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An approach to linguistic summarization based on comparison among multiple time-series data

机译:基于多个时间序列数据之间比较的语言总结方法

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This paper proposes a method of linguistic summarization of the relation among multiple time-series data by comparing them. The relation among the data is found by correlation coefficient and then it is categorized into main three relations: (i) similar trends, (ii) symmetrical trends, and (iii) non-correlation. Symbolic Aggregate approximation (SAX) is applied to the data categorized into these three types for coding numerical data, and then significant points of two time-series data are extracted by our modified edit distance.
机译:通过比较多个时间序列数据之间的关系,本文提出了一种语言总结的方法。通过相关系数找到数据之间的关系,然后将其分类为主要的三个关系:(i)相似趋势,(ii)对称趋势和(iii)不相关。将符号聚合近似(SAX)应用于分类为这三种类型的数据以对数值数据进行编码,然后通过我们修改的编辑距离来提取两个时间序列数据的有效点。

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