I'm trying to extract a string from a group of strings stored in a variable, say foo, in bash:

foo="I foobar you"

using awk, but I got different results when I wrapped awk with single and double quotes:

$ echo $foo | awk '{print $2}'
$ foobar

$ echo $foo | awk "{print $2}"
$ I foobar you

Could anyone tell me why ' and " cause different results when wrapping awk?

  • You need to read up on shell quoting rules. They will answer your question and will additionally tell you why echo $foobar is bad code that should instead be written echo "$foobar". Always quote your shell variables unless you have a very specific purpose in mind by leaving them unquoted and fully understand all the implications, side effects and caveats. – Ed Morton Dec 6 '17 at 18:47
up vote 3 down vote accepted

It is because when using double-quotes the the shell tries to expand it as a positional parameter or a variable before passing it to awk. In your case it tries to expand $1 but finds no value for it, and so the expansion results to nothing and that's why you get the default print action in awk to print the whole line.

The reason why we single quote the awk commands is that we want a plain string and not modified/tampered by the shell by any means before processed by the Awk command itself which understands $1 as the first field (with default space delimiter)

  • You should just make it 100% clear that this has absolutely nothing to do with awk. awk simply interprets the script that the shell passes to it. For example when you say it tries to expand $1 - to be clear it in that context is the shell, not awk. The shell is the one that's interpreting the quotes and figuring out what to pass to awk and it behaves the same whether it's passing a script to awk or sed or any other command. – Ed Morton Dec 6 '17 at 18:44

According to shell quoting rules:

  • Single quotes (‘ ‘) protect everything between the opening and closing quotes. The shell does no interpretation of the quoted text, passing it on verbatim to the command.

    As in your code {print $2} passed on as it is to awk as an action:
    $ echo $foo | awk '{print $2}'
    $ foobar

  • Double quotes (“ “) protect most things between the opening and closing quotes. The shell does at least variable and command substitution on the quoted text. Different shells may do additional kinds of processing on double-quoted text. Because certain characters within double-quoted text are processed by the shell, they must be escaped within the text. Of note are the characters ‘$’, ‘‘’, ‘\’, and ‘"’, all of which must be preceded by a backslash within double-quoted text if they are to be passed on literally to the program.

    So you have to escape $ to get the value of second col as:
    $ echo $foo | awk "{print \$2}"
    $ foobar
    otherwise awk is doing its default action of printing the whole line as in your case.

  • Fully agreed with @Ed Mortan regarding the best practice of quoting the shell variables. Although the double quotes are default, but if accidentally ….
    $ echo "$foo" with double quotes
    $ I foobar you

    $ echo ‘$foo’ with single quotes
    $ $foo

  • Remember, quoting rules are specific to shell. The above rules only apply to POSIX-complaint, Bourne-style shells (such as Bash, the GNU Bourne-Again Shell). It has nothing to do with awk, sed, grep, etc…

Your Answer

 

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

Not the answer you're looking for? Browse other questions tagged or ask your own question.