$$\sum_{i=1} ^{n}\Big(\sin\big(\frac{i\pi}{n}\big)\Big)^2=\frac{n}{2}$$
An interesting conclusion and checked for validity...holds for $n\geq 2$, but yet do not know how to prove it. Are there any suggestions? I am trying too....cheers!
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Using $\displaystyle\cos2A=1-2\sin^2A\iff2\sin^2A=\cdots$
$$\sum_{r=1}^n2\sin^2\frac{r\pi}n=\sum_{r=1}^n\left(1-\cos\frac{2r\pi}n\right)=n-\sum_{r=1}^n\cos\frac{2r\pi}n$$
Now use $\sum \cos$ when angles are in arithmetic progression to find $$\sum_{r=1}^n\cos\frac{2r\pi}n=0$$
lab bhattacharjee
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ah!didn't know that conclusion...thanks! – Amber Xue Aug 18 '14 at 17:40