How to appraoch solving this series? I am given the following series and asked to solve it. <mu

Amber Quinn

Amber Quinn

Answered question

2022-06-13

How to appraoch solving this series?
I am given the following series and asked to solve it. n = 1 ( 2 ) n ( 2 n + 1 ) ! I recognize that this series is somewhat similar to the Taylor series for sinx which is n = 0 ( 1 ) n x 2 n + 1 ( 2 n + 1 ) ! .
However, I am not really able to relate these two series in order to solve them, especially since my series starts at 1 and once I rewrite the sinx series to match that, I am completely lost.

Answer & Explanation

timmeraared

timmeraared

Beginner2022-06-14Added 22 answers

Since sin ( x ) x = n = 1 ( 1 ) n x 2 n + 1 ( 2 n + 1 ) ! , sin ( x ) x x = n = 1 ( 1 ) n x 2 n ( 2 n + 1 ) ! = n = 1 ( x 2 ) n ( 2 n + 1 ) ! .
Therefore, putting x for x, sin ( x ) x x = n = 1 ( x ) n ( 2 n + 1 ) ! .
And there you are

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