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How do I replace regex with $var in this command?

echo "$many_lines" | sed -n '/regex/{g;1!p;};h'

$var could look like fs2@auto-17.

The sed command will output the line immediately before a regex, but not the line containing the regex.

If all this can be done easier with a Perl one-liner, then it is fine with me.

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echo $many_lines won't work the way you expect unless you quote: echo "$many_lines" –  Charles Duffy Mar 26 '13 at 15:26
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Please improve your question by posting all relevant error messages exactly as they appear, and whatever input samples you're testing against. Also, please include a properly-formatted sample of your expected output so folks understand the results you're trying to achieve. –  CodeGnome Mar 26 '13 at 15:50
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This can with all probability be done easier and better in perl. However, since you don't describe what you are trying to do, and I don't understand that sed code, I think you're out of luck. –  TLP Mar 26 '13 at 16:19
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5 Answers

up vote 1 down vote accepted

It is not beautiful, but this gives me the previous line to $var which is want I wanted.

echo "$many_lines" | grep -B1 "$var" | grep -v "$var"
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In Perl regexes, you can interpolate variable contents into regexes like /$foo/. However, the contents will be interpreted as a pattern. If you want to match the literal content of $foo, you have to escape the metacharacters: $safe = quotemeta $foo; /$safe/. This can be shortended to /\Q$foo\E/, which is what you usually want. A trailing \E is optional.

I don't know if the sed regex engine has a similar feature.

A Perl one-liner: perl -ne'$var = "..."; print $p if /\Q$var/; $p=$_'

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... and if the variable is an environment variable the way to access it is through the %ENV variable. $ENV{PATH} –  Brad Gilbert Mar 29 '13 at 22:01
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Use double quotes instead of single quotes to allow variable expansion:

echo $many_lines | sed -n "/$var/"'{g;1!p;};h'
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If I do that in the terminal and press arrow up, it is turned into "/$var/{g;1ps -p 1779;};h" and the error invalid command code f –  Sandra Schlichting Mar 26 '13 at 15:44
    
@SandraSchlichting See updated answer. –  Ansgar Wiechers Mar 26 '13 at 16:13
    
Take care that $var does not contain any unescaped forward slashes. –  chepner Mar 26 '13 at 16:15
    
I still get the same error. –  Sandra Schlichting Mar 26 '13 at 16:29
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Since you are looking for a line before the regex, with a single one liner it will not be that trivial and beautiful, but here is how I will do it (Using Perl only):

echo "$many_lines" | perl -nle 'print $. if /\Q$var/' | while read line_no; do     export line_no
    echo $many_lines | perl -nle 'print if $. - 1 == $ENV{line_no}'
done

or if you want to do in one line

echo "$many_lines" | perl -nle 'BEGIN {my $content = ""; } $content .= $_; END { while ($content =~ m#([^\n]+)\n[^\n]+\Q$var#gosm) { print $1 }}'

Or this one, should definitely match:

echo "$many_lines" | perl -nle 'BEGIN {my @contents; } push @contents, $_; if ($contents[-1] =~ m#\Q$var#o)') { print $contents[-2] if defined $contents[-2]; }

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Or you can use here-documents too, if you don't want to escape the double quotes!

In Perl it looks like this:

$heredoc = <<HEREDOC;
  here is your text and $var is your parameter
HEREDOC

Its important to end the heredoc with the same string you began, in my example its "HEREDOC" in a new line!

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