The sum of the coefficients of x^499 and x^500 in (1 + x)^1000 + x(1 + x)^999 + x^2(1 + x)^998

Q. The sum of the coefficients of $x^{499}$ and $x^{500}$ in

$(1+x)^{1000}+x(1+x)^{999}+x^{2}(1+x)^{998}$

is :

A. ${1002 \choose 501}$

B. ${1001 \choose 501}$

C. ${1000 \choose 501}$

D. ${1002 \choose 500}$

Correct Answer: ${1002 \choose 500}$

Explanation

Coefficient of $x^r$ in $(1+x)^n$ is ${n \choose r}$.

From $(1+x)^{1000}$ :

Coefficient of $x^{499} = {1000 \choose 499}$

Coefficient of $x^{500} = {1000 \choose 500}$

From $x(1+x)^{999}$ :

Coefficient of $x^{499} = {999 \choose 498}$

Coefficient of $x^{500} = {999 \choose 499}$

From $x^{2}(1+x)^{998}$ :

Coefficient of $x^{499} = {998 \choose 497}$

Coefficient of $x^{500} = {998 \choose 498}$

Now sum all coefficients:

$[{1000 \choose 499}+{999 \choose 498}+{998 \choose 497}] + [{1000 \choose 500}+{999 \choose 499}+{998 \choose 498}]$

Using Pascal’s identity repeatedly,

$= {1002 \choose 500}$

Hence, the required sum is

${1002 \choose 500}$