如图,求详细过程谢谢
展开全部
(6)
∫[x/(x²-2x+2)]dx
=∫[(x-1+1)/(x²-2x+2)]dx
=∫[(x-1)/(x²-2x+2)]dx+∫[1/(x²-2x+2)]dx
=½∫[(2x-2)/(x²-2x+2)]dx +∫1/[1+(x-1)²]d(x-1)
=½ln(x²-2x+2) +arctan(x-1) +C
∫[x/(x²-2x+2)]dx
=∫[(x-1+1)/(x²-2x+2)]dx
=∫[(x-1)/(x²-2x+2)]dx+∫[1/(x²-2x+2)]dx
=½∫[(2x-2)/(x²-2x+2)]dx +∫1/[1+(x-1)²]d(x-1)
=½ln(x²-2x+2) +arctan(x-1) +C
追问
我的题目是x/(x^2-2x+2)^2,你少了一个平方
本回答由网友推荐
已赞过
已踩过<
评论
收起
你对这个回答的评价是?
推荐律师服务:
若未解决您的问题,请您详细描述您的问题,通过百度律临进行免费专业咨询
