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MVTS-Data Toolkit: A Python package for preprocessing multivariate time series data

机译:MVTS-Data Toolkit:用于预处理多变量时间序列数据的Python包

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We developed a domain-independent Python package to facilitate the preprocessing routines required in preparation of any multi-class, multivariate time series data. It provides a comprehensive set of 48 statistical features for extracting the important characteristics of time series. The feature extraction process is automated in a sequential and parallel fashion, and is supplemented with an extensive summary report about the data. Using other modules, different data normalization methods and imputation are at users’ disposal. To cater the class-imbalance issue, that is often intrinsic to real-world datasets, a set of generic but user-friendly, sampling methods are also developed.
机译:我们开发了一个域独立的Python包,以便于准备任何多类多变量时间序列数据所需的预处理例程。它提供了一套全面的48个统计特征,用于提取时间序列的重要特征。特征提取过程以顺序和并行方式自动化,并补充有关于数据的广泛摘要报告。使用其他模块,不同的数据归一化方法和估算是在用户的处理中。为了满足类别不平衡的问题,这通常是现实世界数据集的内在,还开发了一组通用但用户友好的采样方法。

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