2022
DOI: 10.1016/j.bspc.2022.103552
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COVID-19 CT image denoising algorithm based on adaptive threshold and optimized weighted median filter

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Cited by 33 publications
(24 citation statements)
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“…Te average SSIM values of literature [16] are improved by 0.01 compared to literature [14] and literature [15], and the SSIM of literature [17] is improved by 0.01 compared to literature [16]. Te SSIM of the proposed method in this paper is improved by 0.01 compared to literature [17].…”
Section: Resultsmentioning
confidence: 69%
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“…Te average SSIM values of literature [16] are improved by 0.01 compared to literature [14] and literature [15], and the SSIM of literature [17] is improved by 0.01 compared to literature [16]. Te SSIM of the proposed method in this paper is improved by 0.01 compared to literature [17].…”
Section: Resultsmentioning
confidence: 69%
“…All methods present visually well denoised results to some degree. When σ � 40, the PSNR of literature [16] and literature [15] are 0.98 dB and 0.12 dB greater than literature [14], respectively. Te PSNR of literature [17] is 0.54 dB higher than literature [16], while the PSNR of the proposed approach in this study is 0.04 dB higher than literature [17].…”
Section: Resultsmentioning
confidence: 89%
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“…Image features are the most basic attributes used to describe image content, and selecting reasonable features is the key for accurate GGO detection [35] , [36] . The selection of features is not unique, and the medical images generated by different types of GGO have different features [37] . GGO features are influenced by the comprehensiveness of its description and the accuracy of its characterization [38] .…”
Section: Multi-modal Feature Extraction and Quantification Of Covid-19mentioning
confidence: 99%