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The std::atomic is totally fine to be stored as a value in std::unordered_map regardless of the question "what it means to allow a copy of atomic", it even can be stored in std::pair in the value.

But when it comes to store a structure which contains std::atomic the compiler comes with hard to understand error messages.

The code

Here is the demo

#include <atomic>
#include <string>
#include <unordered_map>

struct LexemData {
    unsigned int id{};
    std::atomic<size_t> counter{};
};

std::unordered_map<std::string, std::atomic<size_t>> dict1;

std::unordered_map<std::string, std::pair<unsigned int, std::atomic<size_t>>> dict2;

std::unordered_map<std::string, LexemData> dict3;


int main()
{
    std::string lexem("lexem");
    
    dict2.insert({ lexem, std::make_pair(0, 0) });

    dict2.insert({ lexem, {0, 0} }); // This doesn't compile (1)

    dict3.insert({ lexem, LexemData {0,0} });  // This doesn't compile (2)
}

What makes both cases above so different from pure std::atomic storage and storing through std::make_pair that:

  1. inserting with initialization list doesn't work
  2. inserting of the structure object doesn't work

I guess the question "what it means to allow a copy of atomic" can be equally addressed to all approaches here.

What can be done to make them working?

I am especially interested in the second case, I feel that I miss some kind of operator or way to return a reference instead of object to be provided, but I can't see it.

The error messages are too verbose to be put here; if somebody knows how to do it, please edit the question so that I could learn.

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    That's what emplace is for. Note that emplace is less efficient than insert if the element is already in the map, since it always has to allocate a new node, even if it has to destroy it afterwards when it finds a duplicate. But in cases like this, where you have non-moveable types, it's your only option. And if an insert truly takes place, it is the most efficient option
    – Homer512
    Feb 12 at 14:39
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    You can use a emplace with std::piecewise_construct when you need construct an element in-place with no copy or move of the element whatsoever. godbolt.org/z/dzrGo4hva Feb 12 at 14:41
  • @Homer512, thank you so much for the clue! Regarding efficiency, wouldn't try_emplace solve this problem? Feb 12 at 16:31
  • @FrançoisAndrieux, thank you so much for both pinpoints. Would it be different from dict3.try_emplace(lexem,0,0); in terms of construction godbolt.org/z/7W3eqbKn7? I see it is much better if the element is already exist, but I am in two minds if in C++17 implementation it covers the construction issues, as well. Feb 12 at 16:42
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    You're right, try_emplace solves the issue. Forgot about that
    – Homer512
    Feb 12 at 17:06

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