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概述

题目链接

http://codeforces.com/gym/100917/problem/D

 

problem description

Famous Berland coder and IT manager Linus Gates announced his next proprietary open-source system "Winux 10.04 LTS"

In this system command "dir -C" prints list of all files in the current catalog in multicolumn mode.

Lets define the multicolumn mode for number of lines l. Assume that filenames are already sorted lexicographically.

  • We split list of filenames into several continuous blocks such as all blocks except for maybe last one consist of l filenames, and last block consists of no more than l filenames, then blocks are printed as columns.
  • Width of each column wi is defined as maximal length of the filename in appropriate block.
  • Columns are separated by 1 × l column of spaces.
  • So, width of the output is calculated as , i.e. sum of widths of each column plus number of columns minus one.

Example of multi-column output:


a accd e t
aba b f wtrt
abacaba db k

In the example above width of output is equal to 19.

"dir -C" command selects minimal l, such that width of the output does not exceed width of screen w.

Given information about filename lengths and width of screen, calculate number of lines l printed by "dir -C" command.

Input

First line of the input contains two integers n and w — number of files in the list and width of screen (1 ≤ n ≤ 105, 1 ≤ w ≤ 109).

Second line contains n integers fi — lengths of filenames. i-th of those integers represents length of i-th filename in the lexicographically ordered list (1 ≤ fi ≤ w).

Output

Print one integer — number of lines l, printed by "dir -C" command.

Examples
input
11 20
1 3 7 4 1 2 1 1 1 1 4
output
3

题意:有n个目录名字符串,长度为a[1]~a[n] 屏幕宽为w ,现在要按照已经给的目录循序一列一列的放,每一列放x个,最后一列放<=x个 要求每一列目录名左端对整齐 ,形成一个长方形的块 ,且块与块之间空一格,且不能超过屏幕的宽度,求最小的行数;

思路:先对输入长度处理,用ST算出每个区间的最大值,然后枚举行数x 从1 ~ n;

代码如下:
#include <iostream>
#include <algorithm>
#include <cstdio>
#include <cstring>
#include <map>
#include <cmath>
using namespace std;
typedef long long LL;
const int MAXN = 1e5+5;
int a[MAXN],m[30][MAXN];
int n;
LL w;
int main()
{
while(scanf("%d%I64d",&n,&w)!=EOF)
{
memset(m,0,sizeof(m));
for(int i=1;i<=n;i++)
{
scanf("%d",&a[i]);
m[0][i]=a[i];
}
for(int i=1;i<=(int)log(n)/log(2);i++)
{
for(int j=1;j+(1<<i)-1<=n;j++)
m[i][j]=max(m[i-1][j],m[i-1][j+(1<<(i-1))]);
}
for(int i=1;i<=n;i++)
{
int k=(int)log(i);
long long sum=0;
for(int j=0;j<n/i;j++)
{
sum+=(long long)max(m[k][j*i+1],m[k][i*(j+1)-(1<<k)+1])+1;
}
if(n%i!=0) {
k=(int)log(n%i);
sum+=(long long)max(m[k][n-n%i+1],m[k][n-(1<<k)+1])+1;
}
if(sum-1<=w){
printf("%dn",i);
break;
}
}
}
return 0;
}

 

转载于:https://www.cnblogs.com/chen9510/p/5926174.html

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