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Please help me to improve the following Matlab code to improve execution time.

Actually I want to make a random matrix (size [8,12,10]), and on every row, only have integer values between 1 and 12. I want the random matrix to have the sum of elements which has value (1,2,3,4) per column to equal 2.

The following code will make things more clear, but it is very slow. Can anyone give me a suggestion??

clc
clear all
jum_kel=8
jum_bag=12
uk_pop=10

for ii=1:uk_pop;    
    for a=1:jum_kel
        krom(a,:,ii)=randperm(jum_bag); %batasan tidak boleh satu kelompok melakukan lebih dari satu aktivitas dalam satu waktu
    end
end

for ii=1:uk_pop;  
gab1(:,:,ii) = sum(krom(:,:,ii)==1)
gab2(:,:,ii) = sum(krom(:,:,ii)==2)
gab3(:,:,ii) = sum(krom(:,:,ii)==3)
gab4(:,:,ii) = sum(krom(:,:,ii)==4)
end

for jj=1:uk_pop;
     gabh1(:,:,jj)=numel(find(gab1(:,:,jj)~=2& gab1(:,:,jj)~=0))
     gabh2(:,:,jj)=numel(find(gab2(:,:,jj)~=2& gab2(:,:,jj)~=0))
     gabh3(:,:,jj)=numel(find(gab3(:,:,jj)~=2& gab3(:,:,jj)~=0))
     gabh4(:,:,jj)=numel(find(gab4(:,:,jj)~=2& gab4(:,:,jj)~=0))
end

for ii=1:uk_pop;
    tot(:,:,ii)=gabh1(:,:,ii)+gabh2(:,:,ii)+gabh3(:,:,ii)+gabh4(:,:,ii)
end

for ii=1:uk_pop;
    while tot(:,:,ii)~=0;
          for a=1:jum_kel
              krom(a,:,ii)=randperm(jum_bag); %batasan tidak boleh satu kelompok melakukan lebih dari satu aktivitas dalam satu waktu
          end
          gabb1 = sum(krom(:,:,ii)==1)
          gabb2 = sum(krom(:,:,ii)==2)
          gabb3 = sum(krom(:,:,ii)==3)
          gabb4 = sum(krom(:,:,ii)==4)

          gabbh1=numel(find(gabb1~=2& gabb1~=0));
          gabbh2=numel(find(gabb2~=2& gabb2~=0));
          gabbh3=numel(find(gabb3~=2& gabb3~=0));
          gabbh4=numel(find(gabb4~=2& gabb4~=0));

          tot(:,:,ii)=gabbh1+gabbh2+gabbh3+gabbh4;
    end
end
share|improve this question

2 Answers 2

up vote 5 down vote accepted

Some general suggestions:

  • Name variables in English. Give a short explanation if it is not immediately clear, what they are indented for. What is jum_bag for example? For me uk_pop is music style.
  • Write comments in English, even if you develop source code only for yourself. If you ever have to share your code with a foreigner, you will spend a lot of time explaining or re-translating. I would like to know for example, what %batasan tidak boleh means. Probably, you describe here that this is only a quick hack but that someone should really check this again, before going into production.

Specific to your code:

  • Its really easy to confuse gab1 with gabh1 or gabb1.
  • For me, krom is too similar to the built-in function kron. In fact, I first thought that you are computing lots of tensor products.
  • gab1 .. gab4 are probably best combined into an array or into a cell, e.g. you could use

    gab = cell(1, 4);
    for ii = ...
        gab{1}(:,:,ii) = sum(krom(:,:,ii)==1);
        gab{2}(:,:,ii) = sum(krom(:,:,ii)==2);
        gab{3}(:,:,ii) = sum(krom(:,:,ii)==3);
        gab{4}(:,:,ii) = sum(krom(:,:,ii)==4);
    end
    

    The advantage is that you can re-write the comparsisons with another loop. It also helps when computing gabh1, gabb1 and tot later on.

    If you further introduce a variable like highestNumberToCompare, you only have to make one change, when you certainly find out that its important to check, if the elements are equal to 5 and 6, too.

  • Add a semicolon at the end of every command. Having too much output is annoying and also slow.

  • The numel(find(gabb1 ~= 2 & gabb1 ~= 0)) is better expressed as sum(gabb1(:) ~= 2 & gabb1(:) ~= 0). A find is not needed because you do not care about the indices but only about the number of indices, which is equal to the number of true's.

  • And of course: This code

    for ii=1:uk_pop
        gab1(:,:,ii) = sum(krom(:,:,ii)==1)
    end
    

    is really, really slow. In every iteration, you increase the size of the gab1 array, which means that you have to i) allocate more memory, ii) copy the old matrix and iii) write the new row. This is much faster, if you set the size of the gab1 array in front of the loop:

    gab1 = zeros(... final size ...);
    for ii=1:uk_pop
        gab1(:,:,ii) = sum(krom(:,:,ii)==1)
    end
    

    Probably, you should also re-think the size and shape of gab1. I don't think, you need a 3D array here, because sum() already reduces one dimension (if krom is 3D the output of sum() is at most 2D).

    Probably, you can skip the loop at all and use a simple sum(krom==1, 3) instead. However, in every case you should be really aware of the size and shape of your results.

Edit inspired by Rody Oldenhuis:

As Rody pointed out, the 'problem' with your code is that its highly unlikely (though not impossible) that you create a matrix which fulfills your constraints by assigning the numbers randomly. The code below creates a matrix temp with the following characteristics:

  • The numbers 1 .. maxNumber appear either twice per column or not at all.
  • All rows are a random permutation of the numbers 1 .. B, where B is equal to the length of a row (i.e. the number of columns).

Finally, the temp matrix is used to fill a 3D array called result. I hope, you can adapt it to your needs.

clear all;
A = 8; B = 12; C = 10;
% The numbers [1 .. maxNumber] have to appear exactly twice in a
% column or not at all.
maxNumber = 4;
result = zeros(A, B, C);
for ii = 1 : C
    temp = zeros(A, B);
    for number = 1 : maxNumber
        forbiddenRows = zeros(1, A);
        forbiddenColumns = zeros(1, A/2);
        for count = 1 : A/2
            illegalIndices = true;
            while illegalIndices
                illegalIndices = false;
                % Draw a column which has not been used for this number.
                randomColumn = randi(B);
                while any(ismember(forbiddenColumns, randomColumn))
                    randomColumn = randi(B);
                end
                % Draw two rows which have not been used for this number.
                randomRows = randi(A, 1, 2);
                while randomRows(1) == randomRows(2)  ...
                      || any(ismember(forbiddenRows, randomRows))
                  randomRows = randi(A, 1, 2);
                end
                % Make sure not to overwrite previous non-zeros.
                if any(temp(randomRows, randomColumn))
                    illegalIndices = true;
                    continue;
                end
            end
            % Mark the rows and column as forbidden for this number.
            forbiddenColumns(count) = randomColumn;
            forbiddenRows((count - 1) * 2 + (1:2)) = randomRows;
            temp(randomRows, randomColumn) = number;
        end
    end

    % Now every row contains the numbers [1 .. maxNumber] by 
    % construction. Fill the zeros with a permutation of the
    % interval [maxNumber + 1 .. B].
    for count = 1 : A
        mask = temp(count, :) == 0;
        temp(count, mask) = maxNumber + randperm(B - maxNumber);
    end

    % Store this page.
    result(:,:,ii) = temp;
end
share|improve this answer
    
wow, so fast...thanks for your code mr...it is useful for me. –  Febri Dwi Laksono Aug 28 '12 at 13:11

OK, the code below will improve the timing significantly. It's not perfect yet, it can all be optimized a lot further.

But, before I do so: I think what you want is fundamentally impossible.

So you want

  • all rows contain the numbers 1 through 12, in a random permutation
  • any value between 1 and 4 must be present either twice or not at all in any column

I have a hunch this is impossible (that's why your code never completes), but let me think about this a bit more.

Anyway, my 5-minute-and-obvious-improvements-only-version:

clc
clear all

jum_kel  =  8;
jum_bag  =  12;
uk_pop   =  10;

A = jum_kel; % renamed to make language independent 
B = jum_bag; % and a lot shorter for readability
C = uk_pop;

krom = zeros(A, B, C);
for ii = 1:C;
    for a = 1:A
        krom(a,:,ii) = randperm(B);
    end
end

gab1  = sum(krom == 1);
gab2  = sum(krom == 2);
gab3  = sum(krom == 3);
gab4  = sum(krom == 4);

gabh1 = sum( gab1 ~= 2 & gab1 ~= 0 );
gabh2 = sum( gab2 ~= 2 & gab2 ~= 0 );
gabh3 = sum( gab3 ~= 2 & gab3 ~= 0 );
gabh4 = sum( gab4 ~= 2 & gab4 ~= 0 );

tot   = gabh1+gabh2+gabh3+gabh4;


for ii = 1:C
    ii
    while tot(:,:,ii) ~= 0

        for a = 1:A
            krom(a,:,ii) = randperm(B);
        end

        gabb1  =  sum(krom(:,:,ii) == 1);
        gabb2  =  sum(krom(:,:,ii) == 2);
        gabb3  =  sum(krom(:,:,ii) == 3);
        gabb4  =  sum(krom(:,:,ii) == 4);

        gabbh1 = sum(gabb1 ~= 2 & gabb1 ~= 0)
        gabbh2 = sum(gabb2 ~= 2 & gabb2 ~= 0);
        gabbh3 = sum(gabb3 ~= 2 & gabb3 ~= 0);
        gabbh4 = sum(gabb4 ~= 2 & gabb4 ~= 0);

        tot(:,:,ii) = gabbh1+gabbh2+gabbh3+gabbh4;

    end
end
share|improve this answer
    
I think so, it's imposible to do. but when I tried to be used only for value "1". it was work fast. hahaha so i think, it is still have chance to solve right. –  Febri Dwi Laksono Aug 28 '12 at 10:18
    
but I have to do make this matrix. Maybe you know another suggestion code mr. and of course it is faster than current code. because i just know code like this to make matrix like what i want. –  Febri Dwi Laksono Aug 28 '12 at 10:26

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