In the given parallelogram ABCD, O is mid-point of AB. CO and DO bisect $∠$ BCD and $∠$ ADC respectively. find the measure of $∠$ DOC.

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Solution

In parallelogram ABCD,

$∠ A D C + ∠ B C D = 180^{\circ}$
Adjacent angles of a parallelogram is supplementary

$\frac{∠ A D C}{2} + \frac{∠ B C D}{2} = 90^{\circ}$

$∠ O D C + ∠ D C O = 90^{\circ} . . . . (i)$
Also, the sum of all the angles of a triangle is }180°.

So, $∠ D O C + ∠ O D C + ∠ D C O = 180^{\circ}$
From (i)

$∠ D O C + 90^{\circ} = 180^{\circ}$

$∠ D O C = 180^{\circ} - 90^{\circ}$

$∠ D O C = 90^{\circ}$

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