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A bowl contains 8 blue marbles and 5 green marbles. Elizabeth randomly draws 4 marbles from the bowl. She does not replace the marbles after each draw. What is the probability that she draws 1 blue marble
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A bowl contains 8 blue marbles and 5 green marbles. Elizabeth randomly draws 4 marbles from the bowl. She does not replace the marbles after each draw. What is the probability that she draws 1 blue marble and 3 green marbles?

A.
B.
C.
D.

User Chris Rutherfurd
by
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2 Answers

3 votes
Probability ( 1 blue marble and 3 green marbles) = ( Blue, green, green, green) + ( green, blue, green, green) + ( green, green, blue, green) + ( green, green, green, blue) = { (8/13) × (5/12) × (4/11) × (3/10) } + { (5/13) × (8/12) × (4/11) × (3/10) } + { (5/13) × (4/12) × (8/11) × (3/10) } + { (5/13) × (4/12) × (3/11) × (8/10) } = (4/143) + (4/143) + (4/143)+ (4/143) = 16/143 If the answer does not correspond to yours, do tell me. I'll try to correct mine
User Shilch
by
7.2k points
3 votes
P (1 blue, 3 green) =
(C (8, 1)*C(5, 3))/(C(13, 4)) = (80)/(715)= (16)/(143) }
User Andrei Arsenin
by
7.1k points
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