134

Unfortunately, despite having tried to learn regex at least one time a year for as many years as I can remember, I always forget as I use them so infrequently. This year my new year's resolution is to not try and learn regex again - So this year to save me from tears I'll give it to Stack Overflow. (Last Christmas remix).

I want to pass in a string in this format {getThis}, and be returned the string getThis. Could anyone be of assistance in helping to stick to my new year's resolution?


Related questions on Stack Overflow:

2

15 Answers 15

265

Try

/{(.*?)}/

That means, match any character between { and }, but don't be greedy - match the shortest string which ends with } (the ? stops * being greedy). The parentheses let you extract the matched portion.

Another way would be

/{([^}]*)}/

This matches any character except a } char (another way of not being greedy)

8
  • this is excellent, but is it possible to match anything between a variable number of curly-bracket-combinations? E.g.: "{this should be matched}this shouldnt{this kinda should again}and so {on}"? I'd like to retrieve the value, which is not within curly brackets. Also: curly brackets will not be used in the sentence and there is no stacking (this would never occure: "{some {text}}"). Anyone an idea how to do it :)? Thanks! (p.s.: upvoted this solution)
    – Igor
    May 26 '13 at 17:22
  • 4
    It does not capture everything between the curly brackets, it captures everything between the curly brackets AND the curly brackets themselves. How would you go about ONLY capturing what is inside the curly brackets? Jan 19 '16 at 12:40
  • 1
    I like it that you don't need to escape the curly braces here as the regex parser seems to realise that they're not a quantifier ... well, I'm doing this in python, but I presume javascript regexes work like that too
    – drevicko
    Feb 10 '16 at 12:26
  • 3
    Adding a g at the end makes it a global search. See a working example
    – Benjamin
    Jul 5 '16 at 15:56
  • 1
    @Reality-Torrent, I too saw that it captured the curly brackets if I specify the g option to get all matches. Turns out I should use Regex.exec in a loop instead of string.match in Javascript to have both the g flag, and allowing for capture group. See developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/…
    – frank
    Jul 23 '19 at 20:39
154
/\{([^}]+)\}/

/        - delimiter
\{       - opening literal brace escaped because it is a special character used for quantifiers eg {2,3}
(        - start capturing
[^}]     - character class consisting of
    ^    - not
    }    - a closing brace (no escaping necessary because special characters in a character class are different)
+        - one or more of the character class
)        - end capturing
\}       - the closing literal brace
/        - delimiter
2
  • @meouw sa = s.split("/\{([^}]+)\}/"); gives a compile error. illegal repetition, invalid escape character.
    – likejudo
    Dec 26 '12 at 0:22
  • @Anil you appear to be using a string as your split argument rather than a regular expression. What are you trying to do?
    – meouw
    Dec 26 '12 at 22:09
63

If your string will always be of that format, a regex is overkill:

>>> var g='{getThis}';
>>> g.substring(1,g.length-1)
"getThis"

substring(1 means to start one character in (just past the first {) and ,g.length-1) means to take characters until (but not including) the character at the string length minus one. This works because the position is zero-based, i.e. g.length-1 is the last position.

For readers other than the original poster: If it has to be a regex, use /{([^}]*)}/ if you want to allow empty strings, or /{([^}]+)}/ if you want to only match when there is at least one character between the curly braces. Breakdown:

  • /: start the regex pattern
    • {: a literal curly brace
      • (: start capturing
        • [: start defining a class of characters to capture
          • ^}: "anything other than }"
        • ]: OK, that's our whole class definition
        • *: any number of characters matching that class we just defined
      • ): done capturing
    • }: a literal curly brace must immediately follow what we captured
  • /: end the regex pattern
15
  • 7
    Substringing is one of those things that changes based on the language you work in. Javascript takes the index to stop at, PHP takes the length of the desired end result (unless it's negative, in which case it takes the number of characters to remove), C# is different again...nice and confusing.
    – jvenema
    Jan 26 '10 at 0:55
  • 2
    ...and Python just has slicing, which IMO is better than anything else :p.
    – Grant Paul
    Mar 3 '10 at 6:25
  • 28
    Sweet, but not sure how that's a regular expression. Perhaps he was asking for regex, and I came here for the same answer.. sadly the answer has nothing to do with the question..
    – baash05
    Nov 30 '11 at 0:04
  • 5
    @baash05, if you read the whole question, the OP didn't even want to learn regex, so I don't think it's the academic exercise you seem to be suggesting it was.
    – Kev
    Dec 7 '11 at 16:50
  • 2
    I wanted to do -1 because the question is asking for regex, I was searching for regex, but the accepted answer was completely useless for me (while the question seemed very promising itself). After reading the first comment I must admit that if I were to answer this question first I could have answered the same/similar way... So in the end, +1.
    – shadyyx
    Jul 4 '14 at 8:14
44

Try this:

/[^{\}]+(?=})/g

For example

Welcome to RegExr v2.1 by #{gskinner.com},  #{ssd.sd} hosted by Media Temple!

will return gskinner.com, ssd.sd.

4
  • 1
    Great, can you explain why you use \} in first block?
    – Uzair Ali
    Apr 4 '18 at 13:35
  • 2
    Nice one, but that will match any group that ends with }, even if it doesn't start with {. May 21 '18 at 16:28
  • 3
    This is the only correct answer that actually works.
    – pldg
    Jul 2 '18 at 13:26
  • 1
    Explanation: While [^\{\}]+ will match anything that is not a curly brace, the lookahead assertion (?=}) will make sure to only pass sections preceding a curly brace. With / ... /g we get all occurrences, not only the first one.
    – 0-_-0
    Nov 30 '19 at 20:45
21

Here's a simple solution using javascript replace

var st = '{getThis}';

st = st.replace(/\{|\}/gi,''); // "getThis"

As the accepted answer above points out the original problem is easily solved with substring, but using replace can solve the more complicated use cases

If you have a string like "randomstring999[fieldname]" You use a slightly different pattern to get fieldname

var nameAttr = "randomstring999[fieldname]";

var justName = nameAttr.replace(/.*\[|\]/gi,''); // "fieldname"
19

Try this

let path = "/{id}/{name}/{age}";
const paramsPattern = /[^{\}]+(?=})/g;
let extractParams = path.match(paramsPattern);
console.log("extractParams", extractParams) // prints all the names between {} = ["id", "name", "age"]
2
  • 1
    The exactly what I wanted :) this will return the result without braces, the other solutions return with it Oct 17 '18 at 10:06
  • Excellent, the best answer here. Nov 12 '19 at 11:42
17

This one works in Textmate and it matches everything in a CSS file between the curly brackets.

\{(\s*?.*?)*?\}

selector {. . matches here including white space. . .}

If you want to further be able to return the content, then wrap it all in one more set of parentheses like so:

\{((\s*?.*?)*?)\}

and you can access the contents via $1.

This also works for functions, but I haven't tested it with nested curly brackets.

14

You want to use regex lookahead and lookbehind. This will give you only what is inside the curly braces:

(?<=\{)(.*?)(?=\})
6
  • There should be a backslash escaping the curly braces above. They got stripped out in my submission. Nov 11 '10 at 12:28
  • 1
    Thanks, this helped me today. Dec 22 '10 at 17:28
  • any disadvantages of this method?
    – Somatik
    May 11 '12 at 13:24
  • 5
    @Somatik—yes, negative lookahead and behind are't supported in ECMAScript.
    – RobG
    May 4 '14 at 7:28
  • Note: This example works in Java. Returns all values in all curly braces. May 7 '19 at 3:31
5

i have looked into the other answers, and a vital logic seems to be missing from them . ie, select everything between two CONSECUTIVE brackets,but NOT the brackets

so, here is my answer

\{([^{}]+)\}
4

Regex for getting arrays of string with curly braces enclosed occurs in string, rather than just finding first occurrence.

 /\{([^}]+)\}/gm 
3
var re = /{(.*)}/;
var m = "{helloworld}".match(re);
if (m != null)
    console.log(m[0].replace(re, '$1'));

The simpler .replace(/.*{(.*)}.*/, '$1') unfortunately returns the entire string if the regex does not match. The above code snippet can more easily detect a match.

3

Try this one, according to http://www.regextester.com it works for js normaly.

([^{]*?)(?=\})

1
2

You can use this regex recursion to match everythin between, even another {} (like a JSON text) :

\{([^()]|())*\}
2
  • Nice, but this only captures the content inside nested braces
    – Dominic
    Mar 12 '18 at 15:42
  • does not capture if the content contains () Sep 27 '19 at 15:49
2

This one matches everything even if it finds multiple closing curly braces in the middle:

\{([\s\S]*)\}

Example:

{
  "foo": {
    "bar": 1,
    "baz": 1,
  }
}
1

Even this helps me while trying to solve someone's problem,

Split the contents inside curly braces ({}) having a pattern like, {'day': 1, 'count': 100}.

For example:

#include <iostream> 
#include <regex> 
#include<string> 
using namespace std; 

int main() 
{ 
    //string to be searched
    string s = "{'day': 1, 'count': 100}, {'day': 2, 'count': 100}";

    // regex expression for pattern to be searched 
    regex e ("\\{[a-z':, 0-9]+\\}");
    regex_token_iterator<string::iterator> rend;

    regex_token_iterator<string::iterator> a ( s.begin(), s.end(), e );
    while (a!=rend) cout << " [" << *a++ << "]";
    cout << endl;

    return 0; 
}

Output:

[{'day': 1, 'count': 100}] [{'day': 2, 'count': 100}]

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