设函数z z x y 由方程F(x z y,y z x)=0确定,求dz
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方程两边同时求x对y的导:y+xdy/dx+1/x+2ydy/dx=0,dy/dx=-(y+1/x)/(x+2y),dy=-(y+1/x)dx/(x+2y)
设f(x)=ax^2+bx+c所以有:ax^2+(b-1)x+c=0有实数根,0
y=1+xe^y两边对x求导得y'=e^y+xe^y*y'(是对x求导那么e^y就是一个复合函数了所以最后要在对y求导)(1-xe^y)y'=e^y∴y'=e^y/(1-xe^y)再问:还不是很明白这
e^z-z+xy^3=0偏z/偏x:z'e^z-z'+y^3=0y^3=z'(1-e^z)z'=y^3/(1-e^z)偏z/偏y:z'e^z-z'+3xy^2=0z'=3xy^2/(1-e^z)偏z/
这个题目要利用隐函数的求导法则.则sin(x^2+y)=xy(两边同时求导,还要结合复合函数的求导法则)cos(x^2+y)*(2x+y′)=y+xy′2xcos(x^2+y)-y=xy′-y′cos
两边对x求导:y'e^y+(1+y')cos(x+y)=0,1)这里可得到y'=-cos(x+y)/[e^y+cos(x+y)]再对1)求导:y"e^y+(y')^2e^y+y"cos(x+y)-(1
z=f(x,y,z),两边求微分(f'x表示函数f对变量x的偏导数,y、z同义)dz=f'x*dx+f'y*dy+f'z*dz(1-f'z)dz=f'x*dx+f'y*dy∴dz=(f'x*dx+f'
xy+y^2-2x=0y+xy'+2yy'-2=0(x+2y)y'=2-yy'=(2-y)/(x+2y)dy/dx=(2-y)/(x+2y)
设fi为f对第i个变量的偏导,i=1,2,3dz-f1(2x,x+y,yz)*2dx-f2(2x,x+y,yz)(dx+dy)-f3(2x,x+y,yz)*(ydz+zdy)=0==>dz=((2f1
两端对x求导数(把y看作x的函数),则1-y'=e^(xy)*(1*y+x*y')y'[xe^(xy)+1]=1-ye^(xy)dy/dx=y'=[1-ye^(xy)]/[xe^(xy)+1]
dz=-dx-dy
两边对x求导得:2yy'*f(x)+y^2f'(x)+f(x)+xf'(x)=2x得:y'=[2x-xf'(x)-y^2f'(x)]/(2yf(x)]dy=[2x-xf'(x)-y^2f'(x)]/(
(cos(x+y)-y)\(x-cos(x+y))
没错啊,dx/dt=cost/sint楼主可以把题目拍下来吗?再问:您看下红笔写的是标准答案黑色是我写的再答:答案是不是这个
F(x,y)=x^2+y^2-ln(x+2y)Fx=2x-1/(x+2y)Fy=2y-2/(x+2y)F(x)=-Fx/Fy=-[2x(x+2y)-1]/[2y(x+2y)-2]
两边对x求导:1+y'=y'e^y得dy/dx=y'=1/(e^y-1)