I have long assumed that for any empty std::vector V, V.begin() == V.end(). Yet I see nothing in the C++ specification that states this to always be true. Is it necessarily true or does it just happen to be true on most implementations?
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4 回答
96
Yes, that's what the standard requires it to be for empty() for any container.
§ 23.2.1 Table 96 of the C++11 standard says:
+----------+---------------+----------------------+
|Expression| Return Type | Operational Semantics|
|----------|---------------|----------------------|
|a.empty() |Convertible |a.begin() == a.end() |
| |to bool | |
| | | |
+-------------------------------------------------+
于 2013-07-22T19:53:44.183 回答
26
23.2.1 General container requirements, specifically Table 96 Container Requirements has
a.empty()convertible tobool, operational semanticsa.begin() == a.end()
Then
6
begin()returns an iterator referring to the first element in the container.end()returns an iterator which is the past-the-end value for the container. If the container is empty, thenbegin() == end();
(emphasis mine)
于 2013-07-22T19:54:03.753 回答
1
http://www.cplusplus.com/reference/vector/vector/end/
If the container is empty, end() is the same as begin().
于 2013-07-22T19:55:09.347 回答
0
Yes, that is true. Here is the proof. And, of course, std::distance(a.begin(), a.end()) == 0 for an empty vector.
于 2013-07-22T19:53:43.063 回答