Question #7c757

1 Answer
Jim G.
Feb 2, 2017

165165

Explanation:

Using the definition for ""^nC_rnCr

color(red)(bar(ul(|color(white)(2/2)color(black)(""^nC_r=(n!)/(r!(n-r)!))color(white)(2/2)|)))

"where "n! =n(n-1)(n-2)(n-3)xx.....xx1

rArr""^(11)C_3=(11!)/(3!(11-3)!)=(11!)/(3!8!)

=(11xx10xx9)/(3xx2xx1)

Note that the remaining product of factors on the numeratorcolor(blue)" cancel" with the 8! on the denominator.

rArr""^(11)C_3=990/6=165

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