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I am having trouble combining repeated elements of my Matlab "data" variable. I can easily combine the values using unique and sort.

[sorted,idx] = sort(data);
[~,ij] = unique(sorted,'first');
Indx = (sort(idx(ij)));

However, by doing this I am combining ALL repeated values. What I really want to do is combine only groups of repeating elements. For example take this:

data = [1;1;1;2;2;2;3;3;3;4;4;4;4;4;3;3;2;2;2;2;1;1;1;1;4;4;4;4;]

Combine duplicate groups of elements:

data = [1;2;3;4;3;2;1;4;]

I need to combine the groups of repeating elements wile still preserving the order. It would also be helpful to return the index because I need to average data in another variable based on the index of combination.

For example:

data  = [1;1;1;2;2;2;3;3;3;4;4;4;4;4;3;3;2;2;2;2;1;1;1;1;4;4;4;4;]
data2 = [7;2;4;5;3;4;6;8;5;3;5;7;4;2;4;6;8;4;3;6;7;8;4;2;9;3;2;0;]

dataCombined = [1;     2;  3;    4;   3;  2;     1;     4;   ]
data2average = [4.33;  4;  6.33  4.2  5;  5.25;  5.25;  3.5; ]

Can anyone give suggestions?


SOLUTION:

Thank you all for your answers. MZimmerman6's solution worked well for me. I wanted to show what I did in order to average the values in "data2" array.

data = [1;1;1;2;2;2;3;3;3;4;4;4;4;4;3;3;2;2;2;2;1;1;1;1;4;4;4;4;];
data2 = [7;2;4;5;3;4;6;8;5;3;5;7;4;2;4;6;8;4;3;6;7;8;4;2;9;3;2;0;];
change = diff(data)~=0;
indices = [1,find(change)'+1];
compressed = data(indices)';


numberOfRepeatingGroups = size(indices);


for i=1:numberOfRepeatingGroups(1,2)


  if(i == 1)   

      dataToAverage = data2(indices(1,1):(indices(1,2)-1));

  elseif (i == numberOfRepeatingGroups(1,2))

       dataToAverage = data2(indices(1,i):end);

  else

       dataToAverage = data2(indices(1,i):(indices(1,(i+1))-1));

  end

       data2Averaged(1,i) = mean(dataToAverage(:));

end   


data2Averaged =

4.3333    4.0000    6.3333    4.2000    5.0000    5.2500    5.2500    3.5000
share|improve this question
    
Just a simple note, instead of doing numberOfRepeatingGroups(1,2), just do size(indices,2) and that will get the number of columns in the array. Or since the indices array is one dimensional, you could simply use length(indices). It makes your code more readable. –  MZimmerman6 Sep 9 '13 at 17:56

2 Answers 2

up vote 4 down vote accepted

You can use a derivative to find fluctuations in your data arrays, which would indicate a change in grouping. Anywhere where the derivative is not 0, there is a change, either positive or negative. Find where these changes occur, and then grab the corresponding indices. Something like below.

data = [1;1;1;2;2;2;3;3;3;4;4;4;4;4;3;3;2;2;2;2;1;1;1;1;4;4;4;4;];
change = diff(data)~=0;
indices = [1,find(change)'+1];
compressed = data(indices)';

and the result will be

compressed =
     1     2     3     4     3     2     1     4

And of course you can use the indices variable for whatever you need as well.

Note On the third line, we add index 1 because technically the start of the array is a change, and then we add 1 to the find command because we are using find on the derivative, so the returned change array will be 1 shorter than the original.

share|improve this answer
    
This is EXACTLY what I needed. I truly cannot thank you enough! Using the derivative is very clever, and I do not think I would have ever figured that out without your help! –  John August Sep 9 '13 at 16:36
    
No problem. That is what we are here for. –  MZimmerman6 Sep 9 '13 at 17:53

I will never stop recommending this run-length encoding/deconding utility from the File Exchange: rude().

% Run-length encode preserving order
[len,val] = rude(data);
len =
     3     3     3     5     2     4     4     4
val =
     1     2     3     4     3     2     1     4

Now, to calculate the mean, first re-label each subsequence with rude(), then use accumarray()

% Decode and re-label each subsequence
subs = rude(len,1:numel(len))';

% Take average on each re-labelled subsequence
accumarray(subs,data2,[],@mean)
ans =
    4.3333
    4.0000
    6.3333
    4.2000
    5.0000
    5.2500
    5.2500
    3.5000
share|improve this answer
    
This is also a good solution, but I would almost always recommend something for people who are more of a beginner to use code that they write "themselves". Of course they are not writing the diff function, but it is understood what it is doing under the hood. Regardless, I still give you a +1 :) –  MZimmerman6 Sep 9 '13 at 18:03

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