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Bounded similarity querying for time-series data

机译:有界相似性查询时间序列数据

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We define the problem of bounded similarity querying in time-series databases, which generalizes earlier notions of similarity querying. Given a (sub)sequence S, a query sequence Q, lower and upper bounds on shifting and scaling parameters, and a tolerance E, S is considered boundedly similar to Q if S can be shifted and scaled within the specified bounds to produce a modified sequence S' whose distance from Q is within c. We use similarity transformation to formalize the notion of bounded similarity. We then describe a framework that supports the resulting set of queries; it is based on a fingerprint method that normalizes the data and saves the normalization parameters. For off-line data, we provide an indexing method with a single index structure and search technique for handling all the special cases of bounded similarity querying. Experimental investigations find the performance of our method to be competitive with earlier, less general approaches. (C) 2004 Elsevier Inc. All rights reserved.
机译:我们在时间序列数据库中定义有界相似性查询的问题,该问题概括了早期的相似性查询概念。给定一个(子)序列S,一个查询序列Q,移位和缩放参数的上限和下限以及公差E,如果S可以在指定范围内移位和缩放以产生修改,则认为S与Q有界地相似与Q的距离在c之内的序列S'。我们使用相似度变换来形式化有限相似度的概念。然后,我们描述一个支持结果查询集的框架。它基于指纹方法,可以对数据进行归一化并保存归一化参数。对于离线数据,我们提供了具有单一索引结构的索引方法和搜索技术,用于处理所有有界相似性查询的特殊情况。实验研究发现,我们的方法的性能与较早的,较不通用的方法相比具有竞争力。 (C)2004 Elsevier Inc.保留所有权利。

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