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Multispectral image denoising with optimized vector non-local mean filter

About

Nowadays, many applications rely on images of high quality to ensure good performance in conducting their tasks. However, noise goes against this objective as it is an unavoidable issue in most applications. Therefore, it is essential to develop techniques to attenuate the impact of noise, while maintaining the integrity of relevant information in images. We propose in this work to extend the application of the Non-Local Means filter (NLM) to the vector case and apply it for denoising multispectral images. The objective is to benefit from the additional information brought by multispectral imaging systems. The NLM filter exploits the redundancy of information in an image to remove noise. A restored pixel is a weighted average of all pixels in the image. In our contribution, we propose an optimization framework where we dynamically fine tune the NLM filter parameters and attenuate its computational complexity by considering only pixels which are most similar to each other in computing a restored pixel. Filter parameters are optimized using Stein's Unbiased Risk Estimator (SURE) rather than using ad hoc means. Experiments have been conducted on multispectral images corrupted with additive white Gaussian noise and PSNR and similarity comparison with other approaches are provided to illustrate the efficiency of our approach in terms of both denoising performance and computation complexity.

Ahmed Ben Said, Rachid Hadjidj, Kamel Eddine Melkemi, Sebti Foufou• 2016

Related benchmarks

TaskDatasetResultRank
Image DenoisingIRIS Lab database Subject5
SSIM90
45
Image DenoisingIRIS Lab database Subject3
SSIM88
45
Image DenoisingIRIS Lab database Subject4
SSIM87
45
Image DenoisingIRIS Subject2
SSIM88
45
Image DenoisingIRIS Lab Subject7
SSIM0.9
45
Image DenoisingIRIS Lab database Subject6
SSIM89
45
Image DenoisingSalinas Valley multispectral image (AVIRIS)
SSIM83
45
Image DenoisingIRIS Lab database Subject1
SSIM0.86
45
DenoisingIRIS Lab (Subject8)
SSIM88
45
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