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Vector mapping with a nonlinear electronic layer for distributed neural networks

机译:用于分布式神经网络的带有非线性电子层的矢量映射

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摘要

Describes a new approach for obtaining neural network functionality using fully distributed electronic transport rather than lumped electronic circuit elements. For this, vector mapping abilities of a two-dimensional nonlinear inhomogeneous layer are analyzed. This layer is modeled as an inhomogeneous inversion layer in a multiterminal field effect semiconductor device. The author gives computed results as examples of nonlinear vector mapping abilities including nontrivial logic functions with such a layer. These results are achieved by defining relative or differential output signals for the representation of the output information. The type of mapping achieved here is analogous to the one with high-order neural networks. The memory function in the author's structure is imbedded in the distribution of the inhomogeneities.
机译:描述了一种使用完全分布式电子传输而不是集总电子电路元件来获取神经网络功能的新方法。为此,分析了二维非线性非均匀层的矢量映射能力。该层被建模为多端子场效应半导体器件中的不均匀反转层。作者将计算结果作为非线性矢量映射功能的示例,其中包括具有此类层的非平凡逻辑函数。通过定义相对或差分输出信号来表示输出信息,可以实现这些结果。此处实现的映射类型类似于具有高阶神经网络的映射。作者结构中的记忆功能嵌入在不均匀性的分布中。

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