∫1/(e^x+1)dx≠ln|e^x+1|+C∫1/(e^x+1)dx=∫1/[e^x(e^x+1)]de^x= ∫1/e^x-1/(e^x+1)de^x=lne^x-ln (e^x+1)+C∫1/(e^x+1)d(e^x+1)=ln|e^x+1|+C
图看不太清,能拍一张清楚些的吗?
