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Cognitively-inspired symbolic framework for knowledge representation

机译:认知启发的知识表示符号框架

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This paper introduces a cognitively-inspired symbolic framework for knowledge representation in human-machine interaction. The framework is developed within the ongoing research on a computational model of a hierarchical associative long-term memory. The model integrates neurocognitive understanding of the human memory system with selected insights from linguistics, and primarily addresses the storage aspect of the long-term memory. The proposed memory structure is conceptualized as a set of (multisource-multisink) semantic flow networks, including knowledge units of different complexity. It also provides algorithm for semantic integration and associative learning. The model is illustrated for a dedicated interaction domain, and implemented within a prototype system.
机译:本文为人机交互中的知识表示引入了一种受认知启发的符号框架。该框架是在有关分层关联长期存储器的计算模型的正在进行的研究中开发的。该模型将对人类记忆系统的神经认知理解与从语言学中选择的见解相结合,主要解决了长期记忆的存储方面。所提出的存储结构被概念化为一组(多源-多接收器)语义流网络,包括不同复杂性的知识单元。它还提供了用于语义集成和联想学习的算法。该模型针对专用的交互域进行了说明,并在原型系统中实现。

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