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推論過程からの概念学習(2) : 概念構造の構成要因

机译:从推理过程中进行概念学习(二):概念结构的构成因素

摘要

We view a set of chunks, the use of which makes inference more efficient, as a concept. The idea is based on the assumption that a chunk that appears often in an inference may mean something important. The extraction of a chunk is solely based on finding the repetition of a typical inference pattern in a given environment. This idea, implemented as CLIP (Concept Learning from Inference Pattern), adapts Genetic Algorithm like parallel search algorithm and when applied to the digraphs of a carry chain circuit, CLIP extracted the chunks corresponding to analog NOR and NOT. This paper discusses some of the important factors for concept hierarchy formation. Introduction of approximation is very important to step up to a more abstract level concept. This can also be processed as a reduction of digraph. Another important factor for the concept hierarchy formation is the characteristics of the inference system. This must be reflected on the matching cost. The different weight for the matching cost generates a hierarchy of different levels/depths. Environment of the inference system is also important. It must be reflected on the choice of color. Choice of a different color forms a hierarchy of different kinds. Presence of noise effects the performance, but the analysis indicates that CLIP can cope with a certain type of noise.
机译:我们将一组块视为一个概念,这些块的使用使推理更有效。这个想法是基于这样的假设,即在推理中经常出现的块可能意味着重要的东西。块的提取完全基于找到给定环境中典型推理模式的重复。这个想法被实现为CLIP(从推理模式中学习概念),它采用了类似于并行搜索算法的遗传算法,并且当应用于进位链电路的图时,CLIP提取了对应于模拟NOR和NOT的块。本文讨论了影响概念层次结构形成的一些重要因素。逼近的引入对于提高抽象水平非常重要。这也可以作为有向图的简化来处理。概念层次结构形成的另一个重要因素是推理系统的特征。这必须反映在匹配成本上。匹配成本的不同权重会生成不同级别/深度的层次结构。推理系统的环境也很重要。它必须反映在颜色的选择上。选择不同的颜色会形成不同种类的层次结构。噪声的存在会影响性能,但是分析表明CLIP可以应对某种类型的噪声。

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