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Hebbr~2-taffic: A Novel Application Of Neuro-fuzzy Network For Visual Basedtraffic Monitoring System

机译:Hebbr〜2交通:神经模糊网络在基于视觉的交通监控系统中的新应用

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This paper presents a robust methodology that automatically counts moving vehicles along an expressway. The domain of interest for this paper is using both neuro-fuzzy network and simple image processing techniques to implement traffic flow monitoring and analysis. As this system is dedicated for outdoor applications, efficient and robust processing methods are introduced to handle both day and night analysis. In our study, a neuro-fuzzy network based on the Hebbian-Mamdani rule reduction architecture is used to classify and count the number of vehicles that passed through a three- or four-lanes expressway. As the quality of the video captured is corrupted under noisy outdoor environment, a series of preprocessing is required before the features are fed into the network. A vector of nine feature values is extracted to represent whether a vehicle is passing through a lane and this vector serves as input patterns would be used to train the neuro-fuzzy network. The vehicle counting and classification would then be performed by the well-trained network. The novel approach is benchmarked against the MLP and RBF networks. The results of using our proposed neuro-fuzzy network are very encouraging with a high degree of accuracy.
机译:本文提出了一种可靠的方法,可以自动计算高速公路上行驶的车辆。本文关注的领域是使用神经模糊网络和简单的图像处理技术来实现交通流监控和分析。由于该系统专用于户外应用,因此引入了高效而强大的处理方法来处理白天和夜晚的分析。在我们的研究中,基于Hebbian-Mamdani规则约简体系的神经模糊网络用于分类和计算通过三车道或四车道高速公路的车辆数量。由于在嘈杂的户外环境下捕获的视频质量会下降,因此在将功能馈入网络之前需要进行一系列预处理。提取九个特征值的向量来表示车辆是否正在通过车道,并且该向量用作输入模式将用于训练神经模糊网络。车辆计数和分类然后将由训练有素的网络执行。该新方法针对MLP和RBF网络进行了基准测试。使用我们提出的神经模糊网络的结果以高度准确性令人鼓舞。

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