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प्रश्न
Find the distance of the point (2, 5) from the line 3x + y + 4 = 0 measured parallel to a line having slope 3/4.
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उत्तर
\[\text { Here }, \left( x_1 , y_1 \right) = A \left( 2, 5 \right), \tan\theta = \frac{3}{4}\]
\[ \Rightarrow sin\theta = \frac{3}{\sqrt{3^2 + 4^2}} \text { and } cos\theta = \frac{4}{\sqrt{3^2 + 4^2}}\]
\[ \Rightarrow sin\theta = \frac{3}{5} \text { and } cos\theta = \frac{4}{5}\]
So, the equation of the line passing through A (2, 5) and having slope \[\frac{3}{4}\] is
\[\frac{x - x_1}{cos\theta} = \frac{y - y_1}{sin\theta}\]
\[ \Rightarrow \frac{x - 2}{\frac{4}{5}} = \frac{y - 5}{\frac{3}{5}}\]
\[ \Rightarrow 3x - 6 = 4y - 20\]
\[ \Rightarrow 3x - 4y + 14 = 0\]
Let 3x − 4y + 14 = 0 intersect the line 3x + y + 4 = 0 at point P.
Let AP = r
Then, the coordinates of P are given by \[\frac{x - 2}{\frac{4}{5}} = \frac{y - 5}{\frac{3}{5}} = r\]
\[\Rightarrow x = 2 + \frac{4r}{5} \text { and }y = 5 + \frac{3r}{5}\]
\[\therefore 3\left( 2 + \frac{4r}{5} \right) + \left( 5 + \frac{3r}{5} \right) + 4 = 0\]
\[ \Rightarrow 6 + \frac{12r}{5} + 5 + \frac{3r}{5} + 4 = 0\]
\[ \Rightarrow 3r = - 15\]
\[ \Rightarrow r = - 5\]
Hence, the distance of the point (2, 5) from the line 3x + y + 4 = 0 is 5.
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