Problem 560

2.1.544 Problem 560

Solved as second order ode using Kovacic algorithm
✓Maple
✓Mathematica
✗Sympy

Internal problem ID [9716]
Book : Collection of Kovacic problems
Section : section 1
Problem number : 560
Date solved : Sunday, March 30, 2025 at 02:45:01 PM
CAS classiﬁcation : [[_2nd_order, _with_linear_symmetries]]

Solved as second order ode using Kovacic algorithm

Time used: 0.489 (sec)

Writing the ode as

\begin{aligned} (1) & x^{2} y^{''} + (x^{2} - 5 x) y^{'} + (9 - 4 x) y & = 0 \\ (2) & A y^{''} + B y^{'} + C y & = 0 \end{aligned}

Comparing (1) and (2) shows that

\begin{aligned} A & = x^{2} \\ (3) & B & = x^{2} - 5 x \\ C & = 9 - 4 x \end{aligned}

Applying the Liouville transformation on the dependent variable gives

\begin{aligned} z (x) & = y e^{\int \frac{B}{2 A} d x} \end{aligned}

Then (2) becomes

\begin{array}{r} (4) & z^{″} (x) = r z (x) \end{array}

Where $r$ is given by

\begin{aligned} (5) & r & = \frac{s}{t} \\ = \frac{2 A B^{'} - 2 B A^{'} + B^{2} - 4 A C}{4 A^{2}} \end{aligned}

Substituting the values of $A, B, C$ from (3) in the above and simplifying gives

\begin{aligned} (6) & r & = \frac{x^{2} + 6 x - 1}{4 x^{2}} \end{aligned}

Comparing the above to (5) shows that

\begin{aligned} s & = x^{2} + 6 x - 1 \\ t & = 4 x^{2} \end{aligned}

Therefore eq. (4) becomes

\begin{aligned} (7) & z^{″} (x) & = (\frac{x^{2} + 6 x - 1}{4 x^{2}}) z (x) \end{aligned}

Equation (7) is now solved. After ﬁnding $z (x)$ then $y$ is found using the inverse transformation

\begin{aligned} y & = z (x) e^{- \int \frac{B}{2 A} d x} \end{aligned}

The ﬁrst step is to determine the case of Kovacic algorithm this ode belongs to. There are 3 cases depending on the order of poles of $r$ and the order of $r$ at $\infty$ . The following table summarizes these cases.


Case	Allowed pole order for $r$	Allowed value for $O (\infty)$

1	${0, 1, 2, 4, 6, 8, \dots}$	${\dots, - 6, - 4, - 2, 0, 2, 3, 4, 5, 6, \dots}$

2	Need to have at least one pole that is either order $2$ or odd order greater than $2$ . Any other pole order is allowed as long as the above condition is satisﬁed. Hence the following set of pole orders are all allowed. ${1, 2}$ , ${1, 3}$ , ${2}$ , ${3}$ , ${3, 4}$ , ${1, 2, 5}$ .	no condition

3	${1, 2}$	${2, 3, 4, 5, 6, 7, \dots}$

Table 2.544: Necessary conditions for each Kovacic case

The order of $r$ at $\infty$ is the degree of $t$ minus the degree of $s$ . Therefore

\begin{aligned} O (\infty) & = deg (t) - deg (s) \\ = 2 - 2 \\ = 0 \end{aligned}

The poles of $r$ in eq. (7) and the order of each pole are determined by solving for the roots of $t = 4 x^{2}$ . There is a pole at $x = 0$ of order $2$ . Since there is no odd order pole larger than $2$ and the order at $\infty$ is $0$ then the necessary conditions for case one are met. Since there is a pole of order $2$ then necessary conditions for case two are met. Therefore

\begin{aligned} L & = [1, 2] \end{aligned}

Attempting to ﬁnd a solution using case $n = 1$ .

Looking at poles of order 2. The partial fractions decomposition of $r$ is

r = \frac{1}{4} - \frac{1}{4 x^{2}} + \frac{3}{2 x}

For the pole at $x = 0$ let $b$ be the coeﬃcient of $\frac{1}{x^{2}}$ in the partial fractions decomposition of $r$ given above. Therefore $b = - \frac{1}{4}$ . Hence

\begin{aligned} [\sqrt{r}]_{c} & = 0 \\ α_{c}^{+} & = \frac{1}{2} + \sqrt{1 + 4 b} & = \frac{1}{2} \\ α_{c}^{-} & = \frac{1}{2} - \sqrt{1 + 4 b} & = \frac{1}{2} \end{aligned}

Since the order of $r$ at $\infty$ is $O_{r} (\infty) = 0$ then

\begin{aligned} v & = \frac{- O_{r} (\infty)}{2} & = \frac{0}{2} & = 0 \end{aligned}

$[\sqrt{r}]_{\infty}$ is the sum of terms involving $x^{i}$ for $0 \leq i \leq v$ in the Laurent series for $\sqrt{r}$ at $\infty$ . Therefore

\begin{aligned} [\sqrt{r}]_{\infty} & = \sum_{i = 0}^{v} a_{i} x^{i} \\ (8) & = \sum_{i = 0}^{0} a_{i} x^{i} \end{aligned}

Let $a$ be the coeﬃcient of $x^{v} = x^{0}$ in the above sum. The Laurent series of $\sqrt{r}$ at $\infty$ is

\begin{matrix} (9) & \sqrt{r} \approx \frac{1}{2} + \frac{3}{2 x} - \frac{5}{2 x^{2}} + \frac{15}{2 x^{3}} - \frac{115}{4 x^{4}} + \frac{495}{4 x^{5}} - \frac{2285}{4 x^{6}} + \frac{11055}{4 x^{7}} + \dots \end{matrix}

Comparing Eq. (9) with Eq. (8) shows that

a = \frac{1}{2}

From Eq. (9) the sum up to $v = 0$ gives

\begin{aligned} [\sqrt{r}]_{\infty} & = \sum_{i = 0}^{0} a_{i} x^{i} \\ (10) & = \frac{1}{2} \end{aligned}

Now we need to ﬁnd $b$ , where $b$ be the coeﬃcient of $x^{v - 1} = x^{- 1} = \frac{1}{x}$ in $r$ minus the coeﬃcient of same term but in ${([\sqrt{r}]_{\infty})}^{2}$ where $[\sqrt{r}]_{\infty}$ was found above in Eq (10). Hence

{([\sqrt{r}]_{\infty})}^{2} = \frac{1}{4}

This shows that the coeﬃcient of $\frac{1}{x}$ in the above is $0$ . Now we need to ﬁnd the coeﬃcient of $\frac{1}{x}$ in $r$ . How this is done depends on if $v = 0$ or not. Since $v = 0$ then starting from $r = \frac{s}{t}$ and doing long division in the form

r = Q + \frac{R}{t}

Where $Q$ is the quotient and $R$ is the remainder. Then the coeﬃcient of $\frac{1}{x}$ in $r$ will be the coeﬃcient in $R$ of the term in $x$ of degree of $t$ minus one, divided by the leading coeﬃcient in $t$ . Doing long division gives

\begin{aligned} r & = \frac{s}{t} \\ = \frac{x^{2} + 6 x - 1}{4 x^{2}} \\ = Q + \frac{R}{4 x^{2}} \\ = (\frac{1}{4}) + (\frac{6 x - 1}{4 x^{2}}) \\ = \frac{1}{4} + \frac{6 x - 1}{4 x^{2}} \end{aligned}

Since the degree of $t$ is $2$ , then we see that the coeﬃcient of the term $x$ in the remainder $R$ is $6$ . Dividing this by leading coeﬃcient in $t$ which is $4$ gives $\frac{3}{2}$ . Now $b$ can be found.

\begin{aligned} b & = (\frac{3}{2}) - (0) \\ = \frac{3}{2} \end{aligned}

Hence

\begin{aligned} [\sqrt{r}]_{\infty} & = \frac{1}{2} \\ α_{\infty}^{+} & = \frac{1}{2} (\frac{b}{a} - v) & = \frac{1}{2} (\frac{\frac{3}{2}}{\frac{1}{2}} - 0) & = \frac{3}{2} \\ α_{\infty}^{-} & = \frac{1}{2} (- \frac{b}{a} - v) & = \frac{1}{2} (- \frac{\frac{3}{2}}{\frac{1}{2}} - 0) & = - \frac{3}{2} \end{aligned}

The following table summarizes the ﬁndings so far for poles and for the order of $r$ at $\infty$ where $r$ is

r = \frac{x^{2} + 6 x - 1}{4 x^{2}}


pole $c$ location	pole order	$[\sqrt{r}]_{c}$	$α_{c}^{+}$	$α_{c}^{-}$

$0$	$2$	$0$	$\frac{1}{2}$	$\frac{1}{2}$


Order of $r$ at $\infty$	$[\sqrt{r}]_{\infty}$	$α_{\infty}^{+}$	$α_{\infty}^{-}$

$0$	$\frac{1}{2}$	$\frac{3}{2}$	$- \frac{3}{2}$

Now that the all $[\sqrt{r}]_{c}$ and its associated $α_{c}^{\pm}$ have been determined for all the poles in the set $Γ$ and $[\sqrt{r}]_{\infty}$ and its associated $α_{\infty}^{\pm}$ have also been found, the next step is to determine possible non negative integer $d$ from these using

\begin{aligned} d & = α_{\infty}^{s (\infty)} - \sum_{c \in Γ} α_{c}^{s (c)} \end{aligned}

Where $s (c)$ is either $+$ or $-$ and $s (\infty)$ is the sign of $α_{\infty}^{\pm}$ . This is done by trial over all set of families $s = (s (c))_{c \in Γ \cup \infty}$ until such $d$ is found to work in ﬁnding candidate $ω$ . Trying $α_{\infty}^{+} = \frac{3}{2}$ then

\begin{aligned} d & = α_{\infty}^{+} - (α_{c_{1}}^{+}) \\ = \frac{3}{2} - (\frac{1}{2}) \\ = 1 \end{aligned}

Since $d$ an integer and $d \geq 0$ then it can be used to ﬁnd $ω$ using

\begin{aligned} ω & = \sum_{c \in Γ} (s (c) [\sqrt{r}]_{c} + \frac{α_{c}^{s (c)}}{x - c}) + s (\infty) [\sqrt{r}]_{\infty} \end{aligned}

Substituting the above values in the above results in

\begin{aligned} ω & = ((+) [\sqrt{r}]_{c_{1}} + \frac{α_{c_{1}}^{+}}{x - c_{1}}) + (+) [\sqrt{r}]_{\infty} \\ = \frac{1}{2 x} + (\frac{1}{2}) \\ = \frac{1}{2 x} + \frac{1}{2} \\ = \frac{1 + x}{2 x} \end{aligned}

Now that $ω$ is determined, the next step is ﬁnd a corresponding minimal polynomial $p (x)$ of degree $d = 1$ to solve the ode. The polynomial $p (x)$ needs to satisfy the equation

\begin{array}{r} (1A) & p^{″} + 2 ω p^{'} + (ω^{'} + ω^{2} - r) p = 0 \end{array}

Let

\begin{aligned} (2A) & p (x) & = x + a_{0} \end{aligned}

Substituting the above in eq. (1A) gives

\begin{aligned} (0) + 2 (\frac{1}{2 x} + \frac{1}{2}) (1) + ((- \frac{1}{2 x^{2}}) + {(\frac{1}{2 x} + \frac{1}{2})}^{2} - (\frac{x^{2} + 6 x - 1}{4 x^{2}})) & = 0 \\ \frac{1 - a_{0}}{x} = 0 \end{aligned}

Solving for the coeﬃcients $a_{i}$ in the above using method of undetermined coeﬃcients gives

{a_{0} = 1}

Substituting these coeﬃcients in $p (x)$ in eq. (2A) results in

\begin{aligned} p (x) & = 1 + x \end{aligned}

Therefore the ﬁrst solution to the ode $z^{″} = r z$ is

\begin{aligned} z_{1} (x) & = p e^{\int ω d x} \\ = (1 + x) e^{\int (\frac{1}{2 x} + \frac{1}{2}) d x} \\ = (1 + x) e^{\frac{x}{2} + \frac{\ln (x)}{2}} \\ = (1 + x) \sqrt{x} e^{\frac{x}{2}} \end{aligned}

The ﬁrst solution to the original ode in $y$ is found from

\begin{aligned} y_{1} & = z_{1} e^{\int - \frac{1}{2} \frac{B}{A} d x} \\ = z_{1} e^{- \int \frac{1}{2} \frac{x^{2} - 5 x}{x^{2}} d x} \\ = z_{1} e^{- \frac{x}{2} + \frac{5 \ln (x)}{2}} \\ = z_{1} (x^{5 / 2} e^{- \frac{x}{2}}) \end{aligned}

Which simpliﬁes to

y_{1} = x^{3} (1 + x)

The second solution $y_{2}$ to the original ode is found using reduction of order

y_{2} = y_{1} \int \frac{e^{\int - \frac{B}{A} d x}}{y_{1}^{2}} d x

Substituting gives

\begin{aligned} y_{2} & = y_{1} \int \frac{e^{\int - \frac{x^{2} - 5 x}{x^{2}} d x}}{{(y_{1})}^{2}} d x \\ = y_{1} \int \frac{e^{- x + 5 \ln (x)}}{{(y_{1})}^{2}} d x \\ = y_{1} (- \frac{e^{- x}}{- 1 - x} - {Ei}_{1} (x)) \end{aligned}

Therefore the solution is

\begin{aligned} y & = c_{1} y_{1} + c_{2} y_{2} \\ = c_{1} (x^{3} (1 + x)) + c_{2} (x^{3} (1 + x) (- \frac{e^{- x}}{- 1 - x} - {Ei}_{1} (x))) \end{aligned}

Will add steps showing solving for IC soon.

✓ Maple. Time used: 0.004 (sec). Leaf size: 27

ode:=x^2*diff(diff(y(x),x),x)-x*(5-x)*diff(y(x),x)+(9-4*x)*y(x) = 0; 
dsolve(ode,y(x), singsol=all);

y = (- e^{- x} c_{2} + ({Ei}_{1} (x) c_{2} + c_{1}) (1 + x)) x^{3}

Maple trace

Methods for second order ODEs: 
--- Trying classification methods --- 
trying a quadrature 
checking if the LODE has constant coefficients 
checking if the LODE is of Euler type 
trying a symmetry of the form [xi=0, eta=F(x)] 
checking if the LODE is missing y 
-> Trying a Liouvillian solution using Kovacics algorithm 
   A Liouvillian solution exists 
   Reducible group (found an exponential solution) 
   Group is reducible, not completely reducible 
<- Kovacics algorithm successful

✓ Mathematica. Time used: 0.501 (sec). Leaf size: 72

ode=x^2*D[y[x],{x,2}]-x*(5-x)*D[y[x],x]+(9-4*x)*y[x]==0; 
ic={}; 
DSolve[{ode,ic},y[x],x,IncludeSingularSolutions->True]

y (x) \to \sqrt{x} (x + 1) (c_{2} \int_{1}^{x} \frac{e^{- K [2] - 1}}{K [2] (K [2] + 1)^{2}} d K [2] + c_{1}) \exp (\frac{1}{2} (- \int_{1}^{x} (1 - \frac{5}{K [1]}) d K [1] + x + 1))

✗ Sympy

from sympy import * 
x = symbols("x") 
y = Function("y") 
ode = Eq(x**2*Derivative(y(x), (x, 2)) - x*(5 - x)*Derivative(y(x), x) + (9 - 4*x)*y(x),0) 
ics = {} 
dsolve(ode,func=y(x),ics=ics)

False

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