Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I need help with taking the following data which is organized in a large matrix and averaging all of the values that have a matching ID (index) and outputting another matrix with just the ID and the averaged value that trail it.

File with data format:
(This is the StarData variable)
ID>>>>Values

002141865 3.867144e-03  742.000000  0.001121  16.155089  6.297494  0.001677

002141865 5.429278e-03  1940.000000  0.000477  16.583748  11.945627  0.001622

002141865 4.360715e-03  1897.000000  0.000667  16.863406  13.438383  0.001460

002141865 3.972467e-03  2127.000000  0.000459  16.103060  21.966853  0.001196

002141865 8.542932e-03  2094.000000  0.000421  17.452007  18.067214  0.002490

Do not be mislead by the examples I posted, that first number is repeated for about 15 lines then the ID changes and that goes for an entire set of different ID's, then they are repeated as a whole group again, think first block of code = [1 2 3; 1 5 9; 2 5 7; 2 4 6] then the code repeats with different values for the columns except for the index. The main difference is the values trailing the ID which I need to average out in matlab and output a clean matrix with only one of each ID fully averaged for all occurrences of that ID. Thanks for any help given.

share|improve this question
    
ID is first column? And for matching ID's, do you want to average a given column, or all of them? –  Luis Mendo Oct 14 '13 at 15:39
    
Does this help you? stackoverflow.com/questions/19056905/… –  Luis Mendo Oct 14 '13 at 15:42
    
I have seen the question you posted but I am looking for the average of all of the columns and every time I try to use acummarray I cannot get it to average all of the columns for me, just a single one –  ImmortalxR Oct 14 '13 at 15:47
    
So for each ID you want a single value, with the average of all columns for those selected rows? –  Luis Mendo Oct 14 '13 at 15:48
    
If Im understanding correctly then yes, except I need the average for each column, not just a single value for all of the columns; so I would need the second column in my final result to be an average of everything in the second column and so on for all of the columns. –  ImmortalxR Oct 14 '13 at 15:52

1 Answer 1

up vote 1 down vote accepted

A modification of this answer does the job, as follows:

[value_sort ind_sort] = sort(StarData(:,1));
[~, ii, jj] = unique(value_sort);
n = diff([0; ii]);
averages = NaN(length(n),size(StarData,2)); % preallocate
averages(:,1) = StarData(ii,1);
for col = 2:size(StarData,2)
  averages(:,col) = accumarray(jj,StarData(ind_sort,col))./n;
end

The result is in variable averages. Its first column contains the values used as indices, and each subsequent column contains the average for that column according to the index value.

Compatibility issues for Matlab 2013a onwards:

The function unique has changed in Matlab 2013a. For that version onwards, add 'legacy' flag to unique, i.e. replace second line by

[~, ii, jj] = unique(value_sort,'legacy')
share|improve this answer
    
Hey this does produce output in the format I would like however it is not giving me averages for some reason? –  ImmortalxR Oct 14 '13 at 16:04
    
Can you post an example with easy numbers and a small StarData? For example: given StarData = [1 3 4; 1 5 6; 2 3 3] which result would you get exactly? –  Luis Mendo Oct 14 '13 at 16:05
    
Sure I will edit my OP –  ImmortalxR Oct 14 '13 at 16:07
1  
@ImmortalxR It seems that unique has changed in 2013a (see mathworks.es/es/help/matlab/ref/unique.html). Try replacing second line to [~, ii, jj] = unique(value_sort,'legacy'); –  Luis Mendo Oct 14 '13 at 18:25
1  
@ImmortalxR I also suggest that you clean up your question by removing everything under "Thanks for any help given", as that would mostly confuse future readers –  Luis Mendo Oct 16 '13 at 14:49

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.