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I just came onto a project with a pretty huge code base.

I'm mostly dealing with C++ and a lot of the code they write uses double negation for their boolean logic.

 if (!!variable && (!!api.lookup("some-string"))) {
       do_some_stuff();
 }                                   

I know these guys are intelligent programmers, it's obvious they aren't doing this by accident.

I'm no seasoned C++ expert, my only guess at why they are doing this is that they want to make absolutely positive that the value being evaluated is the actual boolean representation. So they negate it, then negate that again to get it back to its actual boolean value.

Is this a correct, or am I missing something?

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2  
check here, already asked, Is !! a safe way to convert to bool in C++? –  Comptrol Oct 29 '08 at 22:52
    
This topic has been discussed here. –  Dima Oct 30 '08 at 14:01

13 Answers 13

up vote 64 down vote accepted

It's a trick to convert to bool.

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3  
Exactly right, it's a common idiom in most languages where ! is the negation operator with an implicit cast to boolean –  Gareth Oct 29 '08 at 22:49
11  
I think cast it explicitly with (bool) would be clearer, why use this tricky !!, because it is of less typing? –  Baiyan Huang Mar 29 '10 at 3:39
8  
However, it's pointless in C++ or modern C, or where the result is only used in a boolean expression (as in the question). It was useful back when we had no bool type, to help avoid storing values other than 1 and 0 in boolean variables. –  Mike Seymour Jan 17 '12 at 19:01
    
I agree with @baiyanhuang... surely it only decreases readability at no real gain? –  Noldorin Jan 22 '12 at 2:05
2  
@lzprgmr: explicit cast causes a "performance warning" on MSVC. Using !! or !=0 solves the problem, and among the two I find the former cleaner (since it will work on a greater amount of types). Also I agree that there is no reason to use either in the code in question. –  ybungalobill Sep 5 '12 at 19:35

The coders think that it will convert the operand to bool, but because the operands of && are already implicitly converted to bool, it's utterly redundant.

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6  
Visual C++ gives a performance wanring in some cases without this trick. –  Kirill V. Lyadvinsky Jan 17 '12 at 19:46

It's actually a very useful idiom in some contexts. Take these macros (example from the Linux kernel). For GCC, they're implemented as follows:

#define likely(cond)   (__builtin_expect(!!(cond), 1))
#define unlikely(cond) (__builtin_expect(!!(cond), 0))

Why do they have to do this? GCC's __builtin_expect treats its parameters as long and not bool, so there needs to be some form of conversion. Since they don't know what cond is when they're writing those macros, it is most general to simply use the !! idiom.

They could probably do the same thing by comparing against 0, but in my opinion, it's actually more straightforward to do the double-negation, since that's the closest to a cast-to-bool that C has.

This code can be used in C++ as well... it's a lowest-common-denominator thing. If possible, do what works in both C and C++.

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2  
thank christ the right answer –  Matt Joiner Oct 22 '09 at 9:20

Yes, it is a conversion to bool. See this question for more discussion.

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It's a technique to avoid writing (variable != 0) - i.e. to convert from whatever type it is to a bool.

IMO Code like this has no place in systems that need to be maintained - because it is not immediately readable code (hence the question in the first place).

Code must be legible - otherwise you leave a time debt legacy for the future - as it takes time to understand something that is needlessly convoluted.

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5  
It's not a trick, it's simple typecasting. –  moo Oct 31 '08 at 11:00
5  
My definition of a trick is something that not everyone can understand at the first reading. Something that needs figuring out is a trick. Also horrible because the ! operator could be overloaded... –  Richard Harrison Nov 1 '08 at 17:03
3  
@orlandu63: simple typecasting is bool(expr): it does the right thing and everybody understand the intent at first sight. !!(expr) is a double negation, which accidentally converts to bool... this is not simple. –  Adrien Plisson Feb 6 '11 at 10:53
2  
Right. And templates are "tricks" too. –  ActiveTrayPrntrTagDataStrDrvr Mar 16 '12 at 12:59

It side-steps a compiler warning. Try this:

int _tmain(int argc, _TCHAR* argv[])
{
    int foo = 5;
    bool bar = foo;
    bool baz = !!foo;
    return 0;
}

The 'bar' line generates a "forcing value to bool 'true' or 'false' (performance warning)" on MSVC++, but the 'baz' line sneaks through fine.

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1  
Most commonly encountered in the Windows API itself which doesn't know about the bool type - everything is encoded as 0 or 1 in an int. –  Mark Ransom Jan 17 '12 at 19:42

Is operator! overloaded?
If not, they're probably doing this to convert the variable to a bool without producing a warning. This is definitely not a standard way of doing things.

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As Marcin mentioned, it might well matter if operator overloading is in play. Otherwise, in C/C++ it doesn't matter except if you're doing one of the following things:

  • direct comparison to true (or in C something like a TRUE macro), which is almost always a bad idea. For example:

    if (api.lookup("some-string") == true) {...}

  • you simply want something converted to a strict 0/1 value. In C++ an assignment to a bool will do this implicitly (for those things that are implicitly convertible to bool). In C or if you're dealing with a non-bool variable, this is an idiom that I've seen, but I prefer the (some_variable != 0) variety myself.

I think in the context of a larger boolean expression it simply clutters things up.

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Maybe the programmers were thinking something like this...

!!myAnswer is boolean. In context, it should become boolean, but I just love to bang bang things to make sure, because once upon a time there was a mysterious bug that bit me, and bang bang, I killed it.

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If variable is of object type, it might have a ! operator defined but no cast to bool (or worse an implicit cast to int with different semantics. Calling the ! operator twice results in a convert to bool that works even in strange cases.

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!! was used to cope with original C++ which did not have a boolean type (as neither did C).


Example Problem:

Inside if(condition), the condition needs to evaluate to some type like double, int, void*, etc., but not bool as it does not exist yet.

Say a class existed int256 (a 256 bit integer) and all integer conversions/casts were overloaded.

int256 x = foo();
if (x) ...

To test if x was "true" or non-zero, if (x) would convert x to some integer and then assess if that int was non-zero. A typical overload of (int) x would return only the LSbits of x. if (x) was then only testing the LSbits of x.

But C++ has the ! operator. An overloaded !x would typically evaluate all the bits of x. So to get back to the non-inverted logic if (!!x) is used.

Ref Did older versions of C++ use the `int` operator of a class when evaluating the condition in an `if()` statement?

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It's correct but, in C, pointless here -- 'if' and '&&' would treat the expression the same way without the '!!'.

The reason to do this in C++, I suppose, is that '&&' could be overloaded. But then, so could '!', so it doesn't really guarantee you get a bool, without looking at the code for the types of variable and api.call. Maybe someone with more C++ experience could explain; perhaps it's meant as a defense-in-depth sort of measure, not a guarantee.

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The compiler would treat the values the same either way if it's only used as an operand to an if or &&, but using !! may help on some compilers if if (!!(number & mask)) gets replaced with bit triggered = !!(number & mask); if (triggered); on some embedded compilers with bit types, assigning e.g. 256 to a bit type will yield zero. Without the !!, the apparently-safe transformation (copying the if condition to a variable and then branching) won't be safe. –  supercat Apr 24 at 20:21

Readability. It demonstrates a design pattern in a sense that you want to identify whether the value converted to a Boolean would be true or false.

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