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首页> 外文期刊>Neural Networks: The Official Journal of the International Neural Network Society >A programmable neural virtual machine based on a fast store-erase learning rule
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A programmable neural virtual machine based on a fast store-erase learning rule

机译:基于快速存储擦除学习规则的可编程神经虚拟机

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We present a neural architecture that uses a novel local learning rule to represent and execute arbitrary, symbolic programs written in a conventional assembly-like language. This Neural Virtual Machine (NVM) is purely neurocomputational but supports all of the key functionality of a traditional computer architecture. Unlike other programmable neural networks, the NVM uses principles such as fast non-iterative local learning, distributed representation of information, program-independent circuitry, itinerant attractor dynamics, and multiplicative gating for both activity and plasticity. We present the NVM in detail, theoretically analyze its properties, and conduct empirical computer experiments that quantify its performance and demonstrate that it works effectively. (C) 2019 Elsevier Ltd. All rights reserved.
机译:我们提出了一种神经结构,它使用新的本地学习规则来代表和执行以传统的装配语言编写的任意符号程序。 这种神经虚拟机(NVM)纯粹是神经关像性的,但支持传统计算机架构的所有关键功能。 与其他可编程神经网络不同,NVM使用原理,例如快速的非迭代本地学习,信息,程序独立的电路,推移吸引子动力学以及用于活动和可塑性的乘法门控。 我们详细介绍了NVM,从理论上分析了其性质,并进行了量化其性能的经验计算机实验,并证明它有效地工作。 (c)2019年elestvier有限公司保留所有权利。

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