The equation of the conic with focus at (1,−1), a directrix along x−y+1=0 and with eccentricity √2
A
x2−y2=1
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B
xy=1
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C
2xy−4x+4y+1=0
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D
2xy+4x−4y−1=0
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Solution
The correct option is C2xy−4x+4y+1=0 Using Definition of hyperbola PS2=e2⋅PM2 (x−1)2+(y+1)2=2(x−y+1√2)2 (x2+y2−2x+2y+2)=(x2+y2+1−2xy+2x−2y) ⇒2xy−4x+4y+1=0 Hence, option 'C' is correct.