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首页> 外文期刊>IEEE Transactions on Knowledge and Data Engineering >Supporting Flexible, Efficient, and User-Interpretable Retrieval of Similar Time Series
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Supporting Flexible, Efficient, and User-Interpretable Retrieval of Similar Time Series

机译:支持类似时间序列的灵活,高效和用户可解释的检索

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摘要

Supporting decision making in domains in which the observed phenomenon dynamics have to be dealt with, can greatly benefit of retrieval of past cases, provided that proper representation and retrieval techniques are implemented. In particular, when the parameters of interest take the form of time series, dimensionality reduction and flexible retrieval have to be addresses to this end. Classical methodological solutions proposed to cope with these issues, typically based on mathematical transforms, are characterized by strong limitations, such as a difficult interpretation of retrieval results for end users, reduced flexibility and interactivity, or inefficiency. In this paper, we describe a novel framework, in which time-series features are summarized by means of Temporal Abstractions, and then retrieved resorting to abstraction similarity. Our approach grants for interpretability of the output results, and understandability of the (user-guided) retrieval process. In particular, multilevel abstraction mechanisms and proper indexing techniques are provided, for flexible query issuing, and efficient and interactive query answering. Experimental results have shown the efficiency of our approach in a scalability test, and its superiority with respect to the use of a classical mathematical technique in flexibility, user friendliness, and also quality of results.
机译:如果必须实施适当的表示和检索技术,则在必须处理观察到的现象动态的领域中支持决策,可以极大地有益于检索过去的案例。特别地,当感兴趣的参数采取时间序列的形式时,为此目的必须解决降维和灵活检索的问题。为解决这些问题而提出的经典方法论解决方案(通常基于数学变换)具有强大的局限性,例如难以解释最终用户的检索结果,灵活性和交互性降低或效率低下。在本文中,我们描述了一个新颖的框架,在该框架中,通过时间抽象概括了时间序列的特征,然后借助抽象相似性进行检索。我们的方法保证了输出结果的可解释性和(用户指导的)检索过程的可理解性。特别是,提供了多级抽象机制和适当的索引技术,以实现灵活的查询发布以及高效且交互式的查询回答。实验结果显示了我们的方法在可伸缩性测试中的效率,以及在灵活性,用户友好性和结果质量方面相对于使用经典数学技术的优越性。

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