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Question
P is a point on the side BC of ΔABC such that ∠APC = ∠BAC. Prove that AC2 = BC · CP.
Theorem
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Solution
In ΔBAC and ΔΑBC, ΔΑΡΟ
∠BAC = ∠APC .....(Given)
∠ACB = ∠ACP .....(Common)
∴ ΔВАС ∼ ΔАРС ....(AA similarity)
∴ `(BA)/(AP) = (AC)/(PC) = (BC)/(AC)`
Take `(AC)/(PC) = (BC)/(AC)`
AC2 = BC · CP
Hence proved.
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