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I am trying to append a string, myoutput, right after a specific row in a table similar to this one:

<tr data-my_id='1'> <td> content </td> </tr>
<tr data-my_id='2' data-my_other_id='1' > <td> content </td> </tr>
<tr data-my_id='3' data-my_other_id='2' > <td> content </td> </tr>

So let's say I want to append my output string after the tr with data-my_other_id='2' (note that in my code, my_other_id = 2 already )

I am trying to accomplish it doing this:

var want = $("tr").find("[data-my_other_id='" + my_other_id + "']").index();

after finding the index, I want to append my output strhing to this row...


Also... I noticed whenever I do alert( want = $("tr").find("[data-my_other_id='" + my_other_id + "']").length)

I get 0 ...

Help please and let me know if my question is not clear enough so I can explain better.

share|improve this question
There are 2 problems.. you are using "find" which is for descendants of tr. Also your use of index is wrong, it returns an integer. see my answer below – Justin Bicknell Jan 4 '13 at 23:24

4 Answers 4

up vote 2 down vote accepted

I'm assuming you want to update the content rather than append, but it doesn't really change anything. I don't think you want to use find() that way. Try something like:

var $row = $('tr[data-my_other_id="' + id + '"]');
// should be the index of the tr in the <table>
// this may not be a good idea though - what if you add a header row later?
var index = row.index() + 1; // if you want 1-based indices
$row.find("td").text("I am row #" + index);
share|improve this answer
Just what I needed. Thanks. – murielg Jan 6 '13 at 18:24

You don't need to use the find method since the data attribute is on the tr itself. Also your use of index is not going to work. Try the following instead.

$("tr[data-my_other_id='" + my_other_id + "']").insertAfter(...?);
share|improve this answer
This works too. Can I pick 2 answers? Thank you for helping – murielg Jan 6 '13 at 18:24
Thanks - I don't think you can pick 2 answers – Justin Bicknell Jan 7 '13 at 18:27

This is because find will no search siblings, only children. Try attaching your search to table.


<tr data-my_id='1'> <td> content </td> </tr>
<tr data-my_id='2' data-my_other_id='1' > <td> content </td> </tr>
<tr data-my_id='3' data-my_other_id='2' > <td> content </td> </tr>


var my_other_id = 2;
alert( $("table").find("[data-my_other_id='" + my_other_id + "']").length);​


share|improve this answer
Or use .filter(), as in $("tr").filter("[data-my_other_id= ... etc. – stephband Jan 4 '13 at 23:19
Or $("tr[data-my_other_id='" + my_other_id + "']") – Benoir Jan 4 '13 at 23:20
Thanks for replying. For some reason using find or filter wasn't working for me. @Benoir 's answer worked just fine. – murielg Jan 6 '13 at 18:25

find looks for descendents. A TR can not be a descendent of itself.

Try using filter()

$("tr").filter("[data-my_other_id='" + my_other_id + "']").index();
share|improve this answer
I would avoid using filter, since it will first select all tr's – Justin Bicknell Jan 4 '13 at 23:28
@Justin, it will do it anyways – Alexander Jan 4 '13 at 23:31
@Alexander - not if you do the following $("tr[data-my_other_id='" + my_other_id + "']") – Justin Bicknell Jan 4 '13 at 23:37
@Justin JQuery uses filter internally to parse your selector...look in jQuery source... not much difference if you call it or jQuery calls it – charlietfl Jan 4 '13 at 23:45
@charlietfl it has to run the selector sizzle engine twice -> see – Justin Bicknell Jan 4 '13 at 23:50

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