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Concept for an augmented intelligence-based quality assurance of assembly tasks in global value networks

机译:基于增强智能的概念在全球价值网络中的装配任务质量保证

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The aim of this paper is to present a conceptual approach to an augmented intelligence-based worker assistance system in manual assembly. This approach is designed to address current challenges in global value networks. We propose a self-learning multi-camera system that (1) provides augmented reality-based assembly instructions and (2) enables automated real-time in-process testing of complex manual assembly operations by using visual camera and CAD data, operational experiences and expert knowledge. As the proposed solution is targeted at enabling SMEs, cost-effectiveness is a main goal of the conceptual approach. Consequently, weak artificial intelligence is applied to realise the algorithmic chain subject to performance restricted hardware. The approach states a novelty in research and development and contributes to practical application in the field of augmented intelligence.
机译:本文的目的是在手动组装中提出一种增强智能的工人辅助系统的概念方法。 这种方法旨在解决全局价值网络中的当前挑战。 我们提出了一种自学习多摄像机系统,(1)提供增强的基于现实的装配说明和(2)通过使用视觉相机和CAD数据,操作体验和CAD数据,以及运营体验和CAD数据 专家知识。 由于所提出的解决方案在实现中小企业方面,成本效益是概念方法的主要目标。 因此,应用弱的人工智能来实现算法链经受性能限制硬件。 该方法规定了研究与开发的新颖性,并有助于增强情报领域的实际应用。

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