BDMO 2016 National Secondary Problem 8.

Question

$\triangle{ABC}$ is inscribed in circle $\omega$ with $AB = 5, BC = 7\; \text{and}\; AC = 3$ the bisector or $\angle A$ meets $BC$ at $D$ and circle $\omega$ at another point $E$. Let $\gamma$ be the circle with diameter $DE$. Circle $\omega$ and $\gamma$ meet at point $E$ and another point $F$. Given $AF^2 = \frac{m}{n}$. Where $m,n$ are co-prime positive integers. Find $m+n$.

I dont even able to draw the picture. Here is my work -

I can't understand how the 2 circles will meet at a second point. Even if I understand that I am not able to solve this problem. Any hint will be helpful. This problem was worth of 30 points.
Source: BDMO 2016 National Secondary Problem 8

Answer 1

We may notice that $E$ is the midpoint of the $BC$-arc in $\omega$.
Additionally, $\gamma$ goes through $M$, the midpoint of $BC$. If you prove that the second intersection between $AF$ and $\gamma$, depicted above as $G$, is just the symmetric of $M$ with respect to $AE$ (hint: $MGFE$ is a cyclic quadrilateral, hence $AF$ and $ME$ are antiparallel), you may exploit the fact that $$ AG\cdot AF = AD\cdot AE$$ together with the fact that both $AD\cdot AE$ and $AG$ are simple to compute from the side lengths of $ABC$, since $AD\cdot DE=BD\cdot DC$ and $AG=AM$. If I did not mess up with the involved computations, Stewart's theorem (for computing the squared length of medians and bisectors) leads to $AF^2=\color{red}{\frac{900}{19}}$.

Interesting facts:

1. $AF$ and the tangents to $\omega$ at $B$ and $C$ concur, since $AF$ is a symmedian in $ABC$;

2. If $N$ is the antipode of $E$ in $\omega$, $D\in FN$. Additionally, $NA$ and $EF$ intersect at $T\in BC$
   and $MAF$ is the orthic triangle of $TNE$.