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upU-Net Approaches for Background Emission Removal in Fluorescence Microscopy

Articolo
Data di Pubblicazione:
2022
Citazione:
upU-Net Approaches for Background Emission Removal in Fluorescence Microscopy / A. Benfenati. - In: JOURNAL OF IMAGING. - ISSN 2313-433X. - 8:5(2022), pp. 142.1-142.17. [10.3390/jimaging8050142]
Abstract:
The physical process underlying microscopy imaging suffers from several issues: some of them include the blurring effect due to the Point Spread Function, the presence of Gaussian or Poisson noise, or even a mixture of these two types of perturbation. Among them, auto-fluorescence presents other artifacts in the registered image, and such fluorescence may be an important obstacle in correctly recognizing objects and organisms in the image. For example, particle tracking may suffer from the presence of this kind of perturbation. The objective of this work is to employ Deep Learning techniques, in the form of U-Nets like architectures, for background emission removal. Such fluorescence is modeled by Perlin noise, which reveals to be a suitable candidate for simulating such a phenomenon. The proposed architecture succeeds in removing the fluorescence, and at the same time, it acts as a denoiser for both Gaussian and Poisson noise. The performance of this approach is furthermore assessed on actual microscopy images and by employing the restored images for particle recognition.
Tipologia IRIS:
01 - Articolo su periodico
Keywords:
Perlin noise; U-Nets; deep learning; microscopy imaging; neural network; particle estimation
Elenco autori:
A. Benfenati
Autori di Ateneo:
BENFENATI ALESSANDRO ( autore )
Link alla scheda completa:
https://air.unimi.it/handle/2434/930553
Link al Full Text:
https://air.unimi.it/retrieve/handle/2434/930553/2041309/jimaging-08-00142.pdf
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Settore MAT/08 - Analisi Numerica
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