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How would I correctly call the specialHouse function after the h1 was clicked, in way that would still allow $(this) to represent div.content. Currently the below does not work with the error "Uncaught TypeError: Object [object Object] has no method 'specialHouse'"

function specialHouse()
{
    $(this).slideDown(500, function(){
      $(this).delay(2000).slideUp();
    });
 };

$('div.content').hide();
$('h1').on('click', function(){
    $(this).next('div.content').specialHouse();
})

Thanks for any help :)

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3 Answers 3

You have to tell jQuery about your new function:

jQuery.fn.specialHouse = function() {
   return this.slideDown(500, function(){
     $(this).delay(2000).slideUp();
   }
}

As we return this our function is chain able:

$("a").specialHouse().text("Hello World");
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why do we have to return 'this' in order for the function to be chain-able :S –  Ben_hawk Jul 2 '12 at 11:39
    
This is how every chain-able jQuery plugin works. this is returned and the next function may use it again. –  jantimon Jul 2 '12 at 11:40
    
FWIW, I think the other answer is better. It works without modifying the OP's original function, and thus allows that function to continue to be used as a standalone event handler. –  Alnitak Jul 2 '12 at 12:03

The way you've tried it works only for jQuery plugins. You can however invoke the function like this (the context this will be set as expected):

$('h1').on('click', function() {
    $(this).next('div.content').each(specialHouse);
});
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good way to do it without converting that function into a plugin –  Alnitak Jul 2 '12 at 11:12

Try :

$('div.content').hide();
$('h1').on('click', function(){
    specialHouse($(this).next('div.content'));
}) 

function specialHouse(elem){
  $(elem).slideDown(500, function(){
     $(this).delay(2000).slideUp();
   });
};
share|improve this answer
    
The OP specifically requested $(this) - not a parameter. –  Alnitak Jul 2 '12 at 11:45

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