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I am trying to figure out what the below syntax do. It's code from Bootstraps popover.

//title is a string
$tip.find('.popover-title')[ $.type(title) == 'object' ? 'append' : 'html' ](title)
                           ^                                                 ^
                       What does this symbol mean?                    Whats happening here?
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@pimvdb It did that in older versions of jQuery as well? –  Neal Mar 28 '12 at 20:28
    
Never mind... My mistake. –  pimvdb Mar 28 '12 at 20:35

3 Answers 3

up vote 6 down vote accepted

Let's break it up:

$tip.find('.popover-title')[ $.type(title) == 'object' ? 'append' : 'html' ](title)

It can be broken down into this:

var found = $tip.find('.popover-title');
found[$.type(title) == 'object' ? 'append' : 'html'](title);

And more:

var found = $tip.find('.popover-title');

if ($.type(title) == 'object') {
  found['append'](title);
} else {
  found['html'](title);
}

A little more:

var found = $tip.find('.popover-title');

if ($.type(title) == 'object') {
  found.append(title);
} else {
  found.html(title);
}
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1  
Ahhhh Blendy. You just had to upstage me :-P –  Neal Mar 28 '12 at 20:27
    
This is not 100% correct. You lose the implicit this value to found in the func assignments. –  pimvdb Mar 28 '12 at 20:28
    
@pimvdb: What do you mean? I don't really see this used in the code. –  Blender Mar 28 '12 at 20:30
1  
@Blender: In your code func === $.fn.append or func === $.fn.html; to use it on the element (set the this value correctly) you'd have to do func.call(found, title). Only if you do foo.append(), the this value is set automatically to foo. –  pimvdb Mar 28 '12 at 20:31
    
@pimvdb: Yep, you're right. Thanks for the info. –  Blender Mar 28 '12 at 20:35

It is basically saying:

if(typeof title == 'object') {
    $tip.find('.popover-title').append(title);
}
else {
    $tip.find('.popover-title').html(title);
}

The [...] notation allows for you dynamically select the function from the $tip.find('.popover-title') object.

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Here, have some compensation ;) Does $.type() actually do anything other than wrap typeof in a function? I don't really see why you would need to use $.type() in this code at all... –  Blender Mar 28 '12 at 20:31
    
@Blender hehe hence I used typeof. jQuery likes making up functions for things that exist already :-P –  Neal Mar 28 '12 at 20:33
    
@Blender although it seems it may have more features to detect more things. api.jquery.com/jQuery.type –  Neal Mar 28 '12 at 20:34

$("selector")["append"](...) is equal to $("selector").append(...)

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