https://regex101.com/r/sB9wW6/1
(?:(?<=\s)|^)#(\S+) <-- the problem in positive lookbehind
Working like this on prod: (?:\s|^)#(\S+), but I need a correct start index (without space).
Here is in JS:
var regex = new RegExp(/(?:(?<=\s)|^)#(\S+)/g);
Error parsing regular expression: Invalid regular expression:
/(?:(?<=\s)|^)#(\S+)/
What am I doing wrong?
UPDATE
Ok, no lookbehind in JS :(
But anyways, I need a regex to get the proper start and end index of my match. Without leading space.
Make sure you always select the right regex engine at regex101.com. See an issue that occurred due to using a JS-only compatible regex with [^] construct in Python.
JS regex - at the time of answering this question - did not support lookbehinds. Now, it becomes more and more adopted after its introduction in ECMAScript 2018. You do not really need it here since you can use capturing groups:
var re = /(?:\s|^)#(\S+)/g;
var str = 's #vln1\n#vln2\n';
var res = [];
while ((m = re.exec(str)) !== null) {
res.push(m[1]);
}
console.log(res);
The (?:\s|^)#(\S+) matches a whitespace or the start of string with (?:\s|^), then matches #, and then matches and captures into Group 1 one or more non-whitespace chars with (\S+).
To get the start/end indices, use
var re = /(\s|^)#\S+/g;
var str = 's #vln1\n#vln2\n';
var pos = [];
while ((m = re.exec(str)) !== null) {
pos.push([m.index+m[1].length, m.index+m[0].length]);
}
console.log(pos);
BONUS
My regex works at regex101.com, but not in...
First of all, have you checked the Code Generator link in the Tools pane on the left?
All languages - "Literal string" vs. "String literal" alert - Make sure you test against the same text used in code, literal string, at the regex tester. A common scenario is copy/pasting a string literal value directly into the test string field, with all string escape sequences like \n (line feed char), \r (carriage return), \t (tab char). See Regex_search c++, for example. Mind that they must be replaced with their literal counterparts. So, if you have in Python text = "Text\n\n abc", you must use Text, two line breaks, abc in the regex tester text field. Text.*?abc will never match it although you might think it "works". Yes, . does not always match line break chars, see How do I match any character across multiple lines in a regular expression?
All languages - Backslash alert - Make sure you correctly use a backslash in your string literal, in most languages, in regular string literals, use double backslash, i.e. \d used at regex101.com must written as \\d. In raw string literals, use a single backslash, same as at regex101. Escaping word boundary is very important, since, in many languages (C#, Python, Java, JavaScript, Ruby, etc.), "\b" is used to define a BACKSPACE char, i.e. it is a valid string escape sequence. PHP does not support \b string escape sequence, so "/\b/" = '/\b/' there.
All languages - Default flags - Global and Multiline - Note that by default m and g flags are enabled at regex101.com. So, if you use ^ and $, they will match at the start and end of lines correspondingly. If you need the same behavior in your code check how multiline mode is implemented and either use a specific flag, or - if supported - use an inline (?m) embedded (inline) modifier. The g flag enables multiple occurrence matching, it is often implemented using specific functions/methods. Check your language reference to find the appropriate one.
line-breaks - Line endings at regex101.com are LF only, you can't test strings with CRLF endings, see regex101.com VS myserver - different results. Solutions can be different for each regex library: either use \R (PCRE, Java, Ruby) or some kind of \v (Boost, PCRE), \r?\n, (?:\r\n?|\n)/(?>\r\n?|\n) (good for .NET) or [\r\n]+ in other libraries (see answers for C#, PHP). Another issue related to the fact that you test your regex against a multiline string (not a list of standalone strings/lines) is that your patterns may consume the end of line, \n, char with negated character classes, see an issue like that. \D matched the end of line char, and in order to avoid it, [^\d\n] could be used, or other alternatives.
php - You are dealing with Unicode strings, or want shorthand character classes to match Unicode characters, too (e.g. \w+ to match Стрибижев or Stribiżew, or \s+ to match hard spaces), then you need to use u modifier, see preg_match() returns 0 although regex testers work - To match all occurrences, use preg_match_all, not preg_match with /...pattern.../g, see PHP preg_match to find multiple occurrences and "Unknown modifier 'g' in..." when using preg_match in PHP?- Your regex with inline backreference like \1 refuses to work? Are you using a double quoted string literal? Use a single-quoted one, see Backreference does not work in PHP
phplaravel - Mind you need the regex delimiters around the pattern, see https://stackoverflow.com/questions/22430529
python - Note that re.search, re.match, re.fullmatch, re.findall and re.finditer accept the regex as the first argument, and the input string as the second argument. Not re.findall("test 200 300", r"\d+"), but re.findall(r"\d+", "test 200 300"). If you test at regex101.com, please check the "Code Generator" page. - You used re.match that only searches for a match at the start of the string, use re.search: Regex works fine on Pythex, but not in Python - If the regex contains capturing group(s), re.findall returns a list of captures/capture tuples. Either use non-capturing groups, or re.finditer, or remove redundant capturing groups, see re.findall behaves weird - If you used ^ in the pattern to denote start of a line, not start of the whole string, or used $ to denote the end of a line and not a string, pass re.M or re.MULTILINE flag to re method, see Using ^ to match beginning of line in Python regex
- If you try to match some text across multiple lines, and use re.DOTALL or re.S, or [\s\S]* / [\s\S]*?, and still nothing works, check if you read the file line by line, say, with for line in file:. You must pass the whole file contents as the input to the regex method, see Getting Everything Between Two Characters Across New Lines. - Having trouble adding flags to regex and trying something like pattern = r"/abc/gi"? See How to add modifers to regex in python?
c#, .net - .NET regex does not support possessive quantifiers like ++, *+, ??, {1,10}?, see .NET regex matching digits between optional text with possessive quantifer is not working - When you match against a multiline string and use RegexOptions.Multiline option (or inline (?m) modifier) with an $ anchor in the pattern to match entire lines, and get no match in code, you need to add \r? before $, see .Net regex matching $ with the end of the string and not of line, even with multiline enabled - To get multiple matches, use Regex.Matches, not Regex.Match, see RegEx Match multiple times in string - Similar case as above: splitting a string into paragraphs, by a double line break sequence - C# / Regex Pattern works in online testing, but not at runtime - You should remove regex delimiters, i.e. #"/\d+/" must actually look like #"\d+", see Simple and tested online regex containing regex delimiters does not work in C# code - If you unnecessarily used Regex.Escape to escape all characters in a regular expression (like Regex.Escape(#"\d+\.\d+")) you need to remove Regex.Escape, see Regular Expression working in regex tester, but not in c#
dartflutter - Use raw string literal, RegExp(r"\d"), or double backslashes (RegExp("\\d")) - https://stackoverflow.com/questions/59085824
javascript - Double escape backslashes in a RegExp("\\d"): Why do regex constructors need to be double escaped?
- (Negative) lookbehinds unsupported by most browsers: Regex works on browser but not in Node.js - Strings are immutable, assign the .replace result to a var - The .replace() method does change the string in place - Retrieve all matches with str.match(/pat/g) - Regex101 and Js regex search showing different results or, with RegExp#exec, RegEx to extract all matches from string using RegExp.exec- Replace all pattern matches in string: Why does javascript replace only first instance when using replace?
javascriptangular - Double the backslashes if you define a regex with a string literal, or just use a regex literal notation, see https://stackoverflow.com/questions/56097782
java - Word boundary not working? Make sure you use double backslashes, "\\b", see Regex \b word boundary not works - Getting invalid escape sequence exception? Same thing, double backslashes - Java doesn't work with regex \s, says: invalid escape sequence - No match found is bugging you? Run Matcher.find() / Matcher.matches() - Why does my regex work on RegexPlanet and regex101 but not in my code? - .matches() requires a full string match, use .find(): Java Regex pattern that matches in any online tester but doesn't in Eclipse - Access groups using matcher.group(x): Regex not working in Java while working otherwise - Inside a character class, both [ and ] must be escaped - Using square brackets inside character class in Java regex - You should not run matcher.matches() and matcher.find() consecutively, use only if (matcher.matches()) {...} to check if the pattern matches the whole string and then act accordingly, or use if (matcher.find()) to check if there is a single match or while (matcher.find()) to find multiple matches (or Matcher#results()). See Why does my regex work on RegexPlanet and regex101 but not in my code?
scala - Your regex attempts to match several lines, but you read the file line by line (e.g. use for (line <- fSource.getLines))? Read it into a single variable (see matching new line in Scala regex, when reading from file)
kotlin - You have Regex("/^\\d+$/")? Remove the outer slashes, they are regex delimiter chars that are not part of a pattern. See Find one or more word in string using Regex in Kotlin - You expect a partial string match, but .matchEntire requires a full string match? Use .find, see Regex doesn't match in Kotlin
mongodb - Do not enclose /.../ with single/double quotation marks, see mongodb regex doesn't work
c++ - regex_match requires a full string match, use regex_search to find a partial match - Regex not working as expected with C++ regex_match - regex_search finds the first match only. Use sregex_token_iterator or sregex_iterator to get all matches: see What does std::match_results::size return? - When you read a user-defined string using std::string input; std::cin >> input;, note that cin will only get to the first whitespace, to read the whole line properly, use std::getline(std::cin, input); - C++ Regex to match '+' quantifier - "\d" does not work, you need to use "\\d" or R"(\d)" (a raw string literal) - This regex doesn't work in c++ - Make sure the regex is tested against a literal text, not a string literal, see Regex_search c++
go - Double backslashes or use a raw string literal: Regular expression doesn't work in Go - Go regex does not support lookarounds, select the right option (Go) at regex101.com before testing! Regex expression negated set not working golang
groovy - Return all matches: Regex that works on regex101 does not work in Groovy
r - Double escape backslashes in the string literal: "'\w' is an unrecognized escape" in grep - Use perl=TRUE to PCRE engine ((g)sub/(g)regexpr): Why is this regex using lookbehinds invalid in R?
oracle - Greediness of all quantifiers is set by the first quantifier in the regex, see Regex101 vs Oracle Regex (then, you need to make all the quantifiers as greedy as the first one)] - \b does not work? Oracle regex does not support word boundaries at all, use workarounds as shown in Regex matching works on regex tester but not in oracle
firebase - Double escape backslashes, make sure ^ only appears at the start of the pattern and $ is located only at the end (if any), and note you cannot use more than 9 inline backreferences: Firebase Rules Regex Birthday
firebasegoogle-cloud-firestore - In Firestore security rules, the regular expression needs to be passed as a string, which also means it shouldn't be wrapped in / symbols, i.e. use allow create: if docId.matches("^\\d+$").... See https://stackoverflow.com/questions/63243300
google-data-studio - /pattern/g in REGEXP_REPLACE must contain no / regex delimiters and flags (like g) - see How to use Regex to replace square brackets from date field in Google Data Studio?
google-sheets - If you think REGEXEXTRACT does not return full matches, truncates the results, you should check if you have redundant capturing groups in your regex and remove them, or convert the capturing groups to non-capturing by add ?: after the opening (, see Extract url domain root in Google Sheet
sed - Why does my regular expression work in X but not in Y?
word-boundarypcrephp - [[:<:]] and [[:>:]] do not work in the regex tester, although they are valid constructs in PCRE, see https://stackoverflow.com/questions/48670105
snowflake-cloud-data-platform snowflake-sql - If you are writing a stored procedure, and \\d does not work, you need to double them again and use \\\\d, see REGEX conversion of VARCHAR value to DATE in Snowflake stored procedure using RLIKE not consistent.
I have a regex that i ended up using from one of the answer here in SO .
Basically my regex must validate ipv4 address with mask .
So i ended up using the below regex :
(?:(?:25[0-5]|2[0-4][0-9]|[01]?[0-9][0-9]?)\\.){3}(?:25[0-5]|2[0-4][0-9]|[01]?[0-9][0-9]?)/([1-9]|1[0-9]|2[0-9]|3[0-2]|(((128|192|224|240|248|252|254)\.0\.0\.0)|(255\.(0|128|192|224|240|248|252|254)\.0\.0)|(255\.255\.(0|128|192|224|240|248|252|254)\.0)|(255\.255\.255\.(0|128|192|224|240|248|252|254))))
Now my challenge is to not allow 0 in the last digit of ip i.e ,
192.168.6.10/mask is valid but 192.168.6.0/mask is invalid
So i modified the above regexp to something like this :
(?:(?:25[0-5]|2[0-4][0-9]|[01]?[0-9][0-9]?)\\.){3}(?:25[0-5]|2[0-4][0-9]|[1][0-9][0-9]|[1-9][0-9]|[1-9]?)/([1-9]|1[0-9]|2[0-9]|3[0-2]|(((128|192|224|240|248|252|254)\.0\.0\.0)|(255\.(0|128|192|224|240|248|252|254)\.0\.0)|(255\.255\.(0|128|192|224|240|248|252|254)\.0)|(255\.255\.255\.(0|128|192|224|240|248|252|254))))
but 192.168.6.0 is always valid when testing with Angular Validators.pattern
Any idea where i'm going wrong ?
EDIT
List of IPs & its validity :
192.168.6.6/24 is valid
192.168.6.6/24 is valid
192.168.6.24/24 is valid
192.168.6.0/24 invalid
192.168.6.0/255.255.255.0 is invalid
You want to avoid matching any IP with the last octet set to 0.
You may use
ipAddress : FormControl = new FormControl('' , Validators.pattern(/^(?!(?:\d+\.){3}0(?:\/|$))(?:(?:25[0-5]|2[0-4][0-9]|[01]?[0-9][0-9]?)\.){3}(?:25[0-5]|2[0-4][0-9]|[01]?[0-9][0-9]?)\/(?:[1-9]|1[0-9]|2[0-9]|3[0-2]|(?:(?:128|192|224|240|248|252|254)\.0\.0\.0|255\.(?:0|128|192|224|240|248|252|254)\.0\.0|255\.255\.(?:0|128|192|224|240|248|252|254)\.0|255\.255\.255\.(?:0|128|192|224|240|248|252|254)))$/));
Here is the regex demo
The main addition is the lookahead after ^ that is executed once at the start of a string. The (?!(?:\d+\.){3}0(?:\/|$)) pattern is a negative lookahead that fails the match if, immediately to the right of the current location (string start), there are:
(?:\d+\.){3} - three repetitions of 1+ digits and a dot
0 - a zero
(?:\/|$)) - / or (|) end of string ($).
Notice I defined the pattern using a regex literal notation (/regex/) and I had to add ^ (string start) and $ (string end) anchors since the regex was no longer anchored by default. Also, to escape special chars in a regex literal notation, you only need one backslash, not two.
Suppose that the last part cannot be written 000 and 00 but just 0. Then you can you such regex
^(?:(?:2(?:5[0-5]|[0-4]\d)|1?\d?\d)\.){3}(?:(?:2(?:5[0-5]|[0-4]\d)|1?\d\d|[1-9]))$
Where diff between the first groups and the last one that one-digit value should be from 1 to 9
demo
You can try with this pattern
^(?:[1-9]|[0-9][0-9]|1[0-9][0-9]|2[0-4][0-9]|25[0-5])\.(?:[1-9]|[0-9][0-9]|1[0-9][0-9]|2[0-4][0-9]|25[0-5])\.(?:[1-9]|[0-9][0-9]|1[0-9][0-9]|2[0-4][0-9]|25[0-5])\.(?:2[0-5][1-5]|[1-9]|1[0-9][1-9]|[1-9][1-9])$
Online demo
For the last numbers you have check with this
(?:2[0-5][1-5]|[1-9]|1[0-9][1-9]|[1-9][1-9])
One possible approach here is simple, and just involves adding a negative lookbehind at the very end of the pattern (?<!\.0), which asserts that .0 is not the immediately preceding term in the IP address. Applying this to your correctly working pattern from the comments above, we get:
^(?:(?:25[0-5]|2[0-4][0-9]|[01]?[0-9][0-9]?)\.){3}
(?:25[0-5]|2[0-4][0-9]|[01]?[0-9][0-9]?)\/
([1-9]|1[0-9]|2[0-9]|3[0-2]|(((128|192|224|240|248|252|254)\.0\.0\.0)|
(255\.(0|128|192|224|240|248|252|254)\.0\.0)|
(255\.255\.(0|128|192|224|240|248|252|254)\.0)|
(255\.255\.255\.(0|128|192|224|240|248|252|254))))(?<!\.0)$
Demo
The downside is that your JavaScript engine may not yet support negative lookbehind syntax just yet.
I tried with this regex to match floating values:
(^\d{0,11}$)|^\d{0,11}([.]\d{0,6})?$
However, I don't want to allow strings like 12., i.e. a number with a dot at the end.
Please me give me a suggestion.
You may use
^\d{0,11}(?:\.\d{1,6})?$
If you use \d{0,6}, the pattern may match an empty string. Note that it is not recommended to test JS regex with RegexStorm.net as it only supports .NET regex and uses CRLF line endings.
Details
^ - start of string
\d{0,11} - zero to eleven digits
(?:\.\d{1,6})? - an optional sequence of
\. - a dot
\d{1,6} - 1 to 6 digits
$ - end of string.
See the regex demo.
How about you restrict the count of the decimal part.. like this
^\d{0,11}(?:\.\d{1,6})?$
I'm attempting to match the first 3 letters that could be a-z followed by a specific character.
For testing I'm using a regex online tester.
I thought this should work (without success):
^[a-z]{0,3}$[z]
My test string is abcz.
Hope you can tell me what I'm doing wrong.
If you need to match a whole string abcz, use
/^[a-z]{0,3}z$/
^^
or - if the 3 letters are compulsory:
/^[a-z]{3}z$/
See the regex demo.
The $[z] in your pattern attempts to match a z after the end of string anchor, which makes the regex fail always.
Details:
^ - string start
[a-z]{0,3} - 0 to 3 lowercase ASCII letters (to require 3 letters, remove 0,)
z - a z
$ - end of string anchor.
You've got the end of line identifier too early
/^[a-z]{0,3}[z]$/m
You can see a working version here
You can do away with the [] around z. Square brackets are used to define a range or list of characters to match - as you're matching only one they're not needed here.
/^[a-z]{0,3}z$/m
So, js apparantly doesn't support lookbehind.
What I want is a regex valid in javascript that could mimic that behavior.
Specifically, I have a string that consists of numbers and hyphens to denote a range. As in,
12 - 23
12 - -23
-12 - 23
-12 - -23
Please ignore the spaces. These are the only cases possible, with different numbers, of course.
What I want is to match the first hyphen that separates the numbers and is not a minus sign. In other words, the first hyphen followed by a digit. But the digit shouldn't be part of the match.
So my strings are:
12-23
12--23
-12-23
-12--23
And the match should be the 3rd character in the 1st 2 cases and the 4th character in the last two.
The single regex I need is expected to match the character in brackets.
12(-)23
12(-)-23
-12(-)23
-12(-)-23
This can be achieved using positive lookbehind :
(?<=[0-9])\-
But javascript doesn't support that. I want a regex that essentially does the same thing and is valid in js.
Can anyone help?
I don't know why you want to match the delimiting hyphen, instead of just matching the whole string and capture the numbers:
input.match(/(-?\d+) *- *(-?\d+)/)
The 2 numbers will be in capturing group 1 and 2.
It is possible to write a regex which works for sanitized input (no space, and guaranteed to be valid as shown in the question) by using \b to check that - is preceded by a word character:
\b-
Since the only word characters in the sanitized string is 0-9, we are effectively checking that - is preceded by a digit.
(\d+.*?)(?:\s+(-)\s+)(.*?\d+)
You probably want this though i dont know why there is a diff between expected output of 2nd and 4th.Probably its a typo.You can try this replace by $1$2$3.See demo.
http://regex101.com/r/yR3mM3/26
var re = /(\d+.*?)(?:\s+(-)\s+)(.*?\d+)/gmi;
var str = '12 - 23\n12 - -23\n-12 - 23\n-12 - -23';
var subst = '$1$2$3';
var result = str.replace(re, subst);