cs.AI updates on arXiv.org 09月18日
个性化金融顾问:行为金融与Qwen-3-8B模型的应用
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本文提出一种结合行为金融与相关金融背景的监督数据构建框架,用于个性化金融顾问。通过Qwen-3-8B模型在19k样本推理数据集上进行全面微调,实现了在事实准确性、流畅性和个性化指标上与更大参数基线模型相当的性能,同时成本降低80%。

arXiv:2509.14180v1 Announce Type: cross Abstract: Personalized financial advice requires consideration of user goals, constraints, risk tolerance, and jurisdiction. Prior LLM work has focused on support systems for investors and financial planners. Simultaneously, numerous recent studies examine broader personal finance tasks, including budgeting, debt management, retirement, and estate planning, through agentic pipelines that incur high maintenance costs, yielding less than 25% of their expected financial returns. In this study, we introduce a novel and reproducible framework that integrates relevant financial context with behavioral finance studies to construct supervision data for end-to-end advisors. Using this framework, we create a 19k sample reasoning dataset and conduct a comprehensive fine-tuning of the Qwen-3-8B model on the dataset. Through a held-out test split and a blind LLM-jury study, we demonstrate that through careful data curation and behavioral integration, our 8B model achieves performance comparable to significantly larger baselines (14-32B parameters) across factual accuracy, fluency, and personalization metrics while incurring 80% lower costs than the larger counterparts.

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个性化金融顾问 行为金融 Qwen-3-8B模型 金融数据集 成本效益
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