In figure, if O is the centre of a circl...

In figure, if `O` is the centre of a circle, `PQ` is a chord and the tangent `PR` at `P` makes an angle of `50^(@)` with `PQ`, then `anglePOQ` is equal to

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A

`because` PR is a tangent.
`:." "angleOPR=90^(@)" "angleOPQ+angleQPR-90^(@)`
`implies" "angleOPQ=90^(@)-QPR=90^(@)-50^(@)=40^(@)`
In `triangleOPQ,`
`OP=OQ" "`(radii of a circle)
`implies" "angleOQP=angleOPQ=40^(@)" "`(angles opposite to equal sides are equal)
Now, in `triangleOPQ,`
`anglePOQ=180^(@)-angleOPQ-angleOQP=180^(@)-40^(@)-40^(@)=100^(@)`

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