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AN INTEGRATED DATA CHARACTERISTIC TESTING SCHEME FOR COMPLEX TIME SERIES DATA EXPLORATION

机译:复杂时间序列数据探索的综合数据特征测试方案

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摘要

In this paper, an integrated data characteristic testing scheme is proposed for complex time series data exploration so as to select the most appropriate research methodology for complex time series modeling. Based on relationships across different data characteristics, data characteristics of time series data are divided into two main categories: nature characteristics and pattern characteristics in this paper. Accordingly, two relevant tasks, nature determination and pattern measurement, are involved in the proposed testing scheme. In nature determination, dynamics system generating the time series data is analyzed via nonstationarity, nonlinearity and complexity tests. In pattern measurement, the characteristics of cyclicity (and seasonality), mutability (or saltation) and randomicity (or noise pattern) are measured in terms of pattern importance. For illustration purpose, four main Chinese economic time series data are used as testing targets, and the data characteristics hidden in these time series data are thoroughly explored by using the proposed integrated testing scheme. Empirical results reveal that the natures of all sample data demonstrate complexity in the phase of nature determination, and in the meantime the main pattern of each time series is captured based on the pattern importance, indicating that the proposed scheme can be used as an effective data characteristic testing tool for complex time series data exploration from a comprehensive perspective.
机译:本文提出了一种用于复杂时间序列数据探索的综合数据特征测试方案,以为复杂时间序列建模选择最合适的研究方法。基于不同数据特征之间的关系,本文将时间序列数据的数据特征分为两大类:自然特征和模式特征。因此,提议的测试方案涉及两个相关任务,即自然确定和模式测量。在自然界中,通过非平稳性,非线性和复杂性测试来分析生成时间序列数据的动力学系统。在模式测量中,根据模式重要性来测量周期性(和季节性),可变性(或成盐)和随机性(或噪声模式)的特征。为了便于说明,我们将四个主要的中国经济时间序列数据用作测试目标,并通过提出的综合测试方案对这些时间序列数据中隐藏的数据特征进行了全面研究。实证结果表明,所有样本数据的性质都表明了在自然确定阶段的复杂性,同时,根据模式的重要性捕获了每个时间序列的主要模式,这表明所提出的方案可以用作有效数据。全面的时间序列数据探索特性测试工具。

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