码迷,mamicode.com
首页 > 编程语言 > 详细

C - Boxes in a Line 数组模拟链表

时间:2018-08-01 22:15:19      阅读:188      评论:0      收藏:0      [点我收藏+]

标签:dex   左右   rom   map   ==   lse   ber   example   lib   

You have n boxes in a line on the table numbered 1 . . . n from left to right. Your task is to simulate 4
kinds of commands:
? 1 X Y : move box X to the left to Y (ignore this if X is already the left of Y )
? 2 X Y : move box X to the right to Y (ignore this if X is already the right of Y )
? 3 X Y : swap box X and Y
? 4: reverse the whole line.
Commands are guaranteed to be valid, i.e. X will be not equal to Y .
For example, if n = 6, after executing 1 1 4, the line becomes 2 3 1 4 5 6. Then after executing
2 3 5, the line becomes 2 1 4 5 3 6. Then after executing 3 1 6, the line becomes 2 6 4 5 3 1.
Then after executing 4, then line becomes 1 3 5 4 6 2

Input

There will be at most 10 test cases. Each test case begins with a line containing 2 integers n, m
(1 ≤ n, m ≤ 100, 000). Each of the following m lines contain a command.

Output

For each test case, print the sum of numbers at odd-indexed positions. Positions are numbered 1 to n
from left to right.

Sample Input

6 4
1 1 4
2 3 5
3 1 6
4
6 3
1 1 4
2 3 5
3 1 6
100000 1
4

Sample Output

Case 1: 12
Case 2: 9
Case 3: 2500050000

四种操作,1把x移到y左边,2把x移到y右边,3交换xy,4逆转链表;

用数组模拟链表,用LEFT和RIGHT两个数组储存每一个数字左右两边的数字是什么

如果有经过一次4,那个做个标记,后面有操作1,2就要交换,1要变成2,2要变成1,3没影响,对他们的左右连接改动就好了,和链表的操作一样

吐槽一句,刘汝佳有毒啊,他书上的代码会wa,后面还是自己写出来过的

#include<iostream>
#include<stdio.h>
#include<stdlib.h>
#include <iomanip>
#include<cmath>
#include<float.h> 
#include<string.h>
#include<algorithm>
#define sf scanf
#define pf printf
#define mm(x,b) memset((x),(b),sizeof(x))
#include<vector>
#include<queue>
//#include<map>
#define rep(i,a,n) for (int i=a;i<n;i++)
#define per(i,a,n) for (int i=a;i>=n;i--)
typedef long long ll;
typedef long double ld;
typedef double db;
const ll mod=1e9+100;
const db e=exp(1);
using namespace std;
const double pi=acos(-1.0);
int n,LEFT[100010],RIGHT[100010];
void link(int x,int y)
{
    LEFT[y]=x;
    RIGHT[x]=y;
}
int main()
{
    int m,kase=0;
    while(sf("%d%d",&n,&m)!=EOF)
    {
        rep(i,1,n+1)
        {
            LEFT[i]=i-1;
            RIGHT[i]=(i+1)%(n+1);
        }
        RIGHT[0]=1;LEFT[0]=n;
        int op,x,y,temp=0;
        while(m--)
        {
            sf("%d",&op);
            if(op==4) temp=!temp;
            else
            {
                sf("%d%d",&x,&y);
                if(op==3&&RIGHT[y]==x)  swap(x,y);
                if(op!=3&&temp) op=3-op;
                int lx=LEFT[x],rx=RIGHT[x],ly=LEFT[y],ry=RIGHT[y];
                if(op==1)
                {
                    if(LEFT[y]!=x)
                    {
                        if(RIGHT[y]==x)
                        {
                            link(y,rx);link(ly,x);link(x,y);
                        }else
                        {
                            link(lx,rx);link(x,y);link(ly,x);
                        }
                    }
                }else if(op==2)
                {
                    if(RIGHT[y]!=x)
                    {
                        if(LEFT[y]==x)
                        {
                            link(lx,y);link(y,x);link(x,ry);
                        }else
                        {
                            link(lx,rx);link(y,x);link(x,ry);
                        }
                    }
                }else if(op==3)
                {
                    if(RIGHT[x]==y)
                    {
                        link(lx,y);link(y,x);link(x,ry);
                    }else if(RIGHT[y]==x)
                    {
                        link(ly,x);link(x,y);link(y,rx);
                    }else
                    {
                        link(lx,y);link(y,rx);link(ly,x);link(x,ry);
                    }
                }
            }
        }
        int b=0;
        ll ans=0;
        rep(i,1,n+1)
        {
            b=RIGHT[b];
            if(i%2==1) ans+=b;
        }
        if(temp&&n%2==0) ans=(ll)n*(n+1)/2-ans;
        pf("Case %d: %lld\n",++kase,ans);
    }
    return 0;
}

C - Boxes in a Line 数组模拟链表

标签:dex   左右   rom   map   ==   lse   ber   example   lib   

原文地址:https://www.cnblogs.com/wzl19981116/p/9403886.html

(0)
(0)
   
举报
评论 一句话评论(0
登录后才能评论!
© 2014 mamicode.com 版权所有  联系我们:gaon5@hotmail.com
迷上了代码!