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This piece of code seems work well, with default value for they value_type (int) as 0; does it work for all cases?

std::map<std::string,int> w;
for (const auto& t: str)
   w[t]++;

What about double? map? default 0.0?

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I cannot understand what you are actually asking. Can you rephrase? –  Andy Prowl Apr 23 '13 at 19:27
    
Sorry for confusion. The below answers are very helpful. –  wenfeng Apr 23 '13 at 20:40

3 Answers 3

up vote 4 down vote accepted

Yes, this code would work for any type of the key, including double. The reason this works is that the non-const operator [] returns a reference to the value at the key, not a copy of that value. It is that reference to which the ++ operator gets applied.

The code fragment that you show works as follows:

  • For each key t of type string in the str container,
  • The map w is searched for the given key
  • Since the entry is not there, a new one gets inserted into the map
  • Since the key of the entry is known, but the value is not, a default object for the value gets created
  • A reference to the newly created object (in this case, int& initialized to zero) is returned to the caller
  • The ++ operator is applied to the reference returned from the [], which changes 0 to 1 (or 0.0 to 1.0, etc.)
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Thanks for explanation! Very helpful! –  wenfeng Apr 23 '13 at 20:37
    
I see. Thanks. This is actually my first question on stackoverflow. –  wenfeng Apr 23 '13 at 21:50

Yes. When you use the []-operator on a map and no element with the desired key exists, a new element is inserted which is value-initialized. For an integer, this means initialized to zero.

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does it work for all cases?

For all cases, a new key will be associated with a value initialized to T().

When T is a built-in or Plain Old Data type, such as int or double, that evaluates to zero.

When T is a class, the map will attempt to call the empty constructor.

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If this class has a default constructor. Otherwise it will fail to compile. –  andrjas Apr 23 '13 at 19:35

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