Ten strips of paper are numbered 1 to 10 and placed in a bag. If three numbers are drawn from the bag at random, what is the probability that the sum of the numbers drawn will be odd?
A) 1/12
B) 5/36
C) 15/36
D) 1/2
E) 11/18
probability
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Hi,
There are 5 even and 5 odd in 1 to 10.
For the sum to be odd, either all 3 should be odd or 1 odd,2even.
all 3 odd -> 5C3
1 odd,2 even -> 5C1*5C2
Number of ways of selecting 3 numbers from 10 is 10C3
So, probability is (5C3 + 5C2*5C1)/10C3 = (10+50)/120 = 1/2
Hence, D
There are 5 even and 5 odd in 1 to 10.
For the sum to be odd, either all 3 should be odd or 1 odd,2even.
all 3 odd -> 5C3
1 odd,2 even -> 5C1*5C2
Number of ways of selecting 3 numbers from 10 is 10C3
So, probability is (5C3 + 5C2*5C1)/10C3 = (10+50)/120 = 1/2
Hence, D
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There're 5 odd numbers, so probability of 1 odd = 5/10 = 1/2
sum is odd can happen in 4 ways:
odd + odd +odd = (1/2)^3
even+even+odd
even+odd+even
odd+even+even
total probability = 4 * (1/2)^3 = 4/8 = 1/2
sum is odd can happen in 4 ways:
odd + odd +odd = (1/2)^3
even+even+odd
even+odd+even
odd+even+even
total probability = 4 * (1/2)^3 = 4/8 = 1/2
- abhisays
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In case of favorable no. of cases we have
x1 + x2 + x3 = odd in only two cases.
all three are odd.
two are even and one is odd.
Therefore, we have
1. 2 even, 1 odd ----> 5c1*5c2
2. 3 odd --->>> 5c3
total no. of cases = 10c3
Hence prob. = (5c1*5c2 + 5c3) /10c3 = 1/2
so my answer is d
x1 + x2 + x3 = odd in only two cases.
all three are odd.
two are even and one is odd.
Therefore, we have
1. 2 even, 1 odd ----> 5c1*5c2
2. 3 odd --->>> 5c3
total no. of cases = 10c3
Hence prob. = (5c1*5c2 + 5c3) /10c3 = 1/2
so my answer is d
- gmatboost
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This is (I believe) an incorrectly worded ripoff of an OG question. In the original question, I believe it is made clear that the strips are replaced into the bag after each drawing.
In this case, since there is a 5/10 = 1/2 chance of odd or even each time, and since there are as many ways to get an odd sum (OOO, OEE, EOE, EEO) as an even sum (EEE, EOO, OEO, OOE), there is a 1/2 chance that the sum is odd, and that it is even.
If the strips are NOT replaced, the math is a little different, but the answer is the same.
The probability of OOO is the same as EEE. Similarly P(OEE) = P(EOO), P(EOE) = P(OEO), and P(EEO) = P(OOE).
Since each odd sum has an equal match that is an even sum, the result is that each has a likelihood of 50% or 1/2.
You could go through and show that OOO = 5/10 * 4/9 * 3/8, but again, that is the same as EEE, so the totals in the "odd camp" will be the same as in the "even camp."
In this case, since there is a 5/10 = 1/2 chance of odd or even each time, and since there are as many ways to get an odd sum (OOO, OEE, EOE, EEO) as an even sum (EEE, EOO, OEO, OOE), there is a 1/2 chance that the sum is odd, and that it is even.
If the strips are NOT replaced, the math is a little different, but the answer is the same.
The probability of OOO is the same as EEE. Similarly P(OEE) = P(EOO), P(EOE) = P(OEO), and P(EEO) = P(OOE).
Since each odd sum has an equal match that is an even sum, the result is that each has a likelihood of 50% or 1/2.
You could go through and show that OOO = 5/10 * 4/9 * 3/8, but again, that is the same as EEE, so the totals in the "odd camp" will be the same as in the "even camp."
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