The value of 12∞∑r=112r2+164r6−48r4+12r2−1 is – InterviewSolution

1.	The value of 12∞∑r=112r2+164r6−48r4+12r2−1 is
Answer» The value of $12 \infty \sum r = 1 \frac{12 r^{2} + 1}{64 r^{6} - 48 r^{4} + 12 r^{2} - 1}$ is

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