已知a²+2a-2012=0求代数式(a-2/a²+2a-a-1/a²+4a+4)/a-4/a+2的值?
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即a²+2a=2012
原式=[(a-2)/a(a+2)-(a-1)/(a+2)²]×(a+2)/(a-4)
=(a²-4-a²+a)/a(a+2)²×(a+2)/(a-4)
=(a-4)/a(a+2)²×(a+2)/(a-4)
=1//a(a+2)
=1/(a²+2a)
=1/2012
原式=[(a-2)/a(a+2)-(a-1)/(a+2)²]×(a+2)/(a-4)
=(a²-4-a²+a)/a(a+2)²×(a+2)/(a-4)
=(a-4)/a(a+2)²×(a+2)/(a-4)
=1//a(a+2)
=1/(a²+2a)
=1/2012
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∵a²+2a-2012=0
∴a²+2a+2012
(a-2/a²+2a-a-1/a²+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-1)] /a(a+2)² ×(a+2)/(a-4)
=(a-4) /a(a+2)² ×(a+2)/(a-4)
=1/a(a+2)
=1/(a²+2a)
=1/2012
∴a²+2a+2012
(a-2/a²+2a-a-1/a²+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-1)] /a(a+2)² ×(a+2)/(a-4)
=(a-4) /a(a+2)² ×(a+2)/(a-4)
=1/a(a+2)
=1/(a²+2a)
=1/2012
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