Emotion Recognition In The Wild Challenge 2014: Baseline, Data and Protocol

Abhinav Dhall, Roland Göcke, Jyoti Joshi, Karan Sikka, Tom Gedeon
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引用次数: 224

Abstract

The Second Emotion Recognition In The Wild Challenge (EmotiW) 2014 consists of an audio-video based emotion classification challenge, which mimics the real-world conditions. Traditionally, emotion recognition has been performed on data captured in constrained lab-controlled like environment. While this data was a good starting point, such lab controlled data poorly represents the environment and conditions faced in real-world situations. With the exponential increase in the number of video clips being uploaded online, it is worthwhile to explore the performance of emotion recognition methods that work `in the wild'. The goal of this Grand Challenge is to carry forward the common platform defined during EmotiW 2013, for evaluation of emotion recognition methods in real-world conditions. The database in the 2014 challenge is the Acted Facial Expression In Wild (AFEW) 4.0, which has been collected from movies showing close-to-real-world conditions. The paper describes the data partitions, the baseline method and the experimental protocol.
2014年野生挑战中的情感识别:基线,数据和协议
第二次情感识别野外挑战赛(EmotiW) 2014由一个基于音频-视频的情感分类挑战赛组成,该挑战赛模拟了现实世界的情况。传统上,情感识别是对在受限的实验室控制环境中捕获的数据进行的。虽然这些数据是一个很好的起点,但这些实验室控制的数据很难代表现实世界中所面临的环境和条件。随着在线上传的视频片段数量呈指数级增长,探索在“野外”工作的情绪识别方法的性能是值得的。这次大挑战的目标是发扬EmotiW 2013期间定义的通用平台,用于评估现实世界条件下的情绪识别方法。2014年挑战赛的数据库是野外面部表情(AFEW) 4.0,它是从接近现实世界的电影中收集的。本文介绍了数据分区、基线方法和实验方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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