2017 多校联合训练 6 题解

Problem 1001

对于每个询问，根据后缀{前缀插入到AC自动机内

然后每个单词写2遍，中间用{隔开，统计有那几个前缀和后缀

最后对于每个前缀和后缀 输出方案数

注意：单词可能有重复，可以用vector记录一下end数组

#include<iostream>
#include<algorithm>
#include<cmath>
#include<cstring>
#include<queue>
#include<string>
#define next nxt
#define end ed
using namespace std;
int next[1200001][27],fail[1200001],dep[1200001];
vector<int> end[1200001];
int root,len;
int newnode(){
    for(int i=0;i<27;i++)
        next[len][i]=-1;
    end[len].clear();
    len++;
    return len-1;
}
void clear(){
    len=0;
    root=newnode();
    return;
}
void insert(char s[],int num){
    int ls=strlen(s);
    int now=root;
    for(int i=0;i<ls;i++){
        if(next[now][s[i]-'a']==-1)
            next[now][s[i]-'a']=newnode();
        now=next[now][s[i]-'a'];
        dep[now]=i+1;
    }
    end[now].push_back(num);
}
void build(){
    queue<int>q;
    int i;
    fail[root]=root;
    for(i=0;i<27;i++){
        if(next[root][i]==-1)
            next[root][i]=root;
        else{
            fail[next[root][i]]=root;
            q.push(next[root][i]);
        }
    }
    while(!q.empty()){
        int now=q.front();
        q.pop();
        for(i=0;i<27;i++){
            if(next[now][i]==-1)
                next[now][i]=next[fail[now]][i];
            else{
                fail[next[now][i]]=next[fail[now]][i];
                q.push(next[now][i]);
            }
        }
    }
    return;
}
int vis[1000010];
void  ask(char c[],int n,int num){
    bool flag1=false;
    int lc=num;
    int now=root;
    int i;
    for(i=0;i<lc;i++){
        now=next[now][c[i]-'a'];
        int temp=now;
        while(temp!=root){
            if(end[temp].size()&&dep[temp]<=n){
                flag1=1;
                for (auto u:end[temp])
                    vis[u]++;
            }
            temp=fail[temp];
        }
    }
}
char s[2000001],t[2000001],ss[2000001],tt[2000001];
char *si[100010];
int n,m,le[100010],le2[100010];
int main(){
    int i,j;
    int _;
    scanf("%d",&_);
    while(_--){
        scanf("%d%d",&n,&m);
        clear();
        for (i=1,j=0;i<=n;i++)
        {
            si[i]=ss+j;
            scanf("%s",si[i]);
            le[i]=strlen(si[i])+1;
            j+=le[i];
            strcpy(ss+j,si[i]);
            ss[j-1]='z'+1;
            j+=le[i];
            
            le2[i]=strlen(si[i]);
        }
        for(i=1;i<=m;i++)
        {
            s[0]='z'+1;
            scanf("%s%s",s+1,t);
            strcat(t,s);
            insert(t,i);
        }
        build();
        memset(vis,0,sizeof(vis));
        int ans=0;
        //for(i=1;i<=m;i++){
        for (i=1;i<=n;i++)
        {
            //strcpy(tt,si[i].c_str());
            ask(si[i],le[i],le2[i]);
        }
        //}
        for (i=1;i<=m;i++)
            printf("%d
",vis[i]);
    }
    return 0;
}

Problem 1002

这里不总是在中垂线上的点取到最小值

通过观察可发现，当两个点离半径的距离到一定的程度时答案保持不变

算出这个距离即可

另外要注意这两个点可能会重合

#include<iostream>
#include<cstdio>
#include<cmath>
#include<cstdlib>
#include<algorithm>
#include<cstring>
#include<string>
#include<vector>
#include<map>
#include<set>
#include<queue>
using namespace std;
const double eps=1e-7;
#define y1 jkhjk
#define y2 erjkf
#define y3 jkdfhdw
#define y4 jkhjkff
#define y5 kjhkk
int _;
double r,x1,y1,x2,y2;
int main()
{
    scanf("%d",&_);
    while (_--)
    {
        scanf("%lf",&r);
        scanf("%lf%lf",&x1,&y1);
        scanf("%lf%lf",&x2,&y2);
        if (x1==0&&y1==0)
        {
            printf("%.9f
",r*2);
            continue;
        }
        if (fabs(x1-x2)<=eps&&fabs(y1-y2)<=eps)
        {
            double rest=r-sqrt(x1*x1+y1*y1);
            printf("%.9f
",rest*2);
            continue;
        }
        double x3=(x1+x2)/2;
        double y3=(y1+y2)/2;
        if (fabs(y1-y2)<=eps)
        {
            double x4=x3;
            double y4=sqrt(r*r-x3*x3);
            double x5=x3;
            double y5=-sqrt(r*r-x3*x3);
            double x6,y6,x7,y7;
            double bili=sqrt(x1*x1+y1*y1)/r;
            x6=x1/bili;
            y6=y1/bili;
            x7=x2/bili;
            y7=y2/bili;
            double dist=sqrt((x2-x1)*(x2-x1)+(y2-y1)*(y2-y1));
            double pp=sqrt(x1*x1+y1*y1);
            double ans=9999999;
            double sita=(dist/(2*pp));
            //cout<<sita<<endl;
            sita=sqrt(1.0-sita*sita);
            if (sqrt(x1*x1+y1*y1)>=r*sita-eps)
                ans=sqrt((x7-x6)*(x7-x6)+(y7-y6)*(y7-y6));
            ans=min(ans,sqrt((x4-x1)*(x4-x1)+(y4-y1)*(y4-y1))*2);
            ans=min(ans,sqrt((x5-x1)*(x5-x1)+(y5-y1)*(y5-y1))*2);
            printf("%.9f
",ans);

        }
        else
        {
            double k;
            if (x1==x2) k=0;
            else
                k=(x2-x1)/(y1-y2);
            double a=1+k*k;
            double b=2*k*y3-2*k*k*x3;
            double c=k*k*x3*x3-2*k*x3*y3+y3*y3-r*r;
            double det=b*b-4*a*c;
            double x4=(-b+sqrt(det))/(2*a);
            double y4=k*(x4-x3)+y3;
            double x5=(-b-sqrt(det))/(2*a);
            double y5=k*(x5-x3)+y3;
            double x6,y6,x7,y7;
            double bili=sqrt(x1*x1+y1*y1)/r;
            x6=x1/bili;
            y6=y1/bili;
            x7=x2/bili;
            y7=y2/bili;
            double dist=sqrt((x2-x1)*(x2-x1)+(y2-y1)*(y2-y1));
            double pp=sqrt(x1*x1+y1*y1);
            double ans=9999999;
            double sita=(dist/(2*pp));
            sita=sqrt(1.0-sita*sita);
            if (sqrt(x1*x1+y1*y1)>=r*sita-eps)
                ans=sqrt((x7-x6)*(x7-x6)+(y7-y6)*(y7-y6));
            ans=min(ans,sqrt((x4-x1)*(x4-x1)+(y4-y1)*(y4-y1))*2);
            ans=min(ans,sqrt((x5-x1)*(x5-x1)+(y5-y1)*(y5-y1))*2);
            printf("%.9f
",ans);
        }
    }
    return 0;
}

Problem 1003

hnqw1214:

将A数组按照从大到小排序

对于每个下标i

暴力找到最大的不被i整除的数

#include<iostream>
#include<cstdio>
#include<cmath>
#include<cstdlib>
#include<algorithm>
#include<cstring>
#include<string>
#include<vector>
#include<map>
#include<set>
#include<queue>
using namespace std;
int _,n,a[100010],id[100010];
inline bool cmp(int x,int y)
{
    return a[x]>a[y];
}
int main()
{
    scanf("%d",&_);
    while (_--)
    {
        scanf("%d",&n);
        int i,j;
        for (i=1;i<=n;i++)
        {
            scanf("%d",&a[i]);
            id[i]=i;
        }
        sort(id+1,id+n+1,cmp);
        for (i=2;i<=n;i++)
        {
            int p=0;
            for (j=1;j<=n;j++)
                if (id[j]%i)
                {
                    p=a[id[j]];
                    break;
                }
            if (i<n) printf("%d ",p);
            else printf("%d
",p);
        }
    }
    return 0;
}

cxhscst2:

预处理出ST表。

一个数的答案被很多区间影响

比如4的答案就是[1, 3], [5, 7], [9, 11]这些区间的最小值中的最小值。

区间个数总和数为nlogn。

ST表分段查询即可。

#include <bits/stdc++.h>

using namespace std;

#define rep(i, a, b)	for (int i(a); i <= (b); ++i)
#define dec(i, a, b)	for (int i(a); i >= (b); --i)

typedef long long LL;

const int N = 1e5 + 10;

vector <int> v[N];
int cnt = 0;
int f[N][19];
int a[N];
int n;
int ans[N];
int s, t;
int T;

inline int solve(int l, int r){
	int k = (int)log2((double)(r - l + 1));
	return max(f[l][k], f[r - (1 << k) + 1][k]);
}

void ST(){
	rep(i, 1, n) f[i][0] = a[i];
	rep(j, 1, 20) rep(i, 1, n)
		if ((i + (1 << j) - 1) <= n) f[i][j] = max(f[i][j - 1], f[i + (1 << (j - 1))][j - 1]);
}


int main(){

	rep(i, 2, 100000){
		for (int j = i; j <= 2e5 + 3; j += i) v[i].push_back(j), ++cnt;
	}

	scanf("%d", &T);
	while (T--){
		scanf("%d", &n);
		rep(i, 1, n) scanf("%d", a + i);
		memset(f, 0, sizeof f);
		ST();
		memset(ans, 0, sizeof ans);
		rep(i, 2, n){
			s = 1;
			for (auto u : v[i]){
				t = u - 1;
				if (s > n) break;
				t = min(t, n);
				ans[i] = max(ans[i], solve(s, t));
				s = u + 1;
			}
		}

		rep(i, 2, n - 1) printf("%d ", ans[i]); printf("%d
", ans[n]);
	}		

	return 0;
}

Problem 1006

考虑每个独立块。

Bob只有在每个独立块大小为2的时候才能赢。

所以当n为奇数的时候直接输出Alice

于是这个问题转化成了树上最大匹配问题。

我们求一遍树上最大匹配，结果为tmp。如果tmp <= k + 1则符合题意，Bob赢。

#include <bits/stdc++.h>

using namespace std;

#define rep(i, a, b)	for (int i(a); i <= (b); ++i)
#define dec(i, a, b)	for (int i(a); i >= (b); --i)

const int N = 1010;

int f[N][2];
vector <int> v[N];
int n, k;
int T;

void dfs(int x){
	for (auto u : v[x]){
		dfs(u);
		int mx = max(f[u][0], f[u][1]);
		f[x][0] += mx;
	}

	for (auto u : v[x]){
		int t = f[x][0] - max(f[u][0], f[u][1]) + f[u][0] + 1;
		f[x][1] = max(f[x][1], t);
	}
}


int main(){

	scanf("%d", &T);
	while (T--){
		scanf("%d%d", &n, &k);
		rep(i, 0, n + 1) v[i].clear();
		rep(i, 2, n){
			int x; scanf("%d", &x);
			v[x].push_back(i);
		}

		if (n & 1){ puts("Alice"); continue; }

		memset(f, 0, sizeof f);
		dfs(1);
		int tmp = max(f[1][0], f[1][1]);
		if (tmp * 2 == n && tmp <= k + 1) puts("Bob");
		else puts("Alice");
	}


	return 0;
}

Problem 1008

枚举一下中心向外延伸

如果和超过了一定的值就弹掉中间的位置

#include<bits/stdc++.h>
using namespace std;
const int inf=(1<<30)-1;
const int maxn=100010;
#define REP(i,n) for(int i=(0);i<(n);i++)
#define FOR(i,j,n) for(int i=(j);i<=(n);i++)
typedef long long ll;
int m;
int T;
char s[maxn];
int mx=0;

void cal(int x,int y)
{
    int l=0,r=0,sum=0;
    while(y-r>x+r){
        sum+=abs(s[x+r]-s[y-r]);
        r++;
        if(y-l-l-x+1<=2*mx)break;
        while(sum>m){
            sum-=abs(s[x+l]-s[y-l]);
            l++;
        }
        mx=max(mx,r-l);
    }
}
int main()
{
    scanf("%d",&T);
    while(T--)
    {
        scanf("%d",&m);
        scanf("%s",s);
        mx=0;
        int n=strlen(s);
        for(int i=n-1;i>0;i--) cal(0,i);
        for(int i=1;i<n-1;i++) cal(i,n-1);
        printf("%d
",mx);
    }
    return 0;
}

Problem 1011

直接统计即可

不过要判断一下韦恩图的每个部分都是非负数

#include<iostream>
#include<cstdio>
#include<cmath>
#include<cstdlib>
#include<algorithm>
#include<cstring>
#include<string>
#include<vector>
#include<map>
#include<set>
#include<queue>
using namespace std;
int _,n;
int a[8];
int main()
{
    scanf("%d",&_);
    while (_--)
    {
        scanf("%d",&n);
        int ans=0;
        int i,j;
        for (i=1;i<=n;i++)
        {
            int tot=0;
            bool can=true;
            for (j=1;j<=7;j++)
                scanf("%d",&a[j]);
            tot+=a[7];
            if (a[6]>=a[7])
                tot+=a[6]-a[7];
            else
            {
                can=false;
                continue;
            }
            if (a[5]>=a[7])
                tot+=a[5]-a[7];
            else
            {
                can=false;
                continue;
            }
            if (a[4]>=a[7])
                tot+=a[4]-a[7];
            else
            {
                can=false;
                continue;
            }
            if (a[3]>=a[5]+a[6]-a[7])
                tot+=a[3]-(a[5]+a[6]-a[7]);
            else
            {
                can=false;
                continue;
            }
            if (a[2]>=a[4]+a[5]-a[7])
                tot+=a[2]-(a[4]+a[5]-a[7]);
            else
            {
                can=false;
                continue;
            }
            if (a[1]>=a[4]+a[6]-a[7])
                tot+=a[1]-(a[4]+a[6]-a[7]);
            else
            {
                can=false;
                continue;
            }
            if (can) ans=max(ans,tot);
        }
        printf("%d
",ans);
    }
    return 0;
}