∫ (x+1)/(根号下1-x^2)dx

∫粗薯 (x+1)/岩孝者√(1-x^2) dx
let
x=siny
dx = cosy dy

∫ (x+1)/√慎丛(1-x^2) dx
=∫ (siny+1) dy
=-cosy + y + C
=-√(1-x^2) + arcsinx + C