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Exploring video descriptions for handwashing activities as part of an obsessive-compulsive disorder study

机译:作为强迫症研究的一部分,探索洗手活动的视频描述

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Analysis of behavior using video is a promising approach for identifying risk markers for psychopathology that can be applied in a wide range of populations. As part of a study on the environmental factors that relate to obsessive-compulsive disorder (OCD) behaviors, videos were recorded of everyday tasks being performed by two groups of children: a control group and a group diagnosed with OCD. One of the activities involved handwashing, since handwashing compulsions are frequent amongst those who suffer from OCD. Being able to classify these handwashing videos as showing behaviors associated with OCD or not is a step towards helping to automate important aspects of this psychiatric study. This paper explores using various feature descriptors sampled from dense motion trajectories to determine which combination of features and encodings would be best for video classification. Dense motion trajectories are computed for the videos from the OCD study and the points in these trajectories are described using several methods, including histograms of oriented gradient, histograms of optical flow, and motion boundary histograms. Various encoding techniques for these descriptors are also explored, including bag of words, pyramid bag of words, and sparse coding. To determine which feature/encoding techniques would perform the best, several dimensionality reduction techniques are used and the methods are ranked based on separability in the low dimensional space. This separability is measured by classifying using a linear discriminant and also by using kNN.
机译:使用视频分析行为是一种有前途的方法,可用于确定心理病理学的危险标记,可将其应用于广泛的人群中。作为对与强迫症(OCD)行为有关的环境因素的研究的一部分,记录了由两组儿童(对照组和诊断为强迫症的一组儿童)执行的日常任务的视频。其中一项活动涉及洗手,因为强迫症患者中经常会强迫洗手。能够将这些洗手视频分类为显示与强迫症相关的行为,这是迈向帮助使这项精神病学研究的重要方面自动化的一步。本文探索了从密集运动轨迹中采样的各种特征描述符,以确定哪种特征和编码组合最适合视频分类。为来自OCD研究的视频计算了密集运动轨迹,并使用几种方法描述了这些轨迹中的点,包括定向梯度直方图,光流直方图和运动边界直方图。还探索了用于这些描述符的各种编码技术,包括单词袋,单词金字塔袋和稀疏编码。为了确定哪种功能/编码技术将表现最佳,使用了几种降维技术,并根据低维空间中的可分离性对这些方法进行了排名。通过使用线性判别器以及通过使用kNN进行分类来测量此可分离性。

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