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Sören Dittmer

1 accepted papers

2024

Data-Driven Convex Regularizers for Inverse Problems

ICASSP 2024accepted

We propose to learn a data-adaptive convex regularizer, which is parameterized using an input-convex neural network (ICNN), for variational image reconstruction. The regularizer parameters are learned adversarially by telling apart clean images from the artifact-ridden ones in a training dataset. Co…

Cited by 0SourceScholar