Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm having a problem understanding chaining. I have this code fragment:

groups.appendTo(this.selectedList.add(this.availableList));

Initially, both selectedList and availableList are identical, and contain an HTML ul with a single li element. groups is another ul with 4 li elements. On completion, both this.selectedList and this.availableList have been modified, and contain the new list items. How does this work, and what exactly is the add doing here? It doesn't add the contents of the available list to the selected list. I also thought that add returned a temporary object? And why is this code any better than:

groups.appendTo(this.AvailableList);
groups.appendTo(this.selectedList);

Thanks.

EDIT

The context is:

(function($) {
   $.widget("ui.multiselect", {
      options: {...},
      _func: function() {
         ... local 'this':
         groups.appendTo(this.selectedList.add(this.availableList));
      }
   });
})(jQuery);
share|improve this question
    
What is this? –  nnnnnn Mar 20 '12 at 12:29
    
No - it's copied verbatim from the source (a multiselect plugin), which I've traced through on Firebug to get the results above. –  EML Mar 20 '12 at 12:54
    
@nnnnnn: see edit above –  EML Mar 20 '12 at 13:11

1 Answer 1

The nice thing about chaining is that you don't have to perform your selections multiple times and therefore gain performance. All jQuery-functions (plugins too) will return the selection (some will return an altered selection though) they performed on so you can just add another method in the chain like:

$('.classIHaveUsedVeryOften').append(foo).hide().addClass('bar');

In case you would write:

$(.classIHaveUsedVeryOften).append(foo);
$(.classIHaveUsedVeryOften).hide();
$(.classIHaveUsedVeryOften).addClass('bar');

jQuery would have to retrieve all of the matching elements three times. In case you have large DOM structures this can take quite some time actually (i.e. don't do this).

Another possibility of dealing with this issue would be putting your selection into a variable beforehand:

var $mySelection = $(.classIHaveUsedVeryOften);
$mySelection.append(foo);
$mySelection.hide();
$mySelection.addClass('bar');
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.