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I have to store std::map as value in std::map

std::map< std::string, std::map<std::string, std::string> > someStorage;

How to insert into second(inner) map? I tried with:

someStorage.insert( std::make_pair("key", std::make_pair("key2", "value2")) );

But this throws a lot of errors. What's wrong?

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3 Answers 3

up vote 11 down vote accepted

Try:

std::map< std::string, std::map<std::string, std::string> > someStorage;

someStorage["Hi"]["This Is Layer Two"] = "Value";
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2  
That is needlessly EXPENSIVE as it creates a default string then reassigns it to the value passed in. Best approach is how Dark Falcon has done it: stackoverflow.com/questions/4479017/storing-std-map-in-map/… - I think you're getting voted-up these days only because of your accrued points and not the quality of your answers. I wish people would take the time to read/think about your answers. –  Matthieu N. Dec 18 '10 at 17:22
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I like my answer because it is the easiest to read. Expense is rarely a factor, maintainability is a real cost. This code is the easiest to maintain. PS. Also copying a string is about as expensive as copying a couple of integers (as most std::string implementations uses a copy on write approach and thus the string is not actually copied). –  Loki Astari Dec 18 '10 at 18:04
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@Oxsnarder: What is the cost of creating a default string and then assigning a char const* to it ? The default std::string probably performance no memory allocation (if yours does, shoot off your library provider), and then there is std::string& std::string::operator=(char const*), and of course if the string already exists, then you avoid building a temporary std::string that won't get inserted anyway... I think that you're being needlessly snappy these days. –  Matthieu M. Dec 18 '10 at 18:10
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I'm not particularly interested in the fight going on here -- but bear in mind that your answer above is not semantically equivalent to insert in that it will overwrite a value which is already there whereas insert will not. Which is preferable depends on context, of course -- but the original question in this case does seem to ask for insert. –  Stuart Golodetz Dec 18 '10 at 20:39
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@Gracchus: The performance hit was negligible at best with C++03. With C++11 and move semantics its even less relvant. The thing you need to think about now is weather to use std::map or std::unordered_map. –  Loki Astari May 27 at 3:19
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someStorage["key"].insert(std::make_pair("key2", "value2")));

If you still wanted to use insert on the outer map as well, here is one way to do it

std::map<std::string, std::string> inner;
inner.insert(std::make_pair("key2", "value2"));
someStorage.insert(std::make_pair("key", inner));
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That alone won't cut it. Where is the map in the value created? –  TToni Dec 18 '10 at 16:55
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You do realize that someStorage["key"] does an insert if required, using a default-initialized value? (in other words, an empty map is associated with the key if the key does not exist) –  Dark Falcon Dec 18 '10 at 16:57
    
You should not use make_pair. You are assuming that the implementation uses pair. Use std::map<Key, Value>::value_type it is typedefed for exactly that reason. –  Loki Astari Dec 18 '10 at 18:22
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On the contrary: The C++0x standard says: "For a map<Key,T> the key_type is Key and the value_type is pair<const Key,T>." (23.4.1.2) –  Dark Falcon Dec 18 '10 at 19:42
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@Martin: The bit he quoted is in essence a specific guarantee from the standard that the two are equivalent. In other words, make_pair is always guaranteed to work here (and for what it's worth, it's the idiomatic usage when doing an insert in my experience). –  Stuart Golodetz Dec 19 '10 at 12:53
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A map has a insert method that accepts a key/value pair. Your key is of type string, so that's no problem, but your value is not of type pair (which you generate) but of type map. So you either need to store a complete map as your value or you change the initial map definition to accept a pair as value.

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