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In the financial industry, credit scoring is a fundamental element, shaping access to credit and determining the terms of loans for individuals and businesses alike. Traditional credit scoring methods, however, often grapple with challenges…

Multimodal large language models (MLLMs) hold great promise for automating complex financial analysis. To comprehensively evaluate their capabilities, we introduce VisFinEval, the first large-scale Chinese benchmark that spans the full…

计算工程、金融与科学 · 计算机科学 2025-08-14 Zhaowei Liu , Xin Guo , Haotian Xia , Lingfeng Zeng , Fangqi Lou , Jinyi Niu , Mengping Li , Qi Qi , Jiahuan Li , Wei Zhang , Yinglong Wang , Weige Cai , Weining Shen , Liwen Zhang

Although LLMs have made significant progress in various languages, there are still concerns about their effectiveness with low-resource agglutinative languages compared to languages such as English. In this study, we focused on Korean, a…

计算与语言 · 计算机科学 2025-07-08 Seunguk Yu , Kyeonghyun Kim , Jungmin Yun , Youngbin Kim

Large language models (LLMs) have demonstrated great potential in the financial domain. Thus, it becomes important to assess the performance of LLMs in the financial tasks. In this work, we introduce CFBenchmark, to evaluate the performance…

计算与语言 · 计算机科学 2024-05-22 Yang Lei , Jiangtong Li , Dawei Cheng , Zhijun Ding , Changjun Jiang

With the recent development of large language models (LLMs), models that focus on certain domains and languages have been discussed for their necessity. There is also a growing need for benchmarks to evaluate the performance of current LLMs…

计算金融 · 定量金融 2024-03-25 Masanori Hirano

Recent advances in large language models (LLMs) have opened new possibilities for artificial intelligence applications in finance. In this paper, we provide a practical survey focused on two key aspects of utilizing LLMs for financial…

综合金融 · 定量金融 2024-07-10 Yinheng Li , Shaofei Wang , Han Ding , Hang Chen

Large Language Models (LLMs) have made remarkable progress, surpassing human performance on several benchmarks in domains such as mathematics and coding. A key driver of this progress has been the development of benchmark datasets. In…

统计金融 · 定量金融 2026-03-06 Issa Sugiura , Takashi Ishida , Taro Makino , Chieko Tazuke , Takanori Nakagawa , Kosuke Nakago , David Ha

Even though large language models are becoming increasingly capable, it is still unreasonable to expect them to excel at tasks that are under-represented on the Internet. Leveraging LLMs for specialized applications, particularly in niche…

机器学习 · 计算机科学 2025-08-18 Brendan R. Hogan , Will Brown , Adel Boyarsky , Anderson Schneider , Yuriy Nevmyvaka

LLMs have revolutionized NLP and demonstrated potential across diverse domains. More and more financial LLMs have been introduced for finance-specific tasks, yet comprehensively assessing their value is still challenging. In this paper, we…

计算与语言 · 计算机科学 2025-01-14 Jiayu Guo , Yu Guo , Martha Li , Songtao Tan

Recent advances in large audio language models (LALMs) have enabled multilingual speech understanding. However, benchmarks for evaluating LALMs remain scarce for non-English languages, with Korean being one such underexplored case. In this…

计算与语言 · 计算机科学 2026-04-23 Jinyoung Kim , Hyeongsoo Lim , Eunseo Seo , Minho Jang , Keunwoo Choi , Seungyoun Shin , Ji Won Yoon

Large language models (LLMs) are increasingly being applied to financial analysis, reporting, investment decision support, risk management, compliance, and professional training. However, robust evaluation of their domain competence in…

Large Language Models are increasingly adopted in financial applications to support investment workflows. However, prior studies have seldom examined how these models reflect biases related to firm size, sector, or financial…

计算金融 · 定量金融 2025-11-04 Fabrizio Dimino , Krati Saxena , Bhaskarjit Sarmah , Stefano Pasquali

The growing adoption of large language models (LLMs) in finance exposes high-stakes decision-making to subtle, underexamined positional biases. The complexity and opacity of modern model architectures compound this risk. We present the…

计算金融 · 定量金融 2025-10-08 Fabrizio Dimino , Krati Saxena , Bhaskarjit Sarmah , Stefano Pasquali

Language Models (LMs) have demonstrated impressive capabilities with core Natural Language Processing (NLP) tasks. The effectiveness of LMs for highly specialized knowledge-intensive tasks in finance remains difficult to assess due to major…

计算与语言 · 计算机科学 2025-06-23 Glenn Matlin , Mika Okamoto , Huzaifa Pardawala , Yang Yang , Sudheer Chava

Large Language Models (LLMs) have stunningly advanced the field of machine translation, though their effectiveness within the financial domain remains largely underexplored. To probe this issue, we constructed a fine-grained Chinese-English…

计算与语言 · 计算机科学 2024-06-28 Yuxin Fu , Shijing Si , Leyi Mai , Xi-ang Li

The field of Natural Language Processing (NLP) has seen significant advancements with the development of Large Language Models (LLMs). However, much of this research remains focused on English, often overlooking low-resource languages like…

计算与语言 · 计算机科学 2024-08-22 Anh-Dung Vo , Minseong Jung , Wonbeen Lee , Daewoo Choi

This paper presents the system description of our entry for the COLING 2025 FMD challenge, focusing on misinformation detection in financial domains. We experimented with a combination of large language models, including Qwen, Mistral, and…

In recent years, multimodal benchmarks for general domains have guided the rapid development of multimodal models on general tasks. However, the financial field has its peculiarities. It features unique graphical images (e.g., candlestick…

计算机视觉与模式识别 · 计算机科学 2024-11-06 Ziliang Gan , Yu Lu , Dong Zhang , Haohan Li , Che Liu , Jian Liu , Ji Liu , Haipang Wu , Chaoyou Fu , Zenglin Xu , Rongjunchen Zhang , Yong Dai

This project focuses on enhancing open-source large language models through instruction-tuning and providing comprehensive evaluations of their performance. We explore how various training data factors, such as quantity, quality, and…

计算与语言 · 计算机科学 2023-05-05 Fangkai Jiao , Bosheng Ding , Tianze Luo , Zhanfeng Mo