1D Linear ODEs
Let’s solve the linear ODE u'=1.01u. First setup the
package:
de <- diffeqr::diffeq_setup()
Define the derivative function f(u,p,t).
f <- function(u,p,t) {
return(1.01*u)
}
Then we give it an initial condition and a time span to solve
over:
u0 <- 1/2
tspan <- c(0., 1.)
With those pieces we define the ODEProblem and
solve the ODE:
prob = de$ODEProblem(f, u0, tspan)
sol = de$solve(prob)
This gives back a solution object for which sol$t are
the time points and sol$u are the values. We can treat the
solution as a continuous object in time via
and a high order interpolation will compute the value at
t=0.2. We can check the solution by plotting it:
linear_ode
Systems of ODEs
Now let’s solve the Lorenz equations. In this case, our initial
condition is a vector and our derivative functions takes in the vector
to return a vector (note: arbitrary dimensional arrays are allowed). We
would define this as:
f <- function(u,p,t) {
du1 = p[1]*(u[2]-u[1])
du2 = u[1]*(p[2]-u[3]) - u[2]
du3 = u[1]*u[2] - p[3]*u[3]
return(c(du1,du2,du3))
}
Here we utilized the parameter array p. Thus we use
diffeqr::ode.solve like before, but also pass in parameters
this time:
u0 <- c(1.0,0.0,0.0)
tspan <- list(0.0,100.0)
p <- c(10.0,28.0,8/3)
prob <- de$ODEProblem(f, u0, tspan, p)
sol <- de$solve(prob)
The returned solution is like before except now sol$u is
an array of arrays, where sol$u[i] is the full system at
time sol$t[i]. It can be convenient to turn this into an R
matrix through sapply:
mat <- sapply(sol$u,identity)
This has each row as a time series. t(mat) makes each
column a time series. It is sometimes convenient to turn the output into
a data.frame which is done via:
udf <- as.data.frame(t(mat))
Now we can use matplot to plot the timeseries
together:
matplot(sol$t,udf,"l",col=1:3)
timeseries
Now we can use the Plotly package to draw a phase plot:
plotly::plot_ly(udf, x = ~V1, y = ~V2, z = ~V3, type = 'scatter3d', mode = 'lines')
plotly_plot
Plotly is much prettier!
Option Handling
If we want to have a more accurate solution, we can send
abstol and reltol. Defaults are
1e-6 and 1e-3 respectively. Generally you can
think of the digits of accuracy as related to 1 plus the exponent of the
relative tolerance, so the default is two digits of accuracy. Absolute
tolernace is the accuracy near 0.
In addition, we may want to choose to save at more time points. We do
this by giving an array of values to save at as saveat.
Together, this looks like:
abstol <- 1e-8
reltol <- 1e-8
saveat <- 0:10000/100
sol <- de$solve(prob,abstol=abstol,reltol=reltol,saveat=saveat)
udf <- as.data.frame(t(sapply(sol$u,identity)))
plotly::plot_ly(udf, x = ~V1, y = ~V2, z = ~V3, type = 'scatter3d', mode = 'lines')
precise_solution
We can also choose to use a different algorithm. The choice is done
using a string that matches the Julia syntax. See the
ODE tutorial for details. The list of choices for ODEs can be found
at the ODE
Solvers page. For example, let’s use a 9th order method due to
Verner:
sol <- de$solve(prob,de$Vern9(),abstol=abstol,reltol=reltol,saveat=saveat)
Note that each algorithm choice will cause a JIT compilation