Deep Learning Approaches for Human Activity Recognition in Video Surveillance - A Survey

Rajat Khurana, A. Kushwaha
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引用次数: 13

Abstract

Recognition of the human activities in videos has gathered numerous demands in various applications of computer vision such as Ambient Assisted Living, intelligent surveillance, Human Computer interaction. One of the most pioneering technique for Human Activity Recognition is based upon deep learning and this paper focuses on various approaches based on that. Convolution Neural Network and Recurrent Neural Networks are mostly used in deep learning architectures. Deep Learning have the capacity of automatic learning of the features from the input modality. Analysis based on Methodology, Accuracy, classifier and datasets is presented in this survey paper.
视频监控中人类活动识别的深度学习方法综述
在环境辅助生活、智能监控、人机交互等计算机视觉的各种应用中,对视频中人类活动的识别有着众多的需求。人类活动识别中最具开创性的技术之一是基于深度学习的,本文重点介绍了基于深度学习的各种方法。卷积神经网络和递归神经网络主要用于深度学习架构。深度学习具有从输入模态中自动学习特征的能力。本文从方法学、准确性、分类器和数据集等方面进行了分析。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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