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26 Jan 2015, 05:45
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D
Be sure to select an answer first to save it in the Error Log before revealing the correct answer (OA)!
Difficulty:
75%
(hard)
Question Stats:
49% (01:20) correct
51%
(01:10)
wrong
based on 860
sessions
History
Date
Time
Result
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The average of 25 values is equal to product of these values. If only one of the numbers is 0, at most how many numbers can be greater than zero?
A. 0
B. 12
C. 13
D. 23
E. 24
A. 0
B. 12
C. 13
D. 23
E. 24
26 Jan 2015, 12:32
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HI DesiGmat,
This is a great "concept" question - it really tests a person's thoroughness when dealing with "restrictions" (or lack of restrictions).
We're asked for the MAXIMUM number of terms that COULD be greater than 0, given the following restrictions:
1) There are 25 terms in total
2) One of the terms is 0
3) The average of the terms = the product of the terms
Since one of the terms is 0, the product = 0. Since we're told that the average = the product, the average ALSO = 0
Now we have to think about how we can make the average = 0 AND maximize the number of terms that are greater than 0. Notice how the question did NOT say anything about "consecutive" or "duplicates" - so we have a lot of ways to "play around" with this idea.
What if we had....
A 0, Twenty-three 1s and a -23
The product = 0 (because we have a 0 in the group)
The average = 0 + 23(1) +1(-23) = 0/25 = 0
In this situation, we have 23 numbers that are greater than 0. From a concept-standpoint, it can't be 24 though, since we need at least one negative term to offset the positives and bring the average back down to 0.
Final Answer:
GMAT assassins aren't born, they're made,
Rich
This is a great "concept" question - it really tests a person's thoroughness when dealing with "restrictions" (or lack of restrictions).
We're asked for the MAXIMUM number of terms that COULD be greater than 0, given the following restrictions:
1) There are 25 terms in total
2) One of the terms is 0
3) The average of the terms = the product of the terms
Since one of the terms is 0, the product = 0. Since we're told that the average = the product, the average ALSO = 0
Now we have to think about how we can make the average = 0 AND maximize the number of terms that are greater than 0. Notice how the question did NOT say anything about "consecutive" or "duplicates" - so we have a lot of ways to "play around" with this idea.
What if we had....
A 0, Twenty-three 1s and a -23
The product = 0 (because we have a 0 in the group)
The average = 0 + 23(1) +1(-23) = 0/25 = 0
In this situation, we have 23 numbers that are greater than 0. From a concept-standpoint, it can't be 24 though, since we need at least one negative term to offset the positives and bring the average back down to 0.
Final Answer:
GMAT assassins aren't born, they're made,
Rich
General Discussion
ans is D...... 23 is the answer
0 being one number means product is 0 therefore mean should be 0..
so the sum of +ive numbers should be equal to sum of -ive numbers to have total value as 0..
it is possible with different 23 +ive numbers and one -ive number, which is equal to total sum of 23 +ive numbers taken with a -ive sign...
0 being one number means product is 0 therefore mean should be 0..
so the sum of +ive numbers should be equal to sum of -ive numbers to have total value as 0..
it is possible with different 23 +ive numbers and one -ive number, which is equal to total sum of 23 +ive numbers taken with a -ive sign...
