Integration Q (1 Viewer)

Trebla

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shaon0

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Can anyone evaluate:



Thanks. :)
Let u=pi/2-x: du=-dx
I=S [0,pi/2] dx/(1+(tan(x))^k)
= -S [pi/2,0] du/(1+(cot(u))^k)
= S [0,pi/2] (tan(u))^k du/((tan(u))^k+1)
= S [0,pi/2] 1-(1/((tan(u))^k+1) du
= S [0,pi/2] du -I
Thus, 2I=pi/2 => I=pi/4

Nice Q. Edit: Beaten
 

Trebla

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Woops...thanks for pointing that out :)
 

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