State Space unit step and initial conditions
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I am trying to get MATLAB to show a state space response with both a unit step input and initial conditions. All documentation shows only how to do one or the other, as if I try using step() or initial(), the second overrides the first. Thanks!
Answers (3)
Daniel Stankowski
on 7 Jan 2020
2 votes
The above method works but you can also use an lsim command.
Do the following:
lsim(sys,u,t,x0)
where;
- sys - defines your state space
- u defines your input signal which in case of step input can be defined as u=ones(length(t)) % cause we know for step u(t)=1 (you can see it from laplace transform tables)
- t - time, for example; t=linspace(0,5,10)
- x0 = is a vector of initial conditions
2 Comments
shivam sahil
on 11 Apr 2020
A small correction, it should be:
u=ones(length(t),1) ;
instead of
u=ones(length(t))
Xiaohan Tang
on 3 Jan 2021
Thank you!!!
Youngsik Kim
on 3 Nov 2017
1 vote
You can get the zero input response from initial() and zero state response from step() separately, and then you can add up later to plot the response.
[yi,ti,xi]=initial(systm,xinitial); [ystep,ts,xs]=step(systm,ti);
Then, the superposition of them is what you want. ytotal=yi+ystep; Then plot time .vs. ytotal.
Drishya Dinesh
on 19 Apr 2021
how to get a response with initial value of 10.
t2=400;
u_del=(0.0022*k*(s+0.06931)*(s^2+0.4852*s+0.1492))/((s+0.04833)*(s+0.004352)*(s^2+0.06012*s+0.01331));
figure
step(u_del,t2);
ylabel('Velocity,u (m/s)','fontsize',10);
title('Time Response');
grid
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