• leetcode 20 Valid Parentheses 括号匹配




    Given a string containing just the characters '(', ')', '{', '}', '[' and']', determine if the input string is valid.

    The brackets must close in the correct order, "()" and "()[]{}" are all valid but "(]" and "([)]" are not.


    写了一个0ms 的代码:


    // 20150630.cpp : 定义控制台应用程序的入口点。
    //
    
    #include "stdafx.h"
    #include <iostream>
    #include <stack>
    #include <string>
    using namespace std;
    
    bool isValid(string s)
    {
    	if (s=="")return false;
    
    	stack<char> Parentheses;
    	int size =s.size();
    
    	Parentheses.push(s[0]);
    
    
    	for(int i = 1;i < size ;++i)
    	{
    
    		if(Parentheses.top()=='('&&s[i]==')'||Parentheses.top()=='['&&s[i]==']'||Parentheses.top()=='{'&&s[i]=='}')
    		{
    			Parentheses.pop();
    			if (Parentheses.empty()&&(i+1)!=size)
    			{
    				Parentheses.push(s[i+1]);
    				i++;
    			}
    		}
    
    		else
    		{
    			Parentheses.push(s[i]);
    		}
    
    
    	}
    
    	if(Parentheses.empty())
    	{
    		return true;
    	}
    	else
    	{
    		return false;
    	}
    }
    int _tmain(int argc, _TCHAR* argv[])
    {
    	string s = "()[]{}";
    	isValid(s);
    	return 0;
    }
    
    



    另外一个看着好看点的:

    class Solution {
        public:
            bool isValid(string s)
            {
                std::stack<char> openStack;
                for(int i = 0; i < s.length(); i++)
                {
                    switch(s[i])
                    {
                        case '(':
                        case '{':
                        case '[':
                            openStack.push(s[i]);
                            break;
                        case ')':
                            if(!openStack.empty() && openStack.top() == '(' )
                                openStack.pop();
                            else
                                return false;
                            break;
                        case '}':
                            if(!openStack.empty() && openStack.top() == '{' )
                                openStack.pop();
                            else
                                return false;
                            break;
                        case ']':
                            if(!openStack.empty() && openStack.top() == '[' )
                                openStack.pop();
                            else
                                return false;
                            break;
    
                        default:
                            return false;
                    }
                }
    
                if(openStack.empty())
                    return true;
                else
                    return false;
            }
        };
    



    python代码:

    class Solution:
        # @return a boolean
        def isValid(self, s):
            stack = []
            dict = {"]":"[", "}":"{", ")":"("}
            for char in s:
                if char in dict.values():
                    stack.append(char)
                elif char in dict.keys():
                    if stack == [] or dict[char] != stack.pop():
                        return False
                else:
                    return False
            return stack == []
    


    </pre><pre class="python" name="code">class Solution:
        # @param s, a string
        # @return a boolean
        def isValid(self, s):
            paren_map = {
                '(': ')',
                '{': '}',
                '[': ']'
            }
            stack = []
    
            for p in s:
                if p in paren_map:
                    stack.append(paren_map[p])
                else:
                    if not stack or stack.pop() != p:
                        return False
    
            return not stack


    class Solution:
        # @param s, a string
        # @return a boolean
        def isValid(self, s):
            d = {'(':')', '[':']','{':'}'}
            sl = []
            for i in s:
                if i in d:
                    sl.append(i)
                else:
                    if not sl or d[sl.pop()] != i:
                        return False
    
            if sl:
                return False
            return True
    


    
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  • 原文地址:https://www.cnblogs.com/wangyaning/p/7853952.html
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