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Deep Network Interpolation for Accelerated Parallel MR Image Reconstruction

Published 12 Jul 2020 in eess.IV and cs.CV | (2007.05993v1)

Abstract: We present a deep network interpolation strategy for accelerated parallel MR image reconstruction. In particular, we examine the network interpolation in parameter space between a source model that is formulated in an unrolled scheme with L1 and SSIM losses and its counterpart that is trained with an adversarial loss. We show that by interpolating between the two different models of the same network structure, the new interpolated network can model a trade-off between perceptual quality and fidelity.

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