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Adaptive Automation to Improve Human Performance in Supervision of Multiple Uninhabited Aerial Vehicles: Individual Markers of Performance

机译:自适应自动化,以提高人力绩效,在多人无人机航空车辆监督方面:性能标志

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Adaptive automation has been shown to offer flexible, context-dependent, and user-specific automation that can enhance human-system performance. While several invocation methods for adaptive automation have been proposed and tested in experimental settings, it is not clear which of these methods can practically be implemented in operational environments. It is therefore important to explore measures that are both predictive of individual performance and that can be easily administered in actual work environments. This study examined the efficacy of using both baseline manual performance and working memory capacity to predict future performance with automation. Participants were assisted by context-dependent adaptive automation during a simulated command and control task. Results showed that baseline performance without automation predicted overall human-automation performance. Working memory capacity did not predict overall performance, but did predict effective use of the automated aids, so that participants with higher working memory scores used the aids more effectively. These results suggest that effectiveness of human-automation teams can be predicted with quick, cost-efficient, easily measureable markers of performance and can therefore provide practical invocation strategies for adaptive automation.
机译:自适应自动化已被证明提供灵活,上下文依赖性和用户特定的自动化,可以提高人工系统性能。虽然已经提出了在实验设置中提出并测试了自适应自动化的几种调用方法,但目前不清楚这些方法中的哪一个可以在操作环境中实现。因此,重要的是探索既可测量个性能的措施,也可以在实际工作环境中轻松管理。本研究检测了基线手动性能和工作记忆能力预测未来性能的效果。在模拟命令和控制任务期间,参与者通过上下文的自适应自动化提供帮助。结果表明,无自动化的基线性能预测了整体人类自动化性能。工作内存容量没有预测整体性能,但确实预测有效使用自动化辅助工具,使得具有更高工作记忆的参与者更有效地使用助剂。这些结果表明,人类自动化团队的有效性可以通过快速,成本效益,易于可测量的性能标记来预测,因此可以为自适应自动化提供实用的调用策略。

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