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I'm writing a function which requires knowing the location of the clicked div.

I'm wondering if I can get the location of a clicked object as a javascript variable?

here is the code.

HTML

<area shape="rect" coords="103, 0, 213, 25" href="#" onClick="swap3($(this),'product-details','product-specs');">

Javascript:

function swap3(currentDivId ,oldDivId, newDivId) {
    var oldDiv = currentDivId.nextAll("div." + oldDivId);
    var newDiv = currentDivId.nextAll("div." + newDivId);
    oldDiv.style.display = "none";
    newDiv.style.display = "block";
}
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2 Answers 2

up vote 0 down vote accepted

$() returns a DOM element (like an object that you can work with it's methods, properties, etc) and if you set a variable to it, the variable must work like an jQuery-Object correctly. But in my experience, some times that DO NOT! and I learn the best way is to get the variable by jQuery-selector ($). Your code is correct, but should be better if you apply these changes:

function swap3(currentDivId ,oldDivId, newDivId) {
    var oldDiv = $(currentDivId).nextAll("div." + oldDivId);
    var newDiv = $(currentDivId).nextAll("div." + newDivId);
    $(oldDiv).css({"display" : "none"});
    $(newDiv).css({"display" : "block"});
}
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Thanks, still not working but I've moved the question here... stackoverflow.com/questions/7368995/… and might have to reword it yet again. Cheers! –  PhilipK Sep 10 '11 at 1:31
1  
Ok. I will look at link, and if I can, I will help you. –  Javad_Amiry Sep 10 '11 at 1:32
3  
This is not correct. $(x) returns a jQuery object from the given DOM element (the one referred to by x, remember that this is set to the element raising an event in an traditional event callback). –  user166390 Sep 10 '11 at 1:37
    
By originally purpose of jQuery you are right. But my experience told me some thing else! I know what are you talking about, so thanks. –  Javad_Amiry Sep 10 '11 at 1:42
    
oldDiv and newDiv are already jQuery objects. It is superfluous to pass them again to jQuery. $() always returns a jQuery object and so do most of the methods. What the methods return is mentioned in the documentation. The statement that $() returned a DOM element is simply wrong. (-1) –  Felix Kling Sep 10 '11 at 4:26

this refers to the current element.

In jQuery, as they use $() to get an element, $(this) returns the jQuery equivalent of vanilla JS's this.

<area shape="rect" coords="103, 0, 213, 25" href="#" onClick="swap3(this,'product-details','product-specs');">
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Thanks this answers my question. What would the value of 'this' be in this situation? The id of the <area>? –  PhilipK Sep 10 '11 at 0:52
1  
If you alert it, it's something like Object[HTMLObject] - a DOM element, containing all the information about the tag, it's children, its attributes, and so on. –  Joe Sep 10 '11 at 0:54
    
This is not correct. $(this) returns a jQuery object containing one element -- the current evaluation of this. –  user166390 Sep 10 '11 at 1:40
    
What's not right? :s I said $(this) returns jQ's equivalent of this, then said this is an Object[HTMLObject], thus implying $(this) is a jQuery object. Genuinely interested in what I've got wrong here :) –  Joe Sep 10 '11 at 1:41
    
If this evaluates to a DOM element then $(this) doesn't "get" anything -- it only wraps the DOM element. $(this).jqueryProp is only "equivalent" to this.normalDOMProp in the case where this evaluates to a DOM object. Just little details. The comment is more explicit about this than the post. –  user166390 Sep 10 '11 at 4:40

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