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I am trying to open a specific file in many folders, with the name ending '.alleles.txt'. I search for the file and it is found, but then it returns:

IOError: [Errno 2] No such file or directory: 'abca3.alleles.txt'

when I try and open it.

for eachfile in filelisting:                       
    if re.search('\.alleles\.txt$', eachfile):
        allelesfile = open(eachfile, 'r')
        print '2'   

Directory is specified by:

folder = 'E:\\All Data'
folderlisting = os.listdir(folder) 

for eachfolder in folderlisting:
    print eachfolder 
    if os.path.isdir(folder + '\\' + eachfolder):
        filelisting = os.listdir(folder + '\\' + eachfolder)
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How do you create filelisting? –  David Alber Nov 28 '11 at 8:38
    
@DavidAlber edited post. –  user1050337 Nov 28 '11 at 8:43
1  
Also: use os.path.join instead of adding the "\\" separator. Otherwise your code will only run on Windows. –  Petr Viktorin Nov 28 '11 at 8:47
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4 Answers 4

You should be using glob. Try this

import glob

files = glob.glob('E:\\All Data\\*\\*.alleles.txt')
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The problem here is I want to open the file from each directory one at a time and then do things using other files in the same directory. I cant see how glob will allow me to match files from the same directory as easily. –  user1050337 Nov 28 '11 at 8:53
    
you can get the directory part of a path via os.path.dirname –  Otto Allmendinger Nov 28 '11 at 9:37
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How did you obtain the filelisting? If you used filelisting = os.walk(directoryname) then it resturns a special tuple. Did you look at it?

And, does filelisting contain the full path of the files? If the files are in a directory other than the script directory, say it's stored in the directoryname variable, you have to open them this way:

allelesfile = open(directoryname + "\\" + eachfile, 'r')

We can't give more information about your question until you put information here (actual filelisting value, etc).

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I have a suspicion that some of your filenames contain non-ASCII characters. Try

folder = u'E:\\All Data'
folderlisting = os.listdir(folder)

for eachfolder in folderlisting:
    print eachfolder 
    if os.path.isdir(os.path.join(folder,eachfolder)):
        filelisting = os.listdir(os.path.join(folder,eachfolder))

Note the u'...' prefix. Without it, os.listdir() might silently drop or ASCIIfy non-ASCII characters in your filenames, which then of course leads to invalid filenames. See also this question.

This is stated in the docs for os.listdir(path) :

On Windows NT/2k/XP and Unix, if path is a Unicode object, the result will be a list of Unicode objects. Undecodable filenames will still be returned as string objects.

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The error appears because it is trying to open the file from the directory where you are running the python program; and not the directory where the file resides.

You need to give open the full path to your file (including the directory name).

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