已知x^2+y^2+8x+6y+25=0 求x^2-4y^2除以(x^2+4xy+4y^2)—x除以x+2y的值 5
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(X²+8X)+(Y²+6X)+25=0
(X+4)²+(Y+3)²+25-16-9=0
(X+4)²+(Y+3²)=0
即X+4=0, X=-4;Y+3=0,Y=-3
(X²-4Y²)/(X²+4XY+4Y²)-X/(X+2Y)
=(X+2Y)/(X+2Y)²-X(X+2Y)/(X+2Y)²
=(X+2Y+X²-2XY)/(X+2Y)²
=(-4-6+16-24)/(-4-6)²
=-18/4
=4.5
(X+4)²+(Y+3)²+25-16-9=0
(X+4)²+(Y+3²)=0
即X+4=0, X=-4;Y+3=0,Y=-3
(X²-4Y²)/(X²+4XY+4Y²)-X/(X+2Y)
=(X+2Y)/(X+2Y)²-X(X+2Y)/(X+2Y)²
=(X+2Y+X²-2XY)/(X+2Y)²
=(-4-6+16-24)/(-4-6)²
=-18/4
=4.5
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