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What are steering pictures are worth? Using image-based steering features to detect drowsiness on rural roads

机译:什么是转向图片值得?使用基于图像的转向特征来检测农村道路的嗜睡

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Drowsy driving is a persistent and significant problem on today's roadways. Mitigation technologies may help resolve the problem, but their success depends on effective detection algorithms. Steering-based algorithms are a promising direction for such effective algorithms because of their low cost and ease of implementation. However, steering-based approaches are often limited by high false positive detection rates. The goal of this study was to assess if image-based steering features and convolutional neural networks can reduce these high false positive rates. The analysis investigated two methods for transforming steering wheel angle data into images, Markov Transition Field and recurrence plots. Area under the ROC curve and false positive rate results suggest that both approaches nominally improve detection performance and reduce false positives relative to a benchmark, with some evidence that recurrence plots have the highest performance.
机译:昏昏欲睡的驾驶是当今道路上的持续和重大问题。缓解技术可能有助于解决问题,但它们的成功取决于有效的检测算法。基于转向的算法是对这种有效算法的有希望的方向,因为它们的成本低和易于实现。然而,基于转向的方法通常受到高误检测速率的限制。本研究的目标是评估基于图像的转向功能和卷积神经网络是否可以降低这些高误率。该分析研究了转换转向轮角度数据的两种方法,Markov转换场和复发图。 ROC曲线下的面积和假阳性率结果表明,两种方法都有名义上提高了检测性能,并减少了相对于基准的误报,有一些证据表明复发图具有最高的性能。

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