The locus of the centre of the circle passing through the origin O and the points of intersection A and B of any line through (a, b) and the coordinate axes isA. `(x)/(a)+(y)/(b)=1`B. `(a)/(x)+(b)/(y)=1`C. `(x)/(a)+(y)/(b)=2`D. `(a)/(x)+(b)/(y)=2`

The locus of the centre of the circle passing through the origin O and

1.	The locus of the centre of the circle passing through the origin O and the points of intersection A and B of any line through (a, b) and the coordinate axes isA. `(x)/(a)+(y)/(b)=1`B. `(a)/(x)+(b)/(y)=1`C. `(x)/(a)+(y)/(b)=2`D. `(a)/(x)+(b)/(y)=2`
Answer» Correct Answer - D Let the coordinates of A and B be (p, 0) and (0, q) respectively. Then, equation of AB is `(x)/(p)+(y)/(q)=1` Since it passes through (a, b). `:. (a)/(p)+(b)/(q)=1" " ..(i)` The triangle OAB is a right-angled triangle . So, it is a diameter of the circle a passing through O, A and B. So , coordinates of the centre of the circle are (p/2, q/2). Let (h, k) be the centre of the circle. Then, `h=p//2, k=q//2 rArr p=2h, q=2k` Substituting values of p, q in (i), we get: `(a)/(2h)+(b)/(2k)=1` Hence, the locus of (h, k) is `(a)/(2x)+(b)/(2y)=1` or, `(a)/(x)+(b)/(y)=2`

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The locus of the centre of the circle passing through the origin O and the points of intersection A and B of any line through (a, b) and the coordinate axes isA. `(x)/(a)+(y)/(b)=1`B. `(a)/(x)+(b)/(y)=1`C. `(x)/(a)+(y)/(b)=2`D. `(a)/(x)+(b)/(y)=2`

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