\[ r=-\frac {x \left (x^{3}+8\right )}{4 \left (x^{3}+1\right )^{2}} \]

\[ \{a_{0} = 0\} \]

\[ y_2 = y_1 \int \frac { e^{\int -\frac {B}{A} \,dx}}{y_1^2} \,dx \]

\[ \begin {array}{lll} & {} & \textrm {Let's solve}\hspace {3pt} \\ {} & {} & \left (x^{3}+1\right ) \left (\frac {d^{2}}{d x^{2}}y \left (x \right )\right )+7 x^{2} \left (\frac {d}{d x}y \left (x \right )\right )+9 x y \left (x \right )=0 \\ \bullet & {} & \textrm {Highest derivative means the order of the ODE is}\hspace {3pt} 2 \\ {} & {} & \frac {d^{2}}{d x^{2}}y \left (x \right ) \\ \bullet & {} & \textrm {Isolate 2nd derivative}\hspace {3pt} \\ {} & {} & \frac {d^{2}}{d x^{2}}y \left (x \right )=-\frac {9 x y \left (x \right )}{x^{3}+1}-\frac {7 x^{2} \left (\frac {d}{d x}y \left (x \right )\right )}{x^{3}+1} \\ \bullet & {} & \textrm {Group terms with}\hspace {3pt} y \left (x \right )\hspace {3pt}\textrm {on the lhs of the ODE and the rest on the rhs of the ODE; ODE is linear}\hspace {3pt} \\ {} & {} & \frac {d^{2}}{d x^{2}}y \left (x \right )+\frac {7 x^{2} \left (\frac {d}{d x}y \left (x \right )\right )}{x^{3}+1}+\frac {9 x y \left (x \right )}{x^{3}+1}=0 \\ \square & {} & \textrm {Check to see if}\hspace {3pt} x_{0}\hspace {3pt}\textrm {is a regular singular point}\hspace {3pt} \\ {} & \circ & \textrm {Define functions}\hspace {3pt} \\ {} & {} & \left [P_{2}\left (x \right )=\frac {7 x^{2}}{x^{3}+1}, P_{3}\left (x \right )=\frac {9 x}{x^{3}+1}\right ] \\ {} & \circ & \left (x +1\right )\cdot P_{2}\left (x \right )\textrm {is analytic at}\hspace {3pt} x =-1 \\ {} & {} & \left (\left (x +1\right )\cdot P_{2}\left (x \right )\right )\bigg | {\mstack {}{_{x \hiderel {=}-1}}}=\frac {7}{3} \\ {} & \circ & \left (x +1\right )^{2}\cdot P_{3}\left (x \right )\textrm {is analytic at}\hspace {3pt} x =-1 \\ {} & {} & \left (\left (x +1\right )^{2}\cdot P_{3}\left (x \right )\right )\bigg | {\mstack {}{_{x \hiderel {=}-1}}}=0 \\ {} & \circ & x =-1\textrm {is a regular singular point}\hspace {3pt} \\ & {} & \textrm {Check to see if}\hspace {3pt} x_{0}\hspace {3pt}\textrm {is a regular singular point}\hspace {3pt} \\ {} & {} & x_{0}=-1 \\ \bullet & {} & \textrm {Multiply by denominators}\hspace {3pt} \\ {} & {} & \left (x^{3}+1\right ) \left (\frac {d^{2}}{d x^{2}}y \left (x \right )\right )+7 x^{2} \left (\frac {d}{d x}y \left (x \right )\right )+9 x y \left (x \right )=0 \\ \bullet & {} & \textrm {Change variables using}\hspace {3pt} x =u -1\hspace {3pt}\textrm {so that the regular singular point is at}\hspace {3pt} u =0 \\ {} & {} & \left (u^{3}-3 u^{2}+3 u \right ) \left (\frac {d^{2}}{d u^{2}}y \left (u \right )\right )+\left (7 u^{2}-14 u +7\right ) \left (\frac {d}{d u}y \left (u \right )\right )+\left (9 u -9\right ) y \left (u \right )=0 \\ \bullet & {} & \textrm {Assume series solution for}\hspace {3pt} y \left (u \right ) \\ {} & {} & y \left (u \right )=\moverset {\infty }{\munderset {k =0}{\sum }}a_{k} u^{k +r} \\ \square & {} & \textrm {Rewrite ODE with series expansions}\hspace {3pt} \\ {} & \circ & \textrm {Convert}\hspace {3pt} u^{m}\cdot y \left (u \right )\hspace {3pt}\textrm {to series expansion for}\hspace {3pt} m =0..1 \\ {} & {} & u^{m}\cdot y \left (u \right )=\moverset {\infty }{\munderset {k =0}{\sum }}a_{k} u^{k +r +m} \\ {} & \circ & \textrm {Shift index using}\hspace {3pt} k \mathrm {->}k -m \\ {} & {} & u^{m}\cdot y \left (u \right )=\moverset {\infty }{\munderset {k =m}{\sum }}a_{k -m} u^{k +r} \\ {} & \circ & \textrm {Convert}\hspace {3pt} u^{m}\cdot \left (\frac {d}{d u}y \left (u \right )\right )\hspace {3pt}\textrm {to series expansion for}\hspace {3pt} m =0..2 \\ {} & {} & u^{m}\cdot \left (\frac {d}{d u}y \left (u \right )\right )=\moverset {\infty }{\munderset {k =0}{\sum }}a_{k} \left (k +r \right ) u^{k +r -1+m} \\ {} & \circ & \textrm {Shift index using}\hspace {3pt} k \mathrm {->}k +1-m \\ {} & {} & u^{m}\cdot \left (\frac {d}{d u}y \left (u \right )\right )=\moverset {\infty }{\munderset {k =-1+m}{\sum }}a_{k +1-m} \left (k +1-m +r \right ) u^{k +r} \\ {} & \circ & \textrm {Convert}\hspace {3pt} u^{m}\cdot \left (\frac {d^{2}}{d u^{2}}y \left (u \right )\right )\hspace {3pt}\textrm {to series expansion for}\hspace {3pt} m =1..3 \\ {} & {} & u^{m}\cdot \left (\frac {d^{2}}{d u^{2}}y \left (u \right )\right )=\moverset {\infty }{\munderset {k =0}{\sum }}a_{k} \left (k +r \right ) \left (k +r -1\right ) u^{k +r -2+m} \\ {} & \circ & \textrm {Shift index using}\hspace {3pt} k \mathrm {->}k +2-m \\ {} & {} & u^{m}\cdot \left (\frac {d^{2}}{d u^{2}}y \left (u \right )\right )=\moverset {\infty }{\munderset {k =-2+m}{\sum }}a_{k +2-m} \left (k +2-m +r \right ) \left (k +1-m +r \right ) u^{k +r} \\ & {} & \textrm {Rewrite ODE with series expansions}\hspace {3pt} \\ {} & {} & a_{0} r \left (4+3 r \right ) u^{-1+r}+\left (a_{1} \left (1+r \right ) \left (7+3 r \right )-a_{0} \left (3 r^{2}+11 r +9\right )\right ) u^{r}+\left (\moverset {\infty }{\munderset {k =1}{\sum }}\left (a_{k +1} \left (k +1+r \right ) \left (3 k +7+3 r \right )-a_{k} \left (3 k^{2}+6 k r +3 r^{2}+11 k +11 r +9\right )+a_{k -1} \left (k +2+r \right )^{2}\right ) u^{k +r}\right )=0 \\ \bullet & {} & a_{0}\textrm {cannot be 0 by assumption, giving the indicial equation}\hspace {3pt} \\ {} & {} & r \left (4+3 r \right )=0 \\ \bullet & {} & \textrm {Values of r that satisfy the indicial equation}\hspace {3pt} \\ {} & {} & r \in \left \{0, -\frac {4}{3}\right \} \\ \bullet & {} & \textrm {Each term must be 0}\hspace {3pt} \\ {} & {} & a_{1} \left (1+r \right ) \left (7+3 r \right )-a_{0} \left (3 r^{2}+11 r +9\right )=0 \\ \bullet & {} & \textrm {Each term in the series must be 0, giving the recursion relation}\hspace {3pt} \\ {} & {} & a_{k +1} \left (k +1+r \right ) \left (3 k +7+3 r \right )-a_{k} \left (3 k^{2}+6 k r +3 r^{2}+11 k +11 r +9\right )+a_{k -1} \left (k +2+r \right )^{2}=0 \\ \bullet & {} & \textrm {Shift index using}\hspace {3pt} k \mathrm {->}k +1 \\ {} & {} & a_{k +2} \left (k +2+r \right ) \left (3 k +10+3 r \right )-a_{k +1} \left (3 \left (k +1\right )^{2}+6 \left (k +1\right ) r +3 r^{2}+11 k +20+11 r \right )+a_{k} \left (k +r +3\right )^{2}=0 \\ \bullet & {} & \textrm {Recursion relation that defines series solution to ODE}\hspace {3pt} \\ {} & {} & a_{k +2}=-\frac {k^{2} a_{k}-3 k^{2} a_{k +1}+2 k r a_{k}-6 k r a_{k +1}+r^{2} a_{k}-3 r^{2} a_{k +1}+6 k a_{k}-17 k a_{k +1}+6 r a_{k}-17 r a_{k +1}+9 a_{k}-23 a_{k +1}}{\left (k +2+r \right ) \left (3 k +10+3 r \right )} \\ \bullet & {} & \textrm {Recursion relation for}\hspace {3pt} r =0 \\ {} & {} & a_{k +2}=-\frac {k^{2} a_{k}-3 k^{2} a_{k +1}+6 k a_{k}-17 k a_{k +1}+9 a_{k}-23 a_{k +1}}{\left (k +2\right ) \left (3 k +10\right )} \\ \bullet & {} & \textrm {Solution for}\hspace {3pt} r =0 \\ {} & {} & \left [y \left (u \right )=\moverset {\infty }{\munderset {k =0}{\sum }}a_{k} u^{k}, a_{k +2}=-\frac {k^{2} a_{k}-3 k^{2} a_{k +1}+6 k a_{k}-17 k a_{k +1}+9 a_{k}-23 a_{k +1}}{\left (k +2\right ) \left (3 k +10\right )}, 7 a_{1}-9 a_{0}=0\right ] \\ \bullet & {} & \textrm {Revert the change of variables}\hspace {3pt} u =x +1 \\ {} & {} & \left [y \left (x \right )=\moverset {\infty }{\munderset {k =0}{\sum }}a_{k} \left (x +1\right )^{k}, a_{k +2}=-\frac {k^{2} a_{k}-3 k^{2} a_{k +1}+6 k a_{k}-17 k a_{k +1}+9 a_{k}-23 a_{k +1}}{\left (k +2\right ) \left (3 k +10\right )}, 7 a_{1}-9 a_{0}=0\right ] \\ \bullet & {} & \textrm {Recursion relation for}\hspace {3pt} r =-\frac {4}{3} \\ {} & {} & a_{k +2}=-\frac {k^{2} a_{k}-3 k^{2} a_{k +1}+\frac {10}{3} k a_{k}-9 k a_{k +1}+\frac {25}{9} a_{k}-\frac {17}{3} a_{k +1}}{\left (k +\frac {2}{3}\right ) \left (3 k +6\right )} \\ \bullet & {} & \textrm {Solution for}\hspace {3pt} r =-\frac {4}{3} \\ {} & {} & \left [y \left (u \right )=\moverset {\infty }{\munderset {k =0}{\sum }}a_{k} u^{k -\frac {4}{3}}, a_{k +2}=-\frac {k^{2} a_{k}-3 k^{2} a_{k +1}+\frac {10}{3} k a_{k}-9 k a_{k +1}+\frac {25}{9} a_{k}-\frac {17}{3} a_{k +1}}{\left (k +\frac {2}{3}\right ) \left (3 k +6\right )}, -a_{1}+\frac {a_{0}}{3}=0\right ] \\ \bullet & {} & \textrm {Revert the change of variables}\hspace {3pt} u =x +1 \\ {} & {} & \left [y \left (x \right )=\moverset {\infty }{\munderset {k =0}{\sum }}a_{k} \left (x +1\right )^{k -\frac {4}{3}}, a_{k +2}=-\frac {k^{2} a_{k}-3 k^{2} a_{k +1}+\frac {10}{3} k a_{k}-9 k a_{k +1}+\frac {25}{9} a_{k}-\frac {17}{3} a_{k +1}}{\left (k +\frac {2}{3}\right ) \left (3 k +6\right )}, -a_{1}+\frac {a_{0}}{3}=0\right ] \\ \bullet & {} & \textrm {Combine solutions and rename parameters}\hspace {3pt} \\ {} & {} & \left [y \left (x \right )=\left (\moverset {\infty }{\munderset {k =0}{\sum }}a_{k} \left (x +1\right )^{k}\right )+\left (\moverset {\infty }{\munderset {k =0}{\sum }}b_{k} \left (x +1\right )^{k -\frac {4}{3}}\right ), a_{k +2}=-\frac {k^{2} a_{k}-3 k^{2} a_{k +1}+6 k a_{k}-17 k a_{k +1}+9 a_{k}-23 a_{k +1}}{\left (k +2\right ) \left (3 k +10\right )}, 7 a_{1}-9 a_{0}=0, b_{k +2}=-\frac {k^{2} b_{k}-3 k^{2} b_{k +1}+\frac {10}{3} k b_{k}-9 k b_{k +1}+\frac {25}{9} b_{k}-\frac {17}{3} b_{k +1}}{\left (k +\frac {2}{3}\right ) \left (3 k +6\right )}, -b_{1}+\frac {b_{0}}{3}=0\right ] \end {array} \]

`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 
   Solution has integrals. Trying a special function solution free of integrals... 
   -> Trying a solution in terms of special functions: 
      -> Bessel 
      -> elliptic 
      -> Legendre 
      -> Kummer 
         -> hyper3: Equivalence to 1F1 under a power @ Moebius 
      -> hypergeometric 
         -> heuristic approach 
         -> hyper3: Equivalence to 2F1, 1F1 or 0F1 under a power @ Moebius 
         <- hyper3 successful: received ODE is equivalent to the 2F1 ODE 
      <- hypergeometric successful 
   <- special function solution successful 
      -> Trying to convert hypergeometric functions to elementary form... 
      <- elementary form for at least one hypergeometric solution is achieved - returning with no uncomputed integrals 
   <- Kovacics algorithm successful`
                                                                                    
                                                                                    
 

dsolve((x^3+1)*diff(diff(y(x),x),x)+7*diff(y(x),x)*x^2+9*x*y(x) = 0, 
       y(x),singsol=all)
 

DSolve[{(1+x^3)*D[y[x],{x,2}]+7*x^2*D[y[x],x]+9*x*y[x]==0,{}}, 
       y[x],x,IncludeSingularSolutions->True]