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{Loay Rashid Amit Unde Siddharth Roheda}

Abstract
This research paper presents a novel class of restoration network architecture based on the Volterra series formulation. By incorporating non-linearity into the system response function through higher order convolutions instead of traditional activation functions we introduce a general framework for image/video restoration. Through extensive experimentation we demonstrate that our proposed architecture achieves state-of-the-art (SOTA) performance in the field of Image/Video Restoration. Moreover we establish that the recently introduced Non-Linear Activation Free Network (NAF-NET) can be considered a special case within the broader class of Volterra Neural Networks. These findings highlight the potential of Volterra Neural Networks as a versatile and powerful tool for addressing complex restoration tasks in computer vision.
Benchmarks
| Benchmark | Methodology | Metrics |
|---|---|---|
| image-deblurring-on-gopro | MR-VNet | PSNR: 34.04 Params (M): 12.3 SSIM: 0.969 |
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