Codeforces Round #254 (Div. 1) C. DZY Loves Colors 分块

C. DZY Loves Colors

题目连接:

http://codeforces.com/contest/444/problem/C

Description

DZY loves colors, and he enjoys painting.

On a colorful day, DZY gets a colorful ribbon, which consists of n units (they are numbered from 1 to n from left to right). The color of the i-th unit of the ribbon is i at first. It is colorful enough, but we still consider that the colorfulness of each unit is 0 at first.

DZY loves painting, we know. He takes up a paintbrush with color x and uses it to draw a line on the ribbon. In such a case some contiguous units are painted. Imagine that the color of unit i currently is y. When it is painted by this paintbrush, the color of the unit becomes x, and the colorfulness of the unit increases by |x - y|.

DZY wants to perform m operations, each operation can be one of the following:

Paint all the units with numbers between l and r (both inclusive) with color x.
Ask the sum of colorfulness of the units between l and r (both inclusive).
Can you help DZY?

Input

The first line contains two space-separated integers n, m (1 ≤ n, m ≤ 105).

Each of the next m lines begins with a integer type (1 ≤ type ≤ 2), which represents the type of this operation.

If type = 1, there will be 3 more integers l, r, x (1 ≤ l ≤ r ≤ n; 1 ≤ x ≤ 108) in this line, describing an operation 1.

If type = 2, there will be 2 more integers l, r (1 ≤ l ≤ r ≤ n) in this line, describing an operation 2.

Output

For each operation 2, print a line containing the answer — sum of colorfulness.

Sample Input

3 3
1 1 2 4
1 2 3 5
2 1 3

Sample Output

8

题意

一开始,a[i]=i,b[i]=0

然后两个操作

1.使得[l,r]的b[i]+=fabs(x-a[i]),a[i]=x

2.查询[l,r]的b[i]和

题解:

这种乱七八糟更新的,直接分块去莽一波就好了

打一个lazy标记,然后直接跑分块就好了……

当然,这个更新为定值的,其实一般都是最后可以缩成一个点什么的,用一个线段树去莽,这感觉也是可以做的,这是套路

代码

#include <bits/stdc++.h>

using namespace std;

#define lowbit(x) ((x)&(-x))
const int maxn = 1e5 + 500;

inline int read()
{
    int x=0,f=1;char ch=getchar();
    while(ch<'0'||ch>'9'){if(ch=='-')f=-1;ch=getchar();}
    while(ch>='0'&&ch<='9'){x=x*10+ch-'0';ch=getchar();}
    return x*f;
}

int n , m , unit , a[maxn] ;
long long extra[maxn] , lz[maxn] , ls[maxn] , b[maxn];

int main( int argc , char * argv[] ){
    n = read() , m = read();
	unit = sqrt( n );
	for(int i = 0 ; i < n ; ++ i) a[i] = i + 1;
	while( m -- ){
		int op = read() , l = read() , r = read() , x;
		--l;
		--r;
		if( op == 1 ){
			x = read();
			for(int i = l ; i <= r ; ){
				int idx = i / unit;
				int st = idx * unit;
				int ed = min( n , ( idx + 1 ) * unit );
				if( i == st && r >= ed - 1 ){
					if( ls[idx] ){
						extra[idx] += 1LL * abs( x - ls[idx] ) * ( ed - st ) ;
						lz[idx] += abs( x - ls[idx] );
						ls[idx] = x;
					}
					else{
						for(int j = st ; j < ed ; ++ j){
							b[j] += abs( a[j] - x );
							extra[idx] += abs( a[j] - x );
							a[j] = x;
						}
						ls[idx] = x;
					}
					i = ed;
				}else{
					if( ls[idx] ){
						for(int j = st ; j < ed ; ++ j) a[j] = ls[idx];
						ls[idx] = 0;
					}
					extra[idx] += abs( a[i] - x );
					b[i] += abs( a[i] - x );
					a[i] = x;
					++ i;
				}
			}
		}else{
			long long res = 0;
			for(int i = l ; i <= r ; ){
				int idx = i / unit;
				int st = idx * unit;
				int ed = min( n , ( idx + 1 ) * unit );
				if( i == st && r >= ed - 1 ){
					res += extra[idx];
					i = ed;
				}else{
					res += b[i] + lz[idx];
					++ i;
				}
			}
			printf("%lld\n" , res );
		}
	}
	return 0;
}
posted @ 2016-05-07 16:46  qscqesze  阅读(470)  评论(0编辑  收藏  举报