How do you convert $y=4$ to polar form?

Question

23197 views around the world

You can reuse this answer
Creative Commons License

Answer 1 · 2016-04-10T17:05:13

$r= 4 csc theta, theta in Q_1 or Q_2$ only.., ,

$y = r sin theta$

So, the polar form is $r = 4 csc theta$

This is the polar equation of the straight line y = 4, parallel to the x-

axis at a height 4 units.

Only for those who are interested in " $+ooto-oo$ jumps for r":.

Interestingly, as $thetato0_(+-), rto(+-)oo$ .

At $theta=pi/2, r=4$ .

As $thetato pi_ -, rto+oo$ , and $thetato pi_ +, rto-oo$ .

Can you Imagine r jumping from $+ooto-oo$ ?

For retracing y = 4?..

No problem. #r = sqrt( x^2 + y^2 ) >= 0.

For $theta in ( pi, 2pi ), r < 0$ .

$csc theta$ is discontinuous at $theta=0, pi, 2pi, ..$ .

Yet, the endless line is created iteratively ( $larr$ ),

for $theta in .( 2 k pi, ( 2 k + 1 ) pi)$ ,

$k = 0, 1, 2, 3, ...$

This complication is avoided, by using the Cartesian form, y = 4.

graph{y - 4 +0x=0}

How do you convert y=4y=4 to polar form?