How do you normalize <3,-6,4>?

1 Answer
Morgan
Mar 4, 2017

u=<3/sqrt(61),-6/sqrt(61),4/sqrt(61)>

Explanation:

In normalizing the vector we are finding a unit vector (magnitude/length of one) in the same direction as the given vector. This can be accomplished by dividing the given vector by its magnitude.

u=v/(|v|)

Given v=<3,-6,4>, we can calculate the magnitude of the vector:

|v|=sqrt((v_x)^2+(v_y)^2+(v_z)^2)

|v|=sqrt((3)^2+(-6)^2+(4)^2)

|v|=sqrt(9+36+16)

|v|=sqrt(61)

We now have:

u=(<3,-6,4>)/sqrt(61)

=>u=<3/sqrt(61),-6/sqrt(61),4/sqrt(61)>

Hope that helps!

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