Summing within an array to change the size
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I have an array that has dimensions of 111x46x2. I want to sum the values in the first 3x3 block to become the first value of the next matrix repeating this until the last column is summed together. The dimensions of the new matrix should be 37x16x2.
I could make the dimensions of the original matrix 111x48x2 if that makes the calculations easier and more efficient. The 9x9 blocks will have values only in certain locations such as [ 0 0 #; # 0 0; 0 # 0]; and the last column will have values in each row.
4 commentaires
Sean de Wolski
le 27 Août 2012
46 or 48?
Matthew Vincent
le 27 Août 2012
Sean de Wolski
le 27 Août 2012
blockproc below is smart enough to handle either of those scenarios :)
Walter Roberson
le 29 Août 2012
Please read the guide to tags and retag this Question; see http://www.mathworks.co.uk/matlabcentral/answers/43073-a-guide-to-tags
Réponse acceptée
Sean de Wolski
le 27 Août 2012
Modifié(e) : Sean de Wolski
le 27 Août 2012
If you have the Image Processing Toolbox:
x = rand(111,46,2);
y = blockproc(x,[3 3],@(s)sum(sum(s.data,1),2));
Or if you don't:
z = convn(x,ones(3),'valid');
z = z(1:3:end,1:3:end,:); %may need to crop differently depending on last edges
1 commentaire
Matthew Vincent
le 27 Août 2012
Plus de réponses (2)
Matt Fig
le 27 Août 2012
Here is one way to do it:
A = magic(6);
cellfun(@(x) sum(x(:)),mat2cell(A,2*ones(1,3),2*ones(1,3)))
4 commentaires
Matthew Vincent
le 27 Août 2012
Sean de Wolski
le 27 Août 2012
Modifié(e) : Sean de Wolski
le 27 Août 2012
mat2cell is painfully slow for anything at all large. I recommend avoiding it:
x = rand(999,999,3);
tic,mat2cell(x,ones(1,333)*3,ones(1,333)*3,3);toc
Elapsed time is 7.549038 seconds.
Matt Fig
le 27 Août 2012
What do you mean 'array input'? A is an array....
Matt Fig
le 27 Août 2012
MAT2CELL is slow for large inputs, indeed. What are you MathWorkers doing with your time?! ;-)
A Matlab version:
x = rand(111, 46, 2);
S = size(X);
M = S(1) - mod(S(1), 3);
N = S(2) - mod(S(2), 3);
% Cut and reshape input such that the 1st and 3rd dimension have the lengths V
% and W:
XM = reshape(X(1:M, 1:N, :), 3, M / 3, 3, N / 3, []);
Y = squeeze(sum(sum(XM, 1), 3));
2 commentaires
Andrei Bobrov
le 29 Août 2012
with two reshape
s = size(x);
t = mod(-s(1:2),[3 3]);
xx = [x zeros(s(1),t(2),s(3))];
xx = [xx; zeros(t(1),s(2)+t(2),s(3))];
s2 = s + [t, 0];
y = reshape(sum(sum(reshape(xx,3, s2(1)/3, 3,[]),3)),s2(1)/3,s2(2)/3,[]);
Jan
le 29 Août 2012
Difference between Andrei's and my solution:
- RESHAPE instead of SQUEEZE (which calls RESHAPE internally)
- Andrei appends zeros, I remove the not matching lines on the bottom.
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le 27 Août 2012
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