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    •   صفحهٔ اصلی
    • نشریات انگلیسی
    • Journal of Biomedical Physics and Engineering
    • Volume 10, Issue 4
    • مشاهده مورد
    •   صفحهٔ اصلی
    • نشریات انگلیسی
    • Journal of Biomedical Physics and Engineering
    • Volume 10, Issue 4
    • مشاهده مورد
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    A Deep Learning Approach to Automatic Recognition of Arcus Senilis

    (ندگان)پدیدآور
    Amini, NAmeri, A
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    نوع مدرک
    Text
    Original Research
    زبان مدرک
    English
    نمایش کامل رکورد
    چکیده
    Background: Arcus Senilis (AS) appears as a white, grey or blue ring or arc in front of the periphery of the iris, and is a symptom of abnormally high cholesterol in patients under 50 years old. Objective: This work proposes a deep learning approach to automatic recognition of AS in eye images.Material and Methods: In this analytical study, a dataset of 191 eye images (130 normal, 61 with AS) was employed where ¾ of the data were used for training the proposed model and ¼ of the data were used for test, using a 4-fold cross-validation. Due to the limited amount of training data, transfer learning was conducted with AlexNet as the pretrained network. Results: The proposed model achieved an accuracy of 100% in classifying the eye images into normal and AS categories. Conclusion: The excellent performance of the proposed model despite limited training set, demonstrate the efficacy of deep transfer learning in AS recognition in eye images. The proposed approach is preferred to previous methods for AS recognition, as it eliminates cumbersome segmentation and feature engineering processes.
    کلید واژگان
    Arcus Senilis
    Deep Learning
    Transfer Learning
    Classification

    شماره نشریه
    4
    تاریخ نشر
    2020-08-01
    1399-05-11
    ناشر
    Shiraz University of Medical Sciences
    سازمان پدید آورنده
    MSc, Department of Biomedical Engineering, School of Medicine, Shahid Beheshti University of Medical Sciences, Tehran, Iran
    PhD, Department of Biomedical Engineering, School of Medicine, Shahid Beheshti University of Medical Sciences, Tehran, Iran

    شاپا
    2251-7200
    URI
    https://dx.doi.org/10.31661/jbpe.v0i0.2003-1080
    https://jbpe.sums.ac.ir/article_46594.html
    https://iranjournals.nlai.ir/handle/123456789/26510

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