MobileNetV2 Ensemble Segmentation for Mandibular on Panoramic Radiography

Nur Nafi’iyah, - and Chastine Fatichah, - and Darlis Herumurti, - and Eha Renwi Astuti, - and Ramadhan Hardani Putra, - (2023) MobileNetV2 Ensemble Segmentation for Mandibular on Panoramic Radiography. International Journal OF Intelligent Engineering & System, 16 (2). pp. 546-548. ISSN 21853118

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Abstract

Mandibular segmentation is an important step in gender identification and age estimation, which aims to segment the mandible from intact and complete panoramic radiograph. One of the main drawbacks of most existing mandibular segmentation methods is that they cannot completely represent the mandible. When conducting several segmentation experiments with several methods, namely U-Net, MobileNetV2, ResNet18, ResNet50, Xception, InceptionResNet V2, MobileNetV2 turned out to be superior. However, if you only use the MobileNetV2 method, the results still need to be clarified on the coronoid and mandibular condyles. Then it is necessary to add an ensemble so that the mandibular segmentation results become more intact and complete. In contrast to the usual MobileNetV2, the mandibular segmentation results are assembled to achieve a complete and intact performance. Finally, this method experimented with 38 panoramic radiographs verified by radiologists. The experimental results show that the proposed MobileNetV2 ensemble for segmentation was superior to the usual MobileNetV2 method with a dice value of 0.9655.

Item Type: Article
Subjects: R Medicine
R Medicine > RK Dentistry
Divisions: 02. Fakultas Kedokteran Gigi > S1 Kedokteran Gigi
Creators:
CreatorsNIM
Nur Nafi’iyah, --
Chastine Fatichah, --
Darlis Herumurti, --
Eha Renwi Astuti, -NIDN0013056102
Ramadhan Hardani Putra, -NIDN0003058804
Depositing User: Rudy Febiyanto
Date Deposited: 12 Apr 2023 07:00
Last Modified: 13 Apr 2023 06:52
URI: http://repository.unair.ac.id/id/eprint/123087
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