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I am having a doubt in jQuery array object. Let me describe briefly: I am having two arrays called brandsLink andfloorLink. when user will click any link, I am storing that particular brand name inside a variable called brandName, and the variable I am checking inside the second array. If it's found then I will write some other method. I am attaching a image for reference. I think it will help.
Here is the code:

$('document').ready(function() {

    var brandsLink = $('.brandLinks li a[id]');
    var floorLink = $('#orionPlan .mapContainer area[id]');

    brandsLink.click(function(e){
        var brandName = this.id;

        if(brandName == floorLink.find(brandName)){
            console.log('yes both are matching.');
        }
        else {
            console.log('sory.');   
        }
    });
});

reference image

thanks, naresh kumar

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1 Answer 1

  1. You cannot use ID in this manner. An ID has to be unique in the document.
  2. Your find call would search for 'someID' when it should search for '#someID'
  3. If you did find a match, you would be comparing 'someID' to a DOM node

You would need to switch to using classes, or prefix your ID's to make them unique (eg. floor-, brand-). You would also need to change your comparison.

Given the following markup:

<ul class="brandLinks">
   <li><a id="brand-zara" data-name="zara">Zara</a></li>
   ...
</ul>

...

<map name="..." class="mapContainer">
   <area id="floor-zara" data-name="zara" shape="rect" coords="..." />
   ...
</map>

Your click handler could say:

brandsLink.click(function() {
    var name = $(this).data('name'); // name = "zara"
    var match = floorLink.find('#floor-' + name);
    if(match.length > 0) {
        console.log('a matching area was found in floorLink');
    } else {
        console.log('sorry.');
    }
});
share|improve this answer
    
first time i gave name attribute, i got same error. so lastly i changed to id attribute. then also i am not getting the correct match. –  naresh kumar Oct 5 '12 at 12:04
    
@user1614271: yes, well that's because that was just one of several things that was wrong about this code. I've updated with an example of what the working code might look like. –  David Hedlund Oct 5 '12 at 12:08
    
ok, let me try. –  naresh kumar Oct 5 '12 at 12:11

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