I’ve looked for solutions, but couldn’t find any that work.

I have a variable called onlyVideo.

"onlyVideo" the string gets passed into a function. I want to set the variable onlyVideo inside the function as something. How can I do that?

(There are a number of variables that could be called into the function, so I need it to work dynamically, not hard coded if statements.)

Edit: There’s probably a better way of doing what you’re attempting to do. I asked this early on in my JavaScript adventure. Check out how JavaScript objects work.

A simple intro:

// create JavaScript object
var obj = { "key1": 1 };

// assign - set "key2" to 2
obj.key2 = 2;

// read values
obj.key1 === 1;
obj.key2 === 2;

// read values with a string, same result as above
// but works with special characters and spaces
// and of course variables
obj["key1"] === 1;
obj["key2"] === 2;

// read with a variable
var key1Str = "key1";
obj[key1Str] === 1;
  • 5
    What are you using this for? Are you absolutely sure you need to set it to a normal local variable, and an Object (Hash) won't work? – Dogbert Apr 10 '11 at 18:32
  • mmm... I still don't quite grasp why you want to do this in a world with arrays. Anyway, some of your code and explanation would help a lot. – Kevin Chavez Apr 10 '11 at 18:34
  • i think we need more detail about what your ultimate goal is – mcgrailm Apr 10 '11 at 18:35
up vote 229 down vote accepted

If it's a global variable then window[variableName] or in your case window["onlyVideo"] should do the trick.

  • 23
    Even if not global, you can access it like that by scope[property] or even this[property] – Wojciech Bednarski Jul 22 '14 at 21:38
  • 7
    @WojciechBednarski: Don't confuse scope and context. this is context, what it points to depends on how the function is called. In JS, 50% of the time this is window unless you enable strict mode and this becomes undefined and will throw an error. Scope is something completely different and it's not an object (except global scope which is mirrored by the window object) – slebetman Jun 26 '15 at 3:00
  • 2
    Doesn't work in WebWorkers (where self reffers to global scope, just as it does in browser, where it's equal to window) and Node.js, where global is the variable you want. And it newer works with local scopes, such as the function body. – Tomáš Zato Oct 11 '15 at 23:00

Javascript has an eval() function for such occasions:

function (varString) {
  var myVar = eval(varString);
  // .....
}

Edit: Sorry, I think I skimmed the question too quickly. This will only get you the variable, to set it you need

function SetTo5(varString) {
  var newValue = 5;
  eval(varString + " = " + newValue);
}

or if using a string:

function SetToString(varString) {
  var newValue = "string";
  eval(varString + " = " + "'" + newValue + "'");
}

But I imagine there is a more appropriate way to accomplish what you're looking for? I don't think eval() is something you really want to use unless there's a great reason for it. eval()

  • 3
    Yeah I would go with this rather then using window ( it has some caveats) – ingo Apr 10 '11 at 18:36
  • 11
    Why was one eval() answer downvoted to deletion, and this one upvoted? – BoltClock Apr 10 '11 at 18:41
  • 4
    @goggin You should regex-test the argument to make sure that it's a valid name. Just evaling the argument without checking it first is ridiculously insecure. – Šime Vidas Apr 10 '11 at 18:54
  • 14
    This is the only realistic answer to the question. Just because it involved the "eeeeevil" eval does not make it any less true. Javascript does not have variable variables (such as $$varname in php) so this really is the only answer. Using window[varname] has the side-effect of introducing global variables, which might not be wanted. @Shaz I don't think you give modern JS interpreters enough credit. They are extremely fast, and parsing and executing a simple one line assignment operation is not going to spike anyone's CPU usage as long as it is not being done in a 1ms timer or tight loop. – MooGoo Apr 10 '11 at 19:04
  • 2
    @TheParamagneticCroissant People who are passionate about code care. Those who only value time and money don't. – Jimbo Feb 23 '15 at 12:54

As far as eval vs. global variable solutions...

I think there are advantages to each but this is really a false dichotomy. If you are paranoid of the global namespace just create a temporary namespace & use the same technique.

var tempNamespace = {};
var myString = "myVarProperty";

tempNamespace[myString] = 5;

Pretty sure you could then access as tempNamespace.myVarProperty (now 5), avoiding using window for storage. (The string could also be put directly into the brackets)

  • A bit refactor your code to make the same inline var tempNamespace = {["myVarProperty"]: "Definitely only video"}; – Tioma Feb 15 '17 at 12:50
  • This is a very good solution - it seems like eval() is to be avoided unless absolutely necessary, very elegant workaround here. – skwidbreth Feb 27 '17 at 17:58
var myString = "echoHello";

window[myString] = function() {
    alert("Hello!");
}

echoHello();

Say no to the evil eval. Example here: http://fiddle.jshell.net/Shaz/WmA8t/

  • 1
    Make this work on local scope and I will remove the downvote. – Tomáš Zato Oct 11 '15 at 23:01
  • @TomášZato function aScope() { this[myString] = function() { alert("Hello!"); };}; – rrw Jul 8 '16 at 6:22
  • @richmondwang this is not refference to the local scope but to the object that the function is bound to during call. – Tomáš Zato Jul 8 '16 at 7:58

You can access the window object as an associative array and set it that way

window["onlyVideo"] = "TEST";
document.write(onlyVideo);

The window['variableName'] method ONLY works if the variable is defined in the global scope. The correct answer is "Refactor". If you can provide an "Object" context then a possible general solution exists, but there are some variables which no global function could resolve based on the scope of the variable.

(function(){
    var findMe = 'no way';
})();

If you're trying to access the property of an object, you have to start with the scope of window and go through each property of the object until you get to the one you want. Assuming that a.b.c has been defined somewhere else in the script, you can use the following:

var values = window;
var str = 'a.b.c'.values.split('.');

for(var i=0; i < str.length; i++)
    values = values[str[i]];

This will work for getting the property of any object, no matter how deep it is.

  • Your example is cool. I note that if I use name as the variable name, your example fails, but it works with other variable names. This may have to do with the Window object already having a name variable. Also, including the .value method caused failure. The ability to interpret deeply nested object variables is what I am looking for and your method indicates a good direction. Thanks. – Theo Jul 31 '16 at 19:23
  • No problem. The answer is more to demonstrate the concept rather than be a copy/paste answer (as are most answers here on SO I think) – user1846065 Aug 2 '16 at 7:27
  • 1
    SO responses are even better when you can spend the time improving them rather than fixing them. ;-) – Theo Aug 4 '16 at 5:36
  • Doesn't work: Uncaught TypeError: Cannot read property 'split' of undefined – Roberto14 Apr 26 at 15:15

You can do like this

var name = "foo";
var value = "Hello foos";
eval("var "+name+" = '"+value+"';");
alert(foo);

It can be done like this

(function(X, Y) {
  
  // X is the local name of the 'class'
  // Doo is default value if param X is empty
  var X = (typeof X == 'string') ? X: 'Doo';
  var Y = (typeof Y == 'string') ? Y: 'doo';
  
  // this refers to the local X defined above
  this[X] = function(doo) {
    // object variable
    this.doo = doo || 'doo it';
  }
  // prototypal inheritance for methods
  // defined by another
  this[X].prototype[Y] = function() {
    return this.doo || 'doo';
  };
  
  // make X global
  window[X] = this[X];
}('Dooa', 'dooa')); // give the names here

// test
doo = new Dooa('abc');
doo2 = new Dooa('def');
console.log(doo.dooa());
console.log(doo2.dooa());

Your Answer

 

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

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