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09 Jun 2004, 20:48
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A team of 8 people exists, and they plan to form a committe of 3. Given that both Noel and Asshie are on the team, what is the probability that Noel is on the committe but NOT Ashie?
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09 Jun 2004, 21:12
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Got 9/56
# of ways to select a committee of 3 out of 8 people: 8C3 = 56
When Noel is on committee, total # of ways to select other 2 people: 7C2 = 21
(unfavorable outcome) # of ways to select remaining 1 person when Ashie is in: 6C1 = 6 --> this can be interchanged 2 ways for Ashie can be selected first or second out of the two --> 6C1 * 2 = 12
Answer should be 21-12 / 56 = 9/56
# of ways to select a committee of 3 out of 8 people: 8C3 = 56
When Noel is on committee, total # of ways to select other 2 people: 7C2 = 21
(unfavorable outcome) # of ways to select remaining 1 person when Ashie is in: 6C1 = 6 --> this can be interchanged 2 ways for Ashie can be selected first or second out of the two --> 6C1 * 2 = 12
Answer should be 21-12 / 56 = 9/56
10 Jun 2004, 04:01
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This is my approach...
Sample space: 8C3 = 56
Favourable case: Noel(N) IN Asshie(A) OUT... committee configuration N**
Therefore ** could be filled by any 6 people except N and A
Hence 6C2 = 15
P = 15/56
Sample space: 8C3 = 56
Favourable case: Noel(N) IN Asshie(A) OUT... committee configuration N**
Therefore ** could be filled by any 6 people except N and A
Hence 6C2 = 15
P = 15/56
I kind of doubted my answer too. When I said 6C1 * 2, the answer should have been 6C1 and we do not need to multiply by 2 since there is only 1 spot to take when Ashie is out. Hence, answer should have been 21-6 / 56 = 15/56
