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An enhanced representation of time series which allows fast and accurate classification, clustering and relevance feedback

机译:增强时间序列的表示,允许快速准确的分类,聚类和相关反馈

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We introduce an extended representation of time series that allows fast, accurate classification and clustering in addition to the ability to explore time series data in a relevance feedback framework. The representation consists of piecewise linear segments to represent shape and a weight vector that contains the relative importance of each individual linear segment. In the classification context, the weights are learned automatically as part of the training cycle. In the relevance feedback context, the weights are determined by an interactive and iterative process in which users rate various choices presented to them. Our representation allows a user to define a variety of similarity measures that can be tailored to specific domains. We demonstrate our approach on space telemetry, medical and synthetic data.
机译:除了在相关反馈框架中探索时间序列数据的能力之外,我们还介绍了允许快速,准确的分类和聚类的时间序列的扩展表示。表示由分段线性段代表形状和体重矢量,其包含每个单独的线性段的相对重要性。在分类上下文中,权重自动学习为培训周期的一部分。在相关性反馈上下文中,权重由用户率率向其呈现的各种选择来确定。我们的表示允许用户定义可以根据特定域定制的各种相似度措施。我们展示了我们对空间遥测,医疗和合成数据的方法。

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