Answer
$y^2=4x$
Work Step by Step
We are given:
$$2xdy-ydx=0$$
$$2xdy=ydx$$
$$\frac{dy}{dx}=\frac{y}{2x}$$
$$2\frac{dy}{y}=\frac{dx}{x}$$
Intergrating both sides with respect to x.
$$2\ln (y)=\ln (x) + c$$
$$\ln (y^2)=\ln C(x)$$
Since $y(1)=2$
$$\rightarrow 2^2=C.1$$
$$C=4$$
Therefore, the equation is equal to $y^2=4x$.
