How can I use lorentzian norm in 2D gray scale image segmentation?

7 Sept. 2013
2 Respuestas
Respuesta aceptada
5 Visualizaciones (30 días)

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I'm working on 2D image segmentation & I want to refine the image with lorentz as a preprocessing operation.
lorentzian norm equation is:
f(x)= sum(log(1+0.5(x/T))), where "x" is a distance.
my problem is how can I calculate the distance "x".
is it the distance between center pixel and just one neighbor?
or it's the distance between this pixel and its 8-neighbors?
"or is it the maximum or minimum distance"?
thanks

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 Respuesta aceptada

Youssef Khmou
Youssef Khmou el 7 de Sept. de 2013
Editada: Youssef Khmou el 7 de Sept. de 2013

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rasha
Lorentizian metric requires 4 dimensions x,y,z,t, but here for image processing the matrix is 2D so then where there is sum in your Function replicate it to 2 sums , try to discuss this prototype :
X=im2double(imread('circuit.tif'));
T=norm(X) ; % random number chosen here to be euclidean norm
FX=sum(sum(log(1+0.5*X/T)))

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Rasha
Rasha el 8 de Sept. de 2013
Editada: Rasha el 8 de Sept. de 2013
Youssef KHMOU, I'm so grateful for your addition,
in this prototype its suppose that X produce the whole image, but in my program X is a distance between two pixels.
I replicate the sum as your advice in my program, it produce the same result to me.
thanks

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Más respuestas (1)

Image Analyst
Image Analyst el 7 de Sept. de 2013

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I have no idea. If you don't either, then why are you so sure you want to do it?

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Rasha
Rasha el 7 de Sept. de 2013
I need it for my research as a kind of refinement step.
Image Analyst
Image Analyst el 7 de Sept. de 2013
That didn't answer the question. So WHY do you think you need it? I guess that you're trying to follow some paper that uses it. If so, then doesn't the paper tell you what x and T are? And tell you why this operation is needed, and what you're supposed to do with f(x) once you've constructed it?
Rasha
Rasha el 7 de Sept. de 2013
yes I saw it in a paper, but it takes it as a mathematical equation with no explanation.
I know that lorentzian used Instead of the mean square error equation to produce finer result image.
so f(x) will be the new input image with less high frequencies.
Rasha
Rasha el 7 de Sept. de 2013
Editada: Rasha el 7 de Sept. de 2013
thank you for your interaction with my question and for the link :)
I wrote this code but it have error in summation step, could you help me on it?
if true
%
I = imread('cameraman.tif');
I = im2double(I);
J = zeros(size(I)); % Output
[m n] = size(I);
f = zeros(1,8);
T = 50;
for i = 2:m-1
for j = 2:n-1
cp=I(i,j);
np=I(i-1,j);
sp=I(i+1,j);
wp=I(i,j-1);
ep=I(i,j+1);
nwp=I(i-1,j-1);
nep=I(i-1,j+1);
swp=I(i+1,j-1);
sep=I(i+1,j+1);
x1 = (np-cp) ;
x2 = (nwp-cp)/1.4;
x3 = (nep-cp)/1.4 ;
x4 = (sp-cp);
x5 = (swp-cp)/1.4;
x6 = (sep-cp)/1.4;
x7 = (wp-cp);
x8 = (ep-cp);
for X = x1:x8
X = log(1+0.5*(X/T)^2);
f(X) = abs(X);
J(i,j) = sum(f(X));
end
end
end
imshow(J)
Image Analyst
Image Analyst el 7 de Sept. de 2013
Editada: Image Analyst el 7 de Sept. de 2013
grayImage = imread('cameraman.tif');
grayImage = im2double(grayImage);
J = zeros(size(grayImage)); % Output
[rows, columns] = size(grayImage);
f = zeros(1,8);
T = 50;
for i = 2 : rows-1
for j = 2 : columns-1
cp=grayImage(i,j);
np=grayImage(i-1,j);
sp=grayImage(i+1,j);
wp=grayImage(i,j-1);
ep=grayImage(i,j+1);
nwp=grayImage(i-1,j-1);
nep=grayImage(i-1,j+1);
swp=grayImage(i+1,j-1);
sep=grayImage(i+1,j+1);
x(1) = (np-cp) ;
x(2) = (nwp-cp)/1.4;
x(3) = (nep-cp)/1.4 ;
x(4) = (sp-cp);
x(5) = (swp-cp)/1.4;
x(6) = (sep-cp)/1.4;
x(7) = (wp-cp);
x(8) = (ep-cp);
f = abs(log(1+0.5*(x/T) .^ 2));
J(i,j) = sum(f(:));
end
end
imshow(J, [])
% Enlarge figure to full screen.
set(gcf, 'units','normalized','outerposition',[0 0 1 1]);
Rasha
Rasha el 7 de Sept. de 2013
thanks too much Image Analyst, finally it works :)
Image Analyst
Image Analyst el 7 de Sept. de 2013
What does it do though? It looks like an edge detector. Is that what you wanted? You could probably speed it up even more though clever use of the conv2() function.
Rasha
Rasha el 7 de Sept. de 2013
yes of course you are right;
but I have to try a lot of methods to compare between them,
I'm still studying it, and I'm not sure if this is the wanted result.
Image Analyst
Image Analyst el 8 de Sept. de 2013
Please accept my answer since I finally got it working for you.
Rasha
Rasha el 8 de Sept. de 2013
Editada: Rasha el 8 de Sept. de 2013
I wanted to accept the two answers, but when I make it for one, your accept disappear, I tried but I didn't find Retreat button.
tel me how and I will do it.
Image Analyst
Image Analyst el 8 de Sept. de 2013
They don't have that functionality (yet), though many have been asking for it.
Youssef Khmou
Youssef Khmou el 8 de Sept. de 2013
rasha, the problem is solved, if you posted the code at the first time it would easier to make suggestions. Unaccept my response and accept the other answer ,
good luck
Rasha
Rasha el 8 de Sept. de 2013
Editada: Rasha el 8 de Sept. de 2013
they have to do it, please don't be Angry, I really apologize for this, its my first interaction in the site and I don't know the all Rules yet.
but of course it's a lesson to me.
Image Analyst
Image Analyst el 8 de Sept. de 2013
No one is angry. Here's a good list of postings to get you up to speed on the forum: tutorials, and of course the FAQ. Welcome to the forum.
Rasha
Rasha el 8 de Sept. de 2013
Editada: Image Analyst el 8 de Sept. de 2013
Youssef KHMOU, the both answers are helpful. and as I tell Image Analyst I wanted to accept both of them. next time I will post the code first. thanks
Rasha
Rasha el 8 de Sept. de 2013
Editada: Rasha el 9 de Sept. de 2013
Image Analyst, all my regards to you and to Youssef KHMOU.
really it's a very good site and company.
thanks

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el 7 de Sept. de 2013

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