二叉树中何为某一值的路径实现

根据《剑指Offer——名企面试官精讲典型编程题》上的讲解，实现代码如下：

#include<iostream>#include<stdio.h>#include<stdlib.h>#include<vector>using namespace std;//二叉树结点typedef struct BiTNode{//数据int data;//左右孩子指针struct BiTNode *lchild,*rchild;}BiTNode,*BiTree;//按先序序列创建二叉树int CreateBiTree(BiTree &T){int data;//按先序次序输入二叉树中结点的值（一个字符），‘#’表示空树scanf("%d",&data);if(data == -1){T = NULL;}else{T = (BiTree)malloc(sizeof(BiTNode));//生成根结点T->data = data;//构造左子树CreateBiTree(T->lchild);//构造右子树CreateBiTree(T->rchild);}return 0;}void FindPath(BiTNode* pRoot, int expectedSum, std::vector<int>& path, int& currentSum);void FindPath(BiTNode* pRoot, int expectedSum){    if(pRoot == NULL)        return;    std::vector<int> path;    int currentSum = 0;    FindPath(pRoot, expectedSum, path, currentSum);}void FindPath(BiTNode* pRoot, int expectedSum, std::vector<int>& path, int& currentSum){    currentSum += pRoot->data;    path.push_back(pRoot->data);    // 如果是叶结点，并且路径上结点的和等于输入的值    // 打印出这条路径    bool isLeaf = pRoot->lchild == NULL && pRoot->rchild == NULL;    if(currentSum == expectedSum && isLeaf)    {        printf("A path is found: ");        std::vector<int>::iterator iter = path.begin();//选择vector而不用stack的原因        for(; iter != path.end(); ++ iter)            printf("%d\t", *iter);                printf("\n");    }    // 如果不是叶结点，则遍历它的子结点    if(pRoot->lchild != NULL)        FindPath(pRoot->lchild, expectedSum, path, currentSum);    if(pRoot->rchild != NULL)        FindPath(pRoot->rchild, expectedSum, path, currentSum);    // 在返回到父结点之前，在路径上删除当前结点，    // 并在currentSum中减去当前结点的值    currentSum -= pRoot->data;    path.pop_back();} int main(){BiTree T;CreateBiTree(T);FindPath(T, 22);return 0;}