用神经网络模拟图灵机的Agent-environment方法

W.R. de Oliveira, M.C.P. de Souto, Teresa B Ludermir
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引用次数: 3

摘要

我们提出了一种用神经网络模拟图灵机的方法,这种方法符合图灵计算分析的正确解释;与当前的方法相兼容,将认知分析为一个交互的agent-environment过程;并且在物理上是可实现的,因为它不使用具有无界精度的连接权重。我们给出了一个完整的描述,一个通用的TM实现到一个循环的s型神经网络,专注于TM的有限状态控制,留下磁带,一个无限的资源,作为一个外部的非内在特征。
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Agent-environment approach to the simulation of Turing machines by neural networks
We propose a way to simulate Turing machines (TMs) by neural networks (NNs) which is in agreement with the correct interpretation of Turing's analysis of computation; compatible with the current approaches to analyze cognition as an interactive agent-environment process; and physically realizable since it does not use connection weights with unbounded precision. We give a full description of an implementation of a universal TM into a recurrent sigmoid NN focusing on the TM finite state control, leaving the tape, an infinite resource, as an external non-intrinsic feature.
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