Asked by MIA
According to Masterfoods, the company that manufactures M&M’s, 12% of peanut M&M’s are brown, 15% are yellow, 12% are red, 23% are blue, 23% are orange and 15% are green.
Compute the probability that two randomly selected peanut M&M’s are both blue.
If you randomly select two peanut M&M’s, compute that probability that neither of them are red.
If you randomly select two peanut M&M’s, compute that probability that at least one of them is red.
Compute the probability that two randomly selected peanut M&M’s are both blue.
If you randomly select two peanut M&M’s, compute that probability that neither of them are red.
If you randomly select two peanut M&M’s, compute that probability that at least one of them is red.
Answers
Answered by
Graham
The probabilities of colors of each pill are independent.
Let m[n] = C, be the event that the [n]th pill is a color (C). eg: P(m1=Blue) = 0.12
(1)
P(m1=Blue and m2=Blue) = P(m1=Blue) P(m2=Blue)
(2)
P(m1<>Red and m2<>Red) =
(1-P(m1=Red))(1-P(m2=Red))
(3)
P(m1=Red or m2=Red) = P(m1=Red) + P(m2=Red) - P(m1=Red) P(m2=Red)
Let m[n] = C, be the event that the [n]th pill is a color (C). eg: P(m1=Blue) = 0.12
(1)
P(m1=Blue and m2=Blue) = P(m1=Blue) P(m2=Blue)
(2)
P(m1<>Red and m2<>Red) =
(1-P(m1=Red))(1-P(m2=Red))
(3)
P(m1=Red or m2=Red) = P(m1=Red) + P(m2=Red) - P(m1=Red) P(m2=Red)
Answered by
Anonymous
12%
Answered by
Anonymous
1) .0529
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