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I'm trying to figure out what to call tags in CSS in order to build nice paragraphs.

For now, this is what my code looks like:

p {
font-size: 1em;
line-height: 1.25em;
margin: 0;
text-align: left;
}
p + p {
text-indent: 2.5em;
}
li p, blockquote p {
    margin: .5em 0;
}

And my HTML:

<p><strong>A little title</strong></p>
<p>Content text which can be single line or big block aswell.</p>

Referring to the code above, I want to call the

     <p><strong>g</strong></p>

content, so that it doesn't inherit from p as previously entered.

I tried :

p strong which do call every strong located in a p but only inside of it. I mean : only on strong, after the p container has been set. Could maybe work with negative margin but a bit messy ...

p:not(p strong) which sounds like a solution, but doesn't fit that case since the strong is still heriting from the p styling.

Is there any way to do this with CSS?

--- EDIT ---

I used the p >strong:only-child for now, which is calling the strong tags located alone in p tags. To give the good visual rendering, I applied a negative left margin of the indent size ... as a temporary solution.

share|improve this question
    
The keyword is "select". –  BoltClock Aug 1 '11 at 16:16
2  
Should you really be using <p><strong></strong></p> for a title? There are tags for that already: <h1>, <h2>, <h3>, <h4>, <h5>, <h6>. –  Nightfirecat Aug 1 '11 at 16:44
    
I know ... this is all coming from a big mistake. As the big amount of content I'm dealing with was already written this way, I'd like to find a durable solution to it. –  Romainpetit Aug 2 '11 at 10:03

2 Answers 2

As far as I understand you want something like "contains":

p:contains(b) { line-height: 2em; }

but there is no such a selector in CSS in principle. If you want to know why then read my article "CSS, selectors and computational complexity"

Options for you:

a) Either to use classes like p.header, p.normal or

b) define style for the <b> rather than for <p> itself:

p > b:first-child:last-child {
  font-size: 2em;
}

Let me know if you will need comments on p > b:first-child:last-child selector.

share|improve this answer
    
nice answer i'll try it and am reading you right now. Actually I want more something like 'only contains' as I want to call the strong tag which is alone caught in a p. I don't want to style a whole paragraph differently just because it contains a bolded word . –  Romainpetit Aug 1 '11 at 16:19
1  
:first-child:last-child == :only-child. Also, b != strong –  BoltClock Aug 1 '11 at 16:22
    
@BoltClock. Indeed, thanks for that. –  c-smile Aug 1 '11 at 17:11
    
@Duke. As far as I understand you the selector p > b:only-child is exactly what you need, no? –  c-smile Aug 1 '11 at 17:14
    
the only child property allows me to target exactly the block i want, but just one hierarchical level too deep ... this is calling strong( or 'b' if you want) in the good cases. I just need to call that parent. –  Romainpetit Aug 2 '11 at 10:01

You may want to try p:not(). Further documentation is here: http://reference.sitepoint.com/css/pseudoclass-not

Update: Unfortunately the strong part continues to inherit the p tag styling. Your best bet would be to clear it in a selector such as p strong and then apply the rest of the styles that you want there.

Update 2: Turns out you ARE able to use the :not psuedo-selector. An example here: http://jsfiddle.net/Mf5uc/1/

share|improve this answer
    
Could you describe the meaning of p:not(p strong) ? And yet, just in case :not() cannot contain compound selectors. –  c-smile Aug 1 '11 at 15:57
    
p:not() isn't the answer here, as I've learned. This documentation is a little more comprehensive though: kilianvalkhof.com/2008/css-xhtml/the-css3-not-selector –  Andrew Peacock Aug 1 '11 at 16:00
    
Indeed Andrew. It is still inheriting from parent ... Anyway thanks for that info this can be really usefull in some situation despite not yet supported by all browsers. –  Romainpetit Aug 1 '11 at 16:08
    
p:not(p strong) is invalid. Even if it were valid, EVERY p isn't a p strong anyway... –  BoltClock Aug 1 '11 at 16:21
    
Your fiddle does have the requirement that the p has a child element for it to work, otherwise the p :not(strong) rule won't do anything. –  BoltClock Aug 1 '11 at 16:27

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