In the figure, PS = QS = RS and QSR – 100o, find QPR

In the figure, PS = QS = RS and QSR – 100^o, find QPR

The correct answer is: B

Since PS = QS = RS

S is the centre of circle passing through P, Q, R /PS/ = /RS/ = radius

QPR \(\pm\) \(\frac{100^o}{2}\) = 50^o