How do i calculate FWHM from Gaussian fitted curve??

66 Ansichten (letzte 30 Tage)
Laurent Vaughan
Laurent Vaughan am 27 Jun. 2018
Kommentiert: Rik am 6 Jul. 2021
I have fitted this Gaussian to my data nicely, however there doesn't seem to be an option or add-on in matlab to calculate the full width at half maximum for my function once saved. Is there a way to calculate this?
  2 Kommentare
Rik
Rik am 27 Jun. 2018
You can simply measure the distance between the half-maximum points. What code have you tried to do that?
Anton Semechko
Anton Semechko am 27 Jun. 2018
Bearbeitet: Anton Semechko am 27 Jun. 2018

Formula for FWHM of a Gaussian PSF:

 FWHM = 2*sqrt(2*ln(2))*s; % where s is the standard deviation

Melden Sie sich an, um zu kommentieren.

Melden Sie sich an, um diese Frage zu beantworten.

Antworten (2)

Rik
Rik am 27 Jun. 2018
More generally, the FWHM is the x-distance that describe the width of your curve halfway from the maximum to the baseline. Your fit is not a Gaussian, so you cannot use the formula. The code below shows how you can approximate the FWHM based on your data. You can input your raw data instead of your fit as well, but you need to be careful with noise that causes zero crossings or changes the maximum and minimum of your data.
%get the data back out of the figure
ax=gca;
x=ax.Children.XData;
y=ax.Children.YData;
%scale y-data, so the maximum is at 1 and the baseline is at 0
max_val=1;baseline=0;
y_scaled=y-min(y);
y_scaled=y_scaled/max(y_scaled);
y_scaled=y_scaled*(max_val-baseline)+baseline;
%zero cross index finder by Star Strider
zci = @(v) find(v(:).*circshift(v(:), [-1 0]) <= 0);
%y_temp will cross 0 at half the maximum
y_temp=y_scaled-0.5*max(y_scaled);
idx=zci(y_temp);%get the indices of the two half-maximum points
FWHM=diff(x(idx));%get the difference between the corresponding x-values
hold on
plot(x(idx), y(idx),'k*-','DisplayName',sprintf('FWHM=%.1f',FWHM))
  3 Kommentare
1 älteren Kommentar anzeigen
Gaëtan Poirier
Gaëtan Poirier am 6 Jul. 2021
Hi,
This seems to work although the two half-maximum points are not located at the same point on the y-axis leading to the FWHM line not being flat. Is there anyway to fix this?
Thank you in advance!
Rik
Rik am 6 Jul. 2021
That is likely due to the specific x-values of your samples. You will either have to resample so your exact points are included, or you need to fit a curve to your data so you can calculate the FWHM.

Melden Sie sich an, um zu kommentieren.

Daniel Capellán Martín
Daniel Capellán Martín am 10 Dez. 2018
Hi, if you use the function fit, and type 'gauss2', 'gauss4', depending on how many gaussians you need to fit them to your data, when storing it in a variable, for example f, you can obtain the FWHM with f.c1, f.c2, ..., corresponding to the gaussian curve fitted that you are analysisng in order to obtain its width
  3 Kommentare
1 älteren Kommentar anzeigen
umesh birajdar
umesh birajdar am 13 Mär. 2019
above post is releted to this curve here selected the region according to the width of the curve.
image.JPG
Rik
Rik am 13 Mär. 2019
This is not a comment, but a separate question. If you decide to repost this as a question, consider the following two points:
Have a read here (or here for more general advice). It will greatly improve your chances of getting an answer.
If you already have a fit of you Gaussians, you can extract the standard deviation, which contains the complete information of whatever you could mean with 'width' in your specific context.

Melden Sie sich an, um zu kommentieren.

Kategorien

Mehr zu Descriptive Statistics finden Sie in Help Center und File Exchange

Tags

Community Treasure Hunt

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

Start Hunting!

Translated by