I have this string:

"Test abc test test abc test test test abc test test abc"

Doing

str = str.replace('abc', '');

seems to only remove the first occurrence of abc in the string above. How can I replace all occurrences of it?

  • 14
  • 197
    SIMPLEST: var str = 'abcabcbabc'; str.replace(/a/g, 'x'); --> 'xbcxbcxbc – FedericoCapaldo Jul 6 '16 at 18:33
  • 21
    Beware that Federico's option is great as long as your string-to-be-replaced doesn't include special regex characters. – Andrew Apr 26 '17 at 7:43
  • 5
    @Andrew Special regex characters can be escaped to be normal characters. – modiX Oct 26 '17 at 10:34
  • 2
    For anyone wondering, you can escape a regex by backslash. For example, str.replace(/\]/g) should work, but not str.replace(/]/g) because ']' is a special regex character. – ashish-goel Jan 11 at 12:41

44 Answers 44

up vote 1857 down vote accepted

For the sake of completeness, I got to thinking about which method I should use to do this. There are basically two ways to do this as suggested by the other answers on this page.

Note: In general, extending the built-in prototypes in JavaScript is generally not recommended. I am providing as extensions on the String prototype simply for purposes of illustration, showing different implementations of a hypothetical standard method on the String built-in prototype.


Regular Expression Based Implementation

String.prototype.replaceAll = function(search, replacement) {
    var target = this;
    return target.replace(new RegExp(search, 'g'), replacement);
};

Split and Join (Functional) Implementation

String.prototype.replaceAll = function(search, replacement) {
    var target = this;
    return target.split(search).join(replacement);
};

Not knowing too much about how regular expressions work behind the scenes in terms of efficiency, I tended to lean toward the split and join implementation in the past without thinking about performance. When I did wonder which was more efficient, and by what margin, I used it as an excuse to find out.

On my Chrome Windows 8 machine, the regular expression based implementation is the fastest, with the split and join implementation being 53% slower. Meaning the regular expressions are twice as fast for the lorem ipsum input I used.

Check out this benchmark running these two implementations against each other.


As noted in the comment below by @ThomasLeduc and others, there could be an issue with the regular expression-based implementation if search contains certain characters which are reserved as special characters in regular expressions. The implementation assumes that the caller will escape the string beforehand or will only pass strings that are without the characters in the table in Regular Expressions (MDN).

MDN also provides an implementation to escape our strings. It would be nice if this was also standardized as RegExp.escape(str), but alas, it does not exist:

function escapeRegExp(str) {
  return str.replace(/[.*+?^${}()|[\]\\]/g, "\\$&"); // $& means the whole matched string
}

We could call escapeRegExp within our String.prototype.replaceAll implementation, however, I'm not sure how much this will affect the performance (potentially even for strings for which the escape is not needed, like all alphanumeric strings).

  • 6
    On Android 4.1 the regexp method is 15% faster, but you are not escaping the expression to search for, so this benchmark is incomplete. – andreszs Jan 19 '15 at 0:01
  • 23
    There is an issue with this solution, if you're search string appears to contains special characters of a regexp expression, they will be interpreted. I recommend the @Sandy Unitedwolf answer. – Thomas Leduc Feb 17 '16 at 16:09
  • 2
    The first one will do this: 'bla.bla'.replaceAll('.', '_'); "_______". The second one will do 'bla_bla', which is more generally what you want to do. – RobKohr Feb 21 '16 at 1:12
  • 34
    Gloss over answer. Go to the next, "incorrect"-marked answer with 5x more votes. That's what you want. – HoldOffHunger Aug 30 '16 at 0:58
  • 1
    @ThomasLeduc it looks like the issue you mentioned can be worked around with lodash => lodash.com/docs/4.17.5#escapeRegExp – mattnificent Mar 15 at 7:47
str = str.replace(/abc/g, '');

In response to comment:

var find = 'abc';
var re = new RegExp(find, 'g');

str = str.replace(re, '');

In response to Click Upvote's comment, you could simplify it even more:

function replaceAll(str, find, replace) {
    return str.replace(new RegExp(find, 'g'), replace);
}

Note: Regular expressions contain special (meta) characters, and as such it is dangerous to blindly pass an argument in the find function above without pre-processing it to escape those characters. This is covered in the Mozilla Developer Network's JavaScript Guide on Regular Expressions, where they present the following utility function:

function escapeRegExp(str) {
    return str.replace(/([.*+?^=!:${}()|\[\]\/\\])/g, "\\$1");
}

So in order to make the replaceAll() function above safer, it could be modified to the following if you also include escapeRegExp:

function replaceAll(str, find, replace) {
    return str.replace(new RegExp(escapeRegExp(find), 'g'), replace);
}
  • 2
    Regular expressions are the only way to accomplish this "out of the box" without implementing your own 'replaceAll' method. I'm not suggesting their use just for the sake of using them. – Sean Bright Jul 17 '09 at 19:47
  • 8
    This is my own function from this comment: function replaceAll(find, replace,str) { var re = new RegExp(find, 'g'); str = str.replace(re, replace); return str; } – Click Upvote Jul 17 '09 at 21:11
  • 33
    Major caveat of of the replaceAll implementation is that it won't work if find contains metacharacters. – Martin Ender Aug 27 '13 at 0:39
  • 1
    @SeanBright you're right. I used your javascript in a php code so I had to add an extra backslash to escape. On the fiddle your code is perfect. I should have checked. Apologies jsfiddle.net/7y19xyq8 – Onimusha Jul 2 '15 at 16:38
  • 2

Note: Don't use this in real code.

As an alternative to regular expressions for a simple literal string, you could use

str = "Test abc test test abc test...".split("abc").join("");

The general pattern is

str.split(search).join(replacement)

This used to be faster in some cases than using replaceAll and a regular expression, but that doesn't seem to be the case anymore in modern browsers. So, this should really only be used as a quick hack to avoid needing to escape the regular expression, not in real code.

  • 126
    It surprised me, as I would expect this method to be allocating more objects, creating more garbage, and thus take longer, but when I actually tested in a browser this method was consistently about 20% faster than the accepted response. Results may vary, of course. – MgSam Sep 20 '13 at 20:22
  • 34
    I was curious myself, and set up this: jsperf.com/replace-all-vs-split-join . It seems that v8 is just crazy fast at splitting/joining arrays compared to other javascript engines. – fabi Nov 23 '13 at 21:02
  • 7
    Very nice - also saves you from the possibility of bad RegExps when passing in special characters. I'm adding in a generic flag for "find this and replace it" in an object property, but was concerned if I needed to replace "." or "}" and forgot I was using RegEx 3 months later! – tobriand Apr 3 '14 at 8:01
  • 3
    On my ipad2/safari, split/join is 65% slower than replace so your results may vary. – mrk May 30 '14 at 3:30
  • 5
    And as String.prototype: String.prototype.replaceAll = function(f,r){return this.split(f).join(r);}. Usage: "My string".replaceAll('st', ''); produces "My ring" – MacroMan Sep 26 '14 at 11:50

Using a regular expression with the g flag set will replace all:

someString = 'the cat looks like a cat';
anotherString = someString.replace(/cat/g, 'dog');
// anotherString now contains "the dog looks like a dog"

See here also

  • 13
    Kinda silly I think, but the JS global regex is the only way to do multiple replaces. – Mike May 7 '09 at 2:43
  • 2
    well technically you can loop through var sourceText count the number of instances (numOfInstances) using substring or split and count the length (among other strategies) of thatWhichYouWantToReplace then do for (var i = 0; i < numOfInstances; i++){ sourceText = sourceText.replace('thatWhichYouWantToReplace', ''); } or even easier just use a while loop (while sourceText.indexOf(thatWhichYouWantToReplace > -1){ sourceText = sourceText.replace(...)) but I don't see why you would want to do it that way when using /g is so easy and probably more performant. – Zargold Mar 20 '16 at 22:20

Here's a string prototype function based on the accepted answer:

String.prototype.replaceAll = function (find, replace) {
    var str = this;
    return str.replace(new RegExp(find, 'g'), replace);
};

EDIT

If your find will contain special characters then you need to escape them:

String.prototype.replaceAll = function (find, replace) {
    var str = this;
    return str.replace(new RegExp(find.replace(/[-\/\\^$*+?.()|[\]{}]/g, '\\$&'), 'g'), replace);
};

Fiddle: http://jsfiddle.net/cdbzL/

  • 5
    But what if find contains characters like . or $ that have special meanings in regex? – callum Oct 7 '13 at 11:30
  • 1
    @callum In that case you'd have to escape your find variable (see edit above). – jesal Oct 7 '13 at 16:41
  • 7
  • jesal, this is a wonderful solution to a string replacement problem I've encountered, and it apparently overcomes the "immutability" of strings in JavaScript. Could you or someone else explain how this prototype function overrides the immutability of strings? This does work; I just want to understand this ancillary question it poses. – Tom Jan 12 '16 at 0:08
  • 1
    @Tom: It doesn't overcome the immutability at all: var str = this creates a second reference to the immutable string, to which the replace method is applied, which in turn returns a new immutable string. these prototype functions return a new immutable string, if not, you'd be able to write someStrVar.replaceAll('o', '0'); and someStrVar would be changed. Instead, you have to write someStrVar = someStrVar.replaceAll('o', '0'); <-- reassign to set the var to hold the new immutable string. there's no way around that. Try in console: x = 'foobar'; x.replaceAll('o', '0'); x; – Elias Van Ootegem Jun 15 '16 at 16:26

Update:

It's somewhat late for an update, but since I just stumbled on this question, and noticed that my previous answer is not one I'm happy with. Since the question involved replaceing a single word, it's incredible nobody thought of using word boundaries (\b)

'a cat is not a caterpillar'.replace(/\bcat\b/gi,'dog');
//"a dog is not a caterpillar"

This is a simple regex that avoids replacing parts of words in most cases. However, a dash - is still considered a word boundary. So conditionals can be used in this case to avoid replacing strings like cool-cat:

'a cat is not a cool-cat'.replace(/\bcat\b/gi,'dog');//wrong
//"a dog is not a cool-dog" -- nips
'a cat is not a cool-cat'.replace(/(?:\b([^-]))cat(?:\b([^-]))/gi,'$1dog$2');
//"a dog is not a cool-cat"

basically, this question is the same as the question here: Javascript replace " ' " with " '' "

@Mike, check the answer I gave there... regexp isn't the only way to replace multiple occurrences of a subsrting, far from it. Think flexible, think split!

var newText = "the cat looks like a cat".split('cat').join('dog');

Alternatively, to prevent replacing word parts -which the approved answer will do, too! You can get around this issue using regular expressions that are, I admit, somewhat more complex and as an upshot of that, a tad slower, too:

var regText = "the cat looks like a cat".replace(/(?:(^|[^a-z]))(([^a-z]*)(?=cat)cat)(?![a-z])/gi,"$1dog");

The output is the same as the accepted answer, however, using the /cat/g expression on this string:

var oops = 'the cat looks like a cat, not a caterpillar or coolcat'.replace(/cat/g,'dog');
//returns "the dog looks like a dog, not a dogerpillar or cooldog" ?? 

Oops indeed, this probably isn't what you want. What is, then? IMHO, a regex that only replaces 'cat' conditionally. (ie not part of a word), like so:

var caterpillar = 'the cat looks like a cat, not a caterpillar or coolcat'.replace(/(?:(^|[^a-z]))(([^a-z]*)(?=cat)cat)(?![a-z])/gi,"$1dog");
//return "the dog looks like a dog, not a caterpillar or coolcat"

My guess is, this meets your needs. It's not fullproof, of course, but it should be enough to get you started. I'd recommend reading some more on these pages. This'll prove useful in perfecting this expression to meet your specific needs.

http://www.javascriptkit.com/jsref/regexp.shtml

http://www.regular-expressions.info


Final addition:

Given that this question still gets a lot of views, I thought I might add an example of .replace used with a callback function. In this case, it dramatically simplifies the expression and provides even more flexibility, like replacing with correct capitalisation or replacing both cat and cats in one go:

'Two cats are not 1 Cat! They\'re just cool-cats, you caterpillar'
   .replace(/(^|.\b)(cat)(s?\b.|$)/gi,function(all,char1,cat,char2)
    {
       //check 1st, capitalize if required
       var replacement = (cat.charAt(0) === 'C' ? 'D' : 'd') + 'og';
       if (char1 === ' ' && char2 === 's')
       {//replace plurals, too
           cat = replacement + 's';
       }
       else
       {//do not replace if dashes are matched
           cat = char1 === '-' || char2 === '-' ? cat : replacement;
       }
       return char1 + cat + char2;//return replacement string
    });
//returns:
//Two dogs are not 1 Dog! They're just cool-cats, you caterpillar
  • I think the additional interesting part should placed at the bottom. ps.: I noticed just now that the half of the first line is out of the area, let me allow to fix that! – user669677 Jul 4 '13 at 16:31

Match against a global regular expression:

anotherString = someString.replace(/cat/g, 'dog');
str = str.replace(/abc/g, '');

Or try the replaceAll function from here:

What are useful JavaScript methods that extends built-in objects?

str = str.replaceAll('abc', ''); OR

var search = 'abc';
str = str.replaceAll(search, '');

EDIT: Clarification about replaceAll availability

The 'replaceAll' method is added to String's prototype. This means it will be available for all string objects/literals.

E.g.

var output = "test this".replaceAll('this', 'that');  //output is 'test that'.
output = output.replaceAll('that', 'this'); //output is 'test this'
  • 2
    Can you rewrite the replaceAll() function there for those not using prototype? – Click Upvote Jul 17 '09 at 17:57
  • @Click Upvote....you are using prototype, it's part of all JS objects. I think you are thinking of prototype.js the JS library. – seth Jul 17 '09 at 18:20
  • seth, a little correction. If you add method to a prototype, it is available to all objects of that type. The replceAll method was added to String prototype and it should work for all string objects. – SolutionYogi Jul 17 '09 at 18:23
  • @solutionyogi -- Yep, I've used prototype (correctly) before. I was just addressing the OP's comment about "not using prototype" which I assumed to mean Prototype.js (perhaps incorrectly?). I should have said "a prototype" as I was trying to say JavaScript objects have a prototype. Thus, the OP was already 'using prototype,' albeit in an "indirect" way. Indirect might be the wrong term to use here but I'm tired so mea culpa. – seth Jul 17 '09 at 23:41

Say you want to replace all the 'abc' with 'x':

let some_str = 'abc def def lom abc abc def'.split('abc').join('x')
console.log(some_str) //x def def lom x x def

I was trying to think about something more simple than modifying the string prototype.

  • 1
    Simple, easy, and probably the most performant option: nice answer. – machineghost Oct 25 '16 at 23:51
  • I don't know if it performance-wise, but.... it works. – Emilio Grisolía Jan 13 '17 at 18:18
  • Actually, while I haven't metric-ed it personally, split/join is usually a very performant solution. – machineghost Jan 13 '17 at 18:30
  • it's even in chrome, 100% faster on firefox, and 50% slower on IE...: jsperf.com/replace-regex-split-join – Olivier May 22 at 14:39

Use a regular expression:

str.replace(/abc/g, '');

Replacing single quotes:

function JavaScriptEncode(text){
    text = text.replace(/'/g,'&apos;')
    // More encode here if required

    return text;
}
  • 2
    How can i change second line to replace strings? This doesn't work: text = text.replace('hey', 'hello'); Any idea? – Stefan Đorđević Dec 9 '16 at 22:37
  • 2
    Sure Stefan, here is the code... text = text.replace(/hey/g, 'hello'); – Chris Rosete Dec 12 '16 at 13:56

//loop it until number occurrences comes to 0. OR simply copy/paste

    function replaceAll(find, replace, str) 
    {
      while( str.indexOf(find) > -1)
      {
        str = str.replace(find, replace);
      }
      return str;
    }
  • 22
    This method is dangerous, do not use it. If the replacement string contains the search keyword, then an infinite loop will occur. At the very least, store the result of .indexOf in a variable, and use this variable as the second parameter of .indexOf (minus length of keyword, plus length of replacement string). – Rob W Oct 29 '13 at 11:33
  • I'm thinking about first replacing the search pattern with a weired unicode char, of that we are sure it is not used in the input string. Like U+E000 in the private area. And then replace it back to the target. I've build that here.. I'm not sure if thats a good Idea. – Lux Jul 2 '14 at 13:42

This is the fastest version that doesn't use regular expressions.

Revised jsperf

replaceAll = function(string, omit, place, prevstring) {
  if (prevstring && string === prevstring)
    return string;
  prevstring = string.replace(omit, place);
  return replaceAll(prevstring, omit, place, string)
}

It is almost twice as fast as the split and join method.

As pointed out in a comment here, this will not work if your omit variable contains place, as in: replaceAll("string", "s", "ss"), because it will always be able to replace another occurrence of the word.

There is another jsperf with variants on my recursive replace that go even faster (http://jsperf.com/replace-all-vs-split-join/12)!

  • Update July 27th 2017: It looks like RegExp now has the fastest performance in the recently released Chrome 59.
  • I loved your solution... I wish I could give you +10 but here's my +1. I think you can store index of the sub-string that was replaced and jump to the next if a match is found at a lower index to avoid that infinite loop problem. I can't comment about the performance because I didn't test it but that's just my 2 cents on this piece of excellence. – Fr0zenFyr Jul 10 '14 at 4:40
  • @fr0zenfyr if you want to check if omit is in place (to prevent infinite loop) you could do a conditional like if(place.replace(omit) === omit) { No match, so it's safe to use replace loop } else { Match so use different method like split and join } – Cole Lawrence Jul 10 '14 at 12:41
  • Hmm.. but whats the point combining two solutions? I'm anyway not a fan of split/join approach anyway.. thanks for the advise.. – Fr0zenFyr Jul 11 '14 at 4:14
  • @Fr0zenFyr I believe the purpose of combining the two solutions would be to fallback on a slower method if you can't use the faster one (when the loop would be infinite for example). So it would be a safe guard to ensure functionality with efficiency, but without possibility of failure. – Cole Lawrence Jul 11 '14 at 13:13
  • Flawed............ – momo Jul 7 '17 at 9:52
str = str.replace(new RegExp("abc", 'g'), "");

worked better for me than the above answers. so new RegExp("abc", 'g') creates a RegExp what matches all occurence ('g' flag) of the text ("abc"). The second part is what gets replaced to, in your case empty string (""). str is the string, and we have to override it, as replace(...) just returns result, but not overrides. In some cases you might want to use that.

  • While this code snippet may be the solution, including an explanation really helps to improve the quality of your post. Remember that you are answering the question for readers in the future, and those people might not know the reasons for your code suggestion. – yivi Dec 28 '17 at 15:46
  • Yeah, you're right. added. also edited it to answer the original question :) – csomakk Dec 29 '17 at 17:54
  • Note: g flag in regex means it is global flag which will match all occurrences – firstpostcommenter Jul 2 at 16:15
function replaceAll(str, find, replace) {
  var i = str.indexOf(find);
  if (i > -1){
    str = str.replace(find, replace); 
    i = i + replace.length;
    var st2 = str.substring(i);
    if(st2.indexOf(find) > -1){
      str = str.substring(0,i) + replaceAll(st2, find, replace);
    }       
  }
  return str;
}
  • I wonder how well that performs ... substring is native or walks over char array to create the new characters. – momo Jul 7 '17 at 9:53

If what you want to find is already in a string, and you don't have a regex escaper handy, you can use join/split:

    function replaceMulti(haystack, needle, replacement)
    {
        return haystack.split(needle).join(replacement);
    }

    someString = 'the cat looks like a cat';
    console.log(replaceMulti(someString, 'cat', 'dog'));

Using RegExp in JavaScript could do the job for you, just simply do something like below:

var str ="Test abc test test abc test test test abc test test abc";
str = str.replace(/abc/g, '');

If you think of reuse, create a function to do that for you, but it's not recommended as it's only one line function, but again if you heavily get use of this, you can write something like this:

String.prototype.replaceAll = String.prototype.replaceAll || function(string, replaced) {
  return this.replace(new RegExp(string, 'g'), replaced);
};

and simply use it in your code over and over like below:

var str ="Test abc test test abc test test test abc test test abc";
str = str.replaceAll('abc', '');

But as I mention earlier, it won't make a huge difference in terms of lines to be written or performance, only caching the function may effect some faster performance on long strings and also a good practice of DRY code if you want to reuse.

var str = "ff ff f f a de def";
str = str.replace(/f/g,'');
alert(str);

http://jsfiddle.net/ANHR9/

  • what was the point of a fiddle that only contains the same javascript – JGallardo Feb 8 '17 at 0:42
while (str.indexOf('abc') !== -1)
{
    str = str.replace('abc', '');
}
  • 3
    @AlexK. whats wrong with this? I thought it was quite nice – duxfox-- Mar 14 '15 at 1:54

I like this method (it looks a little cleaner):

text = text.replace(new RegExp("cat","g"), "dog"); 
  • 1
    Okay, how do you escape the string to use it as a regex pattern? – rakslice Jun 19 '13 at 21:16

If the string contain similar pattern like abccc, you can use this:

str.replace(/abc(\s|$)/g, "")

Just follow this oneliner regex adding the case-sensitivity, so if you do "ABC", it would act the same as that for "abc".

str = str.replace(/abc/gi, "");

If you are trying to ensure that the string you are looking for won't exist even after the replacement, you need to use a loop.

For example:

var str = 'test aabcbc';
str = str.replace(/abc/g, '');

When complete, you will still have 'test abc'!

The simplest loop to solve this would be:

var str = 'test aabcbc';
while (str != str.replace(/abc/g, '')){
   str.replace(/abc/g, '');
}

But that runs the replacement twice for each cycle. Perhaps (at risk of being voted down) that can be combined for a slightly more efficient but less readable form:

var str = 'test aabcbc';
while (str != (str = str.replace(/abc/g, ''))){}
// alert(str); alerts 'test '!

This can be particularly useful when looking for duplicate strings.
For example, if we have 'a,,,b' and we wish to remove all duplicate commas.
[In that case, one could do .replace(/,+/g,','), but at some point the regex gets complex and slow enough to loop instead.]

  • Downvoters care to explain? The answer is correct in the case that such a solution is needed. – SamGoody Jan 5 '15 at 21:13
var string  = 'Test abc Test abc Test abc Test abc'
string = string.replace(/abc/g, '')
console.log(string)
  • 4
    This seems to be just a repeat of this existing answer (and many other of the existing answers). – Pang Mar 9 at 10:04

You can simply use below method

/**
 * Replace all the occerencess of $find by $replace in $originalString
 * @param  {originalString} input - Raw string.
 * @param  {find} input - Target key word or regex that need to be replaced.
 * @param  {replace} input - Replacement key word
 * @return {String}       Output string
 */
function replaceAll(originalString, find, replace) {
  return originalString.replace(new RegExp(find, 'g'), replace);
};

Although people have mentioned the use of regex but there's a better approach if you want to replace the text irrespective of the case of the text. Like uppercase or lowercase. Use below syntax

//Consider below example
originalString.replace(/stringToBeReplaced/gi, '');

//Output will be all the occurrences removed irrespective of casing.

You can refer the detailed example here.

  • from the example site: "/toBeReplacedString/gi is the regex you need to use. Here g represents for global match and i represents case insensitive. By default regex is case sensitive" – alikuli Aug 3 '16 at 10:15

You could try combining this two powerful methods.

"test abc test test abc".split("abc").join("")

Hope it helps!

Just add /g

document.body.innerHTML = document.body.innerHTML.replace('hello', 'hi');

to

// Replace 'hello' string with /hello/g regular expression.
document.body.innerHTML = document.body.innerHTML.replace(/hello/g, 'hi');

/g means global

The following function works for me:

String.prototype.replaceAllOccurence = function(str1, str2, ignore)
{
    return this.replace(new RegExp(str1.replace(/([\/\,\!\\\^\$\{\}\[\]\(\)\.\*\+\?\|\<\>\-\&])/g,"\\$&"),(ignore?"gi":"g")),(typeof(str2)=="string")?str2.replace(/\$/g,"$$$$"):str2);
} ;

Now call the functions like this:

"you could be a Project Manager someday, if you work like this.".replaceAllOccurence ("you", "I");

Simply copy and paste this code in your browser console to TEST.

I use p to store the result from the previous recursion replacement:

function replaceAll(s, m, r, p) {
    return s === p || r.contains(m) ? s : replaceAll(s.replace(m, r), m, r, s);
}

It will replace all occurrences in the string s until it is possible:

replaceAll('abbbbb', 'ab', 'a') → 'abbbb' → 'abbb' → 'abb' → 'ab' → 'a'

To avoid infinite loop I check if the replacement r contains a match m:

replaceAll('abbbbb', 'a', 'ab') → 'abbbbb'

protected by Pankaj Parkar Sep 1 '15 at 10:41

Thank you for your interest in this question. Because it has attracted low-quality or spam answers that had to be removed, posting an answer now requires 10 reputation on this site (the association bonus does not count).

Would you like to answer one of these unanswered questions instead?

Not the answer you're looking for? Browse other questions tagged or ask your own question.