ZOJ

题目链接：
https://cn.vjudge.net/problem/ZOJ-3950

题目大意：
题目给出两个日期a与b，统计从日期a到b之间的所有日期里共有多有个’9’

分析：
分成四部分写，年份不同，月份不同，日期不同和完全相同，前缀和处理各种数据，最后重点处理下年份不同的情况即可

代码：

#include <stdio.h>#include <iostream>#include <string.h>#include <time.h>using namespace std;int y1,m1,d1,y2,m2,d2;int year = 65;int day[2][20] = {{0,31,28,31,30,31,30,31,31,30,31,30,31},{0,31,29,31,30,31,30,31,31,30,31,30,31}};int mart[2][30][50];int lp[12000];int np[12000];int mnine[2][30][50];int nine[12000];inline int count9(int n){    int cnt = 0;    while (n)    {        if (n%10==9)            cnt++;        n/=10;    }    return  cnt;}bool leap(int n){    return (!(n%4)&&(n%100))||!(n%400);}void init(){    for (int i = 1 ; i <= 10000 ; i ++)        nine[i] = count9(i);    int cnt = 0;    int sum = 0;    for (int i = 1 ; i <= 12 ; i ++)    {        for (int j = 1 ; j <= day[0][i] ; j ++)        {            mart[0][i][j] = cnt++;            mnine[0][i][j] = sum;            sum += nine[i]+nine[j];        }    }    cnt = 0,sum = 0;    for (int i = 1 ; i <= 12 ; i ++)    {        for (int j = 1 ; j <= day[1][i] ; j ++)        {            mart[1][i][j] = cnt++;            mnine[1][i][j] = sum;            sum += nine[i]+nine[j];        }    }    cnt  = 0;    lp[2000] = 0;    np[2000] = 0;    for (int i = 2001 ; i <= 9999 ; i ++)    {        bool flag = leap(i-1);        lp[i] = flag+lp[i-1];        np[i] = np[i-1] + nine[i-1]*(365+flag);    }    return;}int main(){    init();    int T;    //cout<<mart[1][12][31]<<endl;    scanf("%d",&T);    clock_t st,ed;    while (T--){            int ans = 0;            scanf("%d%d%d",&y1,&m1,&d1);           scanf("%d%d%d",&y2,&m2,&d2);//            for (int i = y1+1 ; i < y2 ;  i++)//                ans += year + leap(i) + nine[i]*(365+leap(i));            bool flag = leap(y1);            int cnt = 0 ;            if (y1==y2)            {                if (m1==m2)                {                    if (d1==d2)                        ans += nine[y1]+nine[m1]+nine[d1];                    else                    {                        ans += mnine[flag][m2][d2] - mnine[flag][m1][d1]+nine[m2]+nine[d2];                        cnt = mart[flag][m2][d2] - mart[flag][m1][d1]+1;                        ans += nine[y1]*cnt;                    }                }                else                {                    ans += mnine[flag][m2][d2] - mnine[flag][m1][d1]+nine[m2]+nine[d2];                    cnt = mart[flag][m2][d2] - mart[flag][m1][d1]+1;                    ans += nine[y1]*cnt;                }            }            else            {                ans += np[y2] -np[y1+1];                ans += (y2-y1-1)*65 + lp[y2]-lp[y1+1];                ans += mnine[flag][12][31]-mnine[flag][m1][d1];                cnt = 365 + flag -  mart[flag][m1][d1];                ans += nine[y1]*cnt;                cnt = 0;                flag = leap(y2);                ans += mnine[flag][m2][d2]+nine[m2]+nine[d2];                cnt = mart[flag][m2][d2]+1;                ans += nine[y2]*cnt;            }            printf("%d\n",ans);    }    return 0;}