y=2cos(1 2x-1 4π)的图像

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y=2cos(1 2x-1 4π)的图像
y=sin(-3x) =-sin3x y=cos(3x+π\4) =cos(π/2+3x-π/4) =-sin(3x-π

因为由上式可知y=cos(3x+π\4)=-sin[3(x-π/12)],要将y=-sin[3(x-π/12)]变换到y=sin(-3x),则需要作加法,即:-sin[3(x-π/12+π/12)],

求多元函数极值f(x,y)=sinx+cosy+cos(x-y),0≤x,y≤π/2

极值就是求导fx=cosx-sin(x-y)=0fy=-siny+sin(x-y)=0x+y=pi/2f(x,y)=1+0+0=1极小值这是f(x,y)

证明COS(X+Y)COS(X-Y)=COS^2X-SIN^2Y

COS(X+Y)COS(X-Y)=(COSX*COSY-SINX*SINY)(COSX*COSY+SINX*SINY)=(COSX*COSY)^2-(SINX*SINY)^2=COS^2X(1-SIN

求函数f(x,y)=sinx+cosy+cos(x-y),0≤x,y≤π/2的极值

思路:利用极值和导数的关系(极值点,导数为0)函数关于x,y求偏导数,令其为0,解出x,y的值,和相应的函数值,那就是极值

求下列函数导数y=cos(π/3-x)y=e^3xy=In(3-x)y=cos^3(1-2x)

y=cos(π/3-x)y'=-sin(π/3-x)*(-1)=sin(π/3-x)y=e^3xy'=e^(3x)*3=3e^(3x)y=In(3-x)y'=1/(3-x)*(-1)=1/(x-3)y

y =(cos^2) x - sin (3^x),求y'

y'=(cos²x)'-(sin3^x)'=2cosx·(cosx)'-cos3^x·(3^x)'=2cosx·(-sinx)-cos3^x·(3^x·ln3)=-sin2x-ln3·cos

函数y=cosπ/2x×cosπ/2(x-1)的最小正周期

函数y=cosπ/2x×cosπ/2(x-1)的最小正周期如果是:函数y=cosπ/2x×cos[(π/2)(x-1)]的最小正周期则有如下:y=cosπ/2x×cosπ/2(x-1)=cosπx/2

函数y=2cos(2x-π/6)值域

这个函数就是一个cos函数,因此值域是[-2,2]再问:x属于(0,π/2)再答:晕,算2x-π/6的值定义域,然后算就可以了

求函数y=cos(2x+2π/7)-2cos(x+π/7)的值域

先把函数y化为:y=2[cos(x+π/7)]^2-2cos(x+π/7)-1令cos(x+π/7)=t因为,x+π/7属于实数集所以,-1

sin(x+y)sin(x-y)=k,求cos^2x-cos^2y

-2k=cos2x-cos2y=[2(cosx)^2-1]-[2(cosy)^2-1]=2[(cosx)^2-(cosy)^2]cos^2x-cos^2y=-k

Sin x-sin y=2/3 cos x-cos y=1/2 求cos(x-y)

Sinx-siny=2/3cosx-cosy=1/2分别平方得(Sinx-siny)^2=(2/3)^2(cosx-cosy)^2=(1/2)^2展开相加得-2cos(x-y)+2=4/9+1/4-2

已知x∈[0,π/2],求函数y=cos(π/12 - x)-cos(5π/12 + x)的值域?

1.答案为:【根号2/2,根号2】y=-2sin(π/4)*sin(-π/6-x),(和差化积的公式)则y=根号2*sin(π/6+x),由x∈[0,π/2],则x+π/6∈[π/6,2π/3],由s

如何对函数y=cos x^2和y=cos 2x求导?

y=cosx^2y'=2cosx(COSX)'=-2SINXCOSXy=cos2xy'=-SIN2X(2X)'=-2SIN2X

y=cos(π/3-x)cos[π/2(x-1)]判断奇偶性

f(π/3)=f(-π/3)偶函数!再问:要证明啊这种办法只能用来验证是否是吧。。。。求证明的过程再答:f(a)=cos(π/3-a)cos(π/3+a)f(-a)=cos(π/3+a)cos(π/3

化简y=sin^2(x)+2sin(x)cos(x)+3cos^2(x)

y=sin²x+2sinxcosx+3cos²xy=(sin²x+cos²x)+2sinxcosx+(2cos²x-1)+1=1+sin2x+cos2

最近没有认真听数学已知x,y为锐角,cos(x+y)=12/13,cos(2x+y)=3/5,则cosx的值为?

cos(x+y)=12/13求的sin(x+y)=5/13cos(2x+y)=3/5求的sin(2x+y)=4/5cosx=cos((2x+y)-(x+y))=cos(2x+y)cos(x+y)+si

函数y=cos(x-π3

由x-π3∈[2kπ,2kπ+π],可得x∈[π3+2kπ , 4π3+2kπ](k∈Z),∴函数y=cos(x-π3)的单调递减区间是[π3+2kπ , 4π

函数y=cos(2x+π4

由2kπ≤2x+π4≤2kπ+π,即kπ-π8≤x≤kπ+3π8,k∈Z故函数的单调减区间为[kπ−π8,kπ+3π8](k∈Z),故答案为:[kπ−π8,kπ+3π8](k∈Z).

) y=cos(x-y)

1.两边求导得:y'=-sin(x-y)(1-y')解得y'=sin(x-y)/[sin(x-y)-1]2.y'=-e^-xy''=e^-xy'"=-e^-x3.y'"=(e^2x)'"(sinx)+