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[2024/05/18] Not a telescoping series (lemmy.world)

submitted 4 months ago by [email protected] to c/[email protected]

3 comments fedilink hide all child comments

It is not

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[–] [email protected] 2 points 2 months ago* (last edited 2 months ago)

solution

Assuming the series converges it converges absolutely. Therefore

sum{n/2^(n-1)^ | n >= 1}
= sum{(n+1)/2^n^ | n >= 0}
= sum{n/2^n^ | n >= 0} + sum{1/2^n^ | n >= 0}
= sum{n/2^n^ | n >= 0} + 2
= sum{n/2^n^ | n >= 1} + 2

sum{n/2^(n-1)^ | n >= 1} = sum{n/2^n^ | n >= 1} + 2

2 = sum{n/2^(n-1)^ | n >= 1} - sum{n/2^n^ | n >= 1}
= sum{n/2^(n-1)^ - n/2^n^ | n >= 1}
= sum{n/2^n^ | n >= 1}
= 1/2 * sum{n/2^(n-1)^ | n >= 1}

sum{n/2^(n-1)^ | n >= 1} = 4