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Texture recognition by generalized probabilistic decision-based neural networks

机译:基于广义概率决策神经网络的纹理识别

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Texture recognition have received tremendous attentions in the past decades, due to its wide applications in computer vision and pattern recognition. For various applications, formulating texture features in distributional forms can sometimes provide meaningful representation than in numerical forms. In this paper, a generalized probabilistic decision-based neural network (GPDNN), based on a novel methodology for the measurement of the difference between two distributions, is proposed for texture recognition. Based on a two-layer pyramid-type network structure, the proposed GPDNN receives texture data via 2-D grid input nodes, and outputs the classification and/or retrieval results at the top layer node. Our prototype system demonstrates a successful utilization of GPDNN to the texture recognition on 40 texture images selected from the MIT Vision Texture (VisTex) database. Regarding the performance, experiment results show that (1) based on the proposed distribution difference measurement method, the texture retrieval accuracy is improved from 77% to 82% by comparing with some recently published leading methods, and (2) the proposed GPDNN has significant improvements in classification accuracy from 82.2% to 90.1% and retrieval accuracy from 79.9% to 88.6% by comparing with traditional approaches.
机译:由于纹理识别在计算机视觉和模式识别中的广泛应用,在过去的几十年中,纹理识别受到了极大的关注。对于各种应用,用分布形式来表示纹理特征有时可以提供比数字形式更有意义的表示。在本文中,提出了一种基于新型概率决策神经网络(GPDNN)的纹理分布识别方法,该方法基于一种新颖的方法来测量两个分布之间的差异。基于两层金字塔型网络结构,提出的GPDNN通过二维网格输入节点接收纹理数据,并在顶层节点输出分类和/或检索结果。我们的原型系统展示了GPDNN在从MIT Vision Texture(VisTex)数据库中选择的40个纹理图像上的纹理识别中的成功应用。在性能方面,实验结果表明:(1)基于提出的分布差异测量方法,与最近发布的一些领先方法相比,纹理检索精度从77%提高到82%,(2)提出的GPDNN具有显着的意义。与传统方法相比,分类精度从82.2%提高到90.1%,检索精度从79.9%提高到88.6%。

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