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首页> 外文期刊>International journal of circuit theory and applications >Template design methods for binary stable cellular neural networks
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Template design methods for binary stable cellular neural networks

机译:二元稳定细胞神经网络的模板设计方法

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摘要

Stable cellular neural networks with binary outputs implement a non-linear mapping between sets of input and output images. Such a mapping is studied in detail. We prove two theorems: the first one yields a sufficient condition in order that the non-linear mapping be well-defined; the second one yields a condition, that allows to describe the mapping through a simple algorithm based on the sign of the initial derivatives. Then we enunciate two additional theorems and two corollaries, that identify the class of templates satisfying the above condition: such a class is shown to be rather large and include, as particular cases, the monotonic templates, an several kinds of non-monotonic templates. Finally, a rigorous design procedure is proposed.
机译:具有二进制输出的稳定细胞神经网络在输入和输出图像集之间实现了非线性映射。将详细研究这种映射。我们证明了两个定理:第一个定理产生一个充分的条件,以使非线性映射得到很好的定义。第二个条件产生一个条件,该条件允许通过基于初始导数符号的简单算法来描述映射。然后,我们阐明另外两个定理和两个推论,它们确定满足上述条件的模板的类别:这样的类别显示为相当大,并且在特定情况下包括单调模板,几种非单调模板。最后,提出了严格的设计程序。

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