Asked by Anonymous
A deck of cards consists of 8 blue cards and 5 white cards. A simple random sample (random draws without replacement) of 6 cards is selected.
What is the chance that one of the colors appears twice as many times as the other?
What is the chance that one of the colors appears twice as many times as the other?
Answers
Answered by
Abhi
if you do: x+2x=6 you get that x=2 and 2x=4 is the only possible combination of colors that fulfills "one of the colors appears twice as many times as the other",then you need to analyze:
2 BLUE & 4 WHITE (case 1) or 2 WHITE & 4 BLUE (case 2)
We need to apply hypergeometric distribution here:
p(k)=(K C k)(N−K C n−k)/(N C n)
Where (I will put the numbers for case 1):
K=Maximum number of successes (number of BLUE cards=8)
k=number of expected successes (2 BLUE)
N=Population size (13 cards=8 BLUE+5 WHITE)
n=number of draws(6).
Then you have for the first case:.
p1(k=2)=(8 C 2)(5 C 4)/ (13 C 6)=0.0815
case "2 WHITE+4 BLUE" P(k2=2) = 0.4079
It is case 1 or case 2, then the total probability is 0.0815+0.4079=0.4895, that is a 48.95%
2 BLUE & 4 WHITE (case 1) or 2 WHITE & 4 BLUE (case 2)
We need to apply hypergeometric distribution here:
p(k)=(K C k)(N−K C n−k)/(N C n)
Where (I will put the numbers for case 1):
K=Maximum number of successes (number of BLUE cards=8)
k=number of expected successes (2 BLUE)
N=Population size (13 cards=8 BLUE+5 WHITE)
n=number of draws(6).
Then you have for the first case:.
p1(k=2)=(8 C 2)(5 C 4)/ (13 C 6)=0.0815
case "2 WHITE+4 BLUE" P(k2=2) = 0.4079
It is case 1 or case 2, then the total probability is 0.0815+0.4079=0.4895, that is a 48.95%
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