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Image of SEGMENTASI LESI KULIT MENGGUNAKAN CONVOLUTIONAL NEURAL NETWORK

Skripsi

SEGMENTASI LESI KULIT MENGGUNAKAN CONVOLUTIONAL NEURAL NETWORK

Chayanti, Dewi - Personal Name;

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Penilaian anda saat ini :  

Skin lesions are the first clinical symptoms of diseases like chickenpox, melanoma and others. With digital image processing for skin cancer detection, it is possible to make a diagnosis without any physical contact with the skin. Factors such as residue (hair and ruler markers), unclear borders, variable contrast, differences in shape and color differences in dermoscopy images of skin lesions make automatic analysis quite difficult. The presence of hair on the skin lesions can be removed effectively using segmentation. Dermoscopy image segmentation has been researched and developed in many literatures using various methods. In this study, a skin lesion segmentation system was developed using the Convolutional Neural Network (CNN) method with the U-Net architecture which produced 6 results models from parameter tuning. The best model has the highest evaluation results with Pixel Accuracy, Intersection over Union (IoU), and F1 Score of 95.89%, 90.37% and 92.54%.


Availability
Inventory Code Barcode Call Number Location Status
2107002697T49189T491892021Central Library (Referens)Available but not for loan - Not for Loan
Detail Information
Series Title
-
Call Number
T491892021
Publisher
Inderalaya : Prodi Teknik Informatika, Fakultas Ilmu Komputer Universitas Sriwijaya., 2021
Collation
xiv, 70 hlm,: ilus.; 29 cm
Language
Indonesia
ISBN/ISSN
-
Classification
004.07
Content Type
Text
Media Type
-
Carrier Type
-
Edition
-
Subject(s)
Pemrosesan Data, Teknik Informatika
Prodi Teknik Informatika
Specific Detail Info
-
Statement of Responsibility
MURZ
Other version/related

No other version available

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  • SEGMENTASI LESI KULIT MENGGUNAKAN CONVOLUTIONAL NEURAL NETWORK
  • SEGMENTASI LESI KULIT MENGGUNAKAN CONVOLUTIONAL NEURAL NETWORK
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