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I am developing a css for printing in IE8, since i don't have advanced css selectors( http://net.tutsplus.com/tutorials/html-css-techniques/the-30-css-selectors-you-must-memorize/ ) i concatenate them like this

I need to modifiy certain columns in a table(e.g. make 8th column red, 9th longer, 10 shorter... ecc)

The question is if i use

td+td+td{ /*instead of td:nth-child(3) on modern browsers*/
 set something...
}

all the td from the 3rd one to the last one have that "set something"

so to fix it i have to do

td+td+td+td{
 unset something
}

So i fixed it, but wondering why it acts like this?

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3 Answers 3

up vote 1 down vote accepted

+ denotes adjacent selectors.

td+td { } Generally means, if a td is preceded by another td then apply certain rule

One more example:

a + p {} Generally means, if p comes after a then apply certain rule.

So the style sheet you are using

td+td+td will apply the style to every td after the third elements. This might be a little complicated to be clear about. Lets see an example with sets of <td>

<td>1</td>
<td>2</td>
<td>3</td>
<td>4</td>

Your rule

td + td + td {
    /* apply something */
}

The above rule will apply to two different sets

  1. First one, adjacent sibling from <td>1</td> to <td>3</td> matches td+td+td

  2. Second one, adjacent sibling from <td>2</td> to <td>4</td> also matches td+td+td

So at the end, all the selectors from <td>3</td> end up getting the style

To cancel this effect, you reset the rule adding fourth selector on the style sheet. i.e

td + td+ td + td {
  /* cancel the effect
  This will catch <td>-4</td> and apply the reset rule */
}

Hope that explains it.


Further Reading

  1. W3 Org
  2. Good Explanation with examples
  3. One more to fully clarify
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Why not just put class names on the columns and style them directly? It eliminates multi-version hacks.

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1  
It's good advice, but does it answer the question? –  Rob W Feb 24 '12 at 14:59

a + b means: "select b if it is preceded by a".
td+td+td means: Select a td if it is preceded by 2 <td>s.

(see picture)
Every X is selected by td+td+td.
Every Y is selected by td+td+td+td.
To select the third sibling, both selectors has to be combined.

<td>  1        1                     = default
<td>  2 1      2 1                   = default
<td>  X 2 1    3 2 1   <--- X        = style X
<td>    X 2 1  Y 3 2   <--- X and Y  = style X, but reset to default by Y
<td>      X 2    Y 3   <--- X and Y  = style X, but reset to default by Y
<td>        X      Y   <--- X and Y  = style X, but reset to default by Y
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sorry, didn't understood picture –  max4ever Feb 24 '12 at 15:09
    
@max4ever The numbers show that every element marked by X has 2 preceding siblings, and that every element marked by Y has 3 preceding siblings. At the right side, I've marked the outcome of the selectors. Now, do you understand the pic? –  Rob W Feb 24 '12 at 15:12

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