Azzera filtri
Azzera filtri

Compress down a 1000x1000 matrix into a 100x100 matrix

57 visualizzazioni (ultimi 30 giorni)
Ahmed Abdulla
Ahmed Abdulla il 7 Giu 2020
Commentato: larasupernovae il 3 Mar 2022
I have a 1000x1000 matrix that contains various values. I would like to compress it down into a 100 by 100 matrix by averaging each 10 by 10 cell's values into 1, but im not really sure how to go about doing this

Accedi per rispondere a questa domanda.

Risposta accettata

Ameer Hamza
Ameer Hamza il 7 Giu 2020
Modificato: Ameer Hamza il 7 Giu 2020
If you have image processing toolbox
M = rand(1000, 1000);
M_new = blockproc(M, [10 10], @(x) mean(x.data, 'all'))
Alternative Solution 1: (surprisingly the fastest)
M_new = conv2(M, ones(10)/100, 'valid');
M_new = M_new(1:10:end, 1:10:end);
Alternative Solution 2:
M_C = mat2cell(M, 10*ones(1,100), 10*ones(1,100));
M_new = cellfun(@(x) mean(x, 'all'), M_C);
Alternative Solution 3:
M_new = zeros(size(M)/10);
for i=1:100
for j=1:100
M_new(i, j) = mean(M(10*(i-1)+1:10*i,10*(j-1)+1:10*j), 'all');
end
end
  2 Commenti
Robert Jansen
Robert Jansen il 24 Mar 2021
Amazing array of solutions. These all give the same results. The last one is surprisingly fast too. Thanks.

Accedi per commentare.

Più risposte (2)

David Hill
David Hill il 7 Giu 2020
count=1;
for col=1:100:1000
for row=1:100:1000
newMatrix(count)=mean(yourMatrix(row:row+99,col:col+99),'all');
count=count+1;
end
end
newMatrix=reshape(newMatrix,10,[]);
Jan
Jan il 24 Mar 2021
Modificato: Jan il 24 Mar 2021
X = rand(1000, 1000);
Y = reshape(X, [10, 100, 10, 100]);
Z = reshape(sum(sum(Y, 1), 3), [100, 100]) / 100;
Or with FEX: BlockMean :
Z = BlockMean(X, 10, 10)

Categorie

Scopri di più su Statistics and Machine Learning Toolbox in Help Center e File Exchange

Tag

Prodotti


Release

R2019b

Community Treasure Hunt

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

Start Hunting!

Translated by