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What is the easiest way to quote bash command arguments that contain single quotes and double quotes without variable interpolation?

In Ruby you can quote strings using %{}, %[] etc. In that case single quotes and double quotes will be treated as characters.

My question was not really complete here is further explanation:

The reason I am asking that is because I often run ruby and perl code at the command line. Since those languages are using extensively single quotes and double quotes and global variables like $1 $_ etc. I get conflicts with bash.

example:

ls -lat | ruby -p -e '$_ =~ /(\S+)\s+(\S+)\s+(\S+)/; $_ = "'\''" + ($3 || "") + "'\''" + "\n"'

I was looking for something similar to the % quoting in ruby:

ls -lat | ruby -p -e %{$_ =~ /(\S+)\s+(\S+)\s+(\S+)/; $_ = "'" + ($3 || "") + "'" + "\n"}
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Not confident to give an answer, but the Bash reference manual's section on quoting looks as if it is saying no: gnu.org/software/bash/manual/html_node/Quoting.html –  Ray Toal Oct 10 '12 at 2:53

2 Answers 2

up vote 1 down vote accepted

Since you don't need variable interpolation, you can use $'...' quoting (although you still need to escape single quotes, so this might not fit your requirement):

x=$'String containing \' and "'
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I didn't know about this type of quoting, it's better that what I am currently using. Thanks. –  Martinos Oct 11 '12 at 20:44

Probably easiest with a heredoc:

read -r arg << \EOF
A string "with" 'quotes'
EOF

will set $arg to the uninterpolated content of the heredoc. This does not allow newlines to be embedded in the variable. If you want a multi-line value:

unset var; while read -r v; do var="$var${var+
}$v; done << \EOF
A multi-line "" string
with different 'quotes'
EOF

Ormaaj's comment using IFS, unfortunately, does not work to capture newlines.

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1  
IFS= read -r var <<"EOF". Assumes no newlines –  ormaaj Oct 10 '12 at 3:02

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