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I'm a total beginner to matlab and I'm currently writing a script for extracting data from a thermographic video.

Firstly the video is cut in separate frames. The first frame is opened as a sample picture to define the coordinates of sampling points. The goal is then to select the rgb values of those defined coordinates from a set of frames and save them into a matrix.

Now I have a problem separating the matrix to n smaller matrices. e.g I'm defining the number of points to be selected to n=2 , with a picture count of 31. Now it returns a matrix stating the rgb codes for 31 pictures, each at 2 points, in a 62x3 double matrix...

Now I want to extract the 1st, 3rd, 5th....etc... row to a new matrix...this should be done in a loop, according to the number of n points...e.g 5 points on each picture equals 5 matrices, containing values of 31 pictures....

this is an extract of my code to analyse the pictures, it returns the matrix 'values'

files = dir('*.jpg');
num_files = numel(files);

images = cell(1, num_files);
cal=imread(files(1).name);

n = input('number of selection points?: ');

imshow(cal);

[x,y] = ginput(n);

eval(get(1,'CloseRequestFcn'))

%# x = input('x-value?: ');   manual x selection
%# y = input('y-value?: ');   manual y selection

for k = 1:num_files
    images{k} = imread(files(k).name); 
end

matrix=cell2mat(images);
count=(0:size(matrix,1):size(matrix,1)*num_files);

for k = 1:num_files
    a(k)= mat2cell(impixel(matrix,x+count(k),y));
end

values = cat(1,a{:})
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1 Answer 1

up vote 0 down vote accepted

Easy fix

Do you mean that if you have:

n = 2;
k = 2; % for example
matrix = [1 2 3;
          4 5 6;
          7 8 9;
          8 7 6];

you want it to become

b{1} = [1 2 3;
        7 8 9];
b{2} = [4 5 6;
        8 7 6];

This can be easily done with:

 for ii = 1:n
     b{ii} = matrix(1:n:end,:);
 end

Better fix

Of course it's also possible to just reshape your data matrix and use that instead of the smaller matrices: (continuing with my sample data ^^)

>> d=reshape(matrix',3,2,[]);
>> squeeze(d(:,1,:))

ans =

     1     7
     2     8
     3     9
>> squeeze(d(:,2,:))

ans =

     4     8
     5     7
     6     6

Good practice

Or, my preferred choice: save the data immediately in an easy to access way. Here I think it will be an matrix of size: [num_files x num_points x 3]

If you want all the first points:

rgb_data(:,1,:)

only the red channel of those points:

rgb_data(:,1,1)

and so on. I think this is possible with this:

rgb_data = zeros(num_files, num_points, 3);
for kk = 1:num_files
    rgb_data(kk,:,:) = impixel(images{kk},x+count(k),y);
end

But I don't understand the complete meaning of your code (eg: why matrix=cell2mat(images) ??? and then of course:

count=(0:size(matrix,1):size(matrix,1)*num_files);

is just count=0:num_files; so I'm not sure what would come out of impixel(matrix,x+count(k),y) and I used images{k} :)

share|improve this answer
    
Thank you very much for your effort, the cell is created with the right dimension and the argument 1:n:end,: sounds plausible, but it only fills the cell array with the very first rgb value.... –  jil May 11 '12 at 15:03
    
if size(matrix)==[k*n x 3], the colon operator : should select the whole row. If you say it isn't (you said rgb values are stored in rows), you should check the size of matrix –  Gunther Struyf May 11 '12 at 15:06
    
Ok, sorry I got it, your code only refers to the first value in each picture and replicates it to the value of n, since ii=1:n, so for n=4 it simply copys the cells 4 times,taking the values from the first row, because 1:4:end = 1 –  jil May 11 '12 at 15:12
    
yes, correct You said you wanted to separate the numbers in matrix to different smaller matrices. You can also use b1, b2, b3, b4, etc. but it's easier to use and later expand to use the cell notation: b{1}, b{2}, etc. –  Gunther Struyf May 11 '12 at 15:16
    
Maybe I'm blind, but I don't see how this leads me to a cell array which stores the first points in b{1,1}, the second points in b{1,2}....Sorry for complaining, I've been stuck with this part for 2 days now and still haven't found a suitable solution.. edit:great reshape :) –  jil May 11 '12 at 15:23

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