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First of all sorry for my bad english. I'm a german guy.

The code given below is working fine in PHP:

$string = preg_replace('/href="(.*?)(\.|\,)"/i','href="$1"',$string);

Now T need the same for sed. I thought it should be:

sed 's/href="(.*?)(\.|\,)"/href="{$\1}"/g' test.htm

But that gives me this error:

sed: -e expression #1, char 36: invalid reference \1 on `s' command's RHS

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What are you trying to do with this regex? –  Adam Matan Jan 18 '10 at 14:03
    
Can you clarify what you're trying to match and replace? I don't know PHP regexps as well as I know Linux ones. –  Chowlett Jan 18 '10 at 14:04
    
PHP uses Perl Compatible Regular Expression (PCRE). –  Dyno Hongjun Fu Jan 18 '10 at 14:10
    
im trying to replace wrong urls that have a . or , at the end. so <a href="blubb.de,">; should be replaced with <a href="blubb.de">; –  Seblon Jan 18 '10 at 14:10

6 Answers 6

up vote 1 down vote accepted
sed -e 's|href=\"\(.[^"][^>]*\)\([.,]\)\">|href="\1">|g' file
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thats it. thank you –  Seblon Jan 18 '10 at 14:24

sed does not support non-greedy regex match.

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Please elaborate on this matter. –  Adam Matan Jan 18 '10 at 14:10
1  
(.*?) <--- this is greedy match.(with the question mark "?" ) –  ghostdog74 Jan 18 '10 at 14:13
    
So if sed does not support non-greedy match, it should support greedy match - What am I missing? –  Adam Matan Jan 18 '10 at 14:20
    
@Adam: OP is relying on non-greedy match for RE to work. The RE will most likely end up consuming characters past the end of the href attribute. –  outis Jan 18 '10 at 15:21
    
perldoc.perl.org/perlre.html#Regular-Expressions check the "Quantifiers" subsection. –  Dyno Hongjun Fu Jan 19 '10 at 2:02

You need a backslash in front of the parentheses you want to reference, thus

sed 's/href="\(.*?\)(.|\,)"/href="{$\1}"/g' test.htm
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doesn't work :( should replace . and , at the end of an url –  Seblon Jan 18 '10 at 14:13
    
you didn't say what you want to do, just that the regexp failed :) –  user231967 Jan 18 '10 at 15:10

You have to escape the block selector characters ( and ) as follows.

sed 's/href="\(.*?\)\(.|\,\)"/href="{$\1}"/g' test.htm
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here is a solution, it is not prefect, only deal with the situation of one extra "," or "."


sed -r -e 's/href="([^"]*)([.,]+)"/href="\1"/g' test.htm
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If you want to match a literal ".", you need to escape it or use it in a character class. As an alternative to slashing the capturing parentheses (which you need to do with basic REs), you can use the -E option to tell sed to use extended REs. Lastly, the REs used by sed use \N to refer to subpatterns, where N is a digit.

sed -E "s/href=([\"'])([^\"']*)[.,]\1/href=\1\2\1/i"

This has its own issue that will prevent matches of href attributes that use both types of quotes.

man sed and man re_format will give more information on REs as used in sed.

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1  
In my version of sed, it uses -r to specify extended regular expressions (which do not require escaping parenthesis) instead of -E. –  tomlogic Mar 27 '12 at 15:16

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