cs.AI updates on arXiv.org 07月04日
Integrating Large Language Models in Financial Investments and Market Analysis: A Survey
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本文综述了近期LLM在金融领域的应用研究,包括LLM在数据分析、决策制定和金融市场中的应用,探讨了其能力、挑战和未来发展方向。

arXiv:2507.01990v1 Announce Type: cross Abstract: Large Language Models (LLMs) have been employed in financial decision making, enhancing analytical capabilities for investment strategies. Traditional investment strategies often utilize quantitative models, fundamental analysis, and technical indicators. However, LLMs have introduced new capabilities to process and analyze large volumes of structured and unstructured data, extract meaningful insights, and enhance decision-making in real-time. This survey provides a structured overview of recent research on LLMs within the financial domain, categorizing research contributions into four main frameworks: LLM-based Frameworks and Pipelines, Hybrid Integration Methods, Fine-Tuning and Adaptation Approaches, and Agent-Based Architectures. This study provides a structured review of recent LLMs research on applications in stock selection, risk assessment, sentiment analysis, trading, and financial forecasting. By reviewing the existing literature, this study highlights the capabilities, challenges, and potential directions of LLMs in financial markets.

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LLM 金融领域 数据分析 决策制定
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