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Im using preg_replace to decode bbcode and i use (.*?) to get the attribute values.

I want to replace it with font-size:\10px; (font-size:(.*?)0px;) so that for example if the attribute value is 7 then the font size would be 70. but instead it thinks that i want the value \10. What can i do to separate the attribute value and the 0?

Is it possible to do like 'font-size:'.\1.'0px;' or something similar to separate the attribute value from the zero?

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Post sample inout and your preg_replace call. –  anubhava May 12 '13 at 21:06
    
preg_replace call = '/\[size\="?(.*?)"?\](.*?)\[\/size\]/ms' replace with = '<span style="font-size:\\${1}0px">\\2</span>' sample output = <span style="font-size:70px;">blalba</span> (assuming value is 7) –  Simon Andersson May 12 '13 at 21:10
    
Pls provide a sample input so that I can try your sample and suggest you something. –  anubhava May 12 '13 at 21:31

3 Answers 3

up vote 4 down vote accepted

\${1}0 is the solution as documented here.

[edit]

I tried all possible amounts of backslashes and have to say.. to me it makes absolutely no sense, that

echo preg_replace('/(2.)/', '\\${1}', '12345');

outputs 1${1}45

But I have found one solution, heredoc:

$a = <<<ABC
\${1}
ABC;
echo preg_replace('/(2.)/', $a, '12345');
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1  
'<span style="font-size:\${1}0px">\2</span>' i have tried this but it outputs <span style="font-size:${1}0px"> –  Simon Andersson May 12 '13 at 21:05
    
It should be '<span style="font-size:\\${1}0px">\\2</span>' –  Matmarbon May 12 '13 at 21:06
    
doesn't seem to work, acts just like it would with a single backslash –  Simon Andersson May 12 '13 at 21:11
1  
Strange PHP behavior abount backslashes. Compare PHP to C (or other famous languages). [PHP] ideone.com/rU9lxQ [C] ideone.com/lCBEGQ –  CertaiN May 12 '13 at 21:12
    
@Matmarbon Alright seems i got a different output this time atleast, the output with 3 backslashes became `font-size:\70px;' –  Simon Andersson May 12 '13 at 21:21

Apply to this text:

$str = <<< EOD
[size="4"]test1[/size]
[size="4]test2[/size]
[size=4"]test3[/size]
[size=4]test4[/size]
EOD;
$pattern = '@\\[size=("?)(\\d++)\\1\\](.*?)\\[/size\\]@s';

preg_replace:

$replace = '<span style="font-size:${2}0px;">$3</span>';    
echo preg_replace($pattern,$replace,$str);

preg_replace_callback:

$replace = function ($matches) {
    return sprintf('<span style="font-size:%s0px;">%s</span>',
        $matches[2],
        $matches[3]
    );
};     
echo preg_replace_callback($pattern,$replace,$str);

Result:

<span style="font-size:40px;">test1</span>
[size="4]test2[/size]
[size=4"]test3[/size]
<span style="font-size:40px;">test4</span>
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Omg... PHP manual makes a big confusion...

About this code:

echo preg_replace('/^(1)(2)(3)(4)(5)$/', $r, '12345');

Expected output:

12345!!12345!!

When using heredoc:

$r = <<< EOD
$0!!\${1}2\${3}4$5!!
EOD;

However, not using heredoc:

$r = '$0!!${1}2${3}4$5!!';

Yes, backslashes are unneeded.

share|improve this answer
    
I think the manual should be improved... –  CertaiN May 12 '13 at 21:59

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