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I have a function that I want to be able to allow passing in either a regular javascript DOM element object or a jQuery object. If its not yet a jQuery object I will then make it one.

Does anyone know of a very reliable way to detect this.

function functionName(elm){
   //Detect if elm is not a jquery object in condition
   if (elm) elm = $(elm);

}

A logical approach is to detect one of the properties of the DOM element object. The question is, which property would be the most reliable to detect?

I could also just make it a jquery object either way since jQuery doesn't have a problem with something like: $($imajQueryObjAlready); However, the purpose of this question is not to just solve the problem, but to find a good way to detect if its a DOM object vs. a jQuery object.

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5 Answers 5

up vote 36 down vote accepted

To test for a DOM element, you can check its nodeType property:

if( elm.nodeType ) {
    // Was a DOM node
}

or you could check the jQuery property:

if( elm.jquery ) {
    // Was a jQuery object
}
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2  
+1 Two excellent solutions -- I prefer the latter for legibility. –  lonesomeday Nov 10 '10 at 0:22
1  
@lonesomeday - The only disclaimer I'd give (or should have given) is that it isn't part of the public API, currently anyway, so jQuery could decide to remove that property someday. Doubtful though. –  user113716 Nov 10 '10 at 0:25
2  
True. Of course, conversely, jQuery could decide to add a nodeType property! –  lonesomeday Nov 10 '10 at 0:30
    
@lonesomeday - Ah, very good point. That would be cruel. :o) –  user113716 Nov 10 '10 at 0:35

jQuery does it like this:

if ( selector.nodeType )

(jQuery 1.4.3, line 109)

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To test for a jQuery object, you can use the instanceof operator:

if(elm instanceof jQuery) {
    ...
}

or:

if(elm instanceof $) {
    ...
}
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The easiest way is to simply pass it into the jQuery function either way. If it's already a jQuery object, it will return it unchanged:

function(elem){
   elem = $(elem);
   ...
}

From the jQuery source code, this is what's happening:

if (selector.selector !== undefined) {
    this.selector = selector.selector;
    this.context = selector.context;
}

return jQuery.makeArray( selector, this );

Where makeArray is merging the new (default) jQuery object with the passed in one.

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+1 for simplicity –  zzzzBov Nov 10 '10 at 0:20
2  
It isn't really unchanged. You're getting a new jQuery object. There could be side effects. Here's a demo: jsfiddle.net/nu7D6 –  user113716 Nov 10 '10 at 0:21
    
@Patrick - No, you'll get the original jQuery object back if it is already a jQuery object. $(selector) === $($(selector)) always returns true. –  James Kovacs Nov 10 '10 at 0:26
    
@Patrick Take a look at my edit, where are the side effects introduced? –  Zack Bloom Nov 10 '10 at 0:30
    
@James - Are you sure about that? See the example in my comment above. The example in your comment would definitely not be === since you're actually creating 3 completely unique objects. –  user113716 Nov 10 '10 at 0:30

elm instanceof jQuery is the most foolproof way, as testing elm.nodeType would mistake {nodeType:1} for a DOM element, and testing elm.jquery would mistake {jquery:$()} for a jQuery object, in addition to there being no guarantee future jQuery objects won't have a jquery property.

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