11

I must find a efficient solution for this problem. I have two map. I must move some elements from map1 to map2 (namely erase from map1 and put into map2). I have the keys through which I find the elements in map1 namely i'm doing for now:

bool temp;
temp = map1[key1];
map2[key1]=temp;
map1.erase(key1)

I do it for each key(in a loop)

My question is if there is a less expensive solution of my (I use C++11 compiler)

17
  • well the fastest way to find an entry in a map is by using its key. What exactly are you trying to make more efficient here? Why do you need map2 at all in the first place?
    – pcodex
    Feb 22, 2016 at 1:04
  • @Prab: Moving data between containers is hardly an unusual thing to do! Feb 22, 2016 at 1:06
  • @PreferenceBean I didn't say it was unusual. I was only asking the rationale behind the OP's design
    – pcodex
    Feb 22, 2016 at 1:07
  • If you have some criterion to decide where an element should go, I suspect you could build the two maps beforehand, without even building this to-be-split map.
    – kuroi neko
    Feb 22, 2016 at 1:10
  • @Prab: I didn't say you said it was unusual. Feb 22, 2016 at 1:11

7 Answers 7

15

The ideal solution has only become possible with C++17: map::extract()

Std::map is typically implemented as a binary tree, and a binary tree stores one key-value entry per memory object. That makes it possible to move an entry by simply exchanging the ownership of that piece of memory. This is done by just flipping some internal pointers (including rebalancing the two trees, which has to be done anyway if the end result is to have changed both trees).

This avoids not only moving the object around in memory, but any memory allocation and deallocation (which has unpredictable worst case performance).

Example:

// Before Darwin, it was thought that whales were fish.
std::map<int, std::string> fish{{1,"whaleshark"}, {2,"whale"}, {3,"shark"}};
std::map<int, std::string> mammalia{{1,"cat"}, {2,"dog"}};

// Oops, the whale belongs to mammalia.
auto whale = fish.extract(2);
whale.key() = 3;
mammalia.insert(std::move(whale));

Before C++17, you had to implement your own map in order to do this.

3
  • How does one actually get the value of the node returned from extract? Something along the lines of std::string whale = std::move(fish.extract(2));.
    – glinka
    Apr 26 at 15:23
  • 2
    @glinka based on the docs for node_handle you should be able to do std::string whale = std::move(fish.extract(2).mapped());
    – BCS
    May 1 at 4:20
  • Perfect, appreciate it. I have yet to ascend to the levels of C++ that grant any useful parsing of STL docs beyond the individual written words.
    – glinka
    May 3 at 22:22
1

std::map documentation : http://www.cplusplus.com/reference/map/map/

for (auto key : keys) // keys of elements to move
{
    try {
        map2[key] = std::move(map1.at(key)); // here is the C++ 11 optimization you looked for
        map1.erase(key);
    }

    // handle error if map1 does not store any element with current key
    catch (std::out_of_range & ex) {
        // TODO handle error
    }
}
2
  • Upvoted for moving, although construction + assignment through use of indexing notation, is clear instead of efficient (the question is about efficiency). Feb 22, 2016 at 1:31
  • @RCYR Thank you. I will use this solution although I have not 100% clear what makes move (If I understand it avoids the unnecessary copies)
    – Nick
    Feb 22, 2016 at 11:36
1

you can do this with std::map's extract function come with c++17.

here is the explanation and examples https://en.cppreference.com/w/cpp/container/map/extract

1
  • Welcome to SO. While the link you provided may be helpful, link-only answers are discouraged for various reasons. Please edit to include the relevant information directly in your answer and add some context and explanation. You can find more information on how to write good answers in the help center.
    – YurkoFlisk
    Oct 3, 2022 at 7:38
0

Well your temporary variable is pointless; just write:

map2[key1] = map1[key1];
map1.erase(key1);

… though your compiler was already likely to make that "optimisation" for you.

Concerning the value itself, a bool is already about as atomic as it gets — there are no magic tricks that can make copying one any faster.

You can (as long as map1[key1] assuredly already exists) is to eliminate one of the map lookups and a zero-initialisation:

auto it = map1.find(key1);
assert(it != map1.end());

map2.insert(std::make_pair(key1, it->second));
map1.erase(it);

But look how less expressive this is! Don't do it unless you really have a performance problem.

0

Insert the entire map through iterators, and then clear the original.

map2.insert(map1.begin(), map1.end());
map1.clear();
0

If the value_type has a default constructor, there's a good thing in the STL named std::swap that you don't need C++11 move semantic.

std::swap(map1[key], map2[key]);
map1.erase(key);

In your case, I think it's find just to copy the bool value. But if what slows your program is copying the key_type I'm afraid there seems no way but to use both maps without moving entries between them, because the key_type is always const qualified so that not movable.

0

Based on @RCYR's answer, I would propose the following:

auto& itToRemove = map1.find(key); //perform the search in map1 only once
map2.emplace( key, std::move(itToRemove->second); //map2 entry is init with the map1 one without default initialization
map1.erase(itToRemove ); //go straight to the map1 entry an remove it.

Basically, I removed one search in the map for each entry deleted and a default initialization of the map2 entry.

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