If parallelogram ABCD and rectangle ABEM are of equal area, then:

Perimeter of AMEB = Perimeter of ADCB

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Perimeter of AMEB $<$ Perimeter of ADCB

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Perimeter of AMEB $>$ Perimeter of ADCB

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Perimeter of AMEB = $\frac{1}{2}$ Perimeter of ADCB

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Solution

The correct option is B
Perimeter of AMEB $<$ Perimeter of ADCB

In right angled $Δ A M D$
$A D^{2}$ = $A M^{2}$ + $M D^{2}$ (by Pythagoras theorem)
$\Rightarrow A D > A M$
Similarly, In right angled $Δ B E C$
$B C^{2}$ = $B E^{2}$ + $E C^{2}$
$\Rightarrow B C > B E$
AB = DC = ME (opposite sides of rectangle and parallelogram)
Perimeter of rectangle = AM + ME + EB + AB.
Perimeter of parallelogram = AB + BC + DC + AD.
Hence Perimeter of ADCB $>$ Perimeter of AMEB.

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In the given figure, a ||gm ABCD and a rectangle ABEF are of equal area.Then,

(a) perimeter of ABCD=perimeter of ABEF

(b) perimeter of ABCD<perimeter of ABEF

(d) perimeter of ABCD= $\frac{1}{2}$ (perimeter of ABEF)

\frac{Perimeter of rectangle}{Perimeter of parallelogram}

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