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Query Object Detection in Big Video Data on Hadoop Framework

机译:Hadoop框架中大视频数据中的查询对象检测

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In the emerging era of technology filled with multimedia sources video lecturing is becoming increasingly significant. The detection of objects in such systems is crucial for application areas such as identification of person, gender, event and other non-living things. This paper throws some light on adopting the methods to handle such Big video data using Hadoop framework. Hadoop Map-Reduce technology in assistance with the video processing algorithms refined till a certain efficiency helps in detecting the objects in Big video data. The Big video data is initially distributed to various nodes of Hadoop environment where in each node functions in processing of videos. The cull map per distributes videos to all nodes in a cluster. In the first map phase original videos are converted from RGB to gray scale since processing on gray scale videos is three times faster than that of processing on RGB videos. Then in second map phase, the background subtraction method for object detection is carried out. The detected object can be then classified into its category.
机译:在充满多媒体资源的新兴技术时代,视频演讲日益重要。在这样的系统中,对象的检测对于应用领域至关重要,例如识别人,性别,事件和其他非生物。本文对采用Hadoop框架处理此类大视频数据的方法进行了一些阐述。 Hadoop Map-Reduce技术将视频处理算法改进到一定效率,以帮助检测大视频数据中的对象。大视频数据最初被分发到Hadoop环境的各个节点,其中每个节点在视频处理中发挥作用。剔除图将视频分发到群集中的所有节点。在第一个地图阶段,原始视频从RGB转换为灰度,因为对灰度视频的处理比对RGB视频的处理快三倍。然后在第二地图阶段,执行用于物体检测的背景减法。然后可以将检测到的对象分类为其类别。

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