Solution 13 to problem N1t8s14f1


Expressions | Parameters | Inequalities | Relevance | Back to problem N1t8s14f1

Expressions

The solution is given through the following expressions:

q55=0


q54=0


q53=0


q52=0


q51=0


q50=0


q49=0


q48=0


q47=0


q46=0


q45=0


q44=0


q43=0


q42=0


q41=0


q40=0


q39=0


q38=0


q37=0


q36=0


q35=0


q34=0


q33=0


q32=0


q31=0


q30=0


q29=0


q28=0


q27=0


q26=0


q25=0


q24=0


q23=0


q22=0


q21=0


q20=0


q19=0


q18=0


q17=0


      1
     ---*p6*q12
      2
q16=------------
         p4


q15=0


q14=0


q13=0


q11=0


q10=0


q9=0


q8=0


q7=0


q6=0


q5=0


q4=0


q3=0


q2=0


q1=0


p13=0


p12=0


p11=0


p10=0


p9=0


p8=0


p7=0


p5=0


p3=0


p2=0


p1=0


Parameters

Apart from the condition that they must not vanish to give a non-trivial solution and a non-singular solution with non-vanishing denominators, the following parameters are free:
 q12, p6, p4

Inequalities

In the following not identically vanishing expressions are shown. Any auxiliary variables g00?? are used to express that at least one of their coefficients must not vanish, e.g. g0019*p4 + g0020*p3 means that either p4 or p3 or both are non-vanishing.
 
{p6,

 g0133*p6 + g0135*p4,

 p4,

                                                           2
 g0043*p6*q12 + 2*g0047*p4*q12 + 2*g0065*p4*p6 + 2*g0067*p4 ,

 q12,

 g0110*p6 + 2*g0114*p4}


Relevance for the application:



The equation: 


           2            3
f =Df *(Df) *f*p4 + (Df) *f *p6
 t   x                     x
The symmetry:
            5             1      6
    Df *(Df) *f*p4*q12 + ---*(Df) *f *p6*q12
      x                   2         x
f =------------------------------------------
 s                     p4
And now in machine readable form:

The system:

df(f(1),t)=d(1,df(f(1),x))*d(1,f(1))**2*f(1)*p4 + d(1,f(1))**3*df(f(1),x)*p6$
The symmetry:
df(f(1),s)=(d(1,df(f(1),x))*d(1,f(1))**5*f(1)*p4*q12 + 1/2*d(1,f(1))**6*df(f(1),
x)*p6*q12)/p4$