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用于无监督时间序列异常检测的自适应记忆广义学习系统

Adaptive Memory Broad Learning System for Unsupervised Time Series Anomaly Detection.

作者信息

Zhong Zhijie, Yu Zhiwen, Fan Ziwei, Philip Chen C L, Yang Kaixiang

出版信息

IEEE Trans Neural Netw Learn Syst. 2025 May;36(5):8331-8345. doi: 10.1109/TNNLS.2024.3415621. Epub 2025 May 2.

Abstract

Time series anomaly detection is the process of identifying anomalies within time series data. The primary challenge of this task lies in the necessity for the model to comprehend the characteristics of time-independent and abnormal data patterns. In this study, a novel algorithm called adaptive memory broad learning system (AdaMemBLS) is proposed for time series anomaly detection. This algorithm leverages the rapid inference capabilities of the broad learning algorithm and the memory bank's capacity to differentiate between normal and abnormal data. Furthermore, an incremental algorithm based on multiple data augmentation techniques is introduced and applied to multiple ensemble learners, thereby enhancing the model's effectiveness in learning the characteristics of time series data. To bolster the model's anomaly detection capabilities, a more diverse ensemble approach and a discriminative anomaly score are recommended. Extensive experiments conducted on various real-world datasets demonstrate that the proposed method exhibits superior inference speed and more accurate anomaly detection compared to the existing competitors. A detailed experimental investigation is presented to elucidate the effectiveness of the proposed method and the underlying reasons for its efficacy.

摘要

时间序列异常检测是识别时间序列数据中异常的过程。这项任务的主要挑战在于模型需要理解与时间无关的异常数据模式的特征。在本研究中,提出了一种名为自适应记忆宽学习系统(AdaMemBLS)的新颖算法用于时间序列异常检测。该算法利用宽学习算法的快速推理能力以及记忆库区分正常和异常数据的能力。此外,引入了一种基于多种数据增强技术的增量算法,并将其应用于多个集成学习器,从而提高模型学习时间序列数据特征的有效性。为增强模型的异常检测能力,推荐了一种更多样化的集成方法和一个判别性异常分数。在各种真实世界数据集上进行的广泛实验表明,与现有竞争对手相比,所提出的方法具有更高的推理速度和更准确的异常检测能力。给出了详细的实验研究以阐明所提出方法的有效性及其有效的潜在原因。

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