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解:
原所求代数式为:
[(x-2)³-(x-1)²+1]/(x-2)
=(x-2)²-[(x-1)²-1]/(x-2)
=(x-2)²-[(x-1+1)(x-1-1)]/(x-2)
=(x-2)²-x
=x²-4x+4-x
=x²-5x+4
由x²-5x-2=0可得:
x²-5x=2
因此:
[(x-2)³-(x-1)²+1]/(x-2)
=(x-2)²-[(x-1)²-1]/(x-2)
=(x-2)²-[(x-1+1)(x-1-1)]/(x-2)
=(x-2)²-x
=x²-4x+4-x
=x²-5x+4
=6
原所求代数式为:
[(x-2)³-(x-1)²+1]/(x-2)
=(x-2)²-[(x-1)²-1]/(x-2)
=(x-2)²-[(x-1+1)(x-1-1)]/(x-2)
=(x-2)²-x
=x²-4x+4-x
=x²-5x+4
由x²-5x-2=0可得:
x²-5x=2
因此:
[(x-2)³-(x-1)²+1]/(x-2)
=(x-2)²-[(x-1)²-1]/(x-2)
=(x-2)²-[(x-1+1)(x-1-1)]/(x-2)
=(x-2)²-x
=x²-4x+4-x
=x²-5x+4
=6
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