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Elegant and Efficient Algorithms for Real Time Object Detection, Counting and Classification for Video Surveillance Applications from single fixed camera

机译:从单固定摄像机进行实时对象检测,计数和分类的优雅高效算法

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摘要

Video Surveillance is very important and essential task for security applications. Earlier surveillance was like capturing a video from camera, storing the information in a database, and then required contents were accessed manually from the database. It may lead to loss of sensitive information in real time. In such cases automated video surveillance is very essential. In automated video surveillance, object detection and tracking can be done in real time, and it finds the required information, also informs to the administrator in real time. This paper describes the detection of objects in real time and counts the number of objects. It also describes the objects classification; it is classified in to five predefined classes namely human beings, cars, motor bikes, busses and horses by the method of features extraction and Comparision.
机译:视频监控是安全应用程序的非常重要和必要的任务。早期监视就像捕获来自相机的视频,将信息存储在数据库中,然后从数据库手动访问所需内容。它可能会在实时导致敏感信息丢失。在这种情况下,自动视频监控是非常重要的。在自动视频监控中,可以实时进行对象检测和跟踪,并找到所需信息,并实时通知管理员。本文介绍了实时检测对象并计算对象的数量。它还描述了对象分类;通过提取和比较的方法,将其分为五个预定级别的一类人类,汽车,汽车自行车,公共汽车和马匹。

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