x²y–[2xy–2(xy–2分之3x²y)+x²y²],其中x=3,y=–1/3解:x²y–[2xy–2(xy–3x²y/2)+x²y²], = x²y–[2xy–2xy+3x²y+x²y²],= x²y–(3x²y+x²y²)= x²y–3x²y-x²y²=- x²y(2+y ) [其中x=3,y=–1/3]=-9×(–1/3)×(2–1/3)=5
