Skip to main content

Alternative regular expression module, to replace re.

Project description

Introduction

This new regex implementation is intended eventually to replace Python’s current re module implementation.

For testing and comparison with the current ‘re’ module the new implementation is in the form of a module called ‘regex’.

Old vs new behaviour

This module has 2 behaviours:

  • Version 0 behaviour (old behaviour, compatible with the current re module):

    • Indicated by the VERSION0 or V0 flag, or (?V0) in the pattern.

    • Zero-width matches are handled like in the re module:

      • .split won’t split a string at a zero-width match.

      • .sub will advance by one character after a zero-width match.

    • Inline flags apply to the entire pattern, and they can’t be turned off.

    • Only simple sets are supported.

    • Case-insensitive matches in Unicode use simple case-folding by default.

  • Version 1 behaviour (new behaviour, different from the current re module):

    • Indicated by the VERSION1 or V1 flag, or (?V1) in the pattern.

    • Zero-width matches are handled like in Perl and PCRE:

      • .split will split a string at a zero-width match.

      • .sub will handle zero-width matches correctly.

    • Inline flags apply to the end of the group or pattern, and they can be turned off.

    • Nested sets and set operations are supported.

    • Case-insensitive matches in Unicode use full case-folding by default.

If no version is specified, the regex module will default to regex.DEFAULT_VERSION. In the short term this will be VERSION0, but in the longer term it will be VERSION1.

Case-insensitive matches in Unicode

The regex module supports both simple and full case-folding for case-insensitive matches in Unicode. Use of full case-folding can be turned on using the FULLCASE or F flag, or (?f) in the pattern. Please note that this flag affects how the IGNORECASE flag works; the FULLCASE flag itself does not turn on case-insensitive matching.

In the version 0 behaviour, the flag is off by default.

In the version 1 behaviour, the flag is on by default.

Nested sets and set operations

It’s not possible to support both simple sets, as used in the re module, and nested sets at the same time because of a difference in the meaning of an unescaped "[" in a set.

For example, the pattern [[a-z]--[aeiou]] is treated in the version 0 behaviour (simple sets, compatible with the re module) as:

  • Set containing “[” and the letters “a” to “z”

  • Literal “–”

  • Set containing letters “a”, “e”, “i”, “o”, “u”

but in the version 1 behaviour (nested sets, enhanced behaviour) as:

  • Set which is:

    • Set containing the letters “a” to “z”

  • but excluding:

    • Set containing the letters “a”, “e”, “i”, “o”, “u”

Version 0 behaviour: only simple sets are supported.

Version 1 behaviour: nested sets and set operations are supported.

Flags

There are 2 kinds of flag: scoped and global. Scoped flags can apply to only part of a pattern and can be turned on or off; global flags apply to the entire pattern and can only be turned on.

The scoped flags are: FULLCASE, IGNORECASE, MULTILINE, DOTALL, VERBOSE, WORD.

The global flags are: ASCII, BESTMATCH, ENHANCEMATCH, LOCALE, POSIX, REVERSE, UNICODE, VERSION0, VERSION1.

If neither the ASCII, LOCALE nor UNICODE flag is specified, it will default to UNICODE if the regex pattern is a Unicode string and ASCII if it’s a bytestring.

The ENHANCEMATCH flag makes fuzzy matching attempt to improve the fit of the next match that it finds.

The BESTMATCH flag makes fuzzy matching search for the best match instead of the next match.

Notes on named capture groups

All capture groups have a group number, starting from 1.

Groups with the same group name will have the same group number, and groups with a different group name will have a different group number.

The same name can be used by more than one group, with later captures ‘overwriting’ earlier captures. All of the captures of the group will be available from the captures method of the match object.

Group numbers will be reused across different branches of a branch reset, eg. (?|(first)|(second)) has only group 1. If capture groups have different group names then they will, of course, have different group numbers, eg. (?|(?P<foo>first)|(?P<bar>second)) has group 1 (“foo”) and group 2 (“bar”).

In the regex (\s+)(?|(?P<foo>[A-Z]+)|(\w+) (?P<foo>[0-9]+) there are 2 groups:

  • (\s+) is group 1.

  • (?P<foo>[A-Z]+) is group 2, also called “foo”.

  • (\w+) is group 2 because of the branch reset.

  • (?P<foo>[0-9]+) is group 2 because it’s called “foo”.

If you want to prevent (\w+) from being group 2, you need to name it (different name, different group number).

Multithreading

The regex module releases the GIL during matching on instances of the built-in (immutable) string classes, enabling other Python threads to run concurrently. It is also possible to force the regex module to release the GIL during matching by calling the matching methods with the keyword argument concurrent=True. The behaviour is undefined if the string changes during matching, so use it only when it is guaranteed that that won’t happen.

Building for 64-bits

If the source files are built for a 64-bit target then the string positions will also be 64-bit.

Unicode

This module supports Unicode 9.0.

Full Unicode case-folding is supported.

Additional features

The issue numbers relate to the Python bug tracker, except where listed as “Hg issue”.

  • Fixed support for pickling compiled regexes (Hg issue 195)

  • Added support for lookaround in conditional pattern (Hg issue 163)

    The test of a conditional pattern can now be a lookaround.

    Examples:

    >>> regex.match(r'(?(?=\d)\d+|\w+)', '123abc')
    <regex.Match object; span=(0, 3), match='123'>
    >>> regex.match(r'(?(?=\d)\d+|\w+)', 'abc123')
    <regex.Match object; span=(0, 6), match='abc123'>

    This is not quite the same as putting a lookaround in the first branch of a pair of alternatives.

    Examples:

    >>> print(regex.match(r'(?:(?=\d)\d+\b|\w+)', '123abc'))
    <regex.Match object; span=(0, 6), match='123abc'>
    >>> print(regex.match(r'(?(?=\d)\d+\b|\w+)', '123abc'))
    None

    In the first example, the lookaround matched, but the remainder of the first branch failed to match, and so the second branch was attempted, whereas in the second example, the lookaround matched, and the first branch failed to match, but the second branch was not attempted.

  • Added POSIX matching (leftmost longest) (Hg issue 150)

    The POSIX standard for regex is to return the leftmost longest match. This can be turned on using the POSIX flag ((?p)).

    Examples:

    >>> # Normal matching.
    >>> regex.search(r'Mr|Mrs', 'Mrs')
    <regex.Match object; span=(0, 2), match='Mr'>
    >>> regex.search(r'one(self)?(selfsufficient)?', 'oneselfsufficient')
    <regex.Match object; span=(0, 7), match='oneself'>
    >>> # POSIX matching.
    >>> regex.search(r'(?p)Mr|Mrs', 'Mrs')
    <regex.Match object; span=(0, 3), match='Mrs'>
    >>> regex.search(r'(?p)one(self)?(selfsufficient)?', 'oneselfsufficient')
    <regex.Match object; span=(0, 17), match='oneselfsufficient'>

    Note that it will take longer to find matches because when it finds a match at a certain position, it won’t return that immediately, but will keep looking to see if there’s another longer match there.

  • Added (?(DEFINE)...) (Hg issue 152)

    If there’s no group called “DEFINE”, then … will be ignored, but any group definitions within it will be available.

    Examples:

    >>> regex.search(r'(?(DEFINE)(?P<quant>\d+)(?P<item>\w+))(?&quant) (?&item)', '5 elephants')
    <regex.Match object; span=(0, 11), match='5 elephants'>
  • Added (*PRUNE), (*SKIP) and (*FAIL) (Hg issue 153)

    (*PRUNE) discards the backtracking info up to that point. When used in an atomic group or a lookaround, it won’t affect the enclosing pattern.

    (*SKIP) is similar to (*PRUNE), except that it also sets where in the text the next attempt to match will start. When used in an atomic group or a lookaround, it won’t affect the enclosing pattern.

    (*FAIL) causes immediate backtracking. (*F) is a permitted abbreviation.

  • Added \K (Hg issue 151)

    Keeps the part of the entire match after the position where \K occurred; the part before it is discarded.

    It does not affect what capture groups return.

    Examples:

    >>> m = regex.search(r'(\w\w\K\w\w\w)', 'abcdef')
    >>> m[0]
    'cde'
    >>> m[1]
    'abcde'
    >>>
    >>> m = regex.search(r'(?r)(\w\w\K\w\w\w)', 'abcdef')
    >>> m[0]
    'bc'
    >>> m[1]
    'bcdef'
  • Added capture subscripting for expandf and subf/subfn (Hg issue 133) (Python 2.6 and above)

    You can now use subscripting to get the captures of a repeated capture group.

    Examples:

    >>> m = regex.match(r"(\w)+", "abc")
    >>> m.expandf("{1}")
    'c'
    >>> m.expandf("{1[0]} {1[1]} {1[2]}")
    'a b c'
    >>> m.expandf("{1[-1]} {1[-2]} {1[-3]}")
    'c b a'
    >>>
    >>> m = regex.match(r"(?P<letter>\w)+", "abc")
    >>> m.expandf("{letter}")
    'c'
    >>> m.expandf("{letter[0]} {letter[1]} {letter[2]}")
    'a b c'
    >>> m.expandf("{letter[-1]} {letter[-2]} {letter[-3]}")
    'c b a'
  • Added support for referring to a group by number using (?P=...).

    This is in addition to the existing \g<...>.

  • Fixed the handling of locale-sensitive regexes.

    The LOCALE flag is intended for legacy code and has limited support. You’re still recommended to use Unicode instead.

  • Added partial matches (Hg issue 102)

    A partial match is one that matches up to the end of string, but that string has been truncated and you want to know whether a complete match could be possible if the string had not been truncated.

    Partial matches are supported by match, search, fullmatch and finditer with the partial keyword argument.

    Match objects have a partial attribute, which is True if it’s a partial match.

    For example, if you wanted a user to enter a 4-digit number and check it character by character as it was being entered:

    >>> pattern = regex.compile(r'\d{4}')
    
    >>> # Initially, nothing has been entered:
    >>> print(pattern.fullmatch('', partial=True))
    <regex.Match object; span=(0, 0), match='', partial=True>
    
    >>> # An empty string is OK, but it's only a partial match.
    >>> # The user enters a letter:
    >>> print(pattern.fullmatch('a', partial=True))
    None
    >>> # It'll never match.
    
    >>> # The user deletes that and enters a digit:
    >>> print(pattern.fullmatch('1', partial=True))
    <regex.Match object; span=(0, 1), match='1', partial=True>
    >>> # It matches this far, but it's only a partial match.
    
    >>> # The user enters 2 more digits:
    >>> print(pattern.fullmatch('123', partial=True))
    <regex.Match object; span=(0, 3), match='123', partial=True>
    >>> # It matches this far, but it's only a partial match.
    
    >>> # The user enters another digit:
    >>> print(pattern.fullmatch('1234', partial=True))
    <regex.Match object; span=(0, 4), match='1234'>
    >>> # It's a complete match.
    
    >>> # If the user enters another digit:
    >>> print(pattern.fullmatch('12345', partial=True))
    None
    >>> # It's no longer a match.
    
    >>> # This is a partial match:
    >>> pattern.match('123', partial=True).partial
    True
    
    >>> # This is a complete match:
    >>> pattern.match('1233', partial=True).partial
    False
  • * operator not working correctly with sub() (Hg issue 106)

    Sometimes it’s not clear how zero-width matches should be handled. For example, should .* match 0 characters directly after matching >0 characters?

    Most regex implementations follow the lead of Perl (PCRE), but the re module sometimes doesn’t. The Perl behaviour appears to be the most common (and the re module is sometimes definitely wrong), so in version 1 the regex module follows the Perl behaviour, whereas in version 0 it follows the legacy re behaviour.

    Examples:

    >>> # Version 0 behaviour (like re)
    >>> regex.sub('(?V0).*', 'x', 'test')
    'x'
    >>> regex.sub('(?V0).*?', '|', 'test')
    '|t|e|s|t|'
    
    >>> # Version 1 behaviour (like Perl)
    >>> regex.sub('(?V1).*', 'x', 'test')
    'xx'
    >>> regex.sub('(?V1).*?', '|', 'test')
    '|||||||||'
  • re.group() should never return a bytearray (issue #18468)

    For compatibility with the re module, the regex module returns all matching bytestrings as bytes, starting from Python 3.4.

    Examples:

    >>> # Python 3.4 and later
    >>> regex.match(b'.', bytearray(b'a')).group()
    b'a'
    
    >>> # Python 3.1-3.3
    >>> regex.match(b'.', bytearray(b'a')).group()
    bytearray(b'a')
  • Added capturesdict (Hg issue 86)

    capturesdict is a combination of groupdict and captures:

    groupdict returns a dict of the named groups and the last capture of those groups.

    captures returns a list of all the captures of a group

    capturesdict returns a dict of the named groups and lists of all the captures of those groups.

    Examples:

    >>> m = regex.match(r"(?:(?P<word>\w+) (?P<digits>\d+)\n)+", "one 1\ntwo 2\nthree 3\n")
    >>> m.groupdict()
    {'word': 'three', 'digits': '3'}
    >>> m.captures("word")
    ['one', 'two', 'three']
    >>> m.captures("digits")
    ['1', '2', '3']
    >>> m.capturesdict()
    {'word': ['one', 'two', 'three'], 'digits': ['1', '2', '3']}
  • Allow duplicate names of groups (Hg issue 87)

    Group names can now be duplicated.

    Examples:

    >>> # With optional groups:
    >>>
    >>> # Both groups capture, the second capture 'overwriting' the first.
    >>> m = regex.match(r"(?P<item>\w+)? or (?P<item>\w+)?", "first or second")
    >>> m.group("item")
    'second'
    >>> m.captures("item")
    ['first', 'second']
    >>> # Only the second group captures.
    >>> m = regex.match(r"(?P<item>\w+)? or (?P<item>\w+)?", " or second")
    >>> m.group("item")
    'second'
    >>> m.captures("item")
    ['second']
    >>> # Only the first group captures.
    >>> m = regex.match(r"(?P<item>\w+)? or (?P<item>\w+)?", "first or ")
    >>> m.group("item")
    'first'
    >>> m.captures("item")
    ['first']
    >>>
    >>> # With mandatory groups:
    >>>
    >>> # Both groups capture, the second capture 'overwriting' the first.
    >>> m = regex.match(r"(?P<item>\w*) or (?P<item>\w*)?", "first or second")
    >>> m.group("item")
    'second'
    >>> m.captures("item")
    ['first', 'second']
    >>> # Again, both groups capture, the second capture 'overwriting' the first.
    >>> m = regex.match(r"(?P<item>\w*) or (?P<item>\w*)", " or second")
    >>> m.group("item")
    'second'
    >>> m.captures("item")
    ['', 'second']
    >>> # And yet again, both groups capture, the second capture 'overwriting' the first.
    >>> m = regex.match(r"(?P<item>\w*) or (?P<item>\w*)", "first or ")
    >>> m.group("item")
    ''
    >>> m.captures("item")
    ['first', '']
  • Added fullmatch (issue #16203)

    fullmatch behaves like match, except that it must match all of the string.

    Examples:

    >>> print(regex.fullmatch(r"abc", "abc").span())
    (0, 3)
    >>> print(regex.fullmatch(r"abc", "abcx"))
    None
    >>> print(regex.fullmatch(r"abc", "abcx", endpos=3).span())
    (0, 3)
    >>> print(regex.fullmatch(r"abc", "xabcy", pos=1, endpos=4).span())
    (1, 4)
    >>>
    >>> regex.match(r"a.*?", "abcd").group(0)
    'a'
    >>> regex.fullmatch(r"a.*?", "abcd").group(0)
    'abcd'
  • Added subf and subfn (Python 2.6 and above)

    subf and subfn are alternatives to sub and subn respectively. When passed a replacement string, they treat it as a format string.

    Examples:

    >>> regex.subf(r"(\w+) (\w+)", "{0} => {2} {1}", "foo bar")
    'foo bar => bar foo'
    >>> regex.subf(r"(?P<word1>\w+) (?P<word2>\w+)", "{word2} {word1}", "foo bar")
    'bar foo'
  • Added expandf to match object (Python 2.6 and above)

    expandf is an alternative to expand. When passed a replacement string, it treats it as a format string.

    Examples:

    >>> m = regex.match(r"(\w+) (\w+)", "foo bar")
    >>> m.expandf("{0} => {2} {1}")
    'foo bar => bar foo'
    >>>
    >>> m = regex.match(r"(?P<word1>\w+) (?P<word2>\w+)", "foo bar")
    >>> m.expandf("{word2} {word1}")
    'bar foo'
  • Detach searched string

    A match object contains a reference to the string that was searched, via its string attribute. The match object now has a detach_string method that will ‘detach’ that string, making it available for garbage collection (this might save valuable memory if that string is very large).

    Example:

    >>> m = regex.search(r"\w+", "Hello world")
    >>> print(m.group())
    Hello
    >>> print(m.string)
    Hello world
    >>> m.detach_string()
    >>> print(m.group())
    Hello
    >>> print(m.string)
    None
  • Characters in a group name (issue #14462)

    A group name can now contain the same characters as an identifier. These are different in Python 2 and Python 3.

  • Recursive patterns (Hg issue 27)

    Recursive and repeated patterns are supported.

    (?R) or (?0) tries to match the entire regex recursively. (?1), (?2), etc, try to match the relevant capture group.

    (?&name) tries to match the named capture group.

    Examples:

    >>> regex.match(r"(Tarzan|Jane) loves (?1)", "Tarzan loves Jane").groups()
    ('Tarzan',)
    >>> regex.match(r"(Tarzan|Jane) loves (?1)", "Jane loves Tarzan").groups()
    ('Jane',)
    
    >>> m = regex.search(r"(\w)(?:(?R)|(\w?))\1", "kayak")
    >>> m.group(0, 1, 2)
    ('kayak', 'k', None)

    The first two examples show how the subpattern within the capture group is reused, but is _not_ itself a capture group. In other words, "(Tarzan|Jane) loves (?1)" is equivalent to "(Tarzan|Jane) loves (?:Tarzan|Jane)".

    It’s possible to backtrack into a recursed or repeated group.

    You can’t call a group if there is more than one group with that group name or group number ("ambiguous group reference"). For example, (?P<foo>\w+) (?P<foo>\w+) (?&foo)? has 2 groups called “foo” (both group 1) and (?|([A-Z]+)|([0-9]+)) (?1)? has 2 groups with group number 1.

    The alternative forms (?P>name) and (?P&name) are also supported.

  • repr(regex) doesn’t include actual regex (issue #13592)

    The repr of a compiled regex is now in the form of a eval-able string. For example:

    >>> r = regex.compile("foo", regex.I)
    >>> repr(r)
    "regex.Regex('foo', flags=regex.I | regex.V0)"
    >>> r
    regex.Regex('foo', flags=regex.I | regex.V0)

    The regex module has Regex as an alias for the ‘compile’ function.

  • Improve the repr for regular expression match objects (issue #17087)

    The repr of a match object is now a more useful form. For example:

    >>> regex.search(r"\d+", "abc012def")
    <regex.Match object; span=(3, 6), match='012'>
  • Python lib re cannot handle Unicode properly due to narrow/wide bug (issue #12729)

    The source code of the regex module has been updated to support PEP 393 (“Flexible String Representation”), which is new in Python 3.3.

  • Full Unicode case-folding is supported.

    In version 1 behaviour, the regex module uses full case-folding when performing case-insensitive matches in Unicode.

    Examples (in Python 3):

    >>> regex.match(r"(?iV1)strasse", "stra\N{LATIN SMALL LETTER SHARP S}e").span()
    (0, 6)
    >>> regex.match(r"(?iV1)stra\N{LATIN SMALL LETTER SHARP S}e", "STRASSE").span()
    (0, 7)

    In version 0 behaviour, it uses simple case-folding for backward compatibility with the re module.

  • Approximate “fuzzy” matching (Hg issue 12, Hg issue 41, Hg issue 109)

    Regex usually attempts an exact match, but sometimes an approximate, or “fuzzy”, match is needed, for those cases where the text being searched may contain errors in the form of inserted, deleted or substituted characters.

    A fuzzy regex specifies which types of errors are permitted, and, optionally, either the minimum and maximum or only the maximum permitted number of each type. (You cannot specify only a minimum.)

    The 3 types of error are:

    • Insertion, indicated by “i”

    • Deletion, indicated by “d”

    • Substitution, indicated by “s”

    In addition, “e” indicates any type of error.

    The fuzziness of a regex item is specified between “{” and “}” after the item.

    Examples:

    • foo match “foo” exactly

    • (?:foo){i} match “foo”, permitting insertions

    • (?:foo){d} match “foo”, permitting deletions

    • (?:foo){s} match “foo”, permitting substitutions

    • (?:foo){i,s} match “foo”, permitting insertions and substitutions

    • (?:foo){e} match “foo”, permitting errors

    If a certain type of error is specified, then any type not specified will not be permitted.

    In the following examples I’ll omit the item and write only the fuzziness:

    • {i<=3} permit at most 3 insertions, but no other types

    • {d<=3} permit at most 3 deletions, but no other types

    • {s<=3} permit at most 3 substitutions, but no other types

    • {i<=1,s<=2} permit at most 1 insertion and at most 2 substitutions, but no deletions

    • {e<=3} permit at most 3 errors

    • {1<=e<=3} permit at least 1 and at most 3 errors

    • {i<=2,d<=2,e<=3} permit at most 2 insertions, at most 2 deletions, at most 3 errors in total, but no substitutions

    It’s also possible to state the costs of each type of error and the maximum permitted total cost.

    Examples:

    • {2i+2d+1s<=4} each insertion costs 2, each deletion costs 2, each substitution costs 1, the total cost must not exceed 4

    • {i<=1,d<=1,s<=1,2i+2d+1s<=4} at most 1 insertion, at most 1 deletion, at most 1 substitution; each insertion costs 2, each deletion costs 2, each substitution costs 1, the total cost must not exceed 4

    You can also use “<” instead of “<=” if you want an exclusive minimum or maximum:

    • {e<=3} permit up to 3 errors

    • {e<4} permit fewer than 4 errors

    • {0<e<4} permit more than 0 but fewer than 4 errors

    By default, fuzzy matching searches for the first match that meets the given constraints. The ENHANCEMATCH flag will cause it to attempt to improve the fit (i.e. reduce the number of errors) of the match that it has found.

    The BESTMATCH flag will make it search for the best match instead.

    Further examples to note:

    • regex.search("(dog){e}", "cat and dog")[1] returns "cat" because that matches "dog" with 3 errors, which is within the limit (an unlimited number of errors is permitted).

    • regex.search("(dog){e<=1}", "cat and dog")[1] returns " dog" (with a leading space) because that matches "dog" with 1 error, which is within the limit (1 error is permitted).

    • regex.search("(?e)(dog){e<=1}", "cat and dog")[1] returns "dog" (without a leading space) because the fuzzy search matches " dog" with 1 error, which is within the limit (1 error is permitted), and the (?e) then makes it attempt a better fit.

    In the first two examples there are perfect matches later in the string, but in neither case is it the first possible match.

    The match object has an attribute fuzzy_counts which gives the total number of substitutions, insertions and deletions.

    >>> # A 'raw' fuzzy match:
    >>> regex.fullmatch(r"(?:cats|cat){e<=1}", "cat").fuzzy_counts
    (0, 0, 1)
    >>> # 0 substitutions, 0 insertions, 1 deletion.
    
    >>> # A better match might be possible if the ENHANCEMATCH flag used:
    >>> regex.fullmatch(r"(?e)(?:cats|cat){e<=1}", "cat").fuzzy_counts
    (0, 0, 0)
    >>> # 0 substitutions, 0 insertions, 0 deletions.
  • Named lists (Hg issue 11)

    \L<name>

    There are occasions where you may want to include a list (actually, a set) of options in a regex.

    One way is to build the pattern like this:

    >>> p = regex.compile(r"first|second|third|fourth|fifth")

    but if the list is large, parsing the resulting regex can take considerable time, and care must also be taken that the strings are properly escaped if they contain any character that has a special meaning in a regex, and that if there is a shorter string that occurs initially in a longer string that the longer string is listed before the shorter one, for example, “cats” before “cat”.

    The new alternative is to use a named list:

    >>> option_set = ["first", "second", "third", "fourth", "fifth"]
    >>> p = regex.compile(r"\L<options>", options=option_set)

    The order of the items is irrelevant, they are treated as a set. The named lists are available as the .named_lists attribute of the pattern object :

    >>> print(p.named_lists)
    {'options': frozenset({'second', 'fifth', 'fourth', 'third', 'first'})}
  • Start and end of word

    \m matches at the start of a word.

    \M matches at the end of a word.

    Compare with \b, which matches at the start or end of a word.

  • Unicode line separators

    Normally the only line separator is \n (\x0A), but if the WORD flag is turned on then the line separators are the pair \x0D\x0A, and \x0A, \x0B, \x0C and \x0D, plus \x85, \u2028 and \u2029 when working with Unicode.

    This affects the regex dot ".", which, with the DOTALL flag turned off, matches any character except a line separator. It also affects the line anchors ^ and $ (in multiline mode).

  • Set operators

    Version 1 behaviour only

    Set operators have been added, and a set [...] can include nested sets.

    The operators, in order of increasing precedence, are:

    • || for union (“x||y” means “x or y”)

    • ~~ (double tilde) for symmetric difference (“x~~y” means “x or y, but not both”)

    • && for intersection (“x&&y” means “x and y”)

    • -- (double dash) for difference (“x–y” means “x but not y”)

    Implicit union, ie, simple juxtaposition like in [ab], has the highest precedence. Thus, [ab&&cd] is the same as [[a||b]&&[c||d]].

    Examples:

    • [ab] # Set containing ‘a’ and ‘b’

    • [a-z] # Set containing ‘a’ .. ‘z’

    • [[a-z]--[qw]] # Set containing ‘a’ .. ‘z’, but not ‘q’ or ‘w’

    • [a-z--qw] # Same as above

    • [\p{L}--QW] # Set containing all letters except ‘Q’ and ‘W’

    • [\p{N}--[0-9]] # Set containing all numbers except ‘0’ .. ‘9’

    • [\p{ASCII}&&\p{Letter}] # Set containing all characters which are ASCII and letter

  • regex.escape (issue #2650)

    regex.escape has an additional keyword parameter special_only. When True, only ‘special’ regex characters, such as ‘?’, are escaped.

    Examples:

    >>> regex.escape("foo!?")
    'foo\\!\\?'
    >>> regex.escape("foo!?", special_only=True)
    'foo!\\?'
  • Repeated captures (issue #7132)

    A match object has additional methods which return information on all the successful matches of a repeated capture group. These methods are:

    • matchobject.captures([group1, ...])

      • Returns a list of the strings matched in a group or groups. Compare with matchobject.group([group1, ...]).

    • matchobject.starts([group])

      • Returns a list of the start positions. Compare with matchobject.start([group]).

    • matchobject.ends([group])

      • Returns a list of the end positions. Compare with matchobject.end([group]).

    • matchobject.spans([group])

      • Returns a list of the spans. Compare with matchobject.span([group]).

    Examples:

    >>> m = regex.search(r"(\w{3})+", "123456789")
    >>> m.group(1)
    '789'
    >>> m.captures(1)
    ['123', '456', '789']
    >>> m.start(1)
    6
    >>> m.starts(1)
    [0, 3, 6]
    >>> m.end(1)
    9
    >>> m.ends(1)
    [3, 6, 9]
    >>> m.span(1)
    (6, 9)
    >>> m.spans(1)
    [(0, 3), (3, 6), (6, 9)]
  • Atomic grouping (issue #433030)

    (?>...)

    If the following pattern subsequently fails, then the subpattern as a whole will fail.

  • Possessive quantifiers.

    (?:...)?+ ; (?:...)*+ ; (?:...)++ ; (?:...){min,max}+

    The subpattern is matched up to ‘max’ times. If the following pattern subsequently fails, then all of the repeated subpatterns will fail as a whole. For example, (?:...)++ is equivalent to (?>(?:...)+).

  • Scoped flags (issue #433028)

    (?flags-flags:...)

    The flags will apply only to the subpattern. Flags can be turned on or off.

  • Inline flags (issue #433024, issue #433027)

    (?flags-flags)

    Version 0 behaviour: the flags apply to the entire pattern, and they can’t be turned off.

    Version 1 behaviour: the flags apply to the end of the group or pattern, and they can be turned on or off.

  • Repeated repeats (issue #2537)

    A regex like ((x|y+)*)* will be accepted and will work correctly, but should complete more quickly.

  • Definition of ‘word’ character (issue #1693050)

    The definition of a ‘word’ character has been expanded for Unicode. It now conforms to the Unicode specification at http://www.unicode.org/reports/tr29/. This applies to \w, \W, \b and \B.

  • Groups in lookahead and lookbehind (issue #814253)

    Groups and group references are permitted in both lookahead and lookbehind.

  • Variable-length lookbehind

    A lookbehind can match a variable-length string.

  • Correct handling of charset with ignore case flag (issue #3511)

    Ranges within charsets are handled correctly when the ignore-case flag is turned on.

  • Unmatched group in replacement (issue #1519638)

    An unmatched group is treated as an empty string in a replacement template.

  • ‘Pathological’ patterns (issue #1566086, issue #1662581, issue #1448325, issue #1721518, issue #1297193)

    ‘Pathological’ patterns should complete more quickly.

  • Flags argument for regex.split, regex.sub and regex.subn (issue #3482)

    regex.split, regex.sub and regex.subn support a ‘flags’ argument.

  • Pos and endpos arguments for regex.sub and regex.subn

    regex.sub and regex.subn support ‘pos’ and ‘endpos’ arguments.

  • ‘Overlapped’ argument for regex.findall and regex.finditer

    regex.findall and regex.finditer support an ‘overlapped’ flag which permits overlapped matches.

  • Unicode escapes (issue #3665)

    The Unicode escapes \uxxxx and \Uxxxxxxxx are supported.

  • Large patterns (issue #1160)

    Patterns can be much larger.

  • Zero-width match with regex.finditer (issue #1647489)

    regex.finditer behaves correctly when it splits at a zero-width match.

  • Zero-width split with regex.split (issue #3262)

    Version 0 behaviour: a string won’t be split at a zero-width match.

    Version 1 behaviour: a string will be split at a zero-width match.

  • Splititer

    regex.splititer has been added. It’s a generator equivalent of regex.split.

  • Subscripting for groups

    A match object accepts access to the captured groups via subscripting and slicing:

    >>> m = regex.search(r"(?P<before>.*?)(?P<num>\d+)(?P<after>.*)", "pqr123stu")
    >>> print m["before"]
    pqr
    >>> print m["num"]
    123
    >>> print m["after"]
    stu
    >>> print len(m)
    4
    >>> print m[:]
    ('pqr123stu', 'pqr', '123', 'stu')
  • Named groups

    Groups can be named with (?<name>...) as well as the current (?P<name>...).

  • Group references

    Groups can be referenced within a pattern with \g<name>. This also allows there to be more than 99 groups.

  • Named characters

    \N{name}

    Named characters are supported. (Note: only those known by Python’s Unicode database are supported.)

  • Unicode codepoint properties, including scripts and blocks

    \p{property=value}; \P{property=value}; \p{value} ; \P{value}

    Many Unicode properties are supported, including blocks and scripts. \p{property=value} or \p{property:value} matches a character whose property property has value value. The inverse of \p{property=value} is \P{property=value} or \p{^property=value}.

    If the short form \p{value} is used, the properties are checked in the order: General_Category, Script, Block, binary property:

    • Latin, the ‘Latin’ script (Script=Latin).

    • Cyrillic, the ‘Cyrillic’ script (Script=Cyrillic).

    • BasicLatin, the ‘BasicLatin’ block (Block=BasicLatin).

    • Alphabetic, the ‘Alphabetic’ binary property (Alphabetic=Yes).

    A short form starting with Is indicates a script or binary property:

    • IsLatin, the ‘Latin’ script (Script=Latin).

    • IsCyrillic, the ‘Cyrillic’ script (Script=Cyrillic).

    • IsAlphabetic, the ‘Alphabetic’ binary property (Alphabetic=Yes).

    A short form starting with In indicates a block property:

    • InBasicLatin, the ‘BasicLatin’ block (Block=BasicLatin).

    • InCyrillic, the ‘Cyrillic’ block (Block=Cyrillic).

  • POSIX character classes

    [[:alpha:]]; [[:^alpha:]]

    POSIX character classes are supported. These are normally treated as an alternative form of \p{...}.

    The exceptions are alnum, digit, punct and xdigit, whose definitions are different from those of Unicode.

    [[:alnum:]] is equivalent to \p{posix_alnum}.

    [[:digit:]] is equivalent to \p{posix_digit}.

    [[:punct:]] is equivalent to \p{posix_punct}.

    [[:xdigit:]] is equivalent to \p{posix_xdigit}.

  • Search anchor

    \G

    A search anchor has been added. It matches at the position where each search started/continued and can be used for contiguous matches or in negative variable-length lookbehinds to limit how far back the lookbehind goes:

    >>> regex.findall(r"\w{2}", "abcd ef")
    ['ab', 'cd', 'ef']
    >>> regex.findall(r"\G\w{2}", "abcd ef")
    ['ab', 'cd']
    • The search starts at position 0 and matches 2 letters ‘ab’.

    • The search continues at position 2 and matches 2 letters ‘cd’.

    • The search continues at position 4 and fails to match any letters.

    • The anchor stops the search start position from being advanced, so there are no more results.

  • Reverse searching

    Searches can now work backwards:

    >>> regex.findall(r".", "abc")
    ['a', 'b', 'c']
    >>> regex.findall(r"(?r).", "abc")
    ['c', 'b', 'a']

    Note: the result of a reverse search is not necessarily the reverse of a forward search:

    >>> regex.findall(r"..", "abcde")
    ['ab', 'cd']
    >>> regex.findall(r"(?r)..", "abcde")
    ['de', 'bc']
  • Matching a single grapheme

    \X

    The grapheme matcher is supported. It now conforms to the Unicode specification at http://www.unicode.org/reports/tr29/.

  • Branch reset

    (?|...|...)

    Capture group numbers will be reused across the alternatives, but groups with different names will have different group numbers.

    Examples:

    >>> regex.match(r"(?|(first)|(second))", "first").groups()
    ('first',)
    >>> regex.match(r"(?|(first)|(second))", "second").groups()
    ('second',)

    Note that there is only one group.

  • Default Unicode word boundary

    The WORD flag changes the definition of a ‘word boundary’ to that of a default Unicode word boundary. This applies to \b and \B.

  • SRE engine do not release the GIL (issue #1366311)

    The regex module can release the GIL during matching (see the above section on multithreading).

    Iterators can be safely shared across threads.

Project details


Release history Release notifications | RSS feed

Download files

Download the file for your platform. If you're not sure which to choose, learn more about installing packages.

Source Distribution

regex-2016.09.22.tar.gz (599.0 kB view details)

Uploaded Source

Built Distributions

regex-2016.09.22-cp36-none-win_amd64.whl (242.2 kB view details)

Uploaded CPython 3.6Windows x86-64

regex-2016.09.22-cp36-none-win32.whl (236.6 kB view details)

Uploaded CPython 3.6Windows x86

regex-2016.09.22-cp35-none-win_amd64.whl (242.2 kB view details)

Uploaded CPython 3.5Windows x86-64

regex-2016.09.22-cp35-none-win32.whl (236.5 kB view details)

Uploaded CPython 3.5Windows x86

regex-2016.09.22-cp34-none-win_amd64.whl (242.4 kB view details)

Uploaded CPython 3.4Windows x86-64

regex-2016.09.22-cp34-none-win32.whl (236.6 kB view details)

Uploaded CPython 3.4Windows x86

regex-2016.09.22-cp33-none-win_amd64.whl (242.3 kB view details)

Uploaded CPython 3.3Windows x86-64

regex-2016.09.22-cp33-none-win32.whl (236.4 kB view details)

Uploaded CPython 3.3Windows x86

regex-2016.09.22-cp32-none-win_amd64.whl (241.3 kB view details)

Uploaded CPython 3.2Windows x86-64

regex-2016.09.22-cp32-none-win32.whl (235.4 kB view details)

Uploaded CPython 3.2Windows x86

regex-2016.09.22-cp31-none-win_amd64.whl (241.4 kB view details)

Uploaded CPython 3.1Windows x86-64

regex-2016.09.22-cp31-none-win32.whl (235.4 kB view details)

Uploaded CPython 3.1Windows x86

regex-2016.09.22-cp27-none-win_amd64.whl (241.3 kB view details)

Uploaded CPython 2.7Windows x86-64

regex-2016.09.22-cp27-none-win32.whl (235.3 kB view details)

Uploaded CPython 2.7Windows x86

regex-2016.09.22-cp26-none-win_amd64.whl (241.2 kB view details)

Uploaded CPython 2.6Windows x86-64

regex-2016.09.22-cp26-none-win32.whl (235.3 kB view details)

Uploaded CPython 2.6Windows x86

regex-2016.09.22-cp25-none-win_amd64.whl (239.4 kB view details)

Uploaded CPython 2.5Windows x86-64

regex-2016.09.22-cp25-none-win32.whl (233.9 kB view details)

Uploaded CPython 2.5Windows x86

File details

Details for the file regex-2016.09.22.tar.gz.

File metadata

  • Download URL: regex-2016.09.22.tar.gz
  • Upload date:
  • Size: 599.0 kB
  • Tags: Source
  • Uploaded using Trusted Publishing? No

File hashes

Hashes for regex-2016.09.22.tar.gz
Algorithm Hash digest
SHA256 5831c142d9a5b2447e0c5ee9a77b2aaee2ecbbff1025715ec3c6f6c7fc9b682b
MD5 5895fc0200c73814c3fd33f0f5aa4dbd
BLAKE2b-256 90f2818a691820f01cb845df2680299fce2b97af2f3ff31790b3a65ccab6aaa3

See more details on using hashes here.

File details

Details for the file regex-2016.09.22-cp36-none-win_amd64.whl.

File metadata

File hashes

Hashes for regex-2016.09.22-cp36-none-win_amd64.whl
Algorithm Hash digest
SHA256 b513cb2a3e627da3a6f637da435fc294dded890524e106f3fadb37a317163a6f
MD5 54397a7bcd5fcee482f3c036d852467b
BLAKE2b-256 321c577f277cc7005587400e6e5127621d397de18864695da8be248621292429

See more details on using hashes here.

File details

Details for the file regex-2016.09.22-cp36-none-win32.whl.

File metadata

File hashes

Hashes for regex-2016.09.22-cp36-none-win32.whl
Algorithm Hash digest
SHA256 684453f70a84b48a0599d43b7ea53a8b0d764b2f7e5816bc9263cf367a73394e
MD5 7b3e2eeaa25d3e24a331d9909f6b48f3
BLAKE2b-256 176b9152393eacc81928442ae8b90ce1563ef1fb5c392904eaab71d9bbf65eb8

See more details on using hashes here.

File details

Details for the file regex-2016.09.22-cp35-none-win_amd64.whl.

File metadata

File hashes

Hashes for regex-2016.09.22-cp35-none-win_amd64.whl
Algorithm Hash digest
SHA256 006f233ec762ebeea64610bb3e875e8b552f4477cac140718c498a3c66eba961
MD5 6ac1a35435f403a8985fe6e2595678b7
BLAKE2b-256 a9f5380e429b8b8ca16bd1fc8cbeecdad71d8c8b6e88ad20d676d461559a5140

See more details on using hashes here.

File details

Details for the file regex-2016.09.22-cp35-none-win32.whl.

File metadata

File hashes

Hashes for regex-2016.09.22-cp35-none-win32.whl
Algorithm Hash digest
SHA256 2b5e9b711fa294e0fb568f6c83c548bd140676c0519f6aaaa9768abd9688c05c
MD5 b52a51bb70deedb80b0a2e7fde8330ab
BLAKE2b-256 3c0a628853879435f57682a0518533427572ba5d3724d539b62e9366feb1ec82

See more details on using hashes here.

File details

Details for the file regex-2016.09.22-cp34-none-win_amd64.whl.

File metadata

File hashes

Hashes for regex-2016.09.22-cp34-none-win_amd64.whl
Algorithm Hash digest
SHA256 926ad926251c7143e412f4e5c82d0c7b3d09ae8aa75b7cc9d075e9dd49814add
MD5 9d0e2f7bcbeb9e88840658fb067ec2a0
BLAKE2b-256 c8e041c7ca79b3f5114e4fa859e257b98a72238d5ca0006f02e5e1facff6be2a

See more details on using hashes here.

File details

Details for the file regex-2016.09.22-cp34-none-win32.whl.

File metadata

File hashes

Hashes for regex-2016.09.22-cp34-none-win32.whl
Algorithm Hash digest
SHA256 af3c466cd5d7c45301d76e82513e1d8e8bec82f578ac68546790d8c8a8abe95f
MD5 760352c77d053a668ed8b040004be8a7
BLAKE2b-256 77e69c6a3917bb3c57b762e75e4d2f1049875782137b5ed05d5cab1bfa46b556

See more details on using hashes here.

File details

Details for the file regex-2016.09.22-cp33-none-win_amd64.whl.

File metadata

File hashes

Hashes for regex-2016.09.22-cp33-none-win_amd64.whl
Algorithm Hash digest
SHA256 2c0859c2f7da97f2ad0b8342a320111b07b345a2bfd925c39066cb7d2384c92c
MD5 26ec03debe0f4219c8f757f1ddb7d239
BLAKE2b-256 3d07bc69224c5b6430f343f4f188d610bae7626b7f53c995c2eb4b62f592b329

See more details on using hashes here.

File details

Details for the file regex-2016.09.22-cp33-none-win32.whl.

File metadata

File hashes

Hashes for regex-2016.09.22-cp33-none-win32.whl
Algorithm Hash digest
SHA256 c0ec9cc6dee583943dee15d44f99f82d3129da4cb26858a0f9a0be1556c94aec
MD5 cfb55c78fe817d32ef368088ec21a491
BLAKE2b-256 a19bcf36de44e50a0d3e74d2f5462c006d6ba8b048e53a1a693dced7672a1a1b

See more details on using hashes here.

File details

Details for the file regex-2016.09.22-cp32-none-win_amd64.whl.

File metadata

File hashes

Hashes for regex-2016.09.22-cp32-none-win_amd64.whl
Algorithm Hash digest
SHA256 1bfe7d2d425ea4580452fbf6b941f61b4d81cc6f1e581355db7aa7f7145bcca3
MD5 b7468ee6ff1d777e8a20b10c6eaaa191
BLAKE2b-256 777531181dce0adecbd73c4a75595e7d50ccac6311f7df009c17edbe2d85e7fd

See more details on using hashes here.

File details

Details for the file regex-2016.09.22-cp32-none-win32.whl.

File metadata

File hashes

Hashes for regex-2016.09.22-cp32-none-win32.whl
Algorithm Hash digest
SHA256 7514faa71d20b08c3c61b764f75a91945a48717c41875da90a8304f7f0d7d1fd
MD5 fc22b363a101ad66417fe56dee0e76df
BLAKE2b-256 8ca8e1532c4fe9510ce2a1f663fa398035b37f7db4ad9e8cfe71c3d037aafefe

See more details on using hashes here.

File details

Details for the file regex-2016.09.22-cp31-none-win_amd64.whl.

File metadata

File hashes

Hashes for regex-2016.09.22-cp31-none-win_amd64.whl
Algorithm Hash digest
SHA256 7fc74fd83a6ef84d23d43e81253cb0025fd6549e32d7d342d28760af3c58fd8c
MD5 c2d4ba67d6df2fad62df1c3d3ca036f8
BLAKE2b-256 aa8c6513e4626a1091b28efc20b96a2beabcc57c51aad04115cc60260bebc8fc

See more details on using hashes here.

File details

Details for the file regex-2016.09.22-cp31-none-win32.whl.

File metadata

File hashes

Hashes for regex-2016.09.22-cp31-none-win32.whl
Algorithm Hash digest
SHA256 f08cc26f032e1ef76e0afb126abe066f08b6be72bb647b038e5edad8a8d8cf6d
MD5 a0bece0b95713ad086ea75abc2a2d5d4
BLAKE2b-256 dbed06342759af35e32972b47b698429f5900db885c8ce78e71c615d8ea3b611

See more details on using hashes here.

File details

Details for the file regex-2016.09.22-cp27-none-win_amd64.whl.

File metadata

File hashes

Hashes for regex-2016.09.22-cp27-none-win_amd64.whl
Algorithm Hash digest
SHA256 461b9dbbe60917b4eb9cf11a90955b597710f799922bc1753a14c13b788e6fdf
MD5 c66d0ee7d3fb1c0260e6276875e657fa
BLAKE2b-256 07ec880b8309fffdd49637ee71a6aaa937c6f10e30a23efda639bfd1bba9a6cc

See more details on using hashes here.

File details

Details for the file regex-2016.09.22-cp27-none-win32.whl.

File metadata

File hashes

Hashes for regex-2016.09.22-cp27-none-win32.whl
Algorithm Hash digest
SHA256 82bc02316d5ee1dbb141e6b3bfc61da758478ab883783ac69cbe1c6b0654cf9d
MD5 dad910c0e2ea7bdab7becb88e25ac136
BLAKE2b-256 7c3b571e6ad34bb5ef45c5cd69cf0d71207af2bc83678ac332d27c12e5c73187

See more details on using hashes here.

File details

Details for the file regex-2016.09.22-cp26-none-win_amd64.whl.

File metadata

File hashes

Hashes for regex-2016.09.22-cp26-none-win_amd64.whl
Algorithm Hash digest
SHA256 561c843730d6e920903261f75462202fcaa60b264c9b9294185466fed363572b
MD5 18b15f4d1726fa14a437d63338cfcdf4
BLAKE2b-256 52c098c81e05ccc84568a323859b00733a5f87dbf471accdfd1bda3b8026a71f

See more details on using hashes here.

File details

Details for the file regex-2016.09.22-cp26-none-win32.whl.

File metadata

File hashes

Hashes for regex-2016.09.22-cp26-none-win32.whl
Algorithm Hash digest
SHA256 7c3cf5b1c83527e8bbf9d59d74e16e4b5eb0bc2662341abaea19fccfd17ed1ac
MD5 53af86cc3db2a59a11c1d6aa4a35d3b1
BLAKE2b-256 1c3c94375a6fb8a3cfc520c1c42efa24343af4738de1c30494c82bc3085cd104

See more details on using hashes here.

File details

Details for the file regex-2016.09.22-cp25-none-win_amd64.whl.

File metadata

File hashes

Hashes for regex-2016.09.22-cp25-none-win_amd64.whl
Algorithm Hash digest
SHA256 2b47ad9f62802338fad426fc65e5628c281582f4e87b3d39b35349d235f02be2
MD5 1c8b93d2ab0a92e4a15bc12148b23aab
BLAKE2b-256 d295e9c729b4f681154a7b191ddc91dc1ad1e9310ef158d4e3354477301ac55c

See more details on using hashes here.

File details

Details for the file regex-2016.09.22-cp25-none-win32.whl.

File metadata

File hashes

Hashes for regex-2016.09.22-cp25-none-win32.whl
Algorithm Hash digest
SHA256 43c41ac713b34f6c5cf787d1c0a44ca2b09a90060d18d1f541a065bce0914161
MD5 4a640f3727d600c0edfc9bc0b301e7f6
BLAKE2b-256 d773e4c52574467d4d0373b8dff2e9203863e4dd985c0d196eecf83ba1e7f048

See more details on using hashes here.

Supported by

AWS Cloud computing and Security Sponsor Datadog Monitoring Fastly CDN Google Download Analytics Pingdom Monitoring Sentry Error logging StatusPage Status page