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I'm feeling very silly for not being able to figure this one out, but I just cant figure it. I need to replace a regex string with a pattern, I found two examples of doing it, but they honestly left me more confused than ever.

This is my current attempt:

$string = '26 14:46:54",,"2011-08-26 14:47:02",8,0,"BUSY","DOCUMENTATION","1314370014.18","","","61399130249","7466455647","from-internal","""Oh Snap"" <61399130249>","SIP/1037-00000014","SIP/CL-00000015","Dial","SIP/CL/61436523277,45","2011-08-26 14:47:06","2011-08-26 14:47:15","2011-08-26 ';
$pattern = '["SIP/CL/\d*?,\d*?",]';
$replacement = '"SIP/CL/\1|\2",';
$string = preg_replace($pattern, $replacement, $string);
print($string);

But that just replaces the \1 and \2 with blanks. So obviously I'm not getting the entire concept.

What I'm wanting at the end is to change:

this: "SIP/CL/61436523277,45"
to: "SIP/CL/61436523277|45"

That comma in a poorly formatted CSV throws off some of my other scripts.

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1  
It doesn't seem poorly formatted, as it is between quotes... You DO use fgetcsv for this, are you not? Or str_getcsv if it is a string. –  Wrikken Jan 18 '12 at 0:21
    
I wasn't, but i am now. I needed to learn this form of regex replacement anyway. So killed two birds with one stone :). I was aware of fgetcsv, but it didn't suit my purposes (its a 1.8GB+ csv...., cant load it all in mem), but str_getcsv worked well! :) –  Mattisdada Jan 18 '12 at 0:45
    
OK, for future reference: fgetcsv doesn't read a total file into memory either, just line by line ;) –  Wrikken Jan 18 '12 at 0:47
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4 Answers

up vote 2 down vote accepted

You're missing braces, the pattern should look like this:

$pattern = '["SIP/CL/(\d*),(\d*)",]';
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That was it? I feel like such a foo'. Thank you so much :) That worked perfectly. –  Mattisdada Jan 18 '12 at 0:25
    
you have changed the meaning of the non-gready operator by having outside the bracket. It shoud be (\d+?) –  meouw Jan 18 '12 at 0:29
    
@user1130968 marking the most useful answer as answer is best way of saying thanks here .) (so does FAQ say) –  Vyktor Jan 18 '12 at 0:30
    
@meouw you're right, I didn't notice that I just added braces I wouldn't use it at all –  Vyktor Jan 18 '12 at 0:31
1  
The final looked like $pattern = '["SIP/CL/(\d*),(\d*)",]'; $replacement = '"SIP/CL/\1|\2,"'; –  Mattisdada Jan 18 '12 at 0:36
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The backreferences \1 and \2 in your $replacement are meant to refer to captured groups in $pattern. Captured groups are saved by placing brackets around them ().

Try (I changed your regex delimiters [] to ! pending an answer from comments below):

$pattern = '!"SIP/CL/(\d*?),(\d*?)",!';
$replacement = '"SIP/CL/\1|\2",';

Also note that since you have a trailing comma on your $pattern, if your $string ended in "SIP/CL/61436523277,45" that would not be converted. I'd recommend removing that trailing comma.

Also your current regex will convert "SIP/CL/," to "SIP/CL/|". If that is not your intent, change the * after the \d (ie 0 or more matches) to a + (one or more matches).

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[ and ] will be taken as delimeters in this case, not a character class –  meouw Jan 18 '12 at 0:28
    
would not pattern 1 be SIP/CL/{numbershere} So should you want '"SIP/CL/(\d*?),(\d*?)",' or else your first reference is funny. As in your replacement would be SIP/CL/SIP/CL/numbershere|numbersagain –  Michael Jan 18 '12 at 0:29
    
@meouw, I forgot about that, cheers. but then shouldn't it be [ and [ or ] and ] but not [ and ]? –  mathematical.coffee Jan 18 '12 at 0:30
    
cheers @Michael, fixed. –  mathematical.coffee Jan 18 '12 at 0:31
2  
PHP, like Perl, recognizes correctly-paired brackets as delimiters, so [], (), {} and <> all work. I think it's a bad idea to use them in PHP though; it's confusing enough that, unlike in Perl, you have to use regex delimiters in addition to quotes. At the least, anyone looking at your code is going to wonder if you understand why it's valid. ;) –  Alan Moore Jan 18 '12 at 0:49
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I think you need this:

$pattern = '["SIP/CL/(\d+),(\d+)",]';

The parens - () - capture the match inside, allowing you to reference it in your replacement pattern.

You could also simplify the replacement pattern by expanding the captures in the match pattern:

$pattern = '[("SIP/CL/\d+),(\d+",)]';   
$replacement = '\1|\2';
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I did this

$string = '26 14:46:54",,"2011-08-26 14:47:02",8,0,"BUSY","DOCUMENTATION","1314370014.18","","","61399130249","7466455647","from-internal","""Oh Snap"" <61399130249>","SIP/1037-00000014","SIP/CL-00000015","Dial","SIP/CL/61436523277,45","2011-08-26 14:47:06","2011-08-26 14:47:15","2011-08-26 ';
$pattern = '/SIP\/CL\/([0-9]+),([0-9]+)/';
$replacement = 'SIP/CL/\1|\2';
$string = preg_replace($pattern, $replacement, $string);
print($string);
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