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I've got the following substitution in a Perl one liner:

perl -pi.bak -e 's/(.*?\t.*?\t.*?\t.*?\t.*?\t.*?\t.*?\t.*?\t.*?\t)/$123424977\t/g if $. <= 200'

The problem is that I want to insert the number 23424977 after the text that is captured by the grouped regex (.*?\t.*?\t.*?\t.*?\t.*?\t.*?\t.*?\t.*?\t.*?\t).

But Perl thinks I'm referring to group $123424977! How do I tell Perl I want group $1 and to insert the text 23424977 after that?

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6 Answers

You can use curly braces to unambiguously delimit the variable-name — ${1} instead of $1:

perl -pi.bak -e 's/(.*?\t.*?\t.*?\t.*?\t.*?\t.*?\t.*?\t.*?\t.*?\t)/${1}23424977\t/g if $. <= 200'
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You could also rewrite your regex in a more readable/elegant way:

perl -pi.bak -e 's/((?:.*?\t){9})/${1}23424977\t/g if $. <= 200'
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use the following syntax

${1}234567

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One could use the \K flag to do away with the $1 requirement altogether:

s/(?:.*?\t){9}\K/23424977/g

But isn't there a more Perlish way to do this using autosplit? There is more than one way to do it, but some are more convenient than others:

$ perl -F/\t/-api.bak -e 'splice@F,9,0,23423977 if $. < 200; $_ = join "\t", @F;'
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surround with {}

perl -pi.bak -e 's/(.*?\t.*?\t.*?\t.*?\t.*?\t.*?\t.*?\t.*?\t.*?\t)/${1}23424977\t/g if $. <= 200'
                                                               _____^ ^
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Another way: don't use a group at all and make your substitution be $&23424977\t ($& refers to the full text matched by the left part of the s/// operator)

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