...nice .. ... ... calculus... find the value of: Θ=Σ_(n=1) ^∞ (((−1)^n sin^2 (n))/n)=? .........................


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Question Number 138683 by mnjuly1970 last updated on 16/Apr/21

$. . . n i c e . . . . . . . . c a l c u l u s . . .$ $f i n d t h e v a l u e o f :$ $Θ = \underset{n = 1}{\sum^{\infty}} \frac{{(- 1)}^{n} {s i n}^{2} (n)}{n} = ?$ $. . . . . . . . . . . . . . . . . . . . . . . . .$
	Answered by Dwaipayan Shikari last updated on 16/Apr/21

	$\underset{n = 1}{\sum^{\infty}} \frac{{(- 1)}^{n} {s i n}^{2} n}{n} = \underset{n = 1}{\sum^{\infty}} \frac{{(- 1)}^{n}}{2 n} - \frac{{(- 1)}^{n} c o s (2 n)}{2 n}$ $= - \frac{l o g (2)}{2} + \frac{1}{2} \underset{n = 1}{\sum^{\infty}} \frac{{(- 1)}^{n + 1} c o s (2 n)}{n}$ $= - \frac{l o g (2)}{2} + \frac{1}{4} \underset{n = 1}{\sum^{\infty}} \frac{{(- 1)}^{n + 1} e^{2 i n}}{n} + \frac{{(- 1)}^{n + 1} e^{- 2 i n}}{n}$ $= - \frac{l o g (2)}{2} + \frac{1}{4} (l o g (1 + e^{2 i}) + l o g (1 + e^{- 2 i}))$ $= - \frac{l o g (2)}{2} + \frac{1}{4} l o g (2 + 2 c o s (2)) = - \frac{l o g (2)}{2} + \frac{1}{2} l o g (s i n 1)$ $= \frac{l o g (\frac{s i n (1)}{2})}{2}$
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