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Fast face recognition method using a multistage hierarchical network

机译:使用多级分层网络的快速人脸识别方法

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A novel approach is proposed, which allows for an efficient reduction of the amount of visual data required for representing structural information in the image. This algorithm is tolerant to minor structural changes and can be used for automatic face recognition. The approach is based on a multistage architecture, which investigates partial clustering of structural image components. The initial grey-scale representation of the input image is transformed into a structural representation, so that each image component contains information about the spatial structure of its neighbourhood. The output result is represented as a pattern vector, whose components are computed one at a time to allow the quickest possible response. The input pattern is identified as the best match between the output pattern vector and the model vectors from the database.
机译:提出了一种新颖的方法,其允许有效地减少表示图像中的结构信息所需的视觉数据量。该算法可承受微小的结构变化,并可用于自动人脸识别。该方法基于多阶段体系结构,该体系结构研究了结构图像组件的部分聚类。将输入图像的初始灰度表示形式转换为结构表示形式,以便每个图像组件都包含有关其邻域空间结构的信息。输出结果表示为模式向量,每次对其分量进行一次计算以实现最快的响应。输入模式被标识为输出模式向量和数据库中模型向量之间的最佳匹配。

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