The vector equation of the line `(x-2)/(2)=(2y-5)/(-3),z=-1` is `r=(2hati+(5)/(2)hatj-hatk)+lambda(2hati-3/2hatj+xhatk)` where x is equal to

The vector equation of the line `(x-2)/(2)=(2y-5)/(-3),z=-1` is `r=(2h

1.	The vector equation of the line `(x-2)/(2)=(2y-5)/(-3),z=-1` is `r=(2hati+(5)/(2)hatj-hatk)+lambda(2hati-3/2hatj+xhatk)` where x is equal to
Answer» Correct Answer - A The given equation of line is `(x-2)/(2)=(2y-5)/(-3),z=-1` `Rightarrow (x-2)/(2)=(y-(5)/(2))/(-(3)/(2))=(z+1)/(0)` So its vector is `vecr=(2hati+5/2hatj-hatk)+lambda(2hati-3/2hatij+0hatk)` Hence, x=0

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The vector equation of the line `(x-2)/(2)=(2y-5)/(-3),z=-1` is `r=(2hati+(5)/(2)hatj-hatk)+lambda(2hati-3/2hatj+xhatk)` where x is equal to

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