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Tangent and Radius

In the given ...

Question

In the given figure, C and D are points on the semi-circle described on AB as diameter. Given angle BAD = $70^{0}$ and angle DBC= $30^{0}$ . Calculate $∠ B D C$

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Solution

$∴$ ABCD is a cyclic quadrilateral.

$∠ B A D + ∠ B C D = 180^{0}$ (Sum of opposite angles)

$\Rightarrow 70^{0} + ∠ B C D = 180^{0}$

$\Rightarrow ∠ B C D = 180^{0} - 70^{0} = 110^{0}$

Now in $Δ B C D$ .

$∠ B C D + ∠ D B C + ∠ B D C = 180^{0}$

$\Rightarrow 30^{0} + 110^{0} + ∠ B D C = 180^{0}$

$\Rightarrow 140^{0} + ∠ B D C = 180^{0}$

$∴ ∠ B D C = 180^{0} - 140^{0} = 40^{0}$

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