\(d(A, B)=\sqrt{(3-7)^2+(-4-1)^2}=\sqrt{16+25}=\sqrt{41}\text{.}\)

De lijn \(n\) gaat door \(A\) en staat loodrecht op \(l\text{.}\)
\(\begin{rcases}n{:}\,x-3y=c \\ A(5, -2)\end{rcases}c=1⋅5-3⋅-2=11\)
Dus \(n{:}\,x-3y=11\text{.}\)

\(l\) en \(n\) snijden geeft het punt \(S\text{.}\)
\(\begin{cases}3x+y=3 \\ x-3y=11\end{cases}\) \(\begin{vmatrix}1 \\ 3\end{vmatrix}\) geeft \(\begin{cases}3x+y=3 \\ 3x-9y=33\end{cases}\)
Aftrekken geeft \(10y=-30\) dus \(y=-3\text{.}\)

\(\begin{rcases}3x+y=3 \\ y=-3\end{rcases}\begin{matrix}3x+1⋅-3=3 \\ x=2\end{matrix}\)
Dus \(S(2, -3)\text{.}\)

\(d(A, l)=d(A, S)=\sqrt{(5-2)^2+(-2--3)^2}=\sqrt{10}\text{.}\)

Kwadraatafsplitsen geeft \((x+4)^2+y^2=15\)
Dus \(M(-4, 0)\) en \(r=\sqrt{15}\text{.}\)

\(d(M, A)=\sqrt{(-4--7)^2+(0--3)^2}=\sqrt{18}\text{.}\)

Er geldt \(d(M, A)>r\text{,}\) dus \(d(c, A)=d(M, A)-r=\sqrt{18}-\sqrt{15}\text{.}\)

\(M(-1, -3)\) en \(r=\sqrt{41}\text{.}\)

\(d(M, A)=\sqrt{(4--1)^2+(1--3)^2}=\sqrt{41}\text{.}\)

\(d(M, A)=r\text{,}\) dus \(A\) ligt op \(c\text{.}\)

\(M(5, 3)\) en \(r=\sqrt{6}\text{.}\)

De lijn \(n\) gaat door \(M\) en staat loodrecht op \(l\text{.}\)
\(\begin{rcases}n{:}\,2x-y=c \\ M(5, 3)\end{rcases}c=2⋅5-1⋅3=7\)
Dus \(n{:}\,2x-y=7\text{.}\)

\(l\) en \(n\) snijden geeft het punt \(S\text{.}\)
\(\begin{cases}x+2y=1 \\ 2x-y=7\end{cases}\) \(\begin{vmatrix}2 \\ 1\end{vmatrix}\) geeft \(\begin{cases}2x+4y=2 \\ 2x-y=7\end{cases}\)
Aftrekken geeft \(5y=-5\) dus \(y=-1\text{.}\)

\(\begin{rcases}x+2y=1 \\ y=-1\end{rcases}\begin{matrix}x+2⋅-1=1 \\ x=3\end{matrix}\)
Dus \(S(3, -1)\text{.}\)

\(d(M, l)=d(M, S)=\sqrt{(5-3)^2+(3--1)^2}=\sqrt{20}\text{.}\)

\(d(c, l)=d(M, l)-r=\sqrt{20}-\sqrt{6}\text{.}\)