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In my code I'm trying to use load with entries from a cell, but it is not working. The portion of my code below produces a 3 dimensional array of strings. The strings represent the paths to file names.

for i = 1:Something
 for j = 1:Something Different
  for k = 1: Yet Something Something Different
    DataPath{j,k,i} = 'F:\blah\blah\blah\fileijk    %file changes based on i,j,and k       
  end
 end
end

In the next part of the code I want to use load to open the files using the path names defined in the code above. I do this using the code below.

Dummy = DataPath{l,(k-1)*TSRRange+m}; 
Data = load(Dummy);

The idea is for Dummy to take the string content out of DataPath so I can use it in load. By doing this I thought that Dummy would be defined as a string and not a cell, but this is not the case. How do I pull the string out of DataPath so I can use it with load? Thanks.

I have to load the data this way because the data is located in multiple folders. I can post more of the code if needed, but it is complex.

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If Dummy is a cell then DataPath must have been built in a different way than what you've shown in your example code. –  jerad Mar 2 '13 at 23:28
    
In any case, you can use cell2mat(Dummy) to obtain the string in the cell. –  jerad Mar 2 '13 at 23:34
    
If l,k,m,TSRRange variables are scalar, and if you don't get dimension error, your 2nd part should work. The question is are you really assigning strings to DataPath in the 1st part? May be they are actually cells? Do you assign strings directly or they are from some variable? –  yuk Mar 3 '13 at 0:57
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1 Answer

Dummy is a cell because you assigned a 3D cell array but are accessing a 2D cell with Dummy = Datapath{1,(k-1)*TSRRange+m}

I don't believe that you can expect to access all cell elements I this way. Instead, use three indices just as you did when creating it.

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This is what I was missing. I didn't assign the third dimension in the second part of the code. Too much coding today.... –  Grady F. Mathews Iv Mar 3 '13 at 1:22
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