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The following code works fine :

std::map<int, int>& m = std::map<int, int>();
int i = m[0];

But not the following code :

// error C2678: binary '[' : no operator...
const std::map<int, int>& m = std::map<int, int>();
int i = m[0];

Most of the time, I prefer to make most of my stuff to become immutable, due to reason :

http://www.javapractices.com/topic/TopicAction.do?Id=29

I look at map source code. It has

mapped_type& operator[](const key_type& _Keyval)

Is there any reason, why std::map unable to provide

const mapped_type& operator[](const key_type& _Keyval) const
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Now that Roger Pate has set me straight on my (now deleted) incorrect answer, I find question much more interesting - why not a const version of operator[] that throws (or has undefined behavior) if the entry isn't in the map? –  Michael Burr Mar 17 '10 at 4:10
    
@Michael: I completely agree. I've never thought "well just use find and check!" was much of an answer; it's clumsier. at throws an exception in vector, why cant operator[] const throw an exception in map? –  GManNickG Mar 17 '10 at 4:26
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4 Answers

up vote 4 down vote accepted

operator[] will create the entry if it does not exist in the map. This is not possible if the operator is implemented for a const map. This is the explanation given in The C++ Programming Language:

Subscripting a map adds a default element when the key is not found. Therefore, there is no version of operator[] for const maps. Furthermore, subscripting can be used only if the mapped_type (value type) has a default value. If the programmer simply wants to see if a key is present, the find() operation (§17.4.1.6) can be used to locate a key without modifying the map.

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The reason is that std::map semantics state that if you try to access an element at a key that does not exist, the key is created with a default-constructed element. In other words m[0] will create an int at location 0 if one does not already exist. Obviously, that is not compatible with a const map.

You could say "well, make a const version of operator[] and have it not do that!", but there are two problems: the difference in semantics would be non-obvious and confusing, and it's not clear exactly what should happen if you do try to access a key that does not exist (throw an exception?).

Instead, what you should do is use the find() method on the map, which will return an iterator pointing to the key/value pair you're looking for. The lookup is exactly as efficient as operator[], it can be used on const maps (returning a const iterator in that case), and it will return the end() iterator if the key does not exist.

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I am not sure to subscribe to the confusing argument, for as demonstrated by this user it is confusing as it is too. And map.find(key)->second is not as nice as map[key] is. With all the undefined behavior already in, one more would not be that remiss :p –  Matthieu M. Mar 17 '10 at 7:49
    
As to allowing undefined behavior here, this means that with a map of unknown contents, you'd always have to check first before look-up to avoid it, which might not be a particularly smart usage pattern. –  visitor Mar 17 '10 at 11:25
    
@Matthieu I'd agree that the current behavior is not intuitive, but it's consistent and therefore not confusing once you've found out what it is. Having two versions of operator[], one of which is guaranteed to always work and the other of which may throw an exception or cause undefined behavior in some circumstances, and having the only difference be whether or not the underlying object is const, would be confusing because changing the const-ness of the variable elsewhere could drastically alter the program's behavior without causing any compile-time errors or warnings. –  Tyler McHenry Mar 17 '10 at 11:50
    
I understand your point, effectively I've always found Boost Serialization a bit annoying because the only difference between serialization and deserialization is the const-ness of the operator... –  Matthieu M. Mar 18 '10 at 7:22
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It does have an immutable version, and it's called find().

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operator[] inserts if the key is not found, therefore it cannot be a const member function.

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