已知x+y=-4.xy=12,求x+1分之y+1加上y+1分之x+1的值
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(y+1)/(x+1) + (x+1)/(y+1)
=(y+1)^2+(x+1)^2 /(x+1)(y+1)
=(x^2+y^2+2x+2y+2)/(xy+x+y+1)
已知x+y=4.xy=-12把?不然原式无解!
一式平方得x^2+y^2+2xy=16
减2倍的2式得x^2+y^2=40
原式=-14
=(y+1)^2+(x+1)^2 /(x+1)(y+1)
=(x^2+y^2+2x+2y+2)/(xy+x+y+1)
已知x+y=4.xy=-12把?不然原式无解!
一式平方得x^2+y^2+2xy=16
减2倍的2式得x^2+y^2=40
原式=-14
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=(y+1)/(x+1)+(x+1)/(y+1)
=[(y+1)²+(x+1)²]/(x+1)(y+1)
=(y²+2y+1+x²+2x+1)/(xy+x+y+1)
=[(x+y)²-2xy+2(x+y)+2]/(xy+x+y+1)
把x+y=-4.xy=12代人上式得:
[(-4)²-2×12+2(-4)+2]/(12-4+1)
=-14/9
=[(y+1)²+(x+1)²]/(x+1)(y+1)
=(y²+2y+1+x²+2x+1)/(xy+x+y+1)
=[(x+y)²-2xy+2(x+y)+2]/(xy+x+y+1)
把x+y=-4.xy=12代人上式得:
[(-4)²-2×12+2(-4)+2]/(12-4+1)
=-14/9
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(y+1)/(x+1)+(x+1)/(y+1)
=[(y+1)²+(x+1)²]/[(x+1)(y+1)]
=(y²+2y+1+x²+2x+1)/(xy+x+y+1)
=[(x+y)²-2xy+2(x+y)+2]/(xy+x+y+1)
=[(-4)²-2*12+2*(-4)+2]/(12-4+1)
=-14/9
=[(y+1)²+(x+1)²]/[(x+1)(y+1)]
=(y²+2y+1+x²+2x+1)/(xy+x+y+1)
=[(x+y)²-2xy+2(x+y)+2]/(xy+x+y+1)
=[(-4)²-2*12+2*(-4)+2]/(12-4+1)
=-14/9
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解:原式=(x+1)^+(y+1)^/(x+1)(y+1)
=x^+1+2x+y^+1+2y/xy+x+y+1
=x^+y^+3(x+y)+xy+3
因为x+y=-4
xy=12
所以x^+y^=(x+y)^-2xy
=-8
所以原式=-8+3×(-4)+12+3
=-5
注:^为“平方”
=x^+1+2x+y^+1+2y/xy+x+y+1
=x^+y^+3(x+y)+xy+3
因为x+y=-4
xy=12
所以x^+y^=(x+y)^-2xy
=-8
所以原式=-8+3×(-4)+12+3
=-5
注:^为“平方”
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解:
[(y+1)/(x+1)]+[(x+1)/(y+1)]
=[(y+1)²+(x+1)²]/(x+1)(y+1)
=[x²+y²+2(x+y)+2]/(xy+x+y+1)
=[(x+y)²-2xy+8+2]/(xy+x+y+1)
=(16-24+10)/(12-4+1)
=2/9
[(y+1)/(x+1)]+[(x+1)/(y+1)]
=[(y+1)²+(x+1)²]/(x+1)(y+1)
=[x²+y²+2(x+y)+2]/(xy+x+y+1)
=[(x+y)²-2xy+8+2]/(xy+x+y+1)
=(16-24+10)/(12-4+1)
=2/9
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