f(x)=4sin(wx Q),f(Pi 3 x)=f(-x),求f(Pi 6)

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

f(x)=[1+cos2x)/2]/[1+(1-cos2x)/2]=(1+cos2x)/(3-cos2x)=-1+4/(3-cos2x)f'(x)=-4/(2-cos2x)^2*(2-cos2x)'=

积分值=（变量替换x＝pi/2-t)积分（0到pi/2）f(cosx)/(f(sinx)+f(cosx)),两者相加（就是两倍的积分值）,被积函数是1,故积分值是pi/2,因此原积分值是pi/4

f(x)=cos^4x－2sinxcosx－sin^4x=(cos^2x+sin^2x)(cos^2x-sin^2x)-sin2x=cos2x-sin2x=根号2*cos(2x+л/4)(1)f(x)

f(x)=(sinx)^4f'(x)=4[(sinx)^3]*(sinx)'=4[(sinx)^3]*(cosx)

先用tanx=sinx/cosx、倍角公式、诱导公式化简原函数：f（x）=sin²x+sinxcosx-sin[2（x+π/4）]=（1-cos2x）/2+1/2sin2x-sin（2x+π

2sin(x-π/4)sin(x+π/4)=cos(x-π/4-x-π/4)-cos(x-π/4+x+π/4)=-cos2xf(x)=cos(2x-π/3)-cos2x=cos(2x-π/6-π/6)

sin^4x+cos^4x+sin^2x*cos^2x=sin^4x+cos^4x+2sin^2x*cos^2x-sin^2x*cos^2x=(sin^2x+cos^2x)^2-sin^2x*cos^

f(1)+f(2)+f(3)+f(4)+f(5)+f(6)+f(7)+f(8)=（1/根号2）+1+（1/根号2）+0+（-1/根号2）+（-1）+（-1/根号2）+0=0以8为循坏的加法2010=2

cosx=sinx是取得最大值,m=1再问：能给我详细过程吗？再答：f(x)=2(sin^4x+cos^4x)+m(sinx+cosx)^4=2(sin^2x+cos^2x)^2-4sin^2xcos

首先：定义域只有这一个,X+π/4≠2Kπ,所以X≠-π/4+2kπ..附上值域,化简原函数：f（X）=cos2X/[√2/2（sinX+cosX）]f(x)=(cos²X-sin²

（根号2＋根号6）÷4再问：如何做的？？？？？？？？？？谢谢

经济将积极

f（x）=（1+cotx）sin^2(x)-2sin(x+∏／4)sin(x-∏／4)=sin^2(x)+sinxcosx+cos2x=1/2（1-cos2x）+sinxcosx+cos2x=1/2（

cos2x=sin(π/2-2x)=2sin(π/4-x)cos(π/4-x)cos2x/[sin(π/4-x)]=2sin(π/4-x)cos(π/4-x)/[sin(π/4-x)]=2cos(π/

f(x)=sin^2x+2√3sinxcosx+sin(x+π/4)sin(x-π/4)=(1-cos2x)/2+√3sin2x+(1/2)2sin(x-π/4)cos(x-π/4)=2-2cos2x

f(x)=sin^2x+sinxcosx-sin^2x+cos^2x=sinxcosx+cos^2x=sin2x/2+(1+cos2x)/2=sin2x/2+cos2x/2+1/2(1)f(a)=si

函数f(x)=负根号3sin^2x+sinxcosx应该没^这个符号的吧?如果是没有的话f(x)=负根号3sin2x+sinxcosx=负根号3sin2x+sin2x=(1/2-3^(1/2))sin

,而sin^2a+cos^2a=1,得sin^2a=4/5f(x)=(1+1/tanx)sin^2-2sin(x+π/4)sin(x-π/4).=sinx(cosx+sinx)+2sin(x+π/4)

答：0