If one end of the diameter is (1, 1) and other end lies on the line x + y = 3, then locus of centre of circle is
A
x + y = 1
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B
2(x - y) = 5
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C
2x + 2y = 5
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D
None of these
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Solution
The correct option is C 2x + 2y = 5 The other end is (t, 3 - t)
So the equation of the variable circle is
(x - 1)(x - t) + (y - 1)(y - 3 + t) = 0
or x2+y2−(1+t)x−(4−t)y+3=0 ∴ The centre (α,β) is given by α=1+t2,β=4−t2 ⇒2α+2β=5
Hence, the locus is 2x + 2y = 5.