23

What is the regular expression to match strings (in this case, file names) that start with 'Run' and have a filename extension of '.py'?

The regular expression should match any of the following:

RunFoo.py
RunBar.py
Run42.py

It should not match:

myRunFoo.py
RunBar.py1
Run42.txt

The SQL equivalent of what I am looking for is ... LIKE 'Run%.py' ....

50

For a regular expression, you would use:

re.match(r'Run.*\.py$')

A quick explanation:

  • . means match any character.
  • * means match any repetition of the previous character (hence .* means any sequence of chars)
  • \ is an escape to escape the explicit dot
  • $ indicates "end of the string", so we don't match "Run_foo.py.txt"

However, for this task, you're probably better off using simple string methods. ie.

filename.startswith("Run") and filename.endswith(".py")

Note: if you want case insensitivity (ie. matching "run.PY" as well as "Run.py", use the re.I option to the regular expression, or convert to a specific case (eg filename.lower()) before using string methods.

3
  • 3
    1. you don't have to specify start of line for python regular expression match? 2. * is zero or more match (i.e. so Run.py would be acceptable)
    – Zing-
    Oct 8 '08 at 23:55
  • Also, how would you make it case-insensitive?
    – Zing-
    Oct 8 '08 at 23:59
  • re.match already specifies the start of the string (as opposed to re.search, which doesn't). "Run.py" should match, given the definition (It starts with Run, and has a .py extension). For case insensitivity, see the note at the end.
    – Brian
    Oct 9 '08 at 0:03
15

Warning:

  • jobscry's answer ("^Run.?.py$") is incorrect (will not match "Run123.py", for example).
  • orlandu63's answer ("/^Run[\w]*?.py$/") will not match "RunFoo.Bar.py".

(I don't have enough reputation to comment, sorry.)

0
14

I don't really understand why you're after a regular expression to solve this 'problem'. You're just after a way to find all .py files that start with 'Run'. So this is a simple solution that will work, without resorting to compiling an running a regular expression:

import os
for filename in os.listdir(dirname):
    root, ext = os.path.splitext(filename)
    if root.startswith('Run') and ext == '.py':
        print filename
9
/^Run.*\.py$/

Or, in python specifically:

import re
re.match(r"^Run.*\.py$", stringtocheck)

This will match "Runfoobar.py", but not "runfoobar.PY". To make it case insensitive, instead use:

re.match(r"^Run.*\.py$", stringtocheck, re.I)
1
  • Your complete example helped me.
    – Timo
    Feb 18 at 20:15
6

You don't need a regular expression, you can use glob, which takes wildcards e.g. Run*.py

For example, to get those files in your current directory...

import os, glob
files = glob.glob( "".join([ os.getcwd(), "\\Run*.py"]) )
3

If you write a slightly more complex regular expression, you can get an extra feature: extract the bit between "Run" and ".py":

>>> import re
>>> regex = '^Run(?P<name>.*)\.py$'
>>> m = re.match(regex, 'RunFoo.py')
>>> m.group('name')
'Foo'

(the extra bit is the parentheses and everything between them, except for '.*' which is as in Rob Howard's answer)

0

This probably doesn't fully comply with file-naming standards, but here it goes:

/^Run[\w]*?\.py$/
2
  • looks like a Perl solution for a question tagged python... but I am not a python expert :p and as jobscry pointed out your solution is case-sensitive.
    – Zing-
    Oct 8 '08 at 23:57
  • Shouldn't you use .*, rather than \w - punctuation and whitespace etc should probably still be considered part of the filename. eg "Run.foo.py"
    – Brian
    Oct 8 '08 at 23:58
0

mabye:

^Run.*\.py$

just a quick try

0

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