PAT甲级 1130. Infix Expression (25)

1130. Infix Expression (25)

时间限制
400 ms
内存限制
65536 kB
代码长度限制
16000 B
判题程序
Standard
作者
CHEN, Yue

Given a syntax tree (binary), you are supposed to output the corresponding infix expression, with parentheses reflecting the precedences of the operators.

Input Specification:

Each input file contains one test case. For each case, the first line gives a positive integer N ( <= 20 ) which is the total number of nodes in the syntax tree. Then N lines follow, each gives the information of a node (the i-th line corresponds to the i-th node) in the format:

data left_child right_child

where data is a string of no more than 10 characters, left_child and right_child are the indices of this node's left and right children, respectively. The nodes are indexed from 1 to N. The NULL link is represented by -1. The figures 1 and 2 correspond to the samples 1 and 2, respectively.

Figure 1
Figure 2

Output Specification:

For each case, print in a line the infix expression, with parentheses reflecting the precedences of the operators. Note that there must be no extra parentheses for the final expression, as is shown by the samples. There must be no space between any symbols.

Sample Input 1:
8
* 8 7
a -1 -1
* 4 1
+ 2 5
b -1 -1
d -1 -1
- -1 6
c -1 -1
Sample Output 1:
(a+b)*(c*(-d))
Sample Input 2:
8
2.35 -1 -1
* 6 1
- -1 4
% 7 8
+ 2 3
a -1 -1
str -1 -1
871 -1 -1
Sample Output 2:
(a*2.35)+(-(str%871))
——————————————————————————————
题目的意思是给出一棵树,每个节点都是将他的左孩子和右孩子进行运算,求表达式
思路:现根据题意建出二叉树,再中序遍历数输出,输出时除了根节点和叶子节点都要输出(
#include
#include
#include
#include
#include
#include
#include
#include
#include
#include
using namespace std;
#define LL long long
const int inf=0x3f3f3f3f;

struct node
{
    string s;
    int pre,l,r;
} tree[105];

int findroot(int pos)
{
    if(tree[pos].pre==-1)
        return pos;
    return findroot(tree[pos].pre);
}

void dfs(int pos,int deep)
{
    if(pos==-1)
        return;
    if(deep!=0&&(tree[pos].l!=-1||tree[pos].r!=-1))
        printf("(");
    dfs(tree[pos].l,deep+1);
    cout<>tree[i].s>>tree[i].l>>tree[i].r;
        tree[tree[i].l].pre=tree[tree[i].r].pre=i;
    }
    int root=findroot(1);
    dfs(root,0);
    return 0;
}



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