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| Acceteped : 57 | Submit : 129 | |
| Time Limit : 1000 MS | Memory Limit : 65536 KB |
Description |
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题目描述Eason是个非常迷信的人,他喜欢数字3和6,不喜欢4和7。 如果一个数字的数码中没有4和7,而有3或者6的话,他就会喜欢这个数字。 比如,他会喜欢13,36,但是不会喜欢14,34。但对于28这种的,他就无所谓喜欢还是不喜欢。 Eason想知道区间[a,b]中一共有多少个他喜欢和不喜欢的数字? 输入每行输入一个样例,为a和b,0≤a≤b≤106。如果a和b都为0,那么输入结束,这个样例不需要处理。 输出每行输出一个样例的结果,先输出喜欢数字的个数,再输出不喜欢数字的个数。 样例输入1 10 1 100 1 1000000 0 0 样例输出2 2 28 36 215488 737856 |
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Sample Input |
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Sample Output |
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Source |
解题:暴力或者数位dp乱搞
先上暴力的解法:
1 #include <iostream> 2 #include <cstdio> 3 #include <cstring> 4 #include <cmath> 5 #include <algorithm> 6 #include <climits> 7 #include <vector> 8 #include <queue> 9 #include <cstdlib> 10 #include <string> 11 #include <set> 12 #include <stack> 13 #define LL long long 14 #define INF 0x3f3f3f3f 15 #define pii pair<int,int> 16 using namespace std; 17 int ans[1000001],uu[1000001]; 18 void go(int dep,int cur,int step,bool like,bool ulike){ 19 if(step > dep || like && ulike) return; 20 ans[cur] = like; 21 if(!like && !ulike) uu[cur] = 1; 22 for(int i = step?0:1; i <= 9; ++i) 23 go(dep,cur*10+i,step+1,like||i == 3||i == 6,ulike||i == 4||i == 7); 24 } 25 int main(){ 26 go(6,0,0,false,false); 27 uu[1000000] = 1; 28 for(int i = 1; i < 1000001; ++i){ 29 ans[i] += ans[i-1]; 30 uu[i] += uu[i-1]; 31 } 32 int a,b; 33 while(scanf("%d %d",&a,&b),a||b){ 34 int tmp = ans[b]-ans[a-1]; 35 printf("%d %d\n",tmp,(b-a+1)-(uu[b]-uu[a-1])-tmp); 36 } 37 return 0; 38 }
写得比较挫,很多冗余计算。。。后来改了下,起码好看得多了
1 #include <cstdio> 2 int ans[1000001],uu[1000001],arr[] = {0,1,2,3,5,6,8,9},a,b; 3 bool check[10] = {false,false,false,true,false,true}; 4 void go(int dep,int cur,int step,bool like){ 5 if(step > dep) return; 6 if(like) ans[cur] = 1; 7 else uu[cur] = 1; 8 for(int i = step?0:1; i < 8; ++i) 9 go(dep,cur*10+arr[i],step+1,like||check[i]); 10 } 11 int main(){ 12 go(6,0,0,false); 13 uu[1000000] = 1; 14 for(int i = 1; i < 1000001; ++i){ 15 ans[i] += ans[i-1]; 16 uu[i] += uu[i-1]; 17 } 18 while(scanf("%d %d",&a,&b),a||b){ 19 int tmp = ans[b]-ans[a-1]; 20 printf("%d %d\n",tmp,(b-a+1)-(uu[b]-uu[a-1])-tmp); 21 } 22 return 0; 23 }
然后是数位dp
1 #include <cstdio> 2 #include <cstring> 3 int dp[10][2]; 4 void calc(char *str,int &x,int &y){ 5 bool xh = false,bxh = false; 6 int len = strlen(str); 7 static const int cnt[10] = {0,1,2,3,4,4,5,6,6,7}; 8 static const int cnt2[10] = {0,1,2,3,3,3,4,4,4,5}; 9 for(int i = x = y = 0; str[i+1]; ++i){ 10 int p = (str[i] > ‘3‘) + (str[i] > ‘6‘); 11 if(!bxh){ 12 if(xh) x += cnt[str[i]-‘0‘]*(dp[len-i-1][1]+dp[len-i-1][0]); 13 else{ 14 x += cnt[str[i]-‘0‘]*dp[len-i-1][0] + p*dp[len-i-1][1]; 15 y += cnt2[str[i]-‘0‘]*dp[len-i-1][1]; 16 } 17 } 18 if(str[i] == ‘4‘ || str[i] == ‘7‘) bxh = true; 19 if(str[i] == ‘3‘ || str[i] == ‘6‘) xh = true; 20 } 21 for(int i = 0; i <= str[len-1]-‘0‘; ++i){ 22 if(!xh && !bxh &&(i == 3 || i == 6)) ++x; 23 if(xh && !bxh && i != 4 && i != 7) ++x; 24 if(!bxh && !xh && i != 3 && i != 6 && i != 4 && i != 7) ++y; 25 } 26 } 27 int main(){ 28 dp[1][0] = 2; 29 dp[1][1] = 6; 30 for(int i = 2; i <= 6; ++i){ 31 dp[i][0] = (dp[i-1][0]<<3) + (dp[i-1][1]<<1); 32 dp[i][1] = 6*dp[i-1][1]; 33 } 34 char str[10]; 35 int a,b; 36 while(scanf("%d %d",&a,&b),a||b) { 37 int x,y,x1,y1; 38 sprintf(str,"%d",--a); 39 calc(str,x,y); 40 sprintf(str,"%d",b); 41 calc(str,x1,y1); 42 int tmp = x1 - x; 43 printf("%d %d\n",tmp,b-a-tmp-y1+y); 44 } 45 return 0; 46 }
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原文地址:http://www.cnblogs.com/crackpotisback/p/4213597.html
