23

Is it possible to insert the contents of a temporary std::map temp into another std::map m by using move semantics, such that the values from the temporary are not copied and are reused?

Let's say one has:

std::map<int, Data> temp;
std::map<int, Data> m;

One way of copying values from temp into m is:

m.insert(temp.begin(),temp.end());

How can I move the temp elements into m, instead of copying?

22

HINT: Read the update first!

The current C++11 standard and the C++14 draft do not provide a member function to enable this feature. As lavr suggested you can still write

m.insert(make_move_iterator(begin(temp)),
         make_move_iterator(end  (temp)));

which will move the values from the source container into the destination container. However, neither the container nodes nor the keys will be moved. This requires memory allocations (at least for the creation of the new nodes in the destination map). The number of elements in the source container will remain the same. The reason behind the copying is simple: The value type of std::map is std::pair<const Key,T>. And moving from a const Key is essentially copying the key (unless someone overloaded the Key constructor which takes a const Key &&, for which I cannot think of an adequate reason).

If you need to move data from one container to another you may consider using std::list instead of std::map. It has a member function splice which moves the elements from one list to another in constant time.

UPDATE:

Since C++17 there is the function std::map::merge() which basically puts all the elements of one std::map into another std::map without moving or copying the actual elements, but by repointing internal pointers only. It is very similar to std::list::splice() which exists since C++98.

So you may write

m.merge( temp );

to accomplish your goal. This is more efficient than copying or moving all the elements from one container to the other.

But beware! Conflicting keys won't be resolved: For coinciding keys nothing will be done.

  • 1
    While const Key will be copied when moving the pair, and while temp will keep the same number of elements, T will still be moved... so if T is a large structure with move semantics like std::vector, this still makes sense, right? – iavr Feb 12 '14 at 15:21
  • @lavr Yes, indeed. – Ralph Tandetzky Feb 12 '14 at 17:18
7

Haven't tried, but I think std::move_iterator should help here:

 using it = std::map<int, Data>::iterator;
 using mv = std::move_iterator <it>;

 m.insert(mv(temp.begin()),mv(temp.end()));
  • Whewhew.... Thanks for that from my side - didn't know these existed... – Richard Vock Feb 12 '14 at 20:45
  • i did not know either :-) – Gabriel Feb 13 '14 at 13:00
  • I'm pretty sure this won't work for reasons stated above: /Library/Developer/CommandLineTools/usr/bin/../include/c++/v1/iterator:959:14: error: cannot cast from lvalue of type 'const value_type' (aka 'const std::__1::basic_string<char>') to rvalue reference type 'reference' (aka 'std::__1::basic_string<char> &&'); types are not compatible return static_cast<reference>(*__i); ^~~~~~~~~~~~~~~~~~~~~~~~~~~~ – rossb83 Jan 10 '17 at 7:40
3

I don't think this is possible. With other containers, I would suggest the std::move_iterator adapter, but that doesn't work because the key of a map is const.

In other words, you can't move elements out one by one from a map because that might change the keys, which a map doesn't allow.

And there is no way to just bulk-move from one map to another. Lists support splicing, but I'm afraid the trees don't.

  • I dont quite understand, the underlying types is std::pair<const key_type, value_type>, why might the keys change?, I just extract the mapped_type from temp and move it to m ? – Gabriel Feb 12 '14 at 10:50
  • 2
    If you want to move from the element of a map, that's a move operation from that pair. But you can't move from something that is const. – Sebastian Redl Feb 12 '14 at 11:06

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