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| Summing Consecutive Terms and Pair Determination (Posted on 2015-11-21) |
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The sequence S1, S2, S3, ..... is defined by:
Sk = 1/(k2 + k), for k=1,2,.....
Find M and N, given that:
SM+ SM+1+ .....+SN = 1/29
Solution
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 | Comment 1 of 3
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1/(k2
+ k) = 1/k – 1/(k+1), so consecutive terms have
parts that cancel as follows:
1/2 + 1/6 + 1/12 + 1/20 + …
= (1 – 1/2) + (1/2 – 1/3) + (1/3 – 1/4) + (1/4 – 1/5) +…
Thus: Sumk=M to N(1/(k2
+ k)) = 1/M – 1/(N + 1)
which gives: 1/M – 1/(N + 1) = 1/29
(29 – M)(N + 1) =
29M
So M < 29 and, since 29 is prime, neither 29 nor M can have
prime factors in common with 29 – M.
Thus 29 – M = 1, giving M = 28 and N = 811
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Posted by Harry
on 2015-11-21 11:20:56 |
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