第一题:3x²+(﹣二分之三x+三分之一y²)(2x-三分之二y),其中x=﹣3分之1,y=3分之2
3x²+(﹣二分之三x+三分之一y²)(2x-三分之二y)
=3x²-3x²+xy+2/3xy²-2/9y
=xy+2/3xy²-2/9y
=y(x+2/3xy-2/9y²)
=2/3×[-1/3+2/3×(-1/3)×2/3-2/9×(2/3)²]
=2/3×[-1/3-4/27-8/81]
=2/3×(-47/81)
=-94/243
第二题 [(xy+2)(xy-2)-2x²y²+4]/xy x=10,y=-25
[(xy+2)(xy-2)-2x²y²+4]/xy
=[x²y²-4-2x²y²+4]/xy
=-x²y²/xy
=-xy
=-10×(-25)
=250
第三题:x(x+2y)-(x+1)²+2x x=1/25,y=-25
x(x+2y)-(x+1)²+2x
=x²+2xy-x²-2x-1+2x
=2xy-1
=2×1/25×(-25)-1
=-2-1
=-3