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Symbols and subsymbols for representing knowledge: a catalogue raisonne

机译:代表知识的符号和子映像:目录Raisonne

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Traditional artificial intelligence studies generally approach the problem of representing knowledge following the so-called knowledge representation hypothesis, as formulated by Brian Smith. More recently the development of the connectionist paradigm has questioned the symbolic approach to the study of the mind bringing about a more articulated view of the problem. This article singles out five possible approaches to the problem of knowledge representation in cognitive science: compositional symbolic approaches, local non-compositional approaches, distributed non compositional approaches, cognitive subsymbolic approaches and "neural" subsymbolic approaches. In particular, in the subsymbolic cognitive approach the elements that make up the representation system are not symbols with an ascribed meaning nor do they correspond to anatomic entities at a neurological level; rather they are to be considered as "theoretical constructs" of a theory of the cognitive level which permit the deduction (in the sense of "computation") of cognitive behaviours which cannot be otherwise modelled. We consider the development of models of this kind to be essential to a computational approach to the problem of reference without hypothesizing "magical qualities" of the mind (in the sense of assuming a necessary connection between mental symbols and their referents), while remaining within a functionalist vision, in the wider sense, which does not make reference to the specific physical properties of the neural hardware.
机译:传统的人工智能研究通常涉及所谓知识表示假设的知识的问题,由Brian Smith制定。最近,联系者范式的发展已经质疑象征性的思想,从而提高了一个更令人明显的问题。本文单打了认知科学中知识表现问题的五种可能方法:组建象征方法,局部非组合方法,分布式非组合方法,认知亚jbolic方法和“神经”亚血栓接近。特别地,在亚摩尔 - umbolic认知方法中,构成表示系统的元素不是具有均衡含义的符号,也不是对应于神经水平的解剖学实体;相反,他们将被视为认知水平理论的“理论构造”,其允许扣除的认知行为的扣除(在“计算”)中不能以其他方式建模。我们考虑这种模式的发展模式对参考问题的计算方法是必不可少的,而不假设心灵的“神奇品质”(在假设精神符号及其引用之间的必要联系),同时保持在内在更广泛的感觉中,功能主义愿景不会参考神经硬件的特定物理性质。

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