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Driver Evaluation in Heavy Duty Vehicles Based on Acceleration and Braking Behaviors

机译:基于加速和制动行为的重型车辆驾驶员评估

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In this paper, we present a real-time driver evaluation system for heavy-duty vehicles by focusing on the classification of risky acceleration and braking behaviors. We utilize an improved version of our previous Long Short Memory (LSTM) based acceleration behavior model [10] to evaluate varying acceleration behaviors of a truck driver in small time periods. This model continuously classifies a driver as one of six driver classes with specified longitudinal-lateral aggression levels, using driving signals as time-series inputs. The driver gets acceleration score updates based on assigned classes and the geometry of driven road sections. To evaluate the braking behaviors of a truck driver, we propose a braking behavior model, which uses a novel approach to analyze deceleration patterns formed during brake operations. The braking score of a driver is updated for each brake event based on the pattern, magnitude, and frequency evaluations. The proposed driver evaluation system has achieved significant results in both the classification and evaluation of acceleration and braking behaviors.
机译:在本文中,我们着重于危险的加速和制动行为的分类,提出了一种用于重型车辆的实时驾驶员评估系统。我们利用以前的基于长短记忆(LSTM)的加速行为模型[10]的改进版本来评估卡车驾驶员在短时间内的变化加速行为。该模型使用驾驶信号作为时间序列输入,连续将驾驶员分类为具有指定纵向-横向攻击水平的六个驾驶员类别之一。驾驶员根据分配的类别和所行驶路段的几何形状获得加速度分数更新。为了评估卡车驾驶员的制动行为,我们提出了一种制动行为模型,该模型使用一种新颖的方法来分析在制动操作期间形成的减速模式。基于模式,大小和频率评估,针对每个制动事件更新驾驶员的制动得分。所提出的驾驶员评估系统在加速和制动行为的分类和评估方面均取得了显著成果。

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