Find the equation of the circle if the chord of the circle joining (1,2) and `(-3,1)`subtents `90^0`at the center of the circle.

Find the equation of the circle if the chord of the circle joining (1,

1.	Find the equation of the circle if the chord of the circle joining (1,2) and `(-3,1)`subtents `90^0`at the center of the circle.
Answer» The chord joining points A(1,2) and B(-3,1) subtends `90^(@)` at the center of the circle. Then AB subtend an angle `45^(@)` at point C on the circumference. Therefore, the equation of the circle is `(x-1)(x+3)+(y-2)(y-1)` `= +-cot 45^(@)[(y-2)(x+3)-(x-1)(y-1)]` or `x^(2)+y^(2)+2x-3y-1= +-[4y-x-7]` or `x^(2)+y^(2)+3x-7y+6=0` and `x^(2)+y^(2)+x+y-8=0`

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Find the equation of the circle if the chord of the circle joining (1,2) and `(-3,1)`subtents `90^0`at the center of the circle.

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