cs.AI updates on arXiv.org 07月08日 14:58
Demystifying ChatGPT: How It Masters Genre Recognition
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本文分析了ChatGPT在电影类型预测任务中的表现,发现未经微调的ChatGPT优于其他大型语言模型,而经过微调的ChatGPT表现最佳。通过结合视觉语言模型,ChatGPT在包含电影海报信息的场景中展现出更强的预测能力。

arXiv:2507.03875v1 Announce Type: cross Abstract: The introduction of ChatGPT has garnered significant attention within the NLP community and beyond. Previous studies have demonstrated ChatGPT's substantial advancements across various downstream NLP tasks, highlighting its adaptability and potential to revolutionize language-related applications. However, its capabilities and limitations in genre prediction remain unclear. This work analyzes three Large Language Models (LLMs) using the MovieLens-100K dataset to assess their genre prediction capabilities. Our findings show that ChatGPT, without fine-tuning, outperformed other LLMs, and fine-tuned ChatGPT performed best overall. We set up zero-shot and few-shot prompts using audio transcripts/subtitles from movie trailers in the MovieLens-100K dataset, covering 1682 movies of 18 genres, where each movie can have multiple genres. Additionally, we extended our study by extracting IMDb movie posters to utilize a Vision Language Model (VLM) with prompts for poster information. This fine-grained information was used to enhance existing LLM prompts. In conclusion, our study reveals ChatGPT's remarkable genre prediction capabilities, surpassing other language models. The integration of VLM further enhances our findings, showcasing ChatGPT's potential for content-related applications by incorporating visual information from movie posters.

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ChatGPT 电影类型预测 大型语言模型 视觉语言模型 NLP
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