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I see a lot of questions here regarding regex in general , but the problem is that they are usually (like mine) quite localized, and difficult to deduct if one is not a regex expert ..

My string involves characters like quotes and braces , which are quite known for making regex more difficult.

I would like to know the expression strings (search, replace) I need in order to perform this task.

in other words , in :

 ereg_replace (string pattern, string replacement, string subject) 

I will need the string pattern and string replacement expressions.

my string is

array('val' => 'something', 'label' => 'someword'),

I need to change the last part :

'label' => 'someword'),

to

'label' => __('someword','anotherstring')),

I will be using php for that , but I would also like to test it ( and also use in other cases) with Notepad ++ . ( I do not know if it actually changes something regarding the search and replace strings ).

Note that the string someword can also be SomeWord or SOMEWORD or even Some word or Some_Word on cases, meaning it can contain spaces, underscores or actually almost any character from within...)

Edit I : forgot to mantion that the __() part is of course wordpress textdomain function for translations . e.g. __('string','texdomain')

Edit II :

I am sorry if I come off too exigent or demanding in the comments , I really do try to UNDERSTAND and not only copy-paste a solution that might not work for me in other cases .. :-)

Edit III :

By the help of THIS tool , I understood that my basic misunderstanding is the possibility to use VARIABLES inside regex . The $1 is actually all I needed for better understanding .

the (incredibly simple) pattern that will work also in notepad++

Pattern: 'label' => ('.*')

Replace: 'label' => __(\1,'textdomain')

(In notepad++ it is called Tag Region (not var) and it is marked as \1

share|improve this question
    
I can't understand what exactly you want, 'label' => 'someword'), to 'label' => __('someword','anotherstring')) ? –  user1646111 Feb 14 '13 at 6:53
    
@Akam - yes .. but the someword part is an unknown string , not literally someword. it can be anything .. the anotherstring part however is a fixed string . –  Obmerk Kronen Feb 14 '13 at 6:55
1  
@ObmerkKronen Regex-es are not very flexible. For given input and output presented in your question this will give you desired result. Regex pattern is: 'label' => ('.*') If all you need is quick replacement with IDE this is enough. –  Leri Feb 14 '13 at 6:59
    
Will 'label' => '*' basically be the pattern you are trying to match against (i.e. are you always triyng to replace the value to the label key)? –  Mike Brant Feb 14 '13 at 6:59
    
@MikeBrant - actually I want to wrap that value with __('originalvalue','anotherstring') –  Obmerk Kronen Feb 14 '13 at 7:01

3 Answers 3

up vote 1 down vote accepted

If you will always be looking for the label key, you should be able to do something like this:

$pattern = "/array\((.*), 'label' => '(.*)'/U";
$added_string = 'anotherstring';
$replacement = 'array($1, ' . "'label' => __('" . '$2' . "','$added_string'";
$final_string = preg_replace($pattern, $replacement, $original_string);
share|improve this answer
    
so in terms of PURE regex, what would be the search pattern and what would be the replacement ? (I am sorry but when it comes to regex some characters like braces, variables, dollar signs and quotes are confusing, becasue I never trust myself know if they are part of the regex or part of the programming language (like variables). –  Obmerk Kronen Feb 14 '13 at 7:20
    
The whole $pattern shown IS the regex. $replacement is not a regex, however it does use backreferences $1 and $2 to the captured subpatterns from the regex. The $added_string part in replacement is just a variable that contains the other string that needs to be added. If this is a constant value, you could just as easily omit the use of a variable here. Note that it is important to not use double quotes around area of string where backreferences are noted (unless you want to use \\1 syntax for backreference. –  Mike Brant Feb 14 '13 at 7:24
    
ok, and the first '/' in $pattern is just escaping, or is it part of the regex expression ? –  Obmerk Kronen Feb 14 '13 at 7:26
1  
You really ought to take time reading up on proper use of regex at it is a very powerful tool to have in one's toolchest. Any reasonably experienced developer should be expected to at least have basic regex skills. –  Mike Brant Feb 14 '13 at 7:32
1  
@ObmerkKronen Here's great tool. Play around with it. There's brief explanation what some patterns are doing. Put them together and you'll almost always get what you need. Everything complex consists of simple parts. :) –  Leri Feb 14 '13 at 7:38

For given inputs and outputs in question pattern: 'label' => ('.*') is enough to match strings and perform replacement. This pattern matches following part from a string: 'label' => any character between ' . Part of pattern in braces will group any character between ' that can be later accessed with $1. E.g.:

$str = "array('val' => 'something', 'label' => 'some testing string_with\$specialchars\/'),";
$str = preg_replace('/\'label\' => (\'.*\')/', '\'label\' => __($1, \'some other string\')', $str);
echo $str;
//Outputs:
//   array('val' => 'something', 'label' => __('some testing string_with$specialchars\/', 'some other string')),
share|improve this answer
    
thanks again - the link you posted codepad.viper-7.com/dxXTId demonstrates and works well (reposted for future ref by people who will read this answer ) –  Obmerk Kronen Feb 14 '13 at 8:57
    
@ObmerkKronen You're welcome. I'm glad that I could help you. ;) –  Leri Feb 14 '13 at 9:08
1  
@ see my last edit , actually, what was missing for my understanding was the '$1' variable . –  Obmerk Kronen Feb 14 '13 at 9:24
<?php
$strings = array('some word', 'some Word', 'SOMEword', 'SOmE_Word', 'sOmE_ WOrd');
$pattern = '/([a-z]+)([^a-z]*)([a-z]+)/i';
foreach($strings as $v){
 echo preg_replace($pattern, 'otherword', $v)."<br>";
}
?> 

output:

otherword
otherword
otherword
otherword
otherword

EDIT:

$pattern = "/('label'\s=>\s')(([a-z]+)([^a-z]*)([a-z]+))('\),)/i";
$otherword = 'otherword';
$replacement = "'label' => __('$2','$otherword')),";
echo preg_replace($pattern, $replacement, "'label' => 'someword'),");

output:

'label' => __('someword','otherword')),

DEMO

share|improve this answer
    
Thanks for the answer, but I believe this will only make a simple replacement, not a wrapping of a function . also, it does not involve all the troublemakers like ( , ) and = –  Obmerk Kronen Feb 14 '13 at 7:09
    
can you provide list of matching words (patterns) with list of replacements clearly? –  user1646111 Feb 14 '13 at 7:11

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