In the given figure, DE || BC, AE = 15 cm, EC = 9 cm, NC = 6 cm, and BN = 24 cm. Then find the values of ME & DM.

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Solution

In $Δ A M E & Δ A N C$

$∠ A = ∠ A$ (common)

$∠ A E M = ∠ A C M$ (corresponding angle)

So $Δ A M E \sim ∠ A N C$ (AA similarity)

$\frac{A M}{A N} = \frac{A E}{A C} = \frac{M E}{N C}$ (corresponding sides) ------- (1)

$\frac{A E}{A E + E C} = \frac{M E}{N C} \frac{15}{24} = \frac{M E}{6}$

ME = 3.75 cm

Now in $Δ A D M & Δ A B N$

$∠ A = ∠ A$ (common)

$∠ A D M = ∠ A B N$ (corresponding angle)

$\frac{D M}{B N} = \frac{A M}{A N}$

but from (1) $\frac{A M}{A N} = \frac{A E}{A C}$

So $\frac{D M}{B N} = \frac{A E}{A C}$
$\frac{D M}{24} = \frac{15}{24}$
$\Rightarrow D M = 15 c m$

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