(-3, 2) is one end point of the diameter of circle `x^(2) + y^(2) - 8x - 4y + 5 = 0`, then the coorinates of the other end point is ………..

If one end a diameter of the circle x^(2) + y^(2) - 4x - 6y + 11 = 0 is (3,4), then find the cordinate of the other end of the diameter.

If (2, 3, 5) is one end of a diameter of the sphere x^(2)+y^(2)+z^(2)-6x-12y-2z+20=0 , then the coordinates of the other end of the diameter are

The point (1,2) lies inside the circle x^(2) + y^(2) - 2x + 6y + 1 = 0 .

The line x + 3y = 0 is a diameter of the circle x^(2) + y^(2) + 6x + 2y = 0 .

Find equation of the circle which touches circle x^(2) + y^(2) - 2x - 4y - 20 = 0 of point (5,5) externally and radius is 5 unit.

Find the centre and the radius of the circle x^(2)+y^(2)+8x+10y-8=0 .

The shortest distance from the point (2,-7) to the circle x^(2) + y^(2) - 14x - 10y - 151 = 0 is equal to 5.

Find equation of circle whose end points of diameter are centres of the circle x^(2) + y^(2) + 6x - 14y - 1 =0 and x^(2) + y^(2) - 4x + 10y - 2 = 0 .