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Diffusion Adversarial Representation Learning for Self-supervised Vessel Segmentation. (arXiv:2209.14566v1 [eess.IV])
cs.LG updates on arXiv.org arxiv.org
Vessel segmentation in medical images is one of the important tasks in the
diagnosis of vascular diseases and therapy planning. Although learning-based
segmentation approaches have been extensively studied, a large amount of
ground-truth labels are required in supervised methods and confusing background
structures make neural networks hard to segment vessels in an unsupervised
manner. To address this, here we introduce a novel diffusion adversarial
representation learning (DARL) model that leverages a denoising diffusion
probabilistic model with adversarial learning, and apply …
arxiv diffusion representation representation learning segmentation