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How do I escape the single qoutes in my bash expression find . | xargs perl -pi -e 's/'conflicts' => '',//g'? I want to replace the string 'conflicts' => '', in my files?

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3 Answers 3

up vote 4 down vote accepted

You can't directly escape it within single quotes, so to get a single quote you need to do something like:

$ echo 'i'\''m a string with a single quote'
i'm a string with a single quote

This ends the quoted part, escapes a single quote as it would appear outside of quotes, and then begins the quoting again. The result will still be one argument.

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FatalError and gpojd have both given good solutions. I'll round this out with one other option:

find . | xargs perl -pi -e 's/\x27conflicts\x27 => \x27\x27,//g'

This works because in Perl, the s/.../.../ notation supports backslash-escapes. \x27 is a hexadecimal escape (' being U+0027).

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Use double quotes around your code instead:

find . | xargs perl -pi -e "s/'conflicts' => '',//g"
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2  
I wouldn't recommend this, since quite a few characters commonly used in Perl code (most notably !) have a special meaning to bash even inside double quotes. –  Ilmari Karonen May 22 '13 at 20:56
    
The only time I would use " instead of ' is on Windows, where the single quotes don't work. –  Brad Gilbert May 23 '13 at 15:32

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