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Wavelet-based vehicle tracking for automatic traffic surveillance

机译:基于小波的自动交通监测的车辆跟踪

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A system for wavelet-based vehicle tracking for automatic traffic surveillance is proposed. In order to meet real-time requirements, we use adaptive thresholding and a wavelet-based neural network (NN), which achieves low computational complexity, accuracy of localization, and noise robustness has been considered for vehicle tracking. The proposed system consists of three steps: moving region extraction, vehicle recognition and vehicle tracking. First, moving regions are extracted by performing a frame difference analysis on two consecutive frames using adaptive thresholding. Second, the wavelet-based NN is used for recognizing the vehicles in the extracted moving regions. The wavelet transform is adopted to decompose an image and a particular frequency band is selected for input of the NN for vehicle recognition. Third, vehicles are tracked by using position coordinates and wavelet features difference values for correspondence in recognized vehicle regions. Experimental results of the proposed system can be useful for a traffic surveillance system.
机译:提出了一种用于自动流量监测的基于小波的车辆跟踪系统。为了满足实时要求,我们使用自适应阈值处理和基于小波的神经网络(NN),这实现了低计算复杂性,定位准确性,并且已经考虑了车辆跟踪的噪声鲁棒性。所提出的系统由三个步骤组成:移动区域提取,车辆识别和车辆跟踪。首先,通过使用自适应阈值处理对两个连续帧执行帧差异分析来提取移动区域。其次,基于小波的NN用于识别提取的移动区域中的车辆。采用小波变换来分解图像,选择特定频带以输入用于车辆识别的NN。第三,通过使用位置坐标和小波具有识别的车辆区域的对应关系来跟踪车辆。建议系统的实验结果对于交通监测系统有用。

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