208

I'm trying to replace multiple words in a string with multiple other words. The string is "I have a cat, a dog, and a goat."

However, this does not produce "I have a dog, a goat, and a cat", but instead it produces "I have a cat, a cat, and a cat". Is it possible to replace multiple strings with multiple other strings at the same time in JavaScript, so that the correct result will be produced?

var str = "I have a cat, a dog, and a goat.";
str = str.replace(/cat/gi, "dog");
str = str.replace(/dog/gi, "goat");
str = str.replace(/goat/gi, "cat");

//this produces "I have a cat, a cat, and a cat"
//but I wanted to produce the string "I have a dog, a goat, and a cat".
  • I want to replace multiple words in a string with multiple other words, without replacing words that have already been replaced. – Anderson Green Mar 24 '13 at 21:21
  • i've some different query, what if i dnt know user is going to enter cat or dog or goat(this is randomly coming) but whenever this kinda word will come i need to replace with let's say 'animal'. how to get this scenario – Prasanna Sasne Nov 5 '18 at 8:06

16 Answers 16

436

Specific Solution

You can use a function to replace each one.

var str = "I have a cat, a dog, and a goat.";
var mapObj = {
   cat:"dog",
   dog:"goat",
   goat:"cat"
};
str = str.replace(/cat|dog|goat/gi, function(matched){
  return mapObj[matched];
});

jsfiddle example

Generalizing it

If you want to dynamically maintain the regex and just add future exchanges to the map, you can do this

new RegExp(Object.keys(mapObj).join("|"),"gi"); 

to generate the regex. So then it would look like this

var mapObj = {cat:"dog",dog:"goat",goat:"cat"};

var re = new RegExp(Object.keys(mapObj).join("|"),"gi");
str = str.replace(re, function(matched){
  return mapObj[matched];
});

And to add or change any more replacements you could just edit the map. 

fiddle with dynamic regex

Making it Reusable

If you want this to be a general pattern you could pull this out to a function like this

function replaceAll(str,mapObj){
    var re = new RegExp(Object.keys(mapObj).join("|"),"gi");

    return str.replace(re, function(matched){
        return mapObj[matched.toLowerCase()];
    });
}

So then you could just pass the str and a map of the replacements you want to the function and it would return the transformed string.

fiddle with function

To ensure Object.keys works in older browsers, add a polyfill eg from MDN or Es5.

| improve this answer | |
  • 4
    I'm not sure if I could use this function to replace all types of strings, since the characters that are allowed in JavaScript strings are not the same as the characters that are allowed in JavaScript identifiers (such as the keys that are used here). – Anderson Green May 23 '13 at 22:22
  • 2
    you can use an arbitrary string in as a javascript property. Shouldn't matter. You just can't use the . notation with all such properties. Brackets notation works with any string. – Ben McCormick May 23 '13 at 23:18
  • 2
    It indeed works great. I am succesfully using this solution (the 'specific' one) to change English number notations into European ones (24,973.56 to 24.973,56), using map={'.': ',', ',': '.'} and regex /\.|,/g. – Sygmoral Aug 28 '13 at 8:51
  • 5
    I love this solution but I had to replace return mapObj[matched.toLowerCase()]; to just return mapObj[matched]; since I use case sensitive keys in mapObj. – Michal Moravcik Nov 21 '14 at 13:02
  • 2
    You may want to escape the keys for the regular expression: Object.keys(mapObj).map(key => key.replace(/[-\/\\^$*+?.()|[\]{}]/g, '\\$&')).join('|'). Inspired by this answer – robsch Jul 16 '19 at 12:20
9

This may not meet your exact need in this instance, but I've found this a useful way to replace multiple parameters in strings, as a general solution. It will replace all instances of the parameters, no matter how many times they are referenced:

String.prototype.fmt = function (hash) {
        var string = this, key; for (key in hash) string = string.replace(new RegExp('\\{' + key + '\\}', 'gm'), hash[key]); return string
}

You would invoke it as follows:

var person = '{title} {first} {last}'.fmt({ title: 'Agent', first: 'Jack', last: 'Bauer' });
// person = 'Agent Jack Bauer'
| improve this answer | |
8

Use numbered items to prevent replacing again. eg

let str = "I have a %1, a %2, and a %3";
let pets = ["dog","cat", "goat"];

then

str.replace(/%(\d+)/g, (_, n) => pets[+n-1])

How it works:- %\d+ finds the numbers which come after a %. The brackets capture the number.

This number (as a string) is the 2nd parameter, n, to the lambda function.

The +n-1 converts the string to the number then 1 is subtracted to index the pets array.

The %number is then replaced with the string at the array index.

The /g causes the lambda function to be called repeatedly with each number which is then replaced with a string from the array.

In modern JavaScript:-

replace_n=(str,...ns)=>str.replace(/%(\d+)/g,(_,n)=>ns[n-1])
| improve this answer | |
5

This worked for me:

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

function replaceAll(str, map){
    for(key in map){
        str = str.replaceAll(key, map[key]);
    }
    return str;
}

//testing...
var str = "bat, ball, cat";
var map = {
    'bat' : 'foo',
    'ball' : 'boo',
    'cat' : 'bar'
};
var new = replaceAll(str, map);
//result: "foo, boo, bar"
| improve this answer | |
  • 5
  • Doesn't work if the string contains regex characters. – Roemer Jun 18 '19 at 18:34
  • About "don't extend...": I extended my String to compare two strings for equality, case-insensitive. This functionality is not provided by String, but it might be someday, which could cause my apps to break. Is there a way to "subclass" or "extend" String to include such a function safely, or should I simply define a new two-argument function as part of my app library? – David Spector Sep 6 '19 at 17:58
3

using Array.prototype.reduce():

const arrayOfObjects = [
  { plants: 'men' },
  { smart:'dumb' },
  { peace: 'war' }
]
const sentence = 'plants are smart'

arrayOfObjects.reduce(
  (f, s) => `${f}`.replace(Object.keys(s)[0], s[Object.keys(s)[0]]), sentence
)

// as a reusable function
const replaceManyStr = (obj, sentence) => obj.reduce((f, s) => `${f}`.replace(Object.keys(s)[0], s[Object.keys(s)[0]]), sentence)

const result = replaceManyStr(arrayOfObjects , sentence1)

Example

// /////////////    1. replacing using reduce and objects

// arrayOfObjects.reduce((f, s) => `${f}`.replace(Object.keys(s)[0], s[Object.keys(s)[0]]), sentence)

// replaces the key in object with its value if found in the sentence
// doesn't break if words aren't found

// Example

const arrayOfObjects = [
  { plants: 'men' },
  { smart:'dumb' },
  { peace: 'war' }
]
const sentence1 = 'plants are smart'
const result1 = arrayOfObjects.reduce((f, s) => `${f}`.replace(Object.keys(s)[0], s[Object.keys(s)[0]]), sentence1)

console.log(result1)

// result1: 
// men are dumb


// Extra: string insertion python style with an array of words and indexes

// usage

// arrayOfWords.reduce((f, s, i) => `${f}`.replace(`{${i}}`, s), sentence)

// where arrayOfWords has words you want to insert in sentence

// Example

// replaces as many words in the sentence as are defined in the arrayOfWords
// use python type {0}, {1} etc notation

// five to replace
const sentence2 = '{0} is {1} and {2} are {3} every {5}'

// but four in array? doesn't break
const words2 = ['man','dumb','plants','smart']

// what happens ?
const result2 = words2.reduce((f, s, i) => `${f}`.replace(`{${i}}`, s), sentence2)

console.log(result2)

// result2: 
// man is dumb and plants are smart every {5}

// replaces as many words as are defined in the array
// three to replace
const sentence3 = '{0} is {1} and {2}'

// but five in array
const words3 = ['man','dumb','plant','smart']

// what happens ? doesn't break
const result3 = words3.reduce((f, s, i) => `${f}`.replace(`{${i}}`, s), sentence3)

console.log(result3)

// result3: 
// man is dumb and plants

| improve this answer | |
  • Best answer. But is there a reason to use ${f} instead of f for the accumulating value? – David Spector Sep 6 '19 at 18:27
  • 1
    If you want ALL of the given strings to be replaced, not just the first, add the g flag: "const result1 = arrayOfObjects.reduce((f, s) => ${f}.replace(new RegExp(Object.keys(s)[0],'g'), s[Object.keys(s)[0]]), sentence1)" – David Spector Sep 6 '19 at 18:55
2

Just in case someone is wondering why the original poster's solution is not working:

var str = "I have a cat, a dog, and a goat.";

str = str.replace(/cat/gi, "dog");
// now str = "I have a dog, a dog, and a goat."

str = str.replace(/dog/gi, "goat");
// now str = "I have a goat, a goat, and a goat."

str = str.replace(/goat/gi, "cat");
// now str = "I have a cat, a cat, and a cat."
| improve this answer | |
  • ha ha ... well analysed ... thumbsup – Deepa MG Nov 13 '19 at 6:52
1

user regular function to define the pattern to replace and then use replace function to work on input string,

var i = new RegExp('"{','g'),
    j = new RegExp('}"','g'),
    k = data.replace(i,'{').replace(j,'}');
| improve this answer | |
  • If you not aware skip, but don't say it is the wrong answer. My case "{"a":1,"b":2}" like that is there I used to replace the above way. If it helps others if they want for other the answer is not for you only. @Carr – KARTHIKEYAN.A Oct 26 '19 at 5:15
  • Again, you just provided a meaningless answer, what you do is the asker already can do in the question, this answer will mislead people that they may think new and utilize the RegExp object could solve the problem – Carr Oct 27 '19 at 16:27
  • In this case, you still have the same problem as asker's question when you do var i = new RegExp('}','g'), j = new RegExp('{','g'), k = data.replace(i,'{').replace(j,'}'); – Carr Oct 27 '19 at 16:28
1

With my replace-once package, you could do the following:

const replaceOnce = require('replace-once')

var str = 'I have a cat, a dog, and a goat.'
var find = ['cat', 'dog', 'goat']
var replace = ['dog', 'goat', 'cat']
replaceOnce(str, find, replace, 'gi')
//=> 'I have a dog, a goat, and a cat.'
| improve this answer | |
  • This package is amazing :) Works exactly as i expected – Vishnu Prassad Feb 6 at 8:54
1
    var str = "I have a cat, a dog, and a goat.";

    str = str.replace(/goat/i, "cat");
    // now str = "I have a cat, a dog, and a cat."

    str = str.replace(/dog/i, "goat");
    // now str = "I have a cat, a goat, and a cat."

    str = str.replace(/cat/i, "dog");
    // now str = "I have a dog, a goat, and a cat."
| improve this answer | |
  • 3
    The OP asked "Is it possible to replace multiple strings with multiple other strings at the same time". This is three separate steps. – LittleBobbyTables - Au Revoir Jun 17 '19 at 13:13
1

You can find and replace string using delimiters.

var obj = {
  'firstname': 'John',
  'lastname': 'Doe'
}

var text = "My firstname is {firstname} and my lastname is {lastname}"

console.log(mutliStringReplace(obj,text))

function mutliStringReplace(object, string) {
      var val = string
      var entries = Object.entries(object);
      entries.forEach((para)=> {
          var find = '{' + para[0] + '}'
          var regExp = new RegExp(find,'g')
       val = val.replace(regExp, para[1])
    })
  return val;
}

| improve this answer | |
0
String.prototype.replaceSome = function() {
    var replaceWith = Array.prototype.pop.apply(arguments),
        i = 0,
        r = this,
        l = arguments.length;
    for (;i<l;i++) {
        r = r.replace(arguments[i],replaceWith);
    }
    return r;
}

/* replaceSome method for strings it takes as ,much arguments as we want and replaces all of them with the last argument we specified 2013 CopyRights saved for: Max Ahmed this is an example:

var string = "[hello i want to 'replace x' with eat]";
var replaced = string.replaceSome("]","[","'replace x' with","");
document.write(string + "<br>" + replaced); // returns hello i want to eat (without brackets)

*/

jsFiddle: http://jsfiddle.net/CPj89/

| improve this answer | |
0
<!DOCTYPE html>
<html>
<body>



<p id="demo">Mr Blue 
has a           blue house and a blue car.</p>

<button onclick="myFunction()">Try it</button>

<script>
function myFunction() {
    var str = document.getElementById("demo").innerHTML;
    var res = str.replace(/\n| |car/gi, function myFunction(x){

if(x=='\n'){return x='<br>';}
if(x==' '){return x='&nbsp';}
if(x=='car'){return x='BMW'}
else{return x;}//must need



});

    document.getElementById("demo").innerHTML = res;
}
</script>

</body>
</html>
| improve this answer | |
0

I wrote this npm package stringinject https://www.npmjs.com/package/stringinject which allows you to do the following

var string = stringInject("this is a {0} string for {1}", ["test", "stringInject"]);

which will replace the {0} and {1} with the array items and return the following string

"this is a test string for stringInject"

or you could replace placeholders with object keys and values like so:

var str = stringInject("My username is {username} on {platform}", { username: "tjcafferkey", platform: "GitHub" });

"My username is tjcafferkey on Github" 
| improve this answer | |
0

You can use https://www.npmjs.com/package/union-replacer for this purpose. It is basically a string.replace(regexp, ...) counterpart, which allows multiple replaces to happen in one pass while preserving full power of string.replace(...).

Disclosure: I am the author. The library was developed to support more complex user-configurable replacements and it addresses all the problematic things like capture groups, backreferences and callback function replacements.

The solutions above are good enough for exact string replacements though.

| improve this answer | |
-1

I expanded on @BenMcCormicks a bit. His worked for regular strings but not if I had escaped characters or wildcards. Here's what I did

str = "[curl] 6: blah blah 234433 blah blah";
mapObj = {'\\[curl] *': '', '\\d: *': ''};


function replaceAll (str, mapObj) {

    var arr = Object.keys(mapObj),
        re;

    $.each(arr, function (key, value) {
        re = new RegExp(value, "g");
        str = str.replace(re, function (matched) {
            return mapObj[value];
        });
    });

    return str;

}
replaceAll(str, mapObj)

returns "blah blah 234433 blah blah"

This way it will match the key in the mapObj and not the matched word'

| improve this answer | |
  • // worthless: replaceAll("I have a cat, a dog, and a goat.", { cat:"dog", dog:"goat", goat:"cat" }) // produces: "I have a cat, a cat, and a cat." – devon Dec 13 '17 at 16:12
-3

Solution with Jquery (first include this file): Replace multiple strings with multiple other strings:

var replacetext = {
    "abc": "123",
    "def": "456"
    "ghi": "789"
};

$.each(replacetext, function(txtorig, txtnew) {
    $(".eng-to-urd").each(function() {
        $(this).text($(this).text().replace(txtorig, txtnew));
    });
});
| improve this answer | |
  • Does this solution require JQuery? – Anderson Green Jan 16 '18 at 18:56
  • javascript tag added in question, and jquery is a libarary of javascript. – Super Model Jan 16 '18 at 20:50
  • 2
    @Super javascript tag added in question, and jquery is a libarary of javascript. Hmmm that logic is off, it should be other way round, and also just a heads up - from javascript tag info: "Unless another tag for a framework/library is also included, a pure JavaScript answer is expected." – Traxo Feb 20 '18 at 14:57
  • @Anderson Green, yes jquery needed for above script. – Super Model Feb 21 '18 at 6:35
  • @ Traxo, in most web applications we are using framework (bootstrap/google material). Jquery includes in all modern frameworks. So, jquery is necessary item for web applications. – Super Model Jun 18 '19 at 11:30

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