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Given $\frac{\pi}{\sin (\pi z)}=\sum_{n=-\infty}^\infty (-1)^n \frac{1}{z-n},$ is there a fast way to get $\sec(z)=\sum_{n=1}^\infty \frac{(-1)^n(2n-1)\pi}{z^2-(n-1/2)^2\pi^2}?$ I've tried computing it, but I get a huge mess. Would anybody have some ideas? Thanks in advance.

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Let's rewrite your first equation as : $\frac{\pi}{\cos(\pi/2-\pi z)}=\sum_{n=-\infty}^\infty \frac{(-1)^n}{z-n}$ and set $\ x:=\pi\bigl(\frac 12-z\bigr)\ $ then (dividing by $\pi$) : $\sec(x)=\sum_{n=-\infty}^\infty \frac {(-1)^n}{\pi z-\pi/2-(n-1/2)\pi}$ for $m:=-n$ : $\sec(x)=-\sum_{n=1}^\infty \frac {(-1)^n}{x+(n-1/2)\pi}-\sum_{m=0}^\infty \frac {(-1)^m}{x+(-m-1/2)\pi}$ for $n':=m+1$ : $\sec(x)=-\sum_{n=1}^\infty \frac {(-1)^n}{x+(n-1/2)\pi}+\sum_{n'=1}^\infty \frac {(-1)^{n'}}{x-(n'-1/2)\pi}$ Putting everything together we conclude : $\sec(x)=\sum_{n=1}^\infty \frac{(-1)^n(2n-1)\pi}{x^2-(n-1/2)^2\pi^2}.$

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    @mathstudent12: Thanks for that! The idea here was to put the positive half-integers at the left and the negative ones at the right.2012-10-11