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I am facing a problem in matching elements in 2 matrices. The first element can be matched using ismember but the second element should be within a range. Please see the example below:

% col1 is integerID, col2 is a number.       -->col1 is Countrycode, col2 is date
bigmat = [ 600 2  
           600 4  
           800 1  
           800 5  
           900 1] ;

% col1 is integerID, col2 is VALUE, col2 is a range    -->value is Exchange rate
datamat = {...
           50   0.1   [2 3 4 5 6]       % 2:6
           50   0.2   [9 10 11]         % 9:11
           600  0.01  [1 2 3 4]         % 1:4
           600  0.2   [8 9 10]          % 8:10
           800  0.12  [1]               % 1:1
           800  0.13  [3 4]             % 3:4
           900  0.15  [1 2]      } ;    % 1:2

I need the answer as:
    ansmat = [ 600 2  0.01
               600 4  0.01
               800 1  0.12
               800 5  nan               % even deleting this row is fine
               930 1  0.15 ] ;

For simplicity:

  1. All intIDs from matrix_1 exist in matrix_2.
  2. The numbers in range are dates! Within a range, these numbers are consecutive: [1 2...5]
  3. For any ID, dates in the next row are not continuous. Eg, you can see [1 2 3 4] and then [8 9 10] in next row.

bigmat is a huge matrix! 300,000-500,000 rows and so a vectorized code would be appreciated. datamat is roughly 5000 rows or less. You can convert the cell to matrix. For each row, I have the minimum and maximum. The 3 column is minimum:maximum. Thanks!

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2 Answers 2

up vote 0 down vote accepted

Here is one possible implementation:

%# data matrices
q = [
    600 2  
    600 4  
    800 1  
    800 5  
    900 1
];
M = {
    50   0.1   [2 3 4 5 6]
    50   0.2   [9 10 11]
    600  0.01  [1 2 3 4]
    600  0.2   [8 9 10]
    800  0.12  [1]
    800  0.13  [3 4]
    900  0.15  [1 2]
};

%# build matrix: ID,value,minDate,maxDate
M = [cell2num(M(:,1:2)) cellfun(@min,M(:,3)) cellfun(@max,M(:,3))];

%# preallocate result
R = zeros(size(M,1),3);

%# find matching rows
c = 1;             %# counter
for i=1:size(q,1)
    %# rows indices matching ID
    ind = find( ismember(M(:,1),q(i,:)) );

    %# out of those, keep only those where date number is in range
    ind = ind( M(ind,3) <= q(i,2) & q(i,2) <= M(ind,4) );

    %# check if any
    num = numel(ind);
    if num==0, continue, end

    %# extract matching rows
    R(c:c+num-1,:) = [M(ind,1) repmat(q(i,2),[num 1]) M(ind,2)];
    c = c + num;
end

%# remove excess
R(c:end,:) = [];

The result as expected:

>> R
R =
          600            2         0.01
          600            4         0.01
          800            1         0.12
          900            1         0.15
share|improve this answer
    
Thanks Amro..but the For loop is taking a lot of time. I am trying to see if I can somehow use a vectorized approach. For the 3rd column in datamat, I already have the minimum & max values as separate cols. I'm not sure if I can somehow use them to speed up the code. Thanks. –  Maddy Jul 22 '11 at 4:42
    
@Maddy: Ok you are right, I just tested it with random data of the same size as you describe (300K and 5K), and it took like 70 seconds.. Also for the min/max, you could directly use them in M instead, but I doubt it would make a huge difference. I will give it another try and see if I can improve the time, so stay tuned ;) –  Amro Jul 22 '11 at 17:27

I'm not completely sure I understand .. should the second entry be '600 4 0.02'?

Anyways, you may be able to try something like:

% grab first column
col = bigmat(:, 1);

% find all entries in column that are equal to ID
rel = (col == id);

% retrieve just those rows
rows = bigmat(rel, :);

Then once you have the rows you need from your matrices, you can concatenate them together like so:

result = [rowsA(1:3) rowsB(2) rowsC(5:6)];
share|improve this answer
    
Abe, 600 intID has 0.01 value for [1 2 3 4] as can be seen in datamat. A better example is: 600 has 0.01 value for dates say [734410 734411 734412 734413]. Thanks for ur reply. –  Maddy Jul 22 '11 at 3:18

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