I have found very similar posts but I can't quite get my regular expression right here.

I am trying to write a regular expression which returns a string which is between two other strings. For example: I want to get the string which resides between the strings "cow" and "milk"

My cow always gives milk

would return

"always gives"

Here is the expression I have pieced together so far:

(?=cow).*(?=milk)

However this returns the string "cow always gives"

  • 6
    I stumbled on this old question and wanted to clarify why testRE is an array. test.match returns an array with first index as the total match (therfor, the string that matches cow(.*)milk) and then, all the trapped strings like the (.*) if there was a second set of parenthesis they would then be in testRE[2] – Salketer Mar 6 '13 at 15:16
  • 3
    This solution will not work if you are searching over a string containing newlines. In such a case, you should use "STRING_ONE([\\s\\S]*?)STRING_TWO". stackoverflow.com/questions/22531252/… – Michael.Lumley Sep 30 '14 at 21:36
  • just for reference the match method on MDN developer.mozilla.org/en/docs/Web/JavaScript/Reference/… – vzR Mar 28 '17 at 13:19
up vote 135 down vote accepted

A lookahead (that (?= part) does not consume any input. It is a zero-width assertion (as are boundary checks and lookbehinds).

You want a regular match here, to consume the cow portion. To capture the portion in between, you use a capturing group (just put the portion of pattern you want to capture inside parenthesis):

cow(.*)milk

No lookaheads are needed at all.

  • Oi! Would be great having you around in pt.stackoverflow.com (vou apagar isto já já) :) – Sergio Jan 2 '15 at 15:47
  • 8
    When I test this, the provided Regex expression includes both "cow" and "milk"... – TheCascadian Apr 27 at 3:39
  • 2
    This is missing a step. When you get the result of the match, you need to extract the matched text of the first capturing group with matched[1], not the whole matched text with matched[0]. – Rory O'Kane Jun 20 at 20:57
  • In Javascript, you actually need to use ([\s\S]*?) rather than (.*?). – Elgs Qian Chen yesterday

Here's a regex which will grab what's between cow and milk (without leading/trailing space):

srctext = "My cow always gives milk.";
var re = /(.*cow\s+)(.*)(\s+milk.*)/;
var newtext = srctext.replace(re, "$2");

An example: http://jsfiddle.net/entropo/tkP74/

Regular Expression to get a string between two strings in Javascript

The most complete solution that will work in the vast majority of cases is using a capturing group with a lazy dot matching pattern. However, a dot . in JS regex does not match line break characters, so, what will work in 100% cases is a [^] or [\s\S]/[\d\D]/[\w\W] constructs.

ECMAScript 2018 and newer compatible solution

In JS environments supporting ECMAScript 2018, s modifier allows . to match any char including line break chars, and the regex engine supports lookbehinds of variable length. So, you may use a regex like

var result = s.match(/(?<=cow\s+).*?(?=\s+milk)/gs); // Returns multiple matches if any
// Or
var result = s.match(/(?<=cow\s*).*?(?=\s*milk)/gs); // Same but whitespaces are optional

In both cases, the current position is checked for cow with any 1/0 or more whitespaces after cow, then any 0+ chars as few as possible are matched and consumed (=added to the match value), and then milk is checked for (with any 1/0 or more whitespaces before this substring).

Scenario 1: Single-line input

This and all other scenarios below are supported by all JS environments. See usage examples at the bottom of the answer.

cow (.*?) milk

cow is found first, then a space, then any 0+ chars other than line break chars, as few as possible as *? is a lazy quantifier, are captured into Group 1 and then a space with milk must follow (and those are matched and consumed, too).

Scenario 2: Multiline input

cow ([\s\S]*?) milk

Here, cow and a space are matched first, then any 0+ chars as few as possible are matched and captured into Group 1, and then a space with milk are matched.

Scenario 3: Overlapping matches

If you have a string like >>>15 text>>>67 text2>>> and you need to get 2 matches in-between >>>+number+whitespace and >>>, you can't use />>>\d+\s(.*?)>>>/g as this will only find 1 match due to the fact the >>> before 67 is already consumed upon finding the first match. You may use a positive lookahead to check for the text presence without actually "gobbling" it (i.e. appending to the match):

/>>>\d+\s(.*?)(?=>>>)/g

See the online regex demo yielding text1 and text2 as Group 1 contents found.

Also see How to get all possible overlapping matches for a string.

Performance considerations

Lazy dot matching pattern (.*?) inside regex patterns may slow down script execution if very long input is given. In many cases, unroll-the-loop technique helps to a greater extent. Trying to grab all between cow and milk from "Their\ncow\ngives\nmore\nmilk", we see that we just need to match all lines that do not start with milk, thus, instead of cow\n([\s\S]*?)\nmilk we can use:

/cow\n(.*(?:\n(?!milk$).*)*)\nmilk/gm

See the regex demo (if there can be \r\n, use /cow\r?\n(.*(?:\r?\n(?!milk$).*)*)\r?\nmilk/gm). With this small test string, the performance gain is negligible, but with very large text, you will feel the difference (especially if the lines are long and line breaks are not very numerous).

Sample regex usage in JavaScript:

//Single/First match expected: use no global modifier and access match[1]
console.log("My cow always gives milk".match(/cow (.*?) milk/)[1]);
// Multiple matches: get multiple matches with a global modifier and 
// trim the results if length of leading/trailing delimiters is known
var s = "My cow always gives milk, thier cow also gives milk";
console.log(s.match(/cow (.*?) milk/g).map(function(x) {return x.substr(4,x.length-9);}));
//or use RegExp#exec inside a loop to collect all the Group 1 contents
var result = [], m, rx = /cow (.*?) milk/g;
while ((m=rx.exec(s)) !== null) {
  result.push(m[1]);
}
console.log(result);

  • You need capture the .*
  • You can (but don't have to) make the .* nongreedy
  • There's really no need for the lookahead.

    > /cow(.*?)milk/i.exec('My cow always gives milk');
    ["cow always gives milk", " always gives "]
    
  • In this particular instance, if it were greedy it would reach the end and backtrack (presumably). – Ben Apr 12 '11 at 22:24

I was able to get what I needed using Martinho Fernandes' solution below. The code is:

var test = "My cow always gives milk";

var testRE = test.match("cow(.*)milk");
alert(testRE[1]);

You'll notice that I am alerting the testRE variable as an array. This is because testRE is returning as an array, for some reason. The output from:

My cow always gives milk

Changes into:

always gives

What about just using the following regular expression:

(?<=My cow\s).*?(?=\smilk)
  • Look Behind ?<= is not supported in Javascript. Would be the way to do it though. – Mark Carpenter Jr Aug 17 at 13:35

The chosen answer didn't work for me...hmm...

Just add space after cow and/or before milk to trim spaces from " always gives "

/(?<=cow ).*(?= milk)/

enter image description here

  • You don't need to comment on your own answer, just edit it. – Cody G. Apr 19 at 13:59
  • Look Behind ?<= is not supported in Javascript. – Mark Carpenter Jr Aug 17 at 13:35
  • @MarkCarpenterJr if you tested it via regextester.com, you will get that hint. It seems that the site has based its rules from the older specification. Lookbehind is now supported. See stackoverflow.com/questions/30118815/… And the pattern works well with modern browsers without error. Try this checker instead regex101.com – duduwe Sep 8 at 15:32
  • @CodyG.ah yes. got it. – duduwe Sep 8 at 15:32
  • Can we lift the down vote now please? ^-^ – duduwe Sep 8 at 15:35

The method match() searches a string for a match and returns an Array object.

// Original string
var str = "My cow always gives milk";

// Using index [0] would return<br/>
// "**cow always gives milk**"
str.match(/cow(.*)milk/)**[0]**


// Using index **[1]** would return
// "**always gives**"
str.match(/cow(.*)milk/)[1]

protected by Wiktor Stribiżew Jul 7 at 9:28

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