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EVOLUTION OF COGNITIVE DEMAND IN THE HUMAN-MACHINE INTERACTION INTEGRATED WITH INDUSTRY 4.0 TECHNOLOGIES

机译:与工业4.0技术集成的人机交互中认知需求的演变

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In the highly technological and innovative scenario of Industry 4.0, characterized by a series of enabling technologies and a strong interconnection of resources, it is necessary to take into account the impact that the introduction of increasingly sophisticated sensors and collaborative machines on the safety aspects. In addition to the introduction of so-called "smart" technologies, the context of the use of new technologies and the tasks of front-line operators has also changed. The worker increasingly assumes the role of supervisor and when some types of work require particular human skills, there is a real "collaboration" between man and machine. In the new factories, the interaction with "smart machines" on one hand simplifies the operations of the worker making them less complex and less susceptible to errors and on the other hand increases the information and communication of these systems and leads to a complexity that requires new man-machine interface modes. The support of sensors and new technologies allows the detection of a series of data necessary to make the most reliable predictions on the state of health of the equipment so that it is possible to plan target interventions. This implies that the cognitive interaction effort of the machine operator moves from the skill level to the knowledge level because the human is required to manage a huge amount of data (big data) that must be acquired, analysed and interpreted. This paper, starting from consolidated human reliability methodologies in the literature, which allows for evaluating human error in different work fields, aims to highlight how human performance improves even if it implies an increase in cognitive demand due to the use of new smart technologies.
机译:在以一系列使能技术和强大的资源互连为特征的工业4.0的高科技和创新场景中,有必要考虑引入越来越先进的传感器和协作机器对安全方面的影响。除了引入所谓的“智能”技术外,使用新技术的环境和一线运营商的任务也发生了变化。工人越来越多地担当主管的角色,当某些类型的工作需要特殊的人类技能时,人与机器之间就存在着真正的“协作”。在新工厂中,与“智能机器”的交互一方面简化了工人的操作,使其变得不那么复杂且不易出错,另一方面增加了这些系统的信息和通信,并导致了复杂性,这需要新的人机界面模式。传感器和新技术的支持允许检测必要的一系列数据,以对设备的健康状况做出最可靠的预测,从而有可能计划目标干预措施。这意味着机器操作员的认知交互作用从技能水平转移到了知识水平,因为需要人工管理大量必须获取,分析和解释的数据(大数据)。本文从文献中整合的人类可靠性方法论出发,该方法可以评估不同工作领域中的人为错误,旨在突出人类绩效如何提高,即使这意味着由于使用新的智能技术而导致认知需求的增加。

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