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For some reason I need my script to be able to accept arguments with space characters. If for example I have a script as follows,

for SOME_VAR in $@
    echo "$SOME_VAR"
    cd "$SOME_VAR"

if I pass arguments to the script (assuming it is called

sh "Hello world"

I am expecting the script to print Hello world and change the directory to "Hello world". But I get this error message instead

cd: 5: can't cd to hello
cd: 5: can't cd to world

so how exactly do I pass argument with space char to a command in a shell script?!

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1 Answer 1

up vote 31 down vote accepted

You must wrap the $@ in quotes, too: "$@"

This tells the shell to ignore spaces in the arguments; it doesn't turn all arguments into a very long string.

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XD thanks for the reply, I was like going to answer this myself, some further explanation – Jeffrey04 May 25 '09 at 9:05
But if $@ is a list putting " around it would basically merge it into one long string. It wouldn't iterate over it right? And in that case there is no real use in having a for loop, a normal echo "$@"; cd "$@" would do. Is there a solution where I can have for i in -constructs delimit on line break but not space? – Andreas Wederbrand Feb 7 '12 at 9:16
@AndreasWederbrand: No. "$@" is a special token which means "wrap each individual argument in quotes". So a "b c" becomes (or rather stays) "a" "b c" instead of "a b c" or "a" "b" "c". – Aaron Digulla Feb 13 '12 at 11:09

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