• PAT A1133 Splitting A Linked List (25) [链表]


    题目

    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.
    Input Specification:
    Each input file contains one test case. For each case, the first line contains the address of the first node, a positive N (<= 105) which is the total number of nodes, and a positive K (<=1000). The address of a node is a 5-digit nonnegative integer, and NULL is represented by -1. 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 [-105, 105], and Next is the position of the next node. It is guaranteed that the list is not empty.
    Output Specification:
    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.
    Sample 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
    Sample Output:
    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

    题目分析

    已知N个结点,将值为负数的结点放置在非负节点之前,将小于等于k的结点放置在大于k的结点之前

    解题思路

    思路 01

    1. 用数组存放结点,用属性order记录结点在链表中的序号(初始化为3*maxn)
    2. 依次遍历链表中结点
      2.1 如果结点值<0,结点序号设置为cnt1++
      2.2 如果结点值>=0&&<=k,结点序号设置为maxn+cnt2++
      2.3 如果结点值>k,结点序号设置为2*maxn+cnt3++
    3. 按照order排序,并依次打印

    思路 02

    1. 用数组存放结点,用属性order记录结点在链表中的序号(初始化为3*maxn)
    2. 依次遍历链表中结点
      2.1 依次遍历链表中结点,找到所有值<0的节点,存放于vector
      2.2 依次遍历链表中结点,找到所有值>=0&&<=k的节点,存放于vector
      2.3 依次遍历链表中结点,找到所有值>k的节点,存放于vector
    3. 依次打印vector中结点

    易错点

    已知结点中存在无效结点(即不在链表中的结点)

    Code

    Code 01(最优)

    #include <iostream>
    #include <algorithm>
    using namespace std;
    const int maxn=100010;
    struct node {
    	int adr;
    	int data;
    	int next;
    	int order=3*maxn;
    } nds[maxn];
    bool cmp(node &n1,node &n2) {
    	return n1.order<n2.order;
    }
    int main(int argc,char * argv[]) {
    	int hadr,n,k,adr;
    	scanf("%d %d %d",&hadr,&n,&k);
    	for(int i=0; i<n; i++) {
    		scanf("%d",&adr);
    		scanf("%d %d",&nds[adr].data,&nds[adr].next);
    		nds[adr].adr=adr;
    	}
    	int cnt1=0,cnt2=0,cnt3=0;
    	for(int i=hadr; i!=-1; i=nds[i].next) {
    		if(nds[i].data<0)nds[i].order=cnt1++;
    		if(nds[i].data>=0&&nds[i].data<=k)nds[i].order=maxn+cnt2++;
    		if(nds[i].data>k)nds[i].order=2*maxn+cnt3++;
    	}
    	sort(nds,nds+maxn,cmp);
    	int cnt=cnt1+cnt2+cnt3; 
    	for(int i=0; i<cnt-1; i++) {
    		printf("%05d %d %05d
    ",nds[i].adr,nds[i].data,nds[i+1].adr);
    	}
    	printf("%05d %d -1
    ",nds[cnt-1].adr,nds[cnt-1].data);
    	return 0;
    }
    

    Code 02

    #include <iostream>
    #include <vector>
    using namespace std;
    const int maxn=100010;
    struct node {
    	int adr;
    	int data;
    	int next;
    } nds[maxn];
    int main(int argc,char * argv[]) {
    	int hadr,n,k,adr;
    	scanf("%d %d %d",&hadr,&n,&k);
    	for(int i=0; i<n; i++) {
    		scanf("%d",&adr);
    		scanf("%d %d",&nds[adr].data,&nds[adr].next);
    		nds[adr].adr=adr;
    	}
    	vector<node> v,ans;
    	for(int i=hadr; i!=-1; i=nds[i].next) {
    		v.push_back(nds[i]);
    	}
    	for(int i=0; i<v.size(); i++) {
    		if(v[i].data<0)ans.push_back(v[i]);
    	}
    	for(int i=0; i<v.size(); i++) {
    		if(v[i].data>=0&&v[i].data<=k)ans.push_back(v[i]);
    	}
    	for(int i=0; i<v.size(); i++) {
    		if(v[i].data>k)ans.push_back(v[i]);
    	}
    	for(int i=0; i<ans.size()-1; i++) {
    		printf("%05d %d %05d
    ",ans[i].adr,ans[i].data,ans[i+1].adr);
    	}
    	printf("%05d %d -1
    ",ans[ans.size()-1].adr,ans[ans.size()-1].data);
    	return 0;
    }
    
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  • 原文地址:https://www.cnblogs.com/houzm/p/12299360.html
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