自然语言处理在金融风险检测中的应用

Liyang Wang, Yu Cheng, Ao Xiang, Jingyu Zhang, Haowei Yang
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摘要

本文探讨了自然语言处理(NLP)在金融风险检测中的应用。通过构建基于 NLP 的金融风险检测模型,本研究旨在识别和预测金融文档和通信中的潜在风险。首先,介绍了 NLP 的基本概念及其理论基础,包括文本挖掘方法、NLP 模型设计原则和机器学习算法。最后,通过实证研究验证了模型的有效性和预测性能。结果表明,基于 NLP 的金融风险检测模型在风险识别和预测方面表现出色,为金融机构提供了有效的风险管理工具。这项研究为金融风险管理领域提供了宝贵的参考,利用先进的 NLP 技术提高了金融风险检测的准确性和效率。
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Application of Natural Language Processing in Financial Risk Detection
This paper explores the application of Natural Language Processing (NLP) in financial risk detection. By constructing an NLP-based financial risk detection model, this study aims to identify and predict potential risks in financial documents and communications. First, the fundamental concepts of NLP and its theoretical foundation, including text mining methods, NLP model design principles, and machine learning algorithms, are introduced. Second, the process of text data preprocessing and feature extraction is described. Finally, the effectiveness and predictive performance of the model are validated through empirical research. The results show that the NLP-based financial risk detection model performs excellently in risk identification and prediction, providing effective risk management tools for financial institutions. This study offers valuable references for the field of financial risk management, utilizing advanced NLP techniques to improve the accuracy and efficiency of financial risk detection.
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