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Time derivative of parameters within ODE solvers

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Seyed Ali Baradaran Birjandi
编辑: Torsten 2018-11-23
I have an ODE which has a parameter whose 1st and 2nd order time derivatives are also included in the ODE:
function dy = ODE(t,y)
f1 = myfun(y(t));
dy = y + f1 + df1/dt + ddf1/dt^2;
end
Unfortunately, the function of analytical derivatives of myfun is not available. Therefore, df1 and ddf1 can be computed numerically, only. Given that the time step in Matlab ode solvers is not fixed, I wonder if there is a way to numerically compute df1 and ddf1.

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Torsten
Torsten 2018-11-23
编辑:Torsten 2018-11-23
function dy = ODE(t,y)
dt = 1e-8;
fm = myfun(t-dt);
f = myfun(t);
fp = myfun(t+dt);
df = (fp - fm) / (2 * dt);
ddf = (fp - 2 * f + fm) / dt^2;
dy = y + f + df + ddf;
end
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Torsten
Torsten 2018-11-23
编辑:Torsten 2018-11-23
Let
z = f(y)
the value that "myfun" returns for argument y.
Then
dz/dt = df/dy * dy/dt
d^2z/dt^2 = d^2f/dy^2 * (dy/dt)^2 + df/dy * d^2y/dt^2
Inserting into your differential equation gives
dy/dt = y + f + df/dy * dy/dt + d^2f/dy^2 * (dy/dt)^2 + df/dy * d^2y/dt^2
or
df/dy * d^2y/dt^2 + (df/dy - 1) * dy/dt + d^2f/dy^2 * (dy/dt)^2 + y + f = 0
Now you can approximate df/dy and d^2f/dy^2 as I suggested above and solve the system (z1 = y, z2 = dy/dt)
z1' = z2
z2' = -((df/dy - 1) * z2 + d^2f/dy^2 * (z2)^2 + z1 + f)/(df/dy)
using ODE45, e.g.

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