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A Dynamic Approach for Detecting Naturalistic Affective States from Facial Videos during HCI

机译:HCI期间从面部视频中检测自然主义情感状态的动态方法

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Significant progress has been made in automatic facial expression analysis using facial images and videos. The recognition reliability of most current approaches is still poor in naturalistic expressions compared to acted ones. Most of these methods use a static image of each expression that captures the characteristic image at the apex. However, according to psychologists, analyzing a sequence of images in a dynamic manner produces more accurate and robust recognition of facial affect expressions. In this paper, a new dynamic model is proposed for detecting naturalistic affect expressions. The Local Binary Pattern in Three Orthogonal Planes (LBP-TOP) is considered for modeling appearance and motion of facial features. The International Affective Picture System (IAPS) collection was used as stimulus for triggering naturalistic affective states. The dynamic approach produced an improvement of 16% for valence classification and 22% for arousal classification over previous studies.
机译:使用面部图像和视频的自动面部表情分析已经取得了重大进展。与实际方法相比,大多数当前方法的识别可靠性在自然主义表达中仍然很差。这些方法大多数都使用每个表达式的静态图像来捕获顶点处的特征图像。但是,根据心理学家的说法,以动态方式分析图像序列会更准确,更可靠地识别面部表情。本文提出了一种新的动态模型,用于检测自然主义情感表达。考虑将三个正交平面(LBP-TOP)中的局部二值模式用于对面部特征的外观和运动进行建模。国际情感图片系统(IAPS)集合被用作触发自然情感状态的刺激。与以前的研究相比,动态方法在价位分类方面提高了16%,在唤醒方式方面提高了22%。

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