用十字相乘法解:(x2+3x-3)(x2+3x+4)-8?
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设x2+3x=t
(x2+3x-3)(x2+3x+4)-8
=(t-3)(t+4)-8
=t^2+t-12-8
=t^2+t-20
=(t+5)(t-4)
=(x2+3x+5)(x2+3x-4)
=(x2+3x+5)(x+4)(x-1),5,搞错了 是这道题 2x2+xy-y2-4x+5y-6,(x2+3x-3)(x2+3x+4)-8
=(x2+3x)²-7﹙x2+3x﹚-8
=(x2+3x+8)×(x2+3x+1)
That"s all,thank you.,1,
(x2+3x-3)(x2+3x+4)-8
=(t-3)(t+4)-8
=t^2+t-12-8
=t^2+t-20
=(t+5)(t-4)
=(x2+3x+5)(x2+3x-4)
=(x2+3x+5)(x+4)(x-1),5,搞错了 是这道题 2x2+xy-y2-4x+5y-6,(x2+3x-3)(x2+3x+4)-8
=(x2+3x)²-7﹙x2+3x﹚-8
=(x2+3x+8)×(x2+3x+1)
That"s all,thank you.,1,
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