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Find the distance of the point (–1, 1) from the line 12(x + 6) = 5(y – 2).

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Find the distance of the point (–1, 1) from the line 12(x + 6) = 5(y – 2).
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The given equation of the line is 12(x + 6) = 5(y – 2).
⇒ 12x + 72 = 5y – 10
⇒12x – 5y + 82 = 0 … (1)
On comparing equation (1) with general equation of line Ax + By + C = 0, we obtain A = 12, B = –5, and C = 82.
It is known that the perpendicular distance (d) of a line Ax + By + C = 0 from a point

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