PA and PB are tangent to the circle with center o such that angle APB=50° answer
Answers
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Since tangents to a circle is perpendicular to the radius .
∴ OA ⊥ AP and OB ⊥ BP.
⇒ ∠OAP = 90° and ∠OBP = 90°
⇒ ∠OAP + ∠OBP = 90° + 90° = 180° ........... (1)
In quadrilateral OAPB,
∠OAP + ∠APB + ∠AOB + ∠OBP = 360°
⇒ (∠APB + ∠AOB) + (∠OAP + ∠OBP) = 360°
⇒ ∠APB + ∠AOB + 180° = 360° [ From (1) ]
⇒ ∠APB + ∠AOB = 180° ................ (2)
From (1) and (2), the quadrilateral AOBP is cyclic.
TO PROVE,
<A+<B=180
<P+<O=180 [SINCE SUM OF OPPOSITE ANGLES OF A CYCLIC QUADRILATERAL IS 180]
PROOF
WE KNOW THAT <A=<B=90[THE RADIUS IS PERPENDICULAR TO THE TANGENT AT THE POINT OF CONTACT.
SO <A+<B=90+90=180
WE KNOW THAT SUM OF ANGLES OF A QUADRILATERAL IS 360.THEREFORE
<A+<B+<P+<O=360
90+90+<P+<O=360
=<P+<O=360-180
=<P+<O=180
HENCE THE PROOF.
<A+<B=180