cs.AI updates on arXiv.org 10月23日 12:11
AI在医学影像应用中的实施科学挑战与策略
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本文探讨了人工智能在医学影像应用中的实施科学挑战,包括基础设施、教育和文化障碍,以及如何通过实施科学方法缩短技术从研发到临床应用的滞后。

arXiv:2510.13006v2 Announce Type: cross Abstract: The transformative potential of artificial intelligence (AI) in medical Imaging (MI) is well recognized. Yet despite promising reports in research settings, many AI tools fail to achieve clinical adoption in practice. In fact, more generally, there is a documented 17-year average delay between evidence generation and implementation of a technology1. Implementation science (IS) may provide a practical, evidence-based framework to bridge the gap between AI development and real-world clinical imaging use that helps shorten this lag through systematic frameworks, strategies, and hybrid research designs. We outline challenges specific to AI adoption in MI workflows, including infrastructural, educational, and cultural barriers. We highlight the complementary roles of effectiveness research and implementation research, emphasizing hybrid study designs and the role of integrated KT (iKT), stakeholder engagement, and equity-focused co-creation in designing sustainable and generalizable solutions. We discuss integration of Human-Computer Interaction (HCI) frameworks in MI towards usable AI. Adopting IS is not only a methodological advancement; it is a strategic imperative for accelerating translation of innovation into improved patient outcomes.

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人工智能 医学影像 实施科学 挑战与策略 跨学科研究
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