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.

If I have a 4x1 Cell structure with that represents a=[A1 A2 A3 A4] :

a=cell(4,1)
a{1}=[1 3 1 0]
a{2}=[3 3 3 3]
a{3}=[3 2 3 2]
a{4}=[3 3 3 2]

B=[1 1 1 2]; %priority

I would like to do the following :

Pick cells that correspond to priority B=[1 1 1 2] (where B=1 is highest priority and A=3)
Which means, find any cell that begins with [3 3 3 #], where all their priority is 1's in B.

ideal answer should be : a{2}=[3 3 3 3] and a{4} = [3,3,3,2]


My try is to add this :

[P arrayind]=min(B) % problem is that arrayind return index=1 only .. not all indices
if P==1
   arrayindex = 1:4 ; %look at each index of the array
   c = a(cellfun(@(x) ismember(x(arrayindex), 3), a));
end

However this gives me an error stating :

Error using cellfun
Non-scalar in Uniform output, at index 1, output 1.
Set 'UniformOutput' to false.

By adjusting the code to accommodate this error :

c = a(cellfun(@(x) ismember(x(arrayindex), 3), a,'UniformOutput',false));

I get this error :

Error using subsindex
Function 'subsindex' is not defined for values of class 'cell'.

And now I'm stuck at this point.

If you need more info, please ask.

share|improve this question
    
did you try to edit the cellfun line according to the error? that is cellfun(@(x) ... ,'UniformOutput', false); –  natan Mar 22 '13 at 17:46
    
@natan Yes, I should have mentioned that. Updating question –  NLed Mar 22 '13 at 17:46
    
What value(s) are you expecting for c after running this code? –  wakjah Mar 22 '13 at 17:47
    
@wakjah I updated the question so it's clearer..The results should be a{2} and a{4} –  NLed Mar 22 '13 at 18:05
    
@NLed try: [val ind] = max(cellfun(@(x) length(find(ismember(x(arrayindex), 3))), a)); b = a(ind);. This will give the cell array with the highest number of 3s. –  jucestain Mar 22 '13 at 18:05
show 5 more comments

1 Answer

up vote 1 down vote accepted

This may not be an elegant answer, but it is effective:

%The input cell array.
a = cell(4,1);
a{1} = [1 3 1 0];
a{2} = [3 3 3 3];
a{3} = [3 2 3 2];
a{4} = [3 3 3 2];

%The input priority array.
B = [1 1 1 2];

%The output cell array: preallocated for efficiency.
c = cell(size(a));

j = 1;
for i = 1:size(a,1)
%For each i
    if(all(((cell2mat(a(i))==3)&(B==1))==(B==1)))
    %"cell2mat" converts the cell arrays into easily comparable number arrays.
    %"X==Y" for matrices of the same size, will give you a result matrix of the same size with 1 where the values are equal and 0 elsewhere.
    %Thus, "cell2mat(a(i))==3" would compare the number matrices represented by "a{i}" with "3".
    %"(cell2mat(a(i))==3)&(B==1)" would do a logical AND operation with "B==1", that is, "[1 1 1 0]".
    %In short, since you want whereever "a{i}" is 3 when "B" is 1, we want those "a{i}" where the comparison stated above is the same as "B==1".
    %If the result array is the same as "B=1", we get "[1 1 1 1]" as the result of the comparison "((cell2mat(a(i))==3)&(B==1))==(B==1)".
    %The function "all" checks whether the input to it is completely non-zero: here if we get a "[1 1 1 1]" "all" will give us 1, else 0.
        c{j} = a{i};
        %Insert result array into "c" when condition is satisfied.

        j = j + 1;
        %Increment the index of "c".
    end
end


c = c(1:j-1);
%Truncate unused rows of "c".

cell2mat(c)
%Displays the value of "c" as computed.
share|improve this answer
    
Thank you so much for answering. Can you please tell me how the code is working ? I would like to learn rather than just use the code blindly. –  NLed Mar 22 '13 at 18:51
    
Sure thing. I'll add comments to the answer. –  Roney Michael Mar 22 '13 at 18:52
    
Okay, thanks :) –  NLed Mar 22 '13 at 19:06
    
Out of curiosity, would this also work if I want to check for more values ?? For example, if B=2, then check for (2 or 3) rather than just 3. Do I only need to change –  NLed Mar 22 '13 at 19:09
1  
Yes. I'm off for now. If you have any more doubts, leave them as comments below; I'll check back here later. –  Roney Michael Mar 22 '13 at 19:16
show 2 more comments

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.