Question 1
In given figure, if $∠ A = ∠ C$ , AB = 6cm, BP = 15cm, AP = 12cm and CP = 4cm, then find the lengths of PD and CD.

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Solution

Given, $∠ A = ∠ C, A B = 6 c m, B P = 15 c m, A P = 12 c m$ and $C P = 4 c m$
In $Δ A P B$ and $Δ C P D$ ,
$∠ A = ∠ C$ [given]
$∠ A P B = ∠ C P D$ [vertically opposite angles]
$∴$ $Δ A P B \sim Δ C P D$ [ by AAA similarity criterion]
$\Rightarrow \frac{A P}{C P} = \frac{P B}{P D} = \frac{A B}{C D}$
$\Rightarrow \frac{12}{4} = \frac{15}{P D} = \frac{6}{C D}$
On taking first and second term, we get
$\frac{12}{4} = \frac{15}{P D}$
$\Rightarrow P D = \frac{15 \times 4}{12} = 5 c m$
On taking first and last term, we get
$\frac{12}{4} = \frac{6}{C D}$
$\Rightarrow C D = \frac{6 \times 4}{12} = 2 c m$
Hence, length of PD = 5 cm and length of CD = 2 cm

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