` xdy + 2 ydx = 0 , " when " x=2 , y=1 `

y log ydx-xdy=0

The solution of the differential equation xdy + ydx= xydx when y(1)=1 is

For y gt 0 and x in R, ydx + y^(2)dy = xdy where y = f(x). If f(1)=1, then the value of f(-3) is

xdy-ydx = 2x^(3)y(xdy+ydx) if y(1) = 1, then y(2) +y((1)/(2)) =

ydx-xdy + y ^ (2) cos xdx = 0

IF x cos ( y //x ) ( ydx + xdy)=y sin ( y // x) ( xdy - ydx ) y (1) = 2 pi then the value of 4 ( y (4) )/(pi ) cos (( y (4))/(4)) is :

(xdx-yes) / (xdy-ydx) = sqrt ((1 + x ^ (2) -y ^ (2)) / (x ^ (2) -y ^ (2)))

solve (xdx + yes) / (xdy-ydx) = sqrt ((a ^ (2) -x ^ (2) -y ^ (2)) / (x ^ (2) + y ^ (2)))

Solve (xdx + yes) / (xdy-ydx) = sqrt ((a ^ (2) -x ^ (2) -y ^ (2)) / (x ^ (2) + y ^ (2)))

The solution of (xdx + is) / (ydx-xdy) = (x sin (x ^ (2) + y ^ (2))) / (y ^ (3)) is