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20 Feb 2018, 07:55
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What is the value of \(1+\frac{1}{1+2}+\frac{1}{1+2+3}+\frac{1}{1+2+3+4}+.......+\frac{1}{1+2+3....+50}\)?
(A) \(2\)
(B) \(\frac{100}{51}\)
(C) \(1\)
(D) \(\frac{50}{51}\)
(E) \(\frac{49}{50}\)
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(A) \(2\)
(B) \(\frac{100}{51}\)
(C) \(1\)
(D) \(\frac{50}{51}\)
(E) \(\frac{49}{50}\)
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20 Feb 2018, 09:06
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chetan2u
\(1= 2-\frac{2}{2}\)
\(\frac{1}{(1+2)}=\frac{2}{2}-\frac{2}{3}\)
\(\frac{1}{(1+2+3)}=\frac{2}{3}-\frac{2}{4}\) and so on, hence last term will be
\(\frac{1}{(1+2+3+....50)}=\frac{2}{50}-\frac{2}{51}\), on adding all the above numbers we will get
\(2-\frac{2}{51}=\frac{100}{51}\)
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The formula for this type of series is \(\frac{2n}{(n+1)}\), where \(n\) is the number of term., here we have \(50\) terms so the addition should be
\(\frac{2*50}{(50+1)}=\frac{100}{51}\)
13 Mar 2018, 18:52
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I do not think the propose of this question is about calculation, If we see the equation carefully, it has 1 and other positive fractions in the equation, so we can let C,D,E out, because they are <=1, then we know that all the sums of the fractions can not be superior than 1, so let A out, we have only B to choose.
