Question

The value of $\left(4\cdot {}^n{C}_1+4\cdot {}^n{C}_2+4^2\cdot {}^n{C}_3+\dots \dots +4^{n-1}\right)$ is

• A. 0
• B. $5^n+1$
• C. $5^n$
• D. $5^n-1$

Answer 1

Answer: (D)

$\text{ Given }E=4\cdot {}^n{C}_1+4^2\cdot {}^n{C}_2+4^3\cdot {}^n{C}_3+\dots \dots .+4^n\cdot {}^n{C}_n$
$=(1+4{)}^n-1\Rightarrow 5^n-1\Rightarrow D$