The coordinaters of one end of a diameter of a circle `x^(2)+y^(2)-8x-4y+15=0` is (2,1). Find the coordinates of the other end of the diameter.

One end of a diameter of the circle x^2+y^2-3x+5y-4=0 is (2,1). Find the coordinates of the other end.

If the coordinates of one end of a diameter of the circle x^(2) + y^(2) + 4x-8y + 5=0 is (2,1), the coordinates of ihe other end is

If the coordinates of one end of a diameter of the circle x^2+y^2+4x-8y+5=0 , is (2, 1), the coordinates of the other end is

One end of a diameter of the circle x^(2) + y^(2) = 2 is (1,-1) . Then coordinates of its other end is

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

If one end of a diameter of the circle 3x^(2)+3y^(2)-9x+6y+5=0 is (1, 2), then the other end is

If one end of a diameter of the circle 3x^(2) + 3y^(2) - 9 x + 6y + 5 = 0 is (1 ,2) then the other end is _

If one end of the diameter of the circle 2x^2+2y^2-4x-8y+2=0 is (3,2), then find 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-12 y-2z""+""20""=""0 , then the coordinates of the other end of the diameter are (1) (4,""9,-3) (2) (4,-3,""3) (3) (4,""3,""5) (4) (4,""3,-3)

One of the diameter of the circle x^2+y^2-12x+4y+6=0 is given by