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📄 stl_multimap.h

📁 openRisc2000编译链接器等,用于i386 cygwin
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       *  This function inserts a (key, value) pair into the %multimap.       *  Contrary to a std::map the %multimap does not rely on unique keys and       *  thus multiple pairs with the same key can be inserted.       *       *  Insertion requires logarithmic time.       */      iterator      insert(const value_type& __x)      { return _M_t.insert_equal(__x); }      /**       *  @brief Inserts a std::pair into the %multimap.       *  @param  position  An iterator that serves as a hint as to where the       *                    pair should be inserted.       *  @param  x  Pair to be inserted (see std::make_pair for easy creation       *             of pairs).       *  @return An iterator that points to the inserted (key,value) pair.       *       *  This function inserts a (key, value) pair into the %multimap.       *  Contrary to a std::map the %multimap does not rely on unique keys and       *  thus multiple pairs with the same key can be inserted.       *  Note that the first parameter is only a hint and can potentially       *  improve the performance of the insertion process.  A bad hint would       *  cause no gains in efficiency.       *       *  See http://gcc.gnu.org/onlinedocs/libstdc++/23_containers/howto.html#4       *  for more on "hinting".       *       *  Insertion requires logarithmic time (if the hint is not taken).       */      iterator      insert(iterator __position, const value_type& __x)      { return _M_t.insert_equal(__position, __x); }      /**       *  @brief A template function that attemps to insert a range of elements.       *  @param  first  Iterator pointing to the start of the range to be       *                 inserted.       *  @param  last  Iterator pointing to the end of the range.       *       *  Complexity similar to that of the range constructor.       */      template <typename _InputIterator>        void        insert(_InputIterator __first, _InputIterator __last)        { _M_t.insert_equal(__first, __last); }      /**       *  @brief Erases an element from a %multimap.       *  @param  position  An iterator pointing to the element to be erased.       *       *  This function erases an element, pointed to by the given iterator,       *  from a %multimap.  Note that this function only erases the element,       *  and that if the element is itself a pointer, the pointed-to memory is       *  not touched in any way.  Managing the pointer is the user's       *  responsibilty.       */      void      erase(iterator __position)      { _M_t.erase(__position); }      /**       *  @brief Erases elements according to the provided key.       *  @param  x  Key of element to be erased.       *  @return  The number of elements erased.       *       *  This function erases all elements located by the given key from a       *  %multimap.       *  Note that this function only erases the element, and that if       *  the element is itself a pointer, the pointed-to memory is not touched       *  in any way.  Managing the pointer is the user's responsibilty.       */      size_type      erase(const key_type& __x)      { return _M_t.erase(__x); }      /**       *  @brief Erases a [first,last) range of elements from a %multimap.       *  @param  first  Iterator pointing to the start of the range to be       *                 erased.       *  @param  last  Iterator pointing to the end of the range to be erased.       *       *  This function erases a sequence of elements from a %multimap.       *  Note that this function only erases the elements, and that if       *  the elements themselves are pointers, the pointed-to memory is not       *  touched in any way.  Managing the pointer is the user's responsibilty.       */      void      erase(iterator __first, iterator __last)      { _M_t.erase(__first, __last); }      /**       *  @brief  Swaps data with another %multimap.       *  @param  x  A %multimap of the same element and allocator types.       *       *  This exchanges the elements between two multimaps in constant time.       *  (It is only swapping a pointer, an integer, and an instance of       *  the @c Compare type (which itself is often stateless and empty), so it       *  should be quite fast.)       *  Note that the global std::swap() function is specialized such that       *  std::swap(m1,m2) will feed to this function.       */      void      swap(multimap& __x)      { _M_t.swap(__x._M_t); }      /**       *  Erases all elements in a %multimap.  Note that this function only       *  erases the elements, and that if the elements themselves are pointers,       *  the pointed-to memory is not touched in any way.  Managing the pointer       *  is the user's responsibilty.       */      void      clear()      { _M_t.clear(); }      // observers      /**       *  Returns the key comparison object out of which the %multimap       *  was constructed.       */      key_compare      key_comp() const      { return _M_t.key_comp(); }      /**       *  Returns a value comparison object, built from the key comparison       *  object out of which the %multimap was constructed.       */      value_compare      value_comp() const      { return value_compare(_M_t.key_comp()); }      // multimap operations      /**       *  @brief Tries to locate an element in a %multimap.       *  @param  x  Key of (key, value) pair to be located.       *  @return  Iterator pointing to sought-after element,       *           or end() if not found.       *       *  This function takes a key and tries to locate the element with which       *  the key matches.  If successful the function returns an iterator       *  pointing to the sought after %pair.  If unsuccessful it returns the       *  past-the-end ( @c end() ) iterator.       */      iterator      find(const key_type& __x)      { return _M_t.find(__x); }      /**       *  @brief Tries to locate an element in a %multimap.       *  @param  x  Key of (key, value) pair to be located.       *  @return  Read-only (constant) iterator pointing to sought-after       *           element, or end() if not found.       *       *  This function takes a key and tries to locate the element with which       *  the key matches.  If successful the function returns a constant       *  iterator pointing to the sought after %pair.  If unsuccessful it       *  returns the past-the-end ( @c end() ) iterator.       */      const_iterator      find(const key_type& __x) const      { return _M_t.find(__x); }      /**       *  @brief Finds the number of elements with given key.       *  @param  x  Key of (key, value) pairs to be located.       *  @return Number of elements with specified key.       */      size_type      count(const key_type& __x) const      { return _M_t.count(__x); }      /**       *  @brief Finds the beginning of a subsequence matching given key.       *  @param  x  Key of (key, value) pair to be located.       *  @return  Iterator pointing to first element equal to or greater       *           than key, or end().       *       *  This function returns the first element of a subsequence of elements       *  that matches the given key.  If unsuccessful it returns an iterator       *  pointing to the first element that has a greater value than given key       *  or end() if no such element exists.       */      iterator      lower_bound(const key_type& __x)      { return _M_t.lower_bound(__x); }      /**       *  @brief Finds the beginning of a subsequence matching given key.       *  @param  x  Key of (key, value) pair to be located.       *  @return  Read-only (constant) iterator pointing to first element       *           equal to or greater than key, or end().       *       *  This function returns the first element of a subsequence of elements       *  that matches the given key.  If unsuccessful the iterator will point       *  to the next greatest element or, if no such greater element exists, to       *  end().       */      const_iterator      lower_bound(const key_type& __x) const      { return _M_t.lower_bound(__x); }      /**       *  @brief Finds the end of a subsequence matching given key.       *  @param  x  Key of (key, value) pair to be located.       *  @return Iterator pointing to the first element       *          greater than key, or end().       */      iterator      upper_bound(const key_type& __x)      { return _M_t.upper_bound(__x); }      /**       *  @brief Finds the end of a subsequence matching given key.       *  @param  x  Key of (key, value) pair to be located.       *  @return  Read-only (constant) iterator pointing to first iterator       *           greater than key, or end().       */      const_iterator      upper_bound(const key_type& __x) const      { return _M_t.upper_bound(__x); }      /**       *  @brief Finds a subsequence matching given key.       *  @param  x  Key of (key, value) pairs to be located.       *  @return  Pair of iterators that possibly points to the subsequence       *           matching given key.       *       *  This function is equivalent to       *  @code       *    std::make_pair(c.lower_bound(val),       *                   c.upper_bound(val))       *  @endcode       *  (but is faster than making the calls separately).       */      pair<iterator,iterator>      equal_range(const key_type& __x)      { return _M_t.equal_range(__x); }      /**       *  @brief Finds a subsequence matching given key.       *  @param  x  Key of (key, value) pairs to be located.       *  @return  Pair of read-only (constant) iterators that possibly points       *           to the subsequence matching given key.       *       *  This function is equivalent to       *  @code       *    std::make_pair(c.lower_bound(val),       *                   c.upper_bound(val))       *  @endcode       *  (but is faster than making the calls separately).       */      pair<const_iterator,const_iterator>      equal_range(const key_type& __x) const      { return _M_t.equal_range(__x); }      template <typename _K1, typename _T1, typename _C1, typename _A1>        friend bool        operator== (const multimap<_K1,_T1,_C1,_A1>&,		    const multimap<_K1,_T1,_C1,_A1>&);      template <typename _K1, typename _T1, typename _C1, typename _A1>        friend bool        operator< (const multimap<_K1,_T1,_C1,_A1>&,		   const multimap<_K1,_T1,_C1,_A1>&);  };  /**   *  @brief  Multimap equality comparison.   *  @param  x  A %multimap.   *  @param  y  A %multimap of the same type as @a x.   *  @return  True iff the size and elements of the maps are equal.   *   *  This is an equivalence relation.  It is linear in the size of the   *  multimaps.  Multimaps are considered equivalent if their sizes are equal,   *  and if corresponding elements compare equal.  */  template <typename _Key, typename _Tp, typename _Compare, typename _Alloc>    inline bool    operator==(const multimap<_Key,_Tp,_Compare,_Alloc>& __x,               const multimap<_Key,_Tp,_Compare,_Alloc>& __y)    { return __x._M_t == __y._M_t; }  /**   *  @brief  Multimap ordering relation.   *  @param  x  A %multimap.   *  @param  y  A %multimap of the same type as @a x.   *  @return  True iff @a x is lexicographically less than @a y.   *   *  This is a total ordering relation.  It is linear in the size of the   *  multimaps.  The elements must be comparable with @c <.   *   *  See std::lexicographical_compare() for how the determination is made.  */  template <typename _Key, typename _Tp, typename _Compare, typename _Alloc>    inline bool    operator<(const multimap<_Key,_Tp,_Compare,_Alloc>& __x,              const multimap<_Key,_Tp,_Compare,_Alloc>& __y)    { return __x._M_t < __y._M_t; }  /// Based on operator==  template <typename _Key, typename _Tp, typename _Compare, typename _Alloc>    inline bool    operator!=(const multimap<_Key,_Tp,_Compare,_Alloc>& __x,               const multimap<_Key,_Tp,_Compare,_Alloc>& __y)    { return !(__x == __y); }  /// Based on operator<  template <typename _Key, typename _Tp, typename _Compare, typename _Alloc>    inline bool    operator>(const multimap<_Key,_Tp,_Compare,_Alloc>& __x,              const multimap<_Key,_Tp,_Compare,_Alloc>& __y)    { return __y < __x; }  /// Based on operator<  template <typename _Key, typename _Tp, typename _Compare, typename _Alloc>    inline bool    operator<=(const multimap<_Key,_Tp,_Compare,_Alloc>& __x,               const multimap<_Key,_Tp,_Compare,_Alloc>& __y)    { return !(__y < __x); }  /// Based on operator<  template <typename _Key, typename _Tp, typename _Compare, typename _Alloc>    inline bool    operator>=(const multimap<_Key,_Tp,_Compare,_Alloc>& __x,               const multimap<_Key,_Tp,_Compare,_Alloc>& __y)    { return !(__x < __y); }  /// See std::multimap::swap().  template <typename _Key, typename _Tp, typename _Compare, typename _Alloc>    inline void    swap(multimap<_Key,_Tp,_Compare,_Alloc>& __x,         multimap<_Key,_Tp,_Compare,_Alloc>& __y)    { __x.swap(__y); }} // namespace std#endif /* _MULTIMAP_H */

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