首页> 外文期刊>EURASIP journal on advances in signal processing >Joint Wavelet Video Denoising and Motion Activity Detection in Multimodal Human Activity Analysis: Application to Video-Assisted Bioacoustic/Psychophysiological Monitoring
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Joint Wavelet Video Denoising and Motion Activity Detection in Multimodal Human Activity Analysis: Application to Video-Assisted Bioacoustic/Psychophysiological Monitoring

机译:多模式人体活动分析中的联合小波视频降噪和运动活动检测:在视频辅助生物声学/心理生理监测中的应用

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摘要

The current work focuses on the design and implementation of an indoor surveillance application for long-term automated analysis of human activity, in a video-assisted biomedical monitoring system. Video processing is necessary to overcome noise-related problems, caused by suboptimal video capturing conditions, due to poor lighting or even complete darkness during overnight recordings. Modified wavelet-domain spatiotemporal Wiener filtering and motion-detection algorithms are employed to facilitate video enhancement, motion-activity-based indexing and summarization. Structural aspects for validation of the motion detection results are also used. The proposed system has been already deployed in monitoring of long-term abdominal sounds, for surveillance automation, motion-artefacts detection and connection with other psychophysiological parameters. However, it can be used to any video-assisted biomedical monitoring or other surveillance application with similar demands.
机译:当前的工作重点是在视频辅助生物医学监控系统中设计和实施用于长期自动分析人类活动的室内监控应用程序。必须进行视频处理,以克服由于夜间照明过程中光线不足甚至完全黑暗而导致的次优视频捕获条件所导致的与噪声相关的问题。改进的小波域时空维纳滤波和运动检测算法用于促进视频增强,基于运动活动的索引编制和汇总。还使用了用于验证运动检测结果的结构方面。拟议中的系统已经部署在长期腹部声音的监视中,用于监视自动化,运动伪像检测以及与其他心理生理参数的连接。但是,它可以用于具有类似需求的任何视频辅助生物医学监视或其他监视应用程序。

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