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Cognitive Principles for Information Management: The Principles of Mnemonic Associative Knowledge (P-MAK)

机译:信息管理的认知原理:记忆联想知识(P-MAK)原理

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Information management systems improve the retention of information in large collections. As such they act as memory prostheses, implying an ideal basis in human memory models. Since humans process information by association, and situate it in the context of space and time, systems should maximize their effectiveness by mimicking these functions. Since human attentional capacity is limited, systems should scaffold cognitive efforts in a comprehensible manner. We propose the Principles of Mnemonic Associative Knowledge (P-MAK), which describes a framework for semantically identifying, organizing, and retrieving information, and for encoding episodic events by time and stimuli. Inspired by prominent human memory models, we propose associative networks as a preferred representation. Networks are ideal for their parsimony, flexibility, and ease of inspection. Networks also possess topological properties—such as clusters, hubs, and the small world— that aid analysis and navigation in an information space. Our cognitive perspective addresses fundamental problems faced by information management systems, in particular the retrieval of related items and the representation of context. We present evidence from neuroscience and memory research in support of this approach, and discuss the implications of systems design within the constraints of P-MAK's principles, using text documents as an illustrative semantic domain.
机译:信息管理系统提高了大集合中信息的保留率。因此,它们充当记忆假体,暗示着人类记忆模型的理想基础。由于人类通过关联来处理信息,并将其置于时空环境中,因此系统应通过模仿这些功能来最大化其有效性。由于人类的注意力能力有限,因此系统应以一种可理解的方式来支持认知工作。我们提出了助记联想知识(P-MAK)原则,该原则描述了一个语义识别,组织和检索信息以及用于按时间和刺激编码事件的框架。受杰出的人类记忆模型的启发,我们建议使用关联网络作为首选表示形式。网络具有简约,灵活和易于检查的特点,是理想的选择。网络还具有拓扑特性,例如集群,集线器和小型世界,可帮助在信息空间中进行分析和导航。我们的认知观点解决了信息管理系统面临的基本问题,尤其是相关项目的检索和上下文表示。我们提供了来自神经科学和记忆研究的证据来支持这种方法,并使用文本文档作为说明性语义域,讨论了在P-MAK原理约束下的系统设计含义。

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