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I have data like the following matrix: A = [2 5 10 4 10; 2 4 5 1 2; 6 2 1 5 4];

A =

 2     5    10     4    10
 2     4     5     1     2
 6     2     1     5     4

I would like to sort the by the last row based on the following criteria:

if the difference between the first element (in the third row) and second element (in the third row) is less than or equal to 2 -- then move that column (the second in this case two columns to the right). Then do this for all columns until no two elements (of the last row) are within a difference of 2)

B =

 2     5     4    10    10
 2     4     1     5     2
 6     2     5     1     4

Where (6-2 = 4) (2-5 = 3) (5-1 = 4) (1-4 = 3)

Ultimately difference between all elements of the last row and element next to it is greater than 2.

Any suggestions?

share|improve this question
    
When the difference between two columns is less or equal to 2, should the rightmost column of the columns that are compared be moved always exactly 2 columns to the right? A step-by-step explanation of the algorithm would help in understanding what you are attempting to do. A second example matrix could also be useful in clarifying the algorithm, as B can be reached from A with only one change: column 3 with column 4. –  nrz Sep 16 '12 at 19:45
    
Starting at the leftmost column I am comparing the elements contained in the last row of data. I am comparing 6 to 2, difference of which is greater than two, so at that move to column two -- column two and three are less than -- so column two would move over to the forth column. At this point there are no two elements which differences are less than 2 so it is complete. –  Kenny Sep 16 '12 at 21:07
    
Another example: Y = [ 5 6 7 9 2 1 1; 5 6 7 2 1 1 2; 1 2 4 8 11 8 1]; Z = [Y(:,2) Y(:,4) Y(:,2) Y(:,5) Y(:,3) Y(:,6) Y(:,7)]; –  Kenny Sep 16 '12 at 21:17
    
To clarify - the sole purpose of the algorithm is to assure that the difference between the adjacent elements in the last row are not less than or equal to 2. –  Kenny Sep 16 '12 at 21:22

1 Answer 1

up vote 1 down vote accepted

This is one possible solution:

A = [2 5 10 4 10; 2 4 5 1 2; 6 2 1 5 4];

B = A;

MatrixWidth = size(A, 2);

CurIndex = 1;

%# The second-last pair of the bottom row is the last pair to be compared.
while(CurIndex+2 <= MatrixWidth)
    Difference = abs(A(3,CurIndex) - A(3,CurIndex+1));

    %# If the right side of comparison is not yet the second-last index.
    if ((Difference <= 2) && (CurIndex+3 <= MatrixWidth))
        B = [ B(:, 1:CurIndex), B(:, CurIndex+2), B(:, CurIndex+1), B(:, CurIndex+3:end) ];
    %# If the right side of the comparison is already the second-last index.
    elseif (Difference <= 2)
        B = [ B(:, 1:CurIndex), B(:, CurIndex+2), B(:, CurIndex+1) ];
    end

    CurIndex = CurIndex + 1;
end
share|improve this answer
    
Thank you! This is exactly what I was looking for! –  Kenny Sep 16 '12 at 21:53
    
You're welcome. You can mark this as accepted answer (a green "accepted" mark becomes visible) if this solution works for you. –  nrz Sep 16 '12 at 22:01
    
Will do so. Thanks again! I do not see the accepted mark yet but will check back. –  Kenny Sep 16 '12 at 23:33
    
It's the empty (only contours visible) v-formed symbol below upvote/downvote buttons in the upper-left part of an answer (and obviously you need to be logged in). Upon accepting the answer, the color of the symbol changes to green. –  nrz Sep 17 '12 at 6:05
    
Thanks for pointing that out. This is the first time I've used this site. –  Kenny Sep 17 '12 at 13:04

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