(y'-y/x)/(1+y'y/x)=√3/3 x=0时,y=0 这个微分方程怎么解请问……
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y'/y=1/x
x-y/x-x+y/y-(x+y)(x-y)/y² y/x=2
先化简 再求值 (2x-y)(y+x)-(x-2y)(2y+x)-(-3y+x)^2其(√x+1)+y^2+4=-4y
化简 x / y(x+y) - y / x(x+y) =
(x+y)(x-y)+4(y-1)
x+x+y+y+y=21 ,x+x+y+y+y+y+y=27 ,x ,y=?
x+x+y+y+y=21 ,x+x+y+y+y+y+y=27 ,x ,y=?
x(x+y)(x-y)-y(y+x)(y-x)=(x-y)( )填空
y'-(1/x)y=xe^-x
{(x,y) |x|+|y|
x>y?x:y
[(y*y*y-y)/(xy+1)*(xy+1)-(x+y)*(x+y)]/[(x+y)*y/(x+1)]其中x=-11,y=1/12,化简再求值.
y(x+y)+(x-y)²-(x+y)(x-y),其中x=-1/3,y=3
(x-y)(x+y)-(x+y)^2+2y(y-x),其中x=1,y=3.
2y(x+二分之一y)-[(x+y)(x-y)+2y(y+x)],其中|x-1|=2
解常微分方程:y/x=y'+√(1+y'^2),y=f(x)
常微分方程y'=(x+y)ln(x+y)-1
y'=(x-y+1)/(x+y-3)通解