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Question
Question 2 (ii)
AD is an altitude of an isosceles triangles ABC in which AB = AC.
Show that AD bisects ∠A.
Question 2 (ii)
AD is an altitude of an isosceles triangles ABC in which AB = AC.
Show that AD bisects ∠A.
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Solution
In ΔBAD and ΔCAD,
∠ADB=∠ADC (Each measure 90∘, as AD is an altitude)
AB = AC (Given)
AD = AD (Common)
∴ΔBAD≅ΔCAD (By RHS Congruence rule)
By CPCT,
∠BAD=∠CAD
Hence, AD bisects ∠A
In ΔBAD and ΔCAD,
∠ADB=∠ADC (Each measure 90∘, as AD is an altitude)
AB = AC (Given)
AD = AD (Common)
∴ΔBAD≅ΔCAD (By RHS Congruence rule)
By CPCT,
∠BAD=∠CAD
Hence, AD bisects ∠A
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