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Let's say I get an element from the dom:

[<div id="generic-wrapper"> ... </div>]

How could I flatten it to include all elements inside?

EDIT: "generic-wrapper" is an arbitrary id, it could be anything. It could also be nested, as in wrappers within wrappers.

EDIT2: I want the final array to include all of the content of the original array, just flattened. This includes the wrapper. Is there a systematic way to construct and iterate through an array such as the one I am describing? Thanks again and apologies for the confusion.

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1  
What do you mean by "Flatten" ? –  ahren Aug 9 '12 at 1:51
    
the element "wrapper" containers other elements. Instead of an array containing only wrapper, I want it to contain all elements inside wrapper, and any elements inside those. –  zallarak Aug 9 '12 at 1:53
1  
.children() ? –  ahren Aug 9 '12 at 1:54
    
Do you want the returned array to include the wrapper element? –  nbrooks Aug 9 '12 at 2:03

3 Answers 3

Update:

'Simple' solution:

var domElements = [<div id="generic-wrapper">...</div>];

$.merge( domElements, $(domElements).find('*'));



Better solution:

It sounds like what you're trying to do is, given an array of dom elements, add each of their descendants to the array. If you're using jQuery for the intended DOM manipulation, you should just select them directly (as shown in code sample below). This returns a jQuery object, which has an underlying array structure that you can use for basic array-indexing. If you need to get a true array, you can use the object's .toArray() method. The jQuery object is typically more useful though, since you can manipulate all matched elements easily (and you can also iterate over them using .each()).

Select #wrapper and all of its descendants (if id is stored in a variable, replace '#wrapper' with '#' + the variable name.)

var domElements = $('#wrapper, #wrapper *');
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that would exclude the #wrapper itself ! –  UnLoCo Aug 9 '12 at 1:59
    
@unloco True, didn't realize OP wanted to include that as well, question wasn't very clear. –  nbrooks Aug 9 '12 at 2:02

Select them all at once:

var $allElements = $("#wrapper,#wrapper *")

I'm not sure if you want to exclude the wrapper element itself, but if so just use "#wrapper *".

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2  
Or $( '#wrapper' ).find( '*' ).andSelf() to avoid having to write the ID-name twice. –  Šime Vidas Aug 9 '12 at 2:05
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@ŠimeVidas - I like repeating myself. I like repeating myself. –  nnnnnn Aug 9 '12 at 2:06
    
Heresy!........ –  Šime Vidas Aug 9 '12 at 2:16

An HTML string?

$('<div>').append($('#wrapper').clone()).html();
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