I'm trying to calculate the control point of a quad curve (I know the start and end points) so that it passes through a given point. Here is an image to help you see what I'm doing:
https://i.stack.imgur.com/eFvyb.png
My goal is to find the x position of the green control point. I know the y because it is always on the blue horizontal line.
So basically I know the start and end points of the curve and I know one on-curve point (red circle). I also know what the y of green control point is. I just need to know the x of the green control point so that the red circle is on the curve.
Any help would be greatly appreciated :)
Given a quadratic Bezier curve
$$ b_2(p_0,p_1,p_2,t) = (1-t)((1-t)p_0+t p_1)+t((1-t)p_1+t p_2),\ \ 0\le t\le 1 $$
we have the control point as $p_1$ now the question is. Where locate $p_1$ such that the spline passes by $p_0,q,p_2$?
we have for a suitable set $\{t^*, p_1^*\}$ that
$$ b_2(p_0,p_1^*,p_2,t^*) = q $$
so fixing a $0\le t^* \le 1$ and giving a desired $q$ we can determine the control point $p_1^*(t^*)$ by solving
$$ (1-t^*)((1-t^*)p_0+t^* p_1^*)+t^*((1-t^*)p_1^*+t^* p_2) = q $$
Attached a plot showing the case
$$ q = (0.8,0.6) \ \ \mbox{red}\\ p_0 = (0,2) \ \ \mbox{red}\\ p_1^* = (1.66667,0.416667) \ \ \mbox{green}\\ p_2 = (0,-2) \ \ \mbox{red}\\ t^* = 0.4 $$
NOTE
Be aware that $p_1^* = p_1^*(t^*)$