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In a directory I have a lot of files, named more or less like this:

001_MN_DX_1_M_32
001_MN_SX_1_M_33
012_BC_2_F_23
...
...

In Python, I have to write a code that selects from the directory a file starting with a certain string. For example, if the string is 001_MN_DX, Python selects the first file, and so on.

How can I do it?

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4 Answers 4

up vote 3 down vote accepted

Try using os.listdir,os.path.join and os.path.isfile.
In long form (with for loops),

import os
path = 'C:/'
files = []
for i in os.listdir(path):
    if os.path.isfile(os.path.join(path,i)) and '001_MN_DX' in i:
        files.append(i)

Code, with list-comprehensions is

import os
path = 'C:/'
files = [i for i in os.listdir(path) if os.path.isfile(os.path.join(path,i)) and \
         '001_MN_DX' in i]

Check here for the long explanation...

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It works well. Thanks. :) –  this.is.not.a.nick Mar 9 '13 at 18:24
import os
prefixed = [filename for filename in os.listdir('.') if filename.startswith("prefix")]
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You can use the os module to list the files in a directory.

Eg: Find all files in the current directory where name starts with 001_MN_DX

import os
list_of_files = os.listdir(os.getcwd()) #list of files in the current directory
for each_file in list_of_files:
    if each_file.startswith('001_MN_DX'):  #since its all type str you can simply use startswith
        print each_file
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import os, re
for f in os.listdir('.'):
   if re.match('001_MN_DX', f):
       print f
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