How do you graph #r = 4 cos 3 theta#?

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Answer 1 · 2018-07-16T06:53:01

See graph and explanation.

Using

# ( x, y ) = r ( cos theta, sin theta ), r = sqrt ( x^2 + y^2 )# and

#cos ntheta#

#= sum (-1)^r nC_(2r) cos^(n-2r)thetasin^(2r) theta#,

r from 0 to #[n/2]# (integer part of n/2).

the equation in Cartesian form for #r = a cos ntheta# can be obtained.

Here, n = 3 and the Cartesian equation is

#( x^2 +y^2 )^2 = 4 (x^3 - 3 x y^2),

The Socratic graph is immediate.

graph{( x^2 +y^2 )^2 - 4 (x^3 - 3 xy^2)=0[-8 8 -4 4]}