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PLZ HURRY IT'S URGENT!!! You randomly draw marbles from a bag containing 4 blue and 2 green marbles, without replacing the marbles between draws. What is the probability of drawing a green marble on both
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PLZ HURRY IT'S URGENT!!!

You randomly draw marbles from a bag containing 4 blue and 2 green marbles, without replacing the marbles between draws. What is the probability of drawing a green marble on both your first and second draws?
A. 1/2⋅1/4
B. 2/6⋅1/5
C. 2/6⋅1/6
D. 2/6⋅2/6

User Hugo Der Hungrige
by
5.9k points

1 Answer

5 votes

Answer:

B)
(2)/(6)* (1)/(5)

Explanation:

Number of blue marbles =
N(blue)=4

Number of green marbles=
N(green)=2

Total number of balls=
N=N(blue)+N(green)=4+2=6

Probability of drawing a green marble on first draw=
P(green_1)=(N(green))/(N)=(2)/(6)

After drawing a green marble a 2nd draw is made without replacement.

So, now
N(green)=2-1=1 and
N=6-1=5

Probability of drawing a green marble on 2nd draw=
(N(green))/(N)=P(green_2)=(1)/(5)

Probability of drawing a green marble on both your first and second draws=
P(green_1)* P(green_2)=(2)/(6)* (1)/(5)

User Semente
by
6.3k points
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