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I know I can do this...

if diff -q $f1 $f2
then
    echo "they're the same"
else
    echo "they're different"
fi

But what if I want to negate the condition that I'm checking? i.e. something like this (which obviously doesn't work)

if not diff -q $f1 $f2
then
    echo "they're different"
else
    echo "they're the same"
fi

I could do something like this...

diff -q $f1 $f2
if [[ $? > 0 ]]
then
    echo "they're different"
else
    echo "they're the same"
fi

Where I check whether the exit status of the previous command is greater than 0. But this feels a bit awkward. Is there a more idiomatic way to do this?

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3 Answers 3

up vote 3 down vote accepted
if ! diff -q $f1 $f2; then ...
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Wow, thanks. I guess it's that easy. I swear I spent 15 minutes reading bash documentation before posting this without finding anything... –  Coquelicot Feb 25 '13 at 17:49

If you want to negate, you are looking for ! :

if ! diff -q $f1 $f2; then
    echo "they're different"
else
    echo "they're the same"
fi

or (simplty reverse the if/else actions) :

if diff -q $f1 $f2; then
    echo "they're the same"
else
    echo "they're different"
fi

Or also, try doing this using cmp :

if cmp &>/dev/null $f1 $f2; then
    echo "$f1 $f2 are the same"
else
    echo >&2 "$f1 $f2 are NOT the same"
fi
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To negate use if ! diff -q $f1 $f2;. Documented in man test:

! EXPRESSION
      EXPRESSION is false

Not quite sure why you need the negation, as you handle both cases... If you only need to handle the case where they don't match:

diff -q $f1 $f2 || echo "they're different"
share|improve this answer
    
Is this actually invoking test though? I'm not using "test" nor "[". –  Coquelicot Feb 25 '13 at 18:00
    
It's not invoking it, it's a shell builtin (for performance reasons), but the syntax is the same –  Karoly Horvath Feb 25 '13 at 18:19

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