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I am trying to find max value of a struct but max([tracks(:).matrix]) does not work. It gives me the following error: "Error using horzcat CAT arguments dimensions are not consistent." Do you have an idea?

Here is what my struct looks like:

tracks = 

1x110470 struct array with fields:
    nPoints
    matrix

tracks.matrix includes 3D points. For example here is

tracks(1,2).matrix:

33.727467   96.522331   27.964357
31.765503   95.983849   28.984663
30.677082   95.989578   29
share|improve this question
up vote 3 down vote accepted

You can use array fun, followed by another max to do this:

s.x = [1 3 4];
s(2).x = [9 8];
s(3).x = [1];

maxVals = arrayfun(@(struct)max(struct.x(:)),s);

maxMaxVals = max(maxVals(:));

Or, if you want to retain the size of .x after MAX:

s.x = [1 3 4];
s(2).x = [9 8 3];
s(3).x = [1 2 2; 3 2 3];

maxVals = arrayfun(@(struct)max(struct.x,[],1),s,'uniformoutput',false);

maxMaxVals = max(cat(1,maxVals{:}))

Or, if you know everything is n x 3

s.x = [1 3 4];
s(2).x = [9 8 3];
s(3).x = [1 2 2; 3 2 3];
matrix = cat(1,s.x)
maxVals = max(matrix)
share|improve this answer
    
It's true. max(arrayfun(@(z)max(z.x(:)),s)) and z = arrayfun(@(z)max(z.x(:)),s); max(z) will both do the same thing. Not sure the var name matters in this case, since the overload will only be inside the anonymous function. I often violate that rule for arrayfun and cellfun, e.g., cellfun(@(cell)f(cell),...) but only in that case. In general, definitely a bad idea to use struct or cell as var names though – Pete Nov 27 '12 at 12:42

Im not sure what you are trying to find the max of, but you can do this:

matrixConcat = [tracs.matrix]

which will give you a big concatenated list of all the matrices. You can then do max on that to find the maximum.

Let me know if this is what you were looking for otherwise i will change my answer.

share|improve this answer
    
matrixConcat = [tracks.matrix] Error using horzcat CAT arguments dimensions are not consistent. I also tried tracks(:).matrix But it did not work. I am trying to find the maximum point in the tracks.matrix – Xentius Nov 27 '12 at 0:48
    
@Amadeus are the matrices differant sizes or are they always 3x3? If they are different then you will have to pad them to the same size as the largest matrix. – Ben Nov 27 '12 at 1:01
    
they are not all 3*3. for example tracks(1,1).matrix has 3 elements with 3 coordinates (x,y,z) whereas tracks(1,98098).matrix has 54 elements with 3 coordinates. How can I pad them and find the maximum? – Xentius Nov 27 '12 at 1:09

You can't use [] because the sizes of all tracks.matrix are different, hence the concatenation fails.

You can however use {} to concatenate to cell:

% example structure
t = struct(...
    'matrix', cellfun(@(x)rand( randi([1 5])), cell(1, 30), 'uni', 0))


% find the maximum of all these data    
M = max( cellfun(@(x)max(x(:)), {t.matrix}) );

Now, if you don't want to find the overall maximum, but the maximum per column (supposing you have (x,y,z) coordinates in each column, you should do

% example data
tracks = struct(...
    'matrix', {rand(2,3) rand(4,3)})

% compute column-wise max 
M = max( cat(1, tracks.matrix) )

This works because calling tracks.matrix when tracks is a multi-dimensional structure is equal to expanding the contents of a cell-array:

tracks.matrix         % call without capture equates to:

C = {tracks.matrix};  % create cell
C{:}                  % expand cell contents
share|improve this answer
    
Under tracks.matrix I have three coordinates, so what can I do if I want to find maximum or minimum of only x coordinate or y coordinate (not minimum or maximum of all the coordinates x,y,z)? – Xentius Dec 6 '12 at 5:36
    
@Amadeus: see my latest edit. Does this solve your problem? – Rody Oldenhuis Dec 6 '12 at 8:00

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