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AIModelKit > Comparisons > Comprehensive Survey of Enterprise Financial Risk Analysis Using Big Data and LLMs
Comparisons

Comprehensive Survey of Enterprise Financial Risk Analysis Using Big Data and LLMs

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Last updated: March 27, 2026 12:00 am
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Comprehensive Survey of Enterprise Financial Risk Analysis Using Big Data and LLMs
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A Comprehensive Survey on Enterprise Financial Risk Analysis: Exploring Big Data and LLM Technologies

Understanding Enterprise Financial Risk Analysis

Enterprise financial risk analysis is more crucial than ever as businesses navigate the complexities of a dynamic economic landscape. This process involves predicting future financial risks that enterprises may face and is grounded in finance and management principles. With the integration of advanced computer science and artificial intelligence technologies, the landscape of financial risk analysis is constantly evolving. The significance of this analysis can’t be overstated; it forms the backbone of informed decision-making in enterprises, making it a vital area of research for scholars and practitioners alike.

Contents
  • Understanding Enterprise Financial Risk Analysis
  • The Role of Big Data in Financial Risk Analysis
  • Advancements in Large Language Models (LLMs)
  • Methodological Framework in Financial Risk Analysis
  • Comparative Analysis of Analytical Methods
  • Limitations of Current Research
  • Promising Directions for Future Investigation
  • Conclusion

The Role of Big Data in Financial Risk Analysis

Big Data has revolutionized numerous sectors, and its impact on financial risk analysis is profound. The sheer volume and variety of data available now enable financial analysts to uncover patterns and insights that were previously hidden. By leveraging Big Data technologies, companies can assess risks more accurately, optimize their operations, and enhance their decision-making processes. This paper presents a systematic review of various analytical methods used in enterprise financial risk analysis, highlighting how Big Data aids in modeling and evaluating potential risks.

Advancements in Large Language Models (LLMs)

The advent of Large Language Models (LLMs) brings a new dimension to enterprise financial risk analysis. These sophisticated models have the capability to process natural language data, allowing organizations to analyze textual information such as financial reports, market news, and social media sentiments. The integration of LLMs in financial risk analysis not only enhances the accuracy of predictions but also opens up avenues for deeper insights into market sentiments and trends. This survey delves into how LLMs are being employed in risk assessment, providing a holistic view of their contributions to the field.

Methodological Framework in Financial Risk Analysis

The paper offers a detailed methodological framework that categorizes enterprise financial risks based on risk types, granularity, intelligence levels, and evaluation metrics. This framework facilitates a structured approach to understand the complexities involved in financial risk assessment. By summarizing representative studies, the authors elucidate the nuances of different methodologies and their effectiveness. This comprehensive categorization allows researchers and practitioners to easily navigate the intricacies of enterprise financial risk.

Comparative Analysis of Analytical Methods

One standout feature of this survey is its comparative analysis of diverse analytical methods used in enterprise financial risk analysis. The paper identifies the most influential research contributions, comparing them based on methodology, results, and implications. This side-by-side evaluation not only highlights best practices but also exposes gaps in current research, making it a necessary read for those looking to enhance their own analytical strategies. The insights gleaned from this comparison can serve as a guiding light for future research in this important field.

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Limitations of Current Research

No research is without its limitations, and understanding these constraints is essential for progress. The paper identifies several challenges faced in current enterprise financial risk analysis studies. For instance, many existing approaches tend to be isolated, often overlooking the interplay between different methodologies and technologies. Additionally, there is a notable need for more interdisciplinary approaches that integrate perspectives from finance, computer science, and data analytics. This critical assessment opens the door for further exploration and improvement in the field.

Promising Directions for Future Investigation

Finally, the authors propose five promising avenues for future research that could potentially transform enterprise financial risk analysis. These directions emphasize the necessity of interdisciplinary collaboration, the application of emerging technologies, and the need for adaptive frameworks that can accommodate rapid changes in the financial landscape. By addressing these areas, future studies could drive innovation and improve the reliability of financial risk predictions.

Conclusion

The survey “A Comprehensive Survey on Enterprise Financial Risk Analysis from Big Data and LLMs Perspective,” authored by Huaming Du and a team of researchers, serves as an essential resource for anyone involved in financial risk evaluation. The synthesis of current methodologies, insights into data-driven technologies, and an eye toward future developments make it a must-read for researchers, practitioners, and students alike. The paper underscores the significance of an integrated approach to enterprise financial risk analysis, paving the way for a more robust understanding of financial futures.

For those interested in a more in-depth exploration, a PDF of the paper can be accessed here.

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