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Auditory Decision Aiding in Supervisory Control of Multiple Unmanned Aerial Vehicles

机译:多种无人机监控中的听觉决策辅助

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摘要

This paper investigates the effectiveness of sonification, continuous auditory alert mapped to the state of a monitored task, in supporting unmanned aerial vehicle (UAV) supervisory control. Background: UAV supervisory control requires monitoring each UAV across multiple tasks (e.g., course maintenance) via a predominantly visual display, which currently is supported with discrete auditory alerts. Sonification has been shown to enhance monitoring performance in domains such as anesthesiology by allowing an operator to immediately determine an entity's (e.g., patient) current and projected states, and is a promising alternative to discrete alerts in UAV control. However, minimal research compares sonification to discrete alerts, and no research assesses the effectiveness of sonification for monitoring multiple entities (e.g., multiple UAVs). Method: An experiment was conducted with 39 military personnel, using a simulated setup. Participants controlled single and multiple UAVs, and received sonifications or discrete alerts based on UAV course deviations and late target arrivals.Results: Regardless of the number of UAVs supervised, the course deviation sonification resulted in 1.9 s faster reactions to course deviations, a 19% enhancement from discrete alerts. However, course deviation sonification interfered with the effectiveness of discrete late arrival alerts in general, and with operator response to late arrivals when supervising multiple vehicles.Conclusions: Sonifications can outperform discrete alerts when designed to aid operators to predict future states of monitored tasks. However, sonifications may mask other auditory alerts, and interfere with other monitoring tasks that require divided attention.
机译:本文研究了在支持无人飞行器(UAV)监督控制方面,将声音化,连续听觉警报映射到受监视任务的状态的有效性。背景:UAV监督控制要求通过主要为视觉的显示来监视跨多个任务(例如,课程维护)的每个UAV,当前该显示受到离散听觉警报的支持。已经表明,通过允许操作员立即确定实体(例如,患者)的当前和计划状态,超声可以增强在诸如麻醉学等领域的监视性能,并且它是无人飞行器控制中离散警报的有希望的替代方法。但是,很少有研究将声音识别与离散警报进行比较,并且没有研究评估声音识别对监视多个实体(例如,多个无人机)的有效性。方法:使用模拟装置对39名军事人员进行了实验。参与者控制着一架和多架无人机,并根据无人机航向偏差和迟到的目标到达而收到声音或离散警报。结果:无论监督的无人机数量是多少,航向偏离声波都能使对航向偏离的反应速度加快1.9 s,即19%离散警报的增强。但是,航向偏差超声通常会影响离散的迟到警报的有效性,并且会影响操作员在监督多辆车辆时对迟到警报的响应。结论:当设计用于帮助操作员预测被监视任务的未来状态时,超声可胜过离散警报。但是,超音波可能掩盖了其他听觉警报,并干扰了需要分散注意力的其他监视任务。

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