I am new to regular expressions. I'm trying to parse the following kind of string:

[key:"val" key2:"val2"]

where there are arbitrary key:"val" pairs inside. I want to grab the key name and the value. For those curious I'm trying to parse the database format of task warrior. Here is my test string:

[description:"aoeu" uuid:"123sth"] which is meant to highlight that anything can be in a key or value aside from space, no spaces around the colons, and values are always in double quotes. In node, this is my output:

[deuteronomy][gatlin][~]$ node
> var re = /^\[(?:(.+?):"(.+?)"\s*)+\]$/g
> re.exec('[description:"aoeu" uuid:"123sth"]');
[ '[description:"aoeu" uuid:"123sth"]',
  'uuid',
  '123sth',
  index: 0,
  input: '[description:"aoeu" uuid:"123sth"]' ]

But description:"aoeu" also matches this pattern. How can I get all matches back?

  • It might be that my regex is wrong and / or that I am simply using the regex facilities in JavaScript incorrectly. This seems to work: > var s = "Fifteen is 15 and eight is 8"; > var re = /\d+/g; > var m = s.match(re); m = [ '15', '8' ] – gatlin Jun 12 '11 at 18:08
  • 3
    Javascript now has a .match() function: developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/… Used like this: "some string".match(/regex/g) – Stefnotch Mar 5 '16 at 9:37

13 Answers 13

up vote 124 down vote accepted

Continue calling re.exec(s) in a loop to obtain all the matches:

var re = /\s*([^[:]+):\"([^"]+)"/g;
var s = '[description:"aoeu" uuid:"123sth"]';
var m;

do {
    m = re.exec(s);
    if (m) {
        console.log(m[1], m[2]);
    }
} while (m);

Try it with this jsfiddle: http://jsfiddle.net/7yS2V/

  • 3
    Why not while instead of do … while? – Gumbo Jun 12 '11 at 18:14
  • 9
    Using a while loop makes it slightly awkward to initialize m. You either have to write while(m = re.exec(s)), which is an anti-pattern IMO, or you have to write m = re.exec(s); while (m) { ... m = re.exec(s); }. I prefer the do ... if ... while idiom, but other techniques would work as well. – lawnsea Jun 12 '11 at 18:21
  • 8
    doing this in chromium resulted in my tab crashing. – EdgeCaseBerg Dec 16 '14 at 18:53
  • 23
    @EdgeCaseBerg You need to have the g flag set, otherwise the internal pointer is not moved forward. Docs. – Tim Jul 25 '15 at 13:45
  • 3
    Another point is that if the regex can match empty string it will be an infinite loop – FabioCosta Jun 8 '17 at 0:57

To loop through all matches, you can use the replace function:

var re = /\s*([^[:]+):\"([^"]+)"/g;
var s = '[description:"aoeu" uuid:"123sth"]';

s.replace(re, function(match, g1, g2) { console.log(g1, g2); });
  • 14
    I'll love to hear an explanation for the downvotes and delete request. – Christophe May 12 '16 at 17:05
  • 5
    I'm surprised that this answer got downvoted. It's the simplest one. Really. Compare it with any other one. – mik01aj Jun 15 '16 at 11:12
  • 1
    Agreed; this was exactly what I was looking for, thanks! – Levi Aug 16 '16 at 23:05
  • 4
    I agree definitely the simplest, and easiest to understand. – Justin Mar 10 '17 at 14:49
  • 14
    It's counterintuitive code. You're not “replacing” anything in any meaningful sense. It's just exploiting the some function for a different purpose. – Luke Maurer Jul 27 '17 at 19:43

str.match(pattern) will return all the matches as an array. I guess this is the easiest way.

For example -

"All of us except @Emran, @Raju and @Noman was there".match(/@\w*/g)
// Will return ["@Emran", "@Raju", "@Noman"]
  • 2
    Beware: the matches aren't match objects, but the matching strings. For example, there is no access to the groups in "All of us except @Emran:emran26, @Raju:raju13 and @Noman:noman42".match(/@(\w+):(\w+)/g) (which will return ["@Emran:emran26", "@Raju:raju13", "@Noman:noman42"]) – madprog Aug 18 '17 at 9:46
  • @madprog, Right, it's the easiest way but not suitable when the group values are essential. – Anis Sep 13 '17 at 10:02

This is a solution

var s = '[description:"aoeu" uuid:"123sth"]';

var re = /\s*([^[:]+):\"([^"]+)"/g;
var m;
while (m = re.exec(s)) {
  console.log(m[1], m[2]);
}

This is based on lawnsea's answer, but shorter.

Notice that the `g' flag must be set to move the internal pointer forward across invocations.

Based on Agus's function, but I prefer return just the match values:

var bob = "> bob <";
function matchAll(str, regex) {
    var res = [];
    var m;
    if (regex.global) {
        while (m = regex.exec(str)) {
            res.push(m[1]);
        }
    } else {
        if (m = regex.exec(str)) {
            res.push(m[1]);
        }
    }
    return res;
}
var Amatch = matchAll(bob, /(&.*?;)/g);
console.log(Amatch);  // yeilds: [>, <]

Here is my function to get the matches :

function getAllMatches(regex, text) {
    if (regex.constructor !== RegExp) {
        throw new Error('not RegExp');
    }

    var res = [];
    var match = null;

    if (regex.global) {
        while (match = regex.exec(text)) {
            res.push(match);
        }
    }
    else {
        if (match = regex.exec(text)) {
            res.push(match);
        }
    }

    return res;
}

var regex = /abc|def|ghi/g;
var res = getAllMatches(regex, 'abcdefghi');

res.forEach(function (item) {
    console.log(item[0]);
});

For me a findall function is essential, so I packaged up lawnsea's answer into a function for easy copy and pasting.

function findall(regex_pattern, string_)
    {
        var output_list = [];
        while (true) 
            {
                var a_match = regex_pattern.exec(string_);
                if (a_match) 
                    {
                        // get rid of the string copy
                        delete a_match.input;
                        // store the match data
                        output_list.push(a_match);
                    }
                else
                    {
                        break;
                    }
            } 
        return output_list;
    }

example usage:

console.log(   findall(/blah/g,'blah1 blah2')   ) 

outputs:

[ [ 'blah', index: 0 ], [ 'blah', index: 6 ] ]

Iterables are nicer:

const matches = (text, pattern) => ({
  [Symbol.iterator]: function * () {
    const clone = new RegExp(pattern.source, pattern.flags);
    let match = null;
    do {
      match = clone.exec(text);
      if (match) {
        yield match;
      }
    } while (match);
  }
});

Usage in a loop:

for (const match of matches('abcdefabcdef', /ab/g)) {
  console.log(match);
}

Or if you want an array:

[ ...matches('abcdefabcdef', /ab/g) ]
  • 1
    Typo: if (m) should be if (match) – Botje Aug 8 at 9:07

OMG I dont not understand that since 2011 no one has sent the good answer.

Supposing that your string is like [key:"val" key2:"val2"] as asked above by @gatlin and you want to retrive all matches using a regular expression : you can enjoy the second parameter of the replace function which can be a callback function...and then get all the arguments which your regexp has found. Hereafter an example you can play in your console :

var str = '[foo:"bar" thud:"grunt" bazola:"ztesch"]';
var regex = new RegExp('(\\w+):"(\\w+)"', 'ig');
var table = [];
str.replace(regex, function() {
    var matches = arguments;
    table.push(matches);
});
console.log(table);
//=> ["foo:"bar"", "foo", "bar", 1, .....
  • 1
    It's probably because you didn't read the other answers. Fyi the replace method was already mentioned long ago. – Christophe Sep 7 at 22:50

Use this...

var all_matches = your_string.match(re);
console.log(all_matches)

It will return an array of all matches...That would work just fine.... But remember it won't take groups in account..It will just return the full matches...

I would definatly recommend using the String.match() function, and creating a relevant RegEx for it. My example is with a list of strings, which is often necessary when scanning user inputs for keywords and phrases.

    // 1) Define keywords
    var keywords = ['apple', 'orange', 'banana'];

    // 2) Create regex, pass "i" for case-insensitive and "g" for global search
    regex = new RegExp("(" + keywords.join('|') + ")", "ig");
    => /(apple|orange|banana)/gi

    // 3) Match it against any string to get all matches 
    "Test string for ORANGE's or apples were mentioned".match(regex);
    => ["ORANGE", "apple"]

Hope this helps!

This isn't really going to help with your more complex issue but I'm posting this anyway because it is a simple solution for people that aren't doing a global search like you are.

I've simplified the regex in the answer to be clearer (this is not a solution to your exact problem).

var re = /^(.+?):"(.+)"$/
var regExResult = re.exec('description:"aoeu"');
var purifiedResult = purify_regex(regExResult);

// We only want the group matches in the array
function purify_regex(reResult){

  // Removes the Regex specific values and clones the array to prevent mutation
  let purifiedArray = [...reResult];

  // Removes the full match value at position 0
  purifiedArray.shift();

  // Returns a pure array without mutating the original regex result
  return purifiedArray;
}

// purifiedResult= ["description", "aoeu"]

That looks more verbose than it is because of the comments, this is what it looks like without comments

var re = /^(.+?):"(.+)"$/
var regExResult = re.exec('description:"aoeu"');
var purifiedResult = purify_regex(regExResult);

function purify_regex(reResult){
  let purifiedArray = [...reResult];
  purifiedArray.shift();
  return purifiedArray;
}

Note that any groups that do not match will be listed in the array as undefined values.

This solution uses the ES6 spread operator to purify the array of regex specific values. You will need to run your code through Babel if you want IE11 support.

Here is my answer:

var str = '[me nombre es] : My name is. [Yo puedo] is the right word'; 

var reg = /\[(.*?)\]/g;

var a = str.match(reg);

a = a.toString().replace(/[\[\]]/g, "").split(','));
  • 1
    Your input string (str) has the wrong format (too much hard brackets). You only capture the key, not the value. Your code has syntax error and and does not execute (the last parentheses). If you answer "old" question with an already acepted answer, make sure you add more knowledge and a better answer then the already accepted one. I dont think your answer does that. – Cleared Jul 3 '17 at 6:34

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