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A Diffusion-Based Generative Prior Approach to Sparse-view Computed Tomography
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A Diffusion-Based Generative Prior Approach to Sparse-view Computed Tomography

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arXiv:2602.10722v1 Announce Type: cross Abstract: The reconstruction of X-rays CT images from sparse or limited-angle geometries is a highly challenging task. The lack of data typically results in artifacts in the reconstructed image and may even lead to object distortions. For this reason, the use of deep generative models in this context has great interest and potential success. In the Deep Generative Prior (DGP) framework, the use of diffusion-based generative models is combined with an iter
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arXiv:2602.10722v1 Announce Type: cross Abstract: The reconstruction of X-rays CT images from sparse or limited-angle geometries is a highly challenging task. The lack of data typically results in artifacts in the reconstructed image and may even lead to object distortions. For this reason, the use of deep generative models in this context has great interest and potential success. In the Deep Generative Prior (DGP) framework, the use of diffusion-based generative models is combined with an iter

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