In Fig. 4.145, If 
and 
, prove that 
.
Given AB⏊BC, DC ⏊ BC and DE ⏊AC
To prove:- ΔCED ~ΔABC
Proof:-
<BAC + <BCA = 90° …………..(i) (By angle sum property)
And, <BCA + <ECD = 90°……(ii) (DC ⏊ BC given)
Compare equation (i) and (ii)
<BAC = <ECD……………..(iii)
In ΔCED and ΔABC
<CED = <ABC (Each 90°)
<ECD = <BAC (From equation iii)
Then, ΔCED ~ΔABC.
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