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Analysis of drivers control methods of task demands based on behavioral data in actual road environments

机译:基于实际道路环境中行为数据的任务需求驾驶员控制方法分析

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This paper describes an investigation of how drivers control task demands while approaching intersections in actual road environments. Field experiments using an AIST instrumented vehicle were conducted on rural roads (Tsukuba area) and urban roads (Tokyo area) to collect data on vehicle status and driver behavior. We collected driver behavior data while driving in their usual manner and while driving with low task demands. A Bayesian network model was applied to the data while approaching and stopping at intersections with red traffic lights. We investigated the behavioral indices that indicated a significant difference between the usual drives and the drives with low task demands. The model estimated results suggest that the drivers control the task demands using vehicle velocity, headway distance, accelerator pedal application, or brake pedal application. The behavioral indices indicating the differences are the same on both the rural and urban roads.
机译:本文描述了在实际道路环境中接近交叉路口时驾驶员如何控制任务要求的调查。在乡村道路(筑波地区)和城市道路(东京地区)上使用AIST仪表车进行了现场试验,以收集有关车辆状态和驾驶员行为的数据。在以常规方式驾驶和任务要求低的驾驶时,我们收集了驾驶员行为数据。将贝叶斯网络模型应用于数据,同时在有红色交通信号灯的交叉口处进近并停靠。我们调查了行为指标,这些指标表明普通驱动器和任务要求低的驱动器之间存在显着差异。该模型的估计结果表明,驾驶员使用车辆速度,前进距离,油门踏板应用程序或制动踏板应用程序来控制任务要求。指示差异的行为指标在农村和城市道路上都是相同的。

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