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LFSRDiff: Light Field Image Super-Resolution via Diffusion Models

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arxiv 2311.16517 v1 pith:PCTW7UQN submitted 2023-11-27 eess.IV cs.CV

classification eess.IVcs.CV
keywords imageresultsdiffusionimageslfsrdiffmodelsapproacheffectively
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Light field (LF) image super-resolution (SR) is a challenging problem due to its inherent ill-posed nature, where a single low-resolution (LR) input LF image can correspond to multiple potential super-resolved outcomes. Despite this complexity, mainstream LF image SR methods typically adopt a deterministic approach, generating only a single output supervised by pixel-wise loss functions. This tendency often results in blurry and unrealistic results. Although diffusion models can capture the distribution of potential SR results by iteratively predicting Gaussian noise during the denoising process, they are primarily designed for general images and struggle to effectively handle the unique characteristics and information present in LF images. To address these limitations, we introduce LFSRDiff, the first diffusion-based LF image SR model, by incorporating the LF disentanglement mechanism. Our novel contribution includes the introduction of a disentangled U-Net for diffusion models, enabling more effective extraction and fusion of both spatial and angular information within LF images. Through comprehensive experimental evaluations and comparisons with the state-of-the-art LF image SR methods, the proposed approach consistently produces diverse and realistic SR results. It achieves the highest perceptual metric in terms of LPIPS. It also demonstrates the ability to effectively control the trade-off between perception and distortion. The code is available at \url{https://github.com/chaowentao/LFSRDiff}.

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Cited by 1 Pith paper

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  1. FgC2F-UDiff: Frequency-guided and Coarse-to-fine Unified Diffusion Model for Multi-modality Missing MRI Synthesis

    eess.IV 2025-01 conditional novelty 5.0 of 10

    FgC2F-UDiff synthesizes missing MRI modalities from any available subset using a diffusion model split into frequency-guided coarse and fine denoising stages, and reports improved quality scores on BraTS 2021 and IXI.

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