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DYNAMICALLY STABLE ASSOCIATIVE LEARNING NEURAL NETWORK SYSTEM

机译:动态稳定的联合学习神经网络系统

摘要

A dynamically stable associative learning neural network system includes, in its basic architectural unit, at least one each of a conditioned signal input, an unconditioned signal input and an output. Interposed between input and output elements are 'patches', or storage areas of dynamic interaction between conditioned and unconditioned signals which process information to achieve associative learning locally under rules designed for application-related goals of the system. Patches may be fixed or variable in size. Adjustments to a patch radius may be by 'pruning' or 'budding'. The neural network is taught by successive application of training sets of input signals to the input terminals until a dynamic equilibrium is reached. Enhancements and expansions of the basic unit result in multilayered (multi-subnetworked) systems having increased capabilities for complex pattern classification and feature recognition.
机译:一种动态稳定的联想学习神经网络系统,在其基本结构单元中,至少包括条件信号输入,非条件信号输入和输出中的至少一个。在输入和输出元素之间插入“补丁”,即条件信号和非条件信号之间的动态交互存储区域,这些信号处理信息以根据针对系统的与应用程序相关的目标设计的规则在本地实现关联学习。补丁的大小可以是固定的,也可以是可变的。可以通过“修剪”或“萌芽”来调整补丁半径。通过将输入信号的训练集连续应用到输入端子,直到达到动态平衡,来教授神经网络。基本单元的增强和扩展导致多层(多子网)系统具有增强的复杂模式分类和特征识别能力。

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