Dgdrxrt

Consider a $triangle ABC.$ Draw circle $S$ such that it touches side $AB$ at $A$. This circle
passes through point $C$ and intersects segment $BC$ at $E.$

If Altitude $AD =frac21(sqrt3−1)sqrt2;$
and $;angle EAB = 15^circ,$ find AC.

Here is a sketch that I made:

Here , we can calculate AC by Pythagorean theorem if we find DC . This is where I'm stuck . How can I utilize the information that angle EAB is 15 deg ?

(This is not class-homework , I'm solving sample questions for a competitive exam )

As user2345215 pointed out in a comment, a key point to this question is the fact that the circle touches $AB$ in $A$. So it isn't a mere intersection but instead a tangentiality. Even with this stronger constraint, the configuration isn't fully determined. If you fix $A$ and $D$, you can still move $B$ on the line $BD$. But $C$ isn't affected by changes to $B$'s position.

So given $A, D, B$ with a right angle at $D$, how can you construct the rest? You can use $measuredangle EAB=15°$ to construct the line $AE$, and intersecting that with $BD$ you get $E$. Then you can construct the perpendicular bisector of $AE$ since any circle which passes through $A$ and $E$ has to have its center on that bisector. You can also construct a line through $A$ and orthogonal to $AB$. If the circle touches $AB$ in $A$, its center has to lie on that line. Intersecting these two lines gives you $F$, the center of the circle.

Now take a closer look. $GF$ is perpendicular to $AE$, and $AF$ is perpendicular to $AB$. Since $AB$ and $AE$ form an angle of $15°$, so do $AF$ and $GF$. So we have $measuredangle AFG=15°$ and $measuredangle AFE=30°$ Due to the inscribed angle theorem this tells you that $measuredangle ACD=15°$ no matter where you place $B$. So you know that $AD=ACcdotsin15°$ which gives you

$$AC=fracADsin 15°=42$$

Below is a scanned image of my solution worked out on paper.