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Geographic Information Science and technology as key approach to unveil the potential of Industry 4.0: How location and time can support smart manufacturing

机译:地理信息科技作为推出行业潜力的关键方法4.0:定位和时间如何支持智能制造

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Productivity of manufacturing processes in Europe is a key issue. Therefore, smart manufacturing and Industry 4.0 are terms that subsume innovative ways to digitally support manufacturing. Due to the fact, that geography is currently making the step from outdoor to indoor space, the approach presented here utilizes Geographical Information Science applied to smart manufacturing. The objective of the paper is to model an indoor space of a production environment and to apply Geographic Information Science methods. In detail, movement data and quality measurements are visualized and analysed using spatial-temporal analysis techniques to compare movement and transport behaviours. Artificial neural network algorithms can support the structured analysis of (spatial) Big Data stored in manufacturing companies. In this article, the basis for a) GIS-based visualization and b) data analysis with self-learning algorithms, are the location and time when and where manufacturing processes happen. The results show that Geographic Information Science and Technology can substantially contribute to smart manufacturing, based on two examples: data analysis with Self Organizing Maps for human visual exploration of historically recorded data and an indoor navigation ontology for the modelling of indoor production environments and autonomous routing of production assets.
机译:欧洲制造过程的生产力是一个关键问题。因此,智能制造和行业4.0是汇集了数字支持制造的创新方法的术语。由于这个事实,地理目前正在从户外走向室内空间,这里呈现的方法利用适用于智能制造的地理信息科学。本文的目的是建模生产环境的室内空间,并应用地理信息科学方法。详细地,使用空间时间分析技术可视化和分析移动数据和质量测量以比较运动和传输行为。人工神经网络算法可以支持存储在制造公司中的(空间)大数据的结构化分析。在本文中,基于GIS的可视化和B)与自学算法的数据分析,是制造过程发生的位置和时间。结果表明,基于两个例子,地理信息科学和技术可以基本上有助于智能制造:数据分析与自组织地图,用于历史记录数据的人类视觉探索和室内生产环境和自主路由建模的室内导航本体。生产资产。

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