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Detecting Physiological Changes in Response to Sudden Events in Driving: A Nonlinear Dynamics Approach

机译:检测行驶中突发事件的生理变化:一种非线性动力学方法

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In this study, we propose a novel analytic framework to detect emergency braking intentions in driving tasks by capturing the delay in human responses using multimodal biosensor data, e.g., electroencephalography (EEG) and electromyography (EMG). To quantity the response delay, we consider EEG and EMG signals as a coupled dynamic system and employ a recurrence plot (RP) based approach to characterize the nonlinear dynamics. We then apply the maximally stable extremal regions (MSER) method in computer vision for detecting transition states associated with sudden events (e.g., braking intentions in driving). Our proposed framework is tested on a publicly available dataset of driving experiments. The results demonstrate the effectiveness of our proposed approach for assessing the response delay to reflect the motor control command, which shows that the average response delays to the braking intentions are 300 milliseconds in EEG and 194 milliseconds in EMG prior to the actual emergency braking. The proposed quantification can be employed in driving assistant system for reducing or diminishing potential accidents.
机译:在这项研究中,我们提出了一种新颖的分析框架,通过使用多模式生物传感器数据(例如,脑电图(EEG)和肌电图(EMG))捕获人的反应延迟来检测驾驶任务中的紧急制动意图。为了量化响应延迟,我们将EEG和EMG信号视为耦合的动态系统,并采用基于递归图(RP)的方法来表征非线性动力学。然后,我们在计算机视觉中应用最大稳定的极值区域(MSER)方法,以检测与突发事件(例如,驾驶中的制动意图)相关的过渡状态。我们提出的框架已在可公开获得的驾驶实验数据集上进行了测试。结果证明了我们提出的评估响应延迟以反映电动机控制命令的方法的有效性,该方法表明对制动意图的平均响应延迟在实际紧急制动之前在EEG中为300毫秒,在EMG中为194毫秒。所提出的量化可以用于驾驶辅助系统中,以减少或减少潜在的事故。

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