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Question Number 187662 by Jonas007 last updated on 20/Feb/23

	Answered by Ar Brandon last updated on 20/Feb/23
	$I=∫(x^2 /((xsinx+cosx)^2 ))dx=∫((xcosx)/((xsinx+cosx)^2 ))∙(x/(cosx))dx { ((u(x)=(x/(cosx)))),((v′(x)=((xcosx)/((xsinx+cosx)^2 )))) :} ⇒ { ((u′(x)=((cosx+xsinx)/(cos^2 x)))),((v(x)=−(1/(xsinx+cosx)))) :} I=−((x/(cosx))/(xsinx+cosx))+∫(dx/(cos^2 x))=tanx−((x/(cosx))/(xsinx+cosx))+C$
	$I = \int \frac{x^{2}}{{(x \sin x + \cos x)}^{2}} d x = \int \frac{x \cos x}{{(x \sin x + \cos x)}^{2}} \cdot \frac{x}{\cos x} d x$ ${\begin{cases} u (x) = \frac{x}{\cos x} \\ v^{'} (x) = \frac{x \cos x}{{(x \sin x + \cos x)}^{2}} \end{cases} \Rightarrow {\begin{cases} u^{'} (x) = \frac{\cos x + x \sin x}{\cos^{2} x} \\ v (x) = - \frac{1}{x \sin x + \cos x} \end{cases}$ $I = - \frac{\frac{x}{\cos x}}{x \sin x + \cos x} + \int \frac{d x}{\cos^{2} x} = \tan x - \frac{\frac{x}{\cos x}}{x \sin x + \cos x} + C$
	Commented by CElcedricjunior last updated on 20/Feb/23

	$★$
	Commented by Ar Brandon last updated on 20/Feb/23
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