Prove that (3!)/(2(n+3)) =sum_(r=0)^(n) (-1)^(r ) ((""^(n)C_(r ))/(""^(r+3)C_(r )))

Prove that (3!)/(2(n+3)) =sum_(r=0)^(n) (-1)^(r ) ((""^(n)C_(r ))/(""^

1.	Prove that (3!)/(2(n+3)) =sum_(r=0)^(n) (-1)^(r ) ((""^(n)C_(r ))/(""^(r+3)C_(r )))
Answer» Solution :`underset(R=0)overset(N)sum(-1)^(r ) ((.^(n)C_(r))/(.^(r+3)C_(3)))` `= underset(r=0)overset(n)sum(-1)^(r)(n!)/((n-r)!r!)(3!r!)/((r+3)!)` `= 3!underset(r=0)overset(n)sum(-1)^(r) (n!)/((n-r)!(r+3!))` `=(3!)/((n+1)(n+2)(n+3))underset(r=0)overset(n)sum(-1)^(r).^(n+3)C_(r+3)` ` = - (3!)/((n+1)(n+2)(n+3))underset(r=0)overset(n)sum(-1)^(r+3).^(n+3)C_(r+3)` `= - (3!)/((n+1)(n+2)(n+3))[-.^(n+3)C_(3) +.^(n+3)C_(4)-"....."+(-1)^(n+3).^(n+3)C_(n+3)]` `= - (3!)/((n+1)(n+2)(n+3))[(.^(n+3)C_(0)-.^(n+3)C_(1)+.^(n+3)C_(2)-.^(n+3)C_(3)+"...."+(-1)^(n+3).^(n+3)C_(n+3))-(.^(n+3)C_(0)-.^(n+3)C_(1)+.^(n+3)C_(2))]` `- (3!)/((n+1)(n+2)(n+3))[(1-1)^(n+3)-(1-(n+3))-((n+3)(n+2))/(2)]` `= (3!)/((n+1)(n+2)(n+3))[1-n-3+((n+3)(n+2))/(2)]` `= (3!)/((n+1)(n+2)(n+3)) ((n^(2)+3n+2))/(2)` `= (3!)/(2(n+3))`

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Prove that (3!)/(2(n+3)) =sum_(r=0)^(n) (-1)^(r ) ((""^(n)C_(r ))/(""^(r+3)C_(r )))

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