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Estimation of the Optimum Speed to Minimize the Driver Stress Based on the Previous Behavior

机译:估计基于先前行为最小化驱动力应力的最佳速度

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Stress is one of the most important factors in car accidents. When the driver is in this mental state, their skills and abilities are reduced. In this paper, we propose an algorithm to predict stress level on a road. Prediction model is based on deep learning. The stress level estimation considers the previous driver's driving behavior before reaching the road section, the road state (weather and traffic), and the previous driving made by the driver. We employ this algorithm to build a speed assistant. The solution provides an optimum average speed for each road stage that minimizes the stress. Validation experiment has been conducted using five different datasets with 100 samples. The proposal is able to predict the stress level given the average speed by 84.20% on average. The system reduces the heart rate (15.22%) and the aggressiveness of driving. The proposed solution is implemented on Android mobile devices and uses a heart rate chest strap.
机译:压力是汽车事故中最重要的因素之一。当驾驶员处于这种精神状态时,他们的技能和能力将减少。在本文中,我们提出了一种预测道路上的压力水平的算法。预测模型是基于深度学习。压力水平估计在到达路段(天气和流量)之前,驾驶员的驾驶行为考虑了先前的驾驶员行为,以及驾驶员之前的驱动。我们采用该算法构建速度助理。该解决方案为每条道路阶段提供最佳的平均速度,可使压力最小化。使用具有100个样本的五种不同的数据集进行了验证实验。该提案能够预测平均速度平均速度的应力水平,平均为84.20%。该系统降低了心率(15.22%)和驾驶的侵略性。所提出的解决方案是在Android移动设备上实现的,并使用心率胸带。

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