Proof

If $E_\infty$ is finite, then $P_\infty$ is always zero

$P_\infty\equiv\lim_{T\to\infty}\frac{1}{2T}\int_{-T}^T|x(t)|^2dt$

$P_\infty\equiv(\lim_{T\to\infty}\frac{1}{2T})*(\lim_{T\to\infty}\int_{-T}^T|x(t)|^2dt)$

Because $E_\infty\equiv\lim_{T\to\infty}\int_{-T}^T|x(t)|^2dt$ , it follows that by substitution

$P_\infty=(\lim_{T\to\infty}\frac{1}{2T})*E_\infty$

$P_\infty=(\lim_{T\to\infty}\frac{1}{2T})*(\lim_{T\to\infty}E_\infty)$

$P_\infty=\lim_{T\to\infty}\frac{E_\infty}{2T}$

This limit will always evaluate to zero as long as $E_\infty$ is finite.

$\therefore$ If $E_\infty$ is finite, then $P_\infty$ is always zero $\square$

--Asiembid 14:04, 17 June 2009 (UTC) - Adam Siembida