x³-3x²+4用拆项法分解因式
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解答:
拆法一:
原式=x³+x²-4x²+4
=x²﹙x+1﹚-4﹙x+1﹚﹙x-1﹚
=﹙x+1﹚﹙x²-4x+4﹚
=﹙x+1﹚﹙x-2﹚²
拆法二:
原式=x³+1-3x²+3
=﹙x+1﹚﹙x²-x+1﹚-3﹙x+1﹚﹙x-1﹚
=﹙x+1﹚﹙x²-x+1-3x+3﹚
=﹙x+1﹚﹙x-2﹚²
拆法三:
原式=4x³-3x³-3x²+4
=4﹙x³+1﹚-3x²﹙x+1﹚
=4﹙x+1﹚﹙x²-x+1﹚-3x²﹙x+1﹚
=﹙x+1﹚[4﹙x²-x+1﹚-3x²]
=﹙x+1﹚﹙x-2﹚²
拆法一:
原式=x³+x²-4x²+4
=x²﹙x+1﹚-4﹙x+1﹚﹙x-1﹚
=﹙x+1﹚﹙x²-4x+4﹚
=﹙x+1﹚﹙x-2﹚²
拆法二:
原式=x³+1-3x²+3
=﹙x+1﹚﹙x²-x+1﹚-3﹙x+1﹚﹙x-1﹚
=﹙x+1﹚﹙x²-x+1-3x+3﹚
=﹙x+1﹚﹙x-2﹚²
拆法三:
原式=4x³-3x³-3x²+4
=4﹙x³+1﹚-3x²﹙x+1﹚
=4﹙x+1﹚﹙x²-x+1﹚-3x²﹙x+1﹚
=﹙x+1﹚[4﹙x²-x+1﹚-3x²]
=﹙x+1﹚﹙x-2﹚²
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x³-3x²+4
=x³+x²-4x²+4
=x²(x+1)-4(x²-1)
=x²(x+1)-4(x+1)(x-1)
=(x²-4x+4)(x+1)
=(x-2)²(x+1)
=x³+x²-4x²+4
=x²(x+1)-4(x²-1)
=x²(x+1)-4(x+1)(x-1)
=(x²-4x+4)(x+1)
=(x-2)²(x+1)
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x³-3x²+4=x³+1-3(x²-1)
=(x+1)(x²-x+1)-3(x+1)(x-1)
=(x+1)(x²-x+1-3(x-1))
=(x+1)(x²-x+1-3x+3)
=(x+1)(x²-4x+4)
=(x+1)(x-2)²
=(x+1)(x²-x+1)-3(x+1)(x-1)
=(x+1)(x²-x+1-3(x-1))
=(x+1)(x²-x+1-3x+3)
=(x+1)(x²-4x+4)
=(x+1)(x-2)²
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x³-3x²+4=x³-2x²-x²+4=x²(x-2)-(x²-2²)=x²(x-2)-(x-2)(x+2)=(x-2)(x²-x-2)
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