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I am trying to learn debugging Javascript in Chrome's Javascript console. However, I don't understand how the console displays the data type of an object . For instance, in the Javascript Console, it shows this:

enter image description here

In this picture, I am using JQuery. I tried to do a console.log on a few variables but how do I know if a particular variable is a JQuery object or a raw DOM object? Is the HTMLDivElement or the other one that shows the div tag listed in the console a JQuery object or a raw DOM object?

In general, how should I know the data type of an object or variable in Javascript in a debugger console like the Chrome's Javascript console? In languages such as Java, the data type of a variable is shown clearly in the debugger; I can know from the debugger what kind of object the variable is, whether it is an instance of Class A or instance of Class B, etc.

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2  
If you really want to inspect the properties of an object, use console.dir. –  Felix Kling May 13 '12 at 13:00
1  
@naveen In fact, before I made an edit to my question, I really wanted to ask about inspecting the data types of Javascript during debugging in general. But I didn't have a more concrete example to use in my question. I could only thought of the JQuery and DOM object situation. And so I thought I put it this way. –  Carven May 13 '12 at 13:34
    
@xenon. ok. sorry that i cannot undo my vote i guess. –  naveen May 13 '12 at 13:47
    
@naveen No problem, it's okay. I should have phrased my question in a better way. –  Carven May 13 '12 at 14:04

4 Answers 4

up vote 4 down vote accepted
if (variable instanceof jQuery) // Or variable.jquery 
    // jQuery object.

Live DEMO

instanceof docs on MDN:

The instanceof operator tests whether an object has in its prototype chain the prototype property of a constructor.


The way jQuery checks for DOM elements is with nodeType:

// Handle $(DOMElement)
if ( selector.nodeType ) {

The way jQuery checks for jQuery object is with the jquery property:

// HANDLE: $(expr, $(...))  
else if ( !context || context.jquery ) {
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why not if( elm.jquery ) for jQuery object and if( elm.nodeType ) for DOM object? :) –  naveen May 13 '12 at 12:54
1  
@naveen. You may... –  gdoron May 13 '12 at 12:57
    
+1: even though its a duplicate question , you gave OP another method :) –  naveen May 13 '12 at 12:59
    
@gdoron Thanks! I am still a little confuse. I was trying the code at jsfiddle.net/7jxFX/2. There, I had one which was a jquery selector and the other the conventional javascript way. But both logged the same thing on the Javascript Console in Chrome. Should the first one, $('contact') a JQuery object but the second one, which was through getElementById, a raw DOM object? –  Carven May 13 '12 at 13:40
    
@xEnOn. It's just the way the console works. try this fiddle instead –  gdoron May 13 '12 at 13:51

Those are both jQuery objects.

The console recognizes them as array-like objects containing DOM elements.

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you can view the type in the debugger if you go to Scripts tab.
then on the right press on the + sign under Watch Expressions and add whatever you like.
inspector

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JQuery objects are actually arrays of DOM elements, Weile DOM elements are just DOM elements.

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