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

(4,3,5)

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(4,9,-3)

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(4,9,3)

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(4,3,-3)

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(4,9,5)

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Solution

The correct option is B (4,9,-3)
Equation of sphere is, $x^{2} + y^{2} + z^{2} - 6 x - 12 y - 2 z + 20 = 0$
Centre of sphere = (3,6,1) and one end of circle = (2,3,5)
Let other end be (x,y,z)
$∴ \frac{2 + x}{2} = 3, \frac{3 + y}{2} = 6, \frac{5 + z}{2} = 1$
$\Rightarrow$ x=6-2, y=12-3, z=2-5
$\Rightarrow$ x=4, y=9, z=-3
Hence, other end is (4,9,-3)

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