Question

Point A is at `(5 ,2 )` and point B is at `(-6 ,-4 )`. Point A is rotated `(3pi)/2` clockwise about the origin. What are the new coordinates of point A and by how much has the distance between points A and B changed?

Answer 1

Distance between A and B changed by `4.47` unit .

Explanation:

`A(5,2) and B (-6,-4)` . Clockwise rotation of point A is

`theta=(3pi)/2 :.` Counterclockwise rotation of point A is

`theta=(2pi)-(3pi)/2=pi/2`. New coordinates of `A(x',y')` can be

found by the fomula. `x'= xcos theta +ysin theta` and

`y'= y cos theta - x sin theta:.x'= 5*cos 90+ 2*sin90`

`:. x'= 5 *0 +2*1=2 ; y'= 2 * cos 90 - 5 * sin 90` or

`y'= 2 * 0- 5 * 1= -5` Therefore,new coordinates of A are

`(x',y') = (2,-5)` Distance between two points

`(x_1,y_1) and (x_2,y_2)` is `D= sqrt((x_1-x_2)^2+(y_1-y_2)^2)`.

Orginal distance between points `A(5,2) and B (-6,-4)` is

`D_o= sqrt((5+6)^2+(2+4)^2)=sqrt 157~~ 12.53` unit.

New distance between points `A(2,-5) and B (-6,-4)` is

`D_n= sqrt((2+6)^2+(-5+4)^2)=sqrt 65~~ 8.06` unit.

Distance between A and B changed by `12.53-8.06~~4.47` unit .

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