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Ontology-Based Semantic Modeling for Automated Identification of Damage Mechanisms in Process Plants

机译:基于本体的语义建模,用于过程工厂中损伤机制的自动识别

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Damage mechanisms reduce the ability of equipment to deliver its intended function and, thus, increase the equipment's probability of failure. Damage mechanism assessment is performed to identify the credible damage mechanisms of the equipment; thereby, appropriate measures can be applied to prevent failures. However, due to its high dependency on human cognition, damage mechanism assessment is error-prone and time-consuming. Additionally, due to its multi-disciplinary nature, the damage mechanism assessment process requires unambiguous communication and synchronization of perspectives among collaborating parties from different knowledge domains. Thus, the Damage Mechanism Identification Ontology (DMIO), supported by Web Ontology Language axioms and Semantic Web Rule Language rules, is proposed to conceptualize damage mechanism knowledge in both a human- and machine-interpretable manner and to enable automation of the damage mechanism identification task. The implementation of DMIO is expected to create a leaner damage mechanism assessment process by reducing the lead-time to perform the assessment, improving the quality of assessment results, and enabling more effective and efficient communication and collaboration among parties during the assessment process.
机译:损坏机制会降低设备实现其预期功能的能力,从而增加设备的故障概率。进行损坏机制评估,以确定设备的可信损坏机制;因此,可以采取适当的措施来防止故障。但是,由于其对人类认知的高度依赖,因此损害机制评估容易出错且耗时。此外,由于损害赔偿机制具有多学科性质,因此需要来自不同知识领域的合作方之间明确的交流和观点同步。因此,提出了由Web本体语言公理和语义Web规则语言规则支持的损坏机制识别本体(DMIO),以人和机器可解释的方式概念化损坏机制知识,并实现了损坏机制识别的自动化任务。预计DMIO的实施将通过缩短执行评估的前置时间,提高评估结果的质量以及在评估过程中实现各方之间更有效和有效的沟通与协作,来建立更精简的损害机制评估流程。

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