cs.AI updates on arXiv.org 07月31日
Past Meets Present: Creating Historical Analogy with Large Language Models
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本文探讨了基于大型语言模型的历史类比获取任务,提出缓解AI生成历史类比中幻觉和刻板印象的方法,并通过评估发现LLMs在历史类比方面具有良好潜力。

arXiv:2409.14820v2 Announce Type: replace-cross Abstract: Historical analogies, which compare known past events with contemporary but unfamiliar events, are important abilities that help people make decisions and understand the world. However, research in applied history suggests that people have difficulty finding appropriate analogies. And previous studies in the AI community have also overlooked historical analogies. To fill this gap, in this paper, we focus on the historical analogy acquisition task, which aims to acquire analogous historical events for a given event. We explore retrieval and generation methods for acquiring historical analogies based on different large language models (LLMs). Furthermore, we propose a self-reflection method to mitigate hallucinations and stereotypes when LLMs generate historical analogies. Through human evaluations and our specially designed automatic multi-dimensional assessment, we find that LLMs generally have a good potential for historical analogies. And the performance of the models can be further improved by using our self-reflection method.

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历史类比 大型语言模型 AI应用
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