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Face recognition from a single view based on flexible neural network matching

机译:基于灵活神经网络匹配的单视图面部识别

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This work presents a model-based face recognition approach that uses a hierarchical Gabor wavelet representation and flexible neural network matching. The representation of local features is based on the Gabor wavelets transform of a number of scales and a number of orientations. The Gabor wavelet representation is used in a innovative self-organization flexible neural network matching approach that can provide robust recognition. The sparse centers of Gabor wavelets in the images and neurons placement are arranged according to the hexagonal grids. Neural network matching between the model and the input image is to find out the exact correspondence of local features and to map the model to the input image based on local similarity and neighborhood grouping of local features. Experimental results in recognizing faces that includes the variations of translation, rotation in plane, rotation in depth, and slightly changes of facial expressions are also presented.
机译:这项工作介绍了一种基于模型的面部识别方法,它使用分层Gabor小波表示和灵活的神经网络匹配。本地特征的表示基于许多比例的Gabor小波变换和许多方向。 Gabor小波表示用于创新的自组织灵活的神经网络匹配方法,可以提供强大的识别。根据六边形网格,布置图像和神经元放置中的Gabor小波的稀疏中心。模型和输入图像之间的神经网络匹配是找出本地特征的确切对应关系,并基于本地特征的局部相似性和邻域分组将模型映射到输入图像。实验结果在识别包括翻译变化,平面旋转,深度旋转的旋转以及面部表情的旋转的旋转和面部表情的稍微变化的实验结果。

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