2022
AAAI
AAAI 2022
Commonsense Knowledge Reasoning and Generation with Pre-trained Language Models: A Survey
Abstract
Abstract While commonsense knowledge acquisition and reasoning has traditionally been a core research topic in the knowledge representation and reasoning community, recent years have seen a surge of interest in the natural language processing community in developing pre-trained models and testing their ability to address a variety of newly designed commonsense knowledge reasoning and generation tasks. This paper presents a survey of these tasks, discusses the strengths and weaknesses of state-of-the-art pre-trained models for commonsense reasoning and generation as revealed by these tasks, and reflects on future research directions.
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Interdisciplinary Bridge
— Artificial Intelligence and Deep Learning and Knowledge & Reasoning and Natural Language Processing
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Cross-Pollinator
— Artificial Intelligence, Computer Science, Computer Vision, Data Science & Analytics, Deep Learning, Healthcare & Medicine, Interdisciplinary, Knowledge & Reasoning, Machine Learning, Mathematics & Optimization, Natural Language Processing, Reinforcement Learning, Robotics, Security & Privacy, Speech & Audio
Authors
Topics
Natural Language Processing > Resources & Methods > Large Language Models
Knowledge & Reasoning > Representation > Knowledge Representation
Knowledge & Reasoning > Reasoning > Automated Reasoning
Natural Language Processing > Resources & Methods > Language Modeling
Deep Learning > Models > Language Models
Artificial Intelligence > Core AI > Knowledge
Natural Language Processing > Understanding > Semantics