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首页> 外文期刊>Journal of Intelligent Learning Systems and Applications >Clustering-Inverse: A Generalized Model for Pattern-Based Time Series Segmentation
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Clustering-Inverse: A Generalized Model for Pattern-Based Time Series Segmentation

机译:聚类逆:基于模式的时间序列细分的通用模型

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摘要

Patterned-based time series segmentation (PTSS) is an important task for many time series data mining applications. In this paper, according to the characteristics of PTSS, a generalized model is proposed for PTSS. First, a new inter-pretation for PTSS is given by comparing this problem with the prototype-based clustering (PC). Then, a novel model, called clustering-inverse model (CI-model), is presented. Finally, two algorithms are presented to implement this model. Our experimental results on artificial and real-world time series demonstrate that the proposed algorithms are quite effective.
机译:对于许多时间序列数据挖掘应用程序,基于模式的时间序列分段(PTSS)是一项重要任务。针对PTSS的特点,提出了一种通用的PTSS模型。首先,通过将该问题与基于原型的聚类(PC)进行比较,给出了PTSS的新解释。然后,提出了一种新的模型,称为聚类逆模型(CI-model)。最后,提出了两种算法来实现该模型。我们在人工和现实世界时间序列上的实验结果表明,提出的算法非常有效。

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