Exploration of the attractor space of small networks of reciprocally connected processing elements

B. Deer, E. Fix
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引用次数: 1

Abstract

The properties of a type of a dynamical network are investigated. Three properties were selected: fast memory access, content addressable access, and large memory capacity. While these properties are useful, in order to bring these networks to practical applications a learning algorithm needs to be developed which will determine the set of network weights for a given signal to be stored. It is noted that, in addition to content-addressable memory, dynamical networks have exciting long-term potential as the technology base of a new approach to developing machine intelligence where cognitive skills are self-organized directly in, and by, the dynamic architecture.<>
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相互连接的加工元素的小网络的吸引子空间的探索
研究了一类动态网络的性质。选择了三个属性:快速内存访问、内容可寻址访问和大内存容量。虽然这些属性很有用,但为了将这些网络带入实际应用,需要开发一种学习算法,该算法将确定要存储的给定信号的网络权重集。值得注意的是,除了内容寻址记忆之外,动态网络作为开发机器智能的新方法的技术基础具有令人兴奋的长期潜力,其中认知技能直接在动态架构中自组织,并通过动态架构。
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