问题标题:
利用整式和因式分解的知识说明(x²-4)(x²-10x+21)+100的值一定是非负数
问题描述:
利用整式和因式分解的知识说明(x²-4)(x²-10x+21)+100的值一定是非负数
丁亚回答:
(x^2-4)(x^2-10x+21)+100
=(x^2-4)*[(x-5)^2-4]+100
=x^2*(x-5)^2-4*(x-5)^2-4*(x^2-4)+16+100化简得
=x^2*(x-5)^2-8*x*(x-5)+16这步是关键
=[x*(x-5)-4]^2>=0
(x²-4)(x²-10x+21)+100的值一定是非负数
别牧回答:
=x^2*(x-5)^2-8*x*(x-5)+16这步怎么算的
丁亚回答:
(x^2-4)(x^2-10x+21)+100=(x^2-4)*[(x-5)^2-4]+100=x^2*(x-5)^2-4*(x-5)^2-4*(x^2-4)+100=x^2*(x-5)^2-4x^2+40x-100-4x^2+16+100=x^2*(x-5)^2-8x^2+40x+16=x^2*(x-5)^2-8*x*(x-5)+16=[x*(x-5)-4]^2>=0
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