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Affectiva-MIT Facial Expression Dataset (AM-FED): Naturalistic and Spontaneous Facial Expressions Collected In-the-Wild

机译:affectiva-mIT面部表情数据集(am-FED):在野外收集的自然主义和自发的面部表情

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摘要

Computer classification of facial expressions requires large amounts of data and this data needs to reflect the diversity of conditions seen in real applications. Public datasets help accelerate the progress of research by providing researchers with a benchmark resource. We present a comprehensively labeled dataset of ecologically valid spontaneous facial responses recorded in natural settings over the Internet. To collect the data, online viewers watched one of three intentionally amusing Super Bowl commercials and were simultaneously filmed using their webcam. They answered three self-report questions about their experience. A subset of viewers additionally gave consent for their data to be shared publicly with other researchers. This subset consists of 242 facial videos (168,359 frames) recorded in real world conditions. The dataset is comprehensively labeled for the following: 1) frame-by-frame labels for the presence of 10 symmetrical FACS action units, 4 asymmetric (unilateral) FACS action units, 2 head movements, smile, general expressiveness, feature tracker fails and gender; 2) the location of 22 automatically detected landmark points; 3) self-report responses of familiarity with, liking of, and desire to watch again for the stimuli videos and 4) baseline performance of detection algorithms on this dataset. This data is available for distribution to researchers online, the EULA can be found at: http://www.affectiva.com/facial-expression-dataset-am-fed/.
机译:面部表情的计算机分类需要大量数据,并且该数据需要反映实际应用中所见条件的多样性。公共数据集通过为研究人员提供基准资源来帮助加快研究进度。我们提出了在互联网上自然环境中记录的生态有效的自发面部反应的全面标记数据集。为了收集数据,在线观众观看了三个故意制作的超级碗广告中的一个,并同时使用网络摄像头进行了拍摄。他们回答了三个有关自己经历的自我报告问题。一部分观众还同意与其他研究人员公开共享其数据。该子集包括在现实世界中录制的242个面部视频(168,359帧)。数据集被全面标记为以下内容:1)逐帧标记,用于存在10个对称FACS动作单元,4个非对称(单边)FACS动作单元,2个头部运动,微笑,一般表现力,特征跟踪器失败和性别; 2)22个自动检测到的地标点的位置; 3)熟悉,喜欢并希望再次观看刺激视频的自我报告响应,以及4)此数据集上检测算法的基准性能。该数据可在线分发给研究人员,EULA的网址为:http://www.affectiva.com/facial-expression-dataset-am-fed/。

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