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x.replace(/old/gi. 'new');
x.replace(/whatever/gi. 'whatevernew');
x.replace(/car/gi. 'boat');

Is there a way to combine those in one regexp statement perhaps and array of old and new words. PHP solution is also welcome.

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2  
i think you will have good use of this LINK –  Ibu Jun 30 '11 at 3:53

6 Answers 6

up vote 1 down vote accepted

Try this:

var regexes = { 'new': /old/gi, 'whatevernew': /whatever/gi, 'boat': /car/gi };

$.each(regexes, function(newone, regex){
  x = x.replace(regex, newone);
});

Or this:

var regexes = { 'old':'new', 'whatever':'whatevernew', 'car':'boat'};

$.each(regexes, function(oldone, newone){
  x = x.replace(new RegExp(oldone, 'gi'), newone);
});
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1  
The problem here is that the order isn't defined: it's possible whatever and new will be replaced before whatevernew, so you may get different results in different iterations (or at least different browsers) –  Kobi Jun 30 '11 at 4:09
    
@Kobi I think it'll process sequentially. I couldn't find any resource about jQuery.each()'s order. Do you have one? –  Sangdol Jun 30 '11 at 4:24
    
This one, for example: stackoverflow.com/questions/242841#243778 , or this: developer.mozilla.org/en/JavaScript/Reference/Statements/… . It isn't specific to jQuery.each: there is no order among object properties. It doesn't matter how jQuery.each is implemented, you cannot rely on the definition of the variable regexes. The order in which you wrote the properties isn't guaranteed to be kept internally. –  Kobi Jun 30 '11 at 4:38
    
@Kobi I couldn't remember that. Thanks for reminding me. –  Sangdol Jun 30 '11 at 4:54

You could do something like this:

var x = 'The old car is just whatever';
var arr = [{ old: /old/gi, new: 'new' },
           { old: /whatever/gi, new: 'whatevernew' },
           { old: /car/gi, new: 'boat' }];

for (var ii = 0; ii < arr.length; ii++) {
    x = x.replace(arr[ii].old, arr[ii].new);
}
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Actually, you do need a regex just to replace word. This code will will only replace each word once, and is case sensitive. You want x.raplace(new RegExp(arr[ii].old, 'gi'), arr[ii].new). –  Kobi Jun 30 '11 at 4:07
    
Good call. I made an appropriate edit. –  FishBasketGordo Jun 30 '11 at 4:17

lbu and RobG present an interesting approach using the callback. Here's a little more general purpose version of that where you have a function that just takes a data structure of what you want to replace and what you want to replace it with as a parameter.

function multiReplace(str, params) {
    var regStr = "";
    for (var i in params) {
        regStr += "(" + i + ")|";    // build regEx string
    }
    regStr = regStr.slice(0, -1);   // remove extra trailing |
    return(str.replace(new RegExp(regStr, "gi"), function(a) {
        return(params[a]);
    }));
}


var test = 'This old car is just whatever and really old';
var replaceParam = {"old": "new", "whatever": "something", "car": "boat"};

var result = multiReplace(test, replaceParam);
alert(result);

And a fiddle that shows it in action: http://jsfiddle.net/jfriend00/p8wKH/

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Clean solution +1. –  ridgerunner Jul 1 '11 at 4:51

Here's a couple more:

// Multi RegExp version
var replaceSeveral = (function() {
  var data = {old:'new', whatever: 'whatevernew', car: 'boat'};

  return function(s) {
    var re;
    for (var p in data) {
      if (data.hasOwnProperty(p)) {
        re = new RegExp('(^|\\b)' + p + '(\\b|$)','ig');
        s = s.replace(re, '$1' + data[p] + '$2');
      }
    }
    return s;
  }
}());

// Replace function version
var comparitor = (function() {
  var data = {old:'new', whatever: 'whatevernew', car: 'boat'};
  return function (word) {
    return data.hasOwnProperty(word.toLowerCase())? data[word] : word;
  }
}());


var s = 'old this old whatever is a car';
alert(
  s 
  + '\n' + replaceSeveral(s)
  + '\n' + s.replace(/\w+/ig, comparitor)

);
share|improve this answer

Ibu's callback solution is pretty clean, but can be further streamlined:

x = x.replace(/\b(?:old|whatever|car)\b/gi,
        function (m0) {
            return {'old': 'new',
                    'car': 'boat',
                    'whatever': 'something'}[m0];
        });

This technique of using an object literal is quite efficient. I modified the regex to match only whole words by adding word boundaries (to avoid changing gold to gnew etc).

EDIT: Upon closer inspection, I see that jfriend00's solution is using the same technique (and is generalized to be more useful).

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Looking a all the solutions provided, it seem like my original code is allot shorter and more efficient then most of the answers provided here. +1 for the efforts –  Pinkie Jul 1 '11 at 5:40

the replace method supports using a a call back function:

var x = 'This old car is just whatever';
var y = x.replace(/(old)|(whatever)|(car)/gi,function (a) {
    var str = "";

    switch(a){
      case "old":
         str = "new";
         break;
      case "whatever":
         str = "something";
         break;
      case "car":
         str = "boat";
         break;
      default: 
         str= "";
    }
    return str;
});
alert(y);

// Y will print "This new car is just something"
share|improve this answer
    
I think switch statement would be better. –  Sangdol Jun 30 '11 at 4:27
    
@Sangdol you right switch will be cleaner in this case –  Ibu Jun 30 '11 at 4:52
    
I like this one best. +1 However the callback function can be simplified to a single statement (see my solution). –  ridgerunner Jul 1 '11 at 4:45

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