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PRESCRIPTION BASED MAINTENANCE MANAGEMENT SYSTEM

机译:处方基维护管理系统

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摘要

In recent years, significant focus has been placed on the development and implementation of advanced prognostic and health management (PHM) technologies in military and industrial applications. The term PHM encompasses anomaly, diagnostic and prognostic algorithms as well as higher level reasoning algorithms for isolating root causes of faults/failures and directing optimal operational or maintenance actions. In such systems, two current deficiencies exist. First, for a variety of reasons, component and subsystem interactions in such systems are poorly realized. The issue manifests itself as multiple dependent "boxes" indicating faults with shotgun tests or valuable domain expertise required to de-conflict and reduce ambiguity groups. Secondly, complex systems still largely rely on expert rule-bases for reasoning which are notoriously difficult to maintain over a life cycle and are prone to logical conflicts. This paper begins to address these deficiencies by outlining a simulation-based process for automatically 1) realizing complex system interactions for optimal PHM system design and 2) building and maintaining model-based reasoning architectures where decisions and conclusions naturally precipitate out of a more manageable system model.
机译:近年来,在军事和工业应用中的高级预后和健康管理(PHM)技术的开发和实施方面,已重点焦点。术语PHM包括异常,诊断和预后算法以及用于隔离故障/故障的根本原因以及指导最佳操作或维护动作的更高级别推理算法。在这种系统中,存在两个当前的缺陷。首先,出于各种原因,这种系统中的组件和子系统相互作用变得不佳。该问题表现为多个依赖的“盒子”,指示霰弹枪测试或有价值的域专业知识,要求去冲突,减少歧义群体。其次,复杂的系统仍然很大程度上依赖于专家规则基础,了解难以维持在生命周期并且易于逻辑冲突的原因。本文开始通过概述基于仿真的过程来解决这些缺陷,以实现最佳PHM系统设计的复杂系统交互,2)构建和维护基于模型的推理架构,其中决策和结论自然地从更可管理的系统中沉淀出来模型。

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