In Fig., $A C = A E, A B = A D$ and $∠ B A D = ∠ E A C$ . Show that $B C = D E$ .

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Solution

Congruency in $△ BAC, △ DAE$ :
$∠ B A D = ∠ E A C$ (given)
Add $∠ D A C$ to both sides
$∠ B A D + ∠ D A C = ∠ E A C + ∠ D A C \Rightarrow ∠ B A C = ∠ D A E$
In $△ B A C$ and $△ D A E$
$∠ B A C = ∠ D A E$ (proved above)
$A C = A E, A B = A D$ (given)
$\Rightarrow △ B A C ≅ △ D A E$ (SAS criteria)
$B C = D E$ (by CPCT)
Hence $BC = DE$ proved.

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