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Video Object Detection Method Using Single-Frame Detection and Motion Vector Tracking

机译:视频对象检测方法使用单帧检测和运动矢量跟踪

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Video traffic on the Internet has been increasing rapidly and accounts for a large percentage of the total traffic. To process the increasing number of videos, edge computing is preferable for load balancing and bandwidth reduction. However, edge areas have less computational resources than cloud areas, and high-performance GPUs for processing videos at high speed are not always present. Therefore, a memory-saving and high-throughput video analysis method is necessary for analyzing videos in edge areas. In this paper, a video object detection method using single-frame detection and motion vector tracking is proposed. This method is classified as a pixel and compressed domain analysis method and is realized by compensating motion using the motion vectors that already exist in the compressed domain. This method is divided into two processes: CNN-based object detection and motion vector-based object detection. In addition, a network-transparent platform for video reconstruction in edge areas is constructed. The network-transparent service can be installed without modifying the existing end-device network settings, network configuration, and routing. The platform enables video object detection services to be added on without modification of these settings.
机译:互联网上的视频流量一直在迅速增加,占总流量的大量百分比。为了处理越来越多的视频,优选边缘计算对于负载平衡和带宽减少。然而,边缘区域具有比云区域更少的计算资源,并且高速处理视频的高性能GPU并不总是存在。因此,在边缘区域中的视频分析视频是必要的节省存储和高吞吐量视频分析方法。本文提出了一种使用单帧检测和运动矢量跟踪的视频对象检测方法。该方法被分类为像素和压缩域分析方法,并通过使用已经存在于压缩域中的运动矢量来通过补偿运动来实现。该方法分为两个进程:基于CNN的对象检测和基于运动矢量的对象检测。此外,构建了用于边缘区域中的视频重建的网络透明平台。可以在不修改现有的最终设备网络设置,网络配置和路由的情况下安装网络透明服务。该平台可以在不修改这些设置的情况下添加视频对象检测服务。

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