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The Design of Intelligent Transportation Video Processing System in Big Data Environment

机译:大数据环境中智能交通视频处理系统的设计

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The intelligent transportation system in big data environment is the development trend of future transportation system, which effectively integrates advanced information technology, data communication transmission technology, electronic sensor technology, control technology and computer technology and is applied to overall ground transportation management. Hence, it establishes a real-time, accurate, efficient and comprehensive transportation management system that functions in a wide range and all-round aspects. In order to meet the demands of the intelligent transportation big data processing, this paper puts forward a high performance computing architecture of large-scale transportation video data management based on cloud computing, designs a parallel computing model containing the distributed file system and distributed computing system to solve the problems such as flexible server increase or decrease, load balancing and flexible dynamic storage increase or decrease, computing power and great improvement of storage efficiency. On the basis of this technical architecture, the system adopts BP neural network-related algorithms to extract the static transportation signs in road videos, and uses interframe difference algorithm and Gaussian mixture model (GMM) fusion algorithm to extract the moving targets in road transportation videos. In this way, they are taken as important integral parts and data sources of key frames of intelligent video image recognition to improve the recognition ability of key frames and eventually utilize semantic recognition model based on CNN (Convolutional Neural Network) to complete the intelligent recognition of whole transportation videos. Through network pressure test, computing ability test, recognition ability test and other tests, it has been proved that the intelligent transportation video processing system based on big data environment is successful and the design scheme of this system has strong practical application value.
机译:大数据环境中的智能交通系统是未来运输系统的发展趋势,有效集成了先进的信息技术,数据通信传输技术,电子传感器技术,控制技术和计算机技术,并应用于整体地面运输管理。因此,它建立了一个实时,准确,高效,综合的运输管理系统,可在广泛的范围内和全方位方面起作用。为了满足智能运输大数据处理的需求,本文提出了基于云计算的大型运输视频数据管理的高性能计算架构,设计了包含分布式文件系统和分布式计算系统的并行计算模型要解决灵活服务器增加或减少,负载平衡和灵活动态存储等问题,增加,计算功率和储存效率的巨大提高。在此技术架构的基础上,该系统采用BP Neural网络相关算法提取道路视频中的静态运输标志,并使用帧间差分算法和高斯混合模型(GMM)融合算法在道路运输视频中提取移动目标。通过这种方式,它们被视为智能视频图像识别的关键帧的重要组成部分和数据源,以提高关键帧的识别能力,并最终利用基于CNN(卷积神经网络)的语义识别模型来完成智能识别整个运输视频。通过网络压力测试,计算能力测试,识别能力测试和其他测试,已经证明了基于大数据环境的智能运输视频处理系统成功,该系统的设计方案具有强大的实际应用价值。

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