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Say, I have two absolute paths. I need to check if the location referring to by one of the paths is a descendant of the other. If true, I need to find out the relative path of the descendant from the ancestor. What's a good way to implement this in Python? Any library that I can benefit from? Thanks.

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3 Answers 3

up vote 52 down vote accepted

os.path.commonprefix() and os.path.relpath() are your friends:

>>> print os.path.commonprefix(['/usr/var/log', '/usr/var/security'])
'/usr/var'
>>> print os.path.commonprefix(['/tmp', '/usr/var'])  # No common prefix: the root is the common prefix
'/'

You can thus test whether the common prefix is one of the paths, i.e. if one of the paths is a common ancestor:

paths = […, …, …]
common_prefix = os.path.commonprefix(list_of_paths)
if common_prefix in paths:
    …

You can then find the relative paths:

relative_paths = [os.path.relpath(path, common_prefix) for path in paths]

You can even handle more than two paths, with this method, and test whether all the paths are all below one of them.

PS: depending on how your paths look like, you might want to perform some normalization first (this is useful in situations where one does not know whether they always end with '/' or not, or if some of the paths are relative). Relevant functions include os.path.abspath() and os.path.normpath().

PPS: as Peter Briggs mentioned in the comments, the simple approach described above can fail:

>>> os.path.commonprefix(['/usr/var', '/usr/var2/log'])
'/usr/var'

even though /usr/var is not a common prefix of the paths. Forcing all paths to end with '/' before calling commonprefix() solves this (specific) problem.

PPPS: as bluenote10 mentioned, adding a slash does not solve the general problem. Here is his followup question: How to circumvent the fallacy of Python's os.path.commonprefix?

PPPPS: starting with Python 3.4, we have pathlib, a module that provides a saner path manipulation environment. I guess that the common prefix of a set of paths can be obtained by getting all the prefixes of each path (with PurePath.parents()), taking the intersection of all these parent sets, and selecting the longest common prefix.

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Exactly what I need. Thanks for your prompt answer. Will accept your answer once the time restriction is lifted. –  tamakisquare Sep 2 '11 at 18:57
7  
Take care with commonprefix, as e.g. the common prefix for /usr/var/log and /usr/var2/log is returned as /usr/var - which is probably not what you'd expect. (It's also possible for it to return paths that are not valid directories.) –  Peter Briggs Feb 9 '12 at 13:47
    
@PeterBriggs: Thanks, this caveat is important. I added a PPS. –  EOL Feb 27 '12 at 9:23
1  
@EOL: I don't really see how to fix the problem by appending a slash :(. What if we have ['/usr/var1/log/', '/usr/var2/log/']? –  bluenote10 Feb 1 '14 at 13:29
1  
@EOL: Since I failed to find an appealing solution for this problem I though it might be okay to discuss this sub-issue in a separate question. –  bluenote10 Feb 1 '14 at 14:18

os.path.relpath:

Return a relative filepath to path either from the current directory or from an optional start point.

>>> from os.path import relpath
>>> relpath('/usr/var/log/', '/usr/var')
'log'
>>> relpath('/usr/var/log/', '/usr/var/sad/')
'../log'

So, if relative path starts with '..' - it means that the second path is not descendant of the first path.

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2  
Checking for the presence of os.pardir is more robust than checking for .. (agreed, there are not many other conventions, though). –  EOL Sep 2 '11 at 19:22

Another option is

>>> print os.path.relpath('/usr/var/log/', '/usr/var')
log
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This always return a relative path; this does not directly indicate whether one of the paths is above the other (one can check for the presence of os.pardir in front of the two possible resulting relative paths, though). –  EOL Sep 2 '11 at 19:21

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