132

While trying to learn a little more about regular expressions, a tutorial suggested that you can use the \b to match a word boundary. However, the following snippet in the Python interpreter does not work as expected:

>>> x = 'one two three'
>>> y = re.search("\btwo\b", x)

It should have been a match object if anything was matched, but it is None.

Is the \b expression not supported in Python or am I using it wrong?

4
  • 38
    This will work: re.search(r"\btwo\b", x)
    – Bolo
    Oct 22, 2010 at 8:39
  • 5
    Why aren't you using "raw" strings? r"\btwo\b"?
    – S.Lott
    Oct 22, 2010 at 10:56
  • 4
    People are often confused about \b.
    – tchrist
    Nov 18, 2010 at 13:55
  • 2
    Yes Python does, you just need raw-string r'\b' so the character is escaped. (or else double-escape it \\b, which is yukky)
    – smci
    Jun 9, 2020 at 9:35

5 Answers 5

117

You should be using raw strings in your code

>>> x = 'one two three'
>>> y = re.search(r"\btwo\b", x)
>>> y
<_sre.SRE_Match object at 0x100418a58>
>>> 

Also, why don't you try

word = 'two'
re.compile(r'\b%s\b' % word, re.I)

Output:

>>> word = 'two'
>>> k = re.compile(r'\b%s\b' % word, re.I)
>>> x = 'one two three'
>>> y = k.search( x)
>>> y
<_sre.SRE_Match object at 0x100418850>
7
  • Interesting, thanks for the working example. Do you have any insight as to why the method I chose doesn't work? The two approach should be the same, except that in your approach you are only compiling once.
    – D.C.
    Oct 22, 2010 at 8:42
  • 1
    @darren: See my last example which just improves on what you did. I provided raw strings to search.
    – pyfunc
    Oct 22, 2010 at 8:44
  • 1
    ahh after yours and Bolo's suggestion, it was because I wasn't using a raw string. Thanks!
    – D.C.
    Oct 22, 2010 at 8:46
  • 10
    -1: Backwards. The raw strings should be first. The other business of building an re expression with string % substitution is a bad tangent, irrelevant to this particular question.
    – S.Lott
    Oct 22, 2010 at 10:57
  • 2
    Bad answer. The code works, but there's no explanation whatsoever.
    – Aran-Fey
    Jun 11, 2018 at 13:08
108

This will work: re.search(r"\btwo\b", x)

When you write "\b" in Python, it is a single character: "\x08". Either escape the backslash like this:

"\\b"

or write a raw string like this:

r"\b"
4
  • 4
    This really helped me... I was struggling with a pyspark rlike regular expression and couldn't figure out why the \b (word boundary) wasn't working. Thanks
    – jb1t
    Jun 17, 2016 at 23:09
  • Thanks, I got caught by this too. But why does \d work fine without raw string but \b doesn't? Dec 17, 2020 at 21:45
  • The double backslash observation really got me out of a hole. Thank you. Nov 14, 2021 at 14:09
  • @QuinnComendant because \d is not an escape sequence, see table at docs.python.org/3/reference/… Feb 10, 2022 at 12:28
25

Just to explicitly explain why re.search("\btwo\b", x) doesn't work, it's because \b in a Python string is shorthand for a backspace character.

print("foo\bbar")
fobar

So the pattern "\btwo\b" is looking for a backspace, followed by two, followed by another backspace, which the string you're searching in (x = 'one two three') doesn't have.

To allow re.search (or compile) to interpret the sequence \b as a word boundary, either escape the backslashes ("\\btwo\\b") or use a raw string to create your pattern (r"\btwo\b").

10

Python documentation

https://docs.python.org/2/library/re.html#regular-expression-syntax

\b

Matches the empty string, but only at the beginning or end of a word. A word is defined as a sequence of alphanumeric or underscore characters, so the end of a word is indicated by whitespace or a non-alphanumeric, non-underscore character. Note that formally, \b is defined as the boundary between a \w and a \W character (or vice versa), or between \w and the beginning/end of the string, so the precise set of characters deemed to be alphanumeric depends on the values of the UNICODE and LOCALE flags. For example, r'\bfoo\b' matches 'foo', 'foo.', '(foo)', 'bar foo baz' but not 'foobar' or 'foo3'. Inside a character range, \b represents the backspace character, for compatibility with Python’s string literals.

-1

just a note, for dynamic variable this will not work

x = 'one two three'
dy = "two"
y = re.search(r"\b" + dy + "\b", x)
print(y) # None

use r"\b" on left and right

x = 'one two three'
dy = "two"
y = re.search(r"\b" + dy + r"\b", x)
print(y) # <re.Match object; span=(4, 7), match='two'>

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