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Fog Augmentation of Road Images for Performance Analysis of Traffic Sign Detection Algorithms

机译:用于交通标志检测算法性能分析的道路图像雾增强

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This paper studies the influence of fog on traffic sign detection algorithms used in intelligent driver assistance systems. Previous studies are all based on synthetic images. In this work we use instead real-life photos of different road situations for fog augmentation to investigate the performance of five detection methods. To obtain depth information about the scene a depth map is first estimated for every source image of the dataset. Different visibility distances are then simulated with Koschmieder's fog model and the implemented algorithms are applied on the resulting images. Among others, the analysis of the results shows that in foggy situations the performance of a HSI-based algorithm is not always better than that of a RGB-based method.
机译:本文研究了雾气对智能驾驶员辅助系统中使用的交通标志检测算法的影响。以前的研究都是基于合成图像。在这项工作中,我们改用不同路况的真实照片进行增雾,以研究五种检测方法的性能。为了获得有关场景的深度信息,首先为数据集的每个源图像估计一个深度图。然后使用Koschmieder的雾模型模拟不同的可见距离,并将实现的算法应用于生成的图像。其中,对结果的分析表明,在有雾的情况下,基于HSI的算法的性能并不总是比基于RGB的方法更好。

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