由方程x2 y2=9所确定的隐函数的导数为-搜答案-大师作文网

y=x+lny两边同时求导得dy/dx=1+1/y*dy/dx(1-1/y)dy/dx=1dy/dx=1/(1-1/y)=y/(y-1)

方程两边求关x的导数ddx(xy)＝(y+xdydx)； ddxex+y＝ex+y(1+dydx)；所以有（y+xdy

dz=y*x^(y-1)/cosz*dx+x^y*lnx/cosz*dy

2xdx+ydx+xdy+2ydy=0(x+2y)dy=-(2x+y)dxdy=-(2x+y)/(x+2y)×dx

1、（1）两边对x求导得：4x³-4y³y'=-4y-4xy'解得：y'=(x³+y)/(y³-x)（2）方程化为：arctan(y/x)=(1/2)ln(x&

e^y+xy-e=0d(e^y)+d(xy)-d(e)=0e^ydy+xdy+ydx=0(e^y+x)dy=-ydxdy/dx=-y/(e^y+x)

方程两边同时对x求导得2yy'-3(y+xy')=0整理化简得y'=3y/(2y-3x)即dy/dx=3y/(2y-3x)

将原方程两边微分得d[xe^y+sin(xy)]=0→e^ydx+xe^ydy+cos(xy)(ydx+xdy)=0→移项[xe^y+xcos(xy)]dy=-[e^y+ycos(xy)]dx整理→d

这道题考查隐函数求导方法,求出x=0的倒数就是切线的斜率啦,k1=y‘,然后法线的斜率就是-1/y’.x=0代入方程,得sin0+lny=0即lny=-1解得y=1/e也就是说x=0处曲线上的点是（0

y'=cos(x+y)(1+y')y'=cos(x+y)/(1-cos(x+y))

取对数xlny=ylnx求导lny+x*1/y*y'=y'*lnx+y*1/x(x/y-lnx)y'=y/x-lny所以dy/dx=(y/x-lny)/(x/y-lnx)

y'=-2sin2(x+y)-2y'sin2(x+y)(1+2sin2(x+y))y'=-2sin2(x+y)y'=-2sin2(x+y)/(1+2sin2(x+y))

y+xy'+y'/y=0//对xy和lny分别求导,注意y是x的函数y'(x+1/y)=-y//移项,合并同类项y'=-y²/(xy+1)

xy+lny=1两边求导y+xy'+y'/y=0y'=-y/(x+1/y)=-y^2/(xy+1)

两边求导：y+xy'+y‘/y=0将x=0带入得到：y'=--y^2

-e^2

xe^f(y)=ln2009e^ye^f(y)+xe^f(y)*f'(y)*y'=y'e^f(y)(1+xf'y')=y'e^f*f'*y

y+x*y'=e^(x+y)*(1+y')∴dy/dx=[e^(x+y)-y]/[x-e^(x+y)].

设dy/dx=y'.求导,2yy'-2y-2xy'=0dy/dx=y'=y/(y-x)

两边对x求导：y'=e^y+xy'e^y得：y'=e^y/(1-xe^y)再问：怎么感觉不对捏再答：是不是指数为y+1,而不是y呀？再问：指数就是y吖我题目没错再答：指数是y的话，我做的就没错。