" Laurent Series " Expand: f(z) = \frac{ {e}^{ {z}^(2) } }{ {z}^(3) }

asked Sep 23, 2023 145k views

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" Laurent Series "

Expand:

$f(z) = \frac{ {e}^{ {z}^(2) } }{ {z}^(3) }$

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Recall that for all
$z\in\Bbb C$ ,

$\displaystyle e^z = \sum_(n=0)^\infty (z^n)/(n!)$

Then

$\displaystyle (e^(z^2))/(z^3) = \frac1{z^3} \sum_(n=0)^\infty (z^(2n))/(n!) = \boxed{\sum_(n=0)^\infty (z^(2n-3))/(n!)}$

Adeena answered Sep 28, 2023

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