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In javascript / jQuery, the example on this page contains the following code which I am struggling to understand;

var xml = "<rss version='2.0'><channel><title>RSS Title</title></channel></rss>",
    xmlDoc = $.parseXML( xml ),
    $xml = $( xmlDoc ),
    $title = $xml.find( "title" );

Specifically the 3rd line;

$xml = $( xmlDoc )

What does that do? Does that form of syntax have a name that I can Google for to find out about it?

Also, in the code above they seem to be using the convention of prefixing variables that contain jQuery objects with a dollar sign. But if that's the case, then shouldn't the variable xmlDoc in the second line be $xmlDoc instead?

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There's nothing special about the syntax. The variable named $xml is assigned the result of calling the function $ with as its parameter the variable xmlDoc. It's the same syntax as a = f(b). –  hvd Aug 17 '12 at 10:11
    
"shouldn't the variable xmlDoc in the second line be $xmlDoc instead" - perhaps the author wanted to use xml/$xml but xml has been used already for the string. But nothing is mandatory about that. –  pimvdb Aug 17 '12 at 10:13
    
@hvd So what does that line do? –  Nigel Alderton Aug 17 '12 at 18:01
    
@NigelAlderton My comment only addressed the syntax part. The syntax just means "call function $", nothing special. But I'm not qualified to comment on what that function does. –  hvd Aug 17 '12 at 18:37

3 Answers 3

up vote 6 down vote accepted

It creates a jQuery object based on the xml specified above, enabling you to use jQuery's methods on it to find nodes and manipulate them.

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Doesn't the previous line xmlDoc = $.parseXML( xml ) return a jQuery object? What does the previous line return? –  Nigel Alderton Aug 17 '12 at 18:05
    
$.parseXML(xml) returns an xml document, not a jQuery object –  Jeroen Moons Aug 26 '12 at 8:04
    
@Jeroen moons In this question; Could you please tell me; why all the four lines are comma separated (in single line)? This is not working when replace , with ;... :( –  Kanagavelu Sugumar Jul 15 '13 at 11:14
    
It's a compound var declaration, if you want to do that on separate lines you can do ´var xmlDoc = $.parseXML( xml ); var $xml = $( xmlDoc );´ etc. –  Jeroen Moons Jul 17 '13 at 9:50

The $ symbol at the start of variable is purely just for naming convention (of jquery objects). It's a way of reminding you that this variable is a jquery object and can therefore have functions such as find() called on it.

$.parseXML( xml ) doesn't create a jQuery object, its just using jQuery to parse the XML.

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So you mean to say 'var jqXmlObj = $( xmlDoc )' is possible which is same as $xml = $( xmlDoc ) ?? –  Kanagavelu Sugumar Sep 11 '13 at 14:39
    
Means from the above jqXmlObj == $xml ??? –  Kanagavelu Sugumar Sep 12 '13 at 7:32
1  
@KanagaveluSugumar Yes, theres nothing special about having a dollar symbol in your variable name. $xml is no different to foo or sau$age –  Curt Sep 12 '13 at 9:42

It is to construct a jQuery object by a normal object. By doing this, you could use the jQuery method on it.

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I don't understand. What's "the jQuery method"? –  Nigel Alderton Aug 24 '12 at 23:05

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