首页> 外文期刊>Information, Knowledge, Systems Management 1389-1995 >Neural network based classification system for texture images with its applications
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Neural network based classification system for texture images with its applications

机译:基于神经网络的纹理图像分类系统及其应用

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摘要

A new approach to interconnecting multilayer feedforward neural networks for tackling the problems of texture classification is proposed. The resulting classification system classifies textures via two stages; one to compress original co-occurrence feature patterns of high dimensionality to lower dimensional principal feature patterns, and the other to perform actual classification of textures using the principal features. Each stage is efficiently implemented by a trained multilayer feedforward neural network. Such a cascaded use of neural networks significantly reduces the computational complexity that is otherwise encountered in classifying large-scale texture images. Two practical applications of the system are provided, showing the direct applicability of the approach for real problem-solving.
机译:提出了一种互连多层前馈神经网络以解决纹理分类问题的新方法。最终的分类系统通过两个阶段对纹理进行分类。一种是将原始的高维共现特征模式压缩为低维主特征模式,另一种是使用主特征对纹理进行实际分类。每个阶段都由训练有素的多层前馈神经网络有效地实现。神经网络的这种级联使用显着降低了在对大规模纹理图像进行分类时否则会遇到的计算复杂性。提供了该系统的两个实际应用,显示了该方法在实际问题解决中的直接适用性。

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