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Multiple Moving Object Recognitions in Video Based on Log Gabor-PCA Approach

机译:基于Log Gabor-PCA方法的视频中多种移动对象识别

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Object recognition in the video sequence or images is one of the subfield of computer vision. Moving object recognition from a video sequence is an appealing topic with applications in various areas such as airport safety, intrusion surveillance, video monitoring, intelligent highway, etc. Moving object recognition is the most challenging task in intelligent video surveillance system. In this regard, many techniques have been proposed based on different methods. Despite of its importance, moving object recognition in complex environments is still far from being completely solved for low resolution videos, foggy videos, and also dim video sequences. All in all, these make it necessary to develop exceedingly robust techniques. This paper introduces multiple moving object recognition in the video sequence based on LoG Gabor-PCA approach and Angle based distance Similarity measures techniques used to recognize the object as a human, vehicle etc. Number of experiments are conducted for indoor and outdoor video sequences of standard datasets and also our own collection of video sequences comprising of partial night vision video sequences. Experimental results show that our proposed approach achieves an excellent recognition rate. Results obtained are satisfactory and competent.
机译:视频序列或图像中的对象识别是计算机视觉的子字段之一。从视频序列移动对象识别是一个吸引人的主题,在各种领域中的应用程序,如机场安全,入侵监控,视频监控,智能公路等。移动物体识别是智能视频监控系统中最具挑战性的任务。在这方面,已经基于不同方法提出了许多技术。尽管重要的是,复杂环境中的移动对象识别仍然远远不受低分辨率视频,有雾视频以及昏暗的视频序列的完全解决。总而言之,这些使得有必要制定非常强大的技术。本文在基于日志Gabor-PCA方法和基于角度的距离相似度测量技术中介绍了多种移动物体识别,用于识别对象作为人,车辆等的实验数量进行标准的室外和室外视频序列进行实验。数据集以及我们自己的视频序列集合,包括部分夜视视频序列。实验结果表明,我们的拟议方法实现了出色的识别率。获得的结果是令人满意和有能力的。

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