http://acm.fzu.edu.cn/problem.php?pid=1675
首先必须知道一点数论的基本公式 (a-b) %c =0 -----> a%c=b%c
首先通过大数取余求出目标数值对77的余数,然后求出要求数值之后开始到最后的数值对于77取余得到的余数,满足条件然后输出结果;进行枚举就可以了。
#include<iostream>
#include<cstdio>
#include<cstring>
#include<cmath>
#include<algorithm>
#include<bitset>
#include<iomanip> using namespace std;
double num[]={1.0,10.0,100.0,1000.0,10000.0,100000.0,1000000.0,10000000.0,100000000.0,1000000000.0,10000000000.0,
100000000000.0,1000000000000.0,10000000000000.0,100000000000000.0,1000000000000000.0}; int main()
{
__int64 i , j , k , x , y , len , temp , sum , sum1 , sum2 , sum3 ;
char str[ 1000005 ] ;
while( scanf( "%s" , str ) != EOF )
{
len = strlen( str ) ;
sum = sum2 = 0 ;
for( i = 0 ; str[ i ] ; ++i )
{
if( str[ i ] == 'x' )
{
sum = ( sum * 100 + 99 ) % 77 ;
break ;
}
sum = sum * 10 + ( str[ i ] - '0' ) ;
sum %= 77 ;
printf( "%c" , str[ i ] ) ;
}
for( j = i + 4 ; str[ j ] ; ++j )
{
sum2 = sum2 * 10 + ( str[ j ] - '0' ) ;
sum2 %= 77 ;
}
temp = len - i - 4 ;
for( k = 23 ; k <= 99 ; ++k )
{
sum1 = ( sum * 100 + k ) % 77 ;
for( x = 0 ; x <= temp / 15 + 1 ; ++x )
{
sum1 = sum1 * num[ 15 ] ;
sum1 %= 77 ;
}
sum1 = sum1 * num[ temp % 15 ] + sum2 ;
sum1 %= 77 ;
if( sum1 == 0 )
break ;
}
printf( "99%d" , k ) ;
for( y = i + 4 ; str[ y ] ; y++ )
printf( "%c" , str[ y ] ) ;
printf( "\n" );
}
return 0 ;
}