f(x)=根号3sin2x+cos2x=2sin(2x+π/6)
1)
T=2π/2=π
x∈[0,π/2]
2x+π/6[π/6,7π/6]
f(x)小=2sin(π/6)=1
f(x)大=2sin(π/2)=2
2)
sin(2x0+π/6)=3/5
co2x0=cos(2x0+π/6-π/6)=(3-4根号3)/10
字限制
1) f(x)=2sin(2x+π/6)
最小正周期T=2π/2=π
因x∈[0,π/2]
故当x=π/6,f(x)最大=2,当x=π时,f(x)最小=-1
2)由 x0∈[π/4,π/2] 得 cos2x0<0
√3sin2x0+cos2x0=6/5
∴cos2x0=(6-5√3)/20
f(x)=2根号3sinXcosX+2cos^2X-1
=根号3sin2X+2(1-sin^2X)-1
=-2sin^2X+3sin2X+1
=-2(sin2X-3/4)^+17/16
最大 当sin2x-3/4=0 时 f(x)=17/16
最小 当sin2x=-1 sin2x-3/4=-7/4 时 f(x)=-81/16
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