identify different filname in different group

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Hello,
I just realized a program that allows to load data files from a folder. These data files are all different names but I would group them into three groups in matlab. A group 1 whose file names begin with 'X', a group 2 whose file names begin with 'Y' and a group 3 whose file names begin with 'Z' but I do not know how. Do you have any idea? with strcmp?

Accepted Answer

Alexandre Williot
Alexandre Williot on 22 Apr 2015
this is what I needed,
contenu = dir('C:\Users\alexandre\Dropbox\UQTR 2013 - 2015\Matlab\MatLab EPK6064\Fichiers_Travail2');
for file = 1:length(contenu)
Fichiers_Travail2 = contenu(file).name;
if strcmp(Fichiers_Travail2,'.')==0 && strcmp(Fichiers_Travail2,'..')==0 && strcmp(Fichiers_Travail2(1,1),'e')==0
load(Fichiers_Travail2)
if strcmp(Fichiers_Travail2(1,1),'S')==1
code_Groupe = 1;
elseif strcmp(Fichiers_Travail2(1,1),'C')==1
code_Groupe = 2;
elseif strcmp(Fichiers_Travail2(1,1),'L')==1
code_Groupe = 3;
end
end
end

More Answers (3)

pfb
pfb on 17 Apr 2015
It's not very clear to me what you mean by "group the files in matlab".
Anyway, one possibility is perhaps to discriminate them before loading them. I suppose you use dir to make a list of the files to be loaded. Why don't you use something like
dirX = dir('X*');
dirY = dir('Y*');
dirZ = dir('Z*');
or something to that effect? I mean, you might have to refine the string you feed to dir(), possibly adding a path or using some more information about the file names.
Anyway, now dirX, dirY and dirZ are structures containing the names of the files starting with the desired letter.

Image Analyst
Image Analyst on 17 Apr 2015
It is all there in the FAQ. Code samples and everything. Adapt as needed: http://matlab.wikia.com/wiki/FAQ#How_can_I_process_a_sequence_of_files.3F

Image Analyst
Image Analyst on 21 Apr 2015
Of course, because you're passing the whole structure:
file_name = contenu(file).name;
load(contenu) % Tries to load the entire structure of all filenames.
Instead, try to load only one filename:
file_name = contenu(file).name;
load(file_name) % Tries to load only one single filename.
  4 Comments
Image Analyst
Image Analyst on 22 Apr 2015
By the way, you were supposed to accept my answer, not post your code and accept it.

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