problem 738

Internal problem ID [9072]
Internal ﬁle name [OUTPUT/8007_Monday_June_06_2022_01_14_58_AM_88012191/index.tex]

Book: Diﬀerential Gleichungen, E. Kamke, 3rd ed. Chelsea Pub. NY, 1948
Section: Chapter 1, Additional non-linear ﬁrst order
Problem number: 738.
ODE order: 1.
ODE degree: 1.

The type(s) of ODE detected by this program : "ﬁrst_order_ode_lie_symmetry_calculated"

\[ \boxed {y^{\prime }-\frac {2 a}{-y x^{2}+2 a y^{4} x^{2}-16 y^{2} a^{2} x +32 a^{3}}=0} \]

2.162.1 Solving as ﬁrst order ode lie symmetry calculated ode

Writing the ode as \begin {align*} y^{\prime }&=\frac {2 a}{2 a \,x^{2} y^{4}-16 a^{2} x \,y^{2}+32 a^{3}-x^{2} y}\\ y^{\prime }&= \omega \left ( x,y\right ) \end {align*}

The condition of Lie symmetry is the linearized PDE given by \begin {align*} \eta _{x}+\omega \left ( \eta _{y}-\xi _{x}\right ) -\omega ^{2}\xi _{y}-\omega _{x}\xi -\omega _{y}\eta =0\tag {A} \end {align*}

The type of this ode is not in the lookup table. To determine \(\xi ,\eta \) then (A) is solved using ansatz. Making bivariate polynomials of degree 3 to use as anstaz gives \begin{align*} \tag{1E} \xi &= x^{3} a_{7}+x^{2} y a_{8}+x \,y^{2} a_{9}+y^{3} a_{10}+x^{2} a_{4}+y x a_{5}+y^{2} a_{6}+x a_{2}+y a_{3}+a_{1} \\ \tag{2E} \eta &= x^{3} b_{7}+x^{2} y b_{8}+x \,y^{2} b_{9}+y^{3} b_{10}+x^{2} b_{4}+y x b_{5}+y^{2} b_{6}+x b_{2}+y b_{3}+b_{1} \\ \end{align*} Where the unknown coeﬃcients are \[ \{a_{1}, a_{2}, a_{3}, a_{4}, a_{5}, a_{6}, a_{7}, a_{8}, a_{9}, a_{10}, b_{1}, b_{2}, b_{3}, b_{4}, b_{5}, b_{6}, b_{7}, b_{8}, b_{9}, b_{10}\} \] Substituting equations (1E,2E) and \(\omega \) into (A) gives \begin{equation} \tag{5E} 3 x^{2} b_{7}+2 x y b_{8}+y^{2} b_{9}+2 x b_{4}+y b_{5}+b_{2}+\frac {2 a \left (-3 x^{2} a_{7}+x^{2} b_{8}-2 x y a_{8}+2 x y b_{9}-y^{2} a_{9}+3 y^{2} b_{10}-2 x a_{4}+x b_{5}-y a_{5}+2 y b_{6}-a_{2}+b_{3}\right )}{2 a \,x^{2} y^{4}-16 a^{2} x \,y^{2}+32 a^{3}-x^{2} y}-\frac {4 a^{2} \left (x^{2} a_{8}+2 x y a_{9}+3 y^{2} a_{10}+x a_{5}+2 y a_{6}+a_{3}\right )}{\left (2 a \,x^{2} y^{4}-16 a^{2} x \,y^{2}+32 a^{3}-x^{2} y \right )^{2}}+\frac {2 a \left (4 a x \,y^{4}-16 a^{2} y^{2}-2 y x \right ) \left (x^{3} a_{7}+x^{2} y a_{8}+x \,y^{2} a_{9}+y^{3} a_{10}+x^{2} a_{4}+y x a_{5}+y^{2} a_{6}+x a_{2}+y a_{3}+a_{1}\right )}{\left (2 a \,x^{2} y^{4}-16 a^{2} x \,y^{2}+32 a^{3}-x^{2} y \right )^{2}}+\frac {2 a \left (8 a \,x^{2} y^{3}-32 a^{2} x y -x^{2}\right ) \left (x^{3} b_{7}+x^{2} y b_{8}+x \,y^{2} b_{9}+y^{3} b_{10}+x^{2} b_{4}+y x b_{5}+y^{2} b_{6}+x b_{2}+y b_{3}+b_{1}\right )}{\left (2 a \,x^{2} y^{4}-16 a^{2} x \,y^{2}+32 a^{3}-x^{2} y \right )^{2}} = 0 \end{equation} Putting the above in normal form gives \[ \text {Expression too large to display} \] Setting the numerator to zero gives \begin{equation} \tag{6E} \text {Expression too large to display} \end{equation} Looking at the above PDE shows the following are all the terms with \(\{x, y\}\) in them. \[ \{x, y\} \] The following substitution is now made to be able to collect on all terms with \(\{x, y\}\) in them \[ \{x = v_{1}, y = v_{2}\} \] The above PDE (6E) now becomes \begin{equation} \tag{7E} \text {Expression too large to display} \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} \left (384 a^{4} b_{2}+4 a^{2} a_{2}+20 a^{2} b_{3}\right ) v_{2}^{4} v_{1}^{2}+\left (-1024 a^{5} b_{2}-96 a^{3} b_{3}-4 a a_{3}\right ) v_{2}^{2} v_{1}-12 a v_{1}^{6} v_{2}^{5} b_{7}+8 a^{2} v_{1}^{5} v_{2}^{9} b_{8}+4 a^{2} v_{1}^{4} v_{2}^{10} b_{9}-64 a^{3} v_{1}^{3} v_{2}^{8} b_{9}+\left (-128 a^{3} b_{2}-2 a a_{2}-4 a b_{3}\right ) v_{2} v_{1}^{2}+\left (-128 a^{3} b_{4}-4 a b_{5}\right ) v_{2}^{6} v_{1}^{4}+\left (768 a^{4} b_{4}+52 a^{2} b_{5}\right ) v_{2}^{4} v_{1}^{3}+\left (-2048 a^{5} b_{4}+32 a^{3} a_{4}-160 a^{3} b_{5}-2 a a_{5}-6 a b_{6}\right ) v_{2}^{2} v_{1}^{2}+\left (80 a^{2} b_{4}+b_{5}\right ) v_{2}^{3} v_{1}^{4}+\left (-192 a^{3} b_{4}-4 a b_{5}\right ) v_{2} v_{1}^{3}+\left (384 a^{4} b_{5}+4 a^{2} a_{5}+24 a^{2} b_{6}\right ) v_{2}^{5} v_{1}^{2}+\left (-1024 a^{5} b_{5}-128 a^{3} b_{6}-4 a a_{6}\right ) v_{2}^{3} v_{1}+\left (-192 a^{3} b_{7}-8 a b_{8}\right ) v_{2}^{6} v_{1}^{5}+\left (1152 a^{4} b_{7}-4 a^{2} a_{7}+84 a^{2} b_{8}+b_{9}\right ) v_{2}^{4} v_{1}^{4}+\left (-3072 a^{5} b_{7}+64 a^{3} a_{7}-224 a^{3} b_{8}-6 a b_{9}\right ) v_{2}^{2} v_{1}^{3}+\left (112 a^{2} b_{7}+2 b_{8}\right ) v_{2}^{3} v_{1}^{5}+\left (-256 a^{3} b_{7}+2 a a_{7}-4 a b_{8}\right ) v_{2} v_{1}^{4}+\left (-128 a^{3} b_{8}-4 a b_{9}\right ) v_{2}^{7} v_{1}^{4}+\left (768 a^{4} b_{8}+56 a^{2} b_{9}\right ) v_{2}^{5} v_{1}^{3}+\left (-2048 a^{5} b_{8}+32 a^{3} a_{8}-192 a^{3} b_{9}+16 a^{2} b_{1}-2 a a_{9}-8 a b_{10}\right ) v_{2}^{3} v_{1}^{2}+\left (2048 a^{6} b_{8}-128 a^{4} a_{8}+128 a^{4} b_{9}-64 a^{3} b_{1}-8 a^{2} a_{9}-4 a a_{1}\right ) v_{2} v_{1}+\left (384 a^{4} b_{9}+4 a^{2} a_{9}+28 a^{2} b_{10}\right ) v_{2}^{6} v_{1}^{2}+\left (-1024 a^{5} b_{9}-160 a^{3} b_{10}+8 a^{2} a_{1}-4 a a_{10}\right ) v_{2}^{4} v_{1}-4 a^{2} a_{3}+8 a^{2} v_{1} v_{2}^{7} a_{10}-64 a^{3} v_{1}^{3} v_{2}^{6} b_{2}-4 a v_{1}^{4} v_{2}^{5} b_{2}+48 a^{2} v_{1}^{3} v_{2}^{3} b_{2}+8 a^{2} v_{1} v_{2}^{5} a_{3}+4 a^{2} v_{1}^{4} v_{2}^{8} b_{2}+8 a^{2} v_{1}^{5} v_{2}^{8} b_{4}-8 a v_{1}^{5} v_{2}^{5} b_{4}+4 a^{2} v_{1}^{4} v_{2}^{9} b_{5}-64 a^{3} v_{1}^{3} v_{2}^{7} b_{5}+8 a^{2} v_{1} v_{2}^{6} a_{6}+12 a^{2} v_{1}^{6} v_{2}^{8} b_{7}+\left (3072 a^{6} b_{7}-192 a^{4} a_{7}+64 a^{4} b_{8}-4 a^{2} a_{8}-2 a b_{1}\right ) v_{1}^{2}+\left (2048 a^{6} b_{4}-128 a^{4} a_{4}+64 a^{4} b_{5}-4 a^{2} a_{5}\right ) v_{1}+\left (1024 a^{6} b_{5}-64 a^{4} a_{5}+128 a^{4} b_{6}-8 a^{2} a_{6}\right ) v_{2}+\left (1024 a^{6} b_{9}-64 a^{4} a_{9}+192 a^{4} b_{10}-32 a^{3} a_{1}-12 a^{2} a_{10}\right ) v_{2}^{2}-32 a^{3} v_{2}^{5} a_{10}-2 a v_{1}^{5} b_{7}+v_{1}^{4} v_{2}^{2} b_{2}-2 a v_{1}^{3} b_{2}-32 a^{3} v_{2}^{4} a_{6}-2 a v_{1}^{4} b_{4}+2 v_{1}^{5} v_{2}^{2} b_{4}+3 v_{1}^{6} v_{2}^{2} b_{7}-32 a^{3} v_{2}^{3} a_{3}+1024 a^{6} b_{2}-64 a^{4} a_{2}+64 a^{4} b_{3} = 0 \end{equation} Setting each coeﬃcients in (8E) to zero gives the following equations to solve \begin {align*} b_{2}&=0\\ 2 b_{4}&=0\\ 3 b_{7}&=0\\ -4 a b_{2}&=0\\ -2 a b_{2}&=0\\ -8 a b_{4}&=0\\ -2 a b_{4}&=0\\ -12 a b_{7}&=0\\ -2 a b_{7}&=0\\ 8 a^{2} a_{3}&=0\\ 8 a^{2} a_{6}&=0\\ 8 a^{2} a_{10}&=0\\ 4 a^{2} b_{2}&=0\\ 48 a^{2} b_{2}&=0\\ 8 a^{2} b_{4}&=0\\ 4 a^{2} b_{5}&=0\\ 12 a^{2} b_{7}&=0\\ 8 a^{2} b_{8}&=0\\ 4 a^{2} b_{9}&=0\\ -32 a^{3} a_{3}&=0\\ -32 a^{3} a_{6}&=0\\ -32 a^{3} a_{10}&=0\\ -64 a^{3} b_{2}&=0\\ -64 a^{3} b_{5}&=0\\ -64 a^{3} b_{9}&=0\\ 80 a^{2} b_{4}+b_{5}&=0\\ -192 a^{3} b_{4}-4 a b_{5}&=0\\ -128 a^{3} b_{4}-4 a b_{5}&=0\\ 768 a^{4} b_{4}+52 a^{2} b_{5}&=0\\ 112 a^{2} b_{7}+2 b_{8}&=0\\ -192 a^{3} b_{7}-8 a b_{8}&=0\\ -128 a^{3} b_{8}-4 a b_{9}&=0\\ 768 a^{4} b_{8}+56 a^{2} b_{9}&=0\\ -128 a^{3} b_{2}-2 a a_{2}-4 a b_{3}&=0\\ 384 a^{4} b_{2}+4 a^{2} a_{2}+20 a^{2} b_{3}&=0\\ -1024 a^{5} b_{2}-96 a^{3} b_{3}-4 a a_{3}&=0\\ 384 a^{4} b_{5}+4 a^{2} a_{5}+24 a^{2} b_{6}&=0\\ -1024 a^{5} b_{5}-128 a^{3} b_{6}-4 a a_{6}&=0\\ -256 a^{3} b_{7}+2 a a_{7}-4 a b_{8}&=0\\ 384 a^{4} b_{9}+4 a^{2} a_{9}+28 a^{2} b_{10}&=0\\ -1024 a^{5} b_{9}-160 a^{3} b_{10}+8 a^{2} a_{1}-4 a a_{10}&=0\\ 1024 a^{6} b_{2}-64 a^{4} a_{2}+64 a^{4} b_{3}-4 a^{2} a_{3}&=0\\ 2048 a^{6} b_{4}-128 a^{4} a_{4}+64 a^{4} b_{5}-4 a^{2} a_{5}&=0\\ 1024 a^{6} b_{5}-64 a^{4} a_{5}+128 a^{4} b_{6}-8 a^{2} a_{6}&=0\\ 1152 a^{4} b_{7}-4 a^{2} a_{7}+84 a^{2} b_{8}+b_{9}&=0\\ -3072 a^{5} b_{7}+64 a^{3} a_{7}-224 a^{3} b_{8}-6 a b_{9}&=0\\ 1024 a^{6} b_{9}-64 a^{4} a_{9}+192 a^{4} b_{10}-32 a^{3} a_{1}-12 a^{2} a_{10}&=0\\ -2048 a^{5} b_{4}+32 a^{3} a_{4}-160 a^{3} b_{5}-2 a a_{5}-6 a b_{6}&=0\\ 3072 a^{6} b_{7}-192 a^{4} a_{7}+64 a^{4} b_{8}-4 a^{2} a_{8}-2 a b_{1}&=0\\ 2048 a^{6} b_{8}-128 a^{4} a_{8}+128 a^{4} b_{9}-64 a^{3} b_{1}-8 a^{2} a_{9}-4 a a_{1}&=0\\ -2048 a^{5} b_{8}+32 a^{3} a_{8}-192 a^{3} b_{9}+16 a^{2} b_{1}-2 a a_{9}-8 a b_{10}&=0 \end {align*}

Solving the above equations for the unknowns gives \begin {align*} a_{1}&=0\\ a_{2}&=0\\ a_{3}&=0\\ a_{4}&=0\\ a_{5}&=0\\ a_{6}&=0\\ a_{7}&=0\\ a_{8}&=a_{8}\\ a_{9}&=0\\ a_{10}&=0\\ b_{1}&=-2 a_{8} a\\ b_{2}&=0\\ b_{3}&=0\\ b_{4}&=0\\ b_{5}&=0\\ b_{6}&=0\\ b_{7}&=0\\ b_{8}&=0\\ b_{9}&=0\\ b_{10}&=0 \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 &= x^{2} y \\ \eta &= -2 a \\ \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 (x,y\right ) \xi \\ &= -2 a - \left (\frac {2 a}{2 a \,x^{2} y^{4}-16 a^{2} x \,y^{2}+32 a^{3}-x^{2} y}\right ) \left (x^{2} y\right ) \\ &= \frac {-4 a^{2} x^{2} y^{4}+32 a^{3} x \,y^{2}-64 a^{4}}{2 a \,x^{2} y^{4}-16 a^{2} x \,y^{2}+32 a^{3}-x^{2} y}\\ \xi &= 0 \end {align*}

The next step is to determine the canonical coordinates \(R,S\). The canonical coordinates map \(\left ( x,y\right ) \to \left ( R,S \right )\) 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 x}{\xi } &= \frac {d y}{\eta } = dS \tag {1} \end {align*}

The above comes from the requirements that \(\left ( \xi \frac {\partial }{\partial x} + \eta \frac {\partial }{\partial y}\right ) S(x,y) = 1\). 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 = x \end {align*}

\(S\) is found from \begin {align*} S &= \int { \frac {1}{\eta }} dy\\ &= \int { \frac {1}{\frac {-4 a^{2} x^{2} y^{4}+32 a^{3} x \,y^{2}-64 a^{4}}{2 a \,x^{2} y^{4}-16 a^{2} x \,y^{2}+32 a^{3}-x^{2} y}}} dy \end {align*}

Which results in \begin {align*} S&= \frac {-2 a y -\frac {x}{2 \left (x \,y^{2}-4 a \right )}}{4 a^{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_{x} + \omega (x,y) S_{y} }{ R_{x} + \omega (x,y) R_{y} }\tag {2} \end {align*}

Where in the above \(R_{x},R_{y},S_{x},S_{y}\) are all partial derivatives and \(\omega (x,y)\) is the right hand side of the original ode given by \begin {align*} \omega (x,y) &= \frac {2 a}{2 a \,x^{2} y^{4}-16 a^{2} x \,y^{2}+32 a^{3}-x^{2} y} \end {align*}

Evaluating all the partial derivatives gives \begin {align*} R_{x} &= 1\\ R_{y} &= 0\\ S_{x} &= \frac {1}{2 a \left (-x \,y^{2}+4 a \right )^{2}}\\ S_{y} &= \frac {-2 a \,x^{2} y^{4}+16 a^{2} x \,y^{2}-32 a^{3}+x^{2} y}{4 a^{2} \left (-x \,y^{2}+4 a \right )^{2}} \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 \(x,y\) 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 \(R,S\). Integrating the above gives \begin {align*} S \left (R \right ) = c_{1}\tag {4} \end {align*}

To complete the solution, we just need to transform (4) back to \(x,y\) coordinates. This results in \begin {align*} \frac {4 a x y^{3}-16 y a^{2}+x}{-8 y^{2} a^{2} x +32 a^{3}} = c_{1} \end {align*}

Which simpliﬁes to \begin {align*} \frac {4 a x y^{3}-16 y a^{2}+x}{-8 y^{2} a^{2} x +32 a^{3}} = c_{1} \end {align*}

Summary

The solution(s) found are the following \begin{align*} \tag{1} \frac {4 a x y^{3}-16 y a^{2}+x}{-8 y^{2} a^{2} x +32 a^{3}} &= c_{1} \\ \end{align*}

Veriﬁcation of solutions

\[ \frac {4 a x y^{3}-16 y a^{2}+x}{-8 y^{2} a^{2} x +32 a^{3}} = c_{1} \] Veriﬁed OK.

Maple trace Kovacic algorithm successful

`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 Chini 
differential order: 1; looking for linear symmetries 
trying exact 
Looking for potential symmetries 
trying inverse_Riccati 
trying Riccati sub-methods: 
   trying Riccati to 2nd Order 
   -> Calling odsolve with the ODE`, diff(diff(y(x), x), x) = -(16*a^2*x^6-16*a*x^3+1)*(diff(y(x), x))/(x*(2*a*x^3-1))-8*a*x*(2*a*x^ 
      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) 
      <- Kovacics algorithm successful 
   <- Riccati to 2nd Order successful 
<- inverse_Riccati successful`

\begin{align*} y \left (x \right ) &= \frac {192 c_{1}^{2} a^{3} x +x^{2}-x \left (-216 c_{1}^{3} a^{2} x^{3}+576 c_{1}^{2} a^{3} x^{2}+12 a c_{1} x^{2} \sqrt {\frac {\left (324 a^{2} c_{1}^{4}+3 c_{1} \right ) x^{3}+\left (-1728 a^{3} c_{1}^{3}-12 a \right ) x^{2}+1536 c_{1}^{2} a^{4} x -49152 c_{1}^{4} a^{7}}{x}}-x^{3}\right )^{\frac {1}{3}}+\left (-216 c_{1}^{3} a^{2} x^{3}+576 c_{1}^{2} a^{3} x^{2}+12 a c_{1} x^{2} \sqrt {\frac {\left (324 a^{2} c_{1}^{4}+3 c_{1} \right ) x^{3}+\left (-1728 a^{3} c_{1}^{3}-12 a \right ) x^{2}+1536 c_{1}^{2} a^{4} x -49152 c_{1}^{4} a^{7}}{x}}-x^{3}\right )^{\frac {2}{3}}}{12 c_{1} x a \left (-216 c_{1}^{3} a^{2} x^{3}+576 c_{1}^{2} a^{3} x^{2}+12 a c_{1} x^{2} \sqrt {\frac {\left (324 a^{2} c_{1}^{4}+3 c_{1} \right ) x^{3}+\left (-1728 a^{3} c_{1}^{3}-12 a \right ) x^{2}+1536 c_{1}^{2} a^{4} x -49152 c_{1}^{4} a^{7}}{x}}-x^{3}\right )^{\frac {1}{3}}} \\ y \left (x \right ) &= \frac {\frac {\left (-i \sqrt {3}-1\right ) \left (-216 c_{1}^{3} a^{2} x^{3}+576 c_{1}^{2} a^{3} x^{2}+12 a c_{1} x^{2} \sqrt {\frac {\left (324 a^{2} c_{1}^{4}+3 c_{1} \right ) x^{3}+\left (-1728 a^{3} c_{1}^{3}-12 a \right ) x^{2}+1536 c_{1}^{2} a^{4} x -49152 c_{1}^{4} a^{7}}{x}}-x^{3}\right )^{\frac {2}{3}}}{24}+8 x \left (-\frac {\left (-216 c_{1}^{3} a^{2} x^{3}+576 c_{1}^{2} a^{3} x^{2}+12 a c_{1} x^{2} \sqrt {\frac {\left (324 a^{2} c_{1}^{4}+3 c_{1} \right ) x^{3}+\left (-1728 a^{3} c_{1}^{3}-12 a \right ) x^{2}+1536 c_{1}^{2} a^{4} x -49152 c_{1}^{4} a^{7}}{x}}-x^{3}\right )^{\frac {1}{3}}}{96}+\left (i \sqrt {3}-1\right ) \left (a^{3} c_{1}^{2}+\frac {x}{192}\right )\right )}{c_{1} x a \left (-216 c_{1}^{3} a^{2} x^{3}+576 c_{1}^{2} a^{3} x^{2}+12 a c_{1} x^{2} \sqrt {\frac {\left (324 a^{2} c_{1}^{4}+3 c_{1} \right ) x^{3}+\left (-1728 a^{3} c_{1}^{3}-12 a \right ) x^{2}+1536 c_{1}^{2} a^{4} x -49152 c_{1}^{4} a^{7}}{x}}-x^{3}\right )^{\frac {1}{3}}} \\ y \left (x \right ) &= \frac {\frac {\left (i \sqrt {3}-1\right ) \left (-216 c_{1}^{3} a^{2} x^{3}+576 c_{1}^{2} a^{3} x^{2}+12 a c_{1} x^{2} \sqrt {\frac {\left (324 a^{2} c_{1}^{4}+3 c_{1} \right ) x^{3}+\left (-1728 a^{3} c_{1}^{3}-12 a \right ) x^{2}+1536 c_{1}^{2} a^{4} x -49152 c_{1}^{4} a^{7}}{x}}-x^{3}\right )^{\frac {2}{3}}}{24}+8 \left (-\frac {\left (-216 c_{1}^{3} a^{2} x^{3}+576 c_{1}^{2} a^{3} x^{2}+12 a c_{1} x^{2} \sqrt {\frac {\left (324 a^{2} c_{1}^{4}+3 c_{1} \right ) x^{3}+\left (-1728 a^{3} c_{1}^{3}-12 a \right ) x^{2}+1536 c_{1}^{2} a^{4} x -49152 c_{1}^{4} a^{7}}{x}}-x^{3}\right )^{\frac {1}{3}}}{96}+\left (-i \sqrt {3}-1\right ) \left (a^{3} c_{1}^{2}+\frac {x}{192}\right )\right ) x}{c_{1} x a \left (-216 c_{1}^{3} a^{2} x^{3}+576 c_{1}^{2} a^{3} x^{2}+12 a c_{1} x^{2} \sqrt {\frac {\left (324 a^{2} c_{1}^{4}+3 c_{1} \right ) x^{3}+\left (-1728 a^{3} c_{1}^{3}-12 a \right ) x^{2}+1536 c_{1}^{2} a^{4} x -49152 c_{1}^{4} a^{7}}{x}}-x^{3}\right )^{\frac {1}{3}}} \\ \end{align*}

\begin{align*} y(x)\to \frac {\frac {2 \sqrt [3]{2304 a^4 x^2-64 a^3 x^3+576 a^3 e^{c_1} x^2-216 a^2 x^3-48 a^2 e^{c_1} x^3+\sqrt {x^3 \left (x \left (-2304 a^4-64 a^3 \left (-x+9 e^{c_1}\right )+24 a^2 \left (9+2 e^{c_1}\right ) x+12 a e^{2 c_1} x+e^{3 c_1} x\right ){}^2-\left (192 a^3+x \left (4 a+e^{c_1}\right ){}^2\right ){}^3\right )}-12 a e^{2 c_1} x^3-e^{3 c_1} x^3}}{x}+\frac {2 \left (192 a^3+16 a^2 x+8 a e^{c_1} x+e^{2 c_1} x\right )}{\sqrt [3]{2304 a^4 x^2-64 a^3 x^3+576 a^3 e^{c_1} x^2-216 a^2 x^3-48 a^2 e^{c_1} x^3+\sqrt {x^3 \left (x \left (-2304 a^4-64 a^3 \left (-x+9 e^{c_1}\right )+24 a^2 \left (9+2 e^{c_1}\right ) x+12 a e^{2 c_1} x+e^{3 c_1} x\right ){}^2-\left (192 a^3+x \left (4 a+e^{c_1}\right ){}^2\right ){}^3\right )}-12 a e^{2 c_1} x^3-e^{3 c_1} x^3}}-2 \left (4 a+e^{c_1}\right )}{24 a} \\ y(x)\to \frac {\frac {2 i \left (\sqrt {3}+i\right ) \sqrt [3]{2304 a^4 x^2-64 a^3 x^3+576 a^3 e^{c_1} x^2-216 a^2 x^3-48 a^2 e^{c_1} x^3+\sqrt {x^3 \left (x \left (-2304 a^4-64 a^3 \left (-x+9 e^{c_1}\right )+24 a^2 \left (9+2 e^{c_1}\right ) x+12 a e^{2 c_1} x+e^{3 c_1} x\right ){}^2-\left (192 a^3+x \left (4 a+e^{c_1}\right ){}^2\right ){}^3\right )}-12 a e^{2 c_1} x^3-e^{3 c_1} x^3}}{x}-\frac {2 i \left (\sqrt {3}-i\right ) \left (192 a^3+16 a^2 x+8 a e^{c_1} x+e^{2 c_1} x\right )}{\sqrt [3]{2304 a^4 x^2-64 a^3 x^3+576 a^3 e^{c_1} x^2-216 a^2 x^3-48 a^2 e^{c_1} x^3+\sqrt {x^3 \left (x \left (-2304 a^4-64 a^3 \left (-x+9 e^{c_1}\right )+24 a^2 \left (9+2 e^{c_1}\right ) x+12 a e^{2 c_1} x+e^{3 c_1} x\right ){}^2-\left (192 a^3+x \left (4 a+e^{c_1}\right ){}^2\right ){}^3\right )}-12 a e^{2 c_1} x^3-e^{3 c_1} x^3}}-4 \left (4 a+e^{c_1}\right )}{48 a} \\ y(x)\to \frac {-\frac {2 i \left (\sqrt {3}-i\right ) \sqrt [3]{2304 a^4 x^2-64 a^3 x^3+576 a^3 e^{c_1} x^2-216 a^2 x^3-48 a^2 e^{c_1} x^3+\sqrt {x^3 \left (x \left (-2304 a^4-64 a^3 \left (-x+9 e^{c_1}\right )+24 a^2 \left (9+2 e^{c_1}\right ) x+12 a e^{2 c_1} x+e^{3 c_1} x\right ){}^2-\left (192 a^3+x \left (4 a+e^{c_1}\right ){}^2\right ){}^3\right )}-12 a e^{2 c_1} x^3-e^{3 c_1} x^3}}{x}+\frac {2 i \left (\sqrt {3}+i\right ) \left (192 a^3+16 a^2 x+8 a e^{c_1} x+e^{2 c_1} x\right )}{\sqrt [3]{2304 a^4 x^2-64 a^3 x^3+576 a^3 e^{c_1} x^2-216 a^2 x^3-48 a^2 e^{c_1} x^3+\sqrt {x^3 \left (x \left (-2304 a^4-64 a^3 \left (-x+9 e^{c_1}\right )+24 a^2 \left (9+2 e^{c_1}\right ) x+12 a e^{2 c_1} x+e^{3 c_1} x\right ){}^2-\left (192 a^3+x \left (4 a+e^{c_1}\right ){}^2\right ){}^3\right )}-12 a e^{2 c_1} x^3-e^{3 c_1} x^3}}-4 \left (4 a+e^{c_1}\right )}{48 a} \\ \end{align*}

2.162 problem 738

2.162.1 Solving as ﬁrst order ode lie symmetry calculated ode