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Sketch Based Facial Expression Recognition Using Graphics Hardware

机译:使用图形硬件的基于草图的面部表情识别

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摘要

In this paper, a novel system is proposed to recognize facial expression based on face sketch, which is produced by programmable graphics hardware-GPU(Graphics Processing Unit). Firstly, an expression subspace is set up from a corpus of images consisting of seven basic expressions. Secondly, by applying a GPU based edge detection algorithm, the real-time facial expression sketch extraction is performed. Subsequently, noise elimination is carried out by tone mapping operation on GPU. Then, an ASM instance is trained to track the facial feature points in the sketched face image more efficiently and precisely than that on a grey level image directly. Finally, by the normalized key feature points, Eigen expression vector is deduced to be the input of MSVM(Multi-SVMs) based expression recognition model, which is introduced to perform the expression classification. Test expression images are categorized by MSVM into one of the seven basic expression subspaces. Experiment on a data set containing 500 pictures clearly shows the efficacy of the algorithm.
机译:本文提出了一种新的基于面部素描的面部表情识别系统,该系统由可编程图形硬件GPU(Graphics Processing Unit,图形处理单元)产生。首先,从由七个基本表达式组成的图像语料库中建立一个表达式子空间。其次,通过应用基于GPU的边缘检测算法,执行实时面部表情草图提取。随后,通过在GPU上进行色调映射操作来执行噪声消除。然后,与直接在灰度图像上相比,训练ASM实例以更有效,更精确地跟踪草绘的面部图像中的面部特征点。最后,通过归一化的关键特征点,推导本征表达向量作为基于MSVM(Multi-SVMs)的表情识别模型的输入,引入其进行表情分类。 MSVM将测试表达图像分类为七个基本表达子空间之一。在包含500张图片的数据集上进行的实验清楚地表明了该算法的有效性。

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