FUZZY WEIGHTED MEDIAN FILTER WITH UNSHARP MASKING FOR ENHANCEMENT OF DBT IMAGES IN BREAST CANCER DETECTION

Breast cancer survival rates can be increased by providing early treatment to patients; thereby, microcalcification detection is critical because microcalcifications are an early sign of breast cancer. The visibility of microcalcifications can be improved by using Digital Breast Tomosynthesis (DBT)...

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Published in:Journal of Health and Translational Medicine
Main Author: Saifudin S.A.; Sulaiman S.N.; Osman M.K.; Isa I.S.; A. Karim N.K.
Format: Article
Language:English
Published: Faculty of Medicine, University of Malaya 2023
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85163170479&doi=10.22452%2fjummec.sp2023no1.17&partnerID=40&md5=f9e303792992318a3ffa16b33ea7273d
id 2-s2.0-85163170479
spelling 2-s2.0-85163170479
Saifudin S.A.; Sulaiman S.N.; Osman M.K.; Isa I.S.; A. Karim N.K.
FUZZY WEIGHTED MEDIAN FILTER WITH UNSHARP MASKING FOR ENHANCEMENT OF DBT IMAGES IN BREAST CANCER DETECTION
2023
Journal of Health and Translational Medicine
2023
Special Issue 1
10.22452/jummec.sp2023no1.17
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85163170479&doi=10.22452%2fjummec.sp2023no1.17&partnerID=40&md5=f9e303792992318a3ffa16b33ea7273d
Breast cancer survival rates can be increased by providing early treatment to patients; thereby, microcalcification detection is critical because microcalcifications are an early sign of breast cancer. The visibility of microcalcifications can be improved by using Digital Breast Tomosynthesis (DBT) images, which have been shown to improve the overlapping issue in mammograms. However, since DBT screening techniques generate blurry artefacts and noise, this study proposes a DBT image enhancement procedure. As a result, this study indicated an enhancement method based on Non-Linear Unsharp Masking filters (NLUM). A filter, such as the Median Filter in conventional NLUM, is required to complete the non-linear element in the algorithm. Other researchers have previously proposed and demonstrated the Fuzzy Weighted Median Filter (FWMF) to improve medical images; thus, these filters can be adapted to the NLUM and replaced with the conventional filter. Following that, the enhancement process's performance will be evaluated using Mean Square Error (MSE) and Peak Signal to Noise Ratio (PSNR). When compared to the Median Filter, the results show that the FWMF is the best filter to use in NLUM and successfully enhances DBT images with MSE and PSNR averages of 0.0171 and 67.0574, respectively. © 2023, Faculty of Medicine, University of Malaya. All rights reserved.
Faculty of Medicine, University of Malaya
18237339
English
Article
All Open Access; Hybrid Gold Open Access
author Saifudin S.A.; Sulaiman S.N.; Osman M.K.; Isa I.S.; A. Karim N.K.
spellingShingle Saifudin S.A.; Sulaiman S.N.; Osman M.K.; Isa I.S.; A. Karim N.K.
FUZZY WEIGHTED MEDIAN FILTER WITH UNSHARP MASKING FOR ENHANCEMENT OF DBT IMAGES IN BREAST CANCER DETECTION
author_facet Saifudin S.A.; Sulaiman S.N.; Osman M.K.; Isa I.S.; A. Karim N.K.
author_sort Saifudin S.A.; Sulaiman S.N.; Osman M.K.; Isa I.S.; A. Karim N.K.
title FUZZY WEIGHTED MEDIAN FILTER WITH UNSHARP MASKING FOR ENHANCEMENT OF DBT IMAGES IN BREAST CANCER DETECTION
title_short FUZZY WEIGHTED MEDIAN FILTER WITH UNSHARP MASKING FOR ENHANCEMENT OF DBT IMAGES IN BREAST CANCER DETECTION
title_full FUZZY WEIGHTED MEDIAN FILTER WITH UNSHARP MASKING FOR ENHANCEMENT OF DBT IMAGES IN BREAST CANCER DETECTION
title_fullStr FUZZY WEIGHTED MEDIAN FILTER WITH UNSHARP MASKING FOR ENHANCEMENT OF DBT IMAGES IN BREAST CANCER DETECTION
title_full_unstemmed FUZZY WEIGHTED MEDIAN FILTER WITH UNSHARP MASKING FOR ENHANCEMENT OF DBT IMAGES IN BREAST CANCER DETECTION
title_sort FUZZY WEIGHTED MEDIAN FILTER WITH UNSHARP MASKING FOR ENHANCEMENT OF DBT IMAGES IN BREAST CANCER DETECTION
publishDate 2023
container_title Journal of Health and Translational Medicine
container_volume 2023
container_issue Special Issue 1
doi_str_mv 10.22452/jummec.sp2023no1.17
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85163170479&doi=10.22452%2fjummec.sp2023no1.17&partnerID=40&md5=f9e303792992318a3ffa16b33ea7273d
description Breast cancer survival rates can be increased by providing early treatment to patients; thereby, microcalcification detection is critical because microcalcifications are an early sign of breast cancer. The visibility of microcalcifications can be improved by using Digital Breast Tomosynthesis (DBT) images, which have been shown to improve the overlapping issue in mammograms. However, since DBT screening techniques generate blurry artefacts and noise, this study proposes a DBT image enhancement procedure. As a result, this study indicated an enhancement method based on Non-Linear Unsharp Masking filters (NLUM). A filter, such as the Median Filter in conventional NLUM, is required to complete the non-linear element in the algorithm. Other researchers have previously proposed and demonstrated the Fuzzy Weighted Median Filter (FWMF) to improve medical images; thus, these filters can be adapted to the NLUM and replaced with the conventional filter. Following that, the enhancement process's performance will be evaluated using Mean Square Error (MSE) and Peak Signal to Noise Ratio (PSNR). When compared to the Median Filter, the results show that the FWMF is the best filter to use in NLUM and successfully enhances DBT images with MSE and PSNR averages of 0.0171 and 67.0574, respectively. © 2023, Faculty of Medicine, University of Malaya. All rights reserved.
publisher Faculty of Medicine, University of Malaya
issn 18237339
language English
format Article
accesstype All Open Access; Hybrid Gold Open Access
record_format scopus
collection Scopus
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