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Question
In Fig. BD and CE are two altitudes of a Δ ABC such that BD = CE.
Prove that the ABC is an isoceles triangle. [2 MARKS]
In Fig. BD and CE are two altitudes of a Δ ABC such that BD = CE.
Prove that the ABC is an isoceles triangle. [2 MARKS]
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Solution
Process : 1 Mark
Proof : 1 Mark
Proof: In Δ ABD and ACE, we have
∠ADB = ∠AEC = 90∘
∠BAD = ∠CAE [Common angle]
and, BD = CE [Given]
So, by AAS criterion of congruence, we have
ΔABD ≅ Δ ACE
⇒ AB = AC [ Corresponding parts of congruent triangle are equal]
Hence, ΔABC is isosceles
Process : 1 Mark
Proof : 1 Mark
Proof: In Δ ABD and ACE, we have
∠ADB = ∠AEC = 90∘
∠BAD = ∠CAE [Common angle]
and, BD = CE [Given]
So, by AAS criterion of congruence, we have
ΔABD ≅ Δ ACE
⇒ AB = AC [ Corresponding parts of congruent triangle are equal]
Hence, ΔABC is isosceles
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