Deep-learning-based image reconstruction with limited data: generating synthetic raw data using deep learning
Frank Zijlstra,
Peter Thomas While
Abstract:Object
Deep learning has shown great promise for fast reconstruction of accelerated MRI acquisitions by learning from large amounts of raw data. However, raw data is not always available in sufficient quantities. This study investigates synthetic data generation to complement small datasets and improve reconstruction quality.
Materials and methods
An adversarial auto-encoder was trained to generate phase and coil sensitivity maps from magnitude images, whi… Show more
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