In the given figure, ABC is a triangle, right-angled at B. BCDE is a square on the side BC and ACFG is a square on AC. Then,

$A D > B F$

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$A D = B F$

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lengths of sides AD and BF cannot be compared.

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$A D < B F$

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Solution

The correct option is B
$A D = B F$

In $Δ A C D and Δ F C B$ , we
have,
$∠ A C D = 90^{\circ} + ∠ B C A$ and
$∠ F C B = 90^{\circ} + ∠ B C A$
$⟹ ∠ A C D = ∠ F C B$
CF = CA; ( $∵$ Sides of square ACFG)
CD = CB ( $∵$ Sides of a square BCDE)
$∴ Δ A C D ≅ Δ F C B$
[by S.A.S. axiom]
$\Rightarrow A D = B F$ (CPCT)

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In the adjoining figure, □ ABCD is a square . △ BCE on side BC and △ ACF on the diagonal AC are similar to each other . S how that A (△ BCE) = \frac{1}{2} A (△ ACF) .

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