ABCD is a cyclic quadrilateral whose diagonals intersect at a point E. If $∠ D B C = 70^{\circ}, ∠ B A C = 30^{\circ}$ and AB=BC, then find $∠ E C D .$

60^{\circ}

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45^{\circ}

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50^{\circ}

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30^{\circ}

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Solution

The correct option is C $50^{\circ}$
Angles by the same chord in the same segment of a circle are equal.
$∴ ∠ B A C = ∠ B D C = 30^{\circ}$
Given that $∠ D B C = 70^{\circ} .$
Using angle sum property in $△ B C D,$ we have
$∠ B C D + ∠ D B C + ∠ C D B = 180^{\circ} .$
$∠ B C D + 70^{\circ} + 30^{\circ} = 180^{\circ}$
$⟹ ∠ B C D = 180^{\circ} - 70^{\circ} - 30^{\circ} = 80^{\circ}$
Now in $△ A B C,$ AB = BC.
Since the angles opposite to equal sides of a triangle are equal, $∠ B C A = ∠ B A C = 30^{\circ} .$
Now, $∠ B C A + ∠ E C D = ∠ B C D .$
$⟹ 30^{\circ} + ∠ E C D = 80^{\circ}$
$⟹ ∠ E C D = 80^{\circ} - 30^{\circ} = 50^{\circ}$

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