problem 3 (iv)

2.1.16 problem 3 (iv)

Solved as ﬁrst order homogeneous class A ode
Solved as ﬁrst order homogeneous class D2 ode
Solved as ﬁrst order homogeneous class Maple C ode
Solved as ﬁrst order Exact ode
Solved as ﬁrst order isobaric ode
Solved using Lie symmetry for ﬁrst order ode
Maple step by step solution
Maple trace
Maple dsolve solution
Mathematica DSolve solution

Internal problem ID [18179]
Book : Elementary Diﬀerential Equations. By R.L.E. Schwarzenberger. Chapman and Hall. London. First Edition (1969)
Section : Chapter 3. Solutions of ﬁrst-order equations. Exercises at page 47
Problem number : 3 (iv)
Date solved : Thursday, December 19, 2024 at 01:52:21 PM
CAS classiﬁcation : [[_homogeneous, `class A`], _rational, _dAlembert]

Solve

\begin{align*} \left (t^{2}-x^{2}\right ) x^{\prime }&=x t \end{align*}

Solved as ﬁrst order homogeneous class A ode

Time used: 0.650 (sec)

In canonical form, the ODE is

\begin{align*} x' &= F(t,x)\\ &= -\frac {x t}{-t^{2}+x^{2}}\tag {1} \end{align*}

An ode of the form \(x' = \frac {M(t,x)}{N(t,x)}\) is called homogeneous if the functions \(M(t,x)\) and \(N(t,x)\) are both homogeneous functions and of the same order. Recall that a function \(f(t,x)\) is homogeneous of order \(n\) if

\[ f(t^n t, t^n x)= t^n f(t,x) \]

In this case, it can be seen that both \(M=t x\) and \(N=t^{2}-x^{2}\) are both homogeneous and of the same order \(n=2\). Therefore this is a homogeneous ode. Since this ode is homogeneous, it is converted to separable ODE using the substitution \(u=\frac {x}{t}\), or \(x=ut\). Hence

\[ \frac { \mathop {\mathrm {d}x}}{\mathop {\mathrm {d}t}}= \frac { \mathop {\mathrm {d}u}}{\mathop {\mathrm {d}t}}t + u \]

Applying the transformation \(x=ut\) to the above ODE in (1) gives

\begin{align*} \frac { \mathop {\mathrm {d}u}}{\mathop {\mathrm {d}t}}t + u &= -\frac {u}{u^{2}-1}\\ \frac { \mathop {\mathrm {d}u}}{\mathop {\mathrm {d}t}} &= \frac {-\frac {u \left (t \right )}{u \left (t \right )^{2}-1}-u \left (t \right )}{t} \end{align*}

\[ u^{\prime }\left (t \right )-\frac {-\frac {u \left (t \right )}{u \left (t \right )^{2}-1}-u \left (t \right )}{t} = 0 \]

\[ u^{\prime }\left (t \right ) u \left (t \right )^{2} t +u \left (t \right )^{3}-u^{\prime }\left (t \right ) t = 0 \]

\[ t \left (u \left (t \right )^{2}-1\right ) u^{\prime }\left (t \right )+u \left (t \right )^{3} = 0 \]

Which is now solved as separable in \(u \left (t \right )\).

The ode \(u^{\prime }\left (t \right ) = -\frac {u \left (t \right )^{3}}{t \left (u \left (t \right )^{2}-1\right )}\) is separable as it can be written as

\begin{align*} u^{\prime }\left (t \right )&= -\frac {u \left (t \right )^{3}}{t \left (u \left (t \right )^{2}-1\right )}\\ &= f(t) g(u) \end{align*}

Where

\begin{align*} f(t) &= -\frac {1}{t}\\ g(u) &= \frac {u^{3}}{u^{2}-1} \end{align*}

Integrating gives

\begin{align*} \int { \frac {1}{g(u)} \,du} &= \int { f(t) \,dt}\\ \int { \frac {u^{2}-1}{u^{3}}\,du} &= \int { -\frac {1}{t} \,dt}\\ \ln \left (u \left (t \right )\right )+\frac {1}{2 u \left (t \right )^{2}}&=\ln \left (\frac {1}{t}\right )+c_1 \end{align*}

We now need to ﬁnd the singular solutions, these are found by ﬁnding for what values \(g(u)\) is zero, since we had to divide by this above. Solving \(g(u)=0\) or \(\frac {u^{3}}{u^{2}-1}=0\) for \(u \left (t \right )\) gives

\begin{align*} u \left (t \right )&=0 \end{align*}

Now we go over each such singular solution and check if it veriﬁes the ode itself and any initial conditions given. If it does not then the singular solution will not be used.

Therefore the solutions found are

\begin{align*} \ln \left (u \left (t \right )\right )+\frac {1}{2 u \left (t \right )^{2}} = \ln \left (\frac {1}{t}\right )+c_1\\ u \left (t \right ) = 0 \end{align*}

Solving for \(u \left (t \right )\) gives

\begin{align*} u \left (t \right ) &= 0 \\ u \left (t \right ) &= \sqrt {-\frac {1}{\operatorname {LambertW}\left (-{\mathrm e}^{-2 c_1} t^{2}\right )}} \\ \end{align*}

Converting \(u \left (t \right ) = 0\) back to \(x\) gives

\begin{align*} x = 0 \end{align*}

Converting \(u \left (t \right ) = \sqrt {-\frac {1}{\operatorname {LambertW}\left (-{\mathrm e}^{-2 c_1} t^{2}\right )}}\) back to \(x\) gives

\begin{align*} x = t \sqrt {-\frac {1}{\operatorname {LambertW}\left (-{\mathrm e}^{-2 c_1} t^{2}\right )}} \end{align*}

pict — Figure 2.18: Slope ﬁeld plot
\(\left (t^{2}-x^{2}\right ) x^{\prime } = x t\)

Summary of solutions found

\begin{align*} x &= 0 \\ x &= t \sqrt {-\frac {1}{\operatorname {LambertW}\left (-{\mathrm e}^{-2 c_1} t^{2}\right )}} \\ \end{align*}

Solved as ﬁrst order homogeneous class D2 ode

Time used: 0.530 (sec)

Applying change of variables \(x = u \left (t \right ) t\), then the ode becomes

\begin{align*} \left (t^{2}-u \left (t \right )^{2} t^{2}\right ) \left (u^{\prime }\left (t \right ) t +u \left (t \right )\right ) = u \left (t \right ) t^{2} \end{align*}

Which is now solved The ode \(u^{\prime }\left (t \right ) = -\frac {u \left (t \right )^{3}}{\left (u \left (t \right )^{2}-1\right ) t}\) is separable as it can be written as

\begin{align*} u^{\prime }\left (t \right )&= -\frac {u \left (t \right )^{3}}{\left (u \left (t \right )^{2}-1\right ) t}\\ &= f(t) g(u) \end{align*}

Where

\begin{align*} f(t) &= -\frac {1}{t}\\ g(u) &= \frac {u^{3}}{u^{2}-1} \end{align*}

Integrating gives

\begin{align*} u \left (t \right )&=0 \end{align*}

Now we go over each such singular solution and check if it veriﬁes the ode itself and any initial conditions given. If it does not then the singular solution will not be used.

Therefore the solutions found are

\begin{align*} \ln \left (u \left (t \right )\right )+\frac {1}{2 u \left (t \right )^{2}} = \ln \left (\frac {1}{t}\right )+c_1\\ u \left (t \right ) = 0 \end{align*}

Solving for \(u \left (t \right )\) gives

\begin{align*} u \left (t \right ) &= 0 \\ u \left (t \right ) &= \sqrt {-\frac {1}{\operatorname {LambertW}\left (-{\mathrm e}^{-2 c_1} t^{2}\right )}} \\ \end{align*}

Converting \(u \left (t \right ) = 0\) back to \(x\) gives

\begin{align*} x = 0 \end{align*}

Converting \(u \left (t \right ) = \sqrt {-\frac {1}{\operatorname {LambertW}\left (-{\mathrm e}^{-2 c_1} t^{2}\right )}}\) back to \(x\) gives

\begin{align*} x = t \sqrt {-\frac {1}{\operatorname {LambertW}\left (-{\mathrm e}^{-2 c_1} t^{2}\right )}} \end{align*}

Summary of solutions found

\begin{align*} x &= 0 \\ x &= t \sqrt {-\frac {1}{\operatorname {LambertW}\left (-{\mathrm e}^{-2 c_1} t^{2}\right )}} \\ \end{align*}

Summary of solutions found

\begin{align*} x &= 0 \\ x &= t \sqrt {-\frac {1}{\operatorname {LambertW}\left (-{\mathrm e}^{-2 c_1} t^{2}\right )}} \\ \end{align*}

Solved as ﬁrst order homogeneous class Maple C ode

Time used: 1.020 (sec)

Let \(Y = x -y_{0}\) and \(X = t -x_{0}\) then the above is transformed to new ode in \(Y(X)\)

\[ \frac {d}{d X}Y \left (X \right ) = -\frac {\left (Y \left (X \right )+y_{0} \right ) \left (x_{0} +X \right )}{\left (Y \left (X \right )+y_{0} \right )^{2}-\left (x_{0} +X \right )^{2}} \]

Solving for possible values of \(x_{0}\) and \(y_{0}\) which makes the above ode a homogeneous ode results in

\begin{align*} x_{0}&=0\\ y_{0}&=0 \end{align*}

Using these values now it is possible to easily solve for \(Y \left (X \right )\). The above ode now becomes

\begin{align*} \frac {d}{d X}Y \left (X \right ) = -\frac {Y \left (X \right ) X}{-X^{2}+Y \left (X \right )^{2}} \end{align*}

In canonical form, the ODE is

\begin{align*} Y' &= F(X,Y)\\ &= -\frac {Y X}{-X^{2}+Y^{2}}\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 \(M=Y X\) and \(N=X^{2}-Y^{2}\) are both homogeneous and of the same order \(n=2\). 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 &= -\frac {u}{u^{2}-1}\\ \frac { \mathop {\mathrm {d}u}}{\mathop {\mathrm {d}X}} &= \frac {-\frac {u \left (X \right )}{u \left (X \right )^{2}-1}-u \left (X \right )}{X} \end{align*}

\[ \frac {d}{d X}u \left (X \right )-\frac {-\frac {u \left (X \right )}{u \left (X \right )^{2}-1}-u \left (X \right )}{X} = 0 \]

\[ \left (\frac {d}{d X}u \left (X \right )\right ) u \left (X \right )^{2} X +u \left (X \right )^{3}-\left (\frac {d}{d X}u \left (X \right )\right ) X = 0 \]

\[ X \left (u \left (X \right )^{2}-1\right ) \left (\frac {d}{d X}u \left (X \right )\right )+u \left (X \right )^{3} = 0 \]

Which is now solved as separable in \(u \left (X \right )\).

The ode \(\frac {d}{d X}u \left (X \right ) = -\frac {u \left (X \right )^{3}}{X \left (u \left (X \right )^{2}-1\right )}\) is separable as it can be written as

\begin{align*} \frac {d}{d X}u \left (X \right )&= -\frac {u \left (X \right )^{3}}{X \left (u \left (X \right )^{2}-1\right )}\\ &= f(X) g(u) \end{align*}

Where

\begin{align*} f(X) &= -\frac {1}{X}\\ g(u) &= \frac {u^{3}}{u^{2}-1} \end{align*}

Integrating gives

\begin{align*} \int { \frac {1}{g(u)} \,du} &= \int { f(X) \,dX}\\ \int { \frac {u^{2}-1}{u^{3}}\,du} &= \int { -\frac {1}{X} \,dX}\\ \ln \left (u \left (X \right )\right )+\frac {1}{2 u \left (X \right )^{2}}&=\ln \left (\frac {1}{X}\right )+c_1 \end{align*}

\begin{align*} u \left (X \right )&=0 \end{align*}

Now we go over each such singular solution and check if it veriﬁes the ode itself and any initial conditions given. If it does not then the singular solution will not be used.

Therefore the solutions found are

\begin{align*} \ln \left (u \left (X \right )\right )+\frac {1}{2 u \left (X \right )^{2}} = \ln \left (\frac {1}{X}\right )+c_1\\ u \left (X \right ) = 0 \end{align*}

Solving for \(u \left (X \right )\) gives

\begin{align*} u \left (X \right ) &= 0 \\ u \left (X \right ) &= \sqrt {-\frac {1}{\operatorname {LambertW}\left (-{\mathrm e}^{-2 c_1} X^{2}\right )}} \\ \end{align*}

Converting \(u \left (X \right ) = 0\) back to \(Y \left (X \right )\) gives

\begin{align*} Y \left (X \right ) = 0 \end{align*}

Converting \(u \left (X \right ) = \sqrt {-\frac {1}{\operatorname {LambertW}\left (-{\mathrm e}^{-2 c_1} X^{2}\right )}}\) back to \(Y \left (X \right )\) gives

\begin{align*} Y \left (X \right ) = X \sqrt {-\frac {1}{\operatorname {LambertW}\left (-{\mathrm e}^{-2 c_1} X^{2}\right )}} \end{align*}

Using the solution for \(Y(X)\)

\begin{align*} Y \left (X \right ) = 0\tag {A} \end{align*}

And replacing back terms in the above solution using

\begin{align*} Y &= x +y_{0}\\ X &= t +x_{0} \end{align*}

\begin{align*} Y &= x\\ X &= t \end{align*}

Then the solution in \(x\) becomes using EQ (A)

\begin{align*} x = 0 \end{align*}

Using the solution for \(Y(X)\)

\begin{align*} Y \left (X \right ) = X \sqrt {-\frac {1}{\operatorname {LambertW}\left (-{\mathrm e}^{-2 c_1} X^{2}\right )}}\tag {A} \end{align*}

And replacing back terms in the above solution using

\begin{align*} Y &= x +y_{0}\\ X &= t +x_{0} \end{align*}

\begin{align*} Y &= x\\ X &= t \end{align*}

Then the solution in \(x\) becomes using EQ (A)

\begin{align*} x = t \sqrt {-\frac {1}{\operatorname {LambertW}\left (-{\mathrm e}^{-2 c_1} t^{2}\right )}} \end{align*}

Solved as ﬁrst order Exact ode

Time used: 0.237 (sec)

To solve an ode of the form

\begin{equation} M\left ( x,y\right ) +N\left ( x,y\right ) \frac {dy}{dx}=0\tag {A}\end{equation}

We assume there exists a function \(\phi \left ( x,y\right ) =c\) where \(c\) is constant, that satisﬁes the ode. Taking derivative of \(\phi \) w.r.t. \(x\) gives

\[ \frac {d}{dx}\phi \left ( x,y\right ) =0 \]

Hence

\begin{equation} \frac {\partial \phi }{\partial x}+\frac {\partial \phi }{\partial y}\frac {dy}{dx}=0\tag {B}\end{equation}

Comparing (A,B) shows that

\begin{align*} \frac {\partial \phi }{\partial x} & =M\\ \frac {\partial \phi }{\partial y} & =N \end{align*}

But since \(\frac {\partial ^{2}\phi }{\partial x\partial y}=\frac {\partial ^{2}\phi }{\partial y\partial x}\) then for the above to be valid, we require that

\[ \frac {\partial M}{\partial y}=\frac {\partial N}{\partial x}\]

If the above condition is satisﬁed, then the original ode is called exact. We still need to determine \(\phi \left ( x,y\right ) \) but at least we know now that we can do that since the condition \(\frac {\partial ^{2}\phi }{\partial x\partial y}=\frac {\partial ^{2}\phi }{\partial y\partial x}\) is satisﬁed. If this condition is not satisﬁed then this method will not work and we have to now look for an integrating factor to force this condition, which might or might not exist. The ﬁrst step is to write the ODE in standard form to check for exactness, which is

\[ M(t,x) \mathop {\mathrm {d}t}+ N(t,x) \mathop {\mathrm {d}x}=0 \tag {1A} \]

Therefore

\begin{align*} \left (t^{2}-x^{2}\right )\mathop {\mathrm {d}x} &= \left (t x\right )\mathop {\mathrm {d}t}\\ \left (-t x\right )\mathop {\mathrm {d}t} + \left (t^{2}-x^{2}\right )\mathop {\mathrm {d}x} &= 0 \tag {2A} \end{align*}

Comparing (1A) and (2A) shows that

\begin{align*} M(t,x) &= -t x\\ N(t,x) &= t^{2}-x^{2} \end{align*}

The next step is to determine if the ODE is is exact or not. The ODE is exact when the following condition is satisﬁed

\[ \frac {\partial M}{\partial x} = \frac {\partial N}{\partial t} \]

Using result found above gives

\begin{align*} \frac {\partial M}{\partial x} &= \frac {\partial }{\partial x} \left (-t x\right )\\ &= -t \end{align*}

And

\begin{align*} \frac {\partial N}{\partial t} &= \frac {\partial }{\partial t} \left (t^{2}-x^{2}\right )\\ &= 2 t \end{align*}

Since \(\frac {\partial M}{\partial x} \neq \frac {\partial N}{\partial t}\), then the ODE is not exact. Since the ODE is not exact, we will try to ﬁnd an integrating factor to make it exact. Let

\begin{align*} A &= \frac {1}{N} \left (\frac {\partial M}{\partial x} - \frac {\partial N}{\partial t} \right ) \\ &=\frac {1}{t^{2}-x^{2}}\left ( \left ( -t\right ) - \left (2 t \right ) \right ) \\ &=-\frac {3 t}{t^{2}-x^{2}} \end{align*}

Since \(A\) depends on \(x\), it can not be used to obtain an integrating factor. We will now try a second method to ﬁnd an integrating factor. Let

\begin{align*} B &= \frac {1}{M} \left ( \frac {\partial N}{\partial t} - \frac {\partial M}{\partial x} \right ) \\ &=-\frac {1}{t x}\left ( \left ( 2 t\right ) - \left (-t \right ) \right ) \\ &=-\frac {3}{x} \end{align*}

Since \(B\) does not depend on \(t\), it can be used to obtain an integrating factor. Let the integrating factor be \(\mu \). Then

\begin{align*} \mu &= e^{\int B \mathop {\mathrm {d}x}} \\ &= e^{\int -\frac {3}{x}\mathop {\mathrm {d}x} } \end{align*}

The result of integrating gives

\begin{align*} \mu &= e^{-3 \ln \left (x \right ) } \\ &= \frac {1}{x^{3}} \end{align*}

\(M\) and \(N\) are now multiplied by this integrating factor, giving new \(M\) and new \(N\) which are called \(\overline {M}\) and \(\overline {N}\) so not to confuse them with the original \(M\) and \(N\).

\begin{align*} \overline {M} &=\mu M \\ &= \frac {1}{x^{3}}\left (-t x\right ) \\ &= -\frac {t}{x^{2}} \end{align*}

And

\begin{align*} \overline {N} &=\mu N \\ &= \frac {1}{x^{3}}\left (t^{2}-x^{2}\right ) \\ &= \frac {t^{2}-x^{2}}{x^{3}} \end{align*}

So now a modiﬁed ODE is obtained from the original ODE which will be exact and can be solved using the standard method. The modiﬁed ODE is

\begin{align*} \overline {M} + \overline {N} \frac { \mathop {\mathrm {d}x}}{\mathop {\mathrm {d}t}} &= 0 \\ \left (-\frac {t}{x^{2}}\right ) + \left (\frac {t^{2}-x^{2}}{x^{3}}\right ) \frac { \mathop {\mathrm {d}x}}{\mathop {\mathrm {d}t}} &= 0 \end{align*}

The following equations are now set up to solve for the function \(\phi \left (t,x\right )\)

\begin{align*} \frac {\partial \phi }{\partial t } &= \overline {M}\tag {1} \\ \frac {\partial \phi }{\partial x } &= \overline {N}\tag {2} \end{align*}

Integrating (1) w.r.t. \(t\) gives

\begin{align*} \int \frac {\partial \phi }{\partial t} \mathop {\mathrm {d}t} &= \int \overline {M}\mathop {\mathrm {d}t} \\ \int \frac {\partial \phi }{\partial t} \mathop {\mathrm {d}t} &= \int -\frac {t}{x^{2}}\mathop {\mathrm {d}t} \\ \tag{3} \phi &= -\frac {t^{2}}{2 x^{2}}+ f(x) \\ \end{align*}

Where \(f(x)\) is used for the constant of integration since \(\phi \) is a function of both \(t\) and \(x\). Taking derivative of equation (3) w.r.t \(x\) gives

\begin{equation} \tag{4} \frac {\partial \phi }{\partial x} = \frac {t^{2}}{x^{3}}+f'(x) \end{equation}

But equation (2) says that \(\frac {\partial \phi }{\partial x} = \frac {t^{2}-x^{2}}{x^{3}}\). Therefore equation (4) becomes

\begin{equation} \tag{5} \frac {t^{2}-x^{2}}{x^{3}} = \frac {t^{2}}{x^{3}}+f'(x) \end{equation}

Solving equation (5) for \( f'(x)\) gives

\[ f'(x) = -\frac {1}{x} \]

Integrating the above w.r.t \(x\) gives

\begin{align*} \int f'(x) \mathop {\mathrm {d}x} &= \int \left ( -\frac {1}{x}\right ) \mathop {\mathrm {d}x} \\ f(x) &= -\ln \left (x \right )+ c_1 \\ \end{align*}

Where \(c_1\) is constant of integration. Substituting result found above for \(f(x)\) into equation (3) gives \(\phi \)

\[ \phi = -\frac {t^{2}}{2 x^{2}}-\ln \left (x \right )+ c_1 \]

But since \(\phi \) itself is a constant function, then let \(\phi =c_2\) where \(c_2\) is new constant and combining \(c_1\) and \(c_2\) constants into the constant \(c_1\) gives the solution as

\[ c_1 = -\frac {t^{2}}{2 x^{2}}-\ln \left (x \right ) \]

Solving for \(x\) gives

\begin{align*} x &= {\mathrm e}^{\frac {\operatorname {LambertW}\left (-t^{2} {\mathrm e}^{2 c_1}\right )}{2}-c_1} \\ \end{align*}

Summary of solutions found

\begin{align*} x &= {\mathrm e}^{\frac {\operatorname {LambertW}\left (-t^{2} {\mathrm e}^{2 c_1}\right )}{2}-c_1} \\ \end{align*}

Solved as ﬁrst order isobaric ode

Time used: 0.615 (sec)

Solving for \(x'\) gives

\begin{align*} \tag{1} x' &= -\frac {x t}{x^{2}-t^{2}} \\ \end{align*}

Each of the above ode’s is now solved An ode \(x^{\prime }=f(t,x)\) is isobaric if

\[ f(t t, t^m x) = t^{m-1} f(t,x)\tag {1} \]

Where here

\[ f(t,x) = -\frac {x t}{x^{2}-t^{2}}\tag {2} \]

\(m\) is the order of isobaric. Substituting (2) into (1) and solving for \(m\) gives

\[ m = 1 \]

Since the ode is isobaric of order \(m=1\), then the substitution

\begin{align*} x&=u t^m \\ &=u t \end{align*}

Converts the ODE to a separable in \(u \left (t \right )\). Performing this substitution gives

\[ u \left (t \right )+t u^{\prime }\left (t \right ) = -\frac {t^{2} u \left (t \right )}{t^{2} u \left (t \right )^{2}-t^{2}} \]

The ode \(u^{\prime }\left (t \right ) = -\frac {u \left (t \right )^{3}}{\left (u \left (t \right )^{2}-1\right ) t}\) is separable as it can be written as

\begin{align*} u^{\prime }\left (t \right )&= -\frac {u \left (t \right )^{3}}{\left (u \left (t \right )^{2}-1\right ) t}\\ &= f(t) g(u) \end{align*}

Where

\begin{align*} f(t) &= -\frac {1}{t}\\ g(u) &= \frac {u^{3}}{u^{2}-1} \end{align*}

Integrating gives

\begin{align*} u \left (t \right )&=0 \end{align*}

Now we go over each such singular solution and check if it veriﬁes the ode itself and any initial conditions given. If it does not then the singular solution will not be used.

Therefore the solutions found are

\begin{align*} \ln \left (u \left (t \right )\right )+\frac {1}{2 u \left (t \right )^{2}} = \ln \left (\frac {1}{t}\right )+c_1\\ u \left (t \right ) = 0 \end{align*}

Solving for \(u \left (t \right )\) gives

\begin{align*} u \left (t \right ) &= 0 \\ u \left (t \right ) &= \sqrt {-\frac {1}{\operatorname {LambertW}\left (-{\mathrm e}^{-2 c_1} t^{2}\right )}} \\ \end{align*}

Converting \(u \left (t \right ) = 0\) back to \(x\) gives

\begin{align*} \frac {x}{t} = 0 \end{align*}

Converting \(u \left (t \right ) = \sqrt {-\frac {1}{\operatorname {LambertW}\left (-{\mathrm e}^{-2 c_1} t^{2}\right )}}\) back to \(x\) gives

\begin{align*} \frac {x}{t} = \sqrt {-\frac {1}{\operatorname {LambertW}\left (-{\mathrm e}^{-2 c_1} t^{2}\right )}} \end{align*}

Solving for \(x\) gives

\begin{align*} x &= 0 \\ x &= t \sqrt {-\frac {1}{\operatorname {LambertW}\left (-{\mathrm e}^{-2 c_1} t^{2}\right )}} \\ \end{align*}

Summary of solutions found

\begin{align*} x &= 0 \\ x &= t \sqrt {-\frac {1}{\operatorname {LambertW}\left (-{\mathrm e}^{-2 c_1} t^{2}\right )}} \\ \end{align*}

Solved using Lie symmetry for ﬁrst order ode

Time used: 0.829 (sec)

Writing the ode as

\begin{align*} x^{\prime }&=-\frac {x t}{-t^{2}+x^{2}}\\ x^{\prime }&= \omega \left ( t,x\right ) \end{align*}

The condition of Lie symmetry is the linearized PDE given by

\begin{align*} \eta _{t}+\omega \left ( \eta _{x}-\xi _{t}\right ) -\omega ^{2}\xi _{x}-\omega _{t}\xi -\omega _{x}\eta =0\tag {A} \end{align*}

To determine \(\xi ,\eta \) then (A) is solved using ansatz. Making bivariate polynomials of degree 1 to use as anstaz gives

\begin{align*} \tag{1E} \xi &= t a_{2}+x a_{3}+a_{1} \\ \tag{2E} \eta &= t b_{2}+x b_{3}+b_{1} \\ \end{align*}

Where the unknown coeﬃcients are

\[ \{a_{1}, a_{2}, a_{3}, b_{1}, b_{2}, b_{3}\} \]

Substituting equations (1E,2E) and \(\omega \) into (A) gives

\begin{equation} \tag{5E} b_{2}-\frac {x t \left (b_{3}-a_{2}\right )}{-t^{2}+x^{2}}-\frac {x^{2} t^{2} a_{3}}{\left (-t^{2}+x^{2}\right )^{2}}-\left (-\frac {x}{-t^{2}+x^{2}}-\frac {2 x \,t^{2}}{\left (-t^{2}+x^{2}\right )^{2}}\right ) \left (t a_{2}+x a_{3}+a_{1}\right )-\left (-\frac {t}{-t^{2}+x^{2}}+\frac {2 x^{2} t}{\left (-t^{2}+x^{2}\right )^{2}}\right ) \left (t b_{2}+x b_{3}+b_{1}\right ) = 0 \end{equation}

Putting the above in normal form gives

\[ -\frac {3 t^{2} x^{2} b_{2}-2 t \,x^{3} a_{2}+2 t \,x^{3} b_{3}-x^{4} a_{3}-x^{4} b_{2}+t^{3} b_{1}-t^{2} x a_{1}+t \,x^{2} b_{1}-x^{3} a_{1}}{\left (t^{2}-x^{2}\right )^{2}} = 0 \]

Setting the numerator to zero gives

\begin{equation} \tag{6E} -3 t^{2} x^{2} b_{2}+2 t \,x^{3} a_{2}-2 t \,x^{3} b_{3}+x^{4} a_{3}+x^{4} b_{2}-t^{3} b_{1}+t^{2} x a_{1}-t \,x^{2} b_{1}+x^{3} a_{1} = 0 \end{equation}

Looking at the above PDE shows the following are all the terms with \(\{t, x\}\) in them.

\[ \{t, x\} \]

The following substitution is now made to be able to collect on all terms with \(\{t, x\}\) in them

\[ \{t = v_{1}, x = v_{2}\} \]

The above PDE (6E) now becomes

\begin{equation} \tag{7E} 2 a_{2} v_{1} v_{2}^{3}+a_{3} v_{2}^{4}-3 b_{2} v_{1}^{2} v_{2}^{2}+b_{2} v_{2}^{4}-2 b_{3} v_{1} v_{2}^{3}+a_{1} v_{1}^{2} v_{2}+a_{1} v_{2}^{3}-b_{1} v_{1}^{3}-b_{1} v_{1} v_{2}^{2} = 0 \end{equation}

Collecting the above on the terms \(v_i\) introduced, and these are

\[ \{v_{1}, v_{2}\} \]

Equation (7E) now becomes

\begin{equation} \tag{8E} -b_{1} v_{1}^{3}-3 b_{2} v_{1}^{2} v_{2}^{2}+a_{1} v_{1}^{2} v_{2}+\left (2 a_{2}-2 b_{3}\right ) v_{1} v_{2}^{3}-b_{1} v_{1} v_{2}^{2}+\left (a_{3}+b_{2}\right ) v_{2}^{4}+a_{1} v_{2}^{3} = 0 \end{equation}

Setting each coeﬃcients in (8E) to zero gives the following equations to solve

\begin{align*} a_{1}&=0\\ -b_{1}&=0\\ -3 b_{2}&=0\\ 2 a_{2}-2 b_{3}&=0\\ a_{3}+b_{2}&=0 \end{align*}

Solving the above equations for the unknowns gives

\begin{align*} a_{1}&=0\\ a_{2}&=b_{3}\\ a_{3}&=0\\ b_{1}&=0\\ b_{2}&=0\\ b_{3}&=b_{3} \end{align*}

Substituting the above solution in the anstaz (1E,2E) (using \(1\) as arbitrary value for any unknown in the RHS) gives

\begin{align*} \xi &= t \\ \eta &= x \\ \end{align*}

Shifting is now applied to make \(\xi =0\) in order to simplify the rest of the computation

\begin{align*} \eta &= \eta - \omega \left (t,x\right ) \xi \\ &= x - \left (-\frac {x t}{-t^{2}+x^{2}}\right ) \left (t\right ) \\ &= -\frac {x^{3}}{t^{2}-x^{2}}\\ \xi &= 0 \end{align*}

The next step is to determine the canonical coordinates \(R,S\). The canonical coordinates map \(\left ( t,x\right ) \to \left ( R,S \right )\) where \(\left ( R,S \right )\) are the canonical coordinates which make the original ode become a quadrature and hence solved by integration.

The characteristic pde which is used to ﬁnd the canonical coordinates is

\begin{align*} \frac {d t}{\xi } &= \frac {d x}{\eta } = dS \tag {1} \end{align*}

The above comes from the requirements that \(\left ( \xi \frac {\partial }{\partial t} + \eta \frac {\partial }{\partial x}\right ) S(t,x) = 1\). Starting with the ﬁrst pair of ode’s in (1) gives an ode to solve for the independent variable \(R\) in the canonical coordinates, where \(S(R)\). Since \(\xi =0\) then in this special case

\begin{align*} R = t \end{align*}

\(S\) is found from

\begin{align*} S &= \int { \frac {1}{\eta }} dy\\ &= \int { \frac {1}{-\frac {x^{3}}{t^{2}-x^{2}}}} dy \end{align*}

Which results in

\begin{align*} S&= \ln \left (x \right )+\frac {t^{2}}{2 x^{2}} \end{align*}

Now that \(R,S\) are found, we need to setup the ode in these coordinates. This is done by evaluating

\begin{align*} \frac {dS}{dR} &= \frac { S_{t} + \omega (t,x) S_{x} }{ R_{t} + \omega (t,x) R_{x} }\tag {2} \end{align*}

Where in the above \(R_{t},R_{x},S_{t},S_{x}\) are all partial derivatives and \(\omega (t,x)\) is the right hand side of the original ode given by

\begin{align*} \omega (t,x) &= -\frac {x t}{-t^{2}+x^{2}} \end{align*}

Evaluating all the partial derivatives gives

\begin{align*} R_{t} &= 1\\ R_{x} &= 0\\ S_{t} &= \frac {t}{x^{2}}\\ S_{x} &= \frac {-t^{2}+x^{2}}{x^{3}} \end{align*}

Substituting all the above in (2) and simplifying gives the ode in canonical coordinates.

\begin{align*} \frac {dS}{dR} &= 0\tag {2A} \end{align*}

We now need to express the RHS as function of \(R\) only. This is done by solving for \(t,x\) in terms of \(R,S\) from the result obtained earlier and simplifying. This gives

\begin{align*} \frac {dS}{dR} &= 0 \end{align*}

The above is a quadrature ode. This is the whole point of Lie symmetry method. It converts an ode, no matter how complicated it is, to one that can be solved by integration when the ode is in the canonical coordiates \(R,S\).

Since the ode has the form \(\frac {d}{d R}S \left (R \right )=f(R)\), then we only need to integrate \(f(R)\).

\begin{align*} \int {dS} &= \int {0\, dR} + c_2 \\ S \left (R \right ) &= c_2 \end{align*}

To complete the solution, we just need to transform the above back to \(t,x\) coordinates. This results in

\begin{align*} \frac {2 \ln \left (x\right ) x^{2}+t^{2}}{2 x^{2}} = c_2 \end{align*}

Which gives

\begin{align*} x = {\mathrm e}^{\frac {\operatorname {LambertW}\left (-t^{2} {\mathrm e}^{-2 c_2}\right )}{2}+c_2} \end{align*}

The following diagram shows solution curves of the original ode and how they transform in the canonical coordinates space using the mapping shown.


Original ode in \(t,x\) coordinates	Canonical coordinates transformation	ODE in canonical coordinates \((R,S)\)

\( \frac {dx}{dt} = -\frac {x t}{-t^{2}+x^{2}}\)		\( \frac {d S}{d R} = 0\)
	\(\!\begin {aligned} R&= t\\ S&= \frac {2 \ln \left (x \right ) x^{2}+t^{2}}{2 x^{2}} \end {aligned} \)

Summary of solutions found

\begin{align*} x &= {\mathrm e}^{\frac {\operatorname {LambertW}\left (-t^{2} {\mathrm e}^{-2 c_2}\right )}{2}+c_2} \\ \end{align*}

Maple step by step solution

\[ \begin {array}{lll} & {} & \textrm {Let's solve}\hspace {3pt} \\ {} & {} & \left (t^{2}-x^{2}\right ) x^{\prime }=x t \\ \bullet & {} & \textrm {Highest derivative means the order of the ODE is}\hspace {3pt} 1 \\ {} & {} & x^{\prime } \\ \bullet & {} & \textrm {Solve for the highest derivative}\hspace {3pt} \\ {} & {} & x^{\prime }=\frac {x t}{t^{2}-x^{2}} \end {array} \]

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 D 
<- homogeneous successful`

Maple dsolve solution

Solving time : 0.017 (sec)
Leaf size : 19

dsolve((t^2-x(t)^2)*diff(x(t),t) = x(t)*t, 
       x(t),singsol=all)

\[ x = \sqrt {-\frac {1}{\operatorname {LambertW}\left (-c_1 \,t^{2}\right )}}\, t \]

Mathematica DSolve solution

Solving time : 7.493 (sec)
Leaf size : 56

DSolve[{(t^2-x[t]^2)*D[x[t],t]==t*x[t],{}}, 
       x[t],t,IncludeSingularSolutions->True]

\begin{align*} x(t)\to -\frac {i t}{\sqrt {W\left (-e^{-2 c_1} t^2\right )}} \\ x(t)\to \frac {i t}{\sqrt {W\left (-e^{-2 c_1} t^2\right )}} \\ x(t)\to 0 \\ \end{align*}

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