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can regex able to find a patter to this?

{{foo.bar1.bar2.bar3}}

where in the groups would be

$1 = foo $2 = bar1 $3 = bar2 $4 = bar3 and so on..

it would be like re-doing the expression over and over again until it fails to get a match.

the current expression i am working on is

(?:\{{2})([\w]+).([\w]+)(?:\}{2})

Here's a link from regexr.

http://regexr.com?3203h

--

ok I guess i didn't explain well what I'm trying to achieve here.

let's say I am trying to replace all

.barX inside a {{foo . . . }}

my expected results should be

$foo->bar1->bar2->bar3
share|improve this question
    
Why don'y you just use #(\w+)# pattern to catch words with no . and {}? –  s.webbandit Aug 30 '12 at 6:35
3  
Is regex really the best way to do this? Why don't you just strip off the braces on the ends and use explode? –  Barmar Aug 30 '12 at 6:36

4 Answers 4

This should work, assuming no braces are allowed within the match:

preg_match_all(
    '%(?<=     # Assert that the previous character(s) are either
     \{\{      # {{
    |          # or
     \.        # .
    )          # End of lookbehind
    [^{}.]*    # Match any number of characters besides braces/dots.
    (?=        # Assert that the following regex can be matched here:
     (?:       # Try to match
      \.       #  a dot, followed by
      [^{}]*   #  any number of characters except braces
     )?        # optionally
     \}\}      # Match }}
    )          # End of lookahead%x', 
    $subject, $result, PREG_PATTERN_ORDER);
$result = $result[0];
share|improve this answer
    
you sir, is a regex god LoL. though it didn't work using preg_replace. since what I wanted to replace are the '.barX' only. ill edit the question for more info. –  kapitanluffy Aug 30 '12 at 8:30
    
@kapitanluffy: Not sure I understand. Your edit to the question suggests that you don't want to replace the texts, only the delimiters around them (changing {{foo.bar1.bar2.bar3}} into $foo->bar1->bar2->bar3). Is that correct? Because that's a completely different question. –  Tim Pietzcker Aug 30 '12 at 9:13
    
sorry for the misunderstanding. it could be something like this too $foo[bar1][bar2][bar3] –  kapitanluffy Aug 30 '12 at 9:29

I don't know the correct syntax in PHP, for pulling out the results, but you could do:

\{{2}(\w+)(?:\.(\w+))*\}{2}

That would capture the first hit in the first capturing group and the rest in second capturing group. regexr.com is lacking the ability to show that as far as I can see though. Try out Expresso, and you'll see what I mean.

share|improve this answer
    
No. It would capture the first hit in $1 and the last one in $2. Everything in-between would be overwritten by the last repetition. –  Tim Pietzcker Aug 30 '12 at 7:12
    
Edited my reply, you're correct, the variables $2 would be overwritten, but the result would still hold all matches. This is simple in .NET where you just ask the match object (System.Text.RegularExpressions.Match) like this: for(int i=0;i<match.Groups[1].Captures.Count;i++) string capture = match.Groups[1].Captures[i].Value; –  Johny Skovdal Aug 30 '12 at 7:38
    
@TimPietzcker (forgot to add reference to you in my previous comment) –  Johny Skovdal Nov 30 '12 at 7:02

I don't think so, but it's relatively painless to just split the string on periods like so:

$str = "{{foo.bar1.bar2.bar3}}";
$str = str_replace(array("{","}"), "", $str);
$values = explode(".", $str);

print_r($values);  // Yields an array with values foo, bar1, bar2, and bar3

EDIT: In response to your question edit, you could replace all barX in a string by doing the following:

$str = "{{foo.bar1.bar2.bar3}}";
$newStr = preg_replace("#bar\d#, "hi", $str);

echo $newStr; // outputs "{{foo.hi.hi.hi}}"
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I'm not a PHP person, but I managed to construct this piece of code here:

preg_match_all("([a-z0-9]+)",
"{{foo.bar1.bar2.bar3}}",
$out, PREG_PATTERN_ORDER);

foreach($out[0] as $val)
{
echo($val);
echo("<br>");
}

The code above prints the following:

foo 
bar1
bar2
bar3

It should allow you to exhaustively search a given string by using a simple regular expression. I think that you should also be able to get what you want by removing the braces and splitting the string.

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