(x-1)²+ │y+1│=0 求2x²y-(2x²y-4x²y+5xy²)的值RT
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(x-1)²+│y+1│=0求2x²y-(2x²y-4x²y+5xy²)的值RT(x-1)²+│y+1│=0求2x²y-(2x
(x-1)²+ │y+1│=0 求2x²y-(2x²y-4x²y+5xy²)的值RT
(x-1)²+ │y+1│=0 求2x²y-(2x²y-4x²y+5xy²)的值
RT
(x-1)²+ │y+1│=0 求2x²y-(2x²y-4x²y+5xy²)的值RT
因为(x-1)≥0│y+1│≥0
(x-1)²+ │y+1│=0
所以x=1,y=-1
2x²y-(2x²y-4x²y+5xy²) =4x2y-5xy2
=xy(4x-5y)
=-1*9
=-9
x=1,y=-1
2x²y-(2x²y-4x²y+5xy²)=-9
因(x-1)≥0,│y+1│≥0,且 (x-1)²+ │y+1│=0
故x=1,y=-1
故 原式=4x2y-5xy2=-4-5=-9
∵(x-1)^2≥0,Iy+1I≥0
又(x-1)^2+Iy+1I=0
∴x-1=0,y+1=0
解之得:x=1,y=-1
∴2x^2y-(2x^2y-4x^2y+5xy^2)=4x^2y-5xy^2
=-4-5
=-9
题意得
x-1=0 y+1=0
∴x=1 y=-1
∴原式=2x^2y-2x^2y+4x^2y-5xy^2=4x^2y-5xy^2=4*1^2*(-1)-5*1*(-1)^2=-4-5=-9