1/a+1-a+3/a^2-1xa^2-2a+1/a^2+4a+3
你这式子真像天书哦!
楼主的意思应该是:
1/(a+1) -[(a+3)/(a^2-1)]*[(a^2-2a+1)/(a^2+4a+3)]
原式=
1/(a+1) -{(a+3)/[(a-1)(a+1)]}*{(a-1)^2/[(a+3)(a+1)]}
=
1/(a+1) -(a-1)/(a+1)^2
=
2/(a+1)^2
已知a^2+2a-8=0,求1/a+1-a+3/a^2-1xa^2-2a+1/a^2+4a+3
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