The Interplay Of Hand Gestures And Facial Expressions In Conveying Emotions A CNN–BASED APPROACH

Arjun A M, Sreehari S, R. Nandakumar
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引用次数: 4

Abstract

Emotion recognition is the process of identifying human emotions. Identifying the emotion being conveyed by facial expressions is a well-studied area as is the processing of formal hand gestures (mudras, semaphores, sign language etc..) as a means of communication. Our study focuses on two observations:(1) hand gestures, which have no reference to any formal system, can convey meanings even without accompanying facial expressions and (2) facial expressions and ‘informal’ hand gestures can nontrivially combine to convey messages with altogether new meanings. We present visuals to illustrate these observations. Experimentally, we present an image classification algorithm using Convolutional Neural Networks and TensorFlow library and OpenCV technology; with suitable datasets, we were able to train our system to recognize emotions conveyed by a limited set of hand gestures with no support from facial expressions (observation 1 above). We also indicate how the work ought to be extended to handle cases where hand gestures and facial expressions combine to convey interesting emotional signals.
手势和面部表情在传递情感中的相互作用——一种基于cnn的方法
情绪识别是识别人类情绪的过程。识别面部表情所传达的情感是一个很好的研究领域,就像处理正式的手势(手印、信号、手语等)作为一种交流手段一样。我们的研究集中在两个观察结果上:(1)手势,没有任何正式系统的参考,即使没有伴随的面部表情也可以传达意思;(2)面部表情和“非正式”手势可以非同寻常地结合起来传达全新的意思。我们用图像来说明这些观察结果。实验上,我们提出了一种基于卷积神经网络、TensorFlow库和OpenCV技术的图像分类算法;有了合适的数据集,我们就能够训练我们的系统在没有面部表情支持的情况下,通过一组有限的手势来识别情感(上面的观察1)。我们还指出,这项工作应该如何扩展到处理手势和面部表情相结合来传达有趣情感信号的情况。
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