医疗保健
计算机科学
人工智能
心理学
政治学
法学
作者
Fereshteh Hasanzadeh,Colin B. Josephson,G Waters,Demilade Adedinsewo,Zahra Azizi,James A. White
标识
DOI:10.1038/s41746-025-01503-7
摘要
Artificial intelligence (AI) is delivering value across all aspects of clinical practice. However, bias may exacerbate healthcare disparities. This review examines the origins of bias in healthcare AI, strategies for mitigation, and responsibilities of relevant stakeholders towards achieving fair and equitable use. We highlight the importance of systematically identifying bias and engaging relevant mitigation activities throughout the AI model lifecycle, from model conception through to deployment and longitudinal surveillance.
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