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Identifying Instantaneous Anomalies in General Aviation Operations

机译:识别通用航空运营中的瞬时异常

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Quantification and improvement of safety is one of the most important objectives among the General Aviation community. In recent years, data mining techniques are emerging as an important enabler in the aviation safety domain with a number of techniques being applied to flight data to identify and isolate anomalous (and potentially unsafe) operations. There are two types of anomalies typically identified - flight-level (where the entire flight exhibits patterns deviating from nominal operations) and instantaneous (where a subset or few instants of the flight deviate significantly from nominal operations). Energy-based metrics provide measurable indications of the energy state of the aircraft and can be viewed as an objective currency to evaluate various safety-critical conditions across a heterogeneous fleet of aircraft. In this paper, a novel method of identifying instantaneous anomalies for retrospective safety analysis using energy-based metrics is proposed. Each data record is split by sliding a moving window across the multi-variate series of evaluated energy metrics. A mixture of gaussian models is then used to perform clustering using the values of energy metrics and their variability within each window. The trained models are then used to identify anomalies that may indicate increased levels of risk. The identified anomalies are compared with traditional methods of safety assessment (exceedance detection).
机译:量化和提高安全性是通用航空界最重要的目标之一。近年来,数据挖掘技术正在成为航空安全领域中的重要推动力,并且将多种技术应用于飞行数据以识别和隔离异常(以及潜在的不安全)操作。通常会识别出两种类型的异常-飞行级别(整个飞行呈现出偏离标称运行的模式)和瞬时(其中飞行的一个子集或几个瞬间显着偏离正常运行)。基于能量的度量标准可提供飞机能量状态的可衡量指示,并且可以被视为客观的货币,以评估异构飞机机群中的各种安全关键条件。在本文中,提出了一种新的识别瞬时异常的方法,该方法使用基于能量的指标进行追溯安全分析。通过在多变量评估的能源指标系列中滑动移动窗口,可以拆分每个数据记录。然后,使用高斯模型的混合来使用能量度量的值及其在每个窗口内的可变性执行聚类。然后,将训练有素的模型用于识别可能表明风险水平增加的异常。将识别出的异常与传统的安全评估方法(超量检测)进行比较。

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