本文介绍了一种解决构造最小加法链问题的方法,即通过迭代加深搜索策略来找到满足条件的序列。文章提供了题目描述、输入输出示例,并详细解释了题意和分析思路。核心在于,当序列长度增加时,如果当前最大值仍小于目标数n,那么该分支不可能产生解。代码部分展示了实现这一算法的过程,同时作者分享了对此类问题的感想,认为每次做迭代加深搜索都像是在编写暴力解法加上各种优化措施。
前言
最讨厌英文题了(因为读不懂)
题目描述
An addition chain for n is an integer sequence < a0, a1, a2, … , am > with the following four properties:
• a0 = 1
• am = n
• a0 < a1 < a2 < · · · < am−1 < am
• For each k (1 ≤ k ≤ m) there exist two (not neccessarily different) integers i and j (0 ≤ i, j ≤ k−1)
with ak = ai + aj
You are given an integer n. Your job is to construct an addition chain for n with minimal length.
If there is more than one such sequence, any one is acceptable.
For example, < 1, 2, 3, 5 > and < 1, 2, 4, 5 > are both valid solutions when you are asked for an
addition chain for 5.
Input
The input file will contain one or more test cases. Each test case consists of one line containing one
integer n (1 ≤ n ≤ 10000). Input is terminated by a value of zero (0) for n.
Output
For each test case, print one line containing the required integer sequence. Separate the numbers by
one blank.
Sample Input
5
7
12
15
77
0
Sample Output
1 2 4 5
1 2 4 6 7
1 2 4 8 12
1 2 4 5 10 15
1 2 4 8 9 17 34 68 77
题意
给你一个n,要求一个<1……n>的序列,每一个数必须比前面的书都大,并且是前面任意两数的和(这两个数可以相等)
分析
没有给出长度,那还怎么去搜索啊!
没关系,有一种奇葩的搜索叫“迭代加深搜索”
每一次搜索的时候,我们都枚举序列的长度就行了
然后去找在这层的正确解
对这道题,有一个小小的优化
大意就是说,就算每次都取最大值,如果到了最后还是小于n的话,那这个分支一定是无解的
下为核心搜索部分
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