先化简,再求值?
因为a^2+2a-1=0,
所以a^2+2a=1,
所以[(a-2)/(a^2+2a)-(a-1)/(a^2+4a+4)]/[(a-4)/(a+2)
=[(a-2)/a(a+2)-(a-1)/(a+2)^2]*[(a+2)/(a-4)]
=[(a-2)(a+2)/a(a+2)^2-a(a-1)/a(a+2)^2]*[(a+2)/(a-4)]
=[(a^2-4-a^2+a)/a(a+2)^2]*[(a+2)/(a-4)]
=[(a-4)/a(a+2)^2]*[(a+2)/(a-4)]
=1/a(a+2)
=1/(a^2+2a)
=1/1
=1。
有用的话,给个好评吧O(∩_∩)O~~。
试着写一下,因为不能完全确定分子分母!
{[(a^2-5a+2)/(a+2)]+1}÷[(a^2-4)/(a^2+4a+4)]
=[(a^2-5a+2+a+2)/(a+2)]×[(a^2+4a+4)/(a^2-4)]
=[(a^2-4a+4)/(a+2)]×[(a^2+4a+4)/(a^2-4)]
=[(a-2)^2/(a+2)]×[(a+2)^2/(a+2)*(a-2)]
=a-2
=(2+√3)-2
=√3。