题目内容

计算及解方程:
(
1
4
x3y2)2•(4x2y)3-3(-x2y)5x2y2
②(x+y)2+(x-y)2-(x+y)(x-y);
x3-2x[
1
2
x2-3(
1
3
x-1)]=2(x-3)2
④(2x-3)2-(-2x+3)2
①原式=
1
16
x6y4•64x6y3+3x12y7=4x12y7+3x12y7=7x12y7
②原式=x2+2xy+y2+x2-2xy+y2-x2+y2=x2+3y2
③x3-2x(
1
2
x2-x+3)=2(x-3)2
2x(x-3)-2(x-3)2=0,
即(x-3)[2x-2(x-3)]=0,
解得:x=3;
④(2x-3)2-(-2x+3)2=[(2x-3)+(-2x+3)][(2x-3)-(-2x+3)]=0.
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计算及解方程:
(
1
4
x3y2)2•(4x2y)3-3(-x2y)5x2y2
②(x+y)2+(x-y)2-(x+y)(x-y);
x3-2x[
1
2
x2-3(
1
3
x-1)]=2(x-3)2
④(2x-3)2-(-2x+3)2
计算及解方程:
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12
÷
3
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8

(2)
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