Can you find it? Time Limit: 10000/3000 MS (Java/Others) Memory Limit: 32768/10000 K (Java/Others)
Total Submission(s): 7927 Accepted Submission(s): 2062
Total Submission(s): 7927 Accepted Submission(s): 2062
Problem Description
Give you three sequences of numbers A, B, C, then we give you a number X. Now you need to calculate if you can find the three numbers Ai, Bj, Ck, which satisfy the formula Ai+Bj+Ck = X.
Input
There are many cases. Every data case is described as followed: In the first line there are three integers L, N, M, in the second line there are L integers represent the sequence A, in the third line there are N integers represent the sequences B, in the forth line there are M integers represent the sequence C. In the fifth line there is an integer S represents there are S integers X to be calculated. 1<=L, N, M<=500, 1<=S<=1000. all the integers are 32-integers.
Output
For each case, firstly you have to print the case number as the form "Case d:", then for the S queries, you calculate if the formula can be satisfied or not. If satisfied, you print "YES", otherwise print "NO".
Sample Input
3 3 3 1 2 3 1 2 3 1 2 3 3 1 4 10
Sample Output
Case 1: NO YES NO
Author
wangye
Source
Recommend
威士忌
解题思路:数组合并+二分查找(搜索),(解法一)
这个搜索让额泪牛满面啊,真的想先到用数组查找,最近搜索搜得吐蒙头。。。。。。
开始,搜索一个数组得出x-d[i]的差值后,再在合并的数组里面搜索差值即可。
解题思路:数组合并+set查找(搜索),(方法二)STL
该解法,首先感谢蚕豆儿(http://blog.csdn.net/wqc359782004)给我灵感,他说可以用map搜索,我才想到用STL的,后面发现map超内存了,才想起内存需求更小的set(map的1/2就好了)。
开始,搜索一个数组得出x-d[i]的差值后,再在合并的数组的set里面搜索差值即可。
附:STL函数方法集合(http://blog.csdn.net/lsh670660992/article/details/9204285),map用法(http://blog.csdn.net/lsh670660992/article/details/9158539),set用法(http://blog.csdn.net/lsh670660992/article/details/9158573)
解题思路:数组合并+二分查找(搜索),(解法一)
这个搜索让额泪牛满面啊,真的想先到用数组查找,最近搜索搜得吐蒙头。。。。。。
开始,搜索一个数组得出x-d[i]的差值后,再在合并的数组里面搜索差值即可。
#include<stdio.h> #include<algorithm> using namespace std; #define K 505 int LN[K*K]; int BinarySearch(int LN[],int h,int t)/*二分查找*/ { int left,right,mid; left=0; right=h-1; mid=(left+right)/2; while(left<=right) { mid=(left+right)/2; if(LN[mid]==t) return 1; else if(LN[mid]>t) right=mid-1; else if(LN[mid]<t) left=mid+1; } return 0; } int main() { int i,j,count=1,q; __int32 L[K],N[K],M[K],S,n,m,l; while(scanf("%d%d%d",&l,&n,&m)!=EOF) { int h=0; for(i=0;i<l;i++) scanf("%d",&L[i]); for(i=0;i<n;i++) scanf("%d",&N[i]); for(i=0;i<m;i++) scanf("%d",&M[i]); for(i=0;i<l;i++) for(j=0;j<n;j++) LN[h++]=L[i]+N[j];/*合并L和N*/ sort(LN,LN+h); /*对LN数组排序*/ scanf("%d",&S); printf("Case %d:\n",count++); for(i=0;i<S;i++) { scanf("%d",&q);/*q即为题目中的x*/ int p=0; /*p为标记,0为找不到,1为能找到*/ for(j=0;j<m;j++) { int a=q-M[j]; /*因为L[i]+N[j]+M[k]==q,所以q-M[k]=LN[h]*/ if(BinarySearch(LN,h,a)) /*在LN数组中查找到a*/ { printf("YES\n"); p=1; break; } } if(!p) /*找不到a*/ printf("NO\n"); } } return 0; }解题思路:数组合并+set查找(搜索),(方法二)STL
该解法,首先感谢蚕豆儿(http://blog.csdn.net/wqc359782004)给我灵感,他说可以用map搜索,我才想到用STL的,后面发现map超内存了,才想起内存需求更小的set(map的1/2就好了)。
开始,搜索一个数组得出x-d[i]的差值后,再在合并的数组的set里面搜索差值即可。
附:STL函数方法集合(http://blog.csdn.net/lsh670660992/article/details/9204285),map用法(http://blog.csdn.net/lsh670660992/article/details/9158539),set用法(http://blog.csdn.net/lsh670660992/article/details/9158573)
#include<cstdio> #include<cstring> #include<algorithm> #include<set> //用到STL中得set作为查找辅助 using namespace std; int main() { int b[500]; int c[500]; int d[500]; set< int> st; //set定义,不能用map<int ,int>,内存翻倍,会内存 int x; int l,n,m; int i,j,p=1; while(scanf("%d%d%d",&l,&n,&m)!=EOF) { memset(b,0,sizeof(b)); memset(c,0,sizeof(c)); memset(d,0,sizeof(d)); for(i=0;i<l;i++) scanf("%d",&b[i]); for(i=0;i<n;i++) scanf("%d",&c[i]); for(i=0;i<m;i++) scanf("%d",&d[i]); for(j=0;j<n;j++) //数组合并 for(i=0;i<l;i++) st.insert(b[i]+c[j]); //值插入 printf("Case %d:\n",p++); scanf("%d",&n); while(n--) { int s; scanf("%d",&x); for(i=0;i<m;i++) if(st.count(x-d[i])) //值检索,存在返回1,不存在返回0 { printf("YES\n"); break; } if(i==m) printf("NO\n"); } st.clear(); } return 0; } 
