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On Structures with Emergent Computing Properties. A Connectionist versus Control Engineering Approach

机译:关于突出计算属性的结构。连接主义与控制工程方法

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This paper starts by revisiting some founding, classical ideas for Neural Networks as Artificial Intelligence devices. The basic functionality of these devices is given by stability related properties such as the gradient-like and other collective qualitative behaviors. These properties can be linked to the structural - connectionist - approach. A version of this approach is offered by the hyperstability theory which is presented in brief (its essentials) in the paper. The hyperstability of an isolated Hopfield neuron and the interconnection of these neurons in hyperstable structures are discussed. It is shown that the so-called "triplet" of neurons has good stability properties with a non-symmetric weight matrix. This suggests new approaches in developing of Artificial Intelligence devices based on the triplet interconnection of elementary systems (neurons) in order to obtain new useful emergent collective computational properties.
机译:本文首先重新探索一些创意,为神经网络作为人工智能设备。这些设备的基本功能由稳定性相关的属性,例如梯度和其他集体定性行为。这些属性可以链接到结构 - 连接主义方法。这种方法的一个版本由尚可理解提供,这是简要介绍的(其必需品)。讨论了孤立的Hopfield Neuron的高度和这些神经元在不可抱负的结构中的互连。结果表明,神经元的所谓的“三重态”具有良好的稳定性,具有非对称的重量矩阵。这提出了基于基于基础系统(神经元)的三重态互连的人工智能设备的新方法,以获得新的有用的紧急集体计算特性。

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