Integrated method utilizing graph theory and fuzzy logic for safety and reliability assessment of airborne systems

J. Hlinka, Rostislav Koštial, Luboš Janhuba
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引用次数: 1

Abstract

This paper presents integrated algorithm for airborne system safety and reliability assessment. In general aviation (mostly up to EASA CS-23) and non-military unmanned aerial vehicles industry, safety and reliability assessment process still relays almost exclusively on human judgment. Recommended practices define processes for system modelling and safety assessing are based on analyst understanding of a particular system. That is difficult and time-consuming process. Commercial computation aids are extremely expensive with restricted (or closed) access to the solution algorithms. Together with this problem, rapid development of modern airborne systems, their increasing complexity, elevates level of interconnection. Therefore, safety and reliability analyses have to continuously evolve and adapt to the extending complexity. Growing expansion brings in the field of unnamed aerial vehicles systems which consist of items without relevant reliability testing. Presented algorithm utilizes graph theory and fuzzy logic in order to develop integrated computerized mean for reliability analysis of sophisticated, highly interconnected airborne systems. Through the usage of graph theory, it is possible to create model of particular systems and its sub-systems in the form of universal data structure. Algorithm is conceived as fuzzy expert system, that emulates decision making of a human expert. That brings opportunity to partially quantify system attributes and criticality. Criticality evaluation increases level of assessment correlation with real state of system and its attributes.
基于图论和模糊逻辑的机载系统安全可靠性综合评估方法
提出了机载系统安全可靠性评估的综合算法。在通用航空(主要是EASA CS-23)和非军事无人机行业,安全性和可靠性评估过程仍然几乎完全依赖于人的判断。建议的实践定义了系统建模和安全评估的过程,这些过程是基于分析人员对特定系统的理解。这是一个困难而耗时的过程。商业计算辅助工具非常昂贵,对解算法的访问受限(或封闭)。与此同时,现代机载系统的快速发展及其日益增加的复杂性也提高了互联互通的水平。因此,安全性和可靠性分析必须不断发展,以适应不断扩大的复杂性。不断增长的扩张带来了未命名的飞行器系统领域,这些系统由未经相关可靠性测试的项目组成。该算法利用图论和模糊逻辑,为复杂、高度互联的机载系统的可靠性分析提供综合的计算机化方法。通过使用图论,可以以通用数据结构的形式创建特定系统及其子系统的模型。算法被认为是一个模拟人类专家决策的模糊专家系统。这为部分量化系统属性和临界性带来了机会。临界性评价提高了评价与系统真实状态及其属性的相关性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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