类型定义
在多叉树中,兄弟遍历迭代器有只读、读写、只读反转、读写反转4种,在mtree容器中的定义如下:
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typedef sibling_iterator_impl<false,false> sibling_iterator;
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typedef sibling_iterator_impl<false,true> reverse_sibling_iterator;
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typedef sibling_iterator_impl<true,false> const_sibling_iterator;
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typedef sibling_iterator_impl<true,true> const_reverse_sibling_iterator;
接口定义 多叉树的兄弟遍历是指访问给定结点的所有兄弟(包括它自己),下面代码是兄弟遍历迭代器的声明:
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template<bool is_const,bool is_reverse>
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class sibling_iterator_impl : public iterator_base_impl<is_const>
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{
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friend class mtree<T,false>;
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typedef iterator_base_impl<is_const> base_type;
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typedef typename base_type::node_pointer_type node_pointer_type;
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typedef typename base_type::tree_pointer_type tree_pointer_type;
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using base_type::tree_;
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using base_type::off_;
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using base_type::root_;
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public:
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sibling_iterator_impl();
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sibling_iterator_impl(const base_type& iter);
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sibling_iterator_impl& operator++();
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sibling_iterator_impl& operator--();
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sibling_iterator_impl operator++(int);
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sibling_iterator_impl operator--(int);
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sibling_iterator_impl operator + (size_t off);
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sibling_iterator_impl& operator += (size_t off);
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sibling_iterator_impl operator - (size_t off);
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sibling_iterator_impl& operator -= (size_t off);
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sibling_iterator_impl begin() const;
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sibling_iterator_impl end() const;
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protected:
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void first(no_reverse_tag);
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void first(reverse_tag);
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void last(no_reverse_tag);
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void last(reverse_tag);
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void increment(no_reverse_tag);
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void increment(reverse_tag);
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void decrement(no_reverse_tag);
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void decrement(reverse_tag);
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private:
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void forward_first();
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void forward_last();
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void forward_next();
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void forward_prev();
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};
接口实现 下面重点讲述兄弟遍历中4种定位方法的具体实现,随后列出其它所有方法的实现代码。 (1)forward_first:求正向第一个兄弟,就是其父结点的第一个孩子,代码如下:
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template<typename T>
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template<bool is_const,bool is_reverse>
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inline void mtree<T,false>::sibling_iterator_impl<is_const,is_reverse>::forward_first()
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{
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node_pointer_type p_node = &(*tree_)[root_];
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off_ = root_ + p_node->first_child_;
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} (2)forward_last:求正向最后一个兄弟,就是其父结点的最后一个孩子,代码如下:
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template<typename T>
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template<bool is_const,bool is_reverse>
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inline void mtree<T,false>::sibling_iterator_impl<is_const,is_reverse>::forward_last()
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{
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node_pointer_type p_node = &(*tree_)[root_];
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off_ = root_ + p_node->last_child_;
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} (3)forward_next:求正向下一个兄弟,如果当前结点存在右兄弟,那么就是它的右兄弟,否则返回end,代码如下:
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template<typename T>
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template<bool is_const,bool is_reverse>
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inline void mtree<T,false>::sibling_iterator_impl<is_const,is_reverse>::forward_next()
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{
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node_pointer_type p_node = &(*tree_)[off_];
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p_node->next_sibling_ ? off_ += p_node->next_sibling_ : off_ = tree_->size();
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} (4)forward_prev:求正向前一个结点,如果当前结点存在左兄弟,那么就是它的左兄弟,否则返回end,代码如下:
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template<typename T>
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template<bool is_const,bool is_reverse>
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inline void mtree<T,false>::sibling_iterator_impl<is_const,is_reverse>::forward_prev()
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{
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node_pointer_type p_node = &(*tree_)[off_];
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p_node->prev_sibling_ ? off_ -= p_node->prev_sibling_ : off_ = tree_->size();
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} (5)构造函数的实现,代码如下:
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template<typename T>
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template<bool is_const,bool is_reverse>
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inline mtree<T,false>::sibling_iterator_impl<is_const,is_reverse>::sibling_iterator_impl()
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:base_type()
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{
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}
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template<typename T>
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template<bool is_const,bool is_reverse>
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inline mtree<T,false>::sibling_iterator_impl<is_const,is_reverse>::sibling_iterator_impl(const base_type& iter)
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:base_type(iter)
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{
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if (!iter.is_null())
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{
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node_pointer_type p_node = &(*tree_)[off_];
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p_node->parent_ ? root_ = off_ - p_node->parent_: root_ = tree_->size();
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}
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} 在上面有参构造函数中,如果结点非空,会计算保存其父结点的偏移量,存于成员变量root_中,如果不存在父结点(当为根结点时),root_等于size()。
(6)公有方法的实现,代码如下:
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template<typename T>
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template<bool is_const,bool is_reverse>
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inline typename mtree<T,false>::template sibling_iterator_impl<is_const,is_reverse>&
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mtree<T,false>::sibling_iterator_impl<is_const,is_reverse>::operator++()
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{
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increment(typename reverse_trait<is_reverse>::type());
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return *this;
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}
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template<typename T>
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template<bool is_const,bool is_reverse>
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inline typename mtree<T,false>::template sibling_iterator_impl<is_const,is_reverse>&
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mtree<T,false>::sibling_iterator_impl<is_const,is_reverse>::operator--()
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{
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decrement(typename reverse_trait<is_reverse>::type());
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return *this;
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}
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template<typename T>
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template<bool is_const,bool is_reverse>
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inline typename mtree<T,false>::template sibling_iterator_impl<is_const,is_reverse>
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mtree<T,false>::sibling_iterator_impl<is_const,is_reverse>::operator++(int)
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{
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sibling_iterator_impl<is_const,is_reverse> iter(*this);
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++(*this);
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return iter;
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}
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template<typename T>
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template<bool is_const,bool is_reverse>
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inline typename mtree<T,false>::template sibling_iterator_impl<is_const,is_reverse>
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mtree<T,false>::sibling_iterator_impl<is_const,is_reverse>::operator--(int)
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{
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sibling_iterator_impl<is_const,is_reverse> iter(*this);
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--(*this);
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return iter;
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}
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template<typename T>
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template<bool is_const,bool is_reverse>
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inline typename mtree<T,false>::template sibling_iterator_impl<is_const,is_reverse>
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mtree<T,false>::sibling_iterator_impl<is_const,is_reverse>::operator + (size_t off)
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{
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sibling_iterator_impl<is_const,is_reverse> iter(*this);
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iter += off;
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return iter;
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}
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template<typename T>
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template<bool is_const,bool is_reverse>
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inline typename mtree<T,false>::template sibling_iterator_impl<is_const,is_reverse>&
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mtree<T,false>::sibling_iterator_impl<is_const,is_reverse>::operator += (size_t off)
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{
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while (off)
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{
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if (base_type::is_null()) break;
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++(*this); --off;
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}
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return *this;
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}
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template<typename T>
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template<bool is_const,bool is_reverse>
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inline typename mtree<T,false>::template sibling_iterator_impl<is_const,is_reverse>
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mtree<T,false>::sibling_iterator_impl<is_const,is_reverse>::operator - (size_t off)
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{
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sibling_iterator_impl<is_const,is_reverse> iter(*this);
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iter -= off;
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return iter;
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}
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template<typename T>
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template<bool is_const,bool is_reverse>
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inline typename mtree<T,false>::template sibling_iterator_impl<is_const,is_reverse>&
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mtree<T,false>::sibling_iterator_impl<is_const,is_reverse>::operator -= (size_t off)
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{
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while (off)
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{
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if (base_type::is_null()) break;
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--(*this); --off;
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}
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return *this;
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}
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template<typename T>
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template<bool is_const,bool is_reverse>
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inline typename mtree<T,false>::template sibling_iterator_impl<is_const,is_reverse>
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mtree<T,false>::sibling_iterator_impl<is_const,is_reverse>::begin() const
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{
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sibling_iterator_impl<is_const,is_reverse> iter(*this);
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iter.first(typename reverse_trait<is_reverse>::type());
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return iter;
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}
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template<typename T>
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template<bool is_const,bool is_reverse>
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inline typename mtree<T,false>::template sibling_iterator_impl<is_const,is_reverse>
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mtree<T,false>::sibling_iterator_impl<is_const,is_reverse>::end() const
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{
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sibling_iterator_impl<is_const,is_reverse> iter(*this);
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if (tree_)
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{
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iter.off_ = tree_->size();
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}
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return iter;
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}
使用示例 (1)正向遍历某结点的兄弟,代码如下:
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mtree<int,false>::iterator_base node;
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mtree<int,false>::sibling_iterator it = node;
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mtree<int,false>::sibling_iterator last = --it.end();
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for (it = it.begin();it!=it.end();++it)
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{
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cout << *it;
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if (it!=last)
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cout <<" ";
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}
(2)反向遍历某结点的兄弟,代码如下:
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mtree<int,false>::iterator_base node;
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mtree<int,false>::reverse_sibling_iterator r_it = node;
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mtree<int,false>::reverse_sibling_iterator r_last = --r_it.end();
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for (r_it = r_it.begin();r_it!=r_it.end();++r_it)
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{
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cout << *r_it;
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if (r_it!=r_last)
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cout <<" ";
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}
posted on 2011-08-20 21:06
春秋十二月 阅读(1714)
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