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Papers/KBNet: Kernel Basis Network for Image Restoration

KBNet: Kernel Basis Network for Image Restoration

Yi Zhang, Dasong Li, Xiaoyu Shi, Dailan He, Kangning Song, Xiaogang Wang, Hongwei Qin, Hongsheng Li

2023-03-06DenoisingDeblurringGrayscale Image DenoisingImage DenoisingRain RemovalColor Image DenoisingImage RestorationSingle Image Deraining
PaperPDFCode(official)

Abstract

How to aggregate spatial information plays an essential role in learning-based image restoration. Most existing CNN-based networks adopt static convolutional kernels to encode spatial information, which cannot aggregate spatial information adaptively. Recent transformer-based architectures achieve adaptive spatial aggregation. But they lack desirable inductive biases of convolutions and require heavy computational costs. In this paper, we propose a kernel basis attention (KBA) module, which introduces learnable kernel bases to model representative image patterns for spatial information aggregation. Different kernel bases are trained to model different local structures. At each spatial location, they are linearly and adaptively fused by predicted pixel-wise coefficients to obtain aggregation weights. Based on the KBA module, we further design a multi-axis feature fusion (MFF) block to encode and fuse channel-wise, spatial-invariant, and pixel-adaptive features for image restoration. Our model, named kernel basis network (KBNet), achieves state-of-the-art performances on more than ten benchmarks over image denoising, deraining, and deblurring tasks while requiring less computational cost than previous SOTA methods.

Results

TaskDatasetMetricValueModel
Rain RemovalTest1200PSNR33.82KBNet
Rain RemovalTest1200SSIM0.931KBNet
Rain RemovalTest2800PSNR34.19KBNet
Rain RemovalTest2800SSIM0.944KBNet
DenoisingSIDDPSNR (sRGB)40.35KBNet
DenoisingSIDDSSIM (sRGB)0.972KBNet
DenoisingKodak24 sigma50PSNR30.04KBNet
DenoisingCBSD68 sigma15PSNR34.41KBNet
DenoisingUrban100 sigma25PSNR32.96KBNet
DenoisingCBSD68 sigma25PSNR31.8KBNet
Denoisingurban100 sigma15Average PSNR35.15KBNet
DenoisingUrban100 sigma50PSNR30.04KBNet
DenoisingMcMaster sigma50PSNR30.27KBNet
DenoisingUrban100 sigma25PSNR31.45KBNet
DenoisingSet12 sigma50PSNR28.04KBNet
DenoisingUrban100 sigma50PSNR28.33KBNet
DenoisingSet12 sigma15PSNR33.4KBNet
Denoisingurban100 sigma15PSNR33.77KBNet
DenoisingBSD68 sigma15PSNR31.98KBNet
DenoisingBSD68 sigma25PSNR29.54KBNet
DenoisingSet12 sigma25PSNR31.08KBNet
DenoisingBSD68 sigma50PSNR26.65KBNet
Image DenoisingSIDDPSNR (sRGB)40.35KBNet
Image DenoisingSIDDSSIM (sRGB)0.972KBNet
3D ArchitectureSIDDPSNR (sRGB)40.35KBNet
3D ArchitectureSIDDSSIM (sRGB)0.972KBNet
3D ArchitectureKodak24 sigma50PSNR30.04KBNet
3D ArchitectureCBSD68 sigma15PSNR34.41KBNet
3D ArchitectureUrban100 sigma25PSNR32.96KBNet
3D ArchitectureCBSD68 sigma25PSNR31.8KBNet
3D Architectureurban100 sigma15Average PSNR35.15KBNet
3D ArchitectureUrban100 sigma50PSNR30.04KBNet
3D ArchitectureMcMaster sigma50PSNR30.27KBNet
3D ArchitectureUrban100 sigma25PSNR31.45KBNet
3D ArchitectureSet12 sigma50PSNR28.04KBNet
3D ArchitectureUrban100 sigma50PSNR28.33KBNet
3D ArchitectureSet12 sigma15PSNR33.4KBNet
3D Architectureurban100 sigma15PSNR33.77KBNet
3D ArchitectureBSD68 sigma15PSNR31.98KBNet
3D ArchitectureBSD68 sigma25PSNR29.54KBNet
3D ArchitectureSet12 sigma25PSNR31.08KBNet
3D ArchitectureBSD68 sigma50PSNR26.65KBNet

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