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Using Matlab's image processing toolbox I can find weighted centroids using the regionprops function. This is because the function can return either a WeightedCentroid or a list of pixels indices per labeled part of the image, by PixelList, and then the weighted centroid is easily calculated. However, jacket's support in regionprops only returns an unweighted centroid (or the centroid of the binary "island" that was obtained using bwlabel earlier). This means that the info regarding pixel positions was somehow used in order to find these centroids.

How can I access jacket's regionprops info regarding the list of pixels it uses to calculate the unweighted centroid so I could use it to calculate a weighted centroid? (One important reason to do this is because the function find cannot be used in a gfor loop, otherwise one can find the different output values of bwlabel...)

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1 Answer 1

up vote 1 down vote accepted
+50

I have not tested performance, but here is an algorithm to get weighted centroids and areas. This should work with Jacket as well as matlab (depending on the type of Input).

function [WC, WA] = WeightedMoments(L, I);
  [m, n] = size(L);
  [keys, idx] = sort(L(:));

  % Get weights and locations in sorted order
  w = I(idx);
  idx = idx - 1; % Convert to 0-index for simplicity
  x = floor(idx / m);
  y = idx - x * m;

  % Location of the starting point of each region.
  locs = find([diff(keys); 1]);

  % Weighted area and locations
  Msum = cumsum([w, x.*w, y.*w]);
  Mloc = diff(Msum(locs,:));
  M00 = Mloc(:, 1);
  M10 = Mloc(:, 2);
  M01 = Mloc(:, 3);

  % Weighted centroids and areas
  WC = [M10 ./ M00, M01 ./ M00] + 1; % Convert back to 1-index
  WA = M00;
end

P.S. I am a developer at AccelerEyes. Sorry about the delay.

EDIT: Cleaned up the code a little bit.

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Thank you, it indeed takes some toll in performance, but it does the job. –  natan Nov 22 '12 at 8:30
    
I'm trying to improve the efficiency of this code, and I was wandering how hard would it be "mex" it (for jacket-cuda)? From your experience, how much faster would a mex version of this be? –  natan Jan 27 '13 at 5:42

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