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  • codeforces 703D D. Mishka and Interesting sum(树状数组)

    题目链接:

    D. Mishka and Interesting sum

    time limit per test
    3.5 seconds
    memory limit per test
    256 megabytes
    input
    standard input
    output
    standard output

    Little Mishka enjoys programming. Since her birthday has just passed, her friends decided to present her with array of non-negative integers a1, a2, ..., an of n elements!

    Mishka loved the array and she instantly decided to determine its beauty value, but she is too little and can't process large arrays. Right because of that she invited you to visit her and asked you to process m queries.

    Each query is processed in the following way:

    1. Two integers l and r (1 ≤ l ≤ r ≤ n) are specified — bounds of query segment.
    2. Integers, presented in array segment [l,  r] (in sequence of integers al, al + 1, ..., areven number of times, are written down.
    3. XOR-sum of written down integers is calculated, and this value is the answer for a query. Formally, if integers written down in point 2 are x1, x2, ..., xk, then Mishka wants to know the value , where  — operator of exclusive bitwise OR.

    Since only the little bears know the definition of array beauty, all you are to do is to answer each of queries presented.

    Input

    The first line of the input contains single integer n (1 ≤ n ≤ 1 000 000) — the number of elements in the array.

    The second line of the input contains n integers a1, a2, ..., an (1 ≤ ai ≤ 109) — array elements.

    The third line of the input contains single integer m (1 ≤ m ≤ 1 000 000) — the number of queries.

    Each of the next m lines describes corresponding query by a pair of integers l and r (1 ≤ l ≤ r ≤ n) — the bounds of query segment.

    Output

    Print m non-negative integers — the answers for the queries in the order they appear in the input.

    Examples
    input
    3
    3 7 8
    1
    1 3
    output
    0
    input
    7
    1 2 1 3 3 2 3
    5
    4 7
    4 5
    1 3
    1 7
    1 5
    output
    0
    3
    1
    3
    2

    题意:

    问一个区间里面出现偶数次的数字的异或和是多少;

    思路:

    一个区间的异或和得到的是出现奇数次的数字的异或和,现在再异或个所有的数字的异或和就是答案了;离线处理,按有区间排序,
    结合map存与每个数相同的最近的前边的前驱位置,然后用树状数组每次删去不用的前驱位置;

    AC代码:

    /************************************************
    ┆  ┏┓   ┏┓ ┆   
    ┆┏┛┻━━━┛┻┓ ┆
    ┆┃       ┃ ┆
    ┆┃   ━   ┃ ┆
    ┆┃ ┳┛ ┗┳ ┃ ┆
    ┆┃       ┃ ┆ 
    ┆┃   ┻   ┃ ┆
    ┆┗━┓    ┏━┛ ┆
    ┆  ┃    ┃  ┆      
    ┆  ┃    ┗━━━┓ ┆
    ┆  ┃  AC代马   ┣┓┆
    ┆  ┃           ┏┛┆
    ┆  ┗┓┓┏━┳┓┏┛ ┆
    ┆   ┃┫┫ ┃┫┫ ┆
    ┆   ┗┻┛ ┗┻┛ ┆      
    ************************************************ */ 
     
     
    #include <iostream>
    #include <cstdio>
    #include <cstring>
    #include <algorithm>
    #include <cmath>
    #include <bits/stdc++.h>
    #include <stack>
     
    using namespace std;
     
    #define For(i,j,n) for(int i=j;i<=n;i++)
    #define mst(ss,b) memset(ss,b,sizeof(ss));
     
    typedef  long long LL;
     
    template<class T> void read(T&num) {
        char CH; bool F=false;
        for(CH=getchar();CH<'0'||CH>'9';F= CH=='-',CH=getchar());
        for(num=0;CH>='0'&&CH<='9';num=num*10+CH-'0',CH=getchar());
        F && (num=-num);
    }
    int stk[70], tp;
    template<class T> inline void print(T p) {
        if(!p) { puts("0"); return; }
        while(p) stk[++ tp] = p%10, p/=10;
        while(tp) putchar(stk[tp--] + '0');
        putchar('
    ');
    }
     
    const LL mod=1e9+7;
    const double PI=acos(-1.0);
    const int inf=1e9;
    const int N=1e6+10;
    const int maxn=2e3+14;
    const double eps=1e-12;
    
    int n,a[N],sum[N],ha[N];
    int lowbit(int x){return x&(-x);}
    
    void update(int x,int temp)
    {
        while(x<=n)
        {
            sum[x]^=temp;
            x+=lowbit(x);
        }
    }
    
    int query(int x)
    {
        int s=0;
        while(x)
        {
            s^=sum[x];
            x-=lowbit(x);
        }
        return s;
    }
    struct node
    {
        int l,r,id;
    }po[N];
    int cmp(node a,node b)
    {
        //if(a.r==b.r)return a.l<b.l;
        return a.r<b.r;
    }
    map<int,int>mp;
    int pre[N],ans[N];
    int main()
    {      
            read(n);
            For(i,1,n)
            {
                read(a[i]);
                ha[i]=ha[i-1]^a[i];
                pre[i]=mp[a[i]];
                mp[a[i]]=i;
            }
            int q;
            read(q);
            For(i,1,q)
            {
                read(po[i].l);
                read(po[i].r);
                po[i].id=i;
            }
            sort(po+1,po+q+1,cmp);//cout<<"##"<<endl;
            int p=1;
            For(i,1,q)
            {
                while(p<=po[i].r)
                {
                    if(pre[p])update(pre[p],a[pre[p]]);
                    update(p,a[p]);
                    p++;
                }
                ans[po[i].id]=(ha[po[i].r]^ha[po[i].l-1]^query(po[i].r)^query(po[i].l-1));
                //cout<<po[i].id<<" "<<sum[po[i].l-1]<<" "<<sum[3]<<" "<<sum[po[i].r]<<endl;
            }
            For(i,1,q)printf("%d
    ",ans[i]);
            return 0;
    }
    

      

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  • 原文地址:https://www.cnblogs.com/zhangchengc919/p/5751404.html
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