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I know this is a stupid question, but how should I change this to get my script working?

if $((RANDOM % 2)); ...
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marked as duplicate by Anthon, Brian Agnew, SztupY, Yan Sklyarenko, torial Mar 27 '13 at 15:46

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What do you want to check? –  fedorqui Mar 27 '13 at 13:20
    
I need this to be a correct conditional statement to check whether the random variable is even. Now it just says: "0: command not found" –  lizarisk Mar 27 '13 at 13:22
    
Like this ? stackoverflow.com/questions/3601515/… –  Brian Agnew Mar 27 '13 at 13:22
1  
if [ $(( $RANDOM % 2)) -eq 0 ]; then echo "even" ; fi can work –  fedorqui Mar 27 '13 at 13:24
1  
Oh, I got it, should have left spaces around square brackets. –  lizarisk Mar 27 '13 at 13:28

3 Answers 3

$ a=4

$ [ $((a%2)) -eq 0 ] && echo "even"
even

$ a=3

$ [ $((a%2)) -eq 0 ] && echo "even"
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Learnt something new with the logical AND and echo command. Thx. –  shparekh Sep 16 at 18:12

$(( ... )) is just an expression. Its result appears where bash expects a command.

A POSIX-compatible solution would be:

if [ "$(( RANDOM % 2))" -ne 0 ]; 

but since RANDOM isn't defined in POSIX either, you may as well use the right bash command for the job: an arithmetic evaluation compound command:

if (( RANDOM % 2 )); then
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it is weird (ie, hard to read) that the if (( RANDOM % 2 )); then will be true when RANDOM is NOT a multiple of 2 ... –  Olivier Dulac Mar 27 '13 at 13:37
    
This is the same idiom commonly used in other languages. C would have if ( random/2 ) { ... }. Python would have if random/2: .... –  chepner Mar 27 '13 at 13:40
foo=6

if [ $((foo%2)) -eq 0 ];
then
    echo "even";
else
    echo "odd";
fi
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This solved my problem. –  shparekh Sep 16 at 18:13

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