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Similarity of Triangles

Question 4In ...

Question

Question 4
In the figure, BD and CE intersect each other at the point P. Is $Δ P B C \sim Δ P D E$ ? Why?

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Solution

In $Δ P B C a n d Δ P D E$ ,
$∠ B P C = ∠ E P D$ [Vertically opposite angles ]
Now, $\frac{P B}{P D} = \frac{5}{10} = \frac{1}{2}$ ……(i)
and $\frac{P C}{P E} = \frac{6}{12} = \frac{1}{2}$ …..(ii)
From eqs. (i) and (ii) $\frac{P B}{P D} = \frac{P C}{P E}$
Since, one angle of $Δ P B C$ is equal to one angle of $Δ P D E$ and the sides including the angle are proportional, both the triangles are similar.
Hence, $Δ P B C \sim Δ P D E$ by SAS similarity criterion.

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Similarity of Triangles

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