【面试题六】重建二叉树

最新推荐文章于 2021-10-27 23:33:47 发布

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最新推荐文章于 2021-10-27 23:33:47 发布

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重建二叉树

在前序遍历和中序遍历两个序列中，确定了根结点的值，进而分别找到了左右子树对应的序列；

ConstructBinaryTree.cpp:

#include <iostream>
#include "BinaryTree.h"
#include <exception>
#include <cstdio>

using namespace std;

BinaryTreeNode* ConstructCore(int* startPreorder, int* endPreorder, int* startInorder, int* endInorder);

BinaryTreeNode* Construct(int* preorder, int* inorder, int length)
{
    if(preorder == NULL || inorder == NULL || length <= 0)
        return NULL;

    return ConstructCore(preorder, preorder + length - 1,
        inorder, inorder + length - 1);
}

BinaryTreeNode* ConstructCore
(
    int* startPreorder, int* endPreorder, 
    int* startInorder, int* endInorder
)
{
    // 前序遍历序列的第一个数字是根结点的值
    int rootValue = startPreorder[0];
    BinaryTreeNode* root = new BinaryTreeNode();
    root->m_nValue = rootValue;
    root->m_pLeft = root->m_pRight = NULL;

    if(startPreorder == endPreorder)
    {
        if(startInorder == endInorder && *startPreorder == *startInorder)
            return root;
        else
            throw std::exception();
    }

    // 在中序遍历中找到根结点的值
    int* rootInorder = startInorder;
    while(rootInorder <= endInorder && *rootInorder != rootValue)
        ++ rootInorder;

    if(rootInorder == endInorder && *rootInorder != rootValue)
        throw std::exception();

    int leftLength = rootInorder - startInorder;
    int* leftPreorderEnd = startPreorder + leftLength;
    if(leftLength > 0)
    {
        // 构建左子树
        root->m_pLeft = ConstructCore(startPreorder + 1, leftPreorderEnd, 
            startInorder, rootInorder - 1);
    }
    if(leftLength < endPreorder - startPreorder)
    {
        // 构建右子树
        root->m_pRight = ConstructCore(leftPreorderEnd + 1, endPreorder,
            rootInorder + 1, endInorder);
    }

    return root;
}

// ====================测试代码====================
void Test(char* testName, int* preorder, int* inorder, int length)
{
    if(testName != NULL)
        printf("%s begins:\n", testName);

    printf("The preorder sequence is: ");
    for(int i = 0; i < length; ++ i)
        printf("%d ", preorder[i]);
    printf("\n");

    printf("The inorder sequence is: ");
    for(int i = 0; i < length; ++ i)
        printf("%d ", inorder[i]);
    printf("\n");

    try
    {
        BinaryTreeNode* root = Construct(preorder, inorder, length);
        PrintTree(root);

        DestroyTree(root);
    }
    catch(std::exception& exception)
    {
        printf("Invalid Input.\n");
    }
}

// 普通二叉树
//              1
//           /     \
//          2       3  
//         /       / \
//        4       5   6
//         \         /
//          7       8
void Test1()
{
    const int length = 8;
    int preorder[length] = {1, 2, 4, 7, 3, 5, 6, 8};
    int inorder[length] = {4, 7, 2, 1, 5, 3, 8, 6};

    Test("Test1", preorder, inorder, length);
}

// 所有结点都没有右子结点
//            1
//           / 
//          2   
//         / 
//        3 
//       /
//      4
//     /
//    5
void Test2()
{
    const int length = 5;
    int preorder[length] = {1, 2, 3, 4, 5};
    int inorder[length] = {5, 4, 3, 2, 1};

    Test("Test2", preorder, inorder, length);
}

// 所有结点都没有左子结点
//            1
//             \ 
//              2   
//               \ 
//                3 
//                 \
//                  4
//                   \
//                    5
void Test3()
{
    const int length = 5;
    int preorder[length] = {1, 2, 3, 4, 5};
    int inorder[length] = {1, 2, 3, 4, 5};

    Test("Test3", preorder, inorder, length);
}

// 树中只有一个结点
void Test4()
{
    const int length = 1;
    int preorder[length] = {1};
    int inorder[length] = {1};

    Test("Test4", preorder, inorder, length);
}

// 完全二叉树
//              1
//           /     \
//          2       3  
//         / \     / \
//        4   5   6   7
void Test5()
{
    const int length = 7;
    int preorder[length] = {1, 2, 4, 5, 3, 6, 7};
    int inorder[length] = {4, 2, 5, 1, 6, 3, 7};

    Test("Test5", preorder, inorder, length);
}

// 输入空指针
void Test6()
{
    Test("Test6", NULL, NULL, 0);
}

// 输入的两个序列不匹配
void Test7()
{
    const int length = 7;
    int preorder[length] = {1, 2, 4, 5, 3, 6, 7};
    int inorder[length] = {4, 2, 8, 1, 6, 3, 7};

    Test("Test7: for unmatched input", preorder, inorder, length);
}

int main()
{
    Test1();
    Test2();
    Test3();
    Test4();
    Test5();
    Test6();
    Test7();

    return 0;
}

BinaryTree.h:

#ifndef _BINARY_TREE_H_
#define _BINARY_TREE_H_

struct BinaryTreeNode 
{
    int                    m_nValue; 
    BinaryTreeNode*        m_pLeft;  
    BinaryTreeNode*        m_pRight; 
};

BinaryTreeNode* CreateBinaryTreeNode(int value);
void ConnectTreeNodes(BinaryTreeNode* pParent, BinaryTreeNode* pLeft, BinaryTreeNode* pRight);
void PrintTreeNode(BinaryTreeNode* pNode);
void PrintTree(BinaryTreeNode* pRoot);
void DestroyTree(BinaryTreeNode* pRoot);


#endif /*_BINARY_TREE_H_*/

BinaryTree.cpp:

#include <iostream>
#include <cstdio>
#include "BinaryTree.h"

using namespace std;
BinaryTreeNode* CreateBinaryTreeNode(int value)
{
    BinaryTreeNode* pNode = new BinaryTreeNode();
    pNode->m_nValue = value;
    pNode->m_pLeft = NULL;
    pNode->m_pRight = NULL;

    return pNode;
}

void ConnectTreeNodes(BinaryTreeNode* pParent, BinaryTreeNode* pLeft, BinaryTreeNode* pRight)
{
    if(pParent != NULL)
    {
        pParent->m_pLeft = pLeft;
        pParent->m_pRight = pRight;
    }
}

void PrintTreeNode(BinaryTreeNode* pNode)
{
    if(pNode != NULL)
    {
        printf("value of this node is: %d\n", pNode->m_nValue);

        if(pNode->m_pLeft != NULL)
            printf("value of its left child is: %d.\n", pNode->m_pLeft->m_nValue);
        else
            printf("left child is null.\n");

        if(pNode->m_pRight != NULL)
            printf("value of its right child is: %d.\n", pNode->m_pRight->m_nValue);
        else
            printf("right child is null.\n");
    }
    else
    {
        printf("this node is null.\n");
    }

    printf("\n");
}

void PrintTree(BinaryTreeNode* pRoot)
{
    PrintTreeNode(pRoot);

    if(pRoot != NULL)
    {
        if(pRoot->m_pLeft != NULL)
            PrintTree(pRoot->m_pLeft);

        if(pRoot->m_pRight != NULL)
            PrintTree(pRoot->m_pRight);
    }
}

void DestroyTree(BinaryTreeNode* pRoot)
{
    if(pRoot != NULL)
    {
        BinaryTreeNode* pLeft = pRoot->m_pLeft;
        BinaryTreeNode* pRight = pRoot->m_pRight;

        delete pRoot;
        pRoot = NULL;

        DestroyTree(pLeft);
        DestroyTree(pRight);
    }
}

Makefile:

.PHONY:clean
CPP=g++
CFLAGS=-Wall -g
BIN=test
OBJS=ConstructBinaryTree.o BinaryTree.o
LIBS=
$(BIN):$(OBJS)
	$(CPP) $(CFLAGS) $^ -o $@ $(LIBS)
%.o:%.cpp
	$(CPP) $(CFLAGS) -c $< -o $@
clean:
	rm -f *.o $(BIN)

运行结果：

Test1 begins:
The preorder sequence is: 1 2 4 7 3 5 6 8 
The inorder sequence is: 4 7 2 1 5 3 8 6 
value of this node is: 1
value of its left child is: 2.
value of its right child is: 3.

value of this node is: 2
value of its left child is: 4.
right child is null.

value of this node is: 4
left child is null.
value of its right child is: 7.

value of this node is: 7
left child is null.
right child is null.

value of this node is: 3
value of its left child is: 5.
value of its right child is: 6.

value of this node is: 5
left child is null.
right child is null.

value of this node is: 6
value of its left child is: 8.
right child is null.

value of this node is: 8
left child is null.
right child is null.

Test2 begins:
The preorder sequence is: 1 2 3 4 5 
The inorder sequence is: 5 4 3 2 1 
value of this node is: 1
value of its left child is: 2.
right child is null.

value of this node is: 2
value of its left child is: 3.
right child is null.

value of this node is: 3
value of its left child is: 4.
right child is null.

value of this node is: 4
value of its left child is: 5.
right child is null.

value of this node is: 5
left child is null.
right child is null.

Test3 begins:
The preorder sequence is: 1 2 3 4 5 
The inorder sequence is: 1 2 3 4 5 
value of this node is: 1
left child is null.
value of its right child is: 2.

value of this node is: 2
left child is null.
value of its right child is: 3.

value of this node is: 3
left child is null.
value of its right child is: 4.

value of this node is: 4
left child is null.
value of its right child is: 5.

value of this node is: 5
left child is null.
right child is null.

Test4 begins:
The preorder sequence is: 1 
The inorder sequence is: 1 
value of this node is: 1
left child is null.
right child is null.

Test5 begins:
The preorder sequence is: 1 2 4 5 3 6 7 
The inorder sequence is: 4 2 5 1 6 3 7 
value of this node is: 1
value of its left child is: 2.
value of its right child is: 3.

value of this node is: 2
value of its left child is: 4.
value of its right child is: 5.

value of this node is: 4
left child is null.
right child is null.

value of this node is: 5
left child is null.
right child is null.

value of this node is: 3
value of its left child is: 6.
value of its right child is: 7.

value of this node is: 6
left child is null.
right child is null.

value of this node is: 7
left child is null.
right child is null.

Test6 begins:
The preorder sequence is: 
The inorder sequence is: 
this node is null.

Test7: for unmatched input begins:
The preorder sequence is: 1 2 4 5 3 6 7 
The inorder sequence is: 4 2 8 1 6 3 7 
Invalid Input.