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Let us consider the equations
$$
{p_0}^2 + {q_0}^2 =1 qquadtext{and}qquad {-a} p_0sin s + b q_0cos s = 0
$$
How do i solve for $p_0, q_0$?

Let $s=0$ so that we have $bq_0=0$, and by letting $s=pi/2$ we get $-ap_0=0$. Then either $b=0$ or $q_0=0$. If the latter, then $p_0in{-1,1}$ by the first equation. Similarly, if $p_0=0$ then $q_0in{-1,1}$. So the solutions $(p_0,q_0)$ must be among $(-1,0)$, $(1,0)$ if $a=0$ and $(0,-1)$, $(0,1)$ if $b=0$. It is routine to verify that these are indeed solutions in the given cases.

The first equation is the unit circle and the second is a line passing through the origin. You can solve the two equations to find the points of intersections.

You can parametrize the unit circle $ x^2 + y^2 = 1 $ as $(x, y) = (cos theta, sin theta) $ for $theta in [0, 2 pi)$.

Substituting in the second equation, you have $ tan theta = frac{a}{b} tan s$, or $theta = arctan(frac{a}{b} tan s)$ or $pi +arctan(frac{a}{b} tan s)$.

Let us rewrite the system in the simple form

$$begin{cases}p^2+q^2=1,\up=vq.end{cases}$$

Then

$$v^2p^2+v^2q^2=v^2$$ is

$$(u^2+v^2)p^2=v^2.$$

The rest is yours.