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Ethical Framework for Responsible Foundational Models in Medical Imaging

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arxiv 2406.11868 v1 pith:E23COS27 submitted 2024-04-14 cs.CY cs.AI

Ethical Framework for Responsible Foundational Models in Medical Imaging

classification cs.CY cs.AI
keywords ethicalframeworkfoundationalimagingmedicalmodelspatientpotential
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Foundational models (FMs) have tremendous potential to revolutionize medical imaging. However, their deployment in real-world clinical settings demands extensive ethical considerations. This paper aims to highlight the ethical concerns related to FMs and propose a framework to guide their responsible development and implementation within medicine. We meticulously examine ethical issues such as privacy of patient data, bias mitigation, algorithmic transparency, explainability and accountability. The proposed framework is designed to prioritize patient welfare, mitigate potential risks, and foster trust in AI-assisted healthcare.

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