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I want to pass the following variable like so:

var $headerHeight = jQuery("#header").outerHeight() - jQuery("#header .main-menu").outerHeight();

jQuery(this).find('nav').attr('style', 'margin-top:' + $headerHeight + '!important');

It's obviously used in the wrong syntax; I just can't figure out how to use it correctly. The jQuery ".css" function isn't an option because it has to have the "!important" declaration. How can I pass $headerHeight in the above example?

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!important is a sign of failure. See:… –  Diodeus Dec 3 '12 at 19:37
Because of the way css specificity works, you shouldn't need to use !important on an inline-style, inline styles override stylesheets unless the declaration is using !important. If that's the case, the correct fix would be to fix the css. –  Kevin B Dec 3 '12 at 19:39
You need to add some pixels if you intend to use that as a string -> +'px!important', however I do tend to agree, having to use important this way is a sign that you're doing something wrong. –  adeneo Dec 3 '12 at 19:39
The reason I'm having to use "!important" is because I'm using the jQuery "slideToggle" function which adds a margin-top which I don't want as it moves the menu down as the height grows, I need the menu in a fixed place and for it to just slide down with height, my "!important" solution doesn't work the way I wanted anyway now I've added the "px" unit I forgot (thanks for that by the way, not sure how I forgot it), anyone got any ideas on a jQuery "slideToggle" alternative function which only slides down in height and not position? Cheers, Tom. –  Tom Dec 3 '12 at 19:45
@Tom then i suggest instead using $.animate, it will result in much cleaner code than using slideDown with inline !important. slideDown's css changes will override your !important anyway. –  Kevin B Dec 3 '12 at 19:58

3 Answers 3

    var headerHeight = $("#header").outerHeight() - $("#header .main-menu").outerHeight();

    jQuery(this).find('nav').attr('style', 'margin-top:' +headerHeight+'px ' + '!important');
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You need to add a unit to the property value. (probably px)

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Thanks for this, if you're interested in helping a dude out see the comment above, if not cheers anyways! Tom. –  Tom Dec 3 '12 at 19:46

You're fixing the wrong problem. Instead of un-doing a change that slideToggle does, simply don't use slideToggle.

    height: "200px" // or whatever your target height is, calculated or static.
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