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Question
Find the absolute extrema of the following functions on the given closed interval.
f(x) = `6x^(4/3) - 3x^(1/3) ; [-1, 1]`
Solution
f(x) = `6x^(4/3) - 3x^(1/3)`
f'(x) = `4/3 6x^(1/3) - 3 1/3 x ^(-2/3)`
f'(x) = 0
⇒ `8x^(1/3) - x^(- 2/3)` = 0
Critical point x = `1/8` ∈ (- 1, 1)`
End points x = – 1, 1
Now f(– 1) = 6 + 3 = 9
`"f"(1/8) = 6(1/16) - 3(1/2)`
= `3/8 - 3/2`
= `(3 - 12)/8`
= `- 9/8`
f(1) = 6 – 3 = 3
Absolute maximum f(– 1) = 9
Absolute minimum `"f"(1/8) = - 9/8`
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