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Mining Time-constrained Sequential Patterns with Constraint Programming

机译:用约束编程挖掘时间约束顺序模式

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Constraint Programming (CP) has proven to be an effective platform for constraint based sequence mining. Previous work has focused on standard frequent sequence mining, as well as frequent sequence mining with a maximum 'gap' between two matching events in a sequence. The main challenge in the latter is that this constraint can not be imposed independently of the omnipresent frequency constraint. Indeed, the gap constraint changes whether a subsequence is included in a sequence, and hence its frequency. In this work, we go beyond that and investigate the integration of timed events and constraining the minimum/maximum gap as well as minimum/maximum span. The latter constrains the allowed time between the first and last matching event of a pattern. We show how the three are interrelated, and what the required changes to the frequency constraint are. Key in our approach is the concept of an extension window defined by gap/span and we develop techniques to avoid scanning the sequences needlessly, as well as using a backtracking-aware data structure. Experiments demonstrate that the proposed approach outperforms both specialized and CP-based approaches in almost all cases and that the advantage increases as the minimum frequency threshold decreases. This paper is an extension of the original manuscript presented at CPAIOR'17 [5].
机译:事实证明,约束编程(CP)是基于约束的序列挖掘的有效平台。先前的工作集中在标准的频繁序列挖掘以及频繁序列挖掘上,序列中两个匹配事件之间具有最大“差距”。后者的主要挑战是不能独立于无处不在的频率约束来施加此约束。实际上,间隙约束改变了序列中是否包括子序列,并因此改变其频率。在这项工作中,我们不仅仅局限于此,还研究了定时事件的集成并限制了最小/最大间隙以及最小/最大跨度。后者限制了模式的第一个和最后一个匹配事件之间的允许时间。我们展示了这三个之间是如何相互关联的,以及对频率约束的所需更改是什么。我们方法的关键是由间隔/跨度定义的扩展窗口的概念,我们开发了避免不必要地扫描序列以及使用回溯感知数据结构的技术。实验表明,所提出的方法在几乎所有情况下均优于专用方法和基于CP的方法,并且随着最小频率阈值的降低,其优势也随之增加。本文是CPAIOR'17上发表的原始手稿的扩展[5]。

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