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What the difference between “$@” and “$*” in bash?

For years and on dozens of occasions, I have hesitated between the use of $* and $@ in shell scripts. Having read the applicable section of Bash's manpage over and over again, having tried both $* and $@, I more or less completely fail to understand the practical difference of application between the two variables. Can you enlighten me, please?

I have been using $* recently, but don't ask me why. I don't know why, because I don't know why $@ even exists, except as an almost exact synonym for $*.

Is there any practical difference?

(I personally tend to use Bash, but remain agnostic regarding the choice of shell. My question is not specific to Bash as far as I know.)

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marked as duplicate by Chris Morgan, ruakh, thb, l0b0, Andrew Clark Mar 29 '12 at 20:05

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

1  
Searching for $* $@ on SymbolHound finds a number of duplicates. Handy tool, that. –  Chris Morgan Mar 28 '12 at 21:09
1  
    
@ChrisMorgan: Confirmed on all points. SymbolHound does look handy. I hadn't known about it. Next time, I will search there first. Should I take some action to merge my question with the one you suggest? –  thb Mar 28 '12 at 21:17
    
It certainly is hard finding things when Stack OVerflow's search engine doesn't cope with symbols. You decide what to do about this question. –  Chris Morgan Mar 28 '12 at 21:25
    
@ChrisMorgan: I have voted to close my own question. –  thb Mar 28 '12 at 21:34

3 Answers 3

up vote 20 down vote accepted

Unquoted, there is no difference -- they're expanded to all the arguments and they're split accordingly. The difference comes when quoting. "$@" expands to properly quoted arguments and "$*" makes all arguments into a single argument. Take this for example:

#!/bin/bash

function print_args_at {
    printf "%s\n" "$@"
}

function print_args_star {
    printf "%s\n" "$*"
}

print_args_at "one" "two three" "four"
print_args_star "one" "two three" "four"

Then:

$ ./printf.sh 

one
two three
four

one two three four
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Consider:

foo() { mv "$@"; } 
bar() { mv "$*"; }
foo a b
bar a b

The call to foo will attempt to mv file a to b. The call to bar will fail since it calls mv with only one argument.

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Thank you. Are $@ and $* then identical if used without quote marks? –  thb Mar 28 '12 at 21:09
3  
Without quotes, $@ and $* are identical. –  William Pursell Mar 28 '12 at 21:14
1  
Also, on some broken shells "$@" expands to an empty argument "" if there are no positional parameters, rather than correctly expanding to nothing. So this trick has to be used: ${@+"$@"} (if $@ is nonblank, substitute "$@" else nothing) . If you ever see that, you will know why. –  Kaz Mar 28 '12 at 21:55
    
I always used ${1+"$@"}, which works the same as ${@+"$@"}. Was glad to dump the silly construct... :-) –  torek Mar 29 '12 at 7:34

Note also that "$@" is magic only when there's nothing else in the quotes. These are identical:

set -- a "b c" d
some_func "foo $*"  
some_func "foo $@"

In both cases, some_func receives one argument.

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