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Micro-expression recognition: an updated review of current trends, challenges and solutions

机译:微表情识别:对当前趋势,挑战和解决方案的更新回顾

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摘要

Micro-expression (ME) recognition has attracted numerous interests within the computer vision circle in different contexts particularly, localization, magnification, and recognition. Challenges in these areas remain relevant due to the nature of ME's split-second transition with minute intensity levels. In this paper, a comprehensive state-of-the-art analysis of ME recognition and detection challenges are provided. Contemporary solutions are categorized into low-level, mid-level, and high-level solutions with a review of their characteristics and performances. This paper also provides possible extensions to basic methods, highlight, and predict emerging trends. A thorough analysis of mainstream ME datasets is also provided by elucidating each of their advantages and limitations. This survey gives readers an understanding of ME recognition and an appreciation of future research direction in ME recognition systems.
机译:微表达(ME)识别已引起计算机视觉圈内不同背景下的众多兴趣,尤其是本地化,放大和识别。由于ME具有瞬间强度级别的瞬间转换特性,因此这些领域中的挑战依然重要。在本文中,提供了对ME识别和检测挑战的全面的最新技术分析。通过对现代解决方案的特性和性能进行回顾,可以将其分为低级,中级和高级解决方案。本文还提供了对基本方法的可能扩展,突出并预测了新兴趋势。通过阐明其优势和局限性,还可以对主流ME数据集进行全面分析。这项调查使读者了解ME识别,并对ME识别系统的未来研究方向有所了解。

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