JEE Main 11 Jan 2019 Shift 1 Solved Paper

Section: Mathematics

Question : 54 of 90

Marks: +1, -0

The maximum value of the function f(x) = 3x3–18x2 + 27x – 40 on the set S = {x ∊ R : x2 + 30 ≤ 11x} is :

[11 Jan 2019 Shift 1]

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