155

I have a regex expression that I'm using to find all the words in a given block of content, case insensitive, that are contained in a glossary stored in a database. Here's my pattern:

/($word)/i

The problem is, if I use /(Foo)/i then words like Food get matched. There needs to be whitespace or a word boundary on both sides of the word.

How can I modify my expression to match only the word Foo when it is a word at the beginning, middle, or end of a sentence?

1
  • 3
    Most of the answers do not address hyphenated words. Commented Dec 13, 2022 at 12:50

8 Answers 8

210

Use word boundaries:

/\b($word)\b/i

Or if you're searching for "S.P.E.C.T.R.E." like in Sinan Ünür's example:

/(?:\W|^)(\Q$word\E)(?:\W|$)/i
8
  • 1
    I was just typing up the long-hand version of this answer when you posted. :) Commented Nov 17, 2009 at 19:52
  • @RichardSimoes \b(<|>=)\b doesn't match >=
    – alhelal
    Commented Jan 21, 2018 at 1:40
  • @RichardSimoes and \b[-|+][0-9]+\b match +10 in 43E+10. Both I don't want.
    – alhelal
    Commented Jan 21, 2018 at 1:47
  • 1
    what if i want to search word which is not appended or does not contained in any other word. then this logic won't work
    – Prasanna
    Commented Nov 14, 2018 at 8:49
  • How would someone get the mathematical comparison operators >= and <=?
    – AntonSack
    Commented Jun 21, 2019 at 7:30
88

To match any whole word you would use the pattern (\w+)

Assuming you are using PCRE or something similar:

enter image description here

Above screenshot taken from this live example: https://regex101.com/r/FGheKd/1

Matching any whole word on the commandline with (\w+)

I'll be using the phpsh interactive shell on Ubuntu 12.10 to demonstrate the PCRE regex engine through the method known as preg_match

Start phpsh, put some content into a variable, match on word.

el@apollo:~/foo$ phpsh

php> $content1 = 'badger'
php> $content2 = '1234'
php> $content3 = '$%^&'

php> echo preg_match('(\w+)', $content1);
1

php> echo preg_match('(\w+)', $content2);
1

php> echo preg_match('(\w+)', $content3);
0

The preg_match method used the PCRE engine within the PHP language to analyze variables: $content1, $content2 and $content3 with the (\w)+ pattern.

$content1 and $content2 contain at least one word, $content3 does not.

Match a number of literal words on the commandline with (dart|fart)

el@apollo:~/foo$ phpsh

php> $gun1 = 'dart gun';
php> $gun2 = 'fart gun';
php> $gun3 = 'farty gun';
php> $gun4 = 'unicorn gun';

php> echo preg_match('(dart|fart)', $gun1);
1

php> echo preg_match('(dart|fart)', $gun2);
1

php> echo preg_match('(dart|fart)', $gun3);
1

php> echo preg_match('(dart|fart)', $gun4);
0

variables gun1 and gun2 contain the string dart or fart. gun4 does not. However it may be a problem that looking for word fart matches farty. To fix this, enforce word boundaries in regex.

Match literal words on the commandline with word boundaries.

el@apollo:~/foo$ phpsh

php> $gun1 = 'dart gun';
php> $gun2 = 'fart gun';
php> $gun3 = 'farty gun';
php> $gun4 = 'unicorn gun';

php> echo preg_match('(\bdart\b|\bfart\b)', $gun1);
1

php> echo preg_match('(\bdart\b|\bfart\b)', $gun2);
1

php> echo preg_match('(\bdart\b|\bfart\b)', $gun3);
0

php> echo preg_match('(\bdart\b|\bfart\b)', $gun4);
0

So it's the same as the previous example except that the word fart with a \b word boundary does not exist in the content: farty.

1
  • a.m., p.m. ain't words?
    – minion
    Commented Jun 27, 2018 at 17:28
11

Using \b can yield surprising results. You would be better off figuring out what separates a word from its definition and incorporating that information into your pattern.

#!/usr/bin/perl

use strict; use warnings;

use re 'debug';

my $str = 'S.P.E.C.T.R.E. (Special Executive for Counter-intelligence,
Terrorism, Revenge and Extortion) is a fictional global terrorist
organisation';

my $word = 'S.P.E.C.T.R.E.';

if ( $str =~ /\b(\Q$word\E)\b/ ) {
    print $1, "\n";
}

Output:

Compiling REx "\b(S\.P\.E\.C\.T\.R\.E\.)\b"
Final program:
   1: BOUND (2)
   2: OPEN1 (4)
   4:   EXACT  (9)
   9: CLOSE1 (11)
  11: BOUND (12)
  12: END (0)
anchored "S.P.E.C.T.R.E." at 0 (checking anchored) stclass BOUND minlen 14
Guessing start of match in sv for REx "\b(S\.P\.E\.C\.T\.R\.E\.)\b" against "S.P
.E.C.T.R.E. (Special Executive for Counter-intelligence,"...
Found anchored substr "S.P.E.C.T.R.E." at offset 0...
start_shift: 0 check_at: 0 s: 0 endpos: 1
Does not contradict STCLASS...
Guessed: match at offset 0
Matching REx "\b(S\.P\.E\.C\.T\.R\.E\.)\b" against "S.P.E.C.T.R.E. (Special Exec
utive for Counter-intelligence,"...
   0           |  1:BOUND(2)
   0           |  2:OPEN1(4)
   0           |  4:EXACT (9)
  14      |  9:CLOSE1(11)
  14      | 11:BOUND(12)
                                  failed...
Match failed
Freeing REx: "\b(S\.P\.E\.C\.T\.R\.E\.)\b"
1
  • 1
    I think a word will typically be a \w word, but interesting point. Commented Nov 17, 2009 at 20:09
6

For Those who want to validate an Enum in their code you can following the guide

In Regex World you can use ^ for starting a string and $ to end it. Using them in combination with | could be what you want :

^(Male)$|^(Female)$

It will return true only for Male or Female case.

2
  • 1
    ^ and $ match the beginning (respectively the end) of a line, therefore your example would match only if those are the only words in the line.
    – gented
    Commented Aug 21, 2020 at 10:43
  • and this exactly what i want when i want to validate an enum! what is the problem? Commented Aug 21, 2020 at 14:26
3

If you are doing it in Notepad++

[\w]+ 

Would give you the entire word, and you can add parenthesis to get it as a group. Example: conv1 = Conv2D(64, (3, 3), activation=LeakyReLU(alpha=a), padding='valid', kernel_initializer='he_normal')(inputs). I would like to move LeakyReLU into its own line as a comment, and replace the current activation. In notepad++ this can be done using the follow find command:

([\w]+)( = .+)(LeakyReLU.alpha=a.)(.+)

and the replace command becomes:

\1\2'relu'\4 \n    # \1 = LeakyReLU\(alpha=a\)\(\1\)

The spaces is to keep the right formatting in my code. :)

2

use word boundaries \b,

The following (using four escapes) works in my environment: Mac, safari Version 10.0.3 (12602.4.8)

var myReg = new RegExp(‘\\\\b’+ variable + ‘\\\\b’, ‘g’)
1

/(\s|^)TheWord(\s|$)/

console.log(/(\s|^)TheWord(\s|$)/i.test(' TheWord '));
console.log(/(\s|^)TheWord(\s|$)/i.test(' TheWord'));
console.log(/(\s|^)TheWord(\s|$)/i.test('TheWord'));
console.log(/(\s|^)TheWord(\s|$)/i.test(' this is TheWord '));
console.log(/(\s|^)TheWord(\s|$)/i.test(' this is TheWord'));
console.log(/(\s|^)TheWord(\s|$)/i.test('this is TheWord'));
console.log(/(\s|^)TheWord(\s|$)/i.test(' anything '));
console.log(/(\s|^)TheWord(\s|$)/i.test(' anything'));
console.log(/(\s|^)TheWord(\s|$)/i.test('anything'));
console.log(/(\s|^)TheWord(\s|$)/i.test(' this is anything '));
console.log(/(\s|^)TheWord(\s|$)/i.test(' this is anything'));
console.log(/(\s|^)TheWord(\s|$)/i.test('this is anything'));

0

Get all "words" in a string

/([^\s]+)/g

Basically ^/s means break on spaces (or match groups of non-spaces)
Don't forget the g for Greedy

Try it:

"Not the answer you're looking for? Browse other questions tagged regex word-boundary or ask your own question.".match(/([^\s]+)/g)

→ (17) ['Not', 'the', 'answer', "you're", 'looking', 'for?', 'Browse', 'other', 'questions', 'tagged', 'regex', 'word-boundary', 'or', 'ask', 'your', 'own', 'question.']

2
  • If you disagree, explain and give a better solution
    – gdibble
    Commented Mar 9, 2022 at 16:31
  • 1
    Punctuation isn't a word, obliviously! Commented Dec 13, 2022 at 12:59

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