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Automatic Assessment of Depression Based on Visual Cues: A Systematic Review

机译:基于视觉提示的抑郁症自动评估:系统评价

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Automatic depression assessment based on visual cues is a rapidly growing research domain. The present exhaustive review of existing approaches as reported in over sixty publications during the last ten years focuses on image processing and machine learning algorithms. Visual manifestations of depression, various procedures used for data collection, and existing datasets are summarized. The review outlines methods and algorithms for visual feature extraction, dimensionality reduction, decision methods for classification and regression approaches, as well as different fusion strategies. A quantitative meta-analysis of reported results, relying on performance metrics robust to chance, is included, identifying general trends and key unresolved issues to be considered in future studies of automatic depression assessment utilizing visual cues alone or in combination with vocal or verbal cues.
机译:基于视觉提示的自动抑郁评估是一个快速发展的研究领域。在过去十年中,已有六十多种出版物报道了对现有方法的详尽综述,重点是图像处理和机器学习算法。总结了抑郁症的视觉表现,用于数据收集的各种程序以及现有的数据集。审查概述了视觉特征提取,降维,分类和回归方法的决策方法以及不同融合策略的方法和算法。包括对报告结果的定量荟萃分析,该分析依赖于偶然性强的绩效指标,确定了总体趋势和未解决的关键问题,这些问题将在未来仅使用视觉线索或结合语音或言语线索进行自动抑郁评估的研究中加以考虑。

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