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  • codeforces580E. Kefa and Watch

    传送门:http://codeforces.com/problemset/problem/580/E


    E. Kefa and Watch
    time limit per test
    1 second
    memory limit per test
    256 megabytes
    input
    standard input
    output
    standard output

    One day Kefa the parrot was walking down the street as he was on the way home from the restaurant when he saw something glittering by the road. As he came nearer he understood that it was a watch. He decided to take it to the pawnbroker to earn some money.

    The pawnbroker said that each watch contains a serial number represented by a string of digits from 0 to 9, and the more quality checks this number passes, the higher is the value of the watch. The check is defined by three positive integers lr and d. The watches pass a check if a substring of the serial number from l to r has period d. Sometimes the pawnbroker gets distracted and Kefa changes in some substring of the serial number all digits to c in order to increase profit from the watch.

    The seller has a lot of things to do to begin with and with Kefa messing about, he gave you a task: to write a program that determines the value of the watch.

    Let us remind you that number x is called a period of string s (1 ≤ x ≤ |s|), if si  =  si + x for all i from 1 to |s|  -  x.

    Input

    The first line of the input contains three positive integers nm and k (1 ≤ n ≤ 1051 ≤ m + k ≤ 105) — the length of the serial number, the number of change made by Kefa and the number of quality checks.

    The second line contains a serial number consisting of n digits.

    Then m + k lines follow, containing either checks or changes.

    The changes are given as 1 l r с (1 ≤ l ≤ r ≤ n0 ≤ c ≤ 9). That means that Kefa changed all the digits from the l-th to the r-th to be c.

    The checks are given as 2 l r d (1 ≤ l ≤ r ≤ n1 ≤ d ≤ r - l + 1).

    Output

    For each check on a single line print "YES" if the watch passed it, otherwise print "NO".

    Sample test(s)
    input
    3 1 2
    112
    2 2 3 1
    1 1 3 8
    2 1 2 1
    
    output
    NO
    YES
    
    input
    6 2 3
    334934
    2 2 5 2
    1 4 4 3
    2 1 6 3
    1 2 3 8
    2 3 6 1
    
    output
    NO
    YES
    NO
    
    Note

    In the first sample test two checks will be made. In the first one substring "12" is checked on whether or not it has period 1, so the answer is "NO". In the second one substring "88", is checked on whether or not it has period 1, and it has this period, so the answer is "YES".

    In the second statement test three checks will be made. The first check processes substring "3493", which doesn't have period 2. Before the second check the string looks as "334334", so the answer to it is "YES". And finally, the third check processes substring "8334", which does not have period 1.

    思路:首先对于第一种操作,可以用线段树维护哈希值,覆盖就打标记。

    而对于询问,怎样快速判定一个字符串是否循环节为D呢?

    充要条件就是len<=d(这个要记得写特判)或者s[1,len-d]==s[d,len]

    为什么可以这样判呢,这很简单

    我们把字符串分成n段,每段长为d,错开一段后比较若相等,那每段就相等了,于是循环节为d

    于是用线段树维护一下就可以了。

    #include<cstdio>
    #include<cstring>
    #include<algorithm>
    #define fi first
    #define se second
    #define PI pair<long long,long long>
    #define mp(a,b) make_pair(a,b)
    #define ls (p<<1)
    #define rs ((p<<1)|1)
    #define mid ((l+r)>>1)
    const int mod1=573292817,mod2=1e9+7,base1=233,base2=2333,maxn=100010,maxt=maxn<<3;
    typedef long long ll;
    using namespace std;
    int n,m,k;char s[maxn];
    ll pow1[maxn],pow2[maxn],sp1[maxn],sp2[maxn];
    struct node{ll v1,v2;int cov,len;};
    struct Segment_Tree{
    	node t[maxt];
    	void add_cov(int p,int c){
    		t[p].cov=c;
    		t[p].v1=c*sp1[t[p].len-1]%mod1;
    		t[p].v2=c*sp2[t[p].len-1]%mod2;
    	}
    	void down(int p){if (t[p].cov!=-1) add_cov(ls,t[p].cov),add_cov(rs,t[p].cov),t[p].cov=-1;}
    	node connect(node a,node b){
    		int len=a.len+b.len;
    		ll v1=(a.v1*pow1[b.len]+b.v1)%mod1;
    		ll v2=(a.v2*pow2[b.len]+b.v2)%mod2;
    		return (node){v1,v2,-1,len};
    	}
    	void update(int p){
    		t[p].v1=(t[ls].v1*pow1[t[rs].len]%mod1+t[rs].v1)%mod1;
    		t[p].v2=(t[ls].v2*pow2[t[rs].len]%mod2+t[rs].v2)%mod2;
    	}
    	void build(int p,int l,int r){
    		t[p].len=r-l+1,t[p].cov=-1;
    		if (l==r){t[p].v1=t[p].v2=s[l]-'0';return;}
    		build(ls,l,mid),build(rs,mid+1,r);
    		update(p);
    	}
    	void modify(int p,int l,int r,int a,int b,int c){		
    		if (l==a&&r==b){add_cov(p,c);return;}
    		down(p);
    		if (b<=mid) modify(ls,l,mid,a,b,c);
    		else if (a>mid) modify(rs,mid+1,r,a,b,c);
    		else modify(ls,l,mid,a,mid,c),modify(rs,mid+1,r,mid+1,b,c);
    		update(p);
    	}
    	node query(int p,int l,int r,int a,int b){
    		if (l==a&&r==b){return t[p];}
    		down(p);node ans;
    		if (b<=mid) ans=query(ls,l,mid,a,b);
    		else if (a>mid) ans=query(rs,mid+1,r,a,b);
    		else ans=connect(query(ls,l,mid,a,mid),query(rs,mid+1,r,mid+1,b));
    		//printf("%d %d %d %d %lld %lld
    ",l,r,a,b,ans.v1,ans.v2);
    		return ans;
    	}
    	PI query(int a,int b){node ans=query(1,1,n,a,b);return mp(ans.v1,ans.v2);}
    }T;
    
    void init(){
    	scanf("%d%d%d%s",&n,&m,&k,s+1),m=m+k;
    	pow1[0]=pow2[0]=sp1[0]=sp2[0]=1;
    	for (int i=1;i<=n+5;i++){
    		pow1[i]=pow1[i-1]*base1%mod1;
    		pow2[i]=pow2[i-1]*base2%mod2;
    		sp1[i]=(sp1[i-1]+pow1[i])%mod1;
    		sp2[i]=(sp2[i-1]+pow2[i])%mod2;
    	}
    	T.build(1,1,n);
    }
    void work(){
    	for (int i=1,op,a,b,c;i<=m;i++){
    		scanf("%d%d%d%d",&op,&a,&b,&c);
    		if (op==1) T.modify(1,1,n,a,b,c);
    		else{
    			if (b-a+1<=c){puts("YES");continue;}
    			else puts(T.query(a,b-c)==T.query(a+c,b)?"YES":"NO");
    			//for (int i=a;i<=b-c;i++) printf("%lld",T.query(i,i));puts("");
    			//for (int i=a+c;i<=b;i++) printf("%lld",T.query(i,i));puts("");
    			//printf("%lld %lld
    ",T.query(a,b-c).fi,T.query(a+c,b).fi);
    		}
    	}
    }
    int main(){
    	init(),work();
    	return 0;
    }
    /*
    20 1 2
    34075930750342906718
    2 1 20 20
    1 1 20 6
    2 1 20 1
    */



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  • 原文地址:https://www.cnblogs.com/thythy/p/5493510.html
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