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Mutualistic and Adaptive Human-Machine Collaboration Based on Machine Learning in an Injection Moulding Manufacturing Line

机译:基于机器学习在注射成型生产线中的互动和自适应人机协作

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摘要

This paper proposes an adaptive human-machine collaboration paradigm based on machine learning. Human-machine collaboration requires more than letting humans and machines interact according to fixed rules. A decision-maker is needed to assess production status and to activate adaptations that improve productivity and workers’ well-being.The proposed solution has been tested in an injection moulding manufacturing line. By introducing a physiological monitoring system and a smart decision-maker, relief from fatigue and mental stress is pursued by adjusting the level of support offered through a cobot. Results reported a reduction of operators’ physical and mental workload as well as productivity increase.
机译:本文提出了一种基于机器学习的自适应人机协作范式。人机协作需要更多让人类和机器根据固定规则进行互动。需要一个决策者来评估生产现状,并激活改善生产力和工人福祉的适应。所提出的解决方案已在注塑制造线上进行了测试。通过引入生理监测系统和智能决策者,通过调整通过COBOT提供的支持水平来追求疲劳和精神压力的缓解。结果报告报告了运营商的身体和精神工作量以及生产力增加。

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