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I'm trying to find <li ><a href='xxxxxxxx'>some_link</a></li> and replace it with nothing. To do this, I'm running the command below but it's recognizing $ as part of a regex.

perl -p -i -e 's/<li ><a href=.*$SOMEVAR.*li>\n//g' file.html

I've tried the following things,
${SOMEVAR}
\$SOMEVAR
FIND="<li ><a href=.*$SOMEVAR.*li>"; perl -p -i -e 's/$FIND//g' file.html

Any ideas? Thanks.

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Thanks for making me look up what the -i flag does. That is cool. Pro tip: you can put all the flags together like this: -pie –  Chriszuma Oct 27 '11 at 21:28
    
Also, kudos on a solid first post. Problem described concisely, along with attempted solutions. Well done. –  Chriszuma Oct 27 '11 at 21:29
1  
@Chriszuma have you tried the actual -pie combination? –  tadmc Oct 27 '11 at 21:57
    
Dang, no I hadn't. It seems you can't combine those 3, but you can still do -i -pe. –  Chriszuma Oct 28 '11 at 12:53

2 Answers 2

Bash only does variable substitution with double quotes.

This should work:

perl -p -i -e "s/<li ><a href=.*?$SOMEVAR.*?li>\n//g" file.html

EDIT Actually, that might act weird with the \n in there. Another approach is to take advantage of Bash's string concatenation. This should work:

perl -p -i -e 's/<li ><a href=.*?'$SOMEVAR'.*?li>\n//g' file.html

EDIT 2: I just took a closer look at what you're trying to do, and it's kind of dangerous. You're using the greedy form of .*, which could match a lot more text than you want. Use .*? instead. I updated the above regexes.

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If "SOMEVAR" is truly an external variable, you could export it to the environment and reference it thus:

SOMEVAR=whatever perl -p -i -e 's/<li ><a href=.*$ENV{SOMEVAR}.*li>\n//g' file.html
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