BriefGPT.xyz
Feb, 2024
基于不确定性引导的人机协作增强分割
Uncertainty-guided annotation enhances segmentation with the human-in-the-loop
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Nadieh Khalili, Joey Spronck, Francesco Ciompi, Jeroen van der Laak, Geert Litjens
TL;DR
为解决深度学习算法在临床应用中缺乏透明度的问题,研究提出了一种基于不确定性引导标注的框架,通过量化不确定性和开放临床人员指导,实现自动质量控制,提高算法性能。
Abstract
deep learning algorithms
, often critiqued for their 'black box' nature, traditionally fall short in providing the necessary
transparency
for trusted
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