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Question
Factorise:
729a6 – b6
Sum
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Solution
Given, 729a6 – b6
Now, 729a6 – b6 can be written as (27a3)2 – (b3)2
Using the identity,
a2 – b2 = (a + b) (a – b), we get,
(27a3)2 – (b3)2 = (27a3 + b3) (27a3 – b3)
Now, [(3a)3 + (b)3] [(3a)3 – (b)3]
⇒ (3a + b) (9a2 – 3ab + b2) (3a – b) (9a2 + 3ab + b2)
Hence, the required is (3a + b) (3a – b) (9a2 – 3ab + b2) (9a2 + 3ab + b2)
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