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MEGC 2019 – The Second Facial Micro-Expressions Grand Challenge

机译:Megc 2019 - 第二个面部微表达大挑战

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Automatic facial micro-expression (ME) analysis is a growing field of research that has gained much attention in the last five years. With many recent works testing on limited data, there is a need to spur better approaches that are both robust and effective. This paper summarises the 2nd Facial Micro-Expression Grand Challenge (MEGC 2019) held in conjunction with the 14th IEEE Conference on Automatic Face and Gesture Recognition (FG) 2019. In this workshop, we proposed challenges for two micro-expression (ME) tasks- spotting and recognition, with the aim of encouraging rigorous evaluation and development of new robust techniques that can accommodate data captured across a variety of settings. In this paper, we outline the evaluation protocols for the two challenge tasks, the datasets involved, and an analysis of the best performing works from the participating teams, together with a summary of results. Finally, we highlight some possible future directions.
机译:自动面部微表达(ME)分析是一个日益增长的研究领域,在过去的五年里越来越大。随着最近有限数据的最新作品测试,需要促进更好的方法,既具有稳健且有效。本文总结了第2届IEEE关于自动面部和手势识别(FG)的第14次IEEE会议(FG)2019年举行的第2个面部微表达大挑战(MEGC 2019)。在这次研讨会上,我们提出了两个微表达式(ME)任务的挑战 - 发现和识别,旨在鼓励严格的评估和开发新的强大技术,可以容纳各种设置捕获的数据。在本文中,我们概述了两个挑战任务的评估协议,所涉及的数据集,以及与参与团队的最佳性能的分析以及结果的摘要。最后,我们突出了一些可能的未来方向。

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