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Enhancing Medical Image Denoising with Innovative Teacher-Student Model-Based Approaches for Precision Diagnosticsopen access

Authors
Muksimova, ShakhnozaUmirzakova, SabinaMardieva, SevaraCho, Young-Im
Issue Date
Dec-2023
Publisher
MDPI
Keywords
medical image denoising; lightweight model; teacher-student network; model speed optimization
Citation
SENSORS, v.23, no.23
Journal Title
SENSORS
Volume
23
Number
23
URI
https://scholarworks.bwise.kr/gachon/handle/2020.sw.gachon/89697
DOI
10.3390/s23239502
ISSN
1424-8220
1424-3210
Abstract
The realm of medical imaging is a critical frontier in precision diagnostics, where the clarity of the image is paramount. Despite advancements in imaging technology, noise remains a pervasive challenge that can obscure crucial details and impede accurate diagnoses. Addressing this, we introduce a novel teacher-student network model that leverages the potency of our bespoke NoiseContextNet Block to discern and mitigate noise with unprecedented precision. This innovation is coupled with an iterative pruning technique aimed at refining the model for heightened computational efficiency without compromising the fidelity of denoising. We substantiate the superiority and effectiveness of our approach through a comprehensive suite of experiments, showcasing significant qualitative enhancements across a multitude of medical imaging modalities. The visual results from a vast array of tests firmly establish our method's dominance in producing clearer, more reliable images for diagnostic purposes, thereby setting a new benchmark in medical image denoising.
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College of IT Convergence (컴퓨터공학부(컴퓨터공학전공))
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