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Multimodal Spontaneous Emotion Corpus for Human Behavior Analysis

机译:用于人类行为分析的多模式自发情感语料库

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Emotion is expressed in multiple modalities, yet most research has considered at most one or two. This stems in part from the lack of large, diverse, well-annotated, multimodal databases with which to develop and test algorithms. We present a well-annotated, multimodal, multidimensional spontaneous emotion corpus of 140 participants. Emotion inductions were highly varied. Data were acquired from a variety of sensors of the face that included high-resolution 3D dynamic imaging, high-resolution 2D video, and thermal (infrared) sensing, and contact physiological sensors that included electrical conductivity of the skin, respiration, blood pressure, and heart rate. Facial expression was annotated for both the occurrence and intensity of facial action units from 2D video by experts in the Facial Action Coding System (FACS). The corpus further includes derived features from 3D, 2D, and IR (infrared) sensors and baseline results for facial expression and action unit detection. The entire corpus will be made available to the research community.
机译:情绪以多种方式表达,但大多数研究最多只考虑一种或两种。这部分是由于缺少用于开发和测试算法的大型,多样化,注释充分的多模式数据库。我们提出了一个由140名参与者组成的带批注,多模式,多维自发情感的语料库。情绪感应变化很大。数据是从各种面部传感器获取的,包括高分辨率3D动态成像,高分辨率2D视频和热(红外)传感,以及接触生理传感器,包括皮肤的电导率,呼吸,血压,和心率。面部动作编码系统(FACS)的专家通过2D视频对面部表情的出现和强度进行了注释。语料库还包括3D,2D和IR(红外)传感器的派生特征以及用于面部表情和动作单位检测的基线结果。整个语料库将提供给研究社区。

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