A Sociotechnical Review of Algorithms in Health Systems: Technical, Cost, and Human-Centered Considerations

๐Ÿ“… 2026-09-18
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๐Ÿค– AI Summary
ๆœฌๆ–‡้€š่ฟ‡ๅˆ†ๆž114็ฏ‡่ฎบๆ–‡๏ผŒๆŽข่ฎจไบ†ๅŒป็–—็ณป็ปŸไธญๆˆๆœฌๆ•ๆ„Ÿ็š„ไบบๅทฅๆ™บ่ƒฝๆจกๅž‹็š„่ฎพ่ฎกๆ–นๆณ•ๅŠๅ…ถๅœจๆŠ€ๆœฏใ€็ปๆตŽๅ’Œไบบๆ–‡ๆ–น้ข็š„่€ƒ้‡ใ€‚
๐Ÿ“ Abstract
Artificial intelligence (AI) applications in healthcare are becoming increasingly prevalent, to assist health systems, providers, and patients with tasks such as decision-making, risk prediction, and diagnosis. This increasing computational potential brings AI applications to the forefront of workplace decision making, often without full consideration of subsequent computational, organizational, and social costs. These applications are leveraged to reduce healthcare costs and increase efficiency of daily tasks, with model-related costs being considered at varying levels of granularity. To understand these trends, we critically analyze 114 papers to examine how cost-aware AI models have been developed for health systems. We explore the data, method, and outcome choices of these models, as well as their intersection with cost and human-centered concerns, highlighting the gaps in rigorous sociotechnical model design. From these trends, we define model costs and subsequent dimensions, presenting insight into those studies reporting financial, computational, organizational and/or social measures. Further, we critique the benefits and challenges of evaluating model-related costs and sustainability concerns when developing AI models for health systems.
Problem

Research questions and friction points this paper is trying to address.

AI in healthcare
cost considerations
sociotechnical model design
Innovation

Methods, ideas, or system contributions that make the work stand out.

cost-aware AI models
health systems
sociotechnical considerations
human-centered design
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