POJ 1208 The Blocks Problem 链表
2017-09-29 11:40
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The Blocks Problem
Time Limit: 1000MS Memory Limit: 10000KTotal Submissions: 6546 Accepted: 2811
Description
Many areas of Computer Science use simple, abstract domains for both analytical and empirical studies. For example, an early AI study of planning and robotics (STRIPS) used a block world in which a robot arm performed tasks involving the manipulation of blocks.In this problem you will model a simple block world under certain rules and constraints. Rather than determine how to achieve a specified state, you will “program” a robotic arm to respond to a limited set of commands.
The problem is to parse a series of commands that instruct a robot arm in how to manipulate blocks that lie on a flat table. Initially there are n blocks on the table (numbered from 0 to n-1) with block bi adjacent to block bi+1 for all 0 <= i < n-1 as shown in the diagram below:
The valid commands for the robot arm that manipulates blocks are:
move a onto b
where a and b are block numbers, puts block a onto block b after returning any blocks that are stacked on top of blocks a and b to their initial positions.
move a over b
where a and b are block numbers, puts block a onto the top of the stack containing block b, after returning any blocks that are stacked on top of block a to their initial positions.
pile a onto b
where a and b are block numbers, moves the pile of blocks consisting of block a, and any blocks that are stacked above block a, onto block b. All blocks on top of block b are moved to their initial positions prior to the pile taking place. The blocks stacked above block a retain their order when moved.
pile a over b
where a and b are block numbers, puts the pile of blocks consisting of block a, and any blocks that are stacked above block a, onto the top of the stack containing block b. The blocks stacked above block a retain their original order when moved.
quit
terminates manipulations in the block world.
Any command in which a = b or in which a and b are in the same stack of blocks is an illegal command. All illegal commands should be ignored and should have no affect on the configuration of blocks.
Input
The input begins with an integer n on a line by itself representing the number of blocks in the block world. You may assume that 0 < n < 25.The number of blocks is followed by a sequence of block commands, one command per line. Your program should process all commands until the quit command is encountered.
You may assume that all commands will be of the form specified above. There will be no syntactically incorrect commands.
Output
The output should consist of the final state of the blocks world. Each original block position numbered i ( 0 <= i < n where n is the number of blocks) should appear followed immediately by a colon. If there is at least a block on it, the colon must be followed by one space, followed by a list of blocks that appear stacked in that position with each block number separated from other block numbers by a space. Don’t put any trailing spaces on a line.There should be one line of output for each block position (i.e., n lines of output where n is the integer on the first line of input).
Sample Input
10move 9 onto 1
move 8 over 1
move 7 over 1
move 6 over 1
pile 8 over 6
pile 8 over 5
move 2 over 1
move 4 over 9
quit
Sample Output
0: 01: 1 9 2 4
2:
3: 3
4:
5: 5 8 7 6
6:
7:
8:
9:
Source
Duke Internet Programming Contest 1990,uva 101题意:
大概意思是给定一个长度n,有0~n-1编号的箱子和位置,起始个编号的箱子放在相同编号的位置。
有一系列操作:
move a onto b,将a,b上面的箱子放回初始位置,并将a放到b箱上。
move a over b ,将a上面的箱子放回初始位置,并将a放到b箱最上方。
pile a onto b,将b上面的箱子放回初始位置,并将a和a上的箱子一起放到b箱上。
pile a over b,将a和a上的箱子一起放到b箱最上方。
要求输出最后每个位置的箱子。输出要求很严格,一个多余的空格都不能有。
题解:
我链表果然是垃圾的。
注意在将a b移动前先要判断它们能否移动。
数组:
#include<cstdio> #include<cstring> #include<iostream> #include<algorithm> #include<string> #include<ctime> using namespace std; const int N = 100000 + 10; int n; int nxt ,pre ;//pre表示上面一个,nxt表示下面一个 void in_it(){ for(int i=0;i<n;i++) nxt[i]=pre[i]=-1; } void clear(int a){ int tmp=a; while(pre[a]!=-1) { a=pre[a];pre[tmp]=-1;nxt[a]=-1; tmp=a; } } bool check(int a,int b){ int tmp=a; while(tmp!=-1){ if(tmp==b) return false; tmp=nxt[tmp]; } tmp=a; while(tmp!=-1){ if(tmp==b) return false; tmp=pre[tmp]; } return true; } int main(){ scanf("%d",&n);in_it(); string s1,s2;int a,b; while(cin>>s1&&s1!="quit"&&cin>>a>>s2>>b){ if(check(a,b)){ int tmp=nxt[a];if(tmp!=-1) pre[tmp]=-1; if(s1=="move"){ if(s2=="onto"){//将a、b上的箱子放回初始位置,将a放到b上 clear(a);clear(b); pre[b]=a,nxt[a]=b; } else { clear(a);//将a上的箱子清空 int tmp=b; while(pre[tmp]!=-1){tmp=pre[tmp];}//找到b最上面的箱子 if(nxt[a]!=-1) pre[nxt[a]]=-1;//将a下面的箱子指向空 pre[tmp]=a,nxt[a]=tmp;//将a放到b最上面 } } else if(s1=="pile"){ if(s2=="onto"){ clear(b); pre[b]=a,nxt[a]=b; } else{ int tmp=b; while(pre[tmp]!=-1) tmp=pre[tmp]; pre[tmp]=a,nxt[a]=tmp; } } } } for(int i=0;i<n;i++){ printf("%d:",i); int tmp=nxt[i]; if(tmp==-1){ tmp=i; while(pre[tmp]!=-1){ printf(" %d",tmp); tmp=pre[tmp]; } printf(" %d",tmp); } printf("\n"); } return 0; }
指针(…)基本是照搬的……
#include<cstdio> #include<cstring> #include<string> #include<iostream> #include<algorithm> using namespace std; const int N = 30; struct node{ int data; node *pre,*nxt; }blo ; int n; void in_it(){ for(int i=0;i<n;i++){ blo[i].data=i;blo[i].pre=NULL;blo[i].nxt=NULL; } } void clear(node *a){ node *tmp=a; while(a->pre!=NULL){ a=a->pre; tmp->pre=NULL,a->nxt=NULL; tmp=a; } } bool check(node *a,node *b){ node *tmp=a; while(tmp!=NULL){ if(tmp->data==b->data) return true; tmp=tmp->nxt; } tmp=a; while(tmp!=NULL){ if(tmp->data==b->data) return true; tmp=tmp->pre; } return false; } int main(){ scanf("%d",&n);in_it(); string s1,s2;int a,b; while(cin>>s1&&s1!="quit"&&cin>>a>>s2>>b){ if(check(&blo[a],&blo[b])) continue; node *tmp=&blo[a];tmp=tmp->nxt; if(tmp!=NULL) tmp->pre=NULL; if(s1=="move"){ if(s2=="onto"){ clear(&blo[a]);clear(&blo[b]); blo[b].pre=&blo[a];blo[a].nxt=&blo[b]; } else { clear(&blo[a]); node *tmp=&blo[b]; while(tmp->pre!=NULL) tmp=tmp->pre; tmp->pre=&blo[a],blo[a].nxt=tmp; } } else if(s1=="pile"){ if(s2=="onto"){ clear(&blo[b]); blo[b].pre=&blo[a],blo[a].nxt=&blo[b]; } else{ node *tmp=&blo[b]; while(tmp->pre!=NULL) tmp=tmp->pre; tmp->pre=&blo[a],blo[a].nxt=tmp; } } } for(int i=0;i<n;i++){ printf("%d:",i); node *tmp=blo[i].nxt; if(tmp==NULL){ tmp=&blo[i]; while(tmp->pre!=NULL){ printf(" %d",tmp->data); tmp=tmp->pre; } printf(" %d",tmp->data); } printf("\n"); } return 0; }
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