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Traffic sign recognition method for intelligent vehicles

机译:智能车辆交通标志识别方法

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摘要

Traffic sign recognition is one of the main components of intelligent transportation systems (ITS). It improves safety by informing the driver of the current state of the road, e.g., warnings, prohibitions, restrictions, and other information useful for driving. This paper presents a new road sign recognition method that is achieved in three main steps. The first step maps the input image from the Cartesian coordinate system to the log-polar one. The second step computes the histogram of oriented gradients, local binary pattern, and local self-similarity characteristics from the image represented in the log-polar coordinate system. The third step performs classification on the basis of the random forest classifier and the features computed in the second step. The proposed method has been tested on the German Traffic Sign Recognition Benchmark dataset, and the results obtained are satisfactory when compared to the state-of-the-art approaches. (C) 2018 Optical Society of America.
机译:交通标志识别是智能交通系统(其)的主要组件之一。 它通过通知当前道路的驾驶员,例如警告,禁令,限制和其他可用于驾驶的信息来提高安全性。 本文提出了一种新的道路标志识别方法,以三个主要步骤实现。 第一步将输入图像从笛卡尔坐标系映射到逻辑极坐标。 第二步骤计算来自在日志极坐标系中表示的图像的面向梯度,局部二进制图案和局部自相似特征的直方图。 第三步是基于随机林分类器进行分类,并且在第二步中计算的特征。 该方法已经在德国交通标志识别基准数据集上进行了测试,与最先进的方法相比,所获得的结果令人满意。 (c)2018年光学学会。

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