Advanced Geometric Problem & Solution (Twice a week update) Now 4744 problems posted.
<Qua-2026-809>, hint
Let <BAM=DAM=X, then <BMA=CNM=X
BF=BA=CD, OM=OC( radius), <OCD=<BCD+<OCB=2X+90-X=90+X
<OMB=<BMN+OMN=180-X+2X-90=90+X
Triangles OBM and ODC are congruent
<Qua-2026-809>, parallelogram, angle
<Qa-2026-808>, hint
<Qua-2026-808>, square, cyclic
<Singapore Senior Math Olympiad 2023>
<Qua-2026-807>, hint
Since <PCQ=<PDQ, <PAQ=<PBQ
PCDQ PBAQ are cyclic , Hence <PCD=<PQA, <PQA+<PBA=180, AB//CD
