circles class 10....
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sanjana7819:
That answer is right
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Assume angle OBD as x
Make 2 constructions - OD and any point Q on the circle to join AQ and DQ
Now, angle ODB is equal to OBD (isosceles triangle DOB) equal to x
Angle AOD = ODB+OBD = 2x
Angle AQD = 2x/2 = x (angle subtended on circle)
AQDC is cyclic quadrilateral
So angle ACD is 180-x (Result 1)
Line segments OD, CD and OC are equal to radius, so ODC is equilateral triangle. Angle ODC is 60 deg. Angle CDP is thus 180-60-x=120-x
Now, angle CPD+angle CDP=angle ACD. Combining with Result 1,
Angle CPD=180-x-120+x=60 degree
Took less time to solve, but forever to write!
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