I-DetectBC: Intelligence detection of breast cancer

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date 2021-09-23 02:11:13
eventvenue Perlis
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id 8235
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originalfilename 4201-01-FH03-FSK-21-56525.pdf
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spelling 8235 https://intelek.unisza.edu.my/intelek/pages/view.php?ref=8235 https://intelek.unisza.edu.my/intelek/pages/search.php?search=!collection407072 Restricted Document Conference Conference Paper application/pdf 4 1.6 Adobe Acrobat Pro DC 20 Paper Capture Plug-in Mozilla/5.0 (Windows NT 10.0; Win64; x64) AppleWebKit/537.36 (KHTML like Gecko) Chrome/93.0.4577.82 Safari/537.36 2021-09-23 02:11:13 4201-01-FH03-FSK-21-56525.pdf UniSZA Private Access I-DetectBC: Intelligence detection of breast cancer Detecting breast cancer lesions at an early stage can help to improve the patients' survival rates. Digital mammograms can be used to detect breast cancer lesions. However, mammographic images suffer from low image quality due to the low exposure factors used. This paper proposes an interactive way of enhancing mammographic images while improving the detection of breast cancer lesions. The Intelligence Detection of Breast Cancer ( i - DetectBC ) allows the radiologist or clinicians to enhance the original mammographic images by using appropriate algorithms automatically. The i - DetectBC consists of two digital image processing techniques: Fuzzy Anisotropic Diffusion Histogram Equalization Contrast Adaptive Limited (FADHECAL) enhancement and Multilevel Otsu Thresholding segmentation technique. The interface of i - DetectBC can be considered user-friendly with low computational methods to provide fast results, especially when identifying breast cancer types such as benign or malignant. The i - DetectBC has been performed on 322 mammographic images, which were retrieved from the MIAS database. The efficiency of the i - DetectBC is 95.7%, and the error rate is 4.3%. In summary, this i - DetectBC can be helpful in the detection and categorization of breast cancer lesions. ACIDS 2021 Perlis
spellingShingle I-DetectBC: Intelligence detection of breast cancer
summary Detecting breast cancer lesions at an early stage can help to improve the patients' survival rates. Digital mammograms can be used to detect breast cancer lesions. However, mammographic images suffer from low image quality due to the low exposure factors used. This paper proposes an interactive way of enhancing mammographic images while improving the detection of breast cancer lesions. The Intelligence Detection of Breast Cancer ( i - DetectBC ) allows the radiologist or clinicians to enhance the original mammographic images by using appropriate algorithms automatically. The i - DetectBC consists of two digital image processing techniques: Fuzzy Anisotropic Diffusion Histogram Equalization Contrast Adaptive Limited (FADHECAL) enhancement and Multilevel Otsu Thresholding segmentation technique. The interface of i - DetectBC can be considered user-friendly with low computational methods to provide fast results, especially when identifying breast cancer types such as benign or malignant. The i - DetectBC has been performed on 322 mammographic images, which were retrieved from the MIAS database. The efficiency of the i - DetectBC is 95.7%, and the error rate is 4.3%. In summary, this i - DetectBC can be helpful in the detection and categorization of breast cancer lesions.
title I-DetectBC: Intelligence detection of breast cancer
title_full I-DetectBC: Intelligence detection of breast cancer
title_fullStr I-DetectBC: Intelligence detection of breast cancer
title_full_unstemmed I-DetectBC: Intelligence detection of breast cancer
title_short I-DetectBC: Intelligence detection of breast cancer
title_sort i-detectbc: intelligence detection of breast cancer