求y=sin^2x sinx 1的周期
来源:学生作业帮助网 编辑:作业帮 时间:2024/05/11 15:28:39
y=(cosx+2)/(sinx-1)ysinx-y=cosx+2ysinx-cosx=y+2√(y²+1)sin(x-t)=y+2,t=arctan(1/y)sin(x-t)=(y+2)/
y=sin²2xy′=2×(cos2x)×2sin2x=4cos2x·sin2x=2sin4xy〃=2(4x)′cos4x=8cos4x
y=sin^2x+sinx=(sin^2x+sinx+1/4)-1/4=(sinx+1/2)^2-1/4sinx=-1/2时有最小值-1/4sinx=1时有最大值2
y=sin^2x的周期为π.根据平方正弦公式,y=sin²x=(1/2)(1-cos2x)∵函数cos2x的最小正周期为T=2π/2=π,∴y=sin²x的周期也为T=π
y=sin²x=(1-cos2x)/2∴T=2π/2=π
y=sin^x+2sinxcosx=1/2-cos2x/2+sin2x=根号下(5/4)*[2sin2x/根号5-cos2x/根号5]+1/2设cosa=2/根号5,sina=-1/根号5上式=根号下
y'sin(y/x)-y/x*sin(y/x)+1=0令y/x=u,则y'=u+xu'所以(u+xu')sinu-usinu+1=0xu'sinu+1=0-sinudu=dx/x两边积分:cosu=l
2*cos(x^2)*x/sin(x)^2-2*sin(x^2)*cos(x)/sin(x)^3
f(0)=a所以lim(x→0+)x*sin1/x=a1/x→+∞所以sin1/x在[-1,1]震荡即有界所以x*sin(1/x)趋于0所以a=0
sin^2x+cos^2y=1/2∴sin^2x=1/2-cos^2y3sin^2x+sin^2y=3(1/2-cos^2y)+sin^2y=1.5-3cos^2y)+sin^2y又有sin^2y+c
y=sin(x+π/3)sin(x+π/2)=sin(x+π/3)cosx=(sinxcosπ/3+cosxsinπ/3)cosx=1/2sinxcosx+√3/2cos^2(x)[cos^2(x)指
-2k=cos2x-cos2y=[2(cosx)^2-1]-[2(cosy)^2-1]=2[(cosx)^2-(cosy)^2]cos^2x-cos^2y=-k
[3/2,13/4]
2sin^2x+cos^2y=1cos^2y=1-2sin^2x≥0∴0≤1-2sin^2x≤1∴0≤sin^2x≤1/2∴sin^2x+cos^2y=sin^2x+1-2sin^2x=1-sin^2
原式=2-3/(1+sinα)1+sinα的范围是[0,2]所以-3/(1+sinα)的范围是[-oo,-3/2]原式值域为[-oo,1/2]
y'=2e^2xcos(e^2x)把y看成复合函数sint,t=e^m,m=2x.复合函数求导,等于三个分别求导的积
sin(x/2)的周期是4pi,cos2x的周期是pi,sin(x/2)+cos2x的周期是其最小公倍数,自然是4pi
2派比n