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2021
파노라마방사선사진에서 심층 합성곱 신경망의 하악 피질골 비박 판독 능력
Mandibular Cortical Thinning Detection of Deep Convolutional Neural Network on Panoramic Radiographs
대한구강악안면병리학회
윤숙자, 이재서 외 1명
논문정보
- Publisher
- 대한구강악안면병리학회지
- Issue Date
- 2021-10-31
- Keywords
- -
- Citation
- -
- Source
- -
- Journal Title
- -
- Volume
- 45
- Number
- 5
- Start Page
- 157
- End Page
- 164
- DOI
- ISSN
- 12251577
Abstract
Deep convolutional network is a deep learning approach to optimize image recognition. This study aimed to apply DCNN to the reading of mandibular cortical thinning in digital panoramic radiographs. Digital panoramic radiographs of 1,268 female dental patients (age 45.2 ± 21.1yrs) were used in the reading of the mandibular cortical bone by two maxillofacial radiologists. Among the subjects, 535 normal subject’s panoramic radiographs (age 28.6 ±7.4 yrs) and 533 those of osteoporosis pationts (age 72.1 ± 8.7 yrs) with mandibular cortical thinning were used for training DCNN. In the testing of mandibular cortical thinning, 100 panoramic radiographs of normal subjects (age 26.6 ± 4.5 yrs) and 100 mandibular cortical thinning (age 72.5 ± 7.2 yrs) were used. The sensitive area of DCNN to mandibular cortical thinning was investigated by occluding analysis. The readings of DCNN were compared by two maxillofacial radiologists.
DCNN showed 97.5% accuracy, 96% sensitivity, and 99% specificity in reading mandibular cortical thinning. DCNN was sensitively responded on the cancellous and cortical bone of the mandibular inferior area. DCNN was effective in diagnosing mandibular cortical thinning.
- 전남대학교
- KCI
- 대한구강악안면병리학회지
저자 정보
| 이름 | 소속 |
|---|---|
| 윤숙자 | 치의학과 |
| 이재서 | 치의학과 |