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Why when I type in bash: if [ false ]; then echo 'ok'; fi; I get ok string as a result? The similiar result I can get also when using variable: ok=false; if [ $ok ]; then echo 'ok'; fi;

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Sorry, my mistake. –  Adam Sznajder Nov 8 '12 at 17:28

2 Answers 2

up vote 10 down vote accepted

if [ false ] is equivalent to if [ -n "false" ] - it's testing the length of the string. If you are trying to test the exit code of /bin/false, use if false (no [, which for many, but not all, modern shells is a shell builtin roughly equivalent to /usr/bin/[ or /usr/bin/test).

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This explains it better than the other answers, but [ is going to be the builtin command, not the external binary. –  jordanm Nov 8 '12 at 20:40
    
@jordanm True for some shells, but not all... Although, I guess, the OP was tagged with bash for which [ is internal... Clarified the answer a bit, regardless. –  twalberg Nov 8 '12 at 20:53

true and false are not builtin keywords for boolean in bash the same way they are for other programming languages

You can simulate the test of true / false condition of a variable as follows:

cond1="true"
cond2="false"

if [ "$cond1" = "true" ]; then
    echo "First condition is true"
fi

if [ "$cond2" = "false" ]; then
    echo "Second condition is false"
fi

When you are doing:

if [ false ]

It implicitly translates to

if [ -n "false" ]

Where the -n denotes "test if this has length greater than 0: logically true if so, logically false otherwise"

Aside - true and false actually do do something, but they are commands:

man true
man false

To read more about them.

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