Given a singly linked list, you are supposed to rearrange its elements so that all the negative values appear before all of the non-negatives, and all the values in [0, K] appear before all those greater than K. The order of the elements inside each class must not be changed. For example, given the list being 18→7→-4→0→5→-6→10→11→-2 and K being 10, you must output -4→-6→-2→7→0→5→10→18→11.
Each input file contains one test case. For each case, the first line contains the address of the first node, a positive N (≤) which is the total number of nodes, and a positive K (≤). The address of a node is a 5-digit nonnegative integer, and NULL is represented by −.
Then N lines follow, each describes a node in the format:
Address Data Next
where Address is the position of the node, Data is an integer in [, and Next is the position of the next node. It is guaranteed that the list is not empty.
For each case, output in order (from beginning to the end of the list) the resulting linked list. Each node occupies a line, and is printed in the same format as in the input.
00100 9 10
23333 10 27777
00000 0 99999
00100 18 12309
68237 -6 23333
33218 -4 00000
48652 -2 -1
99999 5 68237
27777 11 48652
12309 7 33218
33218 -4 68237 68237 -6 48652 48652 -2 12309 12309 7 00000 00000 0 99999 99999 5 23333 23333 10 00100 00100 18 27777 27777 11 -1
【题解】
新建3条链表,分别存负数,[0,k]的数以及大于k的数。然后将三条链表窜起来
当然,更省事的,就直接使用3个queue分别记录三组数据,然后输出,
两个方法差不多,容器的更方便,但链表的不用额外空间
1 #include <iostream> 2 #include <vector> 3 using namespace std; 4 struct Node 5 { 6 int val, next; 7 }List[100010]; 8 int head, n, k; 9 int main() 10 { 11 cin >> head >> n >> k; 12 while (n--) 13 { 14 int address, data, next; 15 cin >> address >> data >> next; 16 List[address].val = data; 17 List[address].next = next; 18 } 19 int head1 = 100001, head2 = 100002, head3 = 100003;//分别是负数、中间数、>k数的链表 20 int p = head, p1 = head1, p2 = head2, p3 = head3; 21 while (p != -1) 22 { 23 if (List[p].val < 0) 24 { 25 List[p1].next = p; 26 p1 = p; 27 } 28 else if (List[p].val > k) 29 { 30 List[p3].next = p; 31 p3 = p; 32 } 33 else 34 { 35 List[p2].next = p; 36 p2 = p; 37 } 38 p = List[p].next; 39 } 40 //这里的顺序千万不要反了,因为next不是地址,要先改变,再赋值 41 List[p3].next = -1; 42 List[p2].next = List[head3].next; 43 List[p1].next = List[head2].next; 44 p = List[head1].next; 45 while (List[p].next != -1) 46 { 47 printf("%05d %d %05d\n", p, List[p].val, List[p].next); 48 p = List[p].next; 49 } 50 printf("%05d %d %d\n", p, List[p].val, List[p].next); 51 return 0; 52 }
PAT甲级——A1133 Splitting A Linked List【25】
原文:https://www.cnblogs.com/zzw1024/p/11488848.html