I have string [FBWS-1] comes first than [FBWS-2]
In this string, I want to find all occurance of [FBWS-NUMBER]
I tried this :
var term = "[FBWS-1] comes first than [FBWS-2]";
alert(/^([[A-Z]-[0-9]])$/.test(term));
I want to get all the NUMBERS where [FBWS-NUMBER] string is matched.
But no success. I m new to regular expressions.
Can anyone help me please.
Note that ^([[A-Z]-[0-9]])$ matches start of a string (^), a [ or an uppercase ASCII letter (with [[A-Z]), -, an ASCII digit and a ] char at the end of the string. So,basically, strings like [-2] or Z-3].
You may use
/\[[A-Z]+-[0-9]+]/g
See the regex demo.
NOTE If you need to "hardcode" FBWS (to only match values like FBWS-123 and not ABC-3456), use it instead of [A-Z]+ in the pattern, /\[FBWS-[0-9]+]/g.
Details
\[ - a [ char
[A-Z]+ - one or more (due to + quantifier) uppercase ASCII letters
- - a hyphen
[0-9]+ - one or more (due to + quantifier) ASCII digits
] - a ] char.
The /g modifier used with String#match() returns all found matches.
JS demo:
var term = "[FBWS-1] comes first than [FBWS-2]";
console.log(term.match(/\[[A-Z]+-[0-9]+]/g));
You can use:
[\w+-\d]
var term = "[FBWS-1] comes first than [FBWS-2]";
alert(/[\w+-\d]/.test(term));
There are several reasons why your existing regex doesn't work.
You trying to match the beginning and ending of your string when you
actually want everything in between, don't use ^$
Your only trying to match one alpha character [A-Z] you need to make this greedy using the +
You can shorten [A-Z] and [0-9] by using the shorthands \w and \d. The brackets are generally unnecessary.
Note your code only returns a true false value (your using test) ATM it's unclear if this is what you want. You may want to use match with a global modifier (//g) instead of test to get a collection.
Here is an example using string.match(reg) to get all matches strings:
var term = "[FBWS-1] comes first than [FBWS-2]";
var reg1 = /\[[A-Z]+-[0-9]\]/g;
var reg2 = /\[FBWS-[0-9]\]/g;
var arr1 = term.match(reg1);
var arr2 = term.match(reg2)
console.log(arr1);
console.log(arr2);
Your regular expression /^([[A-Z]-[0-9]])$/ is wrong.
Give this regex a try, /\[FBWS-\d\]/g
remove the g if you only want to find 1 match, as g will find all similar matches
Edit: Someone mentioned that you want ["any combination"-"number"], hence if that's what you're looking for then this should work /\[[A-Z]+-\d\]/
I am building search and I am going to use javascript autocomplete with it. I am from Finland (finnish language) so I have to deal with some special characters like ä, ö and å
When user types text in to the search input field I try to match the text to data.
Here is simple example that is not working correctly if user types for example "ää". Same thing with "äl"
var title = "this is simple string with finnish word tämä on ääkköstesti älkää ihmetelkö";
// Does not work
var searchterm = "äl";
// does not work
//var searchterm = "ää";
// Works
//var searchterm = "wi";
if ( new RegExp("\\b"+searchterm, "gi").test(title) ) {
$("#result").html("Match: ("+searchterm+"): "+title);
} else {
$("#result").html("nothing found with term: "+searchterm);
}
http://jsfiddle.net/7TsxB/
So how can I get those ä,ö and å characters to work with javascript regex?
I think I should use unicode codes but how should I do that? Codes for those characters are:
[\u00C4,\u00E4,\u00C5,\u00E5,\u00D6,\u00F6]
=> äÄåÅöÖ
There appears to be a problem with Regex and the word boundary \b matching the beginning of a string with a starting character out of the normal 256 byte range.
Instead of using \b, try using (?:^|\\s)
var title = "this is simple string with finnish word tämä on ääkköstesti älkää ihmetelkö";
// Does not work
var searchterm = "äl";
// does not work
//var searchterm = "ää";
// Works
//var searchterm = "wi";
if ( new RegExp("(?:^|\\s)"+searchterm, "gi").test(title) ) {
$("#result").html("Match: ("+searchterm+"): "+title);
} else {
$("#result").html("nothing found with term: "+searchterm);
}
Breakdown:
(?: parenthesis () form a capture group in Regex. Parenthesis started with a question mark and colon ?: form a non-capturing group. They just group the terms together
^ the caret symbol matches the beginning of a string
| the bar is the "or" operator.
\s matches whitespace (appears as \\s in the string because we have to escape the backslash)
) closes the group
So instead of using \b, which matches word boundaries and doesn't work for unicode characters, we use a non-capturing group which matches the beginning of a string OR whitespace.
The \b character class in JavaScript RegEx is really only useful with simple ASCII encoding. \b is a shortcut code for the boundary between \w and \W sets or \w and the beginning or end of the string. These character sets only take into account ASCII "word" characters, where \w is equal to [a-zA-Z0-9_] and \W is the negation of that class.
This makes the RegEx character classes largely useless for dealing with any real language.
\s should work for what you want to do, provided that search terms are only delimited by whitespace.
this question is old, but I think I found a better solution for boundary in regular expressions with unicode letters.
Using XRegExp library you can implement a valid \b boundary expanding this
XRegExp('(?=^|$|[^\\p{L}])')
the result is a 4000+ char long, but it seems to work quite performing.
Some explanation: (?= ) is a zero-length lookahead that looks for a begin or end boundary or a non-letter unicode character. The most important think is the lookahead, because the \b doesn't capture anything: it is simply true or false.
\b is a shortcut for the transition between a letter and a non-letter character, or vice-versa.
Updating and improving on max_masseti's answer:
With the introduction of the /u modifier for RegExs in ES2018, you can now use \p{L} to represent any unicode letter, and \P{L} (notice the uppercase P) to represent anything but.
EDIT: Previous version was incomplete.
As such:
const text = 'A Fé, o Império, e as terras viciosas';
text.split(/(?<=\p{L})(?=\P{L})|(?<=\P{L})(?=\p{L})/);
// ['A', ' Fé', ',', ' o', ' Império', ',', ' e', ' as', ' terras', ' viciosas']
We're using a lookbehind (?<=...) to find a letter and a lookahead (?=...) to find a non-letter, or vice versa.
I would recommend you to use XRegExp when you have to work with a specific set of characters from Unicode, the author of this library mapped all kind of regional sets of characters making the work with different languages easier.
Despite the fact the issue seems to be 8 years old, I run into a similar problem (I had to match Cyrillic letters) not so far ago. I spend a whole day on this and could not find any appropriate answer here on StackOverflow. So, to avoid others making lots of effort, I'd like to share my solution.
Yes, \b word boundary works only with Latin letters (Word boundary: \b):
Word boundary \b doesn’t work for non-Latin alphabets
The word boundary test \b checks that there should be \w on the one side from the position and "not \w" – on the other side.
But \w means a Latin letter a-z (or a digit or an underscore), so the test doesn’t work for other characters, e.g. Cyrillic letters or hieroglyphs.
Yes, JavaScript RegExp implementation hardly supports UTF-8 encoding.
So, I tried implementing own word boundary feature with the support of non-Latin characters. To make word boundary work just with Cyrillic characters I created such regular expression:
new RegExp(`(?<![\u0400-\u04ff])${cyrillicSearchValue}(?![\u0400-\u04ff])`,'gi')
Where \u0400-\u04ff is a range of Cyrillic characters provided in the table of codes. It is not an ideal solution, however, it works properly in most cases.
To make it work in your case, you just have to pick up an appropriate range of codes from the list of Unicode characters.
To try out my example run the code snippet below.
function getMatchExpression(cyrillicSearchValue) {
return new RegExp(
`(?<![\u0400-\u04ff])${cyrillicSearchValue}(?![\u0400-\u04ff])`,
'gi',
);
}
const sentence = 'Будь-який текст кирилицею, де необхідно знайти слово з контексту';
console.log(sentence.match(getMatchExpression('текст')));
// expected output: ["текст"]
console.log(sentence.match(getMatchExpression('но')));
// expected output: null
I noticed something really weird with \b when using Unicode:
/\bo/.test("pop"); // false (obviously)
/\bä/.test("päp"); // true (what..?)
/\Bo/.test("pop"); // true
/\Bä/.test("päp"); // false (what..?)
It appears that meaning of \b and \B are reversed, but only when used with non-ASCII Unicode? There might be something deeper going on here, but I'm not sure what it is.
In any case, it seems that the word boundary is the issue, not the Unicode characters themselves. Perhaps you should just replace \b with (^|[\s\\/-_&]), as that seems to work correctly. (Make your list of symbols more comprehensive than mine, though.)
My idea is to search with codes representing the Finnish letters
new RegExp("\\b"+asciiOnly(searchterm), "gi").test(asciiOnly(title))
My original idea was to use plain encodeURI but the % sign seemed to interfere with the regexp.
http://jsfiddle.net/7TsxB/5/
I wrote a crude function using encodeURI to encode every character with code over 128 but removing its % and adding 'QQ' in the beginning. It is not the best marker but I couldn't get non alphanumeric to work.
What you are looking for is the Unicode word boundaries standard:
http://unicode.org/reports/tr29/tr29-9.html#Word_Boundaries
There is a JavaScript implementation here (unciodejs.wordbreak.js)
https://github.com/wikimedia/unicodejs
I had a similar problem, where I was trying to replace all of a particular unicode word with a different unicode word, and I cannot use lookbehind because it's not supported in the JS engine this code will be used in. I ultimately resolved it like this:
const needle = "КАРТОПЛЯ";
const replace = "БАРАБОЛЯ";
const regex = new RegExp(
String.raw`(^|[^\n\p{L}])`
+ needle
+ String.raw`(?=$|\P{L})`,
"gimu",
);
const result = (
'КАРТОПЛЯ сдффКАРТОПЛЯдадф КАРТОПЛЯ КАРТОПЛЯ КАРТОПЛЯ??? !!!КАРТОПЛЯ ;!;!КАРТОПЛЯ/#?#?'
+ '\n\nКАРТОПЛЯ КАРТОПЛЯ - - -КАРТОПЛЯ--'
)
.replace(regex, function (match, ...args) {
return args[0] + replace;
});
console.log(result)
output:
БАРАБОЛЯ сдффКАРТОПЛЯдадф БАРАБОЛЯ БАРАБОЛЯ БАРАБОЛЯ??? !!!БАРАБОЛЯ ;!;!БАРАБОЛЯ/#?#?
БАРАБОЛЯ БАРАБОЛЯ - - -БАРАБОЛЯ--
Breaking it apart
The first regex: (^|[^\n\p{L}])
^| = Start of the line or
[^\n\p{L}] = Any character which is not a letter or a newline
The second regex: (?=$|\P{L})
?= = Lookahead
$| = End of the line or
\P{L} = Any character which is not a letter
The first regex captures the group and is then used via args[0] to put it back into the string during replacement, thereby avoiding a lookbehind. The second regex utilized lookahead.
Note that the second one MUST be a lookahead because if we capture it then overlapping regex matches will not trigger (e.g. КАРТОПЛЯ КАРТОПЛЯ КАРТОПЛЯ would only match on the 1st and 3rd ones).
Trying to find text "myTest":
/(?<![\p{L}\p{N}_])myTest(?![\p{L}\p{N}_])/gu
Similar to NetBeans or Notepad++ form. Trying to find the expression without any letter or number or underscore (like \w characters of word boundary \b) in any unicode characters of letter and number before or after the expression.
I have had a similar problem, but I had to replace an array of terms. All solutions, which I have found did not worked, if two terms were in the text next to each other (because their boundaries overlaped). So I had to use a little modified approach:
var text = "Ještě. že; \"už\" à. Fürs, 'anlässlich' že že že.";
var terms = ["à","anlässlich","Fürs","už","Ještě", "že"];
var replaced = [];
var order = 0;
for (i = 0; i < terms.length; i++) {
terms[i] = "(^\|[ \n\r\t.,;'\"\+!?-])(" + terms[i] + ")([ \n\r\t.,;'\"\+!?-]+\|$)";
}
var re = new RegExp(terms.join("|"), "");
while (true) {
var replacedString = "";
text = text.replace(re, function replacer(match){
var beginning = match.match("^[ \n\r\t.,;'\"\+!?-]+");
if (beginning == null) beginning = "";
var ending = match.match("[ \n\r\t.,;'\"\+!?-]+$");
if (ending == null) ending = "";
replacedString = match.replace(beginning,"");
replacedString = replacedString.replace(ending,"");
replaced.push(replacedString);
return beginning+"{{"+order+"}}"+ending;
});
if (replacedString == "") break;
order += 1;
}
See the code in a fiddle: http://jsfiddle.net/antoninslejska/bvbLpdos/1/
The regular expression is inspired by: http://breakthebit.org/post/3446894238/word-boundaries-in-javascripts-regular
I can't say, that I find the solution elegant...
The correct answer to the question is given by andrefs.
I will only rewrite it more clearly, after putting all required things together.
For ASCII text, you can use \b for matching a word boundary both at the start and the end of a pattern. When using Unicode text, you need to use 2 different patterns for doing the same:
Use (?<=^|\P{L}) for matching the start or a word boundary before the main pattern.
Use (?=\P{L}|$) for matching the end or a word boundary after the main pattern.
Additionally, use (?i) in the beginning of everything, to make all those matchings case-insensitive.
So the resulting answer is: (?i)(?<=^|\P{L})xxx(?=\P{L}|$), where xxx is your main pattern. This would be the equivalent of (?i)\bxxx\b for ASCII text.
For your code to work, you now need to do the following:
Assign to your variable "searchterm", the pattern or words you want to find.
Escape the variable's contents. For example, replace '\' with '\\' and also do the same for any reserved special character of regex, like '\^', '\$', '\/', etc. Check here for a question on how to do this.
Insert the variable's contents to the pattern above, in the place of "xxx", by simply using the string.replace() method.
bad but working:
var text = " аб аб АБ абвг ";
var ttt = "(аб)"
var p = "(^|$|[^A-Za-zА-Я-а-я0-9()])"; // add other word boundary symbols here
var exp = new RegExp(p+ttt+p,"gi");
text = text.replace(exp, "$1($2)$3").replace(exp, "$1($2)$3");
const t1 = performance.now();
console.log(text);
result (without qutes):
" (аб) (аб) (АБ) абвг "
I struggled hard on this. Working with French accented characters, and I managed to find this solution :
const myString = "MyString";
const regex = new RegExp(
"(?:[^À-ú]|^)\\b(" + myString + ")\\b(?:[^À-ú]|$)",
"ig"
);
What id does :
It keeps checking word-boundaries with \b before and after "MyString".
In addition to that, (?:[^À-ú]|^) and (?:[^À-ú]|$) will check if MyString is not surrounded by any accented characters
It will not work with cyrillic but it may be possible to find the range of cirillic charactes and edit [^À-ú] in consequence.
Warning, it captures only the group (MyString) but the total match contains previous and next characters
See example : https://regex101.com/r/5P0ZIe/1
Match examples :
MyString
match : "MyString"
group 1 : "MyString"
Lorem ipsum. MyString dolor sit amet
match : " MyString "
group 1 : "MyString"
(MyString)
match : "(MyString)"
group 1 : "MyString"
BetweenCharactersMyStringIsNotFound
match : Nothing
group 1 : Nothing
éMyStringé
match : Nothing
group 1 : Nothing
ùMyString
match : Nothing
group 1 : Nothing
MyStringÖ
match : Nothing
group 1 : Nothing
I want to accept words and some special characters, so if my regex
does not fully match, let's say I display an error,
var re = /^[[:alnum:]\-_.&\s]+$/;
var string = 'this contains invalid chars like ##';
var valid = string.test(re);
but now I want to "filter" a phrase removing all characters not matching the regex ?
usualy one use replace, but how to list all characters not matching the regex ?
var validString = string.filter(re); // something similar to this
how do I do this ?
regards
Wiktor Stribiżew solution works fine :
regex=/[^a-zA-Z\-_.&\s]+/g;
let s='some bloody-test #rfdsfds';
s = s.replace(/[^\w\s.&-]+/g, '');
console.log(s);
Rajesh solution :
regex=/^[a-zA-Z\-_.&\s]+$/;
let s='some -test #rfdsfds';
s=s.split(' ').filter(x=> regex.test(x));
console.log(s);
JS regex engine does not support POSIX character classes like [:alnum:]. You may use [A-Za-z0-9] instead, but only to match ASCII letters and digits.
Your current regex matches the whole string that contains allowed chars, and it cannot be used to return the chars that are not matched with [^a-zA-Z0-9_.&\s-].
You may remove the unwanted chars with
var s = 'this contains invalid chars like ##';
var res = s.replace(/[^\w\s.&-]+/g, '');
var notallowedchars = s.match(/[^\w\s.&-]+/g);
console.log(res);
console.log(notallowedchars);
The /[^\w\s.&-]+/g pattern matches multiple occurrences (due to /g) of any one or more (due to +) chars other than word chars (digits, letters, _, matched with \w), whitespace (\s), ., & and -.
To match all characters that is not alphanumeric, or one of -_.& move ^ inside group []
var str = 'asd.=!_#$%^&*()564';
console.log(
str.match(/[^a-z0-9\-_.&\s]/gi),
str.replace(/[^a-z0-9\-_.&\s]/gi, '')
);
I have spent the last couple of hours trying to figure out how to match all whitespace (\s) unless followed by AND\s or preceded by \sAND.
I have this so far
\s(?!AND\s)
but it is then matching the space after \sAND, but I don't want that.
Any help would be appreciated.
Often, when you want to split by a single character that appears in specific context, you can replace the approach with a matching one.
I suggest matching all sequences of non-whitespace characters joined with AND enclosed with whitespace ones before and then match any other non-whitespace sequences. Thus, we'll ensure we get an array of necessary substrings:
\S+\sAND\s\S+|\S+
See regex demo
I assume the \sAND\s pattern appears between some non-whitespace characters.
var re = /\S+\sAND\s\S+|\S+/g;
var str = 'split this but don\'t split this AND this';
var res = str.match(re);
document.write(JSON.stringify(res));
As Alan Moore suggests, the alternation can be unrolled into \S+(?:\sAND\s\S+)*:
\S+ - 1 or more non-whitespace characters
(?:\sAND\s\S+)* - 0 or more (thus, it is optional) sequences of...
\s - one whitespace (add + to match 1 or more)
AND - literal AND character sequence
\s - one whitespace (add + to match 1 or more)
\S+ - one or more non-whitespace symbols.
Since JS doesn't support lookbehinds, you can use the following trick:
Match (\sAND\s)|\s
Throw away any match where $1 has a value
Here's a short example which replaces the spaces you want with an underscore:
var str = "split this but don't split this AND this";
str = str.replace(/(\sAND\s)|\s/g, function(m, a) {
return a ? m : "_";
});
document.write(str);
I'm trying to create a validation for a password field which allows only the a-zA-Z0-9 characters and .!##$%^&*()_+-=
I can't seem to get the hang of it.
What's the difference when using regex = /a-zA-Z0-9/g and regex = /[a-zA-Z0-9]/ and which chars from .!##$%^&*()_+-= are needed to be escaped?
What I've tried up to now is:
var regex = /a-zA-Z0-9!##\$%\^\&*\)\(+=._-/g
but with no success
var regex = /^[a-zA-Z0-9!##\$%\^\&*\)\(+=._-]+$/g
Should work
Also may want to have a minimum length i.e. 6 characters
var regex = /^[a-zA-Z0-9!##\$%\^\&*\)\(+=._-]{6,}$/g
a sleaker way to match special chars:
/\W|_/g
\W Matches any character that is not a word character (alphanumeric & underscore).
Underscore is considered a special character so
add boolean to either match a special character or _
What's the difference?
/[a-zA-Z0-9]/ is a character class which matches one character that is inside the class. It consists of three ranges.
/a-zA-Z0-9/ does mean the literal sequence of those 9 characters.
Which chars from .!##$%^&*()_+-= are needed to be escaped?
Inside a character class, only the minus (if not at the end) and the circumflex (if at the beginning). Outside of a charclass, .$^*+() have a special meaning and need to be escaped to match literally.
allows only the a-zA-Z0-9 characters and .!##$%^&*()_+-=
Put them in a character class then, let them repeat and require to match the whole string with them by anchors:
var regex = /^[a-zA-Z0-9!##$%\^&*)(+=._-]*$/
You can be specific by testing for not valid characters. This will return true for anything not alphanumeric and space:
var specials = /[^A-Za-z 0-9]/g;
return specials.test(input.val());
Complete set of special characters:
/[\!\#\#\$\%\^\&\*\)\(\+\=\.\<\>\{\}\[\]\:\;\'\"\|\~\`\_\-]/g
To answer your question:
var regular_expression = /^[A-Za-z0-9\!\#\#\$\%\^\&\*\)\(+\=\._-]+$/g
How about this:-
var regularExpression = /^(?=.*[0-9])(?=.*[!##$%^&*])[a-zA-Z0-9!##$%^&*]{6,}$/;
It will allow a minimum of 6 characters including numbers, alphabets, and special characters
There are some issue with above written Regex.
This works perfectly.
^[a-zA-Z\d\-_.,\s]+$
Only allowed special characters are included here and can be extended after comma.
// Regex for special symbols
var regex_symbols= /[-!$%^&*()_+|~=`{}\[\]:\/;<>?,.##]/;
This regex works well for me to validate password:
/[ !"#$%&'()*+,-./:;<=>?#[\\\]^_`{|}~]/
This list of special characters (including white space and punctuation) was taken from here: https://www.owasp.org/index.php/Password_special_characters. It was changed a bit, cause backslash ('\') and closing bracket (']') had to be escaped for proper work of the regex. That's why two additional backslash characters were added.
Regex for minimum 8 char, one alpha, one numeric and one special char:
/^(?=.*[A-Za-z])(?=.*\d)(?=.*[!##$%^&*])[A-Za-z\d!##$%^&*]{8,}$/
this is the actual regex only match:
/[-!$%^&*()_+|~=`{}[:;<>?,.##\]]/g
You can use this to find and replace any special characters like in Worpress's slug
const regex = /[`~!##$%^&*()-_+{}[\]\\|,.//?;':"]/g
let slug = label.replace(regex, '')
function nameInput(limitField)
{
//LimitFile here is a text input and this function is passed to the text
onInput
var inputString = limitField.value;
// here we capture all illegal chars by adding a ^ inside the class,
// And overwrite them with "".
var newStr = inputString.replace(/[^a-zA-Z-\-\']/g, "");
limitField.value = newStr;
}
This function only allows alphabets, both lower case and upper case and - and ' characters. May help you build yours.
This works for me in React Native:
[~_!##$%^&*()\\[\\],.?":;{}|<>=+()-\\s\\/`\'\]
Here's my reference for the list of special characters:
https://owasp.org/www-community/password-special-characters
If we need to allow only number and symbols (- and .) then we can use the following pattern
const filterParams = {
allowedCharPattern: '\\d\\-\\.', // declaring regex pattern
numberParser: text => {
return text == null ? null : parseFloat(text)
}
}