Question

How do you convert `4=(x-3)^2+(y-5)^2` into polar form?

Answer 1

`r^2 - 2r(3 cos theta + 5 sin theta) + 30 = 0`

Explanation:

To convert into polar form, substitute:

`{ (x = r cos theta), (y = r sin theta) :}`

`4 = (r cos theta - 3)^2+(r sin theta - 5)^2`

`=r^2 cos^2 theta - 6r cos theta + 9 + r^2 sin^2 theta - 10r sin theta + 25`

`=r^2 (cos^2 theta + sin^2 theta) - 2r(3cos theta + 5 sin theta)+34`

`=r^2 - 2r(3 cos theta + 5 sin theta) + 34`

Subtract `4` from both ends to get:

`r^2 - 2r(3 cos theta + 5 sin theta) + 30 = 0`