Large Sparse Matrix Summation
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Hi, Everyone:
Suppose I have a very large M*N sparse matrix A, where M=K*N, I need to equally split it into K N*N matrices and sum it up, I can't use loop, so I tried to use:
sum(reshape(A',N,N,K),3);
However, this command can't reshape sparse matrix into a 3-D array, is there any other way to do it? (without loop or converge to dense matrix)
Many Thanks
1 comentario
James Tursa
el 22 de Abr. de 2013
What are the actual sizes you are working with?
Respuesta aceptada
Teja Muppirala
el 22 de Abr. de 2013
This seems to work well:
% Making some random data...
N = 1000;
K = 100;
A = sprand(N*K,N,0.0001);
[r,c,val] = find(A);
rnew = mod(r-1,N)+1; % Shift all the row values to [1-->N]
Asum = accumarray([rnew c],val,[N N],[],[],true); % The answer
2 comentarios
Teja Muppirala
el 22 de Abr. de 2013
I guess that last line would be simpler as this:
Asum = sparse(rnew,c,val,N,N);
Ming
el 22 de Abr. de 2013
Más respuestas (1)
Why can't you use a loop? Is K that large?
If you are looking for efficiency, I'd say that you could directly build A in a way that sums up these N*N blocks, by working on indices using a modulus for row indices. As SPARSE works like ACCUMARRAY when multiple indices are similar, you would have the summation. Example:
N = 4 ;
I = randi(3*N, 5*N, 1) ;
J = randi(N, 5*N, 1) ;
V = 50 + randi(10, 5*N, 1) ;
% - First method: assumes that A already built.
A = sparse(I, J, V, 3*N, N) ;
full(A)
[r,c,v] = find(A) ;
r = 1 + mod(r-1, N) ;
A_sum = sparse(r, c, v, N, N) ;
% - Second method: build directly the sum from indices.
I = 1 + mod(I-1, N) ;
B = sparse(I, J, V, N, N) ;
% - Check.
full(A_sum)
full(B)
full(all(A_sum(:) == B(:)))
Running this, you get (RANDI will generate something else if you test it):
ans =
0 55 0 0
60 0 51 0
0 54 0 112
0 0 0 0
52 0 0 114
0 59 115 0
57 51 0 0
0 56 0 56
0 55 0 0
0 0 0 0
54 0 56 0
0 51 0 0
ans =
52 110 0 114
60 59 166 0
111 105 56 112
0 107 0 56
ans =
52 110 0 114
60 59 166 0
111 105 56 112
0 107 0 56
ans =
1
3 comentarios
Cedric
el 22 de Abr. de 2013
Well, Teja was faster ;-)
Ming
el 22 de Abr. de 2013
James Tursa
el 23 de Abr. de 2013
How big? What are the actual sizes you are using?
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