LeetCode 32 Longest Valid Parentheses (C,C++,Java,Python)

Problem:

Given a string containing just the characters '(' and ')', find the length of the longest valid (well-formed) parentheses substring.

For "(()", the longest valid parentheses substring is "()", which has length = 2.

Another example is ")()())", where the longest valid parentheses substring is "()()", which has length = 4.

Solution:

维持一个字符栈和位置栈,字符栈记录没有匹配的字符,位置栈记录每一个入栈的字符的位置,如果入栈的是右括号,并且栈顶为左括号,则退栈,求出当前连续退栈的字符长度,求出这个最大值就是。

题目大意:

给一个字符串,只包含左括号和右括号,求出这个字符串合法括号的最大长度。

Java源代码(350ms):

public class Solution {
    public int longestValidParentheses(String s) {
        int len=s.length(),max=0;
        Stack str_stack = new Stack();
        Stack pos_stack = new Stack();
        char[] str=s.toCharArray();
        for(int i=0;i0 && str_stack.peek().equals('(')){
                    str_stack.pop();
                    pos_stack.pop();
                    int tmp=pos_stack.size()==0?i+1:i-pos_stack.peek();
                    max=Math.max(max,tmp);
                }else{
                    str_stack.push(')');
                    pos_stack.push(i);
                }
            }
        }
        return max;
    }
}

C语言源代码(3ms):

int longestValidParentheses(char* s) {
    int len=strlen(s),max=0,top=0,i,tmp;
    int* pos_stack=(int*)malloc(sizeof(int)*len);
    char* str_stack=(char*)malloc(sizeof(char)*len);
    for(i=0;s[i];i++){
        if(s[i]=='('){
            str_stack[top]='(';
            pos_stack[top]=i;
            top++;
        }else{
            if(str_stack[top-1]=='('){
                top--;
                if(top==0)tmp=i+1;
                else tmp=i-pos_stack[top-1];
                max=max>tmp?max:tmp;
            }else{
                str_stack[top]=')';
                pos_stack[top]=i;
                top++;
            }
        }
    }
    return max;
}

C++源代码(7ms):

class Solution {
public:
    int longestValidParentheses(string s) {
        int max=0,top=0,len=s.size();
        int* pos_stack=(int*)malloc(sizeof(int)*len);
        char* str_stack=(char*)malloc(sizeof(char)*len);
        for(int i=0;itmp?max:tmp;
                }else{
                    str_stack[top]=')';
                    pos_stack[top]=i;
                    top++;
                }
            }
        }
        return max;
    }
};

Python源代码(105ms):

class Solution:
    # @param {string} s
    # @return {integer}
    def longestValidParentheses(self, s):
        length=len(s);top=0;Max=0
        str_stack=[' ' for i in range(length)]
        pos_stack=[0 for i in range(length)]
        for i in range(length):
            if s[i]=='(':
                str_stack[top]='('
                pos_stack[top]=i
                top+=1
            else:
                if top>0 and str_stack[top-1]=='(':
                    top-=1
                    tmp=i+1 if top==0 else i-pos_stack[top-1]
                    Max=Max if Max>tmp else tmp
                else:
                    str_stack[top]=')'
                    pos_stack[top]=i
                    top+=1
        return Max


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