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20 Dec 2019, 03:34
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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:
45%
(medium)
Question Stats:
72% (02:22) correct
28%
(02:41)
wrong
based on 740
sessions
History
Date
Time
Result
Not Attempted Yet
At the beginning of 2010, 60% of the population of Town X lived in the south and the rest lived in the north. During 2010, the population of Town X grew by 5.5%. If the population in the south grew by 4.5%, by how much did the population in the north grow?
A. 1%
B. 3.5%
C. 6.5%
D. 7%
E. 13.75%
Are You Up For the Challenge: 700 Level Questions
A. 1%
B. 3.5%
C. 6.5%
D. 7%
E. 13.75%
Are You Up For the Challenge: 700 Level Questions
20 Dec 2019, 04:26
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Bunuel
Explanation:
let total population in town X: 1000
In South: 600
In North: 400
Population Grew by 5.5%: 1055 , total increase by - 55
Population of south grew by 4.5%, so new population:600 + 600* 0.045 = 27
Population grew in North: 55-27 = 28
%= 28/400 = 7%
IMO-D
General Discussion
25 Dec 2019, 11:03
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Bunuel
First of all, a low rise in proportionally larger population means the smaller proportion population must rise higher than that of larger population to match the overall rise. Thus, A and B are out. E would have been only considerable had the smaller proportion been very small(~20.3%), so E is out.
Let percentage rise for rest(40%) of the population living in north = x
Now, Rise in North + Rise in South = Total rise
40% * x + 60% * 4.5 = 1 * 5.5
0.4x + 2.7 = 5.5
x = \(\frac{2.8}{0.4}\) = 7
7%
Answer D.
