1/(x-1)-(x+3)/(x^2-1)*(x^2-2x+1)/(x^2+2x-3),當(dāng)x=-1/3,先化簡(jiǎn),再求值,

1/(x-1)-(x+3)/(x^2-1)*(x^2-2x+1)/(x^2+2x-3),當(dāng)x=-1/3,先化簡(jiǎn),再求值,
1/(x-1)-(x+3)/(x^2-1)*[(x^2-2x+1)/(x^2+2x-3)]

數(shù)學(xué)人氣：422 ℃時(shí)間：2020-05-12 12:40:33

優(yōu)質(zhì)解答

解原式=1/(x-1)-(x+3)/((x+1)(x-1))*[((x-1)(x-1))/((x+3)(x-1))]
=1/(x-1)-1/(x+1)
=2/(x^2-1)
當(dāng)x=-1/3
原式=2/（1/9-1）
=2/(-8/9)
=-9/4

我來回答

類似推薦

猜你喜歡

精品偷拍一区二区三区,亚洲精品永久 码,亚洲综合日韩精品欧美国产,亚洲国产日韩a在线亚洲