A point equidistant from the line `4x + 3y + 10 = 0, 5x-12y + 26 = 0` and `7x + 24y-50 = 0 `is

A point equidistant from the line 4x+3y+2=0,\ 5x-12 y+26=0\ a n d\ 7x+24 y-50=0 is (1,-1) b. (1,1) c. (0,0) d. (0,1)

Show that the origin is equidistant from the lines 4x+3y+10=0;5x-12y+26=0 and 7x+24y=50

Find the coordinates the those point on the line 3x+ 2y = 5 which are equisdistant from the lines 4x+ 3y - 7 = 0 and 2y - 5 = 0

Locus of a point that is equidistant from the lines x+y-2=0a n dx+y-1=0 is x+y-5=0 x+y-3=0 2x+2y-3=0 2x+2y-5=0

The equation of a line passing through the point if intersection of the lines 4x-3y -1 =0 and 5x -2y -3 =0 and parallel to the line 2y -3x + 2 = 0 is

The incentre of the triangle formed by the lines 3x + 4y =10,5x+12y = 26, 7x+24y-50 is (alpha,beta) then alpha+beta= (i)0 (ii)1 (iii)2 (iv)4