An Experimental Study of the Treewidth of Real-World Graph Data (Extended Version)

S. Maniu, P. Senellart, Suraj Jog
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引用次数: 47

Abstract

Treewidth is a parameter that measures how tree-like a relational instance is, and whether it can reasonably be decomposed into a tree. Many computation tasks are known to be tractable on databases of small treewidth, but computing the treewidth of a given instance is intractable. This article is the first large-scale experimental study of treewidth and tree decompositions of real-world database instances (25 datasets from 8 different domains, with sizes ranging from a few thousand to a few million vertices). The goal is to determine which data, if any, can benefit of the wealth of algorithms for databases of small treewidth. For each dataset, we obtain upper and lower bound estimations of their treewidth, and study the properties of their tree decompositions. We show in particular that, even when treewidth is high, using partial tree decompositions can result in data structures that can assist algorithms.
现实世界图数据树宽度的实验研究(扩展版)
Treewidth是一个参数,用于度量关系实例有多像树,以及它是否可以合理地分解为树。已知许多计算任务在树宽较小的数据库上是可处理的,但是计算给定实例的树宽是难以处理的。本文是对真实世界数据库实例(来自8个不同领域的25个数据集,大小从几千到几百万个顶点)的树宽度和树分解的第一次大规模实验研究。目标是确定哪些数据(如果有的话)可以从小树宽数据库的丰富算法中受益。对于每个数据集,我们获得了它们的树宽度的上界和下界估计,并研究了它们的树分解性质。我们特别指出,即使树宽很高,使用部分树分解也可以产生有助于算法的数据结构。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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