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Question

Find the distance of the point (4, 5) from the straight line 3x − 5y + 7 = 0.

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Solution

Comparing ax + by + c = 0 and 3x − 5y + 7 = 0, we get:

a = 3, b = − 5 and c = 7

So, the distance of the point (4, 5) from the straight line 3x − 5y + 7 = 0 is

d=ax1+by1+ca2+b2d=3×4-5×5+732+-52=634

Hence, the required distance is 634.

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