The value of 10∑n=1 −2n∫−2n−1sin27x dx+10∑n=12n+1∫2nsin2 – InterviewSolution

1.	The value of 10∑n=1 −2n∫−2n−1sin27x dx+10∑n=12n+1∫2nsin27x dx=
Answer» The value of $10 \sum n = 1 - 2 n \int - 2 n - 1 {sin}^{27} x d x + 10 \sum n = 1 2 n + 1 \int 2 n {sin}^{27} x d x =$

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