time integration via frequency domain

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Hekseli
Hekseli el 25 de Jun. de 2014
Comentada: Antonio Leanza el 13 de Mzo. de 2023
Hey!
I have been trying to get this integration by fft and dividing by 2*pi*f*i working but the amplitude is wrong all the time. Basically my code is the same as in this example: http://www.mathworks.com/matlabcentral/answers/17611-how-to-convert-a-accelerometer-data-to-displacements
So
function int_time_data = integrate(data,dt)
N1 = length(data);
N = 2^nextpow2(N1);
if N > N1
data(N1+1:N) = 0; % pad array with 0's
end
df = 1 / (N*dt); % frequency increment
Nyq = 1 / (2*dt); % Nyquist frequency
freq_data = (fftshift(fft(data)));
int_freq_data = zeros(size(freq_data));
f = -Nyq:df:Nyq-df;
for i = 1 : N
if f(i) ~= 0
int_freq_data(i) = freq_data(i)/(2*pi*f(i)*sqrt(-1));
else
int_freq_data(i) = 0;
end
end
int_time_data = ifft(ifftshift((int_freq_data)));
int_time_data = int_time_data(1:N1);
end
dt = 0.01; % seconds per sample
N = 512; % number of samples
t = 0 : dt : (N-1)*dt; % in seconds
wave_freq = 17.1; % in Hertz
data = sin(2*pi*wave_freq*t);
integrated_time_data = integrate(data,dt);
integrated_time_data_analytical = -1/(2*pi*wave_freq)*cos(2*pi*wave_freq*t);
plot(t,integrated_time_data);
hold on;
plot(t,integrated_time_data_analytical,'-r');
But this produces wrong results. What is wrong?
  1 comentario
Antonio Leanza
Antonio Leanza el 13 de Mzo. de 2023
In this code the detrendization via high pass filtering is missing.

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Respuestas (3)

Star Strider
Star Strider el 25 de Jun. de 2014
You did not say what was wrong about the amplitude. I did not run that code, but see if changing the freq_data line to:
freq_data = (fftshift(fft(data)/length(data)));
solves the problem.
  2 comentarios
Star Strider
Star Strider el 25 de Jun. de 2014
That may be required, since according to the ifft documentation, it also normalizes by dividing the computed ifft by the length of the argument.
Antonio Leanza
Antonio Leanza el 13 de Mzo. de 2023
Editada: Antonio Leanza el 13 de Mzo. de 2023
The original code works well regarding that line.

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Hekseli
Hekseli el 25 de Jun. de 2014
Thanks for the hint. It didn't solve the problem totally. When dividing by the length in fft I assume I should multiply by the length after the ifft? Otherwise the amplitude is far too small.
Now after the multiplication I get the following result which is attached

Michael
Michael el 27 de Ag. de 2014
Hekseli,
You sometimes need to perform a high pass filter on your data when you convert it from acceleration to position. That should get rid of any low frequency drift you see in your results.

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