楼主过年好啊!(1)mx-y+1-m=0所以:y=m(x-1)+1当x=1时,m(x-1)=0,y=1所以P(1,1)(2)x^2+(y-1)^2=5圆心是(0,1),半径r=√5根据点到直线的距离公式:L=|-1*1+1-m|/√m^2+1根据勾股定理:L^2+(√17/2)^2=5m^2/(m^2+1)=3/4所以解得:m=√3或-√3(3)M(x,y)
x^2+(y-1)^2=5
x^2+y^2-2y-4=0
mx-y+1-m=0带入圆方程:
(1+m^2)x^2-2m^2x+m^2-5=0
x=m^2/(1+m^2) ①
(1+m^2)y^2-2(m^2-m+1)y+m^2-2m-3=0
y=(m^2-m+1)/(1+m^2) ②
①②联立消掉变量m :
AB中点M的轨迹方程:
(x-1/2)^2+(y-1)^2=1/4