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I want to run a command from a bash shell script which has single quotes and some other commands inside the single quotes and a variable.

e.g. repo forall -c '....$variable'

In this format, $ is escaped and variable is not expanded.

I tried the following variations but they were rejected:

repo forall -c '...."$variable" '

repo forall -c " '....$variable' "

" repo forall -c '....$variable' "

repo forall -c "'" ....$variable "'"

If I substitute the value in place of the variable the command is executed just fine.

Please tell me where am I going wrong

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6  
repo forall -c ' ...before... '"$variable"' ...after...' – n.m. Dec 10 '12 at 11:25
    
@n.m. make it an answer – EarlGray Dec 10 '12 at 11:27
1  
@n.m. the single quotes are a part of the repo command. i dont think this will work – Rachit Dec 10 '12 at 11:27
1  
bash eats single quotes. Either you are not in bash, or single quotes are not a part of the repo command. – n.m. Dec 10 '12 at 11:31
    
Not sure I get you, but in case single quotes need to be there, wouldn't repo forall -c "' ...before... "$variable" ...after...'" work? – Kevin Remo Dec 10 '12 at 11:48
up vote 127 down vote accepted

Inside single quotes everything is preserved without exception. You can't even escape single quotes.

That means you have to close the quotes, insert something, and then re-enter again.

'before'"$variable"'after'

'before'\''after'

'before'"'"'after'

As you can verify, every one of the above lines is just a single word to the shell. String concatenation is simply done by juxtaposition. Quotes indicate the need for different interpretation of things like whitespace or (non-splitting) variables. For a good tutorial of quoting, also see Mark Reed's answer.


Note that you should avoid building shell commands by procedurally concatenating strings and variables. This is a bad idea similar to using eval in most programming languages, or building SQL requests (SQL injection!).

Usually it is possible to have placeholders in the command, and to supply the command together with variables so that the callee can replace the placeholders in a safe way, instead of the caller concatenating strings, thereby mixing code and data.

For example, to run a shell command with an arguments in an external shell:

myvar=foo
/bin/sh -c 'echo "argument 1 is: $1"' -- "$myvar"

On the other hand, the following is very unsafe. DON'T DO THIS

myvar='foo"; rm -rf /mypreciousdata; echo "you were hacked'  # exploit
/bin/sh -c "echo \"Argument 1 is: $myvar\""
share|improve this answer
    
@Jo.SO thatwill not work. because the repo command will take only the parameters till the first quotes are closed. Anything after that will be ignored for repo and generate another error. – Rachit Dec 11 '12 at 6:03
3  
@Rachit - the shell doesn't work like that. "some"thing' like'this is all one word to the shell. Quotation marks don't terminate anything as far as parsing is concerned, and there's no way for a command called by the shell to tell what was quoted how. – Mark Reed Dec 11 '12 at 11:39
    
Yes Jo.So I understand now. thanks for your help! – Rachit Dec 12 '12 at 11:52
    
That second sentence ("you can't even escape single quotes") makes single quotes the black holes of the Shell. – Evert Jan 11 at 23:40

The repo command can't care what kind of quotes it gets. If you need parameter expansion, use double quotes. If that means you wind up having to backslash a lot of stuff, use single quotes for most of it, and then break out of them and go into doubles for the part where you need the expansion to happen.

repo forall -c 'literal stuff goes here; '"stuff with $parameters here"' more literal stuff'

Explanation follows, if you're interested.

When you run a command from the shell, all that command gets is an array of strings. Those strings may have any characters at all in them. (Well, except NULs.)

But when the shell is building that array of strings from a command line, it interprets some characters specially; this is designed to make commands easier to type. For instance, spaces normally indicate the boundary between strings in the array; for that reason, the individual elements of the array are called "words". But such a word may have spaces in it; you just need some way to tell the shell that's what you want.

You can use a backslash in front of any character (including space, or another backslash) to tell the shell to treat that character literally. But while you can do something like this:

echo \"Thank\ you.\ \ That\'ll\ be\ \$4.96,\ please,\"\ said\ the\ cashier

...it can get tiresome. So the shell offers an alternative: quotation marks. These come in two main varieties.

Double-quotation marks are called "grouping quotes". They prevent wildcards and aliases from being expanded, but mostly they're for including spaces in a word. Other things like parameter and command expansion (the sorts of thing signaled by a $) still happen. And of course if you want a literal double-quote inside double-quotes, you have to backslash it:

echo "\"Thank you. That'll be \$4.96, please,\" said the cashier"

Single-quotation marks are more draconian. Everything between them is taken completely literally, including backslashes. There is absolutely no way to get a literal single quote inside single quotes.

Fortunately, quotation marks in the shell are not word delimiters; by themselves, they don't terminate a word. You can go in and out of quotes (or between different types of quotes) within the same word to get the desired result:

echo '"Thank you. That'\''ll be $4.96, please," said the cashier'

So that's easier - a lot fewer backslashes, although the close-single-quote, backslashed-literal-single-quote, open-single-quote sequence takes some getting used to.

There is another quotation-mark style that follows similar conventions to ANSI C string literals, and is therefore called "ANSI quotes". If you put a dollar-sign in front of the first apostrophe in a single-quoted string, the above advice about backslashes being taken literally no longer applies. Instead, they become special again - not only can you include a literal single quotation mark or backslash by prepending a backslash to it, but the shell also expands the ANSI C character escapes (like \n for a newline, \t for tab, and \xHH for the character with hexadecimal code HH). Otherwise, however, they behave as single-quoted strings: no parameter or command substitution takes place:

echo $'"Thank you.  That\'ll be $4.96, please," said the cashier'

The important thing to note is that the string received as the argument to the echo command is exactly the same in all of these examples. After the shell is done parsing a command line, there is no way for the command being run to tell what was quoted how. Even if it wanted to.

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1  
Yes. I understand now. It works perfectly. Thanks a lot for your help! – Rachit Dec 12 '12 at 11:51
4  
This reply was awesome. – Vinícius Ferrão Apr 25 '14 at 0:04
    
Is the $'string' format POSIX compliant? Also, is there a name for it? – Wildcard Jan 21 at 20:44

EDIT: (As per the comments in question:)

I've been looking into this since then. I was lucky enough that I had repo laying around. Still it's not clear to me whether you need to enclose your commands between single quotes by force. I looked into the repo syntax and I don't think you need to. You could used double quotes around your command, and then use whatever single and double quotes you need inside provided you escape double ones.

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Thanks Kevin for your help. – Rachit Dec 12 '12 at 11:51

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