1r 50Crr-2 is equal to

T_r+1=( 1)^r ^50C_rr+2 =( 1)^r(r+1) ^50C_r(r+1)(r+2) =( 1)^r(r+1) ^52C_r+251×52 =( 1)^r[(r+2) 1] ^52C_r+251×52 =( 1)^r[52× ^51C_r+1 ^52C_r+2 ] 51×52 =[ 52 ...

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Byju's Answer

Standard XI

Mathematics

Sum of Binomial Coefficients with Alternate Signs

The value of ...

Question

The value of $50 \sum r = 0 (- 1)^{r} \frac{^{50} C_{r}}{r + 2}$ is equal to

\frac{1}{50 \times 51}

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\frac{1}{52 \times 50}

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\frac{1}{52 \times 51}

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\frac{1}{50 \times 53}

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Solution

The correct option is C $\frac{1}{52 \times 51}$
$T_{r + 1} = (- 1)^{r} \frac{^{50} C_{r}}{r + 2}$
$= (- 1)^{r} (r + 1) \frac{^{50} C_{r}}{(r + 1) (r + 2)}$

$= (- 1)^{r} (r + 1) \frac{^{52} C_{r + 2}}{51 \times 52}$

$= (- 1)^{r} \frac{[(r + 2) - 1]^{52} C_{r + 2}}{51 \times 52}$

$= (- 1)^{r} \frac{[52 \times^{51} C_{r + 1} -^{52} C_{r + 2}]}{51 \times 52}$

$= \frac{[- 52 \times^{51} C_{r + 1} (- 1)^{r + 1} -^{52} C_{r + 2} (- 1)^{r + 2}]}{51 \times 52}$

$∴ 50 \sum r = 0 (- 1)^{r} \frac{^{50} C_{r}}{r + 2} = - 52 \frac{(1 - 1)^{51} -^{51} C_{0}}{51 \times 52} - \frac{(1 - 1)^{52} -^{52} C_{0} +^{52} C_{1}}{51 \times 52}$

$= \frac{1}{51} - \frac{1}{52}$
$= \frac{1}{51 \times 52}$

Suggest Corrections

The value of 50∑r=0(−1)r 50Crr+2 is equal to

The value of $50 \sum r = 0 (- 1)^{r} \frac{^{50} C_{r}}{r + 2}$ is equal to