用动作构建记忆图谱,让AI像人一样逻辑推理。
Action is the primary key: a categorical framework for episodic memories and logical reasoning
- 以自然语言动词为节点,构建带因果关系的事件图谱
- 通过范畴论操作实现规划、理解等推理任务
- 适合研究认知模型与可解释AI的人看
本研究提出一种面向人工智能与认知科学的情景记忆数据格式——认知日志(cognitive-logs),支持严谨且灵活的逻辑推理。认知日志由一组关系型与图数据库构成,将情景记忆表示为图形网络:其中“动作”以自然语言动词表示,“参与者”是执行动作的主体,动作与参与者之间通过箭头(态射)连接,并标注因果关系。该设计基于认知科学,尤其是认知语言学原理。逻辑推理即比较情景记忆中的因果链与存储在认知日志中的已知规则。基于范畴论的操作可实现多种推理,包括规划、理解及故事的层级抽象。本研究旨在构建一种以数据库驱动的类人思考系统,兼具人类思维的灵活性与机器的精确性。当前技术可支持高达拍字节级的存储容量,远超神经网络模型的知识规模。认知日志亦可作为人类认知活动的心理建模工具。
原文摘要 · Abstract (English)
This study presents data format of episodic memory for artificial intelligence and cognitive science. The data format, named cognitive-logs, enables rigour and flexible logical reasoning. Cognitive-logs consist of a set of relational and graph databases. Cognitive-logs store an episodic memory as a graphical network that consist of "actions" represented by verbs in natural languages and "participants" who perform the actions. These objects are connected by arrows (morphisms) that bind each action to its participant and bind causes and effects. The design principle of cognitive-logs refers cognitive sciences especially in cognitive linguistics. Logical reasoning is the processes of comparing causal chains in episodic memories with known rules which are also recorded in the cognitive-logs. Operations based on category theory enable such comparisons between episodic memories or scenarios. These operations represent various inferences including planning, comprehensions, and hierarchical abstractions of stories. The goal of this study is to develop a database-driven artificial intelligence that thinks like a human but possesses the accuracy and rigour of a machine. The vast capacities of databases (up to petabyte scales in current technologies) enable the artificial intelligence to store a greater volume of knowledge than neural-network based artificial intelligences. Cognitive-logs also serve as a model of human cognition mind activities.
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