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प्रश्न
Find the domain of the real valued function of real variable:
(iv) \[f\left( x \right) = \frac{2x + 1}{x^2 - 9}\]
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उत्तर
(iv) Given:
\[f\left( x \right) = \frac{2x + 1}{x^2 - 9}\]
Domain of f :
Clearly, f (x) is defined for all x ∈ R except for x2 -9 ≠ 0, i.e. x = ± 3.
At x = -3, 3, f (x) takes the intermediate form
Clearly, f (x) is defined for all x ∈ R except for x2 -9 ≠ 0, i.e. x = ± 3.
At x = -3, 3, f (x) takes the intermediate form
\[\frac{1}{0} .\] Hence, domain ( f ) = R -{ - 3, 3 }.
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