Failure Knowledge Graphs

Bojan Vucinic
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Abstract

Failure analysis is the cornerstone of asset management via life-cycle costs optimizations. Knowledge graphs are semantic nets that are the next level of database technology. Machine learning (ML) is a field of inquiry devoted to understanding and building methods that “learn”, that is, methods that leverage data to improve performance on some set of tasks. We propose to structure the machine learning data into knowledge graphs to foster advanced failure analysis leveraging optimum life-cycle costs where costs are considered in the largest possible sense including the cost of human life preservation (safety) and the cost (impact) on the environment.
故障知识图
故障分析是通过生命周期成本优化进行资产管理的基石。知识图是语义网,是数据库技术的下一个层次。机器学习(ML)是一个致力于理解和构建“学习”方法的研究领域,也就是说,利用数据来提高某些任务的性能。我们建议将机器学习数据构建为知识图,以促进利用最佳生命周期成本的高级故障分析,其中成本被考虑在最大的意义上,包括人类生命保护(安全)的成本和对环境的成本(影响)。
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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