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pathlib match(pattern) is documented as matching a path against a provided glob-style pattern but it doesn't work

>>> Path("w/x/y/z").mkdir(parents=True)
>>> list(Path().glob("w/**/z"))
[PosixPath('w/x/y/z')]
>>> Path("w/x/y/z").match("w/**/z")
False

Shouldn't that return true?

3
  • 1
    I looked in pathlib.py (Python 3.7 -- look in lib), and aside from splitting the pattern by separator, it does no separate processing for **. glob() is typically used to search directory paths which yield multiple matches, but match() is used to compare specific cases. Does Path("w/x/y/z").match("w/*/*/z") work?
    – Ben Y
    Jun 3, 2021 at 19:35
  • @BenY Ya, that works. rglob() does what he wants
    – myz540
    Jun 4, 2021 at 23:26
  • To plainly state my point, as it appears to have been lost, is that match() does not work the same as glob() or rglob(). It's not implemented to treat ** as a special match for multiple levels of directories. The answer is No, as @myz540 states.
    – Ben Y
    Jun 5, 2021 at 6:07

1 Answer 1

0

The glob pattern of ** does not go through path delimiters. At least the path.match() function does not have it implemented. Maybe try path.rglob() which does recursive globbing.

Try:

In [1]: from pathlib import Path

In [2]: p = Path("w/z/y/z")

In [3]: p.mkdir(parents=True)

In [5]: p.match("w/*/*/z")
Out[5]: True
4
  • I already mentioned that you can use rglob. Not acceptable for what? Your question does not propose a use-case. You asked if match() should return True given the glob-style pattern and the answer is no.
    – myz540
    Jun 5, 2021 at 0:04
  • 2
    Path.match is for checking a string against a pattern. Path.rglob is for finding files on a filesystem which match a pattern. Those are totally different things, for using match you might not even have a filesystem available at all e.g. processing paths taken from a csv file or database. Jun 18, 2021 at 0:44
  • 3
    So why do you think Path("w/x/y/z").match("w/**/z") shouldn't return True? It matches the glob pattern, doesn't it? Jun 18, 2021 at 0:56
  • This also returns true: Path("w/x/y/z").match("z"), so I don't think it has anything to do with the asterisks - however, I'd expect it to require this to evaluate to true: Path("w/x/y/z").match("**/z").
    – Jeppe
    Oct 2, 2022 at 8:22

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