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I've been reading through the Linux kernel (specifically, 2.6.11). I came across the following definition:

#define unlikely(x)     __builtin_expect(!!(x), 0)

(from linux-2.6.11/include/linux/compiler.h:61 lxr link)

What does !! accomplish? Why not just use (x)?

See also:

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1  
    
@Joel Potter, looks like you're right. I had searched for C rather than C++... – Willi Ballenthin Mar 26 '10 at 22:25
1  
@Joel: those questions relate to C++ and Perl, respectively. While C++ is at least close, in practice the uses are at least somewhat different due to C having no built-in boolean type! – Shog9 Mar 26 '10 at 22:26
    
@Shog9, true. But that difference seems small in common usage. If nobody else agrees than this question will stay open. ;-) – Joel Mar 26 '10 at 22:37
up vote 18 down vote accepted

!!(x) forces it to be either 0 or 1. 0 remains 0, but any non-zero value (which would be 'true' in a boolean context) becomes 1.

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2  
That should be 0 or 1. – R Samuel Klatchko Mar 26 '10 at 22:11
    
This is a really neat trick - going to remember it. +1. – user257111 Mar 26 '10 at 22:19
4  
It's really not necessary in this case since we expect the result to be 0. It's really only necessary for the #define likely(x) __builtin_expect(!!(x), 1) to ensure that true is 1. It's likely only included in the unlikely definition for symmetry. – Chris Lutz Mar 26 '10 at 22:21
    
How interesting, I have previously used x&&1 (or x&&YES in ObjC) for this. Never thought to use !!. – Nick Moore Mar 26 '10 at 23:09
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IMO x != 0 expresses it more clearly. – jamesdlin Mar 27 '10 at 3:36

It's not so much a language syntax but a common shorthand for converting a char or int into quasi-boolean.

In C logical operations such as == && ! and so on can act on int, char etc, as there is no boolean type, however according to the standard they are guaranteed to return 0 for False and 1 for true.

So for example if you have

int x = 5;

you can force it to convert to a "boolean" type (there is no boolean type in C hence the quotes) you do

x = !x; /* !5 which gives 0 always */
x = !x; /* which gives 1 always */
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!!(x) is equivalent to (x) != 0 (unless some very oddball operator overloading is going on in C++).

The fact that it's not obvious what !!(x) is doing is a probably a good reason to use (x) != 0. Unless you want to be an elite kernel hacker.

See this closed question (if it's still around) for a discussion of the merits of !! (maybe that question will be be reopened, since this question indicates that it has some value).

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2  
It's "not obvious" what !!(x) does for half a second the first time you see it. After you see it and either a) think about it for a bit or b) ask someone else, you'll recognize what the !! "operator" does quite quickly. – Chris Lutz Mar 26 '10 at 22:33
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@Chris - if it's a common idiom in your shop, it's probably OK to use it. On the other hand, I come across !!(x) infrequently enough that I have to pause for a moment to grok it. I don't have to cipher for a moment about what (x) != 0 means. Not a huge deal, but I see little to recommend !!(x) over (x) != 0. – Michael Burr Mar 26 '10 at 22:45
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Fair enough. I rather like the way it looks, but there isn't really a compelling argument for using it over (x) != 0 (unless you need to rely on some objects overloading ! to evaluate them in boolean contexts). – Chris Lutz Mar 26 '10 at 22:49

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