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$(this+"p").slideDown("slow");

$(this)+$("p").slideDown("slow");

$("this+p").slideDown("slow");

does not work.

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Thanks to Tim Ridgely and S Pangborn –  phil Jun 11 '10 at 19:24
    
This $("this+p").slideDown("slow"); should work as it is W3C standardised for HTML5/CSS3 - Looks like jQuery need to implement this still (Jan 2013) - Hurrrrry up! –  ppumkin Jan 7 '13 at 13:41

3 Answers 3

up vote 1 down vote accepted

Next.

$(this).next("p").slideDown("slow")

Make sure that the "p" element is directly adjacent, though. Otherwise you'll want to use nextAll.

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Your answer is incorrect because you cannot select DOM elements with next. Only elements with an ID or Class. Instead ise .children() -1 –  ppumkin Jan 7 '13 at 13:47
    
Use children() to get an adjacent item? Wouldn't that return children of this? –  Charlie S Jul 5 '13 at 18:38

Yeah, your syntax is bad. You should use the jQuery Sibling function:

$(this).siblings().find("p").slideDown("slow");

The jQuery API site is awesome for looking stuff like this up, I rely on it nearly daily. I'd keep an eye on it.

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Syntax is not bad. It is actually a standardized W3C syntax- But jQuery does not interpret it correctly? –  ppumkin Jan 7 '13 at 13:57

jQuery have not seemed to apply this? Possibly the syntax we are trying to use is incorrect.

next() can only select elements with an ID or Class - Not just a naked dom element as expected.

Instead use. > means select first level decends only.

$('body > div').hide();

But this gives the exact same result

$('body').children('div').hide();

But,

  • Next
  • $('body + div').hide();

and

  • Previous
  • $('body ~ div').hide();

Do not seem to work as expected? But jQuery use it as example for CSS selection...

Possibly there is a complex syntax to achieve this but I could not figure it out...

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