题目:id=2411" target="_blank">poj 2411 Mondriaan's Dream 题意:给出一个n*m的矩阵,让你用1*2的矩阵铺满,然后问你最多由多少种不同的方案. 分析:这是一个比較经典的题目.网上各种牛B写法一大堆.题解也是 我们能够定义状态:dp[i][st]:在第 i 行状态为 st 的时候的最慷慨案数. 然后转移方程:dp[i][st] = sum (dp[i-1][ss]) 即全部的当前行都是由上一行合法的状态转移而来. 而状态…

状压DP Mondriaan's Dream Time Limit: 3000MS Memory Limit: 65536K Total Submissions: 9938 Accepted: 5750 Description Squares and rectangles fascinated the famous Dutch painter Piet Mondriaan. One night, after producing the drawings in his 'toilet series…

链接:http://poj.org/problem?id=2411 题意:题目描写叙述:用1*2 的矩形通过组合拼成大矩形.求拼成指定的大矩形有几种拼法. 參考博客:http://blog.csdn.net/shiwei408/article/details/8821853 思路:我看了上面的博客,想了非常久才明确是怎样处理状态的. 因为是1 * 2,所以能够通过相邻两行的转化关系来推导. 两行铺不铺砖能够用二进制来表示,可是假设暴力枚举,大概有2^10 * 2 ^ 10 次那么多状态(尽管当中…

题目传送门 /* 题意:一个h*w的矩阵(1<=h,w<=11),只能放1*2的模块,问完全覆盖的不同放发有多少种? 状态压缩DP第一道:dp[i][j] 代表第i行的j状态下的种数(状态即为二进制10101110101...的样子) 横着的定义为11,竖着的定义为01,当两行的状态已填满并且没有出现奇数个1时,累加个数 即两行状态相或要全为1,两行相与要没有连续的1的个数是奇数个 */ #include <cstdio> #include <iostream> #in…

题目链接: http://poj.org/problem?id=2411 Mondriaan's Dream Time Limit: 3000MSMemory Limit: 65536K 问题描述 Squares and rectangles fascinated the famous Dutch painter Piet Mondriaan. One night, after producing the drawings in his 'toilet series' (where he had…

一.Description Squares and rectangles fascinated the famous Dutch painter Piet Mondriaan. One night, after producing the drawings in his 'toilet series' (where he had to use his toilet paper to draw on, for all of his paper was filled with squares and…

题目:Mondriaan's Dream 链接:http://poj.org/problem?id=2411 题意:用 1*2 的瓷砖去填 n*m 的地板,问有多少种填法. 思路: 很久很久以前便做过的一道题目,状压DP,当时写得估计挺艰辛的,今天搜插头DP又搜到它,就先用状压DP写了下,顺利多了,没一会就出来了,可惜因为long long没有1A. 思路挺简单,一行一行解决,每一列用1 表示对下一行有影响,用0 表示对下一行没有影响,所以一行最多2048 种可能,然后要筛选一下,因为有些本身就…

题目:http://poj.org/problem?id=2411 Input The input contains several test cases. Each test case is made up of two integer numbers: the height h and the width w of the large rectangle. Input is terminated by h=w=0. Otherwise, 1<=h,w<=11. Output For eac…

Description Squares and rectangles fascinated the famous Dutch painter Piet Mondriaan. One night, after producing the drawings and height in varying ways. Expert as he was in this material, he saw at a glance that he'll need a computer to calculate t…

题目链接: http://poj.org/problem?id=2411 题目意思: 给一个n*m的矩形区域,将1*2和2*1的小矩形填满方格,问一共有多少种填法. 解题思路: 用轮廓线可以过. 对每一个格子,枚举上一个格子的状态,得到当前格子的所有状态值. dp[cur][s]表示当前格子的轮廓线状态为s的情况下的总数 代码: #include<iostream> #include<cmath> #include<cstdio> #include<cstdlib…