Ellipse on complex plane

Question

I have found that the curve $z(x)$ on the complex plane with
$$
z=frac{ax+b}{x^2+1}
$$
at real $x$ spanning from $-infty$ to $+infty$ looks very similar to an ellipse at any complex parameters $a,b$ (see the example on the picture).
Is there any easy proof that this is indeed the ellipse?

Vertum · Answer

Do the variable substitution $x=tan cfrac{t}{2},,text{where }tin[-pi,pi]$.
This equation has a unique solution respect $t$.
Further simplify and get
$z=cfrac{b}{2}+cfrac{b}{2}cos t +cfrac{a}{2}sin t $
The latter is obviously the equation of an ellipse.

Anindya Prithvi · Answer

$z=frac{ax+b}{x^2+1}$
where x is just a parameter, so substitute it as t
let a and b be $a_1+ia_2$  and $b_1+ib_2$,
Clearly, Re(z)= $frac{a_1t+b_1}{t^2+1}$ and Im(z)= $frac{a_2t+b_2}{t^2+1}$
Re(z) is plotted on x axis and Im(z) is plotted on y, so simply remove t from both equations simultaneously and make it in cartesian form. Following that, check the eccentricity (there's a general formula as well) and it indeed comes out less than or equal to 1.
https://www.desmos.com/calculator/xjyxtjfyio
Another reason for it being elliptical is that, the function z is bounded in real domain i.e. $(ax+b)/(x^2+1)$ never goes above a finite value.

Ellipse on complex plane

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