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Hierarchical Associative Memory Model for Artificial General-Purpose Cognitive Agents

机译:用于人工通用认知剂的分层关联记忆模型

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This paper presents a model of hierarchical associative memory, which can be used as a basis for building artificial cognitive agents of general purpose. With the help of this model, one of the most important problems of modern machine learning and artificial intelligence in general can be solved — the ability for a cognitive agent to use "life experience" to process the context of the situation in which he was, is and, possibly, will be. This model is applicable for artificial cognitive agents functioning both in specially designed virtual worlds and in objective reality. The use of hierarchical associative memory as a long-term memory of artificial cognitive agents will allow the latter to effectively navigate both in the general knowledge accumulated by mankind and in their life experience. The novelty of the presented work is based on the author’s approach to the construction of context-dependent artificial cognitive agents using an interdisciplinary approach, in particular, based on the achievements of artificial intelligence, cognitology, neurophysiology, psychology and sociology. The relevance of this work is based on the keen interest of the scientific community and the high social demand for the creation of general-level artificial intelligence systems. Associative hierarchical memory, based on the use of an approach similar to the hypercolumns of the human cerebral cortex, is becoming one of the important components of an artificial intelligent agent of the general level. The article will be of interest to all researchers working in the field of building artificial cognitive agents and related fields.
机译:本文介绍了分层关联记忆模型,可作为构建一般目的的人工认知剂的基础。在这种模式的帮助下,通常可以解决现代机器学习和人工智能的最重要问题之一 - 可以解决与使用“生活经历”来处理他所在情况的背景的能力,是,可能是。该模型适用于在专门设计的虚拟世界和客观现实中运行的人工认知剂。使用分层关联记忆作为人工认知剂的长期记忆将使后者有效地在人类积累的一般知识和生活经历中有效地导航。所提出的工作的新颖性是基于提交人的方法,以根据人工智能,认知学,神经生理学,心理学和社会学的成就,特别是基于跨学科方法建造上下文的人工认知代理的方法。这项工作的相关性是基于科学界的敏锐兴趣以及对创建一般级人工智能系统的高社会需求。基于使用类似于人类脑皮质的脾肠的方法的联合等级记忆,正成为一般水平的人工智能转剂的重要组成部分之一。本文将对所有研究人工认知代理和相关领域工作的研究人员感兴趣。

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