设函数fx等于cos

f(x)=[(cosx)^2-(sinx)^2]+√3sin2x=cos2x+√3sin2x=2sin(2x+π/6),最小正周期T=π,由-π/2+2kπ≤2x+π/6≤π/2+2kπ,k∈Z解得：

f(x)=sin2x+2√3cosxcosx=sin2x+√3(1+cos2x)=sin2x+√3cos2x+√3=2sin(2x+π/3)+√3T=2π/2=π

f(x)=cosx-cos(x+π/2)=cosx+sinx=3/4sin^2x+cos^2x+2sinxcosx=9/162sinxcosx=sin2x=9/16-1=-7/16

AX+COSX小于等于1+SINXCOSX-SINX小于等于1-AX根号2*COS（X+PAI/4）小于等于1-AX由Y=根号2*COS（X+PAI/4）和Y=1-AX的图像可直接判定,A小于等于0画

你好,这题应该这样1.f(x)=cos(2x+π/3)+sin²X=负二分之根号三sin2x+二分之一所以最大值为﹙√3+1﹚／2最小正周期为π2.可知COSB=1/3sinC=√3／2∵C

|2x-7|+1

fx=2cos^2x+2根号3sinxcosx-1=2cos^2x-1+2根号3sinxcosx根据倍角公式,sin2α=2sinαcosαcos2α=2cos^2（α）-1fx=cos2x+根号3s

F(x)=x^3-6x+5F'(x)=3x^2-6=3(x+√2)(x-√2)x∈（-∞,-√2）时单调增x∈（-√2,√2）时单调减x∈（√2,+∞）时单调增x=-√2时有极大值F(-√2)=4√2

f(x)=cos(2x-4π/3)+2cos^2x=cos(2x-4π/3)+cos2x+1=2cos(2x-2π/3)cos2π/3+1=1-√3cos(2x-2π/3)1.当cos(2x-2π/3

 再答：这是高一的题目吧再答：不谢，复习加油

F（X）=cos(√3x+t）F'（X）=-√3sin(√3x+t）F（X）+F'（X）=cos(√3x+t）-√3sin(√3x+t）是奇函数所以F（0）+F'（0）=0即cost-√3sint=0

f'=e^x+xe^x,g'=2ax+1f'-g'=e^x-1+xe^x-2axx>等于0时.恒有fx>等于gxf'-g'>0,解得a>0

f(x)=[1-cos(2x)]/2+sin(2x)+3[1+cos(2x)]/2=sin(2x)+cos(2x)+2=√2sin(2x+π/4)+2.周期T=kπ,k∈Z且k≠0.最小正周期为π.

f(x)=x+1/x-1(x>=2)>=2-1=1x=1时去最小值但是x>=2所以f(x)单调递增f(x)min=f(2)=1.5值域：[1.5,+∞)再问：为什么x大于等于2时函数是增函数再答：画图

设函数fx=2cos^2(π/4-x)+sin(2x+π/3)-1=cos(PI/2-2x)+sin(2x+PI/3)=sin(2x)+sin(2x)/2+cos(2x)*sqrt(3)/2=sqrt

只需(4-k*2的x次方)>0,即4>k*2的x次方对k讨论,若k=0,则,定义域为R若k>0则变为,4/k>2的x次方两边取对数即为ln(4/k)>xln2即为（ln(4/k)）/(ln2)>x若k

(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）

①f(x)=cos﹙2x－4π／3﹚＋2cos²x=cos2xcos4π/3+sin2xsin4π/3+1+cos2x=1/2cos2x-√3/2sin2x+1=cos(2x+π/3)+1当

f'(x)=2x+a>0x>-a/2-a/2=-2a=4