Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

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?

share|improve this question
    
Are name1 and last1 string values or identifiers that have been defined elsewhere? –  cdleary Jul 6 '09 at 10:52

7 Answers 7

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

This should work then:

obj = eval('{' + str + '}');
share|improve this answer
4  
It does, but eval() will work without them. –  Philippe Leybaert Jul 6 '09 at 10:48
6  
this is a potential security hole. I wouldn't reccomend this method at all. –  Breton Jul 6 '09 at 14:16
17  
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
10  
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
7  
The solution needs parentheses around it: obj = eval('({' + str + '})'); –  Christian Jun 14 '13 at 18:03

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();
share|improve this answer
    
won't allow functions to be passed in though –  K2xL Jan 4 '14 at 18:17
1  
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. –  matejkramny Jan 4 '14 at 21:39
    
@K2xL I updated the answer with example to pass functions –  matejkramny Feb 22 '14 at 19:30
3  
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
    
@NoelAbrahams good observation! Just noticed that, I assumed the string is in JSON format.. –  matejkramny Sep 12 '14 at 15:07

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.

share|improve this answer
    
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
    
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
1  
What about if there is a comma in string? This is not an useful answer... –  xecute Oct 31 '13 at 15:22

This simple way...

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

output

name1
share|improve this answer
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

share|improve this answer
1  
jQuery uses eval. globalEval: /** code **/ window[ "eval" ].call( window, data ); /** more code **/ –  ChristopherW May 8 '13 at 1:12
4  
The string, provided by question owner is not a valid JSON string. So, this code is useless... –  xecute Oct 31 '13 at 15:27

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')));
share|improve this answer
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];
       });
    }
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.