使用视觉外观检测交通面板

Álvaro González, L. Bergasa, J. J. Torres, J. Almazán
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引用次数: 2

摘要

长期以来,人们对交通标志检测进行了深入的研究。然而,由于交通面板类型的巨大可变性,道路面板检测仍然是计算机视觉中的一个挑战,因为其中描述的信息不受限制。本文提出了一种检测街道级图像中的交通面板的方法,作为智能交通系统(ITS)的应用,因为其主要目的是对道路上的交通面板进行自动盘点,以支持维护和辅助驾驶员,以提高人类的生活质量。该方法对蓝白像素采用颜色检测方法,提取兴趣点的局部描述符。然后,使用视觉词袋技术对图像进行建模,并使用Naïve贝叶斯理论和支持向量机对图像进行分类。在Google街景真实图像上的实验结果证明了该方法的有效性,并为在机器人和ITS的不同应用中使用街景图像铺平了道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Traffic panels detection using visual appearance
Traffic signs detection has been thoroughly studied for a long time. However, road panels detection still remains a challenge in computer vision due to the huge variability of types of traffic panels, as the information depicted in them is not restricted. This paper presents a method to detect traffic panels in street-level images as an application to Intelligent Transportation Systems (ITS), since the main purpose can be to make an automatic inventory of the traffic panels located in a road to support maintenance and to assist drivers in order to improve human quality of life. The proposed method extracts local descriptors at some interest points after applying a color detection method for blue and white pixels. Then, the images are modeled using a Bag of Visual Words technique and classified using Naïve Bayes theory and SVM. Experimental results on real images from Google Street View prove the efficiency of the proposed method and give way to using street-level images for different applications on robotics and ITS.
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