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Invariant pattern recognition using neural networks combined with optical wavelet preprocessor [Review]

机译:神经网络结合光学小波预处理器的不变模式识别[综述]

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摘要

A novel pattern-recognition system that is invariant against scale-, position- and rotation-changes is proposed. The system is composed of an array of modular neural networks with local space-invariant interconnections (FELSI) [Appl. Opt. 29 (1990) 4790] and a multiwavelet transform preprocessor. The wavelet decomposition of two-dimensional patterns is optically realized by the VanderLugt correlator. To obtain the multiwavelet transforms simultaneously, we synthesize a correlation filter of multiwavelets using computer-generated holograms. The learning process of the FELSI with the techniques of additional noise and weight decay is shown to contribute to the invariant recognition of the system. [References: 18]
机译:提出了一种新颖的模式识别系统,该系统对比例,位置和旋转变化均不变。该系统由具有局部空间不变互连(FELSI)的一组模块化神经网络组成。选择。 29(1990)4790]和多小波变换预处理器。二维图案的小波分解通过VanderLugt相关器实现。为了同时获得多小波变换,我们使用计算机生成的全息图合成了多小波的相关滤波器。 FELSI的学习过程以及额外的噪声和重量衰减技术被证明有助于系统的不变识别。 [参考:18]

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