Kalman Filter Velocity data looking too similar to position data

7 vues (au cours des 30 derniers jours)
Wyatt
Wyatt le 8 Oct 2024
Modifié(e) : James Tursa le 8 Oct 2024
I'm creating a Kalman filter that intakes Accelerometer and Angular Velocity measurements from Matlab mobil IMU sensors, and filters it, then calculates the position and velocity. My question is on if I am going about calculating the position and velocity wrong, of if this is a good result but it looks strange for some reason?
Here is an abridged look at the sections of code I'm concerned with
dt = 0.1;
% Initial R and V calculation
aRaw = [Accx, Accy, Accz];
vi = aRaw .* dt;
ri = .5 * aRaw .* (dt^2);
% ~~Data is filtered here~~
% Filtered R and V calculation
af = [Accxf, Accyf, Acczf];
vf = af .* dt;
rf = .5 * af .* (dt^2);
af is the filtered acceleration data in x,y,z. I just followed basic kinematics equations, is that the wrong way to calculate it? Initial velocity and positioned are calculated the same way but from the raw data, charts are provided.
If this isn't the issue, where should I be looking to figure this out? My only other guess is maybe its an issue with the state variables. Thank you.
Tried changing sensor data, adjusting kinematic formulas, and debugging. Expected different looking results for position and velocity.

Réponse acceptée

James Tursa
James Tursa le 8 Oct 2024
Modifié(e) : James Tursa le 8 Oct 2024
Your velocity vf and position rf calculations as shown represent "change" over dt, not current value. Think about it. If you had constant acceleration the entire time you would expect the overall velocity to be linear and position to be parabolic, right? But what you would have for the calculations you show are constants for both. I.e., the "changes" are constant, but the current values would not be constant. You need to be using some type of integration scheme (i.e., summing up the "changes") with these acceleration measurements, like cumtrapz( ), to get current velocity and position.
Example with constant acceleration to drive home this point:
dt = 0.1;
n = 50;
aRaw = zeros(n,3) + 0.1; % constant acceleration
t = (0:(n-1)) * dt;
vi = aRaw .* dt;
vt = cumtrapz(aRaw) * dt;
plot(t,vi(:,1)); title('vi = aRaw*dt'); xlabel('t'); ylabel('x velocity');
plot(t,vt(:,1)); title('vt = cumtrapz(aRaw)*dt'); xlabel('t'); ylabel('x velocity');
  1 commentaire
Wyatt
Wyatt le 8 Oct 2024
cumtrapz did the trick, thank you. I had initially tried that but someone suggested formulas and it made sense at the time.

Connectez-vous pour commenter.

Plus de réponses (1)

Les Beckham
Les Beckham le 8 Oct 2024
It appears that you aren't differentiating the position to get the velocity, you are just multiplying it by dt. Thus the two plots look the same with only a scale factor difference. Similarly for the acceleration, you should be differentiating the velocity, not just applying a scale factor.
  1 commentaire
Wyatt
Wyatt le 8 Oct 2024
Not sure it's any different, arent the equations of motion just a more direct form of integration?. say a point on an array is A, the integral to get velocity is Ax, and with time it just means its A*dt, which is the same thing I have (af .* dt). then the second integral of 2 is 2/2 *x^2, or 0.5 * af .* (dt^2).

Connectez-vous pour commenter.

Catégories

En savoir plus sur General Applications dans Help Center et File Exchange

Community Treasure Hunt

Find the treasures in MATLAB Central and discover how the community can help you!

Start Hunting!

Translated by