Fractional diffusion, low exponent lévy stable laws, and 'slow motion' denoising of helium ion microscope nanoscale imagery

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Abstract

Helium ion microscopes (HIM) are capable of acquiring images with better than 1 nm resolution, and HIM images are particularly rich in morphological surface details. However, such images are generally quite noisy. A major challenge is to denoise these images while preserving delicate surface information. This paper presents a powerful slow motion denoising technique, based on solving linear fractional diffusion equations forward in time. The method is easily implemented computationally, using fast Fourier transform (FFT) algorithms. When applied to actual HIM images, the method is found to reproduce the essential surface morphology of the sample with high fidelity. In contrast, such highly sophisticated methodologies as Curvelet Transform denoising, and Total Variation denoising using split Bregman iterations, are found to eliminate vital fine scale information, along with the noise. Image Lipschitz exponents are a useful image metrology tool for quantifying the fine structure content in an image. In this paper, this tool is applied to rank order the above three distinct denoising approaches, in terms of their texture preserving properties. In several denoising experiments on actual HIM images, it was found that fractional diffusion smoothing performed noticeably better than split Bregman TV, which in turn, performed slightly better than Curvelet denoising.

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APA

Carasso, A. S., & Vladár, A. E. (2012). Fractional diffusion, low exponent lévy stable laws, and “slow motion” denoising of helium ion microscope nanoscale imagery. Journal of Research of the National Institute of Standards and Technology, 117(1), 119–142. https://doi.org/10.6028/jres.117.006

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