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 程式師世界 >> 編程語言 >> C語言 >> C++ >> 關於C++ >> HDU4046 Panda(線段樹)

HDU4046 Panda(線段樹)

編輯:關於C++

Panda

Time Limit: 10000/4000 MS (Java/Others)Memory Limit: 32768/32768 K (Java/Others) Total Submission(s): 3167Accepted Submission(s): 1032

Problem Description When I wrote down this letter, you may have been on the airplane to U.S.
We have known for 15 years, which has exceeded one-fifth of my whole life. I still remember the first time we went to the movies, the first time we went for a walk together. I still remember the smiling face you wore when you were dressing in front of the mirror. I love your smile and your shining eyes. When you are with me, every second is wonderful.
The more expectation I had, the more disappointment I got. You said you would like to go to U.S.I know what you really meant. I respect your decision. Gravitation is not responsible for people falling in love. I will always be your best friend. I know the way is difficult. Every minute thinking of giving up, thinking of the reason why you have held on for so long, just keep going on. Whenever you’re having a bad day, remember this: I LOVE YOU.
I will keep waiting, until you come back. Look into my eyes and you will see what you mean to me.
There are two most fortunate stories in my life: one is finally the time I love you exhausted. the other is that long time ago on a particular day I met you.
Saerdna.

It comes back to several years ago. I still remember your immature face.
The yellowed picture under the table might evoke the countless memory. The boy will keep the last appointment with the girl, miss the heavy rain in those years, miss the love in those years. Having tried to conquer the world, only to find that in the end, you are the world. I want to tell you I didn’t forget. Starry night, I will hold you tightly.

Saerdna loves Panda so much, and also you know that Panda has two colors, black and white.
Saerdna wants to share his love with Panda, so he writes a love letter by just black and white.
The love letter is too long and Panda has not that much time to see the whole letter.
But it's easy to read the letter, because Saerdna hides his love in the letter by using the three continuous key words that are white, black and white.
But Panda doesn't know how many Saerdna's love there are in the letter.
Can you help Panda?

Input An integer T means the number of test cases T<=100
For each test case:
First line is two integers n, m
n means the length of the letter, m means the query of the Panda. n<=50000,m<=10000
The next line has n characters 'b' or 'w', 'b' means black, 'w' means white.
The next m lines
Each line has two type
Type 0: answer how many love between L and R. (0<=L<=R Type 1: change the kth character to ch(0<=k
Output For each test case, output the case number first.
The answer of the question.

Sample Input

2 5 2 bwbwb 0 0 4 0 1 3 5 5 wbwbw 0 0 4 0 0 2 0 2 4 1 2 b 0 0 4

Sample Output

Case 1: 1 1 Case 2: 2 1 1 0

Source
#include 
#include 
#include 
#include 
#include 
#include
#include 
#include 
#include 
#include 
using namespace std;
const double eps = 1e-6;
const double pi = acos(-1.0);
const int INF = 0x3f3f3f3f;
const int MOD = 1000000007;
#define ll long long
#define CL(a,b) memset(a,b,sizeof(a))
#define MAXN 500010

struct node
{
    int l,r,s;
}t[MAXN<<2];
int a[MAXN];///標記是否有wbw
int n,m;

void build(int l, int r, int i)
{
    t[i].l = l;
    t[i].r = r;
    if(l == r) {t[i].s = a[l]; return ;}
    int mid = (l+r)>>1;
    build(l, mid, i<<1);
    build(mid+1, r, i<<1|1);
    t[i].s = t[i<<1].s + t[i<<1|1].s;
}

void update(int x, int num, int i)
{
    if(t[i].l == t[i].r)
    {
        t[i].s = num;
        return ;
    }
    int mid = (t[i].l+t[i].r)>>1;
    if(x <= mid) update(x, num, i<<1);
    else update(x, num, i<<1|1);
    t[i].s = t[i<<1].s + t[i<<1|1].s;
}

int query(int l, int r, int i)
{
    if(t[i].l==l && t[i].r==r)
        return t[i].s;
    int mid = (t[i].l+t[i].r)>>1;
    if(r <= mid) return query(l, r, i<<1);
    else if(l > mid) return query(l, r, i<<1|1);
    else
        return query(l, mid, i<<1) + query(mid+1, r, i<<1|1);
}

int main()
{
    int T;
    char str[MAXN];
    int L,R,x,k;
    char ch;
    scanf("%d",&T);
    for(int cas=1; cas<=T; cas++)
    {
        scanf("%d%d",&n,&m);
        scanf("%s",str);
        CL(a, 0);
        for(int i=1; i R-1) puts("0");
                else printf("%d\n",query(L+1, R-1, 1));
            }
            else
            {
                scanf("%d %c",&x,&ch);
                if(str[x] == ch) continue;
                str[x] = ch;
                ///注意邊界
                if(x>1&&str[x-2]=='w'&&str[x-1]=='b'&&str[x]=='w')
                {
                    if(a[x-1] == 0)///如果之前不是wbw,更改某字符後構成了wbw
                        update(x-1, 1, 1);
                    a[x-1] = 1;///標記該點是wbw
                }
                else if(x>1&&a[x-1]==1)///之前就是wbw,更改某一字符後必定不是wbw
                {
                    update(x-1, 0, 1);
                    a[x-1] = 0;
                }
                ///下面的和上面道理一樣
                if(x>0&&x0&&x

The 36th ACM/ICPC Asia Regional Beijing Site —— Online Contest
題意:一個只含有w和b的字符串,每次輸出一個區間內含有多少個‘wbw’字符串,或者改變一個字符。 分析:線段樹單點更新,區間查詢。對於原串,用一個數組來標記該點的左右是否構成‘wbw’,是為1,否為0。 Ps:有些東西並不能直接得到答案,稍微變化下自己的思維,答案就很明了了,線段樹的題還是做的太少了。


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