Bias in AI-based models for medical applications: challenges and mitigation strategies

被引:81
|
作者
Mittermaier, Mirja [1 ,2 ,3 ,4 ]
Raza, Marium M. [5 ]
Kvedar, Joseph C. [5 ]
机构
[1] Charite Univ Med Berlin, Berlin, Germany
[2] Free Univ Berlin, Berlin, Germany
[3] Humboldt Univ, Dept Infect Dis Resp Med & Crit Care, Berlin, Germany
[4] Charite Univ Med Berlin, Berlin Inst Hlth, Charitepl 1, D-10117 Berlin, Germany
[5] Harvard Med Sch, Boston, MA USA
关键词
ARTIFICIAL-INTELLIGENCE;
D O I
10.1038/s41746-023-00858-z
中图分类号
R19 [保健组织与事业(卫生事业管理)];
学科分类号
摘要
Artificial intelligence systems are increasingly being applied to healthcare. In surgery, AI applications hold promise as tools to predict surgical outcomes, assess technical skills, or guide surgeons intraoperatively via computer vision. On the other hand, AI systems can also suffer from bias, compounding existing inequities in socioeconomic status, race, ethnicity, religion, gender, disability, or sexual orientation. Bias particularly impacts disadvantaged populations, which can be subject to algorithmic predictions that are less accurate or underestimate the need for care. Thus, strategies for detecting and mitigating bias are pivotal for creating AI technology that is generalizable and fair. Here, we discuss a recent study that developed a new strategy to mitigate bias in surgical AI systems.
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页数:3
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