医疗保健中的机器学习:与隐私、可解释性和偏见相关的伦理考虑因素

Q2 Medicine
Thomas Hofweber, Rebecca L. Walker
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引用次数: 1

摘要

机器学习模型在医疗应用中大有可为,但也带来了一系列伦理挑战。在本调查中,我们将重点关注训练数据、模型的可解释性和偏差,以及与隐私、自主性和健康公平相关的问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Machine Learning in Health Care: Ethical Considerations Tied to Privacy, Interpretability, and Bias
Machine learning models hold great promise with medical applications, but also give rise to a series of ethical challenges. In this survey we focus on training data, model interpretability and bias and the related issues tied to privacy, autonomy, and health equity.
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来源期刊
North Carolina Medical Journal
North Carolina Medical Journal Medicine-Medicine (all)
CiteScore
1.40
自引率
0.00%
发文量
121
期刊介绍: NCMJ, the North Carolina Medical Journal, is meant to be read by everyone with an interest in improving the health of North Carolinians. We seek to make the Journal a sounding board for new ideas, new approaches, and new policies that will deliver high quality health care, support healthy choices, and maintain a healthy environment in our state.
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