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14 Dec 2016, 06:00
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Be sure to select an answer first to save it in the Error Log before revealing the correct answer (OA)!
Difficulty:
75%
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Question Stats:
56% (02:36) correct
44%
(02:38)
wrong
based on 171
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A local club has between 24 and 57 members. The members of the club can be separated into groups of which all but the final group, which will have 3 members, will have 4 members. The members can also be separated into groups so that all groups but final group, which will have 4 members, will have 5 members. If the members are separated into as many groups of 11 as possible, how many members will be in the final group?
A. 7
B. 6
C. 3
D. 2
E. 1
A. 7
B. 6
C. 3
D. 2
E. 1
14 Dec 2016, 11:45
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Option B
X: Total number of members
Given: 24<X<57
X = 4m + 3 - I
X = 5n + 4 - II
LCM (4,5) = 20
Possible X values adhering to I & II: 19, 39, 59
24<X<57 : X = 39
Remainder (\(\frac{X}{11}\)) = 6
X: Total number of members
Given: 24<X<57
X = 4m + 3 - I
X = 5n + 4 - II
LCM (4,5) = 20
Possible X values adhering to I & II: 19, 39, 59
24<X<57 : X = 39
Remainder (\(\frac{X}{11}\)) = 6
There are 24 to 57 members right?
1st condition, we can make a group of 4 members & a final group of 3 members.
4M + 3
(M is nothing but a name given to a group of 4 members, just like Ivy League is a name given to a group of 8 universities)
2nd condition, we can make a group of 5 members & a final group of 4 members.
5N + 4
(N is nothing but a name given to a group of 5 members, just like G7 is a name given to a group of 7 highly developed countries)
So take a number, for ex - 7. If we fit 7 into 1st condition we can make a group of 4 & a final group of 3. But 7 won't fit into 2nd condition, which needs 5 in a group & 4 in the final group.
Thus, we must find a number which fits into both the conditions. Here LCM comes into picture. LCM of 4 & 5 is 20. So 20 fits perfectly into both the conditions.
But there is problems with using 20.
Problem - It gives us two different number count.
As per 1st condition the count becomes 23 (20+3) & as per 2nd condition it becomes 24 (20+4). This shouldn't be the case. The count should always be the same.
The reason this problem arises is because the second halves of both the equations are different.
Thus we must find a common number for 3 & 4 as well.
LCM of 3 & 4 is 12.
So the ideal number has to be between 12 (LCM of 3 & 4) and 20 (LCM of 4 & 5).
Try each number from 12 to 20. You'll get 19 as the ideal one.
But 19 is too small. The number has to be in between 24 and 57.
To find the ideal number use the range 12 to 20 as the base & multiple it with 2 & so on. 24 to 40 & 36 to 60 are the other number ranges.
(Because, multiple of a LCM of 2 numbers is also a multiple of those same numbers; 40 & 60 are also the multiples of both 4 & 5; 12 & 36 are also the multiples of 3 & 4)
Ideal numbers are 19, 39 and 59
But, 59 will be too much due to the condition of number of members has to be between 24 and 57.
39 is perfect.
Divide into groups of 11.
39/11 leaves a remainder of 6.
Thus 6 is the answer.
P. S. - Dear Bunuel, I would request you to please check my explanation and tell me whether it is correct or not, so that others can refer to it as well.
Secondly, I'm sorry for such a long explanation. I personally had a problem understanding the only explanation given by RR88,so I solved explained myself.
Thank you.
Posted from my mobile device
1st condition, we can make a group of 4 members & a final group of 3 members.
4M + 3
(M is nothing but a name given to a group of 4 members, just like Ivy League is a name given to a group of 8 universities)
2nd condition, we can make a group of 5 members & a final group of 4 members.
5N + 4
(N is nothing but a name given to a group of 5 members, just like G7 is a name given to a group of 7 highly developed countries)
So take a number, for ex - 7. If we fit 7 into 1st condition we can make a group of 4 & a final group of 3. But 7 won't fit into 2nd condition, which needs 5 in a group & 4 in the final group.
Thus, we must find a number which fits into both the conditions. Here LCM comes into picture. LCM of 4 & 5 is 20. So 20 fits perfectly into both the conditions.
But there is problems with using 20.
Problem - It gives us two different number count.
As per 1st condition the count becomes 23 (20+3) & as per 2nd condition it becomes 24 (20+4). This shouldn't be the case. The count should always be the same.
The reason this problem arises is because the second halves of both the equations are different.
Thus we must find a common number for 3 & 4 as well.
LCM of 3 & 4 is 12.
So the ideal number has to be between 12 (LCM of 3 & 4) and 20 (LCM of 4 & 5).
Try each number from 12 to 20. You'll get 19 as the ideal one.
But 19 is too small. The number has to be in between 24 and 57.
To find the ideal number use the range 12 to 20 as the base & multiple it with 2 & so on. 24 to 40 & 36 to 60 are the other number ranges.
(Because, multiple of a LCM of 2 numbers is also a multiple of those same numbers; 40 & 60 are also the multiples of both 4 & 5; 12 & 36 are also the multiples of 3 & 4)
Ideal numbers are 19, 39 and 59
But, 59 will be too much due to the condition of number of members has to be between 24 and 57.
39 is perfect.
Divide into groups of 11.
39/11 leaves a remainder of 6.
Thus 6 is the answer.
P. S. - Dear Bunuel, I would request you to please check my explanation and tell me whether it is correct or not, so that others can refer to it as well.
Secondly, I'm sorry for such a long explanation. I personally had a problem understanding the only explanation given by RR88,so I solved explained myself.
Thank you.
Posted from my mobile device
