用因式分解法解方程 (1) (x-1)²-2(x-1)=0
(2)(x+2)²-9=0(3)9(x-2)²=4(x+1)²(4)2(t-1)²+t=1...
(2) (x+2)²-9=0
(3) 9(x-2)²=4(x+1)²
(4) 2(t-1)²+t=1 展开
(3) 9(x-2)²=4(x+1)²
(4) 2(t-1)²+t=1 展开
4个回答
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解:
1.
(x-1)(x-1-2)=0
x=1或3
2.
(x+2+3)(x+2-3)=0
x=-5或1
3.
9(x-2)²-4(x+1)²=0
[3(x-2)+2(x+1)][3(x-2)-2(x+1)=0
(5x-4)(x-8)=0
x=4/5或8
4.
2(t-1)²+t-1=0
(t-1)[2(t-1)+1]=0
(t-1)(2t-1)=0
t=1或1/2
1.
(x-1)(x-1-2)=0
x=1或3
2.
(x+2+3)(x+2-3)=0
x=-5或1
3.
9(x-2)²-4(x+1)²=0
[3(x-2)+2(x+1)][3(x-2)-2(x+1)=0
(5x-4)(x-8)=0
x=4/5或8
4.
2(t-1)²+t-1=0
(t-1)[2(t-1)+1]=0
(t-1)(2t-1)=0
t=1或1/2
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(x-1)²-2(x-1)=0
(x-1)[(x-1)-2]=0
(x-1)(x-3)=0
x=1 or x=3
(x+2)²-9=0
[(x+2)+3][(x+2)-3]=0
(x+5)(x-1)=0
x=-5 or x=1
(x-1)[(x-1)-2]=0
(x-1)(x-3)=0
x=1 or x=3
(x+2)²-9=0
[(x+2)+3][(x+2)-3]=0
(x+5)(x-1)=0
x=-5 or x=1
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(x-1)²-2(x-1)=0
(x-1)(x-1-2)=0
x=1或x=3
(x+2)²-9=0
(x+2+3)(x+2-3)=0
x=-5或x=1
9(x-2)²=4(x+1)²
9(x-2)²-4(x+1)²=0
[3(x-2)+2(x+1)][3(x-2)-2(x+1)]=0
x=4/5或x=8
2(t-1)²+t=1
2(t-1)²+(t-1)=0
(t-1)[2(t-1)+1]=0
t=1或t=1/2
(x-1)(x-1-2)=0
x=1或x=3
(x+2)²-9=0
(x+2+3)(x+2-3)=0
x=-5或x=1
9(x-2)²=4(x+1)²
9(x-2)²-4(x+1)²=0
[3(x-2)+2(x+1)][3(x-2)-2(x+1)]=0
x=4/5或x=8
2(t-1)²+t=1
2(t-1)²+(t-1)=0
(t-1)[2(t-1)+1]=0
t=1或t=1/2
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(X-1)(X-1-2)=0
(X+2+3)(X+2-3)=0
[3(x-2)+2(x+1)][3(x-2)-2(x+1)=0
(t-1)[2(t-1)+1]=0
(X+2+3)(X+2-3)=0
[3(x-2)+2(x+1)][3(x-2)-2(x+1)=0
(t-1)[2(t-1)+1]=0
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