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用于无线传感器网络实时异常检测的在线自适应卡尔曼滤波

Online Adaptive Kalman Filtering for Real-Time Anomaly Detection in Wireless Sensor Networks.

作者信息

Ahmad Rami, Alkhammash Eman H

机构信息

College of Computer Information Technology, American University in the Emirates, Dubai 503000, United Arab Emirates.

Department of Computer Science, College of Computers and Information Technology, Taif University, P.O. Box 11099, Taif 21944, Saudi Arabia.

出版信息

Sensors (Basel). 2024 Aug 4;24(15):5046. doi: 10.3390/s24155046.

Abstract

Wireless sensor networks (WSNs) are essential for a wide range of applications, including environmental monitoring and smart city developments, thanks to their ability to collect and transmit diverse physical and environmental data. The nature of WSNs, coupled with the variability and noise sensitivity of cost-effective sensors, presents significant challenges in achieving accurate data analysis and anomaly detection. To address these issues, this paper presents a new framework, called Online Adaptive Kalman Filtering (OAKF), specifically designed for real-time anomaly detection within WSNs. This framework stands out by dynamically adjusting the filtering parameters and anomaly detection threshold in response to live data, ensuring accurate and reliable anomaly identification amidst sensor noise and environmental changes. By highlighting computational efficiency and scalability, the OAKF framework is optimized for use in resource-constrained sensor nodes. Validation on different WSN dataset sizes confirmed its effectiveness, showing 95.4% accuracy in reducing false positives and negatives as well as achieving a processing time of 0.008 s per sample.

摘要

无线传感器网络(WSN)对于广泛的应用至关重要,包括环境监测和智慧城市发展,这得益于其收集和传输各种物理和环境数据的能力。WSN的特性,加上经济高效型传感器的可变性和噪声敏感性,在实现准确的数据分析和异常检测方面带来了重大挑战。为了解决这些问题,本文提出了一种名为在线自适应卡尔曼滤波(OAKF)的新框架,专门用于WSN内的实时异常检测。该框架通过根据实时数据动态调整滤波参数和异常检测阈值而脱颖而出,确保在传感器噪声和环境变化中准确可靠地识别异常。通过突出计算效率和可扩展性,OAKF框架针对资源受限的传感器节点进行了优化。在不同大小的WSN数据集上进行的验证证实了其有效性,在减少误报和漏报方面显示出95.4%的准确率,并且每个样本的处理时间为0.008秒。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/60e0/11314850/05983ac94979/sensors-24-05046-g001.jpg

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