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Intelligent traffic video surveillance and accident detection system with dynamic traffic signal control

机译:动态交通信号控制智能交通视频监控与事故检测系统

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Enormous advance has proven throughout the years in the area of traffic surveillance by the growth of intelligent traffic video surveillance system. In the current work, through the traffic videos, the traffic video surveillance automatically keyed out the vehicles like ambulance and trucks, which in turn assisted us in directing the vehicles at the time of emergency. Nevertheless, it doesn't provide us a vital solution for the regulating the traffic. Moreover, this idea just identifies the vehicles, but it couldn't notice the accidents expeditiously. Therefore in the proposed work, expeditious traffic video surveillance and monitoring system are presented along with dynamic traffic signal control and accident detection mechanism. Hybrid median filter has been utilized at the beginning for pre-processing of traffic videos, and to remove the noise. Hybrid support vector machine (SVM with extended Kalman filter) has been utilized to chase the vehicles. Next, the histogram of flow gradient features are drew-out to categories the vehicles. According to the traffic density and through video files, vehicles are computed, and then for emergency vehicles, the traffic signal gets switched dynamically. To realize the arrival of ambulances, the cameras have been set to catch traffic videos minimum at 500m of the signal and deep learning neural networks has been employed. Hence dynamic signal control has been incorporated expeditiously. Likewise, multinomial logistic regression has been utilized in real-time live streaming videos, to identify the accidents correctly. The observational solution shows that the proposed intelligent traffic video surveillance system render expeditious dynamic control of traffic signals and it raises the identification of accidents correctly.
机译:通过智能交通视频监控系统的增长,整个历史都经过庞大的进步。在目前的工作中,通过交通视频,交通视频监控会自动键入救护车和卡车等车辆,这反过来又辅助我们在紧急情况时引导车辆。尽管如此,它并没有向我们提供调节交通的重要解决方案。而且,这个想法只是识别车辆,但它无法迅速地注意到事故。因此,在拟议的工作中,迅速的交通视频监控系统以及动态交通信号控制和事故检测机构呈现。混合中值过滤器已在开始处理交通视频的开始时使用,并删除噪声。混合支持向量机(带扩展卡尔曼过滤器的SVM)已被利用来追逐车辆。接下来,将流动梯度特征的直方图绘制到车辆的类别。根据交通密度和通过视频文件,计算车辆,然后用于紧急车辆,交通信号动态切换。为了实现救护车的到来,已经设定了相机以捕获500米处的交通视频,并采用深度学习神经网络。因此,动态信号控制已迅速地包含。同样,多项式逻辑回归已在实时直播视频中使用,以正确识别事故。观察解决方案表明,建议的智能交通视频监控系统迅速地控制交通信号,并促进了事故的识别。

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