In the following figure, E is a point on side CB produced of an isosceles triangle ABC with AB = AC. If AD ⊥ BC and EF ⊥ AC, prove that ∆ABD ∼ ∆ECF
Solution and Explanation
It is given that ABC is an isosceles triangle.
∴ AB = AC
⇒ \(\angle\)ABD = \(\angle\)ECF
In ∆ABD and ∆ECF,
\(\angle\)ADB = \(\angle\)EFC (Each 90°)
\(\angle\)BAD = \(\angle\)CEF (Proved above)
∴ ∆ABD ∼ ∆ECF (By using AA similarity criterion)
Hence Proved
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