Answer to Question #117100 in Combinatorics | Number Theory for Priya

a. the balls are equal, and the boxes are distinguishalbe so we have

C^20+2-1₂₀=21!/(20!*1!)=21

c. let it k balls in first box,(k≥2), j balls in third box (j≤10), and 20-k-j balls in second box.So

N="\\sum"¹⁰_k=0"\\sum" ^20−k_j=21

N="\\sum" ¹⁰_k=0(19−k) ∵"\\sum" ^20−k_j=21=19−k

N="\\sum" ¹⁰_k=019−"\\sum" ¹⁰_k=0k

N=19("\\sum"¹⁰_k=01)−"\\sum"¹⁰_k=1k

N=19(11)-((10*11)/2)=209-55=154