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Vehicle detection and classification using audio-visual cues

机译:使用视听提示进行车辆检测和分类

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The road transport is one of the most common modes of transport. Road planning and traffic management is conducted based on survey of traffic volume. These surveys can be manual or automatic. Audio based survey suffers from low accuracy but has low computational cost. Video based survey has significantly higher accuracy but demands high computational resources and time. In this paper, we propose an approach which utilizes both audio and video of traffic data to perform automatic traffic survey. Vehicles are automatically detected by locating peaks in the smoothed short time energy of the captured audio signal. Video frames are extracted around the location of the detected peaks. Thus, the number of video frames to be processed is reduced considerably. Vehicle image from the extracted video frames are detected using background subtraction and three frame differencing. Noisy binary image thus obtained is transformed into single object using morphological processing. Features such as area, perimeter, maximum length, horizontal length and 32 features generated from the vehicle shape are used to characterize the image of vehicles. These feature vectors are used to train a multilayer feed-forward artificial neural network classifier for seven classes of vehicles. The effectiveness of the proposed algorithm is tested using a query audio to obtain an accuracy of 82%.
机译:公路运输是最常见的运输方式之一。道路规划和交通管理是基于对交通量的调查而进行的。这些调查可以是手动的也可以是自动的。基于音频的调查的准确性较低,但计算成本较低。基于视频的调查具有更高的准确性,但需要大量的计算资源和时间。在本文中,我们提出了一种利用交通数据的音频和视频两者来执行自动交通调查的方法。通过在捕获的音频信号的平滑短时能量中找到峰值,可以自动检测车辆。在检测到的峰值附近提取视频帧。因此,要处理的视频帧的数量大大减少了。使用背景减法和三帧差分检测从提取的视频帧中提取的车辆图像。使用形态学处理将由此获得的嘈杂的二值图像转换为单个对象。诸如面积,周长,最大长度,水平长度之类的特征以及根据车辆形状生成的32个特征用于表征车辆图像。这些特征向量用于训练七类车辆的多层前馈人工神经网络分类器。使用查询音频测试了所提出算法的有效性,获得了82%的准确性。

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