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Why vector<bool>::reference doesn’t return reference to bool?

I used to think that with std::vector::operator[] we get deep copies of the accessed item, but it seems that it is not always true. At least, with vector<bool> the following test code gives a different result:

#include <iostream>
#include <vector>
using namespace std;

template <typename T>
void Test(const T& oldValue, const T& newValue, const char* message)
    cout << message << '\n';

    vector<T> v;
    cout << " before:  v[0] = " << v[0] << '\n';

    // Should be a deep-copy (?)       
    auto x = v[0];   
    x = newValue;

    cout << " after:   v[0] = " << v[0] << '\n';
    cout << "-------------------------------\n";

int main()
    Test<int>(10, 20, "Testing vector<int>");
    Test<double>(3.14, 6.28, "Testing vector<double>");
    Test<bool>(true, false, "Testing vector<bool>");

Output (source code compiled with VC10/VS2010 SP1):

Testing vector<int>
 before:  v[0] = 10
 after:   v[0] = 10
Testing vector<double>
 before:  v[0] = 3.14
 after:   v[0] = 3.14
Testing vector<bool>
 before:  v[0] = 1
 after:   v[0] = 0

I would have expected that v[0] after the x = newValue assignment would still be equal to its previous value, but this seems not true. Why is that? Why is vector<bool> special?

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marked as duplicate by BЈовић, juanchopanza, TemplateRex, CashCow, Jonathan Wakely Jan 30 '13 at 12:22

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

It is neither a vector, nor contains bool values. – Peter Wood Jan 30 '13 at 12:10
This is a very nice example how type deduction can shoot you in the foot and how the solutions to the problem aren't obvious. – pmr Jan 30 '13 at 12:11
@pmr it's not the type deduction which is at fault here, it's the non-generic behavior of supposedly generic code. they Committee should have renamed vector<bool> to bitvector (and I believe there were some proposals for that) – TemplateRex Jan 30 '13 at 12:14
@rhalbersma The code would be working as expected if you would use T or vector<T>::value_type instead of auto. I believe earlier specs required operator[] of a container to return something convertible to a T&, but that doesn't seem to be the case for C++11 anymore. – pmr Jan 30 '13 at 12:18
See also – Jonathan Wakely Jan 30 '13 at 12:22

3 Answers 3

up vote 4 down vote accepted

vector<bool>::operator[] neither yields a bool nor a reference to a bool. It just returns a little proxy object that acts like a reference. This is because there are no references to single bits and vector<bool> actually stores the bools in a compressed way. So by using auto you just created a copy of that reference-like object. The problem is that C++ does not know that this object acts as a reference. You have to force the "decay to a value" here by replacing auto with T.

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I've done some edits to this post to just format some text like "auto" as code. – Mr.C64 Jan 30 '13 at 12:24

vector<bool> is a hideous abomination and special. The Committee specialized it to pack bits, therefore it does not support proper reference semantics, as you cannot refer to a bit, this means that it has a non-conforming interface and does not actually qualify as a Standard Container. The solution that most people use is simply to never, ever, use vector<bool>.

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As noted in this blog post (pointed by @JonathanWakely), having an array of bits data structure can be good. Probably the choice of the name vector<bool> is not good, if the "public interface" is kind of different than usual vector<T>. – Mr.C64 Jan 30 '13 at 12:30
It's very bad to specialize a container like this. There should be dynamic_bitset. – Puppy Jan 30 '13 at 12:41
@DeadMG there is, in Boost. – TemplateRex Jan 30 '13 at 13:04
vector<char> or similar is a decent alternative – Inverse Feb 5 '13 at 19:24
I would prefer deque<bool>, meets all I need - also supports [], dynamic, compatible with old C++ compiler, a real STL container – Deqing Jun 20 '14 at 2:58

operator[] returns a T& for every value of T except for bool, where it gives a reference proxy. See this old column by Herb Sutter on why using vector<bool> in generic code is bad idea (and why it is not even a container). There is also a special Item about it in Effective STL by Scott Meyers, and tons of questions on it here at SO.

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