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Detection and Recognition of Human in Videos using Adaptive Method and Neural Net

机译:使用自适应方法和神经网络检测和识别人类视频

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摘要

Detection and recognition of the moving objects in dynamic environment is difficult task. This paper presents a modified framework for the detection and recognition of moving people in videos. Detection part of the proposed method consists of average background model with supportive secondary model and an adaptive threshold selection model based on Gaussian distribution. The background model used for background modelling and adaptive threshold method is used to simultaneously update the system according to environment. Then feature extraction is performed by an established human model. This human model consists of five parts with robust features to facilitate recognition process. For recognition purpose, back propagation neural network has been used as a classifier. Experimental results show the effectiveness of proposed system.
机译:动态环境中的移动物体的检测和识别是困难的任务。本文提出了一种修改的框架,用于检测和识别视频中的移动人员。所提出的方法的检测部分由具有支持性二级模型的平均背景模型和基于高斯分布的自适应阈值选择模型组成。用于背景建模和自适应阈值方法的背景模型用于根据环境同时更新系统。然后通过建立的人类模型执行特征提取。这种人类模型由五个部分组成,具有稳健的功能,以便于识别过程。为了识别目的,回到传播神经网络已被用作分类器。实验结果表明了提出的系统的有效性。

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