AB is parallel to CD, EF intersects them at M and N. The bisectors of $∠ B M N a n d ∠ M N D$ meet at Q. If $∠ A M E = 80^{\circ}$ , then $∠ M Q N$ is:

90^{\circ}

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70^{\circ}

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80^{\circ}

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60^{\circ}

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Solution

The correct option is A $90^{\circ}$
Given: $∠ A M E = 80^{\circ}$
So, $∠ B M F = ∠ A M E = 80^{\circ}$
( $∵$ Vertically opposite angles)
$∴ ∠ Q M N = \frac{1}{2} ∠ B M F = \frac{1}{2} \times 80^{\circ} = 40^{\circ}$
( $∵$ QM bisects $∠ B M F$ )
Also, $∠ C N E = ∠ A M E = 80^{\circ}$
( $∵$ Corresponding angles)
So, $∠ C N E + ∠ E N D = 180^{\circ}$
( $∵$ CD is a straight line)
$\Rightarrow 80^{\circ} + ∠ E N D = 180^{\circ}$
$\Rightarrow ∠ E N D = 100^{\circ}$
$∴ ∠ Q N M = \frac{1}{2} ∠ E N D = \frac{1}{2} \times 100^{\circ} = 50^{\circ}$
( $∵$ QN bisects $∠ E N D$ )
In $Δ Q M N$ ,
$∠ M Q N + ∠ Q M N + ∠ Q N M = 180^{\circ}$
$\Rightarrow ∠ M Q N + 40^{\circ} + 50^{\circ} = 180^{\circ}$
$∴ ∠ M Q N = 90^{\circ}$

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∠ B M N a n d ∠ M N D

∠ A M E = 80^{\circ}

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∠ A M E = 80^{\circ}

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