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So basically my regex is not working as I expect & I don't know why.

I am working in a fairly regulated environment so this should not be too much of a problem - all the html tags are generated by a script & follow this pattern: only li, p and h(3-6) tags are present. all text is between tags and there are no spaces between tags.

I 'need' to write something to surround the lis with ul tags. here is what i got:

preg_replace('#(<li>[^<p|<h]+</li>)(?!<li>)#', '<ul>$1</ul>', $html)

however it only matches the last li pair in a set for some reason. Anyone can tell me why ... please?

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What is the #( and )#? It appears to just be a basic capture surrounded by # characters, meaning it will match the string #<li>something</li>#. Surely that's not right. – Kevin Ballard Mar 4 '11 at 2:56
@Kevin Ballard - you don't have to surround your pattern with /. You can use any character instead. And when you have a lot of slashes in your pattern, using a different character like # or | means you don't have to \ escape them which can improve readability a lot. – ithcy Mar 4 '11 at 2:58
@ithcy: preg_replace requires surrounding the pattern? That sounds completely useless given that the pattern is, by definition, already a pattern. Still, from the examples in the documentation you appear to be right. Thanks. – Kevin Ballard Mar 4 '11 at 3:00
@Kevin, no, it's not required, it's just convention. But - what if you need to use pattern modifiers? – ithcy Mar 4 '11 at 3:04
@Andrew I know this is usually the case, but I thought this was because html is complex & you never know exactly how things will be formed, etc. in this case the html really is as simple and constrained as I originally stated. I have nothing against using a DOMdocument. Mostly I was just posting because I wanted to know why my regex didn't work, though. – jisaacstone Mar 4 '11 at 3:08

1 Answer 1

up vote 3 down vote accepted

[^<p|<h] doesn't do what you expect. It matches a single character that is not any of the characters <p|h. If your HTML really is as constrained as you say, and you cannot have an <li> nested inside another <li>, then the following should work:

preg_replace('#(<li>.*?</li>)+#', '<ul>$0</ul>', $html)

The sequence .*? is just like .* except the trailing ? is the non-greedy modifier. By default .* is greedy - it will consume as many characters as it can, then backtrack if the rest of the pattern doesn't match. The non-greedy modifier inverts this. It consumes as few characters as it can and advances if the rest of the pattern cannot match. As the rest of the pattern is simply </li>, this effectively captures all text up to, but not including, the first sequence </li>. This pattern is then nested inside a capture which is then repeated with +, meaning it will match one or more sequences of <li> tags.

share|improve this answer
@Long Ears: It will wrap a sequence of <li> tags with <ul>. Multiple distinct sequences of <li> tags will be wrapped separately. Note that I used $0 instead of $1 in the replacement. – Kevin Ballard Mar 4 '11 at 3:11
I think I finally understand greedy vs non-greedy. Super helpful. – jisaacstone Mar 4 '11 at 3:15

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