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An Automated Framework for Depression Analysis

机译:自动化的抑郁症分析框架

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摘要

This project aims at developing an automated framework for depression detection. During a depressive episode, patients suffer from psychomotor retardation and this phenomenon is not only limited to facial activity. In this PhD work, it is hypothesized that such complex affective state can be better represented by integrating information from various uni-modal channels to form a multimodal affective sensing system. The project explores facial dynamics, body expressions such as head movement, relative body part movement etc. in patients with major depressive disorders. The contribution of various channels is assessed and as a final objective, a framework combining discriminative channels for automatic depression analysis is proposed.
机译:该项目旨在开发用于抑郁症检测的自动化框架。在抑郁发作期间,患者会遭受精神运动发育迟缓,这种现象不仅限于面部活动。在此博士论文中,假设可以通过整合来自各种单峰通道的信息以形成多峰情感传感系统来更好地表示这种复杂的情感状态。该项目探讨了重度抑郁症患者的面部动力学,身体表情,例如头部运动,相对身体部位运动等。评估了各种渠道的贡献,并作为最终目标,提出了一个结合区分性渠道进行自动抑郁分析的框架。

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