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Multichannel CNN for Facial Expression Recognition

机译:多通道CNN用于面部表情识别

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摘要

In the past years there have been several attempts on the task of facial expression recognition. We have developed a new method based on the understanding of CNN and various image processing techniques. A multi-channel CNN architecture is proposed, which helps in performing improved facial expression recognition on frontal face images. For better feature extraction, fine tuning of images has been done by different preprocessing methods, namely Sobel edge detection, median filtering and Gaussian smoothing. 'Thereafter, the preprocessed images, have been fed in a novel manner in the proposed multi-channel CNN model. The model is evaluated on three challenging benchmark datasets - JAFFE, CK+ and Oulu-CASIA. The performance is comparable with various state-of-the-art approaches for facial expression recognition, which is evident from the results obtained.
机译:在过去的几年中,在面部表情识别的任务上进行了几次尝试。我们基于对CNN和各种图像处理技术的了解开发了一种新方法。提出了一种多通道CNN体系结构,该体系结构有助于在正面面部图像上执行改进的面部表情识别。为了更好地提取特征,已通过不同的预处理方法(即Sobel边缘检测,中值滤波和高斯平滑)对图像进行了微调。 ``此后,预处理后的图像已经以新颖的方式馈送到了所提出的多通道CNN模型中。该模型在三个具有挑战性的基准数据集-JAFFE,CK +和Oulu-CASIA上进行了评估。该性能可与各种先进的面部表情识别方法相媲美,这从获得的结果中可以明显看出。

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