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Hi there this might me a very noob question but I'm stuck, and I'm trying to do this for a while, please help me.

I'm trying to do something like this:

a=0.5;
ODE= @(x,y) ((-2*(a^2)*x*y)/(x^2+y^2)^2)/(1-((a^2)*(x^2-y^2)/(x^2+y^2)^2));


%The classical RK4 solution as a function
k1 = ODE(x,y);
k2 = ODE(x+0.5*dx,y+k1*0.5*dx);
k3 = ODE(x+0.5*dx,y+k2*0.5*dx);
k4 = ODE(x+dx,y+k3*dx);
rk4= @(x,y,dx) y + 1/6*(k1 + 2*(k2+k3) + k4)*dx;

So I first define ODE as an anonymous function then I'm trying to define k's from the ODE and finally RK4 from k's.

But this doesn't work. Any suggestion what to do?

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1 Answer 1

up vote 2 down vote accepted

Your k1 through k4 are not being defined or used as functions. When you declare k1 = ODE(x,y), this tries to evaluate the ODE function with vectors x and y that aren't defined. What you probably mean to say is :

k1 = @(x,y,dx) (ODE(x,y));
k2 = @(x,y,dx) (ODE(x+0.5*dx,y+k1(x,y,dx)*0.5*dx));
k3 = @(x,y,dx) (ODE(x+0.5*dx,y+k2(x,y,dx)*0.5*dx));
k4 = @(x,y,dx) (ODE(x+dx,y+k3(x,y,dx)*dx));
rk4= @(x,y,dx) (y + 1/6*(k1(x,y,dx) + \
                2*(k2(x,y,dx)+k3(x,y,dx)) + \
                k4(x,y,dx))*dx);
share|improve this answer
    
Thanks a lot it worked. And I have a question. If I wanted to define a separate function file calculating rk4, what should I do? I mean I cannot use @(..) in function files. What's the replacement? –  user1020121 Oct 29 '11 at 21:12
    
You can still define anonymous functions in the body of a regular function, so if your function file starts with function rk4=RK4(ODE,x,y,dx), then the body can just be the code above, with the @(x,y,dx) removed from the rk4 line. –  user57368 Oct 29 '11 at 21:19
    
Thanks man, I now understand the function logic. –  user1020121 Oct 29 '11 at 22:39

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