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Interest emotion recognition approach using self-organising map and motion estimation

机译:利用自组织地图和运动估计的兴趣情感识别方法

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摘要

Recognising human facial emotions by computer is an interesting problem. Although several approaches have been proposed the recognition rate, amount of used resources and calculation time remain factors for improvement. Our work presents a new approach for recognising basic emotions (joy, sadness, anger, disgust, surprise and fear) in image sequences. We introduced interest emotion and created its corresponding action units (AUs) based on psychological foundations. Our approach is mainly characterised by minimising used data and consequently optimising the computing time and improving the recognition rate. The proposed approach was divided into three steps: face detection using the Viola and Jones method, the extraction of facial features: here we exploited the facial action coding system, which is based on AUs. To detect AUs, we extracted face strategic points using an active appearance model and a block-matching approach. At the last, we classified the results by using the Kohonen self-organising map (SOM).
机译:通过计算机识别人类面部情绪是一个有趣的问题。虽然已经提出了几种方法,但识别率,使用的资源和计算时间仍然是改进的因素。我们的工作提出了一种识别图像序列中基本情绪(喜悦,悲伤,愤怒,厌恶,惊喜和恐惧)的新方法。我们介绍了兴趣情绪,并根据心理基础创建了其相应的行动单位(AUS)。我们的方法主要是最小化使用数据并因此优化计算时间并提高识别率。拟议的方法分为三个步骤:面部检测采用中提琴和琼斯方法,提取面部特征:在这里,我们利用了基于AU的面部动作编码系统。为了检测AU,我们使用主动外观模型和块匹配方法提取面部战略点。最后,我们通过使用Kohonen自组织地图(SOM)分类结果。

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