求不定积分∫x²+1\(x+1)²(x-1)第一步是怎样拆分的?为什么要拆成x-1 x+1 (x+
求不定积分∫x²+1\(x+1)²(x-1)第一步是怎样拆分的?为什么要拆成x-1x+1(x+1)²...
求不定积分∫x²+1\(x+1)²(x-1)第一步是怎样拆分的?为什么要拆成x-1 x+1 (x+1)²
展开
- 你的回答被采纳后将获得:
- 系统奖励15(财富值+成长值)+难题奖励20(财富值+成长值)
1个回答
展开全部
拆分是为了将原函数求出来,具体过程如下:
∫{(x^2+1)/[(x+1)^2·(x-1)]}dx
=∫{[(x^2+2x+1)-2x]/[(x-1)(x+1)^2]}dx
=∫{[(x+1)^2-2x]/[(x-1)(x+1)^2]}dx
=∫[1/(x-1)]dx-2∫{x/[(x-1)(x+1)^2]}dx
=∫[1/(x-1)]dx-∫[1/(x+1)][1/(x-1)+1/(x+1)]dx
=∫[1/(x-1)]dx-∫[1/(x+1)][1/(x-1)]dx-∫[1/(x+1)^2]dx
=∫[1/(x-1)]dx-(1/2)∫[1/(x-1)-1/(x+1)]dx-∫[1/(x+1)^2]dx
=(1/2)∫[1/(x-1)]dx+(1/2)∫[1/(x+1)]dx-∫[1/(x+1)^2]dx
=(1/2)ln|x-1|+(1/2)ln|x+1|+1/(x+1)+C。
∫{(x^2+1)/[(x+1)^2·(x-1)]}dx
=∫{[(x^2+2x+1)-2x]/[(x-1)(x+1)^2]}dx
=∫{[(x+1)^2-2x]/[(x-1)(x+1)^2]}dx
=∫[1/(x-1)]dx-2∫{x/[(x-1)(x+1)^2]}dx
=∫[1/(x-1)]dx-∫[1/(x+1)][1/(x-1)+1/(x+1)]dx
=∫[1/(x-1)]dx-∫[1/(x+1)][1/(x-1)]dx-∫[1/(x+1)^2]dx
=∫[1/(x-1)]dx-(1/2)∫[1/(x-1)-1/(x+1)]dx-∫[1/(x+1)^2]dx
=(1/2)∫[1/(x-1)]dx+(1/2)∫[1/(x+1)]dx-∫[1/(x+1)^2]dx
=(1/2)ln|x-1|+(1/2)ln|x+1|+1/(x+1)+C。
追问
第四步到第五步减号后面的还是用待定系数法吗
本回答被网友采纳
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
