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Question
In the given figure, AD bisects ∠BAC and DE bisects ∠BDA. Find ∠BED.
Sum
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Solution
∠BAC = 180° – (40° + 80°)
∠BAC = 60°
AB bisects ∠A
∠BAD = ∠DAC
= `60/2`
= 30°
∠ABD + ∠BDA + ∠DAB = 180°
40° + ∠BDA + 30° = 180°
∠BDA = 180° – 70°
∠BDA = 110°
DE bisects ∠BDA
∠BDE = ∠EDA
= `110/2`
= 55°
Now, In ΔBED
∠EBD + ∠BDE + ∠DEB = 180°
40° + 55° + ∠DEB = 180°
∠DEB = 180° – 95°
∠DEB = 85°
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