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I try to do a replace with following perl command:

perl -C -p -i -e 's/([\?\.\!])\n/$1 /g' html/數14.html

The result is fine when I call it from the command line. When I call it from within a Makefile it doesn't work. Apparently the $1 is interpreted as shell variable.

In the Makefile it looks like this:

數14.html: 數14.adoc 40_2064_Im\ Strand-Appartment.adoc 41_2064_Ein\ Plan.adoc  42_1915_In\ einer\ Suppenküche.adoc 
    asciidoctor -D html parts/數14.adoc  
    perl -C -p -i -e 's/([\?\.\!])\n/$1 /g' html/數14.html

How can I have normal regexp behaviour here?

marked as duplicate by Wiktor Stribiżew regex Jul 28 '16 at 7:47

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  • 2
    Please show how you are invoking it in your bash script. It will not be a shell variable if it is single-quoted, as in your example above; but it will if you put some different quotes around it. For example, foo=$(perl -C -p -i -e 's/([\?\.\!])\n/$1 /g' html/數14.html) is quoted by $(), which will expand $1, and you'd need to escape $1 into \$1. – Amadan Jul 28 '16 at 7:38
  • Read this thread: [stackoverflow.com/questions/31557677/… – Poyke Jul 28 '16 at 7:41
  • 1
    Yes, sorry. It's not a bash script, it's a Makefile. :-| – Michael Jul 28 '16 at 7:43
  • 2
    Please avoid XY-questions. The answer is very different for Makefiles. – Amadan Jul 28 '16 at 7:45
up vote 2 down vote accepted

Makefiles always interpret $ sequences before executing commands, disregarding any quoting. In order to escape $ in a Makefile, write it as $$ - that will result in a single $ in the command.

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