Description
You are given a string consisting of parentheses () and []. A string of this type is said to be correct:
- (a)
- if it is the empty string
- (b)
- if A and B are correct, AB is correct,
- (c)
- if A is correct, (A ) and [A ] is correct.
Write a program that takes a sequence of strings of this type and check their correctness. Your program can assume that the maximum string length is 128.
Input
The file contains a positive integer n and a sequence of n strings of parentheses () and [], one string a line.
Output
A sequence of Yes or No on the output file.
Sample Input
3 ([]) (([()]))) ([()[]()])()
Sample Output
Yes No Yes
这个题的意思是看一个表达示的括号是不是平衡的,空表达示也是平衡的,平衡就输出YES,否则输出NO。
解题思路:
1.如果表达示为空,输出YES。
2.利用一个栈,表达示从左到右扫描,遇到左括号入栈,右括号出栈,如果最后线空输出YES,否则输出NO。
#include <iostream>
#include<deque>
#include<algorithm>
#include<cstdio>
#include<stack>
#include<string>
using namespace std;
char f(char c)
{
if(c==')')return '(';
if(c==']')return '[';
return 0;
}
bool judge(const string& s)
{
stack<char>st;
st.push('0');
for(int i=0;i<s.size();i++)
{
if(st.top()!=f(s[i]))
st.push(s[i]);
else st.pop();
}
return st.size()==1;
}
int main()
{
int n;
cin>>n;
string s;
getchar();
while(n--)
{
getline(cin,s);
if(s.size()==0||judge(s))cout<<"Yes"<<endl;
else cout<<"No"<<endl;
}
return 0;
}