dx/((x2-1)^2)的积分怎么求呢.
题目
dx/((x2-1)^2)的积分怎么求呢.
答案
设1/(x^2-1)^2=[(ax+b)/(x-1)^2+(cx+d)/(x+1)^2],
右边通分,对应项相等,得到:
a=-1/4,c=1/4,b=d=1/2.
所以积分为:
原式子
=-(1/4)∫(x-2)dx/(x-1)^2+(1/4)∫(x+2)dx/(x+1)^2
=(1/4)∫xd[1/(x-1)]+(1/2)∫dx/(x-1)^2-(1/4)∫xd[(1/(x+1)]+(1/2)∫dx/(x+1)^2
=(1/4)x/(x-1)-(1/4)∫dx/(x-1)-[1/(2x-2)]-(1/4)x/(x+1)+(1/4)∫dx/(x+1)-[1/(2x+2)]
=(1/4)x/(x-1)-(1/4)x/(x+1)-(1/4)ln|(x-1)/(x+1)|-[1/(2x-2)+1/(2x+2)]+c.后面还可以做通分适当化简.
举一反三
我想写一篇关于奥巴马的演讲的文章,写哪一篇好呢?为什么好
最新试题
热门考点