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I run this jQuery (1.8.3) code and always get the "in" alerted even when the length is greater than 1.

What I'm doing is dynamically adding elements to a menu and the if is to make sure this element doesn't exist yet.

I tried also == 0 and === 0 but the result is the same...

Here is a JS fiddle: http://jsfiddle.net/mHhwq/4/

$(".sidebarit a.olink").click(function(event){
   iframe_url = $(this).attr("href");
   sidebar_id = '#' + iframe_url.replace(/[/.]/g, '');
   alert('sidebar_id: ' + sidebar_id);

   // create the sidebar if it doesn't exist
   if ($(sidebar_id).length < 1) {
      alert("in");
      $("#sidebar_nav ul").append('<li></li>');
      $("#sidebar_content").append('<div id="' + sidebar_id + '" style="display:none;"></div></div>');
   } else { alert("out"); }

   // don't follow the link
   event.preventDefault();
});

In FireBug I see the length equals 1 but still enters the block.

What am I doing wrong?

Update:

My mistake was that I added the # at the wrong place...

share|improve this question
    
Please provide the entire source code, and perhaps even the FireBug output. –  Aadit M Shah Dec 3 '12 at 9:26
    
What does the HTML look like? What is the value of sidebar_id? You're only giving us half the info. –  jfriend00 Dec 3 '12 at 9:27
1  
You are basically claiming if (1 < 1) { alert("in"); } will produce an alert of in, which is not something that can be easily reproduced at least. You have to be making a mistake somewhere. –  Asad Dec 3 '12 at 9:33
1  
I've added a js fiddle. The same happens there. I added an alert of the .length and for some reason it appears 0 there, though the ID exists... –  SimonW Dec 3 '12 at 9:54
1  
The problem is as @JustinJohn predicted (I updated the fiddle to sidebar_id.slice(1), which solves the problem): jsfiddle.net/mHhwq/6 –  Aadit M Shah Dec 3 '12 at 9:58

3 Answers 3

up vote 2 down vote accepted

Try to put alert inside if stmt as alert($(sidebar_id).length).

And you are making a mistake in appending the div to$("#sidebar_content").

Where sidebar_id is something like #test from sidebar_id = '#' + iframe_url.replace(/[/.]/g, ''); and you are appending like <div id= "#test" there, where it should be <div id= "test"(No # symbol is requird for id).

Your code will results like

$("#sidebar_content").append('<div id="#test" style="display:none;"></div></div>');

Change to

$("#sidebar_content").append('<div id="test" style="display:none;"></div></div>');

Then try again.

share|improve this answer
1  
+1 for noticing that the OP is assigning an id prefixed with # to the id attribute. –  Aadit M Shah Dec 3 '12 at 9:49
    
@JustinJohn, many thanks! I missed that and it works now :) –  SimonW Dec 3 '12 at 9:57
    
@SimonW glad to help you –  Justin John Dec 3 '12 at 10:07

You must not have more than one element with the same ID. jQuery takes just the first in such a case.

To prove this have such HTML:

<div id="mydiv">hello</div>
<div id="mydiv">world</div>

Then this code:

var myDiv = $("#mydiv");
alert("length: " + myDiv.length + ", contents: " + myDiv.html());​

Test case.

If you have more than one element you need to iterate, use class instead or alternatively make sure to have unique ID for each sidebar and take the one closest to the clicked element.

share|improve this answer
    
That is what I'm tring to avoid. that if it already exists the code in the if will be skipped. –  SimonW Dec 3 '12 at 9:42
1  
You will have either 0 or 1 as the length, using jQuery I don't think you can know if there is more than 1 already. –  Shadow Wizard Dec 3 '12 at 9:46

You have simply wrong the sintax. Jquery use 'sharp' simbol to select id tags, so:

if ($('#sidebar_id').length < 1) {
  alert("in");
} else { alert("out"); }
share|improve this answer
1  
How's this different from @Adil's answer from below? It suffers from the same assumption that the OP intended that sidebar_id is actually the id of the element instead of a variable which actually contains the string id of the element (which is what I believe the OP intended). –  Aadit M Shah Dec 3 '12 at 9:34
    
yours is a guess, like mine. so why the -1? –  Velthune Dec 3 '12 at 9:38
    
I didn't downvote you. Someone else did, but never commented why. –  Aadit M Shah Dec 3 '12 at 9:40
    
@AaditMShah I did, but I simply upvoted your comment instead of posting another one. The problem with this answer has been addressed in the comments to Adil's answer, of which this is a duplicate. –  Asad Dec 3 '12 at 9:43
    
simply because he preceded my answer. -1 is for a bad or wrong answer! –  Velthune Dec 3 '12 at 9:52

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