A point equidistant from the line 4x+3y+10=0, 5x−12y+26=0 and 7x+24y – InterviewSolution

1.	A point equidistant from the line 4x+3y+10=0, 5x−12y+26=0 and 7x+24y−50=0 is
Answer» A point equidistant from the line $4 x + 3 y + 10 = 0, 5 x - 12 y + 26 = 0$ and $7 x + 24 y - 50 = 0$ is

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