介绍(产科)
计算机科学
反问题
深度学习
人工智能
医学影像学
数据科学
医学物理学
放射科
医学
数学
数学分析
作者
Carola‐Bibiane Schönlieb
摘要
In this talk we discuss the idea of data-driven regularisers for inverse imaging problems. We are in particular interested in the combination of model-based and purely data-driven image processing approaches. In this context we will make a journey from "shallow" learning for computing optimal parameters for variational regularisation models by bilevel optimization to the investigation of different approaches that use deep neural networks for solving inverse imaging problems. Alongside all approaches that are being discussed, their numerical solution and available solution guarantees will be stated.
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