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I have a 5D matrix Cij(3,3,Nx,Ny,Nz) where Nx,Ny and Nz are given as input.

I need to perform something like this:

for ikx=1:Nx,
    for iky=1:Ny,
        for ikz=1:Nz,

            %Random simulation of fourier components
            n=zeros((3),'double');
            for j=1:9,
                ncomponent=randn(2);
                n(j)=complex(ncomponent(1),ncomponent(2));
                %Calculation of H
                H(:,ikx,iky,ikz)=dot(Cij(:,:,ikx,iky,ikz),n);
            end;
        end;
    end;
end;

The problem is that increasing Nx,Ny,Nz the loop requires a real huge time to get the H matrix calculated.

Does anybody know any faster way to get H matrix?

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2 Answers 2

It should first be noted that within your inner-most loop you perform the dot product 9 times, overwriting H(:,ikx,iky,ikz) each time. There's no point to that. You should just fill in the random values for n within the loop, and compute H(:,ikx,iky,ikz) once after that loop.

However, all the loops are unnecessary since you can take advantage of the fact that the function DOT is vectorized and can handle 5-D arrays (i.e. it will automatically perform the dot operation across the first non-singleton dimension). All you have to do is make n a 3-by-3-by-Nx-by-Ny-by-Nz matrix of complex values. These two lines should give you the same result as your code above:

n = complex(rand([3 3 Nx Ny Nz]), rand([3 3 Nx Ny Nz]));
H = squeeze(dot(Cij, n));

The function SQUEEZE is used to remove singleton dimensions from H, which will make it a 3-by-Nx-by-Ny-by-Nz matrix.

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Hallo guys,I thank you for the real early reply. –  fpe Dec 19 '11 at 18:18
    
The final H matrix has to be 4D ,neither 5D nor 3D. H represent a 3D turbulent field over a spatial grid made up of (Nx,Ny,Nz) elements. So that from Cij(3,3,Nx,Ny,Nz), I want to get a final H(3,Nx,Ny,Nz) matrix which stores the turbulent field. I thank you in advance and I'm sorry to bother you with trivial queries. –  fpe Dec 19 '11 at 18:54

You can do that using some reshape (and permute)

C=rand(3,3,Nx,Ny,Nz);
n=rand(3,3);

If you want a mtrix multiplication between n and each element of C:

H=reshape(n*reshape(C,3,3*Nx*Ny*Nz),[3,3,Nx,Ny,Nz])

If you want a dot product between n and each element of C:

H=reshape(reshape(n,1,[])*reshape(C,3*3,Nx*Ny*Nz),[Nx,Ny,Nz])
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This does not appear to reproduce what is being done in the nested loops. –  gnovice Dec 19 '11 at 17:39
    
Yes, but the code does not appear to be really what he wants to do... He said "something like that". His code does not multiply a 5D matrix with a 2D matrix, as said in the title... I think he misplaced several parts of the code, the loop on j should be at the beginning and not nested with the others. That's my guess about what he wants to do. Maybe I am wrong... –  Oli Dec 19 '11 at 17:47
    
Hmmm, I had interpreted his title as being a little off, and that the code he wrote was giving him the right answer, but just not as quickly as he wanted it to. I guess we'll have to wait and see how he comments on our answers. –  gnovice Dec 19 '11 at 17:59
    
Hallo guys,I thank you for the real early reply.Probably I failed to explain what I need to perform: My starting matrix is 5D Cij(3,3,Nx,Ny,Nz) and I wanna get the final 4D matrix H(3,Nx,Ny,Nz) by multiplying each sub-matrix Cij(3,3) with another 2D matrix n(3,3),where n is made up of complex number with mu=0.0; and sigma=1.0; I hope of having explained in a better way my issue this time. Please be patient with me,I am still a newbee with matlab. –  fpe Dec 19 '11 at 18:24
    
1) If you do the dot product between Cij(3,3) and n(3,3) then the result is a scalar and your final output is of size H(Nx,Ny,Nz) 2) If you do the matrix multiplcation the result is a 3x3 matrix so the final output is of size H(3,3,Nx,Ny,Nz) –  Oli Dec 19 '11 at 18:31

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