12

I have a map with a (fairly) simple key-type and a complex mapped-type, like so:

map<string, vector<string>> myMap;

If I have a vector<string> in hand, is it possible to insert an entry into the map which copies the key but moves the mapped-value? That is, is there some way to do:

string key = "Key";
vector<string> mapped;
for (int i = 0; i < 1000; ++i)
  mapped.push_back("Some dynamic string");

// Insert by moving mapped; I know I'm done with it
myMap.insert(make_pair(key, move(mapped))); // This seems to move key too
  • The question is, where are you going to move your mapped type to? It won't exist in the map unless you have previously created it there. – Tony The Lion Jan 29 '13 at 11:08
  • Just use pointer as map value maybe easier? – billz Jan 29 '13 at 11:11
  • @TonyTheLion - vector has a move-constructor, right? I'd like the pair<string, vector> in the map to have its vector part constructed by move. – Chowlett Jan 29 '13 at 11:12
  • @billz - what, and cope with the memory alloc-dealloc manually? No thanks. I'll be referring to myMap long after mapped is out of scope. – Chowlett Jan 29 '13 at 11:13
  • map<string,unique_ptr<vector<string>>> myMap, you don't need to alloc-dealloc manually – billz Jan 29 '13 at 11:13
20

You are looking for std::map::emplace:

myMap.emplace(key, move(mapped));

this calls the appropiate std::pair constructor in-place:

template< class U1, class U2 >
pair( U1&& x, U2&& y );

Since the first argument is an l-value, the key gets copied, but the second (mapped) is an rvalue and thus gets move-constructed.

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