Exploring Large Language Models and the Metaverse for Urologic Applications: Potential, Challenges, and the Path Forward.

IF 1.8 3区 医学 Q3 UROLOGY & NEPHROLOGY
International Neurourology Journal Pub Date : 2024-11-01 Epub Date: 2024-11-30 DOI:10.5213/inj.2448402.201
Hyung Jun Park, Eun Joung Kim, Jung Yoon Kim
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引用次数: 0

Abstract

The metaverse, a 3-dimensional digital platform that enables users to interact and engage in realistic virtual activities beyond time and space limitations, has garnered significant investment across industries, particularly in healthcare. In the medical field, the metaverse shows promise as a digital therapeutic platform to enhance interaction between medical professionals and patients. Concurrently, generative artificial intelligence, especially large language models, is being integrated into healthcare for applications in data analysis, image recognition, and natural language processing. In urology, large language models (LLMs) support are increasingly used in urology for tasks such as image diagnosis, data processing, patient education, and treatment assistance in order to provide significant support in clinical settings. By combining LLMs with the immersive capabilities of the metaverse, new possibilities emerge to improve urologic treatment in areas that require consistent treatments, habit formation, and long-term management. This paper reviews current research and applications of LLMs in urology, discusses the challenges associated with their use including data quality, bias, security, and ethical issues, and explores the need for regulatory standards. Furthermore, it highlights the potential of a metaverse-based digital platform to improve urologic care and streamline information exchange to maximize the benefits of this integrated approach in future healthcare applications.

探索泌尿外科应用的大型语言模型和元宇宙:潜力,挑战和前进的道路。
metaverse是一个三维数字平台,使用户能够超越时间和空间的限制进行互动和参与现实的虚拟活动,它已经获得了各行业的大量投资,特别是在医疗保健领域。在医疗领域,metaverse有望成为一个数字治疗平台,加强医疗专业人员和患者之间的互动。同时,生成式人工智能,特别是大型语言模型,正被集成到医疗保健中,用于数据分析、图像识别和自然语言处理。在泌尿外科,大型语言模型(llm)支持越来越多地用于泌尿外科的任务,如图像诊断、数据处理、患者教育和治疗援助,以便在临床环境中提供重要的支持。通过将法学硕士与虚拟世界的沉浸式能力相结合,在需要持续治疗、习惯形成和长期管理的领域,出现了改善泌尿外科治疗的新可能性。本文回顾了目前泌尿外科法学硕士的研究和应用,讨论了与它们的使用相关的挑战,包括数据质量,偏见,安全性和伦理问题,并探讨了监管标准的必要性。此外,它强调了基于元数据的数字平台的潜力,可以改善泌尿科护理和简化信息交换,从而在未来的医疗保健应用中最大限度地发挥这种集成方法的优势。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
International Neurourology Journal
International Neurourology Journal UROLOGY & NEPHROLOGY-
CiteScore
4.40
自引率
21.70%
发文量
41
审稿时长
4 weeks
期刊介绍: The International Neurourology Journal (Int Neurourol J, INJ) is a quarterly international journal that publishes high-quality research papers that provide the most significant and promising achievements in the fields of clinical neurourology and fundamental science. Specifically, fundamental science includes the most influential research papers from all fields of science and technology, revolutionizing what physicians and researchers practicing the art of neurourology worldwide know. Thus, we welcome valuable basic research articles to introduce cutting-edge translational research of fundamental sciences to clinical neurourology. In the editorials, urologists will present their perspectives on these articles. The original mission statement of the INJ was published on October 12, 1997. INJ provides authors a fast review of their work and makes a decision in an average of three to four weeks of receiving submissions. If accepted, articles are posted online in fully citable form. Supplementary issues will be published interim to quarterlies, as necessary, to fully allow berth to accept and publish relevant articles.
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