Question

The sum of the series ${}^{20}{C}_0-{}^{20}{C}_1+{}^{20}{C}_2-{}^{20}{C}_3+\dots +{}^{20}{C}_{10}$ is equal to

• A. $-{}^{20}{C}_{10}$
• B. $\frac{1}{2}{}^{20}{C}_{10}$
• C. $0$
• D. ${}^{20}{C}_{10}$

Answer 1

Answer: (B)

$S={}^{20}{C}_0-{}^{20}{C}_1+{}^{20}{C}_2+\dots +{}^{20}{C}_{10}$
We know that,
${}^{20}{C}_0-{}^{20}{C}_1+{}^{20}{C}_2-\dots +{}^{20}{C}_{20}=0$
$\Rightarrow 2^{20}{C}_0-{}^{20}{C}_1+{}^{20}{C}_2+\dots -{}^{20}{C}_9+{}^{20}{C}_{10}=0$
$\Rightarrow {}^{20}{C}_0-{}^{20}{C}_1+{}^{20}{C}_2\dots -{}^{20}{C}_9=-\frac{1}{2}{}^{20}{C}_{10}$
So, $S=-\frac{1}{2}{}^{20}{C}_{10}+{}^{20}{C}_{10}=\frac{1}{2}{}^{20}{C}_{10}$