What is the value of $[\cos(\pi)/2n + 1] + [\cos(3\pi)/2n + 1] + \cos(5\pi)/2n + 1]$ ..... upto $'n'$ terms equals?
Can anyone, please solve this question for me?
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http://math.stackexchange.com/questions/117114/sum-cos-when-angles-are-in-arithmetic-progression – lab bhattacharjee Jun 24 '14 at 09:27
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Using the fact that $\cos(k\pi)=-1$, for all odd values of $k$, the summation reduces to $$ [\frac{-1}{2n}+1]+[\frac{-1}{2n}+1]+... \text{upto 'n' terms}$$ which equals $$ n(\frac{-1}{2n}+1) = -\frac{1}{2}+n$$
Pramod Kaushik
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