已知函数fx=1 2cos^x 3 2sinxcosx 1(xR)

问题不完整啊再问：已知函数fx=sin(x/2)cos(x/2)+cosx/2-2再答：是化简吗再问：嗯嗯是的，打字慢，再问：再答：f(x)=1/2sinx+1/2cosx-3/2=sin(x+π/4

f(x_=(cosx+sinx)(cosx-sinx)=cos²x-sin²x=cos2x所以T=2π/2=πf(α/2)=cosα=1/3sin²α+cos²

若cosα=3/5.α属于(3π/2,2π),sinα=-4/5把f(2α+π/3)代入fx=√2cos(x-π/12),化简原式=cos2α-sin2αcos2α-sin2α怎么化简的就不用我说了吧

令t=sinx则f=(1-t^2)+2t=-t^2+2t+1=-(t-1)^2+2因为|t|

f(x)=x^3+a^2+1+xf'(x)=3x^2+1>0所以f（x）在R上单调递增

先化简f(x)=2根号3sinxcosx+2cos^2x-1=根号3sin2x+cos2x=2(根号3/2sin2x+1/2cos2x)=2sin(2x+π/6）则T=2π/ω=2π/2=πy=sin

fx=sin2x-根号3*(1+cos2x)+a+根号3=2sin(2x-60°)+aT=pi,增区间[k*pi-pi/6,k*pi+5pi/12],k属于Z 2.由题意得-5pi/6<

答：f(x)=2cos²(x/2)-sinx=cosx+1-sinx=-√2*[(√2/2)*sinx-(√2/2)*cosx]+1=-√2*(sinxcosπ/4-cosxsinπ/4)+

1.f(x)=√3sinxcosx-cos²x+1/2=(√3/2)(2sinxcosx)-(1/2)(2cos²x-1)二倍角公式：2sinxcosx=sin(2x),2cos&

(1)f(x)=[cos(x-π/6)]^2-(sinx)^2f(π/12)=(cos(π/12))^2-(sin(π/12))^2=cos(π/6)=√3/2(2)f(x)=[cos(x-π/6)]

f(x)=cos(2x-π/3)-cos2x=1/2cos2x+√3/2sin2x-cos2x=√3/2sin2x-1/2cos2x=sin(2x-π/6)最小正周期T=2π/2=π(2)0

f(x)=cos²x+sinxcosx=(cos2x+1)/2+1/2sin2x=(1/2cos2x+1/2sin2x)+1/2=√2/2*(√2/2cos2x+√2/2sin2x)+1/2

f(x)=2sinxcosx-(2cos²x-1)=sin2x-cos2x=√2sin(2x-π/4)所以值域是[-√2,√2]

（1）f(x)=cos²x=(1/2)+(1/2)cos2x,对称轴2x0=kπ,sin2x0=0；所以g(2x0)=1+(1/2)sin2x0=1；（2）h(x)=f(x)+g(x)=(1

f(x)=2sin(x-π/6)cosx+2cos²x=(2sinxcosπ/6-2cosxsinπ/6)cosx+2cos²x=√3sinxcosx-cos²x+2co

(1)∵cos2x=2cos^2x-1∴f(x)=1/2+cos(2x+π/6)/2对称轴2x0+π/6=π+2kπx0=5π/12+kπg(x0)=1+1/2sin(5π/6+2kπ)=5/4（2）

f(x)＝√3sin2x＋cos2x＝2sin(2x＋π/6)∴f(x0)＝2sin(2x0＋π/6)＝6/5∴sin(2x0＋π/6)＝3/5∵x0∈[π/4,π/2]∴2x0＋π/6∈[2π/3,

解f(x)=2cos^2x+2√3sinxcosx-1=√3sin2x+cos2x=2sin(2x+π/6)∴最小正周期为：2π/2=π再答：不懂追问再问：在三角形ABC中，角ABC所对的边分别是ab

(1)、f(x)=2cos²x-（sinx-cosx）²=2cos²x-(1-sin2x)=cos2x+sin2x运用一下化一公式得f(x)=√2sin(2x+π/4),