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I am using rsync --list-only command with Django/Python:

subprocess.Popen(['rsync', '--list-only', source],
                           stdout=subprocess.PIPE, 
                           env={'RSYNC_PASSWORD': password}).communicate()[0]

It returned result like this:

drwxrwxrwx 4096 2012/11/07 09:56:23 upload

I don't want all the files information. I only want file name displayed like this:

upload

How can I do that? Thanks

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2 Answers 2

up vote 1 down vote accepted

rsync has no option to abbreviate the output, you need to use a regex (or split())

import re
retval = subprocess.Popen(['rsync', '--list-only', source],
                           stdout=subprocess.PIPE, 
                           env={'RSYNC_PASSWORD': password}).communicate()[0]
retval = re.sub('^.+?\d+:\d+:\d+\s+(\S+.+)', '\g<1>', retval)

Alternatively (as long as file names have no spaces)...

retval = subprocess.Popen(['rsync', '--list-only', source],
                           stdout=subprocess.PIPE, 
                           env={'RSYNC_PASSWORD': password}).communicate()[0]
retval = retval.split(' ')[-1]
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Thank you Mike! –  sachitad Nov 19 '12 at 10:18

You can use str.split with the maxsplit argument to discard the first 4 fields. E.g.

>>> "drwxrwxrwx 4096 2012/11/07 09:56:23 upload".split(None, 4)[-1]
'upload'
>>> "drwxrwxrwx 4096 2012/11/07 09:56:23 doc with spaces.txt".split(None, 4)[-1]
'doc with spaces.txt'

None is used as the separator to mean any whitespace.

In your case, assuming your rsync command may return more than one file, you could try:

# retrieve output
out = subprocess.Popen(['rsync', '--list-only', source],
                       stdout=subprocess.PIPE, 
                       env={'RSYNC_PASSWORD': password}).communicate()[0]
# parse block of text into list of strings
lines = (x.strip() for x in out.split('\n'))
# take only filenames (ignoring empty lines)
filenames = [x.split(None, 4)[-1] for x in lines if x]
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