\"\"

\

The function is \"\".

\

\"\"

\

Apply derivative on each side with respect to \"\".

\

\"\"

\

\"\".

\

Power series formula: \"\".

\

\"\"

\

\"\"

\

\"\"

\

Apply integral on each side.

\

\"\"

\

\"\"

\

\"\".

\

Substitute \"\" in \"\".

\

\"\"

\

\"\"

\

\"\".

\

Substitute \"\" in \"\".

\

\"\"

\

\"\".

\

The power series representation \"\" is \"\".

\

\"\"

\

Find the radius of converence.

\

Consider \"\" and \"\".

\

Ratio test :

\

Let \"\" be a series with non zero terms.

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1. \"\" converges absolutely if \"\".

\

2. \"\" diverges if \"\" or \"\".

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3. The ratio test is inconclusive if \"\".

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Find \"\".

\

\"\"

\

\"\"

\

\"\"

\

\"\"

\

\"\"

\

\"\"

\

\"\".

\

The series is converges when \"\".

\

\"\"

\

\"\".

\

Therefore, the radius of the convergence is \"\".

\

\"\"

\

The power series representation \"\" is \"\".

\

The radius of the convergence is \"\".