22. In the given figure, DE ∥ AC and DF ∥ AE. Prove that : BF/FE = BE/EC.

Question

Q) In the given figure, DE ∥ AC and DF ∥ AE. Prove that : BF/FE = BE/EC.

(Q 22 - 30/4/2 - CBSE 2026 Question Paper)

Sapling Academy · Accepted Answer

Step 1: Let's compare Δ ABE and Δ DBF 
Here, ∠ BDF = ∠ BAE
(∵ DF ǁ AE)
∠ B = ∠ B (common angle)
By AA Similarity criterion, Δ ABE ~ Δ DBF
∴ $\frac{AB}{DB} = \frac{BE}{BF}$
∴ $\frac{AB}{DB} - 1= \frac{BE}{BF} -1$
∴ $\frac{AB - DB}{DB} = \frac{BE - BF}{BF}$
∴ $\frac{AD}{DB} = \frac{FE}{BF}$ .............. (i)
Step 2: Let's compare Δ ABC and Δ DBE 
Here, ∠ BDE = ∠ BAC
(∵ DE ǁ AC)
∠ B = ∠ B (common angle)
By AA Similarity criterion,
Δ ABC ~ Δ DBE
∴ $\frac{AB}{DB} = \frac{BC}{BE}$
∴ $\frac{AB}{DB} - 1= \frac{BC}{BE} -1$
∴ $\frac{AB - DB}{DB} = \frac{BC - BE}{BE}$
∴ $\frac{AD}{DB} = \frac{EC}{BE}$ .......... (ii)
Step 3: By comparing equations (i) and (ii), we get:
∴ $\frac{FE}{BF} = \frac{EC}{BE}$
by inversing both sides, we get:
∴ $\frac{BF}{FE} = \frac{BE}{EC}$ 
Hence proved !
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