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 am still learning how to write loops and use cellfun.

I have n (= 3124) arrays of equal size matrices:

[45x5 double]
[45x5 double]
[nx5 double]
    ....

array{1,1}

1691    7858    1   735064.617361111    0.00277777777955635
1691    7958    2   735064.620138889    NaN
1691    7926    3   735064.620138889    0.000694444446708076
.....

array{2,1}

1691    7858    1   735064.666666667    0.00138888889341615
1691    7958    2   735064.668055556    0.000694444439432118
1691    7926    3   735064.668750000    0
.....

array{n,1}

1691    7858    1   735064.360416667    0.000694444439432118
1691    7958    2   735064.361111111    0.000694444446708076
1691    7926    3   735064.361805556    NaN
.....

I would like to obtain a 45x5 cell of nx5 arrays with the sum across rows of column 5 based on a condition imposed on column 4. The condition would be:

7307 < = values in column 4 < 7.3070e+03 

I found a similar question here:

Cellfun : How to sum each row in a cell array of matrices? Matlab

matlab - cellfun sum all elements of each cell

When and why should I use cellfun in Matlab?

Find values in a matrix and sum when found

Here below is my attempt:

 for i=1:size(A,1)
    for j=1:size(A{i,1},1)
         if  7307 < (A{i,1}(j,4)) < 7.3070e+03 
         mean_A = nanmean(A{i,1}(j,5))
         end
    end
 end

With this code I only obtain a cell with a result which is not the average of the values of the each matrix. Could you please tell me which is the main problem of this loop or give me a hint on how to use cellfun in this case? Thank you

share|improve this question
3  
7.3070e+03 is equal to 7307, so the if will always be false –  R. Schifini Jun 23 '13 at 12:33
    
this is in fact a date ('ddmmyyy hh:mm:ss'). I would like to verify a condition which is true if the time is included between 00:00:00 and 01:00:00 (no matter which day). In order to verify the condition, should I transform these dates and times into date vectors? –  user2387053 Jun 23 '13 at 12:42
2  
You have incorrect form of condition: you should write (7307 < (A{i,1}(j,4)))&&((A{i,1}(j,4)) < 7.3070e+03)). In your form condition will be always true: (7307 < (A{i,1}(j,4))) = 1, 1 < 7.3070e+03 = 1 –  Danil Asotsky Jun 23 '13 at 14:11
    
I am wondering why don't you stack everything vertically and add one column which indexes the cell array it comes from. This way it would be so much easier to perform logical indexing. –  Oleg Komarov Jun 23 '13 at 17:15
    
do you mean using cellfun as gevan did in this post: stackoverflow.com/questions/11997009/…? –  user2387053 Jun 23 '13 at 18:52
add comment

Your Answer

 
discard

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

Browse other questions tagged or ask your own question.