I'm trying to handle a bunch of files, and I need to alter then to remove extraneous information in the filenames; notably, I'm trying to remove text inside parentheses. For example:

filename = "Example_file_(extra_descriptor).ext"

and I want to regex a whole bunch of files where the parenthetical expression might be in the middle or at the end, and of variable length.

What would the regex look like? Perl or Python syntax would be preferred.

  • Are you sure that the "extra_descriptor" cannot include a ")"? If it can the problem becomes much harder... – dmckee Mar 13 '09 at 16:39
  • 1
    @dmckee: It is harder if the parens can be nested, though if you just want to get rid of everything between the first '(' and the last ')' it's not much harder: just use a greedy '.*' instead of '.*?'. – j_random_hacker Mar 14 '09 at 14:08
  • 2
    @j_random_hacker You're correct, it's hell of a lot harder since nested parentheses can't be recognized with a FSM (you have to keep track of the nesting level which is unlimited) and therefore not by a regex. For it to be possible you have to restrict yourself to a limited level of nesting. – skyking Sep 17 '15 at 12:15
up vote 77 down vote accepted
s/\([^)]*\)//

So in Python, you'd do:

re.sub(r'\([^)]*\)', '', filename)
  • 1
    is there any reason to prefer .*? over [^)]* – Kip Mar 12 '09 at 20:31
  • 1
    @J.F. Sebastian: you're right. – Can Berk Güder Mar 12 '09 at 22:28
  • @Kip: nope. I don't know why, but .* is always the first thing that comes to mind. – Can Berk Güder Mar 12 '09 at 22:29
  • @Kip: .*? is not handled by all regex parsers, whereas your [^)]* is handled by almost all of them. – X-Istence Mar 12 '09 at 22:57
  • 9
    .* gets everything between the first left paren and last right paren: 'a(b)c(d)e' will become 'ae'. [^)]* only removes between the first left paren and the first right paren: 'ac(d)e'. You'll also get different behaviors for nested parens. – daotoad Mar 13 '09 at 4:32

I would use:

\([^)]*\)

The pattern that matches substrings in paretheses having no other ( and ) characters in between (like (xyz 123) in Text (abc(xyz 123)) is

\([^()]*\)

Details:

  • \( - an opening round bracket (note that in POSIX BRE, ( should be used, see sed example below)
  • [^()]* - zero or more (due to the * Kleene star quantifier) characters other than those defined in the negated character class/POSIX bracket expression, that is, any chars other than ( and )
  • \) - a closing round bracket (no escaping in POSIX BRE allowed)

Removing code snippets:

  • JavaScript: string.replace(/\([^()]*\)/g, '')
  • PHP: preg_replace('~\([^()]*\)~', '', $string)
  • Perl: $s =~ s/\([^()]*\)//g
  • Python: re.sub(r'\([^()]*\)', '', s)
  • C#: Regex.Replace(str, @"\([^()]*\)", string.Empty)
  • VB.NET: Regex.Replace(str, "\([^()]*\)", "")
  • Java: s.replaceAll("\\([^()]*\\)", "")
  • Ruby: s.gsub(/\([^()]*\)/, '')
  • R: gsub("\\([^()]*\\)", "", x)
  • Lua: string.gsub(s, "%([^()]*%)", "")
  • Bash/sed: sed 's/([^()]*)//g'
  • Tcl: regsub -all {\([^()]*\)} $s "" result
  • C++ std::regex: std::regex_replace(s, std::regex(R"(\([^()]*\))"), "")
  • Objective-C:
    NSRegularExpression *regex = [NSRegularExpression regularExpressionWithPattern:@"\\([^()]*\\)" options:NSRegularExpressionCaseInsensitive error:&error]; NSString *modifiedString = [regex stringByReplacingMatchesInString:string options:0 range:NSMakeRange(0, [string length]) withTemplate:@""];

If you don't absolutely need to use a regex, useconsider using Perl's Text::Balanced to remove the parenthesis.

use Text::Balanced qw(extract_bracketed);

my ($extracted, $remainder, $prefix) = extract_bracketed( $filename, '()', '[^(]*' );

{   no warnings 'uninitialized';

    $filename = (defined $prefix or defined $remainder)
                ? $prefix . $remainder
                : $extracted;
}

You may be thinking, "Why do all this when a regex does the trick in one line?"

$filename =~ s/\([^}]*\)//;

Text::Balanced handles nested parenthesis. So $filename = 'foo_(bar(baz)buz)).foo' will be extracted properly. The regex based solutions offered here will fail on this string. The one will stop at the first closing paren, and the other will eat them all.

$filename =~ s/([^}]*)//; # returns 'foo_buz)).foo'

$filename =~ s/(.*)//; # returns 'foo_.foo'

# text balanced example returns 'foo_).foo'

If either of the regex behaviors is acceptable, use a regex--but document the limitations and the assumptions being made.

  • While I know you can't parse nested parenthesis with (classic) regexes, if you know you're never going to encounter nested parenthesis, you can simplify the problem to one that CAN be done with regexes, and fairly easily. It's overkill to use a parser tool when we don't need it. – Chris Lutz Mar 12 '09 at 22:59
  • @Chris Lutz - I should have said "consider" rather than "use" in the first sentence. In many cases a regex will do the job, which is why I said to use a regex if the behavior is acceptable. – daotoad Mar 13 '09 at 0:21

If a path may contain parentheses then the r'\(.*?\)' regex is not enough:

import os, re

def remove_parenthesized_chunks(path, safeext=True, safedir=True):
    dirpath, basename = os.path.split(path) if safedir else ('', path)
    name, ext = os.path.splitext(basename) if safeext else (basename, '')
    name = re.sub(r'\(.*?\)', '', name)
    return os.path.join(dirpath, name+ext)

By default the function preserves parenthesized chunks in directory and extention parts of the path.

Example:

>>> f = remove_parenthesized_chunks
>>> f("Example_file_(extra_descriptor).ext")
'Example_file_.ext'
>>> path = r"c:\dir_(important)\example(extra).ext(untouchable)"
>>> f(path)
'c:\\dir_(important)\\example.ext(untouchable)'
>>> f(path, safeext=False)
'c:\\dir_(important)\\example.ext'
>>> f(path, safedir=False)
'c:\\dir_\\example.ext(untouchable)'
>>> f(path, False, False)
'c:\\dir_\\example.ext'
>>> f(r"c:\(extra)\example(extra).ext", safedir=False)
'c:\\\\example.ext'

If you can stand to use sed (possibly execute from within your program, it'd be as simple as:

sed 's/(.*)//g'
  • You are just grouping the expression .*. – Gumbo Mar 12 '09 at 19:21
  • @Gumbo: No, he's not. In sed, "\(...\)" groups. – runrig Mar 12 '09 at 20:19
  • Ops, sorry. Didn’t know that. – Gumbo Mar 12 '09 at 20:32
>>> import re
>>> filename = "Example_file_(extra_descriptor).ext"
>>> p = re.compile(r'\([^)]*\)')
>>> re.sub(p, '', filename)
'Example_file_.ext'

Java code:

Pattern pattern1 = Pattern.compile("(\\_\\(.*?\\))");
System.out.println(fileName.replace(matcher1.group(1), ""));

For those who want to use Python, here's a simple routine that removes parenthesized substrings, including those with nested parentheses. Okay, it's not a regex, but it'll do the job!

def remove_nested_parens(input_str):
    """Returns a copy of 'input_str' with any parenthesized text removed. Nested parentheses are handled."""
    result = ''
    paren_level = 0
    for ch in input_str:
        if ch == '(':
            paren_level += 1
        elif (ch == ')') and paren_level:
            paren_level -= 1
        elif not paren_level:
            result += ch
    return result

remove_nested_parens('example_(extra(qualifier)_text)_test(more_parens).ext')

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