UVA 1640(数位统计)

发布时间：2020-12-13 20:41:46 所属栏目：PHP教程来源：网络整理

导读：The Counting Problem Time Limit: 3000MS Memory Limit: Unknown 64bit IO Format: %lld %llu Submit Status Description Given two integers a and b ,we write the numbers between a and b ,inclusive,in a list. Your task is to calculate the number

The Counting Problem

Time Limit:3000MS

Memory Limit:Unknown

64bit IO Format:%lld & %llu

SubmitStatus

Description

Given two integers a and b,we write the numbers between a and b,inclusive,in a list. Your task is to calculate the number of occurrences of each digit. For example,if a = 1024 and b = 1032,the list will be

1024 1025 1026 1027 1028 1029 1030 1031 1032

there are ten 0's in the list,ten 1's,seven 2's,three 3's,and etc.

Input

The input consists of up to 500 lines. Each line contains two numbers a and b where 0 < a,b < 100000000. The input is terminated by a line `0 0',which is not considered as part of the input.

Output

For each pair of input,output a line containing ten numbers separated by single spaces. The first number is the number of occurrences of the digit 0,the second is the number of occurrences of the digit 1,etc.

Sample Input

Sample Output

1 2 1 1 1 1 1 1 1 1 
85 185 185 185 190 96 96 96 95 93 
40 40 40 93 136 82 40 40 40 40 
115 666 215 215 214 205 205 154 105 106 
16 113 19 20 114 20 20 19 19 16 
107 105 100 101 101 197 200 200 200 200 
413 1133 503 503 503 502 502 417 402 412 
196 512 186 104 87 93 97 97 142 196 
398 1375 398 398 405 499 499 495 488 471 
294 1256 296 296 296 296 287 286 286 247

Source

Root :: AOAPC II: Beginning Algorithm Contests (Second Edition) (Rujia Liu) :: Chapter 10. Maths :: Examples

Submit Status

统计区间里0到9每一个数字出现了多少次，直接数学瞎弄

#include <cstdio> #include <iostream> #include <cstring> #include <algorithm> using namespace std; const int maxn = 10 + 10; typedef long long ll; #define foreach(it,v) for(__typeof((v).begin()) it = (v).begin(); it != (v).end(); ++it) typedef long long ll; int c[maxn][maxn]; void init(int n) { for(int i = 0; i <= n; i++) { c[i][0] = 1; for(int j = 1; j <= i; j++) c[i][j] = c[i⑴][j⑴] + c[i⑴][j]; c[i][i+1] = 0; } } ll quick(int a,int n) { ll res = 1,b = a; while(n>0) { if(n&1)res *= b; b = b*b; n>>=1; } return res; } ll work(int f,int k,int L,int tot)/*计算以f开头长为L且之前已出现tot个k的数字里有多少个k*/ { ll res = 0; if(f==k)tot++; for(int i = 0; i < L; i++) { res += (i+tot)*c[L⑴][i]*quick(9,L⑴-i); } return res; } ll solve(const char *s,int k)/*计算[1,s)里的数字1共有多少个k*/ { int sz = strlen(s); ll res = 0,tot = 0; for(int i = 1; i < s[0]-'0'; i++)res += work(i,k,sz,0); for(int L = 1; L < sz; L++) { for(int i = 1; i < 10; i++) res += work(i,L,0); } if(s[0]-'0'==k)tot++; for(int i = 1; i < sz; i++) { int limt = s[i] - '0'; for(int j = 0; j < limt; j++) { res += work(j,sz-i,tot); } if(limt==k)tot++; } return res; } int main() { init(12); int L,R; while(~scanf("%d%d",&L,&R)) { if(L+R==0)return 0; if(L>R)swap(L,R); char sl[20],sr[20]; sprintf(sl,"%d",L); sprintf(sr,R+1); for(int i = 0; i < 10; i++) printf("%lld%c",solve(sr,i)-solve(sl,i)," "[i==9]); } return 0; }

（编辑：李大同）

【声明】本站内容均来自网络，其相关言论仅代表作者个人观点，不代表本站立场。若无意侵犯到您的权利，请及时与联系站长删除相关内容!