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JR2net: A Joint Non-Linear Representation and Recovery Network for Compressive Spectral Imaging

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arxiv 2205.07770 v2 pith:Y5DOF63C submitted 2022-05-16 eess.IV cs.LG

JR2net: A Joint Non-Linear Representation and Recovery Network for Compressive Spectral Imaging

classification eess.IV cs.LG
keywords spectralrecoveryrepresentationnetworknon-linearimagedeepjr2net
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Deep learning models are state-of-the-art in compressive spectral imaging (CSI) recovery. These methods use a deep neural network (DNN) as an image generator to learn non-linear mapping from compressed measurements to the spectral image. For instance, the deep spectral prior approach uses a convolutional autoencoder network (CAE) in the optimization algorithm to recover the spectral image by using a non-linear representation. However, the CAE training is detached from the recovery problem, which does not guarantee optimal representation of the spectral images for the CSI problem. This work proposes a joint non-linear representation and recovery network (JR2net), linking the representation and recovery task into a single optimization problem. JR2net consists of an optimization-inspired network following an ADMM formulation that learns a non-linear low-dimensional representation and simultaneously performs the spectral image recovery, trained via the end-to-end approach. Experimental results show the superiority of the proposed method with improvements up to 2.57 dB in PSNR and performance around 2000 times faster than state-of-the-art methods.

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