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i have a whole bunch of tests on variables in a bash (3.00) shell script where if the variable is not set, then it assigns a default, e.g.:

if [ -z "${VARIABLE}" ]; then 
    FOO='default'
else 
    FOO=${VARIABLE}
fi

I seem to recall there's some syntax to doing this in one line, something resembling a ternary operator, e.g.:

FOO=${ ${VARIABLE} : 'default' }

(though I know that won't work...)

am i crazy, or does something like that exist?

Thanks!

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4 Answers 4

up vote 64 down vote accepted

Very close to what you posted, actually:

FOO=${VARIABLE:-default}

Or, which will assign to VARIABLE as well:

FOO=${VARIABLE:=default}
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bingo! works like a charm –  eqbridges Jan 6 '10 at 15:08
4  
If I wanted to find this in the documentation, what would a google for? Googling with special characters like ${:-} isn't very easy. –  solarmist Apr 24 '13 at 18:34
4  
In response to solarmist: "bash variable assignment default" let me to this page, and searching bash's manual page with 'variable ass' got me to the right section after ~five 'next' –  Mooshu Sep 19 '13 at 20:09
5  
Note that it's not bash-specific and will work with the whole shell-family. It's safe for generic-scripts. –  Jocelyn delalande Feb 3 at 19:58
2  
@solarmist The key word is "bash parameter expansion", if you want to find more about it and its companions. –  duleshi Apr 30 at 2:43

For command line arguments:

VARIABLE=${1:-DEFAULTVALUE}    

#set VARIABLE with the value of 1st Arg to the script,
#If 1st arg is not entered, set it to DEFAULTVALUE
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Then there's the way of expressing your 'if' construct more tersely:

FOO='default'
[ -n "${VARIABLE}" ] && FOO=${VARIABLE}
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2  
this is good for x-compatibility with earlier shells –  eqbridges Jan 7 '10 at 10:27

see here under 3.5.3(shell parameter expansion)

so in your case

${VARIABLE:−default}
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