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An interactive architecture for industrial scale prediction: Industry 4.0 adaptation of machine learning

机译:工业规模预测的互动架构:工业4.0机器学习改编

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According to wiki definition, there are four design principles in Industry 4.0. These principles support companies in identifying and implementing Industry 4.0 scenarios, namely, Interoperability, Information transparency, Technical assistance, Decentralized decisions. In this paper we have discussed our work on an implementation of a machine learning based interactive architecture for industrial scale prediction for dynamic distribution of water resources across the continent, keeping the four corners of Industry 4.0 in place. We report the possibility of producing most probable high resolution estimation regarding the water balance in any region within Australia by implementation of an intelligent system that can integrate spatial-temporal data from various independent sensors and models, with the ground truth data produced by 250 practitioners from the irrigation industry across Australia. This architectural implementation on a cloud computing platform linked with a freely distributed mobile application, allowing interactive ground truthing of a machine learning model on a continental scale, shows accuracy of 90% with 85% sensitivity of correct surface soil moisture estimation with end users at its complete control. Along with high level of information transparency and interoperability, providing on-demand technical supports and motivating users by allowing them to customize and control their own local predictive models, show the successfulness of principles in Industry 4.0 in real environmental issues in the future adaptation in various industries starting from resource management to modern generation soft robotics.
机译:根据Wiki定义,工业4.0中有四项设计原则。这些原则支持公司在识别和实施行业4.0场景,即互操作性,信息透明度,技术援助,权力下放决策方面。在本文中,我们讨论了我们在整个大陆水资源动态分布的基于机器学习的交互式架构的工作的工作,使工业4.0的四个角落到位。我们通过实施一个智能系统,通过实施可以将来自各种独立传感器和模型的空间数据集成的智能系统来说,生产关于澳大利亚任何地区的水平衡的最可能的高分辨率估计的可能性。由250名从业者产生的地面真理数据澳大利亚灌溉工业。这种架构实现在云计算平台上与自由分布式移动应用程序相关联,允许在大陆尺度上进行机器学习模型的交互式地面对,显示90 %的精度,最终用户对正确的表面土壤湿度估算的灵敏度为90 %完全控制。随着高水平的信息透明度和互操作性,通过允许他们自定义和控制自己的本地预测模型,提供按需技术支持和激励用户,在未来的各种环境中,在实际环境问题中表现出工业4.0的原则成功。从资源管理到现代一代软机器人的行业。

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