Suppose there is given two point $A=(-4;-2)$ and $B=(3,2)$ we have to find such $C$ point on $OY$ axis, such that
a) $C$ is equidistant from $A$ and $B$
b) $ACB$ spline must be minimum.
As I know for solving part (a), we should write equation of line, which is perpendicular of $AB$ segment and goes through it's midpoint as well, in a) case coordinates of C is $(0,y)$
midpoint of $AB=(-0.5,0)$,so equation would be $y=k(x+0.5)$ where $k$ is equal to $-7/4$,because the slope of segment $AB$ is $4/7$ and we know that for perpendicular lines,$\text{slope}_1*\text{slope}_2=-1$, so we get that $y=-7/4*(x+0.5)$. If $x=0$ then $y=-0.5*7/4=-7/8$, so I have got that for a $C$ coordinates are $(0,-7/8)$. Am i correct for part (a)?
As for (b) I think that I can take symmetry point of $B'$ related to $B$ along so that $B'=(-3,2)$, equation of $AB'$ would be $y+2=4(x+4)$ or $y=4*x+14$ coordinated of $C$ is if we put $x=0$ we get $(0,14)$. Am i right? please help me to check my work