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In my script i'll add a table row when the user click on "add" button, and I want to set the valued of the new table row (who has input box and dropbown select) to the same of the old last row. I'll try this script, but it fails:

$('input[name=add]').live('click', function()
{
    var y = $('table tbody tr').length;
    var x = $('table tbody tr td').length;
    var last = $('table tbody tr:last');
    //alert(last.find('select:first').val());
    var value;
    last.clone(true).insertAfter(last);
    //alert(y);
    $('table tbody tr:last').find('td:last').html('<input type="button" class="btn" name="delete" value=" - " />');

    var col =$('table tbody').find('tr').eq(y).find('td');
    col.eq(x).each(function(index, element) {
        if(col.eq(index).has('input'))
        {
            value=$(this).val();
            $('table tbody tr:last').find('td').eq(index).find('input').val(value);
        }elseif(col.eq(index).has('select'))
        {
            value = col.eq(index).find('select').val();
            $('table tbody tr:last').find('td').eq(index).find('select').val(value);
        }
    });

it only works for the first of input box. The table row is this:

<tbody>
                <tr><td><input type="text" class="input-small" name="article" /></td>
                    <td>
                        <select name="colore">
                            <option value="nabuk">Nabuk</option>
                            <option value="nero">Nero</option>
                            <option value="blu">Blu</option>
                            <option value="rosso">Rosso</option>
                        </select>
                     </td>
                    <td>
                        <select name="fondo">
                            <option value="gomma">Gomma</option>
                            <option value="cuoio">Cuoio</option>
                            <option value="legno">Legno</option>
                        </select>
                    </td>
                    <td>
                        <select name="numero">
                            <option value="36">36</option>
                            <option value="37">37</option>
                            <option value="38">38</option>
                            <option value="39">39</option>
                        </select></td>
                    <td><input type="number" class="input-mini" min="1" max="200" name="qnt" step="1" /></td>
                    <td></td>
                </tr>
            </tbody>
share|improve this question

3 Answers 3

up vote 2 down vote accepted

I don't think you need such huge code, just try this:

$('table').on('click', '.btn', function() {
    $(this).closest('tr').remove();
});

$('input[name=add]').on('click', function() {
    var cloned = $('table tr:last').clone(true); // clone last row
    // looping over last row's inputs
    $('table tr:last').find(':input').each(function() {
        // set values to cloned inputs same previous
        cloned.find(':input[name=' + this.name + ']').val(this.value);
    });
    $('table > tbody').append(cloned); // append the cloned row to table
});

DEMO

According to comment

$('table').on('click', 'input[name=add]', function() {
    var cloned = $('table tbody tr:last').clone(true);
    cloned.find('td:last').html('<input type="button" class="btn" name="delete" value=" - " />');
    $('table tbody tr:last').find('select').each(function() {
        cloned.find('select[name^=' + this.name.replace('[]','') + ']').val(this.value);
    });

    $('table tbody').append(cloned);
});

DEMO

share|improve this answer
    
Do you need to set the input values for the new row? I was under the impression .clone() copied them anyway. –  Bojangles Jun 2 '12 at 8:46
    
@JamWaffles jQuery will not set previous value to cloned input, its a bug. check this jsfiddle.net/pkdGW/4.. you will see some input don't update –  thecodeparadox Jun 2 '12 at 8:47
    
Thanks for the clarification, I stand corrected. –  Bojangles Jun 2 '12 at 8:50
    
Hi, sorry but this solution doesn't work! –  mikecurl91 Jun 2 '12 at 16:49
1  
@user1432059 please check my update answer –  thecodeparadox Jun 6 '12 at 8:29

Here is the code using which you can accomplish what you want, you can optimize further but it's does what you need

$('body').on('click', 'input[name=add]',function()
{
    var last = $('table tbody tr:last');
    var value;
    last.clone(true).insertAfter(last);
    $('table tbody tr:last')
         .find('td:last')
         .html('<input type="button" class="btn" name="delete" value=" - " />');
    var col = last.find('td');
    col.each(function(index, element) {
        if($(this).find(':text').length)
        {
            value=$(this).find(':text').val();
            $('table tbody tr:last')
                  .find('td').
                     eq(index).find('input').val(value);
        }else if($(this).find('select').length)
        {
            value = $(this).find('select').val();
            $('table tbody tr:last')
                  .find('td').eq(index)
                  .find('select').val(value);
        }
                   });
});

$('table').on('click','.btn',function(){
   $(this).closest('tr').remove();
});​

I have used $.on as $.live is depreciated now.

Working Fiddle

share|improve this answer

jQuery clone unfortunately does not deep copy selectedIndex. Here's a laconic workaround, although it may be slow with large documents:

$("table tr:last select").change(function() {
    $("table tr:last").find(":selected").attr("selected", "selected");
});

$('button[name=add]').live('click', function() {
    $("table tr:last").find(":selected").attr("selected", "selected");
    $("table tr:last").clone().appendTo("tbody");
});​

http://jsfiddle.net/m8RNb/1/

share|improve this answer
    
I've an error on your solution... it doesn't work proprely :S –  mikecurl91 Jun 6 '12 at 7:26

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