From the given figure- - P - degrees-

In Δ ABC and Δ RQP, AB/RQ = 3.8/7.6 = 1/2 BC/QP = 6/12 = 1/2 and CA/PR =1/2 ⇒AB/RQ = BC/QP = CA/PR So, Δ ABC ∼Δ RQP [SSS similarity] ∴∠ C = ∠ P [C ...

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Standard X

Mathematics

SSS Similarity

From the give...

Question

From the given figure, $\angle P$=___ degrees.

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Solution

In $Δ A B C$ and $Δ R Q P$ ,

$\frac{A B}{R Q} = \frac{3.8}{7.6} = \frac{1}{2}$

$\frac{B C}{Q P} = \frac{6}{12} = \frac{1}{2}$

and $\frac{C A}{P R} = \frac{1}{2}$

$\Rightarrow \frac{A B}{R Q} = \frac{B C}{Q P} = \frac{C A}{P R}$

So, $Δ A B C \sim Δ R Q P$ [SSS similarity]

$∴ ∠ C = ∠ P$ [Corresponding angles of similar triangles]

But $∠ C = 180^{\circ} - ∠ A - ∠ B$ [Angle sum property]

$∠ C = 180^{\circ} - 80^{\circ} - 60^{\circ} = 40^{\circ}$

So, $∠ P = 40^{\circ}$

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From the given figure, \(\angle P\)=___ degrees. 2

In ΔABC and ΔRQP, ABRQ=3.87.6=12 BCQP=612=12 and CAPR=12 ⇒ABRQ=BCQP=CAPR So, ΔABC∼ΔRQP [SSS similarity] ∴∠C=∠P [Corresponding angles of similar triangles] But ∠C=180∘−∠A−∠B [Angle sum property] ∠C=180∘−80∘−60∘=40∘ So, ∠P=40∘

From the given figure, \(\angle P\)=___ degrees.

2