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given the following

$("#identifier div:first, #idetifier2").fadeOut(300,function() {
  // I need to reference just the '#identifier div:first' element
  // however $(this) will grab both selectors

Is there a better way to go about this other than just calling $("#identifier div:first") again?

share|improve this question
this referes to the current element. Since your selector ends up finding multiple items, it applies the fadeOut function to each one. What are you trying to do exactly? –  alkos333 Aug 7 '11 at 15:12
fade out two elements, work with them separately then fade them back in. I can achieve this in a different way, that I know. I am however curious as to how I would do it in this manor. –  rlemon Aug 7 '11 at 15:27

3 Answers 3

up vote 4 down vote accepted

No, it'll call the function for each handle separately.

The comma in your selector is equivalent to saying:

$("#identifier div:first").fadeOut(300,function() {
  // $(this) -> '#identifier div:first'

$("#idetifier2").fadeOut(300,function() {
   // $(this) -> '#identifier2'

You can check by saying (untested):

$("#identifier div:first, #idetifier2").fadeOut(300,function() {
  if($(this).is("#identifier div:first")  {
     // do something

However, if you want to do different things (as what seems from your post), its better to attach them separately.

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What many people don't seem to realize in jQuery is that when there are multiple matched selectors, whatever functions are after the selector list will be called separately one at a time on each individual selector.

So $("#identifier div:first, #identifier2") will separately match both:

$("#identifier div:first")

And, will call the specified fadeOut function and it's handler separately for each match. That means each handler will have it's own this value set to the match the matched selector.

Internally inside of jQuery, there's a loop like this pseudo code that iterates through all the returned selector matches and calls the next function in the chain for each one:

for (var i = 0; i < matches.length; i++) {
    jQuery["fadeOut"].call(matches[i], duration, easing, fn);

If you want separate code to be used for the two different matches, then it might be better to just use two separate jQuery statements:

$("#identifier div:first").fadeOut(300,function() {
    // do stuff for #identifier div:first

$("#identifier2").fadeOut(300,function() {
    // do stuff for #identifier2

If you have a lot of code in the block and it's mostly the same, then you can also branch within one block of common code:

$("#identifier div:first, #identifier2").fadeOut(300,function() {
    if ( != "identifier2") {
        // execute code that only applies to the #identifier match
    // execute rest of common code
share|improve this answer
He's not checking for #identifier but the first div inside it. –  Mrchief Aug 7 '11 at 16:42
@Mrchief - corrected the sample code. –  jfriend00 Aug 7 '11 at 17:05
:). And if you have many more? –  Mrchief Aug 7 '11 at 17:12
@Mrchief - As I said in my answer, if you intend to run completely different code for each match, then use separate jQuery calls for each match and give each of them their own separate custom function block. It's the programmer's tradeoff when if statements in a common block of code is easier or not than just using separate code blocks for each match. Or factor the common code into a function that you can call from each separate handler. –  jfriend00 Aug 7 '11 at 17:47
I agree. I was hinting at .is() where you can easily do one little thing with just one and do common things with rest. –  Mrchief Aug 7 '11 at 18:01

Just check about which ID you're currently processing in $(this)

if( == "identifier"){ //your code goes here }
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1 is even shorter (and faster). –  Frédéric Hamidi Aug 7 '11 at 15:12
you're right :) –  Marek Sebera Aug 7 '11 at 15:13
The ID does not include the hash symbol. –  Álvaro G. Vicario Aug 7 '11 at 15:13
you're right too :) –  Marek Sebera Aug 7 '11 at 15:15
This will never pass, since he is fading out the first div in #identifier, not the identifier itself. –  Emil Ivanov Aug 7 '11 at 15:18

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