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Relative Body Parts Movement for Automatic Depression Analysis

机译:相对身体部位运动以进行自动下陷分析

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摘要

In this paper, a human body part motion analysis based approach is proposed for depression analysis. Depression is a serious psychological disorder. The absence of an (automated) objective diagnostic aid for depression leads to a range of subjective biases in initial diagnosis and ongoing monitoring. Researchers in the affective computing community have approached the depression detection problem using facial dynamics and vocal prosody. Recent works in affective computing have shown the significance of body pose and motion in analysing the psychological state of a person. Inspired by these works, we explore a body parts motion based approach. Relative orientation and radius are computed for the body parts detected using the pictorial structures framework. A histogram of relative parts motion is computed. To analyse the motion on a holistic level, space-time interest points are computed and a bag of words framework is learnt. The two histograms are fused and a support vector machine classifier is trained. The experiments conducted on a clinical database, prove the effectiveness of the proposed method.
机译:本文提出了一种基于人体运动分析的方法进行抑郁症分析。抑郁症是一种严重的心理障碍。缺乏(自动)抑郁症的客观诊断工具会导致初步诊断和持续监测的一系列主观偏见。情感计算界的研究人员已经通过面部动力学和人声韵律来解决抑郁症的检测问题。情感计算领域的最新研究表明,身体姿势和动作在分析人的心理状态方面具有重要意义。受这些作品的启发,我们探索了一种基于身体部位运动的方法。使用图片结构框架为检测到的身体部位计算相对方向和半径。计算相对零件运动的直方图。为了从整体上分析运动,计算了时空兴趣点并学习了一个词袋框架。将两个直方图融合,并训练支持向量机分类器。在临床数据库上进行的实验证明了该方法的有效性。

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