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var $span = $('<span>foo</span>');


You'll notice the resulting span has inline style display: block; instead of inline.

This is the resulting html:

<span style="display: block;">foo</span>

How do I get the fadeIn() to result in display: inline?

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Wait, what is the question again? – Adrian Carneiro Nov 8 '12 at 1:51
It looks pretty inline to me. – Blender Nov 8 '12 at 1:53
in the fiddle, it is block. I updated the question. – chovy Nov 8 '12 at 1:59

3 Answers 3

I just found a simple solution to a similar problem. In your case, the fix would be this:

$span.css('display', 'inline').hide().fadeIn();
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I'm with Adrian; that really wasn't a question. But you are correct: jQuery does a very naive translation of display properties when you use anything that show/hides elements (eg. show, hide, togle, fadeOut, etc.).

I've honestly never understood why they do this (it'd be much simpler to simply set display to:

isShown ? '' : 'none';

instead of their logic, which is essentially:

isShown ? 'block' : 'none';

) but they have reasons for just about everything they do, so I imagine they have a some logic behind setting the wrong display types on things.

* EDIT *

As I suspected, the jQuery people did have their reasons (see the comments from jfriend00); also I see that there's an actual question in the question now:

How do I get the fadeIn() to result in display: inline?

The answer is that you need to look at how fadeIn works; essentially it's just:

this.animate({opacity: "show"}, speed, easing, callback );

In other words, it's roughly equivalent to:

this.animate({opacity: '100%'}, speed, easing, function() {
    this.css('display', 'block')

(WARNING: I'm not actually a big user of jQuery's animation features, so while the above code should work, I make no promises).

Given that, if you want to set the display to something else (like say 'inline'), you can do:

this.animate({opacity: '100%'}, speed, easing, function() {
    this.css('display', 'inline') // or you could use this.css('display', '')
share|improve this answer
They probably can't use isShown ? '' : 'none'; because they have to override any CSS that might be in effect and setting display to '' would allow the CSS to be in effect rather than forcing the object to be shown. – jfriend00 Nov 8 '12 at 1:56
I imagine that's because inline elements, being a part of the flow, cause greater disruption when changing their display property, as they force a reflow of everything around them? I suppose you could animate a change in rgba() on the element, but that wouldn't be supported all that well across all browsers, either. – Jason M. Batchelor Nov 8 '12 at 1:56
@jfriend00 It doesn't "allow the CSS to be in effect" though; it replaces whatever existing value is there with '', which (in every browser I know) sets the property back to its default value (which will be the correct display type, eg. inline for spans, block for divs, etc.). – machineghost Nov 8 '12 at 17:35
@morei57 That might be the reason, although personally I'd rather have a few more reflows and the correct display types /shrug – machineghost Nov 8 '12 at 17:36
@machineghost - you didn't understand my comment. Setting style.display='' sets it to default which allows CSS rules in a style file specified by a selector (not set specifically on the style attribute of the object) to be in effect. Setting style.display = 'inline' or style.display = 'block' overrides the CSS rules giving a known result. There is difference and jQuery probably wants to override the CSS rules to get to a known result. – jfriend00 Nov 8 '12 at 21:49
up vote 0 down vote accepted

By cloning the original object I can call fadeIn and it gives me an inline style.

var $htm = $('<span/>')
, $divs = $('div');

   return $htm.clone().fadeIn(2000);
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