139

I want to write a simple regular expression to check if in given string exist any special character. My regex works but I don't know why it also includes all numbers, so when I put some number it returns an error.

My code:

//pattern to find if there is any special character in string
Pattern regex = Pattern.compile("[$&+,:;=?@#|'<>.-^*()%!]");
//matcher to find if there is any special character in string
Matcher matcher = regex.matcher(searchQuery.getSearchFor());

if(matcher.find())
{
    errors.rejectValue("searchFor", "wrong_pattern.SearchQuery.searchForSpecialCharacters","Special characters are not allowed!");
}
5
  • 4
    the dash in [] should be escaped, it has special meaning there.
    – MightyPork
    Aug 5, 2013 at 12:21
  • 5
    Exactly. It would be better to define all "non-special" charactes and make that negative. Aug 5, 2013 at 12:22
  • yes maybe it would be wiser to assert the use of only those characters you want to allow.
    – d'alar'cop
    Aug 5, 2013 at 12:23
  • Can you please provide the solution String.replace("\"", "&quot;") Mar 6, 2019 at 15:36
  • To easily do live tests of your regex patterns, I would suggest this very useful tool : regexr.com
    – Grégory C
    Dec 3, 2020 at 13:41

26 Answers 26

282

Please don't do that... little Unicode BABY ANGELs like this one 👼 are dying! ◕◡◕ (← these are not images) (nor is the arrow!)

And you are killing 20 years of DOS :-) (the last smiley is called WHITE SMILING FACE... Now it's at 263A... But in ancient times it was ALT-1)

and his friend

BLACK SMILING FACE... Now it's at 263B... But in ancient times it was ALT-2

Try a negative match:

Pattern regex = Pattern.compile("[^A-Za-z0-9]");

(this will ok only A-Z "standard" letters and "standard" 0-9 digits.)

8
  • 2
    @AbdullahShoaib Clearly not :) You'll need to do a full list of what you consider "special" and/or what you consider "good".
    – xanatos
    Mar 9, 2015 at 9:58
  • 5
    @AbrahamMurcianoBenzadon: The decimal digits, the upper case roman letters, and the lower case roman letters occupy three disjoint ranges of character code space. Jun 25, 2017 at 17:31
  • 1
    @AbrahamMurcianoBenzadon You can see what James wrote in the handy screenshot of Character Map posted by Sina in another response: your regex would accept :;<=>?@[]^_` (other than 0-9, a-z, A-Z)
    – xanatos
    Jun 26, 2017 at 6:15
  • 2
    Lets assume that we use [A-Za-z0-9] , but if we need to take care about Cyrillic or a few more alphabets, than how to do the regex? Oct 18, 2018 at 15:14
  • 5
    there are more languages than English ...
    – PeiSong
    Dec 15, 2021 at 1:51
52

You have a dash in the middle of the character class, which will mean a character range. Put the dash at the end of the class like so:

[$&+,:;=?@#|'<>.^*()%!-]
2
  • Can you please provide the solution String.replace("\"", "&quot;"); Mar 6, 2019 at 15:36
  • @LovaChittumuri Please state your problem clearly. What are you trying to achieve, input, and desired output.
    – Jerry
    Mar 6, 2019 at 16:17
34

That's because your pattern contains a .-^ which is all characters between and including . and ^, which included digits and several other characters as shown below:

enter image description here

If by special characters, you mean punctuation and symbols use:

[\p{P}\p{S}]

which contains all unicode punctuation and symbols.

32

SInce you don't have white-space and underscore in your character class I think following regex will be better for you:

Pattern regex = Pattern.compile("[^\\w\\s]");

Which means match everything other than [A-Za-z0-9\s_]

Unicode version:

Pattern regex = Pattern.compile("[^\\p{L}\\d\\s_]");
0
18

For people (like me) looking for an answer for special characters like Ä etc. just use this pattern:

  • Only text (or a space): "[A-Za-zÀ-ȕ ]"

  • Text and numbers: "[A-Za-zÀ-ȕ0-9 ]"

  • Text, numbers and some special chars: "[A-Za-zÀ-ȕ0-9(),-_., ]"

Regex just starts at the ascii index and checks if a character of the string is in within both indexes [startindex-endindex].

So you can add any range.

Eventually you can play around with a handy tool: https://regexr.com/

Good luck;)

1
  • Just the stuff I looked for. Thanks for your explanation.
    – azurecorn
    Aug 9, 2022 at 22:15
16

Use this to catch the common special characters excluding .-_.

/[!"`'#%&,:;<>=@{}~\$\(\)\*\+\/\\\?\[\]\^\|]+/

If you want to include .-_ as well, then use this:

/[-._!"`'#%&,:;<>=@{}~\$\(\)\*\+\/\\\?\[\]\^\|]+/

If you want to filter strings that are URL friendly and do not contain any special characters or spaces, then use this:

/^[^ !"`'#%&,:;<>=@{}~\$\(\)\*\+\/\\\?\[\]\^\|]+$/

When you use patterns like /[^A-Za-z0-9]/, then you will start catching special alphabets like those of other languages and some European accented alphabets (like é, í ).

14

Shout out to Mohamed Yusuff 's solution!

We can match all 32 special characters using range.

[!-\/:-@[-`{-~]

1st Group

[!-\/]

  • Match ASCII code from 33 to 47:
  • !"#$%&'()*+,-./

-- 15 out of 32 characters matched

2nd Group

[:-@]

  • Match ASCII code from 58 to 64:
  • :;<=>?@

-- 7 out of 32 characters matched

3rd Group

[[-`]

  • Match ASCII code from 91 to 96:
  • [\]^_`

-- 6 out of 32 characters matched

4th Group

[{-~]

  • Match ASCII code from 123 to 126:
  • {|}~

-- 4 out of 32 characters matched

In total matched back all 32 chars (15+7+6+4)

Reference

Special Character table_Arranged

Extended ASCII table

10

I have defined one pattern to look for any of the ASCII Special Characters ranging between 032 to 126 except the alpha-numeric. You may use something like the one below:

To find any Special Character:

[ -\/:-@\[-\`{-~]

To find minimum of 1 and maximum of any count:

(?=.*[ -\/:-@\[-\`{-~]{1,})

These patterns have Special Characters ranging between 032 to 047, 058 to 064, 091 to 096, and 123 to 126.

8

Here is my regex variant of a special character:

String regExp = "^[^<>{}\"/|;:.,~!?@#$%^=&*\\]\\\\()\\[¿§«»ω⊙¤°℃℉€¥£¢¡®©0-9_+]*$";

(Java code)

0
6

Use this regular expression pattern ("^[a-zA-Z0-9]*$") .It validates alphanumeric string excluding the special characters

5

If you only rely on ASCII characters, you can rely on using the hex ranges on the ASCII table. Here is a regex that will grab all special characters in the range of 33-47, 58-64, 91-96, 123-126

[\x21-\x2F\x3A-\x40\x5B-\x60\x7B-\x7E]

However you can think of special characters as not normal characters. If we take that approach, you can simply do this

^[A-Za-z0-9\s]+

Hower this will not catch _ ^ and probably others.

4
  • I finally used (?i)^([[a-z][^a-z0-9\\s\\(\\)\\[\\]\\{\\}\\\\^\\$\\|\\?\\*\\+\\.\\<\\>\\-\\=\\!\\_]]*)$ to match any character.
    – cdaiga
    Feb 17, 2016 at 11:25
  • 2
    Never use [A-z] in a regex. It matches all uppercase and lowercase ASCII letters as you would expect. but it also matches several punctuation characters whose code points lie between Z and a. Use [A-Za-z] instead, or [a-z] in case-insensitive mode.
    – Alan Moore
    Feb 17, 2016 at 18:37
  • @AlanMoore, good to know! I'll make the change to the answer. Feb 17, 2016 at 18:39
  • how about '.' dot character . It supporsed to match any character except new line. In python re.DOTALL matches all including newline. Check out the regular expression faq in the python tutorial docs.python.org/2/howto/regex.html
    – Dr Deo
    Sep 6, 2018 at 15:01
4

Try:

(?i)^([[a-z][^a-z0-9\\s\\(\\)\\[\\]\\{\\}\\\\^\\$\\|\\?\\*\\+\\.\\<\\>\\-\\=\\!\\_]]*)$

(?i)^(A)$: indicates that the regular expression A is case insensitive.

[a-z]: represents any alphabetic character from a to z.

[^a-z0-9\\s\\(\\)\\[\\]\\{\\}\\\\^\\$\\|\\?\\*\\+\\.\\<\\>\\-\\=\\!\\_]: represents any alphabetic character except a to z, digits, and special characters i.e. accented characters.

[[a-z][^a-z0-9\\s\\(\\)\\[\\]\\{\\}\\\\^\\$\\|\\?\\*\\+\\.\\<\\>\\-\\=\\!\\_]]: represents any alphabetic(accented or unaccented) character only characters.

*: one or more occurrence of the regex that precedes it.

2
  • 2
    Inside a character class, none of those characters need to be escaped except ` and -`. Many of them never need to be escaped at all. "Better safe than sorry" is a fine philosophy, but readability is important, too.
    – Alan Moore
    Feb 17, 2016 at 18:46
  • @AlanMoore (If you're the comic book author, extra credit), the "-" I've found can be left unescaped if left as the trailing character. [a-z_=-] matches a-z, _, =, or -. I place readability above all else in anything of the form "regex", but yeah, using the shortcuts can lead to woes eventually.
    – alife
    Sep 4, 2022 at 19:35
3

Try using this for the same things - StringUtils.isAlphanumeric(value)

1
  • space/blank is also a special char if you use this method. Better to replace the space and tabs chars before calling this method. Mar 21, 2018 at 1:14
3

We can achieve this using Pattern and Matcher as follows:

Pattern pattern = Pattern.compile("[^A-Za-z0-9 ]");
Matcher matcher = pattern.matcher(trString);
boolean hasSpecialChars = matcher.find();
3

Here is my regular expression, that I used for removing all the special characters from any string :

String regex = ("[ \\\\s@  [\\\"]\\\\[\\\\]\\\\\\\0-9|^{#%'*/<()>}:`;,!& .?_$+-]+")
1
  • 1
    Perfectly worked for me but small change is that to escape '\' (backslash) we should use "\\\\\\\\" Jul 9, 2020 at 8:35
3

Please use this.. it is simplest.

\p{Punct} Punctuation: One of !"#$%&'()*+,-./:;<=>?@[]^_`{|}~

https://docs.oracle.com/javase/7/docs/api/java/util/regex/Pattern.html

    StringBuilder builder = new StringBuilder(checkstring);
    String regex = "\\p{Punct}"; //Special character : `~!@#$%^&*()-_+=\|}{]["';:/?.,><
    //change your all special characters to "" 
    Pattern  pattern = Pattern.compile(regex);
    Matcher matcher = pattern.matcher(builder.toString());
    checkstring=matcher.replaceAll("");
1
2

You can use a negative match:

Pattern regex = Pattern.compile("([a-zA-Z0-9])*"); (For zero or more characters)

or

Pattern regex = Pattern.compile("([a-zA-Z0-9])+"); (For one or more characters)

1
  • 1
    Question is not about allowing only roman numerals and english alphabets, what if user wanted to except japanese text, your solution is not going to work.
    – mightyWOZ
    Jan 8, 2020 at 6:19
1

Try this. It works on C# it should work on java also. If you want to exclude spaces just add \s in there @"[^\p{L}\p{Nd}]+"

1

To find any number of special characters use the following regex pattern: ([^(A-Za-z0-9 )]{1,})

[^(A-Za-z0-9 )] this means any character except the alphabets, numbers, and space. {1,0} this means one or more characters of the previous block.

2
  • 1
    It won't find ( and ). Oct 19, 2020 at 12:45
  • The ( and ) are problematic here. [^A-Za-z_=], for example, allow for anything other than A-Z or a-z or _ or = to trigger. [^[:alnum:][:punct:]] similarly triggers on any character not alphanumeric nor punctuation.
    – alife
    Sep 4, 2022 at 19:31
1

None of the answers helped for me. Found this regex /^[^a-zA-Z0-9]+$/ from this article and it worked!

0

(^\W$)

^ - start of the string, \W - match any non-word character [^a-zA-Z0-9_], $ - end of the string

0

A small addition to include all special characters like: ū and Ā:

An example:

Pattern regex = Pattern.compile("[A-Za-zÀ-ÖØ-öø-ū]");
0

You have to escape some symbols

/([!`\-\_.\"\'#%,:;<>=@{}~\$\(\)\*\+\/\\\?\[\]\^\|]+)/

OR

/([\!\"\#\$\%\&\'\(\)\*\+\,\-\.\/\:\;\<\>\=\?\@\[\]\{\}\\\\\^\_\`\~]+$)/
0

To match the common Ascii special characters you can simply use this [!-\/].

So, it will be Pattern regex = Pattern.compile("[!-\/]");

0

what about [ -~] This will match all ASCII characters from the space to tilde

-1

I use reg below for find special character in string

var reg = new RegExp("[`~!@#$%^&*()\\]\\[+={}/|:;\"\'<>,.?-_]");

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