The following figure was draw by taking midpoints on three sides of a regular nonagon. The angles are 20 degrees, 50 degrees, and 50 degrees.
It's not hard to find the angles by using trigonometry. But, I wonder if it's possible to find the angles without trigonometry.
If you succeed in finding at least one angle without trigonometry, please let me know the way.
On
I found an elementary solution.
Originally, two lines FJ and IC are drawn and degrees of the angle KLC is asked.
Note auxiliary lines DN and GA. Since the triangle FIC is equilateral, FP:PL = 2:1. So, the length of OL is a half of FD. So is MK. That is, OL = MK. Then, the straight line through E and P is parallel to KL and it passes the midpoint of IA. Hence the angle KLC is 50 degrees.
Hint that doesn't need many words.