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Question
In ΔABC, AB < AC, PB and PC are the bisectors of ∠B and ∠C. Prove that PB < PC.
Theorem
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Solution
In ΔABC,
- Given that AB < AC.
- PB and PC are the angle bisectors of ∠B and ∠C.
- Prove that PB < PC.
Step 1: Relation between sides and angles
From the property of triangles:
AB < AC ⟹ ∠C < ∠B (opposite side rule: larger side opposite larger angle).
So we know:
∠B > ∠C
Step 2: Angle bisector property
PB is the bisector of ∠B.
PC is the bisector of ∠C.
So:
∠PBC = ∠PBA = `1/2 angleB`
∠PCB = ∠PCA = `1/2 angleC`
Step 3: Compare ∠PBC and ∠PCB
Since ∠B > ∠C, we get:
`1/2 angleB > 1/2 angleC`
= ∠PBC > ∠PCB
Step 4: Use triangle inequality logic in ΔPBC
In ΔPBC:
The larger angle lies opposite the longer side.
∠PBC is larger than ∠PCB.
So, side PC (opposite ∠PBC) is longer than side PB (opposite ∠PCB).
= PB < PC
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