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I found this related question : In perl, backreference in replacement text followed by numerical literal but it seems entirely different. I have a regex like this one

s/([^0-9])([xy])/\1 1\2/g
                   ^
              whitespace here

But that whitespace comes up in the substitution.

How do I not get the whitespace in the substituted string without having perl confuse the backreference to \11?

For eg. 15+x+y changes to 15+ 1x+ 1y. I want to get 15+1x+1y.

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2 Answers 2

up vote 4 down vote accepted

\1 is a regex atom that matches what the first capture captured. It makes no sense to use it in a replacement expression. You want $1.

$ perl -we'$_="abc"; s/(a)/\1/'
\1 better written as $1 at -e line 1.

In a string literal (including the replacement expression of a substitution), you can delimit $var using curlies: ${var}. That means you want the following:

s/([^0-9])([xy])/${1}1$2/g

The following is more efficient (although gives a different answer for xxx):

s/[^0-9]\K(?=[xy])/1/g
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Just put braces around the number:

s/([^0-9])([xy])/${1}1${2}/g
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