设函数y等于yx是由方程-搜答案-神马作文网

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)

xy+e^y=y+1（1）求d^2y/dx^2在x=0处的值：（1）两边分别对x求导：y+xy'+e^yy'=y'y/y'+x+e^y=1(2)(2)两边对x再求导一次：(y'y'-yy'')/y'^

两边对x求导：y'=(1+y')[sec(x+y)]^2得y'=[sec(x+y)]^2/{1-[sec(x+y)]^2}=1/{[cos(x+y)]^2-1}因此dy=dx/{[cos(x+y)]^

如图所示,最后求解是自上而下带入的

cos(xy)=x+y两边微分,得dx+dy-sin(xy)*(x*dy+y*dx)=0dx(1-ysin(xy))+dy(1-xsin(xy))=0dy/dx=(ysin(xy)-1)/(1-xsi

令F（x,y)=cos(xy)-x-yF'(x,y)x=-ysin(xy)-1对x求偏导F'(x,y)y=-xsin(xy)-1对y求偏导切线方程为：（x-0)/F'(x,y)=(y-1)/F'(x,

lny+x/y=0等式两边求导：y'*1/y+1/y+x*y'(-1/y²)=0(1/y-x/y²)y'=-1/y∴y'=(-1/y)/(1/y-x/y²)=-y/(y-

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/

cos(x+y)+y=1两边同时对x求导-(1+y~)sin(x+y)+y~=0可得：=(1+y~)sin(x+y)=sin(x+y)/(1-sin(x+y))

e^z-xyz=0z＝㏑x+㏑y+㏑z[偏z偏x]＝1/x+（1/z）[偏z偏x]（这里y看成常数）[偏z偏x]＝（1/x）/｛1-（1/z）｝＝z/[x(z-1)]

对X的偏导=yz/(e^z-xy)对Y的偏导=xz/(e^z-xy)

（2）△Z=2.1×0.8-2×1dz=Zx·△x+Zy·△y=1×0.1+2×（-02）第一题我在想先

网上有很多高数课后习题答案,你可以下载一个参考~e^y-e^x=xy两边求导,得e^y*y'-e^x=y+xy'(e^y-x)y'=(e^x+y)所以y'=(e^x+y)/(e^y-x)x=0时,原式

dz=-dx-dy

x^2+xy+y^2=42x+y+y'x+2yy'=0y'=-(2x+y)/(x+2y)在点（2,-2）处的切线斜率=1切线方程为：y+2=x-2,即x-y-4=0

1、2x+2y*dy/dx-y-x*dy/dx=02x-y=(x-2y)dy/dx所以dy/dx=（2x-y）/(x-2y)2、2y*dy/dx-2ay-2ax*dy/dx=0(2y-2ax)dy/d

e^x-e^y=sin(xy)e^x-e^y*y'=cos(xy)*(y+xy')y'=(e^x-ycos(xy))/(e^y+xcos(xy))dy=(e^x-ycos(xy))/(e^y+xcos

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]