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Titlebook: Ethics and Fairness in Medical Imaging; Second International Esther Puyol-Antón,Ghada Zamzmi,Roy Eagleson Conference proceedings 2025 The E

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發(fā)表于 2025-3-21 17:05:02 | 只看該作者 |倒序瀏覽 |閱讀模式
書目名稱Ethics and Fairness in Medical Imaging
副標題Second International
編輯Esther Puyol-Antón,Ghada Zamzmi,Roy Eagleson
視頻videohttp://file.papertrans.cn/321/320731/320731.mp4
叢書名稱Lecture Notes in Computer Science
圖書封面Titlebook: Ethics and Fairness in Medical Imaging; Second International Esther Puyol-Antón,Ghada Zamzmi,Roy Eagleson Conference proceedings 2025 The E
描述.This book constitutes the refereed proceedings of the Second International Workshop, FAIMI 2024, and the Third International Workshop, EPIMI 2024, held in conjunction with MICCAI 2024, Marrakesh, Morocco, in October 2024...The 17 full papers presented in this book were carefully reviewed and selected from 21 submissions...FAIMI aimed to raise awareness about potential fairness issues in machine learning within the context of biomedical image analysis..The instance of EPIMI concentrates on topics surrounding open science, taking a critical lens on the subject..
出版日期Conference proceedings 2025
關鍵詞Fair AI; algorithm bias; ethical considerations; inequality and fairness in medical image analysis; Bias
版次1
doihttps://doi.org/10.1007/978-3-031-72787-0
isbn_softcover978-3-031-72786-3
isbn_ebook978-3-031-72787-0Series ISSN 0302-9743 Series E-ISSN 1611-3349
issn_series 0302-9743
copyrightThe Editor(s) (if applicable) and The Author(s), under exclusive license to Springer Nature Switzerl
The information of publication is updating

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https://doi.org/10.1007/978-1-4614-1854-2e performance across various demographic groups. However, their performance varies strongly across nodule characteristics (size and type) in line with their prevalence in the training set. To ensure continued equitable performance, algorithms should not only consider demographic but also nodule attributes representativeness in their training.
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https://doi.org/10.1007/978-3-658-14777-8forming impact assessments of sociotechnical harms can assist in operationalizing the medical ethics principle of non-maleficence, thereby guiding the ethical development and implementation of AI technologies in healthcare.
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發(fā)表于 2025-3-22 15:58:14 | 只看該作者
https://doi.org/10.1007/978-3-319-31287-3ectual property, and data ownership. Furthermore, we discuss regulations governing the use of synthetic medical data. To promote equitable application of these powerful tools, we also propose clear guidelines for promoting fairness, mitigating bias, and ensuring diversity within generative AI models.
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On Biases in?a?UK Biobank-Based Retinal Image Classification Modelresponds differently to the mitigation methods. We also find that these methods are largely unable to enhance fairness, highlighting the need for better bias mitigation methods tailored to the specific type of bias.
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發(fā)表于 2025-3-23 07:27:42 | 只看該作者
Assessing the?Impact of?Sociotechnical Harms in?AI-Based Medical Image Analysisforming impact assessments of sociotechnical harms can assist in operationalizing the medical ethics principle of non-maleficence, thereby guiding the ethical development and implementation of AI technologies in healthcare.
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