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What is the radius of convergence of #sum_1^oo e^(nx) / 2^(2n)?#?

1 Answer

Jul 18, 2016

#x < log_e 4#

Explanation:

#S(x)=sum_1^oo e^(nx) / 2^(2n)=sum_1^oo(e^x/4)^n#

this series converges for #e^x/4 <1# giving as result

#S(x) = 1/(1-e^x/4) = 4/(4-e^x), forall x | e^x<4->x < log_e 4#

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