分解因式2x2-xy-6y2+7x+7y+3=______.?
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解题思路:因2x 2-xy-6y 2=(x-2y)(2x+3y),故可设2x 2-xy-6y 2+7x+7y+3=(x-2y+a)(2x+3y+b),根据十字相乘法的逆运算解答.
∵2x2-xy-6y2=(x-2y)(2x+3y),
∴可设2x2-xy-6y2+7x+7y+3=(x-2y+a)(2x+3y+b)
a、b为待定系数,
∴2a+b=7,3a-2b=7,ab=3,
解得a=3,b=1,
∴原式=(x-2y+3)(2x+3y+1).
故答案为:(x-2y+3)(2x+3y+1).
,5,2x^2-xy-6y^2+7x+7y+3
=2x^2+(7x-xy)-(6y^2-7y-3)
=2x^2+(7-y)x-(3y+1)(2y-3)
=(2x+3y+1)(x-2y+3),0,
∵2x2-xy-6y2=(x-2y)(2x+3y),
∴可设2x2-xy-6y2+7x+7y+3=(x-2y+a)(2x+3y+b)
a、b为待定系数,
∴2a+b=7,3a-2b=7,ab=3,
解得a=3,b=1,
∴原式=(x-2y+3)(2x+3y+1).
故答案为:(x-2y+3)(2x+3y+1).
,5,2x^2-xy-6y^2+7x+7y+3
=2x^2+(7x-xy)-(6y^2-7y-3)
=2x^2+(7-y)x-(3y+1)(2y-3)
=(2x+3y+1)(x-2y+3),0,
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