Brackets Sequence

Time Limit: 1000MS		Memory Limit: 65536K
Total Submissions: 35049		Accepted: 10139		Special Judge

Let us define a regular brackets sequence in the following way:

1. Empty sequence is a regular sequence. 
2. If S is a regular sequence, then (S) and [S] are both regular sequences. 
3. If A and B are regular sequences, then AB is a regular sequence.

For example, all of the following sequences of characters are regular brackets sequences:

(), [], (()), ([]), ()[], ()[()]

And all of the following character sequences are not:

(, [, ), )(, ([)], ([(]

Some sequence of characters '(', ')', '[', and ']' is given. You are to find the shortest possible regular brackets sequence, that contains the given character sequence as a subsequence. Here, a string a1 a2 ... an is called a subsequence of the string b1 b2 ... bm, if there exist such indices 1 = i1 < i2 < ... < in = m, that aj = bij for all 1 = j = n.

The input file contains at most 100 brackets (characters '(', ')', '[' and ']') that are situated on a single line without any other characters among them.

Write to the output file a single line that contains some regular brackets sequence that has the minimal possible length and contains the given sequence as a subsequence.

([(]

()[()]

题意：用最少的括号，补全答案。

看完题目第一想法可能是，不停地往读入的字符串中插入括号，但这样很难判断哪些是已有的匹配括号。

所以我们可以用一个二维数组pos记录片段，用dp记录区域间最少的的需要补全的括号。

初始化dp[i][i]为1，然后更新dp时顺便更新pos。
然后按pos更新。

注：这题目不知道什么鬼，最后需要输出一个 '\n',否则wa。

#include <iostream>

#include <cstring>

#include <cstdio>

#include <cstring>

#include <algorithm>

#include <cmath>

#include <string>

#include <map>

#include <stack>

#include <vector>

#include <set>

#include <queue>

#define INF 0x3f3f3f3f

typedef long long ll;

using namespace std;

const int N=;

char s[N];

int dp[N][N],pos[N][N];

bool march(char a,char b)

{

      if(a=='('&&b==')'||a=='['&&b==']')

            return true;

      else

            return false;

}

void print(int i,int e)

{

      if(i>e)

            return;

      else if(i==e)

      {

            if(s[i]=='('||s[i]==')')

                  printf("()");

            else if(s[i]=='['||s[i]==']')

                  printf("[]");

      }

      else if(pos[i][e]==-)

      {

            printf("%c",s[i]);

            print(i+,e-);

            printf("%c",s[e]);

      }

      else

      {

            print(i,pos[i][e]);

            print(pos[i][e]+,e);

      }

}

int main()

{

    //  freopen("input.txt","r",stdin);

      gets(s);

   //   cin>>s;

      int len=strlen(s);

      memset(dp,,sizeof dp);

      memset(pos,,sizeof pos);

      for(int i=;i<len;i++)

      {

            dp[i][i]=;

      }

      for(int l=;l<len;l++)

      {

            for(int i=;l+i<len;i++)

            {

                  int e=l+i;

                  dp[i][e] = 0x7fffffff;

                  if(march(s[i],s[e]))

                  {

                        dp[i][e]=dp[i+][e-];

                        pos[i][e]=-;

//                        cout<<"匹配:"<<i<<' '<<e<<' '<<dp[i][e]<<endl;

                  }

                  for(int j=i;j<e;j++)

                  {

                        if(dp[i][e]>dp[i][j]+dp[j+][e])

                        {

                              dp[i][e]=dp[i][j]+dp[j+][e];

                              pos[i][e]=j;

          //                    cout<<i<<' '<<e<<' '<<dp[i][e]<<endl;

                        }

                  }

            }

      }

      print(,len-);

      printf("\n");

}