20C4+2⋅20C3+ 20C2-22C18 is equal to :

Question

20C4+2⋅20C3+ 20C2-22C18 is equal to : (A) 0 (B) 1242 (C) 7315 (D) 6345

Tardigrade Admin · Accepted Answer

If n and r positive integer and 0 le r < n , then nCr+nCr-1=n+1Cr ∴ 20C4+2.20C3+20C2-22C18 =(20C4+30C3)+(20C3+20C2)-22C18 =21C4+21C3-22C18 =22C4-22C18 =22C18-22C18 =0

Q. 20C4​+2⋅20C3​+20C2​−22C18​ is equal to :

0

1242

7315

6345

If n and r positive integer and 0≤r<n , then nCr​+nCr−1​=n+1Cr​ ∴20C4​+2.20C3​+20C2​−22C18​ =(20C4​+30C3​)+(20C3​+20C2​)−22C18​ =21C4​+21C3​−22C18​ =22C4​−22C18​ =22C18​−22C18​ =0

Q. $^{20} C_{4} + 2 \cdot^{20} C_{3} +^{20} C_{2} -^{22} C_{18}$ is equal to :