TTTTTTTTTTTTTT hdu 5763 Another Meaning 哈希+dp
Another Meaning
Time Limit: 2000/1000 MS (Java/Others) Memory Limit: 65536/65536 K (Java/Others)
Total Submission(s): 917 Accepted Submission(s): 434
Problem Description
As is known to all, in many cases, a word has two meanings. Such as “hehe”, which not only means “hehe”, but also means “excuse me”.
Today, ?? is chating with MeiZi online, MeiZi sends a sentence A to ??. ?? is so smart that he knows the word B in the sentence has two meanings. He wants to know how many kinds of meanings MeiZi can express.
Today, ?? is chating with MeiZi online, MeiZi sends a sentence A to ??. ?? is so smart that he knows the word B in the sentence has two meanings. He wants to know how many kinds of meanings MeiZi can express.
Input
The first line of the input gives the number of test cases T; T test cases follow.
Each test case contains two strings A and B, A means the sentence MeiZi sends to ??, B means the word B which has two menaings. string only contains lowercase letters.
Limits
T <= 30
|A| <= 100000
|B| <= |A|
Each test case contains two strings A and B, A means the sentence MeiZi sends to ??, B means the word B which has two menaings. string only contains lowercase letters.
Limits
T <= 30
|A| <= 100000
|B| <= |A|
Output
For each test case, output one line containing “Case #x: y” (without quotes) , where x is the test case number (starting from 1) and y is the number of the different meaning of this sentence may be. Since this number may be quite large, you should output the answer modulo 1000000007.
Sample Input
4
hehehe
hehe
woquxizaolehehe
woquxizaole
hehehehe
hehe
owoadiuhzgneninougur
iehiehieh
Sample Output
Case #1: 3 Case #2: 2 Case #3: 5 Case #4: 1
Hint
In the first case, “ hehehe” can have 3 meaings: “*he”, “he*”, “hehehe”. In the third case, “hehehehe” can have 5 meaings: “*hehe”, “he*he”, “hehe*”, “**”, “hehehehe”.题意:给你一个主串一个子串,然后主串中匹配到子串就可以把匹配部分改为*(也可以不改),问主串有多少钟不同的样子;
#include <iostream> #include <cstdio> #include <cstdlib> #include <cmath> #include <vector> #include <queue> #include <cstring> #include <string> #include <algorithm> using namespace std; typedef long long ll; typedef unsigned long long ull; #define MM(a,b) memset(a,b,sizeof(a)); #define inf 0x7f7f7f7f #define FOR(i,n) for(int i=1;i<=n;i++) #define CT continue; #define PF printf #define SC scanf const int mod=1000000007; const int N=1e5+10; int la,lb; ll dp[N]; char a[N],b[N]; ull ha[N],hb; ull seed=13331; void init(){ hb=0; for(int i=0;i<lb;i++) hb=hb*seed+b[i]; ull base=1; for(int i=1;i<=lb-1;i++) base*=seed; ha[0]=a[0]; for(int i=1;i<=lb-1;i++) ha[i]=ha[i-1]*seed+a[i]; for(int i=lb;i<la;i++) ha[i]=(ha[i-1]-a[i-1-(lb-1)]*base)*seed+a[i]; } int main() { int cas,kk=0; scanf("%d",&cas); while(cas--){ scanf("%s",a); scanf("%s",b); la=strlen(a);lb=strlen(b); if(la<lb) {printf("Case #%d: 1\n",++kk);CT;} init(); for(int i=0;i<=lb-1;i++) dp[i]=1; if(ha[lb-1]==hb) dp[lb-1]=2; for(int i=lb;i<la;i++){ dp[i]=dp[i-1]%mod; if(ha[i]==hb) dp[i]=(dp[i]+dp[i-lb])%mod; } printf("Case #%d: %lld\n",++kk,dp[la-1]%mod); } return 0; }
分析:错误点:
1.BKDRhash不太熟练,只会原来的最后输出&的形式,导致最后计算复杂;
改进:BKDRhash的形式:pre*seed+a[i],seed为13331之类的大素数,pre为i以前的哈希值;
a[i]就是字符
2,没有想到dp,当前下标i的话,dp[i]的数值,如果当前i并未匹配到子串,dp[i]=dp[i-1];
如果匹配到子串,dp[i]=dp[i-1]+dp[i-lb];
你说,我们都会幸福的,对吧?