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Question

The distance between the lines x+84=4y+248=z26 and x+62=y+101=z63 is

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Solution

We can see that dr's are proportional, so the lines are parallel.
Any point on the line ,
x+84=4y+248=z26 is of the form
(4λ8,2λ6,6λ+2)
Draw a perpendicular line from (6,10,6) to the line x+84=4y+248=z26
Then 4(4λ8+6)+8(2λ6+10)+6(6λ+26)=0
λ=0
foot of the perpendicular from
(6,10,6) is (8,6,2)
So the distance is,
=22+42+42=6

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