Question

If $\sum _{r=0}^{25}\left\{\left({}^{50}{C}_r\right)\left({}^{50-r}{C}_{25-r}\right)\right\}=K\left({}^{50}{C}_{25}\right)$, then $K$ is equal to

• A. $2^{25}$
• B. $2^{25}-1$
• C. $2^{24}$
• D. ${\left(25\right)}^2$

Answer 1

Answer: (A)

$\sum _{r=0}^{25}\left\{\left({}^{50}{C}_r\right)\left({}^{50-r}{C}_{25-r}\right)\right\}=K\left({}^{50}{C}_{25}\right)$
$LHS$
$=\sum _{r=0}^{25}{}^{50}{C}_r{}^{50-r}{C}_{25-r}$
$=\sum _{r=0}^{25}\left[\left\{\frac{50!}{r!(50-r)!}\right\}\left\{\frac{(50-r)!}{(25-r)!(25)!}\right\}\right]$
$=\sum _{r=0}^{25}\frac{50!25!}{r!(25-r)!(25)!(25)!}$
$={}^{50}{C}_{25}\sum _{r=0}^{25}{}^{25}{C}_r$
$={}^{50}{C}_{25}\times 2^{25}$
$=K\left({}^{50}{C}_{25}\right)$
$\therefore K=2^{25}$