Example 11

\begin{align} y^{\prime \prime }-\frac {2}{5}xy^{\prime }+2y & =0\tag {1}\\ y^{\prime \prime }+ay^{\prime }\left ( x\right ) +by & =0\nonumber \end{align}

\begin{align*} a & =-\frac {2}{5}x\\ b & =2 \end{align*}

It is ﬁrst transformed to the following ode by eliminating the ﬁrst derivative

\begin{equation} z^{\prime \prime }=rz \tag {2}\end{equation}

\begin{equation} y=ze^{\frac {-1}{2}\int adx} \tag {3}\end{equation}

\begin{align} r & =\frac {1}{4}a^{2}+\frac {1}{2}a^{\prime }-b\nonumber \\ & =\frac {1}{4}\left ( -\frac {2}{5}x\right ) ^{2}+\frac {1}{2}\frac {d}{dx}\left ( -\frac {2}{5}x\right ) -\left ( 2\right ) \nonumber \\ & =\frac {x^{2}-55}{25} \tag {4}\end{align}

\begin{equation} z^{\prime \prime }=\left ( \frac {x^{2}-55}{25}\right ) z \tag {5}\end{equation}

\begin{align} r & =\frac {s}{t}\nonumber \\ & =\frac {x^{2}-55}{25}\nonumber \end{align}

Step 1 In this we ﬁnd all \(\left [ \sqrt {r}\right ] _{c}\) and associated \(\alpha _{c}^{\pm }\) for each pole. There are no poles. Hence set \(\Gamma \) of poles is empty. Now we consider \(O\left ( \infty \right ) \) which is \(\deg \left ( t\right ) -\deg \left ( s\right ) =0-2=-2\). We are in case \(2v\leq 0\). Hence \(-2v=-2\) or

Then now \(\left [ \sqrt {r}\right ] _{\infty }\) is the sum of all terms \(x^{i}\) for \(0\leq i\leq v\) in the Laurent series expansion of \(\sqrt {r}\) at \(\infty \) which is

\begin{equation} \left [ \sqrt {r}\right ] _{\infty }=\frac {x}{5}-\frac {11}{2}\frac {1}{x}-\cdots \tag {7}\end{equation}

We want only terms for \(0\leq i\leq v\) but \(v=1\). Therefore need to sum terms \(x^{0},x^{1}\). From the above we see that

As it is the the term that matches \(\left [ \sqrt {r}\right ] _{\infty }=ax\). \(\ \) Now we need to ﬁnd \(b\). This will be the coeﬃcient of \(x^{v-1}=x^{0}\) in \(r\) minus the coeﬃcient of \(x^{0}\) in \(\left ( \left [ \sqrt {r}\right ] _{\infty }\right ) ^{2}\). But

\begin{align*} \left ( \left [ \sqrt {r}\right ] _{\infty }\right ) ^{2} & =\left ( \frac {x}{5}\right ) ^{2}\\ & =\frac {x^{2}}{25}\end{align*}

Hence the coeﬃcient of \(x^{0}\) is zero. Now we ﬁnd coeﬃcient of \(x^{0}\) in \(r\). Since \(r=\frac {x^{2}}{25}-\frac {55}{25}\) then coeﬃcient of \(x^{0}\) is \(\frac {-55}{25}=-\frac {11}{5}\). Hence \(b=-\frac {11}{5}-0=-\frac {11}{5}\). Therefore

\begin{align*} \alpha _{\infty }^{+} & =\frac {1}{2}\left ( \frac {b}{a}-v\right ) =\frac {1}{2}\left ( \frac {-\frac {11}{5}}{\frac {1}{5}}-1\right ) =-6\\ \alpha _{\infty }^{-} & =\frac {1}{2}\left ( -\frac {b}{a}-v\right ) =\frac {1}{2}\left ( -\frac {-\frac {11}{5}}{\frac {1}{5}}-1\right ) =5 \end{align*}

This completes step 1 of the solution. We have found \(\left [ \sqrt {r}\right ] _{c}\) and its associated \(\alpha _{c}^{\pm }\) and found \(\left [ \sqrt {r}\right ] _{\infty }\) and its associated \(\alpha _{\infty }^{\pm }\). Now we go to step 2 which is to ﬁnd the \(d^{\prime }s\).

\[ d=\alpha _{\infty }^{\pm }-\sum _{i=1}^{0}\alpha _{c_{i}}^{\pm }\]

By trying all possible combinations. There are 2 possible \(d\) values since no poles.

\begin{align*} d_{1} & =\alpha _{\infty }^{+}=-6\\ d_{2} & =\alpha _{\infty }^{-}=5 \end{align*}

\[ \omega =\left ( \sum _{c}s\left ( c\right ) \left [ \sqrt {r}\right ] _{c}+\frac {\alpha _{c}^{s\left ( c\right ) }}{x-c}\right ) +s\left ( \infty \right ) \left [ \sqrt {r}\right ] _{\infty }\]

\[ \omega =s\left ( \infty \right ) \left [ \sqrt {r}\right ] _{\infty }=\left ( -\right ) \frac {x}{5}=-\frac {x}{5}\]

3.2.11 Example 11