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ahmad
ahmad on 30 Jan 2012
Solving a partial differential equation with ode15s,we know that this ode solver integrates the ode over time direvatives.I need to find the values of these time direvatives,do you have any special command? for example: for i=1:n dudt=uxx(i) end
how can I find these dudt at each time and x(i)? thanks alot

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Accepted Answer

Andrew Newell
Andrew Newell on 30 Jan 2012
If you are solving something like
[t,x] = solver(odefun,tspan,y0)
and you want the time derivative at each point t(i), then that is simply
dxdt = 0*x; % initialize the array
for ii=1:length(t)
dxdt(ii,:) = odefun(t(ii),x(ii,:));
end
(edited to allow for the possibility that x has more than one component at each time t).
  2 Comments
Bård Skaflestad
Bård Skaflestad on 30 Jan 2012
That's more or less what I had in mind. Calling the |odefun| from an |OutputFcn| is just another refinement.
ahmad
ahmad on 20 Feb 2012
So if I want to calculate the integral of square of dudt i don't have any special command in my mind,in fact I used trapz but it keeps saying "the length of x should be the same as the first non-singleton variable" or it says that "x should be a vector".

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More Answers (2)

Bård Skaflestad
Bård Skaflestad on 30 Jan 2012
If you're going to solve a PDE by the method of lines (i.e., converting it into a system of ODEs), then you will need to provide a spatial discretisation of the PDE along with suitable initial conditions whence ode15s (or others) will likely assist you in the numerical solution.
Please review your favourite text book on discretisation methods.
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Bård Skaflestad
Bård Skaflestad on 30 Jan 2012
Sorry, I meant |odeset|, not |optimset|.
ahmad
ahmad on 30 Jan 2012
I think that you are good at matlab numerical processes,can you please take a look at my program?I need to call the du/dt values solved by ode solver at every point like du/dt(t,x),is there a special command for it?it is true that its a big amount of data.so how can i do the other calculations using these values?
thanks

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Andrew Newell
Andrew Newell on 30 Jan 2012
You could use deval.
EDIT: Here is a modified version of the example at the link provided:
sol = ode45(@vdp1,[0 20],[2 0]);
t = linspace(0,20,100);
[y,dy] = deval(sol,t,1);
plot(t,dy);
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Andrew Newell
Andrew Newell on 30 Jan 2012
I think it is the time derivative (as in the example I added), but for a polynomial fitting the solution. I provide a more direct solution in a separate answer.
Bård Skaflestad
Bård Skaflestad on 30 Jan 2012
Indeed it is. The second output of |deval| is the derivative (wrt the independent variable) of the continuous output polynomial fitted to the numerical scheme of the particular solver (ODE45 in the above example).
Yet another detail I'd missed while skimming the documentation of |deval|.

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