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प्रश्न
if `f(x) = (x^2-9)/(x-3) + alpha` for x> 3
=5, for x = 3
`=2x^2+3x+beta`, for x < 3
is continuous at x = 3, find α and β.
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उत्तर
∵f is continuous at x = 3
∴ `lim_(x->3^(-)) f(x) = lim_(x->3^(+)) = f(3)` ......(1)
Now `lim_(x->3^(+)) f(x) = lim_(x->0)((x^2-9)/(x-3) + alpha) = lim_(x->3)[((x-3)(x+3))/(x - 3) + alpha]`
`= lim_(x->0)[(x+3) + alpha] = (3+3) + alpha = alpha + 6`
and
`lim_(x->3^(-)) f(x) = lim_(x->3) (2x^2 + 3x +beta) = 2(3)^2 + 3(3) + beta = 18 + 9 + beta = 27 + beta`
Also f(3) = 5 ...(given)
∴ From (1) we get α + 6 = 27 + β = 5`
∴ α + 6 = 5 and 27 + β = 5
∴ α = 5 - 6 = -1 and β = 5 - 27 = - 22
⇒ ∴ α = -1 and β = -22
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