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02 Mar 2009, 12:37
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C
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Difficulty:
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Question Stats:
77% (01:23) correct
23%
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A basket contains 5 apples, of which 1 is spoiled and the rest are good. If Henry is to select 2 apples from the basket simultaneously and at random, what is the possibility that the 2 apples selected will include the spoiled apple?
A. 1/5
B. 3/10
C. 2/5
D. 1/2
E. 3/5
A. 1/5
B. 3/10
C. 2/5
D. 1/2
E. 3/5
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18 Nov 2010, 12:34
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A basket contains 5 apples of which one is rotten. If Henry is to select 2 apples from the basket simultaneously and at random what is the probability that the 2 apples selected will include the rotten apple?
A. 1/5
B. 3/10
C. 2/5
D. 1/2
E. 3/5
Direct combinatorial approach:
\(Probability=\frac{# \ of \ favorable \ outcomes}{total \ # \ of \ outcomes}\):
Favorable outcomes: \(C^1_1*C^1_4\) --> \(C^1_1\) choosing one rotten out of 1 and \(C^1_4\) choosing any for the second apple;
Total # of outcomes: \(C^2_5\), choosing 2 apples out of 5;
\(P=\frac{C^1_1*C^1_4}{C^2_5}=\frac{2}{5}\).
Reverse combinatorial approach:
Let's count the probability of the opposite event and subtract this value from 1. The opposit event will be if out of 2 apples both are good, so \(P=1-\frac{C^2_4}{C^2_5}=\frac{2}{5}\).
Direct probability approach:
\(P=\frac{1}{5}*\frac{4}{4}+\frac{4}{5}*\frac{1}{4}=\frac{2}{5}\): probability of {first apple rotten, second apple good} plus the probability of {first apple good, second apple rotten}.
Reverse probability approach:
Again 1- the probability of the opposite event --> \(P=1-\frac{4}{5}*\frac{3}{4}=\frac{2}{5}\).
Answer: C.
Check Probability chapter of Math Book for more on this issues: https://gmatclub.com/forum/math-probability-87244.html
Hope it helps.
A. 1/5
B. 3/10
C. 2/5
D. 1/2
E. 3/5
Direct combinatorial approach:
\(Probability=\frac{# \ of \ favorable \ outcomes}{total \ # \ of \ outcomes}\):
Favorable outcomes: \(C^1_1*C^1_4\) --> \(C^1_1\) choosing one rotten out of 1 and \(C^1_4\) choosing any for the second apple;
Total # of outcomes: \(C^2_5\), choosing 2 apples out of 5;
\(P=\frac{C^1_1*C^1_4}{C^2_5}=\frac{2}{5}\).
Reverse combinatorial approach:
Let's count the probability of the opposite event and subtract this value from 1. The opposit event will be if out of 2 apples both are good, so \(P=1-\frac{C^2_4}{C^2_5}=\frac{2}{5}\).
Direct probability approach:
\(P=\frac{1}{5}*\frac{4}{4}+\frac{4}{5}*\frac{1}{4}=\frac{2}{5}\): probability of {first apple rotten, second apple good} plus the probability of {first apple good, second apple rotten}.
Reverse probability approach:
Again 1- the probability of the opposite event --> \(P=1-\frac{4}{5}*\frac{3}{4}=\frac{2}{5}\).
Answer: C.
Check Probability chapter of Math Book for more on this issues: https://gmatclub.com/forum/math-probability-87244.html
Hope it helps.
02 Mar 2009, 14:46
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Bookmarks
Total Apples = 5
Spoiled Apples = 1
Not Spoiled Apples = 4
Possible outcomes:
(Apple 1) Not Spoiled, (Apple 2) Spoiled; = (4/5)*(1/4) = 4/20 or 2/10.
OR
(Apple 1) Spoiled, (Apple 2) Not Spoiled; = (1/5)*(4/4) = 4/20 or 2/10.
Total Probability = 2/10 + 2/10 = 4/10 or 2/5.
Spoiled Apples = 1
Not Spoiled Apples = 4
Possible outcomes:
(Apple 1) Not Spoiled, (Apple 2) Spoiled; = (4/5)*(1/4) = 4/20 or 2/10.
OR
(Apple 1) Spoiled, (Apple 2) Not Spoiled; = (1/5)*(4/4) = 4/20 or 2/10.
Total Probability = 2/10 + 2/10 = 4/10 or 2/5.
