Evaluating $\int\frac{\sqrt{1-x}}{x}\,dx$

Question

$$\int\frac{\sqrt{1-x}}{x}\,dx$$ $$\int \:uv'=uv-\int \:u'v$$ $$u=\frac{\sqrt{1-x}}{x},\:\:u'=\frac{x-2}{2\sqrt{1-x}x^2},\:\:v'=1,\:\:v=x$$

score 1 · Answer 1 · answered Jan 11 '15 at 15:23

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HINT:

Let $\sqrt{1-x}=y\implies1-x=y^2\iff x=1-y^2 \implies-dx=2y\ dy$

$$\int\frac{\sqrt{1-x}}xdx=-\int\frac y{1-y^2}2y\ dy$$

But $\dfrac{-2y^2}{1-y^2}=\dfrac{2-2y^2-2}{1-y^2}=2-2\cdot\dfrac1{1-y^2}$

answered Jan 11 '15 at 15:23

lab bhattacharjee

@luke, See http://www.sosmath.com/tables/integral/integ10/integ10.html – lab bhattacharjee Jan 11 '15 at 15:39

Dr. Sonnhard Graubner · Answer 2 · 2015-01-11T18:33:58.217

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setting $t=\sqrt{1-x}$ we get $x=1-t^2$ and $dx=-2tdt$ and our integral is given by $$\int\frac{-2t^2}{1-t^2}dt$$

edited Jan 11 '15 at 18:33

answered Jan 11 '15 at 15:25

2 Answers2