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I want to move a cell in a table to a new row. The table just contains one row with four cells. The third one is the one I need. The cell has to be removed from the existing row so only the new one contains it.

This is my markup:

<table class="sbtable">
<tbody>
<tr class="sbrow">
<td class="first">Blah</td>
<td class="second">Blah</td>
<td class="third">Blah</td>
<td class="last">Blah</td>
</tr>
</tbody>
</table>

JQuery:

function formatSearchBox() {
$(".sbtable").each(function () {
    var table = $(this);
    var firstRow = $(table).find("tr:first");
    var cell = $(firstRow).find("td").eq(2);
    var newRow = "<tr></tr>";
    $(newRow).append($(cell));
    console.log(newRow);
    $(newRow).append("<td></td><td></td><td></td>");
    $(firstRow).after($(newRow));
});
}

My problem is that the script only inserts a blank <tr></tr> and I have absolutely no idea why. I need the html like this:

<table class="sbtable">
<tbody>
<tr class="sbrow">
<td class="first">Blah</td>
<td class="second">Blah</td>
<td class="last">Blah</td>
</tr>
<tr>
<td class="third">Blah</td>
<td></td>
<td></td>
</tr>
</tbody>
</table>
  • 1
    close the <tr> like </tr> – Aamir Afridi May 20 '14 at 13:45
  • 1
    and it should be $(".sbtable") in your js code – Aamir Afridi May 20 '14 at 13:46
  • I have changed selectors to make it easier to read and there is no problem there. Only with inserting the cell into a new row. And what do you mean by closing <tr> like </tr>? – LeonidasFett May 20 '14 at 13:48
  • This is my first time coding JQuery so maybe I wrote the new selectors wrong. – LeonidasFett May 20 '14 at 13:49
  • Looks like you're appending again three blank columns.$(newRow).append("<td></td><td></td><td></td>"); Try adding only two columns – malkam May 20 '14 at 13:54
2

Your selector was wrong as explained in comments above but the main problem was you that you have to update newRow var as you can see below:

$(newRow).append($(cell));

you need

newRow = $(newRow).append($(cell));

Try this http://jsfiddle.net/aamir/dc6fM/3/

$(".sbtable").each(function () {
    var table = $(this);
    var firstRow = $(table).find("tr:first");
    var cell = $(firstRow).find("td:eq(2)");
    var newRow = "<tr></tr>";
    newRow= $(newRow).append(cell);
    newRow.append("<td></td><td></td>");
    $(firstRow).after(newRow);
});

Or try shorter version if you prefer: http://jsfiddle.net/aamir/dc6fM/2/

$(".sbtable").each(function () {
    var $table = $(this);
    var $cell = $table.find("tr:first td:eq(2)");
    $table.append($("<tr>").append($cell,"<td></td><td></td>"))        
});

Or even shorter: http://jsfiddle.net/aamir/dc6fM/5/

  • 1
    Thanks! This works, I guess I used $() the wrong way. – LeonidasFett May 20 '14 at 13:56
  • newRow is already a jQuery object on the second line after defined, so you don't need to pass it in $(...), I hate such a messy code, is not logic at all and uncessarily redundant. – King King May 20 '14 at 13:57
  • @filoxo done. King King, I fixed the issues. The code can be written in million different ways each with its own benefits. I suggested the shorter version which I think covers your point. – Aamir Afridi May 20 '14 at 14:00
  • 1
    @AamirAfridi I don't think the original version has any benefit here, again the function $() will have to turn the already jQuery object into another jQuery object, not sure what it has to do but it's obviously unnecessary. – King King May 20 '14 at 14:02
  • @KingKing I understand what you say and completely agrees with you. I just wanted to fix the basic issue the questioner was having. – Aamir Afridi May 20 '14 at 14:03
2

You have created 3 separate rows:

var newRow = "<tr></tr>";
$(newRow).append($(cell)); // new row created and cell appended to it
$(newRow).append("<td></td><td></td><td></td>");  // a different new row created, 3 cells appended
$(firstRow).after($(newRow)); // yet another row created, empty and appended

Each time you are calling $(newRow) you create another brand new row.

Instead, save the row to the variable:

var $newRow = $("<tr></tr>");
$newRow.append($(cell)); 
$newRow.append("<td></td><td></td><td></td>");  
$(firstRow).after($newRow); 
  • 2
    Also, unrelated to your issue, so I won't add it to the answer, but you are double-wrapping all of your jquery objects. For instance, firstRow is already a jquery object, don't use $(firstRow).find just use firstRow.find. – James Montagne May 20 '14 at 13:57
1

your newRow variable is just a string and using the jquery .append method is not working for you. newRow needs to be a jquery object to be worked on.

var newRow = $("<td></td>");
newRow.append("<td></td><td></td><td></td>");

Notice also in the 2nd line, I am not using $(newRow) as the variable already refers to the Jquery object. I see you are doing that when calling $(table) and $(firstRow).

  • var newRow = $("<td></td>"); is wrong :/ – Aamir Afridi May 20 '14 at 13:58
  • Care to explain why? Doesn't that code create a new <td> DOM element (that can then be inserted into the tree)? – collardeau May 20 '14 at 14:21
  • 1
    He don't want to create a new TD. He wants to move third cell from first row to a new row – Aamir Afridi May 20 '14 at 14:28

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