\(\displaystyle Ok, \ I'll \ do \ this \ one \ for \ you.\)
\(\displaystyle Angle DAC \ = \ 15^0, \ half \ of \ bisected \ angle \ A.\)
\(\displaystyle Angle \ DCA \ = \ 15^0, \ alternate \ interior \ angles \ cut \ by \ a \ tranversal \ are \ =, \ DC \ is \ parallel \ to \ AB.\)
\(\displaystyle Hence, \ angle \ D \ = \ 150^0, \ Triangle \ = \ 180^0\)
\(\displaystyle Angle \ ABC \ = \ 30^0, \ Isosceles \ Trapezoid, \ AD \ is \ congruent \ to \ BC, \ given.\)
\(\displaystyle Therefore, \ angle \ ACB \ = \ 180^0-(30^0+15^0) \ = \ 135^0.\)
\(\displaystyle Note: \ This \ is \ one \ of \ a \ plethora \ of \ ways \ to \ solve \ the \ above \ problem, \ it \ isn't \ unique.\)
