已知|a-2|+(b+1/4)^2=0,求(a^b-2ab)-2(3ab^2+4ab)的值
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|a-2|+(b+1/乱敬4)^2=0
∵|a-2|≥0,(b+1/4)^2≥0
∴行友a-2=0,b+1/4=0
a=2,b=-1/4
(a^b-2ab)-2(3ab^2+4ab)
=a^b-6ab^2-10ab
=2^(1/档陪槐4)-6*2*(1/4)^2-10*2*1/4
=2^(1/4)-3/4-5
=2^(1/4)-23/4
∵|a-2|≥0,(b+1/4)^2≥0
∴行友a-2=0,b+1/4=0
a=2,b=-1/4
(a^b-2ab)-2(3ab^2+4ab)
=a^b-6ab^2-10ab
=2^(1/档陪槐4)-6*2*(1/4)^2-10*2*1/4
=2^(1/4)-3/4-5
=2^(1/4)-23/4
追问
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追答
题目是不是这样:
已知|a-2|+[(b+1)/4]^2=0,求(a^b-2ab)-2(3ab^2+4ab)的值
|a-2|+(b+1/4)^2=0
因为|a-2|≥0,[(b+1)/4]^2≥0
所以a-2=0,(b+1)/4=0
a=2,b=3
(a^b-2ab)-2(3ab^2+4ab)
=a^b-6ab^2-10ab
=2^3-6*2*3^2-10*2*3
=8-108-60
=-160
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