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Say I create an object thusly:

var myJSONObject = {"ircEvent": "PRIVMSG", "method": "newURI", "regex": "^http://.*"};

What is the best way to remove the property 'regex' to end up with this new myJSONObject:

var myJSONObject = {"ircEvent": "PRIVMSG", "method": "newURI"};
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7 Answers

up vote 1984 down vote accepted

Like this:

delete myJSONObject.regex;
// or,
delete myJSONObject['regex'];
// or,
var prop = "regex";
delete myJSONObject[prop];

For anyone interested in reading more about it, Stack Overflow user kangax has written an incredibly in-depth blog post about the delete statement on his blog, Understanding delete. It is highly recommended.

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6  
Checked, it also works with "delete myJSONObject['regex'];" See: developer.mozilla.org/en/Core_JavaScript_1.5_Reference/… –  johnstok Oct 16 '08 at 11:06
19  
An upshot of one of the observations at the "understanding delete" link above, is that, since you cannot necessarily delete a variable, but only object properties, you therefore cannot delete an object property "by reference" -- var value=obj['prop']; delete value //doesn't work –  George Jempty Apr 16 '10 at 16:24
6  
So it doesn't actually delete it? It just becomes undefined, but the key still exists? Am I missing something? –  Doug Molineux Aug 10 '11 at 2:21
28  
@Pete no, it does remove it. Given: var x = {a : 'A', b : 'B'}; Compare: delete x.a; typeof x.a; /* "undefined" */ x.hasOwnProperty('a'); /* false */ to x.b = undefined; typeof x.b; /* "undefined" */; x.hasOwnProperty('b'); /* true */ –  nickf Aug 10 '11 at 8:29
2  
@ChristopherPfohl works for me. Like I said, it's actually quite in-depth, so it's a bit difficult to summarize. The basic response in the answer above is sufficient for almost all cases, the blog goes into some more of the edge cases and the reasons those cases exist. –  nickf Dec 20 '12 at 1:57
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var myJSONObject = {"ircEvent": "PRIVMSG", "method": "newURI", "regex": "^http://.*"};

delete myJSONObject.regex;

alert ( myJSONObject.regex);

This works in Firefox and Internet Explorer, and I think it works in all others.

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Thanks for verifying –  Mark Nov 18 '10 at 10:50
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Operator delete is unexpectedly slow!

Look at the benchmark.

Delete is the only true way to remove object's properties without any leftovers, but it works ~ 100 times slower, compared to it's "alternative", setting object[key] = undefined.

This alternative is not the correct answer to this question! But, if you use it with care, you can dramatically speed up some algorithms. If you are using delete in loops and you have problems with performance, read the verbose explanation.

When should one use delete and when set value to undefined ?

An object is a key-value pair. What I call a 'value' is a primitive or a reference to other object, connected to that 'key'.

Use delete, when you are passing the result object to the code on which you don't have control (or when you are not sure about your team or yourself).

It deletes the key from the hashmap.

 var obj = {
     field: 1     
 };
 delete obj.field;

Use setting to undefined, when you care about performance. It can give a serious boost to your code.

The key remains on it's place in the hashmap, only the value is replaced with undefined. Understand, that for..in loop will still iterate over that key.

 var obj = {
     field: 1     
 };
 obj.field = undefined;

Using this method, not all ways of determining property existence will work as expected.

However, this code:

object.field === undefined

will behave equivalently for both methods.

Tests

To summarize, differences are all about ways of determining the property existence, and about for..in loop.

 console.log('* -> "Takes prototype inheritance into consideration, that means it lookups all over prototype chain too."');

 console.log(obj.field === undefined, 'obj.field === undefined', 'You get "undefined" value when querying for "field" in object-hashmap. *');

 console.log(obj["field"] === undefined, 'obj["field"] === undefined', 'Just another way to query (equivalent). *');

 console.log(typeof obj.field === "undefined", 'typeof obj.field === "undefined"', 'Get the value attached to "field" key, and check it\'s type is "undefined". *');

 console.log(! ("field" in obj), '! ("field" in obj)', 'This statement returns true if "field" key exists in the hashmap. False otherwise. *');

 console.log(obj.hasOwnProperty("field"), 'obj.hasOwnProperty("field")', 'This statement returns true if 'field' key exists in the hashmap. The ONLY way NOT to lookup for property in the prototype chain!');
 //Object.keys().indexOf() is an overkill :)

 var counter = 0,
     key;
 for (key in obj) {
     counter++;
 }
 console.assert(counter === 0, 'counter === 0', '"field" is not iterated using "for .. in" loop. *');
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1  
a property is assigned to undefined still is a property of an object, so it will not be removed by GC, unless misread your last paragraph. –  Lance Mar 4 at 21:05
    
I was wrong to touch the theme of GC here. Both methods have the same result for GC: they remove the value linked to the key. If that value was the last reference to some other object, that object would be cleaned up. –  Dan Mar 6 at 10:28
    
Fun fact, you can cast an object back into fast properties mode after you delete from it. –  Benjamin Gruenbaum May 31 at 18:31
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In arrays, unlike objects, using the delete keyword leaves null or undefined artifacts.

var array = [1,2,3,4];
delete array[2];
//Expected result --> [1,2,4]
//Actual result   --> [1,2,null,4]

This can be problematic if the array needs to be precise. For example, in a webapp that uses JSON serialized arrays to hold data in localStorage, and uses the indexes as well as the values within. This will result in "null" showing up, or if you use an if statement, completely skip numbers. Another problem is that JSON serialization also saves the null values, so this could rapidly result in clutter.

Instead, what you want to do is instead make a sort of garbage collection method

Array.prototype.remove = function(index){
    delete this[index];
    return this;
};
Array.prototype.clean = function(){
    var arr1 = this, arr2 = [];
    for(var a in arr1){
        if(arr1[a]&&arr1.hasOwnProperty(a)){
            arr2.push(arr1[a]);
        }
    }
    this.splice(0);
    for(var b in arr2){
        if(arr2.hasOwnProperty(b)){
            this.push(arr2[b]);
        }
    }
    return this;
};
var array = [1,2,3,4];
array.remove(2).clean();
// Result --> [1,2,4]

Or, more concisely, you could just return a clean array after remove, like this:

Array.prototype.remove = function(index){
  delete this[index];
  return this.clean();
};

Or you could just use array.splice like this:

Array.prototype.remove = function(index){
  this.splice(index,1);
}
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7  
This delete keyword, however, is much more convenient, lol –  B1KMusic Sep 18 '12 at 0:59
6  
This approach doesn't modify the original object which might be still referenced elsewhere. This might or might not be a problem depending on how it's used but it's something to keep in mind. –  Tamas Czinege Nov 7 '12 at 17:39
    
@DrJokepu Prior to learning about the delete method, what I did to prevent caching of the object was I first ran the DELETE function, then saved the object to localStorage with JSON, reloaded the page, and fetched the object again with JSON. The minimalist way in which I build my pages allowed the refresh to happen in a fraction of a second, so it isn't really noticed. However, the delete keyword is a lot more useful and convenient. –  B1KMusic Nov 11 '12 at 0:14
11  
@B1KMusic Here's the way to delete an element from an Array: splice –  wulftone Jan 25 '13 at 20:20
2  
I don’t see splice in your edit, but remove ought to be Array.prototype.remove = function(index) { this.splice(index, 1); }; –  false Aug 27 '13 at 4:01
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The term you have used in your question title remove a property from a javascript object, can be interpreted in some different ways, the one is to remove it for whole the memory an the list of object keys or the other is just to remove it from your object. as it has been mentioned in some other answers the delete keyword is the main part. lets say you have your object like:

myJSONObject = {"ircEvent": "PRIVMSG", "method": "newURI", "regex": "^http://.*"};

if you do:

console.log(Object.keys(myJSONObject));

the result would be:

["ircEvent", "method", "regex"]

you can delete that specific key from your object keys like:

delete myJSONObject["regex"];

then your objects key using Object.keys(myJSONObject) would be:

["ircEvent", "method"]

but the point is if you care about memory and you want to whole the object gets removed from the memory, it is recommended to set it to null before you delete the key:

myJSONObject["regex"] = null;
delete myJSONObject["regex"];

the other important point here is to be careful about your other references to the same object, for instance if you create a variable like:

var regex = myJSONObject["regex"];

or add it as a new pointer to another object like:

var myOtherObject = {};
myOtherObject["regex"] = myJSONObject["regex"];

Then even if you remove it from your object myJSONObject, that specific object won't get deleted from the memory, since the regex variable and myOtherObject["regex"] still has their values. Then how could we remove the object from the memory for sure.

The answer would be to delete all the references you have in your code, pointed to that very object. and also not use var statements to create new references to that object. This last point regarding var statements, is one of the most crucial issues that we usually face with, because using var statements would prevent the created object, from getting removed.

Which means in this case you won't be able to remove that object because you have created regex variable via var statement, and if you do:

delete regex;//false

the result would be false, which means that your delete statement hasn't been executed as you expected. But if you had not created that variable before and you only had myOtherObject["regex"] as your last existing reference, you could have done this just by removing it like:

myOtherObject["regex"] = null;
delete myOtherObject["regex"];

In other word a JavaScript object gets killed as soon as there is no reference left in your code pointed to that object.

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Another alternative is to use the underscore library. http://underscorejs.org/

Note that _.pick() and _.omit() both return a copy of the object & don't directly modify the original object. Assigning the result to the original object should do the trick (not shown).

reference: http://underscorejs.org/#pick _.pick(object, *keys) Return a copy of the object, filtered to only have values for the whitelisted keys (or array of valid keys).

var myJSONObject = 
{"ircEvent": "PRIVMSG", "method": "newURI", "regex": "^http://.*"};

_.pick(myJSONObject, "ircEvent", "method");
=> {"ircEvent": "PRIVMSG", "method": "newURI"};

reference: http://underscorejs.org/#omit _.omit(object, *keys) Return a copy of the object, filtered to omit the blacklisted keys (or array of keys).

var myJSONObject = 
{"ircEvent": "PRIVMSG", "method": "newURI", "regex": "^http://.*"};

_.omit(myJSONObject, "regex");
=> {"ircEvent": "PRIVMSG", "method": "newURI"};

For arrays, _.filter() and _.reject() can be used in a similar manner.

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//inconsistent behavior if the same object is stored in an array or object and also somewhere else at the same time. Any inconsistency.

function my_delete (objectOrArray, index) {
    if (objectOrArray.splice) {
        objectOrArray.splice(index,1);
    } else {
        delete(objectOrArray[index]);
    }        
}
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1  
Better use Array.isArray(objectOrArray) (or objectOrArray instanceof Array for old browsers) to check if it's an array. Otherwise, my_delete({splice:123}) trows an error. –  Oriol Dec 7 '13 at 17:12
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protected by Jason McCreary Oct 20 '11 at 18:27

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