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An Architecture for Predictive Maintenance of Railway Points Based on Big Data Analytics

机译:基于大数据分析的铁路点预测维护架构

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Massive amounts of data produced by railway systems are a valuable resource to enable Big Data analytics. Despite its richness, several challenges arise when dealing with the deployment of a big data architecture into a railway system. In this paper, we propose a four-layers big data architecture with the goal of establishing a data management policy to manage massive amounts of data produced by railway switch points and perform analytical tasks efficiently. An implementation of the architecture is given along with the realization of a Long Short-Term Memory prediction model for detecting failures on the Italian Railway Line of Milano - Monza - Chiasso.
机译:铁路系统生成的大量数据是启用大数据分析的宝贵资源。尽管其功能丰富,但在将大数据架构部署到铁路系统中时仍会遇到一些挑战。在本文中,我们提出了一种四层的大数据架构,其目的是建立一种数据管理策略来管理铁路转换点产生的大量数据并有效地执行分析任务。给出了该体系结构的实现,以及用于检测意大利米兰诺-蒙扎-基亚索铁路线上的故障的长短期记忆预测模型的实现。

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