Let $ABCD$ be a cyclic quadrilateral such that $AB = AD + BC$ and $CD < AB$. The diagonals $AC$ and $BD$ intersect at $P$, while the lines $AD$ and $BC$ intersect at $Q$. The angle bisector of $\angle APB$ meets $AB$ at $T$. Show that the circumcenter of the triangle $CTD$ lies on the circumcircle of the triangle $CQD$. Proposed by Nikola Velov
Problem
Source: 4th Memorial Mathematical Competition "Aleksandar Blazhevski - Cane"- Junior D2 P5/ Senior D2 P4
Tags: geometry, cyclic quadrilateral, segment sum, angle bisector, Circumcenter, circumcircle