I have a string as

string = "firstName:name1, lastName:last1"; 

now I need one object obj such that

obj = {firstName:name1, lastName:last1}

How can I do this in JS?

  • 1
    Are name1 and last1 string values or identifiers that have been defined elsewhere? – cdleary Jul 6 '09 at 10:52
  • More data needed... what are you doing to do if the key or the value contain a comma or a colon? – Brad May 15 '17 at 20:58

12 Answers 12

Actually, the best solution is using JSON:

Documentation

JSON.parse(text[, reviver]);

Examples:

1)

var myobj = JSON.parse('{ "hello":"world" }');
alert(myobj.hello); // 'world'

2)

var myobj = JSON.parse(JSON.stringify({
    hello: "world"
});
alert(myobj.hello); // 'world'

3) Passing a function to JSON

var obj = {
    hello: "World",
    sayHello: (function() {
        console.log("I say Hello!");
    }).toString()
};
var myobj = JSON.parse(JSON.stringify(obj));
myobj.sayHello = new Function("return ("+myobj.sayHello+")")();
myobj.sayHello();
  • won't allow functions to be passed in though – K2xL Jan 4 '14 at 18:17
  • 2
    That is true, however strictly speaking functions should not be in any JSON objects.. For that you have RPC etc, or if you want, you can pass the prototype of a function to the json, and do eval later. – code ninja Jan 4 '14 at 21:39
  • 20
    Doesn't answer the question at all I'm afraid. It would be wonderful if everyone changed the question to suit the answer. How do you parse "firstName:name1, lastName:last1"? not '{ "hello":"world" }'. – Noel Abrahams Sep 12 '14 at 14:31
  • 16
    This doesn't answer the question, I don't know why it has so many upvotes. The questioner (and myself, I googled and ended up here) have data that doesn't conform to JSON standard so can't be parsed. – Aaron Greenwald May 15 '15 at 15:01
  • 1
    var a = "firstName:name1, lastName:last1"; JSON.parse('{' + a + '}') throws an error. – Aaron Greenwald May 15 '15 at 16:01

Your string looks like a JSON string without the curly braces.

This should work then:

obj = eval('({' + str + '})');
  • 20
    this is a potential security hole. I wouldn't reccomend this method at all. – Breton Jul 6 '09 at 14:16
  • 46
    It depends where the data comes from. Some people are obsessed with security. If you control your data, you can be more pragmatic in finding solutions. Or do you have a burglar-proof door between your kitchen and living room? – Philippe Leybaert Jul 7 '09 at 6:35
  • 12
    That's not working. It gives you error 'SyntaxError: Unexpected token :'. I've checked it in the Chrome. – Nyambaa May 18 '11 at 8:09
  • 11
    The solution needs parentheses around it: obj = eval('({' + str + '})'); – Christian Jun 14 '13 at 18:03
  • 6
    prc322: Everyone knows that eval() is not very secure (and that's an understatement), but using eval() is the only correct answer to the question above because the input string is not a valid JSON string AND the input string references other variables by name. – Philippe Leybaert Oct 16 '13 at 21:20

If I'm understanding correctly:

var properties = string.split(', ');
var obj = {};
properties.forEach(function(property) {
    var tup = property.split(':');
    obj[tup[0]] = tup[1];
});

I'm assuming that the property name is to the left of the colon and the string value that it takes on is to the right.

Note that Array.forEach is JavaScript 1.6 -- you may want to use a toolkit for maximum compatibility.

  • Hey Cdleary... i wonder if you can help me: stackoverflow.com/questions/9357320/… Sorry couldnt find another way to contact you except thru comments on ur answers – Jason Feb 21 '12 at 6:46
  • 1
    Prefect post. This answer uses the basics of JavaScript very clear and should thereby works in every browser – Michel Jan 24 '13 at 11:19
  • 4
    What about if there is a comma in string? This is not an useful answer... – xecute Oct 31 '13 at 15:22
  • 1
    In a question of parsing text presented by the asker, questions of "what if" are useless. We can accept the given example as representative of the data or we can simply not answer since there could always be a "what if" that will break the parsing. – user1106925 Nov 21 '15 at 17:10
  • 1
    The poster asked about how to parse an unusual structure that was not valid JSON. @cdleary answered the question very well under the circumstances. xecute: handling a comma in a string would require a quoting or escaping mechanism, beyond the scope of this discussion. – Suncat2000 Dec 8 '16 at 19:26

This simple way...

var string = "{firstName:'name1', lastName:'last1'}";
eval('var obj='+string);
alert(obj.firstName);

output

name1
  • 1
    This only works if you wrap the value in quotations – Josh Crowder Feb 28 '13 at 10:27
  • Upvote for this, ALTHOUGH: var string = "{firstName:'name1', lastName:'last1', f: function(){alert('u got hacked...')}()}"; eval('var obj'+string) This could get you hacked... but I think its worth while because its the only thing that works in some cases. – Cody Apr 29 '13 at 8:45

if you're using JQuery:

var obj = jQuery.parseJSON('{"path":"/img/filename.jpg"}');
console.log(obj.path); // will print /img/filename.jpg

REMEMBER: eval is evil! :D

  • 5
    jQuery uses eval. globalEval: /** code **/ window[ "eval" ].call( window, data ); /** more code **/ – SomeShinyObject May 8 '13 at 1:12
  • 10
    The string, provided by question owner is not a valid JSON string. So, this code is useless... – xecute Oct 31 '13 at 15:27
  • 1
    eval is not evil. You're using it wrong. – code ninja Nov 24 '15 at 14:16
  • yes, eval is not evil if you use it on a "controlled" environment (anything but external data like files, network or user input, in that cases it could be dangerous if not "filtered/validated"). – mzalazar Sep 16 '16 at 8:02

I implemented a solution in a few lines of code which works quite reliably.

Having an HTML element like this where I want to pass custom options:

<div class="my-element"
    data-options="background-color: #dadada; custom-key: custom-value;">
</div>

a function parses the custom options and return an object to use that somewhere:

function readCustomOptions($elem){
    var i, len, option, options, optionsObject = {};

    options = $elem.data('options');
    options = (options || '').replace(/\s/g,'').split(';');
    for (i = 0, len = options.length - 1; i < len; i++){
        option = options[i].split(':');
        optionsObject[option[0]] = option[1];
    }
    return optionsObject;
}

console.log(readCustomOptions($('.my-element')));

You need use JSON.parse() for convert String into a Object:

var obj = JSON.parse('{ "firstName":"name1", "lastName": "last1" }');
string = "firstName:name1, lastName:last1";

This will work:

var fields = string.split(', '),
    fieldObject = {};

if( typeof fields === 'object') ){
   fields.each(function(field) {
      var c = property.split(':');
      fieldObject[c[0]] = c[1];
   });
}

However it's not efficient. What happens when you have something like this:

string = "firstName:name1, lastName:last1, profileUrl:http://localhost/site/profile/1";

split() will split 'http'. So i suggest you use a special delimiter like pipe

 string = "firstName|name1, lastName|last1";


   var fields = string.split(', '),
        fieldObject = {};

    if( typeof fields === 'object') ){
       fields.each(function(field) {
          var c = property.split('|');
          fieldObject[c[0]] = c[1];
       });
    }
  • 2
    Just an idea - instead of second split(':') you could split the string "manually" by FIRST colon using indexOf(":") and consider the part of the string until this colon as key and the rest after the colon as the value. – Ondrej Vencovsky Nov 11 '15 at 14:26

This is universal code , no matter how your input is long but in same schema if there is : separator :)

var string = "firstName:name1, lastName:last1"; 
var pass = string.replace(',',':');
var arr = pass.split(':');
var empty = {};
arr.forEach(function(el,i){
  var b = i + 1, c = b/2, e = c.toString();
     if(e.indexOf('.') != -1 ) {
     empty[el] = arr[i+1];
  } 
}); 
  console.log(empty)
  • You're doing a lot of unnecessary work here in this code... – Brad May 15 '17 at 20:58
  • always better than eval function... – panatoni May 16 '17 at 21:10

If you have a string like foo: 1, bar: 2 you can convert it to a valid obj with:

str
  .split(',')
  .map(x => x.split(':').map(y => y.trim()))
  .reduce((a, x) => {
    a[x[0]] = x[1];
    return a;
  }, {});

Thanks to niggler in #javascript for that.

Update with explanations:

const obj = 'foo: 1, bar: 2'
  .split(',') // split into ['foo: 1', 'bar: 2']
  .map(keyVal => { // go over each keyVal value in that array
    return keyVal
      .split(':') // split into ['foo', '1'] and on the next loop ['bar', '2']
      .map(_ => _.trim()) // loop over each value in each array and make sure it doesn't have trailing whitespace, the _ is irrelavent because i'm too lazy to think of a good var name for this
  })
  .reduce((accumulator, currentValue) => { // reduce() takes a func and a beginning object, we're making a fresh object
    accumulator[currentValue[0]] = currentValue[1]
    // accumulator starts at the beginning obj, in our case {}, and "accumulates" values to it
    // since reduce() works like map() in the sense it iterates over an array, and it can be chained upon things like map(),
    // first time through it would say "okay accumulator, accumulate currentValue[0] (which is 'foo') = currentValue[1] (which is '1')
    // so first time reduce runs, it starts with empty object {} and assigns {foo: '1'} to it
    // second time through, it "accumulates" {bar: '2'} to it. so now we have {foo: '1', bar: '2'}
    return accumulator
  }, {}) // when there are no more things in the array to iterate over, it returns the accumulated stuff

console.log(obj)

Confusing MDN docs:

Demo: http://jsbin.com/hiduhijevu/edit?js,console

Function:

const str2obj = str => {
  return str
    .split(',')
    .map(keyVal => {
      return keyVal
        .split(':')
        .map(_ => _.trim())
    })
    .reduce((accumulator, currentValue) => {
      accumulator[currentValue[0]] = currentValue[1]
      return accumulator
    }, {})
}

console.log(str2obj('foo: 1, bar: 2')) // see? works!
  • This is a totally incomprehensible answer for the average reader. Can you explain what each lines does? And what is the resulting output, given OP's input? – not2qubit Jan 31 at 11:17
  • Fair enough. Typically I don't have time to detail stuff and I'm just dropping helpful bits (specifically in case I run into the same exact SO question down the road), but I gotchu. – corysimmons Jan 31 at 15:40

In your case

var KeyVal = string.split(", ");
var obj = {};
var i;
for (i in KeyVal) {
    KeyVal[i] = KeyVal[i].split(":");
    obj[eval(KeyVal[i][0])] = eval(KeyVal[i][1]);
}
  • 2
    eval should be avoided at all costs. – Alex Mar 2 '17 at 12:17
var stringExample = "firstName:name1, lastName:last1 | firstName:name2, lastName:last2";    

var initial_arr_objects = stringExample.split("|");
    var objects =[];
    initial_arr_objects.map((e) => {
          var string = e;
          var fields = string.split(','),fieldObject = {};
        if( typeof fields === 'object') {
           fields.forEach(function(field) {
              var c = field.split(':');
              fieldObject[c[0]] = c[1]; //use parseInt if integer wanted
           });
        }
            console.log(fieldObject)
            objects.push(fieldObject);
        });

"objects" array will have all the objects

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