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Consider the following bash function:

function quote { 
    declare quoted=${1//\'/\'\\\'\'}
    echo "'$quoted'"
}

This function wraps the argument in single quotes, and replaces each existing single quote with the string '\'':

$ quote "a'b"
'a'\''b'

It seems like the function body could be written in one line:

function my_quote {
    echo "'${1//\'/\'\\\'\'}'"
}

However, this doesn't work for some reason:

$ my_quote "a'b"
'a\'\\'\'b'

So, my questions are (1) Why doesn't the one-line version work?, and (2) Is there some way to make it work by, say, adding some more backslashes?

By the way, if you're curious, this snippet demonstrates why such a function is useful:

foo="some string generated at runtime, possibly containing special characters"
cmd="somecommand $(quote "$foo")"
ssh user@host "$cmd"
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1  
See the %q specifier to printf. –  chepner Sep 11 '13 at 13:41

1 Answer 1

(1) It's probably how bash differently handles the parameter expansion inside "" than the one in assignments. I see it actually as a bug since the quoted string is not properly unquoted. It works properly somehow if you use other variables inside i.e.

"${var//x/$other}"

(2) This is not a one-line way, just another way. You could place the variables on other places but it's still not one line in my opinion.

function my_quote {
    local r="'\''"
    echo "'${1//\'/$r}'"
}

You could also place an echo under a subshell $() but that's still two lines or two commands in one.

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My gut feeling is that \ is processed once inside of " so each \\ becomes \. But a quick check showed that duplicating the \ doesn't work, either. –  Aaron Digulla Sep 11 '13 at 11:31
    
I noticed the local variable solution, but as you say it's not a one-liner. The echo subshell is pretty clever, but I'm wondering if there's a fix that just involves proper quoting/escaping. –  augurar Sep 12 '13 at 1:27

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