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医疗保健领域的人工智能代理架构与临床决策

Artificial Intelligent Agent Architecture and Clinical Decision-Making in the Healthcare Sector.

作者信息

Huang Kian A, Choudhary Haris K, Kuo Paul C

机构信息

Surgery, University of South Florida Health Morsani College of Medicine, Tampa, USA.

出版信息

Cureus. 2024 Jul 8;16(7):e64115. doi: 10.7759/cureus.64115. eCollection 2024 Jul.

Abstract

This paper examines the decision-making processes of physicians and intelligent agents within the healthcare sector, particularly focusing on their characteristics, architectures, and approaches. We provide a theoretical insight into the evolving role of artificial intelligence (AI) in healthcare, emphasizing its potential to address various healthcare challenges. Defining features of intelligent agents are explored, including their perceptual abilities and behavioral properties, alongside their architectural frameworks, ranging from reflex-based to general learning agents, and contrasted with the rational decision-making structure employed by physicians. Through data collection, hypothesis generation, testing, and reflection, physicians exhibit a nuanced approach informed by adaptability and contextual understanding. A comparative analysis between intelligent agents and physicians reveals both similarities and disparities, particularly in adaptability and contextual comprehension. While intelligent agents offer promise in enhancing clinical decisions, challenges with types of dataset biases pose significant hurdles. Informing and educating physicians about AI concepts can build trust and transparency in intelligent programs. Such efforts aim to leverage the strengths of both human and AI toward improving healthcare delivery and outcomes.

摘要

本文研究了医疗保健领域中医师和智能代理的决策过程,特别关注它们的特征、架构和方法。我们对人工智能(AI)在医疗保健中不断演变的作用提供了理论见解,强调其应对各种医疗挑战的潜力。探讨了智能代理的定义特征,包括它们的感知能力和行为属性,以及它们的架构框架,从基于反射的代理到通用学习代理,并与医师采用的理性决策结构进行了对比。通过数据收集、假设生成、测试和反思,医师表现出一种受适应性和情境理解影响的细致入微的方法。智能代理与医师之间的比较分析揭示了两者的异同,特别是在适应性和情境理解方面。虽然智能代理在增强临床决策方面有前景,但数据集偏差类型带来的挑战构成了重大障碍。向医师宣传和教育人工智能概念可以建立对智能程序的信任和透明度。这些努力旨在利用人类和人工智能的优势来改善医疗服务和结果。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b695/11309744/4969c50c3439/cureus-0016-00000064115-i01.jpg

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