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Monday, August 17, 2009

KBB2 Problem 5

In a triangle ABC where AB = 13, BC = 14, CA = 15, a point P is such that $\angle APB = \angle BPC = \angle CPA = 120^0$. Calculate $AP+BP+CP$

Posted by Hendrata at 12:47 AM

Labels: fermat point, Geometry, KBB, KBB2

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