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The coronavirus disease 2019 (COVID-19) is a substantial threat to people's lives and health due to its high infectivity and rapid spread. Computed tomography (CT) scan is one of the important auxiliary methods for the clinical diagnosis of COVID-19. However, CT image lesion edge is normally affected by pixels with uneven grayscale and isolated noise, which makes weak edge detection of the COVID-19 lesion more complicated. In order to solve this problem, an edge detection method is proposed, which combines the histogram equalization and the improved Canny algorithm. Specifically, the histogram equalization is applied to enhance image contrast. In the improved Canny algorithm, the median filter, instead of the Gaussian filter, is used to remove the isolated noise points. The -means algorithm is applied to separate the image background and edge. And the Canny algorithm is improved continuously by combining the mathematical morphology and the maximum between class variance method (OTSU). On selecting four types of lesion images from COVID-CT date set, MSE, MAE, SNR, and the running time are applied to evaluate the performance of the proposed method. The average values of these evaluation indicators are 1.7322, 7.9010, 57.1241, and 5.4887, respectively. Compared with other three methods, these values indicate that the proposed method achieves better result. The experimental results prove that the proposed algorithm can effectively detect the weak edge of the lesion, which is helpful for the diagnosis of COVID-19.
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http://dx.doi.org/10.1155/2021/5208940 | DOI Listing |
Sci Rep
September 2025
Department of Computer Science, College of Computing and Information Systems, Umm Al-Qura University, Mecca, Saudi Arabia.
Speech is the primary form of communication; still, there are people whose hearing or speaking skills are disabled. Communication offers an essential hurdle for people with such an impairment. Sign Languages (SLs) are the natural languages of the Deaf and their primary means of communication.
View Article and Find Full Text PDFComput Biol Med
September 2025
Department of Biomedical Engineering, Khomeinishahr Branch, Islamic Azad University, Isfahan, Iran. Electronic address:
Delayed diagnosis of certain diseases like dental caries frequently leads to intensified problems due to postponed treatment. Untreated cavities can progress and affect a deeper layers of the tooth, which result in discomfort, infection, and ultimately tooth loss. Presently, manual diagnosis of dental decay in radiographic images by dentists in most dental clinics is prone to errors due to factors such as fatigue and information overload, emphasizing the necessity for automated diagnostic tools.
View Article and Find Full Text PDFSci Rep
August 2025
School of Medicine, Department of Ophthalmology, Shanghai Children' s Hospital, Shanghai Jiao Tong University city, Shanghai, 200062, China.
Unlabelled: To develop a Python-based digital technique for accurate measurement of pupil size, corneal size, and eccentricity in guinea pigs, and to validate its efficiency and accuracy against traditional OCT methods in ophthalmology research.
Methods: Fourteen healthy guinea pigs were selected, and the eye images were captured using a camera, and the image analysis program was written by Python 3.9.
Sci Rep
August 2025
ICT Officer, Bichena Communication Office, Bichena, East Gojam Zone, Ethiopia.
The quality and quantity of maize yields are declining as a result of several structural issues with Ethiopia's traditional maize producing system. The lack of soil fertility, which is frequently hard to see visually from the maize leaves, is a major reason for this decline. An automated approach to identify and categorize fertility problems in maize plants is desperately needed to address this issue.
View Article and Find Full Text PDFJ Food Sci
July 2025
Department of Computer Engineering, Faculty of Technology, Selçuk University, Konya, Türkiye.
Correct grading of corn for food production raises the standard of products offered to consumers and maintains product quality. Classification ensures optimal storage and processing conditions. As a result, losses are minimized, costs are reduced, and agriculture becomes more sustainable.
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