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I've tried different solutions now, but I'm not able to remove the correct rows.
Note: In HTML5 it is valid to use numbers in ID.

html

<table>
  <tr id="2"></tr>
  <tr id="5"></tr>
  <tr id="7"></tr>
  <tr id="9"></tr>
</table>

js

var arr = new Array();
arr[0] = '7';
arr[1] = '9';

for(var row_id in arr) {
  $('table tr[id='+row_id+']').remove();
}

The result is always the same - some of my top rows are removed, not the bottom two.
What am I missing in this code?

Update: Here is my fiddle - http://jsfiddle.net/6PkMK/1/

share|improve this question
up vote 4 down vote accepted

You have two problems. First, you're using the key instead of array[key]. Let me do a quick demo...

var array = ["a", "b", "c"];

for (var i in array)
{
    console.log(i); //0, 1, 2
    console.log(array[i]); //"a", "b", "c"
}

You get the picture, right? The second problem is that you're, I think, using the selector variable in a wrong way. In Jquery, when you want to select an element with and id, you do it like this: $(#id), not the way you're doing it.

Try this:

var arr = new Array();
arr[0] = '7';
arr[1] = '9';

for(var row_id = 0; row_id < arr.length; row_id ++) { //The proper way to iterate
  $('#' + arr[row_id]).remove();
}

Again, if this is false, please let me know in the comments and I'll remove my answer.

share|improve this answer
    
I believe that my answer is the only correct one thus far. – jcora Mar 4 '12 at 23:06
1  
As @am not i am says, numeric ids are wrong but this should work if you said $("#row" + arr[row_id]).... +1 because it should be quicker than the selector in the original answer. – ClarkeyBoy Mar 4 '12 at 23:06
    
@Bane why would yours be only one correct when my ID only selectpr was posted before yors – charlietfl Mar 4 '12 at 23:20
1  
@charlietfl: Yours was initially incorrect. You updated it after others posted the arr[row_id] solution (and so did @dotoree). – squint Mar 4 '12 at 23:23
    
I don't remember your answer being correct... I guess it is now. My comment was 15mins ago, seems like you've improved your answer since then. Doesn't really matter though... – jcora Mar 4 '12 at 23:23

I've got it to work - http://jsfiddle.net/fbjut/.

Note that you really shouldn't use numeric ids, you should start them with 'row' or something (preferably something more descriptive!).

var arr = new Array();
arr[0] = '7';
arr[1] = '9';

for(var row_id in arr) {
  $('table tr[id='+arr[row_id]+']').remove();
}
​
share|improve this answer
    
You should post answers here, not just on a different site. – squint Mar 4 '12 at 23:30
    
Sorry - I was thinking that taking the askers code, modifying it so that it works, linking to it and giving advice at the same time counted as an answer (end of sarcasm - it's not so much that I think this, it's more that know this is the case....). – ClarkeyBoy Mar 4 '12 at 23:34
    
Don't be rude. Questions and answers on StackOverflow are meant to be a resource for future readers. In order for your answer to be assured of being available in the future, it should be posted here, with offsite links being supplementary. – squint Mar 4 '12 at 23:40
    
Sorry, just had a migraine all day and getting sick of it... I just get easily agitated when people tell me what to / not to post, how to post etc when I see some far worse answers on other posts. I especially get agitated (by anything) when my heads banging. Other answers have the solution, in parts, I just put them all together in one jsfiddle and was also the first person to post a jsfiddle. – ClarkeyBoy Mar 4 '12 at 23:47
    
So sweat bro. +1 to ease the pain a bit. ;) – squint Mar 4 '12 at 23:48
var arr = ['7','9'];

for(i=0;i<arr.length;i++) {
  $('#'+arr[i]).remove();
}

demo jsBin


/*
var arr = [];
arr[0] = '7';
arr[1] = '9';
*/
var arr = ['7','9'];

for(var row_id in arr) {
  $('#'+arr[row_id]).remove();
}

demo2 jsBin

share|improve this answer

Have you tried:

$('table tr#'+arr[row_id]).remove();
share|improve this answer
1  
What's wrong with $('#'+row_id).remove();? ;-) – Tomm Mar 4 '12 at 23:02
    
This won't offer any improvement over using an attribute-equals selector. – squint Mar 4 '12 at 23:04
2  
It doesn't work. It's array[key], not key. – jcora Mar 4 '12 at 23:04
1  
@Bane - That was is. I had to use arr[row_id]. Want to post that as an answer so I can marked this as solved? – Steven Mar 4 '12 at 23:16
1  
@Steven After Bane's correction it works – dotoree Mar 4 '12 at 23:17

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