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Facial Affect 'in-the-wild': A survey and a new database

机译:面部影响“野外”:调查和新数据库

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Well-established databases and benchmarks have been developed in the past 20 years for automatic facial behaviour analysis. Nevertheless, for some important problems regarding analysis of facial behaviour, such as (a) estimation of affect in a continuous dimensional space (e.g., valence and arousal) in videos displaying spontaneous facial behaviour and (b) detection of the activated facial muscles (i.e., facial action unit detection), to the best of our knowledge, well-established in-the-wild databases and benchmarks do not exist. That is, the majority of the publicly available corpora for the above tasks contain samples that have been captured in controlled recording conditions and/or captured under a very specific milieu. Arguably, in order to make further progress in automatic understanding of facial behaviour, datasets that have been captured in in-the-wild and in various milieus have to be developed. In this paper, we survey the progress that has been recently made on understanding facial behaviour in-the-wild, the datasets that have been developed so far and the methodologies that have been developed, paying particular attention to deep learning techniques for the task. Finally, we make a significant step further and propose a new comprehensive benchmark for training methodologies, as well as assessing the performance of facial affect/behaviour analysis/understanding in-the-wild. To the best of our knowledge, this is the first time that such a benchmark for valence and arousal "in-the-wild" is presented.
机译:过去20年来制定了良好的数据库和基准,以实现自动面部行为分析。然而,对于面部行为分析的一些重要问题,例如(a)在展示自发面部行为的视频中的持续尺寸空间(例如,价值和唤醒)中的影响估计(例如,用于检测活性的面部肌肉(即据我们所知,面部动作单位检测),不存在良好的遍历野外数据库和基准。也就是说,上述任务的大多数公开的Corpora包含在受控记录条件下被捕获的样本和/或在非常具体的Milieu下捕获。可以说,为了进一步进一步进展,以自动理解面部行为,必须开发出在野外和各种Milieus中被捕获的数据集。在本文中,我们调查了最近对野外的面部行为进行了进展,该进度是迄今为止开发的数据集以及已经开发的方法,特别注意任务的深度学习技巧。最后,我们进一步提出了重要的一步,提出了一种新的培训方法的全面基准,以及评估面部影响/行为分析/理解的性能。据我们所知,这是第一次为价值和愤怒“在野外”的基准时期。

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