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What does a dollar sign followed by an at-sign (@) mean in a shell script?

For example:

umbrella_corp_options $@
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This must be a duplicate, but SO and Google just throw away special characters... –  l0b0 Apr 3 '12 at 13:40
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@l0b0 stackapps.com/questions/2690/… –  bux Apr 3 '12 at 14:30
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@cbuckley: Oh wow that's so awesome I think my brain just imploded. –  l0b0 Apr 3 '12 at 14:35
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possible duplicate of what is $@ OR searching for an explaination of $@ in bash –  l0b0 Apr 3 '12 at 14:36
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why such the negativity?!? +1 –  Har Apr 3 '12 at 16:47

6 Answers 6

up vote 20 down vote accepted

$@ is all of the parameters passed to the script. For instance, if you call ./someScript.sh foo bar then $@ will be equal to foo bar.

If you do:

./someScript.sh foo bar

and then inside someScript.sh reference:

umbrella_corp_options "$@"

this will be passed to umbrella_corp_options with each individual parameter enclosed in double quotes, allowing to take parameters with blank space from the caller and pass them on.

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STATUS_ACCESS_DEN...fancy editing thanks! –  Har Apr 3 '12 at 13:36
    
What would $@ contain if I did someScript.sh foo bar "boo far"? –  trusktr Apr 3 '12 at 14:02
    
teaching.idallen.com/dat2330/04f/notes/shell_variables.txt Check this out. –  Har Apr 3 '12 at 14:13
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$@ is special if written in double quotes. Then it will result in a list of quoted values, in your case, trusktr, in the three arguments "foo", "bar", and "boo far". –  Alfe Apr 3 '12 at 14:28
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Although it is generally the case, $@ does not necessarily come from paramaters passed to the script... eg; set a b "x   y"; printf '(%s)' "$@" outputs (a)(b)(x   y) –  Peter.O Apr 3 '12 at 14:37

$@ is nearly the same as $*, both meaning "all command line arguments". They are often used to simply pass all arguments to another program (thus forming a wrapper around that other program).

The difference between the two syntaxes shows up when you have an argument with spaces in it (e.g.) and put $@ in double quotes:

wrappedProgram "$@"
# ^^^ this is correct and will hand over all arguments in the way
#     we received them, i. e. as several arguments, each of them
#     containing all the spaces and other uglinesses they have.
wrappedProgram "$*"
# ^^^ this will hand over exactly one argument, containing all
#     original arguments, separated by single spaces.
wrappedProgram $*
# ^^^ this will join all arguments by single spaces as well and
#     will then split the string as the shell does on the command
#     line, thus it will split an argument containing spaces into
#     several arguments.

Example: Calling

wrapper "one two    three" four five "six seven"

will result in:

"$@": wrappedProgram "one two    three" four five "six seven"
"$*": wrappedProgram "one two    three four five six seven"
$*:   wrappedProgram one two three four five six seven
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They are not the same, and the manpage is clear on the side-effects of $* using IFS—which is not necessarily space. (If they were the same, there would not be any point, other than compatibility perhaps, in offering both.) –  jørgensen Apr 3 '12 at 14:48
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No they are not. And I said so two lines below: "The difference between the two ..." In order to get short sentences and raise readability the reader has to read more than one sentence before giving a verdict :-/ –  Alfe Apr 5 '12 at 15:41

From the manual:

@

Expands to the positional parameters, starting from one. When the expansion occurs within double quotes, each parameter expands to a separate word. That is, "$@" is equivalent to "$1" "$2" .... If the double-quoted expansion occurs within a word, the expansion of the first parameter is joined with the beginning part of the original word, and the expansion of the last parameter is joined with the last part of the original word. When there are no positional parameters, "$@" and $@ expand to nothing (i.e., they are removed).

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The usage of a pure $@ means in most cases "hurt the programmer as hard as you can", because in most cases it leads to problems with word separation and with spaces and other characters in arguments.

In (guessed) 99% of all cases, it is required to enclose it in ": "$@" is what can be used to reliably iterate over the arguments.

for a in "$@"; do something_with "$a"; done
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Your line can be written as: for a; do something_with "$a"; done ;-) –  Alfe Apr 3 '12 at 14:11
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@Alfe I know;I just hat forgotten it. Think of it as for a in start_token "$@" end_token; do something_with "$a"; done :-) –  glglgl Apr 3 '12 at 14:39

These are the command line arguments where

$@ = stores all the arguments as a single string
$* = stores all the arguments in a list of string
$# = stores the number of arguments

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You have $@ and $* backwards –  1_CR Oct 22 '13 at 15:34

In (guessed) 99% of all cases, it is required to enclose it in : "$@ is what can be used to reliably iterate over the arguments.

for a in $@; do something_with $a; done

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