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SiPTA: Signal processing for trace-based anomaly detection

机译:SIPTA:用于基于痕量异常检测的信号处理

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Given a set of historic good traces, trace-based anomaly detection deals with the problem of determining whether or not a specific trace represents a normal execution scenario. Most current approaches mainly focus on application areas outside of the embedded systems domain and thus do not take advantage of the intrinsic properties of this domain. This work introduces SiPTA, a novel technique for offline trace-based anomaly detection that utilizes the intrinsic feature of periodicity found in embedded systems. SiPTA uses signal processing as the underlying processing algorithm. The paper describes a generic framework for mapping execution traces to channels and signals for further processing. The classification stage of SiPTA uses a comprehensive set of metrics adapted from standard signal processing. The system is particularly useful for embedded systems, and the paper demonstrates this by comparing SiPTA with state-of-the-art approaches based on Markov Model and Neural Networks. The paper shows the technical feasibility and viability of SiPTA through multiple case studies using traces from a field-tested hexacopter, a mobile phone platform, and a car infotainment unit. In the experiments, our approach outperformed every other tested method.
机译:鉴于一组历史良好的迹线,基于跟踪的异常检测处理了确定特定跟踪是否表示正常执行方案的问题。大多数目前的方法主要专注于嵌入式系统域之外的应用区域,因此不要利用该域的内在属性。这项工作引入了SIPTA,一种用于离线基于轨迹的异常检测的新技术,利用嵌入式系统中发现的周期性的内在特征。 SIPTA使用信号处理作为底层处理算法。本文描述了一种用于映射到通道和信号的映射执行跟踪的通用框架以进行进一步处理。 SIPTA的分类阶段使用从标准信号处理的综合度量集。该系统对嵌入式系统特别有用,本文通过基于马尔可夫模型和神经网络比较SIPTA与最先进的方法进行比较。本文显示了SIPTA通过使用来自现场测试的Hexacopter,移动电话平台和汽车信息娱乐单元的痕迹的多种案例研究的技术可行性和活力。在实验中,我们的方法表现出所有其他测试方法。

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