In a right angled triangle ABC in which -A - 90- If AD BC-

Consider ΔBAC and ΔBDA, ∠ABC = ∠ DBA ∠BAC = ∠BDA = 90^∘ ∠BCA = ∠BAD Therefore, ABC is similar to DBA [by AAA] AB/BD = BC/AB. [Sides opposi ...

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Perpendicular from Right Angle to Hypotenuse Divides the Triangle into Two Similar Triangles

In a right an...

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In a right angled triangle ABC in which ∠A = $90^{\circ}$ , If AD $⊥$ BC.

${A B}^{2}$ = BD × DC.

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${A B}^{2}$ = BD × AD.

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${A B}^{2}$ = BC × DC.

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${A B}^{2}$ = BC × BD.

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In a right angled triangle ABC in which ∠A = $90^{\circ}$ , If AD $⊥$ BC.

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In a right angled triangle ABC in which ∠A = $90^{\circ}$ , If AD $⊥$ BC.

△ A B C

A

A D ⊥ B C

A D = p

B C = a, C A = b

A B = c

∠ C = 90

{A B}^{2} = 4 {A D}^{2} - 3 {A C}^{2}

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