55
#include <vector>

struct A
{
    void foo(){}
};

template< typename T >
void callIfToggled( bool v1, bool &v2, T & t )
{
    if ( v1 != v2 )
    {
        v2 = v1;
        t.foo();
    }
}

int main()
{
    std::vector< bool > v= { false, true, false };

    const bool f = false;
    A a;

    callIfToggled( f, v[0], a );
    callIfToggled( f, v[1], a );
    callIfToggled( f, v[2], a );
}

The compilation of the example above produces next error :

dk2.cpp: In function 'int main()':
dk2.cpp:29:28: error: no matching function for call to 'callIfToggled(const bool&, std::vector<bool>::reference, A&)'
dk2.cpp:29:28: note: candidate is:
dk2.cpp:13:6: note: template<class T> void callIfToggled(bool, bool&, T&)

I compiled using g++ (version 4.6.1) like this :

g++ -O3 -std=c++0x -Wall -Wextra -pedantic dk2.cpp

The question is why this happens? Is vector<bool>::reference not bool&? Or is it a compiler's bug?
Or, am I trying something stupid? :)

  • 13
    Unfortunately, despite its name, std::vector<bool> is not a vector of bool. – CB Bailey Dec 6 '11 at 11:56
  • 1
    As a workaround, you could use std::unique_ptr<bool[]>(new bool[3])... – Kerrek SB Dec 6 '11 at 12:17
  • 2
    Herb Sutter's When Is a Container Not a Container? is just about this problem. – legends2k Aug 16 '13 at 10:54
  • 1
    Howard Hinnant's article On vector<bool> says that it's a good optimization only the name should've been changed to not denote the greater meaning of a standard container. – legends2k Aug 16 '13 at 11:24
58

Vector is specialized for bool.

It is considered a mistake of the std. Use vector<char> instead:

template<typename t>
struct foo {
  using type = t;
};
template<>
struct foo<bool> {
  using type = char;
};

template<typename t, typename... p>
using fixed_vector = std::vector<typename foo<t>::type, p...>;

Occasionally you may need references to a bool contained inside the vector. Unfortunately, using vector<char> can only give you references to chars. If you really need bool&, check out the Boost Containers library. It has an unspecialized version of vector<bool>.

  • 3
    Nice workaround, and nice demo of the new using syntax for aliasing. – Matthieu M. Dec 6 '11 at 12:50
  • 5
    +1 for the smart usage of the using (no pun intended). – Nawaz Dec 7 '11 at 6:35
  • @Nawaz I swear to God that pun was intended. – user142019 Apr 4 '13 at 16:05
49

Your expectations are normal, but the problem is that std::vector<bool> has been a kind of experiment by the C++ commitee. It is actually a template specialization that stores the bool values tightly packed in memory: one bit per value.

And since you cannot have a reference to a bit, there's your problem.

  • 7
    +1. std::vector<bool> only supports a subset of the functionality provided by std::vector. It's ugly since you have to replace bool with a different type (char) to get a working vector. – josefx Dec 6 '11 at 13:25
  • 1
    An experiment most (if not all) committee members regretted! – curiousguy Jun 12 '16 at 16:04
15

std::vector<bool> is a non conforming container. To optimize space, it packs bools and cannot provide reference.

Use boost::dynamic_bitset instead.

  • To get a kind of reference you need to use operator [] (result is dynamic_bitset::reference). There are no iterator though. – reder Dec 6 '11 at 12:00
  • 2
    -1 for not mentioning how dynamic_bitset is different or better. Of course it can't return a bool & either. – Potatoswatter Jul 16 '13 at 11:41
15

std::vector< bool > packs its contents so each Boolean value is stored in one bit, eight bits to a byte. This is memory-efficient but computationally intensive, since the processor must perform arithmetic to access the requested bit. And it doesn't work with bool reference or pointer semantics, since bits within a byte do not have addresses in the C++ object model.

You can still declare a variable of type std::vector<bool>::reference and use it as if it were bool&. This allows generic algorithms to be compatible.

std::vector< bool > bitvec( 22 );
std::vector< bool >::reference third = bitvec[ 2 ];
third = true; // assign value to referenced bit

In C++11, you can work around this using auto and the && specifier which automatically selects an lvalue reference bound to the vector element or an rvalue reference bound to a temporary.

std::vector< bool > bitvec( 22 );
auto &&third = bitvec[ 2 ]; // obtain a std::vector< bool >::reference
third = true; // assign value to referenced bit
  • 1
    Good answer, especially the mention of &&, which is crucial to generic code to let proxy types/iterators ever be useful. Of course, it works equally well in loops: for (auto &&it: bizarreContainer) – underscore_d Jul 18 '16 at 10:00
5

Just my 2 cents:

std::vector<bool>::reference is a typedef for struct _Bit_reference which is defined as

typedef unsigned long _Bit_type;

struct _Bit_reference
  {
    _Bit_type * _M_p;
    _Bit_type _M_mask;

    // constructors, operators, etc...

    operator bool() const
    { return !!(*_M_p & _M_mask); }
  };

Changing the function like this, it works (well, compiles at least, haven't tested):

template< typename T >
void callIfToggled( bool v1, std::vector<bool>::reference v2, T & t )
{
    bool b = v2;  
    if ( v1 != b )
    {
        v2 = v1;
        t.foo();
    }
}

EDIT: I changed the condition from (v1 != v2), which wasn't a good idea, to (v1 != b).

  • 1
    It works, but is this a g++'s extension? – BЈовић Dec 6 '11 at 12:24
  • 1
    It's not an extension, it's just how GCC implements the vector<bool> specialization. I don't know what standard says about this. You can see it for yourself: std_bvector.h in lib/gcc/mingw32/4.6.1/include/c++/bits. (Your directory tree might be different, but probably similar) – jrok Dec 6 '11 at 12:32
  • Sure, it works, for this one specific case - further illustrating why vector<bool> is an awful misnomer - as it becomes incredibly difficult, tedious, or impossible to use in generic code situations that work for other, actual containers. Still, I think a usable workaround here would be to use template<typename B, typename T> void callIfToggled(B &&v1, B &&v2, T &&t) and rely on the conversion operator from v2 - which I guess is another reason to be thankful for forwarding references. Doesn't excuse the wrong choice of name, though! – underscore_d Jul 18 '16 at 10:10
1

Make a structure with a bool in it, and make the vector<> using that struct type.

Try:

vector<struct sb> where sb is struct {boolean b];

then you can say

push_back({true})

do

typedef struct sbool {bool b;} boolstruct; and then vector<boolstruct> bs;

  • You don't need struct or typedef in C++ – Yashas Apr 1 '18 at 17:51

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.