The sum of the series 1-2-2-3-22-4-23-5-24-100-299 is

The correct option is D 99.2^100+1S=1+2.2+3.2^2+4.2^3+5.2^4+⋯ +100.2^99 ∴ 2S=1.2+2.2^2+3.2^3+⋯ +99.2^99+100.2^100 Subtracting we get S=1+1.2+1.2^2+ ⋯+ 1.2^99 ...

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Byju's Answer

Standard X

Mathematics

Sum of Infinite Terms of a GP

The sum of th...

Question

The sum of the series $1 + 2.2 + {3.2}^{2} + {4.2}^{3} + {5.2}^{4} + \dots + {100.2}^{99}$ is

{99.2}^{100} - 1

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{100.2}^{100}

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{99.2}^{100}

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{99.2}^{100} + 1

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Solution

The correct option is D ${99.2}^{100} + 1$
$S = 1 + 2.2 + {3.2}^{2} + {4.2}^{3} + {5.2}^{4} + \dots + {100.2}^{99} ∴ 2 S = 1.2 + {2.2}^{2} + {3.2}^{3} + \dots + {99.2}^{99} + {100.2}^{100}$
Subtracting we get
$- S = 1 + 1.2 + {1.2}^{2} + \dots + {1.2}^{99} - {100.2}^{100} = (1 + 2 + 2^{2} + \dots + 2^{99}) - {100.2}^{100} = \frac{1 (2^{100} - 1)}{2 - 1} - {100.2}^{100} = 2^{100} - 1 - {100.2}^{100} ∴ S = {100.2}^{100} - 2^{100} + 1 = {99.2}^{100} + 1$

Suggest Corrections

The sum of the series 1+2.2+3.22+4.23+5.24+⋯+100.299 is

The correct option is D 99.2100+1S=1+2.2+3.22+4.23+5.24+⋯+100.299∴2S=1.2+2.22+3.23+⋯+99.299+100.2100 Subtracting we get −S=1+1.2+1.22+⋯+1.299−100.2100=(1+2+22+⋯+299)−100.2100=1(2100−1)2−1−100.2100=2100−1−100.2100∴S=100.2100−2100+1=99.2100+1

The sum of the series $1 + 2.2 + {3.2}^{2} + {4.2}^{3} + {5.2}^{4} + \dots + {100.2}^{99}$ is