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Jul, 2024
自适应混合用于半监督医学图像分割
Adaptive Mix for Semi-Supervised Medical Image Segmentation
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Zhiqiang Shen, Peng Cao, Junming Su, Jinzhu Yang, Osmar R. Zaiane
TL;DR
本研究解决了现有混合操作在半监督学习中的局限性,提出了一种自适应混合算法(AdaMix),通过自适应控制扰动强度以增强一致性学习的有效性。实验证明,该方法在医学图像分割任务中展现出优越的性能,相较于最先进的方法显著提升了分割准确率和平均表面距离。
Abstract
Mix-up is a key technique for
Consistency Regularization
-based
Semi-Supervised Learning
methods, generating strong-perturbed samples for strong-weak pseudo-supervision. Existing mix-up operations are performed ei
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