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A visualization tool of en route air traffic control tasks for describing controller’s proactive management of traffic situations

机译:航路空中交通管制任务的可视化工具,用于描述管制员对交通状况的主动管理

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Improvements of aviation systems are now in progress to ensure the safety and efficiency of air transport in response to the rapid growth of air traffic. For providing theoretical and empirical basis for design and evaluation of aviation systems, researches focusing on cognitive aspects of air traffic controllers are definitely important. Whereas various researches from cognitive perspective have been performed in the Air Traffic Control (ATC) domain, there are few researches trying to illustrate ATCO’s control strategies and their effects on task demands in real work situations. The authors believe that findings from these researches can contribute to reveal why ATCOs are capable of handling air traffic safely and efficiently even in the high-density traffic condition. It can be core knowledge for tackling human factors issues in the ATC domain such as development of further effective education and training program of ATCO trainees. However, it is difficult to perform such kinds of researches because identification of ATC task from a given traffic situation and specification of effects of ATCO’s control strategies on task demands requires expert knowledge of ATCOs. The present research therefore aims at developing an automated identification and visualization tool of en route ATC tasks based on a cognitive system simulation of an en route controller called COMPAS (COgnitive system Model for simulating Projection-based behaviors of Air traffic controller in dynamic Situations), developed by the authors. The developed visualization tool named COMPASi (COMPAS in interactive mode) equips a projection process model that can simulate realistic features of ATCO’s projection involving setting extra margins for errors of projection. The model enables COMPASi to detect ATC tasks in a given traffic situation automatically and to identify Task Demand Level (TDL), that is, an ATC task index. The basic validity of COMPASi has been confirmed through detailed comparison between TDLs given by a training instructor and ones by COMPASi in a simulation-based experiment. Since TDL corresponds to demands of ATC tasks, temporal sequences of TDLs can reflect effectiveness of ATCO’s control strategies in terms of regulating task demands. By accumulation and analysis of such kind of data, it may be expected to reveal important aspect of ATCO’s skill for achieving the safety and efficiency of air traffic.
机译:为了确保航空运输的安全性和效率,航空系统正在不断改进,以应对航空运输的迅速增长。为了为航空系统的设计和评估提供理论和经验基础,专注于空中交通管制员认知方面的研究绝对重要。尽管在空中交通管制(ATC)领域已从认知角度进行了各种研究,但很少有研究试图说明ATCO的控制策略及其在实际工作情况下对任务要求的影响。作者认为,这些研究的发现有助于揭示为什么ATCO即使在高密度交通条件下也能够安全有效地处理空中交通的原因。它可以作为解决ATC领域人为因素的核心知识,例如制定ATCO受训者进一步有效的教育和培训计划。但是,由于要根据给定的交通状况来识别ATC任务,并详细说明ATCO的控制策略对任务需求的影响,因此需要进行ATCO的专业知识,因此很难进行此类研究。因此,本研究旨在基于一种称为COMPAS(用于模拟动态情况下基于空中交通管制员的基于投影行为的认知系统模型)的航路控制器的认知系统仿真,来开发航路ATC任务的自动识别和可视化工具,由作者开发。名为COMPASi(交互模式下的COMPAS)的开发的可视化工具配备了一个投影过程模型,该模型可以模拟ATCO投影的真实特征,包括为投影误差设置额外的余量。该模型使COMPASi能够在给定的交通状况下自动检测ATC任务,并识别任务需求水平(TDL),即ATC任务索引。在基于模拟的实验中,通过对培训指导员给出的TDL与COMPASi给出的TDL进行详细比较,已确认COMPASi的基本有效性。由于TDL符合ATC任务的需求,因此TDL的时间顺序可以反映ATCO的控制策略在调节任务需求方面的有效性。通过收集和分析此类数据,可以期望揭示出ATCO在实现空中交通安全性和效率方面的技能的重要方面。

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