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医学中的多模态人工智能。

Multimodal Artificial Intelligence in Medicine.

机构信息

HRB-Clinical Research Facility, University of Galway, Galway, Ireland.

Insight Data Analytics, University of Galway, Galway, Ireland.

出版信息

Kidney360. 2024 Nov 1;5(11):1771-1779. doi: 10.34067/KID.0000000000000556. Epub 2024 Aug 21.

Abstract

Traditional medical artificial intelligence models that are approved for clinical use restrict themselves to single-modal data ( e.g ., images only), limiting their applicability in the complex, multimodal environment of medical diagnosis and treatment. Multimodal transformer models in health care can effectively process and interpret diverse data forms, such as text, images, and structured data. They have demonstrated impressive performance on standard benchmarks, like United States Medical Licensing Examination question banks, and continue to improve with scale. However, the adoption of these advanced artificial intelligence models is not without challenges. While multimodal deep learning models like transformers offer promising advancements in health care, their integration requires careful consideration of the accompanying ethical and environmental challenges.

摘要

传统的医学人工智能模型在获得临床批准后,仅限于使用单模态数据(例如,仅图像),这限制了它们在医疗诊断和治疗这种复杂的多模态环境中的适用性。医疗保健中的多模态转换器模型可以有效地处理和解释多种数据形式,如文本、图像和结构化数据。它们在标准基准测试(如美国医师执照考试题库)上表现出色,并随着规模的扩大而不断提高。然而,这些先进的人工智能模型的采用并非没有挑战。虽然像转换器这样的多模态深度学习模型在医疗保健领域提供了有前途的进展,但它们的集成需要仔细考虑伴随而来的伦理和环境挑战。

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