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I have a string that is not properly formed and am attempting to correct it. An example of the string is: -

A Someone(US)B Nobody(US)

I am attempting to correct it to: -

A Someone(US) B Nobody(US)

I am using the below code to match ")" followed by a capital letter and using php's preg_replace function to do the match and add the space. However I'm completely rubbish at regex and cannot get the space added in the correct place.

$regex = "([\)][A-Z])";
$replacement = ") $0";
    $str = preg_replace($regex, $replacement, $output);

Can anyone suggest a better method? I realise the space is not adding correclty because $0 contains the data I am matching, is there a way to manipulate $0?

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$0 is capture group zero which is ([\)][A-Z]), just move the paranthesis like this [\)]([A-Z]) and use $1 I think. –  Yet Another Geek Sep 24 '11 at 20:15
    
I don't think there is a capture group $1, I've tried this and it chops off the capital letter, so produces an output of A Someone(US) Nobody(US). –  KryptoniteDove Sep 24 '11 at 20:28

2 Answers 2

up vote 1 down vote accepted
$str = preg_replace('/(?<=\))(?=\p{Lu})/u', ' ', $output);

inserts a space between a closing parenthesis (\)) and an uppercase letter (\p{Lu}). You don't need $0 (or $1 etc.) at all since you're just inserting something at a position between two characters, and this regex matches exactly this (zero-width) position. Check out lookaround assertions.

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Perfect! thanks very much! –  KryptoniteDove Sep 24 '11 at 20:35
    
How would you adapt this to lowercase letter preceding a capital letter again no space? I tried /(?<=))(?=\p{Lu})/u but no joy.. –  KryptoniteDove Sep 24 '11 at 20:44
1  
Do you mean "insert a space between a lowercase and an uppercase letter"? $str = preg_replace('/(?<=\p{Ll})(?=\p{Lu})/u', ' ', $output); –  Tim Pietzcker Sep 24 '11 at 20:45
    
Yes sorry I mean't i'd tried ?=\p{Ll} thanks again Tim. –  KryptoniteDove Sep 24 '11 at 20:57

how about regex="(?<=\))[A-Z]"
and replacement=" $0"

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This regex causes an Unknown modifier '[' error when used with preg_replace. –  KryptoniteDove Sep 24 '11 at 20:26

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