4

Say I have a folder with n csv files which I want to rename. The new filename is going to be something like ABxxxx, with xxxx being a progressive number from 1 to 1000.

While doing this, how can I retain the original file extension, which is csv?

What I have done so far has changed the filenames but has pruned away the extension:

directory=r'C:\Me\MyDir'
subdir=[x[0] for x in os.walk(directory)]
subdir.pop(0)

for i in subdir:
    temp_dir=r''+i
    os.chdir(temp_dir)
    a='A'
    b='B'
    for file in glob.glob("*.csv"):
        for i in range(1,1001):
           newname=a+b+i
        os.rename(file,newname)
  • 3
    Add .csv to newname? – Suever Jul 26 '16 at 17:39
  • Like newname+".csv"? – FaCoffee Jul 26 '16 at 17:39
  • get the last four characters of the filename - ext = filename[-4:], assign it to a variable, use that variable to construct a new filename. – wwii Jul 26 '16 at 17:48
10

You can simply append '.csv' to your new filename:

os.rename(file, newname + '.csv')

In general (for any file type), a better way to do this would be to get the existing extension first using os.path.splitext and then append that to the new filename.

oldext = os.path.splitext(file)[1]
os.rename(file, newname + oldext)
| improve this answer | |
1

Use os.path.splitext to build a tuple of (basepath, extension) and enumerate to generate your "uniquifier". Now you can just use vanilla string formatting to glue it together

for i in subdir:
    temp_dir=r''+i
    os.chdir(temp_dir)
    a='A'
    b='B'
    for idx, file in enumerate(glob.glob("*.csv")):
        os.rename(file,'{0}{2}{1}'.format(*(os.path.splitext(file) + (idx,))))
| improve this answer | |

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