The value of 2.C0+(22/2).C1 +(23/3).C2+(24/4).C3+....+(211/11).C10 is

Question

The value of 2.C0+(22/2).C1 +(23/3).C2+(24/4).C3+....+(211/11).C10 is (A)  (311-1/11)  (B)  (211-1/11)  (C)  (113-1/11)  (D)  (112-1/11)

Tardigrade Admin · Accepted Answer

We have, 2.C0+(22/2).C1+(23/2)C2+....+(211/11).C10 ∑ limitsr=01010Cr.(2r+1/r+1)=(1/11)∑ limitsr=010(11/r+1). 10C =(1/11)∑ limitsr=01011Cr+1.2r+1 =(1/11)(11C1.21+...+11C11.211) =(1/11)(11C0.20+11C1.21 +....+11C11.211-11C0.20) =(1/11)[(1+2)11-1]=(311-1/11)

Q. The value of $2. C_{0} + \frac{2 ^{2}}{2} . C_{1}$ $+ \frac{2 ^{3}}{3} . C_{2} + \frac{2 ^{4}}{4} . C_{3} + .... + \frac{2 ^{11}}{11} . C_{10}$ is

$\frac{3 ^{11} - 1}{11}$

$\frac{2 ^{11} - 1}{11}$

$\frac{11 ^{3} - 1}{11}$

$\frac{11 ^{2} - 1}{11}$

Q. The value of 2.C0​+222​.C1​ +323​.C2​+424​.C3​+....+11211​.C10​ is

11311−1​

11211−1​

11113−1​

11112−1​

We have, 2.C0​+222​.C1​+223​C2​+....+11211​.C10​ r=0∑10​10Cr​.r+12r+1​=111​r=0∑10​r+111​. 10C =111​r=0∑10​11Cr+1​.2r+1 =111​(11C1​.21+...+11C11​.211) =111​(11C0​.20+11C1​.21 +....+11C11​.211−11C0​.20) =111​[(1+2)11−1]=11311−1​

Q. The value of $2. C_{0} + \frac{2 ^{2}}{2} . C_{1}$ $+ \frac{2 ^{3}}{3} . C_{2} + \frac{2 ^{4}}{4} . C_{3} + .... + \frac{2 ^{11}}{11} . C_{10}$ is

$\frac{3 ^{11} - 1}{11}$

$\frac{2 ^{11} - 1}{11}$

$\frac{11 ^{3} - 1}{11}$

$\frac{11 ^{2} - 1}{11}$