The common chord of the circle x^2+y^2+6...

The common chord of the circle `x^2+y^2+6x+8y-7=0` and a circle passing through the origin and touching the line `y=x` always passes through the point. (a) `(-1/2,1/2)` (b) (1, 1) (c) `(1/2,1/2)` (d) none of these

A

`(-1//2,1//2)`

B

`(1,1)`

C

`(1//2,1//2)`

D

none of these

Text Solution

Verified by Experts

The correct Answer is:

3

Let the second circle be `x^(2)+y^(2)+2gx+2fy=0`.
But` y=x` touches the circle.
Hence, `x^(2)+x^(2)+2gx+2fx=0` hase qual roots, i.e., `f+g=0`.
Therefore, the equation of the common chord is `2(g-3)x+ 2(-g-4)y +7 =0`
or `(-6x-8y+7) +g(2x-2y) =0`
which passes through the point of intersection of
`-6x-8y+7=0` and `2x-2y=0, i.e., (1//2,1//2)`

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