MLD-EA: Check and Complete Narrative Coherence by Introducing Emotions and Actions
December 03, 2024 ยท Declared Dead ยท ๐ International Conference on Computational Linguistics
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Authors
Jinming Zhang, Yunfei Long
arXiv ID
2412.02897
Category
cs.CL: Computation & Language
Cross-listed
cs.AI
Citations
2
Venue
International Conference on Computational Linguistics
Last Checked
4 months ago
Abstract
Narrative understanding and story generation are critical challenges in natural language processing (NLP), with much of the existing research focused on summarization and question-answering tasks. While previous studies have explored predicting plot endings and generating extended narratives, they often neglect the logical coherence within stories, leaving a significant gap in the field. To address this, we introduce the Missing Logic Detector by Emotion and Action (MLD-EA) model, which leverages large language models (LLMs) to identify narrative gaps and generate coherent sentences that integrate seamlessly with the story's emotional and logical flow. The experimental results demonstrate that the MLD-EA model enhances narrative understanding and story generation, highlighting LLMs' potential as effective logic checkers in story writing with logical coherence and emotional consistency. This work fills a gap in NLP research and advances border goals of creating more sophisticated and reliable story-generation systems.
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