好难受啊掉(rating)了……
(A Ilya and a Colorful Walk)
找到最后一个与第一个颜色不同的,比一下距离,然后再找到最左边和最右边与第一个颜色不同的,再和所有与第一个颜色相同的比较一下距离
//minamoto
#include<bits/stdc++.h>
#define R register
#define fp(i,a,b) for(R int i=(a),I=(b)+1;i<I;++i)
#define fd(i,a,b) for(R int i=(a),I=(b)-1;i>I;--i)
#define go(u) for(int i=head[u],v=e[i].v;i;i=e[i].nx,v=e[i].v)
template<class T>inline bool cmax(T&a,const T&b){return a<b?a=b,1:0;}
using namespace std;
char buf[1<<21],*p1=buf,*p2=buf;
inline char getc(){return p1==p2&&(p2=(p1=buf)+fread(buf,1,1<<21,stdin),p1==p2)?EOF:*p1++;}
int read(){
R int res,f=1;R char ch;
while((ch=getc())>'9'||ch<'0')(ch=='-')&&(f=-1);
for(res=ch-'0';(ch=getc())>='0'&&ch<='9';res=res*10+ch-'0');
return res*f;
}
char sr[1<<21],z[20];int C=-1,Z=0;
inline void Ot(){fwrite(sr,1,C+1,stdout),C=-1;}
void print(R int x){
if(C>1<<20)Ot();if(x<0)sr[++C]='-',x=-x;
while(z[++Z]=x%10+48,x/=10);
while(sr[++C]=z[Z],--Z);sr[++C]='
';
}
const int N=3e5+5;
int a[N],n,mx,bg;
int main(){
// freopen("testdata.in","r",stdin);
n=read();
fp(i,1,n)a[i]=read();
fp(i,1,n)if(a[i]!=a[1]){
cmax(mx,i-1);
if(!bg)bg=i;
}
fp(i,1,n)if(a[i]==a[1])cmax(mx,abs(bg-i));
bg=0;
fd(i,n,1)if(a[i]!=a[1]&&!bg){bg=i;break;}
fp(i,1,n)if(a[i]==a[1])cmax(mx,abs(bg-i));
printf("%d
",mx);
return 0;
}
(B Alyona and a Narrow Fridge)
首先二分答案。对于一种情况显然是(sort)之后从右往左两两分组最优,判一下就好了
//minamoto
#include<bits/stdc++.h>
#define R register
#define fp(i,a,b) for(R int i=(a),I=(b)+1;i<I;++i)
#define fd(i,a,b) for(R int i=(a),I=(b)-1;i>I;--i)
#define go(u) for(int i=head[u],v=e[i].v;i;i=e[i].nx,v=e[i].v)
template<class T>inline bool cmax(T&a,const T&b){return a<b?a=b,1:0;}
using namespace std;
char buf[1<<21],*p1=buf,*p2=buf;
inline char getc(){return p1==p2&&(p2=(p1=buf)+fread(buf,1,1<<21,stdin),p1==p2)?EOF:*p1++;}
int read(){
R int res,f=1;R char ch;
while((ch=getc())>'9'||ch<'0')(ch=='-')&&(f=-1);
for(res=ch-'0';(ch=getc())>='0'&&ch<='9';res=res*10+ch-'0');
return res*f;
}
char sr[1<<21],z[20];int C=-1,Z=0;
inline void Ot(){fwrite(sr,1,C+1,stdout),C=-1;}
void print(R int x){
if(C>1<<20)Ot();if(x<0)sr[++C]='-',x=-x;
while(z[++Z]=x%10+48,x/=10);
while(sr[++C]=z[Z],--Z);sr[++C]='
';
}
const int N=1005;
int a[N],st[N],top,n,h,l,r,mid,ans;
bool ck(){
top=0;
fp(i,1,mid)st[++top]=a[i];
sort(st+1,st+1+top);
int res=0;
for(R int i=mid;i>=2;i-=2){
res+=max(st[i],st[i-1]);
if(res>h)return false;
}
if(mid&1)res+=st[1];
return res<=h;
}
int main(){
// freopen("testdata.in","r",stdin);
n=read(),h=read();
fp(i,1,n)a[i]=read();
l=1,r=n,ans=1;
while(l<=r){
mid=(l+r)>>1;
ck()?(ans=mid,l=mid+1):r=mid-1;
}
printf("%d
",ans);
return 0;
}
(C Ramesses and Corner Inversion)
发现操作之后最多只会使一行或一列的偶数个格子发生变化,那么只有在(A)和(B)的行列每行每列不同格子个数都是偶数时才可行
//minamoto
#include<bits/stdc++.h>
#define R register
#define fp(i,a,b) for(R int i=(a),I=(b)+1;i<I;++i)
#define fd(i,a,b) for(R int i=(a),I=(b)-1;i>I;--i)
#define go(u) for(int i=head[u],v=e[i].v;i;i=e[i].nx,v=e[i].v)
template<class T>inline bool cmax(T&a,const T&b){return a<b?a=b,1:0;}
using namespace std;
char buf[1<<21],*p1=buf,*p2=buf;
inline char getc(){return p1==p2&&(p2=(p1=buf)+fread(buf,1,1<<21,stdin),p1==p2)?EOF:*p1++;}
int read(){
R int res,f=1;R char ch;
while((ch=getc())>'9'||ch<'0')(ch=='-')&&(f=-1);
for(res=ch-'0';(ch=getc())>='0'&&ch<='9';res=res*10+ch-'0');
return res*f;
}
char sr[1<<21],z[20];int C=-1,Z=0;
inline void Ot(){fwrite(sr,1,C+1,stdout),C=-1;}
void print(R int x){
if(C>1<<20)Ot();if(x<0)sr[++C]='-',x=-x;
while(z[++Z]=x%10+48,x/=10);
while(sr[++C]=z[Z],--Z);sr[++C]='
';
}
const int N=505;
int A[N][N],B[N][N],r[N],c[N],n,m;
int main(){
// freopen("testdata.in","r",stdin);
n=read(),m=read();
fp(i,1,n)fp(j,1,m)A[i][j]=read();
fp(i,1,n)fp(j,1,m)B[i][j]=read();
fp(i,1,n)fp(j,1,m)if(A[i][j]!=B[i][j])++r[i],++c[j];
fp(i,1,n)if(r[i]&1)return puts("No"),0;
fp(j,1,m)if(c[j]&1)return puts("No"),0;
puts("Yes");
return 0;
}
(D Frets On Fire)
先把所有(s_i)升序排序,那么一行里有贡献的元素个数是(min{s_{i+1}-s_i,r-l+1}),对于(s_n)来说贡献就是(r-l+1),所以我们记(d_i=s_{i+1}-s_i),(d_n=inf),然后(sort)一下,二分找到第一个(geq r-l+1)的位置,前面的贡献是前缀和,后面的贡献是元素个数乘上(r-l+1)
//minamoto
#include<bits/stdc++.h>
#define R register
#define ll long long
#define inf 2e18
#define fp(i,a,b) for(R int i=(a),I=(b)+1;i<I;++i)
#define fd(i,a,b) for(R int i=(a),I=(b)-1;i>I;--i)
#define go(u) for(int i=head[u],v=e[i].v;i;i=e[i].nx,v=e[i].v)
using namespace std;
char buf[1<<21],*p1=buf,*p2=buf;
inline char getc(){return p1==p2&&(p2=(p1=buf)+fread(buf,1,1<<21,stdin),p1==p2)?EOF:*p1++;}
ll read(){
R ll res,f=1;R char ch;
while((ch=getc())>'9'||ch<'0')(ch=='-')&&(f=-1);
for(res=ch-'0';(ch=getc())>='0'&&ch<='9';res=res*10+ch-'0');
return res*f;
}
char sr[1<<21],z[20];int C=-1,Z=0;
inline void Ot(){fwrite(sr,1,C+1,stdout),C=-1;}
void print(R ll x){
if(C>1<<20)Ot();if(x<0)sr[++C]='-',x=-x;
while(z[++Z]=x%10+48,x/=10);
while(sr[++C]=z[Z],--Z);sr[++C]=' ';
}
const int N=1e5+5;
ll s[N],sum[N],l,r,w;int n,q,p;
int main(){
// freopen("testdata.in","r",stdin);
n=read();
fp(i,1,n)s[i]=read();
sort(s+1,s+1+n);
fp(i,1,n-1)s[i]=s[i+1]-s[i];s[n]=inf;
sort(s+1,s+1+n);
fp(i,1,n)sum[i]=sum[i-1]+s[i];
q=read();
while(q--){
l=read(),r=read(),w=r-l+1;
p=lower_bound(s+1,s+1+n,w)-s-1;
print(sum[p]+w*(n-p));
}
return Ot(),0;
}
(E Pavel and Triangles)
首先三角形只能是形如((i,i,i))或者((i,j,j)(i<j))
然后有个贪心,从小到大考虑,首先看看能不能和前面剩余的拼成形如((i,j,j))的,然后再把所有能拼成((i,i,i))的都拼了。证明并不会
//minamoto
#include<bits/stdc++.h>
#define R register
#define ll long long
#define fp(i,a,b) for(R int i=(a),I=(b)+1;i<I;++i)
#define fd(i,a,b) for(R int i=(a),I=(b)-1;i>I;--i)
#define go(u) for(int i=head[u],v=e[i].v;i;i=e[i].nx,v=e[i].v)
using namespace std;
char buf[1<<21],*p1=buf,*p2=buf;
inline char getc(){return p1==p2&&(p2=(p1=buf)+fread(buf,1,1<<21,stdin),p1==p2)?EOF:*p1++;}
int read(){
R int res,f=1;R char ch;
while((ch=getc())>'9'||ch<'0')(ch=='-')&&(f=-1);
for(res=ch-'0';(ch=getc())>='0'&&ch<='9';res=res*10+ch-'0');
return res*f;
}
int n,x,las,mn;ll res;
int main(){
// freopen("testdata.in","r",stdin);
n=read();
fp(i,1,n){
x=read(),mn=min(las,x>>1),x-=(mn<<1),res+=mn,las-=mn;
res+=x/3,x%=3,las+=x;
}
printf("%I64d
",res);
return 0;
}
剩下先咕了