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14 Sep 2015, 22:53
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69% (02:19) correct
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If p and n are positive integers, with p > n, what is the average of n consecutive multiples of p (starting with p), less the average of p consecutive multiples of n (starting with n)?
A. (p + n)/2
B. (p – n)/2
C. p + n
D. p – n
E. p^2 – n^2
A. (p + n)/2
B. (p – n)/2
C. p + n
D. p – n
E. p^2 – n^2
17 Sep 2015, 14:09
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Bunuel
This question contains 2 evenly spaced sets.
1) p, 2p, 3p, ..... np
2) n, 2n, 3n, ..... pn
Now,
Average of any evenly spaced set is given by ( sum of first term + sum of last term)/2
Average of first set will be
\(\frac{p+np}{2}\)
Average of 2nd set will be
\(\frac{n+np}{2}\)
The difference between averages will be
\(\frac{p+np}{2}\)-\(\frac{n+np}{2}\) = \(\frac{p-n}{2}\)
Answer:- B
14 Sep 2015, 23:44
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Forget conventional ways of solving math questions. In PS, IVY approach is the easiest and quickest way to find the answer.
If p and n are positive integers, with p > n, what is the average of n consecutive multiples of p (starting with p), less the average of p consecutive multiples of n (starting with n)?
A. (p + n)/2
B. (p – n)/2
C. p + n
D. p – n
E. p^2 – n^2
The n consecutive multiples of p (starting with p) : p, 2p, 3p,...., np
So the average is [n(n+1)/2]*p/n = p(n+1)/2.
Similarly the p consecutive multiples of n (starting with n) : n, 2n,..., pn
--> the average is [p(p+1)/2]*n/p = n(p+1)/2.
So the difference is p(n+1)/2 – n(p+1)/2 = (p-n)/2.
The answer is, therefore, B
If p and n are positive integers, with p > n, what is the average of n consecutive multiples of p (starting with p), less the average of p consecutive multiples of n (starting with n)?
A. (p + n)/2
B. (p – n)/2
C. p + n
D. p – n
E. p^2 – n^2
The n consecutive multiples of p (starting with p) : p, 2p, 3p,...., np
So the average is [n(n+1)/2]*p/n = p(n+1)/2.
Similarly the p consecutive multiples of n (starting with n) : n, 2n,..., pn
--> the average is [p(p+1)/2]*n/p = n(p+1)/2.
So the difference is p(n+1)/2 – n(p+1)/2 = (p-n)/2.
The answer is, therefore, B
