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Here is what I am trying to achieve in PHP:

I have this string: host/%%%25asd%%

Now I want to loop through it and replace only the % _blank characters with %25. So I get the output as host/%25%25%25asd%25%25. (The %25 was untouched because the % wasn't followed by another %)

How should I go by doing this? regex? if so do you have an example? or loop through every character in the string and replace? I was thinking about using str_pos for this but it might after one replacement, the positions in the string would change :(

[Edit: Let me add a couple more information to ease up the confusion. %25 is just an example, it could be anything like %30 or %0a, I won't know before hand. Also the string could also be host/%%25asd%% so a simple replace for %% screw it up as host/%2525asd%25 instead of host/%25%25asd%25. What am trying to achieve is to parse a url into how google wants it for their websafe api. http://code.google.com/apis/safebrowsing/developers_guide_v2.html#Canonicalization. If you look at their weird examples.]

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Although something like s/%(?![0-9a-f]+)/%25/ig; will cure the % escaping, you have a long way to go to construct methods that will validate a canonicalization implementation that is in that google api link. –  sln Feb 27 '11 at 23:04
    
I now understand that sin, the examples get horrible from one to the other. Most of the time you need to go recursive! Eitherways I will work it out and maybe release a php class under GPL license, so the next person doesn't have to scratch his head for 2 days over it. Eg:- host/%2525252525252525 => host/%25 (The %25="%" which joins the next "25" to become another %25 and on and on recursively) Take Care and Thank you for your feedback!! –  Alvin Feb 28 '11 at 2:57
    
no problem and good luck. s/%(?:25){2,}/%25/g –  sln Feb 28 '11 at 21:26

4 Answers 4

up vote 3 down vote accepted

Use preg_replace:

$string = preg_replace('/%(?=%)/', '%25', $string);

Note the lookahead assertion. This matches every % that is followed by a % and replaces it with %25.

Result is:

host/%25%25%25asd%25%

EDIT Missed the case for the last %, see:

$string = preg_replace('/%(?=(%|$))/', '%25', $string);

So the lookahead assertion checks the next character for another % or the end of the line.

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Thank Hamish for the reply. From the regex, it looked like it would work beautifully, but it skips the 25. The output should have been host/%25%25%25asd%25%25 –  Alvin Feb 27 '11 at 21:36
    
Oops, missed the trailing % case - see the edit. –  Hamish Feb 27 '11 at 21:52
    
Thanks a lot Hamish! It worked Perfectly!! –  Alvin Feb 28 '11 at 2:36

How about a simple string (non-regex) replace of '%%' by '%25%25'?

This is assuming you indeed want the output to be host/%25%25%25asd%25%25 as you mentioned and not one %25 at the end.

edit: This is another method that might work in your case:

Use the methods urlencode and urldecode, e.g.:

$string = urlencode(urldecode("host/%%%25asd%%"));
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Thanks for the reply. Yes I thought of it, but the problem with that is if I want to convert a such as "host/%%25asd%%" then it will mess it up into host/%25%2525asd%25%25 and not host/%25%25asd%25%25. Get it? –  Alvin Feb 27 '11 at 21:31
    
If you want to account for all possible combinations preg_replace with lookaheads is the way to go, plus doing a training % by hand. Or see the other method I added above. –  user538603 Feb 27 '11 at 21:41
    
I tried to use it but then I realized from google's examples that sometimes I go recursive/nested, so using urldecode wouldn't make sense. But thank you for taking time in trying to find me a solution. Take care! –  Alvin Feb 28 '11 at 2:49

use str_replaceenter link description here instead of preg_replace , its a lot easier to apply and clean

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How about something like this?

s/%(?![0-9a-f]+)/%25/ig;

$str = 'host/%%%25asd%%';
$str =~ s/ % (?![0-9a-f]+) /%25/xig;
print $str."\n";

host/%25%25%25asd%25%25

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