Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

If the following example, which sets the IFS environment variable to a line feed character...

IFS=$'\n'
  • What does the dollar sign mean exactly?
  • What does it do in this specific case?
  • Where can I read more on this specific usage (Google doesn't allow special characters in searches and I don't know what to look for otherwise)?

I know what the IFS environment variable is, and what the \n character is (line feed), but why not just use the following form: IFS="\n" (which does not work)?

For example, if I want to loop through every line of a file and want to use a for loop, I could do this:

for line in (< /path/to/file); do
    echo "Line: $line"
done

However, this won't work right unless IFS is set to a line feed character. To get it to work, I'd have to do this:

OLDIFS=$IFS
IFS=$'\n'
for line in (< /path/to/file); do
    echo "Line: $line"
done
IFS=$OLDIFS

Note: I don't need another way for doing the same thing, I know many other already... I'm only curious about that $'\n' and wondered if anyone could give me an explanation on it.

Thanks!

share|improve this question

4 Answers 4

up vote 62 down vote accepted

Normally bash doesn't interpret escape sequences in string literals. So if you write \n or "\n" or '\n', that's not a linebreak - it's the letter n (in the first case) or a backslash followed by the letter n (in the other two cases).

$'somestring' is a syntax for string literals with escape sequences. So unlike '\n', $'\n' actually is a linebreak.

share|improve this answer
    
Well explained, thank you! –  Yanick Girouard Nov 8 '10 at 21:39
2  
Not exactly so -- \n is just an (escaped) letter n. You are right that '\n' and "\n" are backlash followed by n. –  Roman Cheplyaka Nov 8 '10 at 23:08
6  
Note that $'\n' is bash specific -- it won't work in a POSIX shell (/bin/sh). To get the same effect in a POSIX-compliant manner, you can type IFS=', then hit return to type an actual newline character, then type the closing ' –  Richard Hansen Jun 21 '11 at 16:52
11  
IFS=$(echo -e '\n') should also do it in a POSIX-compatible way. –  Vineet Oct 6 '11 at 15:54
6  
@Vineet - it gave me pause to dispute an upvoted comment. While this is Posix-correct, it doesn't work - The command substitution operators in bash remove all trailing newline characters. See this for more detail. –  DigitalTrauma Oct 5 '13 at 2:38

From http://www.linuxtopia.org/online_books/bash_guide_for_beginners/sect_03_03.html:

Words in the form "$'STRING'" are treated in a special way. The word expands to a string, with backslash-escaped characters replaced as specified by the ANSI-C standard. Backslash escape sequences can be found in the Bash documentation.found

I guess it's forcing the script to escape the line feed to the proper ANSI-C standard.

share|improve this answer
1  
That's exactly what I was looking for! Thank you! –  Yanick Girouard Nov 8 '10 at 21:38

Re recovering the default IFS- this OLDIFS=$IFS is not necessary. Run new IFS in subshell to avoid overriding the default IFS:

ar=(123 321); ( IFS=$'\n'; echo ${ar[*]} )

Besides I don't really believe you recover the old IFS fully. You should double quote it to avoid line breaking such as OLDIFS="$IFS".

share|improve this answer
    
this is a really useful technique. i just used it for a cleaner shell join op: args=$(IFS='&'; echo "$*"). restoring IFS to $' \t\n' in a Bourne shell friendly manner is no mean feat. –  jeberle Mar 11 at 1:16

It's like retrieving the value from a variable:

VAR='test'
echo VAR
echo $VAR

are different, so the dollar sign basically evaluates the content.

share|improve this answer
1  
This has nothing to do with variables. $'FOO' (unlike $FOO which this was question was not about) is a string literal. If you execute echo $'VAR', you'll see that it prints the string VAR, not test. –  sepp2k Nov 8 '10 at 21:43
    
You're right, thanks for the explanation. –  Pieter Nov 8 '10 at 22:08

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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