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Facial Expression Recognition from Different Angles Using DCNN for Children with ASD to Identify Emotions

机译:对不同角度的面部表情识别使用DCNN用于亚目的儿童识别情绪

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In this paper, continued work of a research project is discussed whose end goal is to build a mobile device application that can teach children with ASD (Autism Spectrum Disorder) to recognize human facial expressions utilizing computer vision and image processing. This paper discusses the intermediate work of a facial expression recognition approach using a deep convolutional neural network (DCNN) utilizing images from different angles. The Karolinska Directed Emotional Faces (KDEF) dataset has been used to train and test with the DCNN model. This dataset contains images from five different angles. Results of this paper will contribute to the end goal of the research which is to recognize facial expression from any angle of viewpoint. Finally, the result obtained is discussed and future work of the project is outlined.
机译:在本文中,讨论了研究项目的持续工作,其最终目标是建立一个移动设备应用程序,可以教授具有ASD的儿童(自闭症频谱紊乱)来识别利用计算机视觉和图像处理的人类面部表达。 本文讨论了使用来自不同角度的图像的深度卷积神经网络(DCNN)的面部表情识别方法的中间工作。 Karolinska定向情感面(Kdef)数据集已被用来使用DCNN模型培训和测试。 此数据集包含来自五个不同角度的图像。 本文的结果将有助于识别来自任何观点的面部表情的研究。 最后,讨论了所获得的结果,并概述了该项目的未来工作。

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