44

This question already has an answer here:

var test = "test123"
var test123 ={
    "key" + test: 123
}

This code doesn't work. What is wrong with "key" + test ?

marked as duplicate by Michał Perłakowski javascript Dec 22 '16 at 22:32

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

66

Because "key" + test is an expression and not an identifier nor a string literal nor a number literal, which are the only things that are allowed as the key in an object literal.

You have to use the [] notation after creating the object for such a dynamic key:

var test123 = {};
test123["key" + test] = 123;

An identifier is basically the same subset of characters that you can call a variable (letters, numbers, _ and $; may not start with a number), and a string literal is any string enclosed with ' or ".

So, the only types of keys you can use in an object literal are:

{
  a0:   true, // valid identifier
  $$_:  true, // same
  123:  true, // valid numeric literal
  012:  true, // same (octal)
  0xf:  true, // same (hex)
  "@":  true, // not allowed as an identifier
  '0a': true  // same
}

Reference: http://es5.github.com/#x11.1.5.

PropertyName :

IdentifierName

StringLiteral

NumericLiteral

  • 3
    In addition, numbers are allowed in the object literal as well, such as 0 or 5e10 (but not -10 because - is not part of the number literal but the unary - operator). – Felix Kling Mar 14 '12 at 19:02
  • @Felix Kling: Indeed they are, thanks. – pimvdb Mar 14 '12 at 19:04
46

With ES6, you can define dynamic keys within an object literal:

const test = "test123"
const test123 = { [`key${test}`]: 123 };  //{ keytest123: 123 }
  • 1
    Thanks for this - really needed a way to make this kind of syntax work. ES6 is a saviour! – Gaurav Ojha Jan 10 at 13:18
  • 1
    this. can be used with the spread operator – Prof Mar 1 at 6:10
10

You can but not with literal notation (pre ES6).

var test123 = {};
test123["foo" + "bar"] = 'baz';

test123.foobar === 'baz'; // true
  • Thanks for the simple answer, that's just what I was looking for :) – Daniel Tonon Feb 26 '15 at 3:28
3

Your code is equivalent to test123.("key" + test) = 123 which may better help you to understand why it is wrong.

You need ["name"] notation to be able to access fields by their name in string. Other notations (yours and . one) require identifiers.

2

Javascript provides two ways to define a property of an object:

  1. object.propertyName = value;

In this situation, the propertyName is un-editable, and un-computable. you cannot do the following:

    object.('property'+'Name')

as you can see

    object = {propertyName:value};
    object = {'propertyName':value};

they are equal

  1. you can use a variable as the property name with "[]";

you can do :

 var a  = "propertyName";
 object[a] = value;

and this time you have to use a string

object[propertyName] = value;//error
object["propertyName"] = value;//correct
object = {'propertyName':value};//correct
object = {propertyName:value};//correct
-2
--HTML--
<div id="name1"></div>
<div id="name2"></div>
<div id="name3"></div>

--JS--
  function getJsonData(){
   var hr = new XMLHttpRequest();
   hr.open("GET", "bookJson.json", true);
   hr.setRequestHeader("Content-type", "application/json", true);
   hr.onreadystatechange = function() {
  if(hr.readyState == 4 && hr.status == 200) {

     var data = JSON.parse(hr.responseText);
   for(var i=0;i<3;i++){
     var a = "p"+(i+1)+"H";
     $("#name"+(i+1)).html(data[objName][a]);
     }


   }

 }
  hr.send(null);
}

---JSON--- save JSON file name as bookJson.json
 { "objName":
   {
    "p1H":"content1",
    "p2H":"content2",
    "p3H":"content3",
   }
  }
----------------------------------- 
 json object key name p1H,p2H,p3H ... 
 We want to dynamically get this keys in javacript instead of   **data[objName].p1H**. you can get dynamical key like **data[objName]["p1H"]**
  • Please provide an explanation of your answer to help other users of the site. Code-only answers are not very useful and tend to be marked as low quality and potentially deleted. – Tristan Feb 5 '16 at 2:18
  • Thanks for suggestion, i provided an explanation of my answer... – Bhushana Rao Kadimi Feb 10 '16 at 4:44

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