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Gian
Joined: 25 Apr 2012
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31 Jul 2013, 13:44
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B
Be sure to select an answer first to save it in the Error Log before revealing the correct answer (OA)!
Difficulty:
35%
(medium)
Question Stats:
71% (02:03) correct
29%
(02:06)
wrong
based on 217
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Not Attempted Yet
A certain family consists of 8 adult members, including Susie.Each day, three stores A,B and C are operated by the family as follows:one of the 8 family members is selected randomly to operate store A,one of the remaining 7 family members is selected to operate store B, and finally one of the remaining 6 members is selected to operate store C. What is the probability that Susie will be selected to operate one of the three stores?
a) 1/3
b) 3/8
c) 1/24
d) 1/336
e) 1/512
a) 1/3
b) 3/8
c) 1/24
d) 1/336
e) 1/512
31 Jul 2013, 14:11
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\(P(Selected)=1-P(NoSelected)=1-\frac{7}{8}*\frac{6}{7}*\frac{5}{6}=\frac{3}{8}.\)
B
B
31 Jul 2013, 14:26
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What is the probability that Susie will be selected to operate one of the three stores?
P(Susie selected for to operating one of the store) = P(Susie selected to operate store A) OR P(Susie selected to operate store B) OR P(Susie selected to operate store C)
P(Susie selected to operate store A) = 1/8 * 7/7 * 6/6 = 1/8
P(Susie selected to operate store B) = 7/8 * 1/7 * 6/6 = 1/8
P(Susie selected to operate store C) = 7/8 * 6/7 * 1/6 = 1/8
P(Susie selected for to operating one of the store) = 3/8
IMO answer is B
Hope this helps
P(Susie selected for to operating one of the store) = P(Susie selected to operate store A) OR P(Susie selected to operate store B) OR P(Susie selected to operate store C)
P(Susie selected to operate store A) = 1/8 * 7/7 * 6/6 = 1/8
P(Susie selected to operate store B) = 7/8 * 1/7 * 6/6 = 1/8
P(Susie selected to operate store C) = 7/8 * 6/7 * 1/6 = 1/8
P(Susie selected for to operating one of the store) = 3/8
IMO answer is B
Hope this helps
