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Triangles on the Same Base and between the Same Parallels

In the adjoin...

Question

In the adjoining figure,BD||CA, E is the midpoint of CA and BD= $\frac{1}{2} C A$ .Prove that $a r (△ A B C) = 2 a r (△ D B C)$ .

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Solution

ANSWER:
E is the midpoint of CA.
So, AE = EC
.....(1)
Also, BD = 1/2 CA
(Given)
So, BD = AE
.....(2)
From (1) and (2) we have
BD = EC
BD || CA and BD = EC so, BDEC is a parallelogram
BE acts as the median of △ABC
so, ar(△BCE) = ar(△ABE) = 1/2ar△ABC
.....(1)
ar(△DBC) = ar(△BCE)
.....(2)
(Triangles on the same base and between the same parallels
are equal in area)
From (1) and (2)
ar(∆ABC) = 2ar(∆DBC)

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