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Near-field clutter artifact reduction algorithm based on wavelet thresholding method in echocardiography using 3D printed cardiac phantom

Authors
Kim, MinkyoungHan, Dong-KyoonLee, Youngjin
Issue Date
Sep-2022
Publisher
한국물리학회
Keywords
Echocardiography · Near-feld clutter · Artifact reduction algorithm modeling · Wavelet thresholding · 3D printing technique
Citation
Journal of the Korean Physical Society, v.81, no.5, pp.441 - 449
Journal Title
Journal of the Korean Physical Society
Volume
81
Number
5
Start Page
441
End Page
449
URI
https://scholarworks.bwise.kr/gachon/handle/2020.sw.gachon/85490
DOI
10.1007/s40042-022-00512-z
ISSN
0374-4884
Abstract
One of the typical sources of noise of echocardiography, near-feld clutter (NFC), is an artifact in the near feld and causes diagnostic errors with decreased accuracy. The purpose of this study is to apply an algorithm based on the wavelet threshold ing method to remove only the NFC area, without afecting the essential regions for accurate diagnosis. Ultrasound images including NFC were obtained using a self-manufactured left ventricle (LV) phantom, after which comparative evaluation was performed after applying a wavelet thresholding method-based algorithm. When the algorithm based on the wavelet thresholding method was applied to the NFC image, the root mean square error (RMSE) value decreased by 71.38%, from 35.54 to 10.17. The correlation coefcient (CC) value increased by 12.64%, from 0.87 to 0.98, and the mean structural simi larity (MSSIM) value increased by 23.68%, from 0.76 to 0.94. Finally, the universal quality index (UQI) value increased by 17.28%, from 0.81 to 0.95. In conclusion, the algorithm based on the wavelet thresholding method proved efective for removing signifcant NFCs, which afect image diagnosis in echocardiography. Furthermore, when this algorithm is used in cardiac ultrasound machines, it is expected to improve the accuracy of diagnosis by removing NFC.
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