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Systems Methodology for Classical Neural Nets at Various Levels

机译:各级经典神经网络的系统方法论

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摘要

The different aspects of classical neural nets are treated here at the light of Systems Theory. First, we consider McCulloch-Pitts-Blum formalisms, which are regarded as biological counterparts of logical machines (automata). Systems Theory inspired the introduction of state transition and functional matrices, to treat problems of analysis, synthesis, stability and oscillations. The so called McCulloch Program I is completed by the development of systems technics to allow the neural synthesis of arbitrary probabilistic automata. Next, nets to integrate sen-sorial functions, as well as intermodal integration and effector action are considered, which corresponds to a level higher than the "molecular" neuron-like computing element. Finally, at the highest level, modules for the so called generalized robotic-like behavioral systems are presented, in line with the known McCulloch-Problem II. This includes a diagram for a behavioral system under a command and control subsystem of the type of the reticular formation of vertebrates.
机译:此处根据系统理论来处理经典神经网络的不同方面。首先,我们考虑McCulloch-Pitts-Blum形式主义,它们被视为逻辑机器(自动机)的生物学对应物。系统理论启发了状态转移和功能矩阵的引入,以处理分析,综合,稳定性和振荡问题。所谓的McCulloch程序I是通过系统技术的发展而完成的,以允许对任意概率自动机进行神经合成。接下来,考虑用于整合感官功能的网络,以及多式联运整合和效应器作用,其对应的水平高于“分子”类神经元计算元件。最后,在最高级别上,与已知的McCulloch-Problem II一致,提出了所谓的广义类机器人行为系统的模块。这包括在脊椎动物的网状结构类型的命令和控制子系统下的行为系统图。

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