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23 Nov 2016, 06:35
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B
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Difficulty:
45%
(medium)
Question Stats:
70% (02:15) correct
30%
(02:36)
wrong
based on 563
sessions
History
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Ten students, including Wilton and Katherine, are each entered into a raffle to win one of four bicycles. If each student holds one entry in the raffle, what is the probability that Katherine will win a bicycle but Wilton will not?
A. 4/35
B. 4/15
C. 2/5
D. 49/105
E. 1/2
A. 4/35
B. 4/15
C. 2/5
D. 49/105
E. 1/2
29 Nov 2016, 15:55
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Bunuel
We are given that 4 people will be selected from 10 people and need to determine the probability that, of the 4 people selected, Katherine is included but Wilton is not. Let’s first determine the total number of ways to select 4 people from a group of 10.
The number of ways to select 4 people from a group of 10 is:
10C4 = 10!/4!6! = (10 x 9 x 8 x 7)/4! = (10 x 9 x 8 x 7)/(4 x 3 x 2 x 1) = 10 x 3 x 7 = 210
Next, let’s determine the number of ways to select 4 people from a group of 10 in which Katherine is included but Wilton is not.
Since Katherine must be included and Wilton is not, we reduce the number of available spots from 4 to 3 (because Katherine is already selected), and we reduce the number of people available to be selected from 10 to 8 (Wilton is not even considered, and Katherine is already selected).
Thus, the number of ways to select 4 people when Katherine is included and Wilton is not is:
8C3 = (8 x 7 x 6)/3! = (8 x 7 x 6)/(3 x 2 x 1) = 56
So, finally, the probability that Katherine is selected but Witon is not is:
56/210 = 8/30 = 4/15
Answer: B
27 Nov 2016, 22:06
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Bunuel
There are 4 bicycles for 4 winners. There are 10 participants, so the total selections is \(C_{10}^4\)
If Katherine win and Wilton doesn't, there are 3 remaining bicycles for 8 remaining participants. So the selections is \(C_{8}^3\)
The probability that Katherine will win a bicycle but Wilton will not is: \(\frac{C_{8}^3}{C_{10}^4}=\frac{4}{15}\)
