这题逻辑比较难:
把左子树中最大的节点,根节点,右子树中最小的节点链接起来;
需要用pLastNodeInList来标记上一个节点
注意这里pLastNodeInList用的是BinaryTreeNode**
1 BinaryTreeNode* Convert(BinaryTreeNode* pRootOfTree) 2 { 3 BinaryTreeNode *pLastNodeInList = NULL; 4 ConvertNode(pRootOfTree, &pLastNodeInList); 5 6 // pLastNodeInList指向双向链表的尾结点, 7 // 我们需要返回头结点 8 BinaryTreeNode *pHeadOfList = pLastNodeInList; 9 while(pHeadOfList != NULL && pHeadOfList->m_pLeft != NULL) 10 pHeadOfList = pHeadOfList->m_pLeft; 11 12 return pHeadOfList; 13 } 14 15 void ConvertNode(BinaryTreeNode* pNode, BinaryTreeNode** pLastNodeInList) 16 { 17 if(pNode == NULL) 18 return; 19 20 BinaryTreeNode *pCurrent = pNode; 21 22 if (pCurrent->m_pLeft != NULL) 23 ConvertNode(pCurrent->m_pLeft, pLastNodeInList); 24 25 pCurrent->m_pLeft = *pLastNodeInList; 26 if(*pLastNodeInList != NULL) 27 (*pLastNodeInList)->m_pRight = pCurrent; 28 29 *pLastNodeInList = pCurrent; 30 31 if (pCurrent->m_pRight != NULL) 32 ConvertNode(pCurrent->m_pRight, pLastNodeInList); 33 }