一种递归神经系统,用于记忆按树状结构排列的值系统

H. Yamakawa, Y. Okabe
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引用次数: 1

摘要

一般情况下,自适应自动机具有一个成本函数来组织输入信号和输出信号之间的关系。但大多数自动机都是用一个先验的固定成本函数来研究的。为此,笔者提出了一种自我构建的盈亏价值体系。这种能力有助于自动机适应环境。在该方法中,价值系统建立在一个先验的固定值(成本函数)上;然后利用新元素与现有值之间的相关性,将合适的元素添加到值系统中。在提出的模型中,概念的价值将在体验过程中被修改,并且这些价值将控制学习过程
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A recursive neural system for memorizing systems of values arranged in a tree like structure
It is pointed out that, in general, adaptive automata have a cost function for organizing relations between input signals and output signals. But most of these automata have been studied with an a priori fixed cost function. For this reason the authors introduce a self-constructing value system with profits or losses. This ability helps the automaton to adapt to its environment. In the proposed method, the values system is founded on a priori fixed values (cost functions); then suitable elements are added to the values system by using the correlation between new elements and existing values. In the proposed model the values of the concepts will be modified during the experiences, and the values will control the learning process.<>
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