题目
https://ac.nowcoder.com/acm/contest/907/D
做法
((x)_k)定义编号,如果(a+b)加到一起能进一位,(a+b ightarrow 1+(a+b-k)=a+b-(k-1)),故(d(a_{l,r})=sumlimits_{i=l}^r a_i\% k-1)
但我们发现(k-1)这一块缺失了,显然为(0)当且仅当区间均为(0),其他情况得出(0)的时候实际结果为(k-1)
-
(b=0):全(0)区间个数
-
(b=k-1):满足(/%(k-1)=0)的个数-全(0)区间个数
-
其他情况:(a_{l,r}=sum_r-sum_{l-1}\%(k-1),sum_r-sum_{l-1}equiv b (\%k-1),sum_r-bequiv sum_{l-1}(\%k-1))
Code
#include<bits/stdc++.h>
typedef long long LL;
const LL maxn=1e6+9;
inline LL Read(){
LL x(0),f(1); char c=getchar();
while(c<'0' || c>'9'){
if(c=='-') f=-1; c=getchar();
}
while(c>='0' && c<='9'){
x=(x<<3)+(x<<1)+c-'0'; c=getchar();
}return x*f;
}
LL k,b,n,ret,num,ze;
LL a[maxn],sum[maxn];
std::map<LL,LL> cnt;
int main(){
k=Read(); b=Read(); n=Read();
for(LL i=1;i<=n;++i) a[i]=Read();
for(LL i=1;i<=n;++i){
sum[i]=(sum[i-1]+a[i])%(k-1);
if(!a[i]){
++num;
ze+=num;
}else
num=0;
}
if(!b){
printf("%lld
",ze);
return 0;
}
cnt[0]++;
for(LL i=1;i<=n;++i){
LL val((sum[i]-b+k-1)%(k-1));
ret+=cnt[val];
++cnt[sum[i]];
}
if(b==k-1) ret-=ze;
printf("%lld
",ret);
return 0;
}