f(x) = sqrt(3) sin2x + cos2x = 2 sin(2x + pi/6)
2x+pi/6 = 0, x = -pi/12 时,f(x) = 0
2x+pi/6 = pi/2, x = pi/6 时,f(x) = 2
x = -5pi/12, 2x+pi/6 = -2pi/3, f(x) = -sqrt(3)
x=pi/3, 2x+pi/6 = 5pi/6, f(x) = 1
范围是-sqrt(3)->1
解:f(x)=2√3sinXcosX+2cos^2X-1
=√3sin2X+cos2X
=2sin(2X+π/6)
∵x∈[-5π/12,π/3],
∴2X+π/6 ∈[-2π/3,5π/6]
∴2sin(2X+π/6) ∈[-2,2]
∴f(x)的取值范围是 [-2,2]
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