The classifying algorithms for train barriers recognition on the basis of image fusion methods and neural networks

Y. Bekhtin, P. Krug, A. Lupachev, I. Zhelbakov, V. Grout
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Abstract

This paper presents the results of new research on neural network classifiers for barriers on traffic routes of locomotives. The general structure of the system of detection, recognition of traffic barriers, input information coming from the subsystem of the computer vision and the subsystem that scans spaces in front of the locomotive are considered. The methods of image fusion based on an adaptive processing of wavelet coefficients are used to increase the resolution of images. A multilayer neural network with error back propagation is used as a classifier.
基于图像融合和神经网络的列车障碍物识别分类算法
本文介绍了神经网络分类器在机车行车路线障碍分类中的新研究成果。考虑了该系统的总体结构,交通障碍的识别,输入信息来自计算机视觉子系统和车头前方空间扫描子系统。采用基于小波系数自适应处理的图像融合方法来提高图像的分辨率。采用误差反向传播的多层神经网络作为分类器。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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