JEE Advanced 2016 (3)

Geometry Level 4

The centroid of the triangle formed by the feet of co-normal points on the curve 25 x 2 + 25 y 2 250 x 300 y + 1525 = ( 3 x + 4 y 12 ) 2 25x^{2}+25y^{2}-250x-300y+1525=(3x+4y-12)^{2} lies on the line

Try my set JEE ADVANCED 2016

4 x 3 y + 3 = 0 4x-3y+3=0 None of these 4 x 3 y 2 = 0 4x-3y-2=0 4 x 3 y + 1 = 0 4x-3y+1=0

Shivam Jadhav by Shivam Jadhav , 22, India

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