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daviesj
Joined: 23 Aug 2012
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Location: India
Concentration: Finance, Human Resources
Schools: MBS '17 (A$) Smurfit FT'16 (A)
GMAT 1: 570 Q47 V21
GMAT 2: 690 Q50 V33
GPA: 3.5
WE:Information Technology (Finance: Investment Banking)
14 Jan 2013, 06:25
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E
Be sure to select an answer first to save it in the Error Log before revealing the correct answer (OA)!
Difficulty:
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3, k, 20, m, 4, n
In the list above, k, m, and n are three distinct positive integers and the average (arithmetic mean) of the six numbers in the list is 8. If the median of the list is 6.5, which of the following CANNOT be the value of k, m, or n ?
A. 9
B. 8
C. 7
D. 6
E. 5
In the list above, k, m, and n are three distinct positive integers and the average (arithmetic mean) of the six numbers in the list is 8. If the median of the list is 6.5, which of the following CANNOT be the value of k, m, or n ?
A. 9
B. 8
C. 7
D. 6
E. 5
akashganga
SDA Bocconi Thread Master
Joined: 27 Dec 2012
Last visit: 18 Mar 2016
Posts: 26
Given Kudos: 34
Location: India
Concentration: Technology, Entrepreneurship
Schools: IE '18 Bocconi '17 ISB '17 (WL) IIMA (II) Oxford'17 IIMB (D)
GMAT 1: 660 Q48 V33
GMAT 2: 730 Q49 V40
WE:Engineering (Energy)
14 Jan 2013, 13:15
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sum of all numbers = 8*6=48
and so k+m+n =21----------- (1)
in this list it can be safely assumed that 20 is the biggest number, because even if we assume 21 to be one of the nos, it would not satisfy the sum =48 condition.
median is (sum of middle two terms)/2, if no of terms is even.
So 3rd term + 4th term = 13 ---(2)
So we have to arrange the six number in increasing order. both 3 and 4 cannot be 3rd and 4th terms so that means, there is at max one term which is less than 3. So then there are two cases:
1st case. let us assume that k is less than 3: the order is k,3,4,m,n,20
4+m=13 from (2)
m=9
so from--(1) k+n=12
which means out of the five options 9 is already in.
But since k is less than 3, the values of n would be either 11 or 12 (not in options)
2nd Case: if k is greater than 4
3,4,k,m,n,20
in this case k+m=13 and hence n = 8
now k is greater than 4, if k =5 then m=8 which cant be because already n=8 and as per question all k, m and n are distinct integers.
hence 5 cant be the choice.
DJ
and so k+m+n =21----------- (1)
in this list it can be safely assumed that 20 is the biggest number, because even if we assume 21 to be one of the nos, it would not satisfy the sum =48 condition.
median is (sum of middle two terms)/2, if no of terms is even.
So 3rd term + 4th term = 13 ---(2)
So we have to arrange the six number in increasing order. both 3 and 4 cannot be 3rd and 4th terms so that means, there is at max one term which is less than 3. So then there are two cases:
1st case. let us assume that k is less than 3: the order is k,3,4,m,n,20
4+m=13 from (2)
m=9
so from--(1) k+n=12
which means out of the five options 9 is already in.
But since k is less than 3, the values of n would be either 11 or 12 (not in options)
2nd Case: if k is greater than 4
3,4,k,m,n,20
in this case k+m=13 and hence n = 8
now k is greater than 4, if k =5 then m=8 which cant be because already n=8 and as per question all k, m and n are distinct integers.
hence 5 cant be the choice.
DJ
daviesj
Joined: 23 Aug 2012
Last visit: 09 May 2025
Posts: 115
Own Kudos:
Given Kudos: 35
Status:Never ever give up on yourself.Period.
Location: India
Concentration: Finance, Human Resources
Schools: MBS '17 (A$) Smurfit FT'16 (A)
GMAT 1: 570 Q47 V21
GMAT 2: 690 Q50 V33
GPA: 3.5
WE:Information Technology (Finance: Investment Banking)
14 Jan 2013, 18:48
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DISTINCT...I missed this word...so i eliminated choice E,as I got the values
3-4-5-8-8-20 ,which had median as 6.5...thnks for the explaination...+1
Posted from my mobile device
3-4-5-8-8-20 ,which had median as 6.5...thnks for the explaination...+1
Posted from my mobile device
