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Question
Question 9
If ABC is an isosceles triangle in which AC = BC, AD and BE are respectively two altitudes to sides BC and AC, then prove that AE = BD.
If ABC is an isosceles triangle in which AC = BC, AD and BE are respectively two altitudes to sides BC and AC, then prove that AE = BD.
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Solution
In ΔABC,AC=BC [given]
∠ABC=∠CAB
[angles opposite to equal sides are equal]
ie., ∠ABD=∠EAB ...(i)
In ΔAEB and ΔBDA,
∠AEB=∠ADB=90∘ [given,AD⊥BC and BE ⊥ AC]∠EAB=∠ABD [from Eq.(i)]and AB=AB [common side]∴ΔAEB≅ΔBDA [by AAS congruence rule]⇒AE=BD [by CPCT]
∠ABC=∠CAB
[angles opposite to equal sides are equal]
ie., ∠ABD=∠EAB ...(i)
In ΔAEB and ΔBDA,
∠AEB=∠ADB=90∘ [given,AD⊥BC and BE ⊥ AC]∠EAB=∠ABD [from Eq.(i)]and AB=AB [common side]∴ΔAEB≅ΔBDA [by AAS congruence rule]⇒AE=BD [by CPCT]
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