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Question 5In ...

Question

Question 5
In figure, two line segments AC and BD intersect each other at the point P such that $P A = 6 c m, P B = 6 c m, P C = 3 c m, P C = 2.5 c m, P D = 5 c m, ∠ A P B = 50^{\circ} a n d ∠ C D P = 30^{\circ} . T h e n ∠ P B A$ is equal to

(A) $50^{\circ}$
(B) $30^{\circ}$
(C) $60^{\circ}$
(D) $100^{\circ}$

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Solution

(D) $100^{\circ}$

In $Δ A P B a n d Δ C P D,$
$∠ A P B = ∠ C P D = 50^{\circ}$ [ Vertically opposite angles ]
$\frac{A P}{P D} = \frac{6}{5}$ ............(i)
$\frac{B P}{C P} = \frac{3}{2.5} = \frac{6}{5}$ .............(ii)
From Eq.s (i) and (i)
$\frac{A P}{P D} = \frac{B P}{C P}$
$∴ Δ A P B \sim Δ D P C$ [ by SAS similarity criterion ]
$∴ ∠ A = ∠ D = 30^{\circ}$ [ corresponding angles of similar triangles ]
In $Δ A P B$ ,
$∠ A + ∠ B + ∠ A P B = 180^{\circ}$ [ sum of angles of a triangle = $180^{\circ}$ ]
$\Rightarrow 30^{\circ} + ∠ B + 50^{\circ} = 180^{\circ}$
$∴ ∠ B = 180^{\circ} - (50^{\circ} + 30^{\circ}) = 100^{\circ}$
i.e., $∠ P B A = 100^{\circ}$

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