In a ΔABC, the internal bisectors of ∠B and ∠C meet at P and the external bisectors of ∠B and ∠C meet at Q. Prove that ∠BPC + ∠BQC = 180°.
Given that ABC is a triangle.
BP and CP are internal bisector of ∠B and ∠C respectively
BQ and CQ are external bisector of ∠B and ∠C respectively.
External ∠B = 180o - ∠B
External ∠C = 180o - ∠C
In 
∠BPC + 
∠B + 
∠C = 180o
∠BPC = 180o - 
(∠B + ∠C) (i)
In 
∠BQC + 
(180o - ∠B) + 
(180o - ∠C) = 180o
∠BQC + 180o - 
(∠B + ∠C) = 180o
∠BPC + ∠BQC = 180o [From (i)]
Hence, proved
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