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प्रश्न
Find the points of discontinuity of the function f, where `f(x) = {{:(x + 2",", "if", x ≥ 2),(x^2",", "if", x < 2):}`
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उत्तर
`lim_(x -> 2^-) f(x) = lim_(x -> 2^-) x^2`
`lim_(x -> 2^-) f(x)` = 22 = 4 .......(1)
`lim_(x -> 2^+) f(x) = lim_(x -> 2^+) (x + 2)`
`lim_(x -> 2^+) f(x)` = 2 + 2 = 4 .......(2)
From equation (1) and (2), we get
`lim_(x -> 2^+) f(x) = lim_(x -> 2^+) f(x)`
∴ `lim_(x -> 2) f(x)` exist.
Let x0 be an arbitrary point such that x0 < 2.
Then `lim_(x -> x_0) f(x) = lim_(x -> x_0) x^2`
`lim_(x -> x_0) f(x) = x_0^2`
`f(x_0) = x_0^2`
∴ `lim_(x -> x_0) f(x) = f(x_0)`
For the point x0 < 2, we have the limit of the function that exists and is equal to the value of the function at that point.
Since x0 is an arbitrary point the above result is true for all x < 2.
∴ f(x) is continuous in `(- oo, 2)`.
Let x0 be an arbitrary point such that x0 > 2
Then `lim_(x -> x_0) f(x) = lim_(x -> x_0) (x + 2)`
= x0 + 2
`f(x_0) = x_0 + 2`
∴ `lim_(x -> x_0) f(x) = f(x_0)`
∴ For the point x0 > 2, the limit of the function exists and is equal to the value of the function.
Since x0 is an arbitrary point the above result is true for all x > 2.
∴ The function is continuous at all points of `(2, oo)`.
Hence the given function is continuous at all points of R.
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