(没有)解决结构化(V) csp的良好记录和robdd

Karim Boutaleb, Philippe Jégou, C. Terrioux
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引用次数: 8

摘要

结果表明,采用结构方法可以有效地求解低宽度约束满足问题。然而,这些方法通常存在一个重要的缺点:它们通常需要大量的内存空间,这使得它们难以使用或不可能使用。例如,由于有货无货的记录,BTD方法有效地解决了困难的情况。由于这种记录可能需要指数级的内存大小,因此利用紧凑的数据结构至关重要。在本文中,我们提出在二进制决策图(BDD)中存储(不)商品。bdd是一种数据结构,它以紧凑和规范的形式有效地表示信息。最后,我们评估了这种权衡的实际意义,它允许节省空间内存,从而解决没有bdd就无法解决的问题
本文章由计算机程序翻译,如有差异,请以英文原文为准。
(No)good Recording and ROBDDs for Solving Structured (V)CSPs
It was shown that constraint satisfaction problems (CSPs) with a low width can be solved efficiently by structural methods. However, these methods often present an important drawback: they generally require a large amount of memory space, what makes their use difficult or impossible. For instance, the BTD method solves efficiently difficult instances thanks to the recording of goods and nogoods. As this recording may require an exponential memory size, the exploitation of a compact data structure is crucial. In this paper, we propose to store (no)goods in binary decision diagrams (BDD). BDDs are data structures which efficiently represent informations in a compact and canonical form. Finally, we assess the practical interest of this tradeoff which allows to save space memory and consequently to solve problems that cannot be solved without BDDs
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