Move the lhs over to the rhs

It looks as thogh Maple can solve the whole problem, but it will be a nightmare sorting through the various 1368 cases (and the "otherwise" case).

A typical condition and result.

Let's simplify by collecting the complicated combinations of parameters into simpler parameters

So in simpler form we have

Aside from the cases with b=0, there are three different cases, depending on the value of , which is just the discriminant of the quadratic a*i1^2+b*i1+c. We want to know the values of i1 for which the parabola is above the i1 axis. Since a is positive, the parabola is not inverted. If  the roots are complex, and the whole parabola is above the axis. This is case 4. If   the roots are real (part of the parabola is below/on the axis) and for the relation to hold i1 must be greater than the more positive root or less than the more negative root (outside the interval between the roots) - this is case 5. Case 6 is for a<0, which is not of interest.

So we want to find when the discriminant is positive or negative

This is going to depend on the exact values of the parameters and is still a complicated problem. But if you know some extra conditions you might be able to narrow it down. For example it seems important to know if delta<1

So this is progress, but not enough to narrow it down

Unless you know you will always be using a particular range, I would not put a range here. If there is no range, then the range and values are determined when you actually need them, in this case in odeplot. The range option here doesn't apply to all methods. On the other hand if you do use range here, you can use refine = 2 in odeplot to get twice the normal number of points.

rkf45 is an automatic step size method (not the standard fixed stepsize Runge-Kutta method), so gives the default accuracy over all points plotted, with a reasonable number of points. I would specify the range here.

The 0..3 solution is stored so when we do 0..30, the solver starts actually starts from 3.

Look at a small section of the solution

Use another method. rosenbrock is default for stiff equations, and can be obtained by stiff=true or method=rosenbrock

The help pages have more

This version assumes wolf speed = goat speed and each is constant. It also assumes the wolf's velocity vector is always directed at the goat.

Take the origin to be the location of the stake fixing one end of the rope, which is of length1, and take the goat's initial position as . Without loss of generality, we take the common speed to be 1.
Let  be the wolf coordinates and  be the goat coordinates.
We assume the wolf never "second guesses" the goat's position so that the wolf's velocity vector is always pointed directly at the goat. i.e., the tangent to the wolf's trajectory points at the goat. The tangent vector is given by and therefore  for some function . Therefore we have the two odes

And the speeds are each 1.

And the goat moves on the unit circle.

Let the initial position of the wolf be . Then the vector from here to the goat is , so.

But the squares of these sum to 1 so , or  For , the initial velocity of the goat is downwards (presumably, though we could assume otherwise).

Sample start point for the wolf for numerical solution.

Numerical solution

Red = wolf, blue = goat.

Separation vs time - looks like the wolf catches the goat in an asymptotic sense.

Note that the motion of the goat is predetermined by its speed and initial condition since it must maintain constant speed, i.e., it can't turn around.

In terms of an analytical solution, Maple can reduce the system to a single ode in  but not solve it. There is no result if the initial conditions are included.

Use the interactive feature of dsolve to sample different initial conditions and record cases where the separation at  is less than 0.05.

A point here indicates the wolf (effectively) catches the goat if starting from this point. It seems the wolf always catches the goat

First one of result 2

The following gives lambda[0] differing by a sign from in the paper (aleph^2-1) instead of 1-aleph^2 in the numerator

Case of aleph = 1

Case of aleph = 0 - here the coefficient goes to zero so the whole thing does.

Just looking at the JacobiCN part, it goes to cos as expected.

Error, (in series/function) unable to compute series

Note the following is imaginary.

Go back to the ode

This form with sn is close, but not sure about the right signs for assumptions to get this result without symbolic

Circles k1 and k2 have radii 1 and sqrt(2), centred WLOG at the origin.

"From the outside, five congruent circles k3 are placed tangent to k1, each with a radius r yet to be calculated."
WLOG take centre of one k3 circle at

Find the intersection points p1 and p2 between circles k2 and k3

Find the angle p1-o-k3c

This angle needs to be 2*Pi/10, and we can solve for r.

Warning, solve may be ignoring assumptions on the input variables.

Update these objects to reflect the calculated value of r.

I changed the part in red - correct?

Check it looks correct.

This needs to be linearized with respect to theta. I'll just throw away second and higher order terms in theta. We can't use coeff on theta(x,t), so will do it in jet notation.

But we still have half-integral powers of Q, which don't appear in Eq, 11. So there is definitely something wrong something I'm doing here.
If I manually remove any terms with half integral powers of Q, I'm left with something that is still not right - there are the right number of terms but there is no term with coefficient 18

So I'll just proceed with the above incorrect result

We assume theta has the form

We substitute this in P3 and collect the coefficients of the two exp terms

Set up these as matrix equations in the unknowns alpha[1] and alpha[2]

There is a nontrivial solution to these equations iff the determinant is zero. The determinant is a quartic in w.

And we solve for w to define the dispersion relationship eq 13. The coefficients under the square roots aren't correct, but presumably would be if P3 were correct. The first two solutions seem to be the ones of interest.

w is real when the expression under the square root is positive

Painleve analysis following the notation in doi: 10.2991/jnmp.2006.13.1.8

Hirota-Satsuma system example from that paper.

Step 1

Find all the distinct powers of g for eqG1 and eqG2

Find the slopes wrt alpha[1] and alpha[2] and separate into categories based on the different pairs of slopes. Then find the lowest lines for each case.

Find all intersection points between pairs of these. Each is a list of a set of the alpha values and then the corresponding exponent.

When an alpha is undetermined, then the algoritm says put successive integers in and accept a possibility (branch) if each equation has at least two leading (most negative) terms.
There is only one solution to the second case, which sets alpha[1] = -2 but doesn't fix alpha[2]. This is also the first solution in the first case, which corresponds to leading order -5.

If we put it into the second solution in the first case, i.e. alpha[1]=alpha[2]=-2, then the order is 2*alpha[2] - 1 = -5.
If we put it into the third solution in the first case, i.e. alpha[1]=2+2*alpha[2], or -2 = 2+2*alpha[2] or alpha[2] = -2 and the leading order is 2*alpha[2] - 1 = -5.
So alpha[1] = alpha[2] = -2 will work in any case.
Note that alpha[2]>-2 will also work with -5 (we need at least two in each equation having -5)

But alpha[2] <-2 won't work - here we have only one of leading order -7 (we have two -5s, but these aren't the most negative).

Apparently, alpha[1]=-2, alpha[2]>=0 leads to u[0] or v[0] identically 0, so is excluded. So we have two possibilities (need integers or have to do a special analysis):

Start with the b1 case

We want only the terms with g^(mindeg), but we cannot collect wrt g, so convert it to a simple name before collecting

Following are u[0]/g^alpha[1] and v[0]/g^alpha[2], which we use in step 2 - Eq 3.19 (1)

So we found (chi) and (alpha) which was our target for first step

Step 2 - finding resonance points. use U as short for u_j

We substitute into the pdes, and seek "the coefficients of the dominant terms",

Want the dominant (least value).

So we want all terms with exponent dom; Find when the determinant is zero

Find resonant points, but <-1 doesn't count and Painleve doesn't apply; there is not a general solution.

Step 3 -verifying the compatibility condition

Substitute back into the pde, and collect wrt g(vars) = G.

Find the coefficients of the maxrp least-degree terms, since we have maxrp variables to solve for

Solving the first equation gives {u[1],v[1]} - Eq 3.24

Substitute this in the second equation and solve for U[2] - Eq 3.25

This one is a resonance

The determinant = 0 expected for a resonance. Rank of matrix and augmented matrix are the same - if we solve for U[3] and V[3], we find V[3] is arbitrary and U[3] also has a arbitrary function

This one is also a resonance

Here matrix and augmented matrix have different ranks, no solution.

Error, (in LinearAlgebra:-LinearSolve) inconsistent system

We find a solution for U[5] and V[5]

This one is a resonance

Determinant = 0

Error, (in LinearAlgebra:-LinearSolve) inconsistent system

Solution for U[7], V[7]

And this is the last resonance

I don't understand the bit about needing a=1/2 for compatibility

Well, combine is usually the opposite of expand, so the first thing I'd try is

I tried a lot of converts without success. Of course not many algebraic things are likely to be expressible as trig functions, so it is just "luck" that term1 came out so simply.

So I'll give Maple a hand, trying to forget that I saw the answer already. Now sqrt(1-x*2) for x = sin/cos(u) gives cos/sin(u), and for the 4's being 2^2 suggests a substitution

We could play around with assumptions to handle the csgn, but let's be reckless

To go back to x we need to inverse transformation

which gives what we want.

If we had used cos instead

And the plots are on top of each other

which we can verify exactly

If you solve with infolevel[solve]:=5; you see it solved 5 equations, so plenty of opportunity for extraneous solutions.
So I'm guessing it did something like this:

The last two answers here are the problematic ones, but actually the first six are special cases of a=a, b=2*a/(a-1). The problem is that s1, s2, s2 are not all positive, so the squaring in neweqs with the assumptions led to the problem

All these solutions check out for the expanded system

Taking numer wasn't a problem

OK in neweqs

But not in sys

Burgers eqn  - see https://doi.org/10.1063/1.525721

Routine to find symbolic exponent of phi

Step 1

Find all the distinct powers of phi

We are supposed to compare all pairs of lowest exponents. So first find the lowest line for each slope.

Now compare all pairs of these to find the intersection with least a

The following has all the terms, not just those from the highest derivative and higher nonlinearity

We want only the terms with phi^(mindeg), but we cannot collect wrt phi, so convert it to a simple name before collecting

Following is u[0]/phi^a, which we use in step 2

So we found (chi) and (a) which was our target for first step

Step 2 - finding resonance points. use Phi as short for phi_j

We substitute into the pde, and seek "the coefficients of the dominant terms",

Following routine finds the exponent of phi in a term T

Want the dominant (least value).

So we want all terms with exponent dom; Solve the equation with these terms to find the resonant points.

Step 3 -verifying the compatibility condition

Substitute back into the pde, and collect wrt phi(vars) = F.

Find the coefficients of the maxrp least-degree terms, since we have maxrp variables to solve for

For the Burger's equation, solving the first equation gives u[1] - Eq. 3.7

If we substitute this in the second equation, it simplifies to zero, which is why we cannot just solve the system.
This is because j=2 is a resonance point.
We have found Eq. 3.8; the factor in the first line below is the derivative wrt x of the eqn for u1.