The point of the line `(x-2)/(1)=(y+3)/(-2)=(z+5)/(-2)` at a distance of 6 from the point (2,-3,-5) isA. (3,-5,-3)B. (4,-7,-9)C. (0,2,-1)D. (-3,5,3)

The point of the line `(x-2)/(1)=(y+3)/(-2)=(z+5)/(-2)` at a distance

1.	The point of the line `(x-2)/(1)=(y+3)/(-2)=(z+5)/(-2)` at a distance of 6 from the point (2,-3,-5) isA. (3,-5,-3)B. (4,-7,-9)C. (0,2,-1)D. (-3,5,3)
Answer» Correct Answer - B Direction of the given line is `(1)/(3)-(2)/(3),-(2)/(3)` Hence , the equation of line passing throught `(2,-3,-5)` and parallel to the given line is `(x-2)/(1//3) = (y+3)/(-2//3) =(z+5)/( - 2//3) = r` `therefore` Points is `(2+(r)/(3), - 3-(2r)/(3), -5-(2r)/(3))` But is given ` " " r = pm 6` `therefore` Points are (4,-7,-9) and (0,-1,-1)

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The point of the line `(x-2)/(1)=(y+3)/(-2)=(z+5)/(-2)` at a distance of 6 from the point (2,-3,-5) isA. (3,-5,-3)B. (4,-7,-9)C. (0,2,-1)D. (-3,5,3)

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