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Question
Factorise:
9b2 – 4a2 + 20a – 25
Sum
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Solution
Given: 9b2 – 4a2 + 20a – 25
9b2 – 4a2 + 20a – 25 can be written as (3b)2 – (4a2 – 20a + 25)
⇒ (3b)2 – {(2a)2 – 2 × 2a × 5 + (5)2}
⇒ (3b)2 – (2a – 5)2
Now, applying the identity,
a2 – b2 = (a + b) (a – b)
⇒ (3b – 2a + 5) (3b + 2a – 5)
Hence, the required is (3b – 2a + 5) (3b + 2a – 5).
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