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I have a huge table that I want to clone and divide the clone into 2 separate tables, keeping the original table unchanged.

Say the original table is called #MainTable with 10 columns

I create a clone #CloneTable which initially also has all the 10 columns of #MainTable

Now, I change #CloneTable, such that #CloneTable has the first 5 columns and another table #RemainingClone has the remaining 5 columns

Now, what happens here is that suddenly my original table #MainTable also loses 5 columns and updates to retain only those columns that #CloneTable has.

Shouldn't #MainTable be unaffected by changes being made to #CloneTable?

EDIT 1: I am using the jquery clone(), as the Tags indicate.

EDIT 2: Here's some code -

 $("#MainTable").clone().attr('id', 'CloneTable').appendTo("#printingDiv");
 splitTable();


function splitTable() {
     var divider = 5;
     var $tableOne = $('table').attr('id','CloneTable');
     var $tableTwo = $tableOne.clone().attr('id','RemainingClone').appendTo('#printingDiv');

     // number of rows in table
     var numOfRows = $tableOne.find('tr').length;

     // select rows of each table
     var $tableOneRows = $tableOne.find('tr');
     var $tableTwoRows = $tableTwo.find('tr');

     // loop through each row in table one.
     // since table two is a clone of table one,
     // we will also manipulate table two at the same time.
     $tableOneRows.each(function(index){
         // save row for each table
         var $trOne = $(this);
         var $trTwo = $tableTwoRows.eq(index);

         // remove columns greater than divider from table one
         $trOne.children(':gt('+divider+')').remove();
         $trTwo.children(':lt('+(divider+1)+')').remove();
    });
}
share|improve this question
    
Please post some of the code you are using when seeing this behavior. –  juan.facorro Apr 4 '13 at 21:00
    
How are you creating and changing the ID of #CloneTable, from the docs: "Using .clone() has the side-effect of producing elements with duplicate id attributes, which are supposed to be unique. Where possible, it is recommended to avoid cloning elements with this attribute or using class attributes as identifiers instead." –  doublesharp Apr 4 '13 at 21:11
    
You are changing the ID of all tables to be "CloneTable", including "MainTable", with the side effect of $tableOne referencing both DOM elements. –  doublesharp Apr 4 '13 at 21:12

2 Answers 2

up vote 2 down vote accepted

In the splitTable() function you are calling:

var $tableOne = $('table').attr('id','CloneTable');

This sets the ID of all <table> elements to be 'CloneTable', including the one it was originally cloned from, being 'MainTable', and references both DOM elements. All changes to this jQuery object will now affect both tables. To just get the cloned table, you would use the following as you changed the ID when it was created:

var $tableOne = $('table#CloneTable');
share|improve this answer
    
Great catch! Thanks @doublesharp! –  neuDev33 Apr 4 '13 at 21:21

Here's a fiddle that shows a way of doing what you describe: DEMO. I'm not seeing the behavior you describe (i.e. the original is modified along with some of its clones).

JS

$(function() {
    var firstFive = $('#main').clone();
    var secondFive = $('#main').clone();
    $('body').append(firstFive);
    $('body').append(secondFive);
    firstFive.find('tr').each(function() { 
        $(this).find('td:gt(4)').remove()
    });
    secondFive.find('tr').each(function() { 
        $(this).find('td:lt(5)').remove()
    });
})

HTML

<table id="main">
    <tr>
        <td>1.1</td>
        <td>1.2</td>
        <td>1.3</td>
        <td>1.4</td>
        <td>1.5</td>
        <td>1.6</td>
        <td>1.7</td>
        <td>1.8</td>
        <td>1.9</td>
        <td>1.10</td>
    </tr>
    <tr>
        <td>2.1</td>
        <td>2.2</td>
        <td>2.3</td>
        <td>2.4</td>
        <td>2.5</td>
        <td>2.6</td>
        <td>2.7</td>
        <td>2.8</td>
        <td>2.9</td>
        <td>2.10</td>
    </tr>
</table>

Hope it helps.

EDIT: This was posted before the code sample.

share|improve this answer
    
The bug in the code is var $tableOne = $('table') - it selects both #MainTable and #CloneTable because they are both <table> elements, and then actually changes the ID of both to be 'CloneTable' which isn't correct, but not the problem you see here –  doublesharp Apr 4 '13 at 21:18
    
Yes, I just upvoted your answer :) –  juan.facorro Apr 4 '13 at 21:18

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