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I'm a little bit scared about something like this:

std::map<DWORD, DWORD> tmap;
  tmap[0]+=1;
  tmap[0]+=1;
  tmap[0]+=1;

Since DWORD's are not automatically initialized, I'm always afraid of tmap[0] being a random number that is incremented. How does the map know hot to initialize a DWORD if the runtime does not know how to do it?

Is it guaranteed, that the result is always tmap[0] == 3?

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When you are using non-standard types, like DWORD, it is better to describe what they really are, even if you think that "everyone should know that". –  AndreyT May 7 '10 at 8:55
1  
Not very related, but I really hate that ´operator[]´ inserts objects inte to the map, I'd prefer the same behaviour as trying to acces an out of range element in a ´std::vector´ –  Viktor Sehr May 7 '10 at 8:56
    
@Viktor: Undefined? –  Dennis Zickefoose May 7 '10 at 9:17
1  
operator[] doesn't really "update or insert." It "gets and maybe inserts." –  Dennis Zickefoose May 7 '10 at 10:24
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@UncleBens; and thats how I want people to use it. –  Viktor Sehr May 9 '10 at 21:10
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3 Answers 3

up vote 3 down vote accepted

The new object, when inserted into the map by [] operator, is value-initialized. It is ensured by the map implementation, i.e. it is done "automatically" in that sense. For objects of type DWORD (assuming it is a scalar type), value-initialization means zero-initialization.

By definition given in 23.3.1.2, operator [] is a shorthand for

(*((insert(make_pair(x, T()))).first)).second

The T() bit is the new object, which will turn into DWORD() in your case. DWORD() is guaranteed to be zero.

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I was really not aware of value-initialization existing for built-in data types. That makes my life easier! –  user331471 May 7 '10 at 9:22
    
I see. But if the default constructor of type T is expensive and the map already contains key x, then this "shorthand" is painfully ineffective! Or am I wrong?? –  user331471 May 7 '10 at 9:30
    
@thomas-gies: You are right, it will indeed be ineffective if implemented literally as shown above. I would expect a quality implementation to somehow implement equivalent functionality in a more reasonable way. –  AndreyT May 7 '10 at 9:33
    
There's not a whole lot of choices for an implementation. Given std::map<T, U> map;, the statement map[x]=y requires that U::operator=(U const&) is called on an existing U. The only reasonable way is to call it on the default-created U() –  MSalters May 7 '10 at 10:11
    
@MSalters: Yes, but Thomas was specifically talking about the situation when the key is already in the map (how it got there - doesn't matter), i.e. U part already exists. In that case the literal implementation will unconditionally pre-construct an absolutely unnecessary U(), then discover that it is not needed and destroy it. This useless construction-destruction of U() is something a quality implementation can probably avoid by running the key-already-in-the-map check first. –  AndreyT May 7 '10 at 10:20
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Yes. When a new value is inserted into a map by operator[] it is value-initialized and for built-in numeric types (DWORD is a typedef for built-in type) this means zero.

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Yes. If the key you passed to operator[] doesnot exist, then map will default construct the object and inserts it. In your case it will do DWORD() which will yield a value 0.

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