A rectangle ABCD has its side AB parallel to line y=x and vertices A,B and D lie on y=1,x=2 and x=−2 respectively. Locus of vertex ′C′ is
A
x=5
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B
y=5
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C
x−y=5
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D
x+y=5
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Solution
The correct option is By=5 Let the equation of side AB be y=x+a.
Then, A≡(1−a,1), B≡(2,2+a). The equation of side AD is y−1=−{x−(1−a)}.
Hence, D≡(−2,4−a).
Let C≡(h,k). Then, h+1−a=2−2 or h=a−1
and k+1−a=2+a+4−a or k=5
Thus, the locus of C is y=5.