Advanced Geometric Problem & Solution (Twice a week update) Now 4792 problems posted.
<Qua-2026-820>, hint
triangles ABX and YZX are similar, Let Y=t. [ABZY]=1/2+t/2, [XYZ]=2/3
Hence [XAB]/[XYZ]=1^2/t^2=(1/2+t/2+2/3)/(2/3). You get t=2/3
<Qua-2026-820>, square m area
<South Africa MO 2012>
<Tri-2026-2330>, hint
Since AH=2R cosA, OD= RcosA, AH//OD, triangles POD and PAH are similar
By vectors OG=1/3(OA+OB+OC) .
since IOAI=IOPI, OP=-OA, OH=OA+OB+OC, OG'=OA+OP(-OA)+OH(OA+OB+OC)=1/3(OA+OB+OC). Hence G=G'
<Tri-2026-2330>, general, centroid
<Tri-2026-2329>, hint
Apply Cosine 2nd Law to triangles ABD and ACD with angles <ADB. <ACB
You can get 6.
