Internal problem ID [2672]
Internal file name [OUTPUT/2164_Sunday_June_05_2022_02_51_12_AM_44925127/index.tex
]
Book: Differential equations and linear algebra, Stephen W. Goode and Scott A Annin. Fourth
edition, 2015
Section: Chapter 1, First-Order Differential Equations. Section 1.8, Change of Variables. page
79
Problem number: Problem 16.
ODE order: 1.
ODE degree: 1.
The type(s) of ODE detected by this program :
Maple gives the following as the ode type
[[_homogeneous, `class A`], _dAlembert]
\[ \boxed {y^{\prime } x +y \ln \left (x \right )-\ln \left (y\right ) y=0} \]
In canonical form, the ODE is \begin {align*} y' &= F(x,y)\\ &= \frac {y \left (-\ln \left (x \right )+\ln \left (y \right )\right )}{x}\tag {1} \end {align*}
An ode of the form \(y' = \frac {M(x,y)}{N(x,y)}\) is called homogeneous if the functions \(M(x,y)\) and \(N(x,y)\) are both homogeneous functions and of the same order. Recall that a function \(f(x,y)\) is homogeneous of order \(n\) if \[ f(t^n x, t^n y)= t^n f(x,y) \] In this case, it can be seen that both \(M=-y \left (\ln \left (x \right )-\ln \left (y \right )\right )\) and \(N=x\) are both homogeneous and of the same order \(n=1\). Therefore this is a homogeneous ode. Since this ode is homogeneous, it is converted to separable ODE using the substitution \(u=\frac {y}{x}\), or \(y=ux\). Hence \[ \frac { \mathop {\mathrm {d}y}}{\mathop {\mathrm {d}x}}= \frac { \mathop {\mathrm {d}u}}{\mathop {\mathrm {d}x}}x + u \] Applying the transformation \(y=ux\) to the above ODE in (1) gives \begin {align*} \frac { \mathop {\mathrm {d}u}}{\mathop {\mathrm {d}x}}x + u &= u \ln \left (u \right )\\ \frac { \mathop {\mathrm {d}u}}{\mathop {\mathrm {d}x}} &= \frac {u \left (x \right ) \ln \left (u \left (x \right )\right )-u \left (x \right )}{x} \end {align*}
Or \[ u^{\prime }\left (x \right )-\frac {u \left (x \right ) \ln \left (u \left (x \right )\right )-u \left (x \right )}{x} = 0 \] Or \[ u^{\prime }\left (x \right ) x -u \left (x \right ) \ln \left (u \left (x \right )\right )+u \left (x \right ) = 0 \] Which is now solved as separable in \(u \left (x \right )\). Which is now solved in \(u \left (x \right )\). In canonical form the ODE is \begin {align*} u' &= F(x,u)\\ &= f( x) g(u)\\ &= \frac {u \left (\ln \left (u \right )-1\right )}{x} \end {align*}
Where \(f(x)=\frac {1}{x}\) and \(g(u)=\left (\ln \left (u \right )-1\right ) u\). Integrating both sides gives \begin{align*} \frac {1}{\left (\ln \left (u \right )-1\right ) u} \,du &= \frac {1}{x} \,d x \\ \int { \frac {1}{\left (\ln \left (u \right )-1\right ) u} \,du} &= \int {\frac {1}{x} \,d x} \\ \ln \left (\ln \left (u \right )-1\right )&=\ln \left (x \right )+c_{2} \\ \end{align*} Raising both side to exponential gives \begin {align*} \ln \left (u \right )-1 &= {\mathrm e}^{\ln \left (x \right )+c_{2}} \end {align*}
Which simplifies to \begin {align*} \ln \left (u \right )-1 &= c_{3} x \end {align*}
Now \(u\) in the above solution is replaced back by \(y\) using \(u=\frac {y}{x}\) which results in the solution \[ y = x \,{\mathrm e}^{1+c_{3} {\mathrm e}^{c_{2}} x} \]
The solution(s) found are the following \begin{align*} \tag{1} y &= x \,{\mathrm e}^{1+c_{3} {\mathrm e}^{c_{2}} x} \\ \end{align*}
Verification of solutions
\[
y = x \,{\mathrm e}^{1+c_{3} {\mathrm e}^{c_{2}} x}
\] Verified OK. {0 < x}
\[ \begin {array}{lll} & {} & \textrm {Let's solve}\hspace {3pt} \\ {} & {} & y^{\prime } x +y \ln \left (x \right )-\ln \left (y\right ) y=0 \\ \bullet & {} & \textrm {Highest derivative means the order of the ODE is}\hspace {3pt} 1 \\ {} & {} & y^{\prime } \\ \bullet & {} & \textrm {Solve for the highest derivative}\hspace {3pt} \\ {} & {} & y^{\prime }=\frac {-y \ln \left (x \right )+\ln \left (y\right ) y}{x} \end {array} \]
Maple trace
`Methods for first order ODEs: --- Trying classification methods --- trying a quadrature trying 1st order linear trying Bernoulli trying separable trying inverse linear trying homogeneous types: trying homogeneous G 1st order, trying the canonical coordinates of the invariance group <- 1st order, canonical coordinates successful <- homogeneous successful`
✓ Solution by Maple
Time used: 0.031 (sec). Leaf size: 12
dsolve(x*diff(y(x),x)+y(x)*ln(x)=y(x)*ln(y(x)),y(x), singsol=all)
\[ y \left (x \right ) = x \,{\mathrm e}^{c_{1} x +1} \]
✓ Solution by Mathematica
Time used: 0.257 (sec). Leaf size: 24
DSolve[x*y'[x]+y[x]*Log[x]==y[x]*Log[y[x]],y[x],x,IncludeSingularSolutions -> True]
\begin{align*} y(x)\to x e^{1+e^{c_1} x} \\ y(x)\to e x \\ \end{align*}